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1 \input texinfo @c -*-texinfo-*-
2 @c Copyright (C) 1988-2016 Free Software Foundation, Inc.
3 @c
4 @c %**start of header
5 @c makeinfo ignores cmds prev to setfilename, so its arg cannot make use
6 @c of @set vars. However, you can override filename with makeinfo -o.
7 @setfilename gdb.info
8 @c
9 @c man begin INCLUDE
10 @include gdb-cfg.texi
11 @c man end
12 @c
13 @settitle Debugging with @value{GDBN}
14 @setchapternewpage odd
15 @c %**end of header
16
17 @iftex
18 @c @smallbook
19 @c @cropmarks
20 @end iftex
21
22 @finalout
23 @c To avoid file-name clashes between index.html and Index.html, when
24 @c the manual is produced on a Posix host and then moved to a
25 @c case-insensitive filesystem (e.g., MS-Windows), we separate the
26 @c indices into two: Concept Index and all the rest.
27 @syncodeindex ky fn
28 @syncodeindex tp fn
29
30 @c readline appendices use @vindex, @findex and @ftable,
31 @c annotate.texi and gdbmi use @findex.
32 @syncodeindex vr fn
33
34 @c !!set GDB manual's edition---not the same as GDB version!
35 @c This is updated by GNU Press.
36 @set EDITION Tenth
37
38 @c !!set GDB edit command default editor
39 @set EDITOR /bin/ex
40
41 @c THIS MANUAL REQUIRES TEXINFO 4.0 OR LATER.
42
43 @c This is a dir.info fragment to support semi-automated addition of
44 @c manuals to an info tree.
45 @dircategory Software development
46 @direntry
47 * Gdb: (gdb). The GNU debugger.
48 * gdbserver: (gdb) Server. The GNU debugging server.
49 @end direntry
50
51 @copying
52 @c man begin COPYRIGHT
53 Copyright @copyright{} 1988-2016 Free Software Foundation, Inc.
54
55 Permission is granted to copy, distribute and/or modify this document
56 under the terms of the GNU Free Documentation License, Version 1.3 or
57 any later version published by the Free Software Foundation; with the
58 Invariant Sections being ``Free Software'' and ``Free Software Needs
59 Free Documentation'', with the Front-Cover Texts being ``A GNU Manual,''
60 and with the Back-Cover Texts as in (a) below.
61
62 (a) The FSF's Back-Cover Text is: ``You are free to copy and modify
63 this GNU Manual. Buying copies from GNU Press supports the FSF in
64 developing GNU and promoting software freedom.''
65 @c man end
66 @end copying
67
68 @ifnottex
69 This file documents the @sc{gnu} debugger @value{GDBN}.
70
71 This is the @value{EDITION} Edition, of @cite{Debugging with
72 @value{GDBN}: the @sc{gnu} Source-Level Debugger} for @value{GDBN}
73 @ifset VERSION_PACKAGE
74 @value{VERSION_PACKAGE}
75 @end ifset
76 Version @value{GDBVN}.
77
78 @insertcopying
79 @end ifnottex
80
81 @titlepage
82 @title Debugging with @value{GDBN}
83 @subtitle The @sc{gnu} Source-Level Debugger
84 @sp 1
85 @subtitle @value{EDITION} Edition, for @value{GDBN} version @value{GDBVN}
86 @ifset VERSION_PACKAGE
87 @sp 1
88 @subtitle @value{VERSION_PACKAGE}
89 @end ifset
90 @author Richard Stallman, Roland Pesch, Stan Shebs, et al.
91 @page
92 @tex
93 {\parskip=0pt
94 \hfill (Send bugs and comments on @value{GDBN} to @value{BUGURL}.)\par
95 \hfill {\it Debugging with @value{GDBN}}\par
96 \hfill \TeX{}info \texinfoversion\par
97 }
98 @end tex
99
100 @vskip 0pt plus 1filll
101 Published by the Free Software Foundation @*
102 51 Franklin Street, Fifth Floor,
103 Boston, MA 02110-1301, USA@*
104 ISBN 978-0-9831592-3-0 @*
105
106 @insertcopying
107 @end titlepage
108 @page
109
110 @ifnottex
111 @node Top, Summary, (dir), (dir)
112
113 @top Debugging with @value{GDBN}
114
115 This file describes @value{GDBN}, the @sc{gnu} symbolic debugger.
116
117 This is the @value{EDITION} Edition, for @value{GDBN}
118 @ifset VERSION_PACKAGE
119 @value{VERSION_PACKAGE}
120 @end ifset
121 Version @value{GDBVN}.
122
123 Copyright (C) 1988-2016 Free Software Foundation, Inc.
124
125 This edition of the GDB manual is dedicated to the memory of Fred
126 Fish. Fred was a long-standing contributor to GDB and to Free
127 software in general. We will miss him.
128
129 @menu
130 * Summary:: Summary of @value{GDBN}
131 * Sample Session:: A sample @value{GDBN} session
132
133 * Invocation:: Getting in and out of @value{GDBN}
134 * Commands:: @value{GDBN} commands
135 * Running:: Running programs under @value{GDBN}
136 * Stopping:: Stopping and continuing
137 * Reverse Execution:: Running programs backward
138 * Process Record and Replay:: Recording inferior's execution and replaying it
139 * Stack:: Examining the stack
140 * Source:: Examining source files
141 * Data:: Examining data
142 * Optimized Code:: Debugging optimized code
143 * Macros:: Preprocessor Macros
144 * Tracepoints:: Debugging remote targets non-intrusively
145 * Overlays:: Debugging programs that use overlays
146
147 * Languages:: Using @value{GDBN} with different languages
148
149 * Symbols:: Examining the symbol table
150 * Altering:: Altering execution
151 * GDB Files:: @value{GDBN} files
152 * Targets:: Specifying a debugging target
153 * Remote Debugging:: Debugging remote programs
154 * Configurations:: Configuration-specific information
155 * Controlling GDB:: Controlling @value{GDBN}
156 * Extending GDB:: Extending @value{GDBN}
157 * Interpreters:: Command Interpreters
158 * TUI:: @value{GDBN} Text User Interface
159 * Emacs:: Using @value{GDBN} under @sc{gnu} Emacs
160 * GDB/MI:: @value{GDBN}'s Machine Interface.
161 * Annotations:: @value{GDBN}'s annotation interface.
162 * JIT Interface:: Using the JIT debugging interface.
163 * In-Process Agent:: In-Process Agent
164
165 * GDB Bugs:: Reporting bugs in @value{GDBN}
166
167 @ifset SYSTEM_READLINE
168 * Command Line Editing: (rluserman). Command Line Editing
169 * Using History Interactively: (history). Using History Interactively
170 @end ifset
171 @ifclear SYSTEM_READLINE
172 * Command Line Editing:: Command Line Editing
173 * Using History Interactively:: Using History Interactively
174 @end ifclear
175 * In Memoriam:: In Memoriam
176 * Formatting Documentation:: How to format and print @value{GDBN} documentation
177 * Installing GDB:: Installing GDB
178 * Maintenance Commands:: Maintenance Commands
179 * Remote Protocol:: GDB Remote Serial Protocol
180 * Agent Expressions:: The GDB Agent Expression Mechanism
181 * Target Descriptions:: How targets can describe themselves to
182 @value{GDBN}
183 * Operating System Information:: Getting additional information from
184 the operating system
185 * Trace File Format:: GDB trace file format
186 * Index Section Format:: .gdb_index section format
187 * Man Pages:: Manual pages
188 * Copying:: GNU General Public License says
189 how you can copy and share GDB
190 * GNU Free Documentation License:: The license for this documentation
191 * Concept Index:: Index of @value{GDBN} concepts
192 * Command and Variable Index:: Index of @value{GDBN} commands, variables,
193 functions, and Python data types
194 @end menu
195
196 @end ifnottex
197
198 @contents
199
200 @node Summary
201 @unnumbered Summary of @value{GDBN}
202
203 The purpose of a debugger such as @value{GDBN} is to allow you to see what is
204 going on ``inside'' another program while it executes---or what another
205 program was doing at the moment it crashed.
206
207 @value{GDBN} can do four main kinds of things (plus other things in support of
208 these) to help you catch bugs in the act:
209
210 @itemize @bullet
211 @item
212 Start your program, specifying anything that might affect its behavior.
213
214 @item
215 Make your program stop on specified conditions.
216
217 @item
218 Examine what has happened, when your program has stopped.
219
220 @item
221 Change things in your program, so you can experiment with correcting the
222 effects of one bug and go on to learn about another.
223 @end itemize
224
225 You can use @value{GDBN} to debug programs written in C and C@t{++}.
226 For more information, see @ref{Supported Languages,,Supported Languages}.
227 For more information, see @ref{C,,C and C++}.
228
229 Support for D is partial. For information on D, see
230 @ref{D,,D}.
231
232 @cindex Modula-2
233 Support for Modula-2 is partial. For information on Modula-2, see
234 @ref{Modula-2,,Modula-2}.
235
236 Support for OpenCL C is partial. For information on OpenCL C, see
237 @ref{OpenCL C,,OpenCL C}.
238
239 @cindex Pascal
240 Debugging Pascal programs which use sets, subranges, file variables, or
241 nested functions does not currently work. @value{GDBN} does not support
242 entering expressions, printing values, or similar features using Pascal
243 syntax.
244
245 @cindex Fortran
246 @value{GDBN} can be used to debug programs written in Fortran, although
247 it may be necessary to refer to some variables with a trailing
248 underscore.
249
250 @value{GDBN} can be used to debug programs written in Objective-C,
251 using either the Apple/NeXT or the GNU Objective-C runtime.
252
253 @menu
254 * Free Software:: Freely redistributable software
255 * Free Documentation:: Free Software Needs Free Documentation
256 * Contributors:: Contributors to GDB
257 @end menu
258
259 @node Free Software
260 @unnumberedsec Free Software
261
262 @value{GDBN} is @dfn{free software}, protected by the @sc{gnu}
263 General Public License
264 (GPL). The GPL gives you the freedom to copy or adapt a licensed
265 program---but every person getting a copy also gets with it the
266 freedom to modify that copy (which means that they must get access to
267 the source code), and the freedom to distribute further copies.
268 Typical software companies use copyrights to limit your freedoms; the
269 Free Software Foundation uses the GPL to preserve these freedoms.
270
271 Fundamentally, the General Public License is a license which says that
272 you have these freedoms and that you cannot take these freedoms away
273 from anyone else.
274
275 @node Free Documentation
276 @unnumberedsec Free Software Needs Free Documentation
277
278 The biggest deficiency in the free software community today is not in
279 the software---it is the lack of good free documentation that we can
280 include with the free software. Many of our most important
281 programs do not come with free reference manuals and free introductory
282 texts. Documentation is an essential part of any software package;
283 when an important free software package does not come with a free
284 manual and a free tutorial, that is a major gap. We have many such
285 gaps today.
286
287 Consider Perl, for instance. The tutorial manuals that people
288 normally use are non-free. How did this come about? Because the
289 authors of those manuals published them with restrictive terms---no
290 copying, no modification, source files not available---which exclude
291 them from the free software world.
292
293 That wasn't the first time this sort of thing happened, and it was far
294 from the last. Many times we have heard a GNU user eagerly describe a
295 manual that he is writing, his intended contribution to the community,
296 only to learn that he had ruined everything by signing a publication
297 contract to make it non-free.
298
299 Free documentation, like free software, is a matter of freedom, not
300 price. The problem with the non-free manual is not that publishers
301 charge a price for printed copies---that in itself is fine. (The Free
302 Software Foundation sells printed copies of manuals, too.) The
303 problem is the restrictions on the use of the manual. Free manuals
304 are available in source code form, and give you permission to copy and
305 modify. Non-free manuals do not allow this.
306
307 The criteria of freedom for a free manual are roughly the same as for
308 free software. Redistribution (including the normal kinds of
309 commercial redistribution) must be permitted, so that the manual can
310 accompany every copy of the program, both on-line and on paper.
311
312 Permission for modification of the technical content is crucial too.
313 When people modify the software, adding or changing features, if they
314 are conscientious they will change the manual too---so they can
315 provide accurate and clear documentation for the modified program. A
316 manual that leaves you no choice but to write a new manual to document
317 a changed version of the program is not really available to our
318 community.
319
320 Some kinds of limits on the way modification is handled are
321 acceptable. For example, requirements to preserve the original
322 author's copyright notice, the distribution terms, or the list of
323 authors, are ok. It is also no problem to require modified versions
324 to include notice that they were modified. Even entire sections that
325 may not be deleted or changed are acceptable, as long as they deal
326 with nontechnical topics (like this one). These kinds of restrictions
327 are acceptable because they don't obstruct the community's normal use
328 of the manual.
329
330 However, it must be possible to modify all the @emph{technical}
331 content of the manual, and then distribute the result in all the usual
332 media, through all the usual channels. Otherwise, the restrictions
333 obstruct the use of the manual, it is not free, and we need another
334 manual to replace it.
335
336 Please spread the word about this issue. Our community continues to
337 lose manuals to proprietary publishing. If we spread the word that
338 free software needs free reference manuals and free tutorials, perhaps
339 the next person who wants to contribute by writing documentation will
340 realize, before it is too late, that only free manuals contribute to
341 the free software community.
342
343 If you are writing documentation, please insist on publishing it under
344 the GNU Free Documentation License or another free documentation
345 license. Remember that this decision requires your approval---you
346 don't have to let the publisher decide. Some commercial publishers
347 will use a free license if you insist, but they will not propose the
348 option; it is up to you to raise the issue and say firmly that this is
349 what you want. If the publisher you are dealing with refuses, please
350 try other publishers. If you're not sure whether a proposed license
351 is free, write to @email{licensing@@gnu.org}.
352
353 You can encourage commercial publishers to sell more free, copylefted
354 manuals and tutorials by buying them, and particularly by buying
355 copies from the publishers that paid for their writing or for major
356 improvements. Meanwhile, try to avoid buying non-free documentation
357 at all. Check the distribution terms of a manual before you buy it,
358 and insist that whoever seeks your business must respect your freedom.
359 Check the history of the book, and try to reward the publishers that
360 have paid or pay the authors to work on it.
361
362 The Free Software Foundation maintains a list of free documentation
363 published by other publishers, at
364 @url{http://www.fsf.org/doc/other-free-books.html}.
365
366 @node Contributors
367 @unnumberedsec Contributors to @value{GDBN}
368
369 Richard Stallman was the original author of @value{GDBN}, and of many
370 other @sc{gnu} programs. Many others have contributed to its
371 development. This section attempts to credit major contributors. One
372 of the virtues of free software is that everyone is free to contribute
373 to it; with regret, we cannot actually acknowledge everyone here. The
374 file @file{ChangeLog} in the @value{GDBN} distribution approximates a
375 blow-by-blow account.
376
377 Changes much prior to version 2.0 are lost in the mists of time.
378
379 @quotation
380 @emph{Plea:} Additions to this section are particularly welcome. If you
381 or your friends (or enemies, to be evenhanded) have been unfairly
382 omitted from this list, we would like to add your names!
383 @end quotation
384
385 So that they may not regard their many labors as thankless, we
386 particularly thank those who shepherded @value{GDBN} through major
387 releases:
388 Andrew Cagney (releases 6.3, 6.2, 6.1, 6.0, 5.3, 5.2, 5.1 and 5.0);
389 Jim Blandy (release 4.18);
390 Jason Molenda (release 4.17);
391 Stan Shebs (release 4.14);
392 Fred Fish (releases 4.16, 4.15, 4.13, 4.12, 4.11, 4.10, and 4.9);
393 Stu Grossman and John Gilmore (releases 4.8, 4.7, 4.6, 4.5, and 4.4);
394 John Gilmore (releases 4.3, 4.2, 4.1, 4.0, and 3.9);
395 Jim Kingdon (releases 3.5, 3.4, and 3.3);
396 and Randy Smith (releases 3.2, 3.1, and 3.0).
397
398 Richard Stallman, assisted at various times by Peter TerMaat, Chris
399 Hanson, and Richard Mlynarik, handled releases through 2.8.
400
401 Michael Tiemann is the author of most of the @sc{gnu} C@t{++} support
402 in @value{GDBN}, with significant additional contributions from Per
403 Bothner and Daniel Berlin. James Clark wrote the @sc{gnu} C@t{++}
404 demangler. Early work on C@t{++} was by Peter TerMaat (who also did
405 much general update work leading to release 3.0).
406
407 @value{GDBN} uses the BFD subroutine library to examine multiple
408 object-file formats; BFD was a joint project of David V.
409 Henkel-Wallace, Rich Pixley, Steve Chamberlain, and John Gilmore.
410
411 David Johnson wrote the original COFF support; Pace Willison did
412 the original support for encapsulated COFF.
413
414 Brent Benson of Harris Computer Systems contributed DWARF 2 support.
415
416 Adam de Boor and Bradley Davis contributed the ISI Optimum V support.
417 Per Bothner, Noboyuki Hikichi, and Alessandro Forin contributed MIPS
418 support.
419 Jean-Daniel Fekete contributed Sun 386i support.
420 Chris Hanson improved the HP9000 support.
421 Noboyuki Hikichi and Tomoyuki Hasei contributed Sony/News OS 3 support.
422 David Johnson contributed Encore Umax support.
423 Jyrki Kuoppala contributed Altos 3068 support.
424 Jeff Law contributed HP PA and SOM support.
425 Keith Packard contributed NS32K support.
426 Doug Rabson contributed Acorn Risc Machine support.
427 Bob Rusk contributed Harris Nighthawk CX-UX support.
428 Chris Smith contributed Convex support (and Fortran debugging).
429 Jonathan Stone contributed Pyramid support.
430 Michael Tiemann contributed SPARC support.
431 Tim Tucker contributed support for the Gould NP1 and Gould Powernode.
432 Pace Willison contributed Intel 386 support.
433 Jay Vosburgh contributed Symmetry support.
434 Marko Mlinar contributed OpenRISC 1000 support.
435
436 Andreas Schwab contributed M68K @sc{gnu}/Linux support.
437
438 Rich Schaefer and Peter Schauer helped with support of SunOS shared
439 libraries.
440
441 Jay Fenlason and Roland McGrath ensured that @value{GDBN} and GAS agree
442 about several machine instruction sets.
443
444 Patrick Duval, Ted Goldstein, Vikram Koka and Glenn Engel helped develop
445 remote debugging. Intel Corporation, Wind River Systems, AMD, and ARM
446 contributed remote debugging modules for the i960, VxWorks, A29K UDI,
447 and RDI targets, respectively.
448
449 Brian Fox is the author of the readline libraries providing
450 command-line editing and command history.
451
452 Andrew Beers of SUNY Buffalo wrote the language-switching code, the
453 Modula-2 support, and contributed the Languages chapter of this manual.
454
455 Fred Fish wrote most of the support for Unix System Vr4.
456 He also enhanced the command-completion support to cover C@t{++} overloaded
457 symbols.
458
459 Hitachi America (now Renesas America), Ltd. sponsored the support for
460 H8/300, H8/500, and Super-H processors.
461
462 NEC sponsored the support for the v850, Vr4xxx, and Vr5xxx processors.
463
464 Mitsubishi (now Renesas) sponsored the support for D10V, D30V, and M32R/D
465 processors.
466
467 Toshiba sponsored the support for the TX39 Mips processor.
468
469 Matsushita sponsored the support for the MN10200 and MN10300 processors.
470
471 Fujitsu sponsored the support for SPARClite and FR30 processors.
472
473 Kung Hsu, Jeff Law, and Rick Sladkey added support for hardware
474 watchpoints.
475
476 Michael Snyder added support for tracepoints.
477
478 Stu Grossman wrote gdbserver.
479
480 Jim Kingdon, Peter Schauer, Ian Taylor, and Stu Grossman made
481 nearly innumerable bug fixes and cleanups throughout @value{GDBN}.
482
483 The following people at the Hewlett-Packard Company contributed
484 support for the PA-RISC 2.0 architecture, HP-UX 10.20, 10.30, and 11.0
485 (narrow mode), HP's implementation of kernel threads, HP's aC@t{++}
486 compiler, and the Text User Interface (nee Terminal User Interface):
487 Ben Krepp, Richard Title, John Bishop, Susan Macchia, Kathy Mann,
488 Satish Pai, India Paul, Steve Rehrauer, and Elena Zannoni. Kim Haase
489 provided HP-specific information in this manual.
490
491 DJ Delorie ported @value{GDBN} to MS-DOS, for the DJGPP project.
492 Robert Hoehne made significant contributions to the DJGPP port.
493
494 Cygnus Solutions has sponsored @value{GDBN} maintenance and much of its
495 development since 1991. Cygnus engineers who have worked on @value{GDBN}
496 fulltime include Mark Alexander, Jim Blandy, Per Bothner, Kevin
497 Buettner, Edith Epstein, Chris Faylor, Fred Fish, Martin Hunt, Jim
498 Ingham, John Gilmore, Stu Grossman, Kung Hsu, Jim Kingdon, John Metzler,
499 Fernando Nasser, Geoffrey Noer, Dawn Perchik, Rich Pixley, Zdenek
500 Radouch, Keith Seitz, Stan Shebs, David Taylor, and Elena Zannoni. In
501 addition, Dave Brolley, Ian Carmichael, Steve Chamberlain, Nick Clifton,
502 JT Conklin, Stan Cox, DJ Delorie, Ulrich Drepper, Frank Eigler, Doug
503 Evans, Sean Fagan, David Henkel-Wallace, Richard Henderson, Jeff
504 Holcomb, Jeff Law, Jim Lemke, Tom Lord, Bob Manson, Michael Meissner,
505 Jason Merrill, Catherine Moore, Drew Moseley, Ken Raeburn, Gavin
506 Romig-Koch, Rob Savoye, Jamie Smith, Mike Stump, Ian Taylor, Angela
507 Thomas, Michael Tiemann, Tom Tromey, Ron Unrau, Jim Wilson, and David
508 Zuhn have made contributions both large and small.
509
510 Andrew Cagney, Fernando Nasser, and Elena Zannoni, while working for
511 Cygnus Solutions, implemented the original @sc{gdb/mi} interface.
512
513 Jim Blandy added support for preprocessor macros, while working for Red
514 Hat.
515
516 Andrew Cagney designed @value{GDBN}'s architecture vector. Many
517 people including Andrew Cagney, Stephane Carrez, Randolph Chung, Nick
518 Duffek, Richard Henderson, Mark Kettenis, Grace Sainsbury, Kei
519 Sakamoto, Yoshinori Sato, Michael Snyder, Andreas Schwab, Jason
520 Thorpe, Corinna Vinschen, Ulrich Weigand, and Elena Zannoni, helped
521 with the migration of old architectures to this new framework.
522
523 Andrew Cagney completely re-designed and re-implemented @value{GDBN}'s
524 unwinder framework, this consisting of a fresh new design featuring
525 frame IDs, independent frame sniffers, and the sentinel frame. Mark
526 Kettenis implemented the @sc{dwarf 2} unwinder, Jeff Johnston the
527 libunwind unwinder, and Andrew Cagney the dummy, sentinel, tramp, and
528 trad unwinders. The architecture-specific changes, each involving a
529 complete rewrite of the architecture's frame code, were carried out by
530 Jim Blandy, Joel Brobecker, Kevin Buettner, Andrew Cagney, Stephane
531 Carrez, Randolph Chung, Orjan Friberg, Richard Henderson, Daniel
532 Jacobowitz, Jeff Johnston, Mark Kettenis, Theodore A. Roth, Kei
533 Sakamoto, Yoshinori Sato, Michael Snyder, Corinna Vinschen, and Ulrich
534 Weigand.
535
536 Christian Zankel, Ross Morley, Bob Wilson, and Maxim Grigoriev from
537 Tensilica, Inc.@: contributed support for Xtensa processors. Others
538 who have worked on the Xtensa port of @value{GDBN} in the past include
539 Steve Tjiang, John Newlin, and Scott Foehner.
540
541 Michael Eager and staff of Xilinx, Inc., contributed support for the
542 Xilinx MicroBlaze architecture.
543
544 @node Sample Session
545 @chapter A Sample @value{GDBN} Session
546
547 You can use this manual at your leisure to read all about @value{GDBN}.
548 However, a handful of commands are enough to get started using the
549 debugger. This chapter illustrates those commands.
550
551 @iftex
552 In this sample session, we emphasize user input like this: @b{input},
553 to make it easier to pick out from the surrounding output.
554 @end iftex
555
556 @c FIXME: this example may not be appropriate for some configs, where
557 @c FIXME...primary interest is in remote use.
558
559 One of the preliminary versions of @sc{gnu} @code{m4} (a generic macro
560 processor) exhibits the following bug: sometimes, when we change its
561 quote strings from the default, the commands used to capture one macro
562 definition within another stop working. In the following short @code{m4}
563 session, we define a macro @code{foo} which expands to @code{0000}; we
564 then use the @code{m4} built-in @code{defn} to define @code{bar} as the
565 same thing. However, when we change the open quote string to
566 @code{<QUOTE>} and the close quote string to @code{<UNQUOTE>}, the same
567 procedure fails to define a new synonym @code{baz}:
568
569 @smallexample
570 $ @b{cd gnu/m4}
571 $ @b{./m4}
572 @b{define(foo,0000)}
573
574 @b{foo}
575 0000
576 @b{define(bar,defn(`foo'))}
577
578 @b{bar}
579 0000
580 @b{changequote(<QUOTE>,<UNQUOTE>)}
581
582 @b{define(baz,defn(<QUOTE>foo<UNQUOTE>))}
583 @b{baz}
584 @b{Ctrl-d}
585 m4: End of input: 0: fatal error: EOF in string
586 @end smallexample
587
588 @noindent
589 Let us use @value{GDBN} to try to see what is going on.
590
591 @smallexample
592 $ @b{@value{GDBP} m4}
593 @c FIXME: this falsifies the exact text played out, to permit smallbook
594 @c FIXME... format to come out better.
595 @value{GDBN} is free software and you are welcome to distribute copies
596 of it under certain conditions; type "show copying" to see
597 the conditions.
598 There is absolutely no warranty for @value{GDBN}; type "show warranty"
599 for details.
600
601 @value{GDBN} @value{GDBVN}, Copyright 1999 Free Software Foundation, Inc...
602 (@value{GDBP})
603 @end smallexample
604
605 @noindent
606 @value{GDBN} reads only enough symbol data to know where to find the
607 rest when needed; as a result, the first prompt comes up very quickly.
608 We now tell @value{GDBN} to use a narrower display width than usual, so
609 that examples fit in this manual.
610
611 @smallexample
612 (@value{GDBP}) @b{set width 70}
613 @end smallexample
614
615 @noindent
616 We need to see how the @code{m4} built-in @code{changequote} works.
617 Having looked at the source, we know the relevant subroutine is
618 @code{m4_changequote}, so we set a breakpoint there with the @value{GDBN}
619 @code{break} command.
620
621 @smallexample
622 (@value{GDBP}) @b{break m4_changequote}
623 Breakpoint 1 at 0x62f4: file builtin.c, line 879.
624 @end smallexample
625
626 @noindent
627 Using the @code{run} command, we start @code{m4} running under @value{GDBN}
628 control; as long as control does not reach the @code{m4_changequote}
629 subroutine, the program runs as usual:
630
631 @smallexample
632 (@value{GDBP}) @b{run}
633 Starting program: /work/Editorial/gdb/gnu/m4/m4
634 @b{define(foo,0000)}
635
636 @b{foo}
637 0000
638 @end smallexample
639
640 @noindent
641 To trigger the breakpoint, we call @code{changequote}. @value{GDBN}
642 suspends execution of @code{m4}, displaying information about the
643 context where it stops.
644
645 @smallexample
646 @b{changequote(<QUOTE>,<UNQUOTE>)}
647
648 Breakpoint 1, m4_changequote (argc=3, argv=0x33c70)
649 at builtin.c:879
650 879 if (bad_argc(TOKEN_DATA_TEXT(argv[0]),argc,1,3))
651 @end smallexample
652
653 @noindent
654 Now we use the command @code{n} (@code{next}) to advance execution to
655 the next line of the current function.
656
657 @smallexample
658 (@value{GDBP}) @b{n}
659 882 set_quotes((argc >= 2) ? TOKEN_DATA_TEXT(argv[1])\
660 : nil,
661 @end smallexample
662
663 @noindent
664 @code{set_quotes} looks like a promising subroutine. We can go into it
665 by using the command @code{s} (@code{step}) instead of @code{next}.
666 @code{step} goes to the next line to be executed in @emph{any}
667 subroutine, so it steps into @code{set_quotes}.
668
669 @smallexample
670 (@value{GDBP}) @b{s}
671 set_quotes (lq=0x34c78 "<QUOTE>", rq=0x34c88 "<UNQUOTE>")
672 at input.c:530
673 530 if (lquote != def_lquote)
674 @end smallexample
675
676 @noindent
677 The display that shows the subroutine where @code{m4} is now
678 suspended (and its arguments) is called a stack frame display. It
679 shows a summary of the stack. We can use the @code{backtrace}
680 command (which can also be spelled @code{bt}), to see where we are
681 in the stack as a whole: the @code{backtrace} command displays a
682 stack frame for each active subroutine.
683
684 @smallexample
685 (@value{GDBP}) @b{bt}
686 #0 set_quotes (lq=0x34c78 "<QUOTE>", rq=0x34c88 "<UNQUOTE>")
687 at input.c:530
688 #1 0x6344 in m4_changequote (argc=3, argv=0x33c70)
689 at builtin.c:882
690 #2 0x8174 in expand_macro (sym=0x33320) at macro.c:242
691 #3 0x7a88 in expand_token (obs=0x0, t=209696, td=0xf7fffa30)
692 at macro.c:71
693 #4 0x79dc in expand_input () at macro.c:40
694 #5 0x2930 in main (argc=0, argv=0xf7fffb20) at m4.c:195
695 @end smallexample
696
697 @noindent
698 We step through a few more lines to see what happens. The first two
699 times, we can use @samp{s}; the next two times we use @code{n} to avoid
700 falling into the @code{xstrdup} subroutine.
701
702 @smallexample
703 (@value{GDBP}) @b{s}
704 0x3b5c 532 if (rquote != def_rquote)
705 (@value{GDBP}) @b{s}
706 0x3b80 535 lquote = (lq == nil || *lq == '\0') ? \
707 def_lquote : xstrdup(lq);
708 (@value{GDBP}) @b{n}
709 536 rquote = (rq == nil || *rq == '\0') ? def_rquote\
710 : xstrdup(rq);
711 (@value{GDBP}) @b{n}
712 538 len_lquote = strlen(rquote);
713 @end smallexample
714
715 @noindent
716 The last line displayed looks a little odd; we can examine the variables
717 @code{lquote} and @code{rquote} to see if they are in fact the new left
718 and right quotes we specified. We use the command @code{p}
719 (@code{print}) to see their values.
720
721 @smallexample
722 (@value{GDBP}) @b{p lquote}
723 $1 = 0x35d40 "<QUOTE>"
724 (@value{GDBP}) @b{p rquote}
725 $2 = 0x35d50 "<UNQUOTE>"
726 @end smallexample
727
728 @noindent
729 @code{lquote} and @code{rquote} are indeed the new left and right quotes.
730 To look at some context, we can display ten lines of source
731 surrounding the current line with the @code{l} (@code{list}) command.
732
733 @smallexample
734 (@value{GDBP}) @b{l}
735 533 xfree(rquote);
736 534
737 535 lquote = (lq == nil || *lq == '\0') ? def_lquote\
738 : xstrdup (lq);
739 536 rquote = (rq == nil || *rq == '\0') ? def_rquote\
740 : xstrdup (rq);
741 537
742 538 len_lquote = strlen(rquote);
743 539 len_rquote = strlen(lquote);
744 540 @}
745 541
746 542 void
747 @end smallexample
748
749 @noindent
750 Let us step past the two lines that set @code{len_lquote} and
751 @code{len_rquote}, and then examine the values of those variables.
752
753 @smallexample
754 (@value{GDBP}) @b{n}
755 539 len_rquote = strlen(lquote);
756 (@value{GDBP}) @b{n}
757 540 @}
758 (@value{GDBP}) @b{p len_lquote}
759 $3 = 9
760 (@value{GDBP}) @b{p len_rquote}
761 $4 = 7
762 @end smallexample
763
764 @noindent
765 That certainly looks wrong, assuming @code{len_lquote} and
766 @code{len_rquote} are meant to be the lengths of @code{lquote} and
767 @code{rquote} respectively. We can set them to better values using
768 the @code{p} command, since it can print the value of
769 any expression---and that expression can include subroutine calls and
770 assignments.
771
772 @smallexample
773 (@value{GDBP}) @b{p len_lquote=strlen(lquote)}
774 $5 = 7
775 (@value{GDBP}) @b{p len_rquote=strlen(rquote)}
776 $6 = 9
777 @end smallexample
778
779 @noindent
780 Is that enough to fix the problem of using the new quotes with the
781 @code{m4} built-in @code{defn}? We can allow @code{m4} to continue
782 executing with the @code{c} (@code{continue}) command, and then try the
783 example that caused trouble initially:
784
785 @smallexample
786 (@value{GDBP}) @b{c}
787 Continuing.
788
789 @b{define(baz,defn(<QUOTE>foo<UNQUOTE>))}
790
791 baz
792 0000
793 @end smallexample
794
795 @noindent
796 Success! The new quotes now work just as well as the default ones. The
797 problem seems to have been just the two typos defining the wrong
798 lengths. We allow @code{m4} exit by giving it an EOF as input:
799
800 @smallexample
801 @b{Ctrl-d}
802 Program exited normally.
803 @end smallexample
804
805 @noindent
806 The message @samp{Program exited normally.} is from @value{GDBN}; it
807 indicates @code{m4} has finished executing. We can end our @value{GDBN}
808 session with the @value{GDBN} @code{quit} command.
809
810 @smallexample
811 (@value{GDBP}) @b{quit}
812 @end smallexample
813
814 @node Invocation
815 @chapter Getting In and Out of @value{GDBN}
816
817 This chapter discusses how to start @value{GDBN}, and how to get out of it.
818 The essentials are:
819 @itemize @bullet
820 @item
821 type @samp{@value{GDBP}} to start @value{GDBN}.
822 @item
823 type @kbd{quit} or @kbd{Ctrl-d} to exit.
824 @end itemize
825
826 @menu
827 * Invoking GDB:: How to start @value{GDBN}
828 * Quitting GDB:: How to quit @value{GDBN}
829 * Shell Commands:: How to use shell commands inside @value{GDBN}
830 * Logging Output:: How to log @value{GDBN}'s output to a file
831 @end menu
832
833 @node Invoking GDB
834 @section Invoking @value{GDBN}
835
836 Invoke @value{GDBN} by running the program @code{@value{GDBP}}. Once started,
837 @value{GDBN} reads commands from the terminal until you tell it to exit.
838
839 You can also run @code{@value{GDBP}} with a variety of arguments and options,
840 to specify more of your debugging environment at the outset.
841
842 The command-line options described here are designed
843 to cover a variety of situations; in some environments, some of these
844 options may effectively be unavailable.
845
846 The most usual way to start @value{GDBN} is with one argument,
847 specifying an executable program:
848
849 @smallexample
850 @value{GDBP} @var{program}
851 @end smallexample
852
853 @noindent
854 You can also start with both an executable program and a core file
855 specified:
856
857 @smallexample
858 @value{GDBP} @var{program} @var{core}
859 @end smallexample
860
861 You can, instead, specify a process ID as a second argument, if you want
862 to debug a running process:
863
864 @smallexample
865 @value{GDBP} @var{program} 1234
866 @end smallexample
867
868 @noindent
869 would attach @value{GDBN} to process @code{1234} (unless you also have a file
870 named @file{1234}; @value{GDBN} does check for a core file first).
871
872 Taking advantage of the second command-line argument requires a fairly
873 complete operating system; when you use @value{GDBN} as a remote
874 debugger attached to a bare board, there may not be any notion of
875 ``process'', and there is often no way to get a core dump. @value{GDBN}
876 will warn you if it is unable to attach or to read core dumps.
877
878 You can optionally have @code{@value{GDBP}} pass any arguments after the
879 executable file to the inferior using @code{--args}. This option stops
880 option processing.
881 @smallexample
882 @value{GDBP} --args gcc -O2 -c foo.c
883 @end smallexample
884 This will cause @code{@value{GDBP}} to debug @code{gcc}, and to set
885 @code{gcc}'s command-line arguments (@pxref{Arguments}) to @samp{-O2 -c foo.c}.
886
887 You can run @code{@value{GDBP}} without printing the front material, which describes
888 @value{GDBN}'s non-warranty, by specifying @code{--silent}
889 (or @code{-q}/@code{--quiet}):
890
891 @smallexample
892 @value{GDBP} --silent
893 @end smallexample
894
895 @noindent
896 You can further control how @value{GDBN} starts up by using command-line
897 options. @value{GDBN} itself can remind you of the options available.
898
899 @noindent
900 Type
901
902 @smallexample
903 @value{GDBP} -help
904 @end smallexample
905
906 @noindent
907 to display all available options and briefly describe their use
908 (@samp{@value{GDBP} -h} is a shorter equivalent).
909
910 All options and command line arguments you give are processed
911 in sequential order. The order makes a difference when the
912 @samp{-x} option is used.
913
914
915 @menu
916 * File Options:: Choosing files
917 * Mode Options:: Choosing modes
918 * Startup:: What @value{GDBN} does during startup
919 @end menu
920
921 @node File Options
922 @subsection Choosing Files
923
924 When @value{GDBN} starts, it reads any arguments other than options as
925 specifying an executable file and core file (or process ID). This is
926 the same as if the arguments were specified by the @samp{-se} and
927 @samp{-c} (or @samp{-p}) options respectively. (@value{GDBN} reads the
928 first argument that does not have an associated option flag as
929 equivalent to the @samp{-se} option followed by that argument; and the
930 second argument that does not have an associated option flag, if any, as
931 equivalent to the @samp{-c}/@samp{-p} option followed by that argument.)
932 If the second argument begins with a decimal digit, @value{GDBN} will
933 first attempt to attach to it as a process, and if that fails, attempt
934 to open it as a corefile. If you have a corefile whose name begins with
935 a digit, you can prevent @value{GDBN} from treating it as a pid by
936 prefixing it with @file{./}, e.g.@: @file{./12345}.
937
938 If @value{GDBN} has not been configured to included core file support,
939 such as for most embedded targets, then it will complain about a second
940 argument and ignore it.
941
942 Many options have both long and short forms; both are shown in the
943 following list. @value{GDBN} also recognizes the long forms if you truncate
944 them, so long as enough of the option is present to be unambiguous.
945 (If you prefer, you can flag option arguments with @samp{--} rather
946 than @samp{-}, though we illustrate the more usual convention.)
947
948 @c NOTE: the @cindex entries here use double dashes ON PURPOSE. This
949 @c way, both those who look for -foo and --foo in the index, will find
950 @c it.
951
952 @table @code
953 @item -symbols @var{file}
954 @itemx -s @var{file}
955 @cindex @code{--symbols}
956 @cindex @code{-s}
957 Read symbol table from file @var{file}.
958
959 @item -exec @var{file}
960 @itemx -e @var{file}
961 @cindex @code{--exec}
962 @cindex @code{-e}
963 Use file @var{file} as the executable file to execute when appropriate,
964 and for examining pure data in conjunction with a core dump.
965
966 @item -se @var{file}
967 @cindex @code{--se}
968 Read symbol table from file @var{file} and use it as the executable
969 file.
970
971 @item -core @var{file}
972 @itemx -c @var{file}
973 @cindex @code{--core}
974 @cindex @code{-c}
975 Use file @var{file} as a core dump to examine.
976
977 @item -pid @var{number}
978 @itemx -p @var{number}
979 @cindex @code{--pid}
980 @cindex @code{-p}
981 Connect to process ID @var{number}, as with the @code{attach} command.
982
983 @item -command @var{file}
984 @itemx -x @var{file}
985 @cindex @code{--command}
986 @cindex @code{-x}
987 Execute commands from file @var{file}. The contents of this file is
988 evaluated exactly as the @code{source} command would.
989 @xref{Command Files,, Command files}.
990
991 @item -eval-command @var{command}
992 @itemx -ex @var{command}
993 @cindex @code{--eval-command}
994 @cindex @code{-ex}
995 Execute a single @value{GDBN} command.
996
997 This option may be used multiple times to call multiple commands. It may
998 also be interleaved with @samp{-command} as required.
999
1000 @smallexample
1001 @value{GDBP} -ex 'target sim' -ex 'load' \
1002 -x setbreakpoints -ex 'run' a.out
1003 @end smallexample
1004
1005 @item -init-command @var{file}
1006 @itemx -ix @var{file}
1007 @cindex @code{--init-command}
1008 @cindex @code{-ix}
1009 Execute commands from file @var{file} before loading the inferior (but
1010 after loading gdbinit files).
1011 @xref{Startup}.
1012
1013 @item -init-eval-command @var{command}
1014 @itemx -iex @var{command}
1015 @cindex @code{--init-eval-command}
1016 @cindex @code{-iex}
1017 Execute a single @value{GDBN} command before loading the inferior (but
1018 after loading gdbinit files).
1019 @xref{Startup}.
1020
1021 @item -directory @var{directory}
1022 @itemx -d @var{directory}
1023 @cindex @code{--directory}
1024 @cindex @code{-d}
1025 Add @var{directory} to the path to search for source and script files.
1026
1027 @item -r
1028 @itemx -readnow
1029 @cindex @code{--readnow}
1030 @cindex @code{-r}
1031 Read each symbol file's entire symbol table immediately, rather than
1032 the default, which is to read it incrementally as it is needed.
1033 This makes startup slower, but makes future operations faster.
1034
1035 @end table
1036
1037 @node Mode Options
1038 @subsection Choosing Modes
1039
1040 You can run @value{GDBN} in various alternative modes---for example, in
1041 batch mode or quiet mode.
1042
1043 @table @code
1044 @anchor{-nx}
1045 @item -nx
1046 @itemx -n
1047 @cindex @code{--nx}
1048 @cindex @code{-n}
1049 Do not execute commands found in any initialization file.
1050 There are three init files, loaded in the following order:
1051
1052 @table @code
1053 @item @file{system.gdbinit}
1054 This is the system-wide init file.
1055 Its location is specified with the @code{--with-system-gdbinit}
1056 configure option (@pxref{System-wide configuration}).
1057 It is loaded first when @value{GDBN} starts, before command line options
1058 have been processed.
1059 @item @file{~/.gdbinit}
1060 This is the init file in your home directory.
1061 It is loaded next, after @file{system.gdbinit}, and before
1062 command options have been processed.
1063 @item @file{./.gdbinit}
1064 This is the init file in the current directory.
1065 It is loaded last, after command line options other than @code{-x} and
1066 @code{-ex} have been processed. Command line options @code{-x} and
1067 @code{-ex} are processed last, after @file{./.gdbinit} has been loaded.
1068 @end table
1069
1070 For further documentation on startup processing, @xref{Startup}.
1071 For documentation on how to write command files,
1072 @xref{Command Files,,Command Files}.
1073
1074 @anchor{-nh}
1075 @item -nh
1076 @cindex @code{--nh}
1077 Do not execute commands found in @file{~/.gdbinit}, the init file
1078 in your home directory.
1079 @xref{Startup}.
1080
1081 @item -quiet
1082 @itemx -silent
1083 @itemx -q
1084 @cindex @code{--quiet}
1085 @cindex @code{--silent}
1086 @cindex @code{-q}
1087 ``Quiet''. Do not print the introductory and copyright messages. These
1088 messages are also suppressed in batch mode.
1089
1090 @item -batch
1091 @cindex @code{--batch}
1092 Run in batch mode. Exit with status @code{0} after processing all the
1093 command files specified with @samp{-x} (and all commands from
1094 initialization files, if not inhibited with @samp{-n}). Exit with
1095 nonzero status if an error occurs in executing the @value{GDBN} commands
1096 in the command files. Batch mode also disables pagination, sets unlimited
1097 terminal width and height @pxref{Screen Size}, and acts as if @kbd{set confirm
1098 off} were in effect (@pxref{Messages/Warnings}).
1099
1100 Batch mode may be useful for running @value{GDBN} as a filter, for
1101 example to download and run a program on another computer; in order to
1102 make this more useful, the message
1103
1104 @smallexample
1105 Program exited normally.
1106 @end smallexample
1107
1108 @noindent
1109 (which is ordinarily issued whenever a program running under
1110 @value{GDBN} control terminates) is not issued when running in batch
1111 mode.
1112
1113 @item -batch-silent
1114 @cindex @code{--batch-silent}
1115 Run in batch mode exactly like @samp{-batch}, but totally silently. All
1116 @value{GDBN} output to @code{stdout} is prevented (@code{stderr} is
1117 unaffected). This is much quieter than @samp{-silent} and would be useless
1118 for an interactive session.
1119
1120 This is particularly useful when using targets that give @samp{Loading section}
1121 messages, for example.
1122
1123 Note that targets that give their output via @value{GDBN}, as opposed to
1124 writing directly to @code{stdout}, will also be made silent.
1125
1126 @item -return-child-result
1127 @cindex @code{--return-child-result}
1128 The return code from @value{GDBN} will be the return code from the child
1129 process (the process being debugged), with the following exceptions:
1130
1131 @itemize @bullet
1132 @item
1133 @value{GDBN} exits abnormally. E.g., due to an incorrect argument or an
1134 internal error. In this case the exit code is the same as it would have been
1135 without @samp{-return-child-result}.
1136 @item
1137 The user quits with an explicit value. E.g., @samp{quit 1}.
1138 @item
1139 The child process never runs, or is not allowed to terminate, in which case
1140 the exit code will be -1.
1141 @end itemize
1142
1143 This option is useful in conjunction with @samp{-batch} or @samp{-batch-silent},
1144 when @value{GDBN} is being used as a remote program loader or simulator
1145 interface.
1146
1147 @item -nowindows
1148 @itemx -nw
1149 @cindex @code{--nowindows}
1150 @cindex @code{-nw}
1151 ``No windows''. If @value{GDBN} comes with a graphical user interface
1152 (GUI) built in, then this option tells @value{GDBN} to only use the command-line
1153 interface. If no GUI is available, this option has no effect.
1154
1155 @item -windows
1156 @itemx -w
1157 @cindex @code{--windows}
1158 @cindex @code{-w}
1159 If @value{GDBN} includes a GUI, then this option requires it to be
1160 used if possible.
1161
1162 @item -cd @var{directory}
1163 @cindex @code{--cd}
1164 Run @value{GDBN} using @var{directory} as its working directory,
1165 instead of the current directory.
1166
1167 @item -data-directory @var{directory}
1168 @itemx -D @var{directory}
1169 @cindex @code{--data-directory}
1170 @cindex @code{-D}
1171 Run @value{GDBN} using @var{directory} as its data directory.
1172 The data directory is where @value{GDBN} searches for its
1173 auxiliary files. @xref{Data Files}.
1174
1175 @item -fullname
1176 @itemx -f
1177 @cindex @code{--fullname}
1178 @cindex @code{-f}
1179 @sc{gnu} Emacs sets this option when it runs @value{GDBN} as a
1180 subprocess. It tells @value{GDBN} to output the full file name and line
1181 number in a standard, recognizable fashion each time a stack frame is
1182 displayed (which includes each time your program stops). This
1183 recognizable format looks like two @samp{\032} characters, followed by
1184 the file name, line number and character position separated by colons,
1185 and a newline. The Emacs-to-@value{GDBN} interface program uses the two
1186 @samp{\032} characters as a signal to display the source code for the
1187 frame.
1188
1189 @item -annotate @var{level}
1190 @cindex @code{--annotate}
1191 This option sets the @dfn{annotation level} inside @value{GDBN}. Its
1192 effect is identical to using @samp{set annotate @var{level}}
1193 (@pxref{Annotations}). The annotation @var{level} controls how much
1194 information @value{GDBN} prints together with its prompt, values of
1195 expressions, source lines, and other types of output. Level 0 is the
1196 normal, level 1 is for use when @value{GDBN} is run as a subprocess of
1197 @sc{gnu} Emacs, level 3 is the maximum annotation suitable for programs
1198 that control @value{GDBN}, and level 2 has been deprecated.
1199
1200 The annotation mechanism has largely been superseded by @sc{gdb/mi}
1201 (@pxref{GDB/MI}).
1202
1203 @item --args
1204 @cindex @code{--args}
1205 Change interpretation of command line so that arguments following the
1206 executable file are passed as command line arguments to the inferior.
1207 This option stops option processing.
1208
1209 @item -baud @var{bps}
1210 @itemx -b @var{bps}
1211 @cindex @code{--baud}
1212 @cindex @code{-b}
1213 Set the line speed (baud rate or bits per second) of any serial
1214 interface used by @value{GDBN} for remote debugging.
1215
1216 @item -l @var{timeout}
1217 @cindex @code{-l}
1218 Set the timeout (in seconds) of any communication used by @value{GDBN}
1219 for remote debugging.
1220
1221 @item -tty @var{device}
1222 @itemx -t @var{device}
1223 @cindex @code{--tty}
1224 @cindex @code{-t}
1225 Run using @var{device} for your program's standard input and output.
1226 @c FIXME: kingdon thinks there is more to -tty. Investigate.
1227
1228 @c resolve the situation of these eventually
1229 @item -tui
1230 @cindex @code{--tui}
1231 Activate the @dfn{Text User Interface} when starting. The Text User
1232 Interface manages several text windows on the terminal, showing
1233 source, assembly, registers and @value{GDBN} command outputs
1234 (@pxref{TUI, ,@value{GDBN} Text User Interface}). Do not use this
1235 option if you run @value{GDBN} from Emacs (@pxref{Emacs, ,
1236 Using @value{GDBN} under @sc{gnu} Emacs}).
1237
1238 @item -interpreter @var{interp}
1239 @cindex @code{--interpreter}
1240 Use the interpreter @var{interp} for interface with the controlling
1241 program or device. This option is meant to be set by programs which
1242 communicate with @value{GDBN} using it as a back end.
1243 @xref{Interpreters, , Command Interpreters}.
1244
1245 @samp{--interpreter=mi} (or @samp{--interpreter=mi2}) causes
1246 @value{GDBN} to use the @dfn{@sc{gdb/mi} interface} (@pxref{GDB/MI, ,
1247 The @sc{gdb/mi} Interface}) included since @value{GDBN} version 6.0. The
1248 previous @sc{gdb/mi} interface, included in @value{GDBN} version 5.3 and
1249 selected with @samp{--interpreter=mi1}, is deprecated. Earlier
1250 @sc{gdb/mi} interfaces are no longer supported.
1251
1252 @item -write
1253 @cindex @code{--write}
1254 Open the executable and core files for both reading and writing. This
1255 is equivalent to the @samp{set write on} command inside @value{GDBN}
1256 (@pxref{Patching}).
1257
1258 @item -statistics
1259 @cindex @code{--statistics}
1260 This option causes @value{GDBN} to print statistics about time and
1261 memory usage after it completes each command and returns to the prompt.
1262
1263 @item -version
1264 @cindex @code{--version}
1265 This option causes @value{GDBN} to print its version number and
1266 no-warranty blurb, and exit.
1267
1268 @item -configuration
1269 @cindex @code{--configuration}
1270 This option causes @value{GDBN} to print details about its build-time
1271 configuration parameters, and then exit. These details can be
1272 important when reporting @value{GDBN} bugs (@pxref{GDB Bugs}).
1273
1274 @end table
1275
1276 @node Startup
1277 @subsection What @value{GDBN} Does During Startup
1278 @cindex @value{GDBN} startup
1279
1280 Here's the description of what @value{GDBN} does during session startup:
1281
1282 @enumerate
1283 @item
1284 Sets up the command interpreter as specified by the command line
1285 (@pxref{Mode Options, interpreter}).
1286
1287 @item
1288 @cindex init file
1289 Reads the system-wide @dfn{init file} (if @option{--with-system-gdbinit} was
1290 used when building @value{GDBN}; @pxref{System-wide configuration,
1291 ,System-wide configuration and settings}) and executes all the commands in
1292 that file.
1293
1294 @anchor{Home Directory Init File}
1295 @item
1296 Reads the init file (if any) in your home directory@footnote{On
1297 DOS/Windows systems, the home directory is the one pointed to by the
1298 @code{HOME} environment variable.} and executes all the commands in
1299 that file.
1300
1301 @anchor{Option -init-eval-command}
1302 @item
1303 Executes commands and command files specified by the @samp{-iex} and
1304 @samp{-ix} options in their specified order. Usually you should use the
1305 @samp{-ex} and @samp{-x} options instead, but this way you can apply
1306 settings before @value{GDBN} init files get executed and before inferior
1307 gets loaded.
1308
1309 @item
1310 Processes command line options and operands.
1311
1312 @anchor{Init File in the Current Directory during Startup}
1313 @item
1314 Reads and executes the commands from init file (if any) in the current
1315 working directory as long as @samp{set auto-load local-gdbinit} is set to
1316 @samp{on} (@pxref{Init File in the Current Directory}).
1317 This is only done if the current directory is
1318 different from your home directory. Thus, you can have more than one
1319 init file, one generic in your home directory, and another, specific
1320 to the program you are debugging, in the directory where you invoke
1321 @value{GDBN}.
1322
1323 @item
1324 If the command line specified a program to debug, or a process to
1325 attach to, or a core file, @value{GDBN} loads any auto-loaded
1326 scripts provided for the program or for its loaded shared libraries.
1327 @xref{Auto-loading}.
1328
1329 If you wish to disable the auto-loading during startup,
1330 you must do something like the following:
1331
1332 @smallexample
1333 $ gdb -iex "set auto-load python-scripts off" myprogram
1334 @end smallexample
1335
1336 Option @samp{-ex} does not work because the auto-loading is then turned
1337 off too late.
1338
1339 @item
1340 Executes commands and command files specified by the @samp{-ex} and
1341 @samp{-x} options in their specified order. @xref{Command Files}, for
1342 more details about @value{GDBN} command files.
1343
1344 @item
1345 Reads the command history recorded in the @dfn{history file}.
1346 @xref{Command History}, for more details about the command history and the
1347 files where @value{GDBN} records it.
1348 @end enumerate
1349
1350 Init files use the same syntax as @dfn{command files} (@pxref{Command
1351 Files}) and are processed by @value{GDBN} in the same way. The init
1352 file in your home directory can set options (such as @samp{set
1353 complaints}) that affect subsequent processing of command line options
1354 and operands. Init files are not executed if you use the @samp{-nx}
1355 option (@pxref{Mode Options, ,Choosing Modes}).
1356
1357 To display the list of init files loaded by gdb at startup, you
1358 can use @kbd{gdb --help}.
1359
1360 @cindex init file name
1361 @cindex @file{.gdbinit}
1362 @cindex @file{gdb.ini}
1363 The @value{GDBN} init files are normally called @file{.gdbinit}.
1364 The DJGPP port of @value{GDBN} uses the name @file{gdb.ini}, due to
1365 the limitations of file names imposed by DOS filesystems. The Windows
1366 port of @value{GDBN} uses the standard name, but if it finds a
1367 @file{gdb.ini} file in your home directory, it warns you about that
1368 and suggests to rename the file to the standard name.
1369
1370
1371 @node Quitting GDB
1372 @section Quitting @value{GDBN}
1373 @cindex exiting @value{GDBN}
1374 @cindex leaving @value{GDBN}
1375
1376 @table @code
1377 @kindex quit @r{[}@var{expression}@r{]}
1378 @kindex q @r{(@code{quit})}
1379 @item quit @r{[}@var{expression}@r{]}
1380 @itemx q
1381 To exit @value{GDBN}, use the @code{quit} command (abbreviated
1382 @code{q}), or type an end-of-file character (usually @kbd{Ctrl-d}). If you
1383 do not supply @var{expression}, @value{GDBN} will terminate normally;
1384 otherwise it will terminate using the result of @var{expression} as the
1385 error code.
1386 @end table
1387
1388 @cindex interrupt
1389 An interrupt (often @kbd{Ctrl-c}) does not exit from @value{GDBN}, but rather
1390 terminates the action of any @value{GDBN} command that is in progress and
1391 returns to @value{GDBN} command level. It is safe to type the interrupt
1392 character at any time because @value{GDBN} does not allow it to take effect
1393 until a time when it is safe.
1394
1395 If you have been using @value{GDBN} to control an attached process or
1396 device, you can release it with the @code{detach} command
1397 (@pxref{Attach, ,Debugging an Already-running Process}).
1398
1399 @node Shell Commands
1400 @section Shell Commands
1401
1402 If you need to execute occasional shell commands during your
1403 debugging session, there is no need to leave or suspend @value{GDBN}; you can
1404 just use the @code{shell} command.
1405
1406 @table @code
1407 @kindex shell
1408 @kindex !
1409 @cindex shell escape
1410 @item shell @var{command-string}
1411 @itemx !@var{command-string}
1412 Invoke a standard shell to execute @var{command-string}.
1413 Note that no space is needed between @code{!} and @var{command-string}.
1414 If it exists, the environment variable @code{SHELL} determines which
1415 shell to run. Otherwise @value{GDBN} uses the default shell
1416 (@file{/bin/sh} on Unix systems, @file{COMMAND.COM} on MS-DOS, etc.).
1417 @end table
1418
1419 The utility @code{make} is often needed in development environments.
1420 You do not have to use the @code{shell} command for this purpose in
1421 @value{GDBN}:
1422
1423 @table @code
1424 @kindex make
1425 @cindex calling make
1426 @item make @var{make-args}
1427 Execute the @code{make} program with the specified
1428 arguments. This is equivalent to @samp{shell make @var{make-args}}.
1429 @end table
1430
1431 @node Logging Output
1432 @section Logging Output
1433 @cindex logging @value{GDBN} output
1434 @cindex save @value{GDBN} output to a file
1435
1436 You may want to save the output of @value{GDBN} commands to a file.
1437 There are several commands to control @value{GDBN}'s logging.
1438
1439 @table @code
1440 @kindex set logging
1441 @item set logging on
1442 Enable logging.
1443 @item set logging off
1444 Disable logging.
1445 @cindex logging file name
1446 @item set logging file @var{file}
1447 Change the name of the current logfile. The default logfile is @file{gdb.txt}.
1448 @item set logging overwrite [on|off]
1449 By default, @value{GDBN} will append to the logfile. Set @code{overwrite} if
1450 you want @code{set logging on} to overwrite the logfile instead.
1451 @item set logging redirect [on|off]
1452 By default, @value{GDBN} output will go to both the terminal and the logfile.
1453 Set @code{redirect} if you want output to go only to the log file.
1454 @kindex show logging
1455 @item show logging
1456 Show the current values of the logging settings.
1457 @end table
1458
1459 @node Commands
1460 @chapter @value{GDBN} Commands
1461
1462 You can abbreviate a @value{GDBN} command to the first few letters of the command
1463 name, if that abbreviation is unambiguous; and you can repeat certain
1464 @value{GDBN} commands by typing just @key{RET}. You can also use the @key{TAB}
1465 key to get @value{GDBN} to fill out the rest of a word in a command (or to
1466 show you the alternatives available, if there is more than one possibility).
1467
1468 @menu
1469 * Command Syntax:: How to give commands to @value{GDBN}
1470 * Completion:: Command completion
1471 * Help:: How to ask @value{GDBN} for help
1472 @end menu
1473
1474 @node Command Syntax
1475 @section Command Syntax
1476
1477 A @value{GDBN} command is a single line of input. There is no limit on
1478 how long it can be. It starts with a command name, which is followed by
1479 arguments whose meaning depends on the command name. For example, the
1480 command @code{step} accepts an argument which is the number of times to
1481 step, as in @samp{step 5}. You can also use the @code{step} command
1482 with no arguments. Some commands do not allow any arguments.
1483
1484 @cindex abbreviation
1485 @value{GDBN} command names may always be truncated if that abbreviation is
1486 unambiguous. Other possible command abbreviations are listed in the
1487 documentation for individual commands. In some cases, even ambiguous
1488 abbreviations are allowed; for example, @code{s} is specially defined as
1489 equivalent to @code{step} even though there are other commands whose
1490 names start with @code{s}. You can test abbreviations by using them as
1491 arguments to the @code{help} command.
1492
1493 @cindex repeating commands
1494 @kindex RET @r{(repeat last command)}
1495 A blank line as input to @value{GDBN} (typing just @key{RET}) means to
1496 repeat the previous command. Certain commands (for example, @code{run})
1497 will not repeat this way; these are commands whose unintentional
1498 repetition might cause trouble and which you are unlikely to want to
1499 repeat. User-defined commands can disable this feature; see
1500 @ref{Define, dont-repeat}.
1501
1502 The @code{list} and @code{x} commands, when you repeat them with
1503 @key{RET}, construct new arguments rather than repeating
1504 exactly as typed. This permits easy scanning of source or memory.
1505
1506 @value{GDBN} can also use @key{RET} in another way: to partition lengthy
1507 output, in a way similar to the common utility @code{more}
1508 (@pxref{Screen Size,,Screen Size}). Since it is easy to press one
1509 @key{RET} too many in this situation, @value{GDBN} disables command
1510 repetition after any command that generates this sort of display.
1511
1512 @kindex # @r{(a comment)}
1513 @cindex comment
1514 Any text from a @kbd{#} to the end of the line is a comment; it does
1515 nothing. This is useful mainly in command files (@pxref{Command
1516 Files,,Command Files}).
1517
1518 @cindex repeating command sequences
1519 @kindex Ctrl-o @r{(operate-and-get-next)}
1520 The @kbd{Ctrl-o} binding is useful for repeating a complex sequence of
1521 commands. This command accepts the current line, like @key{RET}, and
1522 then fetches the next line relative to the current line from the history
1523 for editing.
1524
1525 @node Completion
1526 @section Command Completion
1527
1528 @cindex completion
1529 @cindex word completion
1530 @value{GDBN} can fill in the rest of a word in a command for you, if there is
1531 only one possibility; it can also show you what the valid possibilities
1532 are for the next word in a command, at any time. This works for @value{GDBN}
1533 commands, @value{GDBN} subcommands, and the names of symbols in your program.
1534
1535 Press the @key{TAB} key whenever you want @value{GDBN} to fill out the rest
1536 of a word. If there is only one possibility, @value{GDBN} fills in the
1537 word, and waits for you to finish the command (or press @key{RET} to
1538 enter it). For example, if you type
1539
1540 @c FIXME "@key" does not distinguish its argument sufficiently to permit
1541 @c complete accuracy in these examples; space introduced for clarity.
1542 @c If texinfo enhancements make it unnecessary, it would be nice to
1543 @c replace " @key" by "@key" in the following...
1544 @smallexample
1545 (@value{GDBP}) info bre @key{TAB}
1546 @end smallexample
1547
1548 @noindent
1549 @value{GDBN} fills in the rest of the word @samp{breakpoints}, since that is
1550 the only @code{info} subcommand beginning with @samp{bre}:
1551
1552 @smallexample
1553 (@value{GDBP}) info breakpoints
1554 @end smallexample
1555
1556 @noindent
1557 You can either press @key{RET} at this point, to run the @code{info
1558 breakpoints} command, or backspace and enter something else, if
1559 @samp{breakpoints} does not look like the command you expected. (If you
1560 were sure you wanted @code{info breakpoints} in the first place, you
1561 might as well just type @key{RET} immediately after @samp{info bre},
1562 to exploit command abbreviations rather than command completion).
1563
1564 If there is more than one possibility for the next word when you press
1565 @key{TAB}, @value{GDBN} sounds a bell. You can either supply more
1566 characters and try again, or just press @key{TAB} a second time;
1567 @value{GDBN} displays all the possible completions for that word. For
1568 example, you might want to set a breakpoint on a subroutine whose name
1569 begins with @samp{make_}, but when you type @kbd{b make_@key{TAB}} @value{GDBN}
1570 just sounds the bell. Typing @key{TAB} again displays all the
1571 function names in your program that begin with those characters, for
1572 example:
1573
1574 @smallexample
1575 (@value{GDBP}) b make_ @key{TAB}
1576 @exdent @value{GDBN} sounds bell; press @key{TAB} again, to see:
1577 make_a_section_from_file make_environ
1578 make_abs_section make_function_type
1579 make_blockvector make_pointer_type
1580 make_cleanup make_reference_type
1581 make_command make_symbol_completion_list
1582 (@value{GDBP}) b make_
1583 @end smallexample
1584
1585 @noindent
1586 After displaying the available possibilities, @value{GDBN} copies your
1587 partial input (@samp{b make_} in the example) so you can finish the
1588 command.
1589
1590 If you just want to see the list of alternatives in the first place, you
1591 can press @kbd{M-?} rather than pressing @key{TAB} twice. @kbd{M-?}
1592 means @kbd{@key{META} ?}. You can type this either by holding down a
1593 key designated as the @key{META} shift on your keyboard (if there is
1594 one) while typing @kbd{?}, or as @key{ESC} followed by @kbd{?}.
1595
1596 If the number of possible completions is large, @value{GDBN} will
1597 print as much of the list as it has collected, as well as a message
1598 indicating that the list may be truncated.
1599
1600 @smallexample
1601 (@value{GDBP}) b m@key{TAB}@key{TAB}
1602 main
1603 <... the rest of the possible completions ...>
1604 *** List may be truncated, max-completions reached. ***
1605 (@value{GDBP}) b m
1606 @end smallexample
1607
1608 @noindent
1609 This behavior can be controlled with the following commands:
1610
1611 @table @code
1612 @kindex set max-completions
1613 @item set max-completions @var{limit}
1614 @itemx set max-completions unlimited
1615 Set the maximum number of completion candidates. @value{GDBN} will
1616 stop looking for more completions once it collects this many candidates.
1617 This is useful when completing on things like function names as collecting
1618 all the possible candidates can be time consuming.
1619 The default value is 200. A value of zero disables tab-completion.
1620 Note that setting either no limit or a very large limit can make
1621 completion slow.
1622 @kindex show max-completions
1623 @item show max-completions
1624 Show the maximum number of candidates that @value{GDBN} will collect and show
1625 during completion.
1626 @end table
1627
1628 @cindex quotes in commands
1629 @cindex completion of quoted strings
1630 Sometimes the string you need, while logically a ``word'', may contain
1631 parentheses or other characters that @value{GDBN} normally excludes from
1632 its notion of a word. To permit word completion to work in this
1633 situation, you may enclose words in @code{'} (single quote marks) in
1634 @value{GDBN} commands.
1635
1636 The most likely situation where you might need this is in typing the
1637 name of a C@t{++} function. This is because C@t{++} allows function
1638 overloading (multiple definitions of the same function, distinguished
1639 by argument type). For example, when you want to set a breakpoint you
1640 may need to distinguish whether you mean the version of @code{name}
1641 that takes an @code{int} parameter, @code{name(int)}, or the version
1642 that takes a @code{float} parameter, @code{name(float)}. To use the
1643 word-completion facilities in this situation, type a single quote
1644 @code{'} at the beginning of the function name. This alerts
1645 @value{GDBN} that it may need to consider more information than usual
1646 when you press @key{TAB} or @kbd{M-?} to request word completion:
1647
1648 @smallexample
1649 (@value{GDBP}) b 'bubble( @kbd{M-?}
1650 bubble(double,double) bubble(int,int)
1651 (@value{GDBP}) b 'bubble(
1652 @end smallexample
1653
1654 In some cases, @value{GDBN} can tell that completing a name requires using
1655 quotes. When this happens, @value{GDBN} inserts the quote for you (while
1656 completing as much as it can) if you do not type the quote in the first
1657 place:
1658
1659 @smallexample
1660 (@value{GDBP}) b bub @key{TAB}
1661 @exdent @value{GDBN} alters your input line to the following, and rings a bell:
1662 (@value{GDBP}) b 'bubble(
1663 @end smallexample
1664
1665 @noindent
1666 In general, @value{GDBN} can tell that a quote is needed (and inserts it) if
1667 you have not yet started typing the argument list when you ask for
1668 completion on an overloaded symbol.
1669
1670 For more information about overloaded functions, see @ref{C Plus Plus
1671 Expressions, ,C@t{++} Expressions}. You can use the command @code{set
1672 overload-resolution off} to disable overload resolution;
1673 see @ref{Debugging C Plus Plus, ,@value{GDBN} Features for C@t{++}}.
1674
1675 @cindex completion of structure field names
1676 @cindex structure field name completion
1677 @cindex completion of union field names
1678 @cindex union field name completion
1679 When completing in an expression which looks up a field in a
1680 structure, @value{GDBN} also tries@footnote{The completer can be
1681 confused by certain kinds of invalid expressions. Also, it only
1682 examines the static type of the expression, not the dynamic type.} to
1683 limit completions to the field names available in the type of the
1684 left-hand-side:
1685
1686 @smallexample
1687 (@value{GDBP}) p gdb_stdout.@kbd{M-?}
1688 magic to_fputs to_rewind
1689 to_data to_isatty to_write
1690 to_delete to_put to_write_async_safe
1691 to_flush to_read
1692 @end smallexample
1693
1694 @noindent
1695 This is because the @code{gdb_stdout} is a variable of the type
1696 @code{struct ui_file} that is defined in @value{GDBN} sources as
1697 follows:
1698
1699 @smallexample
1700 struct ui_file
1701 @{
1702 int *magic;
1703 ui_file_flush_ftype *to_flush;
1704 ui_file_write_ftype *to_write;
1705 ui_file_write_async_safe_ftype *to_write_async_safe;
1706 ui_file_fputs_ftype *to_fputs;
1707 ui_file_read_ftype *to_read;
1708 ui_file_delete_ftype *to_delete;
1709 ui_file_isatty_ftype *to_isatty;
1710 ui_file_rewind_ftype *to_rewind;
1711 ui_file_put_ftype *to_put;
1712 void *to_data;
1713 @}
1714 @end smallexample
1715
1716
1717 @node Help
1718 @section Getting Help
1719 @cindex online documentation
1720 @kindex help
1721
1722 You can always ask @value{GDBN} itself for information on its commands,
1723 using the command @code{help}.
1724
1725 @table @code
1726 @kindex h @r{(@code{help})}
1727 @item help
1728 @itemx h
1729 You can use @code{help} (abbreviated @code{h}) with no arguments to
1730 display a short list of named classes of commands:
1731
1732 @smallexample
1733 (@value{GDBP}) help
1734 List of classes of commands:
1735
1736 aliases -- Aliases of other commands
1737 breakpoints -- Making program stop at certain points
1738 data -- Examining data
1739 files -- Specifying and examining files
1740 internals -- Maintenance commands
1741 obscure -- Obscure features
1742 running -- Running the program
1743 stack -- Examining the stack
1744 status -- Status inquiries
1745 support -- Support facilities
1746 tracepoints -- Tracing of program execution without
1747 stopping the program
1748 user-defined -- User-defined commands
1749
1750 Type "help" followed by a class name for a list of
1751 commands in that class.
1752 Type "help" followed by command name for full
1753 documentation.
1754 Command name abbreviations are allowed if unambiguous.
1755 (@value{GDBP})
1756 @end smallexample
1757 @c the above line break eliminates huge line overfull...
1758
1759 @item help @var{class}
1760 Using one of the general help classes as an argument, you can get a
1761 list of the individual commands in that class. For example, here is the
1762 help display for the class @code{status}:
1763
1764 @smallexample
1765 (@value{GDBP}) help status
1766 Status inquiries.
1767
1768 List of commands:
1769
1770 @c Line break in "show" line falsifies real output, but needed
1771 @c to fit in smallbook page size.
1772 info -- Generic command for showing things
1773 about the program being debugged
1774 show -- Generic command for showing things
1775 about the debugger
1776
1777 Type "help" followed by command name for full
1778 documentation.
1779 Command name abbreviations are allowed if unambiguous.
1780 (@value{GDBP})
1781 @end smallexample
1782
1783 @item help @var{command}
1784 With a command name as @code{help} argument, @value{GDBN} displays a
1785 short paragraph on how to use that command.
1786
1787 @kindex apropos
1788 @item apropos @var{args}
1789 The @code{apropos} command searches through all of the @value{GDBN}
1790 commands, and their documentation, for the regular expression specified in
1791 @var{args}. It prints out all matches found. For example:
1792
1793 @smallexample
1794 apropos alias
1795 @end smallexample
1796
1797 @noindent
1798 results in:
1799
1800 @smallexample
1801 @c @group
1802 alias -- Define a new command that is an alias of an existing command
1803 aliases -- Aliases of other commands
1804 d -- Delete some breakpoints or auto-display expressions
1805 del -- Delete some breakpoints or auto-display expressions
1806 delete -- Delete some breakpoints or auto-display expressions
1807 @c @end group
1808 @end smallexample
1809
1810 @kindex complete
1811 @item complete @var{args}
1812 The @code{complete @var{args}} command lists all the possible completions
1813 for the beginning of a command. Use @var{args} to specify the beginning of the
1814 command you want completed. For example:
1815
1816 @smallexample
1817 complete i
1818 @end smallexample
1819
1820 @noindent results in:
1821
1822 @smallexample
1823 @group
1824 if
1825 ignore
1826 info
1827 inspect
1828 @end group
1829 @end smallexample
1830
1831 @noindent This is intended for use by @sc{gnu} Emacs.
1832 @end table
1833
1834 In addition to @code{help}, you can use the @value{GDBN} commands @code{info}
1835 and @code{show} to inquire about the state of your program, or the state
1836 of @value{GDBN} itself. Each command supports many topics of inquiry; this
1837 manual introduces each of them in the appropriate context. The listings
1838 under @code{info} and under @code{show} in the Command, Variable, and
1839 Function Index point to all the sub-commands. @xref{Command and Variable
1840 Index}.
1841
1842 @c @group
1843 @table @code
1844 @kindex info
1845 @kindex i @r{(@code{info})}
1846 @item info
1847 This command (abbreviated @code{i}) is for describing the state of your
1848 program. For example, you can show the arguments passed to a function
1849 with @code{info args}, list the registers currently in use with @code{info
1850 registers}, or list the breakpoints you have set with @code{info breakpoints}.
1851 You can get a complete list of the @code{info} sub-commands with
1852 @w{@code{help info}}.
1853
1854 @kindex set
1855 @item set
1856 You can assign the result of an expression to an environment variable with
1857 @code{set}. For example, you can set the @value{GDBN} prompt to a $-sign with
1858 @code{set prompt $}.
1859
1860 @kindex show
1861 @item show
1862 In contrast to @code{info}, @code{show} is for describing the state of
1863 @value{GDBN} itself.
1864 You can change most of the things you can @code{show}, by using the
1865 related command @code{set}; for example, you can control what number
1866 system is used for displays with @code{set radix}, or simply inquire
1867 which is currently in use with @code{show radix}.
1868
1869 @kindex info set
1870 To display all the settable parameters and their current
1871 values, you can use @code{show} with no arguments; you may also use
1872 @code{info set}. Both commands produce the same display.
1873 @c FIXME: "info set" violates the rule that "info" is for state of
1874 @c FIXME...program. Ck w/ GNU: "info set" to be called something else,
1875 @c FIXME...or change desc of rule---eg "state of prog and debugging session"?
1876 @end table
1877 @c @end group
1878
1879 Here are several miscellaneous @code{show} subcommands, all of which are
1880 exceptional in lacking corresponding @code{set} commands:
1881
1882 @table @code
1883 @kindex show version
1884 @cindex @value{GDBN} version number
1885 @item show version
1886 Show what version of @value{GDBN} is running. You should include this
1887 information in @value{GDBN} bug-reports. If multiple versions of
1888 @value{GDBN} are in use at your site, you may need to determine which
1889 version of @value{GDBN} you are running; as @value{GDBN} evolves, new
1890 commands are introduced, and old ones may wither away. Also, many
1891 system vendors ship variant versions of @value{GDBN}, and there are
1892 variant versions of @value{GDBN} in @sc{gnu}/Linux distributions as well.
1893 The version number is the same as the one announced when you start
1894 @value{GDBN}.
1895
1896 @kindex show copying
1897 @kindex info copying
1898 @cindex display @value{GDBN} copyright
1899 @item show copying
1900 @itemx info copying
1901 Display information about permission for copying @value{GDBN}.
1902
1903 @kindex show warranty
1904 @kindex info warranty
1905 @item show warranty
1906 @itemx info warranty
1907 Display the @sc{gnu} ``NO WARRANTY'' statement, or a warranty,
1908 if your version of @value{GDBN} comes with one.
1909
1910 @kindex show configuration
1911 @item show configuration
1912 Display detailed information about the way @value{GDBN} was configured
1913 when it was built. This displays the optional arguments passed to the
1914 @file{configure} script and also configuration parameters detected
1915 automatically by @command{configure}. When reporting a @value{GDBN}
1916 bug (@pxref{GDB Bugs}), it is important to include this information in
1917 your report.
1918
1919 @end table
1920
1921 @node Running
1922 @chapter Running Programs Under @value{GDBN}
1923
1924 When you run a program under @value{GDBN}, you must first generate
1925 debugging information when you compile it.
1926
1927 You may start @value{GDBN} with its arguments, if any, in an environment
1928 of your choice. If you are doing native debugging, you may redirect
1929 your program's input and output, debug an already running process, or
1930 kill a child process.
1931
1932 @menu
1933 * Compilation:: Compiling for debugging
1934 * Starting:: Starting your program
1935 * Arguments:: Your program's arguments
1936 * Environment:: Your program's environment
1937
1938 * Working Directory:: Your program's working directory
1939 * Input/Output:: Your program's input and output
1940 * Attach:: Debugging an already-running process
1941 * Kill Process:: Killing the child process
1942
1943 * Inferiors and Programs:: Debugging multiple inferiors and programs
1944 * Threads:: Debugging programs with multiple threads
1945 * Forks:: Debugging forks
1946 * Checkpoint/Restart:: Setting a @emph{bookmark} to return to later
1947 @end menu
1948
1949 @node Compilation
1950 @section Compiling for Debugging
1951
1952 In order to debug a program effectively, you need to generate
1953 debugging information when you compile it. This debugging information
1954 is stored in the object file; it describes the data type of each
1955 variable or function and the correspondence between source line numbers
1956 and addresses in the executable code.
1957
1958 To request debugging information, specify the @samp{-g} option when you run
1959 the compiler.
1960
1961 Programs that are to be shipped to your customers are compiled with
1962 optimizations, using the @samp{-O} compiler option. However, some
1963 compilers are unable to handle the @samp{-g} and @samp{-O} options
1964 together. Using those compilers, you cannot generate optimized
1965 executables containing debugging information.
1966
1967 @value{NGCC}, the @sc{gnu} C/C@t{++} compiler, supports @samp{-g} with or
1968 without @samp{-O}, making it possible to debug optimized code. We
1969 recommend that you @emph{always} use @samp{-g} whenever you compile a
1970 program. You may think your program is correct, but there is no sense
1971 in pushing your luck. For more information, see @ref{Optimized Code}.
1972
1973 Older versions of the @sc{gnu} C compiler permitted a variant option
1974 @w{@samp{-gg}} for debugging information. @value{GDBN} no longer supports this
1975 format; if your @sc{gnu} C compiler has this option, do not use it.
1976
1977 @value{GDBN} knows about preprocessor macros and can show you their
1978 expansion (@pxref{Macros}). Most compilers do not include information
1979 about preprocessor macros in the debugging information if you specify
1980 the @option{-g} flag alone. Version 3.1 and later of @value{NGCC},
1981 the @sc{gnu} C compiler, provides macro information if you are using
1982 the DWARF debugging format, and specify the option @option{-g3}.
1983
1984 @xref{Debugging Options,,Options for Debugging Your Program or GCC,
1985 gcc.info, Using the @sc{gnu} Compiler Collection (GCC)}, for more
1986 information on @value{NGCC} options affecting debug information.
1987
1988 You will have the best debugging experience if you use the latest
1989 version of the DWARF debugging format that your compiler supports.
1990 DWARF is currently the most expressive and best supported debugging
1991 format in @value{GDBN}.
1992
1993 @need 2000
1994 @node Starting
1995 @section Starting your Program
1996 @cindex starting
1997 @cindex running
1998
1999 @table @code
2000 @kindex run
2001 @kindex r @r{(@code{run})}
2002 @item run
2003 @itemx r
2004 Use the @code{run} command to start your program under @value{GDBN}.
2005 You must first specify the program name with an argument to
2006 @value{GDBN} (@pxref{Invocation, ,Getting In and Out of
2007 @value{GDBN}}), or by using the @code{file} or @code{exec-file}
2008 command (@pxref{Files, ,Commands to Specify Files}).
2009
2010 @end table
2011
2012 If you are running your program in an execution environment that
2013 supports processes, @code{run} creates an inferior process and makes
2014 that process run your program. In some environments without processes,
2015 @code{run} jumps to the start of your program. Other targets,
2016 like @samp{remote}, are always running. If you get an error
2017 message like this one:
2018
2019 @smallexample
2020 The "remote" target does not support "run".
2021 Try "help target" or "continue".
2022 @end smallexample
2023
2024 @noindent
2025 then use @code{continue} to run your program. You may need @code{load}
2026 first (@pxref{load}).
2027
2028 The execution of a program is affected by certain information it
2029 receives from its superior. @value{GDBN} provides ways to specify this
2030 information, which you must do @emph{before} starting your program. (You
2031 can change it after starting your program, but such changes only affect
2032 your program the next time you start it.) This information may be
2033 divided into four categories:
2034
2035 @table @asis
2036 @item The @emph{arguments.}
2037 Specify the arguments to give your program as the arguments of the
2038 @code{run} command. If a shell is available on your target, the shell
2039 is used to pass the arguments, so that you may use normal conventions
2040 (such as wildcard expansion or variable substitution) in describing
2041 the arguments.
2042 In Unix systems, you can control which shell is used with the
2043 @code{SHELL} environment variable. If you do not define @code{SHELL},
2044 @value{GDBN} uses the default shell (@file{/bin/sh}). You can disable
2045 use of any shell with the @code{set startup-with-shell} command (see
2046 below for details).
2047
2048 @item The @emph{environment.}
2049 Your program normally inherits its environment from @value{GDBN}, but you can
2050 use the @value{GDBN} commands @code{set environment} and @code{unset
2051 environment} to change parts of the environment that affect
2052 your program. @xref{Environment, ,Your Program's Environment}.
2053
2054 @item The @emph{working directory.}
2055 Your program inherits its working directory from @value{GDBN}. You can set
2056 the @value{GDBN} working directory with the @code{cd} command in @value{GDBN}.
2057 @xref{Working Directory, ,Your Program's Working Directory}.
2058
2059 @item The @emph{standard input and output.}
2060 Your program normally uses the same device for standard input and
2061 standard output as @value{GDBN} is using. You can redirect input and output
2062 in the @code{run} command line, or you can use the @code{tty} command to
2063 set a different device for your program.
2064 @xref{Input/Output, ,Your Program's Input and Output}.
2065
2066 @cindex pipes
2067 @emph{Warning:} While input and output redirection work, you cannot use
2068 pipes to pass the output of the program you are debugging to another
2069 program; if you attempt this, @value{GDBN} is likely to wind up debugging the
2070 wrong program.
2071 @end table
2072
2073 When you issue the @code{run} command, your program begins to execute
2074 immediately. @xref{Stopping, ,Stopping and Continuing}, for discussion
2075 of how to arrange for your program to stop. Once your program has
2076 stopped, you may call functions in your program, using the @code{print}
2077 or @code{call} commands. @xref{Data, ,Examining Data}.
2078
2079 If the modification time of your symbol file has changed since the last
2080 time @value{GDBN} read its symbols, @value{GDBN} discards its symbol
2081 table, and reads it again. When it does this, @value{GDBN} tries to retain
2082 your current breakpoints.
2083
2084 @table @code
2085 @kindex start
2086 @item start
2087 @cindex run to main procedure
2088 The name of the main procedure can vary from language to language.
2089 With C or C@t{++}, the main procedure name is always @code{main}, but
2090 other languages such as Ada do not require a specific name for their
2091 main procedure. The debugger provides a convenient way to start the
2092 execution of the program and to stop at the beginning of the main
2093 procedure, depending on the language used.
2094
2095 The @samp{start} command does the equivalent of setting a temporary
2096 breakpoint at the beginning of the main procedure and then invoking
2097 the @samp{run} command.
2098
2099 @cindex elaboration phase
2100 Some programs contain an @dfn{elaboration} phase where some startup code is
2101 executed before the main procedure is called. This depends on the
2102 languages used to write your program. In C@t{++}, for instance,
2103 constructors for static and global objects are executed before
2104 @code{main} is called. It is therefore possible that the debugger stops
2105 before reaching the main procedure. However, the temporary breakpoint
2106 will remain to halt execution.
2107
2108 Specify the arguments to give to your program as arguments to the
2109 @samp{start} command. These arguments will be given verbatim to the
2110 underlying @samp{run} command. Note that the same arguments will be
2111 reused if no argument is provided during subsequent calls to
2112 @samp{start} or @samp{run}.
2113
2114 It is sometimes necessary to debug the program during elaboration. In
2115 these cases, using the @code{start} command would stop the execution of
2116 your program too late, as the program would have already completed the
2117 elaboration phase. Under these circumstances, insert breakpoints in your
2118 elaboration code before running your program.
2119
2120 @anchor{set exec-wrapper}
2121 @kindex set exec-wrapper
2122 @item set exec-wrapper @var{wrapper}
2123 @itemx show exec-wrapper
2124 @itemx unset exec-wrapper
2125 When @samp{exec-wrapper} is set, the specified wrapper is used to
2126 launch programs for debugging. @value{GDBN} starts your program
2127 with a shell command of the form @kbd{exec @var{wrapper}
2128 @var{program}}. Quoting is added to @var{program} and its
2129 arguments, but not to @var{wrapper}, so you should add quotes if
2130 appropriate for your shell. The wrapper runs until it executes
2131 your program, and then @value{GDBN} takes control.
2132
2133 You can use any program that eventually calls @code{execve} with
2134 its arguments as a wrapper. Several standard Unix utilities do
2135 this, e.g.@: @code{env} and @code{nohup}. Any Unix shell script ending
2136 with @code{exec "$@@"} will also work.
2137
2138 For example, you can use @code{env} to pass an environment variable to
2139 the debugged program, without setting the variable in your shell's
2140 environment:
2141
2142 @smallexample
2143 (@value{GDBP}) set exec-wrapper env 'LD_PRELOAD=libtest.so'
2144 (@value{GDBP}) run
2145 @end smallexample
2146
2147 This command is available when debugging locally on most targets, excluding
2148 @sc{djgpp}, Cygwin, MS Windows, and QNX Neutrino.
2149
2150 @kindex set startup-with-shell
2151 @item set startup-with-shell
2152 @itemx set startup-with-shell on
2153 @itemx set startup-with-shell off
2154 @itemx show set startup-with-shell
2155 On Unix systems, by default, if a shell is available on your target,
2156 @value{GDBN}) uses it to start your program. Arguments of the
2157 @code{run} command are passed to the shell, which does variable
2158 substitution, expands wildcard characters and performs redirection of
2159 I/O. In some circumstances, it may be useful to disable such use of a
2160 shell, for example, when debugging the shell itself or diagnosing
2161 startup failures such as:
2162
2163 @smallexample
2164 (@value{GDBP}) run
2165 Starting program: ./a.out
2166 During startup program terminated with signal SIGSEGV, Segmentation fault.
2167 @end smallexample
2168
2169 @noindent
2170 which indicates the shell or the wrapper specified with
2171 @samp{exec-wrapper} crashed, not your program. Most often, this is
2172 caused by something odd in your shell's non-interactive mode
2173 initialization file---such as @file{.cshrc} for C-shell,
2174 $@file{.zshenv} for the Z shell, or the file specified in the
2175 @samp{BASH_ENV} environment variable for BASH.
2176
2177 @anchor{set auto-connect-native-target}
2178 @kindex set auto-connect-native-target
2179 @item set auto-connect-native-target
2180 @itemx set auto-connect-native-target on
2181 @itemx set auto-connect-native-target off
2182 @itemx show auto-connect-native-target
2183
2184 By default, if not connected to any target yet (e.g., with
2185 @code{target remote}), the @code{run} command starts your program as a
2186 native process under @value{GDBN}, on your local machine. If you're
2187 sure you don't want to debug programs on your local machine, you can
2188 tell @value{GDBN} to not connect to the native target automatically
2189 with the @code{set auto-connect-native-target off} command.
2190
2191 If @code{on}, which is the default, and if @value{GDBN} is not
2192 connected to a target already, the @code{run} command automaticaly
2193 connects to the native target, if one is available.
2194
2195 If @code{off}, and if @value{GDBN} is not connected to a target
2196 already, the @code{run} command fails with an error:
2197
2198 @smallexample
2199 (@value{GDBP}) run
2200 Don't know how to run. Try "help target".
2201 @end smallexample
2202
2203 If @value{GDBN} is already connected to a target, @value{GDBN} always
2204 uses it with the @code{run} command.
2205
2206 In any case, you can explicitly connect to the native target with the
2207 @code{target native} command. For example,
2208
2209 @smallexample
2210 (@value{GDBP}) set auto-connect-native-target off
2211 (@value{GDBP}) run
2212 Don't know how to run. Try "help target".
2213 (@value{GDBP}) target native
2214 (@value{GDBP}) run
2215 Starting program: ./a.out
2216 [Inferior 1 (process 10421) exited normally]
2217 @end smallexample
2218
2219 In case you connected explicitly to the @code{native} target,
2220 @value{GDBN} remains connected even if all inferiors exit, ready for
2221 the next @code{run} command. Use the @code{disconnect} command to
2222 disconnect.
2223
2224 Examples of other commands that likewise respect the
2225 @code{auto-connect-native-target} setting: @code{attach}, @code{info
2226 proc}, @code{info os}.
2227
2228 @kindex set disable-randomization
2229 @item set disable-randomization
2230 @itemx set disable-randomization on
2231 This option (enabled by default in @value{GDBN}) will turn off the native
2232 randomization of the virtual address space of the started program. This option
2233 is useful for multiple debugging sessions to make the execution better
2234 reproducible and memory addresses reusable across debugging sessions.
2235
2236 This feature is implemented only on certain targets, including @sc{gnu}/Linux.
2237 On @sc{gnu}/Linux you can get the same behavior using
2238
2239 @smallexample
2240 (@value{GDBP}) set exec-wrapper setarch `uname -m` -R
2241 @end smallexample
2242
2243 @item set disable-randomization off
2244 Leave the behavior of the started executable unchanged. Some bugs rear their
2245 ugly heads only when the program is loaded at certain addresses. If your bug
2246 disappears when you run the program under @value{GDBN}, that might be because
2247 @value{GDBN} by default disables the address randomization on platforms, such
2248 as @sc{gnu}/Linux, which do that for stand-alone programs. Use @kbd{set
2249 disable-randomization off} to try to reproduce such elusive bugs.
2250
2251 On targets where it is available, virtual address space randomization
2252 protects the programs against certain kinds of security attacks. In these
2253 cases the attacker needs to know the exact location of a concrete executable
2254 code. Randomizing its location makes it impossible to inject jumps misusing
2255 a code at its expected addresses.
2256
2257 Prelinking shared libraries provides a startup performance advantage but it
2258 makes addresses in these libraries predictable for privileged processes by
2259 having just unprivileged access at the target system. Reading the shared
2260 library binary gives enough information for assembling the malicious code
2261 misusing it. Still even a prelinked shared library can get loaded at a new
2262 random address just requiring the regular relocation process during the
2263 startup. Shared libraries not already prelinked are always loaded at
2264 a randomly chosen address.
2265
2266 Position independent executables (PIE) contain position independent code
2267 similar to the shared libraries and therefore such executables get loaded at
2268 a randomly chosen address upon startup. PIE executables always load even
2269 already prelinked shared libraries at a random address. You can build such
2270 executable using @command{gcc -fPIE -pie}.
2271
2272 Heap (malloc storage), stack and custom mmap areas are always placed randomly
2273 (as long as the randomization is enabled).
2274
2275 @item show disable-randomization
2276 Show the current setting of the explicit disable of the native randomization of
2277 the virtual address space of the started program.
2278
2279 @end table
2280
2281 @node Arguments
2282 @section Your Program's Arguments
2283
2284 @cindex arguments (to your program)
2285 The arguments to your program can be specified by the arguments of the
2286 @code{run} command.
2287 They are passed to a shell, which expands wildcard characters and
2288 performs redirection of I/O, and thence to your program. Your
2289 @code{SHELL} environment variable (if it exists) specifies what shell
2290 @value{GDBN} uses. If you do not define @code{SHELL}, @value{GDBN} uses
2291 the default shell (@file{/bin/sh} on Unix).
2292
2293 On non-Unix systems, the program is usually invoked directly by
2294 @value{GDBN}, which emulates I/O redirection via the appropriate system
2295 calls, and the wildcard characters are expanded by the startup code of
2296 the program, not by the shell.
2297
2298 @code{run} with no arguments uses the same arguments used by the previous
2299 @code{run}, or those set by the @code{set args} command.
2300
2301 @table @code
2302 @kindex set args
2303 @item set args
2304 Specify the arguments to be used the next time your program is run. If
2305 @code{set args} has no arguments, @code{run} executes your program
2306 with no arguments. Once you have run your program with arguments,
2307 using @code{set args} before the next @code{run} is the only way to run
2308 it again without arguments.
2309
2310 @kindex show args
2311 @item show args
2312 Show the arguments to give your program when it is started.
2313 @end table
2314
2315 @node Environment
2316 @section Your Program's Environment
2317
2318 @cindex environment (of your program)
2319 The @dfn{environment} consists of a set of environment variables and
2320 their values. Environment variables conventionally record such things as
2321 your user name, your home directory, your terminal type, and your search
2322 path for programs to run. Usually you set up environment variables with
2323 the shell and they are inherited by all the other programs you run. When
2324 debugging, it can be useful to try running your program with a modified
2325 environment without having to start @value{GDBN} over again.
2326
2327 @table @code
2328 @kindex path
2329 @item path @var{directory}
2330 Add @var{directory} to the front of the @code{PATH} environment variable
2331 (the search path for executables) that will be passed to your program.
2332 The value of @code{PATH} used by @value{GDBN} does not change.
2333 You may specify several directory names, separated by whitespace or by a
2334 system-dependent separator character (@samp{:} on Unix, @samp{;} on
2335 MS-DOS and MS-Windows). If @var{directory} is already in the path, it
2336 is moved to the front, so it is searched sooner.
2337
2338 You can use the string @samp{$cwd} to refer to whatever is the current
2339 working directory at the time @value{GDBN} searches the path. If you
2340 use @samp{.} instead, it refers to the directory where you executed the
2341 @code{path} command. @value{GDBN} replaces @samp{.} in the
2342 @var{directory} argument (with the current path) before adding
2343 @var{directory} to the search path.
2344 @c 'path' is explicitly nonrepeatable, but RMS points out it is silly to
2345 @c document that, since repeating it would be a no-op.
2346
2347 @kindex show paths
2348 @item show paths
2349 Display the list of search paths for executables (the @code{PATH}
2350 environment variable).
2351
2352 @kindex show environment
2353 @item show environment @r{[}@var{varname}@r{]}
2354 Print the value of environment variable @var{varname} to be given to
2355 your program when it starts. If you do not supply @var{varname},
2356 print the names and values of all environment variables to be given to
2357 your program. You can abbreviate @code{environment} as @code{env}.
2358
2359 @kindex set environment
2360 @item set environment @var{varname} @r{[}=@var{value}@r{]}
2361 Set environment variable @var{varname} to @var{value}. The value
2362 changes for your program (and the shell @value{GDBN} uses to launch
2363 it), not for @value{GDBN} itself. The @var{value} may be any string; the
2364 values of environment variables are just strings, and any
2365 interpretation is supplied by your program itself. The @var{value}
2366 parameter is optional; if it is eliminated, the variable is set to a
2367 null value.
2368 @c "any string" here does not include leading, trailing
2369 @c blanks. Gnu asks: does anyone care?
2370
2371 For example, this command:
2372
2373 @smallexample
2374 set env USER = foo
2375 @end smallexample
2376
2377 @noindent
2378 tells the debugged program, when subsequently run, that its user is named
2379 @samp{foo}. (The spaces around @samp{=} are used for clarity here; they
2380 are not actually required.)
2381
2382 Note that on Unix systems, @value{GDBN} runs your program via a shell,
2383 which also inherits the environment set with @code{set environment}.
2384 If necessary, you can avoid that by using the @samp{env} program as a
2385 wrapper instead of using @code{set environment}. @xref{set
2386 exec-wrapper}, for an example doing just that.
2387
2388 @kindex unset environment
2389 @item unset environment @var{varname}
2390 Remove variable @var{varname} from the environment to be passed to your
2391 program. This is different from @samp{set env @var{varname} =};
2392 @code{unset environment} removes the variable from the environment,
2393 rather than assigning it an empty value.
2394 @end table
2395
2396 @emph{Warning:} On Unix systems, @value{GDBN} runs your program using
2397 the shell indicated by your @code{SHELL} environment variable if it
2398 exists (or @code{/bin/sh} if not). If your @code{SHELL} variable
2399 names a shell that runs an initialization file when started
2400 non-interactively---such as @file{.cshrc} for C-shell, $@file{.zshenv}
2401 for the Z shell, or the file specified in the @samp{BASH_ENV}
2402 environment variable for BASH---any variables you set in that file
2403 affect your program. You may wish to move setting of environment
2404 variables to files that are only run when you sign on, such as
2405 @file{.login} or @file{.profile}.
2406
2407 @node Working Directory
2408 @section Your Program's Working Directory
2409
2410 @cindex working directory (of your program)
2411 Each time you start your program with @code{run}, it inherits its
2412 working directory from the current working directory of @value{GDBN}.
2413 The @value{GDBN} working directory is initially whatever it inherited
2414 from its parent process (typically the shell), but you can specify a new
2415 working directory in @value{GDBN} with the @code{cd} command.
2416
2417 The @value{GDBN} working directory also serves as a default for the commands
2418 that specify files for @value{GDBN} to operate on. @xref{Files, ,Commands to
2419 Specify Files}.
2420
2421 @table @code
2422 @kindex cd
2423 @cindex change working directory
2424 @item cd @r{[}@var{directory}@r{]}
2425 Set the @value{GDBN} working directory to @var{directory}. If not
2426 given, @var{directory} uses @file{'~'}.
2427
2428 @kindex pwd
2429 @item pwd
2430 Print the @value{GDBN} working directory.
2431 @end table
2432
2433 It is generally impossible to find the current working directory of
2434 the process being debugged (since a program can change its directory
2435 during its run). If you work on a system where @value{GDBN} is
2436 configured with the @file{/proc} support, you can use the @code{info
2437 proc} command (@pxref{SVR4 Process Information}) to find out the
2438 current working directory of the debuggee.
2439
2440 @node Input/Output
2441 @section Your Program's Input and Output
2442
2443 @cindex redirection
2444 @cindex i/o
2445 @cindex terminal
2446 By default, the program you run under @value{GDBN} does input and output to
2447 the same terminal that @value{GDBN} uses. @value{GDBN} switches the terminal
2448 to its own terminal modes to interact with you, but it records the terminal
2449 modes your program was using and switches back to them when you continue
2450 running your program.
2451
2452 @table @code
2453 @kindex info terminal
2454 @item info terminal
2455 Displays information recorded by @value{GDBN} about the terminal modes your
2456 program is using.
2457 @end table
2458
2459 You can redirect your program's input and/or output using shell
2460 redirection with the @code{run} command. For example,
2461
2462 @smallexample
2463 run > outfile
2464 @end smallexample
2465
2466 @noindent
2467 starts your program, diverting its output to the file @file{outfile}.
2468
2469 @kindex tty
2470 @cindex controlling terminal
2471 Another way to specify where your program should do input and output is
2472 with the @code{tty} command. This command accepts a file name as
2473 argument, and causes this file to be the default for future @code{run}
2474 commands. It also resets the controlling terminal for the child
2475 process, for future @code{run} commands. For example,
2476
2477 @smallexample
2478 tty /dev/ttyb
2479 @end smallexample
2480
2481 @noindent
2482 directs that processes started with subsequent @code{run} commands
2483 default to do input and output on the terminal @file{/dev/ttyb} and have
2484 that as their controlling terminal.
2485
2486 An explicit redirection in @code{run} overrides the @code{tty} command's
2487 effect on the input/output device, but not its effect on the controlling
2488 terminal.
2489
2490 When you use the @code{tty} command or redirect input in the @code{run}
2491 command, only the input @emph{for your program} is affected. The input
2492 for @value{GDBN} still comes from your terminal. @code{tty} is an alias
2493 for @code{set inferior-tty}.
2494
2495 @cindex inferior tty
2496 @cindex set inferior controlling terminal
2497 You can use the @code{show inferior-tty} command to tell @value{GDBN} to
2498 display the name of the terminal that will be used for future runs of your
2499 program.
2500
2501 @table @code
2502 @item set inferior-tty /dev/ttyb
2503 @kindex set inferior-tty
2504 Set the tty for the program being debugged to /dev/ttyb.
2505
2506 @item show inferior-tty
2507 @kindex show inferior-tty
2508 Show the current tty for the program being debugged.
2509 @end table
2510
2511 @node Attach
2512 @section Debugging an Already-running Process
2513 @kindex attach
2514 @cindex attach
2515
2516 @table @code
2517 @item attach @var{process-id}
2518 This command attaches to a running process---one that was started
2519 outside @value{GDBN}. (@code{info files} shows your active
2520 targets.) The command takes as argument a process ID. The usual way to
2521 find out the @var{process-id} of a Unix process is with the @code{ps} utility,
2522 or with the @samp{jobs -l} shell command.
2523
2524 @code{attach} does not repeat if you press @key{RET} a second time after
2525 executing the command.
2526 @end table
2527
2528 To use @code{attach}, your program must be running in an environment
2529 which supports processes; for example, @code{attach} does not work for
2530 programs on bare-board targets that lack an operating system. You must
2531 also have permission to send the process a signal.
2532
2533 When you use @code{attach}, the debugger finds the program running in
2534 the process first by looking in the current working directory, then (if
2535 the program is not found) by using the source file search path
2536 (@pxref{Source Path, ,Specifying Source Directories}). You can also use
2537 the @code{file} command to load the program. @xref{Files, ,Commands to
2538 Specify Files}.
2539
2540 The first thing @value{GDBN} does after arranging to debug the specified
2541 process is to stop it. You can examine and modify an attached process
2542 with all the @value{GDBN} commands that are ordinarily available when
2543 you start processes with @code{run}. You can insert breakpoints; you
2544 can step and continue; you can modify storage. If you would rather the
2545 process continue running, you may use the @code{continue} command after
2546 attaching @value{GDBN} to the process.
2547
2548 @table @code
2549 @kindex detach
2550 @item detach
2551 When you have finished debugging the attached process, you can use the
2552 @code{detach} command to release it from @value{GDBN} control. Detaching
2553 the process continues its execution. After the @code{detach} command,
2554 that process and @value{GDBN} become completely independent once more, and you
2555 are ready to @code{attach} another process or start one with @code{run}.
2556 @code{detach} does not repeat if you press @key{RET} again after
2557 executing the command.
2558 @end table
2559
2560 If you exit @value{GDBN} while you have an attached process, you detach
2561 that process. If you use the @code{run} command, you kill that process.
2562 By default, @value{GDBN} asks for confirmation if you try to do either of these
2563 things; you can control whether or not you need to confirm by using the
2564 @code{set confirm} command (@pxref{Messages/Warnings, ,Optional Warnings and
2565 Messages}).
2566
2567 @node Kill Process
2568 @section Killing the Child Process
2569
2570 @table @code
2571 @kindex kill
2572 @item kill
2573 Kill the child process in which your program is running under @value{GDBN}.
2574 @end table
2575
2576 This command is useful if you wish to debug a core dump instead of a
2577 running process. @value{GDBN} ignores any core dump file while your program
2578 is running.
2579
2580 On some operating systems, a program cannot be executed outside @value{GDBN}
2581 while you have breakpoints set on it inside @value{GDBN}. You can use the
2582 @code{kill} command in this situation to permit running your program
2583 outside the debugger.
2584
2585 The @code{kill} command is also useful if you wish to recompile and
2586 relink your program, since on many systems it is impossible to modify an
2587 executable file while it is running in a process. In this case, when you
2588 next type @code{run}, @value{GDBN} notices that the file has changed, and
2589 reads the symbol table again (while trying to preserve your current
2590 breakpoint settings).
2591
2592 @node Inferiors and Programs
2593 @section Debugging Multiple Inferiors and Programs
2594
2595 @value{GDBN} lets you run and debug multiple programs in a single
2596 session. In addition, @value{GDBN} on some systems may let you run
2597 several programs simultaneously (otherwise you have to exit from one
2598 before starting another). In the most general case, you can have
2599 multiple threads of execution in each of multiple processes, launched
2600 from multiple executables.
2601
2602 @cindex inferior
2603 @value{GDBN} represents the state of each program execution with an
2604 object called an @dfn{inferior}. An inferior typically corresponds to
2605 a process, but is more general and applies also to targets that do not
2606 have processes. Inferiors may be created before a process runs, and
2607 may be retained after a process exits. Inferiors have unique
2608 identifiers that are different from process ids. Usually each
2609 inferior will also have its own distinct address space, although some
2610 embedded targets may have several inferiors running in different parts
2611 of a single address space. Each inferior may in turn have multiple
2612 threads running in it.
2613
2614 To find out what inferiors exist at any moment, use @w{@code{info
2615 inferiors}}:
2616
2617 @table @code
2618 @kindex info inferiors
2619 @item info inferiors
2620 Print a list of all inferiors currently being managed by @value{GDBN}.
2621
2622 @value{GDBN} displays for each inferior (in this order):
2623
2624 @enumerate
2625 @item
2626 the inferior number assigned by @value{GDBN}
2627
2628 @item
2629 the target system's inferior identifier
2630
2631 @item
2632 the name of the executable the inferior is running.
2633
2634 @end enumerate
2635
2636 @noindent
2637 An asterisk @samp{*} preceding the @value{GDBN} inferior number
2638 indicates the current inferior.
2639
2640 For example,
2641 @end table
2642 @c end table here to get a little more width for example
2643
2644 @smallexample
2645 (@value{GDBP}) info inferiors
2646 Num Description Executable
2647 2 process 2307 hello
2648 * 1 process 3401 goodbye
2649 @end smallexample
2650
2651 To switch focus between inferiors, use the @code{inferior} command:
2652
2653 @table @code
2654 @kindex inferior @var{infno}
2655 @item inferior @var{infno}
2656 Make inferior number @var{infno} the current inferior. The argument
2657 @var{infno} is the inferior number assigned by @value{GDBN}, as shown
2658 in the first field of the @samp{info inferiors} display.
2659 @end table
2660
2661 @vindex $_inferior@r{, convenience variable}
2662 The debugger convenience variable @samp{$_inferior} contains the
2663 number of the current inferior. You may find this useful in writing
2664 breakpoint conditional expressions, command scripts, and so forth.
2665 @xref{Convenience Vars,, Convenience Variables}, for general
2666 information on convenience variables.
2667
2668 You can get multiple executables into a debugging session via the
2669 @code{add-inferior} and @w{@code{clone-inferior}} commands. On some
2670 systems @value{GDBN} can add inferiors to the debug session
2671 automatically by following calls to @code{fork} and @code{exec}. To
2672 remove inferiors from the debugging session use the
2673 @w{@code{remove-inferiors}} command.
2674
2675 @table @code
2676 @kindex add-inferior
2677 @item add-inferior [ -copies @var{n} ] [ -exec @var{executable} ]
2678 Adds @var{n} inferiors to be run using @var{executable} as the
2679 executable; @var{n} defaults to 1. If no executable is specified,
2680 the inferiors begins empty, with no program. You can still assign or
2681 change the program assigned to the inferior at any time by using the
2682 @code{file} command with the executable name as its argument.
2683
2684 @kindex clone-inferior
2685 @item clone-inferior [ -copies @var{n} ] [ @var{infno} ]
2686 Adds @var{n} inferiors ready to execute the same program as inferior
2687 @var{infno}; @var{n} defaults to 1, and @var{infno} defaults to the
2688 number of the current inferior. This is a convenient command when you
2689 want to run another instance of the inferior you are debugging.
2690
2691 @smallexample
2692 (@value{GDBP}) info inferiors
2693 Num Description Executable
2694 * 1 process 29964 helloworld
2695 (@value{GDBP}) clone-inferior
2696 Added inferior 2.
2697 1 inferiors added.
2698 (@value{GDBP}) info inferiors
2699 Num Description Executable
2700 2 <null> helloworld
2701 * 1 process 29964 helloworld
2702 @end smallexample
2703
2704 You can now simply switch focus to inferior 2 and run it.
2705
2706 @kindex remove-inferiors
2707 @item remove-inferiors @var{infno}@dots{}
2708 Removes the inferior or inferiors @var{infno}@dots{}. It is not
2709 possible to remove an inferior that is running with this command. For
2710 those, use the @code{kill} or @code{detach} command first.
2711
2712 @end table
2713
2714 To quit debugging one of the running inferiors that is not the current
2715 inferior, you can either detach from it by using the @w{@code{detach
2716 inferior}} command (allowing it to run independently), or kill it
2717 using the @w{@code{kill inferiors}} command:
2718
2719 @table @code
2720 @kindex detach inferiors @var{infno}@dots{}
2721 @item detach inferior @var{infno}@dots{}
2722 Detach from the inferior or inferiors identified by @value{GDBN}
2723 inferior number(s) @var{infno}@dots{}. Note that the inferior's entry
2724 still stays on the list of inferiors shown by @code{info inferiors},
2725 but its Description will show @samp{<null>}.
2726
2727 @kindex kill inferiors @var{infno}@dots{}
2728 @item kill inferiors @var{infno}@dots{}
2729 Kill the inferior or inferiors identified by @value{GDBN} inferior
2730 number(s) @var{infno}@dots{}. Note that the inferior's entry still
2731 stays on the list of inferiors shown by @code{info inferiors}, but its
2732 Description will show @samp{<null>}.
2733 @end table
2734
2735 After the successful completion of a command such as @code{detach},
2736 @code{detach inferiors}, @code{kill} or @code{kill inferiors}, or after
2737 a normal process exit, the inferior is still valid and listed with
2738 @code{info inferiors}, ready to be restarted.
2739
2740
2741 To be notified when inferiors are started or exit under @value{GDBN}'s
2742 control use @w{@code{set print inferior-events}}:
2743
2744 @table @code
2745 @kindex set print inferior-events
2746 @cindex print messages on inferior start and exit
2747 @item set print inferior-events
2748 @itemx set print inferior-events on
2749 @itemx set print inferior-events off
2750 The @code{set print inferior-events} command allows you to enable or
2751 disable printing of messages when @value{GDBN} notices that new
2752 inferiors have started or that inferiors have exited or have been
2753 detached. By default, these messages will not be printed.
2754
2755 @kindex show print inferior-events
2756 @item show print inferior-events
2757 Show whether messages will be printed when @value{GDBN} detects that
2758 inferiors have started, exited or have been detached.
2759 @end table
2760
2761 Many commands will work the same with multiple programs as with a
2762 single program: e.g., @code{print myglobal} will simply display the
2763 value of @code{myglobal} in the current inferior.
2764
2765
2766 Occasionaly, when debugging @value{GDBN} itself, it may be useful to
2767 get more info about the relationship of inferiors, programs, address
2768 spaces in a debug session. You can do that with the @w{@code{maint
2769 info program-spaces}} command.
2770
2771 @table @code
2772 @kindex maint info program-spaces
2773 @item maint info program-spaces
2774 Print a list of all program spaces currently being managed by
2775 @value{GDBN}.
2776
2777 @value{GDBN} displays for each program space (in this order):
2778
2779 @enumerate
2780 @item
2781 the program space number assigned by @value{GDBN}
2782
2783 @item
2784 the name of the executable loaded into the program space, with e.g.,
2785 the @code{file} command.
2786
2787 @end enumerate
2788
2789 @noindent
2790 An asterisk @samp{*} preceding the @value{GDBN} program space number
2791 indicates the current program space.
2792
2793 In addition, below each program space line, @value{GDBN} prints extra
2794 information that isn't suitable to display in tabular form. For
2795 example, the list of inferiors bound to the program space.
2796
2797 @smallexample
2798 (@value{GDBP}) maint info program-spaces
2799 Id Executable
2800 * 1 hello
2801 2 goodbye
2802 Bound inferiors: ID 1 (process 21561)
2803 @end smallexample
2804
2805 Here we can see that no inferior is running the program @code{hello},
2806 while @code{process 21561} is running the program @code{goodbye}. On
2807 some targets, it is possible that multiple inferiors are bound to the
2808 same program space. The most common example is that of debugging both
2809 the parent and child processes of a @code{vfork} call. For example,
2810
2811 @smallexample
2812 (@value{GDBP}) maint info program-spaces
2813 Id Executable
2814 * 1 vfork-test
2815 Bound inferiors: ID 2 (process 18050), ID 1 (process 18045)
2816 @end smallexample
2817
2818 Here, both inferior 2 and inferior 1 are running in the same program
2819 space as a result of inferior 1 having executed a @code{vfork} call.
2820 @end table
2821
2822 @node Threads
2823 @section Debugging Programs with Multiple Threads
2824
2825 @cindex threads of execution
2826 @cindex multiple threads
2827 @cindex switching threads
2828 In some operating systems, such as GNU/Linux and Solaris, a single program
2829 may have more than one @dfn{thread} of execution. The precise semantics
2830 of threads differ from one operating system to another, but in general
2831 the threads of a single program are akin to multiple processes---except
2832 that they share one address space (that is, they can all examine and
2833 modify the same variables). On the other hand, each thread has its own
2834 registers and execution stack, and perhaps private memory.
2835
2836 @value{GDBN} provides these facilities for debugging multi-thread
2837 programs:
2838
2839 @itemize @bullet
2840 @item automatic notification of new threads
2841 @item @samp{thread @var{thread-id}}, a command to switch among threads
2842 @item @samp{info threads}, a command to inquire about existing threads
2843 @item @samp{thread apply [@var{thread-id-list}] [@var{all}] @var{args}},
2844 a command to apply a command to a list of threads
2845 @item thread-specific breakpoints
2846 @item @samp{set print thread-events}, which controls printing of
2847 messages on thread start and exit.
2848 @item @samp{set libthread-db-search-path @var{path}}, which lets
2849 the user specify which @code{libthread_db} to use if the default choice
2850 isn't compatible with the program.
2851 @end itemize
2852
2853 @cindex focus of debugging
2854 @cindex current thread
2855 The @value{GDBN} thread debugging facility allows you to observe all
2856 threads while your program runs---but whenever @value{GDBN} takes
2857 control, one thread in particular is always the focus of debugging.
2858 This thread is called the @dfn{current thread}. Debugging commands show
2859 program information from the perspective of the current thread.
2860
2861 @cindex @code{New} @var{systag} message
2862 @cindex thread identifier (system)
2863 @c FIXME-implementors!! It would be more helpful if the [New...] message
2864 @c included GDB's numeric thread handle, so you could just go to that
2865 @c thread without first checking `info threads'.
2866 Whenever @value{GDBN} detects a new thread in your program, it displays
2867 the target system's identification for the thread with a message in the
2868 form @samp{[New @var{systag}]}, where @var{systag} is a thread identifier
2869 whose form varies depending on the particular system. For example, on
2870 @sc{gnu}/Linux, you might see
2871
2872 @smallexample
2873 [New Thread 0x41e02940 (LWP 25582)]
2874 @end smallexample
2875
2876 @noindent
2877 when @value{GDBN} notices a new thread. In contrast, on other systems,
2878 the @var{systag} is simply something like @samp{process 368}, with no
2879 further qualifier.
2880
2881 @c FIXME!! (1) Does the [New...] message appear even for the very first
2882 @c thread of a program, or does it only appear for the
2883 @c second---i.e.@: when it becomes obvious we have a multithread
2884 @c program?
2885 @c (2) *Is* there necessarily a first thread always? Or do some
2886 @c multithread systems permit starting a program with multiple
2887 @c threads ab initio?
2888
2889 @anchor{thread numbers}
2890 @cindex thread number, per inferior
2891 @cindex thread identifier (GDB)
2892 For debugging purposes, @value{GDBN} associates its own thread number
2893 ---always a single integer---with each thread of an inferior. This
2894 number is unique between all threads of an inferior, but not unique
2895 between threads of different inferiors.
2896
2897 @cindex qualified thread ID
2898 You can refer to a given thread in an inferior using the qualified
2899 @var{inferior-num}.@var{thread-num} syntax, also known as
2900 @dfn{qualified thread ID}, with @var{inferior-num} being the inferior
2901 number and @var{thread-num} being the thread number of the given
2902 inferior. For example, thread @code{2.3} refers to thread number 3 of
2903 inferior 2. If you omit @var{inferior-num} (e.g., @code{thread 3}),
2904 then @value{GDBN} infers you're referring to a thread of the current
2905 inferior.
2906
2907 Until you create a second inferior, @value{GDBN} does not show the
2908 @var{inferior-num} part of thread IDs, even though you can always use
2909 the full @var{inferior-num}.@var{thread-num} form to refer to threads
2910 of inferior 1, the initial inferior.
2911
2912 @anchor{thread ID lists}
2913 @cindex thread ID lists
2914 Some commands accept a space-separated @dfn{thread ID list} as
2915 argument. A list element can be:
2916
2917 @enumerate
2918 @item
2919 A thread ID as shown in the first field of the @samp{info threads}
2920 display, with or without an inferior qualifier. E.g., @samp{2.1} or
2921 @samp{1}.
2922
2923 @item
2924 A range of thread numbers, again with or without an inferior
2925 qualifier, as in @var{inf}.@var{thr1}-@var{thr2} or
2926 @var{thr1}-@var{thr2}. E.g., @samp{1.2-4} or @samp{2-4}.
2927
2928 @item
2929 All threads of an inferior, specified with a star wildcard, with or
2930 without an inferior qualifier, as in @var{inf}.@code{*} (e.g.,
2931 @samp{1.*}) or @code{*}. The former refers to all threads of the
2932 given inferior, and the latter form without an inferior qualifier
2933 refers to all threads of the current inferior.
2934
2935 @end enumerate
2936
2937 For example, if the current inferior is 1, and inferior 7 has one
2938 thread with ID 7.1, the thread list @samp{1 2-3 4.5 6.7-9 7.*}
2939 includes threads 1 to 3 of inferior 1, thread 5 of inferior 4, threads
2940 7 to 9 of inferior 6 and all threads of inferior 7. That is, in
2941 expanded qualified form, the same as @samp{1.1 1.2 1.3 4.5 6.7 6.8 6.9
2942 7.1}.
2943
2944
2945 @anchor{global thread numbers}
2946 @cindex global thread number
2947 @cindex global thread identifier (GDB)
2948 In addition to a @emph{per-inferior} number, each thread is also
2949 assigned a unique @emph{global} number, also known as @dfn{global
2950 thread ID}, a single integer. Unlike the thread number component of
2951 the thread ID, no two threads have the same global ID, even when
2952 you're debugging multiple inferiors.
2953
2954 From @value{GDBN}'s perspective, a process always has at least one
2955 thread. In other words, @value{GDBN} assigns a thread number to the
2956 program's ``main thread'' even if the program is not multi-threaded.
2957
2958 @vindex $_thread@r{, convenience variable}
2959 @vindex $_gthread@r{, convenience variable}
2960 The debugger convenience variables @samp{$_thread} and
2961 @samp{$_gthread} contain, respectively, the per-inferior thread number
2962 and the global thread number of the current thread. You may find this
2963 useful in writing breakpoint conditional expressions, command scripts,
2964 and so forth. @xref{Convenience Vars,, Convenience Variables}, for
2965 general information on convenience variables.
2966
2967 If @value{GDBN} detects the program is multi-threaded, it augments the
2968 usual message about stopping at a breakpoint with the ID and name of
2969 the thread that hit the breakpoint.
2970
2971 @smallexample
2972 Thread 2 "client" hit Breakpoint 1, send_message () at client.c:68
2973 @end smallexample
2974
2975 Likewise when the program receives a signal:
2976
2977 @smallexample
2978 Thread 1 "main" received signal SIGINT, Interrupt.
2979 @end smallexample
2980
2981 @table @code
2982 @kindex info threads
2983 @item info threads @r{[}@var{thread-id-list}@r{]}
2984
2985 Display information about one or more threads. With no arguments
2986 displays information about all threads. You can specify the list of
2987 threads that you want to display using the thread ID list syntax
2988 (@pxref{thread ID lists}).
2989
2990 @value{GDBN} displays for each thread (in this order):
2991
2992 @enumerate
2993 @item
2994 the per-inferior thread number assigned by @value{GDBN}
2995
2996 @item
2997 the global thread number assigned by @value{GDBN}, if the @samp{-gid}
2998 option was specified
2999
3000 @item
3001 the target system's thread identifier (@var{systag})
3002
3003 @item
3004 the thread's name, if one is known. A thread can either be named by
3005 the user (see @code{thread name}, below), or, in some cases, by the
3006 program itself.
3007
3008 @item
3009 the current stack frame summary for that thread
3010 @end enumerate
3011
3012 @noindent
3013 An asterisk @samp{*} to the left of the @value{GDBN} thread number
3014 indicates the current thread.
3015
3016 For example,
3017 @end table
3018 @c end table here to get a little more width for example
3019
3020 @smallexample
3021 (@value{GDBP}) info threads
3022 Id Target Id Frame
3023 * 1 process 35 thread 13 main (argc=1, argv=0x7ffffff8)
3024 2 process 35 thread 23 0x34e5 in sigpause ()
3025 3 process 35 thread 27 0x34e5 in sigpause ()
3026 at threadtest.c:68
3027 @end smallexample
3028
3029 If you're debugging multiple inferiors, @value{GDBN} displays thread
3030 IDs using the qualified @var{inferior-num}.@var{thread-num} format.
3031 Otherwise, only @var{thread-num} is shown.
3032
3033 If you specify the @samp{-gid} option, @value{GDBN} displays a column
3034 indicating each thread's global thread ID:
3035
3036 @smallexample
3037 (@value{GDBP}) info threads
3038 Id GId Target Id Frame
3039 1.1 1 process 35 thread 13 main (argc=1, argv=0x7ffffff8)
3040 1.2 3 process 35 thread 23 0x34e5 in sigpause ()
3041 1.3 4 process 35 thread 27 0x34e5 in sigpause ()
3042 * 2.1 2 process 65 thread 1 main (argc=1, argv=0x7ffffff8)
3043 @end smallexample
3044
3045 On Solaris, you can display more information about user threads with a
3046 Solaris-specific command:
3047
3048 @table @code
3049 @item maint info sol-threads
3050 @kindex maint info sol-threads
3051 @cindex thread info (Solaris)
3052 Display info on Solaris user threads.
3053 @end table
3054
3055 @table @code
3056 @kindex thread @var{thread-id}
3057 @item thread @var{thread-id}
3058 Make thread ID @var{thread-id} the current thread. The command
3059 argument @var{thread-id} is the @value{GDBN} thread ID, as shown in
3060 the first field of the @samp{info threads} display, with or without an
3061 inferior qualifier (e.g., @samp{2.1} or @samp{1}).
3062
3063 @value{GDBN} responds by displaying the system identifier of the
3064 thread you selected, and its current stack frame summary:
3065
3066 @smallexample
3067 (@value{GDBP}) thread 2
3068 [Switching to thread 2 (Thread 0xb7fdab70 (LWP 12747))]
3069 #0 some_function (ignore=0x0) at example.c:8
3070 8 printf ("hello\n");
3071 @end smallexample
3072
3073 @noindent
3074 As with the @samp{[New @dots{}]} message, the form of the text after
3075 @samp{Switching to} depends on your system's conventions for identifying
3076 threads.
3077
3078 @kindex thread apply
3079 @cindex apply command to several threads
3080 @item thread apply [@var{thread-id-list} | all [-ascending]] @var{command}
3081 The @code{thread apply} command allows you to apply the named
3082 @var{command} to one or more threads. Specify the threads that you
3083 want affected using the thread ID list syntax (@pxref{thread ID
3084 lists}), or specify @code{all} to apply to all threads. To apply a
3085 command to all threads in descending order, type @kbd{thread apply all
3086 @var{command}}. To apply a command to all threads in ascending order,
3087 type @kbd{thread apply all -ascending @var{command}}.
3088
3089
3090 @kindex thread name
3091 @cindex name a thread
3092 @item thread name [@var{name}]
3093 This command assigns a name to the current thread. If no argument is
3094 given, any existing user-specified name is removed. The thread name
3095 appears in the @samp{info threads} display.
3096
3097 On some systems, such as @sc{gnu}/Linux, @value{GDBN} is able to
3098 determine the name of the thread as given by the OS. On these
3099 systems, a name specified with @samp{thread name} will override the
3100 system-give name, and removing the user-specified name will cause
3101 @value{GDBN} to once again display the system-specified name.
3102
3103 @kindex thread find
3104 @cindex search for a thread
3105 @item thread find [@var{regexp}]
3106 Search for and display thread ids whose name or @var{systag}
3107 matches the supplied regular expression.
3108
3109 As well as being the complement to the @samp{thread name} command,
3110 this command also allows you to identify a thread by its target
3111 @var{systag}. For instance, on @sc{gnu}/Linux, the target @var{systag}
3112 is the LWP id.
3113
3114 @smallexample
3115 (@value{GDBN}) thread find 26688
3116 Thread 4 has target id 'Thread 0x41e02940 (LWP 26688)'
3117 (@value{GDBN}) info thread 4
3118 Id Target Id Frame
3119 4 Thread 0x41e02940 (LWP 26688) 0x00000031ca6cd372 in select ()
3120 @end smallexample
3121
3122 @kindex set print thread-events
3123 @cindex print messages on thread start and exit
3124 @item set print thread-events
3125 @itemx set print thread-events on
3126 @itemx set print thread-events off
3127 The @code{set print thread-events} command allows you to enable or
3128 disable printing of messages when @value{GDBN} notices that new threads have
3129 started or that threads have exited. By default, these messages will
3130 be printed if detection of these events is supported by the target.
3131 Note that these messages cannot be disabled on all targets.
3132
3133 @kindex show print thread-events
3134 @item show print thread-events
3135 Show whether messages will be printed when @value{GDBN} detects that threads
3136 have started and exited.
3137 @end table
3138
3139 @xref{Thread Stops,,Stopping and Starting Multi-thread Programs}, for
3140 more information about how @value{GDBN} behaves when you stop and start
3141 programs with multiple threads.
3142
3143 @xref{Set Watchpoints,,Setting Watchpoints}, for information about
3144 watchpoints in programs with multiple threads.
3145
3146 @anchor{set libthread-db-search-path}
3147 @table @code
3148 @kindex set libthread-db-search-path
3149 @cindex search path for @code{libthread_db}
3150 @item set libthread-db-search-path @r{[}@var{path}@r{]}
3151 If this variable is set, @var{path} is a colon-separated list of
3152 directories @value{GDBN} will use to search for @code{libthread_db}.
3153 If you omit @var{path}, @samp{libthread-db-search-path} will be reset to
3154 its default value (@code{$sdir:$pdir} on @sc{gnu}/Linux and Solaris systems).
3155 Internally, the default value comes from the @code{LIBTHREAD_DB_SEARCH_PATH}
3156 macro.
3157
3158 On @sc{gnu}/Linux and Solaris systems, @value{GDBN} uses a ``helper''
3159 @code{libthread_db} library to obtain information about threads in the
3160 inferior process. @value{GDBN} will use @samp{libthread-db-search-path}
3161 to find @code{libthread_db}. @value{GDBN} also consults first if inferior
3162 specific thread debugging library loading is enabled
3163 by @samp{set auto-load libthread-db} (@pxref{libthread_db.so.1 file}).
3164
3165 A special entry @samp{$sdir} for @samp{libthread-db-search-path}
3166 refers to the default system directories that are
3167 normally searched for loading shared libraries. The @samp{$sdir} entry
3168 is the only kind not needing to be enabled by @samp{set auto-load libthread-db}
3169 (@pxref{libthread_db.so.1 file}).
3170
3171 A special entry @samp{$pdir} for @samp{libthread-db-search-path}
3172 refers to the directory from which @code{libpthread}
3173 was loaded in the inferior process.
3174
3175 For any @code{libthread_db} library @value{GDBN} finds in above directories,
3176 @value{GDBN} attempts to initialize it with the current inferior process.
3177 If this initialization fails (which could happen because of a version
3178 mismatch between @code{libthread_db} and @code{libpthread}), @value{GDBN}
3179 will unload @code{libthread_db}, and continue with the next directory.
3180 If none of @code{libthread_db} libraries initialize successfully,
3181 @value{GDBN} will issue a warning and thread debugging will be disabled.
3182
3183 Setting @code{libthread-db-search-path} is currently implemented
3184 only on some platforms.
3185
3186 @kindex show libthread-db-search-path
3187 @item show libthread-db-search-path
3188 Display current libthread_db search path.
3189
3190 @kindex set debug libthread-db
3191 @kindex show debug libthread-db
3192 @cindex debugging @code{libthread_db}
3193 @item set debug libthread-db
3194 @itemx show debug libthread-db
3195 Turns on or off display of @code{libthread_db}-related events.
3196 Use @code{1} to enable, @code{0} to disable.
3197 @end table
3198
3199 @node Forks
3200 @section Debugging Forks
3201
3202 @cindex fork, debugging programs which call
3203 @cindex multiple processes
3204 @cindex processes, multiple
3205 On most systems, @value{GDBN} has no special support for debugging
3206 programs which create additional processes using the @code{fork}
3207 function. When a program forks, @value{GDBN} will continue to debug the
3208 parent process and the child process will run unimpeded. If you have
3209 set a breakpoint in any code which the child then executes, the child
3210 will get a @code{SIGTRAP} signal which (unless it catches the signal)
3211 will cause it to terminate.
3212
3213 However, if you want to debug the child process there is a workaround
3214 which isn't too painful. Put a call to @code{sleep} in the code which
3215 the child process executes after the fork. It may be useful to sleep
3216 only if a certain environment variable is set, or a certain file exists,
3217 so that the delay need not occur when you don't want to run @value{GDBN}
3218 on the child. While the child is sleeping, use the @code{ps} program to
3219 get its process ID. Then tell @value{GDBN} (a new invocation of
3220 @value{GDBN} if you are also debugging the parent process) to attach to
3221 the child process (@pxref{Attach}). From that point on you can debug
3222 the child process just like any other process which you attached to.
3223
3224 On some systems, @value{GDBN} provides support for debugging programs
3225 that create additional processes using the @code{fork} or @code{vfork}
3226 functions. On @sc{gnu}/Linux platforms, this feature is supported
3227 with kernel version 2.5.46 and later.
3228
3229 The fork debugging commands are supported in native mode and when
3230 connected to @code{gdbserver} in either @code{target remote} mode or
3231 @code{target extended-remote} mode.
3232
3233 By default, when a program forks, @value{GDBN} will continue to debug
3234 the parent process and the child process will run unimpeded.
3235
3236 If you want to follow the child process instead of the parent process,
3237 use the command @w{@code{set follow-fork-mode}}.
3238
3239 @table @code
3240 @kindex set follow-fork-mode
3241 @item set follow-fork-mode @var{mode}
3242 Set the debugger response to a program call of @code{fork} or
3243 @code{vfork}. A call to @code{fork} or @code{vfork} creates a new
3244 process. The @var{mode} argument can be:
3245
3246 @table @code
3247 @item parent
3248 The original process is debugged after a fork. The child process runs
3249 unimpeded. This is the default.
3250
3251 @item child
3252 The new process is debugged after a fork. The parent process runs
3253 unimpeded.
3254
3255 @end table
3256
3257 @kindex show follow-fork-mode
3258 @item show follow-fork-mode
3259 Display the current debugger response to a @code{fork} or @code{vfork} call.
3260 @end table
3261
3262 @cindex debugging multiple processes
3263 On Linux, if you want to debug both the parent and child processes, use the
3264 command @w{@code{set detach-on-fork}}.
3265
3266 @table @code
3267 @kindex set detach-on-fork
3268 @item set detach-on-fork @var{mode}
3269 Tells gdb whether to detach one of the processes after a fork, or
3270 retain debugger control over them both.
3271
3272 @table @code
3273 @item on
3274 The child process (or parent process, depending on the value of
3275 @code{follow-fork-mode}) will be detached and allowed to run
3276 independently. This is the default.
3277
3278 @item off
3279 Both processes will be held under the control of @value{GDBN}.
3280 One process (child or parent, depending on the value of
3281 @code{follow-fork-mode}) is debugged as usual, while the other
3282 is held suspended.
3283
3284 @end table
3285
3286 @kindex show detach-on-fork
3287 @item show detach-on-fork
3288 Show whether detach-on-fork mode is on/off.
3289 @end table
3290
3291 If you choose to set @samp{detach-on-fork} mode off, then @value{GDBN}
3292 will retain control of all forked processes (including nested forks).
3293 You can list the forked processes under the control of @value{GDBN} by
3294 using the @w{@code{info inferiors}} command, and switch from one fork
3295 to another by using the @code{inferior} command (@pxref{Inferiors and
3296 Programs, ,Debugging Multiple Inferiors and Programs}).
3297
3298 To quit debugging one of the forked processes, you can either detach
3299 from it by using the @w{@code{detach inferiors}} command (allowing it
3300 to run independently), or kill it using the @w{@code{kill inferiors}}
3301 command. @xref{Inferiors and Programs, ,Debugging Multiple Inferiors
3302 and Programs}.
3303
3304 If you ask to debug a child process and a @code{vfork} is followed by an
3305 @code{exec}, @value{GDBN} executes the new target up to the first
3306 breakpoint in the new target. If you have a breakpoint set on
3307 @code{main} in your original program, the breakpoint will also be set on
3308 the child process's @code{main}.
3309
3310 On some systems, when a child process is spawned by @code{vfork}, you
3311 cannot debug the child or parent until an @code{exec} call completes.
3312
3313 If you issue a @code{run} command to @value{GDBN} after an @code{exec}
3314 call executes, the new target restarts. To restart the parent
3315 process, use the @code{file} command with the parent executable name
3316 as its argument. By default, after an @code{exec} call executes,
3317 @value{GDBN} discards the symbols of the previous executable image.
3318 You can change this behaviour with the @w{@code{set follow-exec-mode}}
3319 command.
3320
3321 @table @code
3322 @kindex set follow-exec-mode
3323 @item set follow-exec-mode @var{mode}
3324
3325 Set debugger response to a program call of @code{exec}. An
3326 @code{exec} call replaces the program image of a process.
3327
3328 @code{follow-exec-mode} can be:
3329
3330 @table @code
3331 @item new
3332 @value{GDBN} creates a new inferior and rebinds the process to this
3333 new inferior. The program the process was running before the
3334 @code{exec} call can be restarted afterwards by restarting the
3335 original inferior.
3336
3337 For example:
3338
3339 @smallexample
3340 (@value{GDBP}) info inferiors
3341 (gdb) info inferior
3342 Id Description Executable
3343 * 1 <null> prog1
3344 (@value{GDBP}) run
3345 process 12020 is executing new program: prog2
3346 Program exited normally.
3347 (@value{GDBP}) info inferiors
3348 Id Description Executable
3349 1 <null> prog1
3350 * 2 <null> prog2
3351 @end smallexample
3352
3353 @item same
3354 @value{GDBN} keeps the process bound to the same inferior. The new
3355 executable image replaces the previous executable loaded in the
3356 inferior. Restarting the inferior after the @code{exec} call, with
3357 e.g., the @code{run} command, restarts the executable the process was
3358 running after the @code{exec} call. This is the default mode.
3359
3360 For example:
3361
3362 @smallexample
3363 (@value{GDBP}) info inferiors
3364 Id Description Executable
3365 * 1 <null> prog1
3366 (@value{GDBP}) run
3367 process 12020 is executing new program: prog2
3368 Program exited normally.
3369 (@value{GDBP}) info inferiors
3370 Id Description Executable
3371 * 1 <null> prog2
3372 @end smallexample
3373
3374 @end table
3375 @end table
3376
3377 @code{follow-exec-mode} is supported in native mode and
3378 @code{target extended-remote} mode.
3379
3380 You can use the @code{catch} command to make @value{GDBN} stop whenever
3381 a @code{fork}, @code{vfork}, or @code{exec} call is made. @xref{Set
3382 Catchpoints, ,Setting Catchpoints}.
3383
3384 @node Checkpoint/Restart
3385 @section Setting a @emph{Bookmark} to Return to Later
3386
3387 @cindex checkpoint
3388 @cindex restart
3389 @cindex bookmark
3390 @cindex snapshot of a process
3391 @cindex rewind program state
3392
3393 On certain operating systems@footnote{Currently, only
3394 @sc{gnu}/Linux.}, @value{GDBN} is able to save a @dfn{snapshot} of a
3395 program's state, called a @dfn{checkpoint}, and come back to it
3396 later.
3397
3398 Returning to a checkpoint effectively undoes everything that has
3399 happened in the program since the @code{checkpoint} was saved. This
3400 includes changes in memory, registers, and even (within some limits)
3401 system state. Effectively, it is like going back in time to the
3402 moment when the checkpoint was saved.
3403
3404 Thus, if you're stepping thru a program and you think you're
3405 getting close to the point where things go wrong, you can save
3406 a checkpoint. Then, if you accidentally go too far and miss
3407 the critical statement, instead of having to restart your program
3408 from the beginning, you can just go back to the checkpoint and
3409 start again from there.
3410
3411 This can be especially useful if it takes a lot of time or
3412 steps to reach the point where you think the bug occurs.
3413
3414 To use the @code{checkpoint}/@code{restart} method of debugging:
3415
3416 @table @code
3417 @kindex checkpoint
3418 @item checkpoint
3419 Save a snapshot of the debugged program's current execution state.
3420 The @code{checkpoint} command takes no arguments, but each checkpoint
3421 is assigned a small integer id, similar to a breakpoint id.
3422
3423 @kindex info checkpoints
3424 @item info checkpoints
3425 List the checkpoints that have been saved in the current debugging
3426 session. For each checkpoint, the following information will be
3427 listed:
3428
3429 @table @code
3430 @item Checkpoint ID
3431 @item Process ID
3432 @item Code Address
3433 @item Source line, or label
3434 @end table
3435
3436 @kindex restart @var{checkpoint-id}
3437 @item restart @var{checkpoint-id}
3438 Restore the program state that was saved as checkpoint number
3439 @var{checkpoint-id}. All program variables, registers, stack frames
3440 etc.@: will be returned to the values that they had when the checkpoint
3441 was saved. In essence, gdb will ``wind back the clock'' to the point
3442 in time when the checkpoint was saved.
3443
3444 Note that breakpoints, @value{GDBN} variables, command history etc.
3445 are not affected by restoring a checkpoint. In general, a checkpoint
3446 only restores things that reside in the program being debugged, not in
3447 the debugger.
3448
3449 @kindex delete checkpoint @var{checkpoint-id}
3450 @item delete checkpoint @var{checkpoint-id}
3451 Delete the previously-saved checkpoint identified by @var{checkpoint-id}.
3452
3453 @end table
3454
3455 Returning to a previously saved checkpoint will restore the user state
3456 of the program being debugged, plus a significant subset of the system
3457 (OS) state, including file pointers. It won't ``un-write'' data from
3458 a file, but it will rewind the file pointer to the previous location,
3459 so that the previously written data can be overwritten. For files
3460 opened in read mode, the pointer will also be restored so that the
3461 previously read data can be read again.
3462
3463 Of course, characters that have been sent to a printer (or other
3464 external device) cannot be ``snatched back'', and characters received
3465 from eg.@: a serial device can be removed from internal program buffers,
3466 but they cannot be ``pushed back'' into the serial pipeline, ready to
3467 be received again. Similarly, the actual contents of files that have
3468 been changed cannot be restored (at this time).
3469
3470 However, within those constraints, you actually can ``rewind'' your
3471 program to a previously saved point in time, and begin debugging it
3472 again --- and you can change the course of events so as to debug a
3473 different execution path this time.
3474
3475 @cindex checkpoints and process id
3476 Finally, there is one bit of internal program state that will be
3477 different when you return to a checkpoint --- the program's process
3478 id. Each checkpoint will have a unique process id (or @var{pid}),
3479 and each will be different from the program's original @var{pid}.
3480 If your program has saved a local copy of its process id, this could
3481 potentially pose a problem.
3482
3483 @subsection A Non-obvious Benefit of Using Checkpoints
3484
3485 On some systems such as @sc{gnu}/Linux, address space randomization
3486 is performed on new processes for security reasons. This makes it
3487 difficult or impossible to set a breakpoint, or watchpoint, on an
3488 absolute address if you have to restart the program, since the
3489 absolute location of a symbol will change from one execution to the
3490 next.
3491
3492 A checkpoint, however, is an @emph{identical} copy of a process.
3493 Therefore if you create a checkpoint at (eg.@:) the start of main,
3494 and simply return to that checkpoint instead of restarting the
3495 process, you can avoid the effects of address randomization and
3496 your symbols will all stay in the same place.
3497
3498 @node Stopping
3499 @chapter Stopping and Continuing
3500
3501 The principal purposes of using a debugger are so that you can stop your
3502 program before it terminates; or so that, if your program runs into
3503 trouble, you can investigate and find out why.
3504
3505 Inside @value{GDBN}, your program may stop for any of several reasons,
3506 such as a signal, a breakpoint, or reaching a new line after a
3507 @value{GDBN} command such as @code{step}. You may then examine and
3508 change variables, set new breakpoints or remove old ones, and then
3509 continue execution. Usually, the messages shown by @value{GDBN} provide
3510 ample explanation of the status of your program---but you can also
3511 explicitly request this information at any time.
3512
3513 @table @code
3514 @kindex info program
3515 @item info program
3516 Display information about the status of your program: whether it is
3517 running or not, what process it is, and why it stopped.
3518 @end table
3519
3520 @menu
3521 * Breakpoints:: Breakpoints, watchpoints, and catchpoints
3522 * Continuing and Stepping:: Resuming execution
3523 * Skipping Over Functions and Files::
3524 Skipping over functions and files
3525 * Signals:: Signals
3526 * Thread Stops:: Stopping and starting multi-thread programs
3527 @end menu
3528
3529 @node Breakpoints
3530 @section Breakpoints, Watchpoints, and Catchpoints
3531
3532 @cindex breakpoints
3533 A @dfn{breakpoint} makes your program stop whenever a certain point in
3534 the program is reached. For each breakpoint, you can add conditions to
3535 control in finer detail whether your program stops. You can set
3536 breakpoints with the @code{break} command and its variants (@pxref{Set
3537 Breaks, ,Setting Breakpoints}), to specify the place where your program
3538 should stop by line number, function name or exact address in the
3539 program.
3540
3541 On some systems, you can set breakpoints in shared libraries before
3542 the executable is run.
3543
3544 @cindex watchpoints
3545 @cindex data breakpoints
3546 @cindex memory tracing
3547 @cindex breakpoint on memory address
3548 @cindex breakpoint on variable modification
3549 A @dfn{watchpoint} is a special breakpoint that stops your program
3550 when the value of an expression changes. The expression may be a value
3551 of a variable, or it could involve values of one or more variables
3552 combined by operators, such as @samp{a + b}. This is sometimes called
3553 @dfn{data breakpoints}. You must use a different command to set
3554 watchpoints (@pxref{Set Watchpoints, ,Setting Watchpoints}), but aside
3555 from that, you can manage a watchpoint like any other breakpoint: you
3556 enable, disable, and delete both breakpoints and watchpoints using the
3557 same commands.
3558
3559 You can arrange to have values from your program displayed automatically
3560 whenever @value{GDBN} stops at a breakpoint. @xref{Auto Display,,
3561 Automatic Display}.
3562
3563 @cindex catchpoints
3564 @cindex breakpoint on events
3565 A @dfn{catchpoint} is another special breakpoint that stops your program
3566 when a certain kind of event occurs, such as the throwing of a C@t{++}
3567 exception or the loading of a library. As with watchpoints, you use a
3568 different command to set a catchpoint (@pxref{Set Catchpoints, ,Setting
3569 Catchpoints}), but aside from that, you can manage a catchpoint like any
3570 other breakpoint. (To stop when your program receives a signal, use the
3571 @code{handle} command; see @ref{Signals, ,Signals}.)
3572
3573 @cindex breakpoint numbers
3574 @cindex numbers for breakpoints
3575 @value{GDBN} assigns a number to each breakpoint, watchpoint, or
3576 catchpoint when you create it; these numbers are successive integers
3577 starting with one. In many of the commands for controlling various
3578 features of breakpoints you use the breakpoint number to say which
3579 breakpoint you want to change. Each breakpoint may be @dfn{enabled} or
3580 @dfn{disabled}; if disabled, it has no effect on your program until you
3581 enable it again.
3582
3583 @cindex breakpoint ranges
3584 @cindex ranges of breakpoints
3585 Some @value{GDBN} commands accept a range of breakpoints on which to
3586 operate. A breakpoint range is either a single breakpoint number, like
3587 @samp{5}, or two such numbers, in increasing order, separated by a
3588 hyphen, like @samp{5-7}. When a breakpoint range is given to a command,
3589 all breakpoints in that range are operated on.
3590
3591 @menu
3592 * Set Breaks:: Setting breakpoints
3593 * Set Watchpoints:: Setting watchpoints
3594 * Set Catchpoints:: Setting catchpoints
3595 * Delete Breaks:: Deleting breakpoints
3596 * Disabling:: Disabling breakpoints
3597 * Conditions:: Break conditions
3598 * Break Commands:: Breakpoint command lists
3599 * Dynamic Printf:: Dynamic printf
3600 * Save Breakpoints:: How to save breakpoints in a file
3601 * Static Probe Points:: Listing static probe points
3602 * Error in Breakpoints:: ``Cannot insert breakpoints''
3603 * Breakpoint-related Warnings:: ``Breakpoint address adjusted...''
3604 @end menu
3605
3606 @node Set Breaks
3607 @subsection Setting Breakpoints
3608
3609 @c FIXME LMB what does GDB do if no code on line of breakpt?
3610 @c consider in particular declaration with/without initialization.
3611 @c
3612 @c FIXME 2 is there stuff on this already? break at fun start, already init?
3613
3614 @kindex break
3615 @kindex b @r{(@code{break})}
3616 @vindex $bpnum@r{, convenience variable}
3617 @cindex latest breakpoint
3618 Breakpoints are set with the @code{break} command (abbreviated
3619 @code{b}). The debugger convenience variable @samp{$bpnum} records the
3620 number of the breakpoint you've set most recently; see @ref{Convenience
3621 Vars,, Convenience Variables}, for a discussion of what you can do with
3622 convenience variables.
3623
3624 @table @code
3625 @item break @var{location}
3626 Set a breakpoint at the given @var{location}, which can specify a
3627 function name, a line number, or an address of an instruction.
3628 (@xref{Specify Location}, for a list of all the possible ways to
3629 specify a @var{location}.) The breakpoint will stop your program just
3630 before it executes any of the code in the specified @var{location}.
3631
3632 When using source languages that permit overloading of symbols, such as
3633 C@t{++}, a function name may refer to more than one possible place to break.
3634 @xref{Ambiguous Expressions,,Ambiguous Expressions}, for a discussion of
3635 that situation.
3636
3637 It is also possible to insert a breakpoint that will stop the program
3638 only if a specific thread (@pxref{Thread-Specific Breakpoints})
3639 or a specific task (@pxref{Ada Tasks}) hits that breakpoint.
3640
3641 @item break
3642 When called without any arguments, @code{break} sets a breakpoint at
3643 the next instruction to be executed in the selected stack frame
3644 (@pxref{Stack, ,Examining the Stack}). In any selected frame but the
3645 innermost, this makes your program stop as soon as control
3646 returns to that frame. This is similar to the effect of a
3647 @code{finish} command in the frame inside the selected frame---except
3648 that @code{finish} does not leave an active breakpoint. If you use
3649 @code{break} without an argument in the innermost frame, @value{GDBN} stops
3650 the next time it reaches the current location; this may be useful
3651 inside loops.
3652
3653 @value{GDBN} normally ignores breakpoints when it resumes execution, until at
3654 least one instruction has been executed. If it did not do this, you
3655 would be unable to proceed past a breakpoint without first disabling the
3656 breakpoint. This rule applies whether or not the breakpoint already
3657 existed when your program stopped.
3658
3659 @item break @dots{} if @var{cond}
3660 Set a breakpoint with condition @var{cond}; evaluate the expression
3661 @var{cond} each time the breakpoint is reached, and stop only if the
3662 value is nonzero---that is, if @var{cond} evaluates as true.
3663 @samp{@dots{}} stands for one of the possible arguments described
3664 above (or no argument) specifying where to break. @xref{Conditions,
3665 ,Break Conditions}, for more information on breakpoint conditions.
3666
3667 @kindex tbreak
3668 @item tbreak @var{args}
3669 Set a breakpoint enabled only for one stop. The @var{args} are the
3670 same as for the @code{break} command, and the breakpoint is set in the same
3671 way, but the breakpoint is automatically deleted after the first time your
3672 program stops there. @xref{Disabling, ,Disabling Breakpoints}.
3673
3674 @kindex hbreak
3675 @cindex hardware breakpoints
3676 @item hbreak @var{args}
3677 Set a hardware-assisted breakpoint. The @var{args} are the same as for the
3678 @code{break} command and the breakpoint is set in the same way, but the
3679 breakpoint requires hardware support and some target hardware may not
3680 have this support. The main purpose of this is EPROM/ROM code
3681 debugging, so you can set a breakpoint at an instruction without
3682 changing the instruction. This can be used with the new trap-generation
3683 provided by SPARClite DSU and most x86-based targets. These targets
3684 will generate traps when a program accesses some data or instruction
3685 address that is assigned to the debug registers. However the hardware
3686 breakpoint registers can take a limited number of breakpoints. For
3687 example, on the DSU, only two data breakpoints can be set at a time, and
3688 @value{GDBN} will reject this command if more than two are used. Delete
3689 or disable unused hardware breakpoints before setting new ones
3690 (@pxref{Disabling, ,Disabling Breakpoints}).
3691 @xref{Conditions, ,Break Conditions}.
3692 For remote targets, you can restrict the number of hardware
3693 breakpoints @value{GDBN} will use, see @ref{set remote
3694 hardware-breakpoint-limit}.
3695
3696 @kindex thbreak
3697 @item thbreak @var{args}
3698 Set a hardware-assisted breakpoint enabled only for one stop. The @var{args}
3699 are the same as for the @code{hbreak} command and the breakpoint is set in
3700 the same way. However, like the @code{tbreak} command,
3701 the breakpoint is automatically deleted after the
3702 first time your program stops there. Also, like the @code{hbreak}
3703 command, the breakpoint requires hardware support and some target hardware
3704 may not have this support. @xref{Disabling, ,Disabling Breakpoints}.
3705 See also @ref{Conditions, ,Break Conditions}.
3706
3707 @kindex rbreak
3708 @cindex regular expression
3709 @cindex breakpoints at functions matching a regexp
3710 @cindex set breakpoints in many functions
3711 @item rbreak @var{regex}
3712 Set breakpoints on all functions matching the regular expression
3713 @var{regex}. This command sets an unconditional breakpoint on all
3714 matches, printing a list of all breakpoints it set. Once these
3715 breakpoints are set, they are treated just like the breakpoints set with
3716 the @code{break} command. You can delete them, disable them, or make
3717 them conditional the same way as any other breakpoint.
3718
3719 The syntax of the regular expression is the standard one used with tools
3720 like @file{grep}. Note that this is different from the syntax used by
3721 shells, so for instance @code{foo*} matches all functions that include
3722 an @code{fo} followed by zero or more @code{o}s. There is an implicit
3723 @code{.*} leading and trailing the regular expression you supply, so to
3724 match only functions that begin with @code{foo}, use @code{^foo}.
3725
3726 @cindex non-member C@t{++} functions, set breakpoint in
3727 When debugging C@t{++} programs, @code{rbreak} is useful for setting
3728 breakpoints on overloaded functions that are not members of any special
3729 classes.
3730
3731 @cindex set breakpoints on all functions
3732 The @code{rbreak} command can be used to set breakpoints in
3733 @strong{all} the functions in a program, like this:
3734
3735 @smallexample
3736 (@value{GDBP}) rbreak .
3737 @end smallexample
3738
3739 @item rbreak @var{file}:@var{regex}
3740 If @code{rbreak} is called with a filename qualification, it limits
3741 the search for functions matching the given regular expression to the
3742 specified @var{file}. This can be used, for example, to set breakpoints on
3743 every function in a given file:
3744
3745 @smallexample
3746 (@value{GDBP}) rbreak file.c:.
3747 @end smallexample
3748
3749 The colon separating the filename qualifier from the regex may
3750 optionally be surrounded by spaces.
3751
3752 @kindex info breakpoints
3753 @cindex @code{$_} and @code{info breakpoints}
3754 @item info breakpoints @r{[}@var{n}@dots{}@r{]}
3755 @itemx info break @r{[}@var{n}@dots{}@r{]}
3756 Print a table of all breakpoints, watchpoints, and catchpoints set and
3757 not deleted. Optional argument @var{n} means print information only
3758 about the specified breakpoint(s) (or watchpoint(s) or catchpoint(s)).
3759 For each breakpoint, following columns are printed:
3760
3761 @table @emph
3762 @item Breakpoint Numbers
3763 @item Type
3764 Breakpoint, watchpoint, or catchpoint.
3765 @item Disposition
3766 Whether the breakpoint is marked to be disabled or deleted when hit.
3767 @item Enabled or Disabled
3768 Enabled breakpoints are marked with @samp{y}. @samp{n} marks breakpoints
3769 that are not enabled.
3770 @item Address
3771 Where the breakpoint is in your program, as a memory address. For a
3772 pending breakpoint whose address is not yet known, this field will
3773 contain @samp{<PENDING>}. Such breakpoint won't fire until a shared
3774 library that has the symbol or line referred by breakpoint is loaded.
3775 See below for details. A breakpoint with several locations will
3776 have @samp{<MULTIPLE>} in this field---see below for details.
3777 @item What
3778 Where the breakpoint is in the source for your program, as a file and
3779 line number. For a pending breakpoint, the original string passed to
3780 the breakpoint command will be listed as it cannot be resolved until
3781 the appropriate shared library is loaded in the future.
3782 @end table
3783
3784 @noindent
3785 If a breakpoint is conditional, there are two evaluation modes: ``host'' and
3786 ``target''. If mode is ``host'', breakpoint condition evaluation is done by
3787 @value{GDBN} on the host's side. If it is ``target'', then the condition
3788 is evaluated by the target. The @code{info break} command shows
3789 the condition on the line following the affected breakpoint, together with
3790 its condition evaluation mode in between parentheses.
3791
3792 Breakpoint commands, if any, are listed after that. A pending breakpoint is
3793 allowed to have a condition specified for it. The condition is not parsed for
3794 validity until a shared library is loaded that allows the pending
3795 breakpoint to resolve to a valid location.
3796
3797 @noindent
3798 @code{info break} with a breakpoint
3799 number @var{n} as argument lists only that breakpoint. The
3800 convenience variable @code{$_} and the default examining-address for
3801 the @code{x} command are set to the address of the last breakpoint
3802 listed (@pxref{Memory, ,Examining Memory}).
3803
3804 @noindent
3805 @code{info break} displays a count of the number of times the breakpoint
3806 has been hit. This is especially useful in conjunction with the
3807 @code{ignore} command. You can ignore a large number of breakpoint
3808 hits, look at the breakpoint info to see how many times the breakpoint
3809 was hit, and then run again, ignoring one less than that number. This
3810 will get you quickly to the last hit of that breakpoint.
3811
3812 @noindent
3813 For a breakpoints with an enable count (xref) greater than 1,
3814 @code{info break} also displays that count.
3815
3816 @end table
3817
3818 @value{GDBN} allows you to set any number of breakpoints at the same place in
3819 your program. There is nothing silly or meaningless about this. When
3820 the breakpoints are conditional, this is even useful
3821 (@pxref{Conditions, ,Break Conditions}).
3822
3823 @cindex multiple locations, breakpoints
3824 @cindex breakpoints, multiple locations
3825 It is possible that a breakpoint corresponds to several locations
3826 in your program. Examples of this situation are:
3827
3828 @itemize @bullet
3829 @item
3830 Multiple functions in the program may have the same name.
3831
3832 @item
3833 For a C@t{++} constructor, the @value{NGCC} compiler generates several
3834 instances of the function body, used in different cases.
3835
3836 @item
3837 For a C@t{++} template function, a given line in the function can
3838 correspond to any number of instantiations.
3839
3840 @item
3841 For an inlined function, a given source line can correspond to
3842 several places where that function is inlined.
3843 @end itemize
3844
3845 In all those cases, @value{GDBN} will insert a breakpoint at all
3846 the relevant locations.
3847
3848 A breakpoint with multiple locations is displayed in the breakpoint
3849 table using several rows---one header row, followed by one row for
3850 each breakpoint location. The header row has @samp{<MULTIPLE>} in the
3851 address column. The rows for individual locations contain the actual
3852 addresses for locations, and show the functions to which those
3853 locations belong. The number column for a location is of the form
3854 @var{breakpoint-number}.@var{location-number}.
3855
3856 For example:
3857
3858 @smallexample
3859 Num Type Disp Enb Address What
3860 1 breakpoint keep y <MULTIPLE>
3861 stop only if i==1
3862 breakpoint already hit 1 time
3863 1.1 y 0x080486a2 in void foo<int>() at t.cc:8
3864 1.2 y 0x080486ca in void foo<double>() at t.cc:8
3865 @end smallexample
3866
3867 Each location can be individually enabled or disabled by passing
3868 @var{breakpoint-number}.@var{location-number} as argument to the
3869 @code{enable} and @code{disable} commands. Note that you cannot
3870 delete the individual locations from the list, you can only delete the
3871 entire list of locations that belong to their parent breakpoint (with
3872 the @kbd{delete @var{num}} command, where @var{num} is the number of
3873 the parent breakpoint, 1 in the above example). Disabling or enabling
3874 the parent breakpoint (@pxref{Disabling}) affects all of the locations
3875 that belong to that breakpoint.
3876
3877 @cindex pending breakpoints
3878 It's quite common to have a breakpoint inside a shared library.
3879 Shared libraries can be loaded and unloaded explicitly,
3880 and possibly repeatedly, as the program is executed. To support
3881 this use case, @value{GDBN} updates breakpoint locations whenever
3882 any shared library is loaded or unloaded. Typically, you would
3883 set a breakpoint in a shared library at the beginning of your
3884 debugging session, when the library is not loaded, and when the
3885 symbols from the library are not available. When you try to set
3886 breakpoint, @value{GDBN} will ask you if you want to set
3887 a so called @dfn{pending breakpoint}---breakpoint whose address
3888 is not yet resolved.
3889
3890 After the program is run, whenever a new shared library is loaded,
3891 @value{GDBN} reevaluates all the breakpoints. When a newly loaded
3892 shared library contains the symbol or line referred to by some
3893 pending breakpoint, that breakpoint is resolved and becomes an
3894 ordinary breakpoint. When a library is unloaded, all breakpoints
3895 that refer to its symbols or source lines become pending again.
3896
3897 This logic works for breakpoints with multiple locations, too. For
3898 example, if you have a breakpoint in a C@t{++} template function, and
3899 a newly loaded shared library has an instantiation of that template,
3900 a new location is added to the list of locations for the breakpoint.
3901
3902 Except for having unresolved address, pending breakpoints do not
3903 differ from regular breakpoints. You can set conditions or commands,
3904 enable and disable them and perform other breakpoint operations.
3905
3906 @value{GDBN} provides some additional commands for controlling what
3907 happens when the @samp{break} command cannot resolve breakpoint
3908 address specification to an address:
3909
3910 @kindex set breakpoint pending
3911 @kindex show breakpoint pending
3912 @table @code
3913 @item set breakpoint pending auto
3914 This is the default behavior. When @value{GDBN} cannot find the breakpoint
3915 location, it queries you whether a pending breakpoint should be created.
3916
3917 @item set breakpoint pending on
3918 This indicates that an unrecognized breakpoint location should automatically
3919 result in a pending breakpoint being created.
3920
3921 @item set breakpoint pending off
3922 This indicates that pending breakpoints are not to be created. Any
3923 unrecognized breakpoint location results in an error. This setting does
3924 not affect any pending breakpoints previously created.
3925
3926 @item show breakpoint pending
3927 Show the current behavior setting for creating pending breakpoints.
3928 @end table
3929
3930 The settings above only affect the @code{break} command and its
3931 variants. Once breakpoint is set, it will be automatically updated
3932 as shared libraries are loaded and unloaded.
3933
3934 @cindex automatic hardware breakpoints
3935 For some targets, @value{GDBN} can automatically decide if hardware or
3936 software breakpoints should be used, depending on whether the
3937 breakpoint address is read-only or read-write. This applies to
3938 breakpoints set with the @code{break} command as well as to internal
3939 breakpoints set by commands like @code{next} and @code{finish}. For
3940 breakpoints set with @code{hbreak}, @value{GDBN} will always use hardware
3941 breakpoints.
3942
3943 You can control this automatic behaviour with the following commands::
3944
3945 @kindex set breakpoint auto-hw
3946 @kindex show breakpoint auto-hw
3947 @table @code
3948 @item set breakpoint auto-hw on
3949 This is the default behavior. When @value{GDBN} sets a breakpoint, it
3950 will try to use the target memory map to decide if software or hardware
3951 breakpoint must be used.
3952
3953 @item set breakpoint auto-hw off
3954 This indicates @value{GDBN} should not automatically select breakpoint
3955 type. If the target provides a memory map, @value{GDBN} will warn when
3956 trying to set software breakpoint at a read-only address.
3957 @end table
3958
3959 @value{GDBN} normally implements breakpoints by replacing the program code
3960 at the breakpoint address with a special instruction, which, when
3961 executed, given control to the debugger. By default, the program
3962 code is so modified only when the program is resumed. As soon as
3963 the program stops, @value{GDBN} restores the original instructions. This
3964 behaviour guards against leaving breakpoints inserted in the
3965 target should gdb abrubptly disconnect. However, with slow remote
3966 targets, inserting and removing breakpoint can reduce the performance.
3967 This behavior can be controlled with the following commands::
3968
3969 @kindex set breakpoint always-inserted
3970 @kindex show breakpoint always-inserted
3971 @table @code
3972 @item set breakpoint always-inserted off
3973 All breakpoints, including newly added by the user, are inserted in
3974 the target only when the target is resumed. All breakpoints are
3975 removed from the target when it stops. This is the default mode.
3976
3977 @item set breakpoint always-inserted on
3978 Causes all breakpoints to be inserted in the target at all times. If
3979 the user adds a new breakpoint, or changes an existing breakpoint, the
3980 breakpoints in the target are updated immediately. A breakpoint is
3981 removed from the target only when breakpoint itself is deleted.
3982 @end table
3983
3984 @value{GDBN} handles conditional breakpoints by evaluating these conditions
3985 when a breakpoint breaks. If the condition is true, then the process being
3986 debugged stops, otherwise the process is resumed.
3987
3988 If the target supports evaluating conditions on its end, @value{GDBN} may
3989 download the breakpoint, together with its conditions, to it.
3990
3991 This feature can be controlled via the following commands:
3992
3993 @kindex set breakpoint condition-evaluation
3994 @kindex show breakpoint condition-evaluation
3995 @table @code
3996 @item set breakpoint condition-evaluation host
3997 This option commands @value{GDBN} to evaluate the breakpoint
3998 conditions on the host's side. Unconditional breakpoints are sent to
3999 the target which in turn receives the triggers and reports them back to GDB
4000 for condition evaluation. This is the standard evaluation mode.
4001
4002 @item set breakpoint condition-evaluation target
4003 This option commands @value{GDBN} to download breakpoint conditions
4004 to the target at the moment of their insertion. The target
4005 is responsible for evaluating the conditional expression and reporting
4006 breakpoint stop events back to @value{GDBN} whenever the condition
4007 is true. Due to limitations of target-side evaluation, some conditions
4008 cannot be evaluated there, e.g., conditions that depend on local data
4009 that is only known to the host. Examples include
4010 conditional expressions involving convenience variables, complex types
4011 that cannot be handled by the agent expression parser and expressions
4012 that are too long to be sent over to the target, specially when the
4013 target is a remote system. In these cases, the conditions will be
4014 evaluated by @value{GDBN}.
4015
4016 @item set breakpoint condition-evaluation auto
4017 This is the default mode. If the target supports evaluating breakpoint
4018 conditions on its end, @value{GDBN} will download breakpoint conditions to
4019 the target (limitations mentioned previously apply). If the target does
4020 not support breakpoint condition evaluation, then @value{GDBN} will fallback
4021 to evaluating all these conditions on the host's side.
4022 @end table
4023
4024
4025 @cindex negative breakpoint numbers
4026 @cindex internal @value{GDBN} breakpoints
4027 @value{GDBN} itself sometimes sets breakpoints in your program for
4028 special purposes, such as proper handling of @code{longjmp} (in C
4029 programs). These internal breakpoints are assigned negative numbers,
4030 starting with @code{-1}; @samp{info breakpoints} does not display them.
4031 You can see these breakpoints with the @value{GDBN} maintenance command
4032 @samp{maint info breakpoints} (@pxref{maint info breakpoints}).
4033
4034
4035 @node Set Watchpoints
4036 @subsection Setting Watchpoints
4037
4038 @cindex setting watchpoints
4039 You can use a watchpoint to stop execution whenever the value of an
4040 expression changes, without having to predict a particular place where
4041 this may happen. (This is sometimes called a @dfn{data breakpoint}.)
4042 The expression may be as simple as the value of a single variable, or
4043 as complex as many variables combined by operators. Examples include:
4044
4045 @itemize @bullet
4046 @item
4047 A reference to the value of a single variable.
4048
4049 @item
4050 An address cast to an appropriate data type. For example,
4051 @samp{*(int *)0x12345678} will watch a 4-byte region at the specified
4052 address (assuming an @code{int} occupies 4 bytes).
4053
4054 @item
4055 An arbitrarily complex expression, such as @samp{a*b + c/d}. The
4056 expression can use any operators valid in the program's native
4057 language (@pxref{Languages}).
4058 @end itemize
4059
4060 You can set a watchpoint on an expression even if the expression can
4061 not be evaluated yet. For instance, you can set a watchpoint on
4062 @samp{*global_ptr} before @samp{global_ptr} is initialized.
4063 @value{GDBN} will stop when your program sets @samp{global_ptr} and
4064 the expression produces a valid value. If the expression becomes
4065 valid in some other way than changing a variable (e.g.@: if the memory
4066 pointed to by @samp{*global_ptr} becomes readable as the result of a
4067 @code{malloc} call), @value{GDBN} may not stop until the next time
4068 the expression changes.
4069
4070 @cindex software watchpoints
4071 @cindex hardware watchpoints
4072 Depending on your system, watchpoints may be implemented in software or
4073 hardware. @value{GDBN} does software watchpointing by single-stepping your
4074 program and testing the variable's value each time, which is hundreds of
4075 times slower than normal execution. (But this may still be worth it, to
4076 catch errors where you have no clue what part of your program is the
4077 culprit.)
4078
4079 On some systems, such as most PowerPC or x86-based targets,
4080 @value{GDBN} includes support for hardware watchpoints, which do not
4081 slow down the running of your program.
4082
4083 @table @code
4084 @kindex watch
4085 @item watch @r{[}-l@r{|}-location@r{]} @var{expr} @r{[}thread @var{thread-id}@r{]} @r{[}mask @var{maskvalue}@r{]}
4086 Set a watchpoint for an expression. @value{GDBN} will break when the
4087 expression @var{expr} is written into by the program and its value
4088 changes. The simplest (and the most popular) use of this command is
4089 to watch the value of a single variable:
4090
4091 @smallexample
4092 (@value{GDBP}) watch foo
4093 @end smallexample
4094
4095 If the command includes a @code{@r{[}thread @var{thread-id}@r{]}}
4096 argument, @value{GDBN} breaks only when the thread identified by
4097 @var{thread-id} changes the value of @var{expr}. If any other threads
4098 change the value of @var{expr}, @value{GDBN} will not break. Note
4099 that watchpoints restricted to a single thread in this way only work
4100 with Hardware Watchpoints.
4101
4102 Ordinarily a watchpoint respects the scope of variables in @var{expr}
4103 (see below). The @code{-location} argument tells @value{GDBN} to
4104 instead watch the memory referred to by @var{expr}. In this case,
4105 @value{GDBN} will evaluate @var{expr}, take the address of the result,
4106 and watch the memory at that address. The type of the result is used
4107 to determine the size of the watched memory. If the expression's
4108 result does not have an address, then @value{GDBN} will print an
4109 error.
4110
4111 The @code{@r{[}mask @var{maskvalue}@r{]}} argument allows creation
4112 of masked watchpoints, if the current architecture supports this
4113 feature (e.g., PowerPC Embedded architecture, see @ref{PowerPC
4114 Embedded}.) A @dfn{masked watchpoint} specifies a mask in addition
4115 to an address to watch. The mask specifies that some bits of an address
4116 (the bits which are reset in the mask) should be ignored when matching
4117 the address accessed by the inferior against the watchpoint address.
4118 Thus, a masked watchpoint watches many addresses simultaneously---those
4119 addresses whose unmasked bits are identical to the unmasked bits in the
4120 watchpoint address. The @code{mask} argument implies @code{-location}.
4121 Examples:
4122
4123 @smallexample
4124 (@value{GDBP}) watch foo mask 0xffff00ff
4125 (@value{GDBP}) watch *0xdeadbeef mask 0xffffff00
4126 @end smallexample
4127
4128 @kindex rwatch
4129 @item rwatch @r{[}-l@r{|}-location@r{]} @var{expr} @r{[}thread @var{thread-id}@r{]} @r{[}mask @var{maskvalue}@r{]}
4130 Set a watchpoint that will break when the value of @var{expr} is read
4131 by the program.
4132
4133 @kindex awatch
4134 @item awatch @r{[}-l@r{|}-location@r{]} @var{expr} @r{[}thread @var{thread-id}@r{]} @r{[}mask @var{maskvalue}@r{]}
4135 Set a watchpoint that will break when @var{expr} is either read from
4136 or written into by the program.
4137
4138 @kindex info watchpoints @r{[}@var{n}@dots{}@r{]}
4139 @item info watchpoints @r{[}@var{n}@dots{}@r{]}
4140 This command prints a list of watchpoints, using the same format as
4141 @code{info break} (@pxref{Set Breaks}).
4142 @end table
4143
4144 If you watch for a change in a numerically entered address you need to
4145 dereference it, as the address itself is just a constant number which will
4146 never change. @value{GDBN} refuses to create a watchpoint that watches
4147 a never-changing value:
4148
4149 @smallexample
4150 (@value{GDBP}) watch 0x600850
4151 Cannot watch constant value 0x600850.
4152 (@value{GDBP}) watch *(int *) 0x600850
4153 Watchpoint 1: *(int *) 6293584
4154 @end smallexample
4155
4156 @value{GDBN} sets a @dfn{hardware watchpoint} if possible. Hardware
4157 watchpoints execute very quickly, and the debugger reports a change in
4158 value at the exact instruction where the change occurs. If @value{GDBN}
4159 cannot set a hardware watchpoint, it sets a software watchpoint, which
4160 executes more slowly and reports the change in value at the next
4161 @emph{statement}, not the instruction, after the change occurs.
4162
4163 @cindex use only software watchpoints
4164 You can force @value{GDBN} to use only software watchpoints with the
4165 @kbd{set can-use-hw-watchpoints 0} command. With this variable set to
4166 zero, @value{GDBN} will never try to use hardware watchpoints, even if
4167 the underlying system supports them. (Note that hardware-assisted
4168 watchpoints that were set @emph{before} setting
4169 @code{can-use-hw-watchpoints} to zero will still use the hardware
4170 mechanism of watching expression values.)
4171
4172 @table @code
4173 @item set can-use-hw-watchpoints
4174 @kindex set can-use-hw-watchpoints
4175 Set whether or not to use hardware watchpoints.
4176
4177 @item show can-use-hw-watchpoints
4178 @kindex show can-use-hw-watchpoints
4179 Show the current mode of using hardware watchpoints.
4180 @end table
4181
4182 For remote targets, you can restrict the number of hardware
4183 watchpoints @value{GDBN} will use, see @ref{set remote
4184 hardware-breakpoint-limit}.
4185
4186 When you issue the @code{watch} command, @value{GDBN} reports
4187
4188 @smallexample
4189 Hardware watchpoint @var{num}: @var{expr}
4190 @end smallexample
4191
4192 @noindent
4193 if it was able to set a hardware watchpoint.
4194
4195 Currently, the @code{awatch} and @code{rwatch} commands can only set
4196 hardware watchpoints, because accesses to data that don't change the
4197 value of the watched expression cannot be detected without examining
4198 every instruction as it is being executed, and @value{GDBN} does not do
4199 that currently. If @value{GDBN} finds that it is unable to set a
4200 hardware breakpoint with the @code{awatch} or @code{rwatch} command, it
4201 will print a message like this:
4202
4203 @smallexample
4204 Expression cannot be implemented with read/access watchpoint.
4205 @end smallexample
4206
4207 Sometimes, @value{GDBN} cannot set a hardware watchpoint because the
4208 data type of the watched expression is wider than what a hardware
4209 watchpoint on the target machine can handle. For example, some systems
4210 can only watch regions that are up to 4 bytes wide; on such systems you
4211 cannot set hardware watchpoints for an expression that yields a
4212 double-precision floating-point number (which is typically 8 bytes
4213 wide). As a work-around, it might be possible to break the large region
4214 into a series of smaller ones and watch them with separate watchpoints.
4215
4216 If you set too many hardware watchpoints, @value{GDBN} might be unable
4217 to insert all of them when you resume the execution of your program.
4218 Since the precise number of active watchpoints is unknown until such
4219 time as the program is about to be resumed, @value{GDBN} might not be
4220 able to warn you about this when you set the watchpoints, and the
4221 warning will be printed only when the program is resumed:
4222
4223 @smallexample
4224 Hardware watchpoint @var{num}: Could not insert watchpoint
4225 @end smallexample
4226
4227 @noindent
4228 If this happens, delete or disable some of the watchpoints.
4229
4230 Watching complex expressions that reference many variables can also
4231 exhaust the resources available for hardware-assisted watchpoints.
4232 That's because @value{GDBN} needs to watch every variable in the
4233 expression with separately allocated resources.
4234
4235 If you call a function interactively using @code{print} or @code{call},
4236 any watchpoints you have set will be inactive until @value{GDBN} reaches another
4237 kind of breakpoint or the call completes.
4238
4239 @value{GDBN} automatically deletes watchpoints that watch local
4240 (automatic) variables, or expressions that involve such variables, when
4241 they go out of scope, that is, when the execution leaves the block in
4242 which these variables were defined. In particular, when the program
4243 being debugged terminates, @emph{all} local variables go out of scope,
4244 and so only watchpoints that watch global variables remain set. If you
4245 rerun the program, you will need to set all such watchpoints again. One
4246 way of doing that would be to set a code breakpoint at the entry to the
4247 @code{main} function and when it breaks, set all the watchpoints.
4248
4249 @cindex watchpoints and threads
4250 @cindex threads and watchpoints
4251 In multi-threaded programs, watchpoints will detect changes to the
4252 watched expression from every thread.
4253
4254 @quotation
4255 @emph{Warning:} In multi-threaded programs, software watchpoints
4256 have only limited usefulness. If @value{GDBN} creates a software
4257 watchpoint, it can only watch the value of an expression @emph{in a
4258 single thread}. If you are confident that the expression can only
4259 change due to the current thread's activity (and if you are also
4260 confident that no other thread can become current), then you can use
4261 software watchpoints as usual. However, @value{GDBN} may not notice
4262 when a non-current thread's activity changes the expression. (Hardware
4263 watchpoints, in contrast, watch an expression in all threads.)
4264 @end quotation
4265
4266 @xref{set remote hardware-watchpoint-limit}.
4267
4268 @node Set Catchpoints
4269 @subsection Setting Catchpoints
4270 @cindex catchpoints, setting
4271 @cindex exception handlers
4272 @cindex event handling
4273
4274 You can use @dfn{catchpoints} to cause the debugger to stop for certain
4275 kinds of program events, such as C@t{++} exceptions or the loading of a
4276 shared library. Use the @code{catch} command to set a catchpoint.
4277
4278 @table @code
4279 @kindex catch
4280 @item catch @var{event}
4281 Stop when @var{event} occurs. The @var{event} can be any of the following:
4282
4283 @table @code
4284 @item throw @r{[}@var{regexp}@r{]}
4285 @itemx rethrow @r{[}@var{regexp}@r{]}
4286 @itemx catch @r{[}@var{regexp}@r{]}
4287 @kindex catch throw
4288 @kindex catch rethrow
4289 @kindex catch catch
4290 @cindex stop on C@t{++} exceptions
4291 The throwing, re-throwing, or catching of a C@t{++} exception.
4292
4293 If @var{regexp} is given, then only exceptions whose type matches the
4294 regular expression will be caught.
4295
4296 @vindex $_exception@r{, convenience variable}
4297 The convenience variable @code{$_exception} is available at an
4298 exception-related catchpoint, on some systems. This holds the
4299 exception being thrown.
4300
4301 There are currently some limitations to C@t{++} exception handling in
4302 @value{GDBN}:
4303
4304 @itemize @bullet
4305 @item
4306 The support for these commands is system-dependent. Currently, only
4307 systems using the @samp{gnu-v3} C@t{++} ABI (@pxref{ABI}) are
4308 supported.
4309
4310 @item
4311 The regular expression feature and the @code{$_exception} convenience
4312 variable rely on the presence of some SDT probes in @code{libstdc++}.
4313 If these probes are not present, then these features cannot be used.
4314 These probes were first available in the GCC 4.8 release, but whether
4315 or not they are available in your GCC also depends on how it was
4316 built.
4317
4318 @item
4319 The @code{$_exception} convenience variable is only valid at the
4320 instruction at which an exception-related catchpoint is set.
4321
4322 @item
4323 When an exception-related catchpoint is hit, @value{GDBN} stops at a
4324 location in the system library which implements runtime exception
4325 support for C@t{++}, usually @code{libstdc++}. You can use @code{up}
4326 (@pxref{Selection}) to get to your code.
4327
4328 @item
4329 If you call a function interactively, @value{GDBN} normally returns
4330 control to you when the function has finished executing. If the call
4331 raises an exception, however, the call may bypass the mechanism that
4332 returns control to you and cause your program either to abort or to
4333 simply continue running until it hits a breakpoint, catches a signal
4334 that @value{GDBN} is listening for, or exits. This is the case even if
4335 you set a catchpoint for the exception; catchpoints on exceptions are
4336 disabled within interactive calls. @xref{Calling}, for information on
4337 controlling this with @code{set unwind-on-terminating-exception}.
4338
4339 @item
4340 You cannot raise an exception interactively.
4341
4342 @item
4343 You cannot install an exception handler interactively.
4344 @end itemize
4345
4346 @item exception
4347 @kindex catch exception
4348 @cindex Ada exception catching
4349 @cindex catch Ada exceptions
4350 An Ada exception being raised. If an exception name is specified
4351 at the end of the command (eg @code{catch exception Program_Error}),
4352 the debugger will stop only when this specific exception is raised.
4353 Otherwise, the debugger stops execution when any Ada exception is raised.
4354
4355 When inserting an exception catchpoint on a user-defined exception whose
4356 name is identical to one of the exceptions defined by the language, the
4357 fully qualified name must be used as the exception name. Otherwise,
4358 @value{GDBN} will assume that it should stop on the pre-defined exception
4359 rather than the user-defined one. For instance, assuming an exception
4360 called @code{Constraint_Error} is defined in package @code{Pck}, then
4361 the command to use to catch such exceptions is @kbd{catch exception
4362 Pck.Constraint_Error}.
4363
4364 @item exception unhandled
4365 @kindex catch exception unhandled
4366 An exception that was raised but is not handled by the program.
4367
4368 @item assert
4369 @kindex catch assert
4370 A failed Ada assertion.
4371
4372 @item exec
4373 @kindex catch exec
4374 @cindex break on fork/exec
4375 A call to @code{exec}.
4376
4377 @item syscall
4378 @itemx syscall @r{[}@var{name} @r{|} @var{number}@r{]} @dots{}
4379 @kindex catch syscall
4380 @cindex break on a system call.
4381 A call to or return from a system call, a.k.a.@: @dfn{syscall}. A
4382 syscall is a mechanism for application programs to request a service
4383 from the operating system (OS) or one of the OS system services.
4384 @value{GDBN} can catch some or all of the syscalls issued by the
4385 debuggee, and show the related information for each syscall. If no
4386 argument is specified, calls to and returns from all system calls
4387 will be caught.
4388
4389 @var{name} can be any system call name that is valid for the
4390 underlying OS. Just what syscalls are valid depends on the OS. On
4391 GNU and Unix systems, you can find the full list of valid syscall
4392 names on @file{/usr/include/asm/unistd.h}.
4393
4394 @c For MS-Windows, the syscall names and the corresponding numbers
4395 @c can be found, e.g., on this URL:
4396 @c http://www.metasploit.com/users/opcode/syscalls.html
4397 @c but we don't support Windows syscalls yet.
4398
4399 Normally, @value{GDBN} knows in advance which syscalls are valid for
4400 each OS, so you can use the @value{GDBN} command-line completion
4401 facilities (@pxref{Completion,, command completion}) to list the
4402 available choices.
4403
4404 You may also specify the system call numerically. A syscall's
4405 number is the value passed to the OS's syscall dispatcher to
4406 identify the requested service. When you specify the syscall by its
4407 name, @value{GDBN} uses its database of syscalls to convert the name
4408 into the corresponding numeric code, but using the number directly
4409 may be useful if @value{GDBN}'s database does not have the complete
4410 list of syscalls on your system (e.g., because @value{GDBN} lags
4411 behind the OS upgrades).
4412
4413 The example below illustrates how this command works if you don't provide
4414 arguments to it:
4415
4416 @smallexample
4417 (@value{GDBP}) catch syscall
4418 Catchpoint 1 (syscall)
4419 (@value{GDBP}) r
4420 Starting program: /tmp/catch-syscall
4421
4422 Catchpoint 1 (call to syscall 'close'), \
4423 0xffffe424 in __kernel_vsyscall ()
4424 (@value{GDBP}) c
4425 Continuing.
4426
4427 Catchpoint 1 (returned from syscall 'close'), \
4428 0xffffe424 in __kernel_vsyscall ()
4429 (@value{GDBP})
4430 @end smallexample
4431
4432 Here is an example of catching a system call by name:
4433
4434 @smallexample
4435 (@value{GDBP}) catch syscall chroot
4436 Catchpoint 1 (syscall 'chroot' [61])
4437 (@value{GDBP}) r
4438 Starting program: /tmp/catch-syscall
4439
4440 Catchpoint 1 (call to syscall 'chroot'), \
4441 0xffffe424 in __kernel_vsyscall ()
4442 (@value{GDBP}) c
4443 Continuing.
4444
4445 Catchpoint 1 (returned from syscall 'chroot'), \
4446 0xffffe424 in __kernel_vsyscall ()
4447 (@value{GDBP})
4448 @end smallexample
4449
4450 An example of specifying a system call numerically. In the case
4451 below, the syscall number has a corresponding entry in the XML
4452 file, so @value{GDBN} finds its name and prints it:
4453
4454 @smallexample
4455 (@value{GDBP}) catch syscall 252
4456 Catchpoint 1 (syscall(s) 'exit_group')
4457 (@value{GDBP}) r
4458 Starting program: /tmp/catch-syscall
4459
4460 Catchpoint 1 (call to syscall 'exit_group'), \
4461 0xffffe424 in __kernel_vsyscall ()
4462 (@value{GDBP}) c
4463 Continuing.
4464
4465 Program exited normally.
4466 (@value{GDBP})
4467 @end smallexample
4468
4469 However, there can be situations when there is no corresponding name
4470 in XML file for that syscall number. In this case, @value{GDBN} prints
4471 a warning message saying that it was not able to find the syscall name,
4472 but the catchpoint will be set anyway. See the example below:
4473
4474 @smallexample
4475 (@value{GDBP}) catch syscall 764
4476 warning: The number '764' does not represent a known syscall.
4477 Catchpoint 2 (syscall 764)
4478 (@value{GDBP})
4479 @end smallexample
4480
4481 If you configure @value{GDBN} using the @samp{--without-expat} option,
4482 it will not be able to display syscall names. Also, if your
4483 architecture does not have an XML file describing its system calls,
4484 you will not be able to see the syscall names. It is important to
4485 notice that these two features are used for accessing the syscall
4486 name database. In either case, you will see a warning like this:
4487
4488 @smallexample
4489 (@value{GDBP}) catch syscall
4490 warning: Could not open "syscalls/i386-linux.xml"
4491 warning: Could not load the syscall XML file 'syscalls/i386-linux.xml'.
4492 GDB will not be able to display syscall names.
4493 Catchpoint 1 (syscall)
4494 (@value{GDBP})
4495 @end smallexample
4496
4497 Of course, the file name will change depending on your architecture and system.
4498
4499 Still using the example above, you can also try to catch a syscall by its
4500 number. In this case, you would see something like:
4501
4502 @smallexample
4503 (@value{GDBP}) catch syscall 252
4504 Catchpoint 1 (syscall(s) 252)
4505 @end smallexample
4506
4507 Again, in this case @value{GDBN} would not be able to display syscall's names.
4508
4509 @item fork
4510 @kindex catch fork
4511 A call to @code{fork}.
4512
4513 @item vfork
4514 @kindex catch vfork
4515 A call to @code{vfork}.
4516
4517 @item load @r{[}regexp@r{]}
4518 @itemx unload @r{[}regexp@r{]}
4519 @kindex catch load
4520 @kindex catch unload
4521 The loading or unloading of a shared library. If @var{regexp} is
4522 given, then the catchpoint will stop only if the regular expression
4523 matches one of the affected libraries.
4524
4525 @item signal @r{[}@var{signal}@dots{} @r{|} @samp{all}@r{]}
4526 @kindex catch signal
4527 The delivery of a signal.
4528
4529 With no arguments, this catchpoint will catch any signal that is not
4530 used internally by @value{GDBN}, specifically, all signals except
4531 @samp{SIGTRAP} and @samp{SIGINT}.
4532
4533 With the argument @samp{all}, all signals, including those used by
4534 @value{GDBN}, will be caught. This argument cannot be used with other
4535 signal names.
4536
4537 Otherwise, the arguments are a list of signal names as given to
4538 @code{handle} (@pxref{Signals}). Only signals specified in this list
4539 will be caught.
4540
4541 One reason that @code{catch signal} can be more useful than
4542 @code{handle} is that you can attach commands and conditions to the
4543 catchpoint.
4544
4545 When a signal is caught by a catchpoint, the signal's @code{stop} and
4546 @code{print} settings, as specified by @code{handle}, are ignored.
4547 However, whether the signal is still delivered to the inferior depends
4548 on the @code{pass} setting; this can be changed in the catchpoint's
4549 commands.
4550
4551 @end table
4552
4553 @item tcatch @var{event}
4554 @kindex tcatch
4555 Set a catchpoint that is enabled only for one stop. The catchpoint is
4556 automatically deleted after the first time the event is caught.
4557
4558 @end table
4559
4560 Use the @code{info break} command to list the current catchpoints.
4561
4562
4563 @node Delete Breaks
4564 @subsection Deleting Breakpoints
4565
4566 @cindex clearing breakpoints, watchpoints, catchpoints
4567 @cindex deleting breakpoints, watchpoints, catchpoints
4568 It is often necessary to eliminate a breakpoint, watchpoint, or
4569 catchpoint once it has done its job and you no longer want your program
4570 to stop there. This is called @dfn{deleting} the breakpoint. A
4571 breakpoint that has been deleted no longer exists; it is forgotten.
4572
4573 With the @code{clear} command you can delete breakpoints according to
4574 where they are in your program. With the @code{delete} command you can
4575 delete individual breakpoints, watchpoints, or catchpoints by specifying
4576 their breakpoint numbers.
4577
4578 It is not necessary to delete a breakpoint to proceed past it. @value{GDBN}
4579 automatically ignores breakpoints on the first instruction to be executed
4580 when you continue execution without changing the execution address.
4581
4582 @table @code
4583 @kindex clear
4584 @item clear
4585 Delete any breakpoints at the next instruction to be executed in the
4586 selected stack frame (@pxref{Selection, ,Selecting a Frame}). When
4587 the innermost frame is selected, this is a good way to delete a
4588 breakpoint where your program just stopped.
4589
4590 @item clear @var{location}
4591 Delete any breakpoints set at the specified @var{location}.
4592 @xref{Specify Location}, for the various forms of @var{location}; the
4593 most useful ones are listed below:
4594
4595 @table @code
4596 @item clear @var{function}
4597 @itemx clear @var{filename}:@var{function}
4598 Delete any breakpoints set at entry to the named @var{function}.
4599
4600 @item clear @var{linenum}
4601 @itemx clear @var{filename}:@var{linenum}
4602 Delete any breakpoints set at or within the code of the specified
4603 @var{linenum} of the specified @var{filename}.
4604 @end table
4605
4606 @cindex delete breakpoints
4607 @kindex delete
4608 @kindex d @r{(@code{delete})}
4609 @item delete @r{[}breakpoints@r{]} @r{[}@var{range}@dots{}@r{]}
4610 Delete the breakpoints, watchpoints, or catchpoints of the breakpoint
4611 ranges specified as arguments. If no argument is specified, delete all
4612 breakpoints (@value{GDBN} asks confirmation, unless you have @code{set
4613 confirm off}). You can abbreviate this command as @code{d}.
4614 @end table
4615
4616 @node Disabling
4617 @subsection Disabling Breakpoints
4618
4619 @cindex enable/disable a breakpoint
4620 Rather than deleting a breakpoint, watchpoint, or catchpoint, you might
4621 prefer to @dfn{disable} it. This makes the breakpoint inoperative as if
4622 it had been deleted, but remembers the information on the breakpoint so
4623 that you can @dfn{enable} it again later.
4624
4625 You disable and enable breakpoints, watchpoints, and catchpoints with
4626 the @code{enable} and @code{disable} commands, optionally specifying
4627 one or more breakpoint numbers as arguments. Use @code{info break} to
4628 print a list of all breakpoints, watchpoints, and catchpoints if you
4629 do not know which numbers to use.
4630
4631 Disabling and enabling a breakpoint that has multiple locations
4632 affects all of its locations.
4633
4634 A breakpoint, watchpoint, or catchpoint can have any of several
4635 different states of enablement:
4636
4637 @itemize @bullet
4638 @item
4639 Enabled. The breakpoint stops your program. A breakpoint set
4640 with the @code{break} command starts out in this state.
4641 @item
4642 Disabled. The breakpoint has no effect on your program.
4643 @item
4644 Enabled once. The breakpoint stops your program, but then becomes
4645 disabled.
4646 @item
4647 Enabled for a count. The breakpoint stops your program for the next
4648 N times, then becomes disabled.
4649 @item
4650 Enabled for deletion. The breakpoint stops your program, but
4651 immediately after it does so it is deleted permanently. A breakpoint
4652 set with the @code{tbreak} command starts out in this state.
4653 @end itemize
4654
4655 You can use the following commands to enable or disable breakpoints,
4656 watchpoints, and catchpoints:
4657
4658 @table @code
4659 @kindex disable
4660 @kindex dis @r{(@code{disable})}
4661 @item disable @r{[}breakpoints@r{]} @r{[}@var{range}@dots{}@r{]}
4662 Disable the specified breakpoints---or all breakpoints, if none are
4663 listed. A disabled breakpoint has no effect but is not forgotten. All
4664 options such as ignore-counts, conditions and commands are remembered in
4665 case the breakpoint is enabled again later. You may abbreviate
4666 @code{disable} as @code{dis}.
4667
4668 @kindex enable
4669 @item enable @r{[}breakpoints@r{]} @r{[}@var{range}@dots{}@r{]}
4670 Enable the specified breakpoints (or all defined breakpoints). They
4671 become effective once again in stopping your program.
4672
4673 @item enable @r{[}breakpoints@r{]} once @var{range}@dots{}
4674 Enable the specified breakpoints temporarily. @value{GDBN} disables any
4675 of these breakpoints immediately after stopping your program.
4676
4677 @item enable @r{[}breakpoints@r{]} count @var{count} @var{range}@dots{}
4678 Enable the specified breakpoints temporarily. @value{GDBN} records
4679 @var{count} with each of the specified breakpoints, and decrements a
4680 breakpoint's count when it is hit. When any count reaches 0,
4681 @value{GDBN} disables that breakpoint. If a breakpoint has an ignore
4682 count (@pxref{Conditions, ,Break Conditions}), that will be
4683 decremented to 0 before @var{count} is affected.
4684
4685 @item enable @r{[}breakpoints@r{]} delete @var{range}@dots{}
4686 Enable the specified breakpoints to work once, then die. @value{GDBN}
4687 deletes any of these breakpoints as soon as your program stops there.
4688 Breakpoints set by the @code{tbreak} command start out in this state.
4689 @end table
4690
4691 @c FIXME: I think the following ``Except for [...] @code{tbreak}'' is
4692 @c confusing: tbreak is also initially enabled.
4693 Except for a breakpoint set with @code{tbreak} (@pxref{Set Breaks,
4694 ,Setting Breakpoints}), breakpoints that you set are initially enabled;
4695 subsequently, they become disabled or enabled only when you use one of
4696 the commands above. (The command @code{until} can set and delete a
4697 breakpoint of its own, but it does not change the state of your other
4698 breakpoints; see @ref{Continuing and Stepping, ,Continuing and
4699 Stepping}.)
4700
4701 @node Conditions
4702 @subsection Break Conditions
4703 @cindex conditional breakpoints
4704 @cindex breakpoint conditions
4705
4706 @c FIXME what is scope of break condition expr? Context where wanted?
4707 @c in particular for a watchpoint?
4708 The simplest sort of breakpoint breaks every time your program reaches a
4709 specified place. You can also specify a @dfn{condition} for a
4710 breakpoint. A condition is just a Boolean expression in your
4711 programming language (@pxref{Expressions, ,Expressions}). A breakpoint with
4712 a condition evaluates the expression each time your program reaches it,
4713 and your program stops only if the condition is @emph{true}.
4714
4715 This is the converse of using assertions for program validation; in that
4716 situation, you want to stop when the assertion is violated---that is,
4717 when the condition is false. In C, if you want to test an assertion expressed
4718 by the condition @var{assert}, you should set the condition
4719 @samp{! @var{assert}} on the appropriate breakpoint.
4720
4721 Conditions are also accepted for watchpoints; you may not need them,
4722 since a watchpoint is inspecting the value of an expression anyhow---but
4723 it might be simpler, say, to just set a watchpoint on a variable name,
4724 and specify a condition that tests whether the new value is an interesting
4725 one.
4726
4727 Break conditions can have side effects, and may even call functions in
4728 your program. This can be useful, for example, to activate functions
4729 that log program progress, or to use your own print functions to
4730 format special data structures. The effects are completely predictable
4731 unless there is another enabled breakpoint at the same address. (In
4732 that case, @value{GDBN} might see the other breakpoint first and stop your
4733 program without checking the condition of this one.) Note that
4734 breakpoint commands are usually more convenient and flexible than break
4735 conditions for the
4736 purpose of performing side effects when a breakpoint is reached
4737 (@pxref{Break Commands, ,Breakpoint Command Lists}).
4738
4739 Breakpoint conditions can also be evaluated on the target's side if
4740 the target supports it. Instead of evaluating the conditions locally,
4741 @value{GDBN} encodes the expression into an agent expression
4742 (@pxref{Agent Expressions}) suitable for execution on the target,
4743 independently of @value{GDBN}. Global variables become raw memory
4744 locations, locals become stack accesses, and so forth.
4745
4746 In this case, @value{GDBN} will only be notified of a breakpoint trigger
4747 when its condition evaluates to true. This mechanism may provide faster
4748 response times depending on the performance characteristics of the target
4749 since it does not need to keep @value{GDBN} informed about
4750 every breakpoint trigger, even those with false conditions.
4751
4752 Break conditions can be specified when a breakpoint is set, by using
4753 @samp{if} in the arguments to the @code{break} command. @xref{Set
4754 Breaks, ,Setting Breakpoints}. They can also be changed at any time
4755 with the @code{condition} command.
4756
4757 You can also use the @code{if} keyword with the @code{watch} command.
4758 The @code{catch} command does not recognize the @code{if} keyword;
4759 @code{condition} is the only way to impose a further condition on a
4760 catchpoint.
4761
4762 @table @code
4763 @kindex condition
4764 @item condition @var{bnum} @var{expression}
4765 Specify @var{expression} as the break condition for breakpoint,
4766 watchpoint, or catchpoint number @var{bnum}. After you set a condition,
4767 breakpoint @var{bnum} stops your program only if the value of
4768 @var{expression} is true (nonzero, in C). When you use
4769 @code{condition}, @value{GDBN} checks @var{expression} immediately for
4770 syntactic correctness, and to determine whether symbols in it have
4771 referents in the context of your breakpoint. If @var{expression} uses
4772 symbols not referenced in the context of the breakpoint, @value{GDBN}
4773 prints an error message:
4774
4775 @smallexample
4776 No symbol "foo" in current context.
4777 @end smallexample
4778
4779 @noindent
4780 @value{GDBN} does
4781 not actually evaluate @var{expression} at the time the @code{condition}
4782 command (or a command that sets a breakpoint with a condition, like
4783 @code{break if @dots{}}) is given, however. @xref{Expressions, ,Expressions}.
4784
4785 @item condition @var{bnum}
4786 Remove the condition from breakpoint number @var{bnum}. It becomes
4787 an ordinary unconditional breakpoint.
4788 @end table
4789
4790 @cindex ignore count (of breakpoint)
4791 A special case of a breakpoint condition is to stop only when the
4792 breakpoint has been reached a certain number of times. This is so
4793 useful that there is a special way to do it, using the @dfn{ignore
4794 count} of the breakpoint. Every breakpoint has an ignore count, which
4795 is an integer. Most of the time, the ignore count is zero, and
4796 therefore has no effect. But if your program reaches a breakpoint whose
4797 ignore count is positive, then instead of stopping, it just decrements
4798 the ignore count by one and continues. As a result, if the ignore count
4799 value is @var{n}, the breakpoint does not stop the next @var{n} times
4800 your program reaches it.
4801
4802 @table @code
4803 @kindex ignore
4804 @item ignore @var{bnum} @var{count}
4805 Set the ignore count of breakpoint number @var{bnum} to @var{count}.
4806 The next @var{count} times the breakpoint is reached, your program's
4807 execution does not stop; other than to decrement the ignore count, @value{GDBN}
4808 takes no action.
4809
4810 To make the breakpoint stop the next time it is reached, specify
4811 a count of zero.
4812
4813 When you use @code{continue} to resume execution of your program from a
4814 breakpoint, you can specify an ignore count directly as an argument to
4815 @code{continue}, rather than using @code{ignore}. @xref{Continuing and
4816 Stepping,,Continuing and Stepping}.
4817
4818 If a breakpoint has a positive ignore count and a condition, the
4819 condition is not checked. Once the ignore count reaches zero,
4820 @value{GDBN} resumes checking the condition.
4821
4822 You could achieve the effect of the ignore count with a condition such
4823 as @w{@samp{$foo-- <= 0}} using a debugger convenience variable that
4824 is decremented each time. @xref{Convenience Vars, ,Convenience
4825 Variables}.
4826 @end table
4827
4828 Ignore counts apply to breakpoints, watchpoints, and catchpoints.
4829
4830
4831 @node Break Commands
4832 @subsection Breakpoint Command Lists
4833
4834 @cindex breakpoint commands
4835 You can give any breakpoint (or watchpoint or catchpoint) a series of
4836 commands to execute when your program stops due to that breakpoint. For
4837 example, you might want to print the values of certain expressions, or
4838 enable other breakpoints.
4839
4840 @table @code
4841 @kindex commands
4842 @kindex end@r{ (breakpoint commands)}
4843 @item commands @r{[}@var{range}@dots{}@r{]}
4844 @itemx @dots{} @var{command-list} @dots{}
4845 @itemx end
4846 Specify a list of commands for the given breakpoints. The commands
4847 themselves appear on the following lines. Type a line containing just
4848 @code{end} to terminate the commands.
4849
4850 To remove all commands from a breakpoint, type @code{commands} and
4851 follow it immediately with @code{end}; that is, give no commands.
4852
4853 With no argument, @code{commands} refers to the last breakpoint,
4854 watchpoint, or catchpoint set (not to the breakpoint most recently
4855 encountered). If the most recent breakpoints were set with a single
4856 command, then the @code{commands} will apply to all the breakpoints
4857 set by that command. This applies to breakpoints set by
4858 @code{rbreak}, and also applies when a single @code{break} command
4859 creates multiple breakpoints (@pxref{Ambiguous Expressions,,Ambiguous
4860 Expressions}).
4861 @end table
4862
4863 Pressing @key{RET} as a means of repeating the last @value{GDBN} command is
4864 disabled within a @var{command-list}.
4865
4866 You can use breakpoint commands to start your program up again. Simply
4867 use the @code{continue} command, or @code{step}, or any other command
4868 that resumes execution.
4869
4870 Any other commands in the command list, after a command that resumes
4871 execution, are ignored. This is because any time you resume execution
4872 (even with a simple @code{next} or @code{step}), you may encounter
4873 another breakpoint---which could have its own command list, leading to
4874 ambiguities about which list to execute.
4875
4876 @kindex silent
4877 If the first command you specify in a command list is @code{silent}, the
4878 usual message about stopping at a breakpoint is not printed. This may
4879 be desirable for breakpoints that are to print a specific message and
4880 then continue. If none of the remaining commands print anything, you
4881 see no sign that the breakpoint was reached. @code{silent} is
4882 meaningful only at the beginning of a breakpoint command list.
4883
4884 The commands @code{echo}, @code{output}, and @code{printf} allow you to
4885 print precisely controlled output, and are often useful in silent
4886 breakpoints. @xref{Output, ,Commands for Controlled Output}.
4887
4888 For example, here is how you could use breakpoint commands to print the
4889 value of @code{x} at entry to @code{foo} whenever @code{x} is positive.
4890
4891 @smallexample
4892 break foo if x>0
4893 commands
4894 silent
4895 printf "x is %d\n",x
4896 cont
4897 end
4898 @end smallexample
4899
4900 One application for breakpoint commands is to compensate for one bug so
4901 you can test for another. Put a breakpoint just after the erroneous line
4902 of code, give it a condition to detect the case in which something
4903 erroneous has been done, and give it commands to assign correct values
4904 to any variables that need them. End with the @code{continue} command
4905 so that your program does not stop, and start with the @code{silent}
4906 command so that no output is produced. Here is an example:
4907
4908 @smallexample
4909 break 403
4910 commands
4911 silent
4912 set x = y + 4
4913 cont
4914 end
4915 @end smallexample
4916
4917 @node Dynamic Printf
4918 @subsection Dynamic Printf
4919
4920 @cindex dynamic printf
4921 @cindex dprintf
4922 The dynamic printf command @code{dprintf} combines a breakpoint with
4923 formatted printing of your program's data to give you the effect of
4924 inserting @code{printf} calls into your program on-the-fly, without
4925 having to recompile it.
4926
4927 In its most basic form, the output goes to the GDB console. However,
4928 you can set the variable @code{dprintf-style} for alternate handling.
4929 For instance, you can ask to format the output by calling your
4930 program's @code{printf} function. This has the advantage that the
4931 characters go to the program's output device, so they can recorded in
4932 redirects to files and so forth.
4933
4934 If you are doing remote debugging with a stub or agent, you can also
4935 ask to have the printf handled by the remote agent. In addition to
4936 ensuring that the output goes to the remote program's device along
4937 with any other output the program might produce, you can also ask that
4938 the dprintf remain active even after disconnecting from the remote
4939 target. Using the stub/agent is also more efficient, as it can do
4940 everything without needing to communicate with @value{GDBN}.
4941
4942 @table @code
4943 @kindex dprintf
4944 @item dprintf @var{location},@var{template},@var{expression}[,@var{expression}@dots{}]
4945 Whenever execution reaches @var{location}, print the values of one or
4946 more @var{expressions} under the control of the string @var{template}.
4947 To print several values, separate them with commas.
4948
4949 @item set dprintf-style @var{style}
4950 Set the dprintf output to be handled in one of several different
4951 styles enumerated below. A change of style affects all existing
4952 dynamic printfs immediately. (If you need individual control over the
4953 print commands, simply define normal breakpoints with
4954 explicitly-supplied command lists.)
4955
4956 @item gdb
4957 @kindex dprintf-style gdb
4958 Handle the output using the @value{GDBN} @code{printf} command.
4959
4960 @item call
4961 @kindex dprintf-style call
4962 Handle the output by calling a function in your program (normally
4963 @code{printf}).
4964
4965 @item agent
4966 @kindex dprintf-style agent
4967 Have the remote debugging agent (such as @code{gdbserver}) handle
4968 the output itself. This style is only available for agents that
4969 support running commands on the target.
4970
4971 @item set dprintf-function @var{function}
4972 Set the function to call if the dprintf style is @code{call}. By
4973 default its value is @code{printf}. You may set it to any expression.
4974 that @value{GDBN} can evaluate to a function, as per the @code{call}
4975 command.
4976
4977 @item set dprintf-channel @var{channel}
4978 Set a ``channel'' for dprintf. If set to a non-empty value,
4979 @value{GDBN} will evaluate it as an expression and pass the result as
4980 a first argument to the @code{dprintf-function}, in the manner of
4981 @code{fprintf} and similar functions. Otherwise, the dprintf format
4982 string will be the first argument, in the manner of @code{printf}.
4983
4984 As an example, if you wanted @code{dprintf} output to go to a logfile
4985 that is a standard I/O stream assigned to the variable @code{mylog},
4986 you could do the following:
4987
4988 @example
4989 (gdb) set dprintf-style call
4990 (gdb) set dprintf-function fprintf
4991 (gdb) set dprintf-channel mylog
4992 (gdb) dprintf 25,"at line 25, glob=%d\n",glob
4993 Dprintf 1 at 0x123456: file main.c, line 25.
4994 (gdb) info break
4995 1 dprintf keep y 0x00123456 in main at main.c:25
4996 call (void) fprintf (mylog,"at line 25, glob=%d\n",glob)
4997 continue
4998 (gdb)
4999 @end example
5000
5001 Note that the @code{info break} displays the dynamic printf commands
5002 as normal breakpoint commands; you can thus easily see the effect of
5003 the variable settings.
5004
5005 @item set disconnected-dprintf on
5006 @itemx set disconnected-dprintf off
5007 @kindex set disconnected-dprintf
5008 Choose whether @code{dprintf} commands should continue to run if
5009 @value{GDBN} has disconnected from the target. This only applies
5010 if the @code{dprintf-style} is @code{agent}.
5011
5012 @item show disconnected-dprintf off
5013 @kindex show disconnected-dprintf
5014 Show the current choice for disconnected @code{dprintf}.
5015
5016 @end table
5017
5018 @value{GDBN} does not check the validity of function and channel,
5019 relying on you to supply values that are meaningful for the contexts
5020 in which they are being used. For instance, the function and channel
5021 may be the values of local variables, but if that is the case, then
5022 all enabled dynamic prints must be at locations within the scope of
5023 those locals. If evaluation fails, @value{GDBN} will report an error.
5024
5025 @node Save Breakpoints
5026 @subsection How to save breakpoints to a file
5027
5028 To save breakpoint definitions to a file use the @w{@code{save
5029 breakpoints}} command.
5030
5031 @table @code
5032 @kindex save breakpoints
5033 @cindex save breakpoints to a file for future sessions
5034 @item save breakpoints [@var{filename}]
5035 This command saves all current breakpoint definitions together with
5036 their commands and ignore counts, into a file @file{@var{filename}}
5037 suitable for use in a later debugging session. This includes all
5038 types of breakpoints (breakpoints, watchpoints, catchpoints,
5039 tracepoints). To read the saved breakpoint definitions, use the
5040 @code{source} command (@pxref{Command Files}). Note that watchpoints
5041 with expressions involving local variables may fail to be recreated
5042 because it may not be possible to access the context where the
5043 watchpoint is valid anymore. Because the saved breakpoint definitions
5044 are simply a sequence of @value{GDBN} commands that recreate the
5045 breakpoints, you can edit the file in your favorite editing program,
5046 and remove the breakpoint definitions you're not interested in, or
5047 that can no longer be recreated.
5048 @end table
5049
5050 @node Static Probe Points
5051 @subsection Static Probe Points
5052
5053 @cindex static probe point, SystemTap
5054 @cindex static probe point, DTrace
5055 @value{GDBN} supports @dfn{SDT} probes in the code. @acronym{SDT} stands
5056 for Statically Defined Tracing, and the probes are designed to have a tiny
5057 runtime code and data footprint, and no dynamic relocations.
5058
5059 Currently, the following types of probes are supported on
5060 ELF-compatible systems:
5061
5062 @itemize @bullet
5063
5064 @item @code{SystemTap} (@uref{http://sourceware.org/systemtap/})
5065 @acronym{SDT} probes@footnote{See
5066 @uref{http://sourceware.org/systemtap/wiki/AddingUserSpaceProbingToApps}
5067 for more information on how to add @code{SystemTap} @acronym{SDT}
5068 probes in your applications.}. @code{SystemTap} probes are usable
5069 from assembly, C and C@t{++} languages@footnote{See
5070 @uref{http://sourceware.org/systemtap/wiki/UserSpaceProbeImplementation}
5071 for a good reference on how the @acronym{SDT} probes are implemented.}.
5072
5073 @item @code{DTrace} (@uref{http://oss.oracle.com/projects/DTrace})
5074 @acronym{USDT} probes. @code{DTrace} probes are usable from C and
5075 C@t{++} languages.
5076 @end itemize
5077
5078 @cindex semaphores on static probe points
5079 Some @code{SystemTap} probes have an associated semaphore variable;
5080 for instance, this happens automatically if you defined your probe
5081 using a DTrace-style @file{.d} file. If your probe has a semaphore,
5082 @value{GDBN} will automatically enable it when you specify a
5083 breakpoint using the @samp{-probe-stap} notation. But, if you put a
5084 breakpoint at a probe's location by some other method (e.g.,
5085 @code{break file:line}), then @value{GDBN} will not automatically set
5086 the semaphore. @code{DTrace} probes do not support semaphores.
5087
5088 You can examine the available static static probes using @code{info
5089 probes}, with optional arguments:
5090
5091 @table @code
5092 @kindex info probes
5093 @item info probes @r{[}@var{type}@r{]} @r{[}@var{provider} @r{[}@var{name} @r{[}@var{objfile}@r{]}@r{]}@r{]}
5094 If given, @var{type} is either @code{stap} for listing
5095 @code{SystemTap} probes or @code{dtrace} for listing @code{DTrace}
5096 probes. If omitted all probes are listed regardless of their types.
5097
5098 If given, @var{provider} is a regular expression used to match against provider
5099 names when selecting which probes to list. If omitted, probes by all
5100 probes from all providers are listed.
5101
5102 If given, @var{name} is a regular expression to match against probe names
5103 when selecting which probes to list. If omitted, probe names are not
5104 considered when deciding whether to display them.
5105
5106 If given, @var{objfile} is a regular expression used to select which
5107 object files (executable or shared libraries) to examine. If not
5108 given, all object files are considered.
5109
5110 @item info probes all
5111 List the available static probes, from all types.
5112 @end table
5113
5114 @cindex enabling and disabling probes
5115 Some probe points can be enabled and/or disabled. The effect of
5116 enabling or disabling a probe depends on the type of probe being
5117 handled. Some @code{DTrace} probes can be enabled or
5118 disabled, but @code{SystemTap} probes cannot be disabled.
5119
5120 You can enable (or disable) one or more probes using the following
5121 commands, with optional arguments:
5122
5123 @table @code
5124 @kindex enable probes
5125 @item enable probes @r{[}@var{provider} @r{[}@var{name} @r{[}@var{objfile}@r{]}@r{]}@r{]}
5126 If given, @var{provider} is a regular expression used to match against
5127 provider names when selecting which probes to enable. If omitted,
5128 all probes from all providers are enabled.
5129
5130 If given, @var{name} is a regular expression to match against probe
5131 names when selecting which probes to enable. If omitted, probe names
5132 are not considered when deciding whether to enable them.
5133
5134 If given, @var{objfile} is a regular expression used to select which
5135 object files (executable or shared libraries) to examine. If not
5136 given, all object files are considered.
5137
5138 @kindex disable probes
5139 @item disable probes @r{[}@var{provider} @r{[}@var{name} @r{[}@var{objfile}@r{]}@r{]}@r{]}
5140 See the @code{enable probes} command above for a description of the
5141 optional arguments accepted by this command.
5142 @end table
5143
5144 @vindex $_probe_arg@r{, convenience variable}
5145 A probe may specify up to twelve arguments. These are available at the
5146 point at which the probe is defined---that is, when the current PC is
5147 at the probe's location. The arguments are available using the
5148 convenience variables (@pxref{Convenience Vars})
5149 @code{$_probe_arg0}@dots{}@code{$_probe_arg11}. In @code{SystemTap}
5150 probes each probe argument is an integer of the appropriate size;
5151 types are not preserved. In @code{DTrace} probes types are preserved
5152 provided that they are recognized as such by @value{GDBN}; otherwise
5153 the value of the probe argument will be a long integer. The
5154 convenience variable @code{$_probe_argc} holds the number of arguments
5155 at the current probe point.
5156
5157 These variables are always available, but attempts to access them at
5158 any location other than a probe point will cause @value{GDBN} to give
5159 an error message.
5160
5161
5162 @c @ifclear BARETARGET
5163 @node Error in Breakpoints
5164 @subsection ``Cannot insert breakpoints''
5165
5166 If you request too many active hardware-assisted breakpoints and
5167 watchpoints, you will see this error message:
5168
5169 @c FIXME: the precise wording of this message may change; the relevant
5170 @c source change is not committed yet (Sep 3, 1999).
5171 @smallexample
5172 Stopped; cannot insert breakpoints.
5173 You may have requested too many hardware breakpoints and watchpoints.
5174 @end smallexample
5175
5176 @noindent
5177 This message is printed when you attempt to resume the program, since
5178 only then @value{GDBN} knows exactly how many hardware breakpoints and
5179 watchpoints it needs to insert.
5180
5181 When this message is printed, you need to disable or remove some of the
5182 hardware-assisted breakpoints and watchpoints, and then continue.
5183
5184 @node Breakpoint-related Warnings
5185 @subsection ``Breakpoint address adjusted...''
5186 @cindex breakpoint address adjusted
5187
5188 Some processor architectures place constraints on the addresses at
5189 which breakpoints may be placed. For architectures thus constrained,
5190 @value{GDBN} will attempt to adjust the breakpoint's address to comply
5191 with the constraints dictated by the architecture.
5192
5193 One example of such an architecture is the Fujitsu FR-V. The FR-V is
5194 a VLIW architecture in which a number of RISC-like instructions may be
5195 bundled together for parallel execution. The FR-V architecture
5196 constrains the location of a breakpoint instruction within such a
5197 bundle to the instruction with the lowest address. @value{GDBN}
5198 honors this constraint by adjusting a breakpoint's address to the
5199 first in the bundle.
5200
5201 It is not uncommon for optimized code to have bundles which contain
5202 instructions from different source statements, thus it may happen that
5203 a breakpoint's address will be adjusted from one source statement to
5204 another. Since this adjustment may significantly alter @value{GDBN}'s
5205 breakpoint related behavior from what the user expects, a warning is
5206 printed when the breakpoint is first set and also when the breakpoint
5207 is hit.
5208
5209 A warning like the one below is printed when setting a breakpoint
5210 that's been subject to address adjustment:
5211
5212 @smallexample
5213 warning: Breakpoint address adjusted from 0x00010414 to 0x00010410.
5214 @end smallexample
5215
5216 Such warnings are printed both for user settable and @value{GDBN}'s
5217 internal breakpoints. If you see one of these warnings, you should
5218 verify that a breakpoint set at the adjusted address will have the
5219 desired affect. If not, the breakpoint in question may be removed and
5220 other breakpoints may be set which will have the desired behavior.
5221 E.g., it may be sufficient to place the breakpoint at a later
5222 instruction. A conditional breakpoint may also be useful in some
5223 cases to prevent the breakpoint from triggering too often.
5224
5225 @value{GDBN} will also issue a warning when stopping at one of these
5226 adjusted breakpoints:
5227
5228 @smallexample
5229 warning: Breakpoint 1 address previously adjusted from 0x00010414
5230 to 0x00010410.
5231 @end smallexample
5232
5233 When this warning is encountered, it may be too late to take remedial
5234 action except in cases where the breakpoint is hit earlier or more
5235 frequently than expected.
5236
5237 @node Continuing and Stepping
5238 @section Continuing and Stepping
5239
5240 @cindex stepping
5241 @cindex continuing
5242 @cindex resuming execution
5243 @dfn{Continuing} means resuming program execution until your program
5244 completes normally. In contrast, @dfn{stepping} means executing just
5245 one more ``step'' of your program, where ``step'' may mean either one
5246 line of source code, or one machine instruction (depending on what
5247 particular command you use). Either when continuing or when stepping,
5248 your program may stop even sooner, due to a breakpoint or a signal. (If
5249 it stops due to a signal, you may want to use @code{handle}, or use
5250 @samp{signal 0} to resume execution (@pxref{Signals, ,Signals}),
5251 or you may step into the signal's handler (@pxref{stepping and signal
5252 handlers}).)
5253
5254 @table @code
5255 @kindex continue
5256 @kindex c @r{(@code{continue})}
5257 @kindex fg @r{(resume foreground execution)}
5258 @item continue @r{[}@var{ignore-count}@r{]}
5259 @itemx c @r{[}@var{ignore-count}@r{]}
5260 @itemx fg @r{[}@var{ignore-count}@r{]}
5261 Resume program execution, at the address where your program last stopped;
5262 any breakpoints set at that address are bypassed. The optional argument
5263 @var{ignore-count} allows you to specify a further number of times to
5264 ignore a breakpoint at this location; its effect is like that of
5265 @code{ignore} (@pxref{Conditions, ,Break Conditions}).
5266
5267 The argument @var{ignore-count} is meaningful only when your program
5268 stopped due to a breakpoint. At other times, the argument to
5269 @code{continue} is ignored.
5270
5271 The synonyms @code{c} and @code{fg} (for @dfn{foreground}, as the
5272 debugged program is deemed to be the foreground program) are provided
5273 purely for convenience, and have exactly the same behavior as
5274 @code{continue}.
5275 @end table
5276
5277 To resume execution at a different place, you can use @code{return}
5278 (@pxref{Returning, ,Returning from a Function}) to go back to the
5279 calling function; or @code{jump} (@pxref{Jumping, ,Continuing at a
5280 Different Address}) to go to an arbitrary location in your program.
5281
5282 A typical technique for using stepping is to set a breakpoint
5283 (@pxref{Breakpoints, ,Breakpoints; Watchpoints; and Catchpoints}) at the
5284 beginning of the function or the section of your program where a problem
5285 is believed to lie, run your program until it stops at that breakpoint,
5286 and then step through the suspect area, examining the variables that are
5287 interesting, until you see the problem happen.
5288
5289 @table @code
5290 @kindex step
5291 @kindex s @r{(@code{step})}
5292 @item step
5293 Continue running your program until control reaches a different source
5294 line, then stop it and return control to @value{GDBN}. This command is
5295 abbreviated @code{s}.
5296
5297 @quotation
5298 @c "without debugging information" is imprecise; actually "without line
5299 @c numbers in the debugging information". (gcc -g1 has debugging info but
5300 @c not line numbers). But it seems complex to try to make that
5301 @c distinction here.
5302 @emph{Warning:} If you use the @code{step} command while control is
5303 within a function that was compiled without debugging information,
5304 execution proceeds until control reaches a function that does have
5305 debugging information. Likewise, it will not step into a function which
5306 is compiled without debugging information. To step through functions
5307 without debugging information, use the @code{stepi} command, described
5308 below.
5309 @end quotation
5310
5311 The @code{step} command only stops at the first instruction of a source
5312 line. This prevents the multiple stops that could otherwise occur in
5313 @code{switch} statements, @code{for} loops, etc. @code{step} continues
5314 to stop if a function that has debugging information is called within
5315 the line. In other words, @code{step} @emph{steps inside} any functions
5316 called within the line.
5317
5318 Also, the @code{step} command only enters a function if there is line
5319 number information for the function. Otherwise it acts like the
5320 @code{next} command. This avoids problems when using @code{cc -gl}
5321 on @acronym{MIPS} machines. Previously, @code{step} entered subroutines if there
5322 was any debugging information about the routine.
5323
5324 @item step @var{count}
5325 Continue running as in @code{step}, but do so @var{count} times. If a
5326 breakpoint is reached, or a signal not related to stepping occurs before
5327 @var{count} steps, stepping stops right away.
5328
5329 @kindex next
5330 @kindex n @r{(@code{next})}
5331 @item next @r{[}@var{count}@r{]}
5332 Continue to the next source line in the current (innermost) stack frame.
5333 This is similar to @code{step}, but function calls that appear within
5334 the line of code are executed without stopping. Execution stops when
5335 control reaches a different line of code at the original stack level
5336 that was executing when you gave the @code{next} command. This command
5337 is abbreviated @code{n}.
5338
5339 An argument @var{count} is a repeat count, as for @code{step}.
5340
5341
5342 @c FIX ME!! Do we delete this, or is there a way it fits in with
5343 @c the following paragraph? --- Vctoria
5344 @c
5345 @c @code{next} within a function that lacks debugging information acts like
5346 @c @code{step}, but any function calls appearing within the code of the
5347 @c function are executed without stopping.
5348
5349 The @code{next} command only stops at the first instruction of a
5350 source line. This prevents multiple stops that could otherwise occur in
5351 @code{switch} statements, @code{for} loops, etc.
5352
5353 @kindex set step-mode
5354 @item set step-mode
5355 @cindex functions without line info, and stepping
5356 @cindex stepping into functions with no line info
5357 @itemx set step-mode on
5358 The @code{set step-mode on} command causes the @code{step} command to
5359 stop at the first instruction of a function which contains no debug line
5360 information rather than stepping over it.
5361
5362 This is useful in cases where you may be interested in inspecting the
5363 machine instructions of a function which has no symbolic info and do not
5364 want @value{GDBN} to automatically skip over this function.
5365
5366 @item set step-mode off
5367 Causes the @code{step} command to step over any functions which contains no
5368 debug information. This is the default.
5369
5370 @item show step-mode
5371 Show whether @value{GDBN} will stop in or step over functions without
5372 source line debug information.
5373
5374 @kindex finish
5375 @kindex fin @r{(@code{finish})}
5376 @item finish
5377 Continue running until just after function in the selected stack frame
5378 returns. Print the returned value (if any). This command can be
5379 abbreviated as @code{fin}.
5380
5381 Contrast this with the @code{return} command (@pxref{Returning,
5382 ,Returning from a Function}).
5383
5384 @kindex until
5385 @kindex u @r{(@code{until})}
5386 @cindex run until specified location
5387 @item until
5388 @itemx u
5389 Continue running until a source line past the current line, in the
5390 current stack frame, is reached. This command is used to avoid single
5391 stepping through a loop more than once. It is like the @code{next}
5392 command, except that when @code{until} encounters a jump, it
5393 automatically continues execution until the program counter is greater
5394 than the address of the jump.
5395
5396 This means that when you reach the end of a loop after single stepping
5397 though it, @code{until} makes your program continue execution until it
5398 exits the loop. In contrast, a @code{next} command at the end of a loop
5399 simply steps back to the beginning of the loop, which forces you to step
5400 through the next iteration.
5401
5402 @code{until} always stops your program if it attempts to exit the current
5403 stack frame.
5404
5405 @code{until} may produce somewhat counterintuitive results if the order
5406 of machine code does not match the order of the source lines. For
5407 example, in the following excerpt from a debugging session, the @code{f}
5408 (@code{frame}) command shows that execution is stopped at line
5409 @code{206}; yet when we use @code{until}, we get to line @code{195}:
5410
5411 @smallexample
5412 (@value{GDBP}) f
5413 #0 main (argc=4, argv=0xf7fffae8) at m4.c:206
5414 206 expand_input();
5415 (@value{GDBP}) until
5416 195 for ( ; argc > 0; NEXTARG) @{
5417 @end smallexample
5418
5419 This happened because, for execution efficiency, the compiler had
5420 generated code for the loop closure test at the end, rather than the
5421 start, of the loop---even though the test in a C @code{for}-loop is
5422 written before the body of the loop. The @code{until} command appeared
5423 to step back to the beginning of the loop when it advanced to this
5424 expression; however, it has not really gone to an earlier
5425 statement---not in terms of the actual machine code.
5426
5427 @code{until} with no argument works by means of single
5428 instruction stepping, and hence is slower than @code{until} with an
5429 argument.
5430
5431 @item until @var{location}
5432 @itemx u @var{location}
5433 Continue running your program until either the specified @var{location} is
5434 reached, or the current stack frame returns. The location is any of
5435 the forms described in @ref{Specify Location}.
5436 This form of the command uses temporary breakpoints, and
5437 hence is quicker than @code{until} without an argument. The specified
5438 location is actually reached only if it is in the current frame. This
5439 implies that @code{until} can be used to skip over recursive function
5440 invocations. For instance in the code below, if the current location is
5441 line @code{96}, issuing @code{until 99} will execute the program up to
5442 line @code{99} in the same invocation of factorial, i.e., after the inner
5443 invocations have returned.
5444
5445 @smallexample
5446 94 int factorial (int value)
5447 95 @{
5448 96 if (value > 1) @{
5449 97 value *= factorial (value - 1);
5450 98 @}
5451 99 return (value);
5452 100 @}
5453 @end smallexample
5454
5455
5456 @kindex advance @var{location}
5457 @item advance @var{location}
5458 Continue running the program up to the given @var{location}. An argument is
5459 required, which should be of one of the forms described in
5460 @ref{Specify Location}.
5461 Execution will also stop upon exit from the current stack
5462 frame. This command is similar to @code{until}, but @code{advance} will
5463 not skip over recursive function calls, and the target location doesn't
5464 have to be in the same frame as the current one.
5465
5466
5467 @kindex stepi
5468 @kindex si @r{(@code{stepi})}
5469 @item stepi
5470 @itemx stepi @var{arg}
5471 @itemx si
5472 Execute one machine instruction, then stop and return to the debugger.
5473
5474 It is often useful to do @samp{display/i $pc} when stepping by machine
5475 instructions. This makes @value{GDBN} automatically display the next
5476 instruction to be executed, each time your program stops. @xref{Auto
5477 Display,, Automatic Display}.
5478
5479 An argument is a repeat count, as in @code{step}.
5480
5481 @need 750
5482 @kindex nexti
5483 @kindex ni @r{(@code{nexti})}
5484 @item nexti
5485 @itemx nexti @var{arg}
5486 @itemx ni
5487 Execute one machine instruction, but if it is a function call,
5488 proceed until the function returns.
5489
5490 An argument is a repeat count, as in @code{next}.
5491
5492 @end table
5493
5494 @anchor{range stepping}
5495 @cindex range stepping
5496 @cindex target-assisted range stepping
5497 By default, and if available, @value{GDBN} makes use of
5498 target-assisted @dfn{range stepping}. In other words, whenever you
5499 use a stepping command (e.g., @code{step}, @code{next}), @value{GDBN}
5500 tells the target to step the corresponding range of instruction
5501 addresses instead of issuing multiple single-steps. This speeds up
5502 line stepping, particularly for remote targets. Ideally, there should
5503 be no reason you would want to turn range stepping off. However, it's
5504 possible that a bug in the debug info, a bug in the remote stub (for
5505 remote targets), or even a bug in @value{GDBN} could make line
5506 stepping behave incorrectly when target-assisted range stepping is
5507 enabled. You can use the following command to turn off range stepping
5508 if necessary:
5509
5510 @table @code
5511 @kindex set range-stepping
5512 @kindex show range-stepping
5513 @item set range-stepping
5514 @itemx show range-stepping
5515 Control whether range stepping is enabled.
5516
5517 If @code{on}, and the target supports it, @value{GDBN} tells the
5518 target to step a range of addresses itself, instead of issuing
5519 multiple single-steps. If @code{off}, @value{GDBN} always issues
5520 single-steps, even if range stepping is supported by the target. The
5521 default is @code{on}.
5522
5523 @end table
5524
5525 @node Skipping Over Functions and Files
5526 @section Skipping Over Functions and Files
5527 @cindex skipping over functions and files
5528
5529 The program you are debugging may contain some functions which are
5530 uninteresting to debug. The @code{skip} command lets you tell @value{GDBN} to
5531 skip a function, all functions in a file or a particular function in
5532 a particular file when stepping.
5533
5534 For example, consider the following C function:
5535
5536 @smallexample
5537 101 int func()
5538 102 @{
5539 103 foo(boring());
5540 104 bar(boring());
5541 105 @}
5542 @end smallexample
5543
5544 @noindent
5545 Suppose you wish to step into the functions @code{foo} and @code{bar}, but you
5546 are not interested in stepping through @code{boring}. If you run @code{step}
5547 at line 103, you'll enter @code{boring()}, but if you run @code{next}, you'll
5548 step over both @code{foo} and @code{boring}!
5549
5550 One solution is to @code{step} into @code{boring} and use the @code{finish}
5551 command to immediately exit it. But this can become tedious if @code{boring}
5552 is called from many places.
5553
5554 A more flexible solution is to execute @kbd{skip boring}. This instructs
5555 @value{GDBN} never to step into @code{boring}. Now when you execute
5556 @code{step} at line 103, you'll step over @code{boring} and directly into
5557 @code{foo}.
5558
5559 Functions may be skipped by providing either a function name, linespec
5560 (@pxref{Specify Location}), regular expression that matches the function's
5561 name, file name or a @code{glob}-style pattern that matches the file name.
5562
5563 On Posix systems the form of the regular expression is
5564 ``Extended Regular Expressions''. See for example @samp{man 7 regex}
5565 on @sc{gnu}/Linux systems. On non-Posix systems the form of the regular
5566 expression is whatever is provided by the @code{regcomp} function of
5567 the underlying system.
5568 See for example @samp{man 7 glob} on @sc{gnu}/Linux systems for a
5569 description of @code{glob}-style patterns.
5570
5571 @table @code
5572 @kindex skip
5573 @item skip @r{[}@var{options}@r{]}
5574 The basic form of the @code{skip} command takes zero or more options
5575 that specify what to skip.
5576 The @var{options} argument is any useful combination of the following:
5577
5578 @table @code
5579 @item -file @var{file}
5580 @itemx -fi @var{file}
5581 Functions in @var{file} will be skipped over when stepping.
5582
5583 @item -gfile @var{file-glob-pattern}
5584 @itemx -gfi @var{file-glob-pattern}
5585 @cindex skipping over files via glob-style patterns
5586 Functions in files matching @var{file-glob-pattern} will be skipped
5587 over when stepping.
5588
5589 @smallexample
5590 (gdb) skip -gfi utils/*.c
5591 @end smallexample
5592
5593 @item -function @var{linespec}
5594 @itemx -fu @var{linespec}
5595 Functions named by @var{linespec} or the function containing the line
5596 named by @var{linespec} will be skipped over when stepping.
5597 @xref{Specify Location}.
5598
5599 @item -rfunction @var{regexp}
5600 @itemx -rfu @var{regexp}
5601 @cindex skipping over functions via regular expressions
5602 Functions whose name matches @var{regexp} will be skipped over when stepping.
5603
5604 This form is useful for complex function names.
5605 For example, there is generally no need to step into C@t{++} @code{std::string}
5606 constructors or destructors. Plus with C@t{++} templates it can be hard to
5607 write out the full name of the function, and often it doesn't matter what
5608 the template arguments are. Specifying the function to be skipped as a
5609 regular expression makes this easier.
5610
5611 @smallexample
5612 (gdb) skip -rfu ^std::(allocator|basic_string)<.*>::~?\1 *\(
5613 @end smallexample
5614
5615 If you want to skip every templated C@t{++} constructor and destructor
5616 in the @code{std} namespace you can do:
5617
5618 @smallexample
5619 (gdb) skip -rfu ^std::([a-zA-z0-9_]+)<.*>::~?\1 *\(
5620 @end smallexample
5621 @end table
5622
5623 If no options are specified, the function you're currently debugging
5624 will be skipped.
5625
5626 @kindex skip function
5627 @item skip function @r{[}@var{linespec}@r{]}
5628 After running this command, the function named by @var{linespec} or the
5629 function containing the line named by @var{linespec} will be skipped over when
5630 stepping. @xref{Specify Location}.
5631
5632 If you do not specify @var{linespec}, the function you're currently debugging
5633 will be skipped.
5634
5635 (If you have a function called @code{file} that you want to skip, use
5636 @kbd{skip function file}.)
5637
5638 @kindex skip file
5639 @item skip file @r{[}@var{filename}@r{]}
5640 After running this command, any function whose source lives in @var{filename}
5641 will be skipped over when stepping.
5642
5643 @smallexample
5644 (gdb) skip file boring.c
5645 File boring.c will be skipped when stepping.
5646 @end smallexample
5647
5648 If you do not specify @var{filename}, functions whose source lives in the file
5649 you're currently debugging will be skipped.
5650 @end table
5651
5652 Skips can be listed, deleted, disabled, and enabled, much like breakpoints.
5653 These are the commands for managing your list of skips:
5654
5655 @table @code
5656 @kindex info skip
5657 @item info skip @r{[}@var{range}@r{]}
5658 Print details about the specified skip(s). If @var{range} is not specified,
5659 print a table with details about all functions and files marked for skipping.
5660 @code{info skip} prints the following information about each skip:
5661
5662 @table @emph
5663 @item Identifier
5664 A number identifying this skip.
5665 @item Enabled or Disabled
5666 Enabled skips are marked with @samp{y}.
5667 Disabled skips are marked with @samp{n}.
5668 @item Glob
5669 If the file name is a @samp{glob} pattern this is @samp{y}.
5670 Otherwise it is @samp{n}.
5671 @item File
5672 The name or @samp{glob} pattern of the file to be skipped.
5673 If no file is specified this is @samp{<none>}.
5674 @item RE
5675 If the function name is a @samp{regular expression} this is @samp{y}.
5676 Otherwise it is @samp{n}.
5677 @item Function
5678 The name or regular expression of the function to skip.
5679 If no function is specified this is @samp{<none>}.
5680 @end table
5681
5682 @kindex skip delete
5683 @item skip delete @r{[}@var{range}@r{]}
5684 Delete the specified skip(s). If @var{range} is not specified, delete all
5685 skips.
5686
5687 @kindex skip enable
5688 @item skip enable @r{[}@var{range}@r{]}
5689 Enable the specified skip(s). If @var{range} is not specified, enable all
5690 skips.
5691
5692 @kindex skip disable
5693 @item skip disable @r{[}@var{range}@r{]}
5694 Disable the specified skip(s). If @var{range} is not specified, disable all
5695 skips.
5696
5697 @end table
5698
5699 @node Signals
5700 @section Signals
5701 @cindex signals
5702
5703 A signal is an asynchronous event that can happen in a program. The
5704 operating system defines the possible kinds of signals, and gives each
5705 kind a name and a number. For example, in Unix @code{SIGINT} is the
5706 signal a program gets when you type an interrupt character (often @kbd{Ctrl-c});
5707 @code{SIGSEGV} is the signal a program gets from referencing a place in
5708 memory far away from all the areas in use; @code{SIGALRM} occurs when
5709 the alarm clock timer goes off (which happens only if your program has
5710 requested an alarm).
5711
5712 @cindex fatal signals
5713 Some signals, including @code{SIGALRM}, are a normal part of the
5714 functioning of your program. Others, such as @code{SIGSEGV}, indicate
5715 errors; these signals are @dfn{fatal} (they kill your program immediately) if the
5716 program has not specified in advance some other way to handle the signal.
5717 @code{SIGINT} does not indicate an error in your program, but it is normally
5718 fatal so it can carry out the purpose of the interrupt: to kill the program.
5719
5720 @value{GDBN} has the ability to detect any occurrence of a signal in your
5721 program. You can tell @value{GDBN} in advance what to do for each kind of
5722 signal.
5723
5724 @cindex handling signals
5725 Normally, @value{GDBN} is set up to let the non-erroneous signals like
5726 @code{SIGALRM} be silently passed to your program
5727 (so as not to interfere with their role in the program's functioning)
5728 but to stop your program immediately whenever an error signal happens.
5729 You can change these settings with the @code{handle} command.
5730
5731 @table @code
5732 @kindex info signals
5733 @kindex info handle
5734 @item info signals
5735 @itemx info handle
5736 Print a table of all the kinds of signals and how @value{GDBN} has been told to
5737 handle each one. You can use this to see the signal numbers of all
5738 the defined types of signals.
5739
5740 @item info signals @var{sig}
5741 Similar, but print information only about the specified signal number.
5742
5743 @code{info handle} is an alias for @code{info signals}.
5744
5745 @item catch signal @r{[}@var{signal}@dots{} @r{|} @samp{all}@r{]}
5746 Set a catchpoint for the indicated signals. @xref{Set Catchpoints},
5747 for details about this command.
5748
5749 @kindex handle
5750 @item handle @var{signal} @r{[}@var{keywords}@dots{}@r{]}
5751 Change the way @value{GDBN} handles signal @var{signal}. The @var{signal}
5752 can be the number of a signal or its name (with or without the
5753 @samp{SIG} at the beginning); a list of signal numbers of the form
5754 @samp{@var{low}-@var{high}}; or the word @samp{all}, meaning all the
5755 known signals. Optional arguments @var{keywords}, described below,
5756 say what change to make.
5757 @end table
5758
5759 @c @group
5760 The keywords allowed by the @code{handle} command can be abbreviated.
5761 Their full names are:
5762
5763 @table @code
5764 @item nostop
5765 @value{GDBN} should not stop your program when this signal happens. It may
5766 still print a message telling you that the signal has come in.
5767
5768 @item stop
5769 @value{GDBN} should stop your program when this signal happens. This implies
5770 the @code{print} keyword as well.
5771
5772 @item print
5773 @value{GDBN} should print a message when this signal happens.
5774
5775 @item noprint
5776 @value{GDBN} should not mention the occurrence of the signal at all. This
5777 implies the @code{nostop} keyword as well.
5778
5779 @item pass
5780 @itemx noignore
5781 @value{GDBN} should allow your program to see this signal; your program
5782 can handle the signal, or else it may terminate if the signal is fatal
5783 and not handled. @code{pass} and @code{noignore} are synonyms.
5784
5785 @item nopass
5786 @itemx ignore
5787 @value{GDBN} should not allow your program to see this signal.
5788 @code{nopass} and @code{ignore} are synonyms.
5789 @end table
5790 @c @end group
5791
5792 When a signal stops your program, the signal is not visible to the
5793 program until you
5794 continue. Your program sees the signal then, if @code{pass} is in
5795 effect for the signal in question @emph{at that time}. In other words,
5796 after @value{GDBN} reports a signal, you can use the @code{handle}
5797 command with @code{pass} or @code{nopass} to control whether your
5798 program sees that signal when you continue.
5799
5800 The default is set to @code{nostop}, @code{noprint}, @code{pass} for
5801 non-erroneous signals such as @code{SIGALRM}, @code{SIGWINCH} and
5802 @code{SIGCHLD}, and to @code{stop}, @code{print}, @code{pass} for the
5803 erroneous signals.
5804
5805 You can also use the @code{signal} command to prevent your program from
5806 seeing a signal, or cause it to see a signal it normally would not see,
5807 or to give it any signal at any time. For example, if your program stopped
5808 due to some sort of memory reference error, you might store correct
5809 values into the erroneous variables and continue, hoping to see more
5810 execution; but your program would probably terminate immediately as
5811 a result of the fatal signal once it saw the signal. To prevent this,
5812 you can continue with @samp{signal 0}. @xref{Signaling, ,Giving your
5813 Program a Signal}.
5814
5815 @cindex stepping and signal handlers
5816 @anchor{stepping and signal handlers}
5817
5818 @value{GDBN} optimizes for stepping the mainline code. If a signal
5819 that has @code{handle nostop} and @code{handle pass} set arrives while
5820 a stepping command (e.g., @code{stepi}, @code{step}, @code{next}) is
5821 in progress, @value{GDBN} lets the signal handler run and then resumes
5822 stepping the mainline code once the signal handler returns. In other
5823 words, @value{GDBN} steps over the signal handler. This prevents
5824 signals that you've specified as not interesting (with @code{handle
5825 nostop}) from changing the focus of debugging unexpectedly. Note that
5826 the signal handler itself may still hit a breakpoint, stop for another
5827 signal that has @code{handle stop} in effect, or for any other event
5828 that normally results in stopping the stepping command sooner. Also
5829 note that @value{GDBN} still informs you that the program received a
5830 signal if @code{handle print} is set.
5831
5832 @anchor{stepping into signal handlers}
5833
5834 If you set @code{handle pass} for a signal, and your program sets up a
5835 handler for it, then issuing a stepping command, such as @code{step}
5836 or @code{stepi}, when your program is stopped due to the signal will
5837 step @emph{into} the signal handler (if the target supports that).
5838
5839 Likewise, if you use the @code{queue-signal} command to queue a signal
5840 to be delivered to the current thread when execution of the thread
5841 resumes (@pxref{Signaling, ,Giving your Program a Signal}), then a
5842 stepping command will step into the signal handler.
5843
5844 Here's an example, using @code{stepi} to step to the first instruction
5845 of @code{SIGUSR1}'s handler:
5846
5847 @smallexample
5848 (@value{GDBP}) handle SIGUSR1
5849 Signal Stop Print Pass to program Description
5850 SIGUSR1 Yes Yes Yes User defined signal 1
5851 (@value{GDBP}) c
5852 Continuing.
5853
5854 Program received signal SIGUSR1, User defined signal 1.
5855 main () sigusr1.c:28
5856 28 p = 0;
5857 (@value{GDBP}) si
5858 sigusr1_handler () at sigusr1.c:9
5859 9 @{
5860 @end smallexample
5861
5862 The same, but using @code{queue-signal} instead of waiting for the
5863 program to receive the signal first:
5864
5865 @smallexample
5866 (@value{GDBP}) n
5867 28 p = 0;
5868 (@value{GDBP}) queue-signal SIGUSR1
5869 (@value{GDBP}) si
5870 sigusr1_handler () at sigusr1.c:9
5871 9 @{
5872 (@value{GDBP})
5873 @end smallexample
5874
5875 @cindex extra signal information
5876 @anchor{extra signal information}
5877
5878 On some targets, @value{GDBN} can inspect extra signal information
5879 associated with the intercepted signal, before it is actually
5880 delivered to the program being debugged. This information is exported
5881 by the convenience variable @code{$_siginfo}, and consists of data
5882 that is passed by the kernel to the signal handler at the time of the
5883 receipt of a signal. The data type of the information itself is
5884 target dependent. You can see the data type using the @code{ptype
5885 $_siginfo} command. On Unix systems, it typically corresponds to the
5886 standard @code{siginfo_t} type, as defined in the @file{signal.h}
5887 system header.
5888
5889 Here's an example, on a @sc{gnu}/Linux system, printing the stray
5890 referenced address that raised a segmentation fault.
5891
5892 @smallexample
5893 @group
5894 (@value{GDBP}) continue
5895 Program received signal SIGSEGV, Segmentation fault.
5896 0x0000000000400766 in main ()
5897 69 *(int *)p = 0;
5898 (@value{GDBP}) ptype $_siginfo
5899 type = struct @{
5900 int si_signo;
5901 int si_errno;
5902 int si_code;
5903 union @{
5904 int _pad[28];
5905 struct @{...@} _kill;
5906 struct @{...@} _timer;
5907 struct @{...@} _rt;
5908 struct @{...@} _sigchld;
5909 struct @{...@} _sigfault;
5910 struct @{...@} _sigpoll;
5911 @} _sifields;
5912 @}
5913 (@value{GDBP}) ptype $_siginfo._sifields._sigfault
5914 type = struct @{
5915 void *si_addr;
5916 @}
5917 (@value{GDBP}) p $_siginfo._sifields._sigfault.si_addr
5918 $1 = (void *) 0x7ffff7ff7000
5919 @end group
5920 @end smallexample
5921
5922 Depending on target support, @code{$_siginfo} may also be writable.
5923
5924 @cindex Intel MPX boundary violations
5925 @cindex boundary violations, Intel MPX
5926 On some targets, a @code{SIGSEGV} can be caused by a boundary
5927 violation, i.e., accessing an address outside of the allowed range.
5928 In those cases @value{GDBN} may displays additional information,
5929 depending on how @value{GDBN} has been told to handle the signal.
5930 With @code{handle stop SIGSEGV}, @value{GDBN} displays the violation
5931 kind: "Upper" or "Lower", the memory address accessed and the
5932 bounds, while with @code{handle nostop SIGSEGV} no additional
5933 information is displayed.
5934
5935 The usual output of a segfault is:
5936 @smallexample
5937 Program received signal SIGSEGV, Segmentation fault
5938 0x0000000000400d7c in upper () at i386-mpx-sigsegv.c:68
5939 68 value = *(p + len);
5940 @end smallexample
5941
5942 While a bound violation is presented as:
5943 @smallexample
5944 Program received signal SIGSEGV, Segmentation fault
5945 Upper bound violation while accessing address 0x7fffffffc3b3
5946 Bounds: [lower = 0x7fffffffc390, upper = 0x7fffffffc3a3]
5947 0x0000000000400d7c in upper () at i386-mpx-sigsegv.c:68
5948 68 value = *(p + len);
5949 @end smallexample
5950
5951 @node Thread Stops
5952 @section Stopping and Starting Multi-thread Programs
5953
5954 @cindex stopped threads
5955 @cindex threads, stopped
5956
5957 @cindex continuing threads
5958 @cindex threads, continuing
5959
5960 @value{GDBN} supports debugging programs with multiple threads
5961 (@pxref{Threads,, Debugging Programs with Multiple Threads}). There
5962 are two modes of controlling execution of your program within the
5963 debugger. In the default mode, referred to as @dfn{all-stop mode},
5964 when any thread in your program stops (for example, at a breakpoint
5965 or while being stepped), all other threads in the program are also stopped by
5966 @value{GDBN}. On some targets, @value{GDBN} also supports
5967 @dfn{non-stop mode}, in which other threads can continue to run freely while
5968 you examine the stopped thread in the debugger.
5969
5970 @menu
5971 * All-Stop Mode:: All threads stop when GDB takes control
5972 * Non-Stop Mode:: Other threads continue to execute
5973 * Background Execution:: Running your program asynchronously
5974 * Thread-Specific Breakpoints:: Controlling breakpoints
5975 * Interrupted System Calls:: GDB may interfere with system calls
5976 * Observer Mode:: GDB does not alter program behavior
5977 @end menu
5978
5979 @node All-Stop Mode
5980 @subsection All-Stop Mode
5981
5982 @cindex all-stop mode
5983
5984 In all-stop mode, whenever your program stops under @value{GDBN} for any reason,
5985 @emph{all} threads of execution stop, not just the current thread. This
5986 allows you to examine the overall state of the program, including
5987 switching between threads, without worrying that things may change
5988 underfoot.
5989
5990 Conversely, whenever you restart the program, @emph{all} threads start
5991 executing. @emph{This is true even when single-stepping} with commands
5992 like @code{step} or @code{next}.
5993
5994 In particular, @value{GDBN} cannot single-step all threads in lockstep.
5995 Since thread scheduling is up to your debugging target's operating
5996 system (not controlled by @value{GDBN}), other threads may
5997 execute more than one statement while the current thread completes a
5998 single step. Moreover, in general other threads stop in the middle of a
5999 statement, rather than at a clean statement boundary, when the program
6000 stops.
6001
6002 You might even find your program stopped in another thread after
6003 continuing or even single-stepping. This happens whenever some other
6004 thread runs into a breakpoint, a signal, or an exception before the
6005 first thread completes whatever you requested.
6006
6007 @cindex automatic thread selection
6008 @cindex switching threads automatically
6009 @cindex threads, automatic switching
6010 Whenever @value{GDBN} stops your program, due to a breakpoint or a
6011 signal, it automatically selects the thread where that breakpoint or
6012 signal happened. @value{GDBN} alerts you to the context switch with a
6013 message such as @samp{[Switching to Thread @var{n}]} to identify the
6014 thread.
6015
6016 On some OSes, you can modify @value{GDBN}'s default behavior by
6017 locking the OS scheduler to allow only a single thread to run.
6018
6019 @table @code
6020 @item set scheduler-locking @var{mode}
6021 @cindex scheduler locking mode
6022 @cindex lock scheduler
6023 Set the scheduler locking mode. It applies to normal execution,
6024 record mode, and replay mode. If it is @code{off}, then there is no
6025 locking and any thread may run at any time. If @code{on}, then only
6026 the current thread may run when the inferior is resumed. The
6027 @code{step} mode optimizes for single-stepping; it prevents other
6028 threads from preempting the current thread while you are stepping, so
6029 that the focus of debugging does not change unexpectedly. Other
6030 threads never get a chance to run when you step, and they are
6031 completely free to run when you use commands like @samp{continue},
6032 @samp{until}, or @samp{finish}. However, unless another thread hits a
6033 breakpoint during its timeslice, @value{GDBN} does not change the
6034 current thread away from the thread that you are debugging. The
6035 @code{replay} mode behaves like @code{off} in record mode and like
6036 @code{on} in replay mode.
6037
6038 @item show scheduler-locking
6039 Display the current scheduler locking mode.
6040 @end table
6041
6042 @cindex resume threads of multiple processes simultaneously
6043 By default, when you issue one of the execution commands such as
6044 @code{continue}, @code{next} or @code{step}, @value{GDBN} allows only
6045 threads of the current inferior to run. For example, if @value{GDBN}
6046 is attached to two inferiors, each with two threads, the
6047 @code{continue} command resumes only the two threads of the current
6048 inferior. This is useful, for example, when you debug a program that
6049 forks and you want to hold the parent stopped (so that, for instance,
6050 it doesn't run to exit), while you debug the child. In other
6051 situations, you may not be interested in inspecting the current state
6052 of any of the processes @value{GDBN} is attached to, and you may want
6053 to resume them all until some breakpoint is hit. In the latter case,
6054 you can instruct @value{GDBN} to allow all threads of all the
6055 inferiors to run with the @w{@code{set schedule-multiple}} command.
6056
6057 @table @code
6058 @kindex set schedule-multiple
6059 @item set schedule-multiple
6060 Set the mode for allowing threads of multiple processes to be resumed
6061 when an execution command is issued. When @code{on}, all threads of
6062 all processes are allowed to run. When @code{off}, only the threads
6063 of the current process are resumed. The default is @code{off}. The
6064 @code{scheduler-locking} mode takes precedence when set to @code{on},
6065 or while you are stepping and set to @code{step}.
6066
6067 @item show schedule-multiple
6068 Display the current mode for resuming the execution of threads of
6069 multiple processes.
6070 @end table
6071
6072 @node Non-Stop Mode
6073 @subsection Non-Stop Mode
6074
6075 @cindex non-stop mode
6076
6077 @c This section is really only a place-holder, and needs to be expanded
6078 @c with more details.
6079
6080 For some multi-threaded targets, @value{GDBN} supports an optional
6081 mode of operation in which you can examine stopped program threads in
6082 the debugger while other threads continue to execute freely. This
6083 minimizes intrusion when debugging live systems, such as programs
6084 where some threads have real-time constraints or must continue to
6085 respond to external events. This is referred to as @dfn{non-stop} mode.
6086
6087 In non-stop mode, when a thread stops to report a debugging event,
6088 @emph{only} that thread is stopped; @value{GDBN} does not stop other
6089 threads as well, in contrast to the all-stop mode behavior. Additionally,
6090 execution commands such as @code{continue} and @code{step} apply by default
6091 only to the current thread in non-stop mode, rather than all threads as
6092 in all-stop mode. This allows you to control threads explicitly in
6093 ways that are not possible in all-stop mode --- for example, stepping
6094 one thread while allowing others to run freely, stepping
6095 one thread while holding all others stopped, or stepping several threads
6096 independently and simultaneously.
6097
6098 To enter non-stop mode, use this sequence of commands before you run
6099 or attach to your program:
6100
6101 @smallexample
6102 # If using the CLI, pagination breaks non-stop.
6103 set pagination off
6104
6105 # Finally, turn it on!
6106 set non-stop on
6107 @end smallexample
6108
6109 You can use these commands to manipulate the non-stop mode setting:
6110
6111 @table @code
6112 @kindex set non-stop
6113 @item set non-stop on
6114 Enable selection of non-stop mode.
6115 @item set non-stop off
6116 Disable selection of non-stop mode.
6117 @kindex show non-stop
6118 @item show non-stop
6119 Show the current non-stop enablement setting.
6120 @end table
6121
6122 Note these commands only reflect whether non-stop mode is enabled,
6123 not whether the currently-executing program is being run in non-stop mode.
6124 In particular, the @code{set non-stop} preference is only consulted when
6125 @value{GDBN} starts or connects to the target program, and it is generally
6126 not possible to switch modes once debugging has started. Furthermore,
6127 since not all targets support non-stop mode, even when you have enabled
6128 non-stop mode, @value{GDBN} may still fall back to all-stop operation by
6129 default.
6130
6131 In non-stop mode, all execution commands apply only to the current thread
6132 by default. That is, @code{continue} only continues one thread.
6133 To continue all threads, issue @code{continue -a} or @code{c -a}.
6134
6135 You can use @value{GDBN}'s background execution commands
6136 (@pxref{Background Execution}) to run some threads in the background
6137 while you continue to examine or step others from @value{GDBN}.
6138 The MI execution commands (@pxref{GDB/MI Program Execution}) are
6139 always executed asynchronously in non-stop mode.
6140
6141 Suspending execution is done with the @code{interrupt} command when
6142 running in the background, or @kbd{Ctrl-c} during foreground execution.
6143 In all-stop mode, this stops the whole process;
6144 but in non-stop mode the interrupt applies only to the current thread.
6145 To stop the whole program, use @code{interrupt -a}.
6146
6147 Other execution commands do not currently support the @code{-a} option.
6148
6149 In non-stop mode, when a thread stops, @value{GDBN} doesn't automatically make
6150 that thread current, as it does in all-stop mode. This is because the
6151 thread stop notifications are asynchronous with respect to @value{GDBN}'s
6152 command interpreter, and it would be confusing if @value{GDBN} unexpectedly
6153 changed to a different thread just as you entered a command to operate on the
6154 previously current thread.
6155
6156 @node Background Execution
6157 @subsection Background Execution
6158
6159 @cindex foreground execution
6160 @cindex background execution
6161 @cindex asynchronous execution
6162 @cindex execution, foreground, background and asynchronous
6163
6164 @value{GDBN}'s execution commands have two variants: the normal
6165 foreground (synchronous) behavior, and a background
6166 (asynchronous) behavior. In foreground execution, @value{GDBN} waits for
6167 the program to report that some thread has stopped before prompting for
6168 another command. In background execution, @value{GDBN} immediately gives
6169 a command prompt so that you can issue other commands while your program runs.
6170
6171 If the target doesn't support async mode, @value{GDBN} issues an error
6172 message if you attempt to use the background execution commands.
6173
6174 To specify background execution, add a @code{&} to the command. For example,
6175 the background form of the @code{continue} command is @code{continue&}, or
6176 just @code{c&}. The execution commands that accept background execution
6177 are:
6178
6179 @table @code
6180 @kindex run&
6181 @item run
6182 @xref{Starting, , Starting your Program}.
6183
6184 @item attach
6185 @kindex attach&
6186 @xref{Attach, , Debugging an Already-running Process}.
6187
6188 @item step
6189 @kindex step&
6190 @xref{Continuing and Stepping, step}.
6191
6192 @item stepi
6193 @kindex stepi&
6194 @xref{Continuing and Stepping, stepi}.
6195
6196 @item next
6197 @kindex next&
6198 @xref{Continuing and Stepping, next}.
6199
6200 @item nexti
6201 @kindex nexti&
6202 @xref{Continuing and Stepping, nexti}.
6203
6204 @item continue
6205 @kindex continue&
6206 @xref{Continuing and Stepping, continue}.
6207
6208 @item finish
6209 @kindex finish&
6210 @xref{Continuing and Stepping, finish}.
6211
6212 @item until
6213 @kindex until&
6214 @xref{Continuing and Stepping, until}.
6215
6216 @end table
6217
6218 Background execution is especially useful in conjunction with non-stop
6219 mode for debugging programs with multiple threads; see @ref{Non-Stop Mode}.
6220 However, you can also use these commands in the normal all-stop mode with
6221 the restriction that you cannot issue another execution command until the
6222 previous one finishes. Examples of commands that are valid in all-stop
6223 mode while the program is running include @code{help} and @code{info break}.
6224
6225 You can interrupt your program while it is running in the background by
6226 using the @code{interrupt} command.
6227
6228 @table @code
6229 @kindex interrupt
6230 @item interrupt
6231 @itemx interrupt -a
6232
6233 Suspend execution of the running program. In all-stop mode,
6234 @code{interrupt} stops the whole process, but in non-stop mode, it stops
6235 only the current thread. To stop the whole program in non-stop mode,
6236 use @code{interrupt -a}.
6237 @end table
6238
6239 @node Thread-Specific Breakpoints
6240 @subsection Thread-Specific Breakpoints
6241
6242 When your program has multiple threads (@pxref{Threads,, Debugging
6243 Programs with Multiple Threads}), you can choose whether to set
6244 breakpoints on all threads, or on a particular thread.
6245
6246 @table @code
6247 @cindex breakpoints and threads
6248 @cindex thread breakpoints
6249 @kindex break @dots{} thread @var{thread-id}
6250 @item break @var{location} thread @var{thread-id}
6251 @itemx break @var{location} thread @var{thread-id} if @dots{}
6252 @var{location} specifies source lines; there are several ways of
6253 writing them (@pxref{Specify Location}), but the effect is always to
6254 specify some source line.
6255
6256 Use the qualifier @samp{thread @var{thread-id}} with a breakpoint command
6257 to specify that you only want @value{GDBN} to stop the program when a
6258 particular thread reaches this breakpoint. The @var{thread-id} specifier
6259 is one of the thread identifiers assigned by @value{GDBN}, shown
6260 in the first column of the @samp{info threads} display.
6261
6262 If you do not specify @samp{thread @var{thread-id}} when you set a
6263 breakpoint, the breakpoint applies to @emph{all} threads of your
6264 program.
6265
6266 You can use the @code{thread} qualifier on conditional breakpoints as
6267 well; in this case, place @samp{thread @var{thread-id}} before or
6268 after the breakpoint condition, like this:
6269
6270 @smallexample
6271 (@value{GDBP}) break frik.c:13 thread 28 if bartab > lim
6272 @end smallexample
6273
6274 @end table
6275
6276 Thread-specific breakpoints are automatically deleted when
6277 @value{GDBN} detects the corresponding thread is no longer in the
6278 thread list. For example:
6279
6280 @smallexample
6281 (@value{GDBP}) c
6282 Thread-specific breakpoint 3 deleted - thread 28 no longer in the thread list.
6283 @end smallexample
6284
6285 There are several ways for a thread to disappear, such as a regular
6286 thread exit, but also when you detach from the process with the
6287 @code{detach} command (@pxref{Attach, ,Debugging an Already-running
6288 Process}), or if @value{GDBN} loses the remote connection
6289 (@pxref{Remote Debugging}), etc. Note that with some targets,
6290 @value{GDBN} is only able to detect a thread has exited when the user
6291 explictly asks for the thread list with the @code{info threads}
6292 command.
6293
6294 @node Interrupted System Calls
6295 @subsection Interrupted System Calls
6296
6297 @cindex thread breakpoints and system calls
6298 @cindex system calls and thread breakpoints
6299 @cindex premature return from system calls
6300 There is an unfortunate side effect when using @value{GDBN} to debug
6301 multi-threaded programs. If one thread stops for a
6302 breakpoint, or for some other reason, and another thread is blocked in a
6303 system call, then the system call may return prematurely. This is a
6304 consequence of the interaction between multiple threads and the signals
6305 that @value{GDBN} uses to implement breakpoints and other events that
6306 stop execution.
6307
6308 To handle this problem, your program should check the return value of
6309 each system call and react appropriately. This is good programming
6310 style anyways.
6311
6312 For example, do not write code like this:
6313
6314 @smallexample
6315 sleep (10);
6316 @end smallexample
6317
6318 The call to @code{sleep} will return early if a different thread stops
6319 at a breakpoint or for some other reason.
6320
6321 Instead, write this:
6322
6323 @smallexample
6324 int unslept = 10;
6325 while (unslept > 0)
6326 unslept = sleep (unslept);
6327 @end smallexample
6328
6329 A system call is allowed to return early, so the system is still
6330 conforming to its specification. But @value{GDBN} does cause your
6331 multi-threaded program to behave differently than it would without
6332 @value{GDBN}.
6333
6334 Also, @value{GDBN} uses internal breakpoints in the thread library to
6335 monitor certain events such as thread creation and thread destruction.
6336 When such an event happens, a system call in another thread may return
6337 prematurely, even though your program does not appear to stop.
6338
6339 @node Observer Mode
6340 @subsection Observer Mode
6341
6342 If you want to build on non-stop mode and observe program behavior
6343 without any chance of disruption by @value{GDBN}, you can set
6344 variables to disable all of the debugger's attempts to modify state,
6345 whether by writing memory, inserting breakpoints, etc. These operate
6346 at a low level, intercepting operations from all commands.
6347
6348 When all of these are set to @code{off}, then @value{GDBN} is said to
6349 be @dfn{observer mode}. As a convenience, the variable
6350 @code{observer} can be set to disable these, plus enable non-stop
6351 mode.
6352
6353 Note that @value{GDBN} will not prevent you from making nonsensical
6354 combinations of these settings. For instance, if you have enabled
6355 @code{may-insert-breakpoints} but disabled @code{may-write-memory},
6356 then breakpoints that work by writing trap instructions into the code
6357 stream will still not be able to be placed.
6358
6359 @table @code
6360
6361 @kindex observer
6362 @item set observer on
6363 @itemx set observer off
6364 When set to @code{on}, this disables all the permission variables
6365 below (except for @code{insert-fast-tracepoints}), plus enables
6366 non-stop debugging. Setting this to @code{off} switches back to
6367 normal debugging, though remaining in non-stop mode.
6368
6369 @item show observer
6370 Show whether observer mode is on or off.
6371
6372 @kindex may-write-registers
6373 @item set may-write-registers on
6374 @itemx set may-write-registers off
6375 This controls whether @value{GDBN} will attempt to alter the values of
6376 registers, such as with assignment expressions in @code{print}, or the
6377 @code{jump} command. It defaults to @code{on}.
6378
6379 @item show may-write-registers
6380 Show the current permission to write registers.
6381
6382 @kindex may-write-memory
6383 @item set may-write-memory on
6384 @itemx set may-write-memory off
6385 This controls whether @value{GDBN} will attempt to alter the contents
6386 of memory, such as with assignment expressions in @code{print}. It
6387 defaults to @code{on}.
6388
6389 @item show may-write-memory
6390 Show the current permission to write memory.
6391
6392 @kindex may-insert-breakpoints
6393 @item set may-insert-breakpoints on
6394 @itemx set may-insert-breakpoints off
6395 This controls whether @value{GDBN} will attempt to insert breakpoints.
6396 This affects all breakpoints, including internal breakpoints defined
6397 by @value{GDBN}. It defaults to @code{on}.
6398
6399 @item show may-insert-breakpoints
6400 Show the current permission to insert breakpoints.
6401
6402 @kindex may-insert-tracepoints
6403 @item set may-insert-tracepoints on
6404 @itemx set may-insert-tracepoints off
6405 This controls whether @value{GDBN} will attempt to insert (regular)
6406 tracepoints at the beginning of a tracing experiment. It affects only
6407 non-fast tracepoints, fast tracepoints being under the control of
6408 @code{may-insert-fast-tracepoints}. It defaults to @code{on}.
6409
6410 @item show may-insert-tracepoints
6411 Show the current permission to insert tracepoints.
6412
6413 @kindex may-insert-fast-tracepoints
6414 @item set may-insert-fast-tracepoints on
6415 @itemx set may-insert-fast-tracepoints off
6416 This controls whether @value{GDBN} will attempt to insert fast
6417 tracepoints at the beginning of a tracing experiment. It affects only
6418 fast tracepoints, regular (non-fast) tracepoints being under the
6419 control of @code{may-insert-tracepoints}. It defaults to @code{on}.
6420
6421 @item show may-insert-fast-tracepoints
6422 Show the current permission to insert fast tracepoints.
6423
6424 @kindex may-interrupt
6425 @item set may-interrupt on
6426 @itemx set may-interrupt off
6427 This controls whether @value{GDBN} will attempt to interrupt or stop
6428 program execution. When this variable is @code{off}, the
6429 @code{interrupt} command will have no effect, nor will
6430 @kbd{Ctrl-c}. It defaults to @code{on}.
6431
6432 @item show may-interrupt
6433 Show the current permission to interrupt or stop the program.
6434
6435 @end table
6436
6437 @node Reverse Execution
6438 @chapter Running programs backward
6439 @cindex reverse execution
6440 @cindex running programs backward
6441
6442 When you are debugging a program, it is not unusual to realize that
6443 you have gone too far, and some event of interest has already happened.
6444 If the target environment supports it, @value{GDBN} can allow you to
6445 ``rewind'' the program by running it backward.
6446
6447 A target environment that supports reverse execution should be able
6448 to ``undo'' the changes in machine state that have taken place as the
6449 program was executing normally. Variables, registers etc.@: should
6450 revert to their previous values. Obviously this requires a great
6451 deal of sophistication on the part of the target environment; not
6452 all target environments can support reverse execution.
6453
6454 When a program is executed in reverse, the instructions that
6455 have most recently been executed are ``un-executed'', in reverse
6456 order. The program counter runs backward, following the previous
6457 thread of execution in reverse. As each instruction is ``un-executed'',
6458 the values of memory and/or registers that were changed by that
6459 instruction are reverted to their previous states. After executing
6460 a piece of source code in reverse, all side effects of that code
6461 should be ``undone'', and all variables should be returned to their
6462 prior values@footnote{
6463 Note that some side effects are easier to undo than others. For instance,
6464 memory and registers are relatively easy, but device I/O is hard. Some
6465 targets may be able undo things like device I/O, and some may not.
6466
6467 The contract between @value{GDBN} and the reverse executing target
6468 requires only that the target do something reasonable when
6469 @value{GDBN} tells it to execute backwards, and then report the
6470 results back to @value{GDBN}. Whatever the target reports back to
6471 @value{GDBN}, @value{GDBN} will report back to the user. @value{GDBN}
6472 assumes that the memory and registers that the target reports are in a
6473 consistant state, but @value{GDBN} accepts whatever it is given.
6474 }.
6475
6476 If you are debugging in a target environment that supports
6477 reverse execution, @value{GDBN} provides the following commands.
6478
6479 @table @code
6480 @kindex reverse-continue
6481 @kindex rc @r{(@code{reverse-continue})}
6482 @item reverse-continue @r{[}@var{ignore-count}@r{]}
6483 @itemx rc @r{[}@var{ignore-count}@r{]}
6484 Beginning at the point where your program last stopped, start executing
6485 in reverse. Reverse execution will stop for breakpoints and synchronous
6486 exceptions (signals), just like normal execution. Behavior of
6487 asynchronous signals depends on the target environment.
6488
6489 @kindex reverse-step
6490 @kindex rs @r{(@code{step})}
6491 @item reverse-step @r{[}@var{count}@r{]}
6492 Run the program backward until control reaches the start of a
6493 different source line; then stop it, and return control to @value{GDBN}.
6494
6495 Like the @code{step} command, @code{reverse-step} will only stop
6496 at the beginning of a source line. It ``un-executes'' the previously
6497 executed source line. If the previous source line included calls to
6498 debuggable functions, @code{reverse-step} will step (backward) into
6499 the called function, stopping at the beginning of the @emph{last}
6500 statement in the called function (typically a return statement).
6501
6502 Also, as with the @code{step} command, if non-debuggable functions are
6503 called, @code{reverse-step} will run thru them backward without stopping.
6504
6505 @kindex reverse-stepi
6506 @kindex rsi @r{(@code{reverse-stepi})}
6507 @item reverse-stepi @r{[}@var{count}@r{]}
6508 Reverse-execute one machine instruction. Note that the instruction
6509 to be reverse-executed is @emph{not} the one pointed to by the program
6510 counter, but the instruction executed prior to that one. For instance,
6511 if the last instruction was a jump, @code{reverse-stepi} will take you
6512 back from the destination of the jump to the jump instruction itself.
6513
6514 @kindex reverse-next
6515 @kindex rn @r{(@code{reverse-next})}
6516 @item reverse-next @r{[}@var{count}@r{]}
6517 Run backward to the beginning of the previous line executed in
6518 the current (innermost) stack frame. If the line contains function
6519 calls, they will be ``un-executed'' without stopping. Starting from
6520 the first line of a function, @code{reverse-next} will take you back
6521 to the caller of that function, @emph{before} the function was called,
6522 just as the normal @code{next} command would take you from the last
6523 line of a function back to its return to its caller
6524 @footnote{Unless the code is too heavily optimized.}.
6525
6526 @kindex reverse-nexti
6527 @kindex rni @r{(@code{reverse-nexti})}
6528 @item reverse-nexti @r{[}@var{count}@r{]}
6529 Like @code{nexti}, @code{reverse-nexti} executes a single instruction
6530 in reverse, except that called functions are ``un-executed'' atomically.
6531 That is, if the previously executed instruction was a return from
6532 another function, @code{reverse-nexti} will continue to execute
6533 in reverse until the call to that function (from the current stack
6534 frame) is reached.
6535
6536 @kindex reverse-finish
6537 @item reverse-finish
6538 Just as the @code{finish} command takes you to the point where the
6539 current function returns, @code{reverse-finish} takes you to the point
6540 where it was called. Instead of ending up at the end of the current
6541 function invocation, you end up at the beginning.
6542
6543 @kindex set exec-direction
6544 @item set exec-direction
6545 Set the direction of target execution.
6546 @item set exec-direction reverse
6547 @cindex execute forward or backward in time
6548 @value{GDBN} will perform all execution commands in reverse, until the
6549 exec-direction mode is changed to ``forward''. Affected commands include
6550 @code{step, stepi, next, nexti, continue, and finish}. The @code{return}
6551 command cannot be used in reverse mode.
6552 @item set exec-direction forward
6553 @value{GDBN} will perform all execution commands in the normal fashion.
6554 This is the default.
6555 @end table
6556
6557
6558 @node Process Record and Replay
6559 @chapter Recording Inferior's Execution and Replaying It
6560 @cindex process record and replay
6561 @cindex recording inferior's execution and replaying it
6562
6563 On some platforms, @value{GDBN} provides a special @dfn{process record
6564 and replay} target that can record a log of the process execution, and
6565 replay it later with both forward and reverse execution commands.
6566
6567 @cindex replay mode
6568 When this target is in use, if the execution log includes the record
6569 for the next instruction, @value{GDBN} will debug in @dfn{replay
6570 mode}. In the replay mode, the inferior does not really execute code
6571 instructions. Instead, all the events that normally happen during
6572 code execution are taken from the execution log. While code is not
6573 really executed in replay mode, the values of registers (including the
6574 program counter register) and the memory of the inferior are still
6575 changed as they normally would. Their contents are taken from the
6576 execution log.
6577
6578 @cindex record mode
6579 If the record for the next instruction is not in the execution log,
6580 @value{GDBN} will debug in @dfn{record mode}. In this mode, the
6581 inferior executes normally, and @value{GDBN} records the execution log
6582 for future replay.
6583
6584 The process record and replay target supports reverse execution
6585 (@pxref{Reverse Execution}), even if the platform on which the
6586 inferior runs does not. However, the reverse execution is limited in
6587 this case by the range of the instructions recorded in the execution
6588 log. In other words, reverse execution on platforms that don't
6589 support it directly can only be done in the replay mode.
6590
6591 When debugging in the reverse direction, @value{GDBN} will work in
6592 replay mode as long as the execution log includes the record for the
6593 previous instruction; otherwise, it will work in record mode, if the
6594 platform supports reverse execution, or stop if not.
6595
6596 For architecture environments that support process record and replay,
6597 @value{GDBN} provides the following commands:
6598
6599 @table @code
6600 @kindex target record
6601 @kindex target record-full
6602 @kindex target record-btrace
6603 @kindex record
6604 @kindex record full
6605 @kindex record btrace
6606 @kindex record btrace bts
6607 @kindex record btrace pt
6608 @kindex record bts
6609 @kindex record pt
6610 @kindex rec
6611 @kindex rec full
6612 @kindex rec btrace
6613 @kindex rec btrace bts
6614 @kindex rec btrace pt
6615 @kindex rec bts
6616 @kindex rec pt
6617 @item record @var{method}
6618 This command starts the process record and replay target. The
6619 recording method can be specified as parameter. Without a parameter
6620 the command uses the @code{full} recording method. The following
6621 recording methods are available:
6622
6623 @table @code
6624 @item full
6625 Full record/replay recording using @value{GDBN}'s software record and
6626 replay implementation. This method allows replaying and reverse
6627 execution.
6628
6629 @item btrace @var{format}
6630 Hardware-supported instruction recording. This method does not record
6631 data. Further, the data is collected in a ring buffer so old data will
6632 be overwritten when the buffer is full. It allows limited reverse
6633 execution. Variables and registers are not available during reverse
6634 execution.
6635
6636 The recording format can be specified as parameter. Without a parameter
6637 the command chooses the recording format. The following recording
6638 formats are available:
6639
6640 @table @code
6641 @item bts
6642 @cindex branch trace store
6643 Use the @dfn{Branch Trace Store} (@acronym{BTS}) recording format. In
6644 this format, the processor stores a from/to record for each executed
6645 branch in the btrace ring buffer.
6646
6647 @item pt
6648 @cindex Intel Processor Trace
6649 Use the @dfn{Intel Processor Trace} recording format. In this
6650 format, the processor stores the execution trace in a compressed form
6651 that is afterwards decoded by @value{GDBN}.
6652
6653 The trace can be recorded with very low overhead. The compressed
6654 trace format also allows small trace buffers to already contain a big
6655 number of instructions compared to @acronym{BTS}.
6656
6657 Decoding the recorded execution trace, on the other hand, is more
6658 expensive than decoding @acronym{BTS} trace. This is mostly due to the
6659 increased number of instructions to process. You should increase the
6660 buffer-size with care.
6661 @end table
6662
6663 Not all recording formats may be available on all processors.
6664 @end table
6665
6666 The process record and replay target can only debug a process that is
6667 already running. Therefore, you need first to start the process with
6668 the @kbd{run} or @kbd{start} commands, and then start the recording
6669 with the @kbd{record @var{method}} command.
6670
6671 @cindex displaced stepping, and process record and replay
6672 Displaced stepping (@pxref{Maintenance Commands,, displaced stepping})
6673 will be automatically disabled when process record and replay target
6674 is started. That's because the process record and replay target
6675 doesn't support displaced stepping.
6676
6677 @cindex non-stop mode, and process record and replay
6678 @cindex asynchronous execution, and process record and replay
6679 If the inferior is in the non-stop mode (@pxref{Non-Stop Mode}) or in
6680 the asynchronous execution mode (@pxref{Background Execution}), not
6681 all recording methods are available. The @code{full} recording method
6682 does not support these two modes.
6683
6684 @kindex record stop
6685 @kindex rec s
6686 @item record stop
6687 Stop the process record and replay target. When process record and
6688 replay target stops, the entire execution log will be deleted and the
6689 inferior will either be terminated, or will remain in its final state.
6690
6691 When you stop the process record and replay target in record mode (at
6692 the end of the execution log), the inferior will be stopped at the
6693 next instruction that would have been recorded. In other words, if
6694 you record for a while and then stop recording, the inferior process
6695 will be left in the same state as if the recording never happened.
6696
6697 On the other hand, if the process record and replay target is stopped
6698 while in replay mode (that is, not at the end of the execution log,
6699 but at some earlier point), the inferior process will become ``live''
6700 at that earlier state, and it will then be possible to continue the
6701 usual ``live'' debugging of the process from that state.
6702
6703 When the inferior process exits, or @value{GDBN} detaches from it,
6704 process record and replay target will automatically stop itself.
6705
6706 @kindex record goto
6707 @item record goto
6708 Go to a specific location in the execution log. There are several
6709 ways to specify the location to go to:
6710
6711 @table @code
6712 @item record goto begin
6713 @itemx record goto start
6714 Go to the beginning of the execution log.
6715
6716 @item record goto end
6717 Go to the end of the execution log.
6718
6719 @item record goto @var{n}
6720 Go to instruction number @var{n} in the execution log.
6721 @end table
6722
6723 @kindex record save
6724 @item record save @var{filename}
6725 Save the execution log to a file @file{@var{filename}}.
6726 Default filename is @file{gdb_record.@var{process_id}}, where
6727 @var{process_id} is the process ID of the inferior.
6728
6729 This command may not be available for all recording methods.
6730
6731 @kindex record restore
6732 @item record restore @var{filename}
6733 Restore the execution log from a file @file{@var{filename}}.
6734 File must have been created with @code{record save}.
6735
6736 @kindex set record full
6737 @item set record full insn-number-max @var{limit}
6738 @itemx set record full insn-number-max unlimited
6739 Set the limit of instructions to be recorded for the @code{full}
6740 recording method. Default value is 200000.
6741
6742 If @var{limit} is a positive number, then @value{GDBN} will start
6743 deleting instructions from the log once the number of the record
6744 instructions becomes greater than @var{limit}. For every new recorded
6745 instruction, @value{GDBN} will delete the earliest recorded
6746 instruction to keep the number of recorded instructions at the limit.
6747 (Since deleting recorded instructions loses information, @value{GDBN}
6748 lets you control what happens when the limit is reached, by means of
6749 the @code{stop-at-limit} option, described below.)
6750
6751 If @var{limit} is @code{unlimited} or zero, @value{GDBN} will never
6752 delete recorded instructions from the execution log. The number of
6753 recorded instructions is limited only by the available memory.
6754
6755 @kindex show record full
6756 @item show record full insn-number-max
6757 Show the limit of instructions to be recorded with the @code{full}
6758 recording method.
6759
6760 @item set record full stop-at-limit
6761 Control the behavior of the @code{full} recording method when the
6762 number of recorded instructions reaches the limit. If ON (the
6763 default), @value{GDBN} will stop when the limit is reached for the
6764 first time and ask you whether you want to stop the inferior or
6765 continue running it and recording the execution log. If you decide
6766 to continue recording, each new recorded instruction will cause the
6767 oldest one to be deleted.
6768
6769 If this option is OFF, @value{GDBN} will automatically delete the
6770 oldest record to make room for each new one, without asking.
6771
6772 @item show record full stop-at-limit
6773 Show the current setting of @code{stop-at-limit}.
6774
6775 @item set record full memory-query
6776 Control the behavior when @value{GDBN} is unable to record memory
6777 changes caused by an instruction for the @code{full} recording method.
6778 If ON, @value{GDBN} will query whether to stop the inferior in that
6779 case.
6780
6781 If this option is OFF (the default), @value{GDBN} will automatically
6782 ignore the effect of such instructions on memory. Later, when
6783 @value{GDBN} replays this execution log, it will mark the log of this
6784 instruction as not accessible, and it will not affect the replay
6785 results.
6786
6787 @item show record full memory-query
6788 Show the current setting of @code{memory-query}.
6789
6790 @kindex set record btrace
6791 The @code{btrace} record target does not trace data. As a
6792 convenience, when replaying, @value{GDBN} reads read-only memory off
6793 the live program directly, assuming that the addresses of the
6794 read-only areas don't change. This for example makes it possible to
6795 disassemble code while replaying, but not to print variables.
6796 In some cases, being able to inspect variables might be useful.
6797 You can use the following command for that:
6798
6799 @item set record btrace replay-memory-access
6800 Control the behavior of the @code{btrace} recording method when
6801 accessing memory during replay. If @code{read-only} (the default),
6802 @value{GDBN} will only allow accesses to read-only memory.
6803 If @code{read-write}, @value{GDBN} will allow accesses to read-only
6804 and to read-write memory. Beware that the accessed memory corresponds
6805 to the live target and not necessarily to the current replay
6806 position.
6807
6808 @kindex show record btrace
6809 @item show record btrace replay-memory-access
6810 Show the current setting of @code{replay-memory-access}.
6811
6812 @kindex set record btrace bts
6813 @item set record btrace bts buffer-size @var{size}
6814 @itemx set record btrace bts buffer-size unlimited
6815 Set the requested ring buffer size for branch tracing in @acronym{BTS}
6816 format. Default is 64KB.
6817
6818 If @var{size} is a positive number, then @value{GDBN} will try to
6819 allocate a buffer of at least @var{size} bytes for each new thread
6820 that uses the btrace recording method and the @acronym{BTS} format.
6821 The actually obtained buffer size may differ from the requested
6822 @var{size}. Use the @code{info record} command to see the actual
6823 buffer size for each thread that uses the btrace recording method and
6824 the @acronym{BTS} format.
6825
6826 If @var{limit} is @code{unlimited} or zero, @value{GDBN} will try to
6827 allocate a buffer of 4MB.
6828
6829 Bigger buffers mean longer traces. On the other hand, @value{GDBN} will
6830 also need longer to process the branch trace data before it can be used.
6831
6832 @item show record btrace bts buffer-size @var{size}
6833 Show the current setting of the requested ring buffer size for branch
6834 tracing in @acronym{BTS} format.
6835
6836 @kindex set record btrace pt
6837 @item set record btrace pt buffer-size @var{size}
6838 @itemx set record btrace pt buffer-size unlimited
6839 Set the requested ring buffer size for branch tracing in Intel
6840 Processor Trace format. Default is 16KB.
6841
6842 If @var{size} is a positive number, then @value{GDBN} will try to
6843 allocate a buffer of at least @var{size} bytes for each new thread
6844 that uses the btrace recording method and the Intel Processor Trace
6845 format. The actually obtained buffer size may differ from the
6846 requested @var{size}. Use the @code{info record} command to see the
6847 actual buffer size for each thread.
6848
6849 If @var{limit} is @code{unlimited} or zero, @value{GDBN} will try to
6850 allocate a buffer of 4MB.
6851
6852 Bigger buffers mean longer traces. On the other hand, @value{GDBN} will
6853 also need longer to process the branch trace data before it can be used.
6854
6855 @item show record btrace pt buffer-size @var{size}
6856 Show the current setting of the requested ring buffer size for branch
6857 tracing in Intel Processor Trace format.
6858
6859 @kindex info record
6860 @item info record
6861 Show various statistics about the recording depending on the recording
6862 method:
6863
6864 @table @code
6865 @item full
6866 For the @code{full} recording method, it shows the state of process
6867 record and its in-memory execution log buffer, including:
6868
6869 @itemize @bullet
6870 @item
6871 Whether in record mode or replay mode.
6872 @item
6873 Lowest recorded instruction number (counting from when the current execution log started recording instructions).
6874 @item
6875 Highest recorded instruction number.
6876 @item
6877 Current instruction about to be replayed (if in replay mode).
6878 @item
6879 Number of instructions contained in the execution log.
6880 @item
6881 Maximum number of instructions that may be contained in the execution log.
6882 @end itemize
6883
6884 @item btrace
6885 For the @code{btrace} recording method, it shows:
6886
6887 @itemize @bullet
6888 @item
6889 Recording format.
6890 @item
6891 Number of instructions that have been recorded.
6892 @item
6893 Number of blocks of sequential control-flow formed by the recorded
6894 instructions.
6895 @item
6896 Whether in record mode or replay mode.
6897 @end itemize
6898
6899 For the @code{bts} recording format, it also shows:
6900 @itemize @bullet
6901 @item
6902 Size of the perf ring buffer.
6903 @end itemize
6904
6905 For the @code{pt} recording format, it also shows:
6906 @itemize @bullet
6907 @item
6908 Size of the perf ring buffer.
6909 @end itemize
6910 @end table
6911
6912 @kindex record delete
6913 @kindex rec del
6914 @item record delete
6915 When record target runs in replay mode (``in the past''), delete the
6916 subsequent execution log and begin to record a new execution log starting
6917 from the current address. This means you will abandon the previously
6918 recorded ``future'' and begin recording a new ``future''.
6919
6920 @kindex record instruction-history
6921 @kindex rec instruction-history
6922 @item record instruction-history
6923 Disassembles instructions from the recorded execution log. By
6924 default, ten instructions are disassembled. This can be changed using
6925 the @code{set record instruction-history-size} command. Instructions
6926 are printed in execution order.
6927
6928 It can also print mixed source+disassembly if you specify the the
6929 @code{/m} or @code{/s} modifier, and print the raw instructions in hex
6930 as well as in symbolic form by specifying the @code{/r} modifier.
6931
6932 The current position marker is printed for the instruction at the
6933 current program counter value. This instruction can appear multiple
6934 times in the trace and the current position marker will be printed
6935 every time. To omit the current position marker, specify the
6936 @code{/p} modifier.
6937
6938 To better align the printed instructions when the trace contains
6939 instructions from more than one function, the function name may be
6940 omitted by specifying the @code{/f} modifier.
6941
6942 Speculatively executed instructions are prefixed with @samp{?}. This
6943 feature is not available for all recording formats.
6944
6945 There are several ways to specify what part of the execution log to
6946 disassemble:
6947
6948 @table @code
6949 @item record instruction-history @var{insn}
6950 Disassembles ten instructions starting from instruction number
6951 @var{insn}.
6952
6953 @item record instruction-history @var{insn}, +/-@var{n}
6954 Disassembles @var{n} instructions around instruction number
6955 @var{insn}. If @var{n} is preceded with @code{+}, disassembles
6956 @var{n} instructions after instruction number @var{insn}. If
6957 @var{n} is preceded with @code{-}, disassembles @var{n}
6958 instructions before instruction number @var{insn}.
6959
6960 @item record instruction-history
6961 Disassembles ten more instructions after the last disassembly.
6962
6963 @item record instruction-history -
6964 Disassembles ten more instructions before the last disassembly.
6965
6966 @item record instruction-history @var{begin}, @var{end}
6967 Disassembles instructions beginning with instruction number
6968 @var{begin} until instruction number @var{end}. The instruction
6969 number @var{end} is included.
6970 @end table
6971
6972 This command may not be available for all recording methods.
6973
6974 @kindex set record
6975 @item set record instruction-history-size @var{size}
6976 @itemx set record instruction-history-size unlimited
6977 Define how many instructions to disassemble in the @code{record
6978 instruction-history} command. The default value is 10.
6979 A @var{size} of @code{unlimited} means unlimited instructions.
6980
6981 @kindex show record
6982 @item show record instruction-history-size
6983 Show how many instructions to disassemble in the @code{record
6984 instruction-history} command.
6985
6986 @kindex record function-call-history
6987 @kindex rec function-call-history
6988 @item record function-call-history
6989 Prints the execution history at function granularity. It prints one
6990 line for each sequence of instructions that belong to the same
6991 function giving the name of that function, the source lines
6992 for this instruction sequence (if the @code{/l} modifier is
6993 specified), and the instructions numbers that form the sequence (if
6994 the @code{/i} modifier is specified). The function names are indented
6995 to reflect the call stack depth if the @code{/c} modifier is
6996 specified. The @code{/l}, @code{/i}, and @code{/c} modifiers can be
6997 given together.
6998
6999 @smallexample
7000 (@value{GDBP}) @b{list 1, 10}
7001 1 void foo (void)
7002 2 @{
7003 3 @}
7004 4
7005 5 void bar (void)
7006 6 @{
7007 7 ...
7008 8 foo ();
7009 9 ...
7010 10 @}
7011 (@value{GDBP}) @b{record function-call-history /ilc}
7012 1 bar inst 1,4 at foo.c:6,8
7013 2 foo inst 5,10 at foo.c:2,3
7014 3 bar inst 11,13 at foo.c:9,10
7015 @end smallexample
7016
7017 By default, ten lines are printed. This can be changed using the
7018 @code{set record function-call-history-size} command. Functions are
7019 printed in execution order. There are several ways to specify what
7020 to print:
7021
7022 @table @code
7023 @item record function-call-history @var{func}
7024 Prints ten functions starting from function number @var{func}.
7025
7026 @item record function-call-history @var{func}, +/-@var{n}
7027 Prints @var{n} functions around function number @var{func}. If
7028 @var{n} is preceded with @code{+}, prints @var{n} functions after
7029 function number @var{func}. If @var{n} is preceded with @code{-},
7030 prints @var{n} functions before function number @var{func}.
7031
7032 @item record function-call-history
7033 Prints ten more functions after the last ten-line print.
7034
7035 @item record function-call-history -
7036 Prints ten more functions before the last ten-line print.
7037
7038 @item record function-call-history @var{begin}, @var{end}
7039 Prints functions beginning with function number @var{begin} until
7040 function number @var{end}. The function number @var{end} is included.
7041 @end table
7042
7043 This command may not be available for all recording methods.
7044
7045 @item set record function-call-history-size @var{size}
7046 @itemx set record function-call-history-size unlimited
7047 Define how many lines to print in the
7048 @code{record function-call-history} command. The default value is 10.
7049 A size of @code{unlimited} means unlimited lines.
7050
7051 @item show record function-call-history-size
7052 Show how many lines to print in the
7053 @code{record function-call-history} command.
7054 @end table
7055
7056
7057 @node Stack
7058 @chapter Examining the Stack
7059
7060 When your program has stopped, the first thing you need to know is where it
7061 stopped and how it got there.
7062
7063 @cindex call stack
7064 Each time your program performs a function call, information about the call
7065 is generated.
7066 That information includes the location of the call in your program,
7067 the arguments of the call,
7068 and the local variables of the function being called.
7069 The information is saved in a block of data called a @dfn{stack frame}.
7070 The stack frames are allocated in a region of memory called the @dfn{call
7071 stack}.
7072
7073 When your program stops, the @value{GDBN} commands for examining the
7074 stack allow you to see all of this information.
7075
7076 @cindex selected frame
7077 One of the stack frames is @dfn{selected} by @value{GDBN} and many
7078 @value{GDBN} commands refer implicitly to the selected frame. In
7079 particular, whenever you ask @value{GDBN} for the value of a variable in
7080 your program, the value is found in the selected frame. There are
7081 special @value{GDBN} commands to select whichever frame you are
7082 interested in. @xref{Selection, ,Selecting a Frame}.
7083
7084 When your program stops, @value{GDBN} automatically selects the
7085 currently executing frame and describes it briefly, similar to the
7086 @code{frame} command (@pxref{Frame Info, ,Information about a Frame}).
7087
7088 @menu
7089 * Frames:: Stack frames
7090 * Backtrace:: Backtraces
7091 * Selection:: Selecting a frame
7092 * Frame Info:: Information on a frame
7093 * Frame Filter Management:: Managing frame filters
7094
7095 @end menu
7096
7097 @node Frames
7098 @section Stack Frames
7099
7100 @cindex frame, definition
7101 @cindex stack frame
7102 The call stack is divided up into contiguous pieces called @dfn{stack
7103 frames}, or @dfn{frames} for short; each frame is the data associated
7104 with one call to one function. The frame contains the arguments given
7105 to the function, the function's local variables, and the address at
7106 which the function is executing.
7107
7108 @cindex initial frame
7109 @cindex outermost frame
7110 @cindex innermost frame
7111 When your program is started, the stack has only one frame, that of the
7112 function @code{main}. This is called the @dfn{initial} frame or the
7113 @dfn{outermost} frame. Each time a function is called, a new frame is
7114 made. Each time a function returns, the frame for that function invocation
7115 is eliminated. If a function is recursive, there can be many frames for
7116 the same function. The frame for the function in which execution is
7117 actually occurring is called the @dfn{innermost} frame. This is the most
7118 recently created of all the stack frames that still exist.
7119
7120 @cindex frame pointer
7121 Inside your program, stack frames are identified by their addresses. A
7122 stack frame consists of many bytes, each of which has its own address; each
7123 kind of computer has a convention for choosing one byte whose
7124 address serves as the address of the frame. Usually this address is kept
7125 in a register called the @dfn{frame pointer register}
7126 (@pxref{Registers, $fp}) while execution is going on in that frame.
7127
7128 @cindex frame number
7129 @value{GDBN} assigns numbers to all existing stack frames, starting with
7130 zero for the innermost frame, one for the frame that called it,
7131 and so on upward. These numbers do not really exist in your program;
7132 they are assigned by @value{GDBN} to give you a way of designating stack
7133 frames in @value{GDBN} commands.
7134
7135 @c The -fomit-frame-pointer below perennially causes hbox overflow
7136 @c underflow problems.
7137 @cindex frameless execution
7138 Some compilers provide a way to compile functions so that they operate
7139 without stack frames. (For example, the @value{NGCC} option
7140 @smallexample
7141 @samp{-fomit-frame-pointer}
7142 @end smallexample
7143 generates functions without a frame.)
7144 This is occasionally done with heavily used library functions to save
7145 the frame setup time. @value{GDBN} has limited facilities for dealing
7146 with these function invocations. If the innermost function invocation
7147 has no stack frame, @value{GDBN} nevertheless regards it as though
7148 it had a separate frame, which is numbered zero as usual, allowing
7149 correct tracing of the function call chain. However, @value{GDBN} has
7150 no provision for frameless functions elsewhere in the stack.
7151
7152 @node Backtrace
7153 @section Backtraces
7154
7155 @cindex traceback
7156 @cindex call stack traces
7157 A backtrace is a summary of how your program got where it is. It shows one
7158 line per frame, for many frames, starting with the currently executing
7159 frame (frame zero), followed by its caller (frame one), and on up the
7160 stack.
7161
7162 @anchor{backtrace-command}
7163 @table @code
7164 @kindex backtrace
7165 @kindex bt @r{(@code{backtrace})}
7166 @item backtrace
7167 @itemx bt
7168 Print a backtrace of the entire stack: one line per frame for all
7169 frames in the stack.
7170
7171 You can stop the backtrace at any time by typing the system interrupt
7172 character, normally @kbd{Ctrl-c}.
7173
7174 @item backtrace @var{n}
7175 @itemx bt @var{n}
7176 Similar, but print only the innermost @var{n} frames.
7177
7178 @item backtrace -@var{n}
7179 @itemx bt -@var{n}
7180 Similar, but print only the outermost @var{n} frames.
7181
7182 @item backtrace full
7183 @itemx bt full
7184 @itemx bt full @var{n}
7185 @itemx bt full -@var{n}
7186 Print the values of the local variables also. As described above,
7187 @var{n} specifies the number of frames to print.
7188
7189 @item backtrace no-filters
7190 @itemx bt no-filters
7191 @itemx bt no-filters @var{n}
7192 @itemx bt no-filters -@var{n}
7193 @itemx bt no-filters full
7194 @itemx bt no-filters full @var{n}
7195 @itemx bt no-filters full -@var{n}
7196 Do not run Python frame filters on this backtrace. @xref{Frame
7197 Filter API}, for more information. Additionally use @ref{disable
7198 frame-filter all} to turn off all frame filters. This is only
7199 relevant when @value{GDBN} has been configured with @code{Python}
7200 support.
7201 @end table
7202
7203 @kindex where
7204 @kindex info stack
7205 The names @code{where} and @code{info stack} (abbreviated @code{info s})
7206 are additional aliases for @code{backtrace}.
7207
7208 @cindex multiple threads, backtrace
7209 In a multi-threaded program, @value{GDBN} by default shows the
7210 backtrace only for the current thread. To display the backtrace for
7211 several or all of the threads, use the command @code{thread apply}
7212 (@pxref{Threads, thread apply}). For example, if you type @kbd{thread
7213 apply all backtrace}, @value{GDBN} will display the backtrace for all
7214 the threads; this is handy when you debug a core dump of a
7215 multi-threaded program.
7216
7217 Each line in the backtrace shows the frame number and the function name.
7218 The program counter value is also shown---unless you use @code{set
7219 print address off}. The backtrace also shows the source file name and
7220 line number, as well as the arguments to the function. The program
7221 counter value is omitted if it is at the beginning of the code for that
7222 line number.
7223
7224 Here is an example of a backtrace. It was made with the command
7225 @samp{bt 3}, so it shows the innermost three frames.
7226
7227 @smallexample
7228 @group
7229 #0 m4_traceon (obs=0x24eb0, argc=1, argv=0x2b8c8)
7230 at builtin.c:993
7231 #1 0x6e38 in expand_macro (sym=0x2b600, data=...) at macro.c:242
7232 #2 0x6840 in expand_token (obs=0x0, t=177664, td=0xf7fffb08)
7233 at macro.c:71
7234 (More stack frames follow...)
7235 @end group
7236 @end smallexample
7237
7238 @noindent
7239 The display for frame zero does not begin with a program counter
7240 value, indicating that your program has stopped at the beginning of the
7241 code for line @code{993} of @code{builtin.c}.
7242
7243 @noindent
7244 The value of parameter @code{data} in frame 1 has been replaced by
7245 @code{@dots{}}. By default, @value{GDBN} prints the value of a parameter
7246 only if it is a scalar (integer, pointer, enumeration, etc). See command
7247 @kbd{set print frame-arguments} in @ref{Print Settings} for more details
7248 on how to configure the way function parameter values are printed.
7249
7250 @cindex optimized out, in backtrace
7251 @cindex function call arguments, optimized out
7252 If your program was compiled with optimizations, some compilers will
7253 optimize away arguments passed to functions if those arguments are
7254 never used after the call. Such optimizations generate code that
7255 passes arguments through registers, but doesn't store those arguments
7256 in the stack frame. @value{GDBN} has no way of displaying such
7257 arguments in stack frames other than the innermost one. Here's what
7258 such a backtrace might look like:
7259
7260 @smallexample
7261 @group
7262 #0 m4_traceon (obs=0x24eb0, argc=1, argv=0x2b8c8)
7263 at builtin.c:993
7264 #1 0x6e38 in expand_macro (sym=<optimized out>) at macro.c:242
7265 #2 0x6840 in expand_token (obs=0x0, t=<optimized out>, td=0xf7fffb08)
7266 at macro.c:71
7267 (More stack frames follow...)
7268 @end group
7269 @end smallexample
7270
7271 @noindent
7272 The values of arguments that were not saved in their stack frames are
7273 shown as @samp{<optimized out>}.
7274
7275 If you need to display the values of such optimized-out arguments,
7276 either deduce that from other variables whose values depend on the one
7277 you are interested in, or recompile without optimizations.
7278
7279 @cindex backtrace beyond @code{main} function
7280 @cindex program entry point
7281 @cindex startup code, and backtrace
7282 Most programs have a standard user entry point---a place where system
7283 libraries and startup code transition into user code. For C this is
7284 @code{main}@footnote{
7285 Note that embedded programs (the so-called ``free-standing''
7286 environment) are not required to have a @code{main} function as the
7287 entry point. They could even have multiple entry points.}.
7288 When @value{GDBN} finds the entry function in a backtrace
7289 it will terminate the backtrace, to avoid tracing into highly
7290 system-specific (and generally uninteresting) code.
7291
7292 If you need to examine the startup code, or limit the number of levels
7293 in a backtrace, you can change this behavior:
7294
7295 @table @code
7296 @item set backtrace past-main
7297 @itemx set backtrace past-main on
7298 @kindex set backtrace
7299 Backtraces will continue past the user entry point.
7300
7301 @item set backtrace past-main off
7302 Backtraces will stop when they encounter the user entry point. This is the
7303 default.
7304
7305 @item show backtrace past-main
7306 @kindex show backtrace
7307 Display the current user entry point backtrace policy.
7308
7309 @item set backtrace past-entry
7310 @itemx set backtrace past-entry on
7311 Backtraces will continue past the internal entry point of an application.
7312 This entry point is encoded by the linker when the application is built,
7313 and is likely before the user entry point @code{main} (or equivalent) is called.
7314
7315 @item set backtrace past-entry off
7316 Backtraces will stop when they encounter the internal entry point of an
7317 application. This is the default.
7318
7319 @item show backtrace past-entry
7320 Display the current internal entry point backtrace policy.
7321
7322 @item set backtrace limit @var{n}
7323 @itemx set backtrace limit 0
7324 @itemx set backtrace limit unlimited
7325 @cindex backtrace limit
7326 Limit the backtrace to @var{n} levels. A value of @code{unlimited}
7327 or zero means unlimited levels.
7328
7329 @item show backtrace limit
7330 Display the current limit on backtrace levels.
7331 @end table
7332
7333 You can control how file names are displayed.
7334
7335 @table @code
7336 @item set filename-display
7337 @itemx set filename-display relative
7338 @cindex filename-display
7339 Display file names relative to the compilation directory. This is the default.
7340
7341 @item set filename-display basename
7342 Display only basename of a filename.
7343
7344 @item set filename-display absolute
7345 Display an absolute filename.
7346
7347 @item show filename-display
7348 Show the current way to display filenames.
7349 @end table
7350
7351 @node Selection
7352 @section Selecting a Frame
7353
7354 Most commands for examining the stack and other data in your program work on
7355 whichever stack frame is selected at the moment. Here are the commands for
7356 selecting a stack frame; all of them finish by printing a brief description
7357 of the stack frame just selected.
7358
7359 @table @code
7360 @kindex frame@r{, selecting}
7361 @kindex f @r{(@code{frame})}
7362 @item frame @var{n}
7363 @itemx f @var{n}
7364 Select frame number @var{n}. Recall that frame zero is the innermost
7365 (currently executing) frame, frame one is the frame that called the
7366 innermost one, and so on. The highest-numbered frame is the one for
7367 @code{main}.
7368
7369 @item frame @var{stack-addr} [ @var{pc-addr} ]
7370 @itemx f @var{stack-addr} [ @var{pc-addr} ]
7371 Select the frame at address @var{stack-addr}. This is useful mainly if the
7372 chaining of stack frames has been damaged by a bug, making it
7373 impossible for @value{GDBN} to assign numbers properly to all frames. In
7374 addition, this can be useful when your program has multiple stacks and
7375 switches between them. The optional @var{pc-addr} can also be given to
7376 specify the value of PC for the stack frame.
7377
7378 @kindex up
7379 @item up @var{n}
7380 Move @var{n} frames up the stack; @var{n} defaults to 1. For positive
7381 numbers @var{n}, this advances toward the outermost frame, to higher
7382 frame numbers, to frames that have existed longer.
7383
7384 @kindex down
7385 @kindex do @r{(@code{down})}
7386 @item down @var{n}
7387 Move @var{n} frames down the stack; @var{n} defaults to 1. For
7388 positive numbers @var{n}, this advances toward the innermost frame, to
7389 lower frame numbers, to frames that were created more recently.
7390 You may abbreviate @code{down} as @code{do}.
7391 @end table
7392
7393 All of these commands end by printing two lines of output describing the
7394 frame. The first line shows the frame number, the function name, the
7395 arguments, and the source file and line number of execution in that
7396 frame. The second line shows the text of that source line.
7397
7398 @need 1000
7399 For example:
7400
7401 @smallexample
7402 @group
7403 (@value{GDBP}) up
7404 #1 0x22f0 in main (argc=1, argv=0xf7fffbf4, env=0xf7fffbfc)
7405 at env.c:10
7406 10 read_input_file (argv[i]);
7407 @end group
7408 @end smallexample
7409
7410 After such a printout, the @code{list} command with no arguments
7411 prints ten lines centered on the point of execution in the frame.
7412 You can also edit the program at the point of execution with your favorite
7413 editing program by typing @code{edit}.
7414 @xref{List, ,Printing Source Lines},
7415 for details.
7416
7417 @table @code
7418 @kindex select-frame
7419 @item select-frame
7420 The @code{select-frame} command is a variant of @code{frame} that does
7421 not display the new frame after selecting it. This command is
7422 intended primarily for use in @value{GDBN} command scripts, where the
7423 output might be unnecessary and distracting.
7424
7425 @kindex down-silently
7426 @kindex up-silently
7427 @item up-silently @var{n}
7428 @itemx down-silently @var{n}
7429 These two commands are variants of @code{up} and @code{down},
7430 respectively; they differ in that they do their work silently, without
7431 causing display of the new frame. They are intended primarily for use
7432 in @value{GDBN} command scripts, where the output might be unnecessary and
7433 distracting.
7434 @end table
7435
7436 @node Frame Info
7437 @section Information About a Frame
7438
7439 There are several other commands to print information about the selected
7440 stack frame.
7441
7442 @table @code
7443 @item frame
7444 @itemx f
7445 When used without any argument, this command does not change which
7446 frame is selected, but prints a brief description of the currently
7447 selected stack frame. It can be abbreviated @code{f}. With an
7448 argument, this command is used to select a stack frame.
7449 @xref{Selection, ,Selecting a Frame}.
7450
7451 @kindex info frame
7452 @kindex info f @r{(@code{info frame})}
7453 @item info frame
7454 @itemx info f
7455 This command prints a verbose description of the selected stack frame,
7456 including:
7457
7458 @itemize @bullet
7459 @item
7460 the address of the frame
7461 @item
7462 the address of the next frame down (called by this frame)
7463 @item
7464 the address of the next frame up (caller of this frame)
7465 @item
7466 the language in which the source code corresponding to this frame is written
7467 @item
7468 the address of the frame's arguments
7469 @item
7470 the address of the frame's local variables
7471 @item
7472 the program counter saved in it (the address of execution in the caller frame)
7473 @item
7474 which registers were saved in the frame
7475 @end itemize
7476
7477 @noindent The verbose description is useful when
7478 something has gone wrong that has made the stack format fail to fit
7479 the usual conventions.
7480
7481 @item info frame @var{addr}
7482 @itemx info f @var{addr}
7483 Print a verbose description of the frame at address @var{addr}, without
7484 selecting that frame. The selected frame remains unchanged by this
7485 command. This requires the same kind of address (more than one for some
7486 architectures) that you specify in the @code{frame} command.
7487 @xref{Selection, ,Selecting a Frame}.
7488
7489 @kindex info args
7490 @item info args
7491 Print the arguments of the selected frame, each on a separate line.
7492
7493 @item info locals
7494 @kindex info locals
7495 Print the local variables of the selected frame, each on a separate
7496 line. These are all variables (declared either static or automatic)
7497 accessible at the point of execution of the selected frame.
7498
7499 @end table
7500
7501 @node Frame Filter Management
7502 @section Management of Frame Filters.
7503 @cindex managing frame filters
7504
7505 Frame filters are Python based utilities to manage and decorate the
7506 output of frames. @xref{Frame Filter API}, for further information.
7507
7508 Managing frame filters is performed by several commands available
7509 within @value{GDBN}, detailed here.
7510
7511 @table @code
7512 @kindex info frame-filter
7513 @item info frame-filter
7514 Print a list of installed frame filters from all dictionaries, showing
7515 their name, priority and enabled status.
7516
7517 @kindex disable frame-filter
7518 @anchor{disable frame-filter all}
7519 @item disable frame-filter @var{filter-dictionary} @var{filter-name}
7520 Disable a frame filter in the dictionary matching
7521 @var{filter-dictionary} and @var{filter-name}. The
7522 @var{filter-dictionary} may be @code{all}, @code{global},
7523 @code{progspace}, or the name of the object file where the frame filter
7524 dictionary resides. When @code{all} is specified, all frame filters
7525 across all dictionaries are disabled. The @var{filter-name} is the name
7526 of the frame filter and is used when @code{all} is not the option for
7527 @var{filter-dictionary}. A disabled frame-filter is not deleted, it
7528 may be enabled again later.
7529
7530 @kindex enable frame-filter
7531 @item enable frame-filter @var{filter-dictionary} @var{filter-name}
7532 Enable a frame filter in the dictionary matching
7533 @var{filter-dictionary} and @var{filter-name}. The
7534 @var{filter-dictionary} may be @code{all}, @code{global},
7535 @code{progspace} or the name of the object file where the frame filter
7536 dictionary resides. When @code{all} is specified, all frame filters across
7537 all dictionaries are enabled. The @var{filter-name} is the name of the frame
7538 filter and is used when @code{all} is not the option for
7539 @var{filter-dictionary}.
7540
7541 Example:
7542
7543 @smallexample
7544 (gdb) info frame-filter
7545
7546 global frame-filters:
7547 Priority Enabled Name
7548 1000 No PrimaryFunctionFilter
7549 100 Yes Reverse
7550
7551 progspace /build/test frame-filters:
7552 Priority Enabled Name
7553 100 Yes ProgspaceFilter
7554
7555 objfile /build/test frame-filters:
7556 Priority Enabled Name
7557 999 Yes BuildProgra Filter
7558
7559 (gdb) disable frame-filter /build/test BuildProgramFilter
7560 (gdb) info frame-filter
7561
7562 global frame-filters:
7563 Priority Enabled Name
7564 1000 No PrimaryFunctionFilter
7565 100 Yes Reverse
7566
7567 progspace /build/test frame-filters:
7568 Priority Enabled Name
7569 100 Yes ProgspaceFilter
7570
7571 objfile /build/test frame-filters:
7572 Priority Enabled Name
7573 999 No BuildProgramFilter
7574
7575 (gdb) enable frame-filter global PrimaryFunctionFilter
7576 (gdb) info frame-filter
7577
7578 global frame-filters:
7579 Priority Enabled Name
7580 1000 Yes PrimaryFunctionFilter
7581 100 Yes Reverse
7582
7583 progspace /build/test frame-filters:
7584 Priority Enabled Name
7585 100 Yes ProgspaceFilter
7586
7587 objfile /build/test frame-filters:
7588 Priority Enabled Name
7589 999 No BuildProgramFilter
7590 @end smallexample
7591
7592 @kindex set frame-filter priority
7593 @item set frame-filter priority @var{filter-dictionary} @var{filter-name} @var{priority}
7594 Set the @var{priority} of a frame filter in the dictionary matching
7595 @var{filter-dictionary}, and the frame filter name matching
7596 @var{filter-name}. The @var{filter-dictionary} may be @code{global},
7597 @code{progspace} or the name of the object file where the frame filter
7598 dictionary resides. The @var{priority} is an integer.
7599
7600 @kindex show frame-filter priority
7601 @item show frame-filter priority @var{filter-dictionary} @var{filter-name}
7602 Show the @var{priority} of a frame filter in the dictionary matching
7603 @var{filter-dictionary}, and the frame filter name matching
7604 @var{filter-name}. The @var{filter-dictionary} may be @code{global},
7605 @code{progspace} or the name of the object file where the frame filter
7606 dictionary resides.
7607
7608 Example:
7609
7610 @smallexample
7611 (gdb) info frame-filter
7612
7613 global frame-filters:
7614 Priority Enabled Name
7615 1000 Yes PrimaryFunctionFilter
7616 100 Yes Reverse
7617
7618 progspace /build/test frame-filters:
7619 Priority Enabled Name
7620 100 Yes ProgspaceFilter
7621
7622 objfile /build/test frame-filters:
7623 Priority Enabled Name
7624 999 No BuildProgramFilter
7625
7626 (gdb) set frame-filter priority global Reverse 50
7627 (gdb) info frame-filter
7628
7629 global frame-filters:
7630 Priority Enabled Name
7631 1000 Yes PrimaryFunctionFilter
7632 50 Yes Reverse
7633
7634 progspace /build/test frame-filters:
7635 Priority Enabled Name
7636 100 Yes ProgspaceFilter
7637
7638 objfile /build/test frame-filters:
7639 Priority Enabled Name
7640 999 No BuildProgramFilter
7641 @end smallexample
7642 @end table
7643
7644 @node Source
7645 @chapter Examining Source Files
7646
7647 @value{GDBN} can print parts of your program's source, since the debugging
7648 information recorded in the program tells @value{GDBN} what source files were
7649 used to build it. When your program stops, @value{GDBN} spontaneously prints
7650 the line where it stopped. Likewise, when you select a stack frame
7651 (@pxref{Selection, ,Selecting a Frame}), @value{GDBN} prints the line where
7652 execution in that frame has stopped. You can print other portions of
7653 source files by explicit command.
7654
7655 If you use @value{GDBN} through its @sc{gnu} Emacs interface, you may
7656 prefer to use Emacs facilities to view source; see @ref{Emacs, ,Using
7657 @value{GDBN} under @sc{gnu} Emacs}.
7658
7659 @menu
7660 * List:: Printing source lines
7661 * Specify Location:: How to specify code locations
7662 * Edit:: Editing source files
7663 * Search:: Searching source files
7664 * Source Path:: Specifying source directories
7665 * Machine Code:: Source and machine code
7666 @end menu
7667
7668 @node List
7669 @section Printing Source Lines
7670
7671 @kindex list
7672 @kindex l @r{(@code{list})}
7673 To print lines from a source file, use the @code{list} command
7674 (abbreviated @code{l}). By default, ten lines are printed.
7675 There are several ways to specify what part of the file you want to
7676 print; see @ref{Specify Location}, for the full list.
7677
7678 Here are the forms of the @code{list} command most commonly used:
7679
7680 @table @code
7681 @item list @var{linenum}
7682 Print lines centered around line number @var{linenum} in the
7683 current source file.
7684
7685 @item list @var{function}
7686 Print lines centered around the beginning of function
7687 @var{function}.
7688
7689 @item list
7690 Print more lines. If the last lines printed were printed with a
7691 @code{list} command, this prints lines following the last lines
7692 printed; however, if the last line printed was a solitary line printed
7693 as part of displaying a stack frame (@pxref{Stack, ,Examining the
7694 Stack}), this prints lines centered around that line.
7695
7696 @item list -
7697 Print lines just before the lines last printed.
7698 @end table
7699
7700 @cindex @code{list}, how many lines to display
7701 By default, @value{GDBN} prints ten source lines with any of these forms of
7702 the @code{list} command. You can change this using @code{set listsize}:
7703
7704 @table @code
7705 @kindex set listsize
7706 @item set listsize @var{count}
7707 @itemx set listsize unlimited
7708 Make the @code{list} command display @var{count} source lines (unless
7709 the @code{list} argument explicitly specifies some other number).
7710 Setting @var{count} to @code{unlimited} or 0 means there's no limit.
7711
7712 @kindex show listsize
7713 @item show listsize
7714 Display the number of lines that @code{list} prints.
7715 @end table
7716
7717 Repeating a @code{list} command with @key{RET} discards the argument,
7718 so it is equivalent to typing just @code{list}. This is more useful
7719 than listing the same lines again. An exception is made for an
7720 argument of @samp{-}; that argument is preserved in repetition so that
7721 each repetition moves up in the source file.
7722
7723 In general, the @code{list} command expects you to supply zero, one or two
7724 @dfn{locations}. Locations specify source lines; there are several ways
7725 of writing them (@pxref{Specify Location}), but the effect is always
7726 to specify some source line.
7727
7728 Here is a complete description of the possible arguments for @code{list}:
7729
7730 @table @code
7731 @item list @var{location}
7732 Print lines centered around the line specified by @var{location}.
7733
7734 @item list @var{first},@var{last}
7735 Print lines from @var{first} to @var{last}. Both arguments are
7736 locations. When a @code{list} command has two locations, and the
7737 source file of the second location is omitted, this refers to
7738 the same source file as the first location.
7739
7740 @item list ,@var{last}
7741 Print lines ending with @var{last}.
7742
7743 @item list @var{first},
7744 Print lines starting with @var{first}.
7745
7746 @item list +
7747 Print lines just after the lines last printed.
7748
7749 @item list -
7750 Print lines just before the lines last printed.
7751
7752 @item list
7753 As described in the preceding table.
7754 @end table
7755
7756 @node Specify Location
7757 @section Specifying a Location
7758 @cindex specifying location
7759 @cindex location
7760 @cindex source location
7761
7762 @menu
7763 * Linespec Locations:: Linespec locations
7764 * Explicit Locations:: Explicit locations
7765 * Address Locations:: Address locations
7766 @end menu
7767
7768 Several @value{GDBN} commands accept arguments that specify a location
7769 of your program's code. Since @value{GDBN} is a source-level
7770 debugger, a location usually specifies some line in the source code.
7771 Locations may be specified using three different formats:
7772 linespec locations, explicit locations, or address locations.
7773
7774 @node Linespec Locations
7775 @subsection Linespec Locations
7776 @cindex linespec locations
7777
7778 A @dfn{linespec} is a colon-separated list of source location parameters such
7779 as file name, function name, etc. Here are all the different ways of
7780 specifying a linespec:
7781
7782 @table @code
7783 @item @var{linenum}
7784 Specifies the line number @var{linenum} of the current source file.
7785
7786 @item -@var{offset}
7787 @itemx +@var{offset}
7788 Specifies the line @var{offset} lines before or after the @dfn{current
7789 line}. For the @code{list} command, the current line is the last one
7790 printed; for the breakpoint commands, this is the line at which
7791 execution stopped in the currently selected @dfn{stack frame}
7792 (@pxref{Frames, ,Frames}, for a description of stack frames.) When
7793 used as the second of the two linespecs in a @code{list} command,
7794 this specifies the line @var{offset} lines up or down from the first
7795 linespec.
7796
7797 @item @var{filename}:@var{linenum}
7798 Specifies the line @var{linenum} in the source file @var{filename}.
7799 If @var{filename} is a relative file name, then it will match any
7800 source file name with the same trailing components. For example, if
7801 @var{filename} is @samp{gcc/expr.c}, then it will match source file
7802 name of @file{/build/trunk/gcc/expr.c}, but not
7803 @file{/build/trunk/libcpp/expr.c} or @file{/build/trunk/gcc/x-expr.c}.
7804
7805 @item @var{function}
7806 Specifies the line that begins the body of the function @var{function}.
7807 For example, in C, this is the line with the open brace.
7808
7809 @item @var{function}:@var{label}
7810 Specifies the line where @var{label} appears in @var{function}.
7811
7812 @item @var{filename}:@var{function}
7813 Specifies the line that begins the body of the function @var{function}
7814 in the file @var{filename}. You only need the file name with a
7815 function name to avoid ambiguity when there are identically named
7816 functions in different source files.
7817
7818 @item @var{label}
7819 Specifies the line at which the label named @var{label} appears
7820 in the function corresponding to the currently selected stack frame.
7821 If there is no current selected stack frame (for instance, if the inferior
7822 is not running), then @value{GDBN} will not search for a label.
7823
7824 @cindex breakpoint at static probe point
7825 @item -pstap|-probe-stap @r{[}@var{objfile}:@r{[}@var{provider}:@r{]}@r{]}@var{name}
7826 The @sc{gnu}/Linux tool @code{SystemTap} provides a way for
7827 applications to embed static probes. @xref{Static Probe Points}, for more
7828 information on finding and using static probes. This form of linespec
7829 specifies the location of such a static probe.
7830
7831 If @var{objfile} is given, only probes coming from that shared library
7832 or executable matching @var{objfile} as a regular expression are considered.
7833 If @var{provider} is given, then only probes from that provider are considered.
7834 If several probes match the spec, @value{GDBN} will insert a breakpoint at
7835 each one of those probes.
7836 @end table
7837
7838 @node Explicit Locations
7839 @subsection Explicit Locations
7840 @cindex explicit locations
7841
7842 @dfn{Explicit locations} allow the user to directly specify the source
7843 location's parameters using option-value pairs.
7844
7845 Explicit locations are useful when several functions, labels, or
7846 file names have the same name (base name for files) in the program's
7847 sources. In these cases, explicit locations point to the source
7848 line you meant more accurately and unambiguously. Also, using
7849 explicit locations might be faster in large programs.
7850
7851 For example, the linespec @samp{foo:bar} may refer to a function @code{bar}
7852 defined in the file named @file{foo} or the label @code{bar} in a function
7853 named @code{foo}. @value{GDBN} must search either the file system or
7854 the symbol table to know.
7855
7856 The list of valid explicit location options is summarized in the
7857 following table:
7858
7859 @table @code
7860 @item -source @var{filename}
7861 The value specifies the source file name. To differentiate between
7862 files with the same base name, prepend as many directories as is necessary
7863 to uniquely identify the desired file, e.g., @file{foo/bar/baz.c}. Otherwise
7864 @value{GDBN} will use the first file it finds with the given base
7865 name. This option requires the use of either @code{-function} or @code{-line}.
7866
7867 @item -function @var{function}
7868 The value specifies the name of a function. Operations
7869 on function locations unmodified by other options (such as @code{-label}
7870 or @code{-line}) refer to the line that begins the body of the function.
7871 In C, for example, this is the line with the open brace.
7872
7873 @item -label @var{label}
7874 The value specifies the name of a label. When the function
7875 name is not specified, the label is searched in the function of the currently
7876 selected stack frame.
7877
7878 @item -line @var{number}
7879 The value specifies a line offset for the location. The offset may either
7880 be absolute (@code{-line 3}) or relative (@code{-line +3}), depending on
7881 the command. When specified without any other options, the line offset is
7882 relative to the current line.
7883 @end table
7884
7885 Explicit location options may be abbreviated by omitting any non-unique
7886 trailing characters from the option name, e.g., @code{break -s main.c -li 3}.
7887
7888 @node Address Locations
7889 @subsection Address Locations
7890 @cindex address locations
7891
7892 @dfn{Address locations} indicate a specific program address. They have
7893 the generalized form *@var{address}.
7894
7895 For line-oriented commands, such as @code{list} and @code{edit}, this
7896 specifies a source line that contains @var{address}. For @code{break} and
7897 other breakpoint-oriented commands, this can be used to set breakpoints in
7898 parts of your program which do not have debugging information or
7899 source files.
7900
7901 Here @var{address} may be any expression valid in the current working
7902 language (@pxref{Languages, working language}) that specifies a code
7903 address. In addition, as a convenience, @value{GDBN} extends the
7904 semantics of expressions used in locations to cover several situations
7905 that frequently occur during debugging. Here are the various forms
7906 of @var{address}:
7907
7908 @table @code
7909 @item @var{expression}
7910 Any expression valid in the current working language.
7911
7912 @item @var{funcaddr}
7913 An address of a function or procedure derived from its name. In C,
7914 C@t{++}, Java, Objective-C, Fortran, minimal, and assembly, this is
7915 simply the function's name @var{function} (and actually a special case
7916 of a valid expression). In Pascal and Modula-2, this is
7917 @code{&@var{function}}. In Ada, this is @code{@var{function}'Address}
7918 (although the Pascal form also works).
7919
7920 This form specifies the address of the function's first instruction,
7921 before the stack frame and arguments have been set up.
7922
7923 @item '@var{filename}':@var{funcaddr}
7924 Like @var{funcaddr} above, but also specifies the name of the source
7925 file explicitly. This is useful if the name of the function does not
7926 specify the function unambiguously, e.g., if there are several
7927 functions with identical names in different source files.
7928 @end table
7929
7930 @node Edit
7931 @section Editing Source Files
7932 @cindex editing source files
7933
7934 @kindex edit
7935 @kindex e @r{(@code{edit})}
7936 To edit the lines in a source file, use the @code{edit} command.
7937 The editing program of your choice
7938 is invoked with the current line set to
7939 the active line in the program.
7940 Alternatively, there are several ways to specify what part of the file you
7941 want to print if you want to see other parts of the program:
7942
7943 @table @code
7944 @item edit @var{location}
7945 Edit the source file specified by @code{location}. Editing starts at
7946 that @var{location}, e.g., at the specified source line of the
7947 specified file. @xref{Specify Location}, for all the possible forms
7948 of the @var{location} argument; here are the forms of the @code{edit}
7949 command most commonly used:
7950
7951 @table @code
7952 @item edit @var{number}
7953 Edit the current source file with @var{number} as the active line number.
7954
7955 @item edit @var{function}
7956 Edit the file containing @var{function} at the beginning of its definition.
7957 @end table
7958
7959 @end table
7960
7961 @subsection Choosing your Editor
7962 You can customize @value{GDBN} to use any editor you want
7963 @footnote{
7964 The only restriction is that your editor (say @code{ex}), recognizes the
7965 following command-line syntax:
7966 @smallexample
7967 ex +@var{number} file
7968 @end smallexample
7969 The optional numeric value +@var{number} specifies the number of the line in
7970 the file where to start editing.}.
7971 By default, it is @file{@value{EDITOR}}, but you can change this
7972 by setting the environment variable @code{EDITOR} before using
7973 @value{GDBN}. For example, to configure @value{GDBN} to use the
7974 @code{vi} editor, you could use these commands with the @code{sh} shell:
7975 @smallexample
7976 EDITOR=/usr/bin/vi
7977 export EDITOR
7978 gdb @dots{}
7979 @end smallexample
7980 or in the @code{csh} shell,
7981 @smallexample
7982 setenv EDITOR /usr/bin/vi
7983 gdb @dots{}
7984 @end smallexample
7985
7986 @node Search
7987 @section Searching Source Files
7988 @cindex searching source files
7989
7990 There are two commands for searching through the current source file for a
7991 regular expression.
7992
7993 @table @code
7994 @kindex search
7995 @kindex forward-search
7996 @kindex fo @r{(@code{forward-search})}
7997 @item forward-search @var{regexp}
7998 @itemx search @var{regexp}
7999 The command @samp{forward-search @var{regexp}} checks each line,
8000 starting with the one following the last line listed, for a match for
8001 @var{regexp}. It lists the line that is found. You can use the
8002 synonym @samp{search @var{regexp}} or abbreviate the command name as
8003 @code{fo}.
8004
8005 @kindex reverse-search
8006 @item reverse-search @var{regexp}
8007 The command @samp{reverse-search @var{regexp}} checks each line, starting
8008 with the one before the last line listed and going backward, for a match
8009 for @var{regexp}. It lists the line that is found. You can abbreviate
8010 this command as @code{rev}.
8011 @end table
8012
8013 @node Source Path
8014 @section Specifying Source Directories
8015
8016 @cindex source path
8017 @cindex directories for source files
8018 Executable programs sometimes do not record the directories of the source
8019 files from which they were compiled, just the names. Even when they do,
8020 the directories could be moved between the compilation and your debugging
8021 session. @value{GDBN} has a list of directories to search for source files;
8022 this is called the @dfn{source path}. Each time @value{GDBN} wants a source file,
8023 it tries all the directories in the list, in the order they are present
8024 in the list, until it finds a file with the desired name.
8025
8026 For example, suppose an executable references the file
8027 @file{/usr/src/foo-1.0/lib/foo.c}, and our source path is
8028 @file{/mnt/cross}. The file is first looked up literally; if this
8029 fails, @file{/mnt/cross/usr/src/foo-1.0/lib/foo.c} is tried; if this
8030 fails, @file{/mnt/cross/foo.c} is opened; if this fails, an error
8031 message is printed. @value{GDBN} does not look up the parts of the
8032 source file name, such as @file{/mnt/cross/src/foo-1.0/lib/foo.c}.
8033 Likewise, the subdirectories of the source path are not searched: if
8034 the source path is @file{/mnt/cross}, and the binary refers to
8035 @file{foo.c}, @value{GDBN} would not find it under
8036 @file{/mnt/cross/usr/src/foo-1.0/lib}.
8037
8038 Plain file names, relative file names with leading directories, file
8039 names containing dots, etc.@: are all treated as described above; for
8040 instance, if the source path is @file{/mnt/cross}, and the source file
8041 is recorded as @file{../lib/foo.c}, @value{GDBN} would first try
8042 @file{../lib/foo.c}, then @file{/mnt/cross/../lib/foo.c}, and after
8043 that---@file{/mnt/cross/foo.c}.
8044
8045 Note that the executable search path is @emph{not} used to locate the
8046 source files.
8047
8048 Whenever you reset or rearrange the source path, @value{GDBN} clears out
8049 any information it has cached about where source files are found and where
8050 each line is in the file.
8051
8052 @kindex directory
8053 @kindex dir
8054 When you start @value{GDBN}, its source path includes only @samp{cdir}
8055 and @samp{cwd}, in that order.
8056 To add other directories, use the @code{directory} command.
8057
8058 The search path is used to find both program source files and @value{GDBN}
8059 script files (read using the @samp{-command} option and @samp{source} command).
8060
8061 In addition to the source path, @value{GDBN} provides a set of commands
8062 that manage a list of source path substitution rules. A @dfn{substitution
8063 rule} specifies how to rewrite source directories stored in the program's
8064 debug information in case the sources were moved to a different
8065 directory between compilation and debugging. A rule is made of
8066 two strings, the first specifying what needs to be rewritten in
8067 the path, and the second specifying how it should be rewritten.
8068 In @ref{set substitute-path}, we name these two parts @var{from} and
8069 @var{to} respectively. @value{GDBN} does a simple string replacement
8070 of @var{from} with @var{to} at the start of the directory part of the
8071 source file name, and uses that result instead of the original file
8072 name to look up the sources.
8073
8074 Using the previous example, suppose the @file{foo-1.0} tree has been
8075 moved from @file{/usr/src} to @file{/mnt/cross}, then you can tell
8076 @value{GDBN} to replace @file{/usr/src} in all source path names with
8077 @file{/mnt/cross}. The first lookup will then be
8078 @file{/mnt/cross/foo-1.0/lib/foo.c} in place of the original location
8079 of @file{/usr/src/foo-1.0/lib/foo.c}. To define a source path
8080 substitution rule, use the @code{set substitute-path} command
8081 (@pxref{set substitute-path}).
8082
8083 To avoid unexpected substitution results, a rule is applied only if the
8084 @var{from} part of the directory name ends at a directory separator.
8085 For instance, a rule substituting @file{/usr/source} into
8086 @file{/mnt/cross} will be applied to @file{/usr/source/foo-1.0} but
8087 not to @file{/usr/sourceware/foo-2.0}. And because the substitution
8088 is applied only at the beginning of the directory name, this rule will
8089 not be applied to @file{/root/usr/source/baz.c} either.
8090
8091 In many cases, you can achieve the same result using the @code{directory}
8092 command. However, @code{set substitute-path} can be more efficient in
8093 the case where the sources are organized in a complex tree with multiple
8094 subdirectories. With the @code{directory} command, you need to add each
8095 subdirectory of your project. If you moved the entire tree while
8096 preserving its internal organization, then @code{set substitute-path}
8097 allows you to direct the debugger to all the sources with one single
8098 command.
8099
8100 @code{set substitute-path} is also more than just a shortcut command.
8101 The source path is only used if the file at the original location no
8102 longer exists. On the other hand, @code{set substitute-path} modifies
8103 the debugger behavior to look at the rewritten location instead. So, if
8104 for any reason a source file that is not relevant to your executable is
8105 located at the original location, a substitution rule is the only
8106 method available to point @value{GDBN} at the new location.
8107
8108 @cindex @samp{--with-relocated-sources}
8109 @cindex default source path substitution
8110 You can configure a default source path substitution rule by
8111 configuring @value{GDBN} with the
8112 @samp{--with-relocated-sources=@var{dir}} option. The @var{dir}
8113 should be the name of a directory under @value{GDBN}'s configured
8114 prefix (set with @samp{--prefix} or @samp{--exec-prefix}), and
8115 directory names in debug information under @var{dir} will be adjusted
8116 automatically if the installed @value{GDBN} is moved to a new
8117 location. This is useful if @value{GDBN}, libraries or executables
8118 with debug information and corresponding source code are being moved
8119 together.
8120
8121 @table @code
8122 @item directory @var{dirname} @dots{}
8123 @item dir @var{dirname} @dots{}
8124 Add directory @var{dirname} to the front of the source path. Several
8125 directory names may be given to this command, separated by @samp{:}
8126 (@samp{;} on MS-DOS and MS-Windows, where @samp{:} usually appears as
8127 part of absolute file names) or
8128 whitespace. You may specify a directory that is already in the source
8129 path; this moves it forward, so @value{GDBN} searches it sooner.
8130
8131 @kindex cdir
8132 @kindex cwd
8133 @vindex $cdir@r{, convenience variable}
8134 @vindex $cwd@r{, convenience variable}
8135 @cindex compilation directory
8136 @cindex current directory
8137 @cindex working directory
8138 @cindex directory, current
8139 @cindex directory, compilation
8140 You can use the string @samp{$cdir} to refer to the compilation
8141 directory (if one is recorded), and @samp{$cwd} to refer to the current
8142 working directory. @samp{$cwd} is not the same as @samp{.}---the former
8143 tracks the current working directory as it changes during your @value{GDBN}
8144 session, while the latter is immediately expanded to the current
8145 directory at the time you add an entry to the source path.
8146
8147 @item directory
8148 Reset the source path to its default value (@samp{$cdir:$cwd} on Unix systems). This requires confirmation.
8149
8150 @c RET-repeat for @code{directory} is explicitly disabled, but since
8151 @c repeating it would be a no-op we do not say that. (thanks to RMS)
8152
8153 @item set directories @var{path-list}
8154 @kindex set directories
8155 Set the source path to @var{path-list}.
8156 @samp{$cdir:$cwd} are added if missing.
8157
8158 @item show directories
8159 @kindex show directories
8160 Print the source path: show which directories it contains.
8161
8162 @anchor{set substitute-path}
8163 @item set substitute-path @var{from} @var{to}
8164 @kindex set substitute-path
8165 Define a source path substitution rule, and add it at the end of the
8166 current list of existing substitution rules. If a rule with the same
8167 @var{from} was already defined, then the old rule is also deleted.
8168
8169 For example, if the file @file{/foo/bar/baz.c} was moved to
8170 @file{/mnt/cross/baz.c}, then the command
8171
8172 @smallexample
8173 (@value{GDBP}) set substitute-path /foo/bar /mnt/cross
8174 @end smallexample
8175
8176 @noindent
8177 will tell @value{GDBN} to replace @samp{/foo/bar} with
8178 @samp{/mnt/cross}, which will allow @value{GDBN} to find the file
8179 @file{baz.c} even though it was moved.
8180
8181 In the case when more than one substitution rule have been defined,
8182 the rules are evaluated one by one in the order where they have been
8183 defined. The first one matching, if any, is selected to perform
8184 the substitution.
8185
8186 For instance, if we had entered the following commands:
8187
8188 @smallexample
8189 (@value{GDBP}) set substitute-path /usr/src/include /mnt/include
8190 (@value{GDBP}) set substitute-path /usr/src /mnt/src
8191 @end smallexample
8192
8193 @noindent
8194 @value{GDBN} would then rewrite @file{/usr/src/include/defs.h} into
8195 @file{/mnt/include/defs.h} by using the first rule. However, it would
8196 use the second rule to rewrite @file{/usr/src/lib/foo.c} into
8197 @file{/mnt/src/lib/foo.c}.
8198
8199
8200 @item unset substitute-path [path]
8201 @kindex unset substitute-path
8202 If a path is specified, search the current list of substitution rules
8203 for a rule that would rewrite that path. Delete that rule if found.
8204 A warning is emitted by the debugger if no rule could be found.
8205
8206 If no path is specified, then all substitution rules are deleted.
8207
8208 @item show substitute-path [path]
8209 @kindex show substitute-path
8210 If a path is specified, then print the source path substitution rule
8211 which would rewrite that path, if any.
8212
8213 If no path is specified, then print all existing source path substitution
8214 rules.
8215
8216 @end table
8217
8218 If your source path is cluttered with directories that are no longer of
8219 interest, @value{GDBN} may sometimes cause confusion by finding the wrong
8220 versions of source. You can correct the situation as follows:
8221
8222 @enumerate
8223 @item
8224 Use @code{directory} with no argument to reset the source path to its default value.
8225
8226 @item
8227 Use @code{directory} with suitable arguments to reinstall the
8228 directories you want in the source path. You can add all the
8229 directories in one command.
8230 @end enumerate
8231
8232 @node Machine Code
8233 @section Source and Machine Code
8234 @cindex source line and its code address
8235
8236 You can use the command @code{info line} to map source lines to program
8237 addresses (and vice versa), and the command @code{disassemble} to display
8238 a range of addresses as machine instructions. You can use the command
8239 @code{set disassemble-next-line} to set whether to disassemble next
8240 source line when execution stops. When run under @sc{gnu} Emacs
8241 mode, the @code{info line} command causes the arrow to point to the
8242 line specified. Also, @code{info line} prints addresses in symbolic form as
8243 well as hex.
8244
8245 @table @code
8246 @kindex info line
8247 @item info line @var{location}
8248 Print the starting and ending addresses of the compiled code for
8249 source line @var{location}. You can specify source lines in any of
8250 the ways documented in @ref{Specify Location}.
8251 @end table
8252
8253 For example, we can use @code{info line} to discover the location of
8254 the object code for the first line of function
8255 @code{m4_changequote}:
8256
8257 @c FIXME: I think this example should also show the addresses in
8258 @c symbolic form, as they usually would be displayed.
8259 @smallexample
8260 (@value{GDBP}) info line m4_changequote
8261 Line 895 of "builtin.c" starts at pc 0x634c and ends at 0x6350.
8262 @end smallexample
8263
8264 @noindent
8265 @cindex code address and its source line
8266 We can also inquire (using @code{*@var{addr}} as the form for
8267 @var{location}) what source line covers a particular address:
8268 @smallexample
8269 (@value{GDBP}) info line *0x63ff
8270 Line 926 of "builtin.c" starts at pc 0x63e4 and ends at 0x6404.
8271 @end smallexample
8272
8273 @cindex @code{$_} and @code{info line}
8274 @cindex @code{x} command, default address
8275 @kindex x@r{(examine), and} info line
8276 After @code{info line}, the default address for the @code{x} command
8277 is changed to the starting address of the line, so that @samp{x/i} is
8278 sufficient to begin examining the machine code (@pxref{Memory,
8279 ,Examining Memory}). Also, this address is saved as the value of the
8280 convenience variable @code{$_} (@pxref{Convenience Vars, ,Convenience
8281 Variables}).
8282
8283 @table @code
8284 @kindex disassemble
8285 @cindex assembly instructions
8286 @cindex instructions, assembly
8287 @cindex machine instructions
8288 @cindex listing machine instructions
8289 @item disassemble
8290 @itemx disassemble /m
8291 @itemx disassemble /s
8292 @itemx disassemble /r
8293 This specialized command dumps a range of memory as machine
8294 instructions. It can also print mixed source+disassembly by specifying
8295 the @code{/m} or @code{/s} modifier and print the raw instructions in hex
8296 as well as in symbolic form by specifying the @code{/r} modifier.
8297 The default memory range is the function surrounding the
8298 program counter of the selected frame. A single argument to this
8299 command is a program counter value; @value{GDBN} dumps the function
8300 surrounding this value. When two arguments are given, they should
8301 be separated by a comma, possibly surrounded by whitespace. The
8302 arguments specify a range of addresses to dump, in one of two forms:
8303
8304 @table @code
8305 @item @var{start},@var{end}
8306 the addresses from @var{start} (inclusive) to @var{end} (exclusive)
8307 @item @var{start},+@var{length}
8308 the addresses from @var{start} (inclusive) to
8309 @code{@var{start}+@var{length}} (exclusive).
8310 @end table
8311
8312 @noindent
8313 When 2 arguments are specified, the name of the function is also
8314 printed (since there could be several functions in the given range).
8315
8316 The argument(s) can be any expression yielding a numeric value, such as
8317 @samp{0x32c4}, @samp{&main+10} or @samp{$pc - 8}.
8318
8319 If the range of memory being disassembled contains current program counter,
8320 the instruction at that location is shown with a @code{=>} marker.
8321 @end table
8322
8323 The following example shows the disassembly of a range of addresses of
8324 HP PA-RISC 2.0 code:
8325
8326 @smallexample
8327 (@value{GDBP}) disas 0x32c4, 0x32e4
8328 Dump of assembler code from 0x32c4 to 0x32e4:
8329 0x32c4 <main+204>: addil 0,dp
8330 0x32c8 <main+208>: ldw 0x22c(sr0,r1),r26
8331 0x32cc <main+212>: ldil 0x3000,r31
8332 0x32d0 <main+216>: ble 0x3f8(sr4,r31)
8333 0x32d4 <main+220>: ldo 0(r31),rp
8334 0x32d8 <main+224>: addil -0x800,dp
8335 0x32dc <main+228>: ldo 0x588(r1),r26
8336 0x32e0 <main+232>: ldil 0x3000,r31
8337 End of assembler dump.
8338 @end smallexample
8339
8340 Here is an example showing mixed source+assembly for Intel x86
8341 with @code{/m} or @code{/s}, when the program is stopped just after
8342 function prologue in a non-optimized function with no inline code.
8343
8344 @smallexample
8345 (@value{GDBP}) disas /m main
8346 Dump of assembler code for function main:
8347 5 @{
8348 0x08048330 <+0>: push %ebp
8349 0x08048331 <+1>: mov %esp,%ebp
8350 0x08048333 <+3>: sub $0x8,%esp
8351 0x08048336 <+6>: and $0xfffffff0,%esp
8352 0x08048339 <+9>: sub $0x10,%esp
8353
8354 6 printf ("Hello.\n");
8355 => 0x0804833c <+12>: movl $0x8048440,(%esp)
8356 0x08048343 <+19>: call 0x8048284 <puts@@plt>
8357
8358 7 return 0;
8359 8 @}
8360 0x08048348 <+24>: mov $0x0,%eax
8361 0x0804834d <+29>: leave
8362 0x0804834e <+30>: ret
8363
8364 End of assembler dump.
8365 @end smallexample
8366
8367 The @code{/m} option is deprecated as its output is not useful when
8368 there is either inlined code or re-ordered code.
8369 The @code{/s} option is the preferred choice.
8370 Here is an example for AMD x86-64 showing the difference between
8371 @code{/m} output and @code{/s} output.
8372 This example has one inline function defined in a header file,
8373 and the code is compiled with @samp{-O2} optimization.
8374 Note how the @code{/m} output is missing the disassembly of
8375 several instructions that are present in the @code{/s} output.
8376
8377 @file{foo.h}:
8378
8379 @smallexample
8380 int
8381 foo (int a)
8382 @{
8383 if (a < 0)
8384 return a * 2;
8385 if (a == 0)
8386 return 1;
8387 return a + 10;
8388 @}
8389 @end smallexample
8390
8391 @file{foo.c}:
8392
8393 @smallexample
8394 #include "foo.h"
8395 volatile int x, y;
8396 int
8397 main ()
8398 @{
8399 x = foo (y);
8400 return 0;
8401 @}
8402 @end smallexample
8403
8404 @smallexample
8405 (@value{GDBP}) disas /m main
8406 Dump of assembler code for function main:
8407 5 @{
8408
8409 6 x = foo (y);
8410 0x0000000000400400 <+0>: mov 0x200c2e(%rip),%eax # 0x601034 <y>
8411 0x0000000000400417 <+23>: mov %eax,0x200c13(%rip) # 0x601030 <x>
8412
8413 7 return 0;
8414 8 @}
8415 0x000000000040041d <+29>: xor %eax,%eax
8416 0x000000000040041f <+31>: retq
8417 0x0000000000400420 <+32>: add %eax,%eax
8418 0x0000000000400422 <+34>: jmp 0x400417 <main+23>
8419
8420 End of assembler dump.
8421 (@value{GDBP}) disas /s main
8422 Dump of assembler code for function main:
8423 foo.c:
8424 5 @{
8425 6 x = foo (y);
8426 0x0000000000400400 <+0>: mov 0x200c2e(%rip),%eax # 0x601034 <y>
8427
8428 foo.h:
8429 4 if (a < 0)
8430 0x0000000000400406 <+6>: test %eax,%eax
8431 0x0000000000400408 <+8>: js 0x400420 <main+32>
8432
8433 6 if (a == 0)
8434 7 return 1;
8435 8 return a + 10;
8436 0x000000000040040a <+10>: lea 0xa(%rax),%edx
8437 0x000000000040040d <+13>: test %eax,%eax
8438 0x000000000040040f <+15>: mov $0x1,%eax
8439 0x0000000000400414 <+20>: cmovne %edx,%eax
8440
8441 foo.c:
8442 6 x = foo (y);
8443 0x0000000000400417 <+23>: mov %eax,0x200c13(%rip) # 0x601030 <x>
8444
8445 7 return 0;
8446 8 @}
8447 0x000000000040041d <+29>: xor %eax,%eax
8448 0x000000000040041f <+31>: retq
8449
8450 foo.h:
8451 5 return a * 2;
8452 0x0000000000400420 <+32>: add %eax,%eax
8453 0x0000000000400422 <+34>: jmp 0x400417 <main+23>
8454 End of assembler dump.
8455 @end smallexample
8456
8457 Here is another example showing raw instructions in hex for AMD x86-64,
8458
8459 @smallexample
8460 (gdb) disas /r 0x400281,+10
8461 Dump of assembler code from 0x400281 to 0x40028b:
8462 0x0000000000400281: 38 36 cmp %dh,(%rsi)
8463 0x0000000000400283: 2d 36 34 2e 73 sub $0x732e3436,%eax
8464 0x0000000000400288: 6f outsl %ds:(%rsi),(%dx)
8465 0x0000000000400289: 2e 32 00 xor %cs:(%rax),%al
8466 End of assembler dump.
8467 @end smallexample
8468
8469 Addresses cannot be specified as a location (@pxref{Specify Location}).
8470 So, for example, if you want to disassemble function @code{bar}
8471 in file @file{foo.c}, you must type @samp{disassemble 'foo.c'::bar}
8472 and not @samp{disassemble foo.c:bar}.
8473
8474 Some architectures have more than one commonly-used set of instruction
8475 mnemonics or other syntax.
8476
8477 For programs that were dynamically linked and use shared libraries,
8478 instructions that call functions or branch to locations in the shared
8479 libraries might show a seemingly bogus location---it's actually a
8480 location of the relocation table. On some architectures, @value{GDBN}
8481 might be able to resolve these to actual function names.
8482
8483 @table @code
8484 @kindex set disassembly-flavor
8485 @cindex Intel disassembly flavor
8486 @cindex AT&T disassembly flavor
8487 @item set disassembly-flavor @var{instruction-set}
8488 Select the instruction set to use when disassembling the
8489 program via the @code{disassemble} or @code{x/i} commands.
8490
8491 Currently this command is only defined for the Intel x86 family. You
8492 can set @var{instruction-set} to either @code{intel} or @code{att}.
8493 The default is @code{att}, the AT&T flavor used by default by Unix
8494 assemblers for x86-based targets.
8495
8496 @kindex show disassembly-flavor
8497 @item show disassembly-flavor
8498 Show the current setting of the disassembly flavor.
8499 @end table
8500
8501 @table @code
8502 @kindex set disassemble-next-line
8503 @kindex show disassemble-next-line
8504 @item set disassemble-next-line
8505 @itemx show disassemble-next-line
8506 Control whether or not @value{GDBN} will disassemble the next source
8507 line or instruction when execution stops. If ON, @value{GDBN} will
8508 display disassembly of the next source line when execution of the
8509 program being debugged stops. This is @emph{in addition} to
8510 displaying the source line itself, which @value{GDBN} always does if
8511 possible. If the next source line cannot be displayed for some reason
8512 (e.g., if @value{GDBN} cannot find the source file, or there's no line
8513 info in the debug info), @value{GDBN} will display disassembly of the
8514 next @emph{instruction} instead of showing the next source line. If
8515 AUTO, @value{GDBN} will display disassembly of next instruction only
8516 if the source line cannot be displayed. This setting causes
8517 @value{GDBN} to display some feedback when you step through a function
8518 with no line info or whose source file is unavailable. The default is
8519 OFF, which means never display the disassembly of the next line or
8520 instruction.
8521 @end table
8522
8523
8524 @node Data
8525 @chapter Examining Data
8526
8527 @cindex printing data
8528 @cindex examining data
8529 @kindex print
8530 @kindex inspect
8531 The usual way to examine data in your program is with the @code{print}
8532 command (abbreviated @code{p}), or its synonym @code{inspect}. It
8533 evaluates and prints the value of an expression of the language your
8534 program is written in (@pxref{Languages, ,Using @value{GDBN} with
8535 Different Languages}). It may also print the expression using a
8536 Python-based pretty-printer (@pxref{Pretty Printing}).
8537
8538 @table @code
8539 @item print @var{expr}
8540 @itemx print /@var{f} @var{expr}
8541 @var{expr} is an expression (in the source language). By default the
8542 value of @var{expr} is printed in a format appropriate to its data type;
8543 you can choose a different format by specifying @samp{/@var{f}}, where
8544 @var{f} is a letter specifying the format; see @ref{Output Formats,,Output
8545 Formats}.
8546
8547 @item print
8548 @itemx print /@var{f}
8549 @cindex reprint the last value
8550 If you omit @var{expr}, @value{GDBN} displays the last value again (from the
8551 @dfn{value history}; @pxref{Value History, ,Value History}). This allows you to
8552 conveniently inspect the same value in an alternative format.
8553 @end table
8554
8555 A more low-level way of examining data is with the @code{x} command.
8556 It examines data in memory at a specified address and prints it in a
8557 specified format. @xref{Memory, ,Examining Memory}.
8558
8559 If you are interested in information about types, or about how the
8560 fields of a struct or a class are declared, use the @code{ptype @var{exp}}
8561 command rather than @code{print}. @xref{Symbols, ,Examining the Symbol
8562 Table}.
8563
8564 @cindex exploring hierarchical data structures
8565 @kindex explore
8566 Another way of examining values of expressions and type information is
8567 through the Python extension command @code{explore} (available only if
8568 the @value{GDBN} build is configured with @code{--with-python}). It
8569 offers an interactive way to start at the highest level (or, the most
8570 abstract level) of the data type of an expression (or, the data type
8571 itself) and explore all the way down to leaf scalar values/fields
8572 embedded in the higher level data types.
8573
8574 @table @code
8575 @item explore @var{arg}
8576 @var{arg} is either an expression (in the source language), or a type
8577 visible in the current context of the program being debugged.
8578 @end table
8579
8580 The working of the @code{explore} command can be illustrated with an
8581 example. If a data type @code{struct ComplexStruct} is defined in your
8582 C program as
8583
8584 @smallexample
8585 struct SimpleStruct
8586 @{
8587 int i;
8588 double d;
8589 @};
8590
8591 struct ComplexStruct
8592 @{
8593 struct SimpleStruct *ss_p;
8594 int arr[10];
8595 @};
8596 @end smallexample
8597
8598 @noindent
8599 followed by variable declarations as
8600
8601 @smallexample
8602 struct SimpleStruct ss = @{ 10, 1.11 @};
8603 struct ComplexStruct cs = @{ &ss, @{ 0, 1, 2, 3, 4, 5, 6, 7, 8, 9 @} @};
8604 @end smallexample
8605
8606 @noindent
8607 then, the value of the variable @code{cs} can be explored using the
8608 @code{explore} command as follows.
8609
8610 @smallexample
8611 (gdb) explore cs
8612 The value of `cs' is a struct/class of type `struct ComplexStruct' with
8613 the following fields:
8614
8615 ss_p = <Enter 0 to explore this field of type `struct SimpleStruct *'>
8616 arr = <Enter 1 to explore this field of type `int [10]'>
8617
8618 Enter the field number of choice:
8619 @end smallexample
8620
8621 @noindent
8622 Since the fields of @code{cs} are not scalar values, you are being
8623 prompted to chose the field you want to explore. Let's say you choose
8624 the field @code{ss_p} by entering @code{0}. Then, since this field is a
8625 pointer, you will be asked if it is pointing to a single value. From
8626 the declaration of @code{cs} above, it is indeed pointing to a single
8627 value, hence you enter @code{y}. If you enter @code{n}, then you will
8628 be asked if it were pointing to an array of values, in which case this
8629 field will be explored as if it were an array.
8630
8631 @smallexample
8632 `cs.ss_p' is a pointer to a value of type `struct SimpleStruct'
8633 Continue exploring it as a pointer to a single value [y/n]: y
8634 The value of `*(cs.ss_p)' is a struct/class of type `struct
8635 SimpleStruct' with the following fields:
8636
8637 i = 10 .. (Value of type `int')
8638 d = 1.1100000000000001 .. (Value of type `double')
8639
8640 Press enter to return to parent value:
8641 @end smallexample
8642
8643 @noindent
8644 If the field @code{arr} of @code{cs} was chosen for exploration by
8645 entering @code{1} earlier, then since it is as array, you will be
8646 prompted to enter the index of the element in the array that you want
8647 to explore.
8648
8649 @smallexample
8650 `cs.arr' is an array of `int'.
8651 Enter the index of the element you want to explore in `cs.arr': 5
8652
8653 `(cs.arr)[5]' is a scalar value of type `int'.
8654
8655 (cs.arr)[5] = 4
8656
8657 Press enter to return to parent value:
8658 @end smallexample
8659
8660 In general, at any stage of exploration, you can go deeper towards the
8661 leaf values by responding to the prompts appropriately, or hit the
8662 return key to return to the enclosing data structure (the @i{higher}
8663 level data structure).
8664
8665 Similar to exploring values, you can use the @code{explore} command to
8666 explore types. Instead of specifying a value (which is typically a
8667 variable name or an expression valid in the current context of the
8668 program being debugged), you specify a type name. If you consider the
8669 same example as above, your can explore the type
8670 @code{struct ComplexStruct} by passing the argument
8671 @code{struct ComplexStruct} to the @code{explore} command.
8672
8673 @smallexample
8674 (gdb) explore struct ComplexStruct
8675 @end smallexample
8676
8677 @noindent
8678 By responding to the prompts appropriately in the subsequent interactive
8679 session, you can explore the type @code{struct ComplexStruct} in a
8680 manner similar to how the value @code{cs} was explored in the above
8681 example.
8682
8683 The @code{explore} command also has two sub-commands,
8684 @code{explore value} and @code{explore type}. The former sub-command is
8685 a way to explicitly specify that value exploration of the argument is
8686 being invoked, while the latter is a way to explicitly specify that type
8687 exploration of the argument is being invoked.
8688
8689 @table @code
8690 @item explore value @var{expr}
8691 @cindex explore value
8692 This sub-command of @code{explore} explores the value of the
8693 expression @var{expr} (if @var{expr} is an expression valid in the
8694 current context of the program being debugged). The behavior of this
8695 command is identical to that of the behavior of the @code{explore}
8696 command being passed the argument @var{expr}.
8697
8698 @item explore type @var{arg}
8699 @cindex explore type
8700 This sub-command of @code{explore} explores the type of @var{arg} (if
8701 @var{arg} is a type visible in the current context of program being
8702 debugged), or the type of the value/expression @var{arg} (if @var{arg}
8703 is an expression valid in the current context of the program being
8704 debugged). If @var{arg} is a type, then the behavior of this command is
8705 identical to that of the @code{explore} command being passed the
8706 argument @var{arg}. If @var{arg} is an expression, then the behavior of
8707 this command will be identical to that of the @code{explore} command
8708 being passed the type of @var{arg} as the argument.
8709 @end table
8710
8711 @menu
8712 * Expressions:: Expressions
8713 * Ambiguous Expressions:: Ambiguous Expressions
8714 * Variables:: Program variables
8715 * Arrays:: Artificial arrays
8716 * Output Formats:: Output formats
8717 * Memory:: Examining memory
8718 * Auto Display:: Automatic display
8719 * Print Settings:: Print settings
8720 * Pretty Printing:: Python pretty printing
8721 * Value History:: Value history
8722 * Convenience Vars:: Convenience variables
8723 * Convenience Funs:: Convenience functions
8724 * Registers:: Registers
8725 * Floating Point Hardware:: Floating point hardware
8726 * Vector Unit:: Vector Unit
8727 * OS Information:: Auxiliary data provided by operating system
8728 * Memory Region Attributes:: Memory region attributes
8729 * Dump/Restore Files:: Copy between memory and a file
8730 * Core File Generation:: Cause a program dump its core
8731 * Character Sets:: Debugging programs that use a different
8732 character set than GDB does
8733 * Caching Target Data:: Data caching for targets
8734 * Searching Memory:: Searching memory for a sequence of bytes
8735 * Value Sizes:: Managing memory allocated for values
8736 @end menu
8737
8738 @node Expressions
8739 @section Expressions
8740
8741 @cindex expressions
8742 @code{print} and many other @value{GDBN} commands accept an expression and
8743 compute its value. Any kind of constant, variable or operator defined
8744 by the programming language you are using is valid in an expression in
8745 @value{GDBN}. This includes conditional expressions, function calls,
8746 casts, and string constants. It also includes preprocessor macros, if
8747 you compiled your program to include this information; see
8748 @ref{Compilation}.
8749
8750 @cindex arrays in expressions
8751 @value{GDBN} supports array constants in expressions input by
8752 the user. The syntax is @{@var{element}, @var{element}@dots{}@}. For example,
8753 you can use the command @code{print @{1, 2, 3@}} to create an array
8754 of three integers. If you pass an array to a function or assign it
8755 to a program variable, @value{GDBN} copies the array to memory that
8756 is @code{malloc}ed in the target program.
8757
8758 Because C is so widespread, most of the expressions shown in examples in
8759 this manual are in C. @xref{Languages, , Using @value{GDBN} with Different
8760 Languages}, for information on how to use expressions in other
8761 languages.
8762
8763 In this section, we discuss operators that you can use in @value{GDBN}
8764 expressions regardless of your programming language.
8765
8766 @cindex casts, in expressions
8767 Casts are supported in all languages, not just in C, because it is so
8768 useful to cast a number into a pointer in order to examine a structure
8769 at that address in memory.
8770 @c FIXME: casts supported---Mod2 true?
8771
8772 @value{GDBN} supports these operators, in addition to those common
8773 to programming languages:
8774
8775 @table @code
8776 @item @@
8777 @samp{@@} is a binary operator for treating parts of memory as arrays.
8778 @xref{Arrays, ,Artificial Arrays}, for more information.
8779
8780 @item ::
8781 @samp{::} allows you to specify a variable in terms of the file or
8782 function where it is defined. @xref{Variables, ,Program Variables}.
8783
8784 @cindex @{@var{type}@}
8785 @cindex type casting memory
8786 @cindex memory, viewing as typed object
8787 @cindex casts, to view memory
8788 @item @{@var{type}@} @var{addr}
8789 Refers to an object of type @var{type} stored at address @var{addr} in
8790 memory. The address @var{addr} may be any expression whose value is
8791 an integer or pointer (but parentheses are required around binary
8792 operators, just as in a cast). This construct is allowed regardless
8793 of what kind of data is normally supposed to reside at @var{addr}.
8794 @end table
8795
8796 @node Ambiguous Expressions
8797 @section Ambiguous Expressions
8798 @cindex ambiguous expressions
8799
8800 Expressions can sometimes contain some ambiguous elements. For instance,
8801 some programming languages (notably Ada, C@t{++} and Objective-C) permit
8802 a single function name to be defined several times, for application in
8803 different contexts. This is called @dfn{overloading}. Another example
8804 involving Ada is generics. A @dfn{generic package} is similar to C@t{++}
8805 templates and is typically instantiated several times, resulting in
8806 the same function name being defined in different contexts.
8807
8808 In some cases and depending on the language, it is possible to adjust
8809 the expression to remove the ambiguity. For instance in C@t{++}, you
8810 can specify the signature of the function you want to break on, as in
8811 @kbd{break @var{function}(@var{types})}. In Ada, using the fully
8812 qualified name of your function often makes the expression unambiguous
8813 as well.
8814
8815 When an ambiguity that needs to be resolved is detected, the debugger
8816 has the capability to display a menu of numbered choices for each
8817 possibility, and then waits for the selection with the prompt @samp{>}.
8818 The first option is always @samp{[0] cancel}, and typing @kbd{0 @key{RET}}
8819 aborts the current command. If the command in which the expression was
8820 used allows more than one choice to be selected, the next option in the
8821 menu is @samp{[1] all}, and typing @kbd{1 @key{RET}} selects all possible
8822 choices.
8823
8824 For example, the following session excerpt shows an attempt to set a
8825 breakpoint at the overloaded symbol @code{String::after}.
8826 We choose three particular definitions of that function name:
8827
8828 @c FIXME! This is likely to change to show arg type lists, at least
8829 @smallexample
8830 @group
8831 (@value{GDBP}) b String::after
8832 [0] cancel
8833 [1] all
8834 [2] file:String.cc; line number:867
8835 [3] file:String.cc; line number:860
8836 [4] file:String.cc; line number:875
8837 [5] file:String.cc; line number:853
8838 [6] file:String.cc; line number:846
8839 [7] file:String.cc; line number:735
8840 > 2 4 6
8841 Breakpoint 1 at 0xb26c: file String.cc, line 867.
8842 Breakpoint 2 at 0xb344: file String.cc, line 875.
8843 Breakpoint 3 at 0xafcc: file String.cc, line 846.
8844 Multiple breakpoints were set.
8845 Use the "delete" command to delete unwanted
8846 breakpoints.
8847 (@value{GDBP})
8848 @end group
8849 @end smallexample
8850
8851 @table @code
8852 @kindex set multiple-symbols
8853 @item set multiple-symbols @var{mode}
8854 @cindex multiple-symbols menu
8855
8856 This option allows you to adjust the debugger behavior when an expression
8857 is ambiguous.
8858
8859 By default, @var{mode} is set to @code{all}. If the command with which
8860 the expression is used allows more than one choice, then @value{GDBN}
8861 automatically selects all possible choices. For instance, inserting
8862 a breakpoint on a function using an ambiguous name results in a breakpoint
8863 inserted on each possible match. However, if a unique choice must be made,
8864 then @value{GDBN} uses the menu to help you disambiguate the expression.
8865 For instance, printing the address of an overloaded function will result
8866 in the use of the menu.
8867
8868 When @var{mode} is set to @code{ask}, the debugger always uses the menu
8869 when an ambiguity is detected.
8870
8871 Finally, when @var{mode} is set to @code{cancel}, the debugger reports
8872 an error due to the ambiguity and the command is aborted.
8873
8874 @kindex show multiple-symbols
8875 @item show multiple-symbols
8876 Show the current value of the @code{multiple-symbols} setting.
8877 @end table
8878
8879 @node Variables
8880 @section Program Variables
8881
8882 The most common kind of expression to use is the name of a variable
8883 in your program.
8884
8885 Variables in expressions are understood in the selected stack frame
8886 (@pxref{Selection, ,Selecting a Frame}); they must be either:
8887
8888 @itemize @bullet
8889 @item
8890 global (or file-static)
8891 @end itemize
8892
8893 @noindent or
8894
8895 @itemize @bullet
8896 @item
8897 visible according to the scope rules of the
8898 programming language from the point of execution in that frame
8899 @end itemize
8900
8901 @noindent This means that in the function
8902
8903 @smallexample
8904 foo (a)
8905 int a;
8906 @{
8907 bar (a);
8908 @{
8909 int b = test ();
8910 bar (b);
8911 @}
8912 @}
8913 @end smallexample
8914
8915 @noindent
8916 you can examine and use the variable @code{a} whenever your program is
8917 executing within the function @code{foo}, but you can only use or
8918 examine the variable @code{b} while your program is executing inside
8919 the block where @code{b} is declared.
8920
8921 @cindex variable name conflict
8922 There is an exception: you can refer to a variable or function whose
8923 scope is a single source file even if the current execution point is not
8924 in this file. But it is possible to have more than one such variable or
8925 function with the same name (in different source files). If that
8926 happens, referring to that name has unpredictable effects. If you wish,
8927 you can specify a static variable in a particular function or file by
8928 using the colon-colon (@code{::}) notation:
8929
8930 @cindex colon-colon, context for variables/functions
8931 @ifnotinfo
8932 @c info cannot cope with a :: index entry, but why deprive hard copy readers?
8933 @cindex @code{::}, context for variables/functions
8934 @end ifnotinfo
8935 @smallexample
8936 @var{file}::@var{variable}
8937 @var{function}::@var{variable}
8938 @end smallexample
8939
8940 @noindent
8941 Here @var{file} or @var{function} is the name of the context for the
8942 static @var{variable}. In the case of file names, you can use quotes to
8943 make sure @value{GDBN} parses the file name as a single word---for example,
8944 to print a global value of @code{x} defined in @file{f2.c}:
8945
8946 @smallexample
8947 (@value{GDBP}) p 'f2.c'::x
8948 @end smallexample
8949
8950 The @code{::} notation is normally used for referring to
8951 static variables, since you typically disambiguate uses of local variables
8952 in functions by selecting the appropriate frame and using the
8953 simple name of the variable. However, you may also use this notation
8954 to refer to local variables in frames enclosing the selected frame:
8955
8956 @smallexample
8957 void
8958 foo (int a)
8959 @{
8960 if (a < 10)
8961 bar (a);
8962 else
8963 process (a); /* Stop here */
8964 @}
8965
8966 int
8967 bar (int a)
8968 @{
8969 foo (a + 5);
8970 @}
8971 @end smallexample
8972
8973 @noindent
8974 For example, if there is a breakpoint at the commented line,
8975 here is what you might see
8976 when the program stops after executing the call @code{bar(0)}:
8977
8978 @smallexample
8979 (@value{GDBP}) p a
8980 $1 = 10
8981 (@value{GDBP}) p bar::a
8982 $2 = 5
8983 (@value{GDBP}) up 2
8984 #2 0x080483d0 in foo (a=5) at foobar.c:12
8985 (@value{GDBP}) p a
8986 $3 = 5
8987 (@value{GDBP}) p bar::a
8988 $4 = 0
8989 @end smallexample
8990
8991 @cindex C@t{++} scope resolution
8992 These uses of @samp{::} are very rarely in conflict with the very
8993 similar use of the same notation in C@t{++}. When they are in
8994 conflict, the C@t{++} meaning takes precedence; however, this can be
8995 overridden by quoting the file or function name with single quotes.
8996
8997 For example, suppose the program is stopped in a method of a class
8998 that has a field named @code{includefile}, and there is also an
8999 include file named @file{includefile} that defines a variable,
9000 @code{some_global}.
9001
9002 @smallexample
9003 (@value{GDBP}) p includefile
9004 $1 = 23
9005 (@value{GDBP}) p includefile::some_global
9006 A syntax error in expression, near `'.
9007 (@value{GDBP}) p 'includefile'::some_global
9008 $2 = 27
9009 @end smallexample
9010
9011 @cindex wrong values
9012 @cindex variable values, wrong
9013 @cindex function entry/exit, wrong values of variables
9014 @cindex optimized code, wrong values of variables
9015 @quotation
9016 @emph{Warning:} Occasionally, a local variable may appear to have the
9017 wrong value at certain points in a function---just after entry to a new
9018 scope, and just before exit.
9019 @end quotation
9020 You may see this problem when you are stepping by machine instructions.
9021 This is because, on most machines, it takes more than one instruction to
9022 set up a stack frame (including local variable definitions); if you are
9023 stepping by machine instructions, variables may appear to have the wrong
9024 values until the stack frame is completely built. On exit, it usually
9025 also takes more than one machine instruction to destroy a stack frame;
9026 after you begin stepping through that group of instructions, local
9027 variable definitions may be gone.
9028
9029 This may also happen when the compiler does significant optimizations.
9030 To be sure of always seeing accurate values, turn off all optimization
9031 when compiling.
9032
9033 @cindex ``No symbol "foo" in current context''
9034 Another possible effect of compiler optimizations is to optimize
9035 unused variables out of existence, or assign variables to registers (as
9036 opposed to memory addresses). Depending on the support for such cases
9037 offered by the debug info format used by the compiler, @value{GDBN}
9038 might not be able to display values for such local variables. If that
9039 happens, @value{GDBN} will print a message like this:
9040
9041 @smallexample
9042 No symbol "foo" in current context.
9043 @end smallexample
9044
9045 To solve such problems, either recompile without optimizations, or use a
9046 different debug info format, if the compiler supports several such
9047 formats. @xref{Compilation}, for more information on choosing compiler
9048 options. @xref{C, ,C and C@t{++}}, for more information about debug
9049 info formats that are best suited to C@t{++} programs.
9050
9051 If you ask to print an object whose contents are unknown to
9052 @value{GDBN}, e.g., because its data type is not completely specified
9053 by the debug information, @value{GDBN} will say @samp{<incomplete
9054 type>}. @xref{Symbols, incomplete type}, for more about this.
9055
9056 If you append @kbd{@@entry} string to a function parameter name you get its
9057 value at the time the function got called. If the value is not available an
9058 error message is printed. Entry values are available only with some compilers.
9059 Entry values are normally also printed at the function parameter list according
9060 to @ref{set print entry-values}.
9061
9062 @smallexample
9063 Breakpoint 1, d (i=30) at gdb.base/entry-value.c:29
9064 29 i++;
9065 (gdb) next
9066 30 e (i);
9067 (gdb) print i
9068 $1 = 31
9069 (gdb) print i@@entry
9070 $2 = 30
9071 @end smallexample
9072
9073 Strings are identified as arrays of @code{char} values without specified
9074 signedness. Arrays of either @code{signed char} or @code{unsigned char} get
9075 printed as arrays of 1 byte sized integers. @code{-fsigned-char} or
9076 @code{-funsigned-char} @value{NGCC} options have no effect as @value{GDBN}
9077 defines literal string type @code{"char"} as @code{char} without a sign.
9078 For program code
9079
9080 @smallexample
9081 char var0[] = "A";
9082 signed char var1[] = "A";
9083 @end smallexample
9084
9085 You get during debugging
9086 @smallexample
9087 (gdb) print var0
9088 $1 = "A"
9089 (gdb) print var1
9090 $2 = @{65 'A', 0 '\0'@}
9091 @end smallexample
9092
9093 @node Arrays
9094 @section Artificial Arrays
9095
9096 @cindex artificial array
9097 @cindex arrays
9098 @kindex @@@r{, referencing memory as an array}
9099 It is often useful to print out several successive objects of the
9100 same type in memory; a section of an array, or an array of
9101 dynamically determined size for which only a pointer exists in the
9102 program.
9103
9104 You can do this by referring to a contiguous span of memory as an
9105 @dfn{artificial array}, using the binary operator @samp{@@}. The left
9106 operand of @samp{@@} should be the first element of the desired array
9107 and be an individual object. The right operand should be the desired length
9108 of the array. The result is an array value whose elements are all of
9109 the type of the left argument. The first element is actually the left
9110 argument; the second element comes from bytes of memory immediately
9111 following those that hold the first element, and so on. Here is an
9112 example. If a program says
9113
9114 @smallexample
9115 int *array = (int *) malloc (len * sizeof (int));
9116 @end smallexample
9117
9118 @noindent
9119 you can print the contents of @code{array} with
9120
9121 @smallexample
9122 p *array@@len
9123 @end smallexample
9124
9125 The left operand of @samp{@@} must reside in memory. Array values made
9126 with @samp{@@} in this way behave just like other arrays in terms of
9127 subscripting, and are coerced to pointers when used in expressions.
9128 Artificial arrays most often appear in expressions via the value history
9129 (@pxref{Value History, ,Value History}), after printing one out.
9130
9131 Another way to create an artificial array is to use a cast.
9132 This re-interprets a value as if it were an array.
9133 The value need not be in memory:
9134 @smallexample
9135 (@value{GDBP}) p/x (short[2])0x12345678
9136 $1 = @{0x1234, 0x5678@}
9137 @end smallexample
9138
9139 As a convenience, if you leave the array length out (as in
9140 @samp{(@var{type}[])@var{value}}) @value{GDBN} calculates the size to fill
9141 the value (as @samp{sizeof(@var{value})/sizeof(@var{type})}:
9142 @smallexample
9143 (@value{GDBP}) p/x (short[])0x12345678
9144 $2 = @{0x1234, 0x5678@}
9145 @end smallexample
9146
9147 Sometimes the artificial array mechanism is not quite enough; in
9148 moderately complex data structures, the elements of interest may not
9149 actually be adjacent---for example, if you are interested in the values
9150 of pointers in an array. One useful work-around in this situation is
9151 to use a convenience variable (@pxref{Convenience Vars, ,Convenience
9152 Variables}) as a counter in an expression that prints the first
9153 interesting value, and then repeat that expression via @key{RET}. For
9154 instance, suppose you have an array @code{dtab} of pointers to
9155 structures, and you are interested in the values of a field @code{fv}
9156 in each structure. Here is an example of what you might type:
9157
9158 @smallexample
9159 set $i = 0
9160 p dtab[$i++]->fv
9161 @key{RET}
9162 @key{RET}
9163 @dots{}
9164 @end smallexample
9165
9166 @node Output Formats
9167 @section Output Formats
9168
9169 @cindex formatted output
9170 @cindex output formats
9171 By default, @value{GDBN} prints a value according to its data type. Sometimes
9172 this is not what you want. For example, you might want to print a number
9173 in hex, or a pointer in decimal. Or you might want to view data in memory
9174 at a certain address as a character string or as an instruction. To do
9175 these things, specify an @dfn{output format} when you print a value.
9176
9177 The simplest use of output formats is to say how to print a value
9178 already computed. This is done by starting the arguments of the
9179 @code{print} command with a slash and a format letter. The format
9180 letters supported are:
9181
9182 @table @code
9183 @item x
9184 Regard the bits of the value as an integer, and print the integer in
9185 hexadecimal.
9186
9187 @item d
9188 Print as integer in signed decimal.
9189
9190 @item u
9191 Print as integer in unsigned decimal.
9192
9193 @item o
9194 Print as integer in octal.
9195
9196 @item t
9197 Print as integer in binary. The letter @samp{t} stands for ``two''.
9198 @footnote{@samp{b} cannot be used because these format letters are also
9199 used with the @code{x} command, where @samp{b} stands for ``byte'';
9200 see @ref{Memory,,Examining Memory}.}
9201
9202 @item a
9203 @cindex unknown address, locating
9204 @cindex locate address
9205 Print as an address, both absolute in hexadecimal and as an offset from
9206 the nearest preceding symbol. You can use this format used to discover
9207 where (in what function) an unknown address is located:
9208
9209 @smallexample
9210 (@value{GDBP}) p/a 0x54320
9211 $3 = 0x54320 <_initialize_vx+396>
9212 @end smallexample
9213
9214 @noindent
9215 The command @code{info symbol 0x54320} yields similar results.
9216 @xref{Symbols, info symbol}.
9217
9218 @item c
9219 Regard as an integer and print it as a character constant. This
9220 prints both the numerical value and its character representation. The
9221 character representation is replaced with the octal escape @samp{\nnn}
9222 for characters outside the 7-bit @sc{ascii} range.
9223
9224 Without this format, @value{GDBN} displays @code{char},
9225 @w{@code{unsigned char}}, and @w{@code{signed char}} data as character
9226 constants. Single-byte members of vectors are displayed as integer
9227 data.
9228
9229 @item f
9230 Regard the bits of the value as a floating point number and print
9231 using typical floating point syntax.
9232
9233 @item s
9234 @cindex printing strings
9235 @cindex printing byte arrays
9236 Regard as a string, if possible. With this format, pointers to single-byte
9237 data are displayed as null-terminated strings and arrays of single-byte data
9238 are displayed as fixed-length strings. Other values are displayed in their
9239 natural types.
9240
9241 Without this format, @value{GDBN} displays pointers to and arrays of
9242 @code{char}, @w{@code{unsigned char}}, and @w{@code{signed char}} as
9243 strings. Single-byte members of a vector are displayed as an integer
9244 array.
9245
9246 @item z
9247 Like @samp{x} formatting, the value is treated as an integer and
9248 printed as hexadecimal, but leading zeros are printed to pad the value
9249 to the size of the integer type.
9250
9251 @item r
9252 @cindex raw printing
9253 Print using the @samp{raw} formatting. By default, @value{GDBN} will
9254 use a Python-based pretty-printer, if one is available (@pxref{Pretty
9255 Printing}). This typically results in a higher-level display of the
9256 value's contents. The @samp{r} format bypasses any Python
9257 pretty-printer which might exist.
9258 @end table
9259
9260 For example, to print the program counter in hex (@pxref{Registers}), type
9261
9262 @smallexample
9263 p/x $pc
9264 @end smallexample
9265
9266 @noindent
9267 Note that no space is required before the slash; this is because command
9268 names in @value{GDBN} cannot contain a slash.
9269
9270 To reprint the last value in the value history with a different format,
9271 you can use the @code{print} command with just a format and no
9272 expression. For example, @samp{p/x} reprints the last value in hex.
9273
9274 @node Memory
9275 @section Examining Memory
9276
9277 You can use the command @code{x} (for ``examine'') to examine memory in
9278 any of several formats, independently of your program's data types.
9279
9280 @cindex examining memory
9281 @table @code
9282 @kindex x @r{(examine memory)}
9283 @item x/@var{nfu} @var{addr}
9284 @itemx x @var{addr}
9285 @itemx x
9286 Use the @code{x} command to examine memory.
9287 @end table
9288
9289 @var{n}, @var{f}, and @var{u} are all optional parameters that specify how
9290 much memory to display and how to format it; @var{addr} is an
9291 expression giving the address where you want to start displaying memory.
9292 If you use defaults for @var{nfu}, you need not type the slash @samp{/}.
9293 Several commands set convenient defaults for @var{addr}.
9294
9295 @table @r
9296 @item @var{n}, the repeat count
9297 The repeat count is a decimal integer; the default is 1. It specifies
9298 how much memory (counting by units @var{u}) to display.
9299 @c This really is **decimal**; unaffected by 'set radix' as of GDB
9300 @c 4.1.2.
9301
9302 @item @var{f}, the display format
9303 The display format is one of the formats used by @code{print}
9304 (@samp{x}, @samp{d}, @samp{u}, @samp{o}, @samp{t}, @samp{a}, @samp{c},
9305 @samp{f}, @samp{s}), and in addition @samp{i} (for machine instructions).
9306 The default is @samp{x} (hexadecimal) initially. The default changes
9307 each time you use either @code{x} or @code{print}.
9308
9309 @item @var{u}, the unit size
9310 The unit size is any of
9311
9312 @table @code
9313 @item b
9314 Bytes.
9315 @item h
9316 Halfwords (two bytes).
9317 @item w
9318 Words (four bytes). This is the initial default.
9319 @item g
9320 Giant words (eight bytes).
9321 @end table
9322
9323 Each time you specify a unit size with @code{x}, that size becomes the
9324 default unit the next time you use @code{x}. For the @samp{i} format,
9325 the unit size is ignored and is normally not written. For the @samp{s} format,
9326 the unit size defaults to @samp{b}, unless it is explicitly given.
9327 Use @kbd{x /hs} to display 16-bit char strings and @kbd{x /ws} to display
9328 32-bit strings. The next use of @kbd{x /s} will again display 8-bit strings.
9329 Note that the results depend on the programming language of the
9330 current compilation unit. If the language is C, the @samp{s}
9331 modifier will use the UTF-16 encoding while @samp{w} will use
9332 UTF-32. The encoding is set by the programming language and cannot
9333 be altered.
9334
9335 @item @var{addr}, starting display address
9336 @var{addr} is the address where you want @value{GDBN} to begin displaying
9337 memory. The expression need not have a pointer value (though it may);
9338 it is always interpreted as an integer address of a byte of memory.
9339 @xref{Expressions, ,Expressions}, for more information on expressions. The default for
9340 @var{addr} is usually just after the last address examined---but several
9341 other commands also set the default address: @code{info breakpoints} (to
9342 the address of the last breakpoint listed), @code{info line} (to the
9343 starting address of a line), and @code{print} (if you use it to display
9344 a value from memory).
9345 @end table
9346
9347 For example, @samp{x/3uh 0x54320} is a request to display three halfwords
9348 (@code{h}) of memory, formatted as unsigned decimal integers (@samp{u}),
9349 starting at address @code{0x54320}. @samp{x/4xw $sp} prints the four
9350 words (@samp{w}) of memory above the stack pointer (here, @samp{$sp};
9351 @pxref{Registers, ,Registers}) in hexadecimal (@samp{x}).
9352
9353 Since the letters indicating unit sizes are all distinct from the
9354 letters specifying output formats, you do not have to remember whether
9355 unit size or format comes first; either order works. The output
9356 specifications @samp{4xw} and @samp{4wx} mean exactly the same thing.
9357 (However, the count @var{n} must come first; @samp{wx4} does not work.)
9358
9359 Even though the unit size @var{u} is ignored for the formats @samp{s}
9360 and @samp{i}, you might still want to use a count @var{n}; for example,
9361 @samp{3i} specifies that you want to see three machine instructions,
9362 including any operands. For convenience, especially when used with
9363 the @code{display} command, the @samp{i} format also prints branch delay
9364 slot instructions, if any, beyond the count specified, which immediately
9365 follow the last instruction that is within the count. The command
9366 @code{disassemble} gives an alternative way of inspecting machine
9367 instructions; see @ref{Machine Code,,Source and Machine Code}.
9368
9369 All the defaults for the arguments to @code{x} are designed to make it
9370 easy to continue scanning memory with minimal specifications each time
9371 you use @code{x}. For example, after you have inspected three machine
9372 instructions with @samp{x/3i @var{addr}}, you can inspect the next seven
9373 with just @samp{x/7}. If you use @key{RET} to repeat the @code{x} command,
9374 the repeat count @var{n} is used again; the other arguments default as
9375 for successive uses of @code{x}.
9376
9377 When examining machine instructions, the instruction at current program
9378 counter is shown with a @code{=>} marker. For example:
9379
9380 @smallexample
9381 (@value{GDBP}) x/5i $pc-6
9382 0x804837f <main+11>: mov %esp,%ebp
9383 0x8048381 <main+13>: push %ecx
9384 0x8048382 <main+14>: sub $0x4,%esp
9385 => 0x8048385 <main+17>: movl $0x8048460,(%esp)
9386 0x804838c <main+24>: call 0x80482d4 <puts@@plt>
9387 @end smallexample
9388
9389 @cindex @code{$_}, @code{$__}, and value history
9390 The addresses and contents printed by the @code{x} command are not saved
9391 in the value history because there is often too much of them and they
9392 would get in the way. Instead, @value{GDBN} makes these values available for
9393 subsequent use in expressions as values of the convenience variables
9394 @code{$_} and @code{$__}. After an @code{x} command, the last address
9395 examined is available for use in expressions in the convenience variable
9396 @code{$_}. The contents of that address, as examined, are available in
9397 the convenience variable @code{$__}.
9398
9399 If the @code{x} command has a repeat count, the address and contents saved
9400 are from the last memory unit printed; this is not the same as the last
9401 address printed if several units were printed on the last line of output.
9402
9403 @anchor{addressable memory unit}
9404 @cindex addressable memory unit
9405 Most targets have an addressable memory unit size of 8 bits. This means
9406 that to each memory address are associated 8 bits of data. Some
9407 targets, however, have other addressable memory unit sizes.
9408 Within @value{GDBN} and this document, the term
9409 @dfn{addressable memory unit} (or @dfn{memory unit} for short) is used
9410 when explicitly referring to a chunk of data of that size. The word
9411 @dfn{byte} is used to refer to a chunk of data of 8 bits, regardless of
9412 the addressable memory unit size of the target. For most systems,
9413 addressable memory unit is a synonym of byte.
9414
9415 @cindex remote memory comparison
9416 @cindex target memory comparison
9417 @cindex verify remote memory image
9418 @cindex verify target memory image
9419 When you are debugging a program running on a remote target machine
9420 (@pxref{Remote Debugging}), you may wish to verify the program's image
9421 in the remote machine's memory against the executable file you
9422 downloaded to the target. Or, on any target, you may want to check
9423 whether the program has corrupted its own read-only sections. The
9424 @code{compare-sections} command is provided for such situations.
9425
9426 @table @code
9427 @kindex compare-sections
9428 @item compare-sections @r{[}@var{section-name}@r{|}@code{-r}@r{]}
9429 Compare the data of a loadable section @var{section-name} in the
9430 executable file of the program being debugged with the same section in
9431 the target machine's memory, and report any mismatches. With no
9432 arguments, compares all loadable sections. With an argument of
9433 @code{-r}, compares all loadable read-only sections.
9434
9435 Note: for remote targets, this command can be accelerated if the
9436 target supports computing the CRC checksum of a block of memory
9437 (@pxref{qCRC packet}).
9438 @end table
9439
9440 @node Auto Display
9441 @section Automatic Display
9442 @cindex automatic display
9443 @cindex display of expressions
9444
9445 If you find that you want to print the value of an expression frequently
9446 (to see how it changes), you might want to add it to the @dfn{automatic
9447 display list} so that @value{GDBN} prints its value each time your program stops.
9448 Each expression added to the list is given a number to identify it;
9449 to remove an expression from the list, you specify that number.
9450 The automatic display looks like this:
9451
9452 @smallexample
9453 2: foo = 38
9454 3: bar[5] = (struct hack *) 0x3804
9455 @end smallexample
9456
9457 @noindent
9458 This display shows item numbers, expressions and their current values. As with
9459 displays you request manually using @code{x} or @code{print}, you can
9460 specify the output format you prefer; in fact, @code{display} decides
9461 whether to use @code{print} or @code{x} depending your format
9462 specification---it uses @code{x} if you specify either the @samp{i}
9463 or @samp{s} format, or a unit size; otherwise it uses @code{print}.
9464
9465 @table @code
9466 @kindex display
9467 @item display @var{expr}
9468 Add the expression @var{expr} to the list of expressions to display
9469 each time your program stops. @xref{Expressions, ,Expressions}.
9470
9471 @code{display} does not repeat if you press @key{RET} again after using it.
9472
9473 @item display/@var{fmt} @var{expr}
9474 For @var{fmt} specifying only a display format and not a size or
9475 count, add the expression @var{expr} to the auto-display list but
9476 arrange to display it each time in the specified format @var{fmt}.
9477 @xref{Output Formats,,Output Formats}.
9478
9479 @item display/@var{fmt} @var{addr}
9480 For @var{fmt} @samp{i} or @samp{s}, or including a unit-size or a
9481 number of units, add the expression @var{addr} as a memory address to
9482 be examined each time your program stops. Examining means in effect
9483 doing @samp{x/@var{fmt} @var{addr}}. @xref{Memory, ,Examining Memory}.
9484 @end table
9485
9486 For example, @samp{display/i $pc} can be helpful, to see the machine
9487 instruction about to be executed each time execution stops (@samp{$pc}
9488 is a common name for the program counter; @pxref{Registers, ,Registers}).
9489
9490 @table @code
9491 @kindex delete display
9492 @kindex undisplay
9493 @item undisplay @var{dnums}@dots{}
9494 @itemx delete display @var{dnums}@dots{}
9495 Remove items from the list of expressions to display. Specify the
9496 numbers of the displays that you want affected with the command
9497 argument @var{dnums}. It can be a single display number, one of the
9498 numbers shown in the first field of the @samp{info display} display;
9499 or it could be a range of display numbers, as in @code{2-4}.
9500
9501 @code{undisplay} does not repeat if you press @key{RET} after using it.
9502 (Otherwise you would just get the error @samp{No display number @dots{}}.)
9503
9504 @kindex disable display
9505 @item disable display @var{dnums}@dots{}
9506 Disable the display of item numbers @var{dnums}. A disabled display
9507 item is not printed automatically, but is not forgotten. It may be
9508 enabled again later. Specify the numbers of the displays that you
9509 want affected with the command argument @var{dnums}. It can be a
9510 single display number, one of the numbers shown in the first field of
9511 the @samp{info display} display; or it could be a range of display
9512 numbers, as in @code{2-4}.
9513
9514 @kindex enable display
9515 @item enable display @var{dnums}@dots{}
9516 Enable display of item numbers @var{dnums}. It becomes effective once
9517 again in auto display of its expression, until you specify otherwise.
9518 Specify the numbers of the displays that you want affected with the
9519 command argument @var{dnums}. It can be a single display number, one
9520 of the numbers shown in the first field of the @samp{info display}
9521 display; or it could be a range of display numbers, as in @code{2-4}.
9522
9523 @item display
9524 Display the current values of the expressions on the list, just as is
9525 done when your program stops.
9526
9527 @kindex info display
9528 @item info display
9529 Print the list of expressions previously set up to display
9530 automatically, each one with its item number, but without showing the
9531 values. This includes disabled expressions, which are marked as such.
9532 It also includes expressions which would not be displayed right now
9533 because they refer to automatic variables not currently available.
9534 @end table
9535
9536 @cindex display disabled out of scope
9537 If a display expression refers to local variables, then it does not make
9538 sense outside the lexical context for which it was set up. Such an
9539 expression is disabled when execution enters a context where one of its
9540 variables is not defined. For example, if you give the command
9541 @code{display last_char} while inside a function with an argument
9542 @code{last_char}, @value{GDBN} displays this argument while your program
9543 continues to stop inside that function. When it stops elsewhere---where
9544 there is no variable @code{last_char}---the display is disabled
9545 automatically. The next time your program stops where @code{last_char}
9546 is meaningful, you can enable the display expression once again.
9547
9548 @node Print Settings
9549 @section Print Settings
9550
9551 @cindex format options
9552 @cindex print settings
9553 @value{GDBN} provides the following ways to control how arrays, structures,
9554 and symbols are printed.
9555
9556 @noindent
9557 These settings are useful for debugging programs in any language:
9558
9559 @table @code
9560 @kindex set print
9561 @item set print address
9562 @itemx set print address on
9563 @cindex print/don't print memory addresses
9564 @value{GDBN} prints memory addresses showing the location of stack
9565 traces, structure values, pointer values, breakpoints, and so forth,
9566 even when it also displays the contents of those addresses. The default
9567 is @code{on}. For example, this is what a stack frame display looks like with
9568 @code{set print address on}:
9569
9570 @smallexample
9571 @group
9572 (@value{GDBP}) f
9573 #0 set_quotes (lq=0x34c78 "<<", rq=0x34c88 ">>")
9574 at input.c:530
9575 530 if (lquote != def_lquote)
9576 @end group
9577 @end smallexample
9578
9579 @item set print address off
9580 Do not print addresses when displaying their contents. For example,
9581 this is the same stack frame displayed with @code{set print address off}:
9582
9583 @smallexample
9584 @group
9585 (@value{GDBP}) set print addr off
9586 (@value{GDBP}) f
9587 #0 set_quotes (lq="<<", rq=">>") at input.c:530
9588 530 if (lquote != def_lquote)
9589 @end group
9590 @end smallexample
9591
9592 You can use @samp{set print address off} to eliminate all machine
9593 dependent displays from the @value{GDBN} interface. For example, with
9594 @code{print address off}, you should get the same text for backtraces on
9595 all machines---whether or not they involve pointer arguments.
9596
9597 @kindex show print
9598 @item show print address
9599 Show whether or not addresses are to be printed.
9600 @end table
9601
9602 When @value{GDBN} prints a symbolic address, it normally prints the
9603 closest earlier symbol plus an offset. If that symbol does not uniquely
9604 identify the address (for example, it is a name whose scope is a single
9605 source file), you may need to clarify. One way to do this is with
9606 @code{info line}, for example @samp{info line *0x4537}. Alternately,
9607 you can set @value{GDBN} to print the source file and line number when
9608 it prints a symbolic address:
9609
9610 @table @code
9611 @item set print symbol-filename on
9612 @cindex source file and line of a symbol
9613 @cindex symbol, source file and line
9614 Tell @value{GDBN} to print the source file name and line number of a
9615 symbol in the symbolic form of an address.
9616
9617 @item set print symbol-filename off
9618 Do not print source file name and line number of a symbol. This is the
9619 default.
9620
9621 @item show print symbol-filename
9622 Show whether or not @value{GDBN} will print the source file name and
9623 line number of a symbol in the symbolic form of an address.
9624 @end table
9625
9626 Another situation where it is helpful to show symbol filenames and line
9627 numbers is when disassembling code; @value{GDBN} shows you the line
9628 number and source file that corresponds to each instruction.
9629
9630 Also, you may wish to see the symbolic form only if the address being
9631 printed is reasonably close to the closest earlier symbol:
9632
9633 @table @code
9634 @item set print max-symbolic-offset @var{max-offset}
9635 @itemx set print max-symbolic-offset unlimited
9636 @cindex maximum value for offset of closest symbol
9637 Tell @value{GDBN} to only display the symbolic form of an address if the
9638 offset between the closest earlier symbol and the address is less than
9639 @var{max-offset}. The default is @code{unlimited}, which tells @value{GDBN}
9640 to always print the symbolic form of an address if any symbol precedes
9641 it. Zero is equivalent to @code{unlimited}.
9642
9643 @item show print max-symbolic-offset
9644 Ask how large the maximum offset is that @value{GDBN} prints in a
9645 symbolic address.
9646 @end table
9647
9648 @cindex wild pointer, interpreting
9649 @cindex pointer, finding referent
9650 If you have a pointer and you are not sure where it points, try
9651 @samp{set print symbol-filename on}. Then you can determine the name
9652 and source file location of the variable where it points, using
9653 @samp{p/a @var{pointer}}. This interprets the address in symbolic form.
9654 For example, here @value{GDBN} shows that a variable @code{ptt} points
9655 at another variable @code{t}, defined in @file{hi2.c}:
9656
9657 @smallexample
9658 (@value{GDBP}) set print symbol-filename on
9659 (@value{GDBP}) p/a ptt
9660 $4 = 0xe008 <t in hi2.c>
9661 @end smallexample
9662
9663 @quotation
9664 @emph{Warning:} For pointers that point to a local variable, @samp{p/a}
9665 does not show the symbol name and filename of the referent, even with
9666 the appropriate @code{set print} options turned on.
9667 @end quotation
9668
9669 You can also enable @samp{/a}-like formatting all the time using
9670 @samp{set print symbol on}:
9671
9672 @table @code
9673 @item set print symbol on
9674 Tell @value{GDBN} to print the symbol corresponding to an address, if
9675 one exists.
9676
9677 @item set print symbol off
9678 Tell @value{GDBN} not to print the symbol corresponding to an
9679 address. In this mode, @value{GDBN} will still print the symbol
9680 corresponding to pointers to functions. This is the default.
9681
9682 @item show print symbol
9683 Show whether @value{GDBN} will display the symbol corresponding to an
9684 address.
9685 @end table
9686
9687 Other settings control how different kinds of objects are printed:
9688
9689 @table @code
9690 @item set print array
9691 @itemx set print array on
9692 @cindex pretty print arrays
9693 Pretty print arrays. This format is more convenient to read,
9694 but uses more space. The default is off.
9695
9696 @item set print array off
9697 Return to compressed format for arrays.
9698
9699 @item show print array
9700 Show whether compressed or pretty format is selected for displaying
9701 arrays.
9702
9703 @cindex print array indexes
9704 @item set print array-indexes
9705 @itemx set print array-indexes on
9706 Print the index of each element when displaying arrays. May be more
9707 convenient to locate a given element in the array or quickly find the
9708 index of a given element in that printed array. The default is off.
9709
9710 @item set print array-indexes off
9711 Stop printing element indexes when displaying arrays.
9712
9713 @item show print array-indexes
9714 Show whether the index of each element is printed when displaying
9715 arrays.
9716
9717 @item set print elements @var{number-of-elements}
9718 @itemx set print elements unlimited
9719 @cindex number of array elements to print
9720 @cindex limit on number of printed array elements
9721 Set a limit on how many elements of an array @value{GDBN} will print.
9722 If @value{GDBN} is printing a large array, it stops printing after it has
9723 printed the number of elements set by the @code{set print elements} command.
9724 This limit also applies to the display of strings.
9725 When @value{GDBN} starts, this limit is set to 200.
9726 Setting @var{number-of-elements} to @code{unlimited} or zero means
9727 that the number of elements to print is unlimited.
9728
9729 @item show print elements
9730 Display the number of elements of a large array that @value{GDBN} will print.
9731 If the number is 0, then the printing is unlimited.
9732
9733 @item set print frame-arguments @var{value}
9734 @kindex set print frame-arguments
9735 @cindex printing frame argument values
9736 @cindex print all frame argument values
9737 @cindex print frame argument values for scalars only
9738 @cindex do not print frame argument values
9739 This command allows to control how the values of arguments are printed
9740 when the debugger prints a frame (@pxref{Frames}). The possible
9741 values are:
9742
9743 @table @code
9744 @item all
9745 The values of all arguments are printed.
9746
9747 @item scalars
9748 Print the value of an argument only if it is a scalar. The value of more
9749 complex arguments such as arrays, structures, unions, etc, is replaced
9750 by @code{@dots{}}. This is the default. Here is an example where
9751 only scalar arguments are shown:
9752
9753 @smallexample
9754 #1 0x08048361 in call_me (i=3, s=@dots{}, ss=0xbf8d508c, u=@dots{}, e=green)
9755 at frame-args.c:23
9756 @end smallexample
9757
9758 @item none
9759 None of the argument values are printed. Instead, the value of each argument
9760 is replaced by @code{@dots{}}. In this case, the example above now becomes:
9761
9762 @smallexample
9763 #1 0x08048361 in call_me (i=@dots{}, s=@dots{}, ss=@dots{}, u=@dots{}, e=@dots{})
9764 at frame-args.c:23
9765 @end smallexample
9766 @end table
9767
9768 By default, only scalar arguments are printed. This command can be used
9769 to configure the debugger to print the value of all arguments, regardless
9770 of their type. However, it is often advantageous to not print the value
9771 of more complex parameters. For instance, it reduces the amount of
9772 information printed in each frame, making the backtrace more readable.
9773 Also, it improves performance when displaying Ada frames, because
9774 the computation of large arguments can sometimes be CPU-intensive,
9775 especially in large applications. Setting @code{print frame-arguments}
9776 to @code{scalars} (the default) or @code{none} avoids this computation,
9777 thus speeding up the display of each Ada frame.
9778
9779 @item show print frame-arguments
9780 Show how the value of arguments should be displayed when printing a frame.
9781
9782 @item set print raw frame-arguments on
9783 Print frame arguments in raw, non pretty-printed, form.
9784
9785 @item set print raw frame-arguments off
9786 Print frame arguments in pretty-printed form, if there is a pretty-printer
9787 for the value (@pxref{Pretty Printing}),
9788 otherwise print the value in raw form.
9789 This is the default.
9790
9791 @item show print raw frame-arguments
9792 Show whether to print frame arguments in raw form.
9793
9794 @anchor{set print entry-values}
9795 @item set print entry-values @var{value}
9796 @kindex set print entry-values
9797 Set printing of frame argument values at function entry. In some cases
9798 @value{GDBN} can determine the value of function argument which was passed by
9799 the function caller, even if the value was modified inside the called function
9800 and therefore is different. With optimized code, the current value could be
9801 unavailable, but the entry value may still be known.
9802
9803 The default value is @code{default} (see below for its description). Older
9804 @value{GDBN} behaved as with the setting @code{no}. Compilers not supporting
9805 this feature will behave in the @code{default} setting the same way as with the
9806 @code{no} setting.
9807
9808 This functionality is currently supported only by DWARF 2 debugging format and
9809 the compiler has to produce @samp{DW_TAG_GNU_call_site} tags. With
9810 @value{NGCC}, you need to specify @option{-O -g} during compilation, to get
9811 this information.
9812
9813 The @var{value} parameter can be one of the following:
9814
9815 @table @code
9816 @item no
9817 Print only actual parameter values, never print values from function entry
9818 point.
9819 @smallexample
9820 #0 equal (val=5)
9821 #0 different (val=6)
9822 #0 lost (val=<optimized out>)
9823 #0 born (val=10)
9824 #0 invalid (val=<optimized out>)
9825 @end smallexample
9826
9827 @item only
9828 Print only parameter values from function entry point. The actual parameter
9829 values are never printed.
9830 @smallexample
9831 #0 equal (val@@entry=5)
9832 #0 different (val@@entry=5)
9833 #0 lost (val@@entry=5)
9834 #0 born (val@@entry=<optimized out>)
9835 #0 invalid (val@@entry=<optimized out>)
9836 @end smallexample
9837
9838 @item preferred
9839 Print only parameter values from function entry point. If value from function
9840 entry point is not known while the actual value is known, print the actual
9841 value for such parameter.
9842 @smallexample
9843 #0 equal (val@@entry=5)
9844 #0 different (val@@entry=5)
9845 #0 lost (val@@entry=5)
9846 #0 born (val=10)
9847 #0 invalid (val@@entry=<optimized out>)
9848 @end smallexample
9849
9850 @item if-needed
9851 Print actual parameter values. If actual parameter value is not known while
9852 value from function entry point is known, print the entry point value for such
9853 parameter.
9854 @smallexample
9855 #0 equal (val=5)
9856 #0 different (val=6)
9857 #0 lost (val@@entry=5)
9858 #0 born (val=10)
9859 #0 invalid (val=<optimized out>)
9860 @end smallexample
9861
9862 @item both
9863 Always print both the actual parameter value and its value from function entry
9864 point, even if values of one or both are not available due to compiler
9865 optimizations.
9866 @smallexample
9867 #0 equal (val=5, val@@entry=5)
9868 #0 different (val=6, val@@entry=5)
9869 #0 lost (val=<optimized out>, val@@entry=5)
9870 #0 born (val=10, val@@entry=<optimized out>)
9871 #0 invalid (val=<optimized out>, val@@entry=<optimized out>)
9872 @end smallexample
9873
9874 @item compact
9875 Print the actual parameter value if it is known and also its value from
9876 function entry point if it is known. If neither is known, print for the actual
9877 value @code{<optimized out>}. If not in MI mode (@pxref{GDB/MI}) and if both
9878 values are known and identical, print the shortened
9879 @code{param=param@@entry=VALUE} notation.
9880 @smallexample
9881 #0 equal (val=val@@entry=5)
9882 #0 different (val=6, val@@entry=5)
9883 #0 lost (val@@entry=5)
9884 #0 born (val=10)
9885 #0 invalid (val=<optimized out>)
9886 @end smallexample
9887
9888 @item default
9889 Always print the actual parameter value. Print also its value from function
9890 entry point, but only if it is known. If not in MI mode (@pxref{GDB/MI}) and
9891 if both values are known and identical, print the shortened
9892 @code{param=param@@entry=VALUE} notation.
9893 @smallexample
9894 #0 equal (val=val@@entry=5)
9895 #0 different (val=6, val@@entry=5)
9896 #0 lost (val=<optimized out>, val@@entry=5)
9897 #0 born (val=10)
9898 #0 invalid (val=<optimized out>)
9899 @end smallexample
9900 @end table
9901
9902 For analysis messages on possible failures of frame argument values at function
9903 entry resolution see @ref{set debug entry-values}.
9904
9905 @item show print entry-values
9906 Show the method being used for printing of frame argument values at function
9907 entry.
9908
9909 @item set print repeats @var{number-of-repeats}
9910 @itemx set print repeats unlimited
9911 @cindex repeated array elements
9912 Set the threshold for suppressing display of repeated array
9913 elements. When the number of consecutive identical elements of an
9914 array exceeds the threshold, @value{GDBN} prints the string
9915 @code{"<repeats @var{n} times>"}, where @var{n} is the number of
9916 identical repetitions, instead of displaying the identical elements
9917 themselves. Setting the threshold to @code{unlimited} or zero will
9918 cause all elements to be individually printed. The default threshold
9919 is 10.
9920
9921 @item show print repeats
9922 Display the current threshold for printing repeated identical
9923 elements.
9924
9925 @item set print null-stop
9926 @cindex @sc{null} elements in arrays
9927 Cause @value{GDBN} to stop printing the characters of an array when the first
9928 @sc{null} is encountered. This is useful when large arrays actually
9929 contain only short strings.
9930 The default is off.
9931
9932 @item show print null-stop
9933 Show whether @value{GDBN} stops printing an array on the first
9934 @sc{null} character.
9935
9936 @item set print pretty on
9937 @cindex print structures in indented form
9938 @cindex indentation in structure display
9939 Cause @value{GDBN} to print structures in an indented format with one member
9940 per line, like this:
9941
9942 @smallexample
9943 @group
9944 $1 = @{
9945 next = 0x0,
9946 flags = @{
9947 sweet = 1,
9948 sour = 1
9949 @},
9950 meat = 0x54 "Pork"
9951 @}
9952 @end group
9953 @end smallexample
9954
9955 @item set print pretty off
9956 Cause @value{GDBN} to print structures in a compact format, like this:
9957
9958 @smallexample
9959 @group
9960 $1 = @{next = 0x0, flags = @{sweet = 1, sour = 1@}, \
9961 meat = 0x54 "Pork"@}
9962 @end group
9963 @end smallexample
9964
9965 @noindent
9966 This is the default format.
9967
9968 @item show print pretty
9969 Show which format @value{GDBN} is using to print structures.
9970
9971 @item set print sevenbit-strings on
9972 @cindex eight-bit characters in strings
9973 @cindex octal escapes in strings
9974 Print using only seven-bit characters; if this option is set,
9975 @value{GDBN} displays any eight-bit characters (in strings or
9976 character values) using the notation @code{\}@var{nnn}. This setting is
9977 best if you are working in English (@sc{ascii}) and you use the
9978 high-order bit of characters as a marker or ``meta'' bit.
9979
9980 @item set print sevenbit-strings off
9981 Print full eight-bit characters. This allows the use of more
9982 international character sets, and is the default.
9983
9984 @item show print sevenbit-strings
9985 Show whether or not @value{GDBN} is printing only seven-bit characters.
9986
9987 @item set print union on
9988 @cindex unions in structures, printing
9989 Tell @value{GDBN} to print unions which are contained in structures
9990 and other unions. This is the default setting.
9991
9992 @item set print union off
9993 Tell @value{GDBN} not to print unions which are contained in
9994 structures and other unions. @value{GDBN} will print @code{"@{...@}"}
9995 instead.
9996
9997 @item show print union
9998 Ask @value{GDBN} whether or not it will print unions which are contained in
9999 structures and other unions.
10000
10001 For example, given the declarations
10002
10003 @smallexample
10004 typedef enum @{Tree, Bug@} Species;
10005 typedef enum @{Big_tree, Acorn, Seedling@} Tree_forms;
10006 typedef enum @{Caterpillar, Cocoon, Butterfly@}
10007 Bug_forms;
10008
10009 struct thing @{
10010 Species it;
10011 union @{
10012 Tree_forms tree;
10013 Bug_forms bug;
10014 @} form;
10015 @};
10016
10017 struct thing foo = @{Tree, @{Acorn@}@};
10018 @end smallexample
10019
10020 @noindent
10021 with @code{set print union on} in effect @samp{p foo} would print
10022
10023 @smallexample
10024 $1 = @{it = Tree, form = @{tree = Acorn, bug = Cocoon@}@}
10025 @end smallexample
10026
10027 @noindent
10028 and with @code{set print union off} in effect it would print
10029
10030 @smallexample
10031 $1 = @{it = Tree, form = @{...@}@}
10032 @end smallexample
10033
10034 @noindent
10035 @code{set print union} affects programs written in C-like languages
10036 and in Pascal.
10037 @end table
10038
10039 @need 1000
10040 @noindent
10041 These settings are of interest when debugging C@t{++} programs:
10042
10043 @table @code
10044 @cindex demangling C@t{++} names
10045 @item set print demangle
10046 @itemx set print demangle on
10047 Print C@t{++} names in their source form rather than in the encoded
10048 (``mangled'') form passed to the assembler and linker for type-safe
10049 linkage. The default is on.
10050
10051 @item show print demangle
10052 Show whether C@t{++} names are printed in mangled or demangled form.
10053
10054 @item set print asm-demangle
10055 @itemx set print asm-demangle on
10056 Print C@t{++} names in their source form rather than their mangled form, even
10057 in assembler code printouts such as instruction disassemblies.
10058 The default is off.
10059
10060 @item show print asm-demangle
10061 Show whether C@t{++} names in assembly listings are printed in mangled
10062 or demangled form.
10063
10064 @cindex C@t{++} symbol decoding style
10065 @cindex symbol decoding style, C@t{++}
10066 @kindex set demangle-style
10067 @item set demangle-style @var{style}
10068 Choose among several encoding schemes used by different compilers to
10069 represent C@t{++} names. The choices for @var{style} are currently:
10070
10071 @table @code
10072 @item auto
10073 Allow @value{GDBN} to choose a decoding style by inspecting your program.
10074 This is the default.
10075
10076 @item gnu
10077 Decode based on the @sc{gnu} C@t{++} compiler (@code{g++}) encoding algorithm.
10078
10079 @item hp
10080 Decode based on the HP ANSI C@t{++} (@code{aCC}) encoding algorithm.
10081
10082 @item lucid
10083 Decode based on the Lucid C@t{++} compiler (@code{lcc}) encoding algorithm.
10084
10085 @item arm
10086 Decode using the algorithm in the @cite{C@t{++} Annotated Reference Manual}.
10087 @strong{Warning:} this setting alone is not sufficient to allow
10088 debugging @code{cfront}-generated executables. @value{GDBN} would
10089 require further enhancement to permit that.
10090
10091 @end table
10092 If you omit @var{style}, you will see a list of possible formats.
10093
10094 @item show demangle-style
10095 Display the encoding style currently in use for decoding C@t{++} symbols.
10096
10097 @item set print object
10098 @itemx set print object on
10099 @cindex derived type of an object, printing
10100 @cindex display derived types
10101 When displaying a pointer to an object, identify the @emph{actual}
10102 (derived) type of the object rather than the @emph{declared} type, using
10103 the virtual function table. Note that the virtual function table is
10104 required---this feature can only work for objects that have run-time
10105 type identification; a single virtual method in the object's declared
10106 type is sufficient. Note that this setting is also taken into account when
10107 working with variable objects via MI (@pxref{GDB/MI}).
10108
10109 @item set print object off
10110 Display only the declared type of objects, without reference to the
10111 virtual function table. This is the default setting.
10112
10113 @item show print object
10114 Show whether actual, or declared, object types are displayed.
10115
10116 @item set print static-members
10117 @itemx set print static-members on
10118 @cindex static members of C@t{++} objects
10119 Print static members when displaying a C@t{++} object. The default is on.
10120
10121 @item set print static-members off
10122 Do not print static members when displaying a C@t{++} object.
10123
10124 @item show print static-members
10125 Show whether C@t{++} static members are printed or not.
10126
10127 @item set print pascal_static-members
10128 @itemx set print pascal_static-members on
10129 @cindex static members of Pascal objects
10130 @cindex Pascal objects, static members display
10131 Print static members when displaying a Pascal object. The default is on.
10132
10133 @item set print pascal_static-members off
10134 Do not print static members when displaying a Pascal object.
10135
10136 @item show print pascal_static-members
10137 Show whether Pascal static members are printed or not.
10138
10139 @c These don't work with HP ANSI C++ yet.
10140 @item set print vtbl
10141 @itemx set print vtbl on
10142 @cindex pretty print C@t{++} virtual function tables
10143 @cindex virtual functions (C@t{++}) display
10144 @cindex VTBL display
10145 Pretty print C@t{++} virtual function tables. The default is off.
10146 (The @code{vtbl} commands do not work on programs compiled with the HP
10147 ANSI C@t{++} compiler (@code{aCC}).)
10148
10149 @item set print vtbl off
10150 Do not pretty print C@t{++} virtual function tables.
10151
10152 @item show print vtbl
10153 Show whether C@t{++} virtual function tables are pretty printed, or not.
10154 @end table
10155
10156 @node Pretty Printing
10157 @section Pretty Printing
10158
10159 @value{GDBN} provides a mechanism to allow pretty-printing of values using
10160 Python code. It greatly simplifies the display of complex objects. This
10161 mechanism works for both MI and the CLI.
10162
10163 @menu
10164 * Pretty-Printer Introduction:: Introduction to pretty-printers
10165 * Pretty-Printer Example:: An example pretty-printer
10166 * Pretty-Printer Commands:: Pretty-printer commands
10167 @end menu
10168
10169 @node Pretty-Printer Introduction
10170 @subsection Pretty-Printer Introduction
10171
10172 When @value{GDBN} prints a value, it first sees if there is a pretty-printer
10173 registered for the value. If there is then @value{GDBN} invokes the
10174 pretty-printer to print the value. Otherwise the value is printed normally.
10175
10176 Pretty-printers are normally named. This makes them easy to manage.
10177 The @samp{info pretty-printer} command will list all the installed
10178 pretty-printers with their names.
10179 If a pretty-printer can handle multiple data types, then its
10180 @dfn{subprinters} are the printers for the individual data types.
10181 Each such subprinter has its own name.
10182 The format of the name is @var{printer-name};@var{subprinter-name}.
10183
10184 Pretty-printers are installed by @dfn{registering} them with @value{GDBN}.
10185 Typically they are automatically loaded and registered when the corresponding
10186 debug information is loaded, thus making them available without having to
10187 do anything special.
10188
10189 There are three places where a pretty-printer can be registered.
10190
10191 @itemize @bullet
10192 @item
10193 Pretty-printers registered globally are available when debugging
10194 all inferiors.
10195
10196 @item
10197 Pretty-printers registered with a program space are available only
10198 when debugging that program.
10199 @xref{Progspaces In Python}, for more details on program spaces in Python.
10200
10201 @item
10202 Pretty-printers registered with an objfile are loaded and unloaded
10203 with the corresponding objfile (e.g., shared library).
10204 @xref{Objfiles In Python}, for more details on objfiles in Python.
10205 @end itemize
10206
10207 @xref{Selecting Pretty-Printers}, for further information on how
10208 pretty-printers are selected,
10209
10210 @xref{Writing a Pretty-Printer}, for implementing pretty printers
10211 for new types.
10212
10213 @node Pretty-Printer Example
10214 @subsection Pretty-Printer Example
10215
10216 Here is how a C@t{++} @code{std::string} looks without a pretty-printer:
10217
10218 @smallexample
10219 (@value{GDBP}) print s
10220 $1 = @{
10221 static npos = 4294967295,
10222 _M_dataplus = @{
10223 <std::allocator<char>> = @{
10224 <__gnu_cxx::new_allocator<char>> = @{
10225 <No data fields>@}, <No data fields>
10226 @},
10227 members of std::basic_string<char, std::char_traits<char>,
10228 std::allocator<char> >::_Alloc_hider:
10229 _M_p = 0x804a014 "abcd"
10230 @}
10231 @}
10232 @end smallexample
10233
10234 With a pretty-printer for @code{std::string} only the contents are printed:
10235
10236 @smallexample
10237 (@value{GDBP}) print s
10238 $2 = "abcd"
10239 @end smallexample
10240
10241 @node Pretty-Printer Commands
10242 @subsection Pretty-Printer Commands
10243 @cindex pretty-printer commands
10244
10245 @table @code
10246 @kindex info pretty-printer
10247 @item info pretty-printer [@var{object-regexp} [@var{name-regexp}]]
10248 Print the list of installed pretty-printers.
10249 This includes disabled pretty-printers, which are marked as such.
10250
10251 @var{object-regexp} is a regular expression matching the objects
10252 whose pretty-printers to list.
10253 Objects can be @code{global}, the program space's file
10254 (@pxref{Progspaces In Python}),
10255 and the object files within that program space (@pxref{Objfiles In Python}).
10256 @xref{Selecting Pretty-Printers}, for details on how @value{GDBN}
10257 looks up a printer from these three objects.
10258
10259 @var{name-regexp} is a regular expression matching the name of the printers
10260 to list.
10261
10262 @kindex disable pretty-printer
10263 @item disable pretty-printer [@var{object-regexp} [@var{name-regexp}]]
10264 Disable pretty-printers matching @var{object-regexp} and @var{name-regexp}.
10265 A disabled pretty-printer is not forgotten, it may be enabled again later.
10266
10267 @kindex enable pretty-printer
10268 @item enable pretty-printer [@var{object-regexp} [@var{name-regexp}]]
10269 Enable pretty-printers matching @var{object-regexp} and @var{name-regexp}.
10270 @end table
10271
10272 Example:
10273
10274 Suppose we have three pretty-printers installed: one from library1.so
10275 named @code{foo} that prints objects of type @code{foo}, and
10276 another from library2.so named @code{bar} that prints two types of objects,
10277 @code{bar1} and @code{bar2}.
10278
10279 @smallexample
10280 (gdb) info pretty-printer
10281 library1.so:
10282 foo
10283 library2.so:
10284 bar
10285 bar1
10286 bar2
10287 (gdb) info pretty-printer library2
10288 library2.so:
10289 bar
10290 bar1
10291 bar2
10292 (gdb) disable pretty-printer library1
10293 1 printer disabled
10294 2 of 3 printers enabled
10295 (gdb) info pretty-printer
10296 library1.so:
10297 foo [disabled]
10298 library2.so:
10299 bar
10300 bar1
10301 bar2
10302 (gdb) disable pretty-printer library2 bar:bar1
10303 1 printer disabled
10304 1 of 3 printers enabled
10305 (gdb) info pretty-printer library2
10306 library1.so:
10307 foo [disabled]
10308 library2.so:
10309 bar
10310 bar1 [disabled]
10311 bar2
10312 (gdb) disable pretty-printer library2 bar
10313 1 printer disabled
10314 0 of 3 printers enabled
10315 (gdb) info pretty-printer library2
10316 library1.so:
10317 foo [disabled]
10318 library2.so:
10319 bar [disabled]
10320 bar1 [disabled]
10321 bar2
10322 @end smallexample
10323
10324 Note that for @code{bar} the entire printer can be disabled,
10325 as can each individual subprinter.
10326
10327 @node Value History
10328 @section Value History
10329
10330 @cindex value history
10331 @cindex history of values printed by @value{GDBN}
10332 Values printed by the @code{print} command are saved in the @value{GDBN}
10333 @dfn{value history}. This allows you to refer to them in other expressions.
10334 Values are kept until the symbol table is re-read or discarded
10335 (for example with the @code{file} or @code{symbol-file} commands).
10336 When the symbol table changes, the value history is discarded,
10337 since the values may contain pointers back to the types defined in the
10338 symbol table.
10339
10340 @cindex @code{$}
10341 @cindex @code{$$}
10342 @cindex history number
10343 The values printed are given @dfn{history numbers} by which you can
10344 refer to them. These are successive integers starting with one.
10345 @code{print} shows you the history number assigned to a value by
10346 printing @samp{$@var{num} = } before the value; here @var{num} is the
10347 history number.
10348
10349 To refer to any previous value, use @samp{$} followed by the value's
10350 history number. The way @code{print} labels its output is designed to
10351 remind you of this. Just @code{$} refers to the most recent value in
10352 the history, and @code{$$} refers to the value before that.
10353 @code{$$@var{n}} refers to the @var{n}th value from the end; @code{$$2}
10354 is the value just prior to @code{$$}, @code{$$1} is equivalent to
10355 @code{$$}, and @code{$$0} is equivalent to @code{$}.
10356
10357 For example, suppose you have just printed a pointer to a structure and
10358 want to see the contents of the structure. It suffices to type
10359
10360 @smallexample
10361 p *$
10362 @end smallexample
10363
10364 If you have a chain of structures where the component @code{next} points
10365 to the next one, you can print the contents of the next one with this:
10366
10367 @smallexample
10368 p *$.next
10369 @end smallexample
10370
10371 @noindent
10372 You can print successive links in the chain by repeating this
10373 command---which you can do by just typing @key{RET}.
10374
10375 Note that the history records values, not expressions. If the value of
10376 @code{x} is 4 and you type these commands:
10377
10378 @smallexample
10379 print x
10380 set x=5
10381 @end smallexample
10382
10383 @noindent
10384 then the value recorded in the value history by the @code{print} command
10385 remains 4 even though the value of @code{x} has changed.
10386
10387 @table @code
10388 @kindex show values
10389 @item show values
10390 Print the last ten values in the value history, with their item numbers.
10391 This is like @samp{p@ $$9} repeated ten times, except that @code{show
10392 values} does not change the history.
10393
10394 @item show values @var{n}
10395 Print ten history values centered on history item number @var{n}.
10396
10397 @item show values +
10398 Print ten history values just after the values last printed. If no more
10399 values are available, @code{show values +} produces no display.
10400 @end table
10401
10402 Pressing @key{RET} to repeat @code{show values @var{n}} has exactly the
10403 same effect as @samp{show values +}.
10404
10405 @node Convenience Vars
10406 @section Convenience Variables
10407
10408 @cindex convenience variables
10409 @cindex user-defined variables
10410 @value{GDBN} provides @dfn{convenience variables} that you can use within
10411 @value{GDBN} to hold on to a value and refer to it later. These variables
10412 exist entirely within @value{GDBN}; they are not part of your program, and
10413 setting a convenience variable has no direct effect on further execution
10414 of your program. That is why you can use them freely.
10415
10416 Convenience variables are prefixed with @samp{$}. Any name preceded by
10417 @samp{$} can be used for a convenience variable, unless it is one of
10418 the predefined machine-specific register names (@pxref{Registers, ,Registers}).
10419 (Value history references, in contrast, are @emph{numbers} preceded
10420 by @samp{$}. @xref{Value History, ,Value History}.)
10421
10422 You can save a value in a convenience variable with an assignment
10423 expression, just as you would set a variable in your program.
10424 For example:
10425
10426 @smallexample
10427 set $foo = *object_ptr
10428 @end smallexample
10429
10430 @noindent
10431 would save in @code{$foo} the value contained in the object pointed to by
10432 @code{object_ptr}.
10433
10434 Using a convenience variable for the first time creates it, but its
10435 value is @code{void} until you assign a new value. You can alter the
10436 value with another assignment at any time.
10437
10438 Convenience variables have no fixed types. You can assign a convenience
10439 variable any type of value, including structures and arrays, even if
10440 that variable already has a value of a different type. The convenience
10441 variable, when used as an expression, has the type of its current value.
10442
10443 @table @code
10444 @kindex show convenience
10445 @cindex show all user variables and functions
10446 @item show convenience
10447 Print a list of convenience variables used so far, and their values,
10448 as well as a list of the convenience functions.
10449 Abbreviated @code{show conv}.
10450
10451 @kindex init-if-undefined
10452 @cindex convenience variables, initializing
10453 @item init-if-undefined $@var{variable} = @var{expression}
10454 Set a convenience variable if it has not already been set. This is useful
10455 for user-defined commands that keep some state. It is similar, in concept,
10456 to using local static variables with initializers in C (except that
10457 convenience variables are global). It can also be used to allow users to
10458 override default values used in a command script.
10459
10460 If the variable is already defined then the expression is not evaluated so
10461 any side-effects do not occur.
10462 @end table
10463
10464 One of the ways to use a convenience variable is as a counter to be
10465 incremented or a pointer to be advanced. For example, to print
10466 a field from successive elements of an array of structures:
10467
10468 @smallexample
10469 set $i = 0
10470 print bar[$i++]->contents
10471 @end smallexample
10472
10473 @noindent
10474 Repeat that command by typing @key{RET}.
10475
10476 Some convenience variables are created automatically by @value{GDBN} and given
10477 values likely to be useful.
10478
10479 @table @code
10480 @vindex $_@r{, convenience variable}
10481 @item $_
10482 The variable @code{$_} is automatically set by the @code{x} command to
10483 the last address examined (@pxref{Memory, ,Examining Memory}). Other
10484 commands which provide a default address for @code{x} to examine also
10485 set @code{$_} to that address; these commands include @code{info line}
10486 and @code{info breakpoint}. The type of @code{$_} is @code{void *}
10487 except when set by the @code{x} command, in which case it is a pointer
10488 to the type of @code{$__}.
10489
10490 @vindex $__@r{, convenience variable}
10491 @item $__
10492 The variable @code{$__} is automatically set by the @code{x} command
10493 to the value found in the last address examined. Its type is chosen
10494 to match the format in which the data was printed.
10495
10496 @item $_exitcode
10497 @vindex $_exitcode@r{, convenience variable}
10498 When the program being debugged terminates normally, @value{GDBN}
10499 automatically sets this variable to the exit code of the program, and
10500 resets @code{$_exitsignal} to @code{void}.
10501
10502 @item $_exitsignal
10503 @vindex $_exitsignal@r{, convenience variable}
10504 When the program being debugged dies due to an uncaught signal,
10505 @value{GDBN} automatically sets this variable to that signal's number,
10506 and resets @code{$_exitcode} to @code{void}.
10507
10508 To distinguish between whether the program being debugged has exited
10509 (i.e., @code{$_exitcode} is not @code{void}) or signalled (i.e.,
10510 @code{$_exitsignal} is not @code{void}), the convenience function
10511 @code{$_isvoid} can be used (@pxref{Convenience Funs,, Convenience
10512 Functions}). For example, considering the following source code:
10513
10514 @smallexample
10515 #include <signal.h>
10516
10517 int
10518 main (int argc, char *argv[])
10519 @{
10520 raise (SIGALRM);
10521 return 0;
10522 @}
10523 @end smallexample
10524
10525 A valid way of telling whether the program being debugged has exited
10526 or signalled would be:
10527
10528 @smallexample
10529 (@value{GDBP}) define has_exited_or_signalled
10530 Type commands for definition of ``has_exited_or_signalled''.
10531 End with a line saying just ``end''.
10532 >if $_isvoid ($_exitsignal)
10533 >echo The program has exited\n
10534 >else
10535 >echo The program has signalled\n
10536 >end
10537 >end
10538 (@value{GDBP}) run
10539 Starting program:
10540
10541 Program terminated with signal SIGALRM, Alarm clock.
10542 The program no longer exists.
10543 (@value{GDBP}) has_exited_or_signalled
10544 The program has signalled
10545 @end smallexample
10546
10547 As can be seen, @value{GDBN} correctly informs that the program being
10548 debugged has signalled, since it calls @code{raise} and raises a
10549 @code{SIGALRM} signal. If the program being debugged had not called
10550 @code{raise}, then @value{GDBN} would report a normal exit:
10551
10552 @smallexample
10553 (@value{GDBP}) has_exited_or_signalled
10554 The program has exited
10555 @end smallexample
10556
10557 @item $_exception
10558 The variable @code{$_exception} is set to the exception object being
10559 thrown at an exception-related catchpoint. @xref{Set Catchpoints}.
10560
10561 @item $_probe_argc
10562 @itemx $_probe_arg0@dots{}$_probe_arg11
10563 Arguments to a static probe. @xref{Static Probe Points}.
10564
10565 @item $_sdata
10566 @vindex $_sdata@r{, inspect, convenience variable}
10567 The variable @code{$_sdata} contains extra collected static tracepoint
10568 data. @xref{Tracepoint Actions,,Tracepoint Action Lists}. Note that
10569 @code{$_sdata} could be empty, if not inspecting a trace buffer, or
10570 if extra static tracepoint data has not been collected.
10571
10572 @item $_siginfo
10573 @vindex $_siginfo@r{, convenience variable}
10574 The variable @code{$_siginfo} contains extra signal information
10575 (@pxref{extra signal information}). Note that @code{$_siginfo}
10576 could be empty, if the application has not yet received any signals.
10577 For example, it will be empty before you execute the @code{run} command.
10578
10579 @item $_tlb
10580 @vindex $_tlb@r{, convenience variable}
10581 The variable @code{$_tlb} is automatically set when debugging
10582 applications running on MS-Windows in native mode or connected to
10583 gdbserver that supports the @code{qGetTIBAddr} request.
10584 @xref{General Query Packets}.
10585 This variable contains the address of the thread information block.
10586
10587 @item $_inferior
10588 The number of the current inferior. @xref{Inferiors and
10589 Programs, ,Debugging Multiple Inferiors and Programs}.
10590
10591 @item $_thread
10592 The thread number of the current thread. @xref{thread numbers}.
10593
10594 @item $_gthread
10595 The global number of the current thread. @xref{global thread numbers}.
10596
10597 @end table
10598
10599 @node Convenience Funs
10600 @section Convenience Functions
10601
10602 @cindex convenience functions
10603 @value{GDBN} also supplies some @dfn{convenience functions}. These
10604 have a syntax similar to convenience variables. A convenience
10605 function can be used in an expression just like an ordinary function;
10606 however, a convenience function is implemented internally to
10607 @value{GDBN}.
10608
10609 These functions do not require @value{GDBN} to be configured with
10610 @code{Python} support, which means that they are always available.
10611
10612 @table @code
10613
10614 @item $_isvoid (@var{expr})
10615 @findex $_isvoid@r{, convenience function}
10616 Return one if the expression @var{expr} is @code{void}. Otherwise it
10617 returns zero.
10618
10619 A @code{void} expression is an expression where the type of the result
10620 is @code{void}. For example, you can examine a convenience variable
10621 (see @ref{Convenience Vars,, Convenience Variables}) to check whether
10622 it is @code{void}:
10623
10624 @smallexample
10625 (@value{GDBP}) print $_exitcode
10626 $1 = void
10627 (@value{GDBP}) print $_isvoid ($_exitcode)
10628 $2 = 1
10629 (@value{GDBP}) run
10630 Starting program: ./a.out
10631 [Inferior 1 (process 29572) exited normally]
10632 (@value{GDBP}) print $_exitcode
10633 $3 = 0
10634 (@value{GDBP}) print $_isvoid ($_exitcode)
10635 $4 = 0
10636 @end smallexample
10637
10638 In the example above, we used @code{$_isvoid} to check whether
10639 @code{$_exitcode} is @code{void} before and after the execution of the
10640 program being debugged. Before the execution there is no exit code to
10641 be examined, therefore @code{$_exitcode} is @code{void}. After the
10642 execution the program being debugged returned zero, therefore
10643 @code{$_exitcode} is zero, which means that it is not @code{void}
10644 anymore.
10645
10646 The @code{void} expression can also be a call of a function from the
10647 program being debugged. For example, given the following function:
10648
10649 @smallexample
10650 void
10651 foo (void)
10652 @{
10653 @}
10654 @end smallexample
10655
10656 The result of calling it inside @value{GDBN} is @code{void}:
10657
10658 @smallexample
10659 (@value{GDBP}) print foo ()
10660 $1 = void
10661 (@value{GDBP}) print $_isvoid (foo ())
10662 $2 = 1
10663 (@value{GDBP}) set $v = foo ()
10664 (@value{GDBP}) print $v
10665 $3 = void
10666 (@value{GDBP}) print $_isvoid ($v)
10667 $4 = 1
10668 @end smallexample
10669
10670 @end table
10671
10672 These functions require @value{GDBN} to be configured with
10673 @code{Python} support.
10674
10675 @table @code
10676
10677 @item $_memeq(@var{buf1}, @var{buf2}, @var{length})
10678 @findex $_memeq@r{, convenience function}
10679 Returns one if the @var{length} bytes at the addresses given by
10680 @var{buf1} and @var{buf2} are equal.
10681 Otherwise it returns zero.
10682
10683 @item $_regex(@var{str}, @var{regex})
10684 @findex $_regex@r{, convenience function}
10685 Returns one if the string @var{str} matches the regular expression
10686 @var{regex}. Otherwise it returns zero.
10687 The syntax of the regular expression is that specified by @code{Python}'s
10688 regular expression support.
10689
10690 @item $_streq(@var{str1}, @var{str2})
10691 @findex $_streq@r{, convenience function}
10692 Returns one if the strings @var{str1} and @var{str2} are equal.
10693 Otherwise it returns zero.
10694
10695 @item $_strlen(@var{str})
10696 @findex $_strlen@r{, convenience function}
10697 Returns the length of string @var{str}.
10698
10699 @item $_caller_is(@var{name}@r{[}, @var{number_of_frames}@r{]})
10700 @findex $_caller_is@r{, convenience function}
10701 Returns one if the calling function's name is equal to @var{name}.
10702 Otherwise it returns zero.
10703
10704 If the optional argument @var{number_of_frames} is provided,
10705 it is the number of frames up in the stack to look.
10706 The default is 1.
10707
10708 Example:
10709
10710 @smallexample
10711 (gdb) backtrace
10712 #0 bottom_func ()
10713 at testsuite/gdb.python/py-caller-is.c:21
10714 #1 0x00000000004005a0 in middle_func ()
10715 at testsuite/gdb.python/py-caller-is.c:27
10716 #2 0x00000000004005ab in top_func ()
10717 at testsuite/gdb.python/py-caller-is.c:33
10718 #3 0x00000000004005b6 in main ()
10719 at testsuite/gdb.python/py-caller-is.c:39
10720 (gdb) print $_caller_is ("middle_func")
10721 $1 = 1
10722 (gdb) print $_caller_is ("top_func", 2)
10723 $1 = 1
10724 @end smallexample
10725
10726 @item $_caller_matches(@var{regexp}@r{[}, @var{number_of_frames}@r{]})
10727 @findex $_caller_matches@r{, convenience function}
10728 Returns one if the calling function's name matches the regular expression
10729 @var{regexp}. Otherwise it returns zero.
10730
10731 If the optional argument @var{number_of_frames} is provided,
10732 it is the number of frames up in the stack to look.
10733 The default is 1.
10734
10735 @item $_any_caller_is(@var{name}@r{[}, @var{number_of_frames}@r{]})
10736 @findex $_any_caller_is@r{, convenience function}
10737 Returns one if any calling function's name is equal to @var{name}.
10738 Otherwise it returns zero.
10739
10740 If the optional argument @var{number_of_frames} is provided,
10741 it is the number of frames up in the stack to look.
10742 The default is 1.
10743
10744 This function differs from @code{$_caller_is} in that this function
10745 checks all stack frames from the immediate caller to the frame specified
10746 by @var{number_of_frames}, whereas @code{$_caller_is} only checks the
10747 frame specified by @var{number_of_frames}.
10748
10749 @item $_any_caller_matches(@var{regexp}@r{[}, @var{number_of_frames}@r{]})
10750 @findex $_any_caller_matches@r{, convenience function}
10751 Returns one if any calling function's name matches the regular expression
10752 @var{regexp}. Otherwise it returns zero.
10753
10754 If the optional argument @var{number_of_frames} is provided,
10755 it is the number of frames up in the stack to look.
10756 The default is 1.
10757
10758 This function differs from @code{$_caller_matches} in that this function
10759 checks all stack frames from the immediate caller to the frame specified
10760 by @var{number_of_frames}, whereas @code{$_caller_matches} only checks the
10761 frame specified by @var{number_of_frames}.
10762
10763 @item $_as_string(@var{value})
10764 @findex $_as_string@r{, convenience function}
10765 Return the string representation of @var{value}.
10766
10767 This function is useful to obtain the textual label (enumerator) of an
10768 enumeration value. For example, assuming the variable @var{node} is of
10769 an enumerated type:
10770
10771 @smallexample
10772 (gdb) printf "Visiting node of type %s\n", $_as_string(node)
10773 Visiting node of type NODE_INTEGER
10774 @end smallexample
10775
10776 @end table
10777
10778 @value{GDBN} provides the ability to list and get help on
10779 convenience functions.
10780
10781 @table @code
10782 @item help function
10783 @kindex help function
10784 @cindex show all convenience functions
10785 Print a list of all convenience functions.
10786 @end table
10787
10788 @node Registers
10789 @section Registers
10790
10791 @cindex registers
10792 You can refer to machine register contents, in expressions, as variables
10793 with names starting with @samp{$}. The names of registers are different
10794 for each machine; use @code{info registers} to see the names used on
10795 your machine.
10796
10797 @table @code
10798 @kindex info registers
10799 @item info registers
10800 Print the names and values of all registers except floating-point
10801 and vector registers (in the selected stack frame).
10802
10803 @kindex info all-registers
10804 @cindex floating point registers
10805 @item info all-registers
10806 Print the names and values of all registers, including floating-point
10807 and vector registers (in the selected stack frame).
10808
10809 @item info registers @var{regname} @dots{}
10810 Print the @dfn{relativized} value of each specified register @var{regname}.
10811 As discussed in detail below, register values are normally relative to
10812 the selected stack frame. The @var{regname} may be any register name valid on
10813 the machine you are using, with or without the initial @samp{$}.
10814 @end table
10815
10816 @anchor{standard registers}
10817 @cindex stack pointer register
10818 @cindex program counter register
10819 @cindex process status register
10820 @cindex frame pointer register
10821 @cindex standard registers
10822 @value{GDBN} has four ``standard'' register names that are available (in
10823 expressions) on most machines---whenever they do not conflict with an
10824 architecture's canonical mnemonics for registers. The register names
10825 @code{$pc} and @code{$sp} are used for the program counter register and
10826 the stack pointer. @code{$fp} is used for a register that contains a
10827 pointer to the current stack frame, and @code{$ps} is used for a
10828 register that contains the processor status. For example,
10829 you could print the program counter in hex with
10830
10831 @smallexample
10832 p/x $pc
10833 @end smallexample
10834
10835 @noindent
10836 or print the instruction to be executed next with
10837
10838 @smallexample
10839 x/i $pc
10840 @end smallexample
10841
10842 @noindent
10843 or add four to the stack pointer@footnote{This is a way of removing
10844 one word from the stack, on machines where stacks grow downward in
10845 memory (most machines, nowadays). This assumes that the innermost
10846 stack frame is selected; setting @code{$sp} is not allowed when other
10847 stack frames are selected. To pop entire frames off the stack,
10848 regardless of machine architecture, use @code{return};
10849 see @ref{Returning, ,Returning from a Function}.} with
10850
10851 @smallexample
10852 set $sp += 4
10853 @end smallexample
10854
10855 Whenever possible, these four standard register names are available on
10856 your machine even though the machine has different canonical mnemonics,
10857 so long as there is no conflict. The @code{info registers} command
10858 shows the canonical names. For example, on the SPARC, @code{info
10859 registers} displays the processor status register as @code{$psr} but you
10860 can also refer to it as @code{$ps}; and on x86-based machines @code{$ps}
10861 is an alias for the @sc{eflags} register.
10862
10863 @value{GDBN} always considers the contents of an ordinary register as an
10864 integer when the register is examined in this way. Some machines have
10865 special registers which can hold nothing but floating point; these
10866 registers are considered to have floating point values. There is no way
10867 to refer to the contents of an ordinary register as floating point value
10868 (although you can @emph{print} it as a floating point value with
10869 @samp{print/f $@var{regname}}).
10870
10871 Some registers have distinct ``raw'' and ``virtual'' data formats. This
10872 means that the data format in which the register contents are saved by
10873 the operating system is not the same one that your program normally
10874 sees. For example, the registers of the 68881 floating point
10875 coprocessor are always saved in ``extended'' (raw) format, but all C
10876 programs expect to work with ``double'' (virtual) format. In such
10877 cases, @value{GDBN} normally works with the virtual format only (the format
10878 that makes sense for your program), but the @code{info registers} command
10879 prints the data in both formats.
10880
10881 @cindex SSE registers (x86)
10882 @cindex MMX registers (x86)
10883 Some machines have special registers whose contents can be interpreted
10884 in several different ways. For example, modern x86-based machines
10885 have SSE and MMX registers that can hold several values packed
10886 together in several different formats. @value{GDBN} refers to such
10887 registers in @code{struct} notation:
10888
10889 @smallexample
10890 (@value{GDBP}) print $xmm1
10891 $1 = @{
10892 v4_float = @{0, 3.43859137e-038, 1.54142831e-044, 1.821688e-044@},
10893 v2_double = @{9.92129282474342e-303, 2.7585945287983262e-313@},
10894 v16_int8 = "\000\000\000\000\3706;\001\v\000\000\000\r\000\000",
10895 v8_int16 = @{0, 0, 14072, 315, 11, 0, 13, 0@},
10896 v4_int32 = @{0, 20657912, 11, 13@},
10897 v2_int64 = @{88725056443645952, 55834574859@},
10898 uint128 = 0x0000000d0000000b013b36f800000000
10899 @}
10900 @end smallexample
10901
10902 @noindent
10903 To set values of such registers, you need to tell @value{GDBN} which
10904 view of the register you wish to change, as if you were assigning
10905 value to a @code{struct} member:
10906
10907 @smallexample
10908 (@value{GDBP}) set $xmm1.uint128 = 0x000000000000000000000000FFFFFFFF
10909 @end smallexample
10910
10911 Normally, register values are relative to the selected stack frame
10912 (@pxref{Selection, ,Selecting a Frame}). This means that you get the
10913 value that the register would contain if all stack frames farther in
10914 were exited and their saved registers restored. In order to see the
10915 true contents of hardware registers, you must select the innermost
10916 frame (with @samp{frame 0}).
10917
10918 @cindex caller-saved registers
10919 @cindex call-clobbered registers
10920 @cindex volatile registers
10921 @cindex <not saved> values
10922 Usually ABIs reserve some registers as not needed to be saved by the
10923 callee (a.k.a.: ``caller-saved'', ``call-clobbered'' or ``volatile''
10924 registers). It may therefore not be possible for @value{GDBN} to know
10925 the value a register had before the call (in other words, in the outer
10926 frame), if the register value has since been changed by the callee.
10927 @value{GDBN} tries to deduce where the inner frame saved
10928 (``callee-saved'') registers, from the debug info, unwind info, or the
10929 machine code generated by your compiler. If some register is not
10930 saved, and @value{GDBN} knows the register is ``caller-saved'' (via
10931 its own knowledge of the ABI, or because the debug/unwind info
10932 explicitly says the register's value is undefined), @value{GDBN}
10933 displays @w{@samp{<not saved>}} as the register's value. With targets
10934 that @value{GDBN} has no knowledge of the register saving convention,
10935 if a register was not saved by the callee, then its value and location
10936 in the outer frame are assumed to be the same of the inner frame.
10937 This is usually harmless, because if the register is call-clobbered,
10938 the caller either does not care what is in the register after the
10939 call, or has code to restore the value that it does care about. Note,
10940 however, that if you change such a register in the outer frame, you
10941 may also be affecting the inner frame. Also, the more ``outer'' the
10942 frame is you're looking at, the more likely a call-clobbered
10943 register's value is to be wrong, in the sense that it doesn't actually
10944 represent the value the register had just before the call.
10945
10946 @node Floating Point Hardware
10947 @section Floating Point Hardware
10948 @cindex floating point
10949
10950 Depending on the configuration, @value{GDBN} may be able to give
10951 you more information about the status of the floating point hardware.
10952
10953 @table @code
10954 @kindex info float
10955 @item info float
10956 Display hardware-dependent information about the floating
10957 point unit. The exact contents and layout vary depending on the
10958 floating point chip. Currently, @samp{info float} is supported on
10959 the ARM and x86 machines.
10960 @end table
10961
10962 @node Vector Unit
10963 @section Vector Unit
10964 @cindex vector unit
10965
10966 Depending on the configuration, @value{GDBN} may be able to give you
10967 more information about the status of the vector unit.
10968
10969 @table @code
10970 @kindex info vector
10971 @item info vector
10972 Display information about the vector unit. The exact contents and
10973 layout vary depending on the hardware.
10974 @end table
10975
10976 @node OS Information
10977 @section Operating System Auxiliary Information
10978 @cindex OS information
10979
10980 @value{GDBN} provides interfaces to useful OS facilities that can help
10981 you debug your program.
10982
10983 @cindex auxiliary vector
10984 @cindex vector, auxiliary
10985 Some operating systems supply an @dfn{auxiliary vector} to programs at
10986 startup. This is akin to the arguments and environment that you
10987 specify for a program, but contains a system-dependent variety of
10988 binary values that tell system libraries important details about the
10989 hardware, operating system, and process. Each value's purpose is
10990 identified by an integer tag; the meanings are well-known but system-specific.
10991 Depending on the configuration and operating system facilities,
10992 @value{GDBN} may be able to show you this information. For remote
10993 targets, this functionality may further depend on the remote stub's
10994 support of the @samp{qXfer:auxv:read} packet, see
10995 @ref{qXfer auxiliary vector read}.
10996
10997 @table @code
10998 @kindex info auxv
10999 @item info auxv
11000 Display the auxiliary vector of the inferior, which can be either a
11001 live process or a core dump file. @value{GDBN} prints each tag value
11002 numerically, and also shows names and text descriptions for recognized
11003 tags. Some values in the vector are numbers, some bit masks, and some
11004 pointers to strings or other data. @value{GDBN} displays each value in the
11005 most appropriate form for a recognized tag, and in hexadecimal for
11006 an unrecognized tag.
11007 @end table
11008
11009 On some targets, @value{GDBN} can access operating system-specific
11010 information and show it to you. The types of information available
11011 will differ depending on the type of operating system running on the
11012 target. The mechanism used to fetch the data is described in
11013 @ref{Operating System Information}. For remote targets, this
11014 functionality depends on the remote stub's support of the
11015 @samp{qXfer:osdata:read} packet, see @ref{qXfer osdata read}.
11016
11017 @table @code
11018 @kindex info os
11019 @item info os @var{infotype}
11020
11021 Display OS information of the requested type.
11022
11023 On @sc{gnu}/Linux, the following values of @var{infotype} are valid:
11024
11025 @anchor{linux info os infotypes}
11026 @table @code
11027 @kindex info os cpus
11028 @item cpus
11029 Display the list of all CPUs/cores. For each CPU/core, @value{GDBN} prints
11030 the available fields from /proc/cpuinfo. For each supported architecture
11031 different fields are available. Two common entries are processor which gives
11032 CPU number and bogomips; a system constant that is calculated during
11033 kernel initialization.
11034
11035 @kindex info os files
11036 @item files
11037 Display the list of open file descriptors on the target. For each
11038 file descriptor, @value{GDBN} prints the identifier of the process
11039 owning the descriptor, the command of the owning process, the value
11040 of the descriptor, and the target of the descriptor.
11041
11042 @kindex info os modules
11043 @item modules
11044 Display the list of all loaded kernel modules on the target. For each
11045 module, @value{GDBN} prints the module name, the size of the module in
11046 bytes, the number of times the module is used, the dependencies of the
11047 module, the status of the module, and the address of the loaded module
11048 in memory.
11049
11050 @kindex info os msg
11051 @item msg
11052 Display the list of all System V message queues on the target. For each
11053 message queue, @value{GDBN} prints the message queue key, the message
11054 queue identifier, the access permissions, the current number of bytes
11055 on the queue, the current number of messages on the queue, the processes
11056 that last sent and received a message on the queue, the user and group
11057 of the owner and creator of the message queue, the times at which a
11058 message was last sent and received on the queue, and the time at which
11059 the message queue was last changed.
11060
11061 @kindex info os processes
11062 @item processes
11063 Display the list of processes on the target. For each process,
11064 @value{GDBN} prints the process identifier, the name of the user, the
11065 command corresponding to the process, and the list of processor cores
11066 that the process is currently running on. (To understand what these
11067 properties mean, for this and the following info types, please consult
11068 the general @sc{gnu}/Linux documentation.)
11069
11070 @kindex info os procgroups
11071 @item procgroups
11072 Display the list of process groups on the target. For each process,
11073 @value{GDBN} prints the identifier of the process group that it belongs
11074 to, the command corresponding to the process group leader, the process
11075 identifier, and the command line of the process. The list is sorted
11076 first by the process group identifier, then by the process identifier,
11077 so that processes belonging to the same process group are grouped together
11078 and the process group leader is listed first.
11079
11080 @kindex info os semaphores
11081 @item semaphores
11082 Display the list of all System V semaphore sets on the target. For each
11083 semaphore set, @value{GDBN} prints the semaphore set key, the semaphore
11084 set identifier, the access permissions, the number of semaphores in the
11085 set, the user and group of the owner and creator of the semaphore set,
11086 and the times at which the semaphore set was operated upon and changed.
11087
11088 @kindex info os shm
11089 @item shm
11090 Display the list of all System V shared-memory regions on the target.
11091 For each shared-memory region, @value{GDBN} prints the region key,
11092 the shared-memory identifier, the access permissions, the size of the
11093 region, the process that created the region, the process that last
11094 attached to or detached from the region, the current number of live
11095 attaches to the region, and the times at which the region was last
11096 attached to, detach from, and changed.
11097
11098 @kindex info os sockets
11099 @item sockets
11100 Display the list of Internet-domain sockets on the target. For each
11101 socket, @value{GDBN} prints the address and port of the local and
11102 remote endpoints, the current state of the connection, the creator of
11103 the socket, the IP address family of the socket, and the type of the
11104 connection.
11105
11106 @kindex info os threads
11107 @item threads
11108 Display the list of threads running on the target. For each thread,
11109 @value{GDBN} prints the identifier of the process that the thread
11110 belongs to, the command of the process, the thread identifier, and the
11111 processor core that it is currently running on. The main thread of a
11112 process is not listed.
11113 @end table
11114
11115 @item info os
11116 If @var{infotype} is omitted, then list the possible values for
11117 @var{infotype} and the kind of OS information available for each
11118 @var{infotype}. If the target does not return a list of possible
11119 types, this command will report an error.
11120 @end table
11121
11122 @node Memory Region Attributes
11123 @section Memory Region Attributes
11124 @cindex memory region attributes
11125
11126 @dfn{Memory region attributes} allow you to describe special handling
11127 required by regions of your target's memory. @value{GDBN} uses
11128 attributes to determine whether to allow certain types of memory
11129 accesses; whether to use specific width accesses; and whether to cache
11130 target memory. By default the description of memory regions is
11131 fetched from the target (if the current target supports this), but the
11132 user can override the fetched regions.
11133
11134 Defined memory regions can be individually enabled and disabled. When a
11135 memory region is disabled, @value{GDBN} uses the default attributes when
11136 accessing memory in that region. Similarly, if no memory regions have
11137 been defined, @value{GDBN} uses the default attributes when accessing
11138 all memory.
11139
11140 When a memory region is defined, it is given a number to identify it;
11141 to enable, disable, or remove a memory region, you specify that number.
11142
11143 @table @code
11144 @kindex mem
11145 @item mem @var{lower} @var{upper} @var{attributes}@dots{}
11146 Define a memory region bounded by @var{lower} and @var{upper} with
11147 attributes @var{attributes}@dots{}, and add it to the list of regions
11148 monitored by @value{GDBN}. Note that @var{upper} == 0 is a special
11149 case: it is treated as the target's maximum memory address.
11150 (0xffff on 16 bit targets, 0xffffffff on 32 bit targets, etc.)
11151
11152 @item mem auto
11153 Discard any user changes to the memory regions and use target-supplied
11154 regions, if available, or no regions if the target does not support.
11155
11156 @kindex delete mem
11157 @item delete mem @var{nums}@dots{}
11158 Remove memory regions @var{nums}@dots{} from the list of regions
11159 monitored by @value{GDBN}.
11160
11161 @kindex disable mem
11162 @item disable mem @var{nums}@dots{}
11163 Disable monitoring of memory regions @var{nums}@dots{}.
11164 A disabled memory region is not forgotten.
11165 It may be enabled again later.
11166
11167 @kindex enable mem
11168 @item enable mem @var{nums}@dots{}
11169 Enable monitoring of memory regions @var{nums}@dots{}.
11170
11171 @kindex info mem
11172 @item info mem
11173 Print a table of all defined memory regions, with the following columns
11174 for each region:
11175
11176 @table @emph
11177 @item Memory Region Number
11178 @item Enabled or Disabled.
11179 Enabled memory regions are marked with @samp{y}.
11180 Disabled memory regions are marked with @samp{n}.
11181
11182 @item Lo Address
11183 The address defining the inclusive lower bound of the memory region.
11184
11185 @item Hi Address
11186 The address defining the exclusive upper bound of the memory region.
11187
11188 @item Attributes
11189 The list of attributes set for this memory region.
11190 @end table
11191 @end table
11192
11193
11194 @subsection Attributes
11195
11196 @subsubsection Memory Access Mode
11197 The access mode attributes set whether @value{GDBN} may make read or
11198 write accesses to a memory region.
11199
11200 While these attributes prevent @value{GDBN} from performing invalid
11201 memory accesses, they do nothing to prevent the target system, I/O DMA,
11202 etc.@: from accessing memory.
11203
11204 @table @code
11205 @item ro
11206 Memory is read only.
11207 @item wo
11208 Memory is write only.
11209 @item rw
11210 Memory is read/write. This is the default.
11211 @end table
11212
11213 @subsubsection Memory Access Size
11214 The access size attribute tells @value{GDBN} to use specific sized
11215 accesses in the memory region. Often memory mapped device registers
11216 require specific sized accesses. If no access size attribute is
11217 specified, @value{GDBN} may use accesses of any size.
11218
11219 @table @code
11220 @item 8
11221 Use 8 bit memory accesses.
11222 @item 16
11223 Use 16 bit memory accesses.
11224 @item 32
11225 Use 32 bit memory accesses.
11226 @item 64
11227 Use 64 bit memory accesses.
11228 @end table
11229
11230 @c @subsubsection Hardware/Software Breakpoints
11231 @c The hardware/software breakpoint attributes set whether @value{GDBN}
11232 @c will use hardware or software breakpoints for the internal breakpoints
11233 @c used by the step, next, finish, until, etc. commands.
11234 @c
11235 @c @table @code
11236 @c @item hwbreak
11237 @c Always use hardware breakpoints
11238 @c @item swbreak (default)
11239 @c @end table
11240
11241 @subsubsection Data Cache
11242 The data cache attributes set whether @value{GDBN} will cache target
11243 memory. While this generally improves performance by reducing debug
11244 protocol overhead, it can lead to incorrect results because @value{GDBN}
11245 does not know about volatile variables or memory mapped device
11246 registers.
11247
11248 @table @code
11249 @item cache
11250 Enable @value{GDBN} to cache target memory.
11251 @item nocache
11252 Disable @value{GDBN} from caching target memory. This is the default.
11253 @end table
11254
11255 @subsection Memory Access Checking
11256 @value{GDBN} can be instructed to refuse accesses to memory that is
11257 not explicitly described. This can be useful if accessing such
11258 regions has undesired effects for a specific target, or to provide
11259 better error checking. The following commands control this behaviour.
11260
11261 @table @code
11262 @kindex set mem inaccessible-by-default
11263 @item set mem inaccessible-by-default [on|off]
11264 If @code{on} is specified, make @value{GDBN} treat memory not
11265 explicitly described by the memory ranges as non-existent and refuse accesses
11266 to such memory. The checks are only performed if there's at least one
11267 memory range defined. If @code{off} is specified, make @value{GDBN}
11268 treat the memory not explicitly described by the memory ranges as RAM.
11269 The default value is @code{on}.
11270 @kindex show mem inaccessible-by-default
11271 @item show mem inaccessible-by-default
11272 Show the current handling of accesses to unknown memory.
11273 @end table
11274
11275
11276 @c @subsubsection Memory Write Verification
11277 @c The memory write verification attributes set whether @value{GDBN}
11278 @c will re-reads data after each write to verify the write was successful.
11279 @c
11280 @c @table @code
11281 @c @item verify
11282 @c @item noverify (default)
11283 @c @end table
11284
11285 @node Dump/Restore Files
11286 @section Copy Between Memory and a File
11287 @cindex dump/restore files
11288 @cindex append data to a file
11289 @cindex dump data to a file
11290 @cindex restore data from a file
11291
11292 You can use the commands @code{dump}, @code{append}, and
11293 @code{restore} to copy data between target memory and a file. The
11294 @code{dump} and @code{append} commands write data to a file, and the
11295 @code{restore} command reads data from a file back into the inferior's
11296 memory. Files may be in binary, Motorola S-record, Intel hex,
11297 Tektronix Hex, or Verilog Hex format; however, @value{GDBN} can only
11298 append to binary files, and cannot read from Verilog Hex files.
11299
11300 @table @code
11301
11302 @kindex dump
11303 @item dump @r{[}@var{format}@r{]} memory @var{filename} @var{start_addr} @var{end_addr}
11304 @itemx dump @r{[}@var{format}@r{]} value @var{filename} @var{expr}
11305 Dump the contents of memory from @var{start_addr} to @var{end_addr},
11306 or the value of @var{expr}, to @var{filename} in the given format.
11307
11308 The @var{format} parameter may be any one of:
11309 @table @code
11310 @item binary
11311 Raw binary form.
11312 @item ihex
11313 Intel hex format.
11314 @item srec
11315 Motorola S-record format.
11316 @item tekhex
11317 Tektronix Hex format.
11318 @item verilog
11319 Verilog Hex format.
11320 @end table
11321
11322 @value{GDBN} uses the same definitions of these formats as the
11323 @sc{gnu} binary utilities, like @samp{objdump} and @samp{objcopy}. If
11324 @var{format} is omitted, @value{GDBN} dumps the data in raw binary
11325 form.
11326
11327 @kindex append
11328 @item append @r{[}binary@r{]} memory @var{filename} @var{start_addr} @var{end_addr}
11329 @itemx append @r{[}binary@r{]} value @var{filename} @var{expr}
11330 Append the contents of memory from @var{start_addr} to @var{end_addr},
11331 or the value of @var{expr}, to the file @var{filename}, in raw binary form.
11332 (@value{GDBN} can only append data to files in raw binary form.)
11333
11334 @kindex restore
11335 @item restore @var{filename} @r{[}binary@r{]} @var{bias} @var{start} @var{end}
11336 Restore the contents of file @var{filename} into memory. The
11337 @code{restore} command can automatically recognize any known @sc{bfd}
11338 file format, except for raw binary. To restore a raw binary file you
11339 must specify the optional keyword @code{binary} after the filename.
11340
11341 If @var{bias} is non-zero, its value will be added to the addresses
11342 contained in the file. Binary files always start at address zero, so
11343 they will be restored at address @var{bias}. Other bfd files have
11344 a built-in location; they will be restored at offset @var{bias}
11345 from that location.
11346
11347 If @var{start} and/or @var{end} are non-zero, then only data between
11348 file offset @var{start} and file offset @var{end} will be restored.
11349 These offsets are relative to the addresses in the file, before
11350 the @var{bias} argument is applied.
11351
11352 @end table
11353
11354 @node Core File Generation
11355 @section How to Produce a Core File from Your Program
11356 @cindex dump core from inferior
11357
11358 A @dfn{core file} or @dfn{core dump} is a file that records the memory
11359 image of a running process and its process status (register values
11360 etc.). Its primary use is post-mortem debugging of a program that
11361 crashed while it ran outside a debugger. A program that crashes
11362 automatically produces a core file, unless this feature is disabled by
11363 the user. @xref{Files}, for information on invoking @value{GDBN} in
11364 the post-mortem debugging mode.
11365
11366 Occasionally, you may wish to produce a core file of the program you
11367 are debugging in order to preserve a snapshot of its state.
11368 @value{GDBN} has a special command for that.
11369
11370 @table @code
11371 @kindex gcore
11372 @kindex generate-core-file
11373 @item generate-core-file [@var{file}]
11374 @itemx gcore [@var{file}]
11375 Produce a core dump of the inferior process. The optional argument
11376 @var{file} specifies the file name where to put the core dump. If not
11377 specified, the file name defaults to @file{core.@var{pid}}, where
11378 @var{pid} is the inferior process ID.
11379
11380 Note that this command is implemented only for some systems (as of
11381 this writing, @sc{gnu}/Linux, FreeBSD, Solaris, and S390).
11382
11383 On @sc{gnu}/Linux, this command can take into account the value of the
11384 file @file{/proc/@var{pid}/coredump_filter} when generating the core
11385 dump (@pxref{set use-coredump-filter}).
11386
11387 @kindex set use-coredump-filter
11388 @anchor{set use-coredump-filter}
11389 @item set use-coredump-filter on
11390 @itemx set use-coredump-filter off
11391 Enable or disable the use of the file
11392 @file{/proc/@var{pid}/coredump_filter} when generating core dump
11393 files. This file is used by the Linux kernel to decide what types of
11394 memory mappings will be dumped or ignored when generating a core dump
11395 file. @var{pid} is the process ID of a currently running process.
11396
11397 To make use of this feature, you have to write in the
11398 @file{/proc/@var{pid}/coredump_filter} file a value, in hexadecimal,
11399 which is a bit mask representing the memory mapping types. If a bit
11400 is set in the bit mask, then the memory mappings of the corresponding
11401 types will be dumped; otherwise, they will be ignored. This
11402 configuration is inherited by child processes. For more information
11403 about the bits that can be set in the
11404 @file{/proc/@var{pid}/coredump_filter} file, please refer to the
11405 manpage of @code{core(5)}.
11406
11407 By default, this option is @code{on}. If this option is turned
11408 @code{off}, @value{GDBN} does not read the @file{coredump_filter} file
11409 and instead uses the same default value as the Linux kernel in order
11410 to decide which pages will be dumped in the core dump file. This
11411 value is currently @code{0x33}, which means that bits @code{0}
11412 (anonymous private mappings), @code{1} (anonymous shared mappings),
11413 @code{4} (ELF headers) and @code{5} (private huge pages) are active.
11414 This will cause these memory mappings to be dumped automatically.
11415 @end table
11416
11417 @node Character Sets
11418 @section Character Sets
11419 @cindex character sets
11420 @cindex charset
11421 @cindex translating between character sets
11422 @cindex host character set
11423 @cindex target character set
11424
11425 If the program you are debugging uses a different character set to
11426 represent characters and strings than the one @value{GDBN} uses itself,
11427 @value{GDBN} can automatically translate between the character sets for
11428 you. The character set @value{GDBN} uses we call the @dfn{host
11429 character set}; the one the inferior program uses we call the
11430 @dfn{target character set}.
11431
11432 For example, if you are running @value{GDBN} on a @sc{gnu}/Linux system, which
11433 uses the ISO Latin 1 character set, but you are using @value{GDBN}'s
11434 remote protocol (@pxref{Remote Debugging}) to debug a program
11435 running on an IBM mainframe, which uses the @sc{ebcdic} character set,
11436 then the host character set is Latin-1, and the target character set is
11437 @sc{ebcdic}. If you give @value{GDBN} the command @code{set
11438 target-charset EBCDIC-US}, then @value{GDBN} translates between
11439 @sc{ebcdic} and Latin 1 as you print character or string values, or use
11440 character and string literals in expressions.
11441
11442 @value{GDBN} has no way to automatically recognize which character set
11443 the inferior program uses; you must tell it, using the @code{set
11444 target-charset} command, described below.
11445
11446 Here are the commands for controlling @value{GDBN}'s character set
11447 support:
11448
11449 @table @code
11450 @item set target-charset @var{charset}
11451 @kindex set target-charset
11452 Set the current target character set to @var{charset}. To display the
11453 list of supported target character sets, type
11454 @kbd{@w{set target-charset @key{TAB}@key{TAB}}}.
11455
11456 @item set host-charset @var{charset}
11457 @kindex set host-charset
11458 Set the current host character set to @var{charset}.
11459
11460 By default, @value{GDBN} uses a host character set appropriate to the
11461 system it is running on; you can override that default using the
11462 @code{set host-charset} command. On some systems, @value{GDBN} cannot
11463 automatically determine the appropriate host character set. In this
11464 case, @value{GDBN} uses @samp{UTF-8}.
11465
11466 @value{GDBN} can only use certain character sets as its host character
11467 set. If you type @kbd{@w{set host-charset @key{TAB}@key{TAB}}},
11468 @value{GDBN} will list the host character sets it supports.
11469
11470 @item set charset @var{charset}
11471 @kindex set charset
11472 Set the current host and target character sets to @var{charset}. As
11473 above, if you type @kbd{@w{set charset @key{TAB}@key{TAB}}},
11474 @value{GDBN} will list the names of the character sets that can be used
11475 for both host and target.
11476
11477 @item show charset
11478 @kindex show charset
11479 Show the names of the current host and target character sets.
11480
11481 @item show host-charset
11482 @kindex show host-charset
11483 Show the name of the current host character set.
11484
11485 @item show target-charset
11486 @kindex show target-charset
11487 Show the name of the current target character set.
11488
11489 @item set target-wide-charset @var{charset}
11490 @kindex set target-wide-charset
11491 Set the current target's wide character set to @var{charset}. This is
11492 the character set used by the target's @code{wchar_t} type. To
11493 display the list of supported wide character sets, type
11494 @kbd{@w{set target-wide-charset @key{TAB}@key{TAB}}}.
11495
11496 @item show target-wide-charset
11497 @kindex show target-wide-charset
11498 Show the name of the current target's wide character set.
11499 @end table
11500
11501 Here is an example of @value{GDBN}'s character set support in action.
11502 Assume that the following source code has been placed in the file
11503 @file{charset-test.c}:
11504
11505 @smallexample
11506 #include <stdio.h>
11507
11508 char ascii_hello[]
11509 = @{72, 101, 108, 108, 111, 44, 32, 119,
11510 111, 114, 108, 100, 33, 10, 0@};
11511 char ibm1047_hello[]
11512 = @{200, 133, 147, 147, 150, 107, 64, 166,
11513 150, 153, 147, 132, 90, 37, 0@};
11514
11515 main ()
11516 @{
11517 printf ("Hello, world!\n");
11518 @}
11519 @end smallexample
11520
11521 In this program, @code{ascii_hello} and @code{ibm1047_hello} are arrays
11522 containing the string @samp{Hello, world!} followed by a newline,
11523 encoded in the @sc{ascii} and @sc{ibm1047} character sets.
11524
11525 We compile the program, and invoke the debugger on it:
11526
11527 @smallexample
11528 $ gcc -g charset-test.c -o charset-test
11529 $ gdb -nw charset-test
11530 GNU gdb 2001-12-19-cvs
11531 Copyright 2001 Free Software Foundation, Inc.
11532 @dots{}
11533 (@value{GDBP})
11534 @end smallexample
11535
11536 We can use the @code{show charset} command to see what character sets
11537 @value{GDBN} is currently using to interpret and display characters and
11538 strings:
11539
11540 @smallexample
11541 (@value{GDBP}) show charset
11542 The current host and target character set is `ISO-8859-1'.
11543 (@value{GDBP})
11544 @end smallexample
11545
11546 For the sake of printing this manual, let's use @sc{ascii} as our
11547 initial character set:
11548 @smallexample
11549 (@value{GDBP}) set charset ASCII
11550 (@value{GDBP}) show charset
11551 The current host and target character set is `ASCII'.
11552 (@value{GDBP})
11553 @end smallexample
11554
11555 Let's assume that @sc{ascii} is indeed the correct character set for our
11556 host system --- in other words, let's assume that if @value{GDBN} prints
11557 characters using the @sc{ascii} character set, our terminal will display
11558 them properly. Since our current target character set is also
11559 @sc{ascii}, the contents of @code{ascii_hello} print legibly:
11560
11561 @smallexample
11562 (@value{GDBP}) print ascii_hello
11563 $1 = 0x401698 "Hello, world!\n"
11564 (@value{GDBP}) print ascii_hello[0]
11565 $2 = 72 'H'
11566 (@value{GDBP})
11567 @end smallexample
11568
11569 @value{GDBN} uses the target character set for character and string
11570 literals you use in expressions:
11571
11572 @smallexample
11573 (@value{GDBP}) print '+'
11574 $3 = 43 '+'
11575 (@value{GDBP})
11576 @end smallexample
11577
11578 The @sc{ascii} character set uses the number 43 to encode the @samp{+}
11579 character.
11580
11581 @value{GDBN} relies on the user to tell it which character set the
11582 target program uses. If we print @code{ibm1047_hello} while our target
11583 character set is still @sc{ascii}, we get jibberish:
11584
11585 @smallexample
11586 (@value{GDBP}) print ibm1047_hello
11587 $4 = 0x4016a8 "\310\205\223\223\226k@@\246\226\231\223\204Z%"
11588 (@value{GDBP}) print ibm1047_hello[0]
11589 $5 = 200 '\310'
11590 (@value{GDBP})
11591 @end smallexample
11592
11593 If we invoke the @code{set target-charset} followed by @key{TAB}@key{TAB},
11594 @value{GDBN} tells us the character sets it supports:
11595
11596 @smallexample
11597 (@value{GDBP}) set target-charset
11598 ASCII EBCDIC-US IBM1047 ISO-8859-1
11599 (@value{GDBP}) set target-charset
11600 @end smallexample
11601
11602 We can select @sc{ibm1047} as our target character set, and examine the
11603 program's strings again. Now the @sc{ascii} string is wrong, but
11604 @value{GDBN} translates the contents of @code{ibm1047_hello} from the
11605 target character set, @sc{ibm1047}, to the host character set,
11606 @sc{ascii}, and they display correctly:
11607
11608 @smallexample
11609 (@value{GDBP}) set target-charset IBM1047
11610 (@value{GDBP}) show charset
11611 The current host character set is `ASCII'.
11612 The current target character set is `IBM1047'.
11613 (@value{GDBP}) print ascii_hello
11614 $6 = 0x401698 "\110\145%%?\054\040\167?\162%\144\041\012"
11615 (@value{GDBP}) print ascii_hello[0]
11616 $7 = 72 '\110'
11617 (@value{GDBP}) print ibm1047_hello
11618 $8 = 0x4016a8 "Hello, world!\n"
11619 (@value{GDBP}) print ibm1047_hello[0]
11620 $9 = 200 'H'
11621 (@value{GDBP})
11622 @end smallexample
11623
11624 As above, @value{GDBN} uses the target character set for character and
11625 string literals you use in expressions:
11626
11627 @smallexample
11628 (@value{GDBP}) print '+'
11629 $10 = 78 '+'
11630 (@value{GDBP})
11631 @end smallexample
11632
11633 The @sc{ibm1047} character set uses the number 78 to encode the @samp{+}
11634 character.
11635
11636 @node Caching Target Data
11637 @section Caching Data of Targets
11638 @cindex caching data of targets
11639
11640 @value{GDBN} caches data exchanged between the debugger and a target.
11641 Each cache is associated with the address space of the inferior.
11642 @xref{Inferiors and Programs}, about inferior and address space.
11643 Such caching generally improves performance in remote debugging
11644 (@pxref{Remote Debugging}), because it reduces the overhead of the
11645 remote protocol by bundling memory reads and writes into large chunks.
11646 Unfortunately, simply caching everything would lead to incorrect results,
11647 since @value{GDBN} does not necessarily know anything about volatile
11648 values, memory-mapped I/O addresses, etc. Furthermore, in non-stop mode
11649 (@pxref{Non-Stop Mode}) memory can be changed @emph{while} a gdb command
11650 is executing.
11651 Therefore, by default, @value{GDBN} only caches data
11652 known to be on the stack@footnote{In non-stop mode, it is moderately
11653 rare for a running thread to modify the stack of a stopped thread
11654 in a way that would interfere with a backtrace, and caching of
11655 stack reads provides a significant speed up of remote backtraces.} or
11656 in the code segment.
11657 Other regions of memory can be explicitly marked as
11658 cacheable; @pxref{Memory Region Attributes}.
11659
11660 @table @code
11661 @kindex set remotecache
11662 @item set remotecache on
11663 @itemx set remotecache off
11664 This option no longer does anything; it exists for compatibility
11665 with old scripts.
11666
11667 @kindex show remotecache
11668 @item show remotecache
11669 Show the current state of the obsolete remotecache flag.
11670
11671 @kindex set stack-cache
11672 @item set stack-cache on
11673 @itemx set stack-cache off
11674 Enable or disable caching of stack accesses. When @code{on}, use
11675 caching. By default, this option is @code{on}.
11676
11677 @kindex show stack-cache
11678 @item show stack-cache
11679 Show the current state of data caching for memory accesses.
11680
11681 @kindex set code-cache
11682 @item set code-cache on
11683 @itemx set code-cache off
11684 Enable or disable caching of code segment accesses. When @code{on},
11685 use caching. By default, this option is @code{on}. This improves
11686 performance of disassembly in remote debugging.
11687
11688 @kindex show code-cache
11689 @item show code-cache
11690 Show the current state of target memory cache for code segment
11691 accesses.
11692
11693 @kindex info dcache
11694 @item info dcache @r{[}line@r{]}
11695 Print the information about the performance of data cache of the
11696 current inferior's address space. The information displayed
11697 includes the dcache width and depth, and for each cache line, its
11698 number, address, and how many times it was referenced. This
11699 command is useful for debugging the data cache operation.
11700
11701 If a line number is specified, the contents of that line will be
11702 printed in hex.
11703
11704 @item set dcache size @var{size}
11705 @cindex dcache size
11706 @kindex set dcache size
11707 Set maximum number of entries in dcache (dcache depth above).
11708
11709 @item set dcache line-size @var{line-size}
11710 @cindex dcache line-size
11711 @kindex set dcache line-size
11712 Set number of bytes each dcache entry caches (dcache width above).
11713 Must be a power of 2.
11714
11715 @item show dcache size
11716 @kindex show dcache size
11717 Show maximum number of dcache entries. @xref{Caching Target Data, info dcache}.
11718
11719 @item show dcache line-size
11720 @kindex show dcache line-size
11721 Show default size of dcache lines.
11722
11723 @end table
11724
11725 @node Searching Memory
11726 @section Search Memory
11727 @cindex searching memory
11728
11729 Memory can be searched for a particular sequence of bytes with the
11730 @code{find} command.
11731
11732 @table @code
11733 @kindex find
11734 @item find @r{[}/@var{sn}@r{]} @var{start_addr}, +@var{len}, @var{val1} @r{[}, @var{val2}, @dots{}@r{]}
11735 @itemx find @r{[}/@var{sn}@r{]} @var{start_addr}, @var{end_addr}, @var{val1} @r{[}, @var{val2}, @dots{}@r{]}
11736 Search memory for the sequence of bytes specified by @var{val1}, @var{val2},
11737 etc. The search begins at address @var{start_addr} and continues for either
11738 @var{len} bytes or through to @var{end_addr} inclusive.
11739 @end table
11740
11741 @var{s} and @var{n} are optional parameters.
11742 They may be specified in either order, apart or together.
11743
11744 @table @r
11745 @item @var{s}, search query size
11746 The size of each search query value.
11747
11748 @table @code
11749 @item b
11750 bytes
11751 @item h
11752 halfwords (two bytes)
11753 @item w
11754 words (four bytes)
11755 @item g
11756 giant words (eight bytes)
11757 @end table
11758
11759 All values are interpreted in the current language.
11760 This means, for example, that if the current source language is C/C@t{++}
11761 then searching for the string ``hello'' includes the trailing '\0'.
11762
11763 If the value size is not specified, it is taken from the
11764 value's type in the current language.
11765 This is useful when one wants to specify the search
11766 pattern as a mixture of types.
11767 Note that this means, for example, that in the case of C-like languages
11768 a search for an untyped 0x42 will search for @samp{(int) 0x42}
11769 which is typically four bytes.
11770
11771 @item @var{n}, maximum number of finds
11772 The maximum number of matches to print. The default is to print all finds.
11773 @end table
11774
11775 You can use strings as search values. Quote them with double-quotes
11776 (@code{"}).
11777 The string value is copied into the search pattern byte by byte,
11778 regardless of the endianness of the target and the size specification.
11779
11780 The address of each match found is printed as well as a count of the
11781 number of matches found.
11782
11783 The address of the last value found is stored in convenience variable
11784 @samp{$_}.
11785 A count of the number of matches is stored in @samp{$numfound}.
11786
11787 For example, if stopped at the @code{printf} in this function:
11788
11789 @smallexample
11790 void
11791 hello ()
11792 @{
11793 static char hello[] = "hello-hello";
11794 static struct @{ char c; short s; int i; @}
11795 __attribute__ ((packed)) mixed
11796 = @{ 'c', 0x1234, 0x87654321 @};
11797 printf ("%s\n", hello);
11798 @}
11799 @end smallexample
11800
11801 @noindent
11802 you get during debugging:
11803
11804 @smallexample
11805 (gdb) find &hello[0], +sizeof(hello), "hello"
11806 0x804956d <hello.1620+6>
11807 1 pattern found
11808 (gdb) find &hello[0], +sizeof(hello), 'h', 'e', 'l', 'l', 'o'
11809 0x8049567 <hello.1620>
11810 0x804956d <hello.1620+6>
11811 2 patterns found
11812 (gdb) find /b1 &hello[0], +sizeof(hello), 'h', 0x65, 'l'
11813 0x8049567 <hello.1620>
11814 1 pattern found
11815 (gdb) find &mixed, +sizeof(mixed), (char) 'c', (short) 0x1234, (int) 0x87654321
11816 0x8049560 <mixed.1625>
11817 1 pattern found
11818 (gdb) print $numfound
11819 $1 = 1
11820 (gdb) print $_
11821 $2 = (void *) 0x8049560
11822 @end smallexample
11823
11824 @node Value Sizes
11825 @section Value Sizes
11826
11827 Whenever @value{GDBN} prints a value memory will be allocated within
11828 @value{GDBN} to hold the contents of the value. It is possible in
11829 some languages with dynamic typing systems, that an invalid program
11830 may indicate a value that is incorrectly large, this in turn may cause
11831 @value{GDBN} to try and allocate an overly large ammount of memory.
11832
11833 @table @code
11834 @kindex set max-value-size
11835 @item set max-value-size @var{bytes}
11836 @itemx set max-value-size unlimited
11837 Set the maximum size of memory that @value{GDBN} will allocate for the
11838 contents of a value to @var{bytes}, trying to display a value that
11839 requires more memory than that will result in an error.
11840
11841 Setting this variable does not effect values that have already been
11842 allocated within @value{GDBN}, only future allocations.
11843
11844 There's a minimum size that @code{max-value-size} can be set to in
11845 order that @value{GDBN} can still operate correctly, this minimum is
11846 currently 16 bytes.
11847
11848 The limit applies to the results of some subexpressions as well as to
11849 complete expressions. For example, an expression denoting a simple
11850 integer component, such as @code{x.y.z}, may fail if the size of
11851 @var{x.y} is dynamic and exceeds @var{bytes}. On the other hand,
11852 @value{GDBN} is sometimes clever; the expression @code{A[i]}, where
11853 @var{A} is an array variable with non-constant size, will generally
11854 succeed regardless of the bounds on @var{A}, as long as the component
11855 size is less than @var{bytes}.
11856
11857 The default value of @code{max-value-size} is currently 64k.
11858
11859 @kindex show max-value-size
11860 @item show max-value-size
11861 Show the maximum size of memory, in bytes, that @value{GDBN} will
11862 allocate for the contents of a value.
11863 @end table
11864
11865 @node Optimized Code
11866 @chapter Debugging Optimized Code
11867 @cindex optimized code, debugging
11868 @cindex debugging optimized code
11869
11870 Almost all compilers support optimization. With optimization
11871 disabled, the compiler generates assembly code that corresponds
11872 directly to your source code, in a simplistic way. As the compiler
11873 applies more powerful optimizations, the generated assembly code
11874 diverges from your original source code. With help from debugging
11875 information generated by the compiler, @value{GDBN} can map from
11876 the running program back to constructs from your original source.
11877
11878 @value{GDBN} is more accurate with optimization disabled. If you
11879 can recompile without optimization, it is easier to follow the
11880 progress of your program during debugging. But, there are many cases
11881 where you may need to debug an optimized version.
11882
11883 When you debug a program compiled with @samp{-g -O}, remember that the
11884 optimizer has rearranged your code; the debugger shows you what is
11885 really there. Do not be too surprised when the execution path does not
11886 exactly match your source file! An extreme example: if you define a
11887 variable, but never use it, @value{GDBN} never sees that
11888 variable---because the compiler optimizes it out of existence.
11889
11890 Some things do not work as well with @samp{-g -O} as with just
11891 @samp{-g}, particularly on machines with instruction scheduling. If in
11892 doubt, recompile with @samp{-g} alone, and if this fixes the problem,
11893 please report it to us as a bug (including a test case!).
11894 @xref{Variables}, for more information about debugging optimized code.
11895
11896 @menu
11897 * Inline Functions:: How @value{GDBN} presents inlining
11898 * Tail Call Frames:: @value{GDBN} analysis of jumps to functions
11899 @end menu
11900
11901 @node Inline Functions
11902 @section Inline Functions
11903 @cindex inline functions, debugging
11904
11905 @dfn{Inlining} is an optimization that inserts a copy of the function
11906 body directly at each call site, instead of jumping to a shared
11907 routine. @value{GDBN} displays inlined functions just like
11908 non-inlined functions. They appear in backtraces. You can view their
11909 arguments and local variables, step into them with @code{step}, skip
11910 them with @code{next}, and escape from them with @code{finish}.
11911 You can check whether a function was inlined by using the
11912 @code{info frame} command.
11913
11914 For @value{GDBN} to support inlined functions, the compiler must
11915 record information about inlining in the debug information ---
11916 @value{NGCC} using the @sc{dwarf 2} format does this, and several
11917 other compilers do also. @value{GDBN} only supports inlined functions
11918 when using @sc{dwarf 2}. Versions of @value{NGCC} before 4.1
11919 do not emit two required attributes (@samp{DW_AT_call_file} and
11920 @samp{DW_AT_call_line}); @value{GDBN} does not display inlined
11921 function calls with earlier versions of @value{NGCC}. It instead
11922 displays the arguments and local variables of inlined functions as
11923 local variables in the caller.
11924
11925 The body of an inlined function is directly included at its call site;
11926 unlike a non-inlined function, there are no instructions devoted to
11927 the call. @value{GDBN} still pretends that the call site and the
11928 start of the inlined function are different instructions. Stepping to
11929 the call site shows the call site, and then stepping again shows
11930 the first line of the inlined function, even though no additional
11931 instructions are executed.
11932
11933 This makes source-level debugging much clearer; you can see both the
11934 context of the call and then the effect of the call. Only stepping by
11935 a single instruction using @code{stepi} or @code{nexti} does not do
11936 this; single instruction steps always show the inlined body.
11937
11938 There are some ways that @value{GDBN} does not pretend that inlined
11939 function calls are the same as normal calls:
11940
11941 @itemize @bullet
11942 @item
11943 Setting breakpoints at the call site of an inlined function may not
11944 work, because the call site does not contain any code. @value{GDBN}
11945 may incorrectly move the breakpoint to the next line of the enclosing
11946 function, after the call. This limitation will be removed in a future
11947 version of @value{GDBN}; until then, set a breakpoint on an earlier line
11948 or inside the inlined function instead.
11949
11950 @item
11951 @value{GDBN} cannot locate the return value of inlined calls after
11952 using the @code{finish} command. This is a limitation of compiler-generated
11953 debugging information; after @code{finish}, you can step to the next line
11954 and print a variable where your program stored the return value.
11955
11956 @end itemize
11957
11958 @node Tail Call Frames
11959 @section Tail Call Frames
11960 @cindex tail call frames, debugging
11961
11962 Function @code{B} can call function @code{C} in its very last statement. In
11963 unoptimized compilation the call of @code{C} is immediately followed by return
11964 instruction at the end of @code{B} code. Optimizing compiler may replace the
11965 call and return in function @code{B} into one jump to function @code{C}
11966 instead. Such use of a jump instruction is called @dfn{tail call}.
11967
11968 During execution of function @code{C}, there will be no indication in the
11969 function call stack frames that it was tail-called from @code{B}. If function
11970 @code{A} regularly calls function @code{B} which tail-calls function @code{C},
11971 then @value{GDBN} will see @code{A} as the caller of @code{C}. However, in
11972 some cases @value{GDBN} can determine that @code{C} was tail-called from
11973 @code{B}, and it will then create fictitious call frame for that, with the
11974 return address set up as if @code{B} called @code{C} normally.
11975
11976 This functionality is currently supported only by DWARF 2 debugging format and
11977 the compiler has to produce @samp{DW_TAG_GNU_call_site} tags. With
11978 @value{NGCC}, you need to specify @option{-O -g} during compilation, to get
11979 this information.
11980
11981 @kbd{info frame} command (@pxref{Frame Info}) will indicate the tail call frame
11982 kind by text @code{tail call frame} such as in this sample @value{GDBN} output:
11983
11984 @smallexample
11985 (gdb) x/i $pc - 2
11986 0x40066b <b(int, double)+11>: jmp 0x400640 <c(int, double)>
11987 (gdb) info frame
11988 Stack level 1, frame at 0x7fffffffda30:
11989 rip = 0x40066d in b (amd64-entry-value.cc:59); saved rip 0x4004c5
11990 tail call frame, caller of frame at 0x7fffffffda30
11991 source language c++.
11992 Arglist at unknown address.
11993 Locals at unknown address, Previous frame's sp is 0x7fffffffda30
11994 @end smallexample
11995
11996 The detection of all the possible code path executions can find them ambiguous.
11997 There is no execution history stored (possible @ref{Reverse Execution} is never
11998 used for this purpose) and the last known caller could have reached the known
11999 callee by multiple different jump sequences. In such case @value{GDBN} still
12000 tries to show at least all the unambiguous top tail callers and all the
12001 unambiguous bottom tail calees, if any.
12002
12003 @table @code
12004 @anchor{set debug entry-values}
12005 @item set debug entry-values
12006 @kindex set debug entry-values
12007 When set to on, enables printing of analysis messages for both frame argument
12008 values at function entry and tail calls. It will show all the possible valid
12009 tail calls code paths it has considered. It will also print the intersection
12010 of them with the final unambiguous (possibly partial or even empty) code path
12011 result.
12012
12013 @item show debug entry-values
12014 @kindex show debug entry-values
12015 Show the current state of analysis messages printing for both frame argument
12016 values at function entry and tail calls.
12017 @end table
12018
12019 The analysis messages for tail calls can for example show why the virtual tail
12020 call frame for function @code{c} has not been recognized (due to the indirect
12021 reference by variable @code{x}):
12022
12023 @smallexample
12024 static void __attribute__((noinline, noclone)) c (void);
12025 void (*x) (void) = c;
12026 static void __attribute__((noinline, noclone)) a (void) @{ x++; @}
12027 static void __attribute__((noinline, noclone)) c (void) @{ a (); @}
12028 int main (void) @{ x (); return 0; @}
12029
12030 Breakpoint 1, DW_OP_GNU_entry_value resolving cannot find
12031 DW_TAG_GNU_call_site 0x40039a in main
12032 a () at t.c:3
12033 3 static void __attribute__((noinline, noclone)) a (void) @{ x++; @}
12034 (gdb) bt
12035 #0 a () at t.c:3
12036 #1 0x000000000040039a in main () at t.c:5
12037 @end smallexample
12038
12039 Another possibility is an ambiguous virtual tail call frames resolution:
12040
12041 @smallexample
12042 int i;
12043 static void __attribute__((noinline, noclone)) f (void) @{ i++; @}
12044 static void __attribute__((noinline, noclone)) e (void) @{ f (); @}
12045 static void __attribute__((noinline, noclone)) d (void) @{ f (); @}
12046 static void __attribute__((noinline, noclone)) c (void) @{ d (); @}
12047 static void __attribute__((noinline, noclone)) b (void)
12048 @{ if (i) c (); else e (); @}
12049 static void __attribute__((noinline, noclone)) a (void) @{ b (); @}
12050 int main (void) @{ a (); return 0; @}
12051
12052 tailcall: initial: 0x4004d2(a) 0x4004ce(b) 0x4004b2(c) 0x4004a2(d)
12053 tailcall: compare: 0x4004d2(a) 0x4004cc(b) 0x400492(e)
12054 tailcall: reduced: 0x4004d2(a) |
12055 (gdb) bt
12056 #0 f () at t.c:2
12057 #1 0x00000000004004d2 in a () at t.c:8
12058 #2 0x0000000000400395 in main () at t.c:9
12059 @end smallexample
12060
12061 @set CALLSEQ1A @code{main@value{ARROW}a@value{ARROW}b@value{ARROW}c@value{ARROW}d@value{ARROW}f}
12062 @set CALLSEQ2A @code{main@value{ARROW}a@value{ARROW}b@value{ARROW}e@value{ARROW}f}
12063
12064 @c Convert CALLSEQ#A to CALLSEQ#B depending on HAVE_MAKEINFO_CLICK.
12065 @ifset HAVE_MAKEINFO_CLICK
12066 @set ARROW @click{}
12067 @set CALLSEQ1B @clicksequence{@value{CALLSEQ1A}}
12068 @set CALLSEQ2B @clicksequence{@value{CALLSEQ2A}}
12069 @end ifset
12070 @ifclear HAVE_MAKEINFO_CLICK
12071 @set ARROW ->
12072 @set CALLSEQ1B @value{CALLSEQ1A}
12073 @set CALLSEQ2B @value{CALLSEQ2A}
12074 @end ifclear
12075
12076 Frames #0 and #2 are real, #1 is a virtual tail call frame.
12077 The code can have possible execution paths @value{CALLSEQ1B} or
12078 @value{CALLSEQ2B}, @value{GDBN} cannot find which one from the inferior state.
12079
12080 @code{initial:} state shows some random possible calling sequence @value{GDBN}
12081 has found. It then finds another possible calling sequcen - that one is
12082 prefixed by @code{compare:}. The non-ambiguous intersection of these two is
12083 printed as the @code{reduced:} calling sequence. That one could have many
12084 futher @code{compare:} and @code{reduced:} statements as long as there remain
12085 any non-ambiguous sequence entries.
12086
12087 For the frame of function @code{b} in both cases there are different possible
12088 @code{$pc} values (@code{0x4004cc} or @code{0x4004ce}), therefore this frame is
12089 also ambigous. The only non-ambiguous frame is the one for function @code{a},
12090 therefore this one is displayed to the user while the ambiguous frames are
12091 omitted.
12092
12093 There can be also reasons why printing of frame argument values at function
12094 entry may fail:
12095
12096 @smallexample
12097 int v;
12098 static void __attribute__((noinline, noclone)) c (int i) @{ v++; @}
12099 static void __attribute__((noinline, noclone)) a (int i);
12100 static void __attribute__((noinline, noclone)) b (int i) @{ a (i); @}
12101 static void __attribute__((noinline, noclone)) a (int i)
12102 @{ if (i) b (i - 1); else c (0); @}
12103 int main (void) @{ a (5); return 0; @}
12104
12105 (gdb) bt
12106 #0 c (i=i@@entry=0) at t.c:2
12107 #1 0x0000000000400428 in a (DW_OP_GNU_entry_value resolving has found
12108 function "a" at 0x400420 can call itself via tail calls
12109 i=<optimized out>) at t.c:6
12110 #2 0x000000000040036e in main () at t.c:7
12111 @end smallexample
12112
12113 @value{GDBN} cannot find out from the inferior state if and how many times did
12114 function @code{a} call itself (via function @code{b}) as these calls would be
12115 tail calls. Such tail calls would modify thue @code{i} variable, therefore
12116 @value{GDBN} cannot be sure the value it knows would be right - @value{GDBN}
12117 prints @code{<optimized out>} instead.
12118
12119 @node Macros
12120 @chapter C Preprocessor Macros
12121
12122 Some languages, such as C and C@t{++}, provide a way to define and invoke
12123 ``preprocessor macros'' which expand into strings of tokens.
12124 @value{GDBN} can evaluate expressions containing macro invocations, show
12125 the result of macro expansion, and show a macro's definition, including
12126 where it was defined.
12127
12128 You may need to compile your program specially to provide @value{GDBN}
12129 with information about preprocessor macros. Most compilers do not
12130 include macros in their debugging information, even when you compile
12131 with the @option{-g} flag. @xref{Compilation}.
12132
12133 A program may define a macro at one point, remove that definition later,
12134 and then provide a different definition after that. Thus, at different
12135 points in the program, a macro may have different definitions, or have
12136 no definition at all. If there is a current stack frame, @value{GDBN}
12137 uses the macros in scope at that frame's source code line. Otherwise,
12138 @value{GDBN} uses the macros in scope at the current listing location;
12139 see @ref{List}.
12140
12141 Whenever @value{GDBN} evaluates an expression, it always expands any
12142 macro invocations present in the expression. @value{GDBN} also provides
12143 the following commands for working with macros explicitly.
12144
12145 @table @code
12146
12147 @kindex macro expand
12148 @cindex macro expansion, showing the results of preprocessor
12149 @cindex preprocessor macro expansion, showing the results of
12150 @cindex expanding preprocessor macros
12151 @item macro expand @var{expression}
12152 @itemx macro exp @var{expression}
12153 Show the results of expanding all preprocessor macro invocations in
12154 @var{expression}. Since @value{GDBN} simply expands macros, but does
12155 not parse the result, @var{expression} need not be a valid expression;
12156 it can be any string of tokens.
12157
12158 @kindex macro exp1
12159 @item macro expand-once @var{expression}
12160 @itemx macro exp1 @var{expression}
12161 @cindex expand macro once
12162 @i{(This command is not yet implemented.)} Show the results of
12163 expanding those preprocessor macro invocations that appear explicitly in
12164 @var{expression}. Macro invocations appearing in that expansion are
12165 left unchanged. This command allows you to see the effect of a
12166 particular macro more clearly, without being confused by further
12167 expansions. Since @value{GDBN} simply expands macros, but does not
12168 parse the result, @var{expression} need not be a valid expression; it
12169 can be any string of tokens.
12170
12171 @kindex info macro
12172 @cindex macro definition, showing
12173 @cindex definition of a macro, showing
12174 @cindex macros, from debug info
12175 @item info macro [-a|-all] [--] @var{macro}
12176 Show the current definition or all definitions of the named @var{macro},
12177 and describe the source location or compiler command-line where that
12178 definition was established. The optional double dash is to signify the end of
12179 argument processing and the beginning of @var{macro} for non C-like macros where
12180 the macro may begin with a hyphen.
12181
12182 @kindex info macros
12183 @item info macros @var{location}
12184 Show all macro definitions that are in effect at the location specified
12185 by @var{location}, and describe the source location or compiler
12186 command-line where those definitions were established.
12187
12188 @kindex macro define
12189 @cindex user-defined macros
12190 @cindex defining macros interactively
12191 @cindex macros, user-defined
12192 @item macro define @var{macro} @var{replacement-list}
12193 @itemx macro define @var{macro}(@var{arglist}) @var{replacement-list}
12194 Introduce a definition for a preprocessor macro named @var{macro},
12195 invocations of which are replaced by the tokens given in
12196 @var{replacement-list}. The first form of this command defines an
12197 ``object-like'' macro, which takes no arguments; the second form
12198 defines a ``function-like'' macro, which takes the arguments given in
12199 @var{arglist}.
12200
12201 A definition introduced by this command is in scope in every
12202 expression evaluated in @value{GDBN}, until it is removed with the
12203 @code{macro undef} command, described below. The definition overrides
12204 all definitions for @var{macro} present in the program being debugged,
12205 as well as any previous user-supplied definition.
12206
12207 @kindex macro undef
12208 @item macro undef @var{macro}
12209 Remove any user-supplied definition for the macro named @var{macro}.
12210 This command only affects definitions provided with the @code{macro
12211 define} command, described above; it cannot remove definitions present
12212 in the program being debugged.
12213
12214 @kindex macro list
12215 @item macro list
12216 List all the macros defined using the @code{macro define} command.
12217 @end table
12218
12219 @cindex macros, example of debugging with
12220 Here is a transcript showing the above commands in action. First, we
12221 show our source files:
12222
12223 @smallexample
12224 $ cat sample.c
12225 #include <stdio.h>
12226 #include "sample.h"
12227
12228 #define M 42
12229 #define ADD(x) (M + x)
12230
12231 main ()
12232 @{
12233 #define N 28
12234 printf ("Hello, world!\n");
12235 #undef N
12236 printf ("We're so creative.\n");
12237 #define N 1729
12238 printf ("Goodbye, world!\n");
12239 @}
12240 $ cat sample.h
12241 #define Q <
12242 $
12243 @end smallexample
12244
12245 Now, we compile the program using the @sc{gnu} C compiler,
12246 @value{NGCC}. We pass the @option{-gdwarf-2}@footnote{This is the
12247 minimum. Recent versions of @value{NGCC} support @option{-gdwarf-3}
12248 and @option{-gdwarf-4}; we recommend always choosing the most recent
12249 version of DWARF.} @emph{and} @option{-g3} flags to ensure the compiler
12250 includes information about preprocessor macros in the debugging
12251 information.
12252
12253 @smallexample
12254 $ gcc -gdwarf-2 -g3 sample.c -o sample
12255 $
12256 @end smallexample
12257
12258 Now, we start @value{GDBN} on our sample program:
12259
12260 @smallexample
12261 $ gdb -nw sample
12262 GNU gdb 2002-05-06-cvs
12263 Copyright 2002 Free Software Foundation, Inc.
12264 GDB is free software, @dots{}
12265 (@value{GDBP})
12266 @end smallexample
12267
12268 We can expand macros and examine their definitions, even when the
12269 program is not running. @value{GDBN} uses the current listing position
12270 to decide which macro definitions are in scope:
12271
12272 @smallexample
12273 (@value{GDBP}) list main
12274 3
12275 4 #define M 42
12276 5 #define ADD(x) (M + x)
12277 6
12278 7 main ()
12279 8 @{
12280 9 #define N 28
12281 10 printf ("Hello, world!\n");
12282 11 #undef N
12283 12 printf ("We're so creative.\n");
12284 (@value{GDBP}) info macro ADD
12285 Defined at /home/jimb/gdb/macros/play/sample.c:5
12286 #define ADD(x) (M + x)
12287 (@value{GDBP}) info macro Q
12288 Defined at /home/jimb/gdb/macros/play/sample.h:1
12289 included at /home/jimb/gdb/macros/play/sample.c:2
12290 #define Q <
12291 (@value{GDBP}) macro expand ADD(1)
12292 expands to: (42 + 1)
12293 (@value{GDBP}) macro expand-once ADD(1)
12294 expands to: once (M + 1)
12295 (@value{GDBP})
12296 @end smallexample
12297
12298 In the example above, note that @code{macro expand-once} expands only
12299 the macro invocation explicit in the original text --- the invocation of
12300 @code{ADD} --- but does not expand the invocation of the macro @code{M},
12301 which was introduced by @code{ADD}.
12302
12303 Once the program is running, @value{GDBN} uses the macro definitions in
12304 force at the source line of the current stack frame:
12305
12306 @smallexample
12307 (@value{GDBP}) break main
12308 Breakpoint 1 at 0x8048370: file sample.c, line 10.
12309 (@value{GDBP}) run
12310 Starting program: /home/jimb/gdb/macros/play/sample
12311
12312 Breakpoint 1, main () at sample.c:10
12313 10 printf ("Hello, world!\n");
12314 (@value{GDBP})
12315 @end smallexample
12316
12317 At line 10, the definition of the macro @code{N} at line 9 is in force:
12318
12319 @smallexample
12320 (@value{GDBP}) info macro N
12321 Defined at /home/jimb/gdb/macros/play/sample.c:9
12322 #define N 28
12323 (@value{GDBP}) macro expand N Q M
12324 expands to: 28 < 42
12325 (@value{GDBP}) print N Q M
12326 $1 = 1
12327 (@value{GDBP})
12328 @end smallexample
12329
12330 As we step over directives that remove @code{N}'s definition, and then
12331 give it a new definition, @value{GDBN} finds the definition (or lack
12332 thereof) in force at each point:
12333
12334 @smallexample
12335 (@value{GDBP}) next
12336 Hello, world!
12337 12 printf ("We're so creative.\n");
12338 (@value{GDBP}) info macro N
12339 The symbol `N' has no definition as a C/C++ preprocessor macro
12340 at /home/jimb/gdb/macros/play/sample.c:12
12341 (@value{GDBP}) next
12342 We're so creative.
12343 14 printf ("Goodbye, world!\n");
12344 (@value{GDBP}) info macro N
12345 Defined at /home/jimb/gdb/macros/play/sample.c:13
12346 #define N 1729
12347 (@value{GDBP}) macro expand N Q M
12348 expands to: 1729 < 42
12349 (@value{GDBP}) print N Q M
12350 $2 = 0
12351 (@value{GDBP})
12352 @end smallexample
12353
12354 In addition to source files, macros can be defined on the compilation command
12355 line using the @option{-D@var{name}=@var{value}} syntax. For macros defined in
12356 such a way, @value{GDBN} displays the location of their definition as line zero
12357 of the source file submitted to the compiler.
12358
12359 @smallexample
12360 (@value{GDBP}) info macro __STDC__
12361 Defined at /home/jimb/gdb/macros/play/sample.c:0
12362 -D__STDC__=1
12363 (@value{GDBP})
12364 @end smallexample
12365
12366
12367 @node Tracepoints
12368 @chapter Tracepoints
12369 @c This chapter is based on the documentation written by Michael
12370 @c Snyder, David Taylor, Jim Blandy, and Elena Zannoni.
12371
12372 @cindex tracepoints
12373 In some applications, it is not feasible for the debugger to interrupt
12374 the program's execution long enough for the developer to learn
12375 anything helpful about its behavior. If the program's correctness
12376 depends on its real-time behavior, delays introduced by a debugger
12377 might cause the program to change its behavior drastically, or perhaps
12378 fail, even when the code itself is correct. It is useful to be able
12379 to observe the program's behavior without interrupting it.
12380
12381 Using @value{GDBN}'s @code{trace} and @code{collect} commands, you can
12382 specify locations in the program, called @dfn{tracepoints}, and
12383 arbitrary expressions to evaluate when those tracepoints are reached.
12384 Later, using the @code{tfind} command, you can examine the values
12385 those expressions had when the program hit the tracepoints. The
12386 expressions may also denote objects in memory---structures or arrays,
12387 for example---whose values @value{GDBN} should record; while visiting
12388 a particular tracepoint, you may inspect those objects as if they were
12389 in memory at that moment. However, because @value{GDBN} records these
12390 values without interacting with you, it can do so quickly and
12391 unobtrusively, hopefully not disturbing the program's behavior.
12392
12393 The tracepoint facility is currently available only for remote
12394 targets. @xref{Targets}. In addition, your remote target must know
12395 how to collect trace data. This functionality is implemented in the
12396 remote stub; however, none of the stubs distributed with @value{GDBN}
12397 support tracepoints as of this writing. The format of the remote
12398 packets used to implement tracepoints are described in @ref{Tracepoint
12399 Packets}.
12400
12401 It is also possible to get trace data from a file, in a manner reminiscent
12402 of corefiles; you specify the filename, and use @code{tfind} to search
12403 through the file. @xref{Trace Files}, for more details.
12404
12405 This chapter describes the tracepoint commands and features.
12406
12407 @menu
12408 * Set Tracepoints::
12409 * Analyze Collected Data::
12410 * Tracepoint Variables::
12411 * Trace Files::
12412 @end menu
12413
12414 @node Set Tracepoints
12415 @section Commands to Set Tracepoints
12416
12417 Before running such a @dfn{trace experiment}, an arbitrary number of
12418 tracepoints can be set. A tracepoint is actually a special type of
12419 breakpoint (@pxref{Set Breaks}), so you can manipulate it using
12420 standard breakpoint commands. For instance, as with breakpoints,
12421 tracepoint numbers are successive integers starting from one, and many
12422 of the commands associated with tracepoints take the tracepoint number
12423 as their argument, to identify which tracepoint to work on.
12424
12425 For each tracepoint, you can specify, in advance, some arbitrary set
12426 of data that you want the target to collect in the trace buffer when
12427 it hits that tracepoint. The collected data can include registers,
12428 local variables, or global data. Later, you can use @value{GDBN}
12429 commands to examine the values these data had at the time the
12430 tracepoint was hit.
12431
12432 Tracepoints do not support every breakpoint feature. Ignore counts on
12433 tracepoints have no effect, and tracepoints cannot run @value{GDBN}
12434 commands when they are hit. Tracepoints may not be thread-specific
12435 either.
12436
12437 @cindex fast tracepoints
12438 Some targets may support @dfn{fast tracepoints}, which are inserted in
12439 a different way (such as with a jump instead of a trap), that is
12440 faster but possibly restricted in where they may be installed.
12441
12442 @cindex static tracepoints
12443 @cindex markers, static tracepoints
12444 @cindex probing markers, static tracepoints
12445 Regular and fast tracepoints are dynamic tracing facilities, meaning
12446 that they can be used to insert tracepoints at (almost) any location
12447 in the target. Some targets may also support controlling @dfn{static
12448 tracepoints} from @value{GDBN}. With static tracing, a set of
12449 instrumentation points, also known as @dfn{markers}, are embedded in
12450 the target program, and can be activated or deactivated by name or
12451 address. These are usually placed at locations which facilitate
12452 investigating what the target is actually doing. @value{GDBN}'s
12453 support for static tracing includes being able to list instrumentation
12454 points, and attach them with @value{GDBN} defined high level
12455 tracepoints that expose the whole range of convenience of
12456 @value{GDBN}'s tracepoints support. Namely, support for collecting
12457 registers values and values of global or local (to the instrumentation
12458 point) variables; tracepoint conditions and trace state variables.
12459 The act of installing a @value{GDBN} static tracepoint on an
12460 instrumentation point, or marker, is referred to as @dfn{probing} a
12461 static tracepoint marker.
12462
12463 @code{gdbserver} supports tracepoints on some target systems.
12464 @xref{Server,,Tracepoints support in @code{gdbserver}}.
12465
12466 This section describes commands to set tracepoints and associated
12467 conditions and actions.
12468
12469 @menu
12470 * Create and Delete Tracepoints::
12471 * Enable and Disable Tracepoints::
12472 * Tracepoint Passcounts::
12473 * Tracepoint Conditions::
12474 * Trace State Variables::
12475 * Tracepoint Actions::
12476 * Listing Tracepoints::
12477 * Listing Static Tracepoint Markers::
12478 * Starting and Stopping Trace Experiments::
12479 * Tracepoint Restrictions::
12480 @end menu
12481
12482 @node Create and Delete Tracepoints
12483 @subsection Create and Delete Tracepoints
12484
12485 @table @code
12486 @cindex set tracepoint
12487 @kindex trace
12488 @item trace @var{location}
12489 The @code{trace} command is very similar to the @code{break} command.
12490 Its argument @var{location} can be any valid location.
12491 @xref{Specify Location}. The @code{trace} command defines a tracepoint,
12492 which is a point in the target program where the debugger will briefly stop,
12493 collect some data, and then allow the program to continue. Setting a tracepoint
12494 or changing its actions takes effect immediately if the remote stub
12495 supports the @samp{InstallInTrace} feature (@pxref{install tracepoint
12496 in tracing}).
12497 If remote stub doesn't support the @samp{InstallInTrace} feature, all
12498 these changes don't take effect until the next @code{tstart}
12499 command, and once a trace experiment is running, further changes will
12500 not have any effect until the next trace experiment starts. In addition,
12501 @value{GDBN} supports @dfn{pending tracepoints}---tracepoints whose
12502 address is not yet resolved. (This is similar to pending breakpoints.)
12503 Pending tracepoints are not downloaded to the target and not installed
12504 until they are resolved. The resolution of pending tracepoints requires
12505 @value{GDBN} support---when debugging with the remote target, and
12506 @value{GDBN} disconnects from the remote stub (@pxref{disconnected
12507 tracing}), pending tracepoints can not be resolved (and downloaded to
12508 the remote stub) while @value{GDBN} is disconnected.
12509
12510 Here are some examples of using the @code{trace} command:
12511
12512 @smallexample
12513 (@value{GDBP}) @b{trace foo.c:121} // a source file and line number
12514
12515 (@value{GDBP}) @b{trace +2} // 2 lines forward
12516
12517 (@value{GDBP}) @b{trace my_function} // first source line of function
12518
12519 (@value{GDBP}) @b{trace *my_function} // EXACT start address of function
12520
12521 (@value{GDBP}) @b{trace *0x2117c4} // an address
12522 @end smallexample
12523
12524 @noindent
12525 You can abbreviate @code{trace} as @code{tr}.
12526
12527 @item trace @var{location} if @var{cond}
12528 Set a tracepoint with condition @var{cond}; evaluate the expression
12529 @var{cond} each time the tracepoint is reached, and collect data only
12530 if the value is nonzero---that is, if @var{cond} evaluates as true.
12531 @xref{Tracepoint Conditions, ,Tracepoint Conditions}, for more
12532 information on tracepoint conditions.
12533
12534 @item ftrace @var{location} [ if @var{cond} ]
12535 @cindex set fast tracepoint
12536 @cindex fast tracepoints, setting
12537 @kindex ftrace
12538 The @code{ftrace} command sets a fast tracepoint. For targets that
12539 support them, fast tracepoints will use a more efficient but possibly
12540 less general technique to trigger data collection, such as a jump
12541 instruction instead of a trap, or some sort of hardware support. It
12542 may not be possible to create a fast tracepoint at the desired
12543 location, in which case the command will exit with an explanatory
12544 message.
12545
12546 @value{GDBN} handles arguments to @code{ftrace} exactly as for
12547 @code{trace}.
12548
12549 On 32-bit x86-architecture systems, fast tracepoints normally need to
12550 be placed at an instruction that is 5 bytes or longer, but can be
12551 placed at 4-byte instructions if the low 64K of memory of the target
12552 program is available to install trampolines. Some Unix-type systems,
12553 such as @sc{gnu}/Linux, exclude low addresses from the program's
12554 address space; but for instance with the Linux kernel it is possible
12555 to let @value{GDBN} use this area by doing a @command{sysctl} command
12556 to set the @code{mmap_min_addr} kernel parameter, as in
12557
12558 @example
12559 sudo sysctl -w vm.mmap_min_addr=32768
12560 @end example
12561
12562 @noindent
12563 which sets the low address to 32K, which leaves plenty of room for
12564 trampolines. The minimum address should be set to a page boundary.
12565
12566 @item strace @var{location} [ if @var{cond} ]
12567 @cindex set static tracepoint
12568 @cindex static tracepoints, setting
12569 @cindex probe static tracepoint marker
12570 @kindex strace
12571 The @code{strace} command sets a static tracepoint. For targets that
12572 support it, setting a static tracepoint probes a static
12573 instrumentation point, or marker, found at @var{location}. It may not
12574 be possible to set a static tracepoint at the desired location, in
12575 which case the command will exit with an explanatory message.
12576
12577 @value{GDBN} handles arguments to @code{strace} exactly as for
12578 @code{trace}, with the addition that the user can also specify
12579 @code{-m @var{marker}} as @var{location}. This probes the marker
12580 identified by the @var{marker} string identifier. This identifier
12581 depends on the static tracepoint backend library your program is
12582 using. You can find all the marker identifiers in the @samp{ID} field
12583 of the @code{info static-tracepoint-markers} command output.
12584 @xref{Listing Static Tracepoint Markers,,Listing Static Tracepoint
12585 Markers}. For example, in the following small program using the UST
12586 tracing engine:
12587
12588 @smallexample
12589 main ()
12590 @{
12591 trace_mark(ust, bar33, "str %s", "FOOBAZ");
12592 @}
12593 @end smallexample
12594
12595 @noindent
12596 the marker id is composed of joining the first two arguments to the
12597 @code{trace_mark} call with a slash, which translates to:
12598
12599 @smallexample
12600 (@value{GDBP}) info static-tracepoint-markers
12601 Cnt Enb ID Address What
12602 1 n ust/bar33 0x0000000000400ddc in main at stexample.c:22
12603 Data: "str %s"
12604 [etc...]
12605 @end smallexample
12606
12607 @noindent
12608 so you may probe the marker above with:
12609
12610 @smallexample
12611 (@value{GDBP}) strace -m ust/bar33
12612 @end smallexample
12613
12614 Static tracepoints accept an extra collect action --- @code{collect
12615 $_sdata}. This collects arbitrary user data passed in the probe point
12616 call to the tracing library. In the UST example above, you'll see
12617 that the third argument to @code{trace_mark} is a printf-like format
12618 string. The user data is then the result of running that formating
12619 string against the following arguments. Note that @code{info
12620 static-tracepoint-markers} command output lists that format string in
12621 the @samp{Data:} field.
12622
12623 You can inspect this data when analyzing the trace buffer, by printing
12624 the $_sdata variable like any other variable available to
12625 @value{GDBN}. @xref{Tracepoint Actions,,Tracepoint Action Lists}.
12626
12627 @vindex $tpnum
12628 @cindex last tracepoint number
12629 @cindex recent tracepoint number
12630 @cindex tracepoint number
12631 The convenience variable @code{$tpnum} records the tracepoint number
12632 of the most recently set tracepoint.
12633
12634 @kindex delete tracepoint
12635 @cindex tracepoint deletion
12636 @item delete tracepoint @r{[}@var{num}@r{]}
12637 Permanently delete one or more tracepoints. With no argument, the
12638 default is to delete all tracepoints. Note that the regular
12639 @code{delete} command can remove tracepoints also.
12640
12641 Examples:
12642
12643 @smallexample
12644 (@value{GDBP}) @b{delete trace 1 2 3} // remove three tracepoints
12645
12646 (@value{GDBP}) @b{delete trace} // remove all tracepoints
12647 @end smallexample
12648
12649 @noindent
12650 You can abbreviate this command as @code{del tr}.
12651 @end table
12652
12653 @node Enable and Disable Tracepoints
12654 @subsection Enable and Disable Tracepoints
12655
12656 These commands are deprecated; they are equivalent to plain @code{disable} and @code{enable}.
12657
12658 @table @code
12659 @kindex disable tracepoint
12660 @item disable tracepoint @r{[}@var{num}@r{]}
12661 Disable tracepoint @var{num}, or all tracepoints if no argument
12662 @var{num} is given. A disabled tracepoint will have no effect during
12663 a trace experiment, but it is not forgotten. You can re-enable
12664 a disabled tracepoint using the @code{enable tracepoint} command.
12665 If the command is issued during a trace experiment and the debug target
12666 has support for disabling tracepoints during a trace experiment, then the
12667 change will be effective immediately. Otherwise, it will be applied to the
12668 next trace experiment.
12669
12670 @kindex enable tracepoint
12671 @item enable tracepoint @r{[}@var{num}@r{]}
12672 Enable tracepoint @var{num}, or all tracepoints. If this command is
12673 issued during a trace experiment and the debug target supports enabling
12674 tracepoints during a trace experiment, then the enabled tracepoints will
12675 become effective immediately. Otherwise, they will become effective the
12676 next time a trace experiment is run.
12677 @end table
12678
12679 @node Tracepoint Passcounts
12680 @subsection Tracepoint Passcounts
12681
12682 @table @code
12683 @kindex passcount
12684 @cindex tracepoint pass count
12685 @item passcount @r{[}@var{n} @r{[}@var{num}@r{]]}
12686 Set the @dfn{passcount} of a tracepoint. The passcount is a way to
12687 automatically stop a trace experiment. If a tracepoint's passcount is
12688 @var{n}, then the trace experiment will be automatically stopped on
12689 the @var{n}'th time that tracepoint is hit. If the tracepoint number
12690 @var{num} is not specified, the @code{passcount} command sets the
12691 passcount of the most recently defined tracepoint. If no passcount is
12692 given, the trace experiment will run until stopped explicitly by the
12693 user.
12694
12695 Examples:
12696
12697 @smallexample
12698 (@value{GDBP}) @b{passcount 5 2} // Stop on the 5th execution of
12699 @exdent @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @code{// tracepoint 2}
12700
12701 (@value{GDBP}) @b{passcount 12} // Stop on the 12th execution of the
12702 @exdent @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @code{// most recently defined tracepoint.}
12703 (@value{GDBP}) @b{trace foo}
12704 (@value{GDBP}) @b{pass 3}
12705 (@value{GDBP}) @b{trace bar}
12706 (@value{GDBP}) @b{pass 2}
12707 (@value{GDBP}) @b{trace baz}
12708 (@value{GDBP}) @b{pass 1} // Stop tracing when foo has been
12709 @exdent @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @code{// executed 3 times OR when bar has}
12710 @exdent @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @code{// been executed 2 times}
12711 @exdent @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @ @code{// OR when baz has been executed 1 time.}
12712 @end smallexample
12713 @end table
12714
12715 @node Tracepoint Conditions
12716 @subsection Tracepoint Conditions
12717 @cindex conditional tracepoints
12718 @cindex tracepoint conditions
12719
12720 The simplest sort of tracepoint collects data every time your program
12721 reaches a specified place. You can also specify a @dfn{condition} for
12722 a tracepoint. A condition is just a Boolean expression in your
12723 programming language (@pxref{Expressions, ,Expressions}). A
12724 tracepoint with a condition evaluates the expression each time your
12725 program reaches it, and data collection happens only if the condition
12726 is true.
12727
12728 Tracepoint conditions can be specified when a tracepoint is set, by
12729 using @samp{if} in the arguments to the @code{trace} command.
12730 @xref{Create and Delete Tracepoints, ,Setting Tracepoints}. They can
12731 also be set or changed at any time with the @code{condition} command,
12732 just as with breakpoints.
12733
12734 Unlike breakpoint conditions, @value{GDBN} does not actually evaluate
12735 the conditional expression itself. Instead, @value{GDBN} encodes the
12736 expression into an agent expression (@pxref{Agent Expressions})
12737 suitable for execution on the target, independently of @value{GDBN}.
12738 Global variables become raw memory locations, locals become stack
12739 accesses, and so forth.
12740
12741 For instance, suppose you have a function that is usually called
12742 frequently, but should not be called after an error has occurred. You
12743 could use the following tracepoint command to collect data about calls
12744 of that function that happen while the error code is propagating
12745 through the program; an unconditional tracepoint could end up
12746 collecting thousands of useless trace frames that you would have to
12747 search through.
12748
12749 @smallexample
12750 (@value{GDBP}) @kbd{trace normal_operation if errcode > 0}
12751 @end smallexample
12752
12753 @node Trace State Variables
12754 @subsection Trace State Variables
12755 @cindex trace state variables
12756
12757 A @dfn{trace state variable} is a special type of variable that is
12758 created and managed by target-side code. The syntax is the same as
12759 that for GDB's convenience variables (a string prefixed with ``$''),
12760 but they are stored on the target. They must be created explicitly,
12761 using a @code{tvariable} command. They are always 64-bit signed
12762 integers.
12763
12764 Trace state variables are remembered by @value{GDBN}, and downloaded
12765 to the target along with tracepoint information when the trace
12766 experiment starts. There are no intrinsic limits on the number of
12767 trace state variables, beyond memory limitations of the target.
12768
12769 @cindex convenience variables, and trace state variables
12770 Although trace state variables are managed by the target, you can use
12771 them in print commands and expressions as if they were convenience
12772 variables; @value{GDBN} will get the current value from the target
12773 while the trace experiment is running. Trace state variables share
12774 the same namespace as other ``$'' variables, which means that you
12775 cannot have trace state variables with names like @code{$23} or
12776 @code{$pc}, nor can you have a trace state variable and a convenience
12777 variable with the same name.
12778
12779 @table @code
12780
12781 @item tvariable $@var{name} [ = @var{expression} ]
12782 @kindex tvariable
12783 The @code{tvariable} command creates a new trace state variable named
12784 @code{$@var{name}}, and optionally gives it an initial value of
12785 @var{expression}. The @var{expression} is evaluated when this command is
12786 entered; the result will be converted to an integer if possible,
12787 otherwise @value{GDBN} will report an error. A subsequent
12788 @code{tvariable} command specifying the same name does not create a
12789 variable, but instead assigns the supplied initial value to the
12790 existing variable of that name, overwriting any previous initial
12791 value. The default initial value is 0.
12792
12793 @item info tvariables
12794 @kindex info tvariables
12795 List all the trace state variables along with their initial values.
12796 Their current values may also be displayed, if the trace experiment is
12797 currently running.
12798
12799 @item delete tvariable @r{[} $@var{name} @dots{} @r{]}
12800 @kindex delete tvariable
12801 Delete the given trace state variables, or all of them if no arguments
12802 are specified.
12803
12804 @end table
12805
12806 @node Tracepoint Actions
12807 @subsection Tracepoint Action Lists
12808
12809 @table @code
12810 @kindex actions
12811 @cindex tracepoint actions
12812 @item actions @r{[}@var{num}@r{]}
12813 This command will prompt for a list of actions to be taken when the
12814 tracepoint is hit. If the tracepoint number @var{num} is not
12815 specified, this command sets the actions for the one that was most
12816 recently defined (so that you can define a tracepoint and then say
12817 @code{actions} without bothering about its number). You specify the
12818 actions themselves on the following lines, one action at a time, and
12819 terminate the actions list with a line containing just @code{end}. So
12820 far, the only defined actions are @code{collect}, @code{teval}, and
12821 @code{while-stepping}.
12822
12823 @code{actions} is actually equivalent to @code{commands} (@pxref{Break
12824 Commands, ,Breakpoint Command Lists}), except that only the defined
12825 actions are allowed; any other @value{GDBN} command is rejected.
12826
12827 @cindex remove actions from a tracepoint
12828 To remove all actions from a tracepoint, type @samp{actions @var{num}}
12829 and follow it immediately with @samp{end}.
12830
12831 @smallexample
12832 (@value{GDBP}) @b{collect @var{data}} // collect some data
12833
12834 (@value{GDBP}) @b{while-stepping 5} // single-step 5 times, collect data
12835
12836 (@value{GDBP}) @b{end} // signals the end of actions.
12837 @end smallexample
12838
12839 In the following example, the action list begins with @code{collect}
12840 commands indicating the things to be collected when the tracepoint is
12841 hit. Then, in order to single-step and collect additional data
12842 following the tracepoint, a @code{while-stepping} command is used,
12843 followed by the list of things to be collected after each step in a
12844 sequence of single steps. The @code{while-stepping} command is
12845 terminated by its own separate @code{end} command. Lastly, the action
12846 list is terminated by an @code{end} command.
12847
12848 @smallexample
12849 (@value{GDBP}) @b{trace foo}
12850 (@value{GDBP}) @b{actions}
12851 Enter actions for tracepoint 1, one per line:
12852 > collect bar,baz
12853 > collect $regs
12854 > while-stepping 12
12855 > collect $pc, arr[i]
12856 > end
12857 end
12858 @end smallexample
12859
12860 @kindex collect @r{(tracepoints)}
12861 @item collect@r{[}/@var{mods}@r{]} @var{expr1}, @var{expr2}, @dots{}
12862 Collect values of the given expressions when the tracepoint is hit.
12863 This command accepts a comma-separated list of any valid expressions.
12864 In addition to global, static, or local variables, the following
12865 special arguments are supported:
12866
12867 @table @code
12868 @item $regs
12869 Collect all registers.
12870
12871 @item $args
12872 Collect all function arguments.
12873
12874 @item $locals
12875 Collect all local variables.
12876
12877 @item $_ret
12878 Collect the return address. This is helpful if you want to see more
12879 of a backtrace.
12880
12881 @emph{Note:} The return address location can not always be reliably
12882 determined up front, and the wrong address / registers may end up
12883 collected instead. On some architectures the reliability is higher
12884 for tracepoints at function entry, while on others it's the opposite.
12885 When this happens, backtracing will stop because the return address is
12886 found unavailable (unless another collect rule happened to match it).
12887
12888 @item $_probe_argc
12889 Collects the number of arguments from the static probe at which the
12890 tracepoint is located.
12891 @xref{Static Probe Points}.
12892
12893 @item $_probe_arg@var{n}
12894 @var{n} is an integer between 0 and 11. Collects the @var{n}th argument
12895 from the static probe at which the tracepoint is located.
12896 @xref{Static Probe Points}.
12897
12898 @item $_sdata
12899 @vindex $_sdata@r{, collect}
12900 Collect static tracepoint marker specific data. Only available for
12901 static tracepoints. @xref{Tracepoint Actions,,Tracepoint Action
12902 Lists}. On the UST static tracepoints library backend, an
12903 instrumentation point resembles a @code{printf} function call. The
12904 tracing library is able to collect user specified data formatted to a
12905 character string using the format provided by the programmer that
12906 instrumented the program. Other backends have similar mechanisms.
12907 Here's an example of a UST marker call:
12908
12909 @smallexample
12910 const char master_name[] = "$your_name";
12911 trace_mark(channel1, marker1, "hello %s", master_name)
12912 @end smallexample
12913
12914 In this case, collecting @code{$_sdata} collects the string
12915 @samp{hello $yourname}. When analyzing the trace buffer, you can
12916 inspect @samp{$_sdata} like any other variable available to
12917 @value{GDBN}.
12918 @end table
12919
12920 You can give several consecutive @code{collect} commands, each one
12921 with a single argument, or one @code{collect} command with several
12922 arguments separated by commas; the effect is the same.
12923
12924 The optional @var{mods} changes the usual handling of the arguments.
12925 @code{s} requests that pointers to chars be handled as strings, in
12926 particular collecting the contents of the memory being pointed at, up
12927 to the first zero. The upper bound is by default the value of the
12928 @code{print elements} variable; if @code{s} is followed by a decimal
12929 number, that is the upper bound instead. So for instance
12930 @samp{collect/s25 mystr} collects as many as 25 characters at
12931 @samp{mystr}.
12932
12933 The command @code{info scope} (@pxref{Symbols, info scope}) is
12934 particularly useful for figuring out what data to collect.
12935
12936 @kindex teval @r{(tracepoints)}
12937 @item teval @var{expr1}, @var{expr2}, @dots{}
12938 Evaluate the given expressions when the tracepoint is hit. This
12939 command accepts a comma-separated list of expressions. The results
12940 are discarded, so this is mainly useful for assigning values to trace
12941 state variables (@pxref{Trace State Variables}) without adding those
12942 values to the trace buffer, as would be the case if the @code{collect}
12943 action were used.
12944
12945 @kindex while-stepping @r{(tracepoints)}
12946 @item while-stepping @var{n}
12947 Perform @var{n} single-step instruction traces after the tracepoint,
12948 collecting new data after each step. The @code{while-stepping}
12949 command is followed by the list of what to collect while stepping
12950 (followed by its own @code{end} command):
12951
12952 @smallexample
12953 > while-stepping 12
12954 > collect $regs, myglobal
12955 > end
12956 >
12957 @end smallexample
12958
12959 @noindent
12960 Note that @code{$pc} is not automatically collected by
12961 @code{while-stepping}; you need to explicitly collect that register if
12962 you need it. You may abbreviate @code{while-stepping} as @code{ws} or
12963 @code{stepping}.
12964
12965 @item set default-collect @var{expr1}, @var{expr2}, @dots{}
12966 @kindex set default-collect
12967 @cindex default collection action
12968 This variable is a list of expressions to collect at each tracepoint
12969 hit. It is effectively an additional @code{collect} action prepended
12970 to every tracepoint action list. The expressions are parsed
12971 individually for each tracepoint, so for instance a variable named
12972 @code{xyz} may be interpreted as a global for one tracepoint, and a
12973 local for another, as appropriate to the tracepoint's location.
12974
12975 @item show default-collect
12976 @kindex show default-collect
12977 Show the list of expressions that are collected by default at each
12978 tracepoint hit.
12979
12980 @end table
12981
12982 @node Listing Tracepoints
12983 @subsection Listing Tracepoints
12984
12985 @table @code
12986 @kindex info tracepoints @r{[}@var{n}@dots{}@r{]}
12987 @kindex info tp @r{[}@var{n}@dots{}@r{]}
12988 @cindex information about tracepoints
12989 @item info tracepoints @r{[}@var{num}@dots{}@r{]}
12990 Display information about the tracepoint @var{num}. If you don't
12991 specify a tracepoint number, displays information about all the
12992 tracepoints defined so far. The format is similar to that used for
12993 @code{info breakpoints}; in fact, @code{info tracepoints} is the same
12994 command, simply restricting itself to tracepoints.
12995
12996 A tracepoint's listing may include additional information specific to
12997 tracing:
12998
12999 @itemize @bullet
13000 @item
13001 its passcount as given by the @code{passcount @var{n}} command
13002
13003 @item
13004 the state about installed on target of each location
13005 @end itemize
13006
13007 @smallexample
13008 (@value{GDBP}) @b{info trace}
13009 Num Type Disp Enb Address What
13010 1 tracepoint keep y 0x0804ab57 in foo() at main.cxx:7
13011 while-stepping 20
13012 collect globfoo, $regs
13013 end
13014 collect globfoo2
13015 end
13016 pass count 1200
13017 2 tracepoint keep y <MULTIPLE>
13018 collect $eip
13019 2.1 y 0x0804859c in func4 at change-loc.h:35
13020 installed on target
13021 2.2 y 0xb7ffc480 in func4 at change-loc.h:35
13022 installed on target
13023 2.3 y <PENDING> set_tracepoint
13024 3 tracepoint keep y 0x080485b1 in foo at change-loc.c:29
13025 not installed on target
13026 (@value{GDBP})
13027 @end smallexample
13028
13029 @noindent
13030 This command can be abbreviated @code{info tp}.
13031 @end table
13032
13033 @node Listing Static Tracepoint Markers
13034 @subsection Listing Static Tracepoint Markers
13035
13036 @table @code
13037 @kindex info static-tracepoint-markers
13038 @cindex information about static tracepoint markers
13039 @item info static-tracepoint-markers
13040 Display information about all static tracepoint markers defined in the
13041 program.
13042
13043 For each marker, the following columns are printed:
13044
13045 @table @emph
13046 @item Count
13047 An incrementing counter, output to help readability. This is not a
13048 stable identifier.
13049 @item ID
13050 The marker ID, as reported by the target.
13051 @item Enabled or Disabled
13052 Probed markers are tagged with @samp{y}. @samp{n} identifies marks
13053 that are not enabled.
13054 @item Address
13055 Where the marker is in your program, as a memory address.
13056 @item What
13057 Where the marker is in the source for your program, as a file and line
13058 number. If the debug information included in the program does not
13059 allow @value{GDBN} to locate the source of the marker, this column
13060 will be left blank.
13061 @end table
13062
13063 @noindent
13064 In addition, the following information may be printed for each marker:
13065
13066 @table @emph
13067 @item Data
13068 User data passed to the tracing library by the marker call. In the
13069 UST backend, this is the format string passed as argument to the
13070 marker call.
13071 @item Static tracepoints probing the marker
13072 The list of static tracepoints attached to the marker.
13073 @end table
13074
13075 @smallexample
13076 (@value{GDBP}) info static-tracepoint-markers
13077 Cnt ID Enb Address What
13078 1 ust/bar2 y 0x0000000000400e1a in main at stexample.c:25
13079 Data: number1 %d number2 %d
13080 Probed by static tracepoints: #2
13081 2 ust/bar33 n 0x0000000000400c87 in main at stexample.c:24
13082 Data: str %s
13083 (@value{GDBP})
13084 @end smallexample
13085 @end table
13086
13087 @node Starting and Stopping Trace Experiments
13088 @subsection Starting and Stopping Trace Experiments
13089
13090 @table @code
13091 @kindex tstart [ @var{notes} ]
13092 @cindex start a new trace experiment
13093 @cindex collected data discarded
13094 @item tstart
13095 This command starts the trace experiment, and begins collecting data.
13096 It has the side effect of discarding all the data collected in the
13097 trace buffer during the previous trace experiment. If any arguments
13098 are supplied, they are taken as a note and stored with the trace
13099 experiment's state. The notes may be arbitrary text, and are
13100 especially useful with disconnected tracing in a multi-user context;
13101 the notes can explain what the trace is doing, supply user contact
13102 information, and so forth.
13103
13104 @kindex tstop [ @var{notes} ]
13105 @cindex stop a running trace experiment
13106 @item tstop
13107 This command stops the trace experiment. If any arguments are
13108 supplied, they are recorded with the experiment as a note. This is
13109 useful if you are stopping a trace started by someone else, for
13110 instance if the trace is interfering with the system's behavior and
13111 needs to be stopped quickly.
13112
13113 @strong{Note}: a trace experiment and data collection may stop
13114 automatically if any tracepoint's passcount is reached
13115 (@pxref{Tracepoint Passcounts}), or if the trace buffer becomes full.
13116
13117 @kindex tstatus
13118 @cindex status of trace data collection
13119 @cindex trace experiment, status of
13120 @item tstatus
13121 This command displays the status of the current trace data
13122 collection.
13123 @end table
13124
13125 Here is an example of the commands we described so far:
13126
13127 @smallexample
13128 (@value{GDBP}) @b{trace gdb_c_test}
13129 (@value{GDBP}) @b{actions}
13130 Enter actions for tracepoint #1, one per line.
13131 > collect $regs,$locals,$args
13132 > while-stepping 11
13133 > collect $regs
13134 > end
13135 > end
13136 (@value{GDBP}) @b{tstart}
13137 [time passes @dots{}]
13138 (@value{GDBP}) @b{tstop}
13139 @end smallexample
13140
13141 @anchor{disconnected tracing}
13142 @cindex disconnected tracing
13143 You can choose to continue running the trace experiment even if
13144 @value{GDBN} disconnects from the target, voluntarily or
13145 involuntarily. For commands such as @code{detach}, the debugger will
13146 ask what you want to do with the trace. But for unexpected
13147 terminations (@value{GDBN} crash, network outage), it would be
13148 unfortunate to lose hard-won trace data, so the variable
13149 @code{disconnected-tracing} lets you decide whether the trace should
13150 continue running without @value{GDBN}.
13151
13152 @table @code
13153 @item set disconnected-tracing on
13154 @itemx set disconnected-tracing off
13155 @kindex set disconnected-tracing
13156 Choose whether a tracing run should continue to run if @value{GDBN}
13157 has disconnected from the target. Note that @code{detach} or
13158 @code{quit} will ask you directly what to do about a running trace no
13159 matter what this variable's setting, so the variable is mainly useful
13160 for handling unexpected situations, such as loss of the network.
13161
13162 @item show disconnected-tracing
13163 @kindex show disconnected-tracing
13164 Show the current choice for disconnected tracing.
13165
13166 @end table
13167
13168 When you reconnect to the target, the trace experiment may or may not
13169 still be running; it might have filled the trace buffer in the
13170 meantime, or stopped for one of the other reasons. If it is running,
13171 it will continue after reconnection.
13172
13173 Upon reconnection, the target will upload information about the
13174 tracepoints in effect. @value{GDBN} will then compare that
13175 information to the set of tracepoints currently defined, and attempt
13176 to match them up, allowing for the possibility that the numbers may
13177 have changed due to creation and deletion in the meantime. If one of
13178 the target's tracepoints does not match any in @value{GDBN}, the
13179 debugger will create a new tracepoint, so that you have a number with
13180 which to specify that tracepoint. This matching-up process is
13181 necessarily heuristic, and it may result in useless tracepoints being
13182 created; you may simply delete them if they are of no use.
13183
13184 @cindex circular trace buffer
13185 If your target agent supports a @dfn{circular trace buffer}, then you
13186 can run a trace experiment indefinitely without filling the trace
13187 buffer; when space runs out, the agent deletes already-collected trace
13188 frames, oldest first, until there is enough room to continue
13189 collecting. This is especially useful if your tracepoints are being
13190 hit too often, and your trace gets terminated prematurely because the
13191 buffer is full. To ask for a circular trace buffer, simply set
13192 @samp{circular-trace-buffer} to on. You can set this at any time,
13193 including during tracing; if the agent can do it, it will change
13194 buffer handling on the fly, otherwise it will not take effect until
13195 the next run.
13196
13197 @table @code
13198 @item set circular-trace-buffer on
13199 @itemx set circular-trace-buffer off
13200 @kindex set circular-trace-buffer
13201 Choose whether a tracing run should use a linear or circular buffer
13202 for trace data. A linear buffer will not lose any trace data, but may
13203 fill up prematurely, while a circular buffer will discard old trace
13204 data, but it will have always room for the latest tracepoint hits.
13205
13206 @item show circular-trace-buffer
13207 @kindex show circular-trace-buffer
13208 Show the current choice for the trace buffer. Note that this may not
13209 match the agent's current buffer handling, nor is it guaranteed to
13210 match the setting that might have been in effect during a past run,
13211 for instance if you are looking at frames from a trace file.
13212
13213 @end table
13214
13215 @table @code
13216 @item set trace-buffer-size @var{n}
13217 @itemx set trace-buffer-size unlimited
13218 @kindex set trace-buffer-size
13219 Request that the target use a trace buffer of @var{n} bytes. Not all
13220 targets will honor the request; they may have a compiled-in size for
13221 the trace buffer, or some other limitation. Set to a value of
13222 @code{unlimited} or @code{-1} to let the target use whatever size it
13223 likes. This is also the default.
13224
13225 @item show trace-buffer-size
13226 @kindex show trace-buffer-size
13227 Show the current requested size for the trace buffer. Note that this
13228 will only match the actual size if the target supports size-setting,
13229 and was able to handle the requested size. For instance, if the
13230 target can only change buffer size between runs, this variable will
13231 not reflect the change until the next run starts. Use @code{tstatus}
13232 to get a report of the actual buffer size.
13233 @end table
13234
13235 @table @code
13236 @item set trace-user @var{text}
13237 @kindex set trace-user
13238
13239 @item show trace-user
13240 @kindex show trace-user
13241
13242 @item set trace-notes @var{text}
13243 @kindex set trace-notes
13244 Set the trace run's notes.
13245
13246 @item show trace-notes
13247 @kindex show trace-notes
13248 Show the trace run's notes.
13249
13250 @item set trace-stop-notes @var{text}
13251 @kindex set trace-stop-notes
13252 Set the trace run's stop notes. The handling of the note is as for
13253 @code{tstop} arguments; the set command is convenient way to fix a
13254 stop note that is mistaken or incomplete.
13255
13256 @item show trace-stop-notes
13257 @kindex show trace-stop-notes
13258 Show the trace run's stop notes.
13259
13260 @end table
13261
13262 @node Tracepoint Restrictions
13263 @subsection Tracepoint Restrictions
13264
13265 @cindex tracepoint restrictions
13266 There are a number of restrictions on the use of tracepoints. As
13267 described above, tracepoint data gathering occurs on the target
13268 without interaction from @value{GDBN}. Thus the full capabilities of
13269 the debugger are not available during data gathering, and then at data
13270 examination time, you will be limited by only having what was
13271 collected. The following items describe some common problems, but it
13272 is not exhaustive, and you may run into additional difficulties not
13273 mentioned here.
13274
13275 @itemize @bullet
13276
13277 @item
13278 Tracepoint expressions are intended to gather objects (lvalues). Thus
13279 the full flexibility of GDB's expression evaluator is not available.
13280 You cannot call functions, cast objects to aggregate types, access
13281 convenience variables or modify values (except by assignment to trace
13282 state variables). Some language features may implicitly call
13283 functions (for instance Objective-C fields with accessors), and therefore
13284 cannot be collected either.
13285
13286 @item
13287 Collection of local variables, either individually or in bulk with
13288 @code{$locals} or @code{$args}, during @code{while-stepping} may
13289 behave erratically. The stepping action may enter a new scope (for
13290 instance by stepping into a function), or the location of the variable
13291 may change (for instance it is loaded into a register). The
13292 tracepoint data recorded uses the location information for the
13293 variables that is correct for the tracepoint location. When the
13294 tracepoint is created, it is not possible, in general, to determine
13295 where the steps of a @code{while-stepping} sequence will advance the
13296 program---particularly if a conditional branch is stepped.
13297
13298 @item
13299 Collection of an incompletely-initialized or partially-destroyed object
13300 may result in something that @value{GDBN} cannot display, or displays
13301 in a misleading way.
13302
13303 @item
13304 When @value{GDBN} displays a pointer to character it automatically
13305 dereferences the pointer to also display characters of the string
13306 being pointed to. However, collecting the pointer during tracing does
13307 not automatically collect the string. You need to explicitly
13308 dereference the pointer and provide size information if you want to
13309 collect not only the pointer, but the memory pointed to. For example,
13310 @code{*ptr@@50} can be used to collect the 50 element array pointed to
13311 by @code{ptr}.
13312
13313 @item
13314 It is not possible to collect a complete stack backtrace at a
13315 tracepoint. Instead, you may collect the registers and a few hundred
13316 bytes from the stack pointer with something like @code{*(unsigned char *)$esp@@300}
13317 (adjust to use the name of the actual stack pointer register on your
13318 target architecture, and the amount of stack you wish to capture).
13319 Then the @code{backtrace} command will show a partial backtrace when
13320 using a trace frame. The number of stack frames that can be examined
13321 depends on the sizes of the frames in the collected stack. Note that
13322 if you ask for a block so large that it goes past the bottom of the
13323 stack, the target agent may report an error trying to read from an
13324 invalid address.
13325
13326 @item
13327 If you do not collect registers at a tracepoint, @value{GDBN} can
13328 infer that the value of @code{$pc} must be the same as the address of
13329 the tracepoint and use that when you are looking at a trace frame
13330 for that tracepoint. However, this cannot work if the tracepoint has
13331 multiple locations (for instance if it was set in a function that was
13332 inlined), or if it has a @code{while-stepping} loop. In those cases
13333 @value{GDBN} will warn you that it can't infer @code{$pc}, and default
13334 it to zero.
13335
13336 @end itemize
13337
13338 @node Analyze Collected Data
13339 @section Using the Collected Data
13340
13341 After the tracepoint experiment ends, you use @value{GDBN} commands
13342 for examining the trace data. The basic idea is that each tracepoint
13343 collects a trace @dfn{snapshot} every time it is hit and another
13344 snapshot every time it single-steps. All these snapshots are
13345 consecutively numbered from zero and go into a buffer, and you can
13346 examine them later. The way you examine them is to @dfn{focus} on a
13347 specific trace snapshot. When the remote stub is focused on a trace
13348 snapshot, it will respond to all @value{GDBN} requests for memory and
13349 registers by reading from the buffer which belongs to that snapshot,
13350 rather than from @emph{real} memory or registers of the program being
13351 debugged. This means that @strong{all} @value{GDBN} commands
13352 (@code{print}, @code{info registers}, @code{backtrace}, etc.) will
13353 behave as if we were currently debugging the program state as it was
13354 when the tracepoint occurred. Any requests for data that are not in
13355 the buffer will fail.
13356
13357 @menu
13358 * tfind:: How to select a trace snapshot
13359 * tdump:: How to display all data for a snapshot
13360 * save tracepoints:: How to save tracepoints for a future run
13361 @end menu
13362
13363 @node tfind
13364 @subsection @code{tfind @var{n}}
13365
13366 @kindex tfind
13367 @cindex select trace snapshot
13368 @cindex find trace snapshot
13369 The basic command for selecting a trace snapshot from the buffer is
13370 @code{tfind @var{n}}, which finds trace snapshot number @var{n},
13371 counting from zero. If no argument @var{n} is given, the next
13372 snapshot is selected.
13373
13374 Here are the various forms of using the @code{tfind} command.
13375
13376 @table @code
13377 @item tfind start
13378 Find the first snapshot in the buffer. This is a synonym for
13379 @code{tfind 0} (since 0 is the number of the first snapshot).
13380
13381 @item tfind none
13382 Stop debugging trace snapshots, resume @emph{live} debugging.
13383
13384 @item tfind end
13385 Same as @samp{tfind none}.
13386
13387 @item tfind
13388 No argument means find the next trace snapshot.
13389
13390 @item tfind -
13391 Find the previous trace snapshot before the current one. This permits
13392 retracing earlier steps.
13393
13394 @item tfind tracepoint @var{num}
13395 Find the next snapshot associated with tracepoint @var{num}. Search
13396 proceeds forward from the last examined trace snapshot. If no
13397 argument @var{num} is given, it means find the next snapshot collected
13398 for the same tracepoint as the current snapshot.
13399
13400 @item tfind pc @var{addr}
13401 Find the next snapshot associated with the value @var{addr} of the
13402 program counter. Search proceeds forward from the last examined trace
13403 snapshot. If no argument @var{addr} is given, it means find the next
13404 snapshot with the same value of PC as the current snapshot.
13405
13406 @item tfind outside @var{addr1}, @var{addr2}
13407 Find the next snapshot whose PC is outside the given range of
13408 addresses (exclusive).
13409
13410 @item tfind range @var{addr1}, @var{addr2}
13411 Find the next snapshot whose PC is between @var{addr1} and
13412 @var{addr2} (inclusive).
13413
13414 @item tfind line @r{[}@var{file}:@r{]}@var{n}
13415 Find the next snapshot associated with the source line @var{n}. If
13416 the optional argument @var{file} is given, refer to line @var{n} in
13417 that source file. Search proceeds forward from the last examined
13418 trace snapshot. If no argument @var{n} is given, it means find the
13419 next line other than the one currently being examined; thus saying
13420 @code{tfind line} repeatedly can appear to have the same effect as
13421 stepping from line to line in a @emph{live} debugging session.
13422 @end table
13423
13424 The default arguments for the @code{tfind} commands are specifically
13425 designed to make it easy to scan through the trace buffer. For
13426 instance, @code{tfind} with no argument selects the next trace
13427 snapshot, and @code{tfind -} with no argument selects the previous
13428 trace snapshot. So, by giving one @code{tfind} command, and then
13429 simply hitting @key{RET} repeatedly you can examine all the trace
13430 snapshots in order. Or, by saying @code{tfind -} and then hitting
13431 @key{RET} repeatedly you can examine the snapshots in reverse order.
13432 The @code{tfind line} command with no argument selects the snapshot
13433 for the next source line executed. The @code{tfind pc} command with
13434 no argument selects the next snapshot with the same program counter
13435 (PC) as the current frame. The @code{tfind tracepoint} command with
13436 no argument selects the next trace snapshot collected by the same
13437 tracepoint as the current one.
13438
13439 In addition to letting you scan through the trace buffer manually,
13440 these commands make it easy to construct @value{GDBN} scripts that
13441 scan through the trace buffer and print out whatever collected data
13442 you are interested in. Thus, if we want to examine the PC, FP, and SP
13443 registers from each trace frame in the buffer, we can say this:
13444
13445 @smallexample
13446 (@value{GDBP}) @b{tfind start}
13447 (@value{GDBP}) @b{while ($trace_frame != -1)}
13448 > printf "Frame %d, PC = %08X, SP = %08X, FP = %08X\n", \
13449 $trace_frame, $pc, $sp, $fp
13450 > tfind
13451 > end
13452
13453 Frame 0, PC = 0020DC64, SP = 0030BF3C, FP = 0030BF44
13454 Frame 1, PC = 0020DC6C, SP = 0030BF38, FP = 0030BF44
13455 Frame 2, PC = 0020DC70, SP = 0030BF34, FP = 0030BF44
13456 Frame 3, PC = 0020DC74, SP = 0030BF30, FP = 0030BF44
13457 Frame 4, PC = 0020DC78, SP = 0030BF2C, FP = 0030BF44
13458 Frame 5, PC = 0020DC7C, SP = 0030BF28, FP = 0030BF44
13459 Frame 6, PC = 0020DC80, SP = 0030BF24, FP = 0030BF44
13460 Frame 7, PC = 0020DC84, SP = 0030BF20, FP = 0030BF44
13461 Frame 8, PC = 0020DC88, SP = 0030BF1C, FP = 0030BF44
13462 Frame 9, PC = 0020DC8E, SP = 0030BF18, FP = 0030BF44
13463 Frame 10, PC = 00203F6C, SP = 0030BE3C, FP = 0030BF14
13464 @end smallexample
13465
13466 Or, if we want to examine the variable @code{X} at each source line in
13467 the buffer:
13468
13469 @smallexample
13470 (@value{GDBP}) @b{tfind start}
13471 (@value{GDBP}) @b{while ($trace_frame != -1)}
13472 > printf "Frame %d, X == %d\n", $trace_frame, X
13473 > tfind line
13474 > end
13475
13476 Frame 0, X = 1
13477 Frame 7, X = 2
13478 Frame 13, X = 255
13479 @end smallexample
13480
13481 @node tdump
13482 @subsection @code{tdump}
13483 @kindex tdump
13484 @cindex dump all data collected at tracepoint
13485 @cindex tracepoint data, display
13486
13487 This command takes no arguments. It prints all the data collected at
13488 the current trace snapshot.
13489
13490 @smallexample
13491 (@value{GDBP}) @b{trace 444}
13492 (@value{GDBP}) @b{actions}
13493 Enter actions for tracepoint #2, one per line:
13494 > collect $regs, $locals, $args, gdb_long_test
13495 > end
13496
13497 (@value{GDBP}) @b{tstart}
13498
13499 (@value{GDBP}) @b{tfind line 444}
13500 #0 gdb_test (p1=0x11, p2=0x22, p3=0x33, p4=0x44, p5=0x55, p6=0x66)
13501 at gdb_test.c:444
13502 444 printp( "%s: arguments = 0x%X 0x%X 0x%X 0x%X 0x%X 0x%X\n", )
13503
13504 (@value{GDBP}) @b{tdump}
13505 Data collected at tracepoint 2, trace frame 1:
13506 d0 0xc4aa0085 -995491707
13507 d1 0x18 24
13508 d2 0x80 128
13509 d3 0x33 51
13510 d4 0x71aea3d 119204413
13511 d5 0x22 34
13512 d6 0xe0 224
13513 d7 0x380035 3670069
13514 a0 0x19e24a 1696330
13515 a1 0x3000668 50333288
13516 a2 0x100 256
13517 a3 0x322000 3284992
13518 a4 0x3000698 50333336
13519 a5 0x1ad3cc 1758156
13520 fp 0x30bf3c 0x30bf3c
13521 sp 0x30bf34 0x30bf34
13522 ps 0x0 0
13523 pc 0x20b2c8 0x20b2c8
13524 fpcontrol 0x0 0
13525 fpstatus 0x0 0
13526 fpiaddr 0x0 0
13527 p = 0x20e5b4 "gdb-test"
13528 p1 = (void *) 0x11
13529 p2 = (void *) 0x22
13530 p3 = (void *) 0x33
13531 p4 = (void *) 0x44
13532 p5 = (void *) 0x55
13533 p6 = (void *) 0x66
13534 gdb_long_test = 17 '\021'
13535
13536 (@value{GDBP})
13537 @end smallexample
13538
13539 @code{tdump} works by scanning the tracepoint's current collection
13540 actions and printing the value of each expression listed. So
13541 @code{tdump} can fail, if after a run, you change the tracepoint's
13542 actions to mention variables that were not collected during the run.
13543
13544 Also, for tracepoints with @code{while-stepping} loops, @code{tdump}
13545 uses the collected value of @code{$pc} to distinguish between trace
13546 frames that were collected at the tracepoint hit, and frames that were
13547 collected while stepping. This allows it to correctly choose whether
13548 to display the basic list of collections, or the collections from the
13549 body of the while-stepping loop. However, if @code{$pc} was not collected,
13550 then @code{tdump} will always attempt to dump using the basic collection
13551 list, and may fail if a while-stepping frame does not include all the
13552 same data that is collected at the tracepoint hit.
13553 @c This is getting pretty arcane, example would be good.
13554
13555 @node save tracepoints
13556 @subsection @code{save tracepoints @var{filename}}
13557 @kindex save tracepoints
13558 @kindex save-tracepoints
13559 @cindex save tracepoints for future sessions
13560
13561 This command saves all current tracepoint definitions together with
13562 their actions and passcounts, into a file @file{@var{filename}}
13563 suitable for use in a later debugging session. To read the saved
13564 tracepoint definitions, use the @code{source} command (@pxref{Command
13565 Files}). The @w{@code{save-tracepoints}} command is a deprecated
13566 alias for @w{@code{save tracepoints}}
13567
13568 @node Tracepoint Variables
13569 @section Convenience Variables for Tracepoints
13570 @cindex tracepoint variables
13571 @cindex convenience variables for tracepoints
13572
13573 @table @code
13574 @vindex $trace_frame
13575 @item (int) $trace_frame
13576 The current trace snapshot (a.k.a.@: @dfn{frame}) number, or -1 if no
13577 snapshot is selected.
13578
13579 @vindex $tracepoint
13580 @item (int) $tracepoint
13581 The tracepoint for the current trace snapshot.
13582
13583 @vindex $trace_line
13584 @item (int) $trace_line
13585 The line number for the current trace snapshot.
13586
13587 @vindex $trace_file
13588 @item (char []) $trace_file
13589 The source file for the current trace snapshot.
13590
13591 @vindex $trace_func
13592 @item (char []) $trace_func
13593 The name of the function containing @code{$tracepoint}.
13594 @end table
13595
13596 Note: @code{$trace_file} is not suitable for use in @code{printf},
13597 use @code{output} instead.
13598
13599 Here's a simple example of using these convenience variables for
13600 stepping through all the trace snapshots and printing some of their
13601 data. Note that these are not the same as trace state variables,
13602 which are managed by the target.
13603
13604 @smallexample
13605 (@value{GDBP}) @b{tfind start}
13606
13607 (@value{GDBP}) @b{while $trace_frame != -1}
13608 > output $trace_file
13609 > printf ", line %d (tracepoint #%d)\n", $trace_line, $tracepoint
13610 > tfind
13611 > end
13612 @end smallexample
13613
13614 @node Trace Files
13615 @section Using Trace Files
13616 @cindex trace files
13617
13618 In some situations, the target running a trace experiment may no
13619 longer be available; perhaps it crashed, or the hardware was needed
13620 for a different activity. To handle these cases, you can arrange to
13621 dump the trace data into a file, and later use that file as a source
13622 of trace data, via the @code{target tfile} command.
13623
13624 @table @code
13625
13626 @kindex tsave
13627 @item tsave [ -r ] @var{filename}
13628 @itemx tsave [-ctf] @var{dirname}
13629 Save the trace data to @var{filename}. By default, this command
13630 assumes that @var{filename} refers to the host filesystem, so if
13631 necessary @value{GDBN} will copy raw trace data up from the target and
13632 then save it. If the target supports it, you can also supply the
13633 optional argument @code{-r} (``remote'') to direct the target to save
13634 the data directly into @var{filename} in its own filesystem, which may be
13635 more efficient if the trace buffer is very large. (Note, however, that
13636 @code{target tfile} can only read from files accessible to the host.)
13637 By default, this command will save trace frame in tfile format.
13638 You can supply the optional argument @code{-ctf} to save date in CTF
13639 format. The @dfn{Common Trace Format} (CTF) is proposed as a trace format
13640 that can be shared by multiple debugging and tracing tools. Please go to
13641 @indicateurl{http://www.efficios.com/ctf} to get more information.
13642
13643 @kindex target tfile
13644 @kindex tfile
13645 @kindex target ctf
13646 @kindex ctf
13647 @item target tfile @var{filename}
13648 @itemx target ctf @var{dirname}
13649 Use the file named @var{filename} or directory named @var{dirname} as
13650 a source of trace data. Commands that examine data work as they do with
13651 a live target, but it is not possible to run any new trace experiments.
13652 @code{tstatus} will report the state of the trace run at the moment
13653 the data was saved, as well as the current trace frame you are examining.
13654 Both @var{filename} and @var{dirname} must be on a filesystem accessible to
13655 the host.
13656
13657 @smallexample
13658 (@value{GDBP}) target ctf ctf.ctf
13659 (@value{GDBP}) tfind
13660 Found trace frame 0, tracepoint 2
13661 39 ++a; /* set tracepoint 1 here */
13662 (@value{GDBP}) tdump
13663 Data collected at tracepoint 2, trace frame 0:
13664 i = 0
13665 a = 0
13666 b = 1 '\001'
13667 c = @{"123", "456", "789", "123", "456", "789"@}
13668 d = @{@{@{a = 1, b = 2@}, @{a = 3, b = 4@}@}, @{@{a = 5, b = 6@}, @{a = 7, b = 8@}@}@}
13669 (@value{GDBP}) p b
13670 $1 = 1
13671 @end smallexample
13672
13673 @end table
13674
13675 @node Overlays
13676 @chapter Debugging Programs That Use Overlays
13677 @cindex overlays
13678
13679 If your program is too large to fit completely in your target system's
13680 memory, you can sometimes use @dfn{overlays} to work around this
13681 problem. @value{GDBN} provides some support for debugging programs that
13682 use overlays.
13683
13684 @menu
13685 * How Overlays Work:: A general explanation of overlays.
13686 * Overlay Commands:: Managing overlays in @value{GDBN}.
13687 * Automatic Overlay Debugging:: @value{GDBN} can find out which overlays are
13688 mapped by asking the inferior.
13689 * Overlay Sample Program:: A sample program using overlays.
13690 @end menu
13691
13692 @node How Overlays Work
13693 @section How Overlays Work
13694 @cindex mapped overlays
13695 @cindex unmapped overlays
13696 @cindex load address, overlay's
13697 @cindex mapped address
13698 @cindex overlay area
13699
13700 Suppose you have a computer whose instruction address space is only 64
13701 kilobytes long, but which has much more memory which can be accessed by
13702 other means: special instructions, segment registers, or memory
13703 management hardware, for example. Suppose further that you want to
13704 adapt a program which is larger than 64 kilobytes to run on this system.
13705
13706 One solution is to identify modules of your program which are relatively
13707 independent, and need not call each other directly; call these modules
13708 @dfn{overlays}. Separate the overlays from the main program, and place
13709 their machine code in the larger memory. Place your main program in
13710 instruction memory, but leave at least enough space there to hold the
13711 largest overlay as well.
13712
13713 Now, to call a function located in an overlay, you must first copy that
13714 overlay's machine code from the large memory into the space set aside
13715 for it in the instruction memory, and then jump to its entry point
13716 there.
13717
13718 @c NB: In the below the mapped area's size is greater or equal to the
13719 @c size of all overlays. This is intentional to remind the developer
13720 @c that overlays don't necessarily need to be the same size.
13721
13722 @smallexample
13723 @group
13724 Data Instruction Larger
13725 Address Space Address Space Address Space
13726 +-----------+ +-----------+ +-----------+
13727 | | | | | |
13728 +-----------+ +-----------+ +-----------+<-- overlay 1
13729 | program | | main | .----| overlay 1 | load address
13730 | variables | | program | | +-----------+
13731 | and heap | | | | | |
13732 +-----------+ | | | +-----------+<-- overlay 2
13733 | | +-----------+ | | | load address
13734 +-----------+ | | | .-| overlay 2 |
13735 | | | | | |
13736 mapped --->+-----------+ | | +-----------+
13737 address | | | | | |
13738 | overlay | <-' | | |
13739 | area | <---' +-----------+<-- overlay 3
13740 | | <---. | | load address
13741 +-----------+ `--| overlay 3 |
13742 | | | |
13743 +-----------+ | |
13744 +-----------+
13745 | |
13746 +-----------+
13747
13748 @anchor{A code overlay}A code overlay
13749 @end group
13750 @end smallexample
13751
13752 The diagram (@pxref{A code overlay}) shows a system with separate data
13753 and instruction address spaces. To map an overlay, the program copies
13754 its code from the larger address space to the instruction address space.
13755 Since the overlays shown here all use the same mapped address, only one
13756 may be mapped at a time. For a system with a single address space for
13757 data and instructions, the diagram would be similar, except that the
13758 program variables and heap would share an address space with the main
13759 program and the overlay area.
13760
13761 An overlay loaded into instruction memory and ready for use is called a
13762 @dfn{mapped} overlay; its @dfn{mapped address} is its address in the
13763 instruction memory. An overlay not present (or only partially present)
13764 in instruction memory is called @dfn{unmapped}; its @dfn{load address}
13765 is its address in the larger memory. The mapped address is also called
13766 the @dfn{virtual memory address}, or @dfn{VMA}; the load address is also
13767 called the @dfn{load memory address}, or @dfn{LMA}.
13768
13769 Unfortunately, overlays are not a completely transparent way to adapt a
13770 program to limited instruction memory. They introduce a new set of
13771 global constraints you must keep in mind as you design your program:
13772
13773 @itemize @bullet
13774
13775 @item
13776 Before calling or returning to a function in an overlay, your program
13777 must make sure that overlay is actually mapped. Otherwise, the call or
13778 return will transfer control to the right address, but in the wrong
13779 overlay, and your program will probably crash.
13780
13781 @item
13782 If the process of mapping an overlay is expensive on your system, you
13783 will need to choose your overlays carefully to minimize their effect on
13784 your program's performance.
13785
13786 @item
13787 The executable file you load onto your system must contain each
13788 overlay's instructions, appearing at the overlay's load address, not its
13789 mapped address. However, each overlay's instructions must be relocated
13790 and its symbols defined as if the overlay were at its mapped address.
13791 You can use GNU linker scripts to specify different load and relocation
13792 addresses for pieces of your program; see @ref{Overlay Description,,,
13793 ld.info, Using ld: the GNU linker}.
13794
13795 @item
13796 The procedure for loading executable files onto your system must be able
13797 to load their contents into the larger address space as well as the
13798 instruction and data spaces.
13799
13800 @end itemize
13801
13802 The overlay system described above is rather simple, and could be
13803 improved in many ways:
13804
13805 @itemize @bullet
13806
13807 @item
13808 If your system has suitable bank switch registers or memory management
13809 hardware, you could use those facilities to make an overlay's load area
13810 contents simply appear at their mapped address in instruction space.
13811 This would probably be faster than copying the overlay to its mapped
13812 area in the usual way.
13813
13814 @item
13815 If your overlays are small enough, you could set aside more than one
13816 overlay area, and have more than one overlay mapped at a time.
13817
13818 @item
13819 You can use overlays to manage data, as well as instructions. In
13820 general, data overlays are even less transparent to your design than
13821 code overlays: whereas code overlays only require care when you call or
13822 return to functions, data overlays require care every time you access
13823 the data. Also, if you change the contents of a data overlay, you
13824 must copy its contents back out to its load address before you can copy a
13825 different data overlay into the same mapped area.
13826
13827 @end itemize
13828
13829
13830 @node Overlay Commands
13831 @section Overlay Commands
13832
13833 To use @value{GDBN}'s overlay support, each overlay in your program must
13834 correspond to a separate section of the executable file. The section's
13835 virtual memory address and load memory address must be the overlay's
13836 mapped and load addresses. Identifying overlays with sections allows
13837 @value{GDBN} to determine the appropriate address of a function or
13838 variable, depending on whether the overlay is mapped or not.
13839
13840 @value{GDBN}'s overlay commands all start with the word @code{overlay};
13841 you can abbreviate this as @code{ov} or @code{ovly}. The commands are:
13842
13843 @table @code
13844 @item overlay off
13845 @kindex overlay
13846 Disable @value{GDBN}'s overlay support. When overlay support is
13847 disabled, @value{GDBN} assumes that all functions and variables are
13848 always present at their mapped addresses. By default, @value{GDBN}'s
13849 overlay support is disabled.
13850
13851 @item overlay manual
13852 @cindex manual overlay debugging
13853 Enable @dfn{manual} overlay debugging. In this mode, @value{GDBN}
13854 relies on you to tell it which overlays are mapped, and which are not,
13855 using the @code{overlay map-overlay} and @code{overlay unmap-overlay}
13856 commands described below.
13857
13858 @item overlay map-overlay @var{overlay}
13859 @itemx overlay map @var{overlay}
13860 @cindex map an overlay
13861 Tell @value{GDBN} that @var{overlay} is now mapped; @var{overlay} must
13862 be the name of the object file section containing the overlay. When an
13863 overlay is mapped, @value{GDBN} assumes it can find the overlay's
13864 functions and variables at their mapped addresses. @value{GDBN} assumes
13865 that any other overlays whose mapped ranges overlap that of
13866 @var{overlay} are now unmapped.
13867
13868 @item overlay unmap-overlay @var{overlay}
13869 @itemx overlay unmap @var{overlay}
13870 @cindex unmap an overlay
13871 Tell @value{GDBN} that @var{overlay} is no longer mapped; @var{overlay}
13872 must be the name of the object file section containing the overlay.
13873 When an overlay is unmapped, @value{GDBN} assumes it can find the
13874 overlay's functions and variables at their load addresses.
13875
13876 @item overlay auto
13877 Enable @dfn{automatic} overlay debugging. In this mode, @value{GDBN}
13878 consults a data structure the overlay manager maintains in the inferior
13879 to see which overlays are mapped. For details, see @ref{Automatic
13880 Overlay Debugging}.
13881
13882 @item overlay load-target
13883 @itemx overlay load
13884 @cindex reloading the overlay table
13885 Re-read the overlay table from the inferior. Normally, @value{GDBN}
13886 re-reads the table @value{GDBN} automatically each time the inferior
13887 stops, so this command should only be necessary if you have changed the
13888 overlay mapping yourself using @value{GDBN}. This command is only
13889 useful when using automatic overlay debugging.
13890
13891 @item overlay list-overlays
13892 @itemx overlay list
13893 @cindex listing mapped overlays
13894 Display a list of the overlays currently mapped, along with their mapped
13895 addresses, load addresses, and sizes.
13896
13897 @end table
13898
13899 Normally, when @value{GDBN} prints a code address, it includes the name
13900 of the function the address falls in:
13901
13902 @smallexample
13903 (@value{GDBP}) print main
13904 $3 = @{int ()@} 0x11a0 <main>
13905 @end smallexample
13906 @noindent
13907 When overlay debugging is enabled, @value{GDBN} recognizes code in
13908 unmapped overlays, and prints the names of unmapped functions with
13909 asterisks around them. For example, if @code{foo} is a function in an
13910 unmapped overlay, @value{GDBN} prints it this way:
13911
13912 @smallexample
13913 (@value{GDBP}) overlay list
13914 No sections are mapped.
13915 (@value{GDBP}) print foo
13916 $5 = @{int (int)@} 0x100000 <*foo*>
13917 @end smallexample
13918 @noindent
13919 When @code{foo}'s overlay is mapped, @value{GDBN} prints the function's
13920 name normally:
13921
13922 @smallexample
13923 (@value{GDBP}) overlay list
13924 Section .ov.foo.text, loaded at 0x100000 - 0x100034,
13925 mapped at 0x1016 - 0x104a
13926 (@value{GDBP}) print foo
13927 $6 = @{int (int)@} 0x1016 <foo>
13928 @end smallexample
13929
13930 When overlay debugging is enabled, @value{GDBN} can find the correct
13931 address for functions and variables in an overlay, whether or not the
13932 overlay is mapped. This allows most @value{GDBN} commands, like
13933 @code{break} and @code{disassemble}, to work normally, even on unmapped
13934 code. However, @value{GDBN}'s breakpoint support has some limitations:
13935
13936 @itemize @bullet
13937 @item
13938 @cindex breakpoints in overlays
13939 @cindex overlays, setting breakpoints in
13940 You can set breakpoints in functions in unmapped overlays, as long as
13941 @value{GDBN} can write to the overlay at its load address.
13942 @item
13943 @value{GDBN} can not set hardware or simulator-based breakpoints in
13944 unmapped overlays. However, if you set a breakpoint at the end of your
13945 overlay manager (and tell @value{GDBN} which overlays are now mapped, if
13946 you are using manual overlay management), @value{GDBN} will re-set its
13947 breakpoints properly.
13948 @end itemize
13949
13950
13951 @node Automatic Overlay Debugging
13952 @section Automatic Overlay Debugging
13953 @cindex automatic overlay debugging
13954
13955 @value{GDBN} can automatically track which overlays are mapped and which
13956 are not, given some simple co-operation from the overlay manager in the
13957 inferior. If you enable automatic overlay debugging with the
13958 @code{overlay auto} command (@pxref{Overlay Commands}), @value{GDBN}
13959 looks in the inferior's memory for certain variables describing the
13960 current state of the overlays.
13961
13962 Here are the variables your overlay manager must define to support
13963 @value{GDBN}'s automatic overlay debugging:
13964
13965 @table @asis
13966
13967 @item @code{_ovly_table}:
13968 This variable must be an array of the following structures:
13969
13970 @smallexample
13971 struct
13972 @{
13973 /* The overlay's mapped address. */
13974 unsigned long vma;
13975
13976 /* The size of the overlay, in bytes. */
13977 unsigned long size;
13978
13979 /* The overlay's load address. */
13980 unsigned long lma;
13981
13982 /* Non-zero if the overlay is currently mapped;
13983 zero otherwise. */
13984 unsigned long mapped;
13985 @}
13986 @end smallexample
13987
13988 @item @code{_novlys}:
13989 This variable must be a four-byte signed integer, holding the total
13990 number of elements in @code{_ovly_table}.
13991
13992 @end table
13993
13994 To decide whether a particular overlay is mapped or not, @value{GDBN}
13995 looks for an entry in @w{@code{_ovly_table}} whose @code{vma} and
13996 @code{lma} members equal the VMA and LMA of the overlay's section in the
13997 executable file. When @value{GDBN} finds a matching entry, it consults
13998 the entry's @code{mapped} member to determine whether the overlay is
13999 currently mapped.
14000
14001 In addition, your overlay manager may define a function called
14002 @code{_ovly_debug_event}. If this function is defined, @value{GDBN}
14003 will silently set a breakpoint there. If the overlay manager then
14004 calls this function whenever it has changed the overlay table, this
14005 will enable @value{GDBN} to accurately keep track of which overlays
14006 are in program memory, and update any breakpoints that may be set
14007 in overlays. This will allow breakpoints to work even if the
14008 overlays are kept in ROM or other non-writable memory while they
14009 are not being executed.
14010
14011 @node Overlay Sample Program
14012 @section Overlay Sample Program
14013 @cindex overlay example program
14014
14015 When linking a program which uses overlays, you must place the overlays
14016 at their load addresses, while relocating them to run at their mapped
14017 addresses. To do this, you must write a linker script (@pxref{Overlay
14018 Description,,, ld.info, Using ld: the GNU linker}). Unfortunately,
14019 since linker scripts are specific to a particular host system, target
14020 architecture, and target memory layout, this manual cannot provide
14021 portable sample code demonstrating @value{GDBN}'s overlay support.
14022
14023 However, the @value{GDBN} source distribution does contain an overlaid
14024 program, with linker scripts for a few systems, as part of its test
14025 suite. The program consists of the following files from
14026 @file{gdb/testsuite/gdb.base}:
14027
14028 @table @file
14029 @item overlays.c
14030 The main program file.
14031 @item ovlymgr.c
14032 A simple overlay manager, used by @file{overlays.c}.
14033 @item foo.c
14034 @itemx bar.c
14035 @itemx baz.c
14036 @itemx grbx.c
14037 Overlay modules, loaded and used by @file{overlays.c}.
14038 @item d10v.ld
14039 @itemx m32r.ld
14040 Linker scripts for linking the test program on the @code{d10v-elf}
14041 and @code{m32r-elf} targets.
14042 @end table
14043
14044 You can build the test program using the @code{d10v-elf} GCC
14045 cross-compiler like this:
14046
14047 @smallexample
14048 $ d10v-elf-gcc -g -c overlays.c
14049 $ d10v-elf-gcc -g -c ovlymgr.c
14050 $ d10v-elf-gcc -g -c foo.c
14051 $ d10v-elf-gcc -g -c bar.c
14052 $ d10v-elf-gcc -g -c baz.c
14053 $ d10v-elf-gcc -g -c grbx.c
14054 $ d10v-elf-gcc -g overlays.o ovlymgr.o foo.o bar.o \
14055 baz.o grbx.o -Wl,-Td10v.ld -o overlays
14056 @end smallexample
14057
14058 The build process is identical for any other architecture, except that
14059 you must substitute the appropriate compiler and linker script for the
14060 target system for @code{d10v-elf-gcc} and @code{d10v.ld}.
14061
14062
14063 @node Languages
14064 @chapter Using @value{GDBN} with Different Languages
14065 @cindex languages
14066
14067 Although programming languages generally have common aspects, they are
14068 rarely expressed in the same manner. For instance, in ANSI C,
14069 dereferencing a pointer @code{p} is accomplished by @code{*p}, but in
14070 Modula-2, it is accomplished by @code{p^}. Values can also be
14071 represented (and displayed) differently. Hex numbers in C appear as
14072 @samp{0x1ae}, while in Modula-2 they appear as @samp{1AEH}.
14073
14074 @cindex working language
14075 Language-specific information is built into @value{GDBN} for some languages,
14076 allowing you to express operations like the above in your program's
14077 native language, and allowing @value{GDBN} to output values in a manner
14078 consistent with the syntax of your program's native language. The
14079 language you use to build expressions is called the @dfn{working
14080 language}.
14081
14082 @menu
14083 * Setting:: Switching between source languages
14084 * Show:: Displaying the language
14085 * Checks:: Type and range checks
14086 * Supported Languages:: Supported languages
14087 * Unsupported Languages:: Unsupported languages
14088 @end menu
14089
14090 @node Setting
14091 @section Switching Between Source Languages
14092
14093 There are two ways to control the working language---either have @value{GDBN}
14094 set it automatically, or select it manually yourself. You can use the
14095 @code{set language} command for either purpose. On startup, @value{GDBN}
14096 defaults to setting the language automatically. The working language is
14097 used to determine how expressions you type are interpreted, how values
14098 are printed, etc.
14099
14100 In addition to the working language, every source file that
14101 @value{GDBN} knows about has its own working language. For some object
14102 file formats, the compiler might indicate which language a particular
14103 source file is in. However, most of the time @value{GDBN} infers the
14104 language from the name of the file. The language of a source file
14105 controls whether C@t{++} names are demangled---this way @code{backtrace} can
14106 show each frame appropriately for its own language. There is no way to
14107 set the language of a source file from within @value{GDBN}, but you can
14108 set the language associated with a filename extension. @xref{Show, ,
14109 Displaying the Language}.
14110
14111 This is most commonly a problem when you use a program, such
14112 as @code{cfront} or @code{f2c}, that generates C but is written in
14113 another language. In that case, make the
14114 program use @code{#line} directives in its C output; that way
14115 @value{GDBN} will know the correct language of the source code of the original
14116 program, and will display that source code, not the generated C code.
14117
14118 @menu
14119 * Filenames:: Filename extensions and languages.
14120 * Manually:: Setting the working language manually
14121 * Automatically:: Having @value{GDBN} infer the source language
14122 @end menu
14123
14124 @node Filenames
14125 @subsection List of Filename Extensions and Languages
14126
14127 If a source file name ends in one of the following extensions, then
14128 @value{GDBN} infers that its language is the one indicated.
14129
14130 @table @file
14131 @item .ada
14132 @itemx .ads
14133 @itemx .adb
14134 @itemx .a
14135 Ada source file.
14136
14137 @item .c
14138 C source file
14139
14140 @item .C
14141 @itemx .cc
14142 @itemx .cp
14143 @itemx .cpp
14144 @itemx .cxx
14145 @itemx .c++
14146 C@t{++} source file
14147
14148 @item .d
14149 D source file
14150
14151 @item .m
14152 Objective-C source file
14153
14154 @item .f
14155 @itemx .F
14156 Fortran source file
14157
14158 @item .mod
14159 Modula-2 source file
14160
14161 @item .s
14162 @itemx .S
14163 Assembler source file. This actually behaves almost like C, but
14164 @value{GDBN} does not skip over function prologues when stepping.
14165 @end table
14166
14167 In addition, you may set the language associated with a filename
14168 extension. @xref{Show, , Displaying the Language}.
14169
14170 @node Manually
14171 @subsection Setting the Working Language
14172
14173 If you allow @value{GDBN} to set the language automatically,
14174 expressions are interpreted the same way in your debugging session and
14175 your program.
14176
14177 @kindex set language
14178 If you wish, you may set the language manually. To do this, issue the
14179 command @samp{set language @var{lang}}, where @var{lang} is the name of
14180 a language, such as
14181 @code{c} or @code{modula-2}.
14182 For a list of the supported languages, type @samp{set language}.
14183
14184 Setting the language manually prevents @value{GDBN} from updating the working
14185 language automatically. This can lead to confusion if you try
14186 to debug a program when the working language is not the same as the
14187 source language, when an expression is acceptable to both
14188 languages---but means different things. For instance, if the current
14189 source file were written in C, and @value{GDBN} was parsing Modula-2, a
14190 command such as:
14191
14192 @smallexample
14193 print a = b + c
14194 @end smallexample
14195
14196 @noindent
14197 might not have the effect you intended. In C, this means to add
14198 @code{b} and @code{c} and place the result in @code{a}. The result
14199 printed would be the value of @code{a}. In Modula-2, this means to compare
14200 @code{a} to the result of @code{b+c}, yielding a @code{BOOLEAN} value.
14201
14202 @node Automatically
14203 @subsection Having @value{GDBN} Infer the Source Language
14204
14205 To have @value{GDBN} set the working language automatically, use
14206 @samp{set language local} or @samp{set language auto}. @value{GDBN}
14207 then infers the working language. That is, when your program stops in a
14208 frame (usually by encountering a breakpoint), @value{GDBN} sets the
14209 working language to the language recorded for the function in that
14210 frame. If the language for a frame is unknown (that is, if the function
14211 or block corresponding to the frame was defined in a source file that
14212 does not have a recognized extension), the current working language is
14213 not changed, and @value{GDBN} issues a warning.
14214
14215 This may not seem necessary for most programs, which are written
14216 entirely in one source language. However, program modules and libraries
14217 written in one source language can be used by a main program written in
14218 a different source language. Using @samp{set language auto} in this
14219 case frees you from having to set the working language manually.
14220
14221 @node Show
14222 @section Displaying the Language
14223
14224 The following commands help you find out which language is the
14225 working language, and also what language source files were written in.
14226
14227 @table @code
14228 @item show language
14229 @anchor{show language}
14230 @kindex show language
14231 Display the current working language. This is the
14232 language you can use with commands such as @code{print} to
14233 build and compute expressions that may involve variables in your program.
14234
14235 @item info frame
14236 @kindex info frame@r{, show the source language}
14237 Display the source language for this frame. This language becomes the
14238 working language if you use an identifier from this frame.
14239 @xref{Frame Info, ,Information about a Frame}, to identify the other
14240 information listed here.
14241
14242 @item info source
14243 @kindex info source@r{, show the source language}
14244 Display the source language of this source file.
14245 @xref{Symbols, ,Examining the Symbol Table}, to identify the other
14246 information listed here.
14247 @end table
14248
14249 In unusual circumstances, you may have source files with extensions
14250 not in the standard list. You can then set the extension associated
14251 with a language explicitly:
14252
14253 @table @code
14254 @item set extension-language @var{ext} @var{language}
14255 @kindex set extension-language
14256 Tell @value{GDBN} that source files with extension @var{ext} are to be
14257 assumed as written in the source language @var{language}.
14258
14259 @item info extensions
14260 @kindex info extensions
14261 List all the filename extensions and the associated languages.
14262 @end table
14263
14264 @node Checks
14265 @section Type and Range Checking
14266
14267 Some languages are designed to guard you against making seemingly common
14268 errors through a series of compile- and run-time checks. These include
14269 checking the type of arguments to functions and operators and making
14270 sure mathematical overflows are caught at run time. Checks such as
14271 these help to ensure a program's correctness once it has been compiled
14272 by eliminating type mismatches and providing active checks for range
14273 errors when your program is running.
14274
14275 By default @value{GDBN} checks for these errors according to the
14276 rules of the current source language. Although @value{GDBN} does not check
14277 the statements in your program, it can check expressions entered directly
14278 into @value{GDBN} for evaluation via the @code{print} command, for example.
14279
14280 @menu
14281 * Type Checking:: An overview of type checking
14282 * Range Checking:: An overview of range checking
14283 @end menu
14284
14285 @cindex type checking
14286 @cindex checks, type
14287 @node Type Checking
14288 @subsection An Overview of Type Checking
14289
14290 Some languages, such as C and C@t{++}, are strongly typed, meaning that the
14291 arguments to operators and functions have to be of the correct type,
14292 otherwise an error occurs. These checks prevent type mismatch
14293 errors from ever causing any run-time problems. For example,
14294
14295 @smallexample
14296 int klass::my_method(char *b) @{ return b ? 1 : 2; @}
14297
14298 (@value{GDBP}) print obj.my_method (0)
14299 $1 = 2
14300 @exdent but
14301 (@value{GDBP}) print obj.my_method (0x1234)
14302 Cannot resolve method klass::my_method to any overloaded instance
14303 @end smallexample
14304
14305 The second example fails because in C@t{++} the integer constant
14306 @samp{0x1234} is not type-compatible with the pointer parameter type.
14307
14308 For the expressions you use in @value{GDBN} commands, you can tell
14309 @value{GDBN} to not enforce strict type checking or
14310 to treat any mismatches as errors and abandon the expression;
14311 When type checking is disabled, @value{GDBN} successfully evaluates
14312 expressions like the second example above.
14313
14314 Even if type checking is off, there may be other reasons
14315 related to type that prevent @value{GDBN} from evaluating an expression.
14316 For instance, @value{GDBN} does not know how to add an @code{int} and
14317 a @code{struct foo}. These particular type errors have nothing to do
14318 with the language in use and usually arise from expressions which make
14319 little sense to evaluate anyway.
14320
14321 @value{GDBN} provides some additional commands for controlling type checking:
14322
14323 @kindex set check type
14324 @kindex show check type
14325 @table @code
14326 @item set check type on
14327 @itemx set check type off
14328 Set strict type checking on or off. If any type mismatches occur in
14329 evaluating an expression while type checking is on, @value{GDBN} prints a
14330 message and aborts evaluation of the expression.
14331
14332 @item show check type
14333 Show the current setting of type checking and whether @value{GDBN}
14334 is enforcing strict type checking rules.
14335 @end table
14336
14337 @cindex range checking
14338 @cindex checks, range
14339 @node Range Checking
14340 @subsection An Overview of Range Checking
14341
14342 In some languages (such as Modula-2), it is an error to exceed the
14343 bounds of a type; this is enforced with run-time checks. Such range
14344 checking is meant to ensure program correctness by making sure
14345 computations do not overflow, or indices on an array element access do
14346 not exceed the bounds of the array.
14347
14348 For expressions you use in @value{GDBN} commands, you can tell
14349 @value{GDBN} to treat range errors in one of three ways: ignore them,
14350 always treat them as errors and abandon the expression, or issue
14351 warnings but evaluate the expression anyway.
14352
14353 A range error can result from numerical overflow, from exceeding an
14354 array index bound, or when you type a constant that is not a member
14355 of any type. Some languages, however, do not treat overflows as an
14356 error. In many implementations of C, mathematical overflow causes the
14357 result to ``wrap around'' to lower values---for example, if @var{m} is
14358 the largest integer value, and @var{s} is the smallest, then
14359
14360 @smallexample
14361 @var{m} + 1 @result{} @var{s}
14362 @end smallexample
14363
14364 This, too, is specific to individual languages, and in some cases
14365 specific to individual compilers or machines. @xref{Supported Languages, ,
14366 Supported Languages}, for further details on specific languages.
14367
14368 @value{GDBN} provides some additional commands for controlling the range checker:
14369
14370 @kindex set check range
14371 @kindex show check range
14372 @table @code
14373 @item set check range auto
14374 Set range checking on or off based on the current working language.
14375 @xref{Supported Languages, ,Supported Languages}, for the default settings for
14376 each language.
14377
14378 @item set check range on
14379 @itemx set check range off
14380 Set range checking on or off, overriding the default setting for the
14381 current working language. A warning is issued if the setting does not
14382 match the language default. If a range error occurs and range checking is on,
14383 then a message is printed and evaluation of the expression is aborted.
14384
14385 @item set check range warn
14386 Output messages when the @value{GDBN} range checker detects a range error,
14387 but attempt to evaluate the expression anyway. Evaluating the
14388 expression may still be impossible for other reasons, such as accessing
14389 memory that the process does not own (a typical example from many Unix
14390 systems).
14391
14392 @item show range
14393 Show the current setting of the range checker, and whether or not it is
14394 being set automatically by @value{GDBN}.
14395 @end table
14396
14397 @node Supported Languages
14398 @section Supported Languages
14399
14400 @value{GDBN} supports C, C@t{++}, D, Go, Objective-C, Fortran, Java,
14401 OpenCL C, Pascal, assembly, Modula-2, and Ada.
14402 @c This is false ...
14403 Some @value{GDBN} features may be used in expressions regardless of the
14404 language you use: the @value{GDBN} @code{@@} and @code{::} operators,
14405 and the @samp{@{type@}addr} construct (@pxref{Expressions,
14406 ,Expressions}) can be used with the constructs of any supported
14407 language.
14408
14409 The following sections detail to what degree each source language is
14410 supported by @value{GDBN}. These sections are not meant to be language
14411 tutorials or references, but serve only as a reference guide to what the
14412 @value{GDBN} expression parser accepts, and what input and output
14413 formats should look like for different languages. There are many good
14414 books written on each of these languages; please look to these for a
14415 language reference or tutorial.
14416
14417 @menu
14418 * C:: C and C@t{++}
14419 * D:: D
14420 * Go:: Go
14421 * Objective-C:: Objective-C
14422 * OpenCL C:: OpenCL C
14423 * Fortran:: Fortran
14424 * Pascal:: Pascal
14425 * Modula-2:: Modula-2
14426 * Ada:: Ada
14427 @end menu
14428
14429 @node C
14430 @subsection C and C@t{++}
14431
14432 @cindex C and C@t{++}
14433 @cindex expressions in C or C@t{++}
14434
14435 Since C and C@t{++} are so closely related, many features of @value{GDBN} apply
14436 to both languages. Whenever this is the case, we discuss those languages
14437 together.
14438
14439 @cindex C@t{++}
14440 @cindex @code{g++}, @sc{gnu} C@t{++} compiler
14441 @cindex @sc{gnu} C@t{++}
14442 The C@t{++} debugging facilities are jointly implemented by the C@t{++}
14443 compiler and @value{GDBN}. Therefore, to debug your C@t{++} code
14444 effectively, you must compile your C@t{++} programs with a supported
14445 C@t{++} compiler, such as @sc{gnu} @code{g++}, or the HP ANSI C@t{++}
14446 compiler (@code{aCC}).
14447
14448 @menu
14449 * C Operators:: C and C@t{++} operators
14450 * C Constants:: C and C@t{++} constants
14451 * C Plus Plus Expressions:: C@t{++} expressions
14452 * C Defaults:: Default settings for C and C@t{++}
14453 * C Checks:: C and C@t{++} type and range checks
14454 * Debugging C:: @value{GDBN} and C
14455 * Debugging C Plus Plus:: @value{GDBN} features for C@t{++}
14456 * Decimal Floating Point:: Numbers in Decimal Floating Point format
14457 @end menu
14458
14459 @node C Operators
14460 @subsubsection C and C@t{++} Operators
14461
14462 @cindex C and C@t{++} operators
14463
14464 Operators must be defined on values of specific types. For instance,
14465 @code{+} is defined on numbers, but not on structures. Operators are
14466 often defined on groups of types.
14467
14468 For the purposes of C and C@t{++}, the following definitions hold:
14469
14470 @itemize @bullet
14471
14472 @item
14473 @emph{Integral types} include @code{int} with any of its storage-class
14474 specifiers; @code{char}; @code{enum}; and, for C@t{++}, @code{bool}.
14475
14476 @item
14477 @emph{Floating-point types} include @code{float}, @code{double}, and
14478 @code{long double} (if supported by the target platform).
14479
14480 @item
14481 @emph{Pointer types} include all types defined as @code{(@var{type} *)}.
14482
14483 @item
14484 @emph{Scalar types} include all of the above.
14485
14486 @end itemize
14487
14488 @noindent
14489 The following operators are supported. They are listed here
14490 in order of increasing precedence:
14491
14492 @table @code
14493 @item ,
14494 The comma or sequencing operator. Expressions in a comma-separated list
14495 are evaluated from left to right, with the result of the entire
14496 expression being the last expression evaluated.
14497
14498 @item =
14499 Assignment. The value of an assignment expression is the value
14500 assigned. Defined on scalar types.
14501
14502 @item @var{op}=
14503 Used in an expression of the form @w{@code{@var{a} @var{op}= @var{b}}},
14504 and translated to @w{@code{@var{a} = @var{a op b}}}.
14505 @w{@code{@var{op}=}} and @code{=} have the same precedence. The operator
14506 @var{op} is any one of the operators @code{|}, @code{^}, @code{&},
14507 @code{<<}, @code{>>}, @code{+}, @code{-}, @code{*}, @code{/}, @code{%}.
14508
14509 @item ?:
14510 The ternary operator. @code{@var{a} ? @var{b} : @var{c}} can be thought
14511 of as: if @var{a} then @var{b} else @var{c}. The argument @var{a}
14512 should be of an integral type.
14513
14514 @item ||
14515 Logical @sc{or}. Defined on integral types.
14516
14517 @item &&
14518 Logical @sc{and}. Defined on integral types.
14519
14520 @item |
14521 Bitwise @sc{or}. Defined on integral types.
14522
14523 @item ^
14524 Bitwise exclusive-@sc{or}. Defined on integral types.
14525
14526 @item &
14527 Bitwise @sc{and}. Defined on integral types.
14528
14529 @item ==@r{, }!=
14530 Equality and inequality. Defined on scalar types. The value of these
14531 expressions is 0 for false and non-zero for true.
14532
14533 @item <@r{, }>@r{, }<=@r{, }>=
14534 Less than, greater than, less than or equal, greater than or equal.
14535 Defined on scalar types. The value of these expressions is 0 for false
14536 and non-zero for true.
14537
14538 @item <<@r{, }>>
14539 left shift, and right shift. Defined on integral types.
14540
14541 @item @@
14542 The @value{GDBN} ``artificial array'' operator (@pxref{Expressions, ,Expressions}).
14543
14544 @item +@r{, }-
14545 Addition and subtraction. Defined on integral types, floating-point types and
14546 pointer types.
14547
14548 @item *@r{, }/@r{, }%
14549 Multiplication, division, and modulus. Multiplication and division are
14550 defined on integral and floating-point types. Modulus is defined on
14551 integral types.
14552
14553 @item ++@r{, }--
14554 Increment and decrement. When appearing before a variable, the
14555 operation is performed before the variable is used in an expression;
14556 when appearing after it, the variable's value is used before the
14557 operation takes place.
14558
14559 @item *
14560 Pointer dereferencing. Defined on pointer types. Same precedence as
14561 @code{++}.
14562
14563 @item &
14564 Address operator. Defined on variables. Same precedence as @code{++}.
14565
14566 For debugging C@t{++}, @value{GDBN} implements a use of @samp{&} beyond what is
14567 allowed in the C@t{++} language itself: you can use @samp{&(&@var{ref})}
14568 to examine the address
14569 where a C@t{++} reference variable (declared with @samp{&@var{ref}}) is
14570 stored.
14571
14572 @item -
14573 Negative. Defined on integral and floating-point types. Same
14574 precedence as @code{++}.
14575
14576 @item !
14577 Logical negation. Defined on integral types. Same precedence as
14578 @code{++}.
14579
14580 @item ~
14581 Bitwise complement operator. Defined on integral types. Same precedence as
14582 @code{++}.
14583
14584
14585 @item .@r{, }->
14586 Structure member, and pointer-to-structure member. For convenience,
14587 @value{GDBN} regards the two as equivalent, choosing whether to dereference a
14588 pointer based on the stored type information.
14589 Defined on @code{struct} and @code{union} data.
14590
14591 @item .*@r{, }->*
14592 Dereferences of pointers to members.
14593
14594 @item []
14595 Array indexing. @code{@var{a}[@var{i}]} is defined as
14596 @code{*(@var{a}+@var{i})}. Same precedence as @code{->}.
14597
14598 @item ()
14599 Function parameter list. Same precedence as @code{->}.
14600
14601 @item ::
14602 C@t{++} scope resolution operator. Defined on @code{struct}, @code{union},
14603 and @code{class} types.
14604
14605 @item ::
14606 Doubled colons also represent the @value{GDBN} scope operator
14607 (@pxref{Expressions, ,Expressions}). Same precedence as @code{::},
14608 above.
14609 @end table
14610
14611 If an operator is redefined in the user code, @value{GDBN} usually
14612 attempts to invoke the redefined version instead of using the operator's
14613 predefined meaning.
14614
14615 @node C Constants
14616 @subsubsection C and C@t{++} Constants
14617
14618 @cindex C and C@t{++} constants
14619
14620 @value{GDBN} allows you to express the constants of C and C@t{++} in the
14621 following ways:
14622
14623 @itemize @bullet
14624 @item
14625 Integer constants are a sequence of digits. Octal constants are
14626 specified by a leading @samp{0} (i.e.@: zero), and hexadecimal constants
14627 by a leading @samp{0x} or @samp{0X}. Constants may also end with a letter
14628 @samp{l}, specifying that the constant should be treated as a
14629 @code{long} value.
14630
14631 @item
14632 Floating point constants are a sequence of digits, followed by a decimal
14633 point, followed by a sequence of digits, and optionally followed by an
14634 exponent. An exponent is of the form:
14635 @samp{@w{e@r{[[}+@r{]|}-@r{]}@var{nnn}}}, where @var{nnn} is another
14636 sequence of digits. The @samp{+} is optional for positive exponents.
14637 A floating-point constant may also end with a letter @samp{f} or
14638 @samp{F}, specifying that the constant should be treated as being of
14639 the @code{float} (as opposed to the default @code{double}) type; or with
14640 a letter @samp{l} or @samp{L}, which specifies a @code{long double}
14641 constant.
14642
14643 @item
14644 Enumerated constants consist of enumerated identifiers, or their
14645 integral equivalents.
14646
14647 @item
14648 Character constants are a single character surrounded by single quotes
14649 (@code{'}), or a number---the ordinal value of the corresponding character
14650 (usually its @sc{ascii} value). Within quotes, the single character may
14651 be represented by a letter or by @dfn{escape sequences}, which are of
14652 the form @samp{\@var{nnn}}, where @var{nnn} is the octal representation
14653 of the character's ordinal value; or of the form @samp{\@var{x}}, where
14654 @samp{@var{x}} is a predefined special character---for example,
14655 @samp{\n} for newline.
14656
14657 Wide character constants can be written by prefixing a character
14658 constant with @samp{L}, as in C. For example, @samp{L'x'} is the wide
14659 form of @samp{x}. The target wide character set is used when
14660 computing the value of this constant (@pxref{Character Sets}).
14661
14662 @item
14663 String constants are a sequence of character constants surrounded by
14664 double quotes (@code{"}). Any valid character constant (as described
14665 above) may appear. Double quotes within the string must be preceded by
14666 a backslash, so for instance @samp{"a\"b'c"} is a string of five
14667 characters.
14668
14669 Wide string constants can be written by prefixing a string constant
14670 with @samp{L}, as in C. The target wide character set is used when
14671 computing the value of this constant (@pxref{Character Sets}).
14672
14673 @item
14674 Pointer constants are an integral value. You can also write pointers
14675 to constants using the C operator @samp{&}.
14676
14677 @item
14678 Array constants are comma-separated lists surrounded by braces @samp{@{}
14679 and @samp{@}}; for example, @samp{@{1,2,3@}} is a three-element array of
14680 integers, @samp{@{@{1,2@}, @{3,4@}, @{5,6@}@}} is a three-by-two array,
14681 and @samp{@{&"hi", &"there", &"fred"@}} is a three-element array of pointers.
14682 @end itemize
14683
14684 @node C Plus Plus Expressions
14685 @subsubsection C@t{++} Expressions
14686
14687 @cindex expressions in C@t{++}
14688 @value{GDBN} expression handling can interpret most C@t{++} expressions.
14689
14690 @cindex debugging C@t{++} programs
14691 @cindex C@t{++} compilers
14692 @cindex debug formats and C@t{++}
14693 @cindex @value{NGCC} and C@t{++}
14694 @quotation
14695 @emph{Warning:} @value{GDBN} can only debug C@t{++} code if you use
14696 the proper compiler and the proper debug format. Currently,
14697 @value{GDBN} works best when debugging C@t{++} code that is compiled
14698 with the most recent version of @value{NGCC} possible. The DWARF
14699 debugging format is preferred; @value{NGCC} defaults to this on most
14700 popular platforms. Other compilers and/or debug formats are likely to
14701 work badly or not at all when using @value{GDBN} to debug C@t{++}
14702 code. @xref{Compilation}.
14703 @end quotation
14704
14705 @enumerate
14706
14707 @cindex member functions
14708 @item
14709 Member function calls are allowed; you can use expressions like
14710
14711 @smallexample
14712 count = aml->GetOriginal(x, y)
14713 @end smallexample
14714
14715 @vindex this@r{, inside C@t{++} member functions}
14716 @cindex namespace in C@t{++}
14717 @item
14718 While a member function is active (in the selected stack frame), your
14719 expressions have the same namespace available as the member function;
14720 that is, @value{GDBN} allows implicit references to the class instance
14721 pointer @code{this} following the same rules as C@t{++}. @code{using}
14722 declarations in the current scope are also respected by @value{GDBN}.
14723
14724 @cindex call overloaded functions
14725 @cindex overloaded functions, calling
14726 @cindex type conversions in C@t{++}
14727 @item
14728 You can call overloaded functions; @value{GDBN} resolves the function
14729 call to the right definition, with some restrictions. @value{GDBN} does not
14730 perform overload resolution involving user-defined type conversions,
14731 calls to constructors, or instantiations of templates that do not exist
14732 in the program. It also cannot handle ellipsis argument lists or
14733 default arguments.
14734
14735 It does perform integral conversions and promotions, floating-point
14736 promotions, arithmetic conversions, pointer conversions, conversions of
14737 class objects to base classes, and standard conversions such as those of
14738 functions or arrays to pointers; it requires an exact match on the
14739 number of function arguments.
14740
14741 Overload resolution is always performed, unless you have specified
14742 @code{set overload-resolution off}. @xref{Debugging C Plus Plus,
14743 ,@value{GDBN} Features for C@t{++}}.
14744
14745 You must specify @code{set overload-resolution off} in order to use an
14746 explicit function signature to call an overloaded function, as in
14747 @smallexample
14748 p 'foo(char,int)'('x', 13)
14749 @end smallexample
14750
14751 The @value{GDBN} command-completion facility can simplify this;
14752 see @ref{Completion, ,Command Completion}.
14753
14754 @cindex reference declarations
14755 @item
14756 @value{GDBN} understands variables declared as C@t{++} references; you can use
14757 them in expressions just as you do in C@t{++} source---they are automatically
14758 dereferenced.
14759
14760 In the parameter list shown when @value{GDBN} displays a frame, the values of
14761 reference variables are not displayed (unlike other variables); this
14762 avoids clutter, since references are often used for large structures.
14763 The @emph{address} of a reference variable is always shown, unless
14764 you have specified @samp{set print address off}.
14765
14766 @item
14767 @value{GDBN} supports the C@t{++} name resolution operator @code{::}---your
14768 expressions can use it just as expressions in your program do. Since
14769 one scope may be defined in another, you can use @code{::} repeatedly if
14770 necessary, for example in an expression like
14771 @samp{@var{scope1}::@var{scope2}::@var{name}}. @value{GDBN} also allows
14772 resolving name scope by reference to source files, in both C and C@t{++}
14773 debugging (@pxref{Variables, ,Program Variables}).
14774
14775 @item
14776 @value{GDBN} performs argument-dependent lookup, following the C@t{++}
14777 specification.
14778 @end enumerate
14779
14780 @node C Defaults
14781 @subsubsection C and C@t{++} Defaults
14782
14783 @cindex C and C@t{++} defaults
14784
14785 If you allow @value{GDBN} to set range checking automatically, it
14786 defaults to @code{off} whenever the working language changes to
14787 C or C@t{++}. This happens regardless of whether you or @value{GDBN}
14788 selects the working language.
14789
14790 If you allow @value{GDBN} to set the language automatically, it
14791 recognizes source files whose names end with @file{.c}, @file{.C}, or
14792 @file{.cc}, etc, and when @value{GDBN} enters code compiled from one of
14793 these files, it sets the working language to C or C@t{++}.
14794 @xref{Automatically, ,Having @value{GDBN} Infer the Source Language},
14795 for further details.
14796
14797 @node C Checks
14798 @subsubsection C and C@t{++} Type and Range Checks
14799
14800 @cindex C and C@t{++} checks
14801
14802 By default, when @value{GDBN} parses C or C@t{++} expressions, strict type
14803 checking is used. However, if you turn type checking off, @value{GDBN}
14804 will allow certain non-standard conversions, such as promoting integer
14805 constants to pointers.
14806
14807 Range checking, if turned on, is done on mathematical operations. Array
14808 indices are not checked, since they are often used to index a pointer
14809 that is not itself an array.
14810
14811 @node Debugging C
14812 @subsubsection @value{GDBN} and C
14813
14814 The @code{set print union} and @code{show print union} commands apply to
14815 the @code{union} type. When set to @samp{on}, any @code{union} that is
14816 inside a @code{struct} or @code{class} is also printed. Otherwise, it
14817 appears as @samp{@{...@}}.
14818
14819 The @code{@@} operator aids in the debugging of dynamic arrays, formed
14820 with pointers and a memory allocation function. @xref{Expressions,
14821 ,Expressions}.
14822
14823 @node Debugging C Plus Plus
14824 @subsubsection @value{GDBN} Features for C@t{++}
14825
14826 @cindex commands for C@t{++}
14827
14828 Some @value{GDBN} commands are particularly useful with C@t{++}, and some are
14829 designed specifically for use with C@t{++}. Here is a summary:
14830
14831 @table @code
14832 @cindex break in overloaded functions
14833 @item @r{breakpoint menus}
14834 When you want a breakpoint in a function whose name is overloaded,
14835 @value{GDBN} has the capability to display a menu of possible breakpoint
14836 locations to help you specify which function definition you want.
14837 @xref{Ambiguous Expressions,,Ambiguous Expressions}.
14838
14839 @cindex overloading in C@t{++}
14840 @item rbreak @var{regex}
14841 Setting breakpoints using regular expressions is helpful for setting
14842 breakpoints on overloaded functions that are not members of any special
14843 classes.
14844 @xref{Set Breaks, ,Setting Breakpoints}.
14845
14846 @cindex C@t{++} exception handling
14847 @item catch throw
14848 @itemx catch rethrow
14849 @itemx catch catch
14850 Debug C@t{++} exception handling using these commands. @xref{Set
14851 Catchpoints, , Setting Catchpoints}.
14852
14853 @cindex inheritance
14854 @item ptype @var{typename}
14855 Print inheritance relationships as well as other information for type
14856 @var{typename}.
14857 @xref{Symbols, ,Examining the Symbol Table}.
14858
14859 @item info vtbl @var{expression}.
14860 The @code{info vtbl} command can be used to display the virtual
14861 method tables of the object computed by @var{expression}. This shows
14862 one entry per virtual table; there may be multiple virtual tables when
14863 multiple inheritance is in use.
14864
14865 @cindex C@t{++} demangling
14866 @item demangle @var{name}
14867 Demangle @var{name}.
14868 @xref{Symbols}, for a more complete description of the @code{demangle} command.
14869
14870 @cindex C@t{++} symbol display
14871 @item set print demangle
14872 @itemx show print demangle
14873 @itemx set print asm-demangle
14874 @itemx show print asm-demangle
14875 Control whether C@t{++} symbols display in their source form, both when
14876 displaying code as C@t{++} source and when displaying disassemblies.
14877 @xref{Print Settings, ,Print Settings}.
14878
14879 @item set print object
14880 @itemx show print object
14881 Choose whether to print derived (actual) or declared types of objects.
14882 @xref{Print Settings, ,Print Settings}.
14883
14884 @item set print vtbl
14885 @itemx show print vtbl
14886 Control the format for printing virtual function tables.
14887 @xref{Print Settings, ,Print Settings}.
14888 (The @code{vtbl} commands do not work on programs compiled with the HP
14889 ANSI C@t{++} compiler (@code{aCC}).)
14890
14891 @kindex set overload-resolution
14892 @cindex overloaded functions, overload resolution
14893 @item set overload-resolution on
14894 Enable overload resolution for C@t{++} expression evaluation. The default
14895 is on. For overloaded functions, @value{GDBN} evaluates the arguments
14896 and searches for a function whose signature matches the argument types,
14897 using the standard C@t{++} conversion rules (see @ref{C Plus Plus
14898 Expressions, ,C@t{++} Expressions}, for details).
14899 If it cannot find a match, it emits a message.
14900
14901 @item set overload-resolution off
14902 Disable overload resolution for C@t{++} expression evaluation. For
14903 overloaded functions that are not class member functions, @value{GDBN}
14904 chooses the first function of the specified name that it finds in the
14905 symbol table, whether or not its arguments are of the correct type. For
14906 overloaded functions that are class member functions, @value{GDBN}
14907 searches for a function whose signature @emph{exactly} matches the
14908 argument types.
14909
14910 @kindex show overload-resolution
14911 @item show overload-resolution
14912 Show the current setting of overload resolution.
14913
14914 @item @r{Overloaded symbol names}
14915 You can specify a particular definition of an overloaded symbol, using
14916 the same notation that is used to declare such symbols in C@t{++}: type
14917 @code{@var{symbol}(@var{types})} rather than just @var{symbol}. You can
14918 also use the @value{GDBN} command-line word completion facilities to list the
14919 available choices, or to finish the type list for you.
14920 @xref{Completion,, Command Completion}, for details on how to do this.
14921 @end table
14922
14923 @node Decimal Floating Point
14924 @subsubsection Decimal Floating Point format
14925 @cindex decimal floating point format
14926
14927 @value{GDBN} can examine, set and perform computations with numbers in
14928 decimal floating point format, which in the C language correspond to the
14929 @code{_Decimal32}, @code{_Decimal64} and @code{_Decimal128} types as
14930 specified by the extension to support decimal floating-point arithmetic.
14931
14932 There are two encodings in use, depending on the architecture: BID (Binary
14933 Integer Decimal) for x86 and x86-64, and DPD (Densely Packed Decimal) for
14934 PowerPC and S/390. @value{GDBN} will use the appropriate encoding for the
14935 configured target.
14936
14937 Because of a limitation in @file{libdecnumber}, the library used by @value{GDBN}
14938 to manipulate decimal floating point numbers, it is not possible to convert
14939 (using a cast, for example) integers wider than 32-bit to decimal float.
14940
14941 In addition, in order to imitate @value{GDBN}'s behaviour with binary floating
14942 point computations, error checking in decimal float operations ignores
14943 underflow, overflow and divide by zero exceptions.
14944
14945 In the PowerPC architecture, @value{GDBN} provides a set of pseudo-registers
14946 to inspect @code{_Decimal128} values stored in floating point registers.
14947 See @ref{PowerPC,,PowerPC} for more details.
14948
14949 @node D
14950 @subsection D
14951
14952 @cindex D
14953 @value{GDBN} can be used to debug programs written in D and compiled with
14954 GDC, LDC or DMD compilers. Currently @value{GDBN} supports only one D
14955 specific feature --- dynamic arrays.
14956
14957 @node Go
14958 @subsection Go
14959
14960 @cindex Go (programming language)
14961 @value{GDBN} can be used to debug programs written in Go and compiled with
14962 @file{gccgo} or @file{6g} compilers.
14963
14964 Here is a summary of the Go-specific features and restrictions:
14965
14966 @table @code
14967 @cindex current Go package
14968 @item The current Go package
14969 The name of the current package does not need to be specified when
14970 specifying global variables and functions.
14971
14972 For example, given the program:
14973
14974 @example
14975 package main
14976 var myglob = "Shall we?"
14977 func main () @{
14978 // ...
14979 @}
14980 @end example
14981
14982 When stopped inside @code{main} either of these work:
14983
14984 @example
14985 (gdb) p myglob
14986 (gdb) p main.myglob
14987 @end example
14988
14989 @cindex builtin Go types
14990 @item Builtin Go types
14991 The @code{string} type is recognized by @value{GDBN} and is printed
14992 as a string.
14993
14994 @cindex builtin Go functions
14995 @item Builtin Go functions
14996 The @value{GDBN} expression parser recognizes the @code{unsafe.Sizeof}
14997 function and handles it internally.
14998
14999 @cindex restrictions on Go expressions
15000 @item Restrictions on Go expressions
15001 All Go operators are supported except @code{&^}.
15002 The Go @code{_} ``blank identifier'' is not supported.
15003 Automatic dereferencing of pointers is not supported.
15004 @end table
15005
15006 @node Objective-C
15007 @subsection Objective-C
15008
15009 @cindex Objective-C
15010 This section provides information about some commands and command
15011 options that are useful for debugging Objective-C code. See also
15012 @ref{Symbols, info classes}, and @ref{Symbols, info selectors}, for a
15013 few more commands specific to Objective-C support.
15014
15015 @menu
15016 * Method Names in Commands::
15017 * The Print Command with Objective-C::
15018 @end menu
15019
15020 @node Method Names in Commands
15021 @subsubsection Method Names in Commands
15022
15023 The following commands have been extended to accept Objective-C method
15024 names as line specifications:
15025
15026 @kindex clear@r{, and Objective-C}
15027 @kindex break@r{, and Objective-C}
15028 @kindex info line@r{, and Objective-C}
15029 @kindex jump@r{, and Objective-C}
15030 @kindex list@r{, and Objective-C}
15031 @itemize
15032 @item @code{clear}
15033 @item @code{break}
15034 @item @code{info line}
15035 @item @code{jump}
15036 @item @code{list}
15037 @end itemize
15038
15039 A fully qualified Objective-C method name is specified as
15040
15041 @smallexample
15042 -[@var{Class} @var{methodName}]
15043 @end smallexample
15044
15045 where the minus sign is used to indicate an instance method and a
15046 plus sign (not shown) is used to indicate a class method. The class
15047 name @var{Class} and method name @var{methodName} are enclosed in
15048 brackets, similar to the way messages are specified in Objective-C
15049 source code. For example, to set a breakpoint at the @code{create}
15050 instance method of class @code{Fruit} in the program currently being
15051 debugged, enter:
15052
15053 @smallexample
15054 break -[Fruit create]
15055 @end smallexample
15056
15057 To list ten program lines around the @code{initialize} class method,
15058 enter:
15059
15060 @smallexample
15061 list +[NSText initialize]
15062 @end smallexample
15063
15064 In the current version of @value{GDBN}, the plus or minus sign is
15065 required. In future versions of @value{GDBN}, the plus or minus
15066 sign will be optional, but you can use it to narrow the search. It
15067 is also possible to specify just a method name:
15068
15069 @smallexample
15070 break create
15071 @end smallexample
15072
15073 You must specify the complete method name, including any colons. If
15074 your program's source files contain more than one @code{create} method,
15075 you'll be presented with a numbered list of classes that implement that
15076 method. Indicate your choice by number, or type @samp{0} to exit if
15077 none apply.
15078
15079 As another example, to clear a breakpoint established at the
15080 @code{makeKeyAndOrderFront:} method of the @code{NSWindow} class, enter:
15081
15082 @smallexample
15083 clear -[NSWindow makeKeyAndOrderFront:]
15084 @end smallexample
15085
15086 @node The Print Command with Objective-C
15087 @subsubsection The Print Command With Objective-C
15088 @cindex Objective-C, print objects
15089 @kindex print-object
15090 @kindex po @r{(@code{print-object})}
15091
15092 The print command has also been extended to accept methods. For example:
15093
15094 @smallexample
15095 print -[@var{object} hash]
15096 @end smallexample
15097
15098 @cindex print an Objective-C object description
15099 @cindex @code{_NSPrintForDebugger}, and printing Objective-C objects
15100 @noindent
15101 will tell @value{GDBN} to send the @code{hash} message to @var{object}
15102 and print the result. Also, an additional command has been added,
15103 @code{print-object} or @code{po} for short, which is meant to print
15104 the description of an object. However, this command may only work
15105 with certain Objective-C libraries that have a particular hook
15106 function, @code{_NSPrintForDebugger}, defined.
15107
15108 @node OpenCL C
15109 @subsection OpenCL C
15110
15111 @cindex OpenCL C
15112 This section provides information about @value{GDBN}s OpenCL C support.
15113
15114 @menu
15115 * OpenCL C Datatypes::
15116 * OpenCL C Expressions::
15117 * OpenCL C Operators::
15118 @end menu
15119
15120 @node OpenCL C Datatypes
15121 @subsubsection OpenCL C Datatypes
15122
15123 @cindex OpenCL C Datatypes
15124 @value{GDBN} supports the builtin scalar and vector datatypes specified
15125 by OpenCL 1.1. In addition the half- and double-precision floating point
15126 data types of the @code{cl_khr_fp16} and @code{cl_khr_fp64} OpenCL
15127 extensions are also known to @value{GDBN}.
15128
15129 @node OpenCL C Expressions
15130 @subsubsection OpenCL C Expressions
15131
15132 @cindex OpenCL C Expressions
15133 @value{GDBN} supports accesses to vector components including the access as
15134 lvalue where possible. Since OpenCL C is based on C99 most C expressions
15135 supported by @value{GDBN} can be used as well.
15136
15137 @node OpenCL C Operators
15138 @subsubsection OpenCL C Operators
15139
15140 @cindex OpenCL C Operators
15141 @value{GDBN} supports the operators specified by OpenCL 1.1 for scalar and
15142 vector data types.
15143
15144 @node Fortran
15145 @subsection Fortran
15146 @cindex Fortran-specific support in @value{GDBN}
15147
15148 @value{GDBN} can be used to debug programs written in Fortran, but it
15149 currently supports only the features of Fortran 77 language.
15150
15151 @cindex trailing underscore, in Fortran symbols
15152 Some Fortran compilers (@sc{gnu} Fortran 77 and Fortran 95 compilers
15153 among them) append an underscore to the names of variables and
15154 functions. When you debug programs compiled by those compilers, you
15155 will need to refer to variables and functions with a trailing
15156 underscore.
15157
15158 @menu
15159 * Fortran Operators:: Fortran operators and expressions
15160 * Fortran Defaults:: Default settings for Fortran
15161 * Special Fortran Commands:: Special @value{GDBN} commands for Fortran
15162 @end menu
15163
15164 @node Fortran Operators
15165 @subsubsection Fortran Operators and Expressions
15166
15167 @cindex Fortran operators and expressions
15168
15169 Operators must be defined on values of specific types. For instance,
15170 @code{+} is defined on numbers, but not on characters or other non-
15171 arithmetic types. Operators are often defined on groups of types.
15172
15173 @table @code
15174 @item **
15175 The exponentiation operator. It raises the first operand to the power
15176 of the second one.
15177
15178 @item :
15179 The range operator. Normally used in the form of array(low:high) to
15180 represent a section of array.
15181
15182 @item %
15183 The access component operator. Normally used to access elements in derived
15184 types. Also suitable for unions. As unions aren't part of regular Fortran,
15185 this can only happen when accessing a register that uses a gdbarch-defined
15186 union type.
15187 @end table
15188
15189 @node Fortran Defaults
15190 @subsubsection Fortran Defaults
15191
15192 @cindex Fortran Defaults
15193
15194 Fortran symbols are usually case-insensitive, so @value{GDBN} by
15195 default uses case-insensitive matches for Fortran symbols. You can
15196 change that with the @samp{set case-insensitive} command, see
15197 @ref{Symbols}, for the details.
15198
15199 @node Special Fortran Commands
15200 @subsubsection Special Fortran Commands
15201
15202 @cindex Special Fortran commands
15203
15204 @value{GDBN} has some commands to support Fortran-specific features,
15205 such as displaying common blocks.
15206
15207 @table @code
15208 @cindex @code{COMMON} blocks, Fortran
15209 @kindex info common
15210 @item info common @r{[}@var{common-name}@r{]}
15211 This command prints the values contained in the Fortran @code{COMMON}
15212 block whose name is @var{common-name}. With no argument, the names of
15213 all @code{COMMON} blocks visible at the current program location are
15214 printed.
15215 @end table
15216
15217 @node Pascal
15218 @subsection Pascal
15219
15220 @cindex Pascal support in @value{GDBN}, limitations
15221 Debugging Pascal programs which use sets, subranges, file variables, or
15222 nested functions does not currently work. @value{GDBN} does not support
15223 entering expressions, printing values, or similar features using Pascal
15224 syntax.
15225
15226 The Pascal-specific command @code{set print pascal_static-members}
15227 controls whether static members of Pascal objects are displayed.
15228 @xref{Print Settings, pascal_static-members}.
15229
15230 @node Modula-2
15231 @subsection Modula-2
15232
15233 @cindex Modula-2, @value{GDBN} support
15234
15235 The extensions made to @value{GDBN} to support Modula-2 only support
15236 output from the @sc{gnu} Modula-2 compiler (which is currently being
15237 developed). Other Modula-2 compilers are not currently supported, and
15238 attempting to debug executables produced by them is most likely
15239 to give an error as @value{GDBN} reads in the executable's symbol
15240 table.
15241
15242 @cindex expressions in Modula-2
15243 @menu
15244 * M2 Operators:: Built-in operators
15245 * Built-In Func/Proc:: Built-in functions and procedures
15246 * M2 Constants:: Modula-2 constants
15247 * M2 Types:: Modula-2 types
15248 * M2 Defaults:: Default settings for Modula-2
15249 * Deviations:: Deviations from standard Modula-2
15250 * M2 Checks:: Modula-2 type and range checks
15251 * M2 Scope:: The scope operators @code{::} and @code{.}
15252 * GDB/M2:: @value{GDBN} and Modula-2
15253 @end menu
15254
15255 @node M2 Operators
15256 @subsubsection Operators
15257 @cindex Modula-2 operators
15258
15259 Operators must be defined on values of specific types. For instance,
15260 @code{+} is defined on numbers, but not on structures. Operators are
15261 often defined on groups of types. For the purposes of Modula-2, the
15262 following definitions hold:
15263
15264 @itemize @bullet
15265
15266 @item
15267 @emph{Integral types} consist of @code{INTEGER}, @code{CARDINAL}, and
15268 their subranges.
15269
15270 @item
15271 @emph{Character types} consist of @code{CHAR} and its subranges.
15272
15273 @item
15274 @emph{Floating-point types} consist of @code{REAL}.
15275
15276 @item
15277 @emph{Pointer types} consist of anything declared as @code{POINTER TO
15278 @var{type}}.
15279
15280 @item
15281 @emph{Scalar types} consist of all of the above.
15282
15283 @item
15284 @emph{Set types} consist of @code{SET} and @code{BITSET} types.
15285
15286 @item
15287 @emph{Boolean types} consist of @code{BOOLEAN}.
15288 @end itemize
15289
15290 @noindent
15291 The following operators are supported, and appear in order of
15292 increasing precedence:
15293
15294 @table @code
15295 @item ,
15296 Function argument or array index separator.
15297
15298 @item :=
15299 Assignment. The value of @var{var} @code{:=} @var{value} is
15300 @var{value}.
15301
15302 @item <@r{, }>
15303 Less than, greater than on integral, floating-point, or enumerated
15304 types.
15305
15306 @item <=@r{, }>=
15307 Less than or equal to, greater than or equal to
15308 on integral, floating-point and enumerated types, or set inclusion on
15309 set types. Same precedence as @code{<}.
15310
15311 @item =@r{, }<>@r{, }#
15312 Equality and two ways of expressing inequality, valid on scalar types.
15313 Same precedence as @code{<}. In @value{GDBN} scripts, only @code{<>} is
15314 available for inequality, since @code{#} conflicts with the script
15315 comment character.
15316
15317 @item IN
15318 Set membership. Defined on set types and the types of their members.
15319 Same precedence as @code{<}.
15320
15321 @item OR
15322 Boolean disjunction. Defined on boolean types.
15323
15324 @item AND@r{, }&
15325 Boolean conjunction. Defined on boolean types.
15326
15327 @item @@
15328 The @value{GDBN} ``artificial array'' operator (@pxref{Expressions, ,Expressions}).
15329
15330 @item +@r{, }-
15331 Addition and subtraction on integral and floating-point types, or union
15332 and difference on set types.
15333
15334 @item *
15335 Multiplication on integral and floating-point types, or set intersection
15336 on set types.
15337
15338 @item /
15339 Division on floating-point types, or symmetric set difference on set
15340 types. Same precedence as @code{*}.
15341
15342 @item DIV@r{, }MOD
15343 Integer division and remainder. Defined on integral types. Same
15344 precedence as @code{*}.
15345
15346 @item -
15347 Negative. Defined on @code{INTEGER} and @code{REAL} data.
15348
15349 @item ^
15350 Pointer dereferencing. Defined on pointer types.
15351
15352 @item NOT
15353 Boolean negation. Defined on boolean types. Same precedence as
15354 @code{^}.
15355
15356 @item .
15357 @code{RECORD} field selector. Defined on @code{RECORD} data. Same
15358 precedence as @code{^}.
15359
15360 @item []
15361 Array indexing. Defined on @code{ARRAY} data. Same precedence as @code{^}.
15362
15363 @item ()
15364 Procedure argument list. Defined on @code{PROCEDURE} objects. Same precedence
15365 as @code{^}.
15366
15367 @item ::@r{, }.
15368 @value{GDBN} and Modula-2 scope operators.
15369 @end table
15370
15371 @quotation
15372 @emph{Warning:} Set expressions and their operations are not yet supported, so @value{GDBN}
15373 treats the use of the operator @code{IN}, or the use of operators
15374 @code{+}, @code{-}, @code{*}, @code{/}, @code{=}, , @code{<>}, @code{#},
15375 @code{<=}, and @code{>=} on sets as an error.
15376 @end quotation
15377
15378
15379 @node Built-In Func/Proc
15380 @subsubsection Built-in Functions and Procedures
15381 @cindex Modula-2 built-ins
15382
15383 Modula-2 also makes available several built-in procedures and functions.
15384 In describing these, the following metavariables are used:
15385
15386 @table @var
15387
15388 @item a
15389 represents an @code{ARRAY} variable.
15390
15391 @item c
15392 represents a @code{CHAR} constant or variable.
15393
15394 @item i
15395 represents a variable or constant of integral type.
15396
15397 @item m
15398 represents an identifier that belongs to a set. Generally used in the
15399 same function with the metavariable @var{s}. The type of @var{s} should
15400 be @code{SET OF @var{mtype}} (where @var{mtype} is the type of @var{m}).
15401
15402 @item n
15403 represents a variable or constant of integral or floating-point type.
15404
15405 @item r
15406 represents a variable or constant of floating-point type.
15407
15408 @item t
15409 represents a type.
15410
15411 @item v
15412 represents a variable.
15413
15414 @item x
15415 represents a variable or constant of one of many types. See the
15416 explanation of the function for details.
15417 @end table
15418
15419 All Modula-2 built-in procedures also return a result, described below.
15420
15421 @table @code
15422 @item ABS(@var{n})
15423 Returns the absolute value of @var{n}.
15424
15425 @item CAP(@var{c})
15426 If @var{c} is a lower case letter, it returns its upper case
15427 equivalent, otherwise it returns its argument.
15428
15429 @item CHR(@var{i})
15430 Returns the character whose ordinal value is @var{i}.
15431
15432 @item DEC(@var{v})
15433 Decrements the value in the variable @var{v} by one. Returns the new value.
15434
15435 @item DEC(@var{v},@var{i})
15436 Decrements the value in the variable @var{v} by @var{i}. Returns the
15437 new value.
15438
15439 @item EXCL(@var{m},@var{s})
15440 Removes the element @var{m} from the set @var{s}. Returns the new
15441 set.
15442
15443 @item FLOAT(@var{i})
15444 Returns the floating point equivalent of the integer @var{i}.
15445
15446 @item HIGH(@var{a})
15447 Returns the index of the last member of @var{a}.
15448
15449 @item INC(@var{v})
15450 Increments the value in the variable @var{v} by one. Returns the new value.
15451
15452 @item INC(@var{v},@var{i})
15453 Increments the value in the variable @var{v} by @var{i}. Returns the
15454 new value.
15455
15456 @item INCL(@var{m},@var{s})
15457 Adds the element @var{m} to the set @var{s} if it is not already
15458 there. Returns the new set.
15459
15460 @item MAX(@var{t})
15461 Returns the maximum value of the type @var{t}.
15462
15463 @item MIN(@var{t})
15464 Returns the minimum value of the type @var{t}.
15465
15466 @item ODD(@var{i})
15467 Returns boolean TRUE if @var{i} is an odd number.
15468
15469 @item ORD(@var{x})
15470 Returns the ordinal value of its argument. For example, the ordinal
15471 value of a character is its @sc{ascii} value (on machines supporting
15472 the @sc{ascii} character set). The argument @var{x} must be of an
15473 ordered type, which include integral, character and enumerated types.
15474
15475 @item SIZE(@var{x})
15476 Returns the size of its argument. The argument @var{x} can be a
15477 variable or a type.
15478
15479 @item TRUNC(@var{r})
15480 Returns the integral part of @var{r}.
15481
15482 @item TSIZE(@var{x})
15483 Returns the size of its argument. The argument @var{x} can be a
15484 variable or a type.
15485
15486 @item VAL(@var{t},@var{i})
15487 Returns the member of the type @var{t} whose ordinal value is @var{i}.
15488 @end table
15489
15490 @quotation
15491 @emph{Warning:} Sets and their operations are not yet supported, so
15492 @value{GDBN} treats the use of procedures @code{INCL} and @code{EXCL} as
15493 an error.
15494 @end quotation
15495
15496 @cindex Modula-2 constants
15497 @node M2 Constants
15498 @subsubsection Constants
15499
15500 @value{GDBN} allows you to express the constants of Modula-2 in the following
15501 ways:
15502
15503 @itemize @bullet
15504
15505 @item
15506 Integer constants are simply a sequence of digits. When used in an
15507 expression, a constant is interpreted to be type-compatible with the
15508 rest of the expression. Hexadecimal integers are specified by a
15509 trailing @samp{H}, and octal integers by a trailing @samp{B}.
15510
15511 @item
15512 Floating point constants appear as a sequence of digits, followed by a
15513 decimal point and another sequence of digits. An optional exponent can
15514 then be specified, in the form @samp{E@r{[}+@r{|}-@r{]}@var{nnn}}, where
15515 @samp{@r{[}+@r{|}-@r{]}@var{nnn}} is the desired exponent. All of the
15516 digits of the floating point constant must be valid decimal (base 10)
15517 digits.
15518
15519 @item
15520 Character constants consist of a single character enclosed by a pair of
15521 like quotes, either single (@code{'}) or double (@code{"}). They may
15522 also be expressed by their ordinal value (their @sc{ascii} value, usually)
15523 followed by a @samp{C}.
15524
15525 @item
15526 String constants consist of a sequence of characters enclosed by a
15527 pair of like quotes, either single (@code{'}) or double (@code{"}).
15528 Escape sequences in the style of C are also allowed. @xref{C
15529 Constants, ,C and C@t{++} Constants}, for a brief explanation of escape
15530 sequences.
15531
15532 @item
15533 Enumerated constants consist of an enumerated identifier.
15534
15535 @item
15536 Boolean constants consist of the identifiers @code{TRUE} and
15537 @code{FALSE}.
15538
15539 @item
15540 Pointer constants consist of integral values only.
15541
15542 @item
15543 Set constants are not yet supported.
15544 @end itemize
15545
15546 @node M2 Types
15547 @subsubsection Modula-2 Types
15548 @cindex Modula-2 types
15549
15550 Currently @value{GDBN} can print the following data types in Modula-2
15551 syntax: array types, record types, set types, pointer types, procedure
15552 types, enumerated types, subrange types and base types. You can also
15553 print the contents of variables declared using these type.
15554 This section gives a number of simple source code examples together with
15555 sample @value{GDBN} sessions.
15556
15557 The first example contains the following section of code:
15558
15559 @smallexample
15560 VAR
15561 s: SET OF CHAR ;
15562 r: [20..40] ;
15563 @end smallexample
15564
15565 @noindent
15566 and you can request @value{GDBN} to interrogate the type and value of
15567 @code{r} and @code{s}.
15568
15569 @smallexample
15570 (@value{GDBP}) print s
15571 @{'A'..'C', 'Z'@}
15572 (@value{GDBP}) ptype s
15573 SET OF CHAR
15574 (@value{GDBP}) print r
15575 21
15576 (@value{GDBP}) ptype r
15577 [20..40]
15578 @end smallexample
15579
15580 @noindent
15581 Likewise if your source code declares @code{s} as:
15582
15583 @smallexample
15584 VAR
15585 s: SET ['A'..'Z'] ;
15586 @end smallexample
15587
15588 @noindent
15589 then you may query the type of @code{s} by:
15590
15591 @smallexample
15592 (@value{GDBP}) ptype s
15593 type = SET ['A'..'Z']
15594 @end smallexample
15595
15596 @noindent
15597 Note that at present you cannot interactively manipulate set
15598 expressions using the debugger.
15599
15600 The following example shows how you might declare an array in Modula-2
15601 and how you can interact with @value{GDBN} to print its type and contents:
15602
15603 @smallexample
15604 VAR
15605 s: ARRAY [-10..10] OF CHAR ;
15606 @end smallexample
15607
15608 @smallexample
15609 (@value{GDBP}) ptype s
15610 ARRAY [-10..10] OF CHAR
15611 @end smallexample
15612
15613 Note that the array handling is not yet complete and although the type
15614 is printed correctly, expression handling still assumes that all
15615 arrays have a lower bound of zero and not @code{-10} as in the example
15616 above.
15617
15618 Here are some more type related Modula-2 examples:
15619
15620 @smallexample
15621 TYPE
15622 colour = (blue, red, yellow, green) ;
15623 t = [blue..yellow] ;
15624 VAR
15625 s: t ;
15626 BEGIN
15627 s := blue ;
15628 @end smallexample
15629
15630 @noindent
15631 The @value{GDBN} interaction shows how you can query the data type
15632 and value of a variable.
15633
15634 @smallexample
15635 (@value{GDBP}) print s
15636 $1 = blue
15637 (@value{GDBP}) ptype t
15638 type = [blue..yellow]
15639 @end smallexample
15640
15641 @noindent
15642 In this example a Modula-2 array is declared and its contents
15643 displayed. Observe that the contents are written in the same way as
15644 their @code{C} counterparts.
15645
15646 @smallexample
15647 VAR
15648 s: ARRAY [1..5] OF CARDINAL ;
15649 BEGIN
15650 s[1] := 1 ;
15651 @end smallexample
15652
15653 @smallexample
15654 (@value{GDBP}) print s
15655 $1 = @{1, 0, 0, 0, 0@}
15656 (@value{GDBP}) ptype s
15657 type = ARRAY [1..5] OF CARDINAL
15658 @end smallexample
15659
15660 The Modula-2 language interface to @value{GDBN} also understands
15661 pointer types as shown in this example:
15662
15663 @smallexample
15664 VAR
15665 s: POINTER TO ARRAY [1..5] OF CARDINAL ;
15666 BEGIN
15667 NEW(s) ;
15668 s^[1] := 1 ;
15669 @end smallexample
15670
15671 @noindent
15672 and you can request that @value{GDBN} describes the type of @code{s}.
15673
15674 @smallexample
15675 (@value{GDBP}) ptype s
15676 type = POINTER TO ARRAY [1..5] OF CARDINAL
15677 @end smallexample
15678
15679 @value{GDBN} handles compound types as we can see in this example.
15680 Here we combine array types, record types, pointer types and subrange
15681 types:
15682
15683 @smallexample
15684 TYPE
15685 foo = RECORD
15686 f1: CARDINAL ;
15687 f2: CHAR ;
15688 f3: myarray ;
15689 END ;
15690
15691 myarray = ARRAY myrange OF CARDINAL ;
15692 myrange = [-2..2] ;
15693 VAR
15694 s: POINTER TO ARRAY myrange OF foo ;
15695 @end smallexample
15696
15697 @noindent
15698 and you can ask @value{GDBN} to describe the type of @code{s} as shown
15699 below.
15700
15701 @smallexample
15702 (@value{GDBP}) ptype s
15703 type = POINTER TO ARRAY [-2..2] OF foo = RECORD
15704 f1 : CARDINAL;
15705 f2 : CHAR;
15706 f3 : ARRAY [-2..2] OF CARDINAL;
15707 END
15708 @end smallexample
15709
15710 @node M2 Defaults
15711 @subsubsection Modula-2 Defaults
15712 @cindex Modula-2 defaults
15713
15714 If type and range checking are set automatically by @value{GDBN}, they
15715 both default to @code{on} whenever the working language changes to
15716 Modula-2. This happens regardless of whether you or @value{GDBN}
15717 selected the working language.
15718
15719 If you allow @value{GDBN} to set the language automatically, then entering
15720 code compiled from a file whose name ends with @file{.mod} sets the
15721 working language to Modula-2. @xref{Automatically, ,Having @value{GDBN}
15722 Infer the Source Language}, for further details.
15723
15724 @node Deviations
15725 @subsubsection Deviations from Standard Modula-2
15726 @cindex Modula-2, deviations from
15727
15728 A few changes have been made to make Modula-2 programs easier to debug.
15729 This is done primarily via loosening its type strictness:
15730
15731 @itemize @bullet
15732 @item
15733 Unlike in standard Modula-2, pointer constants can be formed by
15734 integers. This allows you to modify pointer variables during
15735 debugging. (In standard Modula-2, the actual address contained in a
15736 pointer variable is hidden from you; it can only be modified
15737 through direct assignment to another pointer variable or expression that
15738 returned a pointer.)
15739
15740 @item
15741 C escape sequences can be used in strings and characters to represent
15742 non-printable characters. @value{GDBN} prints out strings with these
15743 escape sequences embedded. Single non-printable characters are
15744 printed using the @samp{CHR(@var{nnn})} format.
15745
15746 @item
15747 The assignment operator (@code{:=}) returns the value of its right-hand
15748 argument.
15749
15750 @item
15751 All built-in procedures both modify @emph{and} return their argument.
15752 @end itemize
15753
15754 @node M2 Checks
15755 @subsubsection Modula-2 Type and Range Checks
15756 @cindex Modula-2 checks
15757
15758 @quotation
15759 @emph{Warning:} in this release, @value{GDBN} does not yet perform type or
15760 range checking.
15761 @end quotation
15762 @c FIXME remove warning when type/range checks added
15763
15764 @value{GDBN} considers two Modula-2 variables type equivalent if:
15765
15766 @itemize @bullet
15767 @item
15768 They are of types that have been declared equivalent via a @code{TYPE
15769 @var{t1} = @var{t2}} statement
15770
15771 @item
15772 They have been declared on the same line. (Note: This is true of the
15773 @sc{gnu} Modula-2 compiler, but it may not be true of other compilers.)
15774 @end itemize
15775
15776 As long as type checking is enabled, any attempt to combine variables
15777 whose types are not equivalent is an error.
15778
15779 Range checking is done on all mathematical operations, assignment, array
15780 index bounds, and all built-in functions and procedures.
15781
15782 @node M2 Scope
15783 @subsubsection The Scope Operators @code{::} and @code{.}
15784 @cindex scope
15785 @cindex @code{.}, Modula-2 scope operator
15786 @cindex colon, doubled as scope operator
15787 @ifinfo
15788 @vindex colon-colon@r{, in Modula-2}
15789 @c Info cannot handle :: but TeX can.
15790 @end ifinfo
15791 @ifnotinfo
15792 @vindex ::@r{, in Modula-2}
15793 @end ifnotinfo
15794
15795 There are a few subtle differences between the Modula-2 scope operator
15796 (@code{.}) and the @value{GDBN} scope operator (@code{::}). The two have
15797 similar syntax:
15798
15799 @smallexample
15800
15801 @var{module} . @var{id}
15802 @var{scope} :: @var{id}
15803 @end smallexample
15804
15805 @noindent
15806 where @var{scope} is the name of a module or a procedure,
15807 @var{module} the name of a module, and @var{id} is any declared
15808 identifier within your program, except another module.
15809
15810 Using the @code{::} operator makes @value{GDBN} search the scope
15811 specified by @var{scope} for the identifier @var{id}. If it is not
15812 found in the specified scope, then @value{GDBN} searches all scopes
15813 enclosing the one specified by @var{scope}.
15814
15815 Using the @code{.} operator makes @value{GDBN} search the current scope for
15816 the identifier specified by @var{id} that was imported from the
15817 definition module specified by @var{module}. With this operator, it is
15818 an error if the identifier @var{id} was not imported from definition
15819 module @var{module}, or if @var{id} is not an identifier in
15820 @var{module}.
15821
15822 @node GDB/M2
15823 @subsubsection @value{GDBN} and Modula-2
15824
15825 Some @value{GDBN} commands have little use when debugging Modula-2 programs.
15826 Five subcommands of @code{set print} and @code{show print} apply
15827 specifically to C and C@t{++}: @samp{vtbl}, @samp{demangle},
15828 @samp{asm-demangle}, @samp{object}, and @samp{union}. The first four
15829 apply to C@t{++}, and the last to the C @code{union} type, which has no direct
15830 analogue in Modula-2.
15831
15832 The @code{@@} operator (@pxref{Expressions, ,Expressions}), while available
15833 with any language, is not useful with Modula-2. Its
15834 intent is to aid the debugging of @dfn{dynamic arrays}, which cannot be
15835 created in Modula-2 as they can in C or C@t{++}. However, because an
15836 address can be specified by an integral constant, the construct
15837 @samp{@{@var{type}@}@var{adrexp}} is still useful.
15838
15839 @cindex @code{#} in Modula-2
15840 In @value{GDBN} scripts, the Modula-2 inequality operator @code{#} is
15841 interpreted as the beginning of a comment. Use @code{<>} instead.
15842
15843 @node Ada
15844 @subsection Ada
15845 @cindex Ada
15846
15847 The extensions made to @value{GDBN} for Ada only support
15848 output from the @sc{gnu} Ada (GNAT) compiler.
15849 Other Ada compilers are not currently supported, and
15850 attempting to debug executables produced by them is most likely
15851 to be difficult.
15852
15853
15854 @cindex expressions in Ada
15855 @menu
15856 * Ada Mode Intro:: General remarks on the Ada syntax
15857 and semantics supported by Ada mode
15858 in @value{GDBN}.
15859 * Omissions from Ada:: Restrictions on the Ada expression syntax.
15860 * Additions to Ada:: Extensions of the Ada expression syntax.
15861 * Overloading support for Ada:: Support for expressions involving overloaded
15862 subprograms.
15863 * Stopping Before Main Program:: Debugging the program during elaboration.
15864 * Ada Exceptions:: Ada Exceptions
15865 * Ada Tasks:: Listing and setting breakpoints in tasks.
15866 * Ada Tasks and Core Files:: Tasking Support when Debugging Core Files
15867 * Ravenscar Profile:: Tasking Support when using the Ravenscar
15868 Profile
15869 * Ada Glitches:: Known peculiarities of Ada mode.
15870 @end menu
15871
15872 @node Ada Mode Intro
15873 @subsubsection Introduction
15874 @cindex Ada mode, general
15875
15876 The Ada mode of @value{GDBN} supports a fairly large subset of Ada expression
15877 syntax, with some extensions.
15878 The philosophy behind the design of this subset is
15879
15880 @itemize @bullet
15881 @item
15882 That @value{GDBN} should provide basic literals and access to operations for
15883 arithmetic, dereferencing, field selection, indexing, and subprogram calls,
15884 leaving more sophisticated computations to subprograms written into the
15885 program (which therefore may be called from @value{GDBN}).
15886
15887 @item
15888 That type safety and strict adherence to Ada language restrictions
15889 are not particularly important to the @value{GDBN} user.
15890
15891 @item
15892 That brevity is important to the @value{GDBN} user.
15893 @end itemize
15894
15895 Thus, for brevity, the debugger acts as if all names declared in
15896 user-written packages are directly visible, even if they are not visible
15897 according to Ada rules, thus making it unnecessary to fully qualify most
15898 names with their packages, regardless of context. Where this causes
15899 ambiguity, @value{GDBN} asks the user's intent.
15900
15901 The debugger will start in Ada mode if it detects an Ada main program.
15902 As for other languages, it will enter Ada mode when stopped in a program that
15903 was translated from an Ada source file.
15904
15905 While in Ada mode, you may use `@t{--}' for comments. This is useful
15906 mostly for documenting command files. The standard @value{GDBN} comment
15907 (@samp{#}) still works at the beginning of a line in Ada mode, but not in the
15908 middle (to allow based literals).
15909
15910 @node Omissions from Ada
15911 @subsubsection Omissions from Ada
15912 @cindex Ada, omissions from
15913
15914 Here are the notable omissions from the subset:
15915
15916 @itemize @bullet
15917 @item
15918 Only a subset of the attributes are supported:
15919
15920 @itemize @minus
15921 @item
15922 @t{'First}, @t{'Last}, and @t{'Length}
15923 on array objects (not on types and subtypes).
15924
15925 @item
15926 @t{'Min} and @t{'Max}.
15927
15928 @item
15929 @t{'Pos} and @t{'Val}.
15930
15931 @item
15932 @t{'Tag}.
15933
15934 @item
15935 @t{'Range} on array objects (not subtypes), but only as the right
15936 operand of the membership (@code{in}) operator.
15937
15938 @item
15939 @t{'Access}, @t{'Unchecked_Access}, and
15940 @t{'Unrestricted_Access} (a GNAT extension).
15941
15942 @item
15943 @t{'Address}.
15944 @end itemize
15945
15946 @item
15947 The names in
15948 @code{Characters.Latin_1} are not available and
15949 concatenation is not implemented. Thus, escape characters in strings are
15950 not currently available.
15951
15952 @item
15953 Equality tests (@samp{=} and @samp{/=}) on arrays test for bitwise
15954 equality of representations. They will generally work correctly
15955 for strings and arrays whose elements have integer or enumeration types.
15956 They may not work correctly for arrays whose element
15957 types have user-defined equality, for arrays of real values
15958 (in particular, IEEE-conformant floating point, because of negative
15959 zeroes and NaNs), and for arrays whose elements contain unused bits with
15960 indeterminate values.
15961
15962 @item
15963 The other component-by-component array operations (@code{and}, @code{or},
15964 @code{xor}, @code{not}, and relational tests other than equality)
15965 are not implemented.
15966
15967 @item
15968 @cindex array aggregates (Ada)
15969 @cindex record aggregates (Ada)
15970 @cindex aggregates (Ada)
15971 There is limited support for array and record aggregates. They are
15972 permitted only on the right sides of assignments, as in these examples:
15973
15974 @smallexample
15975 (@value{GDBP}) set An_Array := (1, 2, 3, 4, 5, 6)
15976 (@value{GDBP}) set An_Array := (1, others => 0)
15977 (@value{GDBP}) set An_Array := (0|4 => 1, 1..3 => 2, 5 => 6)
15978 (@value{GDBP}) set A_2D_Array := ((1, 2, 3), (4, 5, 6), (7, 8, 9))
15979 (@value{GDBP}) set A_Record := (1, "Peter", True);
15980 (@value{GDBP}) set A_Record := (Name => "Peter", Id => 1, Alive => True)
15981 @end smallexample
15982
15983 Changing a
15984 discriminant's value by assigning an aggregate has an
15985 undefined effect if that discriminant is used within the record.
15986 However, you can first modify discriminants by directly assigning to
15987 them (which normally would not be allowed in Ada), and then performing an
15988 aggregate assignment. For example, given a variable @code{A_Rec}
15989 declared to have a type such as:
15990
15991 @smallexample
15992 type Rec (Len : Small_Integer := 0) is record
15993 Id : Integer;
15994 Vals : IntArray (1 .. Len);
15995 end record;
15996 @end smallexample
15997
15998 you can assign a value with a different size of @code{Vals} with two
15999 assignments:
16000
16001 @smallexample
16002 (@value{GDBP}) set A_Rec.Len := 4
16003 (@value{GDBP}) set A_Rec := (Id => 42, Vals => (1, 2, 3, 4))
16004 @end smallexample
16005
16006 As this example also illustrates, @value{GDBN} is very loose about the usual
16007 rules concerning aggregates. You may leave out some of the
16008 components of an array or record aggregate (such as the @code{Len}
16009 component in the assignment to @code{A_Rec} above); they will retain their
16010 original values upon assignment. You may freely use dynamic values as
16011 indices in component associations. You may even use overlapping or
16012 redundant component associations, although which component values are
16013 assigned in such cases is not defined.
16014
16015 @item
16016 Calls to dispatching subprograms are not implemented.
16017
16018 @item
16019 The overloading algorithm is much more limited (i.e., less selective)
16020 than that of real Ada. It makes only limited use of the context in
16021 which a subexpression appears to resolve its meaning, and it is much
16022 looser in its rules for allowing type matches. As a result, some
16023 function calls will be ambiguous, and the user will be asked to choose
16024 the proper resolution.
16025
16026 @item
16027 The @code{new} operator is not implemented.
16028
16029 @item
16030 Entry calls are not implemented.
16031
16032 @item
16033 Aside from printing, arithmetic operations on the native VAX floating-point
16034 formats are not supported.
16035
16036 @item
16037 It is not possible to slice a packed array.
16038
16039 @item
16040 The names @code{True} and @code{False}, when not part of a qualified name,
16041 are interpreted as if implicitly prefixed by @code{Standard}, regardless of
16042 context.
16043 Should your program
16044 redefine these names in a package or procedure (at best a dubious practice),
16045 you will have to use fully qualified names to access their new definitions.
16046 @end itemize
16047
16048 @node Additions to Ada
16049 @subsubsection Additions to Ada
16050 @cindex Ada, deviations from
16051
16052 As it does for other languages, @value{GDBN} makes certain generic
16053 extensions to Ada (@pxref{Expressions}):
16054
16055 @itemize @bullet
16056 @item
16057 If the expression @var{E} is a variable residing in memory (typically
16058 a local variable or array element) and @var{N} is a positive integer,
16059 then @code{@var{E}@@@var{N}} displays the values of @var{E} and the
16060 @var{N}-1 adjacent variables following it in memory as an array. In
16061 Ada, this operator is generally not necessary, since its prime use is
16062 in displaying parts of an array, and slicing will usually do this in
16063 Ada. However, there are occasional uses when debugging programs in
16064 which certain debugging information has been optimized away.
16065
16066 @item
16067 @code{@var{B}::@var{var}} means ``the variable named @var{var} that
16068 appears in function or file @var{B}.'' When @var{B} is a file name,
16069 you must typically surround it in single quotes.
16070
16071 @item
16072 The expression @code{@{@var{type}@} @var{addr}} means ``the variable of type
16073 @var{type} that appears at address @var{addr}.''
16074
16075 @item
16076 A name starting with @samp{$} is a convenience variable
16077 (@pxref{Convenience Vars}) or a machine register (@pxref{Registers}).
16078 @end itemize
16079
16080 In addition, @value{GDBN} provides a few other shortcuts and outright
16081 additions specific to Ada:
16082
16083 @itemize @bullet
16084 @item
16085 The assignment statement is allowed as an expression, returning
16086 its right-hand operand as its value. Thus, you may enter
16087
16088 @smallexample
16089 (@value{GDBP}) set x := y + 3
16090 (@value{GDBP}) print A(tmp := y + 1)
16091 @end smallexample
16092
16093 @item
16094 The semicolon is allowed as an ``operator,'' returning as its value
16095 the value of its right-hand operand.
16096 This allows, for example,
16097 complex conditional breaks:
16098
16099 @smallexample
16100 (@value{GDBP}) break f
16101 (@value{GDBP}) condition 1 (report(i); k += 1; A(k) > 100)
16102 @end smallexample
16103
16104 @item
16105 Rather than use catenation and symbolic character names to introduce special
16106 characters into strings, one may instead use a special bracket notation,
16107 which is also used to print strings. A sequence of characters of the form
16108 @samp{["@var{XX}"]} within a string or character literal denotes the
16109 (single) character whose numeric encoding is @var{XX} in hexadecimal. The
16110 sequence of characters @samp{["""]} also denotes a single quotation mark
16111 in strings. For example,
16112 @smallexample
16113 "One line.["0a"]Next line.["0a"]"
16114 @end smallexample
16115 @noindent
16116 contains an ASCII newline character (@code{Ada.Characters.Latin_1.LF})
16117 after each period.
16118
16119 @item
16120 The subtype used as a prefix for the attributes @t{'Pos}, @t{'Min}, and
16121 @t{'Max} is optional (and is ignored in any case). For example, it is valid
16122 to write
16123
16124 @smallexample
16125 (@value{GDBP}) print 'max(x, y)
16126 @end smallexample
16127
16128 @item
16129 When printing arrays, @value{GDBN} uses positional notation when the
16130 array has a lower bound of 1, and uses a modified named notation otherwise.
16131 For example, a one-dimensional array of three integers with a lower bound
16132 of 3 might print as
16133
16134 @smallexample
16135 (3 => 10, 17, 1)
16136 @end smallexample
16137
16138 @noindent
16139 That is, in contrast to valid Ada, only the first component has a @code{=>}
16140 clause.
16141
16142 @item
16143 You may abbreviate attributes in expressions with any unique,
16144 multi-character subsequence of
16145 their names (an exact match gets preference).
16146 For example, you may use @t{a'len}, @t{a'gth}, or @t{a'lh}
16147 in place of @t{a'length}.
16148
16149 @item
16150 @cindex quoting Ada internal identifiers
16151 Since Ada is case-insensitive, the debugger normally maps identifiers you type
16152 to lower case. The GNAT compiler uses upper-case characters for
16153 some of its internal identifiers, which are normally of no interest to users.
16154 For the rare occasions when you actually have to look at them,
16155 enclose them in angle brackets to avoid the lower-case mapping.
16156 For example,
16157 @smallexample
16158 (@value{GDBP}) print <JMPBUF_SAVE>[0]
16159 @end smallexample
16160
16161 @item
16162 Printing an object of class-wide type or dereferencing an
16163 access-to-class-wide value will display all the components of the object's
16164 specific type (as indicated by its run-time tag). Likewise, component
16165 selection on such a value will operate on the specific type of the
16166 object.
16167
16168 @end itemize
16169
16170 @node Overloading support for Ada
16171 @subsubsection Overloading support for Ada
16172 @cindex overloading, Ada
16173
16174 The debugger supports limited overloading. Given a subprogram call in which
16175 the function symbol has multiple definitions, it will use the number of
16176 actual parameters and some information about their types to attempt to narrow
16177 the set of definitions. It also makes very limited use of context, preferring
16178 procedures to functions in the context of the @code{call} command, and
16179 functions to procedures elsewhere.
16180
16181 If, after narrowing, the set of matching definitions still contains more than
16182 one definition, @value{GDBN} will display a menu to query which one it should
16183 use, for instance:
16184
16185 @smallexample
16186 (@value{GDBP}) print f(1)
16187 Multiple matches for f
16188 [0] cancel
16189 [1] foo.f (integer) return boolean at foo.adb:23
16190 [2] foo.f (foo.new_integer) return boolean at foo.adb:28
16191 >
16192 @end smallexample
16193
16194 In this case, just select one menu entry either to cancel expression evaluation
16195 (type @kbd{0} and press @key{RET}) or to continue evaluation with a specific
16196 instance (type the corresponding number and press @key{RET}).
16197
16198 Here are a couple of commands to customize @value{GDBN}'s behavior in this
16199 case:
16200
16201 @table @code
16202
16203 @kindex set ada print-signatures
16204 @item set ada print-signatures
16205 Control whether parameter types and return types are displayed in overloads
16206 selection menus. It is @code{on} by default.
16207 @xref{Overloading support for Ada}.
16208
16209 @kindex show ada print-signatures
16210 @item show ada print-signatures
16211 Show the current setting for displaying parameter types and return types in
16212 overloads selection menu.
16213 @xref{Overloading support for Ada}.
16214
16215 @end table
16216
16217 @node Stopping Before Main Program
16218 @subsubsection Stopping at the Very Beginning
16219
16220 @cindex breakpointing Ada elaboration code
16221 It is sometimes necessary to debug the program during elaboration, and
16222 before reaching the main procedure.
16223 As defined in the Ada Reference
16224 Manual, the elaboration code is invoked from a procedure called
16225 @code{adainit}. To run your program up to the beginning of
16226 elaboration, simply use the following two commands:
16227 @code{tbreak adainit} and @code{run}.
16228
16229 @node Ada Exceptions
16230 @subsubsection Ada Exceptions
16231
16232 A command is provided to list all Ada exceptions:
16233
16234 @table @code
16235 @kindex info exceptions
16236 @item info exceptions
16237 @itemx info exceptions @var{regexp}
16238 The @code{info exceptions} command allows you to list all Ada exceptions
16239 defined within the program being debugged, as well as their addresses.
16240 With a regular expression, @var{regexp}, as argument, only those exceptions
16241 whose names match @var{regexp} are listed.
16242 @end table
16243
16244 Below is a small example, showing how the command can be used, first
16245 without argument, and next with a regular expression passed as an
16246 argument.
16247
16248 @smallexample
16249 (@value{GDBP}) info exceptions
16250 All defined Ada exceptions:
16251 constraint_error: 0x613da0
16252 program_error: 0x613d20
16253 storage_error: 0x613ce0
16254 tasking_error: 0x613ca0
16255 const.aint_global_e: 0x613b00
16256 (@value{GDBP}) info exceptions const.aint
16257 All Ada exceptions matching regular expression "const.aint":
16258 constraint_error: 0x613da0
16259 const.aint_global_e: 0x613b00
16260 @end smallexample
16261
16262 It is also possible to ask @value{GDBN} to stop your program's execution
16263 when an exception is raised. For more details, see @ref{Set Catchpoints}.
16264
16265 @node Ada Tasks
16266 @subsubsection Extensions for Ada Tasks
16267 @cindex Ada, tasking
16268
16269 Support for Ada tasks is analogous to that for threads (@pxref{Threads}).
16270 @value{GDBN} provides the following task-related commands:
16271
16272 @table @code
16273 @kindex info tasks
16274 @item info tasks
16275 This command shows a list of current Ada tasks, as in the following example:
16276
16277
16278 @smallexample
16279 @iftex
16280 @leftskip=0.5cm
16281 @end iftex
16282 (@value{GDBP}) info tasks
16283 ID TID P-ID Pri State Name
16284 1 8088000 0 15 Child Activation Wait main_task
16285 2 80a4000 1 15 Accept Statement b
16286 3 809a800 1 15 Child Activation Wait a
16287 * 4 80ae800 3 15 Runnable c
16288
16289 @end smallexample
16290
16291 @noindent
16292 In this listing, the asterisk before the last task indicates it to be the
16293 task currently being inspected.
16294
16295 @table @asis
16296 @item ID
16297 Represents @value{GDBN}'s internal task number.
16298
16299 @item TID
16300 The Ada task ID.
16301
16302 @item P-ID
16303 The parent's task ID (@value{GDBN}'s internal task number).
16304
16305 @item Pri
16306 The base priority of the task.
16307
16308 @item State
16309 Current state of the task.
16310
16311 @table @code
16312 @item Unactivated
16313 The task has been created but has not been activated. It cannot be
16314 executing.
16315
16316 @item Runnable
16317 The task is not blocked for any reason known to Ada. (It may be waiting
16318 for a mutex, though.) It is conceptually "executing" in normal mode.
16319
16320 @item Terminated
16321 The task is terminated, in the sense of ARM 9.3 (5). Any dependents
16322 that were waiting on terminate alternatives have been awakened and have
16323 terminated themselves.
16324
16325 @item Child Activation Wait
16326 The task is waiting for created tasks to complete activation.
16327
16328 @item Accept Statement
16329 The task is waiting on an accept or selective wait statement.
16330
16331 @item Waiting on entry call
16332 The task is waiting on an entry call.
16333
16334 @item Async Select Wait
16335 The task is waiting to start the abortable part of an asynchronous
16336 select statement.
16337
16338 @item Delay Sleep
16339 The task is waiting on a select statement with only a delay
16340 alternative open.
16341
16342 @item Child Termination Wait
16343 The task is sleeping having completed a master within itself, and is
16344 waiting for the tasks dependent on that master to become terminated or
16345 waiting on a terminate Phase.
16346
16347 @item Wait Child in Term Alt
16348 The task is sleeping waiting for tasks on terminate alternatives to
16349 finish terminating.
16350
16351 @item Accepting RV with @var{taskno}
16352 The task is accepting a rendez-vous with the task @var{taskno}.
16353 @end table
16354
16355 @item Name
16356 Name of the task in the program.
16357
16358 @end table
16359
16360 @kindex info task @var{taskno}
16361 @item info task @var{taskno}
16362 This command shows detailled informations on the specified task, as in
16363 the following example:
16364 @smallexample
16365 @iftex
16366 @leftskip=0.5cm
16367 @end iftex
16368 (@value{GDBP}) info tasks
16369 ID TID P-ID Pri State Name
16370 1 8077880 0 15 Child Activation Wait main_task
16371 * 2 807c468 1 15 Runnable task_1
16372 (@value{GDBP}) info task 2
16373 Ada Task: 0x807c468
16374 Name: task_1
16375 Thread: 0x807f378
16376 Parent: 1 (main_task)
16377 Base Priority: 15
16378 State: Runnable
16379 @end smallexample
16380
16381 @item task
16382 @kindex task@r{ (Ada)}
16383 @cindex current Ada task ID
16384 This command prints the ID of the current task.
16385
16386 @smallexample
16387 @iftex
16388 @leftskip=0.5cm
16389 @end iftex
16390 (@value{GDBP}) info tasks
16391 ID TID P-ID Pri State Name
16392 1 8077870 0 15 Child Activation Wait main_task
16393 * 2 807c458 1 15 Runnable t
16394 (@value{GDBP}) task
16395 [Current task is 2]
16396 @end smallexample
16397
16398 @item task @var{taskno}
16399 @cindex Ada task switching
16400 This command is like the @code{thread @var{thread-id}}
16401 command (@pxref{Threads}). It switches the context of debugging
16402 from the current task to the given task.
16403
16404 @smallexample
16405 @iftex
16406 @leftskip=0.5cm
16407 @end iftex
16408 (@value{GDBP}) info tasks
16409 ID TID P-ID Pri State Name
16410 1 8077870 0 15 Child Activation Wait main_task
16411 * 2 807c458 1 15 Runnable t
16412 (@value{GDBP}) task 1
16413 [Switching to task 1]
16414 #0 0x8067726 in pthread_cond_wait ()
16415 (@value{GDBP}) bt
16416 #0 0x8067726 in pthread_cond_wait ()
16417 #1 0x8056714 in system.os_interface.pthread_cond_wait ()
16418 #2 0x805cb63 in system.task_primitives.operations.sleep ()
16419 #3 0x806153e in system.tasking.stages.activate_tasks ()
16420 #4 0x804aacc in un () at un.adb:5
16421 @end smallexample
16422
16423 @item break @var{location} task @var{taskno}
16424 @itemx break @var{location} task @var{taskno} if @dots{}
16425 @cindex breakpoints and tasks, in Ada
16426 @cindex task breakpoints, in Ada
16427 @kindex break @dots{} task @var{taskno}@r{ (Ada)}
16428 These commands are like the @code{break @dots{} thread @dots{}}
16429 command (@pxref{Thread Stops}). The
16430 @var{location} argument specifies source lines, as described
16431 in @ref{Specify Location}.
16432
16433 Use the qualifier @samp{task @var{taskno}} with a breakpoint command
16434 to specify that you only want @value{GDBN} to stop the program when a
16435 particular Ada task reaches this breakpoint. The @var{taskno} is one of the
16436 numeric task identifiers assigned by @value{GDBN}, shown in the first
16437 column of the @samp{info tasks} display.
16438
16439 If you do not specify @samp{task @var{taskno}} when you set a
16440 breakpoint, the breakpoint applies to @emph{all} tasks of your
16441 program.
16442
16443 You can use the @code{task} qualifier on conditional breakpoints as
16444 well; in this case, place @samp{task @var{taskno}} before the
16445 breakpoint condition (before the @code{if}).
16446
16447 For example,
16448
16449 @smallexample
16450 @iftex
16451 @leftskip=0.5cm
16452 @end iftex
16453 (@value{GDBP}) info tasks
16454 ID TID P-ID Pri State Name
16455 1 140022020 0 15 Child Activation Wait main_task
16456 2 140045060 1 15 Accept/Select Wait t2
16457 3 140044840 1 15 Runnable t1
16458 * 4 140056040 1 15 Runnable t3
16459 (@value{GDBP}) b 15 task 2
16460 Breakpoint 5 at 0x120044cb0: file test_task_debug.adb, line 15.
16461 (@value{GDBP}) cont
16462 Continuing.
16463 task # 1 running
16464 task # 2 running
16465
16466 Breakpoint 5, test_task_debug () at test_task_debug.adb:15
16467 15 flush;
16468 (@value{GDBP}) info tasks
16469 ID TID P-ID Pri State Name
16470 1 140022020 0 15 Child Activation Wait main_task
16471 * 2 140045060 1 15 Runnable t2
16472 3 140044840 1 15 Runnable t1
16473 4 140056040 1 15 Delay Sleep t3
16474 @end smallexample
16475 @end table
16476
16477 @node Ada Tasks and Core Files
16478 @subsubsection Tasking Support when Debugging Core Files
16479 @cindex Ada tasking and core file debugging
16480
16481 When inspecting a core file, as opposed to debugging a live program,
16482 tasking support may be limited or even unavailable, depending on
16483 the platform being used.
16484 For instance, on x86-linux, the list of tasks is available, but task
16485 switching is not supported.
16486
16487 On certain platforms, the debugger needs to perform some
16488 memory writes in order to provide Ada tasking support. When inspecting
16489 a core file, this means that the core file must be opened with read-write
16490 privileges, using the command @samp{"set write on"} (@pxref{Patching}).
16491 Under these circumstances, you should make a backup copy of the core
16492 file before inspecting it with @value{GDBN}.
16493
16494 @node Ravenscar Profile
16495 @subsubsection Tasking Support when using the Ravenscar Profile
16496 @cindex Ravenscar Profile
16497
16498 The @dfn{Ravenscar Profile} is a subset of the Ada tasking features,
16499 specifically designed for systems with safety-critical real-time
16500 requirements.
16501
16502 @table @code
16503 @kindex set ravenscar task-switching on
16504 @cindex task switching with program using Ravenscar Profile
16505 @item set ravenscar task-switching on
16506 Allows task switching when debugging a program that uses the Ravenscar
16507 Profile. This is the default.
16508
16509 @kindex set ravenscar task-switching off
16510 @item set ravenscar task-switching off
16511 Turn off task switching when debugging a program that uses the Ravenscar
16512 Profile. This is mostly intended to disable the code that adds support
16513 for the Ravenscar Profile, in case a bug in either @value{GDBN} or in
16514 the Ravenscar runtime is preventing @value{GDBN} from working properly.
16515 To be effective, this command should be run before the program is started.
16516
16517 @kindex show ravenscar task-switching
16518 @item show ravenscar task-switching
16519 Show whether it is possible to switch from task to task in a program
16520 using the Ravenscar Profile.
16521
16522 @end table
16523
16524 @node Ada Glitches
16525 @subsubsection Known Peculiarities of Ada Mode
16526 @cindex Ada, problems
16527
16528 Besides the omissions listed previously (@pxref{Omissions from Ada}),
16529 we know of several problems with and limitations of Ada mode in
16530 @value{GDBN},
16531 some of which will be fixed with planned future releases of the debugger
16532 and the GNU Ada compiler.
16533
16534 @itemize @bullet
16535 @item
16536 Static constants that the compiler chooses not to materialize as objects in
16537 storage are invisible to the debugger.
16538
16539 @item
16540 Named parameter associations in function argument lists are ignored (the
16541 argument lists are treated as positional).
16542
16543 @item
16544 Many useful library packages are currently invisible to the debugger.
16545
16546 @item
16547 Fixed-point arithmetic, conversions, input, and output is carried out using
16548 floating-point arithmetic, and may give results that only approximate those on
16549 the host machine.
16550
16551 @item
16552 The GNAT compiler never generates the prefix @code{Standard} for any of
16553 the standard symbols defined by the Ada language. @value{GDBN} knows about
16554 this: it will strip the prefix from names when you use it, and will never
16555 look for a name you have so qualified among local symbols, nor match against
16556 symbols in other packages or subprograms. If you have
16557 defined entities anywhere in your program other than parameters and
16558 local variables whose simple names match names in @code{Standard},
16559 GNAT's lack of qualification here can cause confusion. When this happens,
16560 you can usually resolve the confusion
16561 by qualifying the problematic names with package
16562 @code{Standard} explicitly.
16563 @end itemize
16564
16565 Older versions of the compiler sometimes generate erroneous debugging
16566 information, resulting in the debugger incorrectly printing the value
16567 of affected entities. In some cases, the debugger is able to work
16568 around an issue automatically. In other cases, the debugger is able
16569 to work around the issue, but the work-around has to be specifically
16570 enabled.
16571
16572 @kindex set ada trust-PAD-over-XVS
16573 @kindex show ada trust-PAD-over-XVS
16574 @table @code
16575
16576 @item set ada trust-PAD-over-XVS on
16577 Configure GDB to strictly follow the GNAT encoding when computing the
16578 value of Ada entities, particularly when @code{PAD} and @code{PAD___XVS}
16579 types are involved (see @code{ada/exp_dbug.ads} in the GCC sources for
16580 a complete description of the encoding used by the GNAT compiler).
16581 This is the default.
16582
16583 @item set ada trust-PAD-over-XVS off
16584 This is related to the encoding using by the GNAT compiler. If @value{GDBN}
16585 sometimes prints the wrong value for certain entities, changing @code{ada
16586 trust-PAD-over-XVS} to @code{off} activates a work-around which may fix
16587 the issue. It is always safe to set @code{ada trust-PAD-over-XVS} to
16588 @code{off}, but this incurs a slight performance penalty, so it is
16589 recommended to leave this setting to @code{on} unless necessary.
16590
16591 @end table
16592
16593 @cindex GNAT descriptive types
16594 @cindex GNAT encoding
16595 Internally, the debugger also relies on the compiler following a number
16596 of conventions known as the @samp{GNAT Encoding}, all documented in
16597 @file{gcc/ada/exp_dbug.ads} in the GCC sources. This encoding describes
16598 how the debugging information should be generated for certain types.
16599 In particular, this convention makes use of @dfn{descriptive types},
16600 which are artificial types generated purely to help the debugger.
16601
16602 These encodings were defined at a time when the debugging information
16603 format used was not powerful enough to describe some of the more complex
16604 types available in Ada. Since DWARF allows us to express nearly all
16605 Ada features, the long-term goal is to slowly replace these descriptive
16606 types by their pure DWARF equivalent. To facilitate that transition,
16607 a new maintenance option is available to force the debugger to ignore
16608 those descriptive types. It allows the user to quickly evaluate how
16609 well @value{GDBN} works without them.
16610
16611 @table @code
16612
16613 @kindex maint ada set ignore-descriptive-types
16614 @item maintenance ada set ignore-descriptive-types [on|off]
16615 Control whether the debugger should ignore descriptive types.
16616 The default is not to ignore descriptives types (@code{off}).
16617
16618 @kindex maint ada show ignore-descriptive-types
16619 @item maintenance ada show ignore-descriptive-types
16620 Show if descriptive types are ignored by @value{GDBN}.
16621
16622 @end table
16623
16624 @node Unsupported Languages
16625 @section Unsupported Languages
16626
16627 @cindex unsupported languages
16628 @cindex minimal language
16629 In addition to the other fully-supported programming languages,
16630 @value{GDBN} also provides a pseudo-language, called @code{minimal}.
16631 It does not represent a real programming language, but provides a set
16632 of capabilities close to what the C or assembly languages provide.
16633 This should allow most simple operations to be performed while debugging
16634 an application that uses a language currently not supported by @value{GDBN}.
16635
16636 If the language is set to @code{auto}, @value{GDBN} will automatically
16637 select this language if the current frame corresponds to an unsupported
16638 language.
16639
16640 @node Symbols
16641 @chapter Examining the Symbol Table
16642
16643 The commands described in this chapter allow you to inquire about the
16644 symbols (names of variables, functions and types) defined in your
16645 program. This information is inherent in the text of your program and
16646 does not change as your program executes. @value{GDBN} finds it in your
16647 program's symbol table, in the file indicated when you started @value{GDBN}
16648 (@pxref{File Options, ,Choosing Files}), or by one of the
16649 file-management commands (@pxref{Files, ,Commands to Specify Files}).
16650
16651 @cindex symbol names
16652 @cindex names of symbols
16653 @cindex quoting names
16654 Occasionally, you may need to refer to symbols that contain unusual
16655 characters, which @value{GDBN} ordinarily treats as word delimiters. The
16656 most frequent case is in referring to static variables in other
16657 source files (@pxref{Variables,,Program Variables}). File names
16658 are recorded in object files as debugging symbols, but @value{GDBN} would
16659 ordinarily parse a typical file name, like @file{foo.c}, as the three words
16660 @samp{foo} @samp{.} @samp{c}. To allow @value{GDBN} to recognize
16661 @samp{foo.c} as a single symbol, enclose it in single quotes; for example,
16662
16663 @smallexample
16664 p 'foo.c'::x
16665 @end smallexample
16666
16667 @noindent
16668 looks up the value of @code{x} in the scope of the file @file{foo.c}.
16669
16670 @table @code
16671 @cindex case-insensitive symbol names
16672 @cindex case sensitivity in symbol names
16673 @kindex set case-sensitive
16674 @item set case-sensitive on
16675 @itemx set case-sensitive off
16676 @itemx set case-sensitive auto
16677 Normally, when @value{GDBN} looks up symbols, it matches their names
16678 with case sensitivity determined by the current source language.
16679 Occasionally, you may wish to control that. The command @code{set
16680 case-sensitive} lets you do that by specifying @code{on} for
16681 case-sensitive matches or @code{off} for case-insensitive ones. If
16682 you specify @code{auto}, case sensitivity is reset to the default
16683 suitable for the source language. The default is case-sensitive
16684 matches for all languages except for Fortran, for which the default is
16685 case-insensitive matches.
16686
16687 @kindex show case-sensitive
16688 @item show case-sensitive
16689 This command shows the current setting of case sensitivity for symbols
16690 lookups.
16691
16692 @kindex set print type methods
16693 @item set print type methods
16694 @itemx set print type methods on
16695 @itemx set print type methods off
16696 Normally, when @value{GDBN} prints a class, it displays any methods
16697 declared in that class. You can control this behavior either by
16698 passing the appropriate flag to @code{ptype}, or using @command{set
16699 print type methods}. Specifying @code{on} will cause @value{GDBN} to
16700 display the methods; this is the default. Specifying @code{off} will
16701 cause @value{GDBN} to omit the methods.
16702
16703 @kindex show print type methods
16704 @item show print type methods
16705 This command shows the current setting of method display when printing
16706 classes.
16707
16708 @kindex set print type typedefs
16709 @item set print type typedefs
16710 @itemx set print type typedefs on
16711 @itemx set print type typedefs off
16712
16713 Normally, when @value{GDBN} prints a class, it displays any typedefs
16714 defined in that class. You can control this behavior either by
16715 passing the appropriate flag to @code{ptype}, or using @command{set
16716 print type typedefs}. Specifying @code{on} will cause @value{GDBN} to
16717 display the typedef definitions; this is the default. Specifying
16718 @code{off} will cause @value{GDBN} to omit the typedef definitions.
16719 Note that this controls whether the typedef definition itself is
16720 printed, not whether typedef names are substituted when printing other
16721 types.
16722
16723 @kindex show print type typedefs
16724 @item show print type typedefs
16725 This command shows the current setting of typedef display when
16726 printing classes.
16727
16728 @kindex info address
16729 @cindex address of a symbol
16730 @item info address @var{symbol}
16731 Describe where the data for @var{symbol} is stored. For a register
16732 variable, this says which register it is kept in. For a non-register
16733 local variable, this prints the stack-frame offset at which the variable
16734 is always stored.
16735
16736 Note the contrast with @samp{print &@var{symbol}}, which does not work
16737 at all for a register variable, and for a stack local variable prints
16738 the exact address of the current instantiation of the variable.
16739
16740 @kindex info symbol
16741 @cindex symbol from address
16742 @cindex closest symbol and offset for an address
16743 @item info symbol @var{addr}
16744 Print the name of a symbol which is stored at the address @var{addr}.
16745 If no symbol is stored exactly at @var{addr}, @value{GDBN} prints the
16746 nearest symbol and an offset from it:
16747
16748 @smallexample
16749 (@value{GDBP}) info symbol 0x54320
16750 _initialize_vx + 396 in section .text
16751 @end smallexample
16752
16753 @noindent
16754 This is the opposite of the @code{info address} command. You can use
16755 it to find out the name of a variable or a function given its address.
16756
16757 For dynamically linked executables, the name of executable or shared
16758 library containing the symbol is also printed:
16759
16760 @smallexample
16761 (@value{GDBP}) info symbol 0x400225
16762 _start + 5 in section .text of /tmp/a.out
16763 (@value{GDBP}) info symbol 0x2aaaac2811cf
16764 __read_nocancel + 6 in section .text of /usr/lib64/libc.so.6
16765 @end smallexample
16766
16767 @kindex demangle
16768 @cindex demangle
16769 @item demangle @r{[}-l @var{language}@r{]} @r{[}@var{--}@r{]} @var{name}
16770 Demangle @var{name}.
16771 If @var{language} is provided it is the name of the language to demangle
16772 @var{name} in. Otherwise @var{name} is demangled in the current language.
16773
16774 The @samp{--} option specifies the end of options,
16775 and is useful when @var{name} begins with a dash.
16776
16777 The parameter @code{demangle-style} specifies how to interpret the kind
16778 of mangling used. @xref{Print Settings}.
16779
16780 @kindex whatis
16781 @item whatis[/@var{flags}] [@var{arg}]
16782 Print the data type of @var{arg}, which can be either an expression
16783 or a name of a data type. With no argument, print the data type of
16784 @code{$}, the last value in the value history.
16785
16786 If @var{arg} is an expression (@pxref{Expressions, ,Expressions}), it
16787 is not actually evaluated, and any side-effecting operations (such as
16788 assignments or function calls) inside it do not take place.
16789
16790 If @var{arg} is a variable or an expression, @code{whatis} prints its
16791 literal type as it is used in the source code. If the type was
16792 defined using a @code{typedef}, @code{whatis} will @emph{not} print
16793 the data type underlying the @code{typedef}. If the type of the
16794 variable or the expression is a compound data type, such as
16795 @code{struct} or @code{class}, @code{whatis} never prints their
16796 fields or methods. It just prints the @code{struct}/@code{class}
16797 name (a.k.a.@: its @dfn{tag}). If you want to see the members of
16798 such a compound data type, use @code{ptype}.
16799
16800 If @var{arg} is a type name that was defined using @code{typedef},
16801 @code{whatis} @dfn{unrolls} only one level of that @code{typedef}.
16802 Unrolling means that @code{whatis} will show the underlying type used
16803 in the @code{typedef} declaration of @var{arg}. However, if that
16804 underlying type is also a @code{typedef}, @code{whatis} will not
16805 unroll it.
16806
16807 For C code, the type names may also have the form @samp{class
16808 @var{class-name}}, @samp{struct @var{struct-tag}}, @samp{union
16809 @var{union-tag}} or @samp{enum @var{enum-tag}}.
16810
16811 @var{flags} can be used to modify how the type is displayed.
16812 Available flags are:
16813
16814 @table @code
16815 @item r
16816 Display in ``raw'' form. Normally, @value{GDBN} substitutes template
16817 parameters and typedefs defined in a class when printing the class'
16818 members. The @code{/r} flag disables this.
16819
16820 @item m
16821 Do not print methods defined in the class.
16822
16823 @item M
16824 Print methods defined in the class. This is the default, but the flag
16825 exists in case you change the default with @command{set print type methods}.
16826
16827 @item t
16828 Do not print typedefs defined in the class. Note that this controls
16829 whether the typedef definition itself is printed, not whether typedef
16830 names are substituted when printing other types.
16831
16832 @item T
16833 Print typedefs defined in the class. This is the default, but the flag
16834 exists in case you change the default with @command{set print type typedefs}.
16835 @end table
16836
16837 @kindex ptype
16838 @item ptype[/@var{flags}] [@var{arg}]
16839 @code{ptype} accepts the same arguments as @code{whatis}, but prints a
16840 detailed description of the type, instead of just the name of the type.
16841 @xref{Expressions, ,Expressions}.
16842
16843 Contrary to @code{whatis}, @code{ptype} always unrolls any
16844 @code{typedef}s in its argument declaration, whether the argument is
16845 a variable, expression, or a data type. This means that @code{ptype}
16846 of a variable or an expression will not print literally its type as
16847 present in the source code---use @code{whatis} for that. @code{typedef}s at
16848 the pointer or reference targets are also unrolled. Only @code{typedef}s of
16849 fields, methods and inner @code{class typedef}s of @code{struct}s,
16850 @code{class}es and @code{union}s are not unrolled even with @code{ptype}.
16851
16852 For example, for this variable declaration:
16853
16854 @smallexample
16855 typedef double real_t;
16856 struct complex @{ real_t real; double imag; @};
16857 typedef struct complex complex_t;
16858 complex_t var;
16859 real_t *real_pointer_var;
16860 @end smallexample
16861
16862 @noindent
16863 the two commands give this output:
16864
16865 @smallexample
16866 @group
16867 (@value{GDBP}) whatis var
16868 type = complex_t
16869 (@value{GDBP}) ptype var
16870 type = struct complex @{
16871 real_t real;
16872 double imag;
16873 @}
16874 (@value{GDBP}) whatis complex_t
16875 type = struct complex
16876 (@value{GDBP}) whatis struct complex
16877 type = struct complex
16878 (@value{GDBP}) ptype struct complex
16879 type = struct complex @{
16880 real_t real;
16881 double imag;
16882 @}
16883 (@value{GDBP}) whatis real_pointer_var
16884 type = real_t *
16885 (@value{GDBP}) ptype real_pointer_var
16886 type = double *
16887 @end group
16888 @end smallexample
16889
16890 @noindent
16891 As with @code{whatis}, using @code{ptype} without an argument refers to
16892 the type of @code{$}, the last value in the value history.
16893
16894 @cindex incomplete type
16895 Sometimes, programs use opaque data types or incomplete specifications
16896 of complex data structure. If the debug information included in the
16897 program does not allow @value{GDBN} to display a full declaration of
16898 the data type, it will say @samp{<incomplete type>}. For example,
16899 given these declarations:
16900
16901 @smallexample
16902 struct foo;
16903 struct foo *fooptr;
16904 @end smallexample
16905
16906 @noindent
16907 but no definition for @code{struct foo} itself, @value{GDBN} will say:
16908
16909 @smallexample
16910 (@value{GDBP}) ptype foo
16911 $1 = <incomplete type>
16912 @end smallexample
16913
16914 @noindent
16915 ``Incomplete type'' is C terminology for data types that are not
16916 completely specified.
16917
16918 @kindex info types
16919 @item info types @var{regexp}
16920 @itemx info types
16921 Print a brief description of all types whose names match the regular
16922 expression @var{regexp} (or all types in your program, if you supply
16923 no argument). Each complete typename is matched as though it were a
16924 complete line; thus, @samp{i type value} gives information on all
16925 types in your program whose names include the string @code{value}, but
16926 @samp{i type ^value$} gives information only on types whose complete
16927 name is @code{value}.
16928
16929 This command differs from @code{ptype} in two ways: first, like
16930 @code{whatis}, it does not print a detailed description; second, it
16931 lists all source files where a type is defined.
16932
16933 @kindex info type-printers
16934 @item info type-printers
16935 Versions of @value{GDBN} that ship with Python scripting enabled may
16936 have ``type printers'' available. When using @command{ptype} or
16937 @command{whatis}, these printers are consulted when the name of a type
16938 is needed. @xref{Type Printing API}, for more information on writing
16939 type printers.
16940
16941 @code{info type-printers} displays all the available type printers.
16942
16943 @kindex enable type-printer
16944 @kindex disable type-printer
16945 @item enable type-printer @var{name}@dots{}
16946 @item disable type-printer @var{name}@dots{}
16947 These commands can be used to enable or disable type printers.
16948
16949 @kindex info scope
16950 @cindex local variables
16951 @item info scope @var{location}
16952 List all the variables local to a particular scope. This command
16953 accepts a @var{location} argument---a function name, a source line, or
16954 an address preceded by a @samp{*}, and prints all the variables local
16955 to the scope defined by that location. (@xref{Specify Location}, for
16956 details about supported forms of @var{location}.) For example:
16957
16958 @smallexample
16959 (@value{GDBP}) @b{info scope command_line_handler}
16960 Scope for command_line_handler:
16961 Symbol rl is an argument at stack/frame offset 8, length 4.
16962 Symbol linebuffer is in static storage at address 0x150a18, length 4.
16963 Symbol linelength is in static storage at address 0x150a1c, length 4.
16964 Symbol p is a local variable in register $esi, length 4.
16965 Symbol p1 is a local variable in register $ebx, length 4.
16966 Symbol nline is a local variable in register $edx, length 4.
16967 Symbol repeat is a local variable at frame offset -8, length 4.
16968 @end smallexample
16969
16970 @noindent
16971 This command is especially useful for determining what data to collect
16972 during a @dfn{trace experiment}, see @ref{Tracepoint Actions,
16973 collect}.
16974
16975 @kindex info source
16976 @item info source
16977 Show information about the current source file---that is, the source file for
16978 the function containing the current point of execution:
16979 @itemize @bullet
16980 @item
16981 the name of the source file, and the directory containing it,
16982 @item
16983 the directory it was compiled in,
16984 @item
16985 its length, in lines,
16986 @item
16987 which programming language it is written in,
16988 @item
16989 if the debug information provides it, the program that compiled the file
16990 (which may include, e.g., the compiler version and command line arguments),
16991 @item
16992 whether the executable includes debugging information for that file, and
16993 if so, what format the information is in (e.g., STABS, Dwarf 2, etc.), and
16994 @item
16995 whether the debugging information includes information about
16996 preprocessor macros.
16997 @end itemize
16998
16999
17000 @kindex info sources
17001 @item info sources
17002 Print the names of all source files in your program for which there is
17003 debugging information, organized into two lists: files whose symbols
17004 have already been read, and files whose symbols will be read when needed.
17005
17006 @kindex info functions
17007 @item info functions
17008 Print the names and data types of all defined functions.
17009
17010 @item info functions @var{regexp}
17011 Print the names and data types of all defined functions
17012 whose names contain a match for regular expression @var{regexp}.
17013 Thus, @samp{info fun step} finds all functions whose names
17014 include @code{step}; @samp{info fun ^step} finds those whose names
17015 start with @code{step}. If a function name contains characters
17016 that conflict with the regular expression language (e.g.@:
17017 @samp{operator*()}), they may be quoted with a backslash.
17018
17019 @kindex info variables
17020 @item info variables
17021 Print the names and data types of all variables that are defined
17022 outside of functions (i.e.@: excluding local variables).
17023
17024 @item info variables @var{regexp}
17025 Print the names and data types of all variables (except for local
17026 variables) whose names contain a match for regular expression
17027 @var{regexp}.
17028
17029 @kindex info classes
17030 @cindex Objective-C, classes and selectors
17031 @item info classes
17032 @itemx info classes @var{regexp}
17033 Display all Objective-C classes in your program, or
17034 (with the @var{regexp} argument) all those matching a particular regular
17035 expression.
17036
17037 @kindex info selectors
17038 @item info selectors
17039 @itemx info selectors @var{regexp}
17040 Display all Objective-C selectors in your program, or
17041 (with the @var{regexp} argument) all those matching a particular regular
17042 expression.
17043
17044 @ignore
17045 This was never implemented.
17046 @kindex info methods
17047 @item info methods
17048 @itemx info methods @var{regexp}
17049 The @code{info methods} command permits the user to examine all defined
17050 methods within C@t{++} program, or (with the @var{regexp} argument) a
17051 specific set of methods found in the various C@t{++} classes. Many
17052 C@t{++} classes provide a large number of methods. Thus, the output
17053 from the @code{ptype} command can be overwhelming and hard to use. The
17054 @code{info-methods} command filters the methods, printing only those
17055 which match the regular-expression @var{regexp}.
17056 @end ignore
17057
17058 @cindex opaque data types
17059 @kindex set opaque-type-resolution
17060 @item set opaque-type-resolution on
17061 Tell @value{GDBN} to resolve opaque types. An opaque type is a type
17062 declared as a pointer to a @code{struct}, @code{class}, or
17063 @code{union}---for example, @code{struct MyType *}---that is used in one
17064 source file although the full declaration of @code{struct MyType} is in
17065 another source file. The default is on.
17066
17067 A change in the setting of this subcommand will not take effect until
17068 the next time symbols for a file are loaded.
17069
17070 @item set opaque-type-resolution off
17071 Tell @value{GDBN} not to resolve opaque types. In this case, the type
17072 is printed as follows:
17073 @smallexample
17074 @{<no data fields>@}
17075 @end smallexample
17076
17077 @kindex show opaque-type-resolution
17078 @item show opaque-type-resolution
17079 Show whether opaque types are resolved or not.
17080
17081 @kindex set print symbol-loading
17082 @cindex print messages when symbols are loaded
17083 @item set print symbol-loading
17084 @itemx set print symbol-loading full
17085 @itemx set print symbol-loading brief
17086 @itemx set print symbol-loading off
17087 The @code{set print symbol-loading} command allows you to control the
17088 printing of messages when @value{GDBN} loads symbol information.
17089 By default a message is printed for the executable and one for each
17090 shared library, and normally this is what you want. However, when
17091 debugging apps with large numbers of shared libraries these messages
17092 can be annoying.
17093 When set to @code{brief} a message is printed for each executable,
17094 and when @value{GDBN} loads a collection of shared libraries at once
17095 it will only print one message regardless of the number of shared
17096 libraries. When set to @code{off} no messages are printed.
17097
17098 @kindex show print symbol-loading
17099 @item show print symbol-loading
17100 Show whether messages will be printed when a @value{GDBN} command
17101 entered from the keyboard causes symbol information to be loaded.
17102
17103 @kindex maint print symbols
17104 @cindex symbol dump
17105 @kindex maint print psymbols
17106 @cindex partial symbol dump
17107 @kindex maint print msymbols
17108 @cindex minimal symbol dump
17109 @item maint print symbols @var{filename}
17110 @itemx maint print psymbols @var{filename}
17111 @itemx maint print msymbols @var{filename}
17112 Write a dump of debugging symbol data into the file @var{filename}.
17113 These commands are used to debug the @value{GDBN} symbol-reading code. Only
17114 symbols with debugging data are included. If you use @samp{maint print
17115 symbols}, @value{GDBN} includes all the symbols for which it has already
17116 collected full details: that is, @var{filename} reflects symbols for
17117 only those files whose symbols @value{GDBN} has read. You can use the
17118 command @code{info sources} to find out which files these are. If you
17119 use @samp{maint print psymbols} instead, the dump shows information about
17120 symbols that @value{GDBN} only knows partially---that is, symbols defined in
17121 files that @value{GDBN} has skimmed, but not yet read completely. Finally,
17122 @samp{maint print msymbols} dumps just the minimal symbol information
17123 required for each object file from which @value{GDBN} has read some symbols.
17124 @xref{Files, ,Commands to Specify Files}, for a discussion of how
17125 @value{GDBN} reads symbols (in the description of @code{symbol-file}).
17126
17127 @kindex maint info symtabs
17128 @kindex maint info psymtabs
17129 @cindex listing @value{GDBN}'s internal symbol tables
17130 @cindex symbol tables, listing @value{GDBN}'s internal
17131 @cindex full symbol tables, listing @value{GDBN}'s internal
17132 @cindex partial symbol tables, listing @value{GDBN}'s internal
17133 @item maint info symtabs @r{[} @var{regexp} @r{]}
17134 @itemx maint info psymtabs @r{[} @var{regexp} @r{]}
17135
17136 List the @code{struct symtab} or @code{struct partial_symtab}
17137 structures whose names match @var{regexp}. If @var{regexp} is not
17138 given, list them all. The output includes expressions which you can
17139 copy into a @value{GDBN} debugging this one to examine a particular
17140 structure in more detail. For example:
17141
17142 @smallexample
17143 (@value{GDBP}) maint info psymtabs dwarf2read
17144 @{ objfile /home/gnu/build/gdb/gdb
17145 ((struct objfile *) 0x82e69d0)
17146 @{ psymtab /home/gnu/src/gdb/dwarf2read.c
17147 ((struct partial_symtab *) 0x8474b10)
17148 readin no
17149 fullname (null)
17150 text addresses 0x814d3c8 -- 0x8158074
17151 globals (* (struct partial_symbol **) 0x8507a08 @@ 9)
17152 statics (* (struct partial_symbol **) 0x40e95b78 @@ 2882)
17153 dependencies (none)
17154 @}
17155 @}
17156 (@value{GDBP}) maint info symtabs
17157 (@value{GDBP})
17158 @end smallexample
17159 @noindent
17160 We see that there is one partial symbol table whose filename contains
17161 the string @samp{dwarf2read}, belonging to the @samp{gdb} executable;
17162 and we see that @value{GDBN} has not read in any symtabs yet at all.
17163 If we set a breakpoint on a function, that will cause @value{GDBN} to
17164 read the symtab for the compilation unit containing that function:
17165
17166 @smallexample
17167 (@value{GDBP}) break dwarf2_psymtab_to_symtab
17168 Breakpoint 1 at 0x814e5da: file /home/gnu/src/gdb/dwarf2read.c,
17169 line 1574.
17170 (@value{GDBP}) maint info symtabs
17171 @{ objfile /home/gnu/build/gdb/gdb
17172 ((struct objfile *) 0x82e69d0)
17173 @{ symtab /home/gnu/src/gdb/dwarf2read.c
17174 ((struct symtab *) 0x86c1f38)
17175 dirname (null)
17176 fullname (null)
17177 blockvector ((struct blockvector *) 0x86c1bd0) (primary)
17178 linetable ((struct linetable *) 0x8370fa0)
17179 debugformat DWARF 2
17180 @}
17181 @}
17182 (@value{GDBP})
17183 @end smallexample
17184
17185 @kindex maint info line-table
17186 @cindex listing @value{GDBN}'s internal line tables
17187 @cindex line tables, listing @value{GDBN}'s internal
17188 @item maint info line-table @r{[} @var{regexp} @r{]}
17189
17190 List the @code{struct linetable} from all @code{struct symtab}
17191 instances whose name matches @var{regexp}. If @var{regexp} is not
17192 given, list the @code{struct linetable} from all @code{struct symtab}.
17193
17194 @kindex maint set symbol-cache-size
17195 @cindex symbol cache size
17196 @item maint set symbol-cache-size @var{size}
17197 Set the size of the symbol cache to @var{size}.
17198 The default size is intended to be good enough for debugging
17199 most applications. This option exists to allow for experimenting
17200 with different sizes.
17201
17202 @kindex maint show symbol-cache-size
17203 @item maint show symbol-cache-size
17204 Show the size of the symbol cache.
17205
17206 @kindex maint print symbol-cache
17207 @cindex symbol cache, printing its contents
17208 @item maint print symbol-cache
17209 Print the contents of the symbol cache.
17210 This is useful when debugging symbol cache issues.
17211
17212 @kindex maint print symbol-cache-statistics
17213 @cindex symbol cache, printing usage statistics
17214 @item maint print symbol-cache-statistics
17215 Print symbol cache usage statistics.
17216 This helps determine how well the cache is being utilized.
17217
17218 @kindex maint flush-symbol-cache
17219 @cindex symbol cache, flushing
17220 @item maint flush-symbol-cache
17221 Flush the contents of the symbol cache, all entries are removed.
17222 This command is useful when debugging the symbol cache.
17223 It is also useful when collecting performance data.
17224
17225 @end table
17226
17227 @node Altering
17228 @chapter Altering Execution
17229
17230 Once you think you have found an error in your program, you might want to
17231 find out for certain whether correcting the apparent error would lead to
17232 correct results in the rest of the run. You can find the answer by
17233 experiment, using the @value{GDBN} features for altering execution of the
17234 program.
17235
17236 For example, you can store new values into variables or memory
17237 locations, give your program a signal, restart it at a different
17238 address, or even return prematurely from a function.
17239
17240 @menu
17241 * Assignment:: Assignment to variables
17242 * Jumping:: Continuing at a different address
17243 * Signaling:: Giving your program a signal
17244 * Returning:: Returning from a function
17245 * Calling:: Calling your program's functions
17246 * Patching:: Patching your program
17247 * Compiling and Injecting Code:: Compiling and injecting code in @value{GDBN}
17248 @end menu
17249
17250 @node Assignment
17251 @section Assignment to Variables
17252
17253 @cindex assignment
17254 @cindex setting variables
17255 To alter the value of a variable, evaluate an assignment expression.
17256 @xref{Expressions, ,Expressions}. For example,
17257
17258 @smallexample
17259 print x=4
17260 @end smallexample
17261
17262 @noindent
17263 stores the value 4 into the variable @code{x}, and then prints the
17264 value of the assignment expression (which is 4).
17265 @xref{Languages, ,Using @value{GDBN} with Different Languages}, for more
17266 information on operators in supported languages.
17267
17268 @kindex set variable
17269 @cindex variables, setting
17270 If you are not interested in seeing the value of the assignment, use the
17271 @code{set} command instead of the @code{print} command. @code{set} is
17272 really the same as @code{print} except that the expression's value is
17273 not printed and is not put in the value history (@pxref{Value History,
17274 ,Value History}). The expression is evaluated only for its effects.
17275
17276 If the beginning of the argument string of the @code{set} command
17277 appears identical to a @code{set} subcommand, use the @code{set
17278 variable} command instead of just @code{set}. This command is identical
17279 to @code{set} except for its lack of subcommands. For example, if your
17280 program has a variable @code{width}, you get an error if you try to set
17281 a new value with just @samp{set width=13}, because @value{GDBN} has the
17282 command @code{set width}:
17283
17284 @smallexample
17285 (@value{GDBP}) whatis width
17286 type = double
17287 (@value{GDBP}) p width
17288 $4 = 13
17289 (@value{GDBP}) set width=47
17290 Invalid syntax in expression.
17291 @end smallexample
17292
17293 @noindent
17294 The invalid expression, of course, is @samp{=47}. In
17295 order to actually set the program's variable @code{width}, use
17296
17297 @smallexample
17298 (@value{GDBP}) set var width=47
17299 @end smallexample
17300
17301 Because the @code{set} command has many subcommands that can conflict
17302 with the names of program variables, it is a good idea to use the
17303 @code{set variable} command instead of just @code{set}. For example, if
17304 your program has a variable @code{g}, you run into problems if you try
17305 to set a new value with just @samp{set g=4}, because @value{GDBN} has
17306 the command @code{set gnutarget}, abbreviated @code{set g}:
17307
17308 @smallexample
17309 @group
17310 (@value{GDBP}) whatis g
17311 type = double
17312 (@value{GDBP}) p g
17313 $1 = 1
17314 (@value{GDBP}) set g=4
17315 (@value{GDBP}) p g
17316 $2 = 1
17317 (@value{GDBP}) r
17318 The program being debugged has been started already.
17319 Start it from the beginning? (y or n) y
17320 Starting program: /home/smith/cc_progs/a.out
17321 "/home/smith/cc_progs/a.out": can't open to read symbols:
17322 Invalid bfd target.
17323 (@value{GDBP}) show g
17324 The current BFD target is "=4".
17325 @end group
17326 @end smallexample
17327
17328 @noindent
17329 The program variable @code{g} did not change, and you silently set the
17330 @code{gnutarget} to an invalid value. In order to set the variable
17331 @code{g}, use
17332
17333 @smallexample
17334 (@value{GDBP}) set var g=4
17335 @end smallexample
17336
17337 @value{GDBN} allows more implicit conversions in assignments than C; you can
17338 freely store an integer value into a pointer variable or vice versa,
17339 and you can convert any structure to any other structure that is the
17340 same length or shorter.
17341 @comment FIXME: how do structs align/pad in these conversions?
17342 @comment /doc@cygnus.com 18dec1990
17343
17344 To store values into arbitrary places in memory, use the @samp{@{@dots{}@}}
17345 construct to generate a value of specified type at a specified address
17346 (@pxref{Expressions, ,Expressions}). For example, @code{@{int@}0x83040} refers
17347 to memory location @code{0x83040} as an integer (which implies a certain size
17348 and representation in memory), and
17349
17350 @smallexample
17351 set @{int@}0x83040 = 4
17352 @end smallexample
17353
17354 @noindent
17355 stores the value 4 into that memory location.
17356
17357 @node Jumping
17358 @section Continuing at a Different Address
17359
17360 Ordinarily, when you continue your program, you do so at the place where
17361 it stopped, with the @code{continue} command. You can instead continue at
17362 an address of your own choosing, with the following commands:
17363
17364 @table @code
17365 @kindex jump
17366 @kindex j @r{(@code{jump})}
17367 @item jump @var{location}
17368 @itemx j @var{location}
17369 Resume execution at @var{location}. Execution stops again immediately
17370 if there is a breakpoint there. @xref{Specify Location}, for a description
17371 of the different forms of @var{location}. It is common
17372 practice to use the @code{tbreak} command in conjunction with
17373 @code{jump}. @xref{Set Breaks, ,Setting Breakpoints}.
17374
17375 The @code{jump} command does not change the current stack frame, or
17376 the stack pointer, or the contents of any memory location or any
17377 register other than the program counter. If @var{location} is in
17378 a different function from the one currently executing, the results may
17379 be bizarre if the two functions expect different patterns of arguments or
17380 of local variables. For this reason, the @code{jump} command requests
17381 confirmation if the specified line is not in the function currently
17382 executing. However, even bizarre results are predictable if you are
17383 well acquainted with the machine-language code of your program.
17384 @end table
17385
17386 On many systems, you can get much the same effect as the @code{jump}
17387 command by storing a new value into the register @code{$pc}. The
17388 difference is that this does not start your program running; it only
17389 changes the address of where it @emph{will} run when you continue. For
17390 example,
17391
17392 @smallexample
17393 set $pc = 0x485
17394 @end smallexample
17395
17396 @noindent
17397 makes the next @code{continue} command or stepping command execute at
17398 address @code{0x485}, rather than at the address where your program stopped.
17399 @xref{Continuing and Stepping, ,Continuing and Stepping}.
17400
17401 The most common occasion to use the @code{jump} command is to back
17402 up---perhaps with more breakpoints set---over a portion of a program
17403 that has already executed, in order to examine its execution in more
17404 detail.
17405
17406 @c @group
17407 @node Signaling
17408 @section Giving your Program a Signal
17409 @cindex deliver a signal to a program
17410
17411 @table @code
17412 @kindex signal
17413 @item signal @var{signal}
17414 Resume execution where your program is stopped, but immediately give it the
17415 signal @var{signal}. The @var{signal} can be the name or the number of a
17416 signal. For example, on many systems @code{signal 2} and @code{signal
17417 SIGINT} are both ways of sending an interrupt signal.
17418
17419 Alternatively, if @var{signal} is zero, continue execution without
17420 giving a signal. This is useful when your program stopped on account of
17421 a signal and would ordinarily see the signal when resumed with the
17422 @code{continue} command; @samp{signal 0} causes it to resume without a
17423 signal.
17424
17425 @emph{Note:} When resuming a multi-threaded program, @var{signal} is
17426 delivered to the currently selected thread, not the thread that last
17427 reported a stop. This includes the situation where a thread was
17428 stopped due to a signal. So if you want to continue execution
17429 suppressing the signal that stopped a thread, you should select that
17430 same thread before issuing the @samp{signal 0} command. If you issue
17431 the @samp{signal 0} command with another thread as the selected one,
17432 @value{GDBN} detects that and asks for confirmation.
17433
17434 Invoking the @code{signal} command is not the same as invoking the
17435 @code{kill} utility from the shell. Sending a signal with @code{kill}
17436 causes @value{GDBN} to decide what to do with the signal depending on
17437 the signal handling tables (@pxref{Signals}). The @code{signal} command
17438 passes the signal directly to your program.
17439
17440 @code{signal} does not repeat when you press @key{RET} a second time
17441 after executing the command.
17442
17443 @kindex queue-signal
17444 @item queue-signal @var{signal}
17445 Queue @var{signal} to be delivered immediately to the current thread
17446 when execution of the thread resumes. The @var{signal} can be the name or
17447 the number of a signal. For example, on many systems @code{signal 2} and
17448 @code{signal SIGINT} are both ways of sending an interrupt signal.
17449 The handling of the signal must be set to pass the signal to the program,
17450 otherwise @value{GDBN} will report an error.
17451 You can control the handling of signals from @value{GDBN} with the
17452 @code{handle} command (@pxref{Signals}).
17453
17454 Alternatively, if @var{signal} is zero, any currently queued signal
17455 for the current thread is discarded and when execution resumes no signal
17456 will be delivered. This is useful when your program stopped on account
17457 of a signal and would ordinarily see the signal when resumed with the
17458 @code{continue} command.
17459
17460 This command differs from the @code{signal} command in that the signal
17461 is just queued, execution is not resumed. And @code{queue-signal} cannot
17462 be used to pass a signal whose handling state has been set to @code{nopass}
17463 (@pxref{Signals}).
17464 @end table
17465 @c @end group
17466
17467 @xref{stepping into signal handlers}, for information on how stepping
17468 commands behave when the thread has a signal queued.
17469
17470 @node Returning
17471 @section Returning from a Function
17472
17473 @table @code
17474 @cindex returning from a function
17475 @kindex return
17476 @item return
17477 @itemx return @var{expression}
17478 You can cancel execution of a function call with the @code{return}
17479 command. If you give an
17480 @var{expression} argument, its value is used as the function's return
17481 value.
17482 @end table
17483
17484 When you use @code{return}, @value{GDBN} discards the selected stack frame
17485 (and all frames within it). You can think of this as making the
17486 discarded frame return prematurely. If you wish to specify a value to
17487 be returned, give that value as the argument to @code{return}.
17488
17489 This pops the selected stack frame (@pxref{Selection, ,Selecting a
17490 Frame}), and any other frames inside of it, leaving its caller as the
17491 innermost remaining frame. That frame becomes selected. The
17492 specified value is stored in the registers used for returning values
17493 of functions.
17494
17495 The @code{return} command does not resume execution; it leaves the
17496 program stopped in the state that would exist if the function had just
17497 returned. In contrast, the @code{finish} command (@pxref{Continuing
17498 and Stepping, ,Continuing and Stepping}) resumes execution until the
17499 selected stack frame returns naturally.
17500
17501 @value{GDBN} needs to know how the @var{expression} argument should be set for
17502 the inferior. The concrete registers assignment depends on the OS ABI and the
17503 type being returned by the selected stack frame. For example it is common for
17504 OS ABI to return floating point values in FPU registers while integer values in
17505 CPU registers. Still some ABIs return even floating point values in CPU
17506 registers. Larger integer widths (such as @code{long long int}) also have
17507 specific placement rules. @value{GDBN} already knows the OS ABI from its
17508 current target so it needs to find out also the type being returned to make the
17509 assignment into the right register(s).
17510
17511 Normally, the selected stack frame has debug info. @value{GDBN} will always
17512 use the debug info instead of the implicit type of @var{expression} when the
17513 debug info is available. For example, if you type @kbd{return -1}, and the
17514 function in the current stack frame is declared to return a @code{long long
17515 int}, @value{GDBN} transparently converts the implicit @code{int} value of -1
17516 into a @code{long long int}:
17517
17518 @smallexample
17519 Breakpoint 1, func () at gdb.base/return-nodebug.c:29
17520 29 return 31;
17521 (@value{GDBP}) return -1
17522 Make func return now? (y or n) y
17523 #0 0x004004f6 in main () at gdb.base/return-nodebug.c:43
17524 43 printf ("result=%lld\n", func ());
17525 (@value{GDBP})
17526 @end smallexample
17527
17528 However, if the selected stack frame does not have a debug info, e.g., if the
17529 function was compiled without debug info, @value{GDBN} has to find out the type
17530 to return from user. Specifying a different type by mistake may set the value
17531 in different inferior registers than the caller code expects. For example,
17532 typing @kbd{return -1} with its implicit type @code{int} would set only a part
17533 of a @code{long long int} result for a debug info less function (on 32-bit
17534 architectures). Therefore the user is required to specify the return type by
17535 an appropriate cast explicitly:
17536
17537 @smallexample
17538 Breakpoint 2, 0x0040050b in func ()
17539 (@value{GDBP}) return -1
17540 Return value type not available for selected stack frame.
17541 Please use an explicit cast of the value to return.
17542 (@value{GDBP}) return (long long int) -1
17543 Make selected stack frame return now? (y or n) y
17544 #0 0x00400526 in main ()
17545 (@value{GDBP})
17546 @end smallexample
17547
17548 @node Calling
17549 @section Calling Program Functions
17550
17551 @table @code
17552 @cindex calling functions
17553 @cindex inferior functions, calling
17554 @item print @var{expr}
17555 Evaluate the expression @var{expr} and display the resulting value.
17556 The expression may include calls to functions in the program being
17557 debugged.
17558
17559 @kindex call
17560 @item call @var{expr}
17561 Evaluate the expression @var{expr} without displaying @code{void}
17562 returned values.
17563
17564 You can use this variant of the @code{print} command if you want to
17565 execute a function from your program that does not return anything
17566 (a.k.a.@: @dfn{a void function}), but without cluttering the output
17567 with @code{void} returned values that @value{GDBN} will otherwise
17568 print. If the result is not void, it is printed and saved in the
17569 value history.
17570 @end table
17571
17572 It is possible for the function you call via the @code{print} or
17573 @code{call} command to generate a signal (e.g., if there's a bug in
17574 the function, or if you passed it incorrect arguments). What happens
17575 in that case is controlled by the @code{set unwindonsignal} command.
17576
17577 Similarly, with a C@t{++} program it is possible for the function you
17578 call via the @code{print} or @code{call} command to generate an
17579 exception that is not handled due to the constraints of the dummy
17580 frame. In this case, any exception that is raised in the frame, but has
17581 an out-of-frame exception handler will not be found. GDB builds a
17582 dummy-frame for the inferior function call, and the unwinder cannot
17583 seek for exception handlers outside of this dummy-frame. What happens
17584 in that case is controlled by the
17585 @code{set unwind-on-terminating-exception} command.
17586
17587 @table @code
17588 @item set unwindonsignal
17589 @kindex set unwindonsignal
17590 @cindex unwind stack in called functions
17591 @cindex call dummy stack unwinding
17592 Set unwinding of the stack if a signal is received while in a function
17593 that @value{GDBN} called in the program being debugged. If set to on,
17594 @value{GDBN} unwinds the stack it created for the call and restores
17595 the context to what it was before the call. If set to off (the
17596 default), @value{GDBN} stops in the frame where the signal was
17597 received.
17598
17599 @item show unwindonsignal
17600 @kindex show unwindonsignal
17601 Show the current setting of stack unwinding in the functions called by
17602 @value{GDBN}.
17603
17604 @item set unwind-on-terminating-exception
17605 @kindex set unwind-on-terminating-exception
17606 @cindex unwind stack in called functions with unhandled exceptions
17607 @cindex call dummy stack unwinding on unhandled exception.
17608 Set unwinding of the stack if a C@t{++} exception is raised, but left
17609 unhandled while in a function that @value{GDBN} called in the program being
17610 debugged. If set to on (the default), @value{GDBN} unwinds the stack
17611 it created for the call and restores the context to what it was before
17612 the call. If set to off, @value{GDBN} the exception is delivered to
17613 the default C@t{++} exception handler and the inferior terminated.
17614
17615 @item show unwind-on-terminating-exception
17616 @kindex show unwind-on-terminating-exception
17617 Show the current setting of stack unwinding in the functions called by
17618 @value{GDBN}.
17619
17620 @end table
17621
17622 @cindex weak alias functions
17623 Sometimes, a function you wish to call is actually a @dfn{weak alias}
17624 for another function. In such case, @value{GDBN} might not pick up
17625 the type information, including the types of the function arguments,
17626 which causes @value{GDBN} to call the inferior function incorrectly.
17627 As a result, the called function will function erroneously and may
17628 even crash. A solution to that is to use the name of the aliased
17629 function instead.
17630
17631 @node Patching
17632 @section Patching Programs
17633
17634 @cindex patching binaries
17635 @cindex writing into executables
17636 @cindex writing into corefiles
17637
17638 By default, @value{GDBN} opens the file containing your program's
17639 executable code (or the corefile) read-only. This prevents accidental
17640 alterations to machine code; but it also prevents you from intentionally
17641 patching your program's binary.
17642
17643 If you'd like to be able to patch the binary, you can specify that
17644 explicitly with the @code{set write} command. For example, you might
17645 want to turn on internal debugging flags, or even to make emergency
17646 repairs.
17647
17648 @table @code
17649 @kindex set write
17650 @item set write on
17651 @itemx set write off
17652 If you specify @samp{set write on}, @value{GDBN} opens executable and
17653 core files for both reading and writing; if you specify @kbd{set write
17654 off} (the default), @value{GDBN} opens them read-only.
17655
17656 If you have already loaded a file, you must load it again (using the
17657 @code{exec-file} or @code{core-file} command) after changing @code{set
17658 write}, for your new setting to take effect.
17659
17660 @item show write
17661 @kindex show write
17662 Display whether executable files and core files are opened for writing
17663 as well as reading.
17664 @end table
17665
17666 @node Compiling and Injecting Code
17667 @section Compiling and injecting code in @value{GDBN}
17668 @cindex injecting code
17669 @cindex writing into executables
17670 @cindex compiling code
17671
17672 @value{GDBN} supports on-demand compilation and code injection into
17673 programs running under @value{GDBN}. GCC 5.0 or higher built with
17674 @file{libcc1.so} must be installed for this functionality to be enabled.
17675 This functionality is implemented with the following commands.
17676
17677 @table @code
17678 @kindex compile code
17679 @item compile code @var{source-code}
17680 @itemx compile code -raw @var{--} @var{source-code}
17681 Compile @var{source-code} with the compiler language found as the current
17682 language in @value{GDBN} (@pxref{Languages}). If compilation and
17683 injection is not supported with the current language specified in
17684 @value{GDBN}, or the compiler does not support this feature, an error
17685 message will be printed. If @var{source-code} compiles and links
17686 successfully, @value{GDBN} will load the object-code emitted,
17687 and execute it within the context of the currently selected inferior.
17688 It is important to note that the compiled code is executed immediately.
17689 After execution, the compiled code is removed from @value{GDBN} and any
17690 new types or variables you have defined will be deleted.
17691
17692 The command allows you to specify @var{source-code} in two ways.
17693 The simplest method is to provide a single line of code to the command.
17694 E.g.:
17695
17696 @smallexample
17697 compile code printf ("hello world\n");
17698 @end smallexample
17699
17700 If you specify options on the command line as well as source code, they
17701 may conflict. The @samp{--} delimiter can be used to separate options
17702 from actual source code. E.g.:
17703
17704 @smallexample
17705 compile code -r -- printf ("hello world\n");
17706 @end smallexample
17707
17708 Alternatively you can enter source code as multiple lines of text. To
17709 enter this mode, invoke the @samp{compile code} command without any text
17710 following the command. This will start the multiple-line editor and
17711 allow you to type as many lines of source code as required. When you
17712 have completed typing, enter @samp{end} on its own line to exit the
17713 editor.
17714
17715 @smallexample
17716 compile code
17717 >printf ("hello\n");
17718 >printf ("world\n");
17719 >end
17720 @end smallexample
17721
17722 Specifying @samp{-raw}, prohibits @value{GDBN} from wrapping the
17723 provided @var{source-code} in a callable scope. In this case, you must
17724 specify the entry point of the code by defining a function named
17725 @code{_gdb_expr_}. The @samp{-raw} code cannot access variables of the
17726 inferior. Using @samp{-raw} option may be needed for example when
17727 @var{source-code} requires @samp{#include} lines which may conflict with
17728 inferior symbols otherwise.
17729
17730 @kindex compile file
17731 @item compile file @var{filename}
17732 @itemx compile file -raw @var{filename}
17733 Like @code{compile code}, but take the source code from @var{filename}.
17734
17735 @smallexample
17736 compile file /home/user/example.c
17737 @end smallexample
17738 @end table
17739
17740 @table @code
17741 @item compile print @var{expr}
17742 @itemx compile print /@var{f} @var{expr}
17743 Compile and execute @var{expr} with the compiler language found as the
17744 current language in @value{GDBN} (@pxref{Languages}). By default the
17745 value of @var{expr} is printed in a format appropriate to its data type;
17746 you can choose a different format by specifying @samp{/@var{f}}, where
17747 @var{f} is a letter specifying the format; see @ref{Output Formats,,Output
17748 Formats}.
17749
17750 @item compile print
17751 @itemx compile print /@var{f}
17752 @cindex reprint the last value
17753 Alternatively you can enter the expression (source code producing it) as
17754 multiple lines of text. To enter this mode, invoke the @samp{compile print}
17755 command without any text following the command. This will start the
17756 multiple-line editor.
17757 @end table
17758
17759 @noindent
17760 The process of compiling and injecting the code can be inspected using:
17761
17762 @table @code
17763 @anchor{set debug compile}
17764 @item set debug compile
17765 @cindex compile command debugging info
17766 Turns on or off display of @value{GDBN} process of compiling and
17767 injecting the code. The default is off.
17768
17769 @item show debug compile
17770 Displays the current state of displaying @value{GDBN} process of
17771 compiling and injecting the code.
17772 @end table
17773
17774 @subsection Compilation options for the @code{compile} command
17775
17776 @value{GDBN} needs to specify the right compilation options for the code
17777 to be injected, in part to make its ABI compatible with the inferior
17778 and in part to make the injected code compatible with @value{GDBN}'s
17779 injecting process.
17780
17781 @noindent
17782 The options used, in increasing precedence:
17783
17784 @table @asis
17785 @item target architecture and OS options (@code{gdbarch})
17786 These options depend on target processor type and target operating
17787 system, usually they specify at least 32-bit (@code{-m32}) or 64-bit
17788 (@code{-m64}) compilation option.
17789
17790 @item compilation options recorded in the target
17791 @value{NGCC} (since version 4.7) stores the options used for compilation
17792 into @code{DW_AT_producer} part of DWARF debugging information according
17793 to the @value{NGCC} option @code{-grecord-gcc-switches}. One has to
17794 explicitly specify @code{-g} during inferior compilation otherwise
17795 @value{NGCC} produces no DWARF. This feature is only relevant for
17796 platforms where @code{-g} produces DWARF by default, otherwise one may
17797 try to enforce DWARF by using @code{-gdwarf-4}.
17798
17799 @item compilation options set by @code{set compile-args}
17800 @end table
17801
17802 @noindent
17803 You can override compilation options using the following command:
17804
17805 @table @code
17806 @item set compile-args
17807 @cindex compile command options override
17808 Set compilation options used for compiling and injecting code with the
17809 @code{compile} commands. These options override any conflicting ones
17810 from the target architecture and/or options stored during inferior
17811 compilation.
17812
17813 @item show compile-args
17814 Displays the current state of compilation options override.
17815 This does not show all the options actually used during compilation,
17816 use @ref{set debug compile} for that.
17817 @end table
17818
17819 @subsection Caveats when using the @code{compile} command
17820
17821 There are a few caveats to keep in mind when using the @code{compile}
17822 command. As the caveats are different per language, the table below
17823 highlights specific issues on a per language basis.
17824
17825 @table @asis
17826 @item C code examples and caveats
17827 When the language in @value{GDBN} is set to @samp{C}, the compiler will
17828 attempt to compile the source code with a @samp{C} compiler. The source
17829 code provided to the @code{compile} command will have much the same
17830 access to variables and types as it normally would if it were part of
17831 the program currently being debugged in @value{GDBN}.
17832
17833 Below is a sample program that forms the basis of the examples that
17834 follow. This program has been compiled and loaded into @value{GDBN},
17835 much like any other normal debugging session.
17836
17837 @smallexample
17838 void function1 (void)
17839 @{
17840 int i = 42;
17841 printf ("function 1\n");
17842 @}
17843
17844 void function2 (void)
17845 @{
17846 int j = 12;
17847 function1 ();
17848 @}
17849
17850 int main(void)
17851 @{
17852 int k = 6;
17853 int *p;
17854 function2 ();
17855 return 0;
17856 @}
17857 @end smallexample
17858
17859 For the purposes of the examples in this section, the program above has
17860 been compiled, loaded into @value{GDBN}, stopped at the function
17861 @code{main}, and @value{GDBN} is awaiting input from the user.
17862
17863 To access variables and types for any program in @value{GDBN}, the
17864 program must be compiled and packaged with debug information. The
17865 @code{compile} command is not an exception to this rule. Without debug
17866 information, you can still use the @code{compile} command, but you will
17867 be very limited in what variables and types you can access.
17868
17869 So with that in mind, the example above has been compiled with debug
17870 information enabled. The @code{compile} command will have access to
17871 all variables and types (except those that may have been optimized
17872 out). Currently, as @value{GDBN} has stopped the program in the
17873 @code{main} function, the @code{compile} command would have access to
17874 the variable @code{k}. You could invoke the @code{compile} command
17875 and type some source code to set the value of @code{k}. You can also
17876 read it, or do anything with that variable you would normally do in
17877 @code{C}. Be aware that changes to inferior variables in the
17878 @code{compile} command are persistent. In the following example:
17879
17880 @smallexample
17881 compile code k = 3;
17882 @end smallexample
17883
17884 @noindent
17885 the variable @code{k} is now 3. It will retain that value until
17886 something else in the example program changes it, or another
17887 @code{compile} command changes it.
17888
17889 Normal scope and access rules apply to source code compiled and
17890 injected by the @code{compile} command. In the example, the variables
17891 @code{j} and @code{k} are not accessible yet, because the program is
17892 currently stopped in the @code{main} function, where these variables
17893 are not in scope. Therefore, the following command
17894
17895 @smallexample
17896 compile code j = 3;
17897 @end smallexample
17898
17899 @noindent
17900 will result in a compilation error message.
17901
17902 Once the program is continued, execution will bring these variables in
17903 scope, and they will become accessible; then the code you specify via
17904 the @code{compile} command will be able to access them.
17905
17906 You can create variables and types with the @code{compile} command as
17907 part of your source code. Variables and types that are created as part
17908 of the @code{compile} command are not visible to the rest of the program for
17909 the duration of its run. This example is valid:
17910
17911 @smallexample
17912 compile code int ff = 5; printf ("ff is %d\n", ff);
17913 @end smallexample
17914
17915 However, if you were to type the following into @value{GDBN} after that
17916 command has completed:
17917
17918 @smallexample
17919 compile code printf ("ff is %d\n'', ff);
17920 @end smallexample
17921
17922 @noindent
17923 a compiler error would be raised as the variable @code{ff} no longer
17924 exists. Object code generated and injected by the @code{compile}
17925 command is removed when its execution ends. Caution is advised
17926 when assigning to program variables values of variables created by the
17927 code submitted to the @code{compile} command. This example is valid:
17928
17929 @smallexample
17930 compile code int ff = 5; k = ff;
17931 @end smallexample
17932
17933 The value of the variable @code{ff} is assigned to @code{k}. The variable
17934 @code{k} does not require the existence of @code{ff} to maintain the value
17935 it has been assigned. However, pointers require particular care in
17936 assignment. If the source code compiled with the @code{compile} command
17937 changed the address of a pointer in the example program, perhaps to a
17938 variable created in the @code{compile} command, that pointer would point
17939 to an invalid location when the command exits. The following example
17940 would likely cause issues with your debugged program:
17941
17942 @smallexample
17943 compile code int ff = 5; p = &ff;
17944 @end smallexample
17945
17946 In this example, @code{p} would point to @code{ff} when the
17947 @code{compile} command is executing the source code provided to it.
17948 However, as variables in the (example) program persist with their
17949 assigned values, the variable @code{p} would point to an invalid
17950 location when the command exists. A general rule should be followed
17951 in that you should either assign @code{NULL} to any assigned pointers,
17952 or restore a valid location to the pointer before the command exits.
17953
17954 Similar caution must be exercised with any structs, unions, and typedefs
17955 defined in @code{compile} command. Types defined in the @code{compile}
17956 command will no longer be available in the next @code{compile} command.
17957 Therefore, if you cast a variable to a type defined in the
17958 @code{compile} command, care must be taken to ensure that any future
17959 need to resolve the type can be achieved.
17960
17961 @smallexample
17962 (gdb) compile code static struct a @{ int a; @} v = @{ 42 @}; argv = &v;
17963 (gdb) compile code printf ("%d\n", ((struct a *) argv)->a);
17964 gdb command line:1:36: error: dereferencing pointer to incomplete type ‘struct a’
17965 Compilation failed.
17966 (gdb) compile code struct a @{ int a; @}; printf ("%d\n", ((struct a *) argv)->a);
17967 42
17968 @end smallexample
17969
17970 Variables that have been optimized away by the compiler are not
17971 accessible to the code submitted to the @code{compile} command.
17972 Access to those variables will generate a compiler error which @value{GDBN}
17973 will print to the console.
17974 @end table
17975
17976 @subsection Compiler search for the @code{compile} command
17977
17978 @value{GDBN} needs to find @value{NGCC} for the inferior being debugged which
17979 may not be obvious for remote targets of different architecture than where
17980 @value{GDBN} is running. Environment variable @code{PATH} (@code{PATH} from
17981 shell that executed @value{GDBN}, not the one set by @value{GDBN}
17982 command @code{set environment}). @xref{Environment}. @code{PATH} on
17983 @value{GDBN} host is searched for @value{NGCC} binary matching the
17984 target architecture and operating system.
17985
17986 Specifically @code{PATH} is searched for binaries matching regular expression
17987 @code{@var{arch}(-[^-]*)?-@var{os}-gcc} according to the inferior target being
17988 debugged. @var{arch} is processor name --- multiarch is supported, so for
17989 example both @code{i386} and @code{x86_64} targets look for pattern
17990 @code{(x86_64|i.86)} and both @code{s390} and @code{s390x} targets look
17991 for pattern @code{s390x?}. @var{os} is currently supported only for
17992 pattern @code{linux(-gnu)?}.
17993
17994 @node GDB Files
17995 @chapter @value{GDBN} Files
17996
17997 @value{GDBN} needs to know the file name of the program to be debugged,
17998 both in order to read its symbol table and in order to start your
17999 program. To debug a core dump of a previous run, you must also tell
18000 @value{GDBN} the name of the core dump file.
18001
18002 @menu
18003 * Files:: Commands to specify files
18004 * File Caching:: Information about @value{GDBN}'s file caching
18005 * Separate Debug Files:: Debugging information in separate files
18006 * MiniDebugInfo:: Debugging information in a special section
18007 * Index Files:: Index files speed up GDB
18008 * Symbol Errors:: Errors reading symbol files
18009 * Data Files:: GDB data files
18010 @end menu
18011
18012 @node Files
18013 @section Commands to Specify Files
18014
18015 @cindex symbol table
18016 @cindex core dump file
18017
18018 You may want to specify executable and core dump file names. The usual
18019 way to do this is at start-up time, using the arguments to
18020 @value{GDBN}'s start-up commands (@pxref{Invocation, , Getting In and
18021 Out of @value{GDBN}}).
18022
18023 Occasionally it is necessary to change to a different file during a
18024 @value{GDBN} session. Or you may run @value{GDBN} and forget to
18025 specify a file you want to use. Or you are debugging a remote target
18026 via @code{gdbserver} (@pxref{Server, file, Using the @code{gdbserver}
18027 Program}). In these situations the @value{GDBN} commands to specify
18028 new files are useful.
18029
18030 @table @code
18031 @cindex executable file
18032 @kindex file
18033 @item file @var{filename}
18034 Use @var{filename} as the program to be debugged. It is read for its
18035 symbols and for the contents of pure memory. It is also the program
18036 executed when you use the @code{run} command. If you do not specify a
18037 directory and the file is not found in the @value{GDBN} working directory,
18038 @value{GDBN} uses the environment variable @code{PATH} as a list of
18039 directories to search, just as the shell does when looking for a program
18040 to run. You can change the value of this variable, for both @value{GDBN}
18041 and your program, using the @code{path} command.
18042
18043 @cindex unlinked object files
18044 @cindex patching object files
18045 You can load unlinked object @file{.o} files into @value{GDBN} using
18046 the @code{file} command. You will not be able to ``run'' an object
18047 file, but you can disassemble functions and inspect variables. Also,
18048 if the underlying BFD functionality supports it, you could use
18049 @kbd{gdb -write} to patch object files using this technique. Note
18050 that @value{GDBN} can neither interpret nor modify relocations in this
18051 case, so branches and some initialized variables will appear to go to
18052 the wrong place. But this feature is still handy from time to time.
18053
18054 @item file
18055 @code{file} with no argument makes @value{GDBN} discard any information it
18056 has on both executable file and the symbol table.
18057
18058 @kindex exec-file
18059 @item exec-file @r{[} @var{filename} @r{]}
18060 Specify that the program to be run (but not the symbol table) is found
18061 in @var{filename}. @value{GDBN} searches the environment variable @code{PATH}
18062 if necessary to locate your program. Omitting @var{filename} means to
18063 discard information on the executable file.
18064
18065 @kindex symbol-file
18066 @item symbol-file @r{[} @var{filename} @r{]}
18067 Read symbol table information from file @var{filename}. @code{PATH} is
18068 searched when necessary. Use the @code{file} command to get both symbol
18069 table and program to run from the same file.
18070
18071 @code{symbol-file} with no argument clears out @value{GDBN} information on your
18072 program's symbol table.
18073
18074 The @code{symbol-file} command causes @value{GDBN} to forget the contents of
18075 some breakpoints and auto-display expressions. This is because they may
18076 contain pointers to the internal data recording symbols and data types,
18077 which are part of the old symbol table data being discarded inside
18078 @value{GDBN}.
18079
18080 @code{symbol-file} does not repeat if you press @key{RET} again after
18081 executing it once.
18082
18083 When @value{GDBN} is configured for a particular environment, it
18084 understands debugging information in whatever format is the standard
18085 generated for that environment; you may use either a @sc{gnu} compiler, or
18086 other compilers that adhere to the local conventions.
18087 Best results are usually obtained from @sc{gnu} compilers; for example,
18088 using @code{@value{NGCC}} you can generate debugging information for
18089 optimized code.
18090
18091 For most kinds of object files, with the exception of old SVR3 systems
18092 using COFF, the @code{symbol-file} command does not normally read the
18093 symbol table in full right away. Instead, it scans the symbol table
18094 quickly to find which source files and which symbols are present. The
18095 details are read later, one source file at a time, as they are needed.
18096
18097 The purpose of this two-stage reading strategy is to make @value{GDBN}
18098 start up faster. For the most part, it is invisible except for
18099 occasional pauses while the symbol table details for a particular source
18100 file are being read. (The @code{set verbose} command can turn these
18101 pauses into messages if desired. @xref{Messages/Warnings, ,Optional
18102 Warnings and Messages}.)
18103
18104 We have not implemented the two-stage strategy for COFF yet. When the
18105 symbol table is stored in COFF format, @code{symbol-file} reads the
18106 symbol table data in full right away. Note that ``stabs-in-COFF''
18107 still does the two-stage strategy, since the debug info is actually
18108 in stabs format.
18109
18110 @kindex readnow
18111 @cindex reading symbols immediately
18112 @cindex symbols, reading immediately
18113 @item symbol-file @r{[} -readnow @r{]} @var{filename}
18114 @itemx file @r{[} -readnow @r{]} @var{filename}
18115 You can override the @value{GDBN} two-stage strategy for reading symbol
18116 tables by using the @samp{-readnow} option with any of the commands that
18117 load symbol table information, if you want to be sure @value{GDBN} has the
18118 entire symbol table available.
18119
18120 @c FIXME: for now no mention of directories, since this seems to be in
18121 @c flux. 13mar1992 status is that in theory GDB would look either in
18122 @c current dir or in same dir as myprog; but issues like competing
18123 @c GDB's, or clutter in system dirs, mean that in practice right now
18124 @c only current dir is used. FFish says maybe a special GDB hierarchy
18125 @c (eg rooted in val of env var GDBSYMS) could exist for mappable symbol
18126 @c files.
18127
18128 @kindex core-file
18129 @item core-file @r{[}@var{filename}@r{]}
18130 @itemx core
18131 Specify the whereabouts of a core dump file to be used as the ``contents
18132 of memory''. Traditionally, core files contain only some parts of the
18133 address space of the process that generated them; @value{GDBN} can access the
18134 executable file itself for other parts.
18135
18136 @code{core-file} with no argument specifies that no core file is
18137 to be used.
18138
18139 Note that the core file is ignored when your program is actually running
18140 under @value{GDBN}. So, if you have been running your program and you
18141 wish to debug a core file instead, you must kill the subprocess in which
18142 the program is running. To do this, use the @code{kill} command
18143 (@pxref{Kill Process, ,Killing the Child Process}).
18144
18145 @kindex add-symbol-file
18146 @cindex dynamic linking
18147 @item add-symbol-file @var{filename} @var{address}
18148 @itemx add-symbol-file @var{filename} @var{address} @r{[} -readnow @r{]}
18149 @itemx add-symbol-file @var{filename} @var{address} -s @var{section} @var{address} @dots{}
18150 The @code{add-symbol-file} command reads additional symbol table
18151 information from the file @var{filename}. You would use this command
18152 when @var{filename} has been dynamically loaded (by some other means)
18153 into the program that is running. The @var{address} should give the memory
18154 address at which the file has been loaded; @value{GDBN} cannot figure
18155 this out for itself. You can additionally specify an arbitrary number
18156 of @samp{-s @var{section} @var{address}} pairs, to give an explicit
18157 section name and base address for that section. You can specify any
18158 @var{address} as an expression.
18159
18160 The symbol table of the file @var{filename} is added to the symbol table
18161 originally read with the @code{symbol-file} command. You can use the
18162 @code{add-symbol-file} command any number of times; the new symbol data
18163 thus read is kept in addition to the old.
18164
18165 Changes can be reverted using the command @code{remove-symbol-file}.
18166
18167 @cindex relocatable object files, reading symbols from
18168 @cindex object files, relocatable, reading symbols from
18169 @cindex reading symbols from relocatable object files
18170 @cindex symbols, reading from relocatable object files
18171 @cindex @file{.o} files, reading symbols from
18172 Although @var{filename} is typically a shared library file, an
18173 executable file, or some other object file which has been fully
18174 relocated for loading into a process, you can also load symbolic
18175 information from relocatable @file{.o} files, as long as:
18176
18177 @itemize @bullet
18178 @item
18179 the file's symbolic information refers only to linker symbols defined in
18180 that file, not to symbols defined by other object files,
18181 @item
18182 every section the file's symbolic information refers to has actually
18183 been loaded into the inferior, as it appears in the file, and
18184 @item
18185 you can determine the address at which every section was loaded, and
18186 provide these to the @code{add-symbol-file} command.
18187 @end itemize
18188
18189 @noindent
18190 Some embedded operating systems, like Sun Chorus and VxWorks, can load
18191 relocatable files into an already running program; such systems
18192 typically make the requirements above easy to meet. However, it's
18193 important to recognize that many native systems use complex link
18194 procedures (@code{.linkonce} section factoring and C@t{++} constructor table
18195 assembly, for example) that make the requirements difficult to meet. In
18196 general, one cannot assume that using @code{add-symbol-file} to read a
18197 relocatable object file's symbolic information will have the same effect
18198 as linking the relocatable object file into the program in the normal
18199 way.
18200
18201 @code{add-symbol-file} does not repeat if you press @key{RET} after using it.
18202
18203 @kindex remove-symbol-file
18204 @item remove-symbol-file @var{filename}
18205 @item remove-symbol-file -a @var{address}
18206 Remove a symbol file added via the @code{add-symbol-file} command. The
18207 file to remove can be identified by its @var{filename} or by an @var{address}
18208 that lies within the boundaries of this symbol file in memory. Example:
18209
18210 @smallexample
18211 (gdb) add-symbol-file /home/user/gdb/mylib.so 0x7ffff7ff9480
18212 add symbol table from file "/home/user/gdb/mylib.so" at
18213 .text_addr = 0x7ffff7ff9480
18214 (y or n) y
18215 Reading symbols from /home/user/gdb/mylib.so...done.
18216 (gdb) remove-symbol-file -a 0x7ffff7ff9480
18217 Remove symbol table from file "/home/user/gdb/mylib.so"? (y or n) y
18218 (gdb)
18219 @end smallexample
18220
18221
18222 @code{remove-symbol-file} does not repeat if you press @key{RET} after using it.
18223
18224 @kindex add-symbol-file-from-memory
18225 @cindex @code{syscall DSO}
18226 @cindex load symbols from memory
18227 @item add-symbol-file-from-memory @var{address}
18228 Load symbols from the given @var{address} in a dynamically loaded
18229 object file whose image is mapped directly into the inferior's memory.
18230 For example, the Linux kernel maps a @code{syscall DSO} into each
18231 process's address space; this DSO provides kernel-specific code for
18232 some system calls. The argument can be any expression whose
18233 evaluation yields the address of the file's shared object file header.
18234 For this command to work, you must have used @code{symbol-file} or
18235 @code{exec-file} commands in advance.
18236
18237 @kindex section
18238 @item section @var{section} @var{addr}
18239 The @code{section} command changes the base address of the named
18240 @var{section} of the exec file to @var{addr}. This can be used if the
18241 exec file does not contain section addresses, (such as in the
18242 @code{a.out} format), or when the addresses specified in the file
18243 itself are wrong. Each section must be changed separately. The
18244 @code{info files} command, described below, lists all the sections and
18245 their addresses.
18246
18247 @kindex info files
18248 @kindex info target
18249 @item info files
18250 @itemx info target
18251 @code{info files} and @code{info target} are synonymous; both print the
18252 current target (@pxref{Targets, ,Specifying a Debugging Target}),
18253 including the names of the executable and core dump files currently in
18254 use by @value{GDBN}, and the files from which symbols were loaded. The
18255 command @code{help target} lists all possible targets rather than
18256 current ones.
18257
18258 @kindex maint info sections
18259 @item maint info sections
18260 Another command that can give you extra information about program sections
18261 is @code{maint info sections}. In addition to the section information
18262 displayed by @code{info files}, this command displays the flags and file
18263 offset of each section in the executable and core dump files. In addition,
18264 @code{maint info sections} provides the following command options (which
18265 may be arbitrarily combined):
18266
18267 @table @code
18268 @item ALLOBJ
18269 Display sections for all loaded object files, including shared libraries.
18270 @item @var{sections}
18271 Display info only for named @var{sections}.
18272 @item @var{section-flags}
18273 Display info only for sections for which @var{section-flags} are true.
18274 The section flags that @value{GDBN} currently knows about are:
18275 @table @code
18276 @item ALLOC
18277 Section will have space allocated in the process when loaded.
18278 Set for all sections except those containing debug information.
18279 @item LOAD
18280 Section will be loaded from the file into the child process memory.
18281 Set for pre-initialized code and data, clear for @code{.bss} sections.
18282 @item RELOC
18283 Section needs to be relocated before loading.
18284 @item READONLY
18285 Section cannot be modified by the child process.
18286 @item CODE
18287 Section contains executable code only.
18288 @item DATA
18289 Section contains data only (no executable code).
18290 @item ROM
18291 Section will reside in ROM.
18292 @item CONSTRUCTOR
18293 Section contains data for constructor/destructor lists.
18294 @item HAS_CONTENTS
18295 Section is not empty.
18296 @item NEVER_LOAD
18297 An instruction to the linker to not output the section.
18298 @item COFF_SHARED_LIBRARY
18299 A notification to the linker that the section contains
18300 COFF shared library information.
18301 @item IS_COMMON
18302 Section contains common symbols.
18303 @end table
18304 @end table
18305 @kindex set trust-readonly-sections
18306 @cindex read-only sections
18307 @item set trust-readonly-sections on
18308 Tell @value{GDBN} that readonly sections in your object file
18309 really are read-only (i.e.@: that their contents will not change).
18310 In that case, @value{GDBN} can fetch values from these sections
18311 out of the object file, rather than from the target program.
18312 For some targets (notably embedded ones), this can be a significant
18313 enhancement to debugging performance.
18314
18315 The default is off.
18316
18317 @item set trust-readonly-sections off
18318 Tell @value{GDBN} not to trust readonly sections. This means that
18319 the contents of the section might change while the program is running,
18320 and must therefore be fetched from the target when needed.
18321
18322 @item show trust-readonly-sections
18323 Show the current setting of trusting readonly sections.
18324 @end table
18325
18326 All file-specifying commands allow both absolute and relative file names
18327 as arguments. @value{GDBN} always converts the file name to an absolute file
18328 name and remembers it that way.
18329
18330 @cindex shared libraries
18331 @anchor{Shared Libraries}
18332 @value{GDBN} supports @sc{gnu}/Linux, MS-Windows, SunOS,
18333 Darwin/Mach-O, SVr4, IBM RS/6000 AIX, QNX Neutrino, FDPIC (FR-V), and
18334 DSBT (TIC6X) shared libraries.
18335
18336 On MS-Windows @value{GDBN} must be linked with the Expat library to support
18337 shared libraries. @xref{Expat}.
18338
18339 @value{GDBN} automatically loads symbol definitions from shared libraries
18340 when you use the @code{run} command, or when you examine a core file.
18341 (Before you issue the @code{run} command, @value{GDBN} does not understand
18342 references to a function in a shared library, however---unless you are
18343 debugging a core file).
18344
18345 @c FIXME: some @value{GDBN} release may permit some refs to undef
18346 @c FIXME...symbols---eg in a break cmd---assuming they are from a shared
18347 @c FIXME...lib; check this from time to time when updating manual
18348
18349 There are times, however, when you may wish to not automatically load
18350 symbol definitions from shared libraries, such as when they are
18351 particularly large or there are many of them.
18352
18353 To control the automatic loading of shared library symbols, use the
18354 commands:
18355
18356 @table @code
18357 @kindex set auto-solib-add
18358 @item set auto-solib-add @var{mode}
18359 If @var{mode} is @code{on}, symbols from all shared object libraries
18360 will be loaded automatically when the inferior begins execution, you
18361 attach to an independently started inferior, or when the dynamic linker
18362 informs @value{GDBN} that a new library has been loaded. If @var{mode}
18363 is @code{off}, symbols must be loaded manually, using the
18364 @code{sharedlibrary} command. The default value is @code{on}.
18365
18366 @cindex memory used for symbol tables
18367 If your program uses lots of shared libraries with debug info that
18368 takes large amounts of memory, you can decrease the @value{GDBN}
18369 memory footprint by preventing it from automatically loading the
18370 symbols from shared libraries. To that end, type @kbd{set
18371 auto-solib-add off} before running the inferior, then load each
18372 library whose debug symbols you do need with @kbd{sharedlibrary
18373 @var{regexp}}, where @var{regexp} is a regular expression that matches
18374 the libraries whose symbols you want to be loaded.
18375
18376 @kindex show auto-solib-add
18377 @item show auto-solib-add
18378 Display the current autoloading mode.
18379 @end table
18380
18381 @cindex load shared library
18382 To explicitly load shared library symbols, use the @code{sharedlibrary}
18383 command:
18384
18385 @table @code
18386 @kindex info sharedlibrary
18387 @kindex info share
18388 @item info share @var{regex}
18389 @itemx info sharedlibrary @var{regex}
18390 Print the names of the shared libraries which are currently loaded
18391 that match @var{regex}. If @var{regex} is omitted then print
18392 all shared libraries that are loaded.
18393
18394 @kindex info dll
18395 @item info dll @var{regex}
18396 This is an alias of @code{info sharedlibrary}.
18397
18398 @kindex sharedlibrary
18399 @kindex share
18400 @item sharedlibrary @var{regex}
18401 @itemx share @var{regex}
18402 Load shared object library symbols for files matching a
18403 Unix regular expression.
18404 As with files loaded automatically, it only loads shared libraries
18405 required by your program for a core file or after typing @code{run}. If
18406 @var{regex} is omitted all shared libraries required by your program are
18407 loaded.
18408
18409 @item nosharedlibrary
18410 @kindex nosharedlibrary
18411 @cindex unload symbols from shared libraries
18412 Unload all shared object library symbols. This discards all symbols
18413 that have been loaded from all shared libraries. Symbols from shared
18414 libraries that were loaded by explicit user requests are not
18415 discarded.
18416 @end table
18417
18418 Sometimes you may wish that @value{GDBN} stops and gives you control
18419 when any of shared library events happen. The best way to do this is
18420 to use @code{catch load} and @code{catch unload} (@pxref{Set
18421 Catchpoints}).
18422
18423 @value{GDBN} also supports the the @code{set stop-on-solib-events}
18424 command for this. This command exists for historical reasons. It is
18425 less useful than setting a catchpoint, because it does not allow for
18426 conditions or commands as a catchpoint does.
18427
18428 @table @code
18429 @item set stop-on-solib-events
18430 @kindex set stop-on-solib-events
18431 This command controls whether @value{GDBN} should give you control
18432 when the dynamic linker notifies it about some shared library event.
18433 The most common event of interest is loading or unloading of a new
18434 shared library.
18435
18436 @item show stop-on-solib-events
18437 @kindex show stop-on-solib-events
18438 Show whether @value{GDBN} stops and gives you control when shared
18439 library events happen.
18440 @end table
18441
18442 Shared libraries are also supported in many cross or remote debugging
18443 configurations. @value{GDBN} needs to have access to the target's libraries;
18444 this can be accomplished either by providing copies of the libraries
18445 on the host system, or by asking @value{GDBN} to automatically retrieve the
18446 libraries from the target. If copies of the target libraries are
18447 provided, they need to be the same as the target libraries, although the
18448 copies on the target can be stripped as long as the copies on the host are
18449 not.
18450
18451 @cindex where to look for shared libraries
18452 For remote debugging, you need to tell @value{GDBN} where the target
18453 libraries are, so that it can load the correct copies---otherwise, it
18454 may try to load the host's libraries. @value{GDBN} has two variables
18455 to specify the search directories for target libraries.
18456
18457 @table @code
18458 @cindex prefix for executable and shared library file names
18459 @cindex system root, alternate
18460 @kindex set solib-absolute-prefix
18461 @kindex set sysroot
18462 @item set sysroot @var{path}
18463 Use @var{path} as the system root for the program being debugged. Any
18464 absolute shared library paths will be prefixed with @var{path}; many
18465 runtime loaders store the absolute paths to the shared library in the
18466 target program's memory. When starting processes remotely, and when
18467 attaching to already-running processes (local or remote), their
18468 executable filenames will be prefixed with @var{path} if reported to
18469 @value{GDBN} as absolute by the operating system. If you use
18470 @code{set sysroot} to find executables and shared libraries, they need
18471 to be laid out in the same way that they are on the target, with
18472 e.g.@: a @file{/bin}, @file{/lib} and @file{/usr/lib} hierarchy under
18473 @var{path}.
18474
18475 If @var{path} starts with the sequence @file{target:} and the target
18476 system is remote then @value{GDBN} will retrieve the target binaries
18477 from the remote system. This is only supported when using a remote
18478 target that supports the @code{remote get} command (@pxref{File
18479 Transfer,,Sending files to a remote system}). The part of @var{path}
18480 following the initial @file{target:} (if present) is used as system
18481 root prefix on the remote file system. If @var{path} starts with the
18482 sequence @file{remote:} this is converted to the sequence
18483 @file{target:} by @code{set sysroot}@footnote{Historically the
18484 functionality to retrieve binaries from the remote system was
18485 provided by prefixing @var{path} with @file{remote:}}. If you want
18486 to specify a local system root using a directory that happens to be
18487 named @file{target:} or @file{remote:}, you need to use some
18488 equivalent variant of the name like @file{./target:}.
18489
18490 For targets with an MS-DOS based filesystem, such as MS-Windows and
18491 SymbianOS, @value{GDBN} tries prefixing a few variants of the target
18492 absolute file name with @var{path}. But first, on Unix hosts,
18493 @value{GDBN} converts all backslash directory separators into forward
18494 slashes, because the backslash is not a directory separator on Unix:
18495
18496 @smallexample
18497 c:\foo\bar.dll @result{} c:/foo/bar.dll
18498 @end smallexample
18499
18500 Then, @value{GDBN} attempts prefixing the target file name with
18501 @var{path}, and looks for the resulting file name in the host file
18502 system:
18503
18504 @smallexample
18505 c:/foo/bar.dll @result{} /path/to/sysroot/c:/foo/bar.dll
18506 @end smallexample
18507
18508 If that does not find the binary, @value{GDBN} tries removing
18509 the @samp{:} character from the drive spec, both for convenience, and,
18510 for the case of the host file system not supporting file names with
18511 colons:
18512
18513 @smallexample
18514 c:/foo/bar.dll @result{} /path/to/sysroot/c/foo/bar.dll
18515 @end smallexample
18516
18517 This makes it possible to have a system root that mirrors a target
18518 with more than one drive. E.g., you may want to setup your local
18519 copies of the target system shared libraries like so (note @samp{c} vs
18520 @samp{z}):
18521
18522 @smallexample
18523 @file{/path/to/sysroot/c/sys/bin/foo.dll}
18524 @file{/path/to/sysroot/c/sys/bin/bar.dll}
18525 @file{/path/to/sysroot/z/sys/bin/bar.dll}
18526 @end smallexample
18527
18528 @noindent
18529 and point the system root at @file{/path/to/sysroot}, so that
18530 @value{GDBN} can find the correct copies of both
18531 @file{c:\sys\bin\foo.dll}, and @file{z:\sys\bin\bar.dll}.
18532
18533 If that still does not find the binary, @value{GDBN} tries
18534 removing the whole drive spec from the target file name:
18535
18536 @smallexample
18537 c:/foo/bar.dll @result{} /path/to/sysroot/foo/bar.dll
18538 @end smallexample
18539
18540 This last lookup makes it possible to not care about the drive name,
18541 if you don't want or need to.
18542
18543 The @code{set solib-absolute-prefix} command is an alias for @code{set
18544 sysroot}.
18545
18546 @cindex default system root
18547 @cindex @samp{--with-sysroot}
18548 You can set the default system root by using the configure-time
18549 @samp{--with-sysroot} option. If the system root is inside
18550 @value{GDBN}'s configured binary prefix (set with @samp{--prefix} or
18551 @samp{--exec-prefix}), then the default system root will be updated
18552 automatically if the installed @value{GDBN} is moved to a new
18553 location.
18554
18555 @kindex show sysroot
18556 @item show sysroot
18557 Display the current executable and shared library prefix.
18558
18559 @kindex set solib-search-path
18560 @item set solib-search-path @var{path}
18561 If this variable is set, @var{path} is a colon-separated list of
18562 directories to search for shared libraries. @samp{solib-search-path}
18563 is used after @samp{sysroot} fails to locate the library, or if the
18564 path to the library is relative instead of absolute. If you want to
18565 use @samp{solib-search-path} instead of @samp{sysroot}, be sure to set
18566 @samp{sysroot} to a nonexistent directory to prevent @value{GDBN} from
18567 finding your host's libraries. @samp{sysroot} is preferred; setting
18568 it to a nonexistent directory may interfere with automatic loading
18569 of shared library symbols.
18570
18571 @kindex show solib-search-path
18572 @item show solib-search-path
18573 Display the current shared library search path.
18574
18575 @cindex DOS file-name semantics of file names.
18576 @kindex set target-file-system-kind (unix|dos-based|auto)
18577 @kindex show target-file-system-kind
18578 @item set target-file-system-kind @var{kind}
18579 Set assumed file system kind for target reported file names.
18580
18581 Shared library file names as reported by the target system may not
18582 make sense as is on the system @value{GDBN} is running on. For
18583 example, when remote debugging a target that has MS-DOS based file
18584 system semantics, from a Unix host, the target may be reporting to
18585 @value{GDBN} a list of loaded shared libraries with file names such as
18586 @file{c:\Windows\kernel32.dll}. On Unix hosts, there's no concept of
18587 drive letters, so the @samp{c:\} prefix is not normally understood as
18588 indicating an absolute file name, and neither is the backslash
18589 normally considered a directory separator character. In that case,
18590 the native file system would interpret this whole absolute file name
18591 as a relative file name with no directory components. This would make
18592 it impossible to point @value{GDBN} at a copy of the remote target's
18593 shared libraries on the host using @code{set sysroot}, and impractical
18594 with @code{set solib-search-path}. Setting
18595 @code{target-file-system-kind} to @code{dos-based} tells @value{GDBN}
18596 to interpret such file names similarly to how the target would, and to
18597 map them to file names valid on @value{GDBN}'s native file system
18598 semantics. The value of @var{kind} can be @code{"auto"}, in addition
18599 to one of the supported file system kinds. In that case, @value{GDBN}
18600 tries to determine the appropriate file system variant based on the
18601 current target's operating system (@pxref{ABI, ,Configuring the
18602 Current ABI}). The supported file system settings are:
18603
18604 @table @code
18605 @item unix
18606 Instruct @value{GDBN} to assume the target file system is of Unix
18607 kind. Only file names starting the forward slash (@samp{/}) character
18608 are considered absolute, and the directory separator character is also
18609 the forward slash.
18610
18611 @item dos-based
18612 Instruct @value{GDBN} to assume the target file system is DOS based.
18613 File names starting with either a forward slash, or a drive letter
18614 followed by a colon (e.g., @samp{c:}), are considered absolute, and
18615 both the slash (@samp{/}) and the backslash (@samp{\\}) characters are
18616 considered directory separators.
18617
18618 @item auto
18619 Instruct @value{GDBN} to use the file system kind associated with the
18620 target operating system (@pxref{ABI, ,Configuring the Current ABI}).
18621 This is the default.
18622 @end table
18623 @end table
18624
18625 @cindex file name canonicalization
18626 @cindex base name differences
18627 When processing file names provided by the user, @value{GDBN}
18628 frequently needs to compare them to the file names recorded in the
18629 program's debug info. Normally, @value{GDBN} compares just the
18630 @dfn{base names} of the files as strings, which is reasonably fast
18631 even for very large programs. (The base name of a file is the last
18632 portion of its name, after stripping all the leading directories.)
18633 This shortcut in comparison is based upon the assumption that files
18634 cannot have more than one base name. This is usually true, but
18635 references to files that use symlinks or similar filesystem
18636 facilities violate that assumption. If your program records files
18637 using such facilities, or if you provide file names to @value{GDBN}
18638 using symlinks etc., you can set @code{basenames-may-differ} to
18639 @code{true} to instruct @value{GDBN} to completely canonicalize each
18640 pair of file names it needs to compare. This will make file-name
18641 comparisons accurate, but at a price of a significant slowdown.
18642
18643 @table @code
18644 @item set basenames-may-differ
18645 @kindex set basenames-may-differ
18646 Set whether a source file may have multiple base names.
18647
18648 @item show basenames-may-differ
18649 @kindex show basenames-may-differ
18650 Show whether a source file may have multiple base names.
18651 @end table
18652
18653 @node File Caching
18654 @section File Caching
18655 @cindex caching of opened files
18656 @cindex caching of bfd objects
18657
18658 To speed up file loading, and reduce memory usage, @value{GDBN} will
18659 reuse the @code{bfd} objects used to track open files. @xref{Top, ,
18660 BFD, bfd, The Binary File Descriptor Library}. The following commands
18661 allow visibility and control of the caching behavior.
18662
18663 @table @code
18664 @kindex maint info bfds
18665 @item maint info bfds
18666 This prints information about each @code{bfd} object that is known to
18667 @value{GDBN}.
18668
18669 @kindex maint set bfd-sharing
18670 @kindex maint show bfd-sharing
18671 @kindex bfd caching
18672 @item maint set bfd-sharing
18673 @item maint show bfd-sharing
18674 Control whether @code{bfd} objects can be shared. When sharing is
18675 enabled @value{GDBN} reuses already open @code{bfd} objects rather
18676 than reopening the same file. Turning sharing off does not cause
18677 already shared @code{bfd} objects to be unshared, but all future files
18678 that are opened will create a new @code{bfd} object. Similarly,
18679 re-enabling sharing does not cause multiple existing @code{bfd}
18680 objects to be collapsed into a single shared @code{bfd} object.
18681
18682 @kindex set debug bfd-cache @var{level}
18683 @kindex bfd caching
18684 @item set debug bfd-cache @var{level}
18685 Turns on debugging of the bfd cache, setting the level to @var{level}.
18686
18687 @kindex show debug bfd-cache
18688 @kindex bfd caching
18689 @item show debug bfd-cache
18690 Show the current debugging level of the bfd cache.
18691 @end table
18692
18693 @node Separate Debug Files
18694 @section Debugging Information in Separate Files
18695 @cindex separate debugging information files
18696 @cindex debugging information in separate files
18697 @cindex @file{.debug} subdirectories
18698 @cindex debugging information directory, global
18699 @cindex global debugging information directories
18700 @cindex build ID, and separate debugging files
18701 @cindex @file{.build-id} directory
18702
18703 @value{GDBN} allows you to put a program's debugging information in a
18704 file separate from the executable itself, in a way that allows
18705 @value{GDBN} to find and load the debugging information automatically.
18706 Since debugging information can be very large---sometimes larger
18707 than the executable code itself---some systems distribute debugging
18708 information for their executables in separate files, which users can
18709 install only when they need to debug a problem.
18710
18711 @value{GDBN} supports two ways of specifying the separate debug info
18712 file:
18713
18714 @itemize @bullet
18715 @item
18716 The executable contains a @dfn{debug link} that specifies the name of
18717 the separate debug info file. The separate debug file's name is
18718 usually @file{@var{executable}.debug}, where @var{executable} is the
18719 name of the corresponding executable file without leading directories
18720 (e.g., @file{ls.debug} for @file{/usr/bin/ls}). In addition, the
18721 debug link specifies a 32-bit @dfn{Cyclic Redundancy Check} (CRC)
18722 checksum for the debug file, which @value{GDBN} uses to validate that
18723 the executable and the debug file came from the same build.
18724
18725 @item
18726 The executable contains a @dfn{build ID}, a unique bit string that is
18727 also present in the corresponding debug info file. (This is supported
18728 only on some operating systems, when using the ELF or PE file formats
18729 for binary files and the @sc{gnu} Binutils.) For more details about
18730 this feature, see the description of the @option{--build-id}
18731 command-line option in @ref{Options, , Command Line Options, ld.info,
18732 The GNU Linker}. The debug info file's name is not specified
18733 explicitly by the build ID, but can be computed from the build ID, see
18734 below.
18735 @end itemize
18736
18737 Depending on the way the debug info file is specified, @value{GDBN}
18738 uses two different methods of looking for the debug file:
18739
18740 @itemize @bullet
18741 @item
18742 For the ``debug link'' method, @value{GDBN} looks up the named file in
18743 the directory of the executable file, then in a subdirectory of that
18744 directory named @file{.debug}, and finally under each one of the global debug
18745 directories, in a subdirectory whose name is identical to the leading
18746 directories of the executable's absolute file name.
18747
18748 @item
18749 For the ``build ID'' method, @value{GDBN} looks in the
18750 @file{.build-id} subdirectory of each one of the global debug directories for
18751 a file named @file{@var{nn}/@var{nnnnnnnn}.debug}, where @var{nn} are the
18752 first 2 hex characters of the build ID bit string, and @var{nnnnnnnn}
18753 are the rest of the bit string. (Real build ID strings are 32 or more
18754 hex characters, not 10.)
18755 @end itemize
18756
18757 So, for example, suppose you ask @value{GDBN} to debug
18758 @file{/usr/bin/ls}, which has a debug link that specifies the
18759 file @file{ls.debug}, and a build ID whose value in hex is
18760 @code{abcdef1234}. If the list of the global debug directories includes
18761 @file{/usr/lib/debug}, then @value{GDBN} will look for the following
18762 debug information files, in the indicated order:
18763
18764 @itemize @minus
18765 @item
18766 @file{/usr/lib/debug/.build-id/ab/cdef1234.debug}
18767 @item
18768 @file{/usr/bin/ls.debug}
18769 @item
18770 @file{/usr/bin/.debug/ls.debug}
18771 @item
18772 @file{/usr/lib/debug/usr/bin/ls.debug}.
18773 @end itemize
18774
18775 @anchor{debug-file-directory}
18776 Global debugging info directories default to what is set by @value{GDBN}
18777 configure option @option{--with-separate-debug-dir}. During @value{GDBN} run
18778 you can also set the global debugging info directories, and view the list
18779 @value{GDBN} is currently using.
18780
18781 @table @code
18782
18783 @kindex set debug-file-directory
18784 @item set debug-file-directory @var{directories}
18785 Set the directories which @value{GDBN} searches for separate debugging
18786 information files to @var{directory}. Multiple path components can be set
18787 concatenating them by a path separator.
18788
18789 @kindex show debug-file-directory
18790 @item show debug-file-directory
18791 Show the directories @value{GDBN} searches for separate debugging
18792 information files.
18793
18794 @end table
18795
18796 @cindex @code{.gnu_debuglink} sections
18797 @cindex debug link sections
18798 A debug link is a special section of the executable file named
18799 @code{.gnu_debuglink}. The section must contain:
18800
18801 @itemize
18802 @item
18803 A filename, with any leading directory components removed, followed by
18804 a zero byte,
18805 @item
18806 zero to three bytes of padding, as needed to reach the next four-byte
18807 boundary within the section, and
18808 @item
18809 a four-byte CRC checksum, stored in the same endianness used for the
18810 executable file itself. The checksum is computed on the debugging
18811 information file's full contents by the function given below, passing
18812 zero as the @var{crc} argument.
18813 @end itemize
18814
18815 Any executable file format can carry a debug link, as long as it can
18816 contain a section named @code{.gnu_debuglink} with the contents
18817 described above.
18818
18819 @cindex @code{.note.gnu.build-id} sections
18820 @cindex build ID sections
18821 The build ID is a special section in the executable file (and in other
18822 ELF binary files that @value{GDBN} may consider). This section is
18823 often named @code{.note.gnu.build-id}, but that name is not mandatory.
18824 It contains unique identification for the built files---the ID remains
18825 the same across multiple builds of the same build tree. The default
18826 algorithm SHA1 produces 160 bits (40 hexadecimal characters) of the
18827 content for the build ID string. The same section with an identical
18828 value is present in the original built binary with symbols, in its
18829 stripped variant, and in the separate debugging information file.
18830
18831 The debugging information file itself should be an ordinary
18832 executable, containing a full set of linker symbols, sections, and
18833 debugging information. The sections of the debugging information file
18834 should have the same names, addresses, and sizes as the original file,
18835 but they need not contain any data---much like a @code{.bss} section
18836 in an ordinary executable.
18837
18838 The @sc{gnu} binary utilities (Binutils) package includes the
18839 @samp{objcopy} utility that can produce
18840 the separated executable / debugging information file pairs using the
18841 following commands:
18842
18843 @smallexample
18844 @kbd{objcopy --only-keep-debug foo foo.debug}
18845 @kbd{strip -g foo}
18846 @end smallexample
18847
18848 @noindent
18849 These commands remove the debugging
18850 information from the executable file @file{foo} and place it in the file
18851 @file{foo.debug}. You can use the first, second or both methods to link the
18852 two files:
18853
18854 @itemize @bullet
18855 @item
18856 The debug link method needs the following additional command to also leave
18857 behind a debug link in @file{foo}:
18858
18859 @smallexample
18860 @kbd{objcopy --add-gnu-debuglink=foo.debug foo}
18861 @end smallexample
18862
18863 Ulrich Drepper's @file{elfutils} package, starting with version 0.53, contains
18864 a version of the @code{strip} command such that the command @kbd{strip foo -f
18865 foo.debug} has the same functionality as the two @code{objcopy} commands and
18866 the @code{ln -s} command above, together.
18867
18868 @item
18869 Build ID gets embedded into the main executable using @code{ld --build-id} or
18870 the @value{NGCC} counterpart @code{gcc -Wl,--build-id}. Build ID support plus
18871 compatibility fixes for debug files separation are present in @sc{gnu} binary
18872 utilities (Binutils) package since version 2.18.
18873 @end itemize
18874
18875 @noindent
18876
18877 @cindex CRC algorithm definition
18878 The CRC used in @code{.gnu_debuglink} is the CRC-32 defined in
18879 IEEE 802.3 using the polynomial:
18880
18881 @c TexInfo requires naked braces for multi-digit exponents for Tex
18882 @c output, but this causes HTML output to barf. HTML has to be set using
18883 @c raw commands. So we end up having to specify this equation in 2
18884 @c different ways!
18885 @ifhtml
18886 @display
18887 @html
18888 <em>x</em><sup>32</sup> + <em>x</em><sup>26</sup> + <em>x</em><sup>23</sup> + <em>x</em><sup>22</sup> + <em>x</em><sup>16</sup> + <em>x</em><sup>12</sup> + <em>x</em><sup>11</sup>
18889 + <em>x</em><sup>10</sup> + <em>x</em><sup>8</sup> + <em>x</em><sup>7</sup> + <em>x</em><sup>5</sup> + <em>x</em><sup>4</sup> + <em>x</em><sup>2</sup> + <em>x</em> + 1
18890 @end html
18891 @end display
18892 @end ifhtml
18893 @ifnothtml
18894 @display
18895 @math{x^{32} + x^{26} + x^{23} + x^{22} + x^{16} + x^{12} + x^{11}}
18896 @math{+ x^{10} + x^8 + x^7 + x^5 + x^4 + x^2 + x + 1}
18897 @end display
18898 @end ifnothtml
18899
18900 The function is computed byte at a time, taking the least
18901 significant bit of each byte first. The initial pattern
18902 @code{0xffffffff} is used, to ensure leading zeros affect the CRC and
18903 the final result is inverted to ensure trailing zeros also affect the
18904 CRC.
18905
18906 @emph{Note:} This is the same CRC polynomial as used in handling the
18907 @dfn{Remote Serial Protocol} @code{qCRC} packet (@pxref{qCRC packet}).
18908 However in the case of the Remote Serial Protocol, the CRC is computed
18909 @emph{most} significant bit first, and the result is not inverted, so
18910 trailing zeros have no effect on the CRC value.
18911
18912 To complete the description, we show below the code of the function
18913 which produces the CRC used in @code{.gnu_debuglink}. Inverting the
18914 initially supplied @code{crc} argument means that an initial call to
18915 this function passing in zero will start computing the CRC using
18916 @code{0xffffffff}.
18917
18918 @kindex gnu_debuglink_crc32
18919 @smallexample
18920 unsigned long
18921 gnu_debuglink_crc32 (unsigned long crc,
18922 unsigned char *buf, size_t len)
18923 @{
18924 static const unsigned long crc32_table[256] =
18925 @{
18926 0x00000000, 0x77073096, 0xee0e612c, 0x990951ba, 0x076dc419,
18927 0x706af48f, 0xe963a535, 0x9e6495a3, 0x0edb8832, 0x79dcb8a4,
18928 0xe0d5e91e, 0x97d2d988, 0x09b64c2b, 0x7eb17cbd, 0xe7b82d07,
18929 0x90bf1d91, 0x1db71064, 0x6ab020f2, 0xf3b97148, 0x84be41de,
18930 0x1adad47d, 0x6ddde4eb, 0xf4d4b551, 0x83d385c7, 0x136c9856,
18931 0x646ba8c0, 0xfd62f97a, 0x8a65c9ec, 0x14015c4f, 0x63066cd9,
18932 0xfa0f3d63, 0x8d080df5, 0x3b6e20c8, 0x4c69105e, 0xd56041e4,
18933 0xa2677172, 0x3c03e4d1, 0x4b04d447, 0xd20d85fd, 0xa50ab56b,
18934 0x35b5a8fa, 0x42b2986c, 0xdbbbc9d6, 0xacbcf940, 0x32d86ce3,
18935 0x45df5c75, 0xdcd60dcf, 0xabd13d59, 0x26d930ac, 0x51de003a,
18936 0xc8d75180, 0xbfd06116, 0x21b4f4b5, 0x56b3c423, 0xcfba9599,
18937 0xb8bda50f, 0x2802b89e, 0x5f058808, 0xc60cd9b2, 0xb10be924,
18938 0x2f6f7c87, 0x58684c11, 0xc1611dab, 0xb6662d3d, 0x76dc4190,
18939 0x01db7106, 0x98d220bc, 0xefd5102a, 0x71b18589, 0x06b6b51f,
18940 0x9fbfe4a5, 0xe8b8d433, 0x7807c9a2, 0x0f00f934, 0x9609a88e,
18941 0xe10e9818, 0x7f6a0dbb, 0x086d3d2d, 0x91646c97, 0xe6635c01,
18942 0x6b6b51f4, 0x1c6c6162, 0x856530d8, 0xf262004e, 0x6c0695ed,
18943 0x1b01a57b, 0x8208f4c1, 0xf50fc457, 0x65b0d9c6, 0x12b7e950,
18944 0x8bbeb8ea, 0xfcb9887c, 0x62dd1ddf, 0x15da2d49, 0x8cd37cf3,
18945 0xfbd44c65, 0x4db26158, 0x3ab551ce, 0xa3bc0074, 0xd4bb30e2,
18946 0x4adfa541, 0x3dd895d7, 0xa4d1c46d, 0xd3d6f4fb, 0x4369e96a,
18947 0x346ed9fc, 0xad678846, 0xda60b8d0, 0x44042d73, 0x33031de5,
18948 0xaa0a4c5f, 0xdd0d7cc9, 0x5005713c, 0x270241aa, 0xbe0b1010,
18949 0xc90c2086, 0x5768b525, 0x206f85b3, 0xb966d409, 0xce61e49f,
18950 0x5edef90e, 0x29d9c998, 0xb0d09822, 0xc7d7a8b4, 0x59b33d17,
18951 0x2eb40d81, 0xb7bd5c3b, 0xc0ba6cad, 0xedb88320, 0x9abfb3b6,
18952 0x03b6e20c, 0x74b1d29a, 0xead54739, 0x9dd277af, 0x04db2615,
18953 0x73dc1683, 0xe3630b12, 0x94643b84, 0x0d6d6a3e, 0x7a6a5aa8,
18954 0xe40ecf0b, 0x9309ff9d, 0x0a00ae27, 0x7d079eb1, 0xf00f9344,
18955 0x8708a3d2, 0x1e01f268, 0x6906c2fe, 0xf762575d, 0x806567cb,
18956 0x196c3671, 0x6e6b06e7, 0xfed41b76, 0x89d32be0, 0x10da7a5a,
18957 0x67dd4acc, 0xf9b9df6f, 0x8ebeeff9, 0x17b7be43, 0x60b08ed5,
18958 0xd6d6a3e8, 0xa1d1937e, 0x38d8c2c4, 0x4fdff252, 0xd1bb67f1,
18959 0xa6bc5767, 0x3fb506dd, 0x48b2364b, 0xd80d2bda, 0xaf0a1b4c,
18960 0x36034af6, 0x41047a60, 0xdf60efc3, 0xa867df55, 0x316e8eef,
18961 0x4669be79, 0xcb61b38c, 0xbc66831a, 0x256fd2a0, 0x5268e236,
18962 0xcc0c7795, 0xbb0b4703, 0x220216b9, 0x5505262f, 0xc5ba3bbe,
18963 0xb2bd0b28, 0x2bb45a92, 0x5cb36a04, 0xc2d7ffa7, 0xb5d0cf31,
18964 0x2cd99e8b, 0x5bdeae1d, 0x9b64c2b0, 0xec63f226, 0x756aa39c,
18965 0x026d930a, 0x9c0906a9, 0xeb0e363f, 0x72076785, 0x05005713,
18966 0x95bf4a82, 0xe2b87a14, 0x7bb12bae, 0x0cb61b38, 0x92d28e9b,
18967 0xe5d5be0d, 0x7cdcefb7, 0x0bdbdf21, 0x86d3d2d4, 0xf1d4e242,
18968 0x68ddb3f8, 0x1fda836e, 0x81be16cd, 0xf6b9265b, 0x6fb077e1,
18969 0x18b74777, 0x88085ae6, 0xff0f6a70, 0x66063bca, 0x11010b5c,
18970 0x8f659eff, 0xf862ae69, 0x616bffd3, 0x166ccf45, 0xa00ae278,
18971 0xd70dd2ee, 0x4e048354, 0x3903b3c2, 0xa7672661, 0xd06016f7,
18972 0x4969474d, 0x3e6e77db, 0xaed16a4a, 0xd9d65adc, 0x40df0b66,
18973 0x37d83bf0, 0xa9bcae53, 0xdebb9ec5, 0x47b2cf7f, 0x30b5ffe9,
18974 0xbdbdf21c, 0xcabac28a, 0x53b39330, 0x24b4a3a6, 0xbad03605,
18975 0xcdd70693, 0x54de5729, 0x23d967bf, 0xb3667a2e, 0xc4614ab8,
18976 0x5d681b02, 0x2a6f2b94, 0xb40bbe37, 0xc30c8ea1, 0x5a05df1b,
18977 0x2d02ef8d
18978 @};
18979 unsigned char *end;
18980
18981 crc = ~crc & 0xffffffff;
18982 for (end = buf + len; buf < end; ++buf)
18983 crc = crc32_table[(crc ^ *buf) & 0xff] ^ (crc >> 8);
18984 return ~crc & 0xffffffff;
18985 @}
18986 @end smallexample
18987
18988 @noindent
18989 This computation does not apply to the ``build ID'' method.
18990
18991 @node MiniDebugInfo
18992 @section Debugging information in a special section
18993 @cindex separate debug sections
18994 @cindex @samp{.gnu_debugdata} section
18995
18996 Some systems ship pre-built executables and libraries that have a
18997 special @samp{.gnu_debugdata} section. This feature is called
18998 @dfn{MiniDebugInfo}. This section holds an LZMA-compressed object and
18999 is used to supply extra symbols for backtraces.
19000
19001 The intent of this section is to provide extra minimal debugging
19002 information for use in simple backtraces. It is not intended to be a
19003 replacement for full separate debugging information (@pxref{Separate
19004 Debug Files}). The example below shows the intended use; however,
19005 @value{GDBN} does not currently put restrictions on what sort of
19006 debugging information might be included in the section.
19007
19008 @value{GDBN} has support for this extension. If the section exists,
19009 then it is used provided that no other source of debugging information
19010 can be found, and that @value{GDBN} was configured with LZMA support.
19011
19012 This section can be easily created using @command{objcopy} and other
19013 standard utilities:
19014
19015 @smallexample
19016 # Extract the dynamic symbols from the main binary, there is no need
19017 # to also have these in the normal symbol table.
19018 nm -D @var{binary} --format=posix --defined-only \
19019 | awk '@{ print $1 @}' | sort > dynsyms
19020
19021 # Extract all the text (i.e. function) symbols from the debuginfo.
19022 # (Note that we actually also accept "D" symbols, for the benefit
19023 # of platforms like PowerPC64 that use function descriptors.)
19024 nm @var{binary} --format=posix --defined-only \
19025 | awk '@{ if ($2 == "T" || $2 == "t" || $2 == "D") print $1 @}' \
19026 | sort > funcsyms
19027
19028 # Keep all the function symbols not already in the dynamic symbol
19029 # table.
19030 comm -13 dynsyms funcsyms > keep_symbols
19031
19032 # Separate full debug info into debug binary.
19033 objcopy --only-keep-debug @var{binary} debug
19034
19035 # Copy the full debuginfo, keeping only a minimal set of symbols and
19036 # removing some unnecessary sections.
19037 objcopy -S --remove-section .gdb_index --remove-section .comment \
19038 --keep-symbols=keep_symbols debug mini_debuginfo
19039
19040 # Drop the full debug info from the original binary.
19041 strip --strip-all -R .comment @var{binary}
19042
19043 # Inject the compressed data into the .gnu_debugdata section of the
19044 # original binary.
19045 xz mini_debuginfo
19046 objcopy --add-section .gnu_debugdata=mini_debuginfo.xz @var{binary}
19047 @end smallexample
19048
19049 @node Index Files
19050 @section Index Files Speed Up @value{GDBN}
19051 @cindex index files
19052 @cindex @samp{.gdb_index} section
19053
19054 When @value{GDBN} finds a symbol file, it scans the symbols in the
19055 file in order to construct an internal symbol table. This lets most
19056 @value{GDBN} operations work quickly---at the cost of a delay early
19057 on. For large programs, this delay can be quite lengthy, so
19058 @value{GDBN} provides a way to build an index, which speeds up
19059 startup.
19060
19061 The index is stored as a section in the symbol file. @value{GDBN} can
19062 write the index to a file, then you can put it into the symbol file
19063 using @command{objcopy}.
19064
19065 To create an index file, use the @code{save gdb-index} command:
19066
19067 @table @code
19068 @item save gdb-index @var{directory}
19069 @kindex save gdb-index
19070 Create an index file for each symbol file currently known by
19071 @value{GDBN}. Each file is named after its corresponding symbol file,
19072 with @samp{.gdb-index} appended, and is written into the given
19073 @var{directory}.
19074 @end table
19075
19076 Once you have created an index file you can merge it into your symbol
19077 file, here named @file{symfile}, using @command{objcopy}:
19078
19079 @smallexample
19080 $ objcopy --add-section .gdb_index=symfile.gdb-index \
19081 --set-section-flags .gdb_index=readonly symfile symfile
19082 @end smallexample
19083
19084 @value{GDBN} will normally ignore older versions of @file{.gdb_index}
19085 sections that have been deprecated. Usually they are deprecated because
19086 they are missing a new feature or have performance issues.
19087 To tell @value{GDBN} to use a deprecated index section anyway
19088 specify @code{set use-deprecated-index-sections on}.
19089 The default is @code{off}.
19090 This can speed up startup, but may result in some functionality being lost.
19091 @xref{Index Section Format}.
19092
19093 @emph{Warning:} Setting @code{use-deprecated-index-sections} to @code{on}
19094 must be done before gdb reads the file. The following will not work:
19095
19096 @smallexample
19097 $ gdb -ex "set use-deprecated-index-sections on" <program>
19098 @end smallexample
19099
19100 Instead you must do, for example,
19101
19102 @smallexample
19103 $ gdb -iex "set use-deprecated-index-sections on" <program>
19104 @end smallexample
19105
19106 There are currently some limitation on indices. They only work when
19107 for DWARF debugging information, not stabs. And, they do not
19108 currently work for programs using Ada.
19109
19110 @node Symbol Errors
19111 @section Errors Reading Symbol Files
19112
19113 While reading a symbol file, @value{GDBN} occasionally encounters problems,
19114 such as symbol types it does not recognize, or known bugs in compiler
19115 output. By default, @value{GDBN} does not notify you of such problems, since
19116 they are relatively common and primarily of interest to people
19117 debugging compilers. If you are interested in seeing information
19118 about ill-constructed symbol tables, you can either ask @value{GDBN} to print
19119 only one message about each such type of problem, no matter how many
19120 times the problem occurs; or you can ask @value{GDBN} to print more messages,
19121 to see how many times the problems occur, with the @code{set
19122 complaints} command (@pxref{Messages/Warnings, ,Optional Warnings and
19123 Messages}).
19124
19125 The messages currently printed, and their meanings, include:
19126
19127 @table @code
19128 @item inner block not inside outer block in @var{symbol}
19129
19130 The symbol information shows where symbol scopes begin and end
19131 (such as at the start of a function or a block of statements). This
19132 error indicates that an inner scope block is not fully contained
19133 in its outer scope blocks.
19134
19135 @value{GDBN} circumvents the problem by treating the inner block as if it had
19136 the same scope as the outer block. In the error message, @var{symbol}
19137 may be shown as ``@code{(don't know)}'' if the outer block is not a
19138 function.
19139
19140 @item block at @var{address} out of order
19141
19142 The symbol information for symbol scope blocks should occur in
19143 order of increasing addresses. This error indicates that it does not
19144 do so.
19145
19146 @value{GDBN} does not circumvent this problem, and has trouble
19147 locating symbols in the source file whose symbols it is reading. (You
19148 can often determine what source file is affected by specifying
19149 @code{set verbose on}. @xref{Messages/Warnings, ,Optional Warnings and
19150 Messages}.)
19151
19152 @item bad block start address patched
19153
19154 The symbol information for a symbol scope block has a start address
19155 smaller than the address of the preceding source line. This is known
19156 to occur in the SunOS 4.1.1 (and earlier) C compiler.
19157
19158 @value{GDBN} circumvents the problem by treating the symbol scope block as
19159 starting on the previous source line.
19160
19161 @item bad string table offset in symbol @var{n}
19162
19163 @cindex foo
19164 Symbol number @var{n} contains a pointer into the string table which is
19165 larger than the size of the string table.
19166
19167 @value{GDBN} circumvents the problem by considering the symbol to have the
19168 name @code{foo}, which may cause other problems if many symbols end up
19169 with this name.
19170
19171 @item unknown symbol type @code{0x@var{nn}}
19172
19173 The symbol information contains new data types that @value{GDBN} does
19174 not yet know how to read. @code{0x@var{nn}} is the symbol type of the
19175 uncomprehended information, in hexadecimal.
19176
19177 @value{GDBN} circumvents the error by ignoring this symbol information.
19178 This usually allows you to debug your program, though certain symbols
19179 are not accessible. If you encounter such a problem and feel like
19180 debugging it, you can debug @code{@value{GDBP}} with itself, breakpoint
19181 on @code{complain}, then go up to the function @code{read_dbx_symtab}
19182 and examine @code{*bufp} to see the symbol.
19183
19184 @item stub type has NULL name
19185
19186 @value{GDBN} could not find the full definition for a struct or class.
19187
19188 @item const/volatile indicator missing (ok if using g++ v1.x), got@dots{}
19189 The symbol information for a C@t{++} member function is missing some
19190 information that recent versions of the compiler should have output for
19191 it.
19192
19193 @item info mismatch between compiler and debugger
19194
19195 @value{GDBN} could not parse a type specification output by the compiler.
19196
19197 @end table
19198
19199 @node Data Files
19200 @section GDB Data Files
19201
19202 @cindex prefix for data files
19203 @value{GDBN} will sometimes read an auxiliary data file. These files
19204 are kept in a directory known as the @dfn{data directory}.
19205
19206 You can set the data directory's name, and view the name @value{GDBN}
19207 is currently using.
19208
19209 @table @code
19210 @kindex set data-directory
19211 @item set data-directory @var{directory}
19212 Set the directory which @value{GDBN} searches for auxiliary data files
19213 to @var{directory}.
19214
19215 @kindex show data-directory
19216 @item show data-directory
19217 Show the directory @value{GDBN} searches for auxiliary data files.
19218 @end table
19219
19220 @cindex default data directory
19221 @cindex @samp{--with-gdb-datadir}
19222 You can set the default data directory by using the configure-time
19223 @samp{--with-gdb-datadir} option. If the data directory is inside
19224 @value{GDBN}'s configured binary prefix (set with @samp{--prefix} or
19225 @samp{--exec-prefix}), then the default data directory will be updated
19226 automatically if the installed @value{GDBN} is moved to a new
19227 location.
19228
19229 The data directory may also be specified with the
19230 @code{--data-directory} command line option.
19231 @xref{Mode Options}.
19232
19233 @node Targets
19234 @chapter Specifying a Debugging Target
19235
19236 @cindex debugging target
19237 A @dfn{target} is the execution environment occupied by your program.
19238
19239 Often, @value{GDBN} runs in the same host environment as your program;
19240 in that case, the debugging target is specified as a side effect when
19241 you use the @code{file} or @code{core} commands. When you need more
19242 flexibility---for example, running @value{GDBN} on a physically separate
19243 host, or controlling a standalone system over a serial port or a
19244 realtime system over a TCP/IP connection---you can use the @code{target}
19245 command to specify one of the target types configured for @value{GDBN}
19246 (@pxref{Target Commands, ,Commands for Managing Targets}).
19247
19248 @cindex target architecture
19249 It is possible to build @value{GDBN} for several different @dfn{target
19250 architectures}. When @value{GDBN} is built like that, you can choose
19251 one of the available architectures with the @kbd{set architecture}
19252 command.
19253
19254 @table @code
19255 @kindex set architecture
19256 @kindex show architecture
19257 @item set architecture @var{arch}
19258 This command sets the current target architecture to @var{arch}. The
19259 value of @var{arch} can be @code{"auto"}, in addition to one of the
19260 supported architectures.
19261
19262 @item show architecture
19263 Show the current target architecture.
19264
19265 @item set processor
19266 @itemx processor
19267 @kindex set processor
19268 @kindex show processor
19269 These are alias commands for, respectively, @code{set architecture}
19270 and @code{show architecture}.
19271 @end table
19272
19273 @menu
19274 * Active Targets:: Active targets
19275 * Target Commands:: Commands for managing targets
19276 * Byte Order:: Choosing target byte order
19277 @end menu
19278
19279 @node Active Targets
19280 @section Active Targets
19281
19282 @cindex stacking targets
19283 @cindex active targets
19284 @cindex multiple targets
19285
19286 There are multiple classes of targets such as: processes, executable files or
19287 recording sessions. Core files belong to the process class, making core file
19288 and process mutually exclusive. Otherwise, @value{GDBN} can work concurrently
19289 on multiple active targets, one in each class. This allows you to (for
19290 example) start a process and inspect its activity, while still having access to
19291 the executable file after the process finishes. Or if you start process
19292 recording (@pxref{Reverse Execution}) and @code{reverse-step} there, you are
19293 presented a virtual layer of the recording target, while the process target
19294 remains stopped at the chronologically last point of the process execution.
19295
19296 Use the @code{core-file} and @code{exec-file} commands to select a new core
19297 file or executable target (@pxref{Files, ,Commands to Specify Files}). To
19298 specify as a target a process that is already running, use the @code{attach}
19299 command (@pxref{Attach, ,Debugging an Already-running Process}).
19300
19301 @node Target Commands
19302 @section Commands for Managing Targets
19303
19304 @table @code
19305 @item target @var{type} @var{parameters}
19306 Connects the @value{GDBN} host environment to a target machine or
19307 process. A target is typically a protocol for talking to debugging
19308 facilities. You use the argument @var{type} to specify the type or
19309 protocol of the target machine.
19310
19311 Further @var{parameters} are interpreted by the target protocol, but
19312 typically include things like device names or host names to connect
19313 with, process numbers, and baud rates.
19314
19315 The @code{target} command does not repeat if you press @key{RET} again
19316 after executing the command.
19317
19318 @kindex help target
19319 @item help target
19320 Displays the names of all targets available. To display targets
19321 currently selected, use either @code{info target} or @code{info files}
19322 (@pxref{Files, ,Commands to Specify Files}).
19323
19324 @item help target @var{name}
19325 Describe a particular target, including any parameters necessary to
19326 select it.
19327
19328 @kindex set gnutarget
19329 @item set gnutarget @var{args}
19330 @value{GDBN} uses its own library BFD to read your files. @value{GDBN}
19331 knows whether it is reading an @dfn{executable},
19332 a @dfn{core}, or a @dfn{.o} file; however, you can specify the file format
19333 with the @code{set gnutarget} command. Unlike most @code{target} commands,
19334 with @code{gnutarget} the @code{target} refers to a program, not a machine.
19335
19336 @quotation
19337 @emph{Warning:} To specify a file format with @code{set gnutarget},
19338 you must know the actual BFD name.
19339 @end quotation
19340
19341 @noindent
19342 @xref{Files, , Commands to Specify Files}.
19343
19344 @kindex show gnutarget
19345 @item show gnutarget
19346 Use the @code{show gnutarget} command to display what file format
19347 @code{gnutarget} is set to read. If you have not set @code{gnutarget},
19348 @value{GDBN} will determine the file format for each file automatically,
19349 and @code{show gnutarget} displays @samp{The current BFD target is "auto"}.
19350 @end table
19351
19352 @cindex common targets
19353 Here are some common targets (available, or not, depending on the GDB
19354 configuration):
19355
19356 @table @code
19357 @kindex target
19358 @item target exec @var{program}
19359 @cindex executable file target
19360 An executable file. @samp{target exec @var{program}} is the same as
19361 @samp{exec-file @var{program}}.
19362
19363 @item target core @var{filename}
19364 @cindex core dump file target
19365 A core dump file. @samp{target core @var{filename}} is the same as
19366 @samp{core-file @var{filename}}.
19367
19368 @item target remote @var{medium}
19369 @cindex remote target
19370 A remote system connected to @value{GDBN} via a serial line or network
19371 connection. This command tells @value{GDBN} to use its own remote
19372 protocol over @var{medium} for debugging. @xref{Remote Debugging}.
19373
19374 For example, if you have a board connected to @file{/dev/ttya} on the
19375 machine running @value{GDBN}, you could say:
19376
19377 @smallexample
19378 target remote /dev/ttya
19379 @end smallexample
19380
19381 @code{target remote} supports the @code{load} command. This is only
19382 useful if you have some other way of getting the stub to the target
19383 system, and you can put it somewhere in memory where it won't get
19384 clobbered by the download.
19385
19386 @item target sim @r{[}@var{simargs}@r{]} @dots{}
19387 @cindex built-in simulator target
19388 Builtin CPU simulator. @value{GDBN} includes simulators for most architectures.
19389 In general,
19390 @smallexample
19391 target sim
19392 load
19393 run
19394 @end smallexample
19395 @noindent
19396 works; however, you cannot assume that a specific memory map, device
19397 drivers, or even basic I/O is available, although some simulators do
19398 provide these. For info about any processor-specific simulator details,
19399 see the appropriate section in @ref{Embedded Processors, ,Embedded
19400 Processors}.
19401
19402 @item target native
19403 @cindex native target
19404 Setup for local/native process debugging. Useful to make the
19405 @code{run} command spawn native processes (likewise @code{attach},
19406 etc.@:) even when @code{set auto-connect-native-target} is @code{off}
19407 (@pxref{set auto-connect-native-target}).
19408
19409 @end table
19410
19411 Different targets are available on different configurations of @value{GDBN};
19412 your configuration may have more or fewer targets.
19413
19414 Many remote targets require you to download the executable's code once
19415 you've successfully established a connection. You may wish to control
19416 various aspects of this process.
19417
19418 @table @code
19419
19420 @item set hash
19421 @kindex set hash@r{, for remote monitors}
19422 @cindex hash mark while downloading
19423 This command controls whether a hash mark @samp{#} is displayed while
19424 downloading a file to the remote monitor. If on, a hash mark is
19425 displayed after each S-record is successfully downloaded to the
19426 monitor.
19427
19428 @item show hash
19429 @kindex show hash@r{, for remote monitors}
19430 Show the current status of displaying the hash mark.
19431
19432 @item set debug monitor
19433 @kindex set debug monitor
19434 @cindex display remote monitor communications
19435 Enable or disable display of communications messages between
19436 @value{GDBN} and the remote monitor.
19437
19438 @item show debug monitor
19439 @kindex show debug monitor
19440 Show the current status of displaying communications between
19441 @value{GDBN} and the remote monitor.
19442 @end table
19443
19444 @table @code
19445
19446 @kindex load @var{filename}
19447 @item load @var{filename}
19448 @anchor{load}
19449 Depending on what remote debugging facilities are configured into
19450 @value{GDBN}, the @code{load} command may be available. Where it exists, it
19451 is meant to make @var{filename} (an executable) available for debugging
19452 on the remote system---by downloading, or dynamic linking, for example.
19453 @code{load} also records the @var{filename} symbol table in @value{GDBN}, like
19454 the @code{add-symbol-file} command.
19455
19456 If your @value{GDBN} does not have a @code{load} command, attempting to
19457 execute it gets the error message ``@code{You can't do that when your
19458 target is @dots{}}''
19459
19460 The file is loaded at whatever address is specified in the executable.
19461 For some object file formats, you can specify the load address when you
19462 link the program; for other formats, like a.out, the object file format
19463 specifies a fixed address.
19464 @c FIXME! This would be a good place for an xref to the GNU linker doc.
19465
19466 Depending on the remote side capabilities, @value{GDBN} may be able to
19467 load programs into flash memory.
19468
19469 @code{load} does not repeat if you press @key{RET} again after using it.
19470 @end table
19471
19472 @node Byte Order
19473 @section Choosing Target Byte Order
19474
19475 @cindex choosing target byte order
19476 @cindex target byte order
19477
19478 Some types of processors, such as the @acronym{MIPS}, PowerPC, and Renesas SH,
19479 offer the ability to run either big-endian or little-endian byte
19480 orders. Usually the executable or symbol will include a bit to
19481 designate the endian-ness, and you will not need to worry about
19482 which to use. However, you may still find it useful to adjust
19483 @value{GDBN}'s idea of processor endian-ness manually.
19484
19485 @table @code
19486 @kindex set endian
19487 @item set endian big
19488 Instruct @value{GDBN} to assume the target is big-endian.
19489
19490 @item set endian little
19491 Instruct @value{GDBN} to assume the target is little-endian.
19492
19493 @item set endian auto
19494 Instruct @value{GDBN} to use the byte order associated with the
19495 executable.
19496
19497 @item show endian
19498 Display @value{GDBN}'s current idea of the target byte order.
19499
19500 @end table
19501
19502 Note that these commands merely adjust interpretation of symbolic
19503 data on the host, and that they have absolutely no effect on the
19504 target system.
19505
19506
19507 @node Remote Debugging
19508 @chapter Debugging Remote Programs
19509 @cindex remote debugging
19510
19511 If you are trying to debug a program running on a machine that cannot run
19512 @value{GDBN} in the usual way, it is often useful to use remote debugging.
19513 For example, you might use remote debugging on an operating system kernel,
19514 or on a small system which does not have a general purpose operating system
19515 powerful enough to run a full-featured debugger.
19516
19517 Some configurations of @value{GDBN} have special serial or TCP/IP interfaces
19518 to make this work with particular debugging targets. In addition,
19519 @value{GDBN} comes with a generic serial protocol (specific to @value{GDBN},
19520 but not specific to any particular target system) which you can use if you
19521 write the remote stubs---the code that runs on the remote system to
19522 communicate with @value{GDBN}.
19523
19524 Other remote targets may be available in your
19525 configuration of @value{GDBN}; use @code{help target} to list them.
19526
19527 @menu
19528 * Connecting:: Connecting to a remote target
19529 * File Transfer:: Sending files to a remote system
19530 * Server:: Using the gdbserver program
19531 * Remote Configuration:: Remote configuration
19532 * Remote Stub:: Implementing a remote stub
19533 @end menu
19534
19535 @node Connecting
19536 @section Connecting to a Remote Target
19537 @cindex remote debugging, connecting
19538 @cindex @code{gdbserver}, connecting
19539 @cindex remote debugging, types of connections
19540 @cindex @code{gdbserver}, types of connections
19541 @cindex @code{gdbserver}, @code{target remote} mode
19542 @cindex @code{gdbserver}, @code{target extended-remote} mode
19543
19544 This section describes how to connect to a remote target, including the
19545 types of connections and their differences, how to set up executable and
19546 symbol files on the host and target, and the commands used for
19547 connecting to and disconnecting from the remote target.
19548
19549 @subsection Types of Remote Connections
19550
19551 @value{GDBN} supports two types of remote connections, @code{target remote}
19552 mode and @code{target extended-remote} mode. Note that many remote targets
19553 support only @code{target remote} mode. There are several major
19554 differences between the two types of connections, enumerated here:
19555
19556 @table @asis
19557
19558 @cindex remote debugging, detach and program exit
19559 @item Result of detach or program exit
19560 @strong{With target remote mode:} When the debugged program exits or you
19561 detach from it, @value{GDBN} disconnects from the target. When using
19562 @code{gdbserver}, @code{gdbserver} will exit.
19563
19564 @strong{With target extended-remote mode:} When the debugged program exits or
19565 you detach from it, @value{GDBN} remains connected to the target, even
19566 though no program is running. You can rerun the program, attach to a
19567 running program, or use @code{monitor} commands specific to the target.
19568
19569 When using @code{gdbserver} in this case, it does not exit unless it was
19570 invoked using the @option{--once} option. If the @option{--once} option
19571 was not used, you can ask @code{gdbserver} to exit using the
19572 @code{monitor exit} command (@pxref{Monitor Commands for gdbserver}).
19573
19574 @item Specifying the program to debug
19575 For both connection types you use the @code{file} command to specify the
19576 program on the host system. If you are using @code{gdbserver} there are
19577 some differences in how to specify the location of the program on the
19578 target.
19579
19580 @strong{With target remote mode:} You must either specify the program to debug
19581 on the @code{gdbserver} command line or use the @option{--attach} option
19582 (@pxref{Attaching to a program,,Attaching to a Running Program}).
19583
19584 @cindex @option{--multi}, @code{gdbserver} option
19585 @strong{With target extended-remote mode:} You may specify the program to debug
19586 on the @code{gdbserver} command line, or you can load the program or attach
19587 to it using @value{GDBN} commands after connecting to @code{gdbserver}.
19588
19589 @anchor{--multi Option in Types of Remote Connnections}
19590 You can start @code{gdbserver} without supplying an initial command to run
19591 or process ID to attach. To do this, use the @option{--multi} command line
19592 option. Then you can connect using @code{target extended-remote} and start
19593 the program you want to debug (see below for details on using the
19594 @code{run} command in this scenario). Note that the conditions under which
19595 @code{gdbserver} terminates depend on how @value{GDBN} connects to it
19596 (@code{target remote} or @code{target extended-remote}). The
19597 @option{--multi} option to @code{gdbserver} has no influence on that.
19598
19599 @item The @code{run} command
19600 @strong{With target remote mode:} The @code{run} command is not
19601 supported. Once a connection has been established, you can use all
19602 the usual @value{GDBN} commands to examine and change data. The
19603 remote program is already running, so you can use commands like
19604 @kbd{step} and @kbd{continue}.
19605
19606 @strong{With target extended-remote mode:} The @code{run} command is
19607 supported. The @code{run} command uses the value set by
19608 @code{set remote exec-file} (@pxref{set remote exec-file}) to select
19609 the program to run. Command line arguments are supported, except for
19610 wildcard expansion and I/O redirection (@pxref{Arguments}).
19611
19612 If you specify the program to debug on the command line, then the
19613 @code{run} command is not required to start execution, and you can
19614 resume using commands like @kbd{step} and @kbd{continue} as with
19615 @code{target remote} mode.
19616
19617 @anchor{Attaching in Types of Remote Connections}
19618 @item Attaching
19619 @strong{With target remote mode:} The @value{GDBN} command @code{attach} is
19620 not supported. To attach to a running program using @code{gdbserver}, you
19621 must use the @option{--attach} option (@pxref{Running gdbserver}).
19622
19623 @strong{With target extended-remote mode:} To attach to a running program,
19624 you may use the @code{attach} command after the connection has been
19625 established. If you are using @code{gdbserver}, you may also invoke
19626 @code{gdbserver} using the @option{--attach} option
19627 (@pxref{Running gdbserver}).
19628
19629 @end table
19630
19631 @anchor{Host and target files}
19632 @subsection Host and Target Files
19633 @cindex remote debugging, symbol files
19634 @cindex symbol files, remote debugging
19635
19636 @value{GDBN}, running on the host, needs access to symbol and debugging
19637 information for your program running on the target. This requires
19638 access to an unstripped copy of your program, and possibly any associated
19639 symbol files. Note that this section applies equally to both @code{target
19640 remote} mode and @code{target extended-remote} mode.
19641
19642 Some remote targets (@pxref{qXfer executable filename read}, and
19643 @pxref{Host I/O Packets}) allow @value{GDBN} to access program files over
19644 the same connection used to communicate with @value{GDBN}. With such a
19645 target, if the remote program is unstripped, the only command you need is
19646 @code{target remote} (or @code{target extended-remote}).
19647
19648 If the remote program is stripped, or the target does not support remote
19649 program file access, start up @value{GDBN} using the name of the local
19650 unstripped copy of your program as the first argument, or use the
19651 @code{file} command. Use @code{set sysroot} to specify the location (on
19652 the host) of target libraries (unless your @value{GDBN} was compiled with
19653 the correct sysroot using @code{--with-sysroot}). Alternatively, you
19654 may use @code{set solib-search-path} to specify how @value{GDBN} locates
19655 target libraries.
19656
19657 The symbol file and target libraries must exactly match the executable
19658 and libraries on the target, with one exception: the files on the host
19659 system should not be stripped, even if the files on the target system
19660 are. Mismatched or missing files will lead to confusing results
19661 during debugging. On @sc{gnu}/Linux targets, mismatched or missing
19662 files may also prevent @code{gdbserver} from debugging multi-threaded
19663 programs.
19664
19665 @subsection Remote Connection Commands
19666 @cindex remote connection commands
19667 @value{GDBN} can communicate with the target over a serial line, or
19668 over an @acronym{IP} network using @acronym{TCP} or @acronym{UDP}. In
19669 each case, @value{GDBN} uses the same protocol for debugging your
19670 program; only the medium carrying the debugging packets varies. The
19671 @code{target remote} and @code{target extended-remote} commands
19672 establish a connection to the target. Both commands accept the same
19673 arguments, which indicate the medium to use:
19674
19675 @table @code
19676
19677 @item target remote @var{serial-device}
19678 @itemx target extended-remote @var{serial-device}
19679 @cindex serial line, @code{target remote}
19680 Use @var{serial-device} to communicate with the target. For example,
19681 to use a serial line connected to the device named @file{/dev/ttyb}:
19682
19683 @smallexample
19684 target remote /dev/ttyb
19685 @end smallexample
19686
19687 If you're using a serial line, you may want to give @value{GDBN} the
19688 @samp{--baud} option, or use the @code{set serial baud} command
19689 (@pxref{Remote Configuration, set serial baud}) before the
19690 @code{target} command.
19691
19692 @item target remote @code{@var{host}:@var{port}}
19693 @itemx target remote @code{tcp:@var{host}:@var{port}}
19694 @itemx target extended-remote @code{@var{host}:@var{port}}
19695 @itemx target extended-remote @code{tcp:@var{host}:@var{port}}
19696 @cindex @acronym{TCP} port, @code{target remote}
19697 Debug using a @acronym{TCP} connection to @var{port} on @var{host}.
19698 The @var{host} may be either a host name or a numeric @acronym{IP}
19699 address; @var{port} must be a decimal number. The @var{host} could be
19700 the target machine itself, if it is directly connected to the net, or
19701 it might be a terminal server which in turn has a serial line to the
19702 target.
19703
19704 For example, to connect to port 2828 on a terminal server named
19705 @code{manyfarms}:
19706
19707 @smallexample
19708 target remote manyfarms:2828
19709 @end smallexample
19710
19711 If your remote target is actually running on the same machine as your
19712 debugger session (e.g.@: a simulator for your target running on the
19713 same host), you can omit the hostname. For example, to connect to
19714 port 1234 on your local machine:
19715
19716 @smallexample
19717 target remote :1234
19718 @end smallexample
19719 @noindent
19720
19721 Note that the colon is still required here.
19722
19723 @item target remote @code{udp:@var{host}:@var{port}}
19724 @itemx target extended-remote @code{udp:@var{host}:@var{port}}
19725 @cindex @acronym{UDP} port, @code{target remote}
19726 Debug using @acronym{UDP} packets to @var{port} on @var{host}. For example, to
19727 connect to @acronym{UDP} port 2828 on a terminal server named @code{manyfarms}:
19728
19729 @smallexample
19730 target remote udp:manyfarms:2828
19731 @end smallexample
19732
19733 When using a @acronym{UDP} connection for remote debugging, you should
19734 keep in mind that the `U' stands for ``Unreliable''. @acronym{UDP}
19735 can silently drop packets on busy or unreliable networks, which will
19736 cause havoc with your debugging session.
19737
19738 @item target remote | @var{command}
19739 @itemx target extended-remote | @var{command}
19740 @cindex pipe, @code{target remote} to
19741 Run @var{command} in the background and communicate with it using a
19742 pipe. The @var{command} is a shell command, to be parsed and expanded
19743 by the system's command shell, @code{/bin/sh}; it should expect remote
19744 protocol packets on its standard input, and send replies on its
19745 standard output. You could use this to run a stand-alone simulator
19746 that speaks the remote debugging protocol, to make net connections
19747 using programs like @code{ssh}, or for other similar tricks.
19748
19749 If @var{command} closes its standard output (perhaps by exiting),
19750 @value{GDBN} will try to send it a @code{SIGTERM} signal. (If the
19751 program has already exited, this will have no effect.)
19752
19753 @end table
19754
19755 @cindex interrupting remote programs
19756 @cindex remote programs, interrupting
19757 Whenever @value{GDBN} is waiting for the remote program, if you type the
19758 interrupt character (often @kbd{Ctrl-c}), @value{GDBN} attempts to stop the
19759 program. This may or may not succeed, depending in part on the hardware
19760 and the serial drivers the remote system uses. If you type the
19761 interrupt character once again, @value{GDBN} displays this prompt:
19762
19763 @smallexample
19764 Interrupted while waiting for the program.
19765 Give up (and stop debugging it)? (y or n)
19766 @end smallexample
19767
19768 In @code{target remote} mode, if you type @kbd{y}, @value{GDBN} abandons
19769 the remote debugging session. (If you decide you want to try again later,
19770 you can use @kbd{target remote} again to connect once more.) If you type
19771 @kbd{n}, @value{GDBN} goes back to waiting.
19772
19773 In @code{target extended-remote} mode, typing @kbd{n} will leave
19774 @value{GDBN} connected to the target.
19775
19776 @table @code
19777 @kindex detach (remote)
19778 @item detach
19779 When you have finished debugging the remote program, you can use the
19780 @code{detach} command to release it from @value{GDBN} control.
19781 Detaching from the target normally resumes its execution, but the results
19782 will depend on your particular remote stub. After the @code{detach}
19783 command in @code{target remote} mode, @value{GDBN} is free to connect to
19784 another target. In @code{target extended-remote} mode, @value{GDBN} is
19785 still connected to the target.
19786
19787 @kindex disconnect
19788 @item disconnect
19789 The @code{disconnect} command closes the connection to the target, and
19790 the target is generally not resumed. It will wait for @value{GDBN}
19791 (this instance or another one) to connect and continue debugging. After
19792 the @code{disconnect} command, @value{GDBN} is again free to connect to
19793 another target.
19794
19795 @cindex send command to remote monitor
19796 @cindex extend @value{GDBN} for remote targets
19797 @cindex add new commands for external monitor
19798 @kindex monitor
19799 @item monitor @var{cmd}
19800 This command allows you to send arbitrary commands directly to the
19801 remote monitor. Since @value{GDBN} doesn't care about the commands it
19802 sends like this, this command is the way to extend @value{GDBN}---you
19803 can add new commands that only the external monitor will understand
19804 and implement.
19805 @end table
19806
19807 @node File Transfer
19808 @section Sending files to a remote system
19809 @cindex remote target, file transfer
19810 @cindex file transfer
19811 @cindex sending files to remote systems
19812
19813 Some remote targets offer the ability to transfer files over the same
19814 connection used to communicate with @value{GDBN}. This is convenient
19815 for targets accessible through other means, e.g.@: @sc{gnu}/Linux systems
19816 running @code{gdbserver} over a network interface. For other targets,
19817 e.g.@: embedded devices with only a single serial port, this may be
19818 the only way to upload or download files.
19819
19820 Not all remote targets support these commands.
19821
19822 @table @code
19823 @kindex remote put
19824 @item remote put @var{hostfile} @var{targetfile}
19825 Copy file @var{hostfile} from the host system (the machine running
19826 @value{GDBN}) to @var{targetfile} on the target system.
19827
19828 @kindex remote get
19829 @item remote get @var{targetfile} @var{hostfile}
19830 Copy file @var{targetfile} from the target system to @var{hostfile}
19831 on the host system.
19832
19833 @kindex remote delete
19834 @item remote delete @var{targetfile}
19835 Delete @var{targetfile} from the target system.
19836
19837 @end table
19838
19839 @node Server
19840 @section Using the @code{gdbserver} Program
19841
19842 @kindex gdbserver
19843 @cindex remote connection without stubs
19844 @code{gdbserver} is a control program for Unix-like systems, which
19845 allows you to connect your program with a remote @value{GDBN} via
19846 @code{target remote} or @code{target extended-remote}---but without
19847 linking in the usual debugging stub.
19848
19849 @code{gdbserver} is not a complete replacement for the debugging stubs,
19850 because it requires essentially the same operating-system facilities
19851 that @value{GDBN} itself does. In fact, a system that can run
19852 @code{gdbserver} to connect to a remote @value{GDBN} could also run
19853 @value{GDBN} locally! @code{gdbserver} is sometimes useful nevertheless,
19854 because it is a much smaller program than @value{GDBN} itself. It is
19855 also easier to port than all of @value{GDBN}, so you may be able to get
19856 started more quickly on a new system by using @code{gdbserver}.
19857 Finally, if you develop code for real-time systems, you may find that
19858 the tradeoffs involved in real-time operation make it more convenient to
19859 do as much development work as possible on another system, for example
19860 by cross-compiling. You can use @code{gdbserver} to make a similar
19861 choice for debugging.
19862
19863 @value{GDBN} and @code{gdbserver} communicate via either a serial line
19864 or a TCP connection, using the standard @value{GDBN} remote serial
19865 protocol.
19866
19867 @quotation
19868 @emph{Warning:} @code{gdbserver} does not have any built-in security.
19869 Do not run @code{gdbserver} connected to any public network; a
19870 @value{GDBN} connection to @code{gdbserver} provides access to the
19871 target system with the same privileges as the user running
19872 @code{gdbserver}.
19873 @end quotation
19874
19875 @anchor{Running gdbserver}
19876 @subsection Running @code{gdbserver}
19877 @cindex arguments, to @code{gdbserver}
19878 @cindex @code{gdbserver}, command-line arguments
19879
19880 Run @code{gdbserver} on the target system. You need a copy of the
19881 program you want to debug, including any libraries it requires.
19882 @code{gdbserver} does not need your program's symbol table, so you can
19883 strip the program if necessary to save space. @value{GDBN} on the host
19884 system does all the symbol handling.
19885
19886 To use the server, you must tell it how to communicate with @value{GDBN};
19887 the name of your program; and the arguments for your program. The usual
19888 syntax is:
19889
19890 @smallexample
19891 target> gdbserver @var{comm} @var{program} [ @var{args} @dots{} ]
19892 @end smallexample
19893
19894 @var{comm} is either a device name (to use a serial line), or a TCP
19895 hostname and portnumber, or @code{-} or @code{stdio} to use
19896 stdin/stdout of @code{gdbserver}.
19897 For example, to debug Emacs with the argument
19898 @samp{foo.txt} and communicate with @value{GDBN} over the serial port
19899 @file{/dev/com1}:
19900
19901 @smallexample
19902 target> gdbserver /dev/com1 emacs foo.txt
19903 @end smallexample
19904
19905 @code{gdbserver} waits passively for the host @value{GDBN} to communicate
19906 with it.
19907
19908 To use a TCP connection instead of a serial line:
19909
19910 @smallexample
19911 target> gdbserver host:2345 emacs foo.txt
19912 @end smallexample
19913
19914 The only difference from the previous example is the first argument,
19915 specifying that you are communicating with the host @value{GDBN} via
19916 TCP. The @samp{host:2345} argument means that @code{gdbserver} is to
19917 expect a TCP connection from machine @samp{host} to local TCP port 2345.
19918 (Currently, the @samp{host} part is ignored.) You can choose any number
19919 you want for the port number as long as it does not conflict with any
19920 TCP ports already in use on the target system (for example, @code{23} is
19921 reserved for @code{telnet}).@footnote{If you choose a port number that
19922 conflicts with another service, @code{gdbserver} prints an error message
19923 and exits.} You must use the same port number with the host @value{GDBN}
19924 @code{target remote} command.
19925
19926 The @code{stdio} connection is useful when starting @code{gdbserver}
19927 with ssh:
19928
19929 @smallexample
19930 (gdb) target remote | ssh -T hostname gdbserver - hello
19931 @end smallexample
19932
19933 The @samp{-T} option to ssh is provided because we don't need a remote pty,
19934 and we don't want escape-character handling. Ssh does this by default when
19935 a command is provided, the flag is provided to make it explicit.
19936 You could elide it if you want to.
19937
19938 Programs started with stdio-connected gdbserver have @file{/dev/null} for
19939 @code{stdin}, and @code{stdout},@code{stderr} are sent back to gdb for
19940 display through a pipe connected to gdbserver.
19941 Both @code{stdout} and @code{stderr} use the same pipe.
19942
19943 @anchor{Attaching to a program}
19944 @subsubsection Attaching to a Running Program
19945 @cindex attach to a program, @code{gdbserver}
19946 @cindex @option{--attach}, @code{gdbserver} option
19947
19948 On some targets, @code{gdbserver} can also attach to running programs.
19949 This is accomplished via the @code{--attach} argument. The syntax is:
19950
19951 @smallexample
19952 target> gdbserver --attach @var{comm} @var{pid}
19953 @end smallexample
19954
19955 @var{pid} is the process ID of a currently running process. It isn't
19956 necessary to point @code{gdbserver} at a binary for the running process.
19957
19958 In @code{target extended-remote} mode, you can also attach using the
19959 @value{GDBN} attach command
19960 (@pxref{Attaching in Types of Remote Connections}).
19961
19962 @pindex pidof
19963 You can debug processes by name instead of process ID if your target has the
19964 @code{pidof} utility:
19965
19966 @smallexample
19967 target> gdbserver --attach @var{comm} `pidof @var{program}`
19968 @end smallexample
19969
19970 In case more than one copy of @var{program} is running, or @var{program}
19971 has multiple threads, most versions of @code{pidof} support the
19972 @code{-s} option to only return the first process ID.
19973
19974 @subsubsection TCP port allocation lifecycle of @code{gdbserver}
19975
19976 This section applies only when @code{gdbserver} is run to listen on a TCP
19977 port.
19978
19979 @code{gdbserver} normally terminates after all of its debugged processes have
19980 terminated in @kbd{target remote} mode. On the other hand, for @kbd{target
19981 extended-remote}, @code{gdbserver} stays running even with no processes left.
19982 @value{GDBN} normally terminates the spawned debugged process on its exit,
19983 which normally also terminates @code{gdbserver} in the @kbd{target remote}
19984 mode. Therefore, when the connection drops unexpectedly, and @value{GDBN}
19985 cannot ask @code{gdbserver} to kill its debugged processes, @code{gdbserver}
19986 stays running even in the @kbd{target remote} mode.
19987
19988 When @code{gdbserver} stays running, @value{GDBN} can connect to it again later.
19989 Such reconnecting is useful for features like @ref{disconnected tracing}. For
19990 completeness, at most one @value{GDBN} can be connected at a time.
19991
19992 @cindex @option{--once}, @code{gdbserver} option
19993 By default, @code{gdbserver} keeps the listening TCP port open, so that
19994 subsequent connections are possible. However, if you start @code{gdbserver}
19995 with the @option{--once} option, it will stop listening for any further
19996 connection attempts after connecting to the first @value{GDBN} session. This
19997 means no further connections to @code{gdbserver} will be possible after the
19998 first one. It also means @code{gdbserver} will terminate after the first
19999 connection with remote @value{GDBN} has closed, even for unexpectedly closed
20000 connections and even in the @kbd{target extended-remote} mode. The
20001 @option{--once} option allows reusing the same port number for connecting to
20002 multiple instances of @code{gdbserver} running on the same host, since each
20003 instance closes its port after the first connection.
20004
20005 @anchor{Other Command-Line Arguments for gdbserver}
20006 @subsubsection Other Command-Line Arguments for @code{gdbserver}
20007
20008 You can use the @option{--multi} option to start @code{gdbserver} without
20009 specifying a program to debug or a process to attach to. Then you can
20010 attach in @code{target extended-remote} mode and run or attach to a
20011 program. For more information,
20012 @pxref{--multi Option in Types of Remote Connnections}.
20013
20014 @cindex @option{--debug}, @code{gdbserver} option
20015 The @option{--debug} option tells @code{gdbserver} to display extra
20016 status information about the debugging process.
20017 @cindex @option{--remote-debug}, @code{gdbserver} option
20018 The @option{--remote-debug} option tells @code{gdbserver} to display
20019 remote protocol debug output. These options are intended for
20020 @code{gdbserver} development and for bug reports to the developers.
20021
20022 @cindex @option{--debug-format}, @code{gdbserver} option
20023 The @option{--debug-format=option1[,option2,...]} option tells
20024 @code{gdbserver} to include additional information in each output.
20025 Possible options are:
20026
20027 @table @code
20028 @item none
20029 Turn off all extra information in debugging output.
20030 @item all
20031 Turn on all extra information in debugging output.
20032 @item timestamps
20033 Include a timestamp in each line of debugging output.
20034 @end table
20035
20036 Options are processed in order. Thus, for example, if @option{none}
20037 appears last then no additional information is added to debugging output.
20038
20039 @cindex @option{--wrapper}, @code{gdbserver} option
20040 The @option{--wrapper} option specifies a wrapper to launch programs
20041 for debugging. The option should be followed by the name of the
20042 wrapper, then any command-line arguments to pass to the wrapper, then
20043 @kbd{--} indicating the end of the wrapper arguments.
20044
20045 @code{gdbserver} runs the specified wrapper program with a combined
20046 command line including the wrapper arguments, then the name of the
20047 program to debug, then any arguments to the program. The wrapper
20048 runs until it executes your program, and then @value{GDBN} gains control.
20049
20050 You can use any program that eventually calls @code{execve} with
20051 its arguments as a wrapper. Several standard Unix utilities do
20052 this, e.g.@: @code{env} and @code{nohup}. Any Unix shell script ending
20053 with @code{exec "$@@"} will also work.
20054
20055 For example, you can use @code{env} to pass an environment variable to
20056 the debugged program, without setting the variable in @code{gdbserver}'s
20057 environment:
20058
20059 @smallexample
20060 $ gdbserver --wrapper env LD_PRELOAD=libtest.so -- :2222 ./testprog
20061 @end smallexample
20062
20063 @subsection Connecting to @code{gdbserver}
20064
20065 The basic procedure for connecting to the remote target is:
20066 @itemize
20067
20068 @item
20069 Run @value{GDBN} on the host system.
20070
20071 @item
20072 Make sure you have the necessary symbol files
20073 (@pxref{Host and target files}).
20074 Load symbols for your application using the @code{file} command before you
20075 connect. Use @code{set sysroot} to locate target libraries (unless your
20076 @value{GDBN} was compiled with the correct sysroot using
20077 @code{--with-sysroot}).
20078
20079 @item
20080 Connect to your target (@pxref{Connecting,,Connecting to a Remote Target}).
20081 For TCP connections, you must start up @code{gdbserver} prior to using
20082 the @code{target} command. Otherwise you may get an error whose
20083 text depends on the host system, but which usually looks something like
20084 @samp{Connection refused}. Don't use the @code{load}
20085 command in @value{GDBN} when using @code{target remote} mode, since the
20086 program is already on the target.
20087
20088 @end itemize
20089
20090 @anchor{Monitor Commands for gdbserver}
20091 @subsection Monitor Commands for @code{gdbserver}
20092 @cindex monitor commands, for @code{gdbserver}
20093
20094 During a @value{GDBN} session using @code{gdbserver}, you can use the
20095 @code{monitor} command to send special requests to @code{gdbserver}.
20096 Here are the available commands.
20097
20098 @table @code
20099 @item monitor help
20100 List the available monitor commands.
20101
20102 @item monitor set debug 0
20103 @itemx monitor set debug 1
20104 Disable or enable general debugging messages.
20105
20106 @item monitor set remote-debug 0
20107 @itemx monitor set remote-debug 1
20108 Disable or enable specific debugging messages associated with the remote
20109 protocol (@pxref{Remote Protocol}).
20110
20111 @item monitor set debug-format option1@r{[},option2,...@r{]}
20112 Specify additional text to add to debugging messages.
20113 Possible options are:
20114
20115 @table @code
20116 @item none
20117 Turn off all extra information in debugging output.
20118 @item all
20119 Turn on all extra information in debugging output.
20120 @item timestamps
20121 Include a timestamp in each line of debugging output.
20122 @end table
20123
20124 Options are processed in order. Thus, for example, if @option{none}
20125 appears last then no additional information is added to debugging output.
20126
20127 @item monitor set libthread-db-search-path [PATH]
20128 @cindex gdbserver, search path for @code{libthread_db}
20129 When this command is issued, @var{path} is a colon-separated list of
20130 directories to search for @code{libthread_db} (@pxref{Threads,,set
20131 libthread-db-search-path}). If you omit @var{path},
20132 @samp{libthread-db-search-path} will be reset to its default value.
20133
20134 The special entry @samp{$pdir} for @samp{libthread-db-search-path} is
20135 not supported in @code{gdbserver}.
20136
20137 @item monitor exit
20138 Tell gdbserver to exit immediately. This command should be followed by
20139 @code{disconnect} to close the debugging session. @code{gdbserver} will
20140 detach from any attached processes and kill any processes it created.
20141 Use @code{monitor exit} to terminate @code{gdbserver} at the end
20142 of a multi-process mode debug session.
20143
20144 @end table
20145
20146 @subsection Tracepoints support in @code{gdbserver}
20147 @cindex tracepoints support in @code{gdbserver}
20148
20149 On some targets, @code{gdbserver} supports tracepoints, fast
20150 tracepoints and static tracepoints.
20151
20152 For fast or static tracepoints to work, a special library called the
20153 @dfn{in-process agent} (IPA), must be loaded in the inferior process.
20154 This library is built and distributed as an integral part of
20155 @code{gdbserver}. In addition, support for static tracepoints
20156 requires building the in-process agent library with static tracepoints
20157 support. At present, the UST (LTTng Userspace Tracer,
20158 @url{http://lttng.org/ust}) tracing engine is supported. This support
20159 is automatically available if UST development headers are found in the
20160 standard include path when @code{gdbserver} is built, or if
20161 @code{gdbserver} was explicitly configured using @option{--with-ust}
20162 to point at such headers. You can explicitly disable the support
20163 using @option{--with-ust=no}.
20164
20165 There are several ways to load the in-process agent in your program:
20166
20167 @table @code
20168 @item Specifying it as dependency at link time
20169
20170 You can link your program dynamically with the in-process agent
20171 library. On most systems, this is accomplished by adding
20172 @code{-linproctrace} to the link command.
20173
20174 @item Using the system's preloading mechanisms
20175
20176 You can force loading the in-process agent at startup time by using
20177 your system's support for preloading shared libraries. Many Unixes
20178 support the concept of preloading user defined libraries. In most
20179 cases, you do that by specifying @code{LD_PRELOAD=libinproctrace.so}
20180 in the environment. See also the description of @code{gdbserver}'s
20181 @option{--wrapper} command line option.
20182
20183 @item Using @value{GDBN} to force loading the agent at run time
20184
20185 On some systems, you can force the inferior to load a shared library,
20186 by calling a dynamic loader function in the inferior that takes care
20187 of dynamically looking up and loading a shared library. On most Unix
20188 systems, the function is @code{dlopen}. You'll use the @code{call}
20189 command for that. For example:
20190
20191 @smallexample
20192 (@value{GDBP}) call dlopen ("libinproctrace.so", ...)
20193 @end smallexample
20194
20195 Note that on most Unix systems, for the @code{dlopen} function to be
20196 available, the program needs to be linked with @code{-ldl}.
20197 @end table
20198
20199 On systems that have a userspace dynamic loader, like most Unix
20200 systems, when you connect to @code{gdbserver} using @code{target
20201 remote}, you'll find that the program is stopped at the dynamic
20202 loader's entry point, and no shared library has been loaded in the
20203 program's address space yet, including the in-process agent. In that
20204 case, before being able to use any of the fast or static tracepoints
20205 features, you need to let the loader run and load the shared
20206 libraries. The simplest way to do that is to run the program to the
20207 main procedure. E.g., if debugging a C or C@t{++} program, start
20208 @code{gdbserver} like so:
20209
20210 @smallexample
20211 $ gdbserver :9999 myprogram
20212 @end smallexample
20213
20214 Start GDB and connect to @code{gdbserver} like so, and run to main:
20215
20216 @smallexample
20217 $ gdb myprogram
20218 (@value{GDBP}) target remote myhost:9999
20219 0x00007f215893ba60 in ?? () from /lib64/ld-linux-x86-64.so.2
20220 (@value{GDBP}) b main
20221 (@value{GDBP}) continue
20222 @end smallexample
20223
20224 The in-process tracing agent library should now be loaded into the
20225 process; you can confirm it with the @code{info sharedlibrary}
20226 command, which will list @file{libinproctrace.so} as loaded in the
20227 process. You are now ready to install fast tracepoints, list static
20228 tracepoint markers, probe static tracepoints markers, and start
20229 tracing.
20230
20231 @node Remote Configuration
20232 @section Remote Configuration
20233
20234 @kindex set remote
20235 @kindex show remote
20236 This section documents the configuration options available when
20237 debugging remote programs. For the options related to the File I/O
20238 extensions of the remote protocol, see @ref{system,
20239 system-call-allowed}.
20240
20241 @table @code
20242 @item set remoteaddresssize @var{bits}
20243 @cindex address size for remote targets
20244 @cindex bits in remote address
20245 Set the maximum size of address in a memory packet to the specified
20246 number of bits. @value{GDBN} will mask off the address bits above
20247 that number, when it passes addresses to the remote target. The
20248 default value is the number of bits in the target's address.
20249
20250 @item show remoteaddresssize
20251 Show the current value of remote address size in bits.
20252
20253 @item set serial baud @var{n}
20254 @cindex baud rate for remote targets
20255 Set the baud rate for the remote serial I/O to @var{n} baud. The
20256 value is used to set the speed of the serial port used for debugging
20257 remote targets.
20258
20259 @item show serial baud
20260 Show the current speed of the remote connection.
20261
20262 @item set serial parity @var{parity}
20263 Set the parity for the remote serial I/O. Supported values of @var{parity} are:
20264 @code{even}, @code{none}, and @code{odd}. The default is @code{none}.
20265
20266 @item show serial parity
20267 Show the current parity of the serial port.
20268
20269 @item set remotebreak
20270 @cindex interrupt remote programs
20271 @cindex BREAK signal instead of Ctrl-C
20272 @anchor{set remotebreak}
20273 If set to on, @value{GDBN} sends a @code{BREAK} signal to the remote
20274 when you type @kbd{Ctrl-c} to interrupt the program running
20275 on the remote. If set to off, @value{GDBN} sends the @samp{Ctrl-C}
20276 character instead. The default is off, since most remote systems
20277 expect to see @samp{Ctrl-C} as the interrupt signal.
20278
20279 @item show remotebreak
20280 Show whether @value{GDBN} sends @code{BREAK} or @samp{Ctrl-C} to
20281 interrupt the remote program.
20282
20283 @item set remoteflow on
20284 @itemx set remoteflow off
20285 @kindex set remoteflow
20286 Enable or disable hardware flow control (@code{RTS}/@code{CTS})
20287 on the serial port used to communicate to the remote target.
20288
20289 @item show remoteflow
20290 @kindex show remoteflow
20291 Show the current setting of hardware flow control.
20292
20293 @item set remotelogbase @var{base}
20294 Set the base (a.k.a.@: radix) of logging serial protocol
20295 communications to @var{base}. Supported values of @var{base} are:
20296 @code{ascii}, @code{octal}, and @code{hex}. The default is
20297 @code{ascii}.
20298
20299 @item show remotelogbase
20300 Show the current setting of the radix for logging remote serial
20301 protocol.
20302
20303 @item set remotelogfile @var{file}
20304 @cindex record serial communications on file
20305 Record remote serial communications on the named @var{file}. The
20306 default is not to record at all.
20307
20308 @item show remotelogfile.
20309 Show the current setting of the file name on which to record the
20310 serial communications.
20311
20312 @item set remotetimeout @var{num}
20313 @cindex timeout for serial communications
20314 @cindex remote timeout
20315 Set the timeout limit to wait for the remote target to respond to
20316 @var{num} seconds. The default is 2 seconds.
20317
20318 @item show remotetimeout
20319 Show the current number of seconds to wait for the remote target
20320 responses.
20321
20322 @cindex limit hardware breakpoints and watchpoints
20323 @cindex remote target, limit break- and watchpoints
20324 @anchor{set remote hardware-watchpoint-limit}
20325 @anchor{set remote hardware-breakpoint-limit}
20326 @item set remote hardware-watchpoint-limit @var{limit}
20327 @itemx set remote hardware-breakpoint-limit @var{limit}
20328 Restrict @value{GDBN} to using @var{limit} remote hardware breakpoint or
20329 watchpoints. A limit of -1, the default, is treated as unlimited.
20330
20331 @cindex limit hardware watchpoints length
20332 @cindex remote target, limit watchpoints length
20333 @anchor{set remote hardware-watchpoint-length-limit}
20334 @item set remote hardware-watchpoint-length-limit @var{limit}
20335 Restrict @value{GDBN} to using @var{limit} bytes for the maximum length of
20336 a remote hardware watchpoint. A limit of -1, the default, is treated
20337 as unlimited.
20338
20339 @item show remote hardware-watchpoint-length-limit
20340 Show the current limit (in bytes) of the maximum length of
20341 a remote hardware watchpoint.
20342
20343 @item set remote exec-file @var{filename}
20344 @itemx show remote exec-file
20345 @anchor{set remote exec-file}
20346 @cindex executable file, for remote target
20347 Select the file used for @code{run} with @code{target
20348 extended-remote}. This should be set to a filename valid on the
20349 target system. If it is not set, the target will use a default
20350 filename (e.g.@: the last program run).
20351
20352 @item set remote interrupt-sequence
20353 @cindex interrupt remote programs
20354 @cindex select Ctrl-C, BREAK or BREAK-g
20355 Allow the user to select one of @samp{Ctrl-C}, a @code{BREAK} or
20356 @samp{BREAK-g} as the
20357 sequence to the remote target in order to interrupt the execution.
20358 @samp{Ctrl-C} is a default. Some system prefers @code{BREAK} which
20359 is high level of serial line for some certain time.
20360 Linux kernel prefers @samp{BREAK-g}, a.k.a Magic SysRq g.
20361 It is @code{BREAK} signal followed by character @code{g}.
20362
20363 @item show interrupt-sequence
20364 Show which of @samp{Ctrl-C}, @code{BREAK} or @code{BREAK-g}
20365 is sent by @value{GDBN} to interrupt the remote program.
20366 @code{BREAK-g} is BREAK signal followed by @code{g} and
20367 also known as Magic SysRq g.
20368
20369 @item set remote interrupt-on-connect
20370 @cindex send interrupt-sequence on start
20371 Specify whether interrupt-sequence is sent to remote target when
20372 @value{GDBN} connects to it. This is mostly needed when you debug
20373 Linux kernel. Linux kernel expects @code{BREAK} followed by @code{g}
20374 which is known as Magic SysRq g in order to connect @value{GDBN}.
20375
20376 @item show interrupt-on-connect
20377 Show whether interrupt-sequence is sent
20378 to remote target when @value{GDBN} connects to it.
20379
20380 @kindex set tcp
20381 @kindex show tcp
20382 @item set tcp auto-retry on
20383 @cindex auto-retry, for remote TCP target
20384 Enable auto-retry for remote TCP connections. This is useful if the remote
20385 debugging agent is launched in parallel with @value{GDBN}; there is a race
20386 condition because the agent may not become ready to accept the connection
20387 before @value{GDBN} attempts to connect. When auto-retry is
20388 enabled, if the initial attempt to connect fails, @value{GDBN} reattempts
20389 to establish the connection using the timeout specified by
20390 @code{set tcp connect-timeout}.
20391
20392 @item set tcp auto-retry off
20393 Do not auto-retry failed TCP connections.
20394
20395 @item show tcp auto-retry
20396 Show the current auto-retry setting.
20397
20398 @item set tcp connect-timeout @var{seconds}
20399 @itemx set tcp connect-timeout unlimited
20400 @cindex connection timeout, for remote TCP target
20401 @cindex timeout, for remote target connection
20402 Set the timeout for establishing a TCP connection to the remote target to
20403 @var{seconds}. The timeout affects both polling to retry failed connections
20404 (enabled by @code{set tcp auto-retry on}) and waiting for connections
20405 that are merely slow to complete, and represents an approximate cumulative
20406 value. If @var{seconds} is @code{unlimited}, there is no timeout and
20407 @value{GDBN} will keep attempting to establish a connection forever,
20408 unless interrupted with @kbd{Ctrl-c}. The default is 15 seconds.
20409
20410 @item show tcp connect-timeout
20411 Show the current connection timeout setting.
20412 @end table
20413
20414 @cindex remote packets, enabling and disabling
20415 The @value{GDBN} remote protocol autodetects the packets supported by
20416 your debugging stub. If you need to override the autodetection, you
20417 can use these commands to enable or disable individual packets. Each
20418 packet can be set to @samp{on} (the remote target supports this
20419 packet), @samp{off} (the remote target does not support this packet),
20420 or @samp{auto} (detect remote target support for this packet). They
20421 all default to @samp{auto}. For more information about each packet,
20422 see @ref{Remote Protocol}.
20423
20424 During normal use, you should not have to use any of these commands.
20425 If you do, that may be a bug in your remote debugging stub, or a bug
20426 in @value{GDBN}. You may want to report the problem to the
20427 @value{GDBN} developers.
20428
20429 For each packet @var{name}, the command to enable or disable the
20430 packet is @code{set remote @var{name}-packet}. The available settings
20431 are:
20432
20433 @multitable @columnfractions 0.28 0.32 0.25
20434 @item Command Name
20435 @tab Remote Packet
20436 @tab Related Features
20437
20438 @item @code{fetch-register}
20439 @tab @code{p}
20440 @tab @code{info registers}
20441
20442 @item @code{set-register}
20443 @tab @code{P}
20444 @tab @code{set}
20445
20446 @item @code{binary-download}
20447 @tab @code{X}
20448 @tab @code{load}, @code{set}
20449
20450 @item @code{read-aux-vector}
20451 @tab @code{qXfer:auxv:read}
20452 @tab @code{info auxv}
20453
20454 @item @code{symbol-lookup}
20455 @tab @code{qSymbol}
20456 @tab Detecting multiple threads
20457
20458 @item @code{attach}
20459 @tab @code{vAttach}
20460 @tab @code{attach}
20461
20462 @item @code{verbose-resume}
20463 @tab @code{vCont}
20464 @tab Stepping or resuming multiple threads
20465
20466 @item @code{run}
20467 @tab @code{vRun}
20468 @tab @code{run}
20469
20470 @item @code{software-breakpoint}
20471 @tab @code{Z0}
20472 @tab @code{break}
20473
20474 @item @code{hardware-breakpoint}
20475 @tab @code{Z1}
20476 @tab @code{hbreak}
20477
20478 @item @code{write-watchpoint}
20479 @tab @code{Z2}
20480 @tab @code{watch}
20481
20482 @item @code{read-watchpoint}
20483 @tab @code{Z3}
20484 @tab @code{rwatch}
20485
20486 @item @code{access-watchpoint}
20487 @tab @code{Z4}
20488 @tab @code{awatch}
20489
20490 @item @code{pid-to-exec-file}
20491 @tab @code{qXfer:exec-file:read}
20492 @tab @code{attach}, @code{run}
20493
20494 @item @code{target-features}
20495 @tab @code{qXfer:features:read}
20496 @tab @code{set architecture}
20497
20498 @item @code{library-info}
20499 @tab @code{qXfer:libraries:read}
20500 @tab @code{info sharedlibrary}
20501
20502 @item @code{memory-map}
20503 @tab @code{qXfer:memory-map:read}
20504 @tab @code{info mem}
20505
20506 @item @code{read-sdata-object}
20507 @tab @code{qXfer:sdata:read}
20508 @tab @code{print $_sdata}
20509
20510 @item @code{read-spu-object}
20511 @tab @code{qXfer:spu:read}
20512 @tab @code{info spu}
20513
20514 @item @code{write-spu-object}
20515 @tab @code{qXfer:spu:write}
20516 @tab @code{info spu}
20517
20518 @item @code{read-siginfo-object}
20519 @tab @code{qXfer:siginfo:read}
20520 @tab @code{print $_siginfo}
20521
20522 @item @code{write-siginfo-object}
20523 @tab @code{qXfer:siginfo:write}
20524 @tab @code{set $_siginfo}
20525
20526 @item @code{threads}
20527 @tab @code{qXfer:threads:read}
20528 @tab @code{info threads}
20529
20530 @item @code{get-thread-local-@*storage-address}
20531 @tab @code{qGetTLSAddr}
20532 @tab Displaying @code{__thread} variables
20533
20534 @item @code{get-thread-information-block-address}
20535 @tab @code{qGetTIBAddr}
20536 @tab Display MS-Windows Thread Information Block.
20537
20538 @item @code{search-memory}
20539 @tab @code{qSearch:memory}
20540 @tab @code{find}
20541
20542 @item @code{supported-packets}
20543 @tab @code{qSupported}
20544 @tab Remote communications parameters
20545
20546 @item @code{catch-syscalls}
20547 @tab @code{QCatchSyscalls}
20548 @tab @code{catch syscall}
20549
20550 @item @code{pass-signals}
20551 @tab @code{QPassSignals}
20552 @tab @code{handle @var{signal}}
20553
20554 @item @code{program-signals}
20555 @tab @code{QProgramSignals}
20556 @tab @code{handle @var{signal}}
20557
20558 @item @code{hostio-close-packet}
20559 @tab @code{vFile:close}
20560 @tab @code{remote get}, @code{remote put}
20561
20562 @item @code{hostio-open-packet}
20563 @tab @code{vFile:open}
20564 @tab @code{remote get}, @code{remote put}
20565
20566 @item @code{hostio-pread-packet}
20567 @tab @code{vFile:pread}
20568 @tab @code{remote get}, @code{remote put}
20569
20570 @item @code{hostio-pwrite-packet}
20571 @tab @code{vFile:pwrite}
20572 @tab @code{remote get}, @code{remote put}
20573
20574 @item @code{hostio-unlink-packet}
20575 @tab @code{vFile:unlink}
20576 @tab @code{remote delete}
20577
20578 @item @code{hostio-readlink-packet}
20579 @tab @code{vFile:readlink}
20580 @tab Host I/O
20581
20582 @item @code{hostio-fstat-packet}
20583 @tab @code{vFile:fstat}
20584 @tab Host I/O
20585
20586 @item @code{hostio-setfs-packet}
20587 @tab @code{vFile:setfs}
20588 @tab Host I/O
20589
20590 @item @code{noack-packet}
20591 @tab @code{QStartNoAckMode}
20592 @tab Packet acknowledgment
20593
20594 @item @code{osdata}
20595 @tab @code{qXfer:osdata:read}
20596 @tab @code{info os}
20597
20598 @item @code{query-attached}
20599 @tab @code{qAttached}
20600 @tab Querying remote process attach state.
20601
20602 @item @code{trace-buffer-size}
20603 @tab @code{QTBuffer:size}
20604 @tab @code{set trace-buffer-size}
20605
20606 @item @code{trace-status}
20607 @tab @code{qTStatus}
20608 @tab @code{tstatus}
20609
20610 @item @code{traceframe-info}
20611 @tab @code{qXfer:traceframe-info:read}
20612 @tab Traceframe info
20613
20614 @item @code{install-in-trace}
20615 @tab @code{InstallInTrace}
20616 @tab Install tracepoint in tracing
20617
20618 @item @code{disable-randomization}
20619 @tab @code{QDisableRandomization}
20620 @tab @code{set disable-randomization}
20621
20622 @item @code{conditional-breakpoints-packet}
20623 @tab @code{Z0 and Z1}
20624 @tab @code{Support for target-side breakpoint condition evaluation}
20625
20626 @item @code{multiprocess-extensions}
20627 @tab @code{multiprocess extensions}
20628 @tab Debug multiple processes and remote process PID awareness
20629
20630 @item @code{swbreak-feature}
20631 @tab @code{swbreak stop reason}
20632 @tab @code{break}
20633
20634 @item @code{hwbreak-feature}
20635 @tab @code{hwbreak stop reason}
20636 @tab @code{hbreak}
20637
20638 @item @code{fork-event-feature}
20639 @tab @code{fork stop reason}
20640 @tab @code{fork}
20641
20642 @item @code{vfork-event-feature}
20643 @tab @code{vfork stop reason}
20644 @tab @code{vfork}
20645
20646 @item @code{exec-event-feature}
20647 @tab @code{exec stop reason}
20648 @tab @code{exec}
20649
20650 @item @code{thread-events}
20651 @tab @code{QThreadEvents}
20652 @tab Tracking thread lifetime.
20653
20654 @item @code{no-resumed-stop-reply}
20655 @tab @code{no resumed thread left stop reply}
20656 @tab Tracking thread lifetime.
20657
20658 @end multitable
20659
20660 @node Remote Stub
20661 @section Implementing a Remote Stub
20662
20663 @cindex debugging stub, example
20664 @cindex remote stub, example
20665 @cindex stub example, remote debugging
20666 The stub files provided with @value{GDBN} implement the target side of the
20667 communication protocol, and the @value{GDBN} side is implemented in the
20668 @value{GDBN} source file @file{remote.c}. Normally, you can simply allow
20669 these subroutines to communicate, and ignore the details. (If you're
20670 implementing your own stub file, you can still ignore the details: start
20671 with one of the existing stub files. @file{sparc-stub.c} is the best
20672 organized, and therefore the easiest to read.)
20673
20674 @cindex remote serial debugging, overview
20675 To debug a program running on another machine (the debugging
20676 @dfn{target} machine), you must first arrange for all the usual
20677 prerequisites for the program to run by itself. For example, for a C
20678 program, you need:
20679
20680 @enumerate
20681 @item
20682 A startup routine to set up the C runtime environment; these usually
20683 have a name like @file{crt0}. The startup routine may be supplied by
20684 your hardware supplier, or you may have to write your own.
20685
20686 @item
20687 A C subroutine library to support your program's
20688 subroutine calls, notably managing input and output.
20689
20690 @item
20691 A way of getting your program to the other machine---for example, a
20692 download program. These are often supplied by the hardware
20693 manufacturer, but you may have to write your own from hardware
20694 documentation.
20695 @end enumerate
20696
20697 The next step is to arrange for your program to use a serial port to
20698 communicate with the machine where @value{GDBN} is running (the @dfn{host}
20699 machine). In general terms, the scheme looks like this:
20700
20701 @table @emph
20702 @item On the host,
20703 @value{GDBN} already understands how to use this protocol; when everything
20704 else is set up, you can simply use the @samp{target remote} command
20705 (@pxref{Targets,,Specifying a Debugging Target}).
20706
20707 @item On the target,
20708 you must link with your program a few special-purpose subroutines that
20709 implement the @value{GDBN} remote serial protocol. The file containing these
20710 subroutines is called a @dfn{debugging stub}.
20711
20712 On certain remote targets, you can use an auxiliary program
20713 @code{gdbserver} instead of linking a stub into your program.
20714 @xref{Server,,Using the @code{gdbserver} Program}, for details.
20715 @end table
20716
20717 The debugging stub is specific to the architecture of the remote
20718 machine; for example, use @file{sparc-stub.c} to debug programs on
20719 @sc{sparc} boards.
20720
20721 @cindex remote serial stub list
20722 These working remote stubs are distributed with @value{GDBN}:
20723
20724 @table @code
20725
20726 @item i386-stub.c
20727 @cindex @file{i386-stub.c}
20728 @cindex Intel
20729 @cindex i386
20730 For Intel 386 and compatible architectures.
20731
20732 @item m68k-stub.c
20733 @cindex @file{m68k-stub.c}
20734 @cindex Motorola 680x0
20735 @cindex m680x0
20736 For Motorola 680x0 architectures.
20737
20738 @item sh-stub.c
20739 @cindex @file{sh-stub.c}
20740 @cindex Renesas
20741 @cindex SH
20742 For Renesas SH architectures.
20743
20744 @item sparc-stub.c
20745 @cindex @file{sparc-stub.c}
20746 @cindex Sparc
20747 For @sc{sparc} architectures.
20748
20749 @item sparcl-stub.c
20750 @cindex @file{sparcl-stub.c}
20751 @cindex Fujitsu
20752 @cindex SparcLite
20753 For Fujitsu @sc{sparclite} architectures.
20754
20755 @end table
20756
20757 The @file{README} file in the @value{GDBN} distribution may list other
20758 recently added stubs.
20759
20760 @menu
20761 * Stub Contents:: What the stub can do for you
20762 * Bootstrapping:: What you must do for the stub
20763 * Debug Session:: Putting it all together
20764 @end menu
20765
20766 @node Stub Contents
20767 @subsection What the Stub Can Do for You
20768
20769 @cindex remote serial stub
20770 The debugging stub for your architecture supplies these three
20771 subroutines:
20772
20773 @table @code
20774 @item set_debug_traps
20775 @findex set_debug_traps
20776 @cindex remote serial stub, initialization
20777 This routine arranges for @code{handle_exception} to run when your
20778 program stops. You must call this subroutine explicitly in your
20779 program's startup code.
20780
20781 @item handle_exception
20782 @findex handle_exception
20783 @cindex remote serial stub, main routine
20784 This is the central workhorse, but your program never calls it
20785 explicitly---the setup code arranges for @code{handle_exception} to
20786 run when a trap is triggered.
20787
20788 @code{handle_exception} takes control when your program stops during
20789 execution (for example, on a breakpoint), and mediates communications
20790 with @value{GDBN} on the host machine. This is where the communications
20791 protocol is implemented; @code{handle_exception} acts as the @value{GDBN}
20792 representative on the target machine. It begins by sending summary
20793 information on the state of your program, then continues to execute,
20794 retrieving and transmitting any information @value{GDBN} needs, until you
20795 execute a @value{GDBN} command that makes your program resume; at that point,
20796 @code{handle_exception} returns control to your own code on the target
20797 machine.
20798
20799 @item breakpoint
20800 @cindex @code{breakpoint} subroutine, remote
20801 Use this auxiliary subroutine to make your program contain a
20802 breakpoint. Depending on the particular situation, this may be the only
20803 way for @value{GDBN} to get control. For instance, if your target
20804 machine has some sort of interrupt button, you won't need to call this;
20805 pressing the interrupt button transfers control to
20806 @code{handle_exception}---in effect, to @value{GDBN}. On some machines,
20807 simply receiving characters on the serial port may also trigger a trap;
20808 again, in that situation, you don't need to call @code{breakpoint} from
20809 your own program---simply running @samp{target remote} from the host
20810 @value{GDBN} session gets control.
20811
20812 Call @code{breakpoint} if none of these is true, or if you simply want
20813 to make certain your program stops at a predetermined point for the
20814 start of your debugging session.
20815 @end table
20816
20817 @node Bootstrapping
20818 @subsection What You Must Do for the Stub
20819
20820 @cindex remote stub, support routines
20821 The debugging stubs that come with @value{GDBN} are set up for a particular
20822 chip architecture, but they have no information about the rest of your
20823 debugging target machine.
20824
20825 First of all you need to tell the stub how to communicate with the
20826 serial port.
20827
20828 @table @code
20829 @item int getDebugChar()
20830 @findex getDebugChar
20831 Write this subroutine to read a single character from the serial port.
20832 It may be identical to @code{getchar} for your target system; a
20833 different name is used to allow you to distinguish the two if you wish.
20834
20835 @item void putDebugChar(int)
20836 @findex putDebugChar
20837 Write this subroutine to write a single character to the serial port.
20838 It may be identical to @code{putchar} for your target system; a
20839 different name is used to allow you to distinguish the two if you wish.
20840 @end table
20841
20842 @cindex control C, and remote debugging
20843 @cindex interrupting remote targets
20844 If you want @value{GDBN} to be able to stop your program while it is
20845 running, you need to use an interrupt-driven serial driver, and arrange
20846 for it to stop when it receives a @code{^C} (@samp{\003}, the control-C
20847 character). That is the character which @value{GDBN} uses to tell the
20848 remote system to stop.
20849
20850 Getting the debugging target to return the proper status to @value{GDBN}
20851 probably requires changes to the standard stub; one quick and dirty way
20852 is to just execute a breakpoint instruction (the ``dirty'' part is that
20853 @value{GDBN} reports a @code{SIGTRAP} instead of a @code{SIGINT}).
20854
20855 Other routines you need to supply are:
20856
20857 @table @code
20858 @item void exceptionHandler (int @var{exception_number}, void *@var{exception_address})
20859 @findex exceptionHandler
20860 Write this function to install @var{exception_address} in the exception
20861 handling tables. You need to do this because the stub does not have any
20862 way of knowing what the exception handling tables on your target system
20863 are like (for example, the processor's table might be in @sc{rom},
20864 containing entries which point to a table in @sc{ram}).
20865 The @var{exception_number} specifies the exception which should be changed;
20866 its meaning is architecture-dependent (for example, different numbers
20867 might represent divide by zero, misaligned access, etc). When this
20868 exception occurs, control should be transferred directly to
20869 @var{exception_address}, and the processor state (stack, registers,
20870 and so on) should be just as it is when a processor exception occurs. So if
20871 you want to use a jump instruction to reach @var{exception_address}, it
20872 should be a simple jump, not a jump to subroutine.
20873
20874 For the 386, @var{exception_address} should be installed as an interrupt
20875 gate so that interrupts are masked while the handler runs. The gate
20876 should be at privilege level 0 (the most privileged level). The
20877 @sc{sparc} and 68k stubs are able to mask interrupts themselves without
20878 help from @code{exceptionHandler}.
20879
20880 @item void flush_i_cache()
20881 @findex flush_i_cache
20882 On @sc{sparc} and @sc{sparclite} only, write this subroutine to flush the
20883 instruction cache, if any, on your target machine. If there is no
20884 instruction cache, this subroutine may be a no-op.
20885
20886 On target machines that have instruction caches, @value{GDBN} requires this
20887 function to make certain that the state of your program is stable.
20888 @end table
20889
20890 @noindent
20891 You must also make sure this library routine is available:
20892
20893 @table @code
20894 @item void *memset(void *, int, int)
20895 @findex memset
20896 This is the standard library function @code{memset} that sets an area of
20897 memory to a known value. If you have one of the free versions of
20898 @code{libc.a}, @code{memset} can be found there; otherwise, you must
20899 either obtain it from your hardware manufacturer, or write your own.
20900 @end table
20901
20902 If you do not use the GNU C compiler, you may need other standard
20903 library subroutines as well; this varies from one stub to another,
20904 but in general the stubs are likely to use any of the common library
20905 subroutines which @code{@value{NGCC}} generates as inline code.
20906
20907
20908 @node Debug Session
20909 @subsection Putting it All Together
20910
20911 @cindex remote serial debugging summary
20912 In summary, when your program is ready to debug, you must follow these
20913 steps.
20914
20915 @enumerate
20916 @item
20917 Make sure you have defined the supporting low-level routines
20918 (@pxref{Bootstrapping,,What You Must Do for the Stub}):
20919 @display
20920 @code{getDebugChar}, @code{putDebugChar},
20921 @code{flush_i_cache}, @code{memset}, @code{exceptionHandler}.
20922 @end display
20923
20924 @item
20925 Insert these lines in your program's startup code, before the main
20926 procedure is called:
20927
20928 @smallexample
20929 set_debug_traps();
20930 breakpoint();
20931 @end smallexample
20932
20933 On some machines, when a breakpoint trap is raised, the hardware
20934 automatically makes the PC point to the instruction after the
20935 breakpoint. If your machine doesn't do that, you may need to adjust
20936 @code{handle_exception} to arrange for it to return to the instruction
20937 after the breakpoint on this first invocation, so that your program
20938 doesn't keep hitting the initial breakpoint instead of making
20939 progress.
20940
20941 @item
20942 For the 680x0 stub only, you need to provide a variable called
20943 @code{exceptionHook}. Normally you just use:
20944
20945 @smallexample
20946 void (*exceptionHook)() = 0;
20947 @end smallexample
20948
20949 @noindent
20950 but if before calling @code{set_debug_traps}, you set it to point to a
20951 function in your program, that function is called when
20952 @code{@value{GDBN}} continues after stopping on a trap (for example, bus
20953 error). The function indicated by @code{exceptionHook} is called with
20954 one parameter: an @code{int} which is the exception number.
20955
20956 @item
20957 Compile and link together: your program, the @value{GDBN} debugging stub for
20958 your target architecture, and the supporting subroutines.
20959
20960 @item
20961 Make sure you have a serial connection between your target machine and
20962 the @value{GDBN} host, and identify the serial port on the host.
20963
20964 @item
20965 @c The "remote" target now provides a `load' command, so we should
20966 @c document that. FIXME.
20967 Download your program to your target machine (or get it there by
20968 whatever means the manufacturer provides), and start it.
20969
20970 @item
20971 Start @value{GDBN} on the host, and connect to the target
20972 (@pxref{Connecting,,Connecting to a Remote Target}).
20973
20974 @end enumerate
20975
20976 @node Configurations
20977 @chapter Configuration-Specific Information
20978
20979 While nearly all @value{GDBN} commands are available for all native and
20980 cross versions of the debugger, there are some exceptions. This chapter
20981 describes things that are only available in certain configurations.
20982
20983 There are three major categories of configurations: native
20984 configurations, where the host and target are the same, embedded
20985 operating system configurations, which are usually the same for several
20986 different processor architectures, and bare embedded processors, which
20987 are quite different from each other.
20988
20989 @menu
20990 * Native::
20991 * Embedded OS::
20992 * Embedded Processors::
20993 * Architectures::
20994 @end menu
20995
20996 @node Native
20997 @section Native
20998
20999 This section describes details specific to particular native
21000 configurations.
21001
21002 @menu
21003 * BSD libkvm Interface:: Debugging BSD kernel memory images
21004 * SVR4 Process Information:: SVR4 process information
21005 * DJGPP Native:: Features specific to the DJGPP port
21006 * Cygwin Native:: Features specific to the Cygwin port
21007 * Hurd Native:: Features specific to @sc{gnu} Hurd
21008 * Darwin:: Features specific to Darwin
21009 @end menu
21010
21011 @node BSD libkvm Interface
21012 @subsection BSD libkvm Interface
21013
21014 @cindex libkvm
21015 @cindex kernel memory image
21016 @cindex kernel crash dump
21017
21018 BSD-derived systems (FreeBSD/NetBSD/OpenBSD) have a kernel memory
21019 interface that provides a uniform interface for accessing kernel virtual
21020 memory images, including live systems and crash dumps. @value{GDBN}
21021 uses this interface to allow you to debug live kernels and kernel crash
21022 dumps on many native BSD configurations. This is implemented as a
21023 special @code{kvm} debugging target. For debugging a live system, load
21024 the currently running kernel into @value{GDBN} and connect to the
21025 @code{kvm} target:
21026
21027 @smallexample
21028 (@value{GDBP}) @b{target kvm}
21029 @end smallexample
21030
21031 For debugging crash dumps, provide the file name of the crash dump as an
21032 argument:
21033
21034 @smallexample
21035 (@value{GDBP}) @b{target kvm /var/crash/bsd.0}
21036 @end smallexample
21037
21038 Once connected to the @code{kvm} target, the following commands are
21039 available:
21040
21041 @table @code
21042 @kindex kvm
21043 @item kvm pcb
21044 Set current context from the @dfn{Process Control Block} (PCB) address.
21045
21046 @item kvm proc
21047 Set current context from proc address. This command isn't available on
21048 modern FreeBSD systems.
21049 @end table
21050
21051 @node SVR4 Process Information
21052 @subsection SVR4 Process Information
21053 @cindex /proc
21054 @cindex examine process image
21055 @cindex process info via @file{/proc}
21056
21057 Many versions of SVR4 and compatible systems provide a facility called
21058 @samp{/proc} that can be used to examine the image of a running
21059 process using file-system subroutines.
21060
21061 If @value{GDBN} is configured for an operating system with this
21062 facility, the command @code{info proc} is available to report
21063 information about the process running your program, or about any
21064 process running on your system. This includes, as of this writing,
21065 @sc{gnu}/Linux and Solaris, for example.
21066
21067 This command may also work on core files that were created on a system
21068 that has the @samp{/proc} facility.
21069
21070 @table @code
21071 @kindex info proc
21072 @cindex process ID
21073 @item info proc
21074 @itemx info proc @var{process-id}
21075 Summarize available information about any running process. If a
21076 process ID is specified by @var{process-id}, display information about
21077 that process; otherwise display information about the program being
21078 debugged. The summary includes the debugged process ID, the command
21079 line used to invoke it, its current working directory, and its
21080 executable file's absolute file name.
21081
21082 On some systems, @var{process-id} can be of the form
21083 @samp{[@var{pid}]/@var{tid}} which specifies a certain thread ID
21084 within a process. If the optional @var{pid} part is missing, it means
21085 a thread from the process being debugged (the leading @samp{/} still
21086 needs to be present, or else @value{GDBN} will interpret the number as
21087 a process ID rather than a thread ID).
21088
21089 @item info proc cmdline
21090 @cindex info proc cmdline
21091 Show the original command line of the process. This command is
21092 specific to @sc{gnu}/Linux.
21093
21094 @item info proc cwd
21095 @cindex info proc cwd
21096 Show the current working directory of the process. This command is
21097 specific to @sc{gnu}/Linux.
21098
21099 @item info proc exe
21100 @cindex info proc exe
21101 Show the name of executable of the process. This command is specific
21102 to @sc{gnu}/Linux.
21103
21104 @item info proc mappings
21105 @cindex memory address space mappings
21106 Report the memory address space ranges accessible in the program, with
21107 information on whether the process has read, write, or execute access
21108 rights to each range. On @sc{gnu}/Linux systems, each memory range
21109 includes the object file which is mapped to that range, instead of the
21110 memory access rights to that range.
21111
21112 @item info proc stat
21113 @itemx info proc status
21114 @cindex process detailed status information
21115 These subcommands are specific to @sc{gnu}/Linux systems. They show
21116 the process-related information, including the user ID and group ID;
21117 how many threads are there in the process; its virtual memory usage;
21118 the signals that are pending, blocked, and ignored; its TTY; its
21119 consumption of system and user time; its stack size; its @samp{nice}
21120 value; etc. For more information, see the @samp{proc} man page
21121 (type @kbd{man 5 proc} from your shell prompt).
21122
21123 @item info proc all
21124 Show all the information about the process described under all of the
21125 above @code{info proc} subcommands.
21126
21127 @ignore
21128 @comment These sub-options of 'info proc' were not included when
21129 @comment procfs.c was re-written. Keep their descriptions around
21130 @comment against the day when someone finds the time to put them back in.
21131 @kindex info proc times
21132 @item info proc times
21133 Starting time, user CPU time, and system CPU time for your program and
21134 its children.
21135
21136 @kindex info proc id
21137 @item info proc id
21138 Report on the process IDs related to your program: its own process ID,
21139 the ID of its parent, the process group ID, and the session ID.
21140 @end ignore
21141
21142 @item set procfs-trace
21143 @kindex set procfs-trace
21144 @cindex @code{procfs} API calls
21145 This command enables and disables tracing of @code{procfs} API calls.
21146
21147 @item show procfs-trace
21148 @kindex show procfs-trace
21149 Show the current state of @code{procfs} API call tracing.
21150
21151 @item set procfs-file @var{file}
21152 @kindex set procfs-file
21153 Tell @value{GDBN} to write @code{procfs} API trace to the named
21154 @var{file}. @value{GDBN} appends the trace info to the previous
21155 contents of the file. The default is to display the trace on the
21156 standard output.
21157
21158 @item show procfs-file
21159 @kindex show procfs-file
21160 Show the file to which @code{procfs} API trace is written.
21161
21162 @item proc-trace-entry
21163 @itemx proc-trace-exit
21164 @itemx proc-untrace-entry
21165 @itemx proc-untrace-exit
21166 @kindex proc-trace-entry
21167 @kindex proc-trace-exit
21168 @kindex proc-untrace-entry
21169 @kindex proc-untrace-exit
21170 These commands enable and disable tracing of entries into and exits
21171 from the @code{syscall} interface.
21172
21173 @item info pidlist
21174 @kindex info pidlist
21175 @cindex process list, QNX Neutrino
21176 For QNX Neutrino only, this command displays the list of all the
21177 processes and all the threads within each process.
21178
21179 @item info meminfo
21180 @kindex info meminfo
21181 @cindex mapinfo list, QNX Neutrino
21182 For QNX Neutrino only, this command displays the list of all mapinfos.
21183 @end table
21184
21185 @node DJGPP Native
21186 @subsection Features for Debugging @sc{djgpp} Programs
21187 @cindex @sc{djgpp} debugging
21188 @cindex native @sc{djgpp} debugging
21189 @cindex MS-DOS-specific commands
21190
21191 @cindex DPMI
21192 @sc{djgpp} is a port of the @sc{gnu} development tools to MS-DOS and
21193 MS-Windows. @sc{djgpp} programs are 32-bit protected-mode programs
21194 that use the @dfn{DPMI} (DOS Protected-Mode Interface) API to run on
21195 top of real-mode DOS systems and their emulations.
21196
21197 @value{GDBN} supports native debugging of @sc{djgpp} programs, and
21198 defines a few commands specific to the @sc{djgpp} port. This
21199 subsection describes those commands.
21200
21201 @table @code
21202 @kindex info dos
21203 @item info dos
21204 This is a prefix of @sc{djgpp}-specific commands which print
21205 information about the target system and important OS structures.
21206
21207 @kindex sysinfo
21208 @cindex MS-DOS system info
21209 @cindex free memory information (MS-DOS)
21210 @item info dos sysinfo
21211 This command displays assorted information about the underlying
21212 platform: the CPU type and features, the OS version and flavor, the
21213 DPMI version, and the available conventional and DPMI memory.
21214
21215 @cindex GDT
21216 @cindex LDT
21217 @cindex IDT
21218 @cindex segment descriptor tables
21219 @cindex descriptor tables display
21220 @item info dos gdt
21221 @itemx info dos ldt
21222 @itemx info dos idt
21223 These 3 commands display entries from, respectively, Global, Local,
21224 and Interrupt Descriptor Tables (GDT, LDT, and IDT). The descriptor
21225 tables are data structures which store a descriptor for each segment
21226 that is currently in use. The segment's selector is an index into a
21227 descriptor table; the table entry for that index holds the
21228 descriptor's base address and limit, and its attributes and access
21229 rights.
21230
21231 A typical @sc{djgpp} program uses 3 segments: a code segment, a data
21232 segment (used for both data and the stack), and a DOS segment (which
21233 allows access to DOS/BIOS data structures and absolute addresses in
21234 conventional memory). However, the DPMI host will usually define
21235 additional segments in order to support the DPMI environment.
21236
21237 @cindex garbled pointers
21238 These commands allow to display entries from the descriptor tables.
21239 Without an argument, all entries from the specified table are
21240 displayed. An argument, which should be an integer expression, means
21241 display a single entry whose index is given by the argument. For
21242 example, here's a convenient way to display information about the
21243 debugged program's data segment:
21244
21245 @smallexample
21246 @exdent @code{(@value{GDBP}) info dos ldt $ds}
21247 @exdent @code{0x13f: base=0x11970000 limit=0x0009ffff 32-Bit Data (Read/Write, Exp-up)}
21248 @end smallexample
21249
21250 @noindent
21251 This comes in handy when you want to see whether a pointer is outside
21252 the data segment's limit (i.e.@: @dfn{garbled}).
21253
21254 @cindex page tables display (MS-DOS)
21255 @item info dos pde
21256 @itemx info dos pte
21257 These two commands display entries from, respectively, the Page
21258 Directory and the Page Tables. Page Directories and Page Tables are
21259 data structures which control how virtual memory addresses are mapped
21260 into physical addresses. A Page Table includes an entry for every
21261 page of memory that is mapped into the program's address space; there
21262 may be several Page Tables, each one holding up to 4096 entries. A
21263 Page Directory has up to 4096 entries, one each for every Page Table
21264 that is currently in use.
21265
21266 Without an argument, @kbd{info dos pde} displays the entire Page
21267 Directory, and @kbd{info dos pte} displays all the entries in all of
21268 the Page Tables. An argument, an integer expression, given to the
21269 @kbd{info dos pde} command means display only that entry from the Page
21270 Directory table. An argument given to the @kbd{info dos pte} command
21271 means display entries from a single Page Table, the one pointed to by
21272 the specified entry in the Page Directory.
21273
21274 @cindex direct memory access (DMA) on MS-DOS
21275 These commands are useful when your program uses @dfn{DMA} (Direct
21276 Memory Access), which needs physical addresses to program the DMA
21277 controller.
21278
21279 These commands are supported only with some DPMI servers.
21280
21281 @cindex physical address from linear address
21282 @item info dos address-pte @var{addr}
21283 This command displays the Page Table entry for a specified linear
21284 address. The argument @var{addr} is a linear address which should
21285 already have the appropriate segment's base address added to it,
21286 because this command accepts addresses which may belong to @emph{any}
21287 segment. For example, here's how to display the Page Table entry for
21288 the page where a variable @code{i} is stored:
21289
21290 @smallexample
21291 @exdent @code{(@value{GDBP}) info dos address-pte __djgpp_base_address + (char *)&i}
21292 @exdent @code{Page Table entry for address 0x11a00d30:}
21293 @exdent @code{Base=0x02698000 Dirty Acc. Not-Cached Write-Back Usr Read-Write +0xd30}
21294 @end smallexample
21295
21296 @noindent
21297 This says that @code{i} is stored at offset @code{0xd30} from the page
21298 whose physical base address is @code{0x02698000}, and shows all the
21299 attributes of that page.
21300
21301 Note that you must cast the addresses of variables to a @code{char *},
21302 since otherwise the value of @code{__djgpp_base_address}, the base
21303 address of all variables and functions in a @sc{djgpp} program, will
21304 be added using the rules of C pointer arithmetics: if @code{i} is
21305 declared an @code{int}, @value{GDBN} will add 4 times the value of
21306 @code{__djgpp_base_address} to the address of @code{i}.
21307
21308 Here's another example, it displays the Page Table entry for the
21309 transfer buffer:
21310
21311 @smallexample
21312 @exdent @code{(@value{GDBP}) info dos address-pte *((unsigned *)&_go32_info_block + 3)}
21313 @exdent @code{Page Table entry for address 0x29110:}
21314 @exdent @code{Base=0x00029000 Dirty Acc. Not-Cached Write-Back Usr Read-Write +0x110}
21315 @end smallexample
21316
21317 @noindent
21318 (The @code{+ 3} offset is because the transfer buffer's address is the
21319 3rd member of the @code{_go32_info_block} structure.) The output
21320 clearly shows that this DPMI server maps the addresses in conventional
21321 memory 1:1, i.e.@: the physical (@code{0x00029000} + @code{0x110}) and
21322 linear (@code{0x29110}) addresses are identical.
21323
21324 This command is supported only with some DPMI servers.
21325 @end table
21326
21327 @cindex DOS serial data link, remote debugging
21328 In addition to native debugging, the DJGPP port supports remote
21329 debugging via a serial data link. The following commands are specific
21330 to remote serial debugging in the DJGPP port of @value{GDBN}.
21331
21332 @table @code
21333 @kindex set com1base
21334 @kindex set com1irq
21335 @kindex set com2base
21336 @kindex set com2irq
21337 @kindex set com3base
21338 @kindex set com3irq
21339 @kindex set com4base
21340 @kindex set com4irq
21341 @item set com1base @var{addr}
21342 This command sets the base I/O port address of the @file{COM1} serial
21343 port.
21344
21345 @item set com1irq @var{irq}
21346 This command sets the @dfn{Interrupt Request} (@code{IRQ}) line to use
21347 for the @file{COM1} serial port.
21348
21349 There are similar commands @samp{set com2base}, @samp{set com3irq},
21350 etc.@: for setting the port address and the @code{IRQ} lines for the
21351 other 3 COM ports.
21352
21353 @kindex show com1base
21354 @kindex show com1irq
21355 @kindex show com2base
21356 @kindex show com2irq
21357 @kindex show com3base
21358 @kindex show com3irq
21359 @kindex show com4base
21360 @kindex show com4irq
21361 The related commands @samp{show com1base}, @samp{show com1irq} etc.@:
21362 display the current settings of the base address and the @code{IRQ}
21363 lines used by the COM ports.
21364
21365 @item info serial
21366 @kindex info serial
21367 @cindex DOS serial port status
21368 This command prints the status of the 4 DOS serial ports. For each
21369 port, it prints whether it's active or not, its I/O base address and
21370 IRQ number, whether it uses a 16550-style FIFO, its baudrate, and the
21371 counts of various errors encountered so far.
21372 @end table
21373
21374
21375 @node Cygwin Native
21376 @subsection Features for Debugging MS Windows PE Executables
21377 @cindex MS Windows debugging
21378 @cindex native Cygwin debugging
21379 @cindex Cygwin-specific commands
21380
21381 @value{GDBN} supports native debugging of MS Windows programs, including
21382 DLLs with and without symbolic debugging information.
21383
21384 @cindex Ctrl-BREAK, MS-Windows
21385 @cindex interrupt debuggee on MS-Windows
21386 MS-Windows programs that call @code{SetConsoleMode} to switch off the
21387 special meaning of the @samp{Ctrl-C} keystroke cannot be interrupted
21388 by typing @kbd{C-c}. For this reason, @value{GDBN} on MS-Windows
21389 supports @kbd{C-@key{BREAK}} as an alternative interrupt key
21390 sequence, which can be used to interrupt the debuggee even if it
21391 ignores @kbd{C-c}.
21392
21393 There are various additional Cygwin-specific commands, described in
21394 this section. Working with DLLs that have no debugging symbols is
21395 described in @ref{Non-debug DLL Symbols}.
21396
21397 @table @code
21398 @kindex info w32
21399 @item info w32
21400 This is a prefix of MS Windows-specific commands which print
21401 information about the target system and important OS structures.
21402
21403 @item info w32 selector
21404 This command displays information returned by
21405 the Win32 API @code{GetThreadSelectorEntry} function.
21406 It takes an optional argument that is evaluated to
21407 a long value to give the information about this given selector.
21408 Without argument, this command displays information
21409 about the six segment registers.
21410
21411 @item info w32 thread-information-block
21412 This command displays thread specific information stored in the
21413 Thread Information Block (readable on the X86 CPU family using @code{$fs}
21414 selector for 32-bit programs and @code{$gs} for 64-bit programs).
21415
21416 @kindex set cygwin-exceptions
21417 @cindex debugging the Cygwin DLL
21418 @cindex Cygwin DLL, debugging
21419 @item set cygwin-exceptions @var{mode}
21420 If @var{mode} is @code{on}, @value{GDBN} will break on exceptions that
21421 happen inside the Cygwin DLL. If @var{mode} is @code{off},
21422 @value{GDBN} will delay recognition of exceptions, and may ignore some
21423 exceptions which seem to be caused by internal Cygwin DLL
21424 ``bookkeeping''. This option is meant primarily for debugging the
21425 Cygwin DLL itself; the default value is @code{off} to avoid annoying
21426 @value{GDBN} users with false @code{SIGSEGV} signals.
21427
21428 @kindex show cygwin-exceptions
21429 @item show cygwin-exceptions
21430 Displays whether @value{GDBN} will break on exceptions that happen
21431 inside the Cygwin DLL itself.
21432
21433 @kindex set new-console
21434 @item set new-console @var{mode}
21435 If @var{mode} is @code{on} the debuggee will
21436 be started in a new console on next start.
21437 If @var{mode} is @code{off}, the debuggee will
21438 be started in the same console as the debugger.
21439
21440 @kindex show new-console
21441 @item show new-console
21442 Displays whether a new console is used
21443 when the debuggee is started.
21444
21445 @kindex set new-group
21446 @item set new-group @var{mode}
21447 This boolean value controls whether the debuggee should
21448 start a new group or stay in the same group as the debugger.
21449 This affects the way the Windows OS handles
21450 @samp{Ctrl-C}.
21451
21452 @kindex show new-group
21453 @item show new-group
21454 Displays current value of new-group boolean.
21455
21456 @kindex set debugevents
21457 @item set debugevents
21458 This boolean value adds debug output concerning kernel events related
21459 to the debuggee seen by the debugger. This includes events that
21460 signal thread and process creation and exit, DLL loading and
21461 unloading, console interrupts, and debugging messages produced by the
21462 Windows @code{OutputDebugString} API call.
21463
21464 @kindex set debugexec
21465 @item set debugexec
21466 This boolean value adds debug output concerning execute events
21467 (such as resume thread) seen by the debugger.
21468
21469 @kindex set debugexceptions
21470 @item set debugexceptions
21471 This boolean value adds debug output concerning exceptions in the
21472 debuggee seen by the debugger.
21473
21474 @kindex set debugmemory
21475 @item set debugmemory
21476 This boolean value adds debug output concerning debuggee memory reads
21477 and writes by the debugger.
21478
21479 @kindex set shell
21480 @item set shell
21481 This boolean values specifies whether the debuggee is called
21482 via a shell or directly (default value is on).
21483
21484 @kindex show shell
21485 @item show shell
21486 Displays if the debuggee will be started with a shell.
21487
21488 @end table
21489
21490 @menu
21491 * Non-debug DLL Symbols:: Support for DLLs without debugging symbols
21492 @end menu
21493
21494 @node Non-debug DLL Symbols
21495 @subsubsection Support for DLLs without Debugging Symbols
21496 @cindex DLLs with no debugging symbols
21497 @cindex Minimal symbols and DLLs
21498
21499 Very often on windows, some of the DLLs that your program relies on do
21500 not include symbolic debugging information (for example,
21501 @file{kernel32.dll}). When @value{GDBN} doesn't recognize any debugging
21502 symbols in a DLL, it relies on the minimal amount of symbolic
21503 information contained in the DLL's export table. This section
21504 describes working with such symbols, known internally to @value{GDBN} as
21505 ``minimal symbols''.
21506
21507 Note that before the debugged program has started execution, no DLLs
21508 will have been loaded. The easiest way around this problem is simply to
21509 start the program --- either by setting a breakpoint or letting the
21510 program run once to completion.
21511
21512 @subsubsection DLL Name Prefixes
21513
21514 In keeping with the naming conventions used by the Microsoft debugging
21515 tools, DLL export symbols are made available with a prefix based on the
21516 DLL name, for instance @code{KERNEL32!CreateFileA}. The plain name is
21517 also entered into the symbol table, so @code{CreateFileA} is often
21518 sufficient. In some cases there will be name clashes within a program
21519 (particularly if the executable itself includes full debugging symbols)
21520 necessitating the use of the fully qualified name when referring to the
21521 contents of the DLL. Use single-quotes around the name to avoid the
21522 exclamation mark (``!'') being interpreted as a language operator.
21523
21524 Note that the internal name of the DLL may be all upper-case, even
21525 though the file name of the DLL is lower-case, or vice-versa. Since
21526 symbols within @value{GDBN} are @emph{case-sensitive} this may cause
21527 some confusion. If in doubt, try the @code{info functions} and
21528 @code{info variables} commands or even @code{maint print msymbols}
21529 (@pxref{Symbols}). Here's an example:
21530
21531 @smallexample
21532 (@value{GDBP}) info function CreateFileA
21533 All functions matching regular expression "CreateFileA":
21534
21535 Non-debugging symbols:
21536 0x77e885f4 CreateFileA
21537 0x77e885f4 KERNEL32!CreateFileA
21538 @end smallexample
21539
21540 @smallexample
21541 (@value{GDBP}) info function !
21542 All functions matching regular expression "!":
21543
21544 Non-debugging symbols:
21545 0x6100114c cygwin1!__assert
21546 0x61004034 cygwin1!_dll_crt0@@0
21547 0x61004240 cygwin1!dll_crt0(per_process *)
21548 [etc...]
21549 @end smallexample
21550
21551 @subsubsection Working with Minimal Symbols
21552
21553 Symbols extracted from a DLL's export table do not contain very much
21554 type information. All that @value{GDBN} can do is guess whether a symbol
21555 refers to a function or variable depending on the linker section that
21556 contains the symbol. Also note that the actual contents of the memory
21557 contained in a DLL are not available unless the program is running. This
21558 means that you cannot examine the contents of a variable or disassemble
21559 a function within a DLL without a running program.
21560
21561 Variables are generally treated as pointers and dereferenced
21562 automatically. For this reason, it is often necessary to prefix a
21563 variable name with the address-of operator (``&'') and provide explicit
21564 type information in the command. Here's an example of the type of
21565 problem:
21566
21567 @smallexample
21568 (@value{GDBP}) print 'cygwin1!__argv'
21569 $1 = 268572168
21570 @end smallexample
21571
21572 @smallexample
21573 (@value{GDBP}) x 'cygwin1!__argv'
21574 0x10021610: "\230y\""
21575 @end smallexample
21576
21577 And two possible solutions:
21578
21579 @smallexample
21580 (@value{GDBP}) print ((char **)'cygwin1!__argv')[0]
21581 $2 = 0x22fd98 "/cygdrive/c/mydirectory/myprogram"
21582 @end smallexample
21583
21584 @smallexample
21585 (@value{GDBP}) x/2x &'cygwin1!__argv'
21586 0x610c0aa8 <cygwin1!__argv>: 0x10021608 0x00000000
21587 (@value{GDBP}) x/x 0x10021608
21588 0x10021608: 0x0022fd98
21589 (@value{GDBP}) x/s 0x0022fd98
21590 0x22fd98: "/cygdrive/c/mydirectory/myprogram"
21591 @end smallexample
21592
21593 Setting a break point within a DLL is possible even before the program
21594 starts execution. However, under these circumstances, @value{GDBN} can't
21595 examine the initial instructions of the function in order to skip the
21596 function's frame set-up code. You can work around this by using ``*&''
21597 to set the breakpoint at a raw memory address:
21598
21599 @smallexample
21600 (@value{GDBP}) break *&'python22!PyOS_Readline'
21601 Breakpoint 1 at 0x1e04eff0
21602 @end smallexample
21603
21604 The author of these extensions is not entirely convinced that setting a
21605 break point within a shared DLL like @file{kernel32.dll} is completely
21606 safe.
21607
21608 @node Hurd Native
21609 @subsection Commands Specific to @sc{gnu} Hurd Systems
21610 @cindex @sc{gnu} Hurd debugging
21611
21612 This subsection describes @value{GDBN} commands specific to the
21613 @sc{gnu} Hurd native debugging.
21614
21615 @table @code
21616 @item set signals
21617 @itemx set sigs
21618 @kindex set signals@r{, Hurd command}
21619 @kindex set sigs@r{, Hurd command}
21620 This command toggles the state of inferior signal interception by
21621 @value{GDBN}. Mach exceptions, such as breakpoint traps, are not
21622 affected by this command. @code{sigs} is a shorthand alias for
21623 @code{signals}.
21624
21625 @item show signals
21626 @itemx show sigs
21627 @kindex show signals@r{, Hurd command}
21628 @kindex show sigs@r{, Hurd command}
21629 Show the current state of intercepting inferior's signals.
21630
21631 @item set signal-thread
21632 @itemx set sigthread
21633 @kindex set signal-thread
21634 @kindex set sigthread
21635 This command tells @value{GDBN} which thread is the @code{libc} signal
21636 thread. That thread is run when a signal is delivered to a running
21637 process. @code{set sigthread} is the shorthand alias of @code{set
21638 signal-thread}.
21639
21640 @item show signal-thread
21641 @itemx show sigthread
21642 @kindex show signal-thread
21643 @kindex show sigthread
21644 These two commands show which thread will run when the inferior is
21645 delivered a signal.
21646
21647 @item set stopped
21648 @kindex set stopped@r{, Hurd command}
21649 This commands tells @value{GDBN} that the inferior process is stopped,
21650 as with the @code{SIGSTOP} signal. The stopped process can be
21651 continued by delivering a signal to it.
21652
21653 @item show stopped
21654 @kindex show stopped@r{, Hurd command}
21655 This command shows whether @value{GDBN} thinks the debuggee is
21656 stopped.
21657
21658 @item set exceptions
21659 @kindex set exceptions@r{, Hurd command}
21660 Use this command to turn off trapping of exceptions in the inferior.
21661 When exception trapping is off, neither breakpoints nor
21662 single-stepping will work. To restore the default, set exception
21663 trapping on.
21664
21665 @item show exceptions
21666 @kindex show exceptions@r{, Hurd command}
21667 Show the current state of trapping exceptions in the inferior.
21668
21669 @item set task pause
21670 @kindex set task@r{, Hurd commands}
21671 @cindex task attributes (@sc{gnu} Hurd)
21672 @cindex pause current task (@sc{gnu} Hurd)
21673 This command toggles task suspension when @value{GDBN} has control.
21674 Setting it to on takes effect immediately, and the task is suspended
21675 whenever @value{GDBN} gets control. Setting it to off will take
21676 effect the next time the inferior is continued. If this option is set
21677 to off, you can use @code{set thread default pause on} or @code{set
21678 thread pause on} (see below) to pause individual threads.
21679
21680 @item show task pause
21681 @kindex show task@r{, Hurd commands}
21682 Show the current state of task suspension.
21683
21684 @item set task detach-suspend-count
21685 @cindex task suspend count
21686 @cindex detach from task, @sc{gnu} Hurd
21687 This command sets the suspend count the task will be left with when
21688 @value{GDBN} detaches from it.
21689
21690 @item show task detach-suspend-count
21691 Show the suspend count the task will be left with when detaching.
21692
21693 @item set task exception-port
21694 @itemx set task excp
21695 @cindex task exception port, @sc{gnu} Hurd
21696 This command sets the task exception port to which @value{GDBN} will
21697 forward exceptions. The argument should be the value of the @dfn{send
21698 rights} of the task. @code{set task excp} is a shorthand alias.
21699
21700 @item set noninvasive
21701 @cindex noninvasive task options
21702 This command switches @value{GDBN} to a mode that is the least
21703 invasive as far as interfering with the inferior is concerned. This
21704 is the same as using @code{set task pause}, @code{set exceptions}, and
21705 @code{set signals} to values opposite to the defaults.
21706
21707 @item info send-rights
21708 @itemx info receive-rights
21709 @itemx info port-rights
21710 @itemx info port-sets
21711 @itemx info dead-names
21712 @itemx info ports
21713 @itemx info psets
21714 @cindex send rights, @sc{gnu} Hurd
21715 @cindex receive rights, @sc{gnu} Hurd
21716 @cindex port rights, @sc{gnu} Hurd
21717 @cindex port sets, @sc{gnu} Hurd
21718 @cindex dead names, @sc{gnu} Hurd
21719 These commands display information about, respectively, send rights,
21720 receive rights, port rights, port sets, and dead names of a task.
21721 There are also shorthand aliases: @code{info ports} for @code{info
21722 port-rights} and @code{info psets} for @code{info port-sets}.
21723
21724 @item set thread pause
21725 @kindex set thread@r{, Hurd command}
21726 @cindex thread properties, @sc{gnu} Hurd
21727 @cindex pause current thread (@sc{gnu} Hurd)
21728 This command toggles current thread suspension when @value{GDBN} has
21729 control. Setting it to on takes effect immediately, and the current
21730 thread is suspended whenever @value{GDBN} gets control. Setting it to
21731 off will take effect the next time the inferior is continued.
21732 Normally, this command has no effect, since when @value{GDBN} has
21733 control, the whole task is suspended. However, if you used @code{set
21734 task pause off} (see above), this command comes in handy to suspend
21735 only the current thread.
21736
21737 @item show thread pause
21738 @kindex show thread@r{, Hurd command}
21739 This command shows the state of current thread suspension.
21740
21741 @item set thread run
21742 This command sets whether the current thread is allowed to run.
21743
21744 @item show thread run
21745 Show whether the current thread is allowed to run.
21746
21747 @item set thread detach-suspend-count
21748 @cindex thread suspend count, @sc{gnu} Hurd
21749 @cindex detach from thread, @sc{gnu} Hurd
21750 This command sets the suspend count @value{GDBN} will leave on a
21751 thread when detaching. This number is relative to the suspend count
21752 found by @value{GDBN} when it notices the thread; use @code{set thread
21753 takeover-suspend-count} to force it to an absolute value.
21754
21755 @item show thread detach-suspend-count
21756 Show the suspend count @value{GDBN} will leave on the thread when
21757 detaching.
21758
21759 @item set thread exception-port
21760 @itemx set thread excp
21761 Set the thread exception port to which to forward exceptions. This
21762 overrides the port set by @code{set task exception-port} (see above).
21763 @code{set thread excp} is the shorthand alias.
21764
21765 @item set thread takeover-suspend-count
21766 Normally, @value{GDBN}'s thread suspend counts are relative to the
21767 value @value{GDBN} finds when it notices each thread. This command
21768 changes the suspend counts to be absolute instead.
21769
21770 @item set thread default
21771 @itemx show thread default
21772 @cindex thread default settings, @sc{gnu} Hurd
21773 Each of the above @code{set thread} commands has a @code{set thread
21774 default} counterpart (e.g., @code{set thread default pause}, @code{set
21775 thread default exception-port}, etc.). The @code{thread default}
21776 variety of commands sets the default thread properties for all
21777 threads; you can then change the properties of individual threads with
21778 the non-default commands.
21779 @end table
21780
21781 @node Darwin
21782 @subsection Darwin
21783 @cindex Darwin
21784
21785 @value{GDBN} provides the following commands specific to the Darwin target:
21786
21787 @table @code
21788 @item set debug darwin @var{num}
21789 @kindex set debug darwin
21790 When set to a non zero value, enables debugging messages specific to
21791 the Darwin support. Higher values produce more verbose output.
21792
21793 @item show debug darwin
21794 @kindex show debug darwin
21795 Show the current state of Darwin messages.
21796
21797 @item set debug mach-o @var{num}
21798 @kindex set debug mach-o
21799 When set to a non zero value, enables debugging messages while
21800 @value{GDBN} is reading Darwin object files. (@dfn{Mach-O} is the
21801 file format used on Darwin for object and executable files.) Higher
21802 values produce more verbose output. This is a command to diagnose
21803 problems internal to @value{GDBN} and should not be needed in normal
21804 usage.
21805
21806 @item show debug mach-o
21807 @kindex show debug mach-o
21808 Show the current state of Mach-O file messages.
21809
21810 @item set mach-exceptions on
21811 @itemx set mach-exceptions off
21812 @kindex set mach-exceptions
21813 On Darwin, faults are first reported as a Mach exception and are then
21814 mapped to a Posix signal. Use this command to turn on trapping of
21815 Mach exceptions in the inferior. This might be sometimes useful to
21816 better understand the cause of a fault. The default is off.
21817
21818 @item show mach-exceptions
21819 @kindex show mach-exceptions
21820 Show the current state of exceptions trapping.
21821 @end table
21822
21823
21824 @node Embedded OS
21825 @section Embedded Operating Systems
21826
21827 This section describes configurations involving the debugging of
21828 embedded operating systems that are available for several different
21829 architectures.
21830
21831 @value{GDBN} includes the ability to debug programs running on
21832 various real-time operating systems.
21833
21834 @node Embedded Processors
21835 @section Embedded Processors
21836
21837 This section goes into details specific to particular embedded
21838 configurations.
21839
21840 @cindex send command to simulator
21841 Whenever a specific embedded processor has a simulator, @value{GDBN}
21842 allows to send an arbitrary command to the simulator.
21843
21844 @table @code
21845 @item sim @var{command}
21846 @kindex sim@r{, a command}
21847 Send an arbitrary @var{command} string to the simulator. Consult the
21848 documentation for the specific simulator in use for information about
21849 acceptable commands.
21850 @end table
21851
21852
21853 @menu
21854 * ARM:: ARM
21855 * M32R/SDI:: Renesas M32R/SDI
21856 * M68K:: Motorola M68K
21857 * MicroBlaze:: Xilinx MicroBlaze
21858 * MIPS Embedded:: MIPS Embedded
21859 * PowerPC Embedded:: PowerPC Embedded
21860 * AVR:: Atmel AVR
21861 * CRIS:: CRIS
21862 * Super-H:: Renesas Super-H
21863 @end menu
21864
21865 @node ARM
21866 @subsection ARM
21867
21868 @value{GDBN} provides the following ARM-specific commands:
21869
21870 @table @code
21871 @item set arm disassembler
21872 @kindex set arm
21873 This commands selects from a list of disassembly styles. The
21874 @code{"std"} style is the standard style.
21875
21876 @item show arm disassembler
21877 @kindex show arm
21878 Show the current disassembly style.
21879
21880 @item set arm apcs32
21881 @cindex ARM 32-bit mode
21882 This command toggles ARM operation mode between 32-bit and 26-bit.
21883
21884 @item show arm apcs32
21885 Display the current usage of the ARM 32-bit mode.
21886
21887 @item set arm fpu @var{fputype}
21888 This command sets the ARM floating-point unit (FPU) type. The
21889 argument @var{fputype} can be one of these:
21890
21891 @table @code
21892 @item auto
21893 Determine the FPU type by querying the OS ABI.
21894 @item softfpa
21895 Software FPU, with mixed-endian doubles on little-endian ARM
21896 processors.
21897 @item fpa
21898 GCC-compiled FPA co-processor.
21899 @item softvfp
21900 Software FPU with pure-endian doubles.
21901 @item vfp
21902 VFP co-processor.
21903 @end table
21904
21905 @item show arm fpu
21906 Show the current type of the FPU.
21907
21908 @item set arm abi
21909 This command forces @value{GDBN} to use the specified ABI.
21910
21911 @item show arm abi
21912 Show the currently used ABI.
21913
21914 @item set arm fallback-mode (arm|thumb|auto)
21915 @value{GDBN} uses the symbol table, when available, to determine
21916 whether instructions are ARM or Thumb. This command controls
21917 @value{GDBN}'s default behavior when the symbol table is not
21918 available. The default is @samp{auto}, which causes @value{GDBN} to
21919 use the current execution mode (from the @code{T} bit in the @code{CPSR}
21920 register).
21921
21922 @item show arm fallback-mode
21923 Show the current fallback instruction mode.
21924
21925 @item set arm force-mode (arm|thumb|auto)
21926 This command overrides use of the symbol table to determine whether
21927 instructions are ARM or Thumb. The default is @samp{auto}, which
21928 causes @value{GDBN} to use the symbol table and then the setting
21929 of @samp{set arm fallback-mode}.
21930
21931 @item show arm force-mode
21932 Show the current forced instruction mode.
21933
21934 @item set debug arm
21935 Toggle whether to display ARM-specific debugging messages from the ARM
21936 target support subsystem.
21937
21938 @item show debug arm
21939 Show whether ARM-specific debugging messages are enabled.
21940 @end table
21941
21942 @table @code
21943 @item target sim @r{[}@var{simargs}@r{]} @dots{}
21944 The @value{GDBN} ARM simulator accepts the following optional arguments.
21945
21946 @table @code
21947 @item --swi-support=@var{type}
21948 Tell the simulator which SWI interfaces to support. The argument
21949 @var{type} may be a comma separated list of the following values.
21950 The default value is @code{all}.
21951
21952 @table @code
21953 @item none
21954 @item demon
21955 @item angel
21956 @item redboot
21957 @item all
21958 @end table
21959 @end table
21960 @end table
21961
21962 @node M32R/SDI
21963 @subsection Renesas M32R/SDI
21964
21965 The following commands are available for M32R/SDI:
21966
21967 @table @code
21968 @item sdireset
21969 @kindex sdireset
21970 @cindex reset SDI connection, M32R
21971 This command resets the SDI connection.
21972
21973 @item sdistatus
21974 @kindex sdistatus
21975 This command shows the SDI connection status.
21976
21977 @item debug_chaos
21978 @kindex debug_chaos
21979 @cindex M32R/Chaos debugging
21980 Instructs the remote that M32R/Chaos debugging is to be used.
21981
21982 @item use_debug_dma
21983 @kindex use_debug_dma
21984 Instructs the remote to use the DEBUG_DMA method of accessing memory.
21985
21986 @item use_mon_code
21987 @kindex use_mon_code
21988 Instructs the remote to use the MON_CODE method of accessing memory.
21989
21990 @item use_ib_break
21991 @kindex use_ib_break
21992 Instructs the remote to set breakpoints by IB break.
21993
21994 @item use_dbt_break
21995 @kindex use_dbt_break
21996 Instructs the remote to set breakpoints by DBT.
21997 @end table
21998
21999 @node M68K
22000 @subsection M68k
22001
22002 The Motorola m68k configuration includes ColdFire support.
22003
22004 @node MicroBlaze
22005 @subsection MicroBlaze
22006 @cindex Xilinx MicroBlaze
22007 @cindex XMD, Xilinx Microprocessor Debugger
22008
22009 The MicroBlaze is a soft-core processor supported on various Xilinx
22010 FPGAs, such as Spartan or Virtex series. Boards with these processors
22011 usually have JTAG ports which connect to a host system running the Xilinx
22012 Embedded Development Kit (EDK) or Software Development Kit (SDK).
22013 This host system is used to download the configuration bitstream to
22014 the target FPGA. The Xilinx Microprocessor Debugger (XMD) program
22015 communicates with the target board using the JTAG interface and
22016 presents a @code{gdbserver} interface to the board. By default
22017 @code{xmd} uses port @code{1234}. (While it is possible to change
22018 this default port, it requires the use of undocumented @code{xmd}
22019 commands. Contact Xilinx support if you need to do this.)
22020
22021 Use these GDB commands to connect to the MicroBlaze target processor.
22022
22023 @table @code
22024 @item target remote :1234
22025 Use this command to connect to the target if you are running @value{GDBN}
22026 on the same system as @code{xmd}.
22027
22028 @item target remote @var{xmd-host}:1234
22029 Use this command to connect to the target if it is connected to @code{xmd}
22030 running on a different system named @var{xmd-host}.
22031
22032 @item load
22033 Use this command to download a program to the MicroBlaze target.
22034
22035 @item set debug microblaze @var{n}
22036 Enable MicroBlaze-specific debugging messages if non-zero.
22037
22038 @item show debug microblaze @var{n}
22039 Show MicroBlaze-specific debugging level.
22040 @end table
22041
22042 @node MIPS Embedded
22043 @subsection @acronym{MIPS} Embedded
22044
22045 @cindex @acronym{MIPS} boards
22046 @value{GDBN} can use the @acronym{MIPS} remote debugging protocol to talk to a
22047 @acronym{MIPS} board attached to a serial line. This is available when
22048 you configure @value{GDBN} with @samp{--target=mips-elf}.
22049
22050 @need 1000
22051 Use these @value{GDBN} commands to specify the connection to your target board:
22052
22053 @table @code
22054 @item target mips @var{port}
22055 @kindex target mips @var{port}
22056 To run a program on the board, start up @code{@value{GDBP}} with the
22057 name of your program as the argument. To connect to the board, use the
22058 command @samp{target mips @var{port}}, where @var{port} is the name of
22059 the serial port connected to the board. If the program has not already
22060 been downloaded to the board, you may use the @code{load} command to
22061 download it. You can then use all the usual @value{GDBN} commands.
22062
22063 For example, this sequence connects to the target board through a serial
22064 port, and loads and runs a program called @var{prog} through the
22065 debugger:
22066
22067 @smallexample
22068 host$ @value{GDBP} @var{prog}
22069 @value{GDBN} is free software and @dots{}
22070 (@value{GDBP}) target mips /dev/ttyb
22071 (@value{GDBP}) load @var{prog}
22072 (@value{GDBP}) run
22073 @end smallexample
22074
22075 @item target mips @var{hostname}:@var{portnumber}
22076 On some @value{GDBN} host configurations, you can specify a TCP
22077 connection (for instance, to a serial line managed by a terminal
22078 concentrator) instead of a serial port, using the syntax
22079 @samp{@var{hostname}:@var{portnumber}}.
22080
22081 @item target pmon @var{port}
22082 @kindex target pmon @var{port}
22083 PMON ROM monitor.
22084
22085 @item target ddb @var{port}
22086 @kindex target ddb @var{port}
22087 NEC's DDB variant of PMON for Vr4300.
22088
22089 @item target lsi @var{port}
22090 @kindex target lsi @var{port}
22091 LSI variant of PMON.
22092
22093 @end table
22094
22095
22096 @noindent
22097 @value{GDBN} also supports these special commands for @acronym{MIPS} targets:
22098
22099 @table @code
22100 @item set mipsfpu double
22101 @itemx set mipsfpu single
22102 @itemx set mipsfpu none
22103 @itemx set mipsfpu auto
22104 @itemx show mipsfpu
22105 @kindex set mipsfpu
22106 @kindex show mipsfpu
22107 @cindex @acronym{MIPS} remote floating point
22108 @cindex floating point, @acronym{MIPS} remote
22109 If your target board does not support the @acronym{MIPS} floating point
22110 coprocessor, you should use the command @samp{set mipsfpu none} (if you
22111 need this, you may wish to put the command in your @value{GDBN} init
22112 file). This tells @value{GDBN} how to find the return value of
22113 functions which return floating point values. It also allows
22114 @value{GDBN} to avoid saving the floating point registers when calling
22115 functions on the board. If you are using a floating point coprocessor
22116 with only single precision floating point support, as on the @sc{r4650}
22117 processor, use the command @samp{set mipsfpu single}. The default
22118 double precision floating point coprocessor may be selected using
22119 @samp{set mipsfpu double}.
22120
22121 In previous versions the only choices were double precision or no
22122 floating point, so @samp{set mipsfpu on} will select double precision
22123 and @samp{set mipsfpu off} will select no floating point.
22124
22125 As usual, you can inquire about the @code{mipsfpu} variable with
22126 @samp{show mipsfpu}.
22127
22128 @item set timeout @var{seconds}
22129 @itemx set retransmit-timeout @var{seconds}
22130 @itemx show timeout
22131 @itemx show retransmit-timeout
22132 @cindex @code{timeout}, @acronym{MIPS} protocol
22133 @cindex @code{retransmit-timeout}, @acronym{MIPS} protocol
22134 @kindex set timeout
22135 @kindex show timeout
22136 @kindex set retransmit-timeout
22137 @kindex show retransmit-timeout
22138 You can control the timeout used while waiting for a packet, in the @acronym{MIPS}
22139 remote protocol, with the @code{set timeout @var{seconds}} command. The
22140 default is 5 seconds. Similarly, you can control the timeout used while
22141 waiting for an acknowledgment of a packet with the @code{set
22142 retransmit-timeout @var{seconds}} command. The default is 3 seconds.
22143 You can inspect both values with @code{show timeout} and @code{show
22144 retransmit-timeout}. (These commands are @emph{only} available when
22145 @value{GDBN} is configured for @samp{--target=mips-elf}.)
22146
22147 The timeout set by @code{set timeout} does not apply when @value{GDBN}
22148 is waiting for your program to stop. In that case, @value{GDBN} waits
22149 forever because it has no way of knowing how long the program is going
22150 to run before stopping.
22151
22152 @item set syn-garbage-limit @var{num}
22153 @kindex set syn-garbage-limit@r{, @acronym{MIPS} remote}
22154 @cindex synchronize with remote @acronym{MIPS} target
22155 Limit the maximum number of characters @value{GDBN} should ignore when
22156 it tries to synchronize with the remote target. The default is 10
22157 characters. Setting the limit to -1 means there's no limit.
22158
22159 @item show syn-garbage-limit
22160 @kindex show syn-garbage-limit@r{, @acronym{MIPS} remote}
22161 Show the current limit on the number of characters to ignore when
22162 trying to synchronize with the remote system.
22163
22164 @item set monitor-prompt @var{prompt}
22165 @kindex set monitor-prompt@r{, @acronym{MIPS} remote}
22166 @cindex remote monitor prompt
22167 Tell @value{GDBN} to expect the specified @var{prompt} string from the
22168 remote monitor. The default depends on the target:
22169 @table @asis
22170 @item pmon target
22171 @samp{PMON}
22172 @item ddb target
22173 @samp{NEC010}
22174 @item lsi target
22175 @samp{PMON>}
22176 @end table
22177
22178 @item show monitor-prompt
22179 @kindex show monitor-prompt@r{, @acronym{MIPS} remote}
22180 Show the current strings @value{GDBN} expects as the prompt from the
22181 remote monitor.
22182
22183 @item set monitor-warnings
22184 @kindex set monitor-warnings@r{, @acronym{MIPS} remote}
22185 Enable or disable monitor warnings about hardware breakpoints. This
22186 has effect only for the @code{lsi} target. When on, @value{GDBN} will
22187 display warning messages whose codes are returned by the @code{lsi}
22188 PMON monitor for breakpoint commands.
22189
22190 @item show monitor-warnings
22191 @kindex show monitor-warnings@r{, @acronym{MIPS} remote}
22192 Show the current setting of printing monitor warnings.
22193
22194 @item pmon @var{command}
22195 @kindex pmon@r{, @acronym{MIPS} remote}
22196 @cindex send PMON command
22197 This command allows sending an arbitrary @var{command} string to the
22198 monitor. The monitor must be in debug mode for this to work.
22199 @end table
22200
22201 @node PowerPC Embedded
22202 @subsection PowerPC Embedded
22203
22204 @cindex DVC register
22205 @value{GDBN} supports using the DVC (Data Value Compare) register to
22206 implement in hardware simple hardware watchpoint conditions of the form:
22207
22208 @smallexample
22209 (@value{GDBP}) watch @var{ADDRESS|VARIABLE} \
22210 if @var{ADDRESS|VARIABLE} == @var{CONSTANT EXPRESSION}
22211 @end smallexample
22212
22213 The DVC register will be automatically used when @value{GDBN} detects
22214 such pattern in a condition expression, and the created watchpoint uses one
22215 debug register (either the @code{exact-watchpoints} option is on and the
22216 variable is scalar, or the variable has a length of one byte). This feature
22217 is available in native @value{GDBN} running on a Linux kernel version 2.6.34
22218 or newer.
22219
22220 When running on PowerPC embedded processors, @value{GDBN} automatically uses
22221 ranged hardware watchpoints, unless the @code{exact-watchpoints} option is on,
22222 in which case watchpoints using only one debug register are created when
22223 watching variables of scalar types.
22224
22225 You can create an artificial array to watch an arbitrary memory
22226 region using one of the following commands (@pxref{Expressions}):
22227
22228 @smallexample
22229 (@value{GDBP}) watch *((char *) @var{address})@@@var{length}
22230 (@value{GDBP}) watch @{char[@var{length}]@} @var{address}
22231 @end smallexample
22232
22233 PowerPC embedded processors support masked watchpoints. See the discussion
22234 about the @code{mask} argument in @ref{Set Watchpoints}.
22235
22236 @cindex ranged breakpoint
22237 PowerPC embedded processors support hardware accelerated
22238 @dfn{ranged breakpoints}. A ranged breakpoint stops execution of
22239 the inferior whenever it executes an instruction at any address within
22240 the range it specifies. To set a ranged breakpoint in @value{GDBN},
22241 use the @code{break-range} command.
22242
22243 @value{GDBN} provides the following PowerPC-specific commands:
22244
22245 @table @code
22246 @kindex break-range
22247 @item break-range @var{start-location}, @var{end-location}
22248 Set a breakpoint for an address range given by
22249 @var{start-location} and @var{end-location}, which can specify a function name,
22250 a line number, an offset of lines from the current line or from the start
22251 location, or an address of an instruction (see @ref{Specify Location},
22252 for a list of all the possible ways to specify a @var{location}.)
22253 The breakpoint will stop execution of the inferior whenever it
22254 executes an instruction at any address within the specified range,
22255 (including @var{start-location} and @var{end-location}.)
22256
22257 @kindex set powerpc
22258 @item set powerpc soft-float
22259 @itemx show powerpc soft-float
22260 Force @value{GDBN} to use (or not use) a software floating point calling
22261 convention. By default, @value{GDBN} selects the calling convention based
22262 on the selected architecture and the provided executable file.
22263
22264 @item set powerpc vector-abi
22265 @itemx show powerpc vector-abi
22266 Force @value{GDBN} to use the specified calling convention for vector
22267 arguments and return values. The valid options are @samp{auto};
22268 @samp{generic}, to avoid vector registers even if they are present;
22269 @samp{altivec}, to use AltiVec registers; and @samp{spe} to use SPE
22270 registers. By default, @value{GDBN} selects the calling convention
22271 based on the selected architecture and the provided executable file.
22272
22273 @item set powerpc exact-watchpoints
22274 @itemx show powerpc exact-watchpoints
22275 Allow @value{GDBN} to use only one debug register when watching a variable
22276 of scalar type, thus assuming that the variable is accessed through the
22277 address of its first byte.
22278
22279 @end table
22280
22281 @node AVR
22282 @subsection Atmel AVR
22283 @cindex AVR
22284
22285 When configured for debugging the Atmel AVR, @value{GDBN} supports the
22286 following AVR-specific commands:
22287
22288 @table @code
22289 @item info io_registers
22290 @kindex info io_registers@r{, AVR}
22291 @cindex I/O registers (Atmel AVR)
22292 This command displays information about the AVR I/O registers. For
22293 each register, @value{GDBN} prints its number and value.
22294 @end table
22295
22296 @node CRIS
22297 @subsection CRIS
22298 @cindex CRIS
22299
22300 When configured for debugging CRIS, @value{GDBN} provides the
22301 following CRIS-specific commands:
22302
22303 @table @code
22304 @item set cris-version @var{ver}
22305 @cindex CRIS version
22306 Set the current CRIS version to @var{ver}, either @samp{10} or @samp{32}.
22307 The CRIS version affects register names and sizes. This command is useful in
22308 case autodetection of the CRIS version fails.
22309
22310 @item show cris-version
22311 Show the current CRIS version.
22312
22313 @item set cris-dwarf2-cfi
22314 @cindex DWARF-2 CFI and CRIS
22315 Set the usage of DWARF-2 CFI for CRIS debugging. The default is @samp{on}.
22316 Change to @samp{off} when using @code{gcc-cris} whose version is below
22317 @code{R59}.
22318
22319 @item show cris-dwarf2-cfi
22320 Show the current state of using DWARF-2 CFI.
22321
22322 @item set cris-mode @var{mode}
22323 @cindex CRIS mode
22324 Set the current CRIS mode to @var{mode}. It should only be changed when
22325 debugging in guru mode, in which case it should be set to
22326 @samp{guru} (the default is @samp{normal}).
22327
22328 @item show cris-mode
22329 Show the current CRIS mode.
22330 @end table
22331
22332 @node Super-H
22333 @subsection Renesas Super-H
22334 @cindex Super-H
22335
22336 For the Renesas Super-H processor, @value{GDBN} provides these
22337 commands:
22338
22339 @table @code
22340 @item set sh calling-convention @var{convention}
22341 @kindex set sh calling-convention
22342 Set the calling-convention used when calling functions from @value{GDBN}.
22343 Allowed values are @samp{gcc}, which is the default setting, and @samp{renesas}.
22344 With the @samp{gcc} setting, functions are called using the @value{NGCC} calling
22345 convention. If the DWARF-2 information of the called function specifies
22346 that the function follows the Renesas calling convention, the function
22347 is called using the Renesas calling convention. If the calling convention
22348 is set to @samp{renesas}, the Renesas calling convention is always used,
22349 regardless of the DWARF-2 information. This can be used to override the
22350 default of @samp{gcc} if debug information is missing, or the compiler
22351 does not emit the DWARF-2 calling convention entry for a function.
22352
22353 @item show sh calling-convention
22354 @kindex show sh calling-convention
22355 Show the current calling convention setting.
22356
22357 @end table
22358
22359
22360 @node Architectures
22361 @section Architectures
22362
22363 This section describes characteristics of architectures that affect
22364 all uses of @value{GDBN} with the architecture, both native and cross.
22365
22366 @menu
22367 * AArch64::
22368 * i386::
22369 * Alpha::
22370 * MIPS::
22371 * HPPA:: HP PA architecture
22372 * SPU:: Cell Broadband Engine SPU architecture
22373 * PowerPC::
22374 * Nios II::
22375 @end menu
22376
22377 @node AArch64
22378 @subsection AArch64
22379 @cindex AArch64 support
22380
22381 When @value{GDBN} is debugging the AArch64 architecture, it provides the
22382 following special commands:
22383
22384 @table @code
22385 @item set debug aarch64
22386 @kindex set debug aarch64
22387 This command determines whether AArch64 architecture-specific debugging
22388 messages are to be displayed.
22389
22390 @item show debug aarch64
22391 Show whether AArch64 debugging messages are displayed.
22392
22393 @end table
22394
22395 @node i386
22396 @subsection x86 Architecture-specific Issues
22397
22398 @table @code
22399 @item set struct-convention @var{mode}
22400 @kindex set struct-convention
22401 @cindex struct return convention
22402 @cindex struct/union returned in registers
22403 Set the convention used by the inferior to return @code{struct}s and
22404 @code{union}s from functions to @var{mode}. Possible values of
22405 @var{mode} are @code{"pcc"}, @code{"reg"}, and @code{"default"} (the
22406 default). @code{"default"} or @code{"pcc"} means that @code{struct}s
22407 are returned on the stack, while @code{"reg"} means that a
22408 @code{struct} or a @code{union} whose size is 1, 2, 4, or 8 bytes will
22409 be returned in a register.
22410
22411 @item show struct-convention
22412 @kindex show struct-convention
22413 Show the current setting of the convention to return @code{struct}s
22414 from functions.
22415 @end table
22416
22417
22418 @subsubsection Intel @dfn{Memory Protection Extensions} (MPX).
22419 @cindex Intel Memory Protection Extensions (MPX).
22420
22421 Memory Protection Extension (MPX) adds the bound registers @samp{BND0}
22422 @footnote{The register named with capital letters represent the architecture
22423 registers.} through @samp{BND3}. Bound registers store a pair of 64-bit values
22424 which are the lower bound and upper bound. Bounds are effective addresses or
22425 memory locations. The upper bounds are architecturally represented in 1's
22426 complement form. A bound having lower bound = 0, and upper bound = 0
22427 (1's complement of all bits set) will allow access to the entire address space.
22428
22429 @samp{BND0} through @samp{BND3} are represented in @value{GDBN} as @samp{bnd0raw}
22430 through @samp{bnd3raw}. Pseudo registers @samp{bnd0} through @samp{bnd3}
22431 display the upper bound performing the complement of one operation on the
22432 upper bound value, i.e.@ when upper bound in @samp{bnd0raw} is 0 in the
22433 @value{GDBN} @samp{bnd0} it will be @code{0xfff@dots{}}. In this sense it
22434 can also be noted that the upper bounds are inclusive.
22435
22436 As an example, assume that the register BND0 holds bounds for a pointer having
22437 access allowed for the range between 0x32 and 0x71. The values present on
22438 bnd0raw and bnd registers are presented as follows:
22439
22440 @smallexample
22441 bnd0raw = @{0x32, 0xffffffff8e@}
22442 bnd0 = @{lbound = 0x32, ubound = 0x71@} : size 64
22443 @end smallexample
22444
22445 This way the raw value can be accessed via bnd0raw@dots{}bnd3raw. Any
22446 change on bnd0@dots{}bnd3 or bnd0raw@dots{}bnd3raw is reflect on its
22447 counterpart. When the bnd0@dots{}bnd3 registers are displayed via
22448 Python, the display includes the memory size, in bits, accessible to
22449 the pointer.
22450
22451 Bounds can also be stored in bounds tables, which are stored in
22452 application memory. These tables store bounds for pointers by specifying
22453 the bounds pointer's value along with its bounds. Evaluating and changing
22454 bounds located in bound tables is therefore interesting while investigating
22455 bugs on MPX context. @value{GDBN} provides commands for this purpose:
22456
22457 @table @code
22458 @item show mpx bound @var{pointer}
22459 @kindex show mpx bound
22460 Display bounds of the given @var{pointer}.
22461
22462 @item set mpx bound @var{pointer}, @var{lbound}, @var{ubound}
22463 @kindex set mpx bound
22464 Set the bounds of a pointer in the bound table.
22465 This command takes three parameters: @var{pointer} is the pointers
22466 whose bounds are to be changed, @var{lbound} and @var{ubound} are new values
22467 for lower and upper bounds respectively.
22468 @end table
22469
22470 @node Alpha
22471 @subsection Alpha
22472
22473 See the following section.
22474
22475 @node MIPS
22476 @subsection @acronym{MIPS}
22477
22478 @cindex stack on Alpha
22479 @cindex stack on @acronym{MIPS}
22480 @cindex Alpha stack
22481 @cindex @acronym{MIPS} stack
22482 Alpha- and @acronym{MIPS}-based computers use an unusual stack frame, which
22483 sometimes requires @value{GDBN} to search backward in the object code to
22484 find the beginning of a function.
22485
22486 @cindex response time, @acronym{MIPS} debugging
22487 To improve response time (especially for embedded applications, where
22488 @value{GDBN} may be restricted to a slow serial line for this search)
22489 you may want to limit the size of this search, using one of these
22490 commands:
22491
22492 @table @code
22493 @cindex @code{heuristic-fence-post} (Alpha, @acronym{MIPS})
22494 @item set heuristic-fence-post @var{limit}
22495 Restrict @value{GDBN} to examining at most @var{limit} bytes in its
22496 search for the beginning of a function. A value of @var{0} (the
22497 default) means there is no limit. However, except for @var{0}, the
22498 larger the limit the more bytes @code{heuristic-fence-post} must search
22499 and therefore the longer it takes to run. You should only need to use
22500 this command when debugging a stripped executable.
22501
22502 @item show heuristic-fence-post
22503 Display the current limit.
22504 @end table
22505
22506 @noindent
22507 These commands are available @emph{only} when @value{GDBN} is configured
22508 for debugging programs on Alpha or @acronym{MIPS} processors.
22509
22510 Several @acronym{MIPS}-specific commands are available when debugging @acronym{MIPS}
22511 programs:
22512
22513 @table @code
22514 @item set mips abi @var{arg}
22515 @kindex set mips abi
22516 @cindex set ABI for @acronym{MIPS}
22517 Tell @value{GDBN} which @acronym{MIPS} ABI is used by the inferior. Possible
22518 values of @var{arg} are:
22519
22520 @table @samp
22521 @item auto
22522 The default ABI associated with the current binary (this is the
22523 default).
22524 @item o32
22525 @item o64
22526 @item n32
22527 @item n64
22528 @item eabi32
22529 @item eabi64
22530 @end table
22531
22532 @item show mips abi
22533 @kindex show mips abi
22534 Show the @acronym{MIPS} ABI used by @value{GDBN} to debug the inferior.
22535
22536 @item set mips compression @var{arg}
22537 @kindex set mips compression
22538 @cindex code compression, @acronym{MIPS}
22539 Tell @value{GDBN} which @acronym{MIPS} compressed
22540 @acronym{ISA, Instruction Set Architecture} encoding is used by the
22541 inferior. @value{GDBN} uses this for code disassembly and other
22542 internal interpretation purposes. This setting is only referred to
22543 when no executable has been associated with the debugging session or
22544 the executable does not provide information about the encoding it uses.
22545 Otherwise this setting is automatically updated from information
22546 provided by the executable.
22547
22548 Possible values of @var{arg} are @samp{mips16} and @samp{micromips}.
22549 The default compressed @acronym{ISA} encoding is @samp{mips16}, as
22550 executables containing @acronym{MIPS16} code frequently are not
22551 identified as such.
22552
22553 This setting is ``sticky''; that is, it retains its value across
22554 debugging sessions until reset either explicitly with this command or
22555 implicitly from an executable.
22556
22557 The compiler and/or assembler typically add symbol table annotations to
22558 identify functions compiled for the @acronym{MIPS16} or
22559 @acronym{microMIPS} @acronym{ISA}s. If these function-scope annotations
22560 are present, @value{GDBN} uses them in preference to the global
22561 compressed @acronym{ISA} encoding setting.
22562
22563 @item show mips compression
22564 @kindex show mips compression
22565 Show the @acronym{MIPS} compressed @acronym{ISA} encoding used by
22566 @value{GDBN} to debug the inferior.
22567
22568 @item set mipsfpu
22569 @itemx show mipsfpu
22570 @xref{MIPS Embedded, set mipsfpu}.
22571
22572 @item set mips mask-address @var{arg}
22573 @kindex set mips mask-address
22574 @cindex @acronym{MIPS} addresses, masking
22575 This command determines whether the most-significant 32 bits of 64-bit
22576 @acronym{MIPS} addresses are masked off. The argument @var{arg} can be
22577 @samp{on}, @samp{off}, or @samp{auto}. The latter is the default
22578 setting, which lets @value{GDBN} determine the correct value.
22579
22580 @item show mips mask-address
22581 @kindex show mips mask-address
22582 Show whether the upper 32 bits of @acronym{MIPS} addresses are masked off or
22583 not.
22584
22585 @item set remote-mips64-transfers-32bit-regs
22586 @kindex set remote-mips64-transfers-32bit-regs
22587 This command controls compatibility with 64-bit @acronym{MIPS} targets that
22588 transfer data in 32-bit quantities. If you have an old @acronym{MIPS} 64 target
22589 that transfers 32 bits for some registers, like @sc{sr} and @sc{fsr},
22590 and 64 bits for other registers, set this option to @samp{on}.
22591
22592 @item show remote-mips64-transfers-32bit-regs
22593 @kindex show remote-mips64-transfers-32bit-regs
22594 Show the current setting of compatibility with older @acronym{MIPS} 64 targets.
22595
22596 @item set debug mips
22597 @kindex set debug mips
22598 This command turns on and off debugging messages for the @acronym{MIPS}-specific
22599 target code in @value{GDBN}.
22600
22601 @item show debug mips
22602 @kindex show debug mips
22603 Show the current setting of @acronym{MIPS} debugging messages.
22604 @end table
22605
22606
22607 @node HPPA
22608 @subsection HPPA
22609 @cindex HPPA support
22610
22611 When @value{GDBN} is debugging the HP PA architecture, it provides the
22612 following special commands:
22613
22614 @table @code
22615 @item set debug hppa
22616 @kindex set debug hppa
22617 This command determines whether HPPA architecture-specific debugging
22618 messages are to be displayed.
22619
22620 @item show debug hppa
22621 Show whether HPPA debugging messages are displayed.
22622
22623 @item maint print unwind @var{address}
22624 @kindex maint print unwind@r{, HPPA}
22625 This command displays the contents of the unwind table entry at the
22626 given @var{address}.
22627
22628 @end table
22629
22630
22631 @node SPU
22632 @subsection Cell Broadband Engine SPU architecture
22633 @cindex Cell Broadband Engine
22634 @cindex SPU
22635
22636 When @value{GDBN} is debugging the Cell Broadband Engine SPU architecture,
22637 it provides the following special commands:
22638
22639 @table @code
22640 @item info spu event
22641 @kindex info spu
22642 Display SPU event facility status. Shows current event mask
22643 and pending event status.
22644
22645 @item info spu signal
22646 Display SPU signal notification facility status. Shows pending
22647 signal-control word and signal notification mode of both signal
22648 notification channels.
22649
22650 @item info spu mailbox
22651 Display SPU mailbox facility status. Shows all pending entries,
22652 in order of processing, in each of the SPU Write Outbound,
22653 SPU Write Outbound Interrupt, and SPU Read Inbound mailboxes.
22654
22655 @item info spu dma
22656 Display MFC DMA status. Shows all pending commands in the MFC
22657 DMA queue. For each entry, opcode, tag, class IDs, effective
22658 and local store addresses and transfer size are shown.
22659
22660 @item info spu proxydma
22661 Display MFC Proxy-DMA status. Shows all pending commands in the MFC
22662 Proxy-DMA queue. For each entry, opcode, tag, class IDs, effective
22663 and local store addresses and transfer size are shown.
22664
22665 @end table
22666
22667 When @value{GDBN} is debugging a combined PowerPC/SPU application
22668 on the Cell Broadband Engine, it provides in addition the following
22669 special commands:
22670
22671 @table @code
22672 @item set spu stop-on-load @var{arg}
22673 @kindex set spu
22674 Set whether to stop for new SPE threads. When set to @code{on}, @value{GDBN}
22675 will give control to the user when a new SPE thread enters its @code{main}
22676 function. The default is @code{off}.
22677
22678 @item show spu stop-on-load
22679 @kindex show spu
22680 Show whether to stop for new SPE threads.
22681
22682 @item set spu auto-flush-cache @var{arg}
22683 Set whether to automatically flush the software-managed cache. When set to
22684 @code{on}, @value{GDBN} will automatically cause the SPE software-managed
22685 cache to be flushed whenever SPE execution stops. This provides a consistent
22686 view of PowerPC memory that is accessed via the cache. If an application
22687 does not use the software-managed cache, this option has no effect.
22688
22689 @item show spu auto-flush-cache
22690 Show whether to automatically flush the software-managed cache.
22691
22692 @end table
22693
22694 @node PowerPC
22695 @subsection PowerPC
22696 @cindex PowerPC architecture
22697
22698 When @value{GDBN} is debugging the PowerPC architecture, it provides a set of
22699 pseudo-registers to enable inspection of 128-bit wide Decimal Floating Point
22700 numbers stored in the floating point registers. These values must be stored
22701 in two consecutive registers, always starting at an even register like
22702 @code{f0} or @code{f2}.
22703
22704 The pseudo-registers go from @code{$dl0} through @code{$dl15}, and are formed
22705 by joining the even/odd register pairs @code{f0} and @code{f1} for @code{$dl0},
22706 @code{f2} and @code{f3} for @code{$dl1} and so on.
22707
22708 For POWER7 processors, @value{GDBN} provides a set of pseudo-registers, the 64-bit
22709 wide Extended Floating Point Registers (@samp{f32} through @samp{f63}).
22710
22711 @node Nios II
22712 @subsection Nios II
22713 @cindex Nios II architecture
22714
22715 When @value{GDBN} is debugging the Nios II architecture,
22716 it provides the following special commands:
22717
22718 @table @code
22719
22720 @item set debug nios2
22721 @kindex set debug nios2
22722 This command turns on and off debugging messages for the Nios II
22723 target code in @value{GDBN}.
22724
22725 @item show debug nios2
22726 @kindex show debug nios2
22727 Show the current setting of Nios II debugging messages.
22728 @end table
22729
22730 @node Controlling GDB
22731 @chapter Controlling @value{GDBN}
22732
22733 You can alter the way @value{GDBN} interacts with you by using the
22734 @code{set} command. For commands controlling how @value{GDBN} displays
22735 data, see @ref{Print Settings, ,Print Settings}. Other settings are
22736 described here.
22737
22738 @menu
22739 * Prompt:: Prompt
22740 * Editing:: Command editing
22741 * Command History:: Command history
22742 * Screen Size:: Screen size
22743 * Numbers:: Numbers
22744 * ABI:: Configuring the current ABI
22745 * Auto-loading:: Automatically loading associated files
22746 * Messages/Warnings:: Optional warnings and messages
22747 * Debugging Output:: Optional messages about internal happenings
22748 * Other Misc Settings:: Other Miscellaneous Settings
22749 @end menu
22750
22751 @node Prompt
22752 @section Prompt
22753
22754 @cindex prompt
22755
22756 @value{GDBN} indicates its readiness to read a command by printing a string
22757 called the @dfn{prompt}. This string is normally @samp{(@value{GDBP})}. You
22758 can change the prompt string with the @code{set prompt} command. For
22759 instance, when debugging @value{GDBN} with @value{GDBN}, it is useful to change
22760 the prompt in one of the @value{GDBN} sessions so that you can always tell
22761 which one you are talking to.
22762
22763 @emph{Note:} @code{set prompt} does not add a space for you after the
22764 prompt you set. This allows you to set a prompt which ends in a space
22765 or a prompt that does not.
22766
22767 @table @code
22768 @kindex set prompt
22769 @item set prompt @var{newprompt}
22770 Directs @value{GDBN} to use @var{newprompt} as its prompt string henceforth.
22771
22772 @kindex show prompt
22773 @item show prompt
22774 Prints a line of the form: @samp{Gdb's prompt is: @var{your-prompt}}
22775 @end table
22776
22777 Versions of @value{GDBN} that ship with Python scripting enabled have
22778 prompt extensions. The commands for interacting with these extensions
22779 are:
22780
22781 @table @code
22782 @kindex set extended-prompt
22783 @item set extended-prompt @var{prompt}
22784 Set an extended prompt that allows for substitutions.
22785 @xref{gdb.prompt}, for a list of escape sequences that can be used for
22786 substitution. Any escape sequences specified as part of the prompt
22787 string are replaced with the corresponding strings each time the prompt
22788 is displayed.
22789
22790 For example:
22791
22792 @smallexample
22793 set extended-prompt Current working directory: \w (gdb)
22794 @end smallexample
22795
22796 Note that when an extended-prompt is set, it takes control of the
22797 @var{prompt_hook} hook. @xref{prompt_hook}, for further information.
22798
22799 @kindex show extended-prompt
22800 @item show extended-prompt
22801 Prints the extended prompt. Any escape sequences specified as part of
22802 the prompt string with @code{set extended-prompt}, are replaced with the
22803 corresponding strings each time the prompt is displayed.
22804 @end table
22805
22806 @node Editing
22807 @section Command Editing
22808 @cindex readline
22809 @cindex command line editing
22810
22811 @value{GDBN} reads its input commands via the @dfn{Readline} interface. This
22812 @sc{gnu} library provides consistent behavior for programs which provide a
22813 command line interface to the user. Advantages are @sc{gnu} Emacs-style
22814 or @dfn{vi}-style inline editing of commands, @code{csh}-like history
22815 substitution, and a storage and recall of command history across
22816 debugging sessions.
22817
22818 You may control the behavior of command line editing in @value{GDBN} with the
22819 command @code{set}.
22820
22821 @table @code
22822 @kindex set editing
22823 @cindex editing
22824 @item set editing
22825 @itemx set editing on
22826 Enable command line editing (enabled by default).
22827
22828 @item set editing off
22829 Disable command line editing.
22830
22831 @kindex show editing
22832 @item show editing
22833 Show whether command line editing is enabled.
22834 @end table
22835
22836 @ifset SYSTEM_READLINE
22837 @xref{Command Line Editing, , , rluserman, GNU Readline Library},
22838 @end ifset
22839 @ifclear SYSTEM_READLINE
22840 @xref{Command Line Editing},
22841 @end ifclear
22842 for more details about the Readline
22843 interface. Users unfamiliar with @sc{gnu} Emacs or @code{vi} are
22844 encouraged to read that chapter.
22845
22846 @node Command History
22847 @section Command History
22848 @cindex command history
22849
22850 @value{GDBN} can keep track of the commands you type during your
22851 debugging sessions, so that you can be certain of precisely what
22852 happened. Use these commands to manage the @value{GDBN} command
22853 history facility.
22854
22855 @value{GDBN} uses the @sc{gnu} History library, a part of the Readline
22856 package, to provide the history facility.
22857 @ifset SYSTEM_READLINE
22858 @xref{Using History Interactively, , , history, GNU History Library},
22859 @end ifset
22860 @ifclear SYSTEM_READLINE
22861 @xref{Using History Interactively},
22862 @end ifclear
22863 for the detailed description of the History library.
22864
22865 To issue a command to @value{GDBN} without affecting certain aspects of
22866 the state which is seen by users, prefix it with @samp{server }
22867 (@pxref{Server Prefix}). This
22868 means that this command will not affect the command history, nor will it
22869 affect @value{GDBN}'s notion of which command to repeat if @key{RET} is
22870 pressed on a line by itself.
22871
22872 @cindex @code{server}, command prefix
22873 The server prefix does not affect the recording of values into the value
22874 history; to print a value without recording it into the value history,
22875 use the @code{output} command instead of the @code{print} command.
22876
22877 Here is the description of @value{GDBN} commands related to command
22878 history.
22879
22880 @table @code
22881 @cindex history substitution
22882 @cindex history file
22883 @kindex set history filename
22884 @cindex @env{GDBHISTFILE}, environment variable
22885 @item set history filename @var{fname}
22886 Set the name of the @value{GDBN} command history file to @var{fname}.
22887 This is the file where @value{GDBN} reads an initial command history
22888 list, and where it writes the command history from this session when it
22889 exits. You can access this list through history expansion or through
22890 the history command editing characters listed below. This file defaults
22891 to the value of the environment variable @code{GDBHISTFILE}, or to
22892 @file{./.gdb_history} (@file{./_gdb_history} on MS-DOS) if this variable
22893 is not set.
22894
22895 @cindex save command history
22896 @kindex set history save
22897 @item set history save
22898 @itemx set history save on
22899 Record command history in a file, whose name may be specified with the
22900 @code{set history filename} command. By default, this option is disabled.
22901
22902 @item set history save off
22903 Stop recording command history in a file.
22904
22905 @cindex history size
22906 @kindex set history size
22907 @cindex @env{GDBHISTSIZE}, environment variable
22908 @item set history size @var{size}
22909 @itemx set history size unlimited
22910 Set the number of commands which @value{GDBN} keeps in its history list.
22911 This defaults to the value of the environment variable @env{GDBHISTSIZE}, or
22912 to 256 if this variable is not set. Non-numeric values of @env{GDBHISTSIZE}
22913 are ignored. If @var{size} is @code{unlimited} or if @env{GDBHISTSIZE} is
22914 either a negative number or the empty string, then the number of commands
22915 @value{GDBN} keeps in the history list is unlimited.
22916
22917 @cindex remove duplicate history
22918 @kindex set history remove-duplicates
22919 @item set history remove-duplicates @var{count}
22920 @itemx set history remove-duplicates unlimited
22921 Control the removal of duplicate history entries in the command history list.
22922 If @var{count} is non-zero, @value{GDBN} will look back at the last @var{count}
22923 history entries and remove the first entry that is a duplicate of the current
22924 entry being added to the command history list. If @var{count} is
22925 @code{unlimited} then this lookbehind is unbounded. If @var{count} is 0, then
22926 removal of duplicate history entries is disabled.
22927
22928 Only history entries added during the current session are considered for
22929 removal. This option is set to 0 by default.
22930
22931 @end table
22932
22933 History expansion assigns special meaning to the character @kbd{!}.
22934 @ifset SYSTEM_READLINE
22935 @xref{Event Designators, , , history, GNU History Library},
22936 @end ifset
22937 @ifclear SYSTEM_READLINE
22938 @xref{Event Designators},
22939 @end ifclear
22940 for more details.
22941
22942 @cindex history expansion, turn on/off
22943 Since @kbd{!} is also the logical not operator in C, history expansion
22944 is off by default. If you decide to enable history expansion with the
22945 @code{set history expansion on} command, you may sometimes need to
22946 follow @kbd{!} (when it is used as logical not, in an expression) with
22947 a space or a tab to prevent it from being expanded. The readline
22948 history facilities do not attempt substitution on the strings
22949 @kbd{!=} and @kbd{!(}, even when history expansion is enabled.
22950
22951 The commands to control history expansion are:
22952
22953 @table @code
22954 @item set history expansion on
22955 @itemx set history expansion
22956 @kindex set history expansion
22957 Enable history expansion. History expansion is off by default.
22958
22959 @item set history expansion off
22960 Disable history expansion.
22961
22962 @c @group
22963 @kindex show history
22964 @item show history
22965 @itemx show history filename
22966 @itemx show history save
22967 @itemx show history size
22968 @itemx show history expansion
22969 These commands display the state of the @value{GDBN} history parameters.
22970 @code{show history} by itself displays all four states.
22971 @c @end group
22972 @end table
22973
22974 @table @code
22975 @kindex show commands
22976 @cindex show last commands
22977 @cindex display command history
22978 @item show commands
22979 Display the last ten commands in the command history.
22980
22981 @item show commands @var{n}
22982 Print ten commands centered on command number @var{n}.
22983
22984 @item show commands +
22985 Print ten commands just after the commands last printed.
22986 @end table
22987
22988 @node Screen Size
22989 @section Screen Size
22990 @cindex size of screen
22991 @cindex screen size
22992 @cindex pagination
22993 @cindex page size
22994 @cindex pauses in output
22995
22996 Certain commands to @value{GDBN} may produce large amounts of
22997 information output to the screen. To help you read all of it,
22998 @value{GDBN} pauses and asks you for input at the end of each page of
22999 output. Type @key{RET} when you want to continue the output, or @kbd{q}
23000 to discard the remaining output. Also, the screen width setting
23001 determines when to wrap lines of output. Depending on what is being
23002 printed, @value{GDBN} tries to break the line at a readable place,
23003 rather than simply letting it overflow onto the following line.
23004
23005 Normally @value{GDBN} knows the size of the screen from the terminal
23006 driver software. For example, on Unix @value{GDBN} uses the termcap data base
23007 together with the value of the @code{TERM} environment variable and the
23008 @code{stty rows} and @code{stty cols} settings. If this is not correct,
23009 you can override it with the @code{set height} and @code{set
23010 width} commands:
23011
23012 @table @code
23013 @kindex set height
23014 @kindex set width
23015 @kindex show width
23016 @kindex show height
23017 @item set height @var{lpp}
23018 @itemx set height unlimited
23019 @itemx show height
23020 @itemx set width @var{cpl}
23021 @itemx set width unlimited
23022 @itemx show width
23023 These @code{set} commands specify a screen height of @var{lpp} lines and
23024 a screen width of @var{cpl} characters. The associated @code{show}
23025 commands display the current settings.
23026
23027 If you specify a height of either @code{unlimited} or zero lines,
23028 @value{GDBN} does not pause during output no matter how long the
23029 output is. This is useful if output is to a file or to an editor
23030 buffer.
23031
23032 Likewise, you can specify @samp{set width unlimited} or @samp{set
23033 width 0} to prevent @value{GDBN} from wrapping its output.
23034
23035 @item set pagination on
23036 @itemx set pagination off
23037 @kindex set pagination
23038 Turn the output pagination on or off; the default is on. Turning
23039 pagination off is the alternative to @code{set height unlimited}. Note that
23040 running @value{GDBN} with the @option{--batch} option (@pxref{Mode
23041 Options, -batch}) also automatically disables pagination.
23042
23043 @item show pagination
23044 @kindex show pagination
23045 Show the current pagination mode.
23046 @end table
23047
23048 @node Numbers
23049 @section Numbers
23050 @cindex number representation
23051 @cindex entering numbers
23052
23053 You can always enter numbers in octal, decimal, or hexadecimal in
23054 @value{GDBN} by the usual conventions: octal numbers begin with
23055 @samp{0}, decimal numbers end with @samp{.}, and hexadecimal numbers
23056 begin with @samp{0x}. Numbers that neither begin with @samp{0} or
23057 @samp{0x}, nor end with a @samp{.} are, by default, entered in base
23058 10; likewise, the default display for numbers---when no particular
23059 format is specified---is base 10. You can change the default base for
23060 both input and output with the commands described below.
23061
23062 @table @code
23063 @kindex set input-radix
23064 @item set input-radix @var{base}
23065 Set the default base for numeric input. Supported choices
23066 for @var{base} are decimal 8, 10, or 16. The base must itself be
23067 specified either unambiguously or using the current input radix; for
23068 example, any of
23069
23070 @smallexample
23071 set input-radix 012
23072 set input-radix 10.
23073 set input-radix 0xa
23074 @end smallexample
23075
23076 @noindent
23077 sets the input base to decimal. On the other hand, @samp{set input-radix 10}
23078 leaves the input radix unchanged, no matter what it was, since
23079 @samp{10}, being without any leading or trailing signs of its base, is
23080 interpreted in the current radix. Thus, if the current radix is 16,
23081 @samp{10} is interpreted in hex, i.e.@: as 16 decimal, which doesn't
23082 change the radix.
23083
23084 @kindex set output-radix
23085 @item set output-radix @var{base}
23086 Set the default base for numeric display. Supported choices
23087 for @var{base} are decimal 8, 10, or 16. The base must itself be
23088 specified either unambiguously or using the current input radix.
23089
23090 @kindex show input-radix
23091 @item show input-radix
23092 Display the current default base for numeric input.
23093
23094 @kindex show output-radix
23095 @item show output-radix
23096 Display the current default base for numeric display.
23097
23098 @item set radix @r{[}@var{base}@r{]}
23099 @itemx show radix
23100 @kindex set radix
23101 @kindex show radix
23102 These commands set and show the default base for both input and output
23103 of numbers. @code{set radix} sets the radix of input and output to
23104 the same base; without an argument, it resets the radix back to its
23105 default value of 10.
23106
23107 @end table
23108
23109 @node ABI
23110 @section Configuring the Current ABI
23111
23112 @value{GDBN} can determine the @dfn{ABI} (Application Binary Interface) of your
23113 application automatically. However, sometimes you need to override its
23114 conclusions. Use these commands to manage @value{GDBN}'s view of the
23115 current ABI.
23116
23117 @cindex OS ABI
23118 @kindex set osabi
23119 @kindex show osabi
23120 @cindex Newlib OS ABI and its influence on the longjmp handling
23121
23122 One @value{GDBN} configuration can debug binaries for multiple operating
23123 system targets, either via remote debugging or native emulation.
23124 @value{GDBN} will autodetect the @dfn{OS ABI} (Operating System ABI) in use,
23125 but you can override its conclusion using the @code{set osabi} command.
23126 One example where this is useful is in debugging of binaries which use
23127 an alternate C library (e.g.@: @sc{uClibc} for @sc{gnu}/Linux) which does
23128 not have the same identifying marks that the standard C library for your
23129 platform provides.
23130
23131 When @value{GDBN} is debugging the AArch64 architecture, it provides a
23132 ``Newlib'' OS ABI. This is useful for handling @code{setjmp} and
23133 @code{longjmp} when debugging binaries that use the @sc{newlib} C library.
23134 The ``Newlib'' OS ABI can be selected by @code{set osabi Newlib}.
23135
23136 @table @code
23137 @item show osabi
23138 Show the OS ABI currently in use.
23139
23140 @item set osabi
23141 With no argument, show the list of registered available OS ABI's.
23142
23143 @item set osabi @var{abi}
23144 Set the current OS ABI to @var{abi}.
23145 @end table
23146
23147 @cindex float promotion
23148
23149 Generally, the way that an argument of type @code{float} is passed to a
23150 function depends on whether the function is prototyped. For a prototyped
23151 (i.e.@: ANSI/ISO style) function, @code{float} arguments are passed unchanged,
23152 according to the architecture's convention for @code{float}. For unprototyped
23153 (i.e.@: K&R style) functions, @code{float} arguments are first promoted to type
23154 @code{double} and then passed.
23155
23156 Unfortunately, some forms of debug information do not reliably indicate whether
23157 a function is prototyped. If @value{GDBN} calls a function that is not marked
23158 as prototyped, it consults @kbd{set coerce-float-to-double}.
23159
23160 @table @code
23161 @kindex set coerce-float-to-double
23162 @item set coerce-float-to-double
23163 @itemx set coerce-float-to-double on
23164 Arguments of type @code{float} will be promoted to @code{double} when passed
23165 to an unprototyped function. This is the default setting.
23166
23167 @item set coerce-float-to-double off
23168 Arguments of type @code{float} will be passed directly to unprototyped
23169 functions.
23170
23171 @kindex show coerce-float-to-double
23172 @item show coerce-float-to-double
23173 Show the current setting of promoting @code{float} to @code{double}.
23174 @end table
23175
23176 @kindex set cp-abi
23177 @kindex show cp-abi
23178 @value{GDBN} needs to know the ABI used for your program's C@t{++}
23179 objects. The correct C@t{++} ABI depends on which C@t{++} compiler was
23180 used to build your application. @value{GDBN} only fully supports
23181 programs with a single C@t{++} ABI; if your program contains code using
23182 multiple C@t{++} ABI's or if @value{GDBN} can not identify your
23183 program's ABI correctly, you can tell @value{GDBN} which ABI to use.
23184 Currently supported ABI's include ``gnu-v2'', for @code{g++} versions
23185 before 3.0, ``gnu-v3'', for @code{g++} versions 3.0 and later, and
23186 ``hpaCC'' for the HP ANSI C@t{++} compiler. Other C@t{++} compilers may
23187 use the ``gnu-v2'' or ``gnu-v3'' ABI's as well. The default setting is
23188 ``auto''.
23189
23190 @table @code
23191 @item show cp-abi
23192 Show the C@t{++} ABI currently in use.
23193
23194 @item set cp-abi
23195 With no argument, show the list of supported C@t{++} ABI's.
23196
23197 @item set cp-abi @var{abi}
23198 @itemx set cp-abi auto
23199 Set the current C@t{++} ABI to @var{abi}, or return to automatic detection.
23200 @end table
23201
23202 @node Auto-loading
23203 @section Automatically loading associated files
23204 @cindex auto-loading
23205
23206 @value{GDBN} sometimes reads files with commands and settings automatically,
23207 without being explicitly told so by the user. We call this feature
23208 @dfn{auto-loading}. While auto-loading is useful for automatically adapting
23209 @value{GDBN} to the needs of your project, it can sometimes produce unexpected
23210 results or introduce security risks (e.g., if the file comes from untrusted
23211 sources).
23212
23213 @menu
23214 * Init File in the Current Directory:: @samp{set/show/info auto-load local-gdbinit}
23215 * libthread_db.so.1 file:: @samp{set/show/info auto-load libthread-db}
23216
23217 * Auto-loading safe path:: @samp{set/show/info auto-load safe-path}
23218 * Auto-loading verbose mode:: @samp{set/show debug auto-load}
23219 @end menu
23220
23221 There are various kinds of files @value{GDBN} can automatically load.
23222 In addition to these files, @value{GDBN} supports auto-loading code written
23223 in various extension languages. @xref{Auto-loading extensions}.
23224
23225 Note that loading of these associated files (including the local @file{.gdbinit}
23226 file) requires accordingly configured @code{auto-load safe-path}
23227 (@pxref{Auto-loading safe path}).
23228
23229 For these reasons, @value{GDBN} includes commands and options to let you
23230 control when to auto-load files and which files should be auto-loaded.
23231
23232 @table @code
23233 @anchor{set auto-load off}
23234 @kindex set auto-load off
23235 @item set auto-load off
23236 Globally disable loading of all auto-loaded files.
23237 You may want to use this command with the @samp{-iex} option
23238 (@pxref{Option -init-eval-command}) such as:
23239 @smallexample
23240 $ @kbd{gdb -iex "set auto-load off" untrusted-executable corefile}
23241 @end smallexample
23242
23243 Be aware that system init file (@pxref{System-wide configuration})
23244 and init files from your home directory (@pxref{Home Directory Init File})
23245 still get read (as they come from generally trusted directories).
23246 To prevent @value{GDBN} from auto-loading even those init files, use the
23247 @option{-nx} option (@pxref{Mode Options}), in addition to
23248 @code{set auto-load no}.
23249
23250 @anchor{show auto-load}
23251 @kindex show auto-load
23252 @item show auto-load
23253 Show whether auto-loading of each specific @samp{auto-load} file(s) is enabled
23254 or disabled.
23255
23256 @smallexample
23257 (gdb) show auto-load
23258 gdb-scripts: Auto-loading of canned sequences of commands scripts is on.
23259 libthread-db: Auto-loading of inferior specific libthread_db is on.
23260 local-gdbinit: Auto-loading of .gdbinit script from current directory
23261 is on.
23262 python-scripts: Auto-loading of Python scripts is on.
23263 safe-path: List of directories from which it is safe to auto-load files
23264 is $debugdir:$datadir/auto-load.
23265 scripts-directory: List of directories from which to load auto-loaded scripts
23266 is $debugdir:$datadir/auto-load.
23267 @end smallexample
23268
23269 @anchor{info auto-load}
23270 @kindex info auto-load
23271 @item info auto-load
23272 Print whether each specific @samp{auto-load} file(s) have been auto-loaded or
23273 not.
23274
23275 @smallexample
23276 (gdb) info auto-load
23277 gdb-scripts:
23278 Loaded Script
23279 Yes /home/user/gdb/gdb-gdb.gdb
23280 libthread-db: No auto-loaded libthread-db.
23281 local-gdbinit: Local .gdbinit file "/home/user/gdb/.gdbinit" has been
23282 loaded.
23283 python-scripts:
23284 Loaded Script
23285 Yes /home/user/gdb/gdb-gdb.py
23286 @end smallexample
23287 @end table
23288
23289 These are @value{GDBN} control commands for the auto-loading:
23290
23291 @multitable @columnfractions .5 .5
23292 @item @xref{set auto-load off}.
23293 @tab Disable auto-loading globally.
23294 @item @xref{show auto-load}.
23295 @tab Show setting of all kinds of files.
23296 @item @xref{info auto-load}.
23297 @tab Show state of all kinds of files.
23298 @item @xref{set auto-load gdb-scripts}.
23299 @tab Control for @value{GDBN} command scripts.
23300 @item @xref{show auto-load gdb-scripts}.
23301 @tab Show setting of @value{GDBN} command scripts.
23302 @item @xref{info auto-load gdb-scripts}.
23303 @tab Show state of @value{GDBN} command scripts.
23304 @item @xref{set auto-load python-scripts}.
23305 @tab Control for @value{GDBN} Python scripts.
23306 @item @xref{show auto-load python-scripts}.
23307 @tab Show setting of @value{GDBN} Python scripts.
23308 @item @xref{info auto-load python-scripts}.
23309 @tab Show state of @value{GDBN} Python scripts.
23310 @item @xref{set auto-load guile-scripts}.
23311 @tab Control for @value{GDBN} Guile scripts.
23312 @item @xref{show auto-load guile-scripts}.
23313 @tab Show setting of @value{GDBN} Guile scripts.
23314 @item @xref{info auto-load guile-scripts}.
23315 @tab Show state of @value{GDBN} Guile scripts.
23316 @item @xref{set auto-load scripts-directory}.
23317 @tab Control for @value{GDBN} auto-loaded scripts location.
23318 @item @xref{show auto-load scripts-directory}.
23319 @tab Show @value{GDBN} auto-loaded scripts location.
23320 @item @xref{add-auto-load-scripts-directory}.
23321 @tab Add directory for auto-loaded scripts location list.
23322 @item @xref{set auto-load local-gdbinit}.
23323 @tab Control for init file in the current directory.
23324 @item @xref{show auto-load local-gdbinit}.
23325 @tab Show setting of init file in the current directory.
23326 @item @xref{info auto-load local-gdbinit}.
23327 @tab Show state of init file in the current directory.
23328 @item @xref{set auto-load libthread-db}.
23329 @tab Control for thread debugging library.
23330 @item @xref{show auto-load libthread-db}.
23331 @tab Show setting of thread debugging library.
23332 @item @xref{info auto-load libthread-db}.
23333 @tab Show state of thread debugging library.
23334 @item @xref{set auto-load safe-path}.
23335 @tab Control directories trusted for automatic loading.
23336 @item @xref{show auto-load safe-path}.
23337 @tab Show directories trusted for automatic loading.
23338 @item @xref{add-auto-load-safe-path}.
23339 @tab Add directory trusted for automatic loading.
23340 @end multitable
23341
23342 @node Init File in the Current Directory
23343 @subsection Automatically loading init file in the current directory
23344 @cindex auto-loading init file in the current directory
23345
23346 By default, @value{GDBN} reads and executes the canned sequences of commands
23347 from init file (if any) in the current working directory,
23348 see @ref{Init File in the Current Directory during Startup}.
23349
23350 Note that loading of this local @file{.gdbinit} file also requires accordingly
23351 configured @code{auto-load safe-path} (@pxref{Auto-loading safe path}).
23352
23353 @table @code
23354 @anchor{set auto-load local-gdbinit}
23355 @kindex set auto-load local-gdbinit
23356 @item set auto-load local-gdbinit [on|off]
23357 Enable or disable the auto-loading of canned sequences of commands
23358 (@pxref{Sequences}) found in init file in the current directory.
23359
23360 @anchor{show auto-load local-gdbinit}
23361 @kindex show auto-load local-gdbinit
23362 @item show auto-load local-gdbinit
23363 Show whether auto-loading of canned sequences of commands from init file in the
23364 current directory is enabled or disabled.
23365
23366 @anchor{info auto-load local-gdbinit}
23367 @kindex info auto-load local-gdbinit
23368 @item info auto-load local-gdbinit
23369 Print whether canned sequences of commands from init file in the
23370 current directory have been auto-loaded.
23371 @end table
23372
23373 @node libthread_db.so.1 file
23374 @subsection Automatically loading thread debugging library
23375 @cindex auto-loading libthread_db.so.1
23376
23377 This feature is currently present only on @sc{gnu}/Linux native hosts.
23378
23379 @value{GDBN} reads in some cases thread debugging library from places specific
23380 to the inferior (@pxref{set libthread-db-search-path}).
23381
23382 The special @samp{libthread-db-search-path} entry @samp{$sdir} is processed
23383 without checking this @samp{set auto-load libthread-db} switch as system
23384 libraries have to be trusted in general. In all other cases of
23385 @samp{libthread-db-search-path} entries @value{GDBN} checks first if @samp{set
23386 auto-load libthread-db} is enabled before trying to open such thread debugging
23387 library.
23388
23389 Note that loading of this debugging library also requires accordingly configured
23390 @code{auto-load safe-path} (@pxref{Auto-loading safe path}).
23391
23392 @table @code
23393 @anchor{set auto-load libthread-db}
23394 @kindex set auto-load libthread-db
23395 @item set auto-load libthread-db [on|off]
23396 Enable or disable the auto-loading of inferior specific thread debugging library.
23397
23398 @anchor{show auto-load libthread-db}
23399 @kindex show auto-load libthread-db
23400 @item show auto-load libthread-db
23401 Show whether auto-loading of inferior specific thread debugging library is
23402 enabled or disabled.
23403
23404 @anchor{info auto-load libthread-db}
23405 @kindex info auto-load libthread-db
23406 @item info auto-load libthread-db
23407 Print the list of all loaded inferior specific thread debugging libraries and
23408 for each such library print list of inferior @var{pid}s using it.
23409 @end table
23410
23411 @node Auto-loading safe path
23412 @subsection Security restriction for auto-loading
23413 @cindex auto-loading safe-path
23414
23415 As the files of inferior can come from untrusted source (such as submitted by
23416 an application user) @value{GDBN} does not always load any files automatically.
23417 @value{GDBN} provides the @samp{set auto-load safe-path} setting to list
23418 directories trusted for loading files not explicitly requested by user.
23419 Each directory can also be a shell wildcard pattern.
23420
23421 If the path is not set properly you will see a warning and the file will not
23422 get loaded:
23423
23424 @smallexample
23425 $ ./gdb -q ./gdb
23426 Reading symbols from /home/user/gdb/gdb...done.
23427 warning: File "/home/user/gdb/gdb-gdb.gdb" auto-loading has been
23428 declined by your `auto-load safe-path' set
23429 to "$debugdir:$datadir/auto-load".
23430 warning: File "/home/user/gdb/gdb-gdb.py" auto-loading has been
23431 declined by your `auto-load safe-path' set
23432 to "$debugdir:$datadir/auto-load".
23433 @end smallexample
23434
23435 @noindent
23436 To instruct @value{GDBN} to go ahead and use the init files anyway,
23437 invoke @value{GDBN} like this:
23438
23439 @smallexample
23440 $ gdb -q -iex "set auto-load safe-path /home/user/gdb" ./gdb
23441 @end smallexample
23442
23443 The list of trusted directories is controlled by the following commands:
23444
23445 @table @code
23446 @anchor{set auto-load safe-path}
23447 @kindex set auto-load safe-path
23448 @item set auto-load safe-path @r{[}@var{directories}@r{]}
23449 Set the list of directories (and their subdirectories) trusted for automatic
23450 loading and execution of scripts. You can also enter a specific trusted file.
23451 Each directory can also be a shell wildcard pattern; wildcards do not match
23452 directory separator - see @code{FNM_PATHNAME} for system function @code{fnmatch}
23453 (@pxref{Wildcard Matching, fnmatch, , libc, GNU C Library Reference Manual}).
23454 If you omit @var{directories}, @samp{auto-load safe-path} will be reset to
23455 its default value as specified during @value{GDBN} compilation.
23456
23457 The list of directories uses path separator (@samp{:} on GNU and Unix
23458 systems, @samp{;} on MS-Windows and MS-DOS) to separate directories, similarly
23459 to the @env{PATH} environment variable.
23460
23461 @anchor{show auto-load safe-path}
23462 @kindex show auto-load safe-path
23463 @item show auto-load safe-path
23464 Show the list of directories trusted for automatic loading and execution of
23465 scripts.
23466
23467 @anchor{add-auto-load-safe-path}
23468 @kindex add-auto-load-safe-path
23469 @item add-auto-load-safe-path
23470 Add an entry (or list of entries) to the list of directories trusted for
23471 automatic loading and execution of scripts. Multiple entries may be delimited
23472 by the host platform path separator in use.
23473 @end table
23474
23475 This variable defaults to what @code{--with-auto-load-dir} has been configured
23476 to (@pxref{with-auto-load-dir}). @file{$debugdir} and @file{$datadir}
23477 substitution applies the same as for @ref{set auto-load scripts-directory}.
23478 The default @code{set auto-load safe-path} value can be also overriden by
23479 @value{GDBN} configuration option @option{--with-auto-load-safe-path}.
23480
23481 Setting this variable to @file{/} disables this security protection,
23482 corresponding @value{GDBN} configuration option is
23483 @option{--without-auto-load-safe-path}.
23484 This variable is supposed to be set to the system directories writable by the
23485 system superuser only. Users can add their source directories in init files in
23486 their home directories (@pxref{Home Directory Init File}). See also deprecated
23487 init file in the current directory
23488 (@pxref{Init File in the Current Directory during Startup}).
23489
23490 To force @value{GDBN} to load the files it declined to load in the previous
23491 example, you could use one of the following ways:
23492
23493 @table @asis
23494 @item @file{~/.gdbinit}: @samp{add-auto-load-safe-path ~/src/gdb}
23495 Specify this trusted directory (or a file) as additional component of the list.
23496 You have to specify also any existing directories displayed by
23497 by @samp{show auto-load safe-path} (such as @samp{/usr:/bin} in this example).
23498
23499 @item @kbd{gdb -iex "set auto-load safe-path /usr:/bin:~/src/gdb" @dots{}}
23500 Specify this directory as in the previous case but just for a single
23501 @value{GDBN} session.
23502
23503 @item @kbd{gdb -iex "set auto-load safe-path /" @dots{}}
23504 Disable auto-loading safety for a single @value{GDBN} session.
23505 This assumes all the files you debug during this @value{GDBN} session will come
23506 from trusted sources.
23507
23508 @item @kbd{./configure --without-auto-load-safe-path}
23509 During compilation of @value{GDBN} you may disable any auto-loading safety.
23510 This assumes all the files you will ever debug with this @value{GDBN} come from
23511 trusted sources.
23512 @end table
23513
23514 On the other hand you can also explicitly forbid automatic files loading which
23515 also suppresses any such warning messages:
23516
23517 @table @asis
23518 @item @kbd{gdb -iex "set auto-load no" @dots{}}
23519 You can use @value{GDBN} command-line option for a single @value{GDBN} session.
23520
23521 @item @file{~/.gdbinit}: @samp{set auto-load no}
23522 Disable auto-loading globally for the user
23523 (@pxref{Home Directory Init File}). While it is improbable, you could also
23524 use system init file instead (@pxref{System-wide configuration}).
23525 @end table
23526
23527 This setting applies to the file names as entered by user. If no entry matches
23528 @value{GDBN} tries as a last resort to also resolve all the file names into
23529 their canonical form (typically resolving symbolic links) and compare the
23530 entries again. @value{GDBN} already canonicalizes most of the filenames on its
23531 own before starting the comparison so a canonical form of directories is
23532 recommended to be entered.
23533
23534 @node Auto-loading verbose mode
23535 @subsection Displaying files tried for auto-load
23536 @cindex auto-loading verbose mode
23537
23538 For better visibility of all the file locations where you can place scripts to
23539 be auto-loaded with inferior --- or to protect yourself against accidental
23540 execution of untrusted scripts --- @value{GDBN} provides a feature for printing
23541 all the files attempted to be loaded. Both existing and non-existing files may
23542 be printed.
23543
23544 For example the list of directories from which it is safe to auto-load files
23545 (@pxref{Auto-loading safe path}) applies also to canonicalized filenames which
23546 may not be too obvious while setting it up.
23547
23548 @smallexample
23549 (gdb) set debug auto-load on
23550 (gdb) file ~/src/t/true
23551 auto-load: Loading canned sequences of commands script "/tmp/true-gdb.gdb"
23552 for objfile "/tmp/true".
23553 auto-load: Updating directories of "/usr:/opt".
23554 auto-load: Using directory "/usr".
23555 auto-load: Using directory "/opt".
23556 warning: File "/tmp/true-gdb.gdb" auto-loading has been declined
23557 by your `auto-load safe-path' set to "/usr:/opt".
23558 @end smallexample
23559
23560 @table @code
23561 @anchor{set debug auto-load}
23562 @kindex set debug auto-load
23563 @item set debug auto-load [on|off]
23564 Set whether to print the filenames attempted to be auto-loaded.
23565
23566 @anchor{show debug auto-load}
23567 @kindex show debug auto-load
23568 @item show debug auto-load
23569 Show whether printing of the filenames attempted to be auto-loaded is turned
23570 on or off.
23571 @end table
23572
23573 @node Messages/Warnings
23574 @section Optional Warnings and Messages
23575
23576 @cindex verbose operation
23577 @cindex optional warnings
23578 By default, @value{GDBN} is silent about its inner workings. If you are
23579 running on a slow machine, you may want to use the @code{set verbose}
23580 command. This makes @value{GDBN} tell you when it does a lengthy
23581 internal operation, so you will not think it has crashed.
23582
23583 Currently, the messages controlled by @code{set verbose} are those
23584 which announce that the symbol table for a source file is being read;
23585 see @code{symbol-file} in @ref{Files, ,Commands to Specify Files}.
23586
23587 @table @code
23588 @kindex set verbose
23589 @item set verbose on
23590 Enables @value{GDBN} output of certain informational messages.
23591
23592 @item set verbose off
23593 Disables @value{GDBN} output of certain informational messages.
23594
23595 @kindex show verbose
23596 @item show verbose
23597 Displays whether @code{set verbose} is on or off.
23598 @end table
23599
23600 By default, if @value{GDBN} encounters bugs in the symbol table of an
23601 object file, it is silent; but if you are debugging a compiler, you may
23602 find this information useful (@pxref{Symbol Errors, ,Errors Reading
23603 Symbol Files}).
23604
23605 @table @code
23606
23607 @kindex set complaints
23608 @item set complaints @var{limit}
23609 Permits @value{GDBN} to output @var{limit} complaints about each type of
23610 unusual symbols before becoming silent about the problem. Set
23611 @var{limit} to zero to suppress all complaints; set it to a large number
23612 to prevent complaints from being suppressed.
23613
23614 @kindex show complaints
23615 @item show complaints
23616 Displays how many symbol complaints @value{GDBN} is permitted to produce.
23617
23618 @end table
23619
23620 @anchor{confirmation requests}
23621 By default, @value{GDBN} is cautious, and asks what sometimes seems to be a
23622 lot of stupid questions to confirm certain commands. For example, if
23623 you try to run a program which is already running:
23624
23625 @smallexample
23626 (@value{GDBP}) run
23627 The program being debugged has been started already.
23628 Start it from the beginning? (y or n)
23629 @end smallexample
23630
23631 If you are willing to unflinchingly face the consequences of your own
23632 commands, you can disable this ``feature'':
23633
23634 @table @code
23635
23636 @kindex set confirm
23637 @cindex flinching
23638 @cindex confirmation
23639 @cindex stupid questions
23640 @item set confirm off
23641 Disables confirmation requests. Note that running @value{GDBN} with
23642 the @option{--batch} option (@pxref{Mode Options, -batch}) also
23643 automatically disables confirmation requests.
23644
23645 @item set confirm on
23646 Enables confirmation requests (the default).
23647
23648 @kindex show confirm
23649 @item show confirm
23650 Displays state of confirmation requests.
23651
23652 @end table
23653
23654 @cindex command tracing
23655 If you need to debug user-defined commands or sourced files you may find it
23656 useful to enable @dfn{command tracing}. In this mode each command will be
23657 printed as it is executed, prefixed with one or more @samp{+} symbols, the
23658 quantity denoting the call depth of each command.
23659
23660 @table @code
23661 @kindex set trace-commands
23662 @cindex command scripts, debugging
23663 @item set trace-commands on
23664 Enable command tracing.
23665 @item set trace-commands off
23666 Disable command tracing.
23667 @item show trace-commands
23668 Display the current state of command tracing.
23669 @end table
23670
23671 @node Debugging Output
23672 @section Optional Messages about Internal Happenings
23673 @cindex optional debugging messages
23674
23675 @value{GDBN} has commands that enable optional debugging messages from
23676 various @value{GDBN} subsystems; normally these commands are of
23677 interest to @value{GDBN} maintainers, or when reporting a bug. This
23678 section documents those commands.
23679
23680 @table @code
23681 @kindex set exec-done-display
23682 @item set exec-done-display
23683 Turns on or off the notification of asynchronous commands'
23684 completion. When on, @value{GDBN} will print a message when an
23685 asynchronous command finishes its execution. The default is off.
23686 @kindex show exec-done-display
23687 @item show exec-done-display
23688 Displays the current setting of asynchronous command completion
23689 notification.
23690 @kindex set debug
23691 @cindex ARM AArch64
23692 @item set debug aarch64
23693 Turns on or off display of debugging messages related to ARM AArch64.
23694 The default is off.
23695 @kindex show debug
23696 @item show debug aarch64
23697 Displays the current state of displaying debugging messages related to
23698 ARM AArch64.
23699 @cindex gdbarch debugging info
23700 @cindex architecture debugging info
23701 @item set debug arch
23702 Turns on or off display of gdbarch debugging info. The default is off
23703 @item show debug arch
23704 Displays the current state of displaying gdbarch debugging info.
23705 @item set debug aix-solib
23706 @cindex AIX shared library debugging
23707 Control display of debugging messages from the AIX shared library
23708 support module. The default is off.
23709 @item show debug aix-thread
23710 Show the current state of displaying AIX shared library debugging messages.
23711 @item set debug aix-thread
23712 @cindex AIX threads
23713 Display debugging messages about inner workings of the AIX thread
23714 module.
23715 @item show debug aix-thread
23716 Show the current state of AIX thread debugging info display.
23717 @item set debug check-physname
23718 @cindex physname
23719 Check the results of the ``physname'' computation. When reading DWARF
23720 debugging information for C@t{++}, @value{GDBN} attempts to compute
23721 each entity's name. @value{GDBN} can do this computation in two
23722 different ways, depending on exactly what information is present.
23723 When enabled, this setting causes @value{GDBN} to compute the names
23724 both ways and display any discrepancies.
23725 @item show debug check-physname
23726 Show the current state of ``physname'' checking.
23727 @item set debug coff-pe-read
23728 @cindex COFF/PE exported symbols
23729 Control display of debugging messages related to reading of COFF/PE
23730 exported symbols. The default is off.
23731 @item show debug coff-pe-read
23732 Displays the current state of displaying debugging messages related to
23733 reading of COFF/PE exported symbols.
23734 @item set debug dwarf-die
23735 @cindex DWARF DIEs
23736 Dump DWARF DIEs after they are read in.
23737 The value is the number of nesting levels to print.
23738 A value of zero turns off the display.
23739 @item show debug dwarf-die
23740 Show the current state of DWARF DIE debugging.
23741 @item set debug dwarf-line
23742 @cindex DWARF Line Tables
23743 Turns on or off display of debugging messages related to reading
23744 DWARF line tables. The default is 0 (off).
23745 A value of 1 provides basic information.
23746 A value greater than 1 provides more verbose information.
23747 @item show debug dwarf-line
23748 Show the current state of DWARF line table debugging.
23749 @item set debug dwarf-read
23750 @cindex DWARF Reading
23751 Turns on or off display of debugging messages related to reading
23752 DWARF debug info. The default is 0 (off).
23753 A value of 1 provides basic information.
23754 A value greater than 1 provides more verbose information.
23755 @item show debug dwarf-read
23756 Show the current state of DWARF reader debugging.
23757 @item set debug displaced
23758 @cindex displaced stepping debugging info
23759 Turns on or off display of @value{GDBN} debugging info for the
23760 displaced stepping support. The default is off.
23761 @item show debug displaced
23762 Displays the current state of displaying @value{GDBN} debugging info
23763 related to displaced stepping.
23764 @item set debug event
23765 @cindex event debugging info
23766 Turns on or off display of @value{GDBN} event debugging info. The
23767 default is off.
23768 @item show debug event
23769 Displays the current state of displaying @value{GDBN} event debugging
23770 info.
23771 @item set debug expression
23772 @cindex expression debugging info
23773 Turns on or off display of debugging info about @value{GDBN}
23774 expression parsing. The default is off.
23775 @item show debug expression
23776 Displays the current state of displaying debugging info about
23777 @value{GDBN} expression parsing.
23778 @item set debug fbsd-lwp
23779 @cindex FreeBSD LWP debug messages
23780 Turns on or off debugging messages from the FreeBSD LWP debug support.
23781 @item show debug fbsd-lwp
23782 Show the current state of FreeBSD LWP debugging messages.
23783 @item set debug frame
23784 @cindex frame debugging info
23785 Turns on or off display of @value{GDBN} frame debugging info. The
23786 default is off.
23787 @item show debug frame
23788 Displays the current state of displaying @value{GDBN} frame debugging
23789 info.
23790 @item set debug gnu-nat
23791 @cindex @sc{gnu}/Hurd debug messages
23792 Turn on or off debugging messages from the @sc{gnu}/Hurd debug support.
23793 @item show debug gnu-nat
23794 Show the current state of @sc{gnu}/Hurd debugging messages.
23795 @item set debug infrun
23796 @cindex inferior debugging info
23797 Turns on or off display of @value{GDBN} debugging info for running the inferior.
23798 The default is off. @file{infrun.c} contains GDB's runtime state machine used
23799 for implementing operations such as single-stepping the inferior.
23800 @item show debug infrun
23801 Displays the current state of @value{GDBN} inferior debugging.
23802 @item set debug jit
23803 @cindex just-in-time compilation, debugging messages
23804 Turn on or off debugging messages from JIT debug support.
23805 @item show debug jit
23806 Displays the current state of @value{GDBN} JIT debugging.
23807 @item set debug lin-lwp
23808 @cindex @sc{gnu}/Linux LWP debug messages
23809 @cindex Linux lightweight processes
23810 Turn on or off debugging messages from the Linux LWP debug support.
23811 @item show debug lin-lwp
23812 Show the current state of Linux LWP debugging messages.
23813 @item set debug linux-namespaces
23814 @cindex @sc{gnu}/Linux namespaces debug messages
23815 Turn on or off debugging messages from the Linux namespaces debug support.
23816 @item show debug linux-namespaces
23817 Show the current state of Linux namespaces debugging messages.
23818 @item set debug mach-o
23819 @cindex Mach-O symbols processing
23820 Control display of debugging messages related to Mach-O symbols
23821 processing. The default is off.
23822 @item show debug mach-o
23823 Displays the current state of displaying debugging messages related to
23824 reading of COFF/PE exported symbols.
23825 @item set debug notification
23826 @cindex remote async notification debugging info
23827 Turn on or off debugging messages about remote async notification.
23828 The default is off.
23829 @item show debug notification
23830 Displays the current state of remote async notification debugging messages.
23831 @item set debug observer
23832 @cindex observer debugging info
23833 Turns on or off display of @value{GDBN} observer debugging. This
23834 includes info such as the notification of observable events.
23835 @item show debug observer
23836 Displays the current state of observer debugging.
23837 @item set debug overload
23838 @cindex C@t{++} overload debugging info
23839 Turns on or off display of @value{GDBN} C@t{++} overload debugging
23840 info. This includes info such as ranking of functions, etc. The default
23841 is off.
23842 @item show debug overload
23843 Displays the current state of displaying @value{GDBN} C@t{++} overload
23844 debugging info.
23845 @cindex expression parser, debugging info
23846 @cindex debug expression parser
23847 @item set debug parser
23848 Turns on or off the display of expression parser debugging output.
23849 Internally, this sets the @code{yydebug} variable in the expression
23850 parser. @xref{Tracing, , Tracing Your Parser, bison, Bison}, for
23851 details. The default is off.
23852 @item show debug parser
23853 Show the current state of expression parser debugging.
23854 @cindex packets, reporting on stdout
23855 @cindex serial connections, debugging
23856 @cindex debug remote protocol
23857 @cindex remote protocol debugging
23858 @cindex display remote packets
23859 @item set debug remote
23860 Turns on or off display of reports on all packets sent back and forth across
23861 the serial line to the remote machine. The info is printed on the
23862 @value{GDBN} standard output stream. The default is off.
23863 @item show debug remote
23864 Displays the state of display of remote packets.
23865 @item set debug serial
23866 Turns on or off display of @value{GDBN} serial debugging info. The
23867 default is off.
23868 @item show debug serial
23869 Displays the current state of displaying @value{GDBN} serial debugging
23870 info.
23871 @item set debug solib-frv
23872 @cindex FR-V shared-library debugging
23873 Turn on or off debugging messages for FR-V shared-library code.
23874 @item show debug solib-frv
23875 Display the current state of FR-V shared-library code debugging
23876 messages.
23877 @item set debug symbol-lookup
23878 @cindex symbol lookup
23879 Turns on or off display of debugging messages related to symbol lookup.
23880 The default is 0 (off).
23881 A value of 1 provides basic information.
23882 A value greater than 1 provides more verbose information.
23883 @item show debug symbol-lookup
23884 Show the current state of symbol lookup debugging messages.
23885 @item set debug symfile
23886 @cindex symbol file functions
23887 Turns on or off display of debugging messages related to symbol file functions.
23888 The default is off. @xref{Files}.
23889 @item show debug symfile
23890 Show the current state of symbol file debugging messages.
23891 @item set debug symtab-create
23892 @cindex symbol table creation
23893 Turns on or off display of debugging messages related to symbol table creation.
23894 The default is 0 (off).
23895 A value of 1 provides basic information.
23896 A value greater than 1 provides more verbose information.
23897 @item show debug symtab-create
23898 Show the current state of symbol table creation debugging.
23899 @item set debug target
23900 @cindex target debugging info
23901 Turns on or off display of @value{GDBN} target debugging info. This info
23902 includes what is going on at the target level of GDB, as it happens. The
23903 default is 0. Set it to 1 to track events, and to 2 to also track the
23904 value of large memory transfers.
23905 @item show debug target
23906 Displays the current state of displaying @value{GDBN} target debugging
23907 info.
23908 @item set debug timestamp
23909 @cindex timestampping debugging info
23910 Turns on or off display of timestamps with @value{GDBN} debugging info.
23911 When enabled, seconds and microseconds are displayed before each debugging
23912 message.
23913 @item show debug timestamp
23914 Displays the current state of displaying timestamps with @value{GDBN}
23915 debugging info.
23916 @item set debug varobj
23917 @cindex variable object debugging info
23918 Turns on or off display of @value{GDBN} variable object debugging
23919 info. The default is off.
23920 @item show debug varobj
23921 Displays the current state of displaying @value{GDBN} variable object
23922 debugging info.
23923 @item set debug xml
23924 @cindex XML parser debugging
23925 Turn on or off debugging messages for built-in XML parsers.
23926 @item show debug xml
23927 Displays the current state of XML debugging messages.
23928 @end table
23929
23930 @node Other Misc Settings
23931 @section Other Miscellaneous Settings
23932 @cindex miscellaneous settings
23933
23934 @table @code
23935 @kindex set interactive-mode
23936 @item set interactive-mode
23937 If @code{on}, forces @value{GDBN} to assume that GDB was started
23938 in a terminal. In practice, this means that @value{GDBN} should wait
23939 for the user to answer queries generated by commands entered at
23940 the command prompt. If @code{off}, forces @value{GDBN} to operate
23941 in the opposite mode, and it uses the default answers to all queries.
23942 If @code{auto} (the default), @value{GDBN} tries to determine whether
23943 its standard input is a terminal, and works in interactive-mode if it
23944 is, non-interactively otherwise.
23945
23946 In the vast majority of cases, the debugger should be able to guess
23947 correctly which mode should be used. But this setting can be useful
23948 in certain specific cases, such as running a MinGW @value{GDBN}
23949 inside a cygwin window.
23950
23951 @kindex show interactive-mode
23952 @item show interactive-mode
23953 Displays whether the debugger is operating in interactive mode or not.
23954 @end table
23955
23956 @node Extending GDB
23957 @chapter Extending @value{GDBN}
23958 @cindex extending GDB
23959
23960 @value{GDBN} provides several mechanisms for extension.
23961 @value{GDBN} also provides the ability to automatically load
23962 extensions when it reads a file for debugging. This allows the
23963 user to automatically customize @value{GDBN} for the program
23964 being debugged.
23965
23966 @menu
23967 * Sequences:: Canned Sequences of @value{GDBN} Commands
23968 * Python:: Extending @value{GDBN} using Python
23969 * Guile:: Extending @value{GDBN} using Guile
23970 * Auto-loading extensions:: Automatically loading extensions
23971 * Multiple Extension Languages:: Working with multiple extension languages
23972 * Aliases:: Creating new spellings of existing commands
23973 @end menu
23974
23975 To facilitate the use of extension languages, @value{GDBN} is capable
23976 of evaluating the contents of a file. When doing so, @value{GDBN}
23977 can recognize which extension language is being used by looking at
23978 the filename extension. Files with an unrecognized filename extension
23979 are always treated as a @value{GDBN} Command Files.
23980 @xref{Command Files,, Command files}.
23981
23982 You can control how @value{GDBN} evaluates these files with the following
23983 setting:
23984
23985 @table @code
23986 @kindex set script-extension
23987 @kindex show script-extension
23988 @item set script-extension off
23989 All scripts are always evaluated as @value{GDBN} Command Files.
23990
23991 @item set script-extension soft
23992 The debugger determines the scripting language based on filename
23993 extension. If this scripting language is supported, @value{GDBN}
23994 evaluates the script using that language. Otherwise, it evaluates
23995 the file as a @value{GDBN} Command File.
23996
23997 @item set script-extension strict
23998 The debugger determines the scripting language based on filename
23999 extension, and evaluates the script using that language. If the
24000 language is not supported, then the evaluation fails.
24001
24002 @item show script-extension
24003 Display the current value of the @code{script-extension} option.
24004
24005 @end table
24006
24007 @node Sequences
24008 @section Canned Sequences of Commands
24009
24010 Aside from breakpoint commands (@pxref{Break Commands, ,Breakpoint
24011 Command Lists}), @value{GDBN} provides two ways to store sequences of
24012 commands for execution as a unit: user-defined commands and command
24013 files.
24014
24015 @menu
24016 * Define:: How to define your own commands
24017 * Hooks:: Hooks for user-defined commands
24018 * Command Files:: How to write scripts of commands to be stored in a file
24019 * Output:: Commands for controlled output
24020 * Auto-loading sequences:: Controlling auto-loaded command files
24021 @end menu
24022
24023 @node Define
24024 @subsection User-defined Commands
24025
24026 @cindex user-defined command
24027 @cindex arguments, to user-defined commands
24028 A @dfn{user-defined command} is a sequence of @value{GDBN} commands to
24029 which you assign a new name as a command. This is done with the
24030 @code{define} command. User commands may accept up to 10 arguments
24031 separated by whitespace. Arguments are accessed within the user command
24032 via @code{$arg0@dots{}$arg9}. A trivial example:
24033
24034 @smallexample
24035 define adder
24036 print $arg0 + $arg1 + $arg2
24037 end
24038 @end smallexample
24039
24040 @noindent
24041 To execute the command use:
24042
24043 @smallexample
24044 adder 1 2 3
24045 @end smallexample
24046
24047 @noindent
24048 This defines the command @code{adder}, which prints the sum of
24049 its three arguments. Note the arguments are text substitutions, so they may
24050 reference variables, use complex expressions, or even perform inferior
24051 functions calls.
24052
24053 @cindex argument count in user-defined commands
24054 @cindex how many arguments (user-defined commands)
24055 In addition, @code{$argc} may be used to find out how many arguments have
24056 been passed. This expands to a number in the range 0@dots{}10.
24057
24058 @smallexample
24059 define adder
24060 if $argc == 2
24061 print $arg0 + $arg1
24062 end
24063 if $argc == 3
24064 print $arg0 + $arg1 + $arg2
24065 end
24066 end
24067 @end smallexample
24068
24069 @table @code
24070
24071 @kindex define
24072 @item define @var{commandname}
24073 Define a command named @var{commandname}. If there is already a command
24074 by that name, you are asked to confirm that you want to redefine it.
24075 The argument @var{commandname} may be a bare command name consisting of letters,
24076 numbers, dashes, and underscores. It may also start with any predefined
24077 prefix command. For example, @samp{define target my-target} creates
24078 a user-defined @samp{target my-target} command.
24079
24080 The definition of the command is made up of other @value{GDBN} command lines,
24081 which are given following the @code{define} command. The end of these
24082 commands is marked by a line containing @code{end}.
24083
24084 @kindex document
24085 @kindex end@r{ (user-defined commands)}
24086 @item document @var{commandname}
24087 Document the user-defined command @var{commandname}, so that it can be
24088 accessed by @code{help}. The command @var{commandname} must already be
24089 defined. This command reads lines of documentation just as @code{define}
24090 reads the lines of the command definition, ending with @code{end}.
24091 After the @code{document} command is finished, @code{help} on command
24092 @var{commandname} displays the documentation you have written.
24093
24094 You may use the @code{document} command again to change the
24095 documentation of a command. Redefining the command with @code{define}
24096 does not change the documentation.
24097
24098 @kindex dont-repeat
24099 @cindex don't repeat command
24100 @item dont-repeat
24101 Used inside a user-defined command, this tells @value{GDBN} that this
24102 command should not be repeated when the user hits @key{RET}
24103 (@pxref{Command Syntax, repeat last command}).
24104
24105 @kindex help user-defined
24106 @item help user-defined
24107 List all user-defined commands and all python commands defined in class
24108 COMAND_USER. The first line of the documentation or docstring is
24109 included (if any).
24110
24111 @kindex show user
24112 @item show user
24113 @itemx show user @var{commandname}
24114 Display the @value{GDBN} commands used to define @var{commandname} (but
24115 not its documentation). If no @var{commandname} is given, display the
24116 definitions for all user-defined commands.
24117 This does not work for user-defined python commands.
24118
24119 @cindex infinite recursion in user-defined commands
24120 @kindex show max-user-call-depth
24121 @kindex set max-user-call-depth
24122 @item show max-user-call-depth
24123 @itemx set max-user-call-depth
24124 The value of @code{max-user-call-depth} controls how many recursion
24125 levels are allowed in user-defined commands before @value{GDBN} suspects an
24126 infinite recursion and aborts the command.
24127 This does not apply to user-defined python commands.
24128 @end table
24129
24130 In addition to the above commands, user-defined commands frequently
24131 use control flow commands, described in @ref{Command Files}.
24132
24133 When user-defined commands are executed, the
24134 commands of the definition are not printed. An error in any command
24135 stops execution of the user-defined command.
24136
24137 If used interactively, commands that would ask for confirmation proceed
24138 without asking when used inside a user-defined command. Many @value{GDBN}
24139 commands that normally print messages to say what they are doing omit the
24140 messages when used in a user-defined command.
24141
24142 @node Hooks
24143 @subsection User-defined Command Hooks
24144 @cindex command hooks
24145 @cindex hooks, for commands
24146 @cindex hooks, pre-command
24147
24148 @kindex hook
24149 You may define @dfn{hooks}, which are a special kind of user-defined
24150 command. Whenever you run the command @samp{foo}, if the user-defined
24151 command @samp{hook-foo} exists, it is executed (with no arguments)
24152 before that command.
24153
24154 @cindex hooks, post-command
24155 @kindex hookpost
24156 A hook may also be defined which is run after the command you executed.
24157 Whenever you run the command @samp{foo}, if the user-defined command
24158 @samp{hookpost-foo} exists, it is executed (with no arguments) after
24159 that command. Post-execution hooks may exist simultaneously with
24160 pre-execution hooks, for the same command.
24161
24162 It is valid for a hook to call the command which it hooks. If this
24163 occurs, the hook is not re-executed, thereby avoiding infinite recursion.
24164
24165 @c It would be nice if hookpost could be passed a parameter indicating
24166 @c if the command it hooks executed properly or not. FIXME!
24167
24168 @kindex stop@r{, a pseudo-command}
24169 In addition, a pseudo-command, @samp{stop} exists. Defining
24170 (@samp{hook-stop}) makes the associated commands execute every time
24171 execution stops in your program: before breakpoint commands are run,
24172 displays are printed, or the stack frame is printed.
24173
24174 For example, to ignore @code{SIGALRM} signals while
24175 single-stepping, but treat them normally during normal execution,
24176 you could define:
24177
24178 @smallexample
24179 define hook-stop
24180 handle SIGALRM nopass
24181 end
24182
24183 define hook-run
24184 handle SIGALRM pass
24185 end
24186
24187 define hook-continue
24188 handle SIGALRM pass
24189 end
24190 @end smallexample
24191
24192 As a further example, to hook at the beginning and end of the @code{echo}
24193 command, and to add extra text to the beginning and end of the message,
24194 you could define:
24195
24196 @smallexample
24197 define hook-echo
24198 echo <<<---
24199 end
24200
24201 define hookpost-echo
24202 echo --->>>\n
24203 end
24204
24205 (@value{GDBP}) echo Hello World
24206 <<<---Hello World--->>>
24207 (@value{GDBP})
24208
24209 @end smallexample
24210
24211 You can define a hook for any single-word command in @value{GDBN}, but
24212 not for command aliases; you should define a hook for the basic command
24213 name, e.g.@: @code{backtrace} rather than @code{bt}.
24214 @c FIXME! So how does Joe User discover whether a command is an alias
24215 @c or not?
24216 You can hook a multi-word command by adding @code{hook-} or
24217 @code{hookpost-} to the last word of the command, e.g.@:
24218 @samp{define target hook-remote} to add a hook to @samp{target remote}.
24219
24220 If an error occurs during the execution of your hook, execution of
24221 @value{GDBN} commands stops and @value{GDBN} issues a prompt
24222 (before the command that you actually typed had a chance to run).
24223
24224 If you try to define a hook which does not match any known command, you
24225 get a warning from the @code{define} command.
24226
24227 @node Command Files
24228 @subsection Command Files
24229
24230 @cindex command files
24231 @cindex scripting commands
24232 A command file for @value{GDBN} is a text file made of lines that are
24233 @value{GDBN} commands. Comments (lines starting with @kbd{#}) may
24234 also be included. An empty line in a command file does nothing; it
24235 does not mean to repeat the last command, as it would from the
24236 terminal.
24237
24238 You can request the execution of a command file with the @code{source}
24239 command. Note that the @code{source} command is also used to evaluate
24240 scripts that are not Command Files. The exact behavior can be configured
24241 using the @code{script-extension} setting.
24242 @xref{Extending GDB,, Extending GDB}.
24243
24244 @table @code
24245 @kindex source
24246 @cindex execute commands from a file
24247 @item source [-s] [-v] @var{filename}
24248 Execute the command file @var{filename}.
24249 @end table
24250
24251 The lines in a command file are generally executed sequentially,
24252 unless the order of execution is changed by one of the
24253 @emph{flow-control commands} described below. The commands are not
24254 printed as they are executed. An error in any command terminates
24255 execution of the command file and control is returned to the console.
24256
24257 @value{GDBN} first searches for @var{filename} in the current directory.
24258 If the file is not found there, and @var{filename} does not specify a
24259 directory, then @value{GDBN} also looks for the file on the source search path
24260 (specified with the @samp{directory} command);
24261 except that @file{$cdir} is not searched because the compilation directory
24262 is not relevant to scripts.
24263
24264 If @code{-s} is specified, then @value{GDBN} searches for @var{filename}
24265 on the search path even if @var{filename} specifies a directory.
24266 The search is done by appending @var{filename} to each element of the
24267 search path. So, for example, if @var{filename} is @file{mylib/myscript}
24268 and the search path contains @file{/home/user} then @value{GDBN} will
24269 look for the script @file{/home/user/mylib/myscript}.
24270 The search is also done if @var{filename} is an absolute path.
24271 For example, if @var{filename} is @file{/tmp/myscript} and
24272 the search path contains @file{/home/user} then @value{GDBN} will
24273 look for the script @file{/home/user/tmp/myscript}.
24274 For DOS-like systems, if @var{filename} contains a drive specification,
24275 it is stripped before concatenation. For example, if @var{filename} is
24276 @file{d:myscript} and the search path contains @file{c:/tmp} then @value{GDBN}
24277 will look for the script @file{c:/tmp/myscript}.
24278
24279 If @code{-v}, for verbose mode, is given then @value{GDBN} displays
24280 each command as it is executed. The option must be given before
24281 @var{filename}, and is interpreted as part of the filename anywhere else.
24282
24283 Commands that would ask for confirmation if used interactively proceed
24284 without asking when used in a command file. Many @value{GDBN} commands that
24285 normally print messages to say what they are doing omit the messages
24286 when called from command files.
24287
24288 @value{GDBN} also accepts command input from standard input. In this
24289 mode, normal output goes to standard output and error output goes to
24290 standard error. Errors in a command file supplied on standard input do
24291 not terminate execution of the command file---execution continues with
24292 the next command.
24293
24294 @smallexample
24295 gdb < cmds > log 2>&1
24296 @end smallexample
24297
24298 (The syntax above will vary depending on the shell used.) This example
24299 will execute commands from the file @file{cmds}. All output and errors
24300 would be directed to @file{log}.
24301
24302 Since commands stored on command files tend to be more general than
24303 commands typed interactively, they frequently need to deal with
24304 complicated situations, such as different or unexpected values of
24305 variables and symbols, changes in how the program being debugged is
24306 built, etc. @value{GDBN} provides a set of flow-control commands to
24307 deal with these complexities. Using these commands, you can write
24308 complex scripts that loop over data structures, execute commands
24309 conditionally, etc.
24310
24311 @table @code
24312 @kindex if
24313 @kindex else
24314 @item if
24315 @itemx else
24316 This command allows to include in your script conditionally executed
24317 commands. The @code{if} command takes a single argument, which is an
24318 expression to evaluate. It is followed by a series of commands that
24319 are executed only if the expression is true (its value is nonzero).
24320 There can then optionally be an @code{else} line, followed by a series
24321 of commands that are only executed if the expression was false. The
24322 end of the list is marked by a line containing @code{end}.
24323
24324 @kindex while
24325 @item while
24326 This command allows to write loops. Its syntax is similar to
24327 @code{if}: the command takes a single argument, which is an expression
24328 to evaluate, and must be followed by the commands to execute, one per
24329 line, terminated by an @code{end}. These commands are called the
24330 @dfn{body} of the loop. The commands in the body of @code{while} are
24331 executed repeatedly as long as the expression evaluates to true.
24332
24333 @kindex loop_break
24334 @item loop_break
24335 This command exits the @code{while} loop in whose body it is included.
24336 Execution of the script continues after that @code{while}s @code{end}
24337 line.
24338
24339 @kindex loop_continue
24340 @item loop_continue
24341 This command skips the execution of the rest of the body of commands
24342 in the @code{while} loop in whose body it is included. Execution
24343 branches to the beginning of the @code{while} loop, where it evaluates
24344 the controlling expression.
24345
24346 @kindex end@r{ (if/else/while commands)}
24347 @item end
24348 Terminate the block of commands that are the body of @code{if},
24349 @code{else}, or @code{while} flow-control commands.
24350 @end table
24351
24352
24353 @node Output
24354 @subsection Commands for Controlled Output
24355
24356 During the execution of a command file or a user-defined command, normal
24357 @value{GDBN} output is suppressed; the only output that appears is what is
24358 explicitly printed by the commands in the definition. This section
24359 describes three commands useful for generating exactly the output you
24360 want.
24361
24362 @table @code
24363 @kindex echo
24364 @item echo @var{text}
24365 @c I do not consider backslash-space a standard C escape sequence
24366 @c because it is not in ANSI.
24367 Print @var{text}. Nonprinting characters can be included in
24368 @var{text} using C escape sequences, such as @samp{\n} to print a
24369 newline. @strong{No newline is printed unless you specify one.}
24370 In addition to the standard C escape sequences, a backslash followed
24371 by a space stands for a space. This is useful for displaying a
24372 string with spaces at the beginning or the end, since leading and
24373 trailing spaces are otherwise trimmed from all arguments.
24374 To print @samp{@w{ }and foo =@w{ }}, use the command
24375 @samp{echo \@w{ }and foo = \@w{ }}.
24376
24377 A backslash at the end of @var{text} can be used, as in C, to continue
24378 the command onto subsequent lines. For example,
24379
24380 @smallexample
24381 echo This is some text\n\
24382 which is continued\n\
24383 onto several lines.\n
24384 @end smallexample
24385
24386 produces the same output as
24387
24388 @smallexample
24389 echo This is some text\n
24390 echo which is continued\n
24391 echo onto several lines.\n
24392 @end smallexample
24393
24394 @kindex output
24395 @item output @var{expression}
24396 Print the value of @var{expression} and nothing but that value: no
24397 newlines, no @samp{$@var{nn} = }. The value is not entered in the
24398 value history either. @xref{Expressions, ,Expressions}, for more information
24399 on expressions.
24400
24401 @item output/@var{fmt} @var{expression}
24402 Print the value of @var{expression} in format @var{fmt}. You can use
24403 the same formats as for @code{print}. @xref{Output Formats,,Output
24404 Formats}, for more information.
24405
24406 @kindex printf
24407 @item printf @var{template}, @var{expressions}@dots{}
24408 Print the values of one or more @var{expressions} under the control of
24409 the string @var{template}. To print several values, make
24410 @var{expressions} be a comma-separated list of individual expressions,
24411 which may be either numbers or pointers. Their values are printed as
24412 specified by @var{template}, exactly as a C program would do by
24413 executing the code below:
24414
24415 @smallexample
24416 printf (@var{template}, @var{expressions}@dots{});
24417 @end smallexample
24418
24419 As in @code{C} @code{printf}, ordinary characters in @var{template}
24420 are printed verbatim, while @dfn{conversion specification} introduced
24421 by the @samp{%} character cause subsequent @var{expressions} to be
24422 evaluated, their values converted and formatted according to type and
24423 style information encoded in the conversion specifications, and then
24424 printed.
24425
24426 For example, you can print two values in hex like this:
24427
24428 @smallexample
24429 printf "foo, bar-foo = 0x%x, 0x%x\n", foo, bar-foo
24430 @end smallexample
24431
24432 @code{printf} supports all the standard @code{C} conversion
24433 specifications, including the flags and modifiers between the @samp{%}
24434 character and the conversion letter, with the following exceptions:
24435
24436 @itemize @bullet
24437 @item
24438 The argument-ordering modifiers, such as @samp{2$}, are not supported.
24439
24440 @item
24441 The modifier @samp{*} is not supported for specifying precision or
24442 width.
24443
24444 @item
24445 The @samp{'} flag (for separation of digits into groups according to
24446 @code{LC_NUMERIC'}) is not supported.
24447
24448 @item
24449 The type modifiers @samp{hh}, @samp{j}, @samp{t}, and @samp{z} are not
24450 supported.
24451
24452 @item
24453 The conversion letter @samp{n} (as in @samp{%n}) is not supported.
24454
24455 @item
24456 The conversion letters @samp{a} and @samp{A} are not supported.
24457 @end itemize
24458
24459 @noindent
24460 Note that the @samp{ll} type modifier is supported only if the
24461 underlying @code{C} implementation used to build @value{GDBN} supports
24462 the @code{long long int} type, and the @samp{L} type modifier is
24463 supported only if @code{long double} type is available.
24464
24465 As in @code{C}, @code{printf} supports simple backslash-escape
24466 sequences, such as @code{\n}, @samp{\t}, @samp{\\}, @samp{\"},
24467 @samp{\a}, and @samp{\f}, that consist of backslash followed by a
24468 single character. Octal and hexadecimal escape sequences are not
24469 supported.
24470
24471 Additionally, @code{printf} supports conversion specifications for DFP
24472 (@dfn{Decimal Floating Point}) types using the following length modifiers
24473 together with a floating point specifier.
24474 letters:
24475
24476 @itemize @bullet
24477 @item
24478 @samp{H} for printing @code{Decimal32} types.
24479
24480 @item
24481 @samp{D} for printing @code{Decimal64} types.
24482
24483 @item
24484 @samp{DD} for printing @code{Decimal128} types.
24485 @end itemize
24486
24487 If the underlying @code{C} implementation used to build @value{GDBN} has
24488 support for the three length modifiers for DFP types, other modifiers
24489 such as width and precision will also be available for @value{GDBN} to use.
24490
24491 In case there is no such @code{C} support, no additional modifiers will be
24492 available and the value will be printed in the standard way.
24493
24494 Here's an example of printing DFP types using the above conversion letters:
24495 @smallexample
24496 printf "D32: %Hf - D64: %Df - D128: %DDf\n",1.2345df,1.2E10dd,1.2E1dl
24497 @end smallexample
24498
24499 @kindex eval
24500 @item eval @var{template}, @var{expressions}@dots{}
24501 Convert the values of one or more @var{expressions} under the control of
24502 the string @var{template} to a command line, and call it.
24503
24504 @end table
24505
24506 @node Auto-loading sequences
24507 @subsection Controlling auto-loading native @value{GDBN} scripts
24508 @cindex native script auto-loading
24509
24510 When a new object file is read (for example, due to the @code{file}
24511 command, or because the inferior has loaded a shared library),
24512 @value{GDBN} will look for the command file @file{@var{objfile}-gdb.gdb}.
24513 @xref{Auto-loading extensions}.
24514
24515 Auto-loading can be enabled or disabled,
24516 and the list of auto-loaded scripts can be printed.
24517
24518 @table @code
24519 @anchor{set auto-load gdb-scripts}
24520 @kindex set auto-load gdb-scripts
24521 @item set auto-load gdb-scripts [on|off]
24522 Enable or disable the auto-loading of canned sequences of commands scripts.
24523
24524 @anchor{show auto-load gdb-scripts}
24525 @kindex show auto-load gdb-scripts
24526 @item show auto-load gdb-scripts
24527 Show whether auto-loading of canned sequences of commands scripts is enabled or
24528 disabled.
24529
24530 @anchor{info auto-load gdb-scripts}
24531 @kindex info auto-load gdb-scripts
24532 @cindex print list of auto-loaded canned sequences of commands scripts
24533 @item info auto-load gdb-scripts [@var{regexp}]
24534 Print the list of all canned sequences of commands scripts that @value{GDBN}
24535 auto-loaded.
24536 @end table
24537
24538 If @var{regexp} is supplied only canned sequences of commands scripts with
24539 matching names are printed.
24540
24541 @c Python docs live in a separate file.
24542 @include python.texi
24543
24544 @c Guile docs live in a separate file.
24545 @include guile.texi
24546
24547 @node Auto-loading extensions
24548 @section Auto-loading extensions
24549 @cindex auto-loading extensions
24550
24551 @value{GDBN} provides two mechanisms for automatically loading extensions
24552 when a new object file is read (for example, due to the @code{file}
24553 command, or because the inferior has loaded a shared library):
24554 @file{@var{objfile}-gdb.@var{ext}} and the @code{.debug_gdb_scripts}
24555 section of modern file formats like ELF.
24556
24557 @menu
24558 * objfile-gdb.ext file: objfile-gdbdotext file. The @file{@var{objfile}-gdb.@var{ext}} file
24559 * .debug_gdb_scripts section: dotdebug_gdb_scripts section. The @code{.debug_gdb_scripts} section
24560 * Which flavor to choose?::
24561 @end menu
24562
24563 The auto-loading feature is useful for supplying application-specific
24564 debugging commands and features.
24565
24566 Auto-loading can be enabled or disabled,
24567 and the list of auto-loaded scripts can be printed.
24568 See the @samp{auto-loading} section of each extension language
24569 for more information.
24570 For @value{GDBN} command files see @ref{Auto-loading sequences}.
24571 For Python files see @ref{Python Auto-loading}.
24572
24573 Note that loading of this script file also requires accordingly configured
24574 @code{auto-load safe-path} (@pxref{Auto-loading safe path}).
24575
24576 @node objfile-gdbdotext file
24577 @subsection The @file{@var{objfile}-gdb.@var{ext}} file
24578 @cindex @file{@var{objfile}-gdb.gdb}
24579 @cindex @file{@var{objfile}-gdb.py}
24580 @cindex @file{@var{objfile}-gdb.scm}
24581
24582 When a new object file is read, @value{GDBN} looks for a file named
24583 @file{@var{objfile}-gdb.@var{ext}} (we call it @var{script-name} below),
24584 where @var{objfile} is the object file's name and
24585 where @var{ext} is the file extension for the extension language:
24586
24587 @table @code
24588 @item @file{@var{objfile}-gdb.gdb}
24589 GDB's own command language
24590 @item @file{@var{objfile}-gdb.py}
24591 Python
24592 @item @file{@var{objfile}-gdb.scm}
24593 Guile
24594 @end table
24595
24596 @var{script-name} is formed by ensuring that the file name of @var{objfile}
24597 is absolute, following all symlinks, and resolving @code{.} and @code{..}
24598 components, and appending the @file{-gdb.@var{ext}} suffix.
24599 If this file exists and is readable, @value{GDBN} will evaluate it as a
24600 script in the specified extension language.
24601
24602 If this file does not exist, then @value{GDBN} will look for
24603 @var{script-name} file in all of the directories as specified below.
24604
24605 Note that loading of these files requires an accordingly configured
24606 @code{auto-load safe-path} (@pxref{Auto-loading safe path}).
24607
24608 For object files using @file{.exe} suffix @value{GDBN} tries to load first the
24609 scripts normally according to its @file{.exe} filename. But if no scripts are
24610 found @value{GDBN} also tries script filenames matching the object file without
24611 its @file{.exe} suffix. This @file{.exe} stripping is case insensitive and it
24612 is attempted on any platform. This makes the script filenames compatible
24613 between Unix and MS-Windows hosts.
24614
24615 @table @code
24616 @anchor{set auto-load scripts-directory}
24617 @kindex set auto-load scripts-directory
24618 @item set auto-load scripts-directory @r{[}@var{directories}@r{]}
24619 Control @value{GDBN} auto-loaded scripts location. Multiple directory entries
24620 may be delimited by the host platform path separator in use
24621 (@samp{:} on Unix, @samp{;} on MS-Windows and MS-DOS).
24622
24623 Each entry here needs to be covered also by the security setting
24624 @code{set auto-load safe-path} (@pxref{set auto-load safe-path}).
24625
24626 @anchor{with-auto-load-dir}
24627 This variable defaults to @file{$debugdir:$datadir/auto-load}. The default
24628 @code{set auto-load safe-path} value can be also overriden by @value{GDBN}
24629 configuration option @option{--with-auto-load-dir}.
24630
24631 Any reference to @file{$debugdir} will get replaced by
24632 @var{debug-file-directory} value (@pxref{Separate Debug Files}) and any
24633 reference to @file{$datadir} will get replaced by @var{data-directory} which is
24634 determined at @value{GDBN} startup (@pxref{Data Files}). @file{$debugdir} and
24635 @file{$datadir} must be placed as a directory component --- either alone or
24636 delimited by @file{/} or @file{\} directory separators, depending on the host
24637 platform.
24638
24639 The list of directories uses path separator (@samp{:} on GNU and Unix
24640 systems, @samp{;} on MS-Windows and MS-DOS) to separate directories, similarly
24641 to the @env{PATH} environment variable.
24642
24643 @anchor{show auto-load scripts-directory}
24644 @kindex show auto-load scripts-directory
24645 @item show auto-load scripts-directory
24646 Show @value{GDBN} auto-loaded scripts location.
24647
24648 @anchor{add-auto-load-scripts-directory}
24649 @kindex add-auto-load-scripts-directory
24650 @item add-auto-load-scripts-directory @r{[}@var{directories}@dots{}@r{]}
24651 Add an entry (or list of entries) to the list of auto-loaded scripts locations.
24652 Multiple entries may be delimited by the host platform path separator in use.
24653 @end table
24654
24655 @value{GDBN} does not track which files it has already auto-loaded this way.
24656 @value{GDBN} will load the associated script every time the corresponding
24657 @var{objfile} is opened.
24658 So your @file{-gdb.@var{ext}} file should be careful to avoid errors if it
24659 is evaluated more than once.
24660
24661 @node dotdebug_gdb_scripts section
24662 @subsection The @code{.debug_gdb_scripts} section
24663 @cindex @code{.debug_gdb_scripts} section
24664
24665 For systems using file formats like ELF and COFF,
24666 when @value{GDBN} loads a new object file
24667 it will look for a special section named @code{.debug_gdb_scripts}.
24668 If this section exists, its contents is a list of null-terminated entries
24669 specifying scripts to load. Each entry begins with a non-null prefix byte that
24670 specifies the kind of entry, typically the extension language and whether the
24671 script is in a file or inlined in @code{.debug_gdb_scripts}.
24672
24673 The following entries are supported:
24674
24675 @table @code
24676 @item SECTION_SCRIPT_ID_PYTHON_FILE = 1
24677 @item SECTION_SCRIPT_ID_SCHEME_FILE = 3
24678 @item SECTION_SCRIPT_ID_PYTHON_TEXT = 4
24679 @item SECTION_SCRIPT_ID_SCHEME_TEXT = 6
24680 @end table
24681
24682 @subsubsection Script File Entries
24683
24684 If the entry specifies a file, @value{GDBN} will look for the file first
24685 in the current directory and then along the source search path
24686 (@pxref{Source Path, ,Specifying Source Directories}),
24687 except that @file{$cdir} is not searched, since the compilation
24688 directory is not relevant to scripts.
24689
24690 File entries can be placed in section @code{.debug_gdb_scripts} with,
24691 for example, this GCC macro for Python scripts.
24692
24693 @example
24694 /* Note: The "MS" section flags are to remove duplicates. */
24695 #define DEFINE_GDB_PY_SCRIPT(script_name) \
24696 asm("\
24697 .pushsection \".debug_gdb_scripts\", \"MS\",@@progbits,1\n\
24698 .byte 1 /* Python */\n\
24699 .asciz \"" script_name "\"\n\
24700 .popsection \n\
24701 ");
24702 @end example
24703
24704 @noindent
24705 For Guile scripts, replace @code{.byte 1} with @code{.byte 3}.
24706 Then one can reference the macro in a header or source file like this:
24707
24708 @example
24709 DEFINE_GDB_PY_SCRIPT ("my-app-scripts.py")
24710 @end example
24711
24712 The script name may include directories if desired.
24713
24714 Note that loading of this script file also requires accordingly configured
24715 @code{auto-load safe-path} (@pxref{Auto-loading safe path}).
24716
24717 If the macro invocation is put in a header, any application or library
24718 using this header will get a reference to the specified script,
24719 and with the use of @code{"MS"} attributes on the section, the linker
24720 will remove duplicates.
24721
24722 @subsubsection Script Text Entries
24723
24724 Script text entries allow to put the executable script in the entry
24725 itself instead of loading it from a file.
24726 The first line of the entry, everything after the prefix byte and up to
24727 the first newline (@code{0xa}) character, is the script name, and must not
24728 contain any kind of space character, e.g., spaces or tabs.
24729 The rest of the entry, up to the trailing null byte, is the script to
24730 execute in the specified language. The name needs to be unique among
24731 all script names, as @value{GDBN} executes each script only once based
24732 on its name.
24733
24734 Here is an example from file @file{py-section-script.c} in the @value{GDBN}
24735 testsuite.
24736
24737 @example
24738 #include "symcat.h"
24739 #include "gdb/section-scripts.h"
24740 asm(
24741 ".pushsection \".debug_gdb_scripts\", \"MS\",@@progbits,1\n"
24742 ".byte " XSTRING (SECTION_SCRIPT_ID_PYTHON_TEXT) "\n"
24743 ".ascii \"gdb.inlined-script\\n\"\n"
24744 ".ascii \"class test_cmd (gdb.Command):\\n\"\n"
24745 ".ascii \" def __init__ (self):\\n\"\n"
24746 ".ascii \" super (test_cmd, self).__init__ ("
24747 "\\\"test-cmd\\\", gdb.COMMAND_OBSCURE)\\n\"\n"
24748 ".ascii \" def invoke (self, arg, from_tty):\\n\"\n"
24749 ".ascii \" print (\\\"test-cmd output, arg = %s\\\" % arg)\\n\"\n"
24750 ".ascii \"test_cmd ()\\n\"\n"
24751 ".byte 0\n"
24752 ".popsection\n"
24753 );
24754 @end example
24755
24756 Loading of inlined scripts requires a properly configured
24757 @code{auto-load safe-path} (@pxref{Auto-loading safe path}).
24758 The path to specify in @code{auto-load safe-path} is the path of the file
24759 containing the @code{.debug_gdb_scripts} section.
24760
24761 @node Which flavor to choose?
24762 @subsection Which flavor to choose?
24763
24764 Given the multiple ways of auto-loading extensions, it might not always
24765 be clear which one to choose. This section provides some guidance.
24766
24767 @noindent
24768 Benefits of the @file{-gdb.@var{ext}} way:
24769
24770 @itemize @bullet
24771 @item
24772 Can be used with file formats that don't support multiple sections.
24773
24774 @item
24775 Ease of finding scripts for public libraries.
24776
24777 Scripts specified in the @code{.debug_gdb_scripts} section are searched for
24778 in the source search path.
24779 For publicly installed libraries, e.g., @file{libstdc++}, there typically
24780 isn't a source directory in which to find the script.
24781
24782 @item
24783 Doesn't require source code additions.
24784 @end itemize
24785
24786 @noindent
24787 Benefits of the @code{.debug_gdb_scripts} way:
24788
24789 @itemize @bullet
24790 @item
24791 Works with static linking.
24792
24793 Scripts for libraries done the @file{-gdb.@var{ext}} way require an objfile to
24794 trigger their loading. When an application is statically linked the only
24795 objfile available is the executable, and it is cumbersome to attach all the
24796 scripts from all the input libraries to the executable's
24797 @file{-gdb.@var{ext}} script.
24798
24799 @item
24800 Works with classes that are entirely inlined.
24801
24802 Some classes can be entirely inlined, and thus there may not be an associated
24803 shared library to attach a @file{-gdb.@var{ext}} script to.
24804
24805 @item
24806 Scripts needn't be copied out of the source tree.
24807
24808 In some circumstances, apps can be built out of large collections of internal
24809 libraries, and the build infrastructure necessary to install the
24810 @file{-gdb.@var{ext}} scripts in a place where @value{GDBN} can find them is
24811 cumbersome. It may be easier to specify the scripts in the
24812 @code{.debug_gdb_scripts} section as relative paths, and add a path to the
24813 top of the source tree to the source search path.
24814 @end itemize
24815
24816 @node Multiple Extension Languages
24817 @section Multiple Extension Languages
24818
24819 The Guile and Python extension languages do not share any state,
24820 and generally do not interfere with each other.
24821 There are some things to be aware of, however.
24822
24823 @subsection Python comes first
24824
24825 Python was @value{GDBN}'s first extension language, and to avoid breaking
24826 existing behaviour Python comes first. This is generally solved by the
24827 ``first one wins'' principle. @value{GDBN} maintains a list of enabled
24828 extension languages, and when it makes a call to an extension language,
24829 (say to pretty-print a value), it tries each in turn until an extension
24830 language indicates it has performed the request (e.g., has returned the
24831 pretty-printed form of a value).
24832 This extends to errors while performing such requests: If an error happens
24833 while, for example, trying to pretty-print an object then the error is
24834 reported and any following extension languages are not tried.
24835
24836 @node Aliases
24837 @section Creating new spellings of existing commands
24838 @cindex aliases for commands
24839
24840 It is often useful to define alternate spellings of existing commands.
24841 For example, if a new @value{GDBN} command defined in Python has
24842 a long name to type, it is handy to have an abbreviated version of it
24843 that involves less typing.
24844
24845 @value{GDBN} itself uses aliases. For example @samp{s} is an alias
24846 of the @samp{step} command even though it is otherwise an ambiguous
24847 abbreviation of other commands like @samp{set} and @samp{show}.
24848
24849 Aliases are also used to provide shortened or more common versions
24850 of multi-word commands. For example, @value{GDBN} provides the
24851 @samp{tty} alias of the @samp{set inferior-tty} command.
24852
24853 You can define a new alias with the @samp{alias} command.
24854
24855 @table @code
24856
24857 @kindex alias
24858 @item alias [-a] [--] @var{ALIAS} = @var{COMMAND}
24859
24860 @end table
24861
24862 @var{ALIAS} specifies the name of the new alias.
24863 Each word of @var{ALIAS} must consist of letters, numbers, dashes and
24864 underscores.
24865
24866 @var{COMMAND} specifies the name of an existing command
24867 that is being aliased.
24868
24869 The @samp{-a} option specifies that the new alias is an abbreviation
24870 of the command. Abbreviations are not shown in command
24871 lists displayed by the @samp{help} command.
24872
24873 The @samp{--} option specifies the end of options,
24874 and is useful when @var{ALIAS} begins with a dash.
24875
24876 Here is a simple example showing how to make an abbreviation
24877 of a command so that there is less to type.
24878 Suppose you were tired of typing @samp{disas}, the current
24879 shortest unambiguous abbreviation of the @samp{disassemble} command
24880 and you wanted an even shorter version named @samp{di}.
24881 The following will accomplish this.
24882
24883 @smallexample
24884 (gdb) alias -a di = disas
24885 @end smallexample
24886
24887 Note that aliases are different from user-defined commands.
24888 With a user-defined command, you also need to write documentation
24889 for it with the @samp{document} command.
24890 An alias automatically picks up the documentation of the existing command.
24891
24892 Here is an example where we make @samp{elms} an abbreviation of
24893 @samp{elements} in the @samp{set print elements} command.
24894 This is to show that you can make an abbreviation of any part
24895 of a command.
24896
24897 @smallexample
24898 (gdb) alias -a set print elms = set print elements
24899 (gdb) alias -a show print elms = show print elements
24900 (gdb) set p elms 20
24901 (gdb) show p elms
24902 Limit on string chars or array elements to print is 200.
24903 @end smallexample
24904
24905 Note that if you are defining an alias of a @samp{set} command,
24906 and you want to have an alias for the corresponding @samp{show}
24907 command, then you need to define the latter separately.
24908
24909 Unambiguously abbreviated commands are allowed in @var{COMMAND} and
24910 @var{ALIAS}, just as they are normally.
24911
24912 @smallexample
24913 (gdb) alias -a set pr elms = set p ele
24914 @end smallexample
24915
24916 Finally, here is an example showing the creation of a one word
24917 alias for a more complex command.
24918 This creates alias @samp{spe} of the command @samp{set print elements}.
24919
24920 @smallexample
24921 (gdb) alias spe = set print elements
24922 (gdb) spe 20
24923 @end smallexample
24924
24925 @node Interpreters
24926 @chapter Command Interpreters
24927 @cindex command interpreters
24928
24929 @value{GDBN} supports multiple command interpreters, and some command
24930 infrastructure to allow users or user interface writers to switch
24931 between interpreters or run commands in other interpreters.
24932
24933 @value{GDBN} currently supports two command interpreters, the console
24934 interpreter (sometimes called the command-line interpreter or @sc{cli})
24935 and the machine interface interpreter (or @sc{gdb/mi}). This manual
24936 describes both of these interfaces in great detail.
24937
24938 By default, @value{GDBN} will start with the console interpreter.
24939 However, the user may choose to start @value{GDBN} with another
24940 interpreter by specifying the @option{-i} or @option{--interpreter}
24941 startup options. Defined interpreters include:
24942
24943 @table @code
24944 @item console
24945 @cindex console interpreter
24946 The traditional console or command-line interpreter. This is the most often
24947 used interpreter with @value{GDBN}. With no interpreter specified at runtime,
24948 @value{GDBN} will use this interpreter.
24949
24950 @item mi
24951 @cindex mi interpreter
24952 The newest @sc{gdb/mi} interface (currently @code{mi2}). Used primarily
24953 by programs wishing to use @value{GDBN} as a backend for a debugger GUI
24954 or an IDE. For more information, see @ref{GDB/MI, ,The @sc{gdb/mi}
24955 Interface}.
24956
24957 @item mi2
24958 @cindex mi2 interpreter
24959 The current @sc{gdb/mi} interface.
24960
24961 @item mi1
24962 @cindex mi1 interpreter
24963 The @sc{gdb/mi} interface included in @value{GDBN} 5.1, 5.2, and 5.3.
24964
24965 @end table
24966
24967 @cindex invoke another interpreter
24968 The interpreter being used by @value{GDBN} may not be dynamically
24969 switched at runtime. Although possible, this could lead to a very
24970 precarious situation. Consider an IDE using @sc{gdb/mi}. If a user
24971 enters the command "interpreter-set console" in a console view,
24972 @value{GDBN} would switch to using the console interpreter, rendering
24973 the IDE inoperable!
24974
24975 @kindex interpreter-exec
24976 Although you may only choose a single interpreter at startup, you may execute
24977 commands in any interpreter from the current interpreter using the appropriate
24978 command. If you are running the console interpreter, simply use the
24979 @code{interpreter-exec} command:
24980
24981 @smallexample
24982 interpreter-exec mi "-data-list-register-names"
24983 @end smallexample
24984
24985 @sc{gdb/mi} has a similar command, although it is only available in versions of
24986 @value{GDBN} which support @sc{gdb/mi} version 2 (or greater).
24987
24988 @node TUI
24989 @chapter @value{GDBN} Text User Interface
24990 @cindex TUI
24991 @cindex Text User Interface
24992
24993 @menu
24994 * TUI Overview:: TUI overview
24995 * TUI Keys:: TUI key bindings
24996 * TUI Single Key Mode:: TUI single key mode
24997 * TUI Commands:: TUI-specific commands
24998 * TUI Configuration:: TUI configuration variables
24999 @end menu
25000
25001 The @value{GDBN} Text User Interface (TUI) is a terminal
25002 interface which uses the @code{curses} library to show the source
25003 file, the assembly output, the program registers and @value{GDBN}
25004 commands in separate text windows. The TUI mode is supported only
25005 on platforms where a suitable version of the @code{curses} library
25006 is available.
25007
25008 The TUI mode is enabled by default when you invoke @value{GDBN} as
25009 @samp{@value{GDBP} -tui}.
25010 You can also switch in and out of TUI mode while @value{GDBN} runs by
25011 using various TUI commands and key bindings, such as @command{tui
25012 enable} or @kbd{C-x C-a}. @xref{TUI Commands, ,TUI Commands}, and
25013 @ref{TUI Keys, ,TUI Key Bindings}.
25014
25015 @node TUI Overview
25016 @section TUI Overview
25017
25018 In TUI mode, @value{GDBN} can display several text windows:
25019
25020 @table @emph
25021 @item command
25022 This window is the @value{GDBN} command window with the @value{GDBN}
25023 prompt and the @value{GDBN} output. The @value{GDBN} input is still
25024 managed using readline.
25025
25026 @item source
25027 The source window shows the source file of the program. The current
25028 line and active breakpoints are displayed in this window.
25029
25030 @item assembly
25031 The assembly window shows the disassembly output of the program.
25032
25033 @item register
25034 This window shows the processor registers. Registers are highlighted
25035 when their values change.
25036 @end table
25037
25038 The source and assembly windows show the current program position
25039 by highlighting the current line and marking it with a @samp{>} marker.
25040 Breakpoints are indicated with two markers. The first marker
25041 indicates the breakpoint type:
25042
25043 @table @code
25044 @item B
25045 Breakpoint which was hit at least once.
25046
25047 @item b
25048 Breakpoint which was never hit.
25049
25050 @item H
25051 Hardware breakpoint which was hit at least once.
25052
25053 @item h
25054 Hardware breakpoint which was never hit.
25055 @end table
25056
25057 The second marker indicates whether the breakpoint is enabled or not:
25058
25059 @table @code
25060 @item +
25061 Breakpoint is enabled.
25062
25063 @item -
25064 Breakpoint is disabled.
25065 @end table
25066
25067 The source, assembly and register windows are updated when the current
25068 thread changes, when the frame changes, or when the program counter
25069 changes.
25070
25071 These windows are not all visible at the same time. The command
25072 window is always visible. The others can be arranged in several
25073 layouts:
25074
25075 @itemize @bullet
25076 @item
25077 source only,
25078
25079 @item
25080 assembly only,
25081
25082 @item
25083 source and assembly,
25084
25085 @item
25086 source and registers, or
25087
25088 @item
25089 assembly and registers.
25090 @end itemize
25091
25092 A status line above the command window shows the following information:
25093
25094 @table @emph
25095 @item target
25096 Indicates the current @value{GDBN} target.
25097 (@pxref{Targets, ,Specifying a Debugging Target}).
25098
25099 @item process
25100 Gives the current process or thread number.
25101 When no process is being debugged, this field is set to @code{No process}.
25102
25103 @item function
25104 Gives the current function name for the selected frame.
25105 The name is demangled if demangling is turned on (@pxref{Print Settings}).
25106 When there is no symbol corresponding to the current program counter,
25107 the string @code{??} is displayed.
25108
25109 @item line
25110 Indicates the current line number for the selected frame.
25111 When the current line number is not known, the string @code{??} is displayed.
25112
25113 @item pc
25114 Indicates the current program counter address.
25115 @end table
25116
25117 @node TUI Keys
25118 @section TUI Key Bindings
25119 @cindex TUI key bindings
25120
25121 The TUI installs several key bindings in the readline keymaps
25122 @ifset SYSTEM_READLINE
25123 (@pxref{Command Line Editing, , , rluserman, GNU Readline Library}).
25124 @end ifset
25125 @ifclear SYSTEM_READLINE
25126 (@pxref{Command Line Editing}).
25127 @end ifclear
25128 The following key bindings are installed for both TUI mode and the
25129 @value{GDBN} standard mode.
25130
25131 @table @kbd
25132 @kindex C-x C-a
25133 @item C-x C-a
25134 @kindex C-x a
25135 @itemx C-x a
25136 @kindex C-x A
25137 @itemx C-x A
25138 Enter or leave the TUI mode. When leaving the TUI mode,
25139 the curses window management stops and @value{GDBN} operates using
25140 its standard mode, writing on the terminal directly. When reentering
25141 the TUI mode, control is given back to the curses windows.
25142 The screen is then refreshed.
25143
25144 @kindex C-x 1
25145 @item C-x 1
25146 Use a TUI layout with only one window. The layout will
25147 either be @samp{source} or @samp{assembly}. When the TUI mode
25148 is not active, it will switch to the TUI mode.
25149
25150 Think of this key binding as the Emacs @kbd{C-x 1} binding.
25151
25152 @kindex C-x 2
25153 @item C-x 2
25154 Use a TUI layout with at least two windows. When the current
25155 layout already has two windows, the next layout with two windows is used.
25156 When a new layout is chosen, one window will always be common to the
25157 previous layout and the new one.
25158
25159 Think of it as the Emacs @kbd{C-x 2} binding.
25160
25161 @kindex C-x o
25162 @item C-x o
25163 Change the active window. The TUI associates several key bindings
25164 (like scrolling and arrow keys) with the active window. This command
25165 gives the focus to the next TUI window.
25166
25167 Think of it as the Emacs @kbd{C-x o} binding.
25168
25169 @kindex C-x s
25170 @item C-x s
25171 Switch in and out of the TUI SingleKey mode that binds single
25172 keys to @value{GDBN} commands (@pxref{TUI Single Key Mode}).
25173 @end table
25174
25175 The following key bindings only work in the TUI mode:
25176
25177 @table @asis
25178 @kindex PgUp
25179 @item @key{PgUp}
25180 Scroll the active window one page up.
25181
25182 @kindex PgDn
25183 @item @key{PgDn}
25184 Scroll the active window one page down.
25185
25186 @kindex Up
25187 @item @key{Up}
25188 Scroll the active window one line up.
25189
25190 @kindex Down
25191 @item @key{Down}
25192 Scroll the active window one line down.
25193
25194 @kindex Left
25195 @item @key{Left}
25196 Scroll the active window one column left.
25197
25198 @kindex Right
25199 @item @key{Right}
25200 Scroll the active window one column right.
25201
25202 @kindex C-L
25203 @item @kbd{C-L}
25204 Refresh the screen.
25205 @end table
25206
25207 Because the arrow keys scroll the active window in the TUI mode, they
25208 are not available for their normal use by readline unless the command
25209 window has the focus. When another window is active, you must use
25210 other readline key bindings such as @kbd{C-p}, @kbd{C-n}, @kbd{C-b}
25211 and @kbd{C-f} to control the command window.
25212
25213 @node TUI Single Key Mode
25214 @section TUI Single Key Mode
25215 @cindex TUI single key mode
25216
25217 The TUI also provides a @dfn{SingleKey} mode, which binds several
25218 frequently used @value{GDBN} commands to single keys. Type @kbd{C-x s} to
25219 switch into this mode, where the following key bindings are used:
25220
25221 @table @kbd
25222 @kindex c @r{(SingleKey TUI key)}
25223 @item c
25224 continue
25225
25226 @kindex d @r{(SingleKey TUI key)}
25227 @item d
25228 down
25229
25230 @kindex f @r{(SingleKey TUI key)}
25231 @item f
25232 finish
25233
25234 @kindex n @r{(SingleKey TUI key)}
25235 @item n
25236 next
25237
25238 @kindex q @r{(SingleKey TUI key)}
25239 @item q
25240 exit the SingleKey mode.
25241
25242 @kindex r @r{(SingleKey TUI key)}
25243 @item r
25244 run
25245
25246 @kindex s @r{(SingleKey TUI key)}
25247 @item s
25248 step
25249
25250 @kindex u @r{(SingleKey TUI key)}
25251 @item u
25252 up
25253
25254 @kindex v @r{(SingleKey TUI key)}
25255 @item v
25256 info locals
25257
25258 @kindex w @r{(SingleKey TUI key)}
25259 @item w
25260 where
25261 @end table
25262
25263 Other keys temporarily switch to the @value{GDBN} command prompt.
25264 The key that was pressed is inserted in the editing buffer so that
25265 it is possible to type most @value{GDBN} commands without interaction
25266 with the TUI SingleKey mode. Once the command is entered the TUI
25267 SingleKey mode is restored. The only way to permanently leave
25268 this mode is by typing @kbd{q} or @kbd{C-x s}.
25269
25270
25271 @node TUI Commands
25272 @section TUI-specific Commands
25273 @cindex TUI commands
25274
25275 The TUI has specific commands to control the text windows.
25276 These commands are always available, even when @value{GDBN} is not in
25277 the TUI mode. When @value{GDBN} is in the standard mode, most
25278 of these commands will automatically switch to the TUI mode.
25279
25280 Note that if @value{GDBN}'s @code{stdout} is not connected to a
25281 terminal, or @value{GDBN} has been started with the machine interface
25282 interpreter (@pxref{GDB/MI, ,The @sc{gdb/mi} Interface}), most of
25283 these commands will fail with an error, because it would not be
25284 possible or desirable to enable curses window management.
25285
25286 @table @code
25287 @item tui enable
25288 @kindex tui enable
25289 Activate TUI mode. The last active TUI window layout will be used if
25290 TUI mode has prevsiouly been used in the current debugging session,
25291 otherwise a default layout is used.
25292
25293 @item tui disable
25294 @kindex tui disable
25295 Disable TUI mode, returning to the console interpreter.
25296
25297 @item info win
25298 @kindex info win
25299 List and give the size of all displayed windows.
25300
25301 @item layout @var{name}
25302 @kindex layout
25303 Changes which TUI windows are displayed. In each layout the command
25304 window is always displayed, the @var{name} parameter controls which
25305 additional windows are displayed, and can be any of the following:
25306
25307 @table @code
25308 @item next
25309 Display the next layout.
25310
25311 @item prev
25312 Display the previous layout.
25313
25314 @item src
25315 Display the source and command windows.
25316
25317 @item asm
25318 Display the assembly and command windows.
25319
25320 @item split
25321 Display the source, assembly, and command windows.
25322
25323 @item regs
25324 When in @code{src} layout display the register, source, and command
25325 windows. When in @code{asm} or @code{split} layout display the
25326 register, assembler, and command windows.
25327 @end table
25328
25329 @item focus @var{name}
25330 @kindex focus
25331 Changes which TUI window is currently active for scrolling. The
25332 @var{name} parameter can be any of the following:
25333
25334 @table @code
25335 @item next
25336 Make the next window active for scrolling.
25337
25338 @item prev
25339 Make the previous window active for scrolling.
25340
25341 @item src
25342 Make the source window active for scrolling.
25343
25344 @item asm
25345 Make the assembly window active for scrolling.
25346
25347 @item regs
25348 Make the register window active for scrolling.
25349
25350 @item cmd
25351 Make the command window active for scrolling.
25352 @end table
25353
25354 @item refresh
25355 @kindex refresh
25356 Refresh the screen. This is similar to typing @kbd{C-L}.
25357
25358 @item tui reg @var{group}
25359 @kindex tui reg
25360 Changes the register group displayed in the tui register window to
25361 @var{group}. If the register window is not currently displayed this
25362 command will cause the register window to be displayed. The list of
25363 register groups, as well as their order is target specific. The
25364 following groups are available on most targets:
25365 @table @code
25366 @item next
25367 Repeatedly selecting this group will cause the display to cycle
25368 through all of the available register groups.
25369
25370 @item prev
25371 Repeatedly selecting this group will cause the display to cycle
25372 through all of the available register groups in the reverse order to
25373 @var{next}.
25374
25375 @item general
25376 Display the general registers.
25377 @item float
25378 Display the floating point registers.
25379 @item system
25380 Display the system registers.
25381 @item vector
25382 Display the vector registers.
25383 @item all
25384 Display all registers.
25385 @end table
25386
25387 @item update
25388 @kindex update
25389 Update the source window and the current execution point.
25390
25391 @item winheight @var{name} +@var{count}
25392 @itemx winheight @var{name} -@var{count}
25393 @kindex winheight
25394 Change the height of the window @var{name} by @var{count}
25395 lines. Positive counts increase the height, while negative counts
25396 decrease it. The @var{name} parameter can be one of @code{src} (the
25397 source window), @code{cmd} (the command window), @code{asm} (the
25398 disassembly window), or @code{regs} (the register display window).
25399
25400 @item tabset @var{nchars}
25401 @kindex tabset
25402 Set the width of tab stops to be @var{nchars} characters. This
25403 setting affects the display of TAB characters in the source and
25404 assembly windows.
25405 @end table
25406
25407 @node TUI Configuration
25408 @section TUI Configuration Variables
25409 @cindex TUI configuration variables
25410
25411 Several configuration variables control the appearance of TUI windows.
25412
25413 @table @code
25414 @item set tui border-kind @var{kind}
25415 @kindex set tui border-kind
25416 Select the border appearance for the source, assembly and register windows.
25417 The possible values are the following:
25418 @table @code
25419 @item space
25420 Use a space character to draw the border.
25421
25422 @item ascii
25423 Use @sc{ascii} characters @samp{+}, @samp{-} and @samp{|} to draw the border.
25424
25425 @item acs
25426 Use the Alternate Character Set to draw the border. The border is
25427 drawn using character line graphics if the terminal supports them.
25428 @end table
25429
25430 @item set tui border-mode @var{mode}
25431 @kindex set tui border-mode
25432 @itemx set tui active-border-mode @var{mode}
25433 @kindex set tui active-border-mode
25434 Select the display attributes for the borders of the inactive windows
25435 or the active window. The @var{mode} can be one of the following:
25436 @table @code
25437 @item normal
25438 Use normal attributes to display the border.
25439
25440 @item standout
25441 Use standout mode.
25442
25443 @item reverse
25444 Use reverse video mode.
25445
25446 @item half
25447 Use half bright mode.
25448
25449 @item half-standout
25450 Use half bright and standout mode.
25451
25452 @item bold
25453 Use extra bright or bold mode.
25454
25455 @item bold-standout
25456 Use extra bright or bold and standout mode.
25457 @end table
25458 @end table
25459
25460 @node Emacs
25461 @chapter Using @value{GDBN} under @sc{gnu} Emacs
25462
25463 @cindex Emacs
25464 @cindex @sc{gnu} Emacs
25465 A special interface allows you to use @sc{gnu} Emacs to view (and
25466 edit) the source files for the program you are debugging with
25467 @value{GDBN}.
25468
25469 To use this interface, use the command @kbd{M-x gdb} in Emacs. Give the
25470 executable file you want to debug as an argument. This command starts
25471 @value{GDBN} as a subprocess of Emacs, with input and output through a newly
25472 created Emacs buffer.
25473 @c (Do not use the @code{-tui} option to run @value{GDBN} from Emacs.)
25474
25475 Running @value{GDBN} under Emacs can be just like running @value{GDBN} normally except for two
25476 things:
25477
25478 @itemize @bullet
25479 @item
25480 All ``terminal'' input and output goes through an Emacs buffer, called
25481 the GUD buffer.
25482
25483 This applies both to @value{GDBN} commands and their output, and to the input
25484 and output done by the program you are debugging.
25485
25486 This is useful because it means that you can copy the text of previous
25487 commands and input them again; you can even use parts of the output
25488 in this way.
25489
25490 All the facilities of Emacs' Shell mode are available for interacting
25491 with your program. In particular, you can send signals the usual
25492 way---for example, @kbd{C-c C-c} for an interrupt, @kbd{C-c C-z} for a
25493 stop.
25494
25495 @item
25496 @value{GDBN} displays source code through Emacs.
25497
25498 Each time @value{GDBN} displays a stack frame, Emacs automatically finds the
25499 source file for that frame and puts an arrow (@samp{=>}) at the
25500 left margin of the current line. Emacs uses a separate buffer for
25501 source display, and splits the screen to show both your @value{GDBN} session
25502 and the source.
25503
25504 Explicit @value{GDBN} @code{list} or search commands still produce output as
25505 usual, but you probably have no reason to use them from Emacs.
25506 @end itemize
25507
25508 We call this @dfn{text command mode}. Emacs 22.1, and later, also uses
25509 a graphical mode, enabled by default, which provides further buffers
25510 that can control the execution and describe the state of your program.
25511 @xref{GDB Graphical Interface,,, Emacs, The @sc{gnu} Emacs Manual}.
25512
25513 If you specify an absolute file name when prompted for the @kbd{M-x
25514 gdb} argument, then Emacs sets your current working directory to where
25515 your program resides. If you only specify the file name, then Emacs
25516 sets your current working directory to the directory associated
25517 with the previous buffer. In this case, @value{GDBN} may find your
25518 program by searching your environment's @code{PATH} variable, but on
25519 some operating systems it might not find the source. So, although the
25520 @value{GDBN} input and output session proceeds normally, the auxiliary
25521 buffer does not display the current source and line of execution.
25522
25523 The initial working directory of @value{GDBN} is printed on the top
25524 line of the GUD buffer and this serves as a default for the commands
25525 that specify files for @value{GDBN} to operate on. @xref{Files,
25526 ,Commands to Specify Files}.
25527
25528 By default, @kbd{M-x gdb} calls the program called @file{gdb}. If you
25529 need to call @value{GDBN} by a different name (for example, if you
25530 keep several configurations around, with different names) you can
25531 customize the Emacs variable @code{gud-gdb-command-name} to run the
25532 one you want.
25533
25534 In the GUD buffer, you can use these special Emacs commands in
25535 addition to the standard Shell mode commands:
25536
25537 @table @kbd
25538 @item C-h m
25539 Describe the features of Emacs' GUD Mode.
25540
25541 @item C-c C-s
25542 Execute to another source line, like the @value{GDBN} @code{step} command; also
25543 update the display window to show the current file and location.
25544
25545 @item C-c C-n
25546 Execute to next source line in this function, skipping all function
25547 calls, like the @value{GDBN} @code{next} command. Then update the display window
25548 to show the current file and location.
25549
25550 @item C-c C-i
25551 Execute one instruction, like the @value{GDBN} @code{stepi} command; update
25552 display window accordingly.
25553
25554 @item C-c C-f
25555 Execute until exit from the selected stack frame, like the @value{GDBN}
25556 @code{finish} command.
25557
25558 @item C-c C-r
25559 Continue execution of your program, like the @value{GDBN} @code{continue}
25560 command.
25561
25562 @item C-c <
25563 Go up the number of frames indicated by the numeric argument
25564 (@pxref{Arguments, , Numeric Arguments, Emacs, The @sc{gnu} Emacs Manual}),
25565 like the @value{GDBN} @code{up} command.
25566
25567 @item C-c >
25568 Go down the number of frames indicated by the numeric argument, like the
25569 @value{GDBN} @code{down} command.
25570 @end table
25571
25572 In any source file, the Emacs command @kbd{C-x @key{SPC}} (@code{gud-break})
25573 tells @value{GDBN} to set a breakpoint on the source line point is on.
25574
25575 In text command mode, if you type @kbd{M-x speedbar}, Emacs displays a
25576 separate frame which shows a backtrace when the GUD buffer is current.
25577 Move point to any frame in the stack and type @key{RET} to make it
25578 become the current frame and display the associated source in the
25579 source buffer. Alternatively, click @kbd{Mouse-2} to make the
25580 selected frame become the current one. In graphical mode, the
25581 speedbar displays watch expressions.
25582
25583 If you accidentally delete the source-display buffer, an easy way to get
25584 it back is to type the command @code{f} in the @value{GDBN} buffer, to
25585 request a frame display; when you run under Emacs, this recreates
25586 the source buffer if necessary to show you the context of the current
25587 frame.
25588
25589 The source files displayed in Emacs are in ordinary Emacs buffers
25590 which are visiting the source files in the usual way. You can edit
25591 the files with these buffers if you wish; but keep in mind that @value{GDBN}
25592 communicates with Emacs in terms of line numbers. If you add or
25593 delete lines from the text, the line numbers that @value{GDBN} knows cease
25594 to correspond properly with the code.
25595
25596 A more detailed description of Emacs' interaction with @value{GDBN} is
25597 given in the Emacs manual (@pxref{Debuggers,,, Emacs, The @sc{gnu}
25598 Emacs Manual}).
25599
25600 @node GDB/MI
25601 @chapter The @sc{gdb/mi} Interface
25602
25603 @unnumberedsec Function and Purpose
25604
25605 @cindex @sc{gdb/mi}, its purpose
25606 @sc{gdb/mi} is a line based machine oriented text interface to
25607 @value{GDBN} and is activated by specifying using the
25608 @option{--interpreter} command line option (@pxref{Mode Options}). It
25609 is specifically intended to support the development of systems which
25610 use the debugger as just one small component of a larger system.
25611
25612 This chapter is a specification of the @sc{gdb/mi} interface. It is written
25613 in the form of a reference manual.
25614
25615 Note that @sc{gdb/mi} is still under construction, so some of the
25616 features described below are incomplete and subject to change
25617 (@pxref{GDB/MI Development and Front Ends, , @sc{gdb/mi} Development and Front Ends}).
25618
25619 @unnumberedsec Notation and Terminology
25620
25621 @cindex notational conventions, for @sc{gdb/mi}
25622 This chapter uses the following notation:
25623
25624 @itemize @bullet
25625 @item
25626 @code{|} separates two alternatives.
25627
25628 @item
25629 @code{[ @var{something} ]} indicates that @var{something} is optional:
25630 it may or may not be given.
25631
25632 @item
25633 @code{( @var{group} )*} means that @var{group} inside the parentheses
25634 may repeat zero or more times.
25635
25636 @item
25637 @code{( @var{group} )+} means that @var{group} inside the parentheses
25638 may repeat one or more times.
25639
25640 @item
25641 @code{"@var{string}"} means a literal @var{string}.
25642 @end itemize
25643
25644 @ignore
25645 @heading Dependencies
25646 @end ignore
25647
25648 @menu
25649 * GDB/MI General Design::
25650 * GDB/MI Command Syntax::
25651 * GDB/MI Compatibility with CLI::
25652 * GDB/MI Development and Front Ends::
25653 * GDB/MI Output Records::
25654 * GDB/MI Simple Examples::
25655 * GDB/MI Command Description Format::
25656 * GDB/MI Breakpoint Commands::
25657 * GDB/MI Catchpoint Commands::
25658 * GDB/MI Program Context::
25659 * GDB/MI Thread Commands::
25660 * GDB/MI Ada Tasking Commands::
25661 * GDB/MI Program Execution::
25662 * GDB/MI Stack Manipulation::
25663 * GDB/MI Variable Objects::
25664 * GDB/MI Data Manipulation::
25665 * GDB/MI Tracepoint Commands::
25666 * GDB/MI Symbol Query::
25667 * GDB/MI File Commands::
25668 @ignore
25669 * GDB/MI Kod Commands::
25670 * GDB/MI Memory Overlay Commands::
25671 * GDB/MI Signal Handling Commands::
25672 @end ignore
25673 * GDB/MI Target Manipulation::
25674 * GDB/MI File Transfer Commands::
25675 * GDB/MI Ada Exceptions Commands::
25676 * GDB/MI Support Commands::
25677 * GDB/MI Miscellaneous Commands::
25678 @end menu
25679
25680 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
25681 @node GDB/MI General Design
25682 @section @sc{gdb/mi} General Design
25683 @cindex GDB/MI General Design
25684
25685 Interaction of a @sc{GDB/MI} frontend with @value{GDBN} involves three
25686 parts---commands sent to @value{GDBN}, responses to those commands
25687 and notifications. Each command results in exactly one response,
25688 indicating either successful completion of the command, or an error.
25689 For the commands that do not resume the target, the response contains the
25690 requested information. For the commands that resume the target, the
25691 response only indicates whether the target was successfully resumed.
25692 Notifications is the mechanism for reporting changes in the state of the
25693 target, or in @value{GDBN} state, that cannot conveniently be associated with
25694 a command and reported as part of that command response.
25695
25696 The important examples of notifications are:
25697 @itemize @bullet
25698
25699 @item
25700 Exec notifications. These are used to report changes in
25701 target state---when a target is resumed, or stopped. It would not
25702 be feasible to include this information in response of resuming
25703 commands, because one resume commands can result in multiple events in
25704 different threads. Also, quite some time may pass before any event
25705 happens in the target, while a frontend needs to know whether the resuming
25706 command itself was successfully executed.
25707
25708 @item
25709 Console output, and status notifications. Console output
25710 notifications are used to report output of CLI commands, as well as
25711 diagnostics for other commands. Status notifications are used to
25712 report the progress of a long-running operation. Naturally, including
25713 this information in command response would mean no output is produced
25714 until the command is finished, which is undesirable.
25715
25716 @item
25717 General notifications. Commands may have various side effects on
25718 the @value{GDBN} or target state beyond their official purpose. For example,
25719 a command may change the selected thread. Although such changes can
25720 be included in command response, using notification allows for more
25721 orthogonal frontend design.
25722
25723 @end itemize
25724
25725 There's no guarantee that whenever an MI command reports an error,
25726 @value{GDBN} or the target are in any specific state, and especially,
25727 the state is not reverted to the state before the MI command was
25728 processed. Therefore, whenever an MI command results in an error,
25729 we recommend that the frontend refreshes all the information shown in
25730 the user interface.
25731
25732
25733 @menu
25734 * Context management::
25735 * Asynchronous and non-stop modes::
25736 * Thread groups::
25737 @end menu
25738
25739 @node Context management
25740 @subsection Context management
25741
25742 @subsubsection Threads and Frames
25743
25744 In most cases when @value{GDBN} accesses the target, this access is
25745 done in context of a specific thread and frame (@pxref{Frames}).
25746 Often, even when accessing global data, the target requires that a thread
25747 be specified. The CLI interface maintains the selected thread and frame,
25748 and supplies them to target on each command. This is convenient,
25749 because a command line user would not want to specify that information
25750 explicitly on each command, and because user interacts with
25751 @value{GDBN} via a single terminal, so no confusion is possible as
25752 to what thread and frame are the current ones.
25753
25754 In the case of MI, the concept of selected thread and frame is less
25755 useful. First, a frontend can easily remember this information
25756 itself. Second, a graphical frontend can have more than one window,
25757 each one used for debugging a different thread, and the frontend might
25758 want to access additional threads for internal purposes. This
25759 increases the risk that by relying on implicitly selected thread, the
25760 frontend may be operating on a wrong one. Therefore, each MI command
25761 should explicitly specify which thread and frame to operate on. To
25762 make it possible, each MI command accepts the @samp{--thread} and
25763 @samp{--frame} options, the value to each is @value{GDBN} global
25764 identifier for thread and frame to operate on.
25765
25766 Usually, each top-level window in a frontend allows the user to select
25767 a thread and a frame, and remembers the user selection for further
25768 operations. However, in some cases @value{GDBN} may suggest that the
25769 current thread be changed. For example, when stopping on a breakpoint
25770 it is reasonable to switch to the thread where breakpoint is hit. For
25771 another example, if the user issues the CLI @samp{thread} command via
25772 the frontend, it is desirable to change the frontend's selected thread to the
25773 one specified by user. @value{GDBN} communicates the suggestion to
25774 change current thread using the @samp{=thread-selected} notification.
25775 No such notification is available for the selected frame at the moment.
25776
25777 Note that historically, MI shares the selected thread with CLI, so
25778 frontends used the @code{-thread-select} to execute commands in the
25779 right context. However, getting this to work right is cumbersome. The
25780 simplest way is for frontend to emit @code{-thread-select} command
25781 before every command. This doubles the number of commands that need
25782 to be sent. The alternative approach is to suppress @code{-thread-select}
25783 if the selected thread in @value{GDBN} is supposed to be identical to the
25784 thread the frontend wants to operate on. However, getting this
25785 optimization right can be tricky. In particular, if the frontend
25786 sends several commands to @value{GDBN}, and one of the commands changes the
25787 selected thread, then the behaviour of subsequent commands will
25788 change. So, a frontend should either wait for response from such
25789 problematic commands, or explicitly add @code{-thread-select} for
25790 all subsequent commands. No frontend is known to do this exactly
25791 right, so it is suggested to just always pass the @samp{--thread} and
25792 @samp{--frame} options.
25793
25794 @subsubsection Language
25795
25796 The execution of several commands depends on which language is selected.
25797 By default, the current language (@pxref{show language}) is used.
25798 But for commands known to be language-sensitive, it is recommended
25799 to use the @samp{--language} option. This option takes one argument,
25800 which is the name of the language to use while executing the command.
25801 For instance:
25802
25803 @smallexample
25804 -data-evaluate-expression --language c "sizeof (void*)"
25805 ^done,value="4"
25806 (gdb)
25807 @end smallexample
25808
25809 The valid language names are the same names accepted by the
25810 @samp{set language} command (@pxref{Manually}), excluding @samp{auto},
25811 @samp{local} or @samp{unknown}.
25812
25813 @node Asynchronous and non-stop modes
25814 @subsection Asynchronous command execution and non-stop mode
25815
25816 On some targets, @value{GDBN} is capable of processing MI commands
25817 even while the target is running. This is called @dfn{asynchronous
25818 command execution} (@pxref{Background Execution}). The frontend may
25819 specify a preferrence for asynchronous execution using the
25820 @code{-gdb-set mi-async 1} command, which should be emitted before
25821 either running the executable or attaching to the target. After the
25822 frontend has started the executable or attached to the target, it can
25823 find if asynchronous execution is enabled using the
25824 @code{-list-target-features} command.
25825
25826 @table @code
25827 @item -gdb-set mi-async on
25828 @item -gdb-set mi-async off
25829 Set whether MI is in asynchronous mode.
25830
25831 When @code{off}, which is the default, MI execution commands (e.g.,
25832 @code{-exec-continue}) are foreground commands, and @value{GDBN} waits
25833 for the program to stop before processing further commands.
25834
25835 When @code{on}, MI execution commands are background execution
25836 commands (e.g., @code{-exec-continue} becomes the equivalent of the
25837 @code{c&} CLI command), and so @value{GDBN} is capable of processing
25838 MI commands even while the target is running.
25839
25840 @item -gdb-show mi-async
25841 Show whether MI asynchronous mode is enabled.
25842 @end table
25843
25844 Note: In @value{GDBN} version 7.7 and earlier, this option was called
25845 @code{target-async} instead of @code{mi-async}, and it had the effect
25846 of both putting MI in asynchronous mode and making CLI background
25847 commands possible. CLI background commands are now always possible
25848 ``out of the box'' if the target supports them. The old spelling is
25849 kept as a deprecated alias for backwards compatibility.
25850
25851 Even if @value{GDBN} can accept a command while target is running,
25852 many commands that access the target do not work when the target is
25853 running. Therefore, asynchronous command execution is most useful
25854 when combined with non-stop mode (@pxref{Non-Stop Mode}). Then,
25855 it is possible to examine the state of one thread, while other threads
25856 are running.
25857
25858 When a given thread is running, MI commands that try to access the
25859 target in the context of that thread may not work, or may work only on
25860 some targets. In particular, commands that try to operate on thread's
25861 stack will not work, on any target. Commands that read memory, or
25862 modify breakpoints, may work or not work, depending on the target. Note
25863 that even commands that operate on global state, such as @code{print},
25864 @code{set}, and breakpoint commands, still access the target in the
25865 context of a specific thread, so frontend should try to find a
25866 stopped thread and perform the operation on that thread (using the
25867 @samp{--thread} option).
25868
25869 Which commands will work in the context of a running thread is
25870 highly target dependent. However, the two commands
25871 @code{-exec-interrupt}, to stop a thread, and @code{-thread-info},
25872 to find the state of a thread, will always work.
25873
25874 @node Thread groups
25875 @subsection Thread groups
25876 @value{GDBN} may be used to debug several processes at the same time.
25877 On some platfroms, @value{GDBN} may support debugging of several
25878 hardware systems, each one having several cores with several different
25879 processes running on each core. This section describes the MI
25880 mechanism to support such debugging scenarios.
25881
25882 The key observation is that regardless of the structure of the
25883 target, MI can have a global list of threads, because most commands that
25884 accept the @samp{--thread} option do not need to know what process that
25885 thread belongs to. Therefore, it is not necessary to introduce
25886 neither additional @samp{--process} option, nor an notion of the
25887 current process in the MI interface. The only strictly new feature
25888 that is required is the ability to find how the threads are grouped
25889 into processes.
25890
25891 To allow the user to discover such grouping, and to support arbitrary
25892 hierarchy of machines/cores/processes, MI introduces the concept of a
25893 @dfn{thread group}. Thread group is a collection of threads and other
25894 thread groups. A thread group always has a string identifier, a type,
25895 and may have additional attributes specific to the type. A new
25896 command, @code{-list-thread-groups}, returns the list of top-level
25897 thread groups, which correspond to processes that @value{GDBN} is
25898 debugging at the moment. By passing an identifier of a thread group
25899 to the @code{-list-thread-groups} command, it is possible to obtain
25900 the members of specific thread group.
25901
25902 To allow the user to easily discover processes, and other objects, he
25903 wishes to debug, a concept of @dfn{available thread group} is
25904 introduced. Available thread group is an thread group that
25905 @value{GDBN} is not debugging, but that can be attached to, using the
25906 @code{-target-attach} command. The list of available top-level thread
25907 groups can be obtained using @samp{-list-thread-groups --available}.
25908 In general, the content of a thread group may be only retrieved only
25909 after attaching to that thread group.
25910
25911 Thread groups are related to inferiors (@pxref{Inferiors and
25912 Programs}). Each inferior corresponds to a thread group of a special
25913 type @samp{process}, and some additional operations are permitted on
25914 such thread groups.
25915
25916 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
25917 @node GDB/MI Command Syntax
25918 @section @sc{gdb/mi} Command Syntax
25919
25920 @menu
25921 * GDB/MI Input Syntax::
25922 * GDB/MI Output Syntax::
25923 @end menu
25924
25925 @node GDB/MI Input Syntax
25926 @subsection @sc{gdb/mi} Input Syntax
25927
25928 @cindex input syntax for @sc{gdb/mi}
25929 @cindex @sc{gdb/mi}, input syntax
25930 @table @code
25931 @item @var{command} @expansion{}
25932 @code{@var{cli-command} | @var{mi-command}}
25933
25934 @item @var{cli-command} @expansion{}
25935 @code{[ @var{token} ] @var{cli-command} @var{nl}}, where
25936 @var{cli-command} is any existing @value{GDBN} CLI command.
25937
25938 @item @var{mi-command} @expansion{}
25939 @code{[ @var{token} ] "-" @var{operation} ( " " @var{option} )*
25940 @code{[} " --" @code{]} ( " " @var{parameter} )* @var{nl}}
25941
25942 @item @var{token} @expansion{}
25943 "any sequence of digits"
25944
25945 @item @var{option} @expansion{}
25946 @code{"-" @var{parameter} [ " " @var{parameter} ]}
25947
25948 @item @var{parameter} @expansion{}
25949 @code{@var{non-blank-sequence} | @var{c-string}}
25950
25951 @item @var{operation} @expansion{}
25952 @emph{any of the operations described in this chapter}
25953
25954 @item @var{non-blank-sequence} @expansion{}
25955 @emph{anything, provided it doesn't contain special characters such as
25956 "-", @var{nl}, """ and of course " "}
25957
25958 @item @var{c-string} @expansion{}
25959 @code{""" @var{seven-bit-iso-c-string-content} """}
25960
25961 @item @var{nl} @expansion{}
25962 @code{CR | CR-LF}
25963 @end table
25964
25965 @noindent
25966 Notes:
25967
25968 @itemize @bullet
25969 @item
25970 The CLI commands are still handled by the @sc{mi} interpreter; their
25971 output is described below.
25972
25973 @item
25974 The @code{@var{token}}, when present, is passed back when the command
25975 finishes.
25976
25977 @item
25978 Some @sc{mi} commands accept optional arguments as part of the parameter
25979 list. Each option is identified by a leading @samp{-} (dash) and may be
25980 followed by an optional argument parameter. Options occur first in the
25981 parameter list and can be delimited from normal parameters using
25982 @samp{--} (this is useful when some parameters begin with a dash).
25983 @end itemize
25984
25985 Pragmatics:
25986
25987 @itemize @bullet
25988 @item
25989 We want easy access to the existing CLI syntax (for debugging).
25990
25991 @item
25992 We want it to be easy to spot a @sc{mi} operation.
25993 @end itemize
25994
25995 @node GDB/MI Output Syntax
25996 @subsection @sc{gdb/mi} Output Syntax
25997
25998 @cindex output syntax of @sc{gdb/mi}
25999 @cindex @sc{gdb/mi}, output syntax
26000 The output from @sc{gdb/mi} consists of zero or more out-of-band records
26001 followed, optionally, by a single result record. This result record
26002 is for the most recent command. The sequence of output records is
26003 terminated by @samp{(gdb)}.
26004
26005 If an input command was prefixed with a @code{@var{token}} then the
26006 corresponding output for that command will also be prefixed by that same
26007 @var{token}.
26008
26009 @table @code
26010 @item @var{output} @expansion{}
26011 @code{( @var{out-of-band-record} )* [ @var{result-record} ] "(gdb)" @var{nl}}
26012
26013 @item @var{result-record} @expansion{}
26014 @code{ [ @var{token} ] "^" @var{result-class} ( "," @var{result} )* @var{nl}}
26015
26016 @item @var{out-of-band-record} @expansion{}
26017 @code{@var{async-record} | @var{stream-record}}
26018
26019 @item @var{async-record} @expansion{}
26020 @code{@var{exec-async-output} | @var{status-async-output} | @var{notify-async-output}}
26021
26022 @item @var{exec-async-output} @expansion{}
26023 @code{[ @var{token} ] "*" @var{async-output nl}}
26024
26025 @item @var{status-async-output} @expansion{}
26026 @code{[ @var{token} ] "+" @var{async-output nl}}
26027
26028 @item @var{notify-async-output} @expansion{}
26029 @code{[ @var{token} ] "=" @var{async-output nl}}
26030
26031 @item @var{async-output} @expansion{}
26032 @code{@var{async-class} ( "," @var{result} )*}
26033
26034 @item @var{result-class} @expansion{}
26035 @code{"done" | "running" | "connected" | "error" | "exit"}
26036
26037 @item @var{async-class} @expansion{}
26038 @code{"stopped" | @var{others}} (where @var{others} will be added
26039 depending on the needs---this is still in development).
26040
26041 @item @var{result} @expansion{}
26042 @code{ @var{variable} "=" @var{value}}
26043
26044 @item @var{variable} @expansion{}
26045 @code{ @var{string} }
26046
26047 @item @var{value} @expansion{}
26048 @code{ @var{const} | @var{tuple} | @var{list} }
26049
26050 @item @var{const} @expansion{}
26051 @code{@var{c-string}}
26052
26053 @item @var{tuple} @expansion{}
26054 @code{ "@{@}" | "@{" @var{result} ( "," @var{result} )* "@}" }
26055
26056 @item @var{list} @expansion{}
26057 @code{ "[]" | "[" @var{value} ( "," @var{value} )* "]" | "["
26058 @var{result} ( "," @var{result} )* "]" }
26059
26060 @item @var{stream-record} @expansion{}
26061 @code{@var{console-stream-output} | @var{target-stream-output} | @var{log-stream-output}}
26062
26063 @item @var{console-stream-output} @expansion{}
26064 @code{"~" @var{c-string nl}}
26065
26066 @item @var{target-stream-output} @expansion{}
26067 @code{"@@" @var{c-string nl}}
26068
26069 @item @var{log-stream-output} @expansion{}
26070 @code{"&" @var{c-string nl}}
26071
26072 @item @var{nl} @expansion{}
26073 @code{CR | CR-LF}
26074
26075 @item @var{token} @expansion{}
26076 @emph{any sequence of digits}.
26077 @end table
26078
26079 @noindent
26080 Notes:
26081
26082 @itemize @bullet
26083 @item
26084 All output sequences end in a single line containing a period.
26085
26086 @item
26087 The @code{@var{token}} is from the corresponding request. Note that
26088 for all async output, while the token is allowed by the grammar and
26089 may be output by future versions of @value{GDBN} for select async
26090 output messages, it is generally omitted. Frontends should treat
26091 all async output as reporting general changes in the state of the
26092 target and there should be no need to associate async output to any
26093 prior command.
26094
26095 @item
26096 @cindex status output in @sc{gdb/mi}
26097 @var{status-async-output} contains on-going status information about the
26098 progress of a slow operation. It can be discarded. All status output is
26099 prefixed by @samp{+}.
26100
26101 @item
26102 @cindex async output in @sc{gdb/mi}
26103 @var{exec-async-output} contains asynchronous state change on the target
26104 (stopped, started, disappeared). All async output is prefixed by
26105 @samp{*}.
26106
26107 @item
26108 @cindex notify output in @sc{gdb/mi}
26109 @var{notify-async-output} contains supplementary information that the
26110 client should handle (e.g., a new breakpoint information). All notify
26111 output is prefixed by @samp{=}.
26112
26113 @item
26114 @cindex console output in @sc{gdb/mi}
26115 @var{console-stream-output} is output that should be displayed as is in the
26116 console. It is the textual response to a CLI command. All the console
26117 output is prefixed by @samp{~}.
26118
26119 @item
26120 @cindex target output in @sc{gdb/mi}
26121 @var{target-stream-output} is the output produced by the target program.
26122 All the target output is prefixed by @samp{@@}.
26123
26124 @item
26125 @cindex log output in @sc{gdb/mi}
26126 @var{log-stream-output} is output text coming from @value{GDBN}'s internals, for
26127 instance messages that should be displayed as part of an error log. All
26128 the log output is prefixed by @samp{&}.
26129
26130 @item
26131 @cindex list output in @sc{gdb/mi}
26132 New @sc{gdb/mi} commands should only output @var{lists} containing
26133 @var{values}.
26134
26135
26136 @end itemize
26137
26138 @xref{GDB/MI Stream Records, , @sc{gdb/mi} Stream Records}, for more
26139 details about the various output records.
26140
26141 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
26142 @node GDB/MI Compatibility with CLI
26143 @section @sc{gdb/mi} Compatibility with CLI
26144
26145 @cindex compatibility, @sc{gdb/mi} and CLI
26146 @cindex @sc{gdb/mi}, compatibility with CLI
26147
26148 For the developers convenience CLI commands can be entered directly,
26149 but there may be some unexpected behaviour. For example, commands
26150 that query the user will behave as if the user replied yes, breakpoint
26151 command lists are not executed and some CLI commands, such as
26152 @code{if}, @code{when} and @code{define}, prompt for further input with
26153 @samp{>}, which is not valid MI output.
26154
26155 This feature may be removed at some stage in the future and it is
26156 recommended that front ends use the @code{-interpreter-exec} command
26157 (@pxref{-interpreter-exec}).
26158
26159 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
26160 @node GDB/MI Development and Front Ends
26161 @section @sc{gdb/mi} Development and Front Ends
26162 @cindex @sc{gdb/mi} development
26163
26164 The application which takes the MI output and presents the state of the
26165 program being debugged to the user is called a @dfn{front end}.
26166
26167 Although @sc{gdb/mi} is still incomplete, it is currently being used
26168 by a variety of front ends to @value{GDBN}. This makes it difficult
26169 to introduce new functionality without breaking existing usage. This
26170 section tries to minimize the problems by describing how the protocol
26171 might change.
26172
26173 Some changes in MI need not break a carefully designed front end, and
26174 for these the MI version will remain unchanged. The following is a
26175 list of changes that may occur within one level, so front ends should
26176 parse MI output in a way that can handle them:
26177
26178 @itemize @bullet
26179 @item
26180 New MI commands may be added.
26181
26182 @item
26183 New fields may be added to the output of any MI command.
26184
26185 @item
26186 The range of values for fields with specified values, e.g.,
26187 @code{in_scope} (@pxref{-var-update}) may be extended.
26188
26189 @c The format of field's content e.g type prefix, may change so parse it
26190 @c at your own risk. Yes, in general?
26191
26192 @c The order of fields may change? Shouldn't really matter but it might
26193 @c resolve inconsistencies.
26194 @end itemize
26195
26196 If the changes are likely to break front ends, the MI version level
26197 will be increased by one. This will allow the front end to parse the
26198 output according to the MI version. Apart from mi0, new versions of
26199 @value{GDBN} will not support old versions of MI and it will be the
26200 responsibility of the front end to work with the new one.
26201
26202 @c Starting with mi3, add a new command -mi-version that prints the MI
26203 @c version?
26204
26205 The best way to avoid unexpected changes in MI that might break your front
26206 end is to make your project known to @value{GDBN} developers and
26207 follow development on @email{gdb@@sourceware.org} and
26208 @email{gdb-patches@@sourceware.org}.
26209 @cindex mailing lists
26210
26211 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
26212 @node GDB/MI Output Records
26213 @section @sc{gdb/mi} Output Records
26214
26215 @menu
26216 * GDB/MI Result Records::
26217 * GDB/MI Stream Records::
26218 * GDB/MI Async Records::
26219 * GDB/MI Breakpoint Information::
26220 * GDB/MI Frame Information::
26221 * GDB/MI Thread Information::
26222 * GDB/MI Ada Exception Information::
26223 @end menu
26224
26225 @node GDB/MI Result Records
26226 @subsection @sc{gdb/mi} Result Records
26227
26228 @cindex result records in @sc{gdb/mi}
26229 @cindex @sc{gdb/mi}, result records
26230 In addition to a number of out-of-band notifications, the response to a
26231 @sc{gdb/mi} command includes one of the following result indications:
26232
26233 @table @code
26234 @findex ^done
26235 @item "^done" [ "," @var{results} ]
26236 The synchronous operation was successful, @code{@var{results}} are the return
26237 values.
26238
26239 @item "^running"
26240 @findex ^running
26241 This result record is equivalent to @samp{^done}. Historically, it
26242 was output instead of @samp{^done} if the command has resumed the
26243 target. This behaviour is maintained for backward compatibility, but
26244 all frontends should treat @samp{^done} and @samp{^running}
26245 identically and rely on the @samp{*running} output record to determine
26246 which threads are resumed.
26247
26248 @item "^connected"
26249 @findex ^connected
26250 @value{GDBN} has connected to a remote target.
26251
26252 @item "^error" "," "msg=" @var{c-string} [ "," "code=" @var{c-string} ]
26253 @findex ^error
26254 The operation failed. The @code{msg=@var{c-string}} variable contains
26255 the corresponding error message.
26256
26257 If present, the @code{code=@var{c-string}} variable provides an error
26258 code on which consumers can rely on to detect the corresponding
26259 error condition. At present, only one error code is defined:
26260
26261 @table @samp
26262 @item "undefined-command"
26263 Indicates that the command causing the error does not exist.
26264 @end table
26265
26266 @item "^exit"
26267 @findex ^exit
26268 @value{GDBN} has terminated.
26269
26270 @end table
26271
26272 @node GDB/MI Stream Records
26273 @subsection @sc{gdb/mi} Stream Records
26274
26275 @cindex @sc{gdb/mi}, stream records
26276 @cindex stream records in @sc{gdb/mi}
26277 @value{GDBN} internally maintains a number of output streams: the console, the
26278 target, and the log. The output intended for each of these streams is
26279 funneled through the @sc{gdb/mi} interface using @dfn{stream records}.
26280
26281 Each stream record begins with a unique @dfn{prefix character} which
26282 identifies its stream (@pxref{GDB/MI Output Syntax, , @sc{gdb/mi} Output
26283 Syntax}). In addition to the prefix, each stream record contains a
26284 @code{@var{string-output}}. This is either raw text (with an implicit new
26285 line) or a quoted C string (which does not contain an implicit newline).
26286
26287 @table @code
26288 @item "~" @var{string-output}
26289 The console output stream contains text that should be displayed in the
26290 CLI console window. It contains the textual responses to CLI commands.
26291
26292 @item "@@" @var{string-output}
26293 The target output stream contains any textual output from the running
26294 target. This is only present when GDB's event loop is truly
26295 asynchronous, which is currently only the case for remote targets.
26296
26297 @item "&" @var{string-output}
26298 The log stream contains debugging messages being produced by @value{GDBN}'s
26299 internals.
26300 @end table
26301
26302 @node GDB/MI Async Records
26303 @subsection @sc{gdb/mi} Async Records
26304
26305 @cindex async records in @sc{gdb/mi}
26306 @cindex @sc{gdb/mi}, async records
26307 @dfn{Async} records are used to notify the @sc{gdb/mi} client of
26308 additional changes that have occurred. Those changes can either be a
26309 consequence of @sc{gdb/mi} commands (e.g., a breakpoint modified) or a result of
26310 target activity (e.g., target stopped).
26311
26312 The following is the list of possible async records:
26313
26314 @table @code
26315
26316 @item *running,thread-id="@var{thread}"
26317 The target is now running. The @var{thread} field can be the global
26318 thread ID of the the thread that is now running, and it can be
26319 @samp{all} if all threads are running. The frontend should assume
26320 that no interaction with a running thread is possible after this
26321 notification is produced. The frontend should not assume that this
26322 notification is output only once for any command. @value{GDBN} may
26323 emit this notification several times, either for different threads,
26324 because it cannot resume all threads together, or even for a single
26325 thread, if the thread must be stepped though some code before letting
26326 it run freely.
26327
26328 @item *stopped,reason="@var{reason}",thread-id="@var{id}",stopped-threads="@var{stopped}",core="@var{core}"
26329 The target has stopped. The @var{reason} field can have one of the
26330 following values:
26331
26332 @table @code
26333 @item breakpoint-hit
26334 A breakpoint was reached.
26335 @item watchpoint-trigger
26336 A watchpoint was triggered.
26337 @item read-watchpoint-trigger
26338 A read watchpoint was triggered.
26339 @item access-watchpoint-trigger
26340 An access watchpoint was triggered.
26341 @item function-finished
26342 An -exec-finish or similar CLI command was accomplished.
26343 @item location-reached
26344 An -exec-until or similar CLI command was accomplished.
26345 @item watchpoint-scope
26346 A watchpoint has gone out of scope.
26347 @item end-stepping-range
26348 An -exec-next, -exec-next-instruction, -exec-step, -exec-step-instruction or
26349 similar CLI command was accomplished.
26350 @item exited-signalled
26351 The inferior exited because of a signal.
26352 @item exited
26353 The inferior exited.
26354 @item exited-normally
26355 The inferior exited normally.
26356 @item signal-received
26357 A signal was received by the inferior.
26358 @item solib-event
26359 The inferior has stopped due to a library being loaded or unloaded.
26360 This can happen when @code{stop-on-solib-events} (@pxref{Files}) is
26361 set or when a @code{catch load} or @code{catch unload} catchpoint is
26362 in use (@pxref{Set Catchpoints}).
26363 @item fork
26364 The inferior has forked. This is reported when @code{catch fork}
26365 (@pxref{Set Catchpoints}) has been used.
26366 @item vfork
26367 The inferior has vforked. This is reported in when @code{catch vfork}
26368 (@pxref{Set Catchpoints}) has been used.
26369 @item syscall-entry
26370 The inferior entered a system call. This is reported when @code{catch
26371 syscall} (@pxref{Set Catchpoints}) has been used.
26372 @item syscall-return
26373 The inferior returned from a system call. This is reported when
26374 @code{catch syscall} (@pxref{Set Catchpoints}) has been used.
26375 @item exec
26376 The inferior called @code{exec}. This is reported when @code{catch exec}
26377 (@pxref{Set Catchpoints}) has been used.
26378 @end table
26379
26380 The @var{id} field identifies the global thread ID of the thread
26381 that directly caused the stop -- for example by hitting a breakpoint.
26382 Depending on whether all-stop
26383 mode is in effect (@pxref{All-Stop Mode}), @value{GDBN} may either
26384 stop all threads, or only the thread that directly triggered the stop.
26385 If all threads are stopped, the @var{stopped} field will have the
26386 value of @code{"all"}. Otherwise, the value of the @var{stopped}
26387 field will be a list of thread identifiers. Presently, this list will
26388 always include a single thread, but frontend should be prepared to see
26389 several threads in the list. The @var{core} field reports the
26390 processor core on which the stop event has happened. This field may be absent
26391 if such information is not available.
26392
26393 @item =thread-group-added,id="@var{id}"
26394 @itemx =thread-group-removed,id="@var{id}"
26395 A thread group was either added or removed. The @var{id} field
26396 contains the @value{GDBN} identifier of the thread group. When a thread
26397 group is added, it generally might not be associated with a running
26398 process. When a thread group is removed, its id becomes invalid and
26399 cannot be used in any way.
26400
26401 @item =thread-group-started,id="@var{id}",pid="@var{pid}"
26402 A thread group became associated with a running program,
26403 either because the program was just started or the thread group
26404 was attached to a program. The @var{id} field contains the
26405 @value{GDBN} identifier of the thread group. The @var{pid} field
26406 contains process identifier, specific to the operating system.
26407
26408 @item =thread-group-exited,id="@var{id}"[,exit-code="@var{code}"]
26409 A thread group is no longer associated with a running program,
26410 either because the program has exited, or because it was detached
26411 from. The @var{id} field contains the @value{GDBN} identifier of the
26412 thread group. The @var{code} field is the exit code of the inferior; it exists
26413 only when the inferior exited with some code.
26414
26415 @item =thread-created,id="@var{id}",group-id="@var{gid}"
26416 @itemx =thread-exited,id="@var{id}",group-id="@var{gid}"
26417 A thread either was created, or has exited. The @var{id} field
26418 contains the global @value{GDBN} identifier of the thread. The @var{gid}
26419 field identifies the thread group this thread belongs to.
26420
26421 @item =thread-selected,id="@var{id}"
26422 Informs that the selected thread was changed as result of the last
26423 command. This notification is not emitted as result of @code{-thread-select}
26424 command but is emitted whenever an MI command that is not documented
26425 to change the selected thread actually changes it. In particular,
26426 invoking, directly or indirectly (via user-defined command), the CLI
26427 @code{thread} command, will generate this notification.
26428
26429 We suggest that in response to this notification, front ends
26430 highlight the selected thread and cause subsequent commands to apply to
26431 that thread.
26432
26433 @item =library-loaded,...
26434 Reports that a new library file was loaded by the program. This
26435 notification has 4 fields---@var{id}, @var{target-name},
26436 @var{host-name}, and @var{symbols-loaded}. The @var{id} field is an
26437 opaque identifier of the library. For remote debugging case,
26438 @var{target-name} and @var{host-name} fields give the name of the
26439 library file on the target, and on the host respectively. For native
26440 debugging, both those fields have the same value. The
26441 @var{symbols-loaded} field is emitted only for backward compatibility
26442 and should not be relied on to convey any useful information. The
26443 @var{thread-group} field, if present, specifies the id of the thread
26444 group in whose context the library was loaded. If the field is
26445 absent, it means the library was loaded in the context of all present
26446 thread groups.
26447
26448 @item =library-unloaded,...
26449 Reports that a library was unloaded by the program. This notification
26450 has 3 fields---@var{id}, @var{target-name} and @var{host-name} with
26451 the same meaning as for the @code{=library-loaded} notification.
26452 The @var{thread-group} field, if present, specifies the id of the
26453 thread group in whose context the library was unloaded. If the field is
26454 absent, it means the library was unloaded in the context of all present
26455 thread groups.
26456
26457 @item =traceframe-changed,num=@var{tfnum},tracepoint=@var{tpnum}
26458 @itemx =traceframe-changed,end
26459 Reports that the trace frame was changed and its new number is
26460 @var{tfnum}. The number of the tracepoint associated with this trace
26461 frame is @var{tpnum}.
26462
26463 @item =tsv-created,name=@var{name},initial=@var{initial}
26464 Reports that the new trace state variable @var{name} is created with
26465 initial value @var{initial}.
26466
26467 @item =tsv-deleted,name=@var{name}
26468 @itemx =tsv-deleted
26469 Reports that the trace state variable @var{name} is deleted or all
26470 trace state variables are deleted.
26471
26472 @item =tsv-modified,name=@var{name},initial=@var{initial}[,current=@var{current}]
26473 Reports that the trace state variable @var{name} is modified with
26474 the initial value @var{initial}. The current value @var{current} of
26475 trace state variable is optional and is reported if the current
26476 value of trace state variable is known.
26477
26478 @item =breakpoint-created,bkpt=@{...@}
26479 @itemx =breakpoint-modified,bkpt=@{...@}
26480 @itemx =breakpoint-deleted,id=@var{number}
26481 Reports that a breakpoint was created, modified, or deleted,
26482 respectively. Only user-visible breakpoints are reported to the MI
26483 user.
26484
26485 The @var{bkpt} argument is of the same form as returned by the various
26486 breakpoint commands; @xref{GDB/MI Breakpoint Commands}. The
26487 @var{number} is the ordinal number of the breakpoint.
26488
26489 Note that if a breakpoint is emitted in the result record of a
26490 command, then it will not also be emitted in an async record.
26491
26492 @item =record-started,thread-group="@var{id}"
26493 @itemx =record-stopped,thread-group="@var{id}"
26494 Execution log recording was either started or stopped on an
26495 inferior. The @var{id} is the @value{GDBN} identifier of the thread
26496 group corresponding to the affected inferior.
26497
26498 @item =cmd-param-changed,param=@var{param},value=@var{value}
26499 Reports that a parameter of the command @code{set @var{param}} is
26500 changed to @var{value}. In the multi-word @code{set} command,
26501 the @var{param} is the whole parameter list to @code{set} command.
26502 For example, In command @code{set check type on}, @var{param}
26503 is @code{check type} and @var{value} is @code{on}.
26504
26505 @item =memory-changed,thread-group=@var{id},addr=@var{addr},len=@var{len}[,type="code"]
26506 Reports that bytes from @var{addr} to @var{data} + @var{len} were
26507 written in an inferior. The @var{id} is the identifier of the
26508 thread group corresponding to the affected inferior. The optional
26509 @code{type="code"} part is reported if the memory written to holds
26510 executable code.
26511 @end table
26512
26513 @node GDB/MI Breakpoint Information
26514 @subsection @sc{gdb/mi} Breakpoint Information
26515
26516 When @value{GDBN} reports information about a breakpoint, a
26517 tracepoint, a watchpoint, or a catchpoint, it uses a tuple with the
26518 following fields:
26519
26520 @table @code
26521 @item number
26522 The breakpoint number. For a breakpoint that represents one location
26523 of a multi-location breakpoint, this will be a dotted pair, like
26524 @samp{1.2}.
26525
26526 @item type
26527 The type of the breakpoint. For ordinary breakpoints this will be
26528 @samp{breakpoint}, but many values are possible.
26529
26530 @item catch-type
26531 If the type of the breakpoint is @samp{catchpoint}, then this
26532 indicates the exact type of catchpoint.
26533
26534 @item disp
26535 This is the breakpoint disposition---either @samp{del}, meaning that
26536 the breakpoint will be deleted at the next stop, or @samp{keep},
26537 meaning that the breakpoint will not be deleted.
26538
26539 @item enabled
26540 This indicates whether the breakpoint is enabled, in which case the
26541 value is @samp{y}, or disabled, in which case the value is @samp{n}.
26542 Note that this is not the same as the field @code{enable}.
26543
26544 @item addr
26545 The address of the breakpoint. This may be a hexidecimal number,
26546 giving the address; or the string @samp{<PENDING>}, for a pending
26547 breakpoint; or the string @samp{<MULTIPLE>}, for a breakpoint with
26548 multiple locations. This field will not be present if no address can
26549 be determined. For example, a watchpoint does not have an address.
26550
26551 @item func
26552 If known, the function in which the breakpoint appears.
26553 If not known, this field is not present.
26554
26555 @item filename
26556 The name of the source file which contains this function, if known.
26557 If not known, this field is not present.
26558
26559 @item fullname
26560 The full file name of the source file which contains this function, if
26561 known. If not known, this field is not present.
26562
26563 @item line
26564 The line number at which this breakpoint appears, if known.
26565 If not known, this field is not present.
26566
26567 @item at
26568 If the source file is not known, this field may be provided. If
26569 provided, this holds the address of the breakpoint, possibly followed
26570 by a symbol name.
26571
26572 @item pending
26573 If this breakpoint is pending, this field is present and holds the
26574 text used to set the breakpoint, as entered by the user.
26575
26576 @item evaluated-by
26577 Where this breakpoint's condition is evaluated, either @samp{host} or
26578 @samp{target}.
26579
26580 @item thread
26581 If this is a thread-specific breakpoint, then this identifies the
26582 thread in which the breakpoint can trigger.
26583
26584 @item task
26585 If this breakpoint is restricted to a particular Ada task, then this
26586 field will hold the task identifier.
26587
26588 @item cond
26589 If the breakpoint is conditional, this is the condition expression.
26590
26591 @item ignore
26592 The ignore count of the breakpoint.
26593
26594 @item enable
26595 The enable count of the breakpoint.
26596
26597 @item traceframe-usage
26598 FIXME.
26599
26600 @item static-tracepoint-marker-string-id
26601 For a static tracepoint, the name of the static tracepoint marker.
26602
26603 @item mask
26604 For a masked watchpoint, this is the mask.
26605
26606 @item pass
26607 A tracepoint's pass count.
26608
26609 @item original-location
26610 The location of the breakpoint as originally specified by the user.
26611 This field is optional.
26612
26613 @item times
26614 The number of times the breakpoint has been hit.
26615
26616 @item installed
26617 This field is only given for tracepoints. This is either @samp{y},
26618 meaning that the tracepoint is installed, or @samp{n}, meaning that it
26619 is not.
26620
26621 @item what
26622 Some extra data, the exact contents of which are type-dependent.
26623
26624 @end table
26625
26626 For example, here is what the output of @code{-break-insert}
26627 (@pxref{GDB/MI Breakpoint Commands}) might be:
26628
26629 @smallexample
26630 -> -break-insert main
26631 <- ^done,bkpt=@{number="1",type="breakpoint",disp="keep",
26632 enabled="y",addr="0x08048564",func="main",file="myprog.c",
26633 fullname="/home/nickrob/myprog.c",line="68",thread-groups=["i1"],
26634 times="0"@}
26635 <- (gdb)
26636 @end smallexample
26637
26638 @node GDB/MI Frame Information
26639 @subsection @sc{gdb/mi} Frame Information
26640
26641 Response from many MI commands includes an information about stack
26642 frame. This information is a tuple that may have the following
26643 fields:
26644
26645 @table @code
26646 @item level
26647 The level of the stack frame. The innermost frame has the level of
26648 zero. This field is always present.
26649
26650 @item func
26651 The name of the function corresponding to the frame. This field may
26652 be absent if @value{GDBN} is unable to determine the function name.
26653
26654 @item addr
26655 The code address for the frame. This field is always present.
26656
26657 @item file
26658 The name of the source files that correspond to the frame's code
26659 address. This field may be absent.
26660
26661 @item line
26662 The source line corresponding to the frames' code address. This field
26663 may be absent.
26664
26665 @item from
26666 The name of the binary file (either executable or shared library) the
26667 corresponds to the frame's code address. This field may be absent.
26668
26669 @end table
26670
26671 @node GDB/MI Thread Information
26672 @subsection @sc{gdb/mi} Thread Information
26673
26674 Whenever @value{GDBN} has to report an information about a thread, it
26675 uses a tuple with the following fields:
26676
26677 @table @code
26678 @item id
26679 The global numeric id assigned to the thread by @value{GDBN}. This field is
26680 always present.
26681
26682 @item target-id
26683 Target-specific string identifying the thread. This field is always present.
26684
26685 @item details
26686 Additional information about the thread provided by the target.
26687 It is supposed to be human-readable and not interpreted by the
26688 frontend. This field is optional.
26689
26690 @item state
26691 Either @samp{stopped} or @samp{running}, depending on whether the
26692 thread is presently running. This field is always present.
26693
26694 @item core
26695 The value of this field is an integer number of the processor core the
26696 thread was last seen on. This field is optional.
26697 @end table
26698
26699 @node GDB/MI Ada Exception Information
26700 @subsection @sc{gdb/mi} Ada Exception Information
26701
26702 Whenever a @code{*stopped} record is emitted because the program
26703 stopped after hitting an exception catchpoint (@pxref{Set Catchpoints}),
26704 @value{GDBN} provides the name of the exception that was raised via
26705 the @code{exception-name} field.
26706
26707 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
26708 @node GDB/MI Simple Examples
26709 @section Simple Examples of @sc{gdb/mi} Interaction
26710 @cindex @sc{gdb/mi}, simple examples
26711
26712 This subsection presents several simple examples of interaction using
26713 the @sc{gdb/mi} interface. In these examples, @samp{->} means that the
26714 following line is passed to @sc{gdb/mi} as input, while @samp{<-} means
26715 the output received from @sc{gdb/mi}.
26716
26717 Note the line breaks shown in the examples are here only for
26718 readability, they don't appear in the real output.
26719
26720 @subheading Setting a Breakpoint
26721
26722 Setting a breakpoint generates synchronous output which contains detailed
26723 information of the breakpoint.
26724
26725 @smallexample
26726 -> -break-insert main
26727 <- ^done,bkpt=@{number="1",type="breakpoint",disp="keep",
26728 enabled="y",addr="0x08048564",func="main",file="myprog.c",
26729 fullname="/home/nickrob/myprog.c",line="68",thread-groups=["i1"],
26730 times="0"@}
26731 <- (gdb)
26732 @end smallexample
26733
26734 @subheading Program Execution
26735
26736 Program execution generates asynchronous records and MI gives the
26737 reason that execution stopped.
26738
26739 @smallexample
26740 -> -exec-run
26741 <- ^running
26742 <- (gdb)
26743 <- *stopped,reason="breakpoint-hit",disp="keep",bkptno="1",thread-id="0",
26744 frame=@{addr="0x08048564",func="main",
26745 args=[@{name="argc",value="1"@},@{name="argv",value="0xbfc4d4d4"@}],
26746 file="myprog.c",fullname="/home/nickrob/myprog.c",line="68"@}
26747 <- (gdb)
26748 -> -exec-continue
26749 <- ^running
26750 <- (gdb)
26751 <- *stopped,reason="exited-normally"
26752 <- (gdb)
26753 @end smallexample
26754
26755 @subheading Quitting @value{GDBN}
26756
26757 Quitting @value{GDBN} just prints the result class @samp{^exit}.
26758
26759 @smallexample
26760 -> (gdb)
26761 <- -gdb-exit
26762 <- ^exit
26763 @end smallexample
26764
26765 Please note that @samp{^exit} is printed immediately, but it might
26766 take some time for @value{GDBN} to actually exit. During that time, @value{GDBN}
26767 performs necessary cleanups, including killing programs being debugged
26768 or disconnecting from debug hardware, so the frontend should wait till
26769 @value{GDBN} exits and should only forcibly kill @value{GDBN} if it
26770 fails to exit in reasonable time.
26771
26772 @subheading A Bad Command
26773
26774 Here's what happens if you pass a non-existent command:
26775
26776 @smallexample
26777 -> -rubbish
26778 <- ^error,msg="Undefined MI command: rubbish"
26779 <- (gdb)
26780 @end smallexample
26781
26782
26783 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
26784 @node GDB/MI Command Description Format
26785 @section @sc{gdb/mi} Command Description Format
26786
26787 The remaining sections describe blocks of commands. Each block of
26788 commands is laid out in a fashion similar to this section.
26789
26790 @subheading Motivation
26791
26792 The motivation for this collection of commands.
26793
26794 @subheading Introduction
26795
26796 A brief introduction to this collection of commands as a whole.
26797
26798 @subheading Commands
26799
26800 For each command in the block, the following is described:
26801
26802 @subsubheading Synopsis
26803
26804 @smallexample
26805 -command @var{args}@dots{}
26806 @end smallexample
26807
26808 @subsubheading Result
26809
26810 @subsubheading @value{GDBN} Command
26811
26812 The corresponding @value{GDBN} CLI command(s), if any.
26813
26814 @subsubheading Example
26815
26816 Example(s) formatted for readability. Some of the described commands have
26817 not been implemented yet and these are labeled N.A.@: (not available).
26818
26819
26820 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
26821 @node GDB/MI Breakpoint Commands
26822 @section @sc{gdb/mi} Breakpoint Commands
26823
26824 @cindex breakpoint commands for @sc{gdb/mi}
26825 @cindex @sc{gdb/mi}, breakpoint commands
26826 This section documents @sc{gdb/mi} commands for manipulating
26827 breakpoints.
26828
26829 @subheading The @code{-break-after} Command
26830 @findex -break-after
26831
26832 @subsubheading Synopsis
26833
26834 @smallexample
26835 -break-after @var{number} @var{count}
26836 @end smallexample
26837
26838 The breakpoint number @var{number} is not in effect until it has been
26839 hit @var{count} times. To see how this is reflected in the output of
26840 the @samp{-break-list} command, see the description of the
26841 @samp{-break-list} command below.
26842
26843 @subsubheading @value{GDBN} Command
26844
26845 The corresponding @value{GDBN} command is @samp{ignore}.
26846
26847 @subsubheading Example
26848
26849 @smallexample
26850 (gdb)
26851 -break-insert main
26852 ^done,bkpt=@{number="1",type="breakpoint",disp="keep",
26853 enabled="y",addr="0x000100d0",func="main",file="hello.c",
26854 fullname="/home/foo/hello.c",line="5",thread-groups=["i1"],
26855 times="0"@}
26856 (gdb)
26857 -break-after 1 3
26858 ~
26859 ^done
26860 (gdb)
26861 -break-list
26862 ^done,BreakpointTable=@{nr_rows="1",nr_cols="6",
26863 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
26864 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
26865 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
26866 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
26867 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
26868 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
26869 body=[bkpt=@{number="1",type="breakpoint",disp="keep",enabled="y",
26870 addr="0x000100d0",func="main",file="hello.c",fullname="/home/foo/hello.c",
26871 line="5",thread-groups=["i1"],times="0",ignore="3"@}]@}
26872 (gdb)
26873 @end smallexample
26874
26875 @ignore
26876 @subheading The @code{-break-catch} Command
26877 @findex -break-catch
26878 @end ignore
26879
26880 @subheading The @code{-break-commands} Command
26881 @findex -break-commands
26882
26883 @subsubheading Synopsis
26884
26885 @smallexample
26886 -break-commands @var{number} [ @var{command1} ... @var{commandN} ]
26887 @end smallexample
26888
26889 Specifies the CLI commands that should be executed when breakpoint
26890 @var{number} is hit. The parameters @var{command1} to @var{commandN}
26891 are the commands. If no command is specified, any previously-set
26892 commands are cleared. @xref{Break Commands}. Typical use of this
26893 functionality is tracing a program, that is, printing of values of
26894 some variables whenever breakpoint is hit and then continuing.
26895
26896 @subsubheading @value{GDBN} Command
26897
26898 The corresponding @value{GDBN} command is @samp{commands}.
26899
26900 @subsubheading Example
26901
26902 @smallexample
26903 (gdb)
26904 -break-insert main
26905 ^done,bkpt=@{number="1",type="breakpoint",disp="keep",
26906 enabled="y",addr="0x000100d0",func="main",file="hello.c",
26907 fullname="/home/foo/hello.c",line="5",thread-groups=["i1"],
26908 times="0"@}
26909 (gdb)
26910 -break-commands 1 "print v" "continue"
26911 ^done
26912 (gdb)
26913 @end smallexample
26914
26915 @subheading The @code{-break-condition} Command
26916 @findex -break-condition
26917
26918 @subsubheading Synopsis
26919
26920 @smallexample
26921 -break-condition @var{number} @var{expr}
26922 @end smallexample
26923
26924 Breakpoint @var{number} will stop the program only if the condition in
26925 @var{expr} is true. The condition becomes part of the
26926 @samp{-break-list} output (see the description of the @samp{-break-list}
26927 command below).
26928
26929 @subsubheading @value{GDBN} Command
26930
26931 The corresponding @value{GDBN} command is @samp{condition}.
26932
26933 @subsubheading Example
26934
26935 @smallexample
26936 (gdb)
26937 -break-condition 1 1
26938 ^done
26939 (gdb)
26940 -break-list
26941 ^done,BreakpointTable=@{nr_rows="1",nr_cols="6",
26942 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
26943 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
26944 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
26945 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
26946 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
26947 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
26948 body=[bkpt=@{number="1",type="breakpoint",disp="keep",enabled="y",
26949 addr="0x000100d0",func="main",file="hello.c",fullname="/home/foo/hello.c",
26950 line="5",cond="1",thread-groups=["i1"],times="0",ignore="3"@}]@}
26951 (gdb)
26952 @end smallexample
26953
26954 @subheading The @code{-break-delete} Command
26955 @findex -break-delete
26956
26957 @subsubheading Synopsis
26958
26959 @smallexample
26960 -break-delete ( @var{breakpoint} )+
26961 @end smallexample
26962
26963 Delete the breakpoint(s) whose number(s) are specified in the argument
26964 list. This is obviously reflected in the breakpoint list.
26965
26966 @subsubheading @value{GDBN} Command
26967
26968 The corresponding @value{GDBN} command is @samp{delete}.
26969
26970 @subsubheading Example
26971
26972 @smallexample
26973 (gdb)
26974 -break-delete 1
26975 ^done
26976 (gdb)
26977 -break-list
26978 ^done,BreakpointTable=@{nr_rows="0",nr_cols="6",
26979 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
26980 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
26981 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
26982 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
26983 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
26984 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
26985 body=[]@}
26986 (gdb)
26987 @end smallexample
26988
26989 @subheading The @code{-break-disable} Command
26990 @findex -break-disable
26991
26992 @subsubheading Synopsis
26993
26994 @smallexample
26995 -break-disable ( @var{breakpoint} )+
26996 @end smallexample
26997
26998 Disable the named @var{breakpoint}(s). The field @samp{enabled} in the
26999 break list is now set to @samp{n} for the named @var{breakpoint}(s).
27000
27001 @subsubheading @value{GDBN} Command
27002
27003 The corresponding @value{GDBN} command is @samp{disable}.
27004
27005 @subsubheading Example
27006
27007 @smallexample
27008 (gdb)
27009 -break-disable 2
27010 ^done
27011 (gdb)
27012 -break-list
27013 ^done,BreakpointTable=@{nr_rows="1",nr_cols="6",
27014 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
27015 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
27016 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
27017 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
27018 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
27019 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
27020 body=[bkpt=@{number="2",type="breakpoint",disp="keep",enabled="n",
27021 addr="0x000100d0",func="main",file="hello.c",fullname="/home/foo/hello.c",
27022 line="5",thread-groups=["i1"],times="0"@}]@}
27023 (gdb)
27024 @end smallexample
27025
27026 @subheading The @code{-break-enable} Command
27027 @findex -break-enable
27028
27029 @subsubheading Synopsis
27030
27031 @smallexample
27032 -break-enable ( @var{breakpoint} )+
27033 @end smallexample
27034
27035 Enable (previously disabled) @var{breakpoint}(s).
27036
27037 @subsubheading @value{GDBN} Command
27038
27039 The corresponding @value{GDBN} command is @samp{enable}.
27040
27041 @subsubheading Example
27042
27043 @smallexample
27044 (gdb)
27045 -break-enable 2
27046 ^done
27047 (gdb)
27048 -break-list
27049 ^done,BreakpointTable=@{nr_rows="1",nr_cols="6",
27050 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
27051 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
27052 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
27053 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
27054 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
27055 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
27056 body=[bkpt=@{number="2",type="breakpoint",disp="keep",enabled="y",
27057 addr="0x000100d0",func="main",file="hello.c",fullname="/home/foo/hello.c",
27058 line="5",thread-groups=["i1"],times="0"@}]@}
27059 (gdb)
27060 @end smallexample
27061
27062 @subheading The @code{-break-info} Command
27063 @findex -break-info
27064
27065 @subsubheading Synopsis
27066
27067 @smallexample
27068 -break-info @var{breakpoint}
27069 @end smallexample
27070
27071 @c REDUNDANT???
27072 Get information about a single breakpoint.
27073
27074 The result is a table of breakpoints. @xref{GDB/MI Breakpoint
27075 Information}, for details on the format of each breakpoint in the
27076 table.
27077
27078 @subsubheading @value{GDBN} Command
27079
27080 The corresponding @value{GDBN} command is @samp{info break @var{breakpoint}}.
27081
27082 @subsubheading Example
27083 N.A.
27084
27085 @subheading The @code{-break-insert} Command
27086 @findex -break-insert
27087 @anchor{-break-insert}
27088
27089 @subsubheading Synopsis
27090
27091 @smallexample
27092 -break-insert [ -t ] [ -h ] [ -f ] [ -d ] [ -a ]
27093 [ -c @var{condition} ] [ -i @var{ignore-count} ]
27094 [ -p @var{thread-id} ] [ @var{location} ]
27095 @end smallexample
27096
27097 @noindent
27098 If specified, @var{location}, can be one of:
27099
27100 @table @var
27101 @item linespec location
27102 A linespec location. @xref{Linespec Locations}.
27103
27104 @item explicit location
27105 An explicit location. @sc{gdb/mi} explicit locations are
27106 analogous to the CLI's explicit locations using the option names
27107 listed below. @xref{Explicit Locations}.
27108
27109 @table @samp
27110 @item --source @var{filename}
27111 The source file name of the location. This option requires the use
27112 of either @samp{--function} or @samp{--line}.
27113
27114 @item --function @var{function}
27115 The name of a function or method.
27116
27117 @item --label @var{label}
27118 The name of a label.
27119
27120 @item --line @var{lineoffset}
27121 An absolute or relative line offset from the start of the location.
27122 @end table
27123
27124 @item address location
27125 An address location, *@var{address}. @xref{Address Locations}.
27126 @end table
27127
27128 @noindent
27129 The possible optional parameters of this command are:
27130
27131 @table @samp
27132 @item -t
27133 Insert a temporary breakpoint.
27134 @item -h
27135 Insert a hardware breakpoint.
27136 @item -f
27137 If @var{location} cannot be parsed (for example if it
27138 refers to unknown files or functions), create a pending
27139 breakpoint. Without this flag, @value{GDBN} will report
27140 an error, and won't create a breakpoint, if @var{location}
27141 cannot be parsed.
27142 @item -d
27143 Create a disabled breakpoint.
27144 @item -a
27145 Create a tracepoint. @xref{Tracepoints}. When this parameter
27146 is used together with @samp{-h}, a fast tracepoint is created.
27147 @item -c @var{condition}
27148 Make the breakpoint conditional on @var{condition}.
27149 @item -i @var{ignore-count}
27150 Initialize the @var{ignore-count}.
27151 @item -p @var{thread-id}
27152 Restrict the breakpoint to the thread with the specified global
27153 @var{thread-id}.
27154 @end table
27155
27156 @subsubheading Result
27157
27158 @xref{GDB/MI Breakpoint Information}, for details on the format of the
27159 resulting breakpoint.
27160
27161 Note: this format is open to change.
27162 @c An out-of-band breakpoint instead of part of the result?
27163
27164 @subsubheading @value{GDBN} Command
27165
27166 The corresponding @value{GDBN} commands are @samp{break}, @samp{tbreak},
27167 @samp{hbreak}, and @samp{thbreak}. @c and @samp{rbreak}.
27168
27169 @subsubheading Example
27170
27171 @smallexample
27172 (gdb)
27173 -break-insert main
27174 ^done,bkpt=@{number="1",addr="0x0001072c",file="recursive2.c",
27175 fullname="/home/foo/recursive2.c,line="4",thread-groups=["i1"],
27176 times="0"@}
27177 (gdb)
27178 -break-insert -t foo
27179 ^done,bkpt=@{number="2",addr="0x00010774",file="recursive2.c",
27180 fullname="/home/foo/recursive2.c,line="11",thread-groups=["i1"],
27181 times="0"@}
27182 (gdb)
27183 -break-list
27184 ^done,BreakpointTable=@{nr_rows="2",nr_cols="6",
27185 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
27186 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
27187 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
27188 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
27189 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
27190 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
27191 body=[bkpt=@{number="1",type="breakpoint",disp="keep",enabled="y",
27192 addr="0x0001072c", func="main",file="recursive2.c",
27193 fullname="/home/foo/recursive2.c,"line="4",thread-groups=["i1"],
27194 times="0"@},
27195 bkpt=@{number="2",type="breakpoint",disp="del",enabled="y",
27196 addr="0x00010774",func="foo",file="recursive2.c",
27197 fullname="/home/foo/recursive2.c",line="11",thread-groups=["i1"],
27198 times="0"@}]@}
27199 (gdb)
27200 @c -break-insert -r foo.*
27201 @c ~int foo(int, int);
27202 @c ^done,bkpt=@{number="3",addr="0x00010774",file="recursive2.c,
27203 @c "fullname="/home/foo/recursive2.c",line="11",thread-groups=["i1"],
27204 @c times="0"@}
27205 @c (gdb)
27206 @end smallexample
27207
27208 @subheading The @code{-dprintf-insert} Command
27209 @findex -dprintf-insert
27210
27211 @subsubheading Synopsis
27212
27213 @smallexample
27214 -dprintf-insert [ -t ] [ -f ] [ -d ]
27215 [ -c @var{condition} ] [ -i @var{ignore-count} ]
27216 [ -p @var{thread-id} ] [ @var{location} ] [ @var{format} ]
27217 [ @var{argument} ]
27218 @end smallexample
27219
27220 @noindent
27221 If supplied, @var{location} may be specified the same way as for
27222 the @code{-break-insert} command. @xref{-break-insert}.
27223
27224 The possible optional parameters of this command are:
27225
27226 @table @samp
27227 @item -t
27228 Insert a temporary breakpoint.
27229 @item -f
27230 If @var{location} cannot be parsed (for example, if it
27231 refers to unknown files or functions), create a pending
27232 breakpoint. Without this flag, @value{GDBN} will report
27233 an error, and won't create a breakpoint, if @var{location}
27234 cannot be parsed.
27235 @item -d
27236 Create a disabled breakpoint.
27237 @item -c @var{condition}
27238 Make the breakpoint conditional on @var{condition}.
27239 @item -i @var{ignore-count}
27240 Set the ignore count of the breakpoint (@pxref{Conditions, ignore count})
27241 to @var{ignore-count}.
27242 @item -p @var{thread-id}
27243 Restrict the breakpoint to the thread with the specified global
27244 @var{thread-id}.
27245 @end table
27246
27247 @subsubheading Result
27248
27249 @xref{GDB/MI Breakpoint Information}, for details on the format of the
27250 resulting breakpoint.
27251
27252 @c An out-of-band breakpoint instead of part of the result?
27253
27254 @subsubheading @value{GDBN} Command
27255
27256 The corresponding @value{GDBN} command is @samp{dprintf}.
27257
27258 @subsubheading Example
27259
27260 @smallexample
27261 (gdb)
27262 4-dprintf-insert foo "At foo entry\n"
27263 4^done,bkpt=@{number="1",type="dprintf",disp="keep",enabled="y",
27264 addr="0x000000000040061b",func="foo",file="mi-dprintf.c",
27265 fullname="mi-dprintf.c",line="25",thread-groups=["i1"],
27266 times="0",script=@{"printf \"At foo entry\\n\"","continue"@},
27267 original-location="foo"@}
27268 (gdb)
27269 5-dprintf-insert 26 "arg=%d, g=%d\n" arg g
27270 5^done,bkpt=@{number="2",type="dprintf",disp="keep",enabled="y",
27271 addr="0x000000000040062a",func="foo",file="mi-dprintf.c",
27272 fullname="mi-dprintf.c",line="26",thread-groups=["i1"],
27273 times="0",script=@{"printf \"arg=%d, g=%d\\n\", arg, g","continue"@},
27274 original-location="mi-dprintf.c:26"@}
27275 (gdb)
27276 @end smallexample
27277
27278 @subheading The @code{-break-list} Command
27279 @findex -break-list
27280
27281 @subsubheading Synopsis
27282
27283 @smallexample
27284 -break-list
27285 @end smallexample
27286
27287 Displays the list of inserted breakpoints, showing the following fields:
27288
27289 @table @samp
27290 @item Number
27291 number of the breakpoint
27292 @item Type
27293 type of the breakpoint: @samp{breakpoint} or @samp{watchpoint}
27294 @item Disposition
27295 should the breakpoint be deleted or disabled when it is hit: @samp{keep}
27296 or @samp{nokeep}
27297 @item Enabled
27298 is the breakpoint enabled or no: @samp{y} or @samp{n}
27299 @item Address
27300 memory location at which the breakpoint is set
27301 @item What
27302 logical location of the breakpoint, expressed by function name, file
27303 name, line number
27304 @item Thread-groups
27305 list of thread groups to which this breakpoint applies
27306 @item Times
27307 number of times the breakpoint has been hit
27308 @end table
27309
27310 If there are no breakpoints or watchpoints, the @code{BreakpointTable}
27311 @code{body} field is an empty list.
27312
27313 @subsubheading @value{GDBN} Command
27314
27315 The corresponding @value{GDBN} command is @samp{info break}.
27316
27317 @subsubheading Example
27318
27319 @smallexample
27320 (gdb)
27321 -break-list
27322 ^done,BreakpointTable=@{nr_rows="2",nr_cols="6",
27323 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
27324 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
27325 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
27326 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
27327 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
27328 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
27329 body=[bkpt=@{number="1",type="breakpoint",disp="keep",enabled="y",
27330 addr="0x000100d0",func="main",file="hello.c",line="5",thread-groups=["i1"],
27331 times="0"@},
27332 bkpt=@{number="2",type="breakpoint",disp="keep",enabled="y",
27333 addr="0x00010114",func="foo",file="hello.c",fullname="/home/foo/hello.c",
27334 line="13",thread-groups=["i1"],times="0"@}]@}
27335 (gdb)
27336 @end smallexample
27337
27338 Here's an example of the result when there are no breakpoints:
27339
27340 @smallexample
27341 (gdb)
27342 -break-list
27343 ^done,BreakpointTable=@{nr_rows="0",nr_cols="6",
27344 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
27345 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
27346 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
27347 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
27348 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
27349 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
27350 body=[]@}
27351 (gdb)
27352 @end smallexample
27353
27354 @subheading The @code{-break-passcount} Command
27355 @findex -break-passcount
27356
27357 @subsubheading Synopsis
27358
27359 @smallexample
27360 -break-passcount @var{tracepoint-number} @var{passcount}
27361 @end smallexample
27362
27363 Set the passcount for tracepoint @var{tracepoint-number} to
27364 @var{passcount}. If the breakpoint referred to by @var{tracepoint-number}
27365 is not a tracepoint, error is emitted. This corresponds to CLI
27366 command @samp{passcount}.
27367
27368 @subheading The @code{-break-watch} Command
27369 @findex -break-watch
27370
27371 @subsubheading Synopsis
27372
27373 @smallexample
27374 -break-watch [ -a | -r ]
27375 @end smallexample
27376
27377 Create a watchpoint. With the @samp{-a} option it will create an
27378 @dfn{access} watchpoint, i.e., a watchpoint that triggers either on a
27379 read from or on a write to the memory location. With the @samp{-r}
27380 option, the watchpoint created is a @dfn{read} watchpoint, i.e., it will
27381 trigger only when the memory location is accessed for reading. Without
27382 either of the options, the watchpoint created is a regular watchpoint,
27383 i.e., it will trigger when the memory location is accessed for writing.
27384 @xref{Set Watchpoints, , Setting Watchpoints}.
27385
27386 Note that @samp{-break-list} will report a single list of watchpoints and
27387 breakpoints inserted.
27388
27389 @subsubheading @value{GDBN} Command
27390
27391 The corresponding @value{GDBN} commands are @samp{watch}, @samp{awatch}, and
27392 @samp{rwatch}.
27393
27394 @subsubheading Example
27395
27396 Setting a watchpoint on a variable in the @code{main} function:
27397
27398 @smallexample
27399 (gdb)
27400 -break-watch x
27401 ^done,wpt=@{number="2",exp="x"@}
27402 (gdb)
27403 -exec-continue
27404 ^running
27405 (gdb)
27406 *stopped,reason="watchpoint-trigger",wpt=@{number="2",exp="x"@},
27407 value=@{old="-268439212",new="55"@},
27408 frame=@{func="main",args=[],file="recursive2.c",
27409 fullname="/home/foo/bar/recursive2.c",line="5"@}
27410 (gdb)
27411 @end smallexample
27412
27413 Setting a watchpoint on a variable local to a function. @value{GDBN} will stop
27414 the program execution twice: first for the variable changing value, then
27415 for the watchpoint going out of scope.
27416
27417 @smallexample
27418 (gdb)
27419 -break-watch C
27420 ^done,wpt=@{number="5",exp="C"@}
27421 (gdb)
27422 -exec-continue
27423 ^running
27424 (gdb)
27425 *stopped,reason="watchpoint-trigger",
27426 wpt=@{number="5",exp="C"@},value=@{old="-276895068",new="3"@},
27427 frame=@{func="callee4",args=[],
27428 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
27429 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="13"@}
27430 (gdb)
27431 -exec-continue
27432 ^running
27433 (gdb)
27434 *stopped,reason="watchpoint-scope",wpnum="5",
27435 frame=@{func="callee3",args=[@{name="strarg",
27436 value="0x11940 \"A string argument.\""@}],
27437 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
27438 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="18"@}
27439 (gdb)
27440 @end smallexample
27441
27442 Listing breakpoints and watchpoints, at different points in the program
27443 execution. Note that once the watchpoint goes out of scope, it is
27444 deleted.
27445
27446 @smallexample
27447 (gdb)
27448 -break-watch C
27449 ^done,wpt=@{number="2",exp="C"@}
27450 (gdb)
27451 -break-list
27452 ^done,BreakpointTable=@{nr_rows="2",nr_cols="6",
27453 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
27454 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
27455 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
27456 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
27457 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
27458 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
27459 body=[bkpt=@{number="1",type="breakpoint",disp="keep",enabled="y",
27460 addr="0x00010734",func="callee4",
27461 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
27462 fullname="/home/foo/devo/gdb/testsuite/gdb.mi/basics.c"line="8",thread-groups=["i1"],
27463 times="1"@},
27464 bkpt=@{number="2",type="watchpoint",disp="keep",
27465 enabled="y",addr="",what="C",thread-groups=["i1"],times="0"@}]@}
27466 (gdb)
27467 -exec-continue
27468 ^running
27469 (gdb)
27470 *stopped,reason="watchpoint-trigger",wpt=@{number="2",exp="C"@},
27471 value=@{old="-276895068",new="3"@},
27472 frame=@{func="callee4",args=[],
27473 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
27474 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="13"@}
27475 (gdb)
27476 -break-list
27477 ^done,BreakpointTable=@{nr_rows="2",nr_cols="6",
27478 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
27479 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
27480 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
27481 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
27482 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
27483 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
27484 body=[bkpt=@{number="1",type="breakpoint",disp="keep",enabled="y",
27485 addr="0x00010734",func="callee4",
27486 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
27487 fullname="/home/foo/devo/gdb/testsuite/gdb.mi/basics.c",line="8",thread-groups=["i1"],
27488 times="1"@},
27489 bkpt=@{number="2",type="watchpoint",disp="keep",
27490 enabled="y",addr="",what="C",thread-groups=["i1"],times="-5"@}]@}
27491 (gdb)
27492 -exec-continue
27493 ^running
27494 ^done,reason="watchpoint-scope",wpnum="2",
27495 frame=@{func="callee3",args=[@{name="strarg",
27496 value="0x11940 \"A string argument.\""@}],
27497 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
27498 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="18"@}
27499 (gdb)
27500 -break-list
27501 ^done,BreakpointTable=@{nr_rows="1",nr_cols="6",
27502 hdr=[@{width="3",alignment="-1",col_name="number",colhdr="Num"@},
27503 @{width="14",alignment="-1",col_name="type",colhdr="Type"@},
27504 @{width="4",alignment="-1",col_name="disp",colhdr="Disp"@},
27505 @{width="3",alignment="-1",col_name="enabled",colhdr="Enb"@},
27506 @{width="10",alignment="-1",col_name="addr",colhdr="Address"@},
27507 @{width="40",alignment="2",col_name="what",colhdr="What"@}],
27508 body=[bkpt=@{number="1",type="breakpoint",disp="keep",enabled="y",
27509 addr="0x00010734",func="callee4",
27510 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
27511 fullname="/home/foo/devo/gdb/testsuite/gdb.mi/basics.c",line="8",
27512 thread-groups=["i1"],times="1"@}]@}
27513 (gdb)
27514 @end smallexample
27515
27516
27517 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
27518 @node GDB/MI Catchpoint Commands
27519 @section @sc{gdb/mi} Catchpoint Commands
27520
27521 This section documents @sc{gdb/mi} commands for manipulating
27522 catchpoints.
27523
27524 @menu
27525 * Shared Library GDB/MI Catchpoint Commands::
27526 * Ada Exception GDB/MI Catchpoint Commands::
27527 @end menu
27528
27529 @node Shared Library GDB/MI Catchpoint Commands
27530 @subsection Shared Library @sc{gdb/mi} Catchpoints
27531
27532 @subheading The @code{-catch-load} Command
27533 @findex -catch-load
27534
27535 @subsubheading Synopsis
27536
27537 @smallexample
27538 -catch-load [ -t ] [ -d ] @var{regexp}
27539 @end smallexample
27540
27541 Add a catchpoint for library load events. If the @samp{-t} option is used,
27542 the catchpoint is a temporary one (@pxref{Set Breaks, ,Setting
27543 Breakpoints}). If the @samp{-d} option is used, the catchpoint is created
27544 in a disabled state. The @samp{regexp} argument is a regular
27545 expression used to match the name of the loaded library.
27546
27547
27548 @subsubheading @value{GDBN} Command
27549
27550 The corresponding @value{GDBN} command is @samp{catch load}.
27551
27552 @subsubheading Example
27553
27554 @smallexample
27555 -catch-load -t foo.so
27556 ^done,bkpt=@{number="1",type="catchpoint",disp="del",enabled="y",
27557 what="load of library matching foo.so",catch-type="load",times="0"@}
27558 (gdb)
27559 @end smallexample
27560
27561
27562 @subheading The @code{-catch-unload} Command
27563 @findex -catch-unload
27564
27565 @subsubheading Synopsis
27566
27567 @smallexample
27568 -catch-unload [ -t ] [ -d ] @var{regexp}
27569 @end smallexample
27570
27571 Add a catchpoint for library unload events. If the @samp{-t} option is
27572 used, the catchpoint is a temporary one (@pxref{Set Breaks, ,Setting
27573 Breakpoints}). If the @samp{-d} option is used, the catchpoint is
27574 created in a disabled state. The @samp{regexp} argument is a regular
27575 expression used to match the name of the unloaded library.
27576
27577 @subsubheading @value{GDBN} Command
27578
27579 The corresponding @value{GDBN} command is @samp{catch unload}.
27580
27581 @subsubheading Example
27582
27583 @smallexample
27584 -catch-unload -d bar.so
27585 ^done,bkpt=@{number="2",type="catchpoint",disp="keep",enabled="n",
27586 what="load of library matching bar.so",catch-type="unload",times="0"@}
27587 (gdb)
27588 @end smallexample
27589
27590 @node Ada Exception GDB/MI Catchpoint Commands
27591 @subsection Ada Exception @sc{gdb/mi} Catchpoints
27592
27593 The following @sc{gdb/mi} commands can be used to create catchpoints
27594 that stop the execution when Ada exceptions are being raised.
27595
27596 @subheading The @code{-catch-assert} Command
27597 @findex -catch-assert
27598
27599 @subsubheading Synopsis
27600
27601 @smallexample
27602 -catch-assert [ -c @var{condition}] [ -d ] [ -t ]
27603 @end smallexample
27604
27605 Add a catchpoint for failed Ada assertions.
27606
27607 The possible optional parameters for this command are:
27608
27609 @table @samp
27610 @item -c @var{condition}
27611 Make the catchpoint conditional on @var{condition}.
27612 @item -d
27613 Create a disabled catchpoint.
27614 @item -t
27615 Create a temporary catchpoint.
27616 @end table
27617
27618 @subsubheading @value{GDBN} Command
27619
27620 The corresponding @value{GDBN} command is @samp{catch assert}.
27621
27622 @subsubheading Example
27623
27624 @smallexample
27625 -catch-assert
27626 ^done,bkptno="5",bkpt=@{number="5",type="breakpoint",disp="keep",
27627 enabled="y",addr="0x0000000000404888",what="failed Ada assertions",
27628 thread-groups=["i1"],times="0",
27629 original-location="__gnat_debug_raise_assert_failure"@}
27630 (gdb)
27631 @end smallexample
27632
27633 @subheading The @code{-catch-exception} Command
27634 @findex -catch-exception
27635
27636 @subsubheading Synopsis
27637
27638 @smallexample
27639 -catch-exception [ -c @var{condition}] [ -d ] [ -e @var{exception-name} ]
27640 [ -t ] [ -u ]
27641 @end smallexample
27642
27643 Add a catchpoint stopping when Ada exceptions are raised.
27644 By default, the command stops the program when any Ada exception
27645 gets raised. But it is also possible, by using some of the
27646 optional parameters described below, to create more selective
27647 catchpoints.
27648
27649 The possible optional parameters for this command are:
27650
27651 @table @samp
27652 @item -c @var{condition}
27653 Make the catchpoint conditional on @var{condition}.
27654 @item -d
27655 Create a disabled catchpoint.
27656 @item -e @var{exception-name}
27657 Only stop when @var{exception-name} is raised. This option cannot
27658 be used combined with @samp{-u}.
27659 @item -t
27660 Create a temporary catchpoint.
27661 @item -u
27662 Stop only when an unhandled exception gets raised. This option
27663 cannot be used combined with @samp{-e}.
27664 @end table
27665
27666 @subsubheading @value{GDBN} Command
27667
27668 The corresponding @value{GDBN} commands are @samp{catch exception}
27669 and @samp{catch exception unhandled}.
27670
27671 @subsubheading Example
27672
27673 @smallexample
27674 -catch-exception -e Program_Error
27675 ^done,bkptno="4",bkpt=@{number="4",type="breakpoint",disp="keep",
27676 enabled="y",addr="0x0000000000404874",
27677 what="`Program_Error' Ada exception", thread-groups=["i1"],
27678 times="0",original-location="__gnat_debug_raise_exception"@}
27679 (gdb)
27680 @end smallexample
27681
27682 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
27683 @node GDB/MI Program Context
27684 @section @sc{gdb/mi} Program Context
27685
27686 @subheading The @code{-exec-arguments} Command
27687 @findex -exec-arguments
27688
27689
27690 @subsubheading Synopsis
27691
27692 @smallexample
27693 -exec-arguments @var{args}
27694 @end smallexample
27695
27696 Set the inferior program arguments, to be used in the next
27697 @samp{-exec-run}.
27698
27699 @subsubheading @value{GDBN} Command
27700
27701 The corresponding @value{GDBN} command is @samp{set args}.
27702
27703 @subsubheading Example
27704
27705 @smallexample
27706 (gdb)
27707 -exec-arguments -v word
27708 ^done
27709 (gdb)
27710 @end smallexample
27711
27712
27713 @ignore
27714 @subheading The @code{-exec-show-arguments} Command
27715 @findex -exec-show-arguments
27716
27717 @subsubheading Synopsis
27718
27719 @smallexample
27720 -exec-show-arguments
27721 @end smallexample
27722
27723 Print the arguments of the program.
27724
27725 @subsubheading @value{GDBN} Command
27726
27727 The corresponding @value{GDBN} command is @samp{show args}.
27728
27729 @subsubheading Example
27730 N.A.
27731 @end ignore
27732
27733
27734 @subheading The @code{-environment-cd} Command
27735 @findex -environment-cd
27736
27737 @subsubheading Synopsis
27738
27739 @smallexample
27740 -environment-cd @var{pathdir}
27741 @end smallexample
27742
27743 Set @value{GDBN}'s working directory.
27744
27745 @subsubheading @value{GDBN} Command
27746
27747 The corresponding @value{GDBN} command is @samp{cd}.
27748
27749 @subsubheading Example
27750
27751 @smallexample
27752 (gdb)
27753 -environment-cd /kwikemart/marge/ezannoni/flathead-dev/devo/gdb
27754 ^done
27755 (gdb)
27756 @end smallexample
27757
27758
27759 @subheading The @code{-environment-directory} Command
27760 @findex -environment-directory
27761
27762 @subsubheading Synopsis
27763
27764 @smallexample
27765 -environment-directory [ -r ] [ @var{pathdir} ]+
27766 @end smallexample
27767
27768 Add directories @var{pathdir} to beginning of search path for source files.
27769 If the @samp{-r} option is used, the search path is reset to the default
27770 search path. If directories @var{pathdir} are supplied in addition to the
27771 @samp{-r} option, the search path is first reset and then addition
27772 occurs as normal.
27773 Multiple directories may be specified, separated by blanks. Specifying
27774 multiple directories in a single command
27775 results in the directories added to the beginning of the
27776 search path in the same order they were presented in the command.
27777 If blanks are needed as
27778 part of a directory name, double-quotes should be used around
27779 the name. In the command output, the path will show up separated
27780 by the system directory-separator character. The directory-separator
27781 character must not be used
27782 in any directory name.
27783 If no directories are specified, the current search path is displayed.
27784
27785 @subsubheading @value{GDBN} Command
27786
27787 The corresponding @value{GDBN} command is @samp{dir}.
27788
27789 @subsubheading Example
27790
27791 @smallexample
27792 (gdb)
27793 -environment-directory /kwikemart/marge/ezannoni/flathead-dev/devo/gdb
27794 ^done,source-path="/kwikemart/marge/ezannoni/flathead-dev/devo/gdb:$cdir:$cwd"
27795 (gdb)
27796 -environment-directory ""
27797 ^done,source-path="/kwikemart/marge/ezannoni/flathead-dev/devo/gdb:$cdir:$cwd"
27798 (gdb)
27799 -environment-directory -r /home/jjohnstn/src/gdb /usr/src
27800 ^done,source-path="/home/jjohnstn/src/gdb:/usr/src:$cdir:$cwd"
27801 (gdb)
27802 -environment-directory -r
27803 ^done,source-path="$cdir:$cwd"
27804 (gdb)
27805 @end smallexample
27806
27807
27808 @subheading The @code{-environment-path} Command
27809 @findex -environment-path
27810
27811 @subsubheading Synopsis
27812
27813 @smallexample
27814 -environment-path [ -r ] [ @var{pathdir} ]+
27815 @end smallexample
27816
27817 Add directories @var{pathdir} to beginning of search path for object files.
27818 If the @samp{-r} option is used, the search path is reset to the original
27819 search path that existed at gdb start-up. If directories @var{pathdir} are
27820 supplied in addition to the
27821 @samp{-r} option, the search path is first reset and then addition
27822 occurs as normal.
27823 Multiple directories may be specified, separated by blanks. Specifying
27824 multiple directories in a single command
27825 results in the directories added to the beginning of the
27826 search path in the same order they were presented in the command.
27827 If blanks are needed as
27828 part of a directory name, double-quotes should be used around
27829 the name. In the command output, the path will show up separated
27830 by the system directory-separator character. The directory-separator
27831 character must not be used
27832 in any directory name.
27833 If no directories are specified, the current path is displayed.
27834
27835
27836 @subsubheading @value{GDBN} Command
27837
27838 The corresponding @value{GDBN} command is @samp{path}.
27839
27840 @subsubheading Example
27841
27842 @smallexample
27843 (gdb)
27844 -environment-path
27845 ^done,path="/usr/bin"
27846 (gdb)
27847 -environment-path /kwikemart/marge/ezannoni/flathead-dev/ppc-eabi/gdb /bin
27848 ^done,path="/kwikemart/marge/ezannoni/flathead-dev/ppc-eabi/gdb:/bin:/usr/bin"
27849 (gdb)
27850 -environment-path -r /usr/local/bin
27851 ^done,path="/usr/local/bin:/usr/bin"
27852 (gdb)
27853 @end smallexample
27854
27855
27856 @subheading The @code{-environment-pwd} Command
27857 @findex -environment-pwd
27858
27859 @subsubheading Synopsis
27860
27861 @smallexample
27862 -environment-pwd
27863 @end smallexample
27864
27865 Show the current working directory.
27866
27867 @subsubheading @value{GDBN} Command
27868
27869 The corresponding @value{GDBN} command is @samp{pwd}.
27870
27871 @subsubheading Example
27872
27873 @smallexample
27874 (gdb)
27875 -environment-pwd
27876 ^done,cwd="/kwikemart/marge/ezannoni/flathead-dev/devo/gdb"
27877 (gdb)
27878 @end smallexample
27879
27880 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
27881 @node GDB/MI Thread Commands
27882 @section @sc{gdb/mi} Thread Commands
27883
27884
27885 @subheading The @code{-thread-info} Command
27886 @findex -thread-info
27887
27888 @subsubheading Synopsis
27889
27890 @smallexample
27891 -thread-info [ @var{thread-id} ]
27892 @end smallexample
27893
27894 Reports information about either a specific thread, if the
27895 @var{thread-id} parameter is present, or about all threads.
27896 @var{thread-id} is the thread's global thread ID. When printing
27897 information about all threads, also reports the global ID of the
27898 current thread.
27899
27900 @subsubheading @value{GDBN} Command
27901
27902 The @samp{info thread} command prints the same information
27903 about all threads.
27904
27905 @subsubheading Result
27906
27907 The result is a list of threads. The following attributes are
27908 defined for a given thread:
27909
27910 @table @samp
27911 @item current
27912 This field exists only for the current thread. It has the value @samp{*}.
27913
27914 @item id
27915 The global identifier that @value{GDBN} uses to refer to the thread.
27916
27917 @item target-id
27918 The identifier that the target uses to refer to the thread.
27919
27920 @item details
27921 Extra information about the thread, in a target-specific format. This
27922 field is optional.
27923
27924 @item name
27925 The name of the thread. If the user specified a name using the
27926 @code{thread name} command, then this name is given. Otherwise, if
27927 @value{GDBN} can extract the thread name from the target, then that
27928 name is given. If @value{GDBN} cannot find the thread name, then this
27929 field is omitted.
27930
27931 @item frame
27932 The stack frame currently executing in the thread.
27933
27934 @item state
27935 The thread's state. The @samp{state} field may have the following
27936 values:
27937
27938 @table @code
27939 @item stopped
27940 The thread is stopped. Frame information is available for stopped
27941 threads.
27942
27943 @item running
27944 The thread is running. There's no frame information for running
27945 threads.
27946
27947 @end table
27948
27949 @item core
27950 If @value{GDBN} can find the CPU core on which this thread is running,
27951 then this field is the core identifier. This field is optional.
27952
27953 @end table
27954
27955 @subsubheading Example
27956
27957 @smallexample
27958 -thread-info
27959 ^done,threads=[
27960 @{id="2",target-id="Thread 0xb7e14b90 (LWP 21257)",
27961 frame=@{level="0",addr="0xffffe410",func="__kernel_vsyscall",
27962 args=[]@},state="running"@},
27963 @{id="1",target-id="Thread 0xb7e156b0 (LWP 21254)",
27964 frame=@{level="0",addr="0x0804891f",func="foo",
27965 args=[@{name="i",value="10"@}],
27966 file="/tmp/a.c",fullname="/tmp/a.c",line="158"@},
27967 state="running"@}],
27968 current-thread-id="1"
27969 (gdb)
27970 @end smallexample
27971
27972 @subheading The @code{-thread-list-ids} Command
27973 @findex -thread-list-ids
27974
27975 @subsubheading Synopsis
27976
27977 @smallexample
27978 -thread-list-ids
27979 @end smallexample
27980
27981 Produces a list of the currently known global @value{GDBN} thread ids.
27982 At the end of the list it also prints the total number of such
27983 threads.
27984
27985 This command is retained for historical reasons, the
27986 @code{-thread-info} command should be used instead.
27987
27988 @subsubheading @value{GDBN} Command
27989
27990 Part of @samp{info threads} supplies the same information.
27991
27992 @subsubheading Example
27993
27994 @smallexample
27995 (gdb)
27996 -thread-list-ids
27997 ^done,thread-ids=@{thread-id="3",thread-id="2",thread-id="1"@},
27998 current-thread-id="1",number-of-threads="3"
27999 (gdb)
28000 @end smallexample
28001
28002
28003 @subheading The @code{-thread-select} Command
28004 @findex -thread-select
28005
28006 @subsubheading Synopsis
28007
28008 @smallexample
28009 -thread-select @var{thread-id}
28010 @end smallexample
28011
28012 Make thread with global thread number @var{thread-id} the current
28013 thread. It prints the number of the new current thread, and the
28014 topmost frame for that thread.
28015
28016 This command is deprecated in favor of explicitly using the
28017 @samp{--thread} option to each command.
28018
28019 @subsubheading @value{GDBN} Command
28020
28021 The corresponding @value{GDBN} command is @samp{thread}.
28022
28023 @subsubheading Example
28024
28025 @smallexample
28026 (gdb)
28027 -exec-next
28028 ^running
28029 (gdb)
28030 *stopped,reason="end-stepping-range",thread-id="2",line="187",
28031 file="../../../devo/gdb/testsuite/gdb.threads/linux-dp.c"
28032 (gdb)
28033 -thread-list-ids
28034 ^done,
28035 thread-ids=@{thread-id="3",thread-id="2",thread-id="1"@},
28036 number-of-threads="3"
28037 (gdb)
28038 -thread-select 3
28039 ^done,new-thread-id="3",
28040 frame=@{level="0",func="vprintf",
28041 args=[@{name="format",value="0x8048e9c \"%*s%c %d %c\\n\""@},
28042 @{name="arg",value="0x2"@}],file="vprintf.c",line="31"@}
28043 (gdb)
28044 @end smallexample
28045
28046 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
28047 @node GDB/MI Ada Tasking Commands
28048 @section @sc{gdb/mi} Ada Tasking Commands
28049
28050 @subheading The @code{-ada-task-info} Command
28051 @findex -ada-task-info
28052
28053 @subsubheading Synopsis
28054
28055 @smallexample
28056 -ada-task-info [ @var{task-id} ]
28057 @end smallexample
28058
28059 Reports information about either a specific Ada task, if the
28060 @var{task-id} parameter is present, or about all Ada tasks.
28061
28062 @subsubheading @value{GDBN} Command
28063
28064 The @samp{info tasks} command prints the same information
28065 about all Ada tasks (@pxref{Ada Tasks}).
28066
28067 @subsubheading Result
28068
28069 The result is a table of Ada tasks. The following columns are
28070 defined for each Ada task:
28071
28072 @table @samp
28073 @item current
28074 This field exists only for the current thread. It has the value @samp{*}.
28075
28076 @item id
28077 The identifier that @value{GDBN} uses to refer to the Ada task.
28078
28079 @item task-id
28080 The identifier that the target uses to refer to the Ada task.
28081
28082 @item thread-id
28083 The global thread identifier of the thread corresponding to the Ada
28084 task.
28085
28086 This field should always exist, as Ada tasks are always implemented
28087 on top of a thread. But if @value{GDBN} cannot find this corresponding
28088 thread for any reason, the field is omitted.
28089
28090 @item parent-id
28091 This field exists only when the task was created by another task.
28092 In this case, it provides the ID of the parent task.
28093
28094 @item priority
28095 The base priority of the task.
28096
28097 @item state
28098 The current state of the task. For a detailed description of the
28099 possible states, see @ref{Ada Tasks}.
28100
28101 @item name
28102 The name of the task.
28103
28104 @end table
28105
28106 @subsubheading Example
28107
28108 @smallexample
28109 -ada-task-info
28110 ^done,tasks=@{nr_rows="3",nr_cols="8",
28111 hdr=[@{width="1",alignment="-1",col_name="current",colhdr=""@},
28112 @{width="3",alignment="1",col_name="id",colhdr="ID"@},
28113 @{width="9",alignment="1",col_name="task-id",colhdr="TID"@},
28114 @{width="4",alignment="1",col_name="thread-id",colhdr=""@},
28115 @{width="4",alignment="1",col_name="parent-id",colhdr="P-ID"@},
28116 @{width="3",alignment="1",col_name="priority",colhdr="Pri"@},
28117 @{width="22",alignment="-1",col_name="state",colhdr="State"@},
28118 @{width="1",alignment="2",col_name="name",colhdr="Name"@}],
28119 body=[@{current="*",id="1",task-id=" 644010",thread-id="1",priority="48",
28120 state="Child Termination Wait",name="main_task"@}]@}
28121 (gdb)
28122 @end smallexample
28123
28124 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
28125 @node GDB/MI Program Execution
28126 @section @sc{gdb/mi} Program Execution
28127
28128 These are the asynchronous commands which generate the out-of-band
28129 record @samp{*stopped}. Currently @value{GDBN} only really executes
28130 asynchronously with remote targets and this interaction is mimicked in
28131 other cases.
28132
28133 @subheading The @code{-exec-continue} Command
28134 @findex -exec-continue
28135
28136 @subsubheading Synopsis
28137
28138 @smallexample
28139 -exec-continue [--reverse] [--all|--thread-group N]
28140 @end smallexample
28141
28142 Resumes the execution of the inferior program, which will continue
28143 to execute until it reaches a debugger stop event. If the
28144 @samp{--reverse} option is specified, execution resumes in reverse until
28145 it reaches a stop event. Stop events may include
28146 @itemize @bullet
28147 @item
28148 breakpoints or watchpoints
28149 @item
28150 signals or exceptions
28151 @item
28152 the end of the process (or its beginning under @samp{--reverse})
28153 @item
28154 the end or beginning of a replay log if one is being used.
28155 @end itemize
28156 In all-stop mode (@pxref{All-Stop
28157 Mode}), may resume only one thread, or all threads, depending on the
28158 value of the @samp{scheduler-locking} variable. If @samp{--all} is
28159 specified, all threads (in all inferiors) will be resumed. The @samp{--all} option is
28160 ignored in all-stop mode. If the @samp{--thread-group} options is
28161 specified, then all threads in that thread group are resumed.
28162
28163 @subsubheading @value{GDBN} Command
28164
28165 The corresponding @value{GDBN} corresponding is @samp{continue}.
28166
28167 @subsubheading Example
28168
28169 @smallexample
28170 -exec-continue
28171 ^running
28172 (gdb)
28173 @@Hello world
28174 *stopped,reason="breakpoint-hit",disp="keep",bkptno="2",frame=@{
28175 func="foo",args=[],file="hello.c",fullname="/home/foo/bar/hello.c",
28176 line="13"@}
28177 (gdb)
28178 @end smallexample
28179
28180
28181 @subheading The @code{-exec-finish} Command
28182 @findex -exec-finish
28183
28184 @subsubheading Synopsis
28185
28186 @smallexample
28187 -exec-finish [--reverse]
28188 @end smallexample
28189
28190 Resumes the execution of the inferior program until the current
28191 function is exited. Displays the results returned by the function.
28192 If the @samp{--reverse} option is specified, resumes the reverse
28193 execution of the inferior program until the point where current
28194 function was called.
28195
28196 @subsubheading @value{GDBN} Command
28197
28198 The corresponding @value{GDBN} command is @samp{finish}.
28199
28200 @subsubheading Example
28201
28202 Function returning @code{void}.
28203
28204 @smallexample
28205 -exec-finish
28206 ^running
28207 (gdb)
28208 @@hello from foo
28209 *stopped,reason="function-finished",frame=@{func="main",args=[],
28210 file="hello.c",fullname="/home/foo/bar/hello.c",line="7"@}
28211 (gdb)
28212 @end smallexample
28213
28214 Function returning other than @code{void}. The name of the internal
28215 @value{GDBN} variable storing the result is printed, together with the
28216 value itself.
28217
28218 @smallexample
28219 -exec-finish
28220 ^running
28221 (gdb)
28222 *stopped,reason="function-finished",frame=@{addr="0x000107b0",func="foo",
28223 args=[@{name="a",value="1"],@{name="b",value="9"@}@},
28224 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28225 gdb-result-var="$1",return-value="0"
28226 (gdb)
28227 @end smallexample
28228
28229
28230 @subheading The @code{-exec-interrupt} Command
28231 @findex -exec-interrupt
28232
28233 @subsubheading Synopsis
28234
28235 @smallexample
28236 -exec-interrupt [--all|--thread-group N]
28237 @end smallexample
28238
28239 Interrupts the background execution of the target. Note how the token
28240 associated with the stop message is the one for the execution command
28241 that has been interrupted. The token for the interrupt itself only
28242 appears in the @samp{^done} output. If the user is trying to
28243 interrupt a non-running program, an error message will be printed.
28244
28245 Note that when asynchronous execution is enabled, this command is
28246 asynchronous just like other execution commands. That is, first the
28247 @samp{^done} response will be printed, and the target stop will be
28248 reported after that using the @samp{*stopped} notification.
28249
28250 In non-stop mode, only the context thread is interrupted by default.
28251 All threads (in all inferiors) will be interrupted if the
28252 @samp{--all} option is specified. If the @samp{--thread-group}
28253 option is specified, all threads in that group will be interrupted.
28254
28255 @subsubheading @value{GDBN} Command
28256
28257 The corresponding @value{GDBN} command is @samp{interrupt}.
28258
28259 @subsubheading Example
28260
28261 @smallexample
28262 (gdb)
28263 111-exec-continue
28264 111^running
28265
28266 (gdb)
28267 222-exec-interrupt
28268 222^done
28269 (gdb)
28270 111*stopped,signal-name="SIGINT",signal-meaning="Interrupt",
28271 frame=@{addr="0x00010140",func="foo",args=[],file="try.c",
28272 fullname="/home/foo/bar/try.c",line="13"@}
28273 (gdb)
28274
28275 (gdb)
28276 -exec-interrupt
28277 ^error,msg="mi_cmd_exec_interrupt: Inferior not executing."
28278 (gdb)
28279 @end smallexample
28280
28281 @subheading The @code{-exec-jump} Command
28282 @findex -exec-jump
28283
28284 @subsubheading Synopsis
28285
28286 @smallexample
28287 -exec-jump @var{location}
28288 @end smallexample
28289
28290 Resumes execution of the inferior program at the location specified by
28291 parameter. @xref{Specify Location}, for a description of the
28292 different forms of @var{location}.
28293
28294 @subsubheading @value{GDBN} Command
28295
28296 The corresponding @value{GDBN} command is @samp{jump}.
28297
28298 @subsubheading Example
28299
28300 @smallexample
28301 -exec-jump foo.c:10
28302 *running,thread-id="all"
28303 ^running
28304 @end smallexample
28305
28306
28307 @subheading The @code{-exec-next} Command
28308 @findex -exec-next
28309
28310 @subsubheading Synopsis
28311
28312 @smallexample
28313 -exec-next [--reverse]
28314 @end smallexample
28315
28316 Resumes execution of the inferior program, stopping when the beginning
28317 of the next source line is reached.
28318
28319 If the @samp{--reverse} option is specified, resumes reverse execution
28320 of the inferior program, stopping at the beginning of the previous
28321 source line. If you issue this command on the first line of a
28322 function, it will take you back to the caller of that function, to the
28323 source line where the function was called.
28324
28325
28326 @subsubheading @value{GDBN} Command
28327
28328 The corresponding @value{GDBN} command is @samp{next}.
28329
28330 @subsubheading Example
28331
28332 @smallexample
28333 -exec-next
28334 ^running
28335 (gdb)
28336 *stopped,reason="end-stepping-range",line="8",file="hello.c"
28337 (gdb)
28338 @end smallexample
28339
28340
28341 @subheading The @code{-exec-next-instruction} Command
28342 @findex -exec-next-instruction
28343
28344 @subsubheading Synopsis
28345
28346 @smallexample
28347 -exec-next-instruction [--reverse]
28348 @end smallexample
28349
28350 Executes one machine instruction. If the instruction is a function
28351 call, continues until the function returns. If the program stops at an
28352 instruction in the middle of a source line, the address will be
28353 printed as well.
28354
28355 If the @samp{--reverse} option is specified, resumes reverse execution
28356 of the inferior program, stopping at the previous instruction. If the
28357 previously executed instruction was a return from another function,
28358 it will continue to execute in reverse until the call to that function
28359 (from the current stack frame) is reached.
28360
28361 @subsubheading @value{GDBN} Command
28362
28363 The corresponding @value{GDBN} command is @samp{nexti}.
28364
28365 @subsubheading Example
28366
28367 @smallexample
28368 (gdb)
28369 -exec-next-instruction
28370 ^running
28371
28372 (gdb)
28373 *stopped,reason="end-stepping-range",
28374 addr="0x000100d4",line="5",file="hello.c"
28375 (gdb)
28376 @end smallexample
28377
28378
28379 @subheading The @code{-exec-return} Command
28380 @findex -exec-return
28381
28382 @subsubheading Synopsis
28383
28384 @smallexample
28385 -exec-return
28386 @end smallexample
28387
28388 Makes current function return immediately. Doesn't execute the inferior.
28389 Displays the new current frame.
28390
28391 @subsubheading @value{GDBN} Command
28392
28393 The corresponding @value{GDBN} command is @samp{return}.
28394
28395 @subsubheading Example
28396
28397 @smallexample
28398 (gdb)
28399 200-break-insert callee4
28400 200^done,bkpt=@{number="1",addr="0x00010734",
28401 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",line="8"@}
28402 (gdb)
28403 000-exec-run
28404 000^running
28405 (gdb)
28406 000*stopped,reason="breakpoint-hit",disp="keep",bkptno="1",
28407 frame=@{func="callee4",args=[],
28408 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
28409 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="8"@}
28410 (gdb)
28411 205-break-delete
28412 205^done
28413 (gdb)
28414 111-exec-return
28415 111^done,frame=@{level="0",func="callee3",
28416 args=[@{name="strarg",
28417 value="0x11940 \"A string argument.\""@}],
28418 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
28419 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="18"@}
28420 (gdb)
28421 @end smallexample
28422
28423
28424 @subheading The @code{-exec-run} Command
28425 @findex -exec-run
28426
28427 @subsubheading Synopsis
28428
28429 @smallexample
28430 -exec-run [ --all | --thread-group N ] [ --start ]
28431 @end smallexample
28432
28433 Starts execution of the inferior from the beginning. The inferior
28434 executes until either a breakpoint is encountered or the program
28435 exits. In the latter case the output will include an exit code, if
28436 the program has exited exceptionally.
28437
28438 When neither the @samp{--all} nor the @samp{--thread-group} option
28439 is specified, the current inferior is started. If the
28440 @samp{--thread-group} option is specified, it should refer to a thread
28441 group of type @samp{process}, and that thread group will be started.
28442 If the @samp{--all} option is specified, then all inferiors will be started.
28443
28444 Using the @samp{--start} option instructs the debugger to stop
28445 the execution at the start of the inferior's main subprogram,
28446 following the same behavior as the @code{start} command
28447 (@pxref{Starting}).
28448
28449 @subsubheading @value{GDBN} Command
28450
28451 The corresponding @value{GDBN} command is @samp{run}.
28452
28453 @subsubheading Examples
28454
28455 @smallexample
28456 (gdb)
28457 -break-insert main
28458 ^done,bkpt=@{number="1",addr="0x0001072c",file="recursive2.c",line="4"@}
28459 (gdb)
28460 -exec-run
28461 ^running
28462 (gdb)
28463 *stopped,reason="breakpoint-hit",disp="keep",bkptno="1",
28464 frame=@{func="main",args=[],file="recursive2.c",
28465 fullname="/home/foo/bar/recursive2.c",line="4"@}
28466 (gdb)
28467 @end smallexample
28468
28469 @noindent
28470 Program exited normally:
28471
28472 @smallexample
28473 (gdb)
28474 -exec-run
28475 ^running
28476 (gdb)
28477 x = 55
28478 *stopped,reason="exited-normally"
28479 (gdb)
28480 @end smallexample
28481
28482 @noindent
28483 Program exited exceptionally:
28484
28485 @smallexample
28486 (gdb)
28487 -exec-run
28488 ^running
28489 (gdb)
28490 x = 55
28491 *stopped,reason="exited",exit-code="01"
28492 (gdb)
28493 @end smallexample
28494
28495 Another way the program can terminate is if it receives a signal such as
28496 @code{SIGINT}. In this case, @sc{gdb/mi} displays this:
28497
28498 @smallexample
28499 (gdb)
28500 *stopped,reason="exited-signalled",signal-name="SIGINT",
28501 signal-meaning="Interrupt"
28502 @end smallexample
28503
28504
28505 @c @subheading -exec-signal
28506
28507
28508 @subheading The @code{-exec-step} Command
28509 @findex -exec-step
28510
28511 @subsubheading Synopsis
28512
28513 @smallexample
28514 -exec-step [--reverse]
28515 @end smallexample
28516
28517 Resumes execution of the inferior program, stopping when the beginning
28518 of the next source line is reached, if the next source line is not a
28519 function call. If it is, stop at the first instruction of the called
28520 function. If the @samp{--reverse} option is specified, resumes reverse
28521 execution of the inferior program, stopping at the beginning of the
28522 previously executed source line.
28523
28524 @subsubheading @value{GDBN} Command
28525
28526 The corresponding @value{GDBN} command is @samp{step}.
28527
28528 @subsubheading Example
28529
28530 Stepping into a function:
28531
28532 @smallexample
28533 -exec-step
28534 ^running
28535 (gdb)
28536 *stopped,reason="end-stepping-range",
28537 frame=@{func="foo",args=[@{name="a",value="10"@},
28538 @{name="b",value="0"@}],file="recursive2.c",
28539 fullname="/home/foo/bar/recursive2.c",line="11"@}
28540 (gdb)
28541 @end smallexample
28542
28543 Regular stepping:
28544
28545 @smallexample
28546 -exec-step
28547 ^running
28548 (gdb)
28549 *stopped,reason="end-stepping-range",line="14",file="recursive2.c"
28550 (gdb)
28551 @end smallexample
28552
28553
28554 @subheading The @code{-exec-step-instruction} Command
28555 @findex -exec-step-instruction
28556
28557 @subsubheading Synopsis
28558
28559 @smallexample
28560 -exec-step-instruction [--reverse]
28561 @end smallexample
28562
28563 Resumes the inferior which executes one machine instruction. If the
28564 @samp{--reverse} option is specified, resumes reverse execution of the
28565 inferior program, stopping at the previously executed instruction.
28566 The output, once @value{GDBN} has stopped, will vary depending on
28567 whether we have stopped in the middle of a source line or not. In the
28568 former case, the address at which the program stopped will be printed
28569 as well.
28570
28571 @subsubheading @value{GDBN} Command
28572
28573 The corresponding @value{GDBN} command is @samp{stepi}.
28574
28575 @subsubheading Example
28576
28577 @smallexample
28578 (gdb)
28579 -exec-step-instruction
28580 ^running
28581
28582 (gdb)
28583 *stopped,reason="end-stepping-range",
28584 frame=@{func="foo",args=[],file="try.c",
28585 fullname="/home/foo/bar/try.c",line="10"@}
28586 (gdb)
28587 -exec-step-instruction
28588 ^running
28589
28590 (gdb)
28591 *stopped,reason="end-stepping-range",
28592 frame=@{addr="0x000100f4",func="foo",args=[],file="try.c",
28593 fullname="/home/foo/bar/try.c",line="10"@}
28594 (gdb)
28595 @end smallexample
28596
28597
28598 @subheading The @code{-exec-until} Command
28599 @findex -exec-until
28600
28601 @subsubheading Synopsis
28602
28603 @smallexample
28604 -exec-until [ @var{location} ]
28605 @end smallexample
28606
28607 Executes the inferior until the @var{location} specified in the
28608 argument is reached. If there is no argument, the inferior executes
28609 until a source line greater than the current one is reached. The
28610 reason for stopping in this case will be @samp{location-reached}.
28611
28612 @subsubheading @value{GDBN} Command
28613
28614 The corresponding @value{GDBN} command is @samp{until}.
28615
28616 @subsubheading Example
28617
28618 @smallexample
28619 (gdb)
28620 -exec-until recursive2.c:6
28621 ^running
28622 (gdb)
28623 x = 55
28624 *stopped,reason="location-reached",frame=@{func="main",args=[],
28625 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="6"@}
28626 (gdb)
28627 @end smallexample
28628
28629 @ignore
28630 @subheading -file-clear
28631 Is this going away????
28632 @end ignore
28633
28634 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
28635 @node GDB/MI Stack Manipulation
28636 @section @sc{gdb/mi} Stack Manipulation Commands
28637
28638 @subheading The @code{-enable-frame-filters} Command
28639 @findex -enable-frame-filters
28640
28641 @smallexample
28642 -enable-frame-filters
28643 @end smallexample
28644
28645 @value{GDBN} allows Python-based frame filters to affect the output of
28646 the MI commands relating to stack traces. As there is no way to
28647 implement this in a fully backward-compatible way, a front end must
28648 request that this functionality be enabled.
28649
28650 Once enabled, this feature cannot be disabled.
28651
28652 Note that if Python support has not been compiled into @value{GDBN},
28653 this command will still succeed (and do nothing).
28654
28655 @subheading The @code{-stack-info-frame} Command
28656 @findex -stack-info-frame
28657
28658 @subsubheading Synopsis
28659
28660 @smallexample
28661 -stack-info-frame
28662 @end smallexample
28663
28664 Get info on the selected frame.
28665
28666 @subsubheading @value{GDBN} Command
28667
28668 The corresponding @value{GDBN} command is @samp{info frame} or @samp{frame}
28669 (without arguments).
28670
28671 @subsubheading Example
28672
28673 @smallexample
28674 (gdb)
28675 -stack-info-frame
28676 ^done,frame=@{level="1",addr="0x0001076c",func="callee3",
28677 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
28678 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="17"@}
28679 (gdb)
28680 @end smallexample
28681
28682 @subheading The @code{-stack-info-depth} Command
28683 @findex -stack-info-depth
28684
28685 @subsubheading Synopsis
28686
28687 @smallexample
28688 -stack-info-depth [ @var{max-depth} ]
28689 @end smallexample
28690
28691 Return the depth of the stack. If the integer argument @var{max-depth}
28692 is specified, do not count beyond @var{max-depth} frames.
28693
28694 @subsubheading @value{GDBN} Command
28695
28696 There's no equivalent @value{GDBN} command.
28697
28698 @subsubheading Example
28699
28700 For a stack with frame levels 0 through 11:
28701
28702 @smallexample
28703 (gdb)
28704 -stack-info-depth
28705 ^done,depth="12"
28706 (gdb)
28707 -stack-info-depth 4
28708 ^done,depth="4"
28709 (gdb)
28710 -stack-info-depth 12
28711 ^done,depth="12"
28712 (gdb)
28713 -stack-info-depth 11
28714 ^done,depth="11"
28715 (gdb)
28716 -stack-info-depth 13
28717 ^done,depth="12"
28718 (gdb)
28719 @end smallexample
28720
28721 @anchor{-stack-list-arguments}
28722 @subheading The @code{-stack-list-arguments} Command
28723 @findex -stack-list-arguments
28724
28725 @subsubheading Synopsis
28726
28727 @smallexample
28728 -stack-list-arguments [ --no-frame-filters ] [ --skip-unavailable ] @var{print-values}
28729 [ @var{low-frame} @var{high-frame} ]
28730 @end smallexample
28731
28732 Display a list of the arguments for the frames between @var{low-frame}
28733 and @var{high-frame} (inclusive). If @var{low-frame} and
28734 @var{high-frame} are not provided, list the arguments for the whole
28735 call stack. If the two arguments are equal, show the single frame
28736 at the corresponding level. It is an error if @var{low-frame} is
28737 larger than the actual number of frames. On the other hand,
28738 @var{high-frame} may be larger than the actual number of frames, in
28739 which case only existing frames will be returned.
28740
28741 If @var{print-values} is 0 or @code{--no-values}, print only the names of
28742 the variables; if it is 1 or @code{--all-values}, print also their
28743 values; and if it is 2 or @code{--simple-values}, print the name,
28744 type and value for simple data types, and the name and type for arrays,
28745 structures and unions. If the option @code{--no-frame-filters} is
28746 supplied, then Python frame filters will not be executed.
28747
28748 If the @code{--skip-unavailable} option is specified, arguments that
28749 are not available are not listed. Partially available arguments
28750 are still displayed, however.
28751
28752 Use of this command to obtain arguments in a single frame is
28753 deprecated in favor of the @samp{-stack-list-variables} command.
28754
28755 @subsubheading @value{GDBN} Command
28756
28757 @value{GDBN} does not have an equivalent command. @code{gdbtk} has a
28758 @samp{gdb_get_args} command which partially overlaps with the
28759 functionality of @samp{-stack-list-arguments}.
28760
28761 @subsubheading Example
28762
28763 @smallexample
28764 (gdb)
28765 -stack-list-frames
28766 ^done,
28767 stack=[
28768 frame=@{level="0",addr="0x00010734",func="callee4",
28769 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
28770 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="8"@},
28771 frame=@{level="1",addr="0x0001076c",func="callee3",
28772 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
28773 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="17"@},
28774 frame=@{level="2",addr="0x0001078c",func="callee2",
28775 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
28776 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="22"@},
28777 frame=@{level="3",addr="0x000107b4",func="callee1",
28778 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
28779 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="27"@},
28780 frame=@{level="4",addr="0x000107e0",func="main",
28781 file="../../../devo/gdb/testsuite/gdb.mi/basics.c",
28782 fullname="/home/foo/bar/devo/gdb/testsuite/gdb.mi/basics.c",line="32"@}]
28783 (gdb)
28784 -stack-list-arguments 0
28785 ^done,
28786 stack-args=[
28787 frame=@{level="0",args=[]@},
28788 frame=@{level="1",args=[name="strarg"]@},
28789 frame=@{level="2",args=[name="intarg",name="strarg"]@},
28790 frame=@{level="3",args=[name="intarg",name="strarg",name="fltarg"]@},
28791 frame=@{level="4",args=[]@}]
28792 (gdb)
28793 -stack-list-arguments 1
28794 ^done,
28795 stack-args=[
28796 frame=@{level="0",args=[]@},
28797 frame=@{level="1",
28798 args=[@{name="strarg",value="0x11940 \"A string argument.\""@}]@},
28799 frame=@{level="2",args=[
28800 @{name="intarg",value="2"@},
28801 @{name="strarg",value="0x11940 \"A string argument.\""@}]@},
28802 @{frame=@{level="3",args=[
28803 @{name="intarg",value="2"@},
28804 @{name="strarg",value="0x11940 \"A string argument.\""@},
28805 @{name="fltarg",value="3.5"@}]@},
28806 frame=@{level="4",args=[]@}]
28807 (gdb)
28808 -stack-list-arguments 0 2 2
28809 ^done,stack-args=[frame=@{level="2",args=[name="intarg",name="strarg"]@}]
28810 (gdb)
28811 -stack-list-arguments 1 2 2
28812 ^done,stack-args=[frame=@{level="2",
28813 args=[@{name="intarg",value="2"@},
28814 @{name="strarg",value="0x11940 \"A string argument.\""@}]@}]
28815 (gdb)
28816 @end smallexample
28817
28818 @c @subheading -stack-list-exception-handlers
28819
28820
28821 @anchor{-stack-list-frames}
28822 @subheading The @code{-stack-list-frames} Command
28823 @findex -stack-list-frames
28824
28825 @subsubheading Synopsis
28826
28827 @smallexample
28828 -stack-list-frames [ --no-frame-filters @var{low-frame} @var{high-frame} ]
28829 @end smallexample
28830
28831 List the frames currently on the stack. For each frame it displays the
28832 following info:
28833
28834 @table @samp
28835 @item @var{level}
28836 The frame number, 0 being the topmost frame, i.e., the innermost function.
28837 @item @var{addr}
28838 The @code{$pc} value for that frame.
28839 @item @var{func}
28840 Function name.
28841 @item @var{file}
28842 File name of the source file where the function lives.
28843 @item @var{fullname}
28844 The full file name of the source file where the function lives.
28845 @item @var{line}
28846 Line number corresponding to the @code{$pc}.
28847 @item @var{from}
28848 The shared library where this function is defined. This is only given
28849 if the frame's function is not known.
28850 @end table
28851
28852 If invoked without arguments, this command prints a backtrace for the
28853 whole stack. If given two integer arguments, it shows the frames whose
28854 levels are between the two arguments (inclusive). If the two arguments
28855 are equal, it shows the single frame at the corresponding level. It is
28856 an error if @var{low-frame} is larger than the actual number of
28857 frames. On the other hand, @var{high-frame} may be larger than the
28858 actual number of frames, in which case only existing frames will be
28859 returned. If the option @code{--no-frame-filters} is supplied, then
28860 Python frame filters will not be executed.
28861
28862 @subsubheading @value{GDBN} Command
28863
28864 The corresponding @value{GDBN} commands are @samp{backtrace} and @samp{where}.
28865
28866 @subsubheading Example
28867
28868 Full stack backtrace:
28869
28870 @smallexample
28871 (gdb)
28872 -stack-list-frames
28873 ^done,stack=
28874 [frame=@{level="0",addr="0x0001076c",func="foo",
28875 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="11"@},
28876 frame=@{level="1",addr="0x000107a4",func="foo",
28877 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28878 frame=@{level="2",addr="0x000107a4",func="foo",
28879 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28880 frame=@{level="3",addr="0x000107a4",func="foo",
28881 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28882 frame=@{level="4",addr="0x000107a4",func="foo",
28883 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28884 frame=@{level="5",addr="0x000107a4",func="foo",
28885 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28886 frame=@{level="6",addr="0x000107a4",func="foo",
28887 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28888 frame=@{level="7",addr="0x000107a4",func="foo",
28889 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28890 frame=@{level="8",addr="0x000107a4",func="foo",
28891 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28892 frame=@{level="9",addr="0x000107a4",func="foo",
28893 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28894 frame=@{level="10",addr="0x000107a4",func="foo",
28895 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28896 frame=@{level="11",addr="0x00010738",func="main",
28897 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="4"@}]
28898 (gdb)
28899 @end smallexample
28900
28901 Show frames between @var{low_frame} and @var{high_frame}:
28902
28903 @smallexample
28904 (gdb)
28905 -stack-list-frames 3 5
28906 ^done,stack=
28907 [frame=@{level="3",addr="0x000107a4",func="foo",
28908 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28909 frame=@{level="4",addr="0x000107a4",func="foo",
28910 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@},
28911 frame=@{level="5",addr="0x000107a4",func="foo",
28912 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@}]
28913 (gdb)
28914 @end smallexample
28915
28916 Show a single frame:
28917
28918 @smallexample
28919 (gdb)
28920 -stack-list-frames 3 3
28921 ^done,stack=
28922 [frame=@{level="3",addr="0x000107a4",func="foo",
28923 file="recursive2.c",fullname="/home/foo/bar/recursive2.c",line="14"@}]
28924 (gdb)
28925 @end smallexample
28926
28927
28928 @subheading The @code{-stack-list-locals} Command
28929 @findex -stack-list-locals
28930 @anchor{-stack-list-locals}
28931
28932 @subsubheading Synopsis
28933
28934 @smallexample
28935 -stack-list-locals [ --no-frame-filters ] [ --skip-unavailable ] @var{print-values}
28936 @end smallexample
28937
28938 Display the local variable names for the selected frame. If
28939 @var{print-values} is 0 or @code{--no-values}, print only the names of
28940 the variables; if it is 1 or @code{--all-values}, print also their
28941 values; and if it is 2 or @code{--simple-values}, print the name,
28942 type and value for simple data types, and the name and type for arrays,
28943 structures and unions. In this last case, a frontend can immediately
28944 display the value of simple data types and create variable objects for
28945 other data types when the user wishes to explore their values in
28946 more detail. If the option @code{--no-frame-filters} is supplied, then
28947 Python frame filters will not be executed.
28948
28949 If the @code{--skip-unavailable} option is specified, local variables
28950 that are not available are not listed. Partially available local
28951 variables are still displayed, however.
28952
28953 This command is deprecated in favor of the
28954 @samp{-stack-list-variables} command.
28955
28956 @subsubheading @value{GDBN} Command
28957
28958 @samp{info locals} in @value{GDBN}, @samp{gdb_get_locals} in @code{gdbtk}.
28959
28960 @subsubheading Example
28961
28962 @smallexample
28963 (gdb)
28964 -stack-list-locals 0
28965 ^done,locals=[name="A",name="B",name="C"]
28966 (gdb)
28967 -stack-list-locals --all-values
28968 ^done,locals=[@{name="A",value="1"@},@{name="B",value="2"@},
28969 @{name="C",value="@{1, 2, 3@}"@}]
28970 -stack-list-locals --simple-values
28971 ^done,locals=[@{name="A",type="int",value="1"@},
28972 @{name="B",type="int",value="2"@},@{name="C",type="int [3]"@}]
28973 (gdb)
28974 @end smallexample
28975
28976 @anchor{-stack-list-variables}
28977 @subheading The @code{-stack-list-variables} Command
28978 @findex -stack-list-variables
28979
28980 @subsubheading Synopsis
28981
28982 @smallexample
28983 -stack-list-variables [ --no-frame-filters ] [ --skip-unavailable ] @var{print-values}
28984 @end smallexample
28985
28986 Display the names of local variables and function arguments for the selected frame. If
28987 @var{print-values} is 0 or @code{--no-values}, print only the names of
28988 the variables; if it is 1 or @code{--all-values}, print also their
28989 values; and if it is 2 or @code{--simple-values}, print the name,
28990 type and value for simple data types, and the name and type for arrays,
28991 structures and unions. If the option @code{--no-frame-filters} is
28992 supplied, then Python frame filters will not be executed.
28993
28994 If the @code{--skip-unavailable} option is specified, local variables
28995 and arguments that are not available are not listed. Partially
28996 available arguments and local variables are still displayed, however.
28997
28998 @subsubheading Example
28999
29000 @smallexample
29001 (gdb)
29002 -stack-list-variables --thread 1 --frame 0 --all-values
29003 ^done,variables=[@{name="x",value="11"@},@{name="s",value="@{a = 1, b = 2@}"@}]
29004 (gdb)
29005 @end smallexample
29006
29007
29008 @subheading The @code{-stack-select-frame} Command
29009 @findex -stack-select-frame
29010
29011 @subsubheading Synopsis
29012
29013 @smallexample
29014 -stack-select-frame @var{framenum}
29015 @end smallexample
29016
29017 Change the selected frame. Select a different frame @var{framenum} on
29018 the stack.
29019
29020 This command in deprecated in favor of passing the @samp{--frame}
29021 option to every command.
29022
29023 @subsubheading @value{GDBN} Command
29024
29025 The corresponding @value{GDBN} commands are @samp{frame}, @samp{up},
29026 @samp{down}, @samp{select-frame}, @samp{up-silent}, and @samp{down-silent}.
29027
29028 @subsubheading Example
29029
29030 @smallexample
29031 (gdb)
29032 -stack-select-frame 2
29033 ^done
29034 (gdb)
29035 @end smallexample
29036
29037 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
29038 @node GDB/MI Variable Objects
29039 @section @sc{gdb/mi} Variable Objects
29040
29041 @ignore
29042
29043 @subheading Motivation for Variable Objects in @sc{gdb/mi}
29044
29045 For the implementation of a variable debugger window (locals, watched
29046 expressions, etc.), we are proposing the adaptation of the existing code
29047 used by @code{Insight}.
29048
29049 The two main reasons for that are:
29050
29051 @enumerate 1
29052 @item
29053 It has been proven in practice (it is already on its second generation).
29054
29055 @item
29056 It will shorten development time (needless to say how important it is
29057 now).
29058 @end enumerate
29059
29060 The original interface was designed to be used by Tcl code, so it was
29061 slightly changed so it could be used through @sc{gdb/mi}. This section
29062 describes the @sc{gdb/mi} operations that will be available and gives some
29063 hints about their use.
29064
29065 @emph{Note}: In addition to the set of operations described here, we
29066 expect the @sc{gui} implementation of a variable window to require, at
29067 least, the following operations:
29068
29069 @itemize @bullet
29070 @item @code{-gdb-show} @code{output-radix}
29071 @item @code{-stack-list-arguments}
29072 @item @code{-stack-list-locals}
29073 @item @code{-stack-select-frame}
29074 @end itemize
29075
29076 @end ignore
29077
29078 @subheading Introduction to Variable Objects
29079
29080 @cindex variable objects in @sc{gdb/mi}
29081
29082 Variable objects are "object-oriented" MI interface for examining and
29083 changing values of expressions. Unlike some other MI interfaces that
29084 work with expressions, variable objects are specifically designed for
29085 simple and efficient presentation in the frontend. A variable object
29086 is identified by string name. When a variable object is created, the
29087 frontend specifies the expression for that variable object. The
29088 expression can be a simple variable, or it can be an arbitrary complex
29089 expression, and can even involve CPU registers. After creating a
29090 variable object, the frontend can invoke other variable object
29091 operations---for example to obtain or change the value of a variable
29092 object, or to change display format.
29093
29094 Variable objects have hierarchical tree structure. Any variable object
29095 that corresponds to a composite type, such as structure in C, has
29096 a number of child variable objects, for example corresponding to each
29097 element of a structure. A child variable object can itself have
29098 children, recursively. Recursion ends when we reach
29099 leaf variable objects, which always have built-in types. Child variable
29100 objects are created only by explicit request, so if a frontend
29101 is not interested in the children of a particular variable object, no
29102 child will be created.
29103
29104 For a leaf variable object it is possible to obtain its value as a
29105 string, or set the value from a string. String value can be also
29106 obtained for a non-leaf variable object, but it's generally a string
29107 that only indicates the type of the object, and does not list its
29108 contents. Assignment to a non-leaf variable object is not allowed.
29109
29110 A frontend does not need to read the values of all variable objects each time
29111 the program stops. Instead, MI provides an update command that lists all
29112 variable objects whose values has changed since the last update
29113 operation. This considerably reduces the amount of data that must
29114 be transferred to the frontend. As noted above, children variable
29115 objects are created on demand, and only leaf variable objects have a
29116 real value. As result, gdb will read target memory only for leaf
29117 variables that frontend has created.
29118
29119 The automatic update is not always desirable. For example, a frontend
29120 might want to keep a value of some expression for future reference,
29121 and never update it. For another example, fetching memory is
29122 relatively slow for embedded targets, so a frontend might want
29123 to disable automatic update for the variables that are either not
29124 visible on the screen, or ``closed''. This is possible using so
29125 called ``frozen variable objects''. Such variable objects are never
29126 implicitly updated.
29127
29128 Variable objects can be either @dfn{fixed} or @dfn{floating}. For the
29129 fixed variable object, the expression is parsed when the variable
29130 object is created, including associating identifiers to specific
29131 variables. The meaning of expression never changes. For a floating
29132 variable object the values of variables whose names appear in the
29133 expressions are re-evaluated every time in the context of the current
29134 frame. Consider this example:
29135
29136 @smallexample
29137 void do_work(...)
29138 @{
29139 struct work_state state;
29140
29141 if (...)
29142 do_work(...);
29143 @}
29144 @end smallexample
29145
29146 If a fixed variable object for the @code{state} variable is created in
29147 this function, and we enter the recursive call, the variable
29148 object will report the value of @code{state} in the top-level
29149 @code{do_work} invocation. On the other hand, a floating variable
29150 object will report the value of @code{state} in the current frame.
29151
29152 If an expression specified when creating a fixed variable object
29153 refers to a local variable, the variable object becomes bound to the
29154 thread and frame in which the variable object is created. When such
29155 variable object is updated, @value{GDBN} makes sure that the
29156 thread/frame combination the variable object is bound to still exists,
29157 and re-evaluates the variable object in context of that thread/frame.
29158
29159 The following is the complete set of @sc{gdb/mi} operations defined to
29160 access this functionality:
29161
29162 @multitable @columnfractions .4 .6
29163 @item @strong{Operation}
29164 @tab @strong{Description}
29165
29166 @item @code{-enable-pretty-printing}
29167 @tab enable Python-based pretty-printing
29168 @item @code{-var-create}
29169 @tab create a variable object
29170 @item @code{-var-delete}
29171 @tab delete the variable object and/or its children
29172 @item @code{-var-set-format}
29173 @tab set the display format of this variable
29174 @item @code{-var-show-format}
29175 @tab show the display format of this variable
29176 @item @code{-var-info-num-children}
29177 @tab tells how many children this object has
29178 @item @code{-var-list-children}
29179 @tab return a list of the object's children
29180 @item @code{-var-info-type}
29181 @tab show the type of this variable object
29182 @item @code{-var-info-expression}
29183 @tab print parent-relative expression that this variable object represents
29184 @item @code{-var-info-path-expression}
29185 @tab print full expression that this variable object represents
29186 @item @code{-var-show-attributes}
29187 @tab is this variable editable? does it exist here?
29188 @item @code{-var-evaluate-expression}
29189 @tab get the value of this variable
29190 @item @code{-var-assign}
29191 @tab set the value of this variable
29192 @item @code{-var-update}
29193 @tab update the variable and its children
29194 @item @code{-var-set-frozen}
29195 @tab set frozeness attribute
29196 @item @code{-var-set-update-range}
29197 @tab set range of children to display on update
29198 @end multitable
29199
29200 In the next subsection we describe each operation in detail and suggest
29201 how it can be used.
29202
29203 @subheading Description And Use of Operations on Variable Objects
29204
29205 @subheading The @code{-enable-pretty-printing} Command
29206 @findex -enable-pretty-printing
29207
29208 @smallexample
29209 -enable-pretty-printing
29210 @end smallexample
29211
29212 @value{GDBN} allows Python-based visualizers to affect the output of the
29213 MI variable object commands. However, because there was no way to
29214 implement this in a fully backward-compatible way, a front end must
29215 request that this functionality be enabled.
29216
29217 Once enabled, this feature cannot be disabled.
29218
29219 Note that if Python support has not been compiled into @value{GDBN},
29220 this command will still succeed (and do nothing).
29221
29222 This feature is currently (as of @value{GDBN} 7.0) experimental, and
29223 may work differently in future versions of @value{GDBN}.
29224
29225 @subheading The @code{-var-create} Command
29226 @findex -var-create
29227
29228 @subsubheading Synopsis
29229
29230 @smallexample
29231 -var-create @{@var{name} | "-"@}
29232 @{@var{frame-addr} | "*" | "@@"@} @var{expression}
29233 @end smallexample
29234
29235 This operation creates a variable object, which allows the monitoring of
29236 a variable, the result of an expression, a memory cell or a CPU
29237 register.
29238
29239 The @var{name} parameter is the string by which the object can be
29240 referenced. It must be unique. If @samp{-} is specified, the varobj
29241 system will generate a string ``varNNNNNN'' automatically. It will be
29242 unique provided that one does not specify @var{name} of that format.
29243 The command fails if a duplicate name is found.
29244
29245 The frame under which the expression should be evaluated can be
29246 specified by @var{frame-addr}. A @samp{*} indicates that the current
29247 frame should be used. A @samp{@@} indicates that a floating variable
29248 object must be created.
29249
29250 @var{expression} is any expression valid on the current language set (must not
29251 begin with a @samp{*}), or one of the following:
29252
29253 @itemize @bullet
29254 @item
29255 @samp{*@var{addr}}, where @var{addr} is the address of a memory cell
29256
29257 @item
29258 @samp{*@var{addr}-@var{addr}} --- a memory address range (TBD)
29259
29260 @item
29261 @samp{$@var{regname}} --- a CPU register name
29262 @end itemize
29263
29264 @cindex dynamic varobj
29265 A varobj's contents may be provided by a Python-based pretty-printer. In this
29266 case the varobj is known as a @dfn{dynamic varobj}. Dynamic varobjs
29267 have slightly different semantics in some cases. If the
29268 @code{-enable-pretty-printing} command is not sent, then @value{GDBN}
29269 will never create a dynamic varobj. This ensures backward
29270 compatibility for existing clients.
29271
29272 @subsubheading Result
29273
29274 This operation returns attributes of the newly-created varobj. These
29275 are:
29276
29277 @table @samp
29278 @item name
29279 The name of the varobj.
29280
29281 @item numchild
29282 The number of children of the varobj. This number is not necessarily
29283 reliable for a dynamic varobj. Instead, you must examine the
29284 @samp{has_more} attribute.
29285
29286 @item value
29287 The varobj's scalar value. For a varobj whose type is some sort of
29288 aggregate (e.g., a @code{struct}), or for a dynamic varobj, this value
29289 will not be interesting.
29290
29291 @item type
29292 The varobj's type. This is a string representation of the type, as
29293 would be printed by the @value{GDBN} CLI. If @samp{print object}
29294 (@pxref{Print Settings, set print object}) is set to @code{on}, the
29295 @emph{actual} (derived) type of the object is shown rather than the
29296 @emph{declared} one.
29297
29298 @item thread-id
29299 If a variable object is bound to a specific thread, then this is the
29300 thread's global identifier.
29301
29302 @item has_more
29303 For a dynamic varobj, this indicates whether there appear to be any
29304 children available. For a non-dynamic varobj, this will be 0.
29305
29306 @item dynamic
29307 This attribute will be present and have the value @samp{1} if the
29308 varobj is a dynamic varobj. If the varobj is not a dynamic varobj,
29309 then this attribute will not be present.
29310
29311 @item displayhint
29312 A dynamic varobj can supply a display hint to the front end. The
29313 value comes directly from the Python pretty-printer object's
29314 @code{display_hint} method. @xref{Pretty Printing API}.
29315 @end table
29316
29317 Typical output will look like this:
29318
29319 @smallexample
29320 name="@var{name}",numchild="@var{N}",type="@var{type}",thread-id="@var{M}",
29321 has_more="@var{has_more}"
29322 @end smallexample
29323
29324
29325 @subheading The @code{-var-delete} Command
29326 @findex -var-delete
29327
29328 @subsubheading Synopsis
29329
29330 @smallexample
29331 -var-delete [ -c ] @var{name}
29332 @end smallexample
29333
29334 Deletes a previously created variable object and all of its children.
29335 With the @samp{-c} option, just deletes the children.
29336
29337 Returns an error if the object @var{name} is not found.
29338
29339
29340 @subheading The @code{-var-set-format} Command
29341 @findex -var-set-format
29342
29343 @subsubheading Synopsis
29344
29345 @smallexample
29346 -var-set-format @var{name} @var{format-spec}
29347 @end smallexample
29348
29349 Sets the output format for the value of the object @var{name} to be
29350 @var{format-spec}.
29351
29352 @anchor{-var-set-format}
29353 The syntax for the @var{format-spec} is as follows:
29354
29355 @smallexample
29356 @var{format-spec} @expansion{}
29357 @{binary | decimal | hexadecimal | octal | natural | zero-hexadecimal@}
29358 @end smallexample
29359
29360 The natural format is the default format choosen automatically
29361 based on the variable type (like decimal for an @code{int}, hex
29362 for pointers, etc.).
29363
29364 The zero-hexadecimal format has a representation similar to hexadecimal
29365 but with padding zeroes to the left of the value. For example, a 32-bit
29366 hexadecimal value of 0x1234 would be represented as 0x00001234 in the
29367 zero-hexadecimal format.
29368
29369 For a variable with children, the format is set only on the
29370 variable itself, and the children are not affected.
29371
29372 @subheading The @code{-var-show-format} Command
29373 @findex -var-show-format
29374
29375 @subsubheading Synopsis
29376
29377 @smallexample
29378 -var-show-format @var{name}
29379 @end smallexample
29380
29381 Returns the format used to display the value of the object @var{name}.
29382
29383 @smallexample
29384 @var{format} @expansion{}
29385 @var{format-spec}
29386 @end smallexample
29387
29388
29389 @subheading The @code{-var-info-num-children} Command
29390 @findex -var-info-num-children
29391
29392 @subsubheading Synopsis
29393
29394 @smallexample
29395 -var-info-num-children @var{name}
29396 @end smallexample
29397
29398 Returns the number of children of a variable object @var{name}:
29399
29400 @smallexample
29401 numchild=@var{n}
29402 @end smallexample
29403
29404 Note that this number is not completely reliable for a dynamic varobj.
29405 It will return the current number of children, but more children may
29406 be available.
29407
29408
29409 @subheading The @code{-var-list-children} Command
29410 @findex -var-list-children
29411
29412 @subsubheading Synopsis
29413
29414 @smallexample
29415 -var-list-children [@var{print-values}] @var{name} [@var{from} @var{to}]
29416 @end smallexample
29417 @anchor{-var-list-children}
29418
29419 Return a list of the children of the specified variable object and
29420 create variable objects for them, if they do not already exist. With
29421 a single argument or if @var{print-values} has a value of 0 or
29422 @code{--no-values}, print only the names of the variables; if
29423 @var{print-values} is 1 or @code{--all-values}, also print their
29424 values; and if it is 2 or @code{--simple-values} print the name and
29425 value for simple data types and just the name for arrays, structures
29426 and unions.
29427
29428 @var{from} and @var{to}, if specified, indicate the range of children
29429 to report. If @var{from} or @var{to} is less than zero, the range is
29430 reset and all children will be reported. Otherwise, children starting
29431 at @var{from} (zero-based) and up to and excluding @var{to} will be
29432 reported.
29433
29434 If a child range is requested, it will only affect the current call to
29435 @code{-var-list-children}, but not future calls to @code{-var-update}.
29436 For this, you must instead use @code{-var-set-update-range}. The
29437 intent of this approach is to enable a front end to implement any
29438 update approach it likes; for example, scrolling a view may cause the
29439 front end to request more children with @code{-var-list-children}, and
29440 then the front end could call @code{-var-set-update-range} with a
29441 different range to ensure that future updates are restricted to just
29442 the visible items.
29443
29444 For each child the following results are returned:
29445
29446 @table @var
29447
29448 @item name
29449 Name of the variable object created for this child.
29450
29451 @item exp
29452 The expression to be shown to the user by the front end to designate this child.
29453 For example this may be the name of a structure member.
29454
29455 For a dynamic varobj, this value cannot be used to form an
29456 expression. There is no way to do this at all with a dynamic varobj.
29457
29458 For C/C@t{++} structures there are several pseudo children returned to
29459 designate access qualifiers. For these pseudo children @var{exp} is
29460 @samp{public}, @samp{private}, or @samp{protected}. In this case the
29461 type and value are not present.
29462
29463 A dynamic varobj will not report the access qualifying
29464 pseudo-children, regardless of the language. This information is not
29465 available at all with a dynamic varobj.
29466
29467 @item numchild
29468 Number of children this child has. For a dynamic varobj, this will be
29469 0.
29470
29471 @item type
29472 The type of the child. If @samp{print object}
29473 (@pxref{Print Settings, set print object}) is set to @code{on}, the
29474 @emph{actual} (derived) type of the object is shown rather than the
29475 @emph{declared} one.
29476
29477 @item value
29478 If values were requested, this is the value.
29479
29480 @item thread-id
29481 If this variable object is associated with a thread, this is the
29482 thread's global thread id. Otherwise this result is not present.
29483
29484 @item frozen
29485 If the variable object is frozen, this variable will be present with a value of 1.
29486
29487 @item displayhint
29488 A dynamic varobj can supply a display hint to the front end. The
29489 value comes directly from the Python pretty-printer object's
29490 @code{display_hint} method. @xref{Pretty Printing API}.
29491
29492 @item dynamic
29493 This attribute will be present and have the value @samp{1} if the
29494 varobj is a dynamic varobj. If the varobj is not a dynamic varobj,
29495 then this attribute will not be present.
29496
29497 @end table
29498
29499 The result may have its own attributes:
29500
29501 @table @samp
29502 @item displayhint
29503 A dynamic varobj can supply a display hint to the front end. The
29504 value comes directly from the Python pretty-printer object's
29505 @code{display_hint} method. @xref{Pretty Printing API}.
29506
29507 @item has_more
29508 This is an integer attribute which is nonzero if there are children
29509 remaining after the end of the selected range.
29510 @end table
29511
29512 @subsubheading Example
29513
29514 @smallexample
29515 (gdb)
29516 -var-list-children n
29517 ^done,numchild=@var{n},children=[child=@{name=@var{name},exp=@var{exp},
29518 numchild=@var{n},type=@var{type}@},@r{(repeats N times)}]
29519 (gdb)
29520 -var-list-children --all-values n
29521 ^done,numchild=@var{n},children=[child=@{name=@var{name},exp=@var{exp},
29522 numchild=@var{n},value=@var{value},type=@var{type}@},@r{(repeats N times)}]
29523 @end smallexample
29524
29525
29526 @subheading The @code{-var-info-type} Command
29527 @findex -var-info-type
29528
29529 @subsubheading Synopsis
29530
29531 @smallexample
29532 -var-info-type @var{name}
29533 @end smallexample
29534
29535 Returns the type of the specified variable @var{name}. The type is
29536 returned as a string in the same format as it is output by the
29537 @value{GDBN} CLI:
29538
29539 @smallexample
29540 type=@var{typename}
29541 @end smallexample
29542
29543
29544 @subheading The @code{-var-info-expression} Command
29545 @findex -var-info-expression
29546
29547 @subsubheading Synopsis
29548
29549 @smallexample
29550 -var-info-expression @var{name}
29551 @end smallexample
29552
29553 Returns a string that is suitable for presenting this
29554 variable object in user interface. The string is generally
29555 not valid expression in the current language, and cannot be evaluated.
29556
29557 For example, if @code{a} is an array, and variable object
29558 @code{A} was created for @code{a}, then we'll get this output:
29559
29560 @smallexample
29561 (gdb) -var-info-expression A.1
29562 ^done,lang="C",exp="1"
29563 @end smallexample
29564
29565 @noindent
29566 Here, the value of @code{lang} is the language name, which can be
29567 found in @ref{Supported Languages}.
29568
29569 Note that the output of the @code{-var-list-children} command also
29570 includes those expressions, so the @code{-var-info-expression} command
29571 is of limited use.
29572
29573 @subheading The @code{-var-info-path-expression} Command
29574 @findex -var-info-path-expression
29575
29576 @subsubheading Synopsis
29577
29578 @smallexample
29579 -var-info-path-expression @var{name}
29580 @end smallexample
29581
29582 Returns an expression that can be evaluated in the current
29583 context and will yield the same value that a variable object has.
29584 Compare this with the @code{-var-info-expression} command, which
29585 result can be used only for UI presentation. Typical use of
29586 the @code{-var-info-path-expression} command is creating a
29587 watchpoint from a variable object.
29588
29589 This command is currently not valid for children of a dynamic varobj,
29590 and will give an error when invoked on one.
29591
29592 For example, suppose @code{C} is a C@t{++} class, derived from class
29593 @code{Base}, and that the @code{Base} class has a member called
29594 @code{m_size}. Assume a variable @code{c} is has the type of
29595 @code{C} and a variable object @code{C} was created for variable
29596 @code{c}. Then, we'll get this output:
29597 @smallexample
29598 (gdb) -var-info-path-expression C.Base.public.m_size
29599 ^done,path_expr=((Base)c).m_size)
29600 @end smallexample
29601
29602 @subheading The @code{-var-show-attributes} Command
29603 @findex -var-show-attributes
29604
29605 @subsubheading Synopsis
29606
29607 @smallexample
29608 -var-show-attributes @var{name}
29609 @end smallexample
29610
29611 List attributes of the specified variable object @var{name}:
29612
29613 @smallexample
29614 status=@var{attr} [ ( ,@var{attr} )* ]
29615 @end smallexample
29616
29617 @noindent
29618 where @var{attr} is @code{@{ @{ editable | noneditable @} | TBD @}}.
29619
29620 @subheading The @code{-var-evaluate-expression} Command
29621 @findex -var-evaluate-expression
29622
29623 @subsubheading Synopsis
29624
29625 @smallexample
29626 -var-evaluate-expression [-f @var{format-spec}] @var{name}
29627 @end smallexample
29628
29629 Evaluates the expression that is represented by the specified variable
29630 object and returns its value as a string. The format of the string
29631 can be specified with the @samp{-f} option. The possible values of
29632 this option are the same as for @code{-var-set-format}
29633 (@pxref{-var-set-format}). If the @samp{-f} option is not specified,
29634 the current display format will be used. The current display format
29635 can be changed using the @code{-var-set-format} command.
29636
29637 @smallexample
29638 value=@var{value}
29639 @end smallexample
29640
29641 Note that one must invoke @code{-var-list-children} for a variable
29642 before the value of a child variable can be evaluated.
29643
29644 @subheading The @code{-var-assign} Command
29645 @findex -var-assign
29646
29647 @subsubheading Synopsis
29648
29649 @smallexample
29650 -var-assign @var{name} @var{expression}
29651 @end smallexample
29652
29653 Assigns the value of @var{expression} to the variable object specified
29654 by @var{name}. The object must be @samp{editable}. If the variable's
29655 value is altered by the assign, the variable will show up in any
29656 subsequent @code{-var-update} list.
29657
29658 @subsubheading Example
29659
29660 @smallexample
29661 (gdb)
29662 -var-assign var1 3
29663 ^done,value="3"
29664 (gdb)
29665 -var-update *
29666 ^done,changelist=[@{name="var1",in_scope="true",type_changed="false"@}]
29667 (gdb)
29668 @end smallexample
29669
29670 @subheading The @code{-var-update} Command
29671 @findex -var-update
29672
29673 @subsubheading Synopsis
29674
29675 @smallexample
29676 -var-update [@var{print-values}] @{@var{name} | "*"@}
29677 @end smallexample
29678
29679 Reevaluate the expressions corresponding to the variable object
29680 @var{name} and all its direct and indirect children, and return the
29681 list of variable objects whose values have changed; @var{name} must
29682 be a root variable object. Here, ``changed'' means that the result of
29683 @code{-var-evaluate-expression} before and after the
29684 @code{-var-update} is different. If @samp{*} is used as the variable
29685 object names, all existing variable objects are updated, except
29686 for frozen ones (@pxref{-var-set-frozen}). The option
29687 @var{print-values} determines whether both names and values, or just
29688 names are printed. The possible values of this option are the same
29689 as for @code{-var-list-children} (@pxref{-var-list-children}). It is
29690 recommended to use the @samp{--all-values} option, to reduce the
29691 number of MI commands needed on each program stop.
29692
29693 With the @samp{*} parameter, if a variable object is bound to a
29694 currently running thread, it will not be updated, without any
29695 diagnostic.
29696
29697 If @code{-var-set-update-range} was previously used on a varobj, then
29698 only the selected range of children will be reported.
29699
29700 @code{-var-update} reports all the changed varobjs in a tuple named
29701 @samp{changelist}.
29702
29703 Each item in the change list is itself a tuple holding:
29704
29705 @table @samp
29706 @item name
29707 The name of the varobj.
29708
29709 @item value
29710 If values were requested for this update, then this field will be
29711 present and will hold the value of the varobj.
29712
29713 @item in_scope
29714 @anchor{-var-update}
29715 This field is a string which may take one of three values:
29716
29717 @table @code
29718 @item "true"
29719 The variable object's current value is valid.
29720
29721 @item "false"
29722 The variable object does not currently hold a valid value but it may
29723 hold one in the future if its associated expression comes back into
29724 scope.
29725
29726 @item "invalid"
29727 The variable object no longer holds a valid value.
29728 This can occur when the executable file being debugged has changed,
29729 either through recompilation or by using the @value{GDBN} @code{file}
29730 command. The front end should normally choose to delete these variable
29731 objects.
29732 @end table
29733
29734 In the future new values may be added to this list so the front should
29735 be prepared for this possibility. @xref{GDB/MI Development and Front Ends, ,@sc{GDB/MI} Development and Front Ends}.
29736
29737 @item type_changed
29738 This is only present if the varobj is still valid. If the type
29739 changed, then this will be the string @samp{true}; otherwise it will
29740 be @samp{false}.
29741
29742 When a varobj's type changes, its children are also likely to have
29743 become incorrect. Therefore, the varobj's children are automatically
29744 deleted when this attribute is @samp{true}. Also, the varobj's update
29745 range, when set using the @code{-var-set-update-range} command, is
29746 unset.
29747
29748 @item new_type
29749 If the varobj's type changed, then this field will be present and will
29750 hold the new type.
29751
29752 @item new_num_children
29753 For a dynamic varobj, if the number of children changed, or if the
29754 type changed, this will be the new number of children.
29755
29756 The @samp{numchild} field in other varobj responses is generally not
29757 valid for a dynamic varobj -- it will show the number of children that
29758 @value{GDBN} knows about, but because dynamic varobjs lazily
29759 instantiate their children, this will not reflect the number of
29760 children which may be available.
29761
29762 The @samp{new_num_children} attribute only reports changes to the
29763 number of children known by @value{GDBN}. This is the only way to
29764 detect whether an update has removed children (which necessarily can
29765 only happen at the end of the update range).
29766
29767 @item displayhint
29768 The display hint, if any.
29769
29770 @item has_more
29771 This is an integer value, which will be 1 if there are more children
29772 available outside the varobj's update range.
29773
29774 @item dynamic
29775 This attribute will be present and have the value @samp{1} if the
29776 varobj is a dynamic varobj. If the varobj is not a dynamic varobj,
29777 then this attribute will not be present.
29778
29779 @item new_children
29780 If new children were added to a dynamic varobj within the selected
29781 update range (as set by @code{-var-set-update-range}), then they will
29782 be listed in this attribute.
29783 @end table
29784
29785 @subsubheading Example
29786
29787 @smallexample
29788 (gdb)
29789 -var-assign var1 3
29790 ^done,value="3"
29791 (gdb)
29792 -var-update --all-values var1
29793 ^done,changelist=[@{name="var1",value="3",in_scope="true",
29794 type_changed="false"@}]
29795 (gdb)
29796 @end smallexample
29797
29798 @subheading The @code{-var-set-frozen} Command
29799 @findex -var-set-frozen
29800 @anchor{-var-set-frozen}
29801
29802 @subsubheading Synopsis
29803
29804 @smallexample
29805 -var-set-frozen @var{name} @var{flag}
29806 @end smallexample
29807
29808 Set the frozenness flag on the variable object @var{name}. The
29809 @var{flag} parameter should be either @samp{1} to make the variable
29810 frozen or @samp{0} to make it unfrozen. If a variable object is
29811 frozen, then neither itself, nor any of its children, are
29812 implicitly updated by @code{-var-update} of
29813 a parent variable or by @code{-var-update *}. Only
29814 @code{-var-update} of the variable itself will update its value and
29815 values of its children. After a variable object is unfrozen, it is
29816 implicitly updated by all subsequent @code{-var-update} operations.
29817 Unfreezing a variable does not update it, only subsequent
29818 @code{-var-update} does.
29819
29820 @subsubheading Example
29821
29822 @smallexample
29823 (gdb)
29824 -var-set-frozen V 1
29825 ^done
29826 (gdb)
29827 @end smallexample
29828
29829 @subheading The @code{-var-set-update-range} command
29830 @findex -var-set-update-range
29831 @anchor{-var-set-update-range}
29832
29833 @subsubheading Synopsis
29834
29835 @smallexample
29836 -var-set-update-range @var{name} @var{from} @var{to}
29837 @end smallexample
29838
29839 Set the range of children to be returned by future invocations of
29840 @code{-var-update}.
29841
29842 @var{from} and @var{to} indicate the range of children to report. If
29843 @var{from} or @var{to} is less than zero, the range is reset and all
29844 children will be reported. Otherwise, children starting at @var{from}
29845 (zero-based) and up to and excluding @var{to} will be reported.
29846
29847 @subsubheading Example
29848
29849 @smallexample
29850 (gdb)
29851 -var-set-update-range V 1 2
29852 ^done
29853 @end smallexample
29854
29855 @subheading The @code{-var-set-visualizer} command
29856 @findex -var-set-visualizer
29857 @anchor{-var-set-visualizer}
29858
29859 @subsubheading Synopsis
29860
29861 @smallexample
29862 -var-set-visualizer @var{name} @var{visualizer}
29863 @end smallexample
29864
29865 Set a visualizer for the variable object @var{name}.
29866
29867 @var{visualizer} is the visualizer to use. The special value
29868 @samp{None} means to disable any visualizer in use.
29869
29870 If not @samp{None}, @var{visualizer} must be a Python expression.
29871 This expression must evaluate to a callable object which accepts a
29872 single argument. @value{GDBN} will call this object with the value of
29873 the varobj @var{name} as an argument (this is done so that the same
29874 Python pretty-printing code can be used for both the CLI and MI).
29875 When called, this object must return an object which conforms to the
29876 pretty-printing interface (@pxref{Pretty Printing API}).
29877
29878 The pre-defined function @code{gdb.default_visualizer} may be used to
29879 select a visualizer by following the built-in process
29880 (@pxref{Selecting Pretty-Printers}). This is done automatically when
29881 a varobj is created, and so ordinarily is not needed.
29882
29883 This feature is only available if Python support is enabled. The MI
29884 command @code{-list-features} (@pxref{GDB/MI Support Commands})
29885 can be used to check this.
29886
29887 @subsubheading Example
29888
29889 Resetting the visualizer:
29890
29891 @smallexample
29892 (gdb)
29893 -var-set-visualizer V None
29894 ^done
29895 @end smallexample
29896
29897 Reselecting the default (type-based) visualizer:
29898
29899 @smallexample
29900 (gdb)
29901 -var-set-visualizer V gdb.default_visualizer
29902 ^done
29903 @end smallexample
29904
29905 Suppose @code{SomeClass} is a visualizer class. A lambda expression
29906 can be used to instantiate this class for a varobj:
29907
29908 @smallexample
29909 (gdb)
29910 -var-set-visualizer V "lambda val: SomeClass()"
29911 ^done
29912 @end smallexample
29913
29914 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
29915 @node GDB/MI Data Manipulation
29916 @section @sc{gdb/mi} Data Manipulation
29917
29918 @cindex data manipulation, in @sc{gdb/mi}
29919 @cindex @sc{gdb/mi}, data manipulation
29920 This section describes the @sc{gdb/mi} commands that manipulate data:
29921 examine memory and registers, evaluate expressions, etc.
29922
29923 For details about what an addressable memory unit is,
29924 @pxref{addressable memory unit}.
29925
29926 @c REMOVED FROM THE INTERFACE.
29927 @c @subheading -data-assign
29928 @c Change the value of a program variable. Plenty of side effects.
29929 @c @subsubheading GDB Command
29930 @c set variable
29931 @c @subsubheading Example
29932 @c N.A.
29933
29934 @subheading The @code{-data-disassemble} Command
29935 @findex -data-disassemble
29936
29937 @subsubheading Synopsis
29938
29939 @smallexample
29940 -data-disassemble
29941 [ -s @var{start-addr} -e @var{end-addr} ]
29942 | [ -f @var{filename} -l @var{linenum} [ -n @var{lines} ] ]
29943 -- @var{mode}
29944 @end smallexample
29945
29946 @noindent
29947 Where:
29948
29949 @table @samp
29950 @item @var{start-addr}
29951 is the beginning address (or @code{$pc})
29952 @item @var{end-addr}
29953 is the end address
29954 @item @var{filename}
29955 is the name of the file to disassemble
29956 @item @var{linenum}
29957 is the line number to disassemble around
29958 @item @var{lines}
29959 is the number of disassembly lines to be produced. If it is -1,
29960 the whole function will be disassembled, in case no @var{end-addr} is
29961 specified. If @var{end-addr} is specified as a non-zero value, and
29962 @var{lines} is lower than the number of disassembly lines between
29963 @var{start-addr} and @var{end-addr}, only @var{lines} lines are
29964 displayed; if @var{lines} is higher than the number of lines between
29965 @var{start-addr} and @var{end-addr}, only the lines up to @var{end-addr}
29966 are displayed.
29967 @item @var{mode}
29968 is one of:
29969 @itemize @bullet
29970 @item 0 disassembly only
29971 @item 1 mixed source and disassembly (deprecated)
29972 @item 2 disassembly with raw opcodes
29973 @item 3 mixed source and disassembly with raw opcodes (deprecated)
29974 @item 4 mixed source and disassembly
29975 @item 5 mixed source and disassembly with raw opcodes
29976 @end itemize
29977
29978 Modes 1 and 3 are deprecated. The output is ``source centric''
29979 which hasn't proved useful in practice.
29980 @xref{Machine Code}, for a discussion of the difference between
29981 @code{/m} and @code{/s} output of the @code{disassemble} command.
29982 @end table
29983
29984 @subsubheading Result
29985
29986 The result of the @code{-data-disassemble} command will be a list named
29987 @samp{asm_insns}, the contents of this list depend on the @var{mode}
29988 used with the @code{-data-disassemble} command.
29989
29990 For modes 0 and 2 the @samp{asm_insns} list contains tuples with the
29991 following fields:
29992
29993 @table @code
29994 @item address
29995 The address at which this instruction was disassembled.
29996
29997 @item func-name
29998 The name of the function this instruction is within.
29999
30000 @item offset
30001 The decimal offset in bytes from the start of @samp{func-name}.
30002
30003 @item inst
30004 The text disassembly for this @samp{address}.
30005
30006 @item opcodes
30007 This field is only present for modes 2, 3 and 5. This contains the raw opcode
30008 bytes for the @samp{inst} field.
30009
30010 @end table
30011
30012 For modes 1, 3, 4 and 5 the @samp{asm_insns} list contains tuples named
30013 @samp{src_and_asm_line}, each of which has the following fields:
30014
30015 @table @code
30016 @item line
30017 The line number within @samp{file}.
30018
30019 @item file
30020 The file name from the compilation unit. This might be an absolute
30021 file name or a relative file name depending on the compile command
30022 used.
30023
30024 @item fullname
30025 Absolute file name of @samp{file}. It is converted to a canonical form
30026 using the source file search path
30027 (@pxref{Source Path, ,Specifying Source Directories})
30028 and after resolving all the symbolic links.
30029
30030 If the source file is not found this field will contain the path as
30031 present in the debug information.
30032
30033 @item line_asm_insn
30034 This is a list of tuples containing the disassembly for @samp{line} in
30035 @samp{file}. The fields of each tuple are the same as for
30036 @code{-data-disassemble} in @var{mode} 0 and 2, so @samp{address},
30037 @samp{func-name}, @samp{offset}, @samp{inst}, and optionally
30038 @samp{opcodes}.
30039
30040 @end table
30041
30042 Note that whatever included in the @samp{inst} field, is not
30043 manipulated directly by @sc{gdb/mi}, i.e., it is not possible to
30044 adjust its format.
30045
30046 @subsubheading @value{GDBN} Command
30047
30048 The corresponding @value{GDBN} command is @samp{disassemble}.
30049
30050 @subsubheading Example
30051
30052 Disassemble from the current value of @code{$pc} to @code{$pc + 20}:
30053
30054 @smallexample
30055 (gdb)
30056 -data-disassemble -s $pc -e "$pc + 20" -- 0
30057 ^done,
30058 asm_insns=[
30059 @{address="0x000107c0",func-name="main",offset="4",
30060 inst="mov 2, %o0"@},
30061 @{address="0x000107c4",func-name="main",offset="8",
30062 inst="sethi %hi(0x11800), %o2"@},
30063 @{address="0x000107c8",func-name="main",offset="12",
30064 inst="or %o2, 0x140, %o1\t! 0x11940 <_lib_version+8>"@},
30065 @{address="0x000107cc",func-name="main",offset="16",
30066 inst="sethi %hi(0x11800), %o2"@},
30067 @{address="0x000107d0",func-name="main",offset="20",
30068 inst="or %o2, 0x168, %o4\t! 0x11968 <_lib_version+48>"@}]
30069 (gdb)
30070 @end smallexample
30071
30072 Disassemble the whole @code{main} function. Line 32 is part of
30073 @code{main}.
30074
30075 @smallexample
30076 -data-disassemble -f basics.c -l 32 -- 0
30077 ^done,asm_insns=[
30078 @{address="0x000107bc",func-name="main",offset="0",
30079 inst="save %sp, -112, %sp"@},
30080 @{address="0x000107c0",func-name="main",offset="4",
30081 inst="mov 2, %o0"@},
30082 @{address="0x000107c4",func-name="main",offset="8",
30083 inst="sethi %hi(0x11800), %o2"@},
30084 [@dots{}]
30085 @{address="0x0001081c",func-name="main",offset="96",inst="ret "@},
30086 @{address="0x00010820",func-name="main",offset="100",inst="restore "@}]
30087 (gdb)
30088 @end smallexample
30089
30090 Disassemble 3 instructions from the start of @code{main}:
30091
30092 @smallexample
30093 (gdb)
30094 -data-disassemble -f basics.c -l 32 -n 3 -- 0
30095 ^done,asm_insns=[
30096 @{address="0x000107bc",func-name="main",offset="0",
30097 inst="save %sp, -112, %sp"@},
30098 @{address="0x000107c0",func-name="main",offset="4",
30099 inst="mov 2, %o0"@},
30100 @{address="0x000107c4",func-name="main",offset="8",
30101 inst="sethi %hi(0x11800), %o2"@}]
30102 (gdb)
30103 @end smallexample
30104
30105 Disassemble 3 instructions from the start of @code{main} in mixed mode:
30106
30107 @smallexample
30108 (gdb)
30109 -data-disassemble -f basics.c -l 32 -n 3 -- 1
30110 ^done,asm_insns=[
30111 src_and_asm_line=@{line="31",
30112 file="../../../src/gdb/testsuite/gdb.mi/basics.c",
30113 fullname="/absolute/path/to/src/gdb/testsuite/gdb.mi/basics.c",
30114 line_asm_insn=[@{address="0x000107bc",
30115 func-name="main",offset="0",inst="save %sp, -112, %sp"@}]@},
30116 src_and_asm_line=@{line="32",
30117 file="../../../src/gdb/testsuite/gdb.mi/basics.c",
30118 fullname="/absolute/path/to/src/gdb/testsuite/gdb.mi/basics.c",
30119 line_asm_insn=[@{address="0x000107c0",
30120 func-name="main",offset="4",inst="mov 2, %o0"@},
30121 @{address="0x000107c4",func-name="main",offset="8",
30122 inst="sethi %hi(0x11800), %o2"@}]@}]
30123 (gdb)
30124 @end smallexample
30125
30126
30127 @subheading The @code{-data-evaluate-expression} Command
30128 @findex -data-evaluate-expression
30129
30130 @subsubheading Synopsis
30131
30132 @smallexample
30133 -data-evaluate-expression @var{expr}
30134 @end smallexample
30135
30136 Evaluate @var{expr} as an expression. The expression could contain an
30137 inferior function call. The function call will execute synchronously.
30138 If the expression contains spaces, it must be enclosed in double quotes.
30139
30140 @subsubheading @value{GDBN} Command
30141
30142 The corresponding @value{GDBN} commands are @samp{print}, @samp{output}, and
30143 @samp{call}. In @code{gdbtk} only, there's a corresponding
30144 @samp{gdb_eval} command.
30145
30146 @subsubheading Example
30147
30148 In the following example, the numbers that precede the commands are the
30149 @dfn{tokens} described in @ref{GDB/MI Command Syntax, ,@sc{gdb/mi}
30150 Command Syntax}. Notice how @sc{gdb/mi} returns the same tokens in its
30151 output.
30152
30153 @smallexample
30154 211-data-evaluate-expression A
30155 211^done,value="1"
30156 (gdb)
30157 311-data-evaluate-expression &A
30158 311^done,value="0xefffeb7c"
30159 (gdb)
30160 411-data-evaluate-expression A+3
30161 411^done,value="4"
30162 (gdb)
30163 511-data-evaluate-expression "A + 3"
30164 511^done,value="4"
30165 (gdb)
30166 @end smallexample
30167
30168
30169 @subheading The @code{-data-list-changed-registers} Command
30170 @findex -data-list-changed-registers
30171
30172 @subsubheading Synopsis
30173
30174 @smallexample
30175 -data-list-changed-registers
30176 @end smallexample
30177
30178 Display a list of the registers that have changed.
30179
30180 @subsubheading @value{GDBN} Command
30181
30182 @value{GDBN} doesn't have a direct analog for this command; @code{gdbtk}
30183 has the corresponding command @samp{gdb_changed_register_list}.
30184
30185 @subsubheading Example
30186
30187 On a PPC MBX board:
30188
30189 @smallexample
30190 (gdb)
30191 -exec-continue
30192 ^running
30193
30194 (gdb)
30195 *stopped,reason="breakpoint-hit",disp="keep",bkptno="1",frame=@{
30196 func="main",args=[],file="try.c",fullname="/home/foo/bar/try.c",
30197 line="5"@}
30198 (gdb)
30199 -data-list-changed-registers
30200 ^done,changed-registers=["0","1","2","4","5","6","7","8","9",
30201 "10","11","13","14","15","16","17","18","19","20","21","22","23",
30202 "24","25","26","27","28","30","31","64","65","66","67","69"]
30203 (gdb)
30204 @end smallexample
30205
30206
30207 @subheading The @code{-data-list-register-names} Command
30208 @findex -data-list-register-names
30209
30210 @subsubheading Synopsis
30211
30212 @smallexample
30213 -data-list-register-names [ ( @var{regno} )+ ]
30214 @end smallexample
30215
30216 Show a list of register names for the current target. If no arguments
30217 are given, it shows a list of the names of all the registers. If
30218 integer numbers are given as arguments, it will print a list of the
30219 names of the registers corresponding to the arguments. To ensure
30220 consistency between a register name and its number, the output list may
30221 include empty register names.
30222
30223 @subsubheading @value{GDBN} Command
30224
30225 @value{GDBN} does not have a command which corresponds to
30226 @samp{-data-list-register-names}. In @code{gdbtk} there is a
30227 corresponding command @samp{gdb_regnames}.
30228
30229 @subsubheading Example
30230
30231 For the PPC MBX board:
30232 @smallexample
30233 (gdb)
30234 -data-list-register-names
30235 ^done,register-names=["r0","r1","r2","r3","r4","r5","r6","r7",
30236 "r8","r9","r10","r11","r12","r13","r14","r15","r16","r17","r18",
30237 "r19","r20","r21","r22","r23","r24","r25","r26","r27","r28","r29",
30238 "r30","r31","f0","f1","f2","f3","f4","f5","f6","f7","f8","f9",
30239 "f10","f11","f12","f13","f14","f15","f16","f17","f18","f19","f20",
30240 "f21","f22","f23","f24","f25","f26","f27","f28","f29","f30","f31",
30241 "", "pc","ps","cr","lr","ctr","xer"]
30242 (gdb)
30243 -data-list-register-names 1 2 3
30244 ^done,register-names=["r1","r2","r3"]
30245 (gdb)
30246 @end smallexample
30247
30248 @subheading The @code{-data-list-register-values} Command
30249 @findex -data-list-register-values
30250
30251 @subsubheading Synopsis
30252
30253 @smallexample
30254 -data-list-register-values
30255 [ @code{--skip-unavailable} ] @var{fmt} [ ( @var{regno} )*]
30256 @end smallexample
30257
30258 Display the registers' contents. The format according to which the
30259 registers' contents are to be returned is given by @var{fmt}, followed
30260 by an optional list of numbers specifying the registers to display. A
30261 missing list of numbers indicates that the contents of all the
30262 registers must be returned. The @code{--skip-unavailable} option
30263 indicates that only the available registers are to be returned.
30264
30265 Allowed formats for @var{fmt} are:
30266
30267 @table @code
30268 @item x
30269 Hexadecimal
30270 @item o
30271 Octal
30272 @item t
30273 Binary
30274 @item d
30275 Decimal
30276 @item r
30277 Raw
30278 @item N
30279 Natural
30280 @end table
30281
30282 @subsubheading @value{GDBN} Command
30283
30284 The corresponding @value{GDBN} commands are @samp{info reg}, @samp{info
30285 all-reg}, and (in @code{gdbtk}) @samp{gdb_fetch_registers}.
30286
30287 @subsubheading Example
30288
30289 For a PPC MBX board (note: line breaks are for readability only, they
30290 don't appear in the actual output):
30291
30292 @smallexample
30293 (gdb)
30294 -data-list-register-values r 64 65
30295 ^done,register-values=[@{number="64",value="0xfe00a300"@},
30296 @{number="65",value="0x00029002"@}]
30297 (gdb)
30298 -data-list-register-values x
30299 ^done,register-values=[@{number="0",value="0xfe0043c8"@},
30300 @{number="1",value="0x3fff88"@},@{number="2",value="0xfffffffe"@},
30301 @{number="3",value="0x0"@},@{number="4",value="0xa"@},
30302 @{number="5",value="0x3fff68"@},@{number="6",value="0x3fff58"@},
30303 @{number="7",value="0xfe011e98"@},@{number="8",value="0x2"@},
30304 @{number="9",value="0xfa202820"@},@{number="10",value="0xfa202808"@},
30305 @{number="11",value="0x1"@},@{number="12",value="0x0"@},
30306 @{number="13",value="0x4544"@},@{number="14",value="0xffdfffff"@},
30307 @{number="15",value="0xffffffff"@},@{number="16",value="0xfffffeff"@},
30308 @{number="17",value="0xefffffed"@},@{number="18",value="0xfffffffe"@},
30309 @{number="19",value="0xffffffff"@},@{number="20",value="0xffffffff"@},
30310 @{number="21",value="0xffffffff"@},@{number="22",value="0xfffffff7"@},
30311 @{number="23",value="0xffffffff"@},@{number="24",value="0xffffffff"@},
30312 @{number="25",value="0xffffffff"@},@{number="26",value="0xfffffffb"@},
30313 @{number="27",value="0xffffffff"@},@{number="28",value="0xf7bfffff"@},
30314 @{number="29",value="0x0"@},@{number="30",value="0xfe010000"@},
30315 @{number="31",value="0x0"@},@{number="32",value="0x0"@},
30316 @{number="33",value="0x0"@},@{number="34",value="0x0"@},
30317 @{number="35",value="0x0"@},@{number="36",value="0x0"@},
30318 @{number="37",value="0x0"@},@{number="38",value="0x0"@},
30319 @{number="39",value="0x0"@},@{number="40",value="0x0"@},
30320 @{number="41",value="0x0"@},@{number="42",value="0x0"@},
30321 @{number="43",value="0x0"@},@{number="44",value="0x0"@},
30322 @{number="45",value="0x0"@},@{number="46",value="0x0"@},
30323 @{number="47",value="0x0"@},@{number="48",value="0x0"@},
30324 @{number="49",value="0x0"@},@{number="50",value="0x0"@},
30325 @{number="51",value="0x0"@},@{number="52",value="0x0"@},
30326 @{number="53",value="0x0"@},@{number="54",value="0x0"@},
30327 @{number="55",value="0x0"@},@{number="56",value="0x0"@},
30328 @{number="57",value="0x0"@},@{number="58",value="0x0"@},
30329 @{number="59",value="0x0"@},@{number="60",value="0x0"@},
30330 @{number="61",value="0x0"@},@{number="62",value="0x0"@},
30331 @{number="63",value="0x0"@},@{number="64",value="0xfe00a300"@},
30332 @{number="65",value="0x29002"@},@{number="66",value="0x202f04b5"@},
30333 @{number="67",value="0xfe0043b0"@},@{number="68",value="0xfe00b3e4"@},
30334 @{number="69",value="0x20002b03"@}]
30335 (gdb)
30336 @end smallexample
30337
30338
30339 @subheading The @code{-data-read-memory} Command
30340 @findex -data-read-memory
30341
30342 This command is deprecated, use @code{-data-read-memory-bytes} instead.
30343
30344 @subsubheading Synopsis
30345
30346 @smallexample
30347 -data-read-memory [ -o @var{byte-offset} ]
30348 @var{address} @var{word-format} @var{word-size}
30349 @var{nr-rows} @var{nr-cols} [ @var{aschar} ]
30350 @end smallexample
30351
30352 @noindent
30353 where:
30354
30355 @table @samp
30356 @item @var{address}
30357 An expression specifying the address of the first memory word to be
30358 read. Complex expressions containing embedded white space should be
30359 quoted using the C convention.
30360
30361 @item @var{word-format}
30362 The format to be used to print the memory words. The notation is the
30363 same as for @value{GDBN}'s @code{print} command (@pxref{Output Formats,
30364 ,Output Formats}).
30365
30366 @item @var{word-size}
30367 The size of each memory word in bytes.
30368
30369 @item @var{nr-rows}
30370 The number of rows in the output table.
30371
30372 @item @var{nr-cols}
30373 The number of columns in the output table.
30374
30375 @item @var{aschar}
30376 If present, indicates that each row should include an @sc{ascii} dump. The
30377 value of @var{aschar} is used as a padding character when a byte is not a
30378 member of the printable @sc{ascii} character set (printable @sc{ascii}
30379 characters are those whose code is between 32 and 126, inclusively).
30380
30381 @item @var{byte-offset}
30382 An offset to add to the @var{address} before fetching memory.
30383 @end table
30384
30385 This command displays memory contents as a table of @var{nr-rows} by
30386 @var{nr-cols} words, each word being @var{word-size} bytes. In total,
30387 @code{@var{nr-rows} * @var{nr-cols} * @var{word-size}} bytes are read
30388 (returned as @samp{total-bytes}). Should less than the requested number
30389 of bytes be returned by the target, the missing words are identified
30390 using @samp{N/A}. The number of bytes read from the target is returned
30391 in @samp{nr-bytes} and the starting address used to read memory in
30392 @samp{addr}.
30393
30394 The address of the next/previous row or page is available in
30395 @samp{next-row} and @samp{prev-row}, @samp{next-page} and
30396 @samp{prev-page}.
30397
30398 @subsubheading @value{GDBN} Command
30399
30400 The corresponding @value{GDBN} command is @samp{x}. @code{gdbtk} has
30401 @samp{gdb_get_mem} memory read command.
30402
30403 @subsubheading Example
30404
30405 Read six bytes of memory starting at @code{bytes+6} but then offset by
30406 @code{-6} bytes. Format as three rows of two columns. One byte per
30407 word. Display each word in hex.
30408
30409 @smallexample
30410 (gdb)
30411 9-data-read-memory -o -6 -- bytes+6 x 1 3 2
30412 9^done,addr="0x00001390",nr-bytes="6",total-bytes="6",
30413 next-row="0x00001396",prev-row="0x0000138e",next-page="0x00001396",
30414 prev-page="0x0000138a",memory=[
30415 @{addr="0x00001390",data=["0x00","0x01"]@},
30416 @{addr="0x00001392",data=["0x02","0x03"]@},
30417 @{addr="0x00001394",data=["0x04","0x05"]@}]
30418 (gdb)
30419 @end smallexample
30420
30421 Read two bytes of memory starting at address @code{shorts + 64} and
30422 display as a single word formatted in decimal.
30423
30424 @smallexample
30425 (gdb)
30426 5-data-read-memory shorts+64 d 2 1 1
30427 5^done,addr="0x00001510",nr-bytes="2",total-bytes="2",
30428 next-row="0x00001512",prev-row="0x0000150e",
30429 next-page="0x00001512",prev-page="0x0000150e",memory=[
30430 @{addr="0x00001510",data=["128"]@}]
30431 (gdb)
30432 @end smallexample
30433
30434 Read thirty two bytes of memory starting at @code{bytes+16} and format
30435 as eight rows of four columns. Include a string encoding with @samp{x}
30436 used as the non-printable character.
30437
30438 @smallexample
30439 (gdb)
30440 4-data-read-memory bytes+16 x 1 8 4 x
30441 4^done,addr="0x000013a0",nr-bytes="32",total-bytes="32",
30442 next-row="0x000013c0",prev-row="0x0000139c",
30443 next-page="0x000013c0",prev-page="0x00001380",memory=[
30444 @{addr="0x000013a0",data=["0x10","0x11","0x12","0x13"],ascii="xxxx"@},
30445 @{addr="0x000013a4",data=["0x14","0x15","0x16","0x17"],ascii="xxxx"@},
30446 @{addr="0x000013a8",data=["0x18","0x19","0x1a","0x1b"],ascii="xxxx"@},
30447 @{addr="0x000013ac",data=["0x1c","0x1d","0x1e","0x1f"],ascii="xxxx"@},
30448 @{addr="0x000013b0",data=["0x20","0x21","0x22","0x23"],ascii=" !\"#"@},
30449 @{addr="0x000013b4",data=["0x24","0x25","0x26","0x27"],ascii="$%&'"@},
30450 @{addr="0x000013b8",data=["0x28","0x29","0x2a","0x2b"],ascii="()*+"@},
30451 @{addr="0x000013bc",data=["0x2c","0x2d","0x2e","0x2f"],ascii=",-./"@}]
30452 (gdb)
30453 @end smallexample
30454
30455 @subheading The @code{-data-read-memory-bytes} Command
30456 @findex -data-read-memory-bytes
30457
30458 @subsubheading Synopsis
30459
30460 @smallexample
30461 -data-read-memory-bytes [ -o @var{offset} ]
30462 @var{address} @var{count}
30463 @end smallexample
30464
30465 @noindent
30466 where:
30467
30468 @table @samp
30469 @item @var{address}
30470 An expression specifying the address of the first addressable memory unit
30471 to be read. Complex expressions containing embedded white space should be
30472 quoted using the C convention.
30473
30474 @item @var{count}
30475 The number of addressable memory units to read. This should be an integer
30476 literal.
30477
30478 @item @var{offset}
30479 The offset relative to @var{address} at which to start reading. This
30480 should be an integer literal. This option is provided so that a frontend
30481 is not required to first evaluate address and then perform address
30482 arithmetics itself.
30483
30484 @end table
30485
30486 This command attempts to read all accessible memory regions in the
30487 specified range. First, all regions marked as unreadable in the memory
30488 map (if one is defined) will be skipped. @xref{Memory Region
30489 Attributes}. Second, @value{GDBN} will attempt to read the remaining
30490 regions. For each one, if reading full region results in an errors,
30491 @value{GDBN} will try to read a subset of the region.
30492
30493 In general, every single memory unit in the region may be readable or not,
30494 and the only way to read every readable unit is to try a read at
30495 every address, which is not practical. Therefore, @value{GDBN} will
30496 attempt to read all accessible memory units at either beginning or the end
30497 of the region, using a binary division scheme. This heuristic works
30498 well for reading accross a memory map boundary. Note that if a region
30499 has a readable range that is neither at the beginning or the end,
30500 @value{GDBN} will not read it.
30501
30502 The result record (@pxref{GDB/MI Result Records}) that is output of
30503 the command includes a field named @samp{memory} whose content is a
30504 list of tuples. Each tuple represent a successfully read memory block
30505 and has the following fields:
30506
30507 @table @code
30508 @item begin
30509 The start address of the memory block, as hexadecimal literal.
30510
30511 @item end
30512 The end address of the memory block, as hexadecimal literal.
30513
30514 @item offset
30515 The offset of the memory block, as hexadecimal literal, relative to
30516 the start address passed to @code{-data-read-memory-bytes}.
30517
30518 @item contents
30519 The contents of the memory block, in hex.
30520
30521 @end table
30522
30523
30524
30525 @subsubheading @value{GDBN} Command
30526
30527 The corresponding @value{GDBN} command is @samp{x}.
30528
30529 @subsubheading Example
30530
30531 @smallexample
30532 (gdb)
30533 -data-read-memory-bytes &a 10
30534 ^done,memory=[@{begin="0xbffff154",offset="0x00000000",
30535 end="0xbffff15e",
30536 contents="01000000020000000300"@}]
30537 (gdb)
30538 @end smallexample
30539
30540
30541 @subheading The @code{-data-write-memory-bytes} Command
30542 @findex -data-write-memory-bytes
30543
30544 @subsubheading Synopsis
30545
30546 @smallexample
30547 -data-write-memory-bytes @var{address} @var{contents}
30548 -data-write-memory-bytes @var{address} @var{contents} @r{[}@var{count}@r{]}
30549 @end smallexample
30550
30551 @noindent
30552 where:
30553
30554 @table @samp
30555 @item @var{address}
30556 An expression specifying the address of the first addressable memory unit
30557 to be written. Complex expressions containing embedded white space should
30558 be quoted using the C convention.
30559
30560 @item @var{contents}
30561 The hex-encoded data to write. It is an error if @var{contents} does
30562 not represent an integral number of addressable memory units.
30563
30564 @item @var{count}
30565 Optional argument indicating the number of addressable memory units to be
30566 written. If @var{count} is greater than @var{contents}' length,
30567 @value{GDBN} will repeatedly write @var{contents} until it fills
30568 @var{count} memory units.
30569
30570 @end table
30571
30572 @subsubheading @value{GDBN} Command
30573
30574 There's no corresponding @value{GDBN} command.
30575
30576 @subsubheading Example
30577
30578 @smallexample
30579 (gdb)
30580 -data-write-memory-bytes &a "aabbccdd"
30581 ^done
30582 (gdb)
30583 @end smallexample
30584
30585 @smallexample
30586 (gdb)
30587 -data-write-memory-bytes &a "aabbccdd" 16e
30588 ^done
30589 (gdb)
30590 @end smallexample
30591
30592 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
30593 @node GDB/MI Tracepoint Commands
30594 @section @sc{gdb/mi} Tracepoint Commands
30595
30596 The commands defined in this section implement MI support for
30597 tracepoints. For detailed introduction, see @ref{Tracepoints}.
30598
30599 @subheading The @code{-trace-find} Command
30600 @findex -trace-find
30601
30602 @subsubheading Synopsis
30603
30604 @smallexample
30605 -trace-find @var{mode} [@var{parameters}@dots{}]
30606 @end smallexample
30607
30608 Find a trace frame using criteria defined by @var{mode} and
30609 @var{parameters}. The following table lists permissible
30610 modes and their parameters. For details of operation, see @ref{tfind}.
30611
30612 @table @samp
30613
30614 @item none
30615 No parameters are required. Stops examining trace frames.
30616
30617 @item frame-number
30618 An integer is required as parameter. Selects tracepoint frame with
30619 that index.
30620
30621 @item tracepoint-number
30622 An integer is required as parameter. Finds next
30623 trace frame that corresponds to tracepoint with the specified number.
30624
30625 @item pc
30626 An address is required as parameter. Finds
30627 next trace frame that corresponds to any tracepoint at the specified
30628 address.
30629
30630 @item pc-inside-range
30631 Two addresses are required as parameters. Finds next trace
30632 frame that corresponds to a tracepoint at an address inside the
30633 specified range. Both bounds are considered to be inside the range.
30634
30635 @item pc-outside-range
30636 Two addresses are required as parameters. Finds
30637 next trace frame that corresponds to a tracepoint at an address outside
30638 the specified range. Both bounds are considered to be inside the range.
30639
30640 @item line
30641 Line specification is required as parameter. @xref{Specify Location}.
30642 Finds next trace frame that corresponds to a tracepoint at
30643 the specified location.
30644
30645 @end table
30646
30647 If @samp{none} was passed as @var{mode}, the response does not
30648 have fields. Otherwise, the response may have the following fields:
30649
30650 @table @samp
30651 @item found
30652 This field has either @samp{0} or @samp{1} as the value, depending
30653 on whether a matching tracepoint was found.
30654
30655 @item traceframe
30656 The index of the found traceframe. This field is present iff
30657 the @samp{found} field has value of @samp{1}.
30658
30659 @item tracepoint
30660 The index of the found tracepoint. This field is present iff
30661 the @samp{found} field has value of @samp{1}.
30662
30663 @item frame
30664 The information about the frame corresponding to the found trace
30665 frame. This field is present only if a trace frame was found.
30666 @xref{GDB/MI Frame Information}, for description of this field.
30667
30668 @end table
30669
30670 @subsubheading @value{GDBN} Command
30671
30672 The corresponding @value{GDBN} command is @samp{tfind}.
30673
30674 @subheading -trace-define-variable
30675 @findex -trace-define-variable
30676
30677 @subsubheading Synopsis
30678
30679 @smallexample
30680 -trace-define-variable @var{name} [ @var{value} ]
30681 @end smallexample
30682
30683 Create trace variable @var{name} if it does not exist. If
30684 @var{value} is specified, sets the initial value of the specified
30685 trace variable to that value. Note that the @var{name} should start
30686 with the @samp{$} character.
30687
30688 @subsubheading @value{GDBN} Command
30689
30690 The corresponding @value{GDBN} command is @samp{tvariable}.
30691
30692 @subheading The @code{-trace-frame-collected} Command
30693 @findex -trace-frame-collected
30694
30695 @subsubheading Synopsis
30696
30697 @smallexample
30698 -trace-frame-collected
30699 [--var-print-values @var{var_pval}]
30700 [--comp-print-values @var{comp_pval}]
30701 [--registers-format @var{regformat}]
30702 [--memory-contents]
30703 @end smallexample
30704
30705 This command returns the set of collected objects, register names,
30706 trace state variable names, memory ranges and computed expressions
30707 that have been collected at a particular trace frame. The optional
30708 parameters to the command affect the output format in different ways.
30709 See the output description table below for more details.
30710
30711 The reported names can be used in the normal manner to create
30712 varobjs and inspect the objects themselves. The items returned by
30713 this command are categorized so that it is clear which is a variable,
30714 which is a register, which is a trace state variable, which is a
30715 memory range and which is a computed expression.
30716
30717 For instance, if the actions were
30718 @smallexample
30719 collect myVar, myArray[myIndex], myObj.field, myPtr->field, myCount + 2
30720 collect *(int*)0xaf02bef0@@40
30721 @end smallexample
30722
30723 @noindent
30724 the object collected in its entirety would be @code{myVar}. The
30725 object @code{myArray} would be partially collected, because only the
30726 element at index @code{myIndex} would be collected. The remaining
30727 objects would be computed expressions.
30728
30729 An example output would be:
30730
30731 @smallexample
30732 (gdb)
30733 -trace-frame-collected
30734 ^done,
30735 explicit-variables=[@{name="myVar",value="1"@}],
30736 computed-expressions=[@{name="myArray[myIndex]",value="0"@},
30737 @{name="myObj.field",value="0"@},
30738 @{name="myPtr->field",value="1"@},
30739 @{name="myCount + 2",value="3"@},
30740 @{name="$tvar1 + 1",value="43970027"@}],
30741 registers=[@{number="0",value="0x7fe2c6e79ec8"@},
30742 @{number="1",value="0x0"@},
30743 @{number="2",value="0x4"@},
30744 ...
30745 @{number="125",value="0x0"@}],
30746 tvars=[@{name="$tvar1",current="43970026"@}],
30747 memory=[@{address="0x0000000000602264",length="4"@},
30748 @{address="0x0000000000615bc0",length="4"@}]
30749 (gdb)
30750 @end smallexample
30751
30752 Where:
30753
30754 @table @code
30755 @item explicit-variables
30756 The set of objects that have been collected in their entirety (as
30757 opposed to collecting just a few elements of an array or a few struct
30758 members). For each object, its name and value are printed.
30759 The @code{--var-print-values} option affects how or whether the value
30760 field is output. If @var{var_pval} is 0, then print only the names;
30761 if it is 1, print also their values; and if it is 2, print the name,
30762 type and value for simple data types, and the name and type for
30763 arrays, structures and unions.
30764
30765 @item computed-expressions
30766 The set of computed expressions that have been collected at the
30767 current trace frame. The @code{--comp-print-values} option affects
30768 this set like the @code{--var-print-values} option affects the
30769 @code{explicit-variables} set. See above.
30770
30771 @item registers
30772 The registers that have been collected at the current trace frame.
30773 For each register collected, the name and current value are returned.
30774 The value is formatted according to the @code{--registers-format}
30775 option. See the @command{-data-list-register-values} command for a
30776 list of the allowed formats. The default is @samp{x}.
30777
30778 @item tvars
30779 The trace state variables that have been collected at the current
30780 trace frame. For each trace state variable collected, the name and
30781 current value are returned.
30782
30783 @item memory
30784 The set of memory ranges that have been collected at the current trace
30785 frame. Its content is a list of tuples. Each tuple represents a
30786 collected memory range and has the following fields:
30787
30788 @table @code
30789 @item address
30790 The start address of the memory range, as hexadecimal literal.
30791
30792 @item length
30793 The length of the memory range, as decimal literal.
30794
30795 @item contents
30796 The contents of the memory block, in hex. This field is only present
30797 if the @code{--memory-contents} option is specified.
30798
30799 @end table
30800
30801 @end table
30802
30803 @subsubheading @value{GDBN} Command
30804
30805 There is no corresponding @value{GDBN} command.
30806
30807 @subsubheading Example
30808
30809 @subheading -trace-list-variables
30810 @findex -trace-list-variables
30811
30812 @subsubheading Synopsis
30813
30814 @smallexample
30815 -trace-list-variables
30816 @end smallexample
30817
30818 Return a table of all defined trace variables. Each element of the
30819 table has the following fields:
30820
30821 @table @samp
30822 @item name
30823 The name of the trace variable. This field is always present.
30824
30825 @item initial
30826 The initial value. This is a 64-bit signed integer. This
30827 field is always present.
30828
30829 @item current
30830 The value the trace variable has at the moment. This is a 64-bit
30831 signed integer. This field is absent iff current value is
30832 not defined, for example if the trace was never run, or is
30833 presently running.
30834
30835 @end table
30836
30837 @subsubheading @value{GDBN} Command
30838
30839 The corresponding @value{GDBN} command is @samp{tvariables}.
30840
30841 @subsubheading Example
30842
30843 @smallexample
30844 (gdb)
30845 -trace-list-variables
30846 ^done,trace-variables=@{nr_rows="1",nr_cols="3",
30847 hdr=[@{width="15",alignment="-1",col_name="name",colhdr="Name"@},
30848 @{width="11",alignment="-1",col_name="initial",colhdr="Initial"@},
30849 @{width="11",alignment="-1",col_name="current",colhdr="Current"@}],
30850 body=[variable=@{name="$trace_timestamp",initial="0"@}
30851 variable=@{name="$foo",initial="10",current="15"@}]@}
30852 (gdb)
30853 @end smallexample
30854
30855 @subheading -trace-save
30856 @findex -trace-save
30857
30858 @subsubheading Synopsis
30859
30860 @smallexample
30861 -trace-save [-r ] @var{filename}
30862 @end smallexample
30863
30864 Saves the collected trace data to @var{filename}. Without the
30865 @samp{-r} option, the data is downloaded from the target and saved
30866 in a local file. With the @samp{-r} option the target is asked
30867 to perform the save.
30868
30869 @subsubheading @value{GDBN} Command
30870
30871 The corresponding @value{GDBN} command is @samp{tsave}.
30872
30873
30874 @subheading -trace-start
30875 @findex -trace-start
30876
30877 @subsubheading Synopsis
30878
30879 @smallexample
30880 -trace-start
30881 @end smallexample
30882
30883 Starts a tracing experiments. The result of this command does not
30884 have any fields.
30885
30886 @subsubheading @value{GDBN} Command
30887
30888 The corresponding @value{GDBN} command is @samp{tstart}.
30889
30890 @subheading -trace-status
30891 @findex -trace-status
30892
30893 @subsubheading Synopsis
30894
30895 @smallexample
30896 -trace-status
30897 @end smallexample
30898
30899 Obtains the status of a tracing experiment. The result may include
30900 the following fields:
30901
30902 @table @samp
30903
30904 @item supported
30905 May have a value of either @samp{0}, when no tracing operations are
30906 supported, @samp{1}, when all tracing operations are supported, or
30907 @samp{file} when examining trace file. In the latter case, examining
30908 of trace frame is possible but new tracing experiement cannot be
30909 started. This field is always present.
30910
30911 @item running
30912 May have a value of either @samp{0} or @samp{1} depending on whether
30913 tracing experiement is in progress on target. This field is present
30914 if @samp{supported} field is not @samp{0}.
30915
30916 @item stop-reason
30917 Report the reason why the tracing was stopped last time. This field
30918 may be absent iff tracing was never stopped on target yet. The
30919 value of @samp{request} means the tracing was stopped as result of
30920 the @code{-trace-stop} command. The value of @samp{overflow} means
30921 the tracing buffer is full. The value of @samp{disconnection} means
30922 tracing was automatically stopped when @value{GDBN} has disconnected.
30923 The value of @samp{passcount} means tracing was stopped when a
30924 tracepoint was passed a maximal number of times for that tracepoint.
30925 This field is present if @samp{supported} field is not @samp{0}.
30926
30927 @item stopping-tracepoint
30928 The number of tracepoint whose passcount as exceeded. This field is
30929 present iff the @samp{stop-reason} field has the value of
30930 @samp{passcount}.
30931
30932 @item frames
30933 @itemx frames-created
30934 The @samp{frames} field is a count of the total number of trace frames
30935 in the trace buffer, while @samp{frames-created} is the total created
30936 during the run, including ones that were discarded, such as when a
30937 circular trace buffer filled up. Both fields are optional.
30938
30939 @item buffer-size
30940 @itemx buffer-free
30941 These fields tell the current size of the tracing buffer and the
30942 remaining space. These fields are optional.
30943
30944 @item circular
30945 The value of the circular trace buffer flag. @code{1} means that the
30946 trace buffer is circular and old trace frames will be discarded if
30947 necessary to make room, @code{0} means that the trace buffer is linear
30948 and may fill up.
30949
30950 @item disconnected
30951 The value of the disconnected tracing flag. @code{1} means that
30952 tracing will continue after @value{GDBN} disconnects, @code{0} means
30953 that the trace run will stop.
30954
30955 @item trace-file
30956 The filename of the trace file being examined. This field is
30957 optional, and only present when examining a trace file.
30958
30959 @end table
30960
30961 @subsubheading @value{GDBN} Command
30962
30963 The corresponding @value{GDBN} command is @samp{tstatus}.
30964
30965 @subheading -trace-stop
30966 @findex -trace-stop
30967
30968 @subsubheading Synopsis
30969
30970 @smallexample
30971 -trace-stop
30972 @end smallexample
30973
30974 Stops a tracing experiment. The result of this command has the same
30975 fields as @code{-trace-status}, except that the @samp{supported} and
30976 @samp{running} fields are not output.
30977
30978 @subsubheading @value{GDBN} Command
30979
30980 The corresponding @value{GDBN} command is @samp{tstop}.
30981
30982
30983 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
30984 @node GDB/MI Symbol Query
30985 @section @sc{gdb/mi} Symbol Query Commands
30986
30987
30988 @ignore
30989 @subheading The @code{-symbol-info-address} Command
30990 @findex -symbol-info-address
30991
30992 @subsubheading Synopsis
30993
30994 @smallexample
30995 -symbol-info-address @var{symbol}
30996 @end smallexample
30997
30998 Describe where @var{symbol} is stored.
30999
31000 @subsubheading @value{GDBN} Command
31001
31002 The corresponding @value{GDBN} command is @samp{info address}.
31003
31004 @subsubheading Example
31005 N.A.
31006
31007
31008 @subheading The @code{-symbol-info-file} Command
31009 @findex -symbol-info-file
31010
31011 @subsubheading Synopsis
31012
31013 @smallexample
31014 -symbol-info-file
31015 @end smallexample
31016
31017 Show the file for the symbol.
31018
31019 @subsubheading @value{GDBN} Command
31020
31021 There's no equivalent @value{GDBN} command. @code{gdbtk} has
31022 @samp{gdb_find_file}.
31023
31024 @subsubheading Example
31025 N.A.
31026
31027
31028 @subheading The @code{-symbol-info-function} Command
31029 @findex -symbol-info-function
31030
31031 @subsubheading Synopsis
31032
31033 @smallexample
31034 -symbol-info-function
31035 @end smallexample
31036
31037 Show which function the symbol lives in.
31038
31039 @subsubheading @value{GDBN} Command
31040
31041 @samp{gdb_get_function} in @code{gdbtk}.
31042
31043 @subsubheading Example
31044 N.A.
31045
31046
31047 @subheading The @code{-symbol-info-line} Command
31048 @findex -symbol-info-line
31049
31050 @subsubheading Synopsis
31051
31052 @smallexample
31053 -symbol-info-line
31054 @end smallexample
31055
31056 Show the core addresses of the code for a source line.
31057
31058 @subsubheading @value{GDBN} Command
31059
31060 The corresponding @value{GDBN} command is @samp{info line}.
31061 @code{gdbtk} has the @samp{gdb_get_line} and @samp{gdb_get_file} commands.
31062
31063 @subsubheading Example
31064 N.A.
31065
31066
31067 @subheading The @code{-symbol-info-symbol} Command
31068 @findex -symbol-info-symbol
31069
31070 @subsubheading Synopsis
31071
31072 @smallexample
31073 -symbol-info-symbol @var{addr}
31074 @end smallexample
31075
31076 Describe what symbol is at location @var{addr}.
31077
31078 @subsubheading @value{GDBN} Command
31079
31080 The corresponding @value{GDBN} command is @samp{info symbol}.
31081
31082 @subsubheading Example
31083 N.A.
31084
31085
31086 @subheading The @code{-symbol-list-functions} Command
31087 @findex -symbol-list-functions
31088
31089 @subsubheading Synopsis
31090
31091 @smallexample
31092 -symbol-list-functions
31093 @end smallexample
31094
31095 List the functions in the executable.
31096
31097 @subsubheading @value{GDBN} Command
31098
31099 @samp{info functions} in @value{GDBN}, @samp{gdb_listfunc} and
31100 @samp{gdb_search} in @code{gdbtk}.
31101
31102 @subsubheading Example
31103 N.A.
31104 @end ignore
31105
31106
31107 @subheading The @code{-symbol-list-lines} Command
31108 @findex -symbol-list-lines
31109
31110 @subsubheading Synopsis
31111
31112 @smallexample
31113 -symbol-list-lines @var{filename}
31114 @end smallexample
31115
31116 Print the list of lines that contain code and their associated program
31117 addresses for the given source filename. The entries are sorted in
31118 ascending PC order.
31119
31120 @subsubheading @value{GDBN} Command
31121
31122 There is no corresponding @value{GDBN} command.
31123
31124 @subsubheading Example
31125 @smallexample
31126 (gdb)
31127 -symbol-list-lines basics.c
31128 ^done,lines=[@{pc="0x08048554",line="7"@},@{pc="0x0804855a",line="8"@}]
31129 (gdb)
31130 @end smallexample
31131
31132
31133 @ignore
31134 @subheading The @code{-symbol-list-types} Command
31135 @findex -symbol-list-types
31136
31137 @subsubheading Synopsis
31138
31139 @smallexample
31140 -symbol-list-types
31141 @end smallexample
31142
31143 List all the type names.
31144
31145 @subsubheading @value{GDBN} Command
31146
31147 The corresponding commands are @samp{info types} in @value{GDBN},
31148 @samp{gdb_search} in @code{gdbtk}.
31149
31150 @subsubheading Example
31151 N.A.
31152
31153
31154 @subheading The @code{-symbol-list-variables} Command
31155 @findex -symbol-list-variables
31156
31157 @subsubheading Synopsis
31158
31159 @smallexample
31160 -symbol-list-variables
31161 @end smallexample
31162
31163 List all the global and static variable names.
31164
31165 @subsubheading @value{GDBN} Command
31166
31167 @samp{info variables} in @value{GDBN}, @samp{gdb_search} in @code{gdbtk}.
31168
31169 @subsubheading Example
31170 N.A.
31171
31172
31173 @subheading The @code{-symbol-locate} Command
31174 @findex -symbol-locate
31175
31176 @subsubheading Synopsis
31177
31178 @smallexample
31179 -symbol-locate
31180 @end smallexample
31181
31182 @subsubheading @value{GDBN} Command
31183
31184 @samp{gdb_loc} in @code{gdbtk}.
31185
31186 @subsubheading Example
31187 N.A.
31188
31189
31190 @subheading The @code{-symbol-type} Command
31191 @findex -symbol-type
31192
31193 @subsubheading Synopsis
31194
31195 @smallexample
31196 -symbol-type @var{variable}
31197 @end smallexample
31198
31199 Show type of @var{variable}.
31200
31201 @subsubheading @value{GDBN} Command
31202
31203 The corresponding @value{GDBN} command is @samp{ptype}, @code{gdbtk} has
31204 @samp{gdb_obj_variable}.
31205
31206 @subsubheading Example
31207 N.A.
31208 @end ignore
31209
31210
31211 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
31212 @node GDB/MI File Commands
31213 @section @sc{gdb/mi} File Commands
31214
31215 This section describes the GDB/MI commands to specify executable file names
31216 and to read in and obtain symbol table information.
31217
31218 @subheading The @code{-file-exec-and-symbols} Command
31219 @findex -file-exec-and-symbols
31220
31221 @subsubheading Synopsis
31222
31223 @smallexample
31224 -file-exec-and-symbols @var{file}
31225 @end smallexample
31226
31227 Specify the executable file to be debugged. This file is the one from
31228 which the symbol table is also read. If no file is specified, the
31229 command clears the executable and symbol information. If breakpoints
31230 are set when using this command with no arguments, @value{GDBN} will produce
31231 error messages. Otherwise, no output is produced, except a completion
31232 notification.
31233
31234 @subsubheading @value{GDBN} Command
31235
31236 The corresponding @value{GDBN} command is @samp{file}.
31237
31238 @subsubheading Example
31239
31240 @smallexample
31241 (gdb)
31242 -file-exec-and-symbols /kwikemart/marge/ezannoni/TRUNK/mbx/hello.mbx
31243 ^done
31244 (gdb)
31245 @end smallexample
31246
31247
31248 @subheading The @code{-file-exec-file} Command
31249 @findex -file-exec-file
31250
31251 @subsubheading Synopsis
31252
31253 @smallexample
31254 -file-exec-file @var{file}
31255 @end smallexample
31256
31257 Specify the executable file to be debugged. Unlike
31258 @samp{-file-exec-and-symbols}, the symbol table is @emph{not} read
31259 from this file. If used without argument, @value{GDBN} clears the information
31260 about the executable file. No output is produced, except a completion
31261 notification.
31262
31263 @subsubheading @value{GDBN} Command
31264
31265 The corresponding @value{GDBN} command is @samp{exec-file}.
31266
31267 @subsubheading Example
31268
31269 @smallexample
31270 (gdb)
31271 -file-exec-file /kwikemart/marge/ezannoni/TRUNK/mbx/hello.mbx
31272 ^done
31273 (gdb)
31274 @end smallexample
31275
31276
31277 @ignore
31278 @subheading The @code{-file-list-exec-sections} Command
31279 @findex -file-list-exec-sections
31280
31281 @subsubheading Synopsis
31282
31283 @smallexample
31284 -file-list-exec-sections
31285 @end smallexample
31286
31287 List the sections of the current executable file.
31288
31289 @subsubheading @value{GDBN} Command
31290
31291 The @value{GDBN} command @samp{info file} shows, among the rest, the same
31292 information as this command. @code{gdbtk} has a corresponding command
31293 @samp{gdb_load_info}.
31294
31295 @subsubheading Example
31296 N.A.
31297 @end ignore
31298
31299
31300 @subheading The @code{-file-list-exec-source-file} Command
31301 @findex -file-list-exec-source-file
31302
31303 @subsubheading Synopsis
31304
31305 @smallexample
31306 -file-list-exec-source-file
31307 @end smallexample
31308
31309 List the line number, the current source file, and the absolute path
31310 to the current source file for the current executable. The macro
31311 information field has a value of @samp{1} or @samp{0} depending on
31312 whether or not the file includes preprocessor macro information.
31313
31314 @subsubheading @value{GDBN} Command
31315
31316 The @value{GDBN} equivalent is @samp{info source}
31317
31318 @subsubheading Example
31319
31320 @smallexample
31321 (gdb)
31322 123-file-list-exec-source-file
31323 123^done,line="1",file="foo.c",fullname="/home/bar/foo.c,macro-info="1"
31324 (gdb)
31325 @end smallexample
31326
31327
31328 @subheading The @code{-file-list-exec-source-files} Command
31329 @findex -file-list-exec-source-files
31330
31331 @subsubheading Synopsis
31332
31333 @smallexample
31334 -file-list-exec-source-files
31335 @end smallexample
31336
31337 List the source files for the current executable.
31338
31339 It will always output both the filename and fullname (absolute file
31340 name) of a source file.
31341
31342 @subsubheading @value{GDBN} Command
31343
31344 The @value{GDBN} equivalent is @samp{info sources}.
31345 @code{gdbtk} has an analogous command @samp{gdb_listfiles}.
31346
31347 @subsubheading Example
31348 @smallexample
31349 (gdb)
31350 -file-list-exec-source-files
31351 ^done,files=[
31352 @{file=foo.c,fullname=/home/foo.c@},
31353 @{file=/home/bar.c,fullname=/home/bar.c@},
31354 @{file=gdb_could_not_find_fullpath.c@}]
31355 (gdb)
31356 @end smallexample
31357
31358 @ignore
31359 @subheading The @code{-file-list-shared-libraries} Command
31360 @findex -file-list-shared-libraries
31361
31362 @subsubheading Synopsis
31363
31364 @smallexample
31365 -file-list-shared-libraries
31366 @end smallexample
31367
31368 List the shared libraries in the program.
31369
31370 @subsubheading @value{GDBN} Command
31371
31372 The corresponding @value{GDBN} command is @samp{info shared}.
31373
31374 @subsubheading Example
31375 N.A.
31376
31377
31378 @subheading The @code{-file-list-symbol-files} Command
31379 @findex -file-list-symbol-files
31380
31381 @subsubheading Synopsis
31382
31383 @smallexample
31384 -file-list-symbol-files
31385 @end smallexample
31386
31387 List symbol files.
31388
31389 @subsubheading @value{GDBN} Command
31390
31391 The corresponding @value{GDBN} command is @samp{info file} (part of it).
31392
31393 @subsubheading Example
31394 N.A.
31395 @end ignore
31396
31397
31398 @subheading The @code{-file-symbol-file} Command
31399 @findex -file-symbol-file
31400
31401 @subsubheading Synopsis
31402
31403 @smallexample
31404 -file-symbol-file @var{file}
31405 @end smallexample
31406
31407 Read symbol table info from the specified @var{file} argument. When
31408 used without arguments, clears @value{GDBN}'s symbol table info. No output is
31409 produced, except for a completion notification.
31410
31411 @subsubheading @value{GDBN} Command
31412
31413 The corresponding @value{GDBN} command is @samp{symbol-file}.
31414
31415 @subsubheading Example
31416
31417 @smallexample
31418 (gdb)
31419 -file-symbol-file /kwikemart/marge/ezannoni/TRUNK/mbx/hello.mbx
31420 ^done
31421 (gdb)
31422 @end smallexample
31423
31424 @ignore
31425 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
31426 @node GDB/MI Memory Overlay Commands
31427 @section @sc{gdb/mi} Memory Overlay Commands
31428
31429 The memory overlay commands are not implemented.
31430
31431 @c @subheading -overlay-auto
31432
31433 @c @subheading -overlay-list-mapping-state
31434
31435 @c @subheading -overlay-list-overlays
31436
31437 @c @subheading -overlay-map
31438
31439 @c @subheading -overlay-off
31440
31441 @c @subheading -overlay-on
31442
31443 @c @subheading -overlay-unmap
31444
31445 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
31446 @node GDB/MI Signal Handling Commands
31447 @section @sc{gdb/mi} Signal Handling Commands
31448
31449 Signal handling commands are not implemented.
31450
31451 @c @subheading -signal-handle
31452
31453 @c @subheading -signal-list-handle-actions
31454
31455 @c @subheading -signal-list-signal-types
31456 @end ignore
31457
31458
31459 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
31460 @node GDB/MI Target Manipulation
31461 @section @sc{gdb/mi} Target Manipulation Commands
31462
31463
31464 @subheading The @code{-target-attach} Command
31465 @findex -target-attach
31466
31467 @subsubheading Synopsis
31468
31469 @smallexample
31470 -target-attach @var{pid} | @var{gid} | @var{file}
31471 @end smallexample
31472
31473 Attach to a process @var{pid} or a file @var{file} outside of
31474 @value{GDBN}, or a thread group @var{gid}. If attaching to a thread
31475 group, the id previously returned by
31476 @samp{-list-thread-groups --available} must be used.
31477
31478 @subsubheading @value{GDBN} Command
31479
31480 The corresponding @value{GDBN} command is @samp{attach}.
31481
31482 @subsubheading Example
31483 @smallexample
31484 (gdb)
31485 -target-attach 34
31486 =thread-created,id="1"
31487 *stopped,thread-id="1",frame=@{addr="0xb7f7e410",func="bar",args=[]@}
31488 ^done
31489 (gdb)
31490 @end smallexample
31491
31492 @ignore
31493 @subheading The @code{-target-compare-sections} Command
31494 @findex -target-compare-sections
31495
31496 @subsubheading Synopsis
31497
31498 @smallexample
31499 -target-compare-sections [ @var{section} ]
31500 @end smallexample
31501
31502 Compare data of section @var{section} on target to the exec file.
31503 Without the argument, all sections are compared.
31504
31505 @subsubheading @value{GDBN} Command
31506
31507 The @value{GDBN} equivalent is @samp{compare-sections}.
31508
31509 @subsubheading Example
31510 N.A.
31511 @end ignore
31512
31513
31514 @subheading The @code{-target-detach} Command
31515 @findex -target-detach
31516
31517 @subsubheading Synopsis
31518
31519 @smallexample
31520 -target-detach [ @var{pid} | @var{gid} ]
31521 @end smallexample
31522
31523 Detach from the remote target which normally resumes its execution.
31524 If either @var{pid} or @var{gid} is specified, detaches from either
31525 the specified process, or specified thread group. There's no output.
31526
31527 @subsubheading @value{GDBN} Command
31528
31529 The corresponding @value{GDBN} command is @samp{detach}.
31530
31531 @subsubheading Example
31532
31533 @smallexample
31534 (gdb)
31535 -target-detach
31536 ^done
31537 (gdb)
31538 @end smallexample
31539
31540
31541 @subheading The @code{-target-disconnect} Command
31542 @findex -target-disconnect
31543
31544 @subsubheading Synopsis
31545
31546 @smallexample
31547 -target-disconnect
31548 @end smallexample
31549
31550 Disconnect from the remote target. There's no output and the target is
31551 generally not resumed.
31552
31553 @subsubheading @value{GDBN} Command
31554
31555 The corresponding @value{GDBN} command is @samp{disconnect}.
31556
31557 @subsubheading Example
31558
31559 @smallexample
31560 (gdb)
31561 -target-disconnect
31562 ^done
31563 (gdb)
31564 @end smallexample
31565
31566
31567 @subheading The @code{-target-download} Command
31568 @findex -target-download
31569
31570 @subsubheading Synopsis
31571
31572 @smallexample
31573 -target-download
31574 @end smallexample
31575
31576 Loads the executable onto the remote target.
31577 It prints out an update message every half second, which includes the fields:
31578
31579 @table @samp
31580 @item section
31581 The name of the section.
31582 @item section-sent
31583 The size of what has been sent so far for that section.
31584 @item section-size
31585 The size of the section.
31586 @item total-sent
31587 The total size of what was sent so far (the current and the previous sections).
31588 @item total-size
31589 The size of the overall executable to download.
31590 @end table
31591
31592 @noindent
31593 Each message is sent as status record (@pxref{GDB/MI Output Syntax, ,
31594 @sc{gdb/mi} Output Syntax}).
31595
31596 In addition, it prints the name and size of the sections, as they are
31597 downloaded. These messages include the following fields:
31598
31599 @table @samp
31600 @item section
31601 The name of the section.
31602 @item section-size
31603 The size of the section.
31604 @item total-size
31605 The size of the overall executable to download.
31606 @end table
31607
31608 @noindent
31609 At the end, a summary is printed.
31610
31611 @subsubheading @value{GDBN} Command
31612
31613 The corresponding @value{GDBN} command is @samp{load}.
31614
31615 @subsubheading Example
31616
31617 Note: each status message appears on a single line. Here the messages
31618 have been broken down so that they can fit onto a page.
31619
31620 @smallexample
31621 (gdb)
31622 -target-download
31623 +download,@{section=".text",section-size="6668",total-size="9880"@}
31624 +download,@{section=".text",section-sent="512",section-size="6668",
31625 total-sent="512",total-size="9880"@}
31626 +download,@{section=".text",section-sent="1024",section-size="6668",
31627 total-sent="1024",total-size="9880"@}
31628 +download,@{section=".text",section-sent="1536",section-size="6668",
31629 total-sent="1536",total-size="9880"@}
31630 +download,@{section=".text",section-sent="2048",section-size="6668",
31631 total-sent="2048",total-size="9880"@}
31632 +download,@{section=".text",section-sent="2560",section-size="6668",
31633 total-sent="2560",total-size="9880"@}
31634 +download,@{section=".text",section-sent="3072",section-size="6668",
31635 total-sent="3072",total-size="9880"@}
31636 +download,@{section=".text",section-sent="3584",section-size="6668",
31637 total-sent="3584",total-size="9880"@}
31638 +download,@{section=".text",section-sent="4096",section-size="6668",
31639 total-sent="4096",total-size="9880"@}
31640 +download,@{section=".text",section-sent="4608",section-size="6668",
31641 total-sent="4608",total-size="9880"@}
31642 +download,@{section=".text",section-sent="5120",section-size="6668",
31643 total-sent="5120",total-size="9880"@}
31644 +download,@{section=".text",section-sent="5632",section-size="6668",
31645 total-sent="5632",total-size="9880"@}
31646 +download,@{section=".text",section-sent="6144",section-size="6668",
31647 total-sent="6144",total-size="9880"@}
31648 +download,@{section=".text",section-sent="6656",section-size="6668",
31649 total-sent="6656",total-size="9880"@}
31650 +download,@{section=".init",section-size="28",total-size="9880"@}
31651 +download,@{section=".fini",section-size="28",total-size="9880"@}
31652 +download,@{section=".data",section-size="3156",total-size="9880"@}
31653 +download,@{section=".data",section-sent="512",section-size="3156",
31654 total-sent="7236",total-size="9880"@}
31655 +download,@{section=".data",section-sent="1024",section-size="3156",
31656 total-sent="7748",total-size="9880"@}
31657 +download,@{section=".data",section-sent="1536",section-size="3156",
31658 total-sent="8260",total-size="9880"@}
31659 +download,@{section=".data",section-sent="2048",section-size="3156",
31660 total-sent="8772",total-size="9880"@}
31661 +download,@{section=".data",section-sent="2560",section-size="3156",
31662 total-sent="9284",total-size="9880"@}
31663 +download,@{section=".data",section-sent="3072",section-size="3156",
31664 total-sent="9796",total-size="9880"@}
31665 ^done,address="0x10004",load-size="9880",transfer-rate="6586",
31666 write-rate="429"
31667 (gdb)
31668 @end smallexample
31669
31670
31671 @ignore
31672 @subheading The @code{-target-exec-status} Command
31673 @findex -target-exec-status
31674
31675 @subsubheading Synopsis
31676
31677 @smallexample
31678 -target-exec-status
31679 @end smallexample
31680
31681 Provide information on the state of the target (whether it is running or
31682 not, for instance).
31683
31684 @subsubheading @value{GDBN} Command
31685
31686 There's no equivalent @value{GDBN} command.
31687
31688 @subsubheading Example
31689 N.A.
31690
31691
31692 @subheading The @code{-target-list-available-targets} Command
31693 @findex -target-list-available-targets
31694
31695 @subsubheading Synopsis
31696
31697 @smallexample
31698 -target-list-available-targets
31699 @end smallexample
31700
31701 List the possible targets to connect to.
31702
31703 @subsubheading @value{GDBN} Command
31704
31705 The corresponding @value{GDBN} command is @samp{help target}.
31706
31707 @subsubheading Example
31708 N.A.
31709
31710
31711 @subheading The @code{-target-list-current-targets} Command
31712 @findex -target-list-current-targets
31713
31714 @subsubheading Synopsis
31715
31716 @smallexample
31717 -target-list-current-targets
31718 @end smallexample
31719
31720 Describe the current target.
31721
31722 @subsubheading @value{GDBN} Command
31723
31724 The corresponding information is printed by @samp{info file} (among
31725 other things).
31726
31727 @subsubheading Example
31728 N.A.
31729
31730
31731 @subheading The @code{-target-list-parameters} Command
31732 @findex -target-list-parameters
31733
31734 @subsubheading Synopsis
31735
31736 @smallexample
31737 -target-list-parameters
31738 @end smallexample
31739
31740 @c ????
31741 @end ignore
31742
31743 @subsubheading @value{GDBN} Command
31744
31745 No equivalent.
31746
31747 @subsubheading Example
31748 N.A.
31749
31750
31751 @subheading The @code{-target-select} Command
31752 @findex -target-select
31753
31754 @subsubheading Synopsis
31755
31756 @smallexample
31757 -target-select @var{type} @var{parameters @dots{}}
31758 @end smallexample
31759
31760 Connect @value{GDBN} to the remote target. This command takes two args:
31761
31762 @table @samp
31763 @item @var{type}
31764 The type of target, for instance @samp{remote}, etc.
31765 @item @var{parameters}
31766 Device names, host names and the like. @xref{Target Commands, ,
31767 Commands for Managing Targets}, for more details.
31768 @end table
31769
31770 The output is a connection notification, followed by the address at
31771 which the target program is, in the following form:
31772
31773 @smallexample
31774 ^connected,addr="@var{address}",func="@var{function name}",
31775 args=[@var{arg list}]
31776 @end smallexample
31777
31778 @subsubheading @value{GDBN} Command
31779
31780 The corresponding @value{GDBN} command is @samp{target}.
31781
31782 @subsubheading Example
31783
31784 @smallexample
31785 (gdb)
31786 -target-select remote /dev/ttya
31787 ^connected,addr="0xfe00a300",func="??",args=[]
31788 (gdb)
31789 @end smallexample
31790
31791 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
31792 @node GDB/MI File Transfer Commands
31793 @section @sc{gdb/mi} File Transfer Commands
31794
31795
31796 @subheading The @code{-target-file-put} Command
31797 @findex -target-file-put
31798
31799 @subsubheading Synopsis
31800
31801 @smallexample
31802 -target-file-put @var{hostfile} @var{targetfile}
31803 @end smallexample
31804
31805 Copy file @var{hostfile} from the host system (the machine running
31806 @value{GDBN}) to @var{targetfile} on the target system.
31807
31808 @subsubheading @value{GDBN} Command
31809
31810 The corresponding @value{GDBN} command is @samp{remote put}.
31811
31812 @subsubheading Example
31813
31814 @smallexample
31815 (gdb)
31816 -target-file-put localfile remotefile
31817 ^done
31818 (gdb)
31819 @end smallexample
31820
31821
31822 @subheading The @code{-target-file-get} Command
31823 @findex -target-file-get
31824
31825 @subsubheading Synopsis
31826
31827 @smallexample
31828 -target-file-get @var{targetfile} @var{hostfile}
31829 @end smallexample
31830
31831 Copy file @var{targetfile} from the target system to @var{hostfile}
31832 on the host system.
31833
31834 @subsubheading @value{GDBN} Command
31835
31836 The corresponding @value{GDBN} command is @samp{remote get}.
31837
31838 @subsubheading Example
31839
31840 @smallexample
31841 (gdb)
31842 -target-file-get remotefile localfile
31843 ^done
31844 (gdb)
31845 @end smallexample
31846
31847
31848 @subheading The @code{-target-file-delete} Command
31849 @findex -target-file-delete
31850
31851 @subsubheading Synopsis
31852
31853 @smallexample
31854 -target-file-delete @var{targetfile}
31855 @end smallexample
31856
31857 Delete @var{targetfile} from the target system.
31858
31859 @subsubheading @value{GDBN} Command
31860
31861 The corresponding @value{GDBN} command is @samp{remote delete}.
31862
31863 @subsubheading Example
31864
31865 @smallexample
31866 (gdb)
31867 -target-file-delete remotefile
31868 ^done
31869 (gdb)
31870 @end smallexample
31871
31872
31873 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
31874 @node GDB/MI Ada Exceptions Commands
31875 @section Ada Exceptions @sc{gdb/mi} Commands
31876
31877 @subheading The @code{-info-ada-exceptions} Command
31878 @findex -info-ada-exceptions
31879
31880 @subsubheading Synopsis
31881
31882 @smallexample
31883 -info-ada-exceptions [ @var{regexp}]
31884 @end smallexample
31885
31886 List all Ada exceptions defined within the program being debugged.
31887 With a regular expression @var{regexp}, only those exceptions whose
31888 names match @var{regexp} are listed.
31889
31890 @subsubheading @value{GDBN} Command
31891
31892 The corresponding @value{GDBN} command is @samp{info exceptions}.
31893
31894 @subsubheading Result
31895
31896 The result is a table of Ada exceptions. The following columns are
31897 defined for each exception:
31898
31899 @table @samp
31900 @item name
31901 The name of the exception.
31902
31903 @item address
31904 The address of the exception.
31905
31906 @end table
31907
31908 @subsubheading Example
31909
31910 @smallexample
31911 -info-ada-exceptions aint
31912 ^done,ada-exceptions=@{nr_rows="2",nr_cols="2",
31913 hdr=[@{width="1",alignment="-1",col_name="name",colhdr="Name"@},
31914 @{width="1",alignment="-1",col_name="address",colhdr="Address"@}],
31915 body=[@{name="constraint_error",address="0x0000000000613da0"@},
31916 @{name="const.aint_global_e",address="0x0000000000613b00"@}]@}
31917 @end smallexample
31918
31919 @subheading Catching Ada Exceptions
31920
31921 The commands describing how to ask @value{GDBN} to stop when a program
31922 raises an exception are described at @ref{Ada Exception GDB/MI
31923 Catchpoint Commands}.
31924
31925
31926 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
31927 @node GDB/MI Support Commands
31928 @section @sc{gdb/mi} Support Commands
31929
31930 Since new commands and features get regularly added to @sc{gdb/mi},
31931 some commands are available to help front-ends query the debugger
31932 about support for these capabilities. Similarly, it is also possible
31933 to query @value{GDBN} about target support of certain features.
31934
31935 @subheading The @code{-info-gdb-mi-command} Command
31936 @cindex @code{-info-gdb-mi-command}
31937 @findex -info-gdb-mi-command
31938
31939 @subsubheading Synopsis
31940
31941 @smallexample
31942 -info-gdb-mi-command @var{cmd_name}
31943 @end smallexample
31944
31945 Query support for the @sc{gdb/mi} command named @var{cmd_name}.
31946
31947 Note that the dash (@code{-}) starting all @sc{gdb/mi} commands
31948 is technically not part of the command name (@pxref{GDB/MI Input
31949 Syntax}), and thus should be omitted in @var{cmd_name}. However,
31950 for ease of use, this command also accepts the form with the leading
31951 dash.
31952
31953 @subsubheading @value{GDBN} Command
31954
31955 There is no corresponding @value{GDBN} command.
31956
31957 @subsubheading Result
31958
31959 The result is a tuple. There is currently only one field:
31960
31961 @table @samp
31962 @item exists
31963 This field is equal to @code{"true"} if the @sc{gdb/mi} command exists,
31964 @code{"false"} otherwise.
31965
31966 @end table
31967
31968 @subsubheading Example
31969
31970 Here is an example where the @sc{gdb/mi} command does not exist:
31971
31972 @smallexample
31973 -info-gdb-mi-command unsupported-command
31974 ^done,command=@{exists="false"@}
31975 @end smallexample
31976
31977 @noindent
31978 And here is an example where the @sc{gdb/mi} command is known
31979 to the debugger:
31980
31981 @smallexample
31982 -info-gdb-mi-command symbol-list-lines
31983 ^done,command=@{exists="true"@}
31984 @end smallexample
31985
31986 @subheading The @code{-list-features} Command
31987 @findex -list-features
31988 @cindex supported @sc{gdb/mi} features, list
31989
31990 Returns a list of particular features of the MI protocol that
31991 this version of gdb implements. A feature can be a command,
31992 or a new field in an output of some command, or even an
31993 important bugfix. While a frontend can sometimes detect presence
31994 of a feature at runtime, it is easier to perform detection at debugger
31995 startup.
31996
31997 The command returns a list of strings, with each string naming an
31998 available feature. Each returned string is just a name, it does not
31999 have any internal structure. The list of possible feature names
32000 is given below.
32001
32002 Example output:
32003
32004 @smallexample
32005 (gdb) -list-features
32006 ^done,result=["feature1","feature2"]
32007 @end smallexample
32008
32009 The current list of features is:
32010
32011 @ftable @samp
32012 @item frozen-varobjs
32013 Indicates support for the @code{-var-set-frozen} command, as well
32014 as possible presense of the @code{frozen} field in the output
32015 of @code{-varobj-create}.
32016 @item pending-breakpoints
32017 Indicates support for the @option{-f} option to the @code{-break-insert}
32018 command.
32019 @item python
32020 Indicates Python scripting support, Python-based
32021 pretty-printing commands, and possible presence of the
32022 @samp{display_hint} field in the output of @code{-var-list-children}
32023 @item thread-info
32024 Indicates support for the @code{-thread-info} command.
32025 @item data-read-memory-bytes
32026 Indicates support for the @code{-data-read-memory-bytes} and the
32027 @code{-data-write-memory-bytes} commands.
32028 @item breakpoint-notifications
32029 Indicates that changes to breakpoints and breakpoints created via the
32030 CLI will be announced via async records.
32031 @item ada-task-info
32032 Indicates support for the @code{-ada-task-info} command.
32033 @item language-option
32034 Indicates that all @sc{gdb/mi} commands accept the @option{--language}
32035 option (@pxref{Context management}).
32036 @item info-gdb-mi-command
32037 Indicates support for the @code{-info-gdb-mi-command} command.
32038 @item undefined-command-error-code
32039 Indicates support for the "undefined-command" error code in error result
32040 records, produced when trying to execute an undefined @sc{gdb/mi} command
32041 (@pxref{GDB/MI Result Records}).
32042 @item exec-run-start-option
32043 Indicates that the @code{-exec-run} command supports the @option{--start}
32044 option (@pxref{GDB/MI Program Execution}).
32045 @end ftable
32046
32047 @subheading The @code{-list-target-features} Command
32048 @findex -list-target-features
32049
32050 Returns a list of particular features that are supported by the
32051 target. Those features affect the permitted MI commands, but
32052 unlike the features reported by the @code{-list-features} command, the
32053 features depend on which target GDB is using at the moment. Whenever
32054 a target can change, due to commands such as @code{-target-select},
32055 @code{-target-attach} or @code{-exec-run}, the list of target features
32056 may change, and the frontend should obtain it again.
32057 Example output:
32058
32059 @smallexample
32060 (gdb) -list-target-features
32061 ^done,result=["async"]
32062 @end smallexample
32063
32064 The current list of features is:
32065
32066 @table @samp
32067 @item async
32068 Indicates that the target is capable of asynchronous command
32069 execution, which means that @value{GDBN} will accept further commands
32070 while the target is running.
32071
32072 @item reverse
32073 Indicates that the target is capable of reverse execution.
32074 @xref{Reverse Execution}, for more information.
32075
32076 @end table
32077
32078 @c %%%%%%%%%%%%%%%%%%%%%%%%%%%% SECTION %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
32079 @node GDB/MI Miscellaneous Commands
32080 @section Miscellaneous @sc{gdb/mi} Commands
32081
32082 @c @subheading -gdb-complete
32083
32084 @subheading The @code{-gdb-exit} Command
32085 @findex -gdb-exit
32086
32087 @subsubheading Synopsis
32088
32089 @smallexample
32090 -gdb-exit
32091 @end smallexample
32092
32093 Exit @value{GDBN} immediately.
32094
32095 @subsubheading @value{GDBN} Command
32096
32097 Approximately corresponds to @samp{quit}.
32098
32099 @subsubheading Example
32100
32101 @smallexample
32102 (gdb)
32103 -gdb-exit
32104 ^exit
32105 @end smallexample
32106
32107
32108 @ignore
32109 @subheading The @code{-exec-abort} Command
32110 @findex -exec-abort
32111
32112 @subsubheading Synopsis
32113
32114 @smallexample
32115 -exec-abort
32116 @end smallexample
32117
32118 Kill the inferior running program.
32119
32120 @subsubheading @value{GDBN} Command
32121
32122 The corresponding @value{GDBN} command is @samp{kill}.
32123
32124 @subsubheading Example
32125 N.A.
32126 @end ignore
32127
32128
32129 @subheading The @code{-gdb-set} Command
32130 @findex -gdb-set
32131
32132 @subsubheading Synopsis
32133
32134 @smallexample
32135 -gdb-set
32136 @end smallexample
32137
32138 Set an internal @value{GDBN} variable.
32139 @c IS THIS A DOLLAR VARIABLE? OR SOMETHING LIKE ANNOTATE ?????
32140
32141 @subsubheading @value{GDBN} Command
32142
32143 The corresponding @value{GDBN} command is @samp{set}.
32144
32145 @subsubheading Example
32146
32147 @smallexample
32148 (gdb)
32149 -gdb-set $foo=3
32150 ^done
32151 (gdb)
32152 @end smallexample
32153
32154
32155 @subheading The @code{-gdb-show} Command
32156 @findex -gdb-show
32157
32158 @subsubheading Synopsis
32159
32160 @smallexample
32161 -gdb-show
32162 @end smallexample
32163
32164 Show the current value of a @value{GDBN} variable.
32165
32166 @subsubheading @value{GDBN} Command
32167
32168 The corresponding @value{GDBN} command is @samp{show}.
32169
32170 @subsubheading Example
32171
32172 @smallexample
32173 (gdb)
32174 -gdb-show annotate
32175 ^done,value="0"
32176 (gdb)
32177 @end smallexample
32178
32179 @c @subheading -gdb-source
32180
32181
32182 @subheading The @code{-gdb-version} Command
32183 @findex -gdb-version
32184
32185 @subsubheading Synopsis
32186
32187 @smallexample
32188 -gdb-version
32189 @end smallexample
32190
32191 Show version information for @value{GDBN}. Used mostly in testing.
32192
32193 @subsubheading @value{GDBN} Command
32194
32195 The @value{GDBN} equivalent is @samp{show version}. @value{GDBN} by
32196 default shows this information when you start an interactive session.
32197
32198 @subsubheading Example
32199
32200 @c This example modifies the actual output from GDB to avoid overfull
32201 @c box in TeX.
32202 @smallexample
32203 (gdb)
32204 -gdb-version
32205 ~GNU gdb 5.2.1
32206 ~Copyright 2000 Free Software Foundation, Inc.
32207 ~GDB is free software, covered by the GNU General Public License, and
32208 ~you are welcome to change it and/or distribute copies of it under
32209 ~ certain conditions.
32210 ~Type "show copying" to see the conditions.
32211 ~There is absolutely no warranty for GDB. Type "show warranty" for
32212 ~ details.
32213 ~This GDB was configured as
32214 "--host=sparc-sun-solaris2.5.1 --target=ppc-eabi".
32215 ^done
32216 (gdb)
32217 @end smallexample
32218
32219 @subheading The @code{-list-thread-groups} Command
32220 @findex -list-thread-groups
32221
32222 @subheading Synopsis
32223
32224 @smallexample
32225 -list-thread-groups [ --available ] [ --recurse 1 ] [ @var{group} ... ]
32226 @end smallexample
32227
32228 Lists thread groups (@pxref{Thread groups}). When a single thread
32229 group is passed as the argument, lists the children of that group.
32230 When several thread group are passed, lists information about those
32231 thread groups. Without any parameters, lists information about all
32232 top-level thread groups.
32233
32234 Normally, thread groups that are being debugged are reported.
32235 With the @samp{--available} option, @value{GDBN} reports thread groups
32236 available on the target.
32237
32238 The output of this command may have either a @samp{threads} result or
32239 a @samp{groups} result. The @samp{thread} result has a list of tuples
32240 as value, with each tuple describing a thread (@pxref{GDB/MI Thread
32241 Information}). The @samp{groups} result has a list of tuples as value,
32242 each tuple describing a thread group. If top-level groups are
32243 requested (that is, no parameter is passed), or when several groups
32244 are passed, the output always has a @samp{groups} result. The format
32245 of the @samp{group} result is described below.
32246
32247 To reduce the number of roundtrips it's possible to list thread groups
32248 together with their children, by passing the @samp{--recurse} option
32249 and the recursion depth. Presently, only recursion depth of 1 is
32250 permitted. If this option is present, then every reported thread group
32251 will also include its children, either as @samp{group} or
32252 @samp{threads} field.
32253
32254 In general, any combination of option and parameters is permitted, with
32255 the following caveats:
32256
32257 @itemize @bullet
32258 @item
32259 When a single thread group is passed, the output will typically
32260 be the @samp{threads} result. Because threads may not contain
32261 anything, the @samp{recurse} option will be ignored.
32262
32263 @item
32264 When the @samp{--available} option is passed, limited information may
32265 be available. In particular, the list of threads of a process might
32266 be inaccessible. Further, specifying specific thread groups might
32267 not give any performance advantage over listing all thread groups.
32268 The frontend should assume that @samp{-list-thread-groups --available}
32269 is always an expensive operation and cache the results.
32270
32271 @end itemize
32272
32273 The @samp{groups} result is a list of tuples, where each tuple may
32274 have the following fields:
32275
32276 @table @code
32277 @item id
32278 Identifier of the thread group. This field is always present.
32279 The identifier is an opaque string; frontends should not try to
32280 convert it to an integer, even though it might look like one.
32281
32282 @item type
32283 The type of the thread group. At present, only @samp{process} is a
32284 valid type.
32285
32286 @item pid
32287 The target-specific process identifier. This field is only present
32288 for thread groups of type @samp{process} and only if the process exists.
32289
32290 @item exit-code
32291 The exit code of this group's last exited thread, formatted in octal.
32292 This field is only present for thread groups of type @samp{process} and
32293 only if the process is not running.
32294
32295 @item num_children
32296 The number of children this thread group has. This field may be
32297 absent for an available thread group.
32298
32299 @item threads
32300 This field has a list of tuples as value, each tuple describing a
32301 thread. It may be present if the @samp{--recurse} option is
32302 specified, and it's actually possible to obtain the threads.
32303
32304 @item cores
32305 This field is a list of integers, each identifying a core that one
32306 thread of the group is running on. This field may be absent if
32307 such information is not available.
32308
32309 @item executable
32310 The name of the executable file that corresponds to this thread group.
32311 The field is only present for thread groups of type @samp{process},
32312 and only if there is a corresponding executable file.
32313
32314 @end table
32315
32316 @subheading Example
32317
32318 @smallexample
32319 @value{GDBP}
32320 -list-thread-groups
32321 ^done,groups=[@{id="17",type="process",pid="yyy",num_children="2"@}]
32322 -list-thread-groups 17
32323 ^done,threads=[@{id="2",target-id="Thread 0xb7e14b90 (LWP 21257)",
32324 frame=@{level="0",addr="0xffffe410",func="__kernel_vsyscall",args=[]@},state="running"@},
32325 @{id="1",target-id="Thread 0xb7e156b0 (LWP 21254)",
32326 frame=@{level="0",addr="0x0804891f",func="foo",args=[@{name="i",value="10"@}],
32327 file="/tmp/a.c",fullname="/tmp/a.c",line="158"@},state="running"@}]]
32328 -list-thread-groups --available
32329 ^done,groups=[@{id="17",type="process",pid="yyy",num_children="2",cores=[1,2]@}]
32330 -list-thread-groups --available --recurse 1
32331 ^done,groups=[@{id="17", types="process",pid="yyy",num_children="2",cores=[1,2],
32332 threads=[@{id="1",target-id="Thread 0xb7e14b90",cores=[1]@},
32333 @{id="2",target-id="Thread 0xb7e14b90",cores=[2]@}]@},..]
32334 -list-thread-groups --available --recurse 1 17 18
32335 ^done,groups=[@{id="17", types="process",pid="yyy",num_children="2",cores=[1,2],
32336 threads=[@{id="1",target-id="Thread 0xb7e14b90",cores=[1]@},
32337 @{id="2",target-id="Thread 0xb7e14b90",cores=[2]@}]@},...]
32338 @end smallexample
32339
32340 @subheading The @code{-info-os} Command
32341 @findex -info-os
32342
32343 @subsubheading Synopsis
32344
32345 @smallexample
32346 -info-os [ @var{type} ]
32347 @end smallexample
32348
32349 If no argument is supplied, the command returns a table of available
32350 operating-system-specific information types. If one of these types is
32351 supplied as an argument @var{type}, then the command returns a table
32352 of data of that type.
32353
32354 The types of information available depend on the target operating
32355 system.
32356
32357 @subsubheading @value{GDBN} Command
32358
32359 The corresponding @value{GDBN} command is @samp{info os}.
32360
32361 @subsubheading Example
32362
32363 When run on a @sc{gnu}/Linux system, the output will look something
32364 like this:
32365
32366 @smallexample
32367 @value{GDBP}
32368 -info-os
32369 ^done,OSDataTable=@{nr_rows="10",nr_cols="3",
32370 hdr=[@{width="10",alignment="-1",col_name="col0",colhdr="Type"@},
32371 @{width="10",alignment="-1",col_name="col1",colhdr="Description"@},
32372 @{width="10",alignment="-1",col_name="col2",colhdr="Title"@}],
32373 body=[item=@{col0="cpus",col1="Listing of all cpus/cores on the system",
32374 col2="CPUs"@},
32375 item=@{col0="files",col1="Listing of all file descriptors",
32376 col2="File descriptors"@},
32377 item=@{col0="modules",col1="Listing of all loaded kernel modules",
32378 col2="Kernel modules"@},
32379 item=@{col0="msg",col1="Listing of all message queues",
32380 col2="Message queues"@},
32381 item=@{col0="processes",col1="Listing of all processes",
32382 col2="Processes"@},
32383 item=@{col0="procgroups",col1="Listing of all process groups",
32384 col2="Process groups"@},
32385 item=@{col0="semaphores",col1="Listing of all semaphores",
32386 col2="Semaphores"@},
32387 item=@{col0="shm",col1="Listing of all shared-memory regions",
32388 col2="Shared-memory regions"@},
32389 item=@{col0="sockets",col1="Listing of all internet-domain sockets",
32390 col2="Sockets"@},
32391 item=@{col0="threads",col1="Listing of all threads",
32392 col2="Threads"@}]
32393 @value{GDBP}
32394 -info-os processes
32395 ^done,OSDataTable=@{nr_rows="190",nr_cols="4",
32396 hdr=[@{width="10",alignment="-1",col_name="col0",colhdr="pid"@},
32397 @{width="10",alignment="-1",col_name="col1",colhdr="user"@},
32398 @{width="10",alignment="-1",col_name="col2",colhdr="command"@},
32399 @{width="10",alignment="-1",col_name="col3",colhdr="cores"@}],
32400 body=[item=@{col0="1",col1="root",col2="/sbin/init",col3="0"@},
32401 item=@{col0="2",col1="root",col2="[kthreadd]",col3="1"@},
32402 item=@{col0="3",col1="root",col2="[ksoftirqd/0]",col3="0"@},
32403 ...
32404 item=@{col0="26446",col1="stan",col2="bash",col3="0"@},
32405 item=@{col0="28152",col1="stan",col2="bash",col3="1"@}]@}
32406 (gdb)
32407 @end smallexample
32408
32409 (Note that the MI output here includes a @code{"Title"} column that
32410 does not appear in command-line @code{info os}; this column is useful
32411 for MI clients that want to enumerate the types of data, such as in a
32412 popup menu, but is needless clutter on the command line, and
32413 @code{info os} omits it.)
32414
32415 @subheading The @code{-add-inferior} Command
32416 @findex -add-inferior
32417
32418 @subheading Synopsis
32419
32420 @smallexample
32421 -add-inferior
32422 @end smallexample
32423
32424 Creates a new inferior (@pxref{Inferiors and Programs}). The created
32425 inferior is not associated with any executable. Such association may
32426 be established with the @samp{-file-exec-and-symbols} command
32427 (@pxref{GDB/MI File Commands}). The command response has a single
32428 field, @samp{inferior}, whose value is the identifier of the
32429 thread group corresponding to the new inferior.
32430
32431 @subheading Example
32432
32433 @smallexample
32434 @value{GDBP}
32435 -add-inferior
32436 ^done,inferior="i3"
32437 @end smallexample
32438
32439 @subheading The @code{-interpreter-exec} Command
32440 @findex -interpreter-exec
32441
32442 @subheading Synopsis
32443
32444 @smallexample
32445 -interpreter-exec @var{interpreter} @var{command}
32446 @end smallexample
32447 @anchor{-interpreter-exec}
32448
32449 Execute the specified @var{command} in the given @var{interpreter}.
32450
32451 @subheading @value{GDBN} Command
32452
32453 The corresponding @value{GDBN} command is @samp{interpreter-exec}.
32454
32455 @subheading Example
32456
32457 @smallexample
32458 (gdb)
32459 -interpreter-exec console "break main"
32460 &"During symbol reading, couldn't parse type; debugger out of date?.\n"
32461 &"During symbol reading, bad structure-type format.\n"
32462 ~"Breakpoint 1 at 0x8074fc6: file ../../src/gdb/main.c, line 743.\n"
32463 ^done
32464 (gdb)
32465 @end smallexample
32466
32467 @subheading The @code{-inferior-tty-set} Command
32468 @findex -inferior-tty-set
32469
32470 @subheading Synopsis
32471
32472 @smallexample
32473 -inferior-tty-set /dev/pts/1
32474 @end smallexample
32475
32476 Set terminal for future runs of the program being debugged.
32477
32478 @subheading @value{GDBN} Command
32479
32480 The corresponding @value{GDBN} command is @samp{set inferior-tty} /dev/pts/1.
32481
32482 @subheading Example
32483
32484 @smallexample
32485 (gdb)
32486 -inferior-tty-set /dev/pts/1
32487 ^done
32488 (gdb)
32489 @end smallexample
32490
32491 @subheading The @code{-inferior-tty-show} Command
32492 @findex -inferior-tty-show
32493
32494 @subheading Synopsis
32495
32496 @smallexample
32497 -inferior-tty-show
32498 @end smallexample
32499
32500 Show terminal for future runs of program being debugged.
32501
32502 @subheading @value{GDBN} Command
32503
32504 The corresponding @value{GDBN} command is @samp{show inferior-tty}.
32505
32506 @subheading Example
32507
32508 @smallexample
32509 (gdb)
32510 -inferior-tty-set /dev/pts/1
32511 ^done
32512 (gdb)
32513 -inferior-tty-show
32514 ^done,inferior_tty_terminal="/dev/pts/1"
32515 (gdb)
32516 @end smallexample
32517
32518 @subheading The @code{-enable-timings} Command
32519 @findex -enable-timings
32520
32521 @subheading Synopsis
32522
32523 @smallexample
32524 -enable-timings [yes | no]
32525 @end smallexample
32526
32527 Toggle the printing of the wallclock, user and system times for an MI
32528 command as a field in its output. This command is to help frontend
32529 developers optimize the performance of their code. No argument is
32530 equivalent to @samp{yes}.
32531
32532 @subheading @value{GDBN} Command
32533
32534 No equivalent.
32535
32536 @subheading Example
32537
32538 @smallexample
32539 (gdb)
32540 -enable-timings
32541 ^done
32542 (gdb)
32543 -break-insert main
32544 ^done,bkpt=@{number="1",type="breakpoint",disp="keep",enabled="y",
32545 addr="0x080484ed",func="main",file="myprog.c",
32546 fullname="/home/nickrob/myprog.c",line="73",thread-groups=["i1"],
32547 times="0"@},
32548 time=@{wallclock="0.05185",user="0.00800",system="0.00000"@}
32549 (gdb)
32550 -enable-timings no
32551 ^done
32552 (gdb)
32553 -exec-run
32554 ^running
32555 (gdb)
32556 *stopped,reason="breakpoint-hit",disp="keep",bkptno="1",thread-id="0",
32557 frame=@{addr="0x080484ed",func="main",args=[@{name="argc",value="1"@},
32558 @{name="argv",value="0xbfb60364"@}],file="myprog.c",
32559 fullname="/home/nickrob/myprog.c",line="73"@}
32560 (gdb)
32561 @end smallexample
32562
32563 @node Annotations
32564 @chapter @value{GDBN} Annotations
32565
32566 This chapter describes annotations in @value{GDBN}. Annotations were
32567 designed to interface @value{GDBN} to graphical user interfaces or other
32568 similar programs which want to interact with @value{GDBN} at a
32569 relatively high level.
32570
32571 The annotation mechanism has largely been superseded by @sc{gdb/mi}
32572 (@pxref{GDB/MI}).
32573
32574 @ignore
32575 This is Edition @value{EDITION}, @value{DATE}.
32576 @end ignore
32577
32578 @menu
32579 * Annotations Overview:: What annotations are; the general syntax.
32580 * Server Prefix:: Issuing a command without affecting user state.
32581 * Prompting:: Annotations marking @value{GDBN}'s need for input.
32582 * Errors:: Annotations for error messages.
32583 * Invalidation:: Some annotations describe things now invalid.
32584 * Annotations for Running::
32585 Whether the program is running, how it stopped, etc.
32586 * Source Annotations:: Annotations describing source code.
32587 @end menu
32588
32589 @node Annotations Overview
32590 @section What is an Annotation?
32591 @cindex annotations
32592
32593 Annotations start with a newline character, two @samp{control-z}
32594 characters, and the name of the annotation. If there is no additional
32595 information associated with this annotation, the name of the annotation
32596 is followed immediately by a newline. If there is additional
32597 information, the name of the annotation is followed by a space, the
32598 additional information, and a newline. The additional information
32599 cannot contain newline characters.
32600
32601 Any output not beginning with a newline and two @samp{control-z}
32602 characters denotes literal output from @value{GDBN}. Currently there is
32603 no need for @value{GDBN} to output a newline followed by two
32604 @samp{control-z} characters, but if there was such a need, the
32605 annotations could be extended with an @samp{escape} annotation which
32606 means those three characters as output.
32607
32608 The annotation @var{level}, which is specified using the
32609 @option{--annotate} command line option (@pxref{Mode Options}), controls
32610 how much information @value{GDBN} prints together with its prompt,
32611 values of expressions, source lines, and other types of output. Level 0
32612 is for no annotations, level 1 is for use when @value{GDBN} is run as a
32613 subprocess of @sc{gnu} Emacs, level 3 is the maximum annotation suitable
32614 for programs that control @value{GDBN}, and level 2 annotations have
32615 been made obsolete (@pxref{Limitations, , Limitations of the Annotation
32616 Interface, annotate, GDB's Obsolete Annotations}).
32617
32618 @table @code
32619 @kindex set annotate
32620 @item set annotate @var{level}
32621 The @value{GDBN} command @code{set annotate} sets the level of
32622 annotations to the specified @var{level}.
32623
32624 @item show annotate
32625 @kindex show annotate
32626 Show the current annotation level.
32627 @end table
32628
32629 This chapter describes level 3 annotations.
32630
32631 A simple example of starting up @value{GDBN} with annotations is:
32632
32633 @smallexample
32634 $ @kbd{gdb --annotate=3}
32635 GNU gdb 6.0
32636 Copyright 2003 Free Software Foundation, Inc.
32637 GDB is free software, covered by the GNU General Public License,
32638 and you are welcome to change it and/or distribute copies of it
32639 under certain conditions.
32640 Type "show copying" to see the conditions.
32641 There is absolutely no warranty for GDB. Type "show warranty"
32642 for details.
32643 This GDB was configured as "i386-pc-linux-gnu"
32644
32645 ^Z^Zpre-prompt
32646 (@value{GDBP})
32647 ^Z^Zprompt
32648 @kbd{quit}
32649
32650 ^Z^Zpost-prompt
32651 $
32652 @end smallexample
32653
32654 Here @samp{quit} is input to @value{GDBN}; the rest is output from
32655 @value{GDBN}. The three lines beginning @samp{^Z^Z} (where @samp{^Z}
32656 denotes a @samp{control-z} character) are annotations; the rest is
32657 output from @value{GDBN}.
32658
32659 @node Server Prefix
32660 @section The Server Prefix
32661 @cindex server prefix
32662
32663 If you prefix a command with @samp{server } then it will not affect
32664 the command history, nor will it affect @value{GDBN}'s notion of which
32665 command to repeat if @key{RET} is pressed on a line by itself. This
32666 means that commands can be run behind a user's back by a front-end in
32667 a transparent manner.
32668
32669 The @code{server } prefix does not affect the recording of values into
32670 the value history; to print a value without recording it into the
32671 value history, use the @code{output} command instead of the
32672 @code{print} command.
32673
32674 Using this prefix also disables confirmation requests
32675 (@pxref{confirmation requests}).
32676
32677 @node Prompting
32678 @section Annotation for @value{GDBN} Input
32679
32680 @cindex annotations for prompts
32681 When @value{GDBN} prompts for input, it annotates this fact so it is possible
32682 to know when to send output, when the output from a given command is
32683 over, etc.
32684
32685 Different kinds of input each have a different @dfn{input type}. Each
32686 input type has three annotations: a @code{pre-} annotation, which
32687 denotes the beginning of any prompt which is being output, a plain
32688 annotation, which denotes the end of the prompt, and then a @code{post-}
32689 annotation which denotes the end of any echo which may (or may not) be
32690 associated with the input. For example, the @code{prompt} input type
32691 features the following annotations:
32692
32693 @smallexample
32694 ^Z^Zpre-prompt
32695 ^Z^Zprompt
32696 ^Z^Zpost-prompt
32697 @end smallexample
32698
32699 The input types are
32700
32701 @table @code
32702 @findex pre-prompt annotation
32703 @findex prompt annotation
32704 @findex post-prompt annotation
32705 @item prompt
32706 When @value{GDBN} is prompting for a command (the main @value{GDBN} prompt).
32707
32708 @findex pre-commands annotation
32709 @findex commands annotation
32710 @findex post-commands annotation
32711 @item commands
32712 When @value{GDBN} prompts for a set of commands, like in the @code{commands}
32713 command. The annotations are repeated for each command which is input.
32714
32715 @findex pre-overload-choice annotation
32716 @findex overload-choice annotation
32717 @findex post-overload-choice annotation
32718 @item overload-choice
32719 When @value{GDBN} wants the user to select between various overloaded functions.
32720
32721 @findex pre-query annotation
32722 @findex query annotation
32723 @findex post-query annotation
32724 @item query
32725 When @value{GDBN} wants the user to confirm a potentially dangerous operation.
32726
32727 @findex pre-prompt-for-continue annotation
32728 @findex prompt-for-continue annotation
32729 @findex post-prompt-for-continue annotation
32730 @item prompt-for-continue
32731 When @value{GDBN} is asking the user to press return to continue. Note: Don't
32732 expect this to work well; instead use @code{set height 0} to disable
32733 prompting. This is because the counting of lines is buggy in the
32734 presence of annotations.
32735 @end table
32736
32737 @node Errors
32738 @section Errors
32739 @cindex annotations for errors, warnings and interrupts
32740
32741 @findex quit annotation
32742 @smallexample
32743 ^Z^Zquit
32744 @end smallexample
32745
32746 This annotation occurs right before @value{GDBN} responds to an interrupt.
32747
32748 @findex error annotation
32749 @smallexample
32750 ^Z^Zerror
32751 @end smallexample
32752
32753 This annotation occurs right before @value{GDBN} responds to an error.
32754
32755 Quit and error annotations indicate that any annotations which @value{GDBN} was
32756 in the middle of may end abruptly. For example, if a
32757 @code{value-history-begin} annotation is followed by a @code{error}, one
32758 cannot expect to receive the matching @code{value-history-end}. One
32759 cannot expect not to receive it either, however; an error annotation
32760 does not necessarily mean that @value{GDBN} is immediately returning all the way
32761 to the top level.
32762
32763 @findex error-begin annotation
32764 A quit or error annotation may be preceded by
32765
32766 @smallexample
32767 ^Z^Zerror-begin
32768 @end smallexample
32769
32770 Any output between that and the quit or error annotation is the error
32771 message.
32772
32773 Warning messages are not yet annotated.
32774 @c If we want to change that, need to fix warning(), type_error(),
32775 @c range_error(), and possibly other places.
32776
32777 @node Invalidation
32778 @section Invalidation Notices
32779
32780 @cindex annotations for invalidation messages
32781 The following annotations say that certain pieces of state may have
32782 changed.
32783
32784 @table @code
32785 @findex frames-invalid annotation
32786 @item ^Z^Zframes-invalid
32787
32788 The frames (for example, output from the @code{backtrace} command) may
32789 have changed.
32790
32791 @findex breakpoints-invalid annotation
32792 @item ^Z^Zbreakpoints-invalid
32793
32794 The breakpoints may have changed. For example, the user just added or
32795 deleted a breakpoint.
32796 @end table
32797
32798 @node Annotations for Running
32799 @section Running the Program
32800 @cindex annotations for running programs
32801
32802 @findex starting annotation
32803 @findex stopping annotation
32804 When the program starts executing due to a @value{GDBN} command such as
32805 @code{step} or @code{continue},
32806
32807 @smallexample
32808 ^Z^Zstarting
32809 @end smallexample
32810
32811 is output. When the program stops,
32812
32813 @smallexample
32814 ^Z^Zstopped
32815 @end smallexample
32816
32817 is output. Before the @code{stopped} annotation, a variety of
32818 annotations describe how the program stopped.
32819
32820 @table @code
32821 @findex exited annotation
32822 @item ^Z^Zexited @var{exit-status}
32823 The program exited, and @var{exit-status} is the exit status (zero for
32824 successful exit, otherwise nonzero).
32825
32826 @findex signalled annotation
32827 @findex signal-name annotation
32828 @findex signal-name-end annotation
32829 @findex signal-string annotation
32830 @findex signal-string-end annotation
32831 @item ^Z^Zsignalled
32832 The program exited with a signal. After the @code{^Z^Zsignalled}, the
32833 annotation continues:
32834
32835 @smallexample
32836 @var{intro-text}
32837 ^Z^Zsignal-name
32838 @var{name}
32839 ^Z^Zsignal-name-end
32840 @var{middle-text}
32841 ^Z^Zsignal-string
32842 @var{string}
32843 ^Z^Zsignal-string-end
32844 @var{end-text}
32845 @end smallexample
32846
32847 @noindent
32848 where @var{name} is the name of the signal, such as @code{SIGILL} or
32849 @code{SIGSEGV}, and @var{string} is the explanation of the signal, such
32850 as @code{Illegal Instruction} or @code{Segmentation fault}. The arguments
32851 @var{intro-text}, @var{middle-text}, and @var{end-text} are for the
32852 user's benefit and have no particular format.
32853
32854 @findex signal annotation
32855 @item ^Z^Zsignal
32856 The syntax of this annotation is just like @code{signalled}, but @value{GDBN} is
32857 just saying that the program received the signal, not that it was
32858 terminated with it.
32859
32860 @findex breakpoint annotation
32861 @item ^Z^Zbreakpoint @var{number}
32862 The program hit breakpoint number @var{number}.
32863
32864 @findex watchpoint annotation
32865 @item ^Z^Zwatchpoint @var{number}
32866 The program hit watchpoint number @var{number}.
32867 @end table
32868
32869 @node Source Annotations
32870 @section Displaying Source
32871 @cindex annotations for source display
32872
32873 @findex source annotation
32874 The following annotation is used instead of displaying source code:
32875
32876 @smallexample
32877 ^Z^Zsource @var{filename}:@var{line}:@var{character}:@var{middle}:@var{addr}
32878 @end smallexample
32879
32880 where @var{filename} is an absolute file name indicating which source
32881 file, @var{line} is the line number within that file (where 1 is the
32882 first line in the file), @var{character} is the character position
32883 within the file (where 0 is the first character in the file) (for most
32884 debug formats this will necessarily point to the beginning of a line),
32885 @var{middle} is @samp{middle} if @var{addr} is in the middle of the
32886 line, or @samp{beg} if @var{addr} is at the beginning of the line, and
32887 @var{addr} is the address in the target program associated with the
32888 source which is being displayed. The @var{addr} is in the form @samp{0x}
32889 followed by one or more lowercase hex digits (note that this does not
32890 depend on the language).
32891
32892 @node JIT Interface
32893 @chapter JIT Compilation Interface
32894 @cindex just-in-time compilation
32895 @cindex JIT compilation interface
32896
32897 This chapter documents @value{GDBN}'s @dfn{just-in-time} (JIT) compilation
32898 interface. A JIT compiler is a program or library that generates native
32899 executable code at runtime and executes it, usually in order to achieve good
32900 performance while maintaining platform independence.
32901
32902 Programs that use JIT compilation are normally difficult to debug because
32903 portions of their code are generated at runtime, instead of being loaded from
32904 object files, which is where @value{GDBN} normally finds the program's symbols
32905 and debug information. In order to debug programs that use JIT compilation,
32906 @value{GDBN} has an interface that allows the program to register in-memory
32907 symbol files with @value{GDBN} at runtime.
32908
32909 If you are using @value{GDBN} to debug a program that uses this interface, then
32910 it should work transparently so long as you have not stripped the binary. If
32911 you are developing a JIT compiler, then the interface is documented in the rest
32912 of this chapter. At this time, the only known client of this interface is the
32913 LLVM JIT.
32914
32915 Broadly speaking, the JIT interface mirrors the dynamic loader interface. The
32916 JIT compiler communicates with @value{GDBN} by writing data into a global
32917 variable and calling a fuction at a well-known symbol. When @value{GDBN}
32918 attaches, it reads a linked list of symbol files from the global variable to
32919 find existing code, and puts a breakpoint in the function so that it can find
32920 out about additional code.
32921
32922 @menu
32923 * Declarations:: Relevant C struct declarations
32924 * Registering Code:: Steps to register code
32925 * Unregistering Code:: Steps to unregister code
32926 * Custom Debug Info:: Emit debug information in a custom format
32927 @end menu
32928
32929 @node Declarations
32930 @section JIT Declarations
32931
32932 These are the relevant struct declarations that a C program should include to
32933 implement the interface:
32934
32935 @smallexample
32936 typedef enum
32937 @{
32938 JIT_NOACTION = 0,
32939 JIT_REGISTER_FN,
32940 JIT_UNREGISTER_FN
32941 @} jit_actions_t;
32942
32943 struct jit_code_entry
32944 @{
32945 struct jit_code_entry *next_entry;
32946 struct jit_code_entry *prev_entry;
32947 const char *symfile_addr;
32948 uint64_t symfile_size;
32949 @};
32950
32951 struct jit_descriptor
32952 @{
32953 uint32_t version;
32954 /* This type should be jit_actions_t, but we use uint32_t
32955 to be explicit about the bitwidth. */
32956 uint32_t action_flag;
32957 struct jit_code_entry *relevant_entry;
32958 struct jit_code_entry *first_entry;
32959 @};
32960
32961 /* GDB puts a breakpoint in this function. */
32962 void __attribute__((noinline)) __jit_debug_register_code() @{ @};
32963
32964 /* Make sure to specify the version statically, because the
32965 debugger may check the version before we can set it. */
32966 struct jit_descriptor __jit_debug_descriptor = @{ 1, 0, 0, 0 @};
32967 @end smallexample
32968
32969 If the JIT is multi-threaded, then it is important that the JIT synchronize any
32970 modifications to this global data properly, which can easily be done by putting
32971 a global mutex around modifications to these structures.
32972
32973 @node Registering Code
32974 @section Registering Code
32975
32976 To register code with @value{GDBN}, the JIT should follow this protocol:
32977
32978 @itemize @bullet
32979 @item
32980 Generate an object file in memory with symbols and other desired debug
32981 information. The file must include the virtual addresses of the sections.
32982
32983 @item
32984 Create a code entry for the file, which gives the start and size of the symbol
32985 file.
32986
32987 @item
32988 Add it to the linked list in the JIT descriptor.
32989
32990 @item
32991 Point the relevant_entry field of the descriptor at the entry.
32992
32993 @item
32994 Set @code{action_flag} to @code{JIT_REGISTER} and call
32995 @code{__jit_debug_register_code}.
32996 @end itemize
32997
32998 When @value{GDBN} is attached and the breakpoint fires, @value{GDBN} uses the
32999 @code{relevant_entry} pointer so it doesn't have to walk the list looking for
33000 new code. However, the linked list must still be maintained in order to allow
33001 @value{GDBN} to attach to a running process and still find the symbol files.
33002
33003 @node Unregistering Code
33004 @section Unregistering Code
33005
33006 If code is freed, then the JIT should use the following protocol:
33007
33008 @itemize @bullet
33009 @item
33010 Remove the code entry corresponding to the code from the linked list.
33011
33012 @item
33013 Point the @code{relevant_entry} field of the descriptor at the code entry.
33014
33015 @item
33016 Set @code{action_flag} to @code{JIT_UNREGISTER} and call
33017 @code{__jit_debug_register_code}.
33018 @end itemize
33019
33020 If the JIT frees or recompiles code without unregistering it, then @value{GDBN}
33021 and the JIT will leak the memory used for the associated symbol files.
33022
33023 @node Custom Debug Info
33024 @section Custom Debug Info
33025 @cindex custom JIT debug info
33026 @cindex JIT debug info reader
33027
33028 Generating debug information in platform-native file formats (like ELF
33029 or COFF) may be an overkill for JIT compilers; especially if all the
33030 debug info is used for is displaying a meaningful backtrace. The
33031 issue can be resolved by having the JIT writers decide on a debug info
33032 format and also provide a reader that parses the debug info generated
33033 by the JIT compiler. This section gives a brief overview on writing
33034 such a parser. More specific details can be found in the source file
33035 @file{gdb/jit-reader.in}, which is also installed as a header at
33036 @file{@var{includedir}/gdb/jit-reader.h} for easy inclusion.
33037
33038 The reader is implemented as a shared object (so this functionality is
33039 not available on platforms which don't allow loading shared objects at
33040 runtime). Two @value{GDBN} commands, @code{jit-reader-load} and
33041 @code{jit-reader-unload} are provided, to be used to load and unload
33042 the readers from a preconfigured directory. Once loaded, the shared
33043 object is used the parse the debug information emitted by the JIT
33044 compiler.
33045
33046 @menu
33047 * Using JIT Debug Info Readers:: How to use supplied readers correctly
33048 * Writing JIT Debug Info Readers:: Creating a debug-info reader
33049 @end menu
33050
33051 @node Using JIT Debug Info Readers
33052 @subsection Using JIT Debug Info Readers
33053 @kindex jit-reader-load
33054 @kindex jit-reader-unload
33055
33056 Readers can be loaded and unloaded using the @code{jit-reader-load}
33057 and @code{jit-reader-unload} commands.
33058
33059 @table @code
33060 @item jit-reader-load @var{reader}
33061 Load the JIT reader named @var{reader}, which is a shared
33062 object specified as either an absolute or a relative file name. In
33063 the latter case, @value{GDBN} will try to load the reader from a
33064 pre-configured directory, usually @file{@var{libdir}/gdb/} on a UNIX
33065 system (here @var{libdir} is the system library directory, often
33066 @file{/usr/local/lib}).
33067
33068 Only one reader can be active at a time; trying to load a second
33069 reader when one is already loaded will result in @value{GDBN}
33070 reporting an error. A new JIT reader can be loaded by first unloading
33071 the current one using @code{jit-reader-unload} and then invoking
33072 @code{jit-reader-load}.
33073
33074 @item jit-reader-unload
33075 Unload the currently loaded JIT reader.
33076
33077 @end table
33078
33079 @node Writing JIT Debug Info Readers
33080 @subsection Writing JIT Debug Info Readers
33081 @cindex writing JIT debug info readers
33082
33083 As mentioned, a reader is essentially a shared object conforming to a
33084 certain ABI. This ABI is described in @file{jit-reader.h}.
33085
33086 @file{jit-reader.h} defines the structures, macros and functions
33087 required to write a reader. It is installed (along with
33088 @value{GDBN}), in @file{@var{includedir}/gdb} where @var{includedir} is
33089 the system include directory.
33090
33091 Readers need to be released under a GPL compatible license. A reader
33092 can be declared as released under such a license by placing the macro
33093 @code{GDB_DECLARE_GPL_COMPATIBLE_READER} in a source file.
33094
33095 The entry point for readers is the symbol @code{gdb_init_reader},
33096 which is expected to be a function with the prototype
33097
33098 @findex gdb_init_reader
33099 @smallexample
33100 extern struct gdb_reader_funcs *gdb_init_reader (void);
33101 @end smallexample
33102
33103 @cindex @code{struct gdb_reader_funcs}
33104
33105 @code{struct gdb_reader_funcs} contains a set of pointers to callback
33106 functions. These functions are executed to read the debug info
33107 generated by the JIT compiler (@code{read}), to unwind stack frames
33108 (@code{unwind}) and to create canonical frame IDs
33109 (@code{get_Frame_id}). It also has a callback that is called when the
33110 reader is being unloaded (@code{destroy}). The struct looks like this
33111
33112 @smallexample
33113 struct gdb_reader_funcs
33114 @{
33115 /* Must be set to GDB_READER_INTERFACE_VERSION. */
33116 int reader_version;
33117
33118 /* For use by the reader. */
33119 void *priv_data;
33120
33121 gdb_read_debug_info *read;
33122 gdb_unwind_frame *unwind;
33123 gdb_get_frame_id *get_frame_id;
33124 gdb_destroy_reader *destroy;
33125 @};
33126 @end smallexample
33127
33128 @cindex @code{struct gdb_symbol_callbacks}
33129 @cindex @code{struct gdb_unwind_callbacks}
33130
33131 The callbacks are provided with another set of callbacks by
33132 @value{GDBN} to do their job. For @code{read}, these callbacks are
33133 passed in a @code{struct gdb_symbol_callbacks} and for @code{unwind}
33134 and @code{get_frame_id}, in a @code{struct gdb_unwind_callbacks}.
33135 @code{struct gdb_symbol_callbacks} has callbacks to create new object
33136 files and new symbol tables inside those object files. @code{struct
33137 gdb_unwind_callbacks} has callbacks to read registers off the current
33138 frame and to write out the values of the registers in the previous
33139 frame. Both have a callback (@code{target_read}) to read bytes off the
33140 target's address space.
33141
33142 @node In-Process Agent
33143 @chapter In-Process Agent
33144 @cindex debugging agent
33145 The traditional debugging model is conceptually low-speed, but works fine,
33146 because most bugs can be reproduced in debugging-mode execution. However,
33147 as multi-core or many-core processors are becoming mainstream, and
33148 multi-threaded programs become more and more popular, there should be more
33149 and more bugs that only manifest themselves at normal-mode execution, for
33150 example, thread races, because debugger's interference with the program's
33151 timing may conceal the bugs. On the other hand, in some applications,
33152 it is not feasible for the debugger to interrupt the program's execution
33153 long enough for the developer to learn anything helpful about its behavior.
33154 If the program's correctness depends on its real-time behavior, delays
33155 introduced by a debugger might cause the program to fail, even when the
33156 code itself is correct. It is useful to be able to observe the program's
33157 behavior without interrupting it.
33158
33159 Therefore, traditional debugging model is too intrusive to reproduce
33160 some bugs. In order to reduce the interference with the program, we can
33161 reduce the number of operations performed by debugger. The
33162 @dfn{In-Process Agent}, a shared library, is running within the same
33163 process with inferior, and is able to perform some debugging operations
33164 itself. As a result, debugger is only involved when necessary, and
33165 performance of debugging can be improved accordingly. Note that
33166 interference with program can be reduced but can't be removed completely,
33167 because the in-process agent will still stop or slow down the program.
33168
33169 The in-process agent can interpret and execute Agent Expressions
33170 (@pxref{Agent Expressions}) during performing debugging operations. The
33171 agent expressions can be used for different purposes, such as collecting
33172 data in tracepoints, and condition evaluation in breakpoints.
33173
33174 @anchor{Control Agent}
33175 You can control whether the in-process agent is used as an aid for
33176 debugging with the following commands:
33177
33178 @table @code
33179 @kindex set agent on
33180 @item set agent on
33181 Causes the in-process agent to perform some operations on behalf of the
33182 debugger. Just which operations requested by the user will be done
33183 by the in-process agent depends on the its capabilities. For example,
33184 if you request to evaluate breakpoint conditions in the in-process agent,
33185 and the in-process agent has such capability as well, then breakpoint
33186 conditions will be evaluated in the in-process agent.
33187
33188 @kindex set agent off
33189 @item set agent off
33190 Disables execution of debugging operations by the in-process agent. All
33191 of the operations will be performed by @value{GDBN}.
33192
33193 @kindex show agent
33194 @item show agent
33195 Display the current setting of execution of debugging operations by
33196 the in-process agent.
33197 @end table
33198
33199 @menu
33200 * In-Process Agent Protocol::
33201 @end menu
33202
33203 @node In-Process Agent Protocol
33204 @section In-Process Agent Protocol
33205 @cindex in-process agent protocol
33206
33207 The in-process agent is able to communicate with both @value{GDBN} and
33208 GDBserver (@pxref{In-Process Agent}). This section documents the protocol
33209 used for communications between @value{GDBN} or GDBserver and the IPA.
33210 In general, @value{GDBN} or GDBserver sends commands
33211 (@pxref{IPA Protocol Commands}) and data to in-process agent, and then
33212 in-process agent replies back with the return result of the command, or
33213 some other information. The data sent to in-process agent is composed
33214 of primitive data types, such as 4-byte or 8-byte type, and composite
33215 types, which are called objects (@pxref{IPA Protocol Objects}).
33216
33217 @menu
33218 * IPA Protocol Objects::
33219 * IPA Protocol Commands::
33220 @end menu
33221
33222 @node IPA Protocol Objects
33223 @subsection IPA Protocol Objects
33224 @cindex ipa protocol objects
33225
33226 The commands sent to and results received from agent may contain some
33227 complex data types called @dfn{objects}.
33228
33229 The in-process agent is running on the same machine with @value{GDBN}
33230 or GDBserver, so it doesn't have to handle as much differences between
33231 two ends as remote protocol (@pxref{Remote Protocol}) tries to handle.
33232 However, there are still some differences of two ends in two processes:
33233
33234 @enumerate
33235 @item
33236 word size. On some 64-bit machines, @value{GDBN} or GDBserver can be
33237 compiled as a 64-bit executable, while in-process agent is a 32-bit one.
33238 @item
33239 ABI. Some machines may have multiple types of ABI, @value{GDBN} or
33240 GDBserver is compiled with one, and in-process agent is compiled with
33241 the other one.
33242 @end enumerate
33243
33244 Here are the IPA Protocol Objects:
33245
33246 @enumerate
33247 @item
33248 agent expression object. It represents an agent expression
33249 (@pxref{Agent Expressions}).
33250 @anchor{agent expression object}
33251 @item
33252 tracepoint action object. It represents a tracepoint action
33253 (@pxref{Tracepoint Actions,,Tracepoint Action Lists}) to collect registers,
33254 memory, static trace data and to evaluate expression.
33255 @anchor{tracepoint action object}
33256 @item
33257 tracepoint object. It represents a tracepoint (@pxref{Tracepoints}).
33258 @anchor{tracepoint object}
33259
33260 @end enumerate
33261
33262 The following table describes important attributes of each IPA protocol
33263 object:
33264
33265 @multitable @columnfractions .30 .20 .50
33266 @headitem Name @tab Size @tab Description
33267 @item @emph{agent expression object} @tab @tab
33268 @item length @tab 4 @tab length of bytes code
33269 @item byte code @tab @var{length} @tab contents of byte code
33270 @item @emph{tracepoint action for collecting memory} @tab @tab
33271 @item 'M' @tab 1 @tab type of tracepoint action
33272 @item addr @tab 8 @tab if @var{basereg} is @samp{-1}, @var{addr} is the
33273 address of the lowest byte to collect, otherwise @var{addr} is the offset
33274 of @var{basereg} for memory collecting.
33275 @item len @tab 8 @tab length of memory for collecting
33276 @item basereg @tab 4 @tab the register number containing the starting
33277 memory address for collecting.
33278 @item @emph{tracepoint action for collecting registers} @tab @tab
33279 @item 'R' @tab 1 @tab type of tracepoint action
33280 @item @emph{tracepoint action for collecting static trace data} @tab @tab
33281 @item 'L' @tab 1 @tab type of tracepoint action
33282 @item @emph{tracepoint action for expression evaluation} @tab @tab
33283 @item 'X' @tab 1 @tab type of tracepoint action
33284 @item agent expression @tab length of @tab @ref{agent expression object}
33285 @item @emph{tracepoint object} @tab @tab
33286 @item number @tab 4 @tab number of tracepoint
33287 @item address @tab 8 @tab address of tracepoint inserted on
33288 @item type @tab 4 @tab type of tracepoint
33289 @item enabled @tab 1 @tab enable or disable of tracepoint
33290 @item step_count @tab 8 @tab step
33291 @item pass_count @tab 8 @tab pass
33292 @item numactions @tab 4 @tab number of tracepoint actions
33293 @item hit count @tab 8 @tab hit count
33294 @item trace frame usage @tab 8 @tab trace frame usage
33295 @item compiled_cond @tab 8 @tab compiled condition
33296 @item orig_size @tab 8 @tab orig size
33297 @item condition @tab 4 if condition is NULL otherwise length of
33298 @ref{agent expression object}
33299 @tab zero if condition is NULL, otherwise is
33300 @ref{agent expression object}
33301 @item actions @tab variable
33302 @tab numactions number of @ref{tracepoint action object}
33303 @end multitable
33304
33305 @node IPA Protocol Commands
33306 @subsection IPA Protocol Commands
33307 @cindex ipa protocol commands
33308
33309 The spaces in each command are delimiters to ease reading this commands
33310 specification. They don't exist in real commands.
33311
33312 @table @samp
33313
33314 @item FastTrace:@var{tracepoint_object} @var{gdb_jump_pad_head}
33315 Installs a new fast tracepoint described by @var{tracepoint_object}
33316 (@pxref{tracepoint object}). The @var{gdb_jump_pad_head}, 8-byte long, is the
33317 head of @dfn{jumppad}, which is used to jump to data collection routine
33318 in IPA finally.
33319
33320 Replies:
33321 @table @samp
33322 @item OK @var{target_address} @var{gdb_jump_pad_head} @var{fjump_size} @var{fjump}
33323 @var{target_address} is address of tracepoint in the inferior.
33324 The @var{gdb_jump_pad_head} is updated head of jumppad. Both of
33325 @var{target_address} and @var{gdb_jump_pad_head} are 8-byte long.
33326 The @var{fjump} contains a sequence of instructions jump to jumppad entry.
33327 The @var{fjump_size}, 4-byte long, is the size of @var{fjump}.
33328 @item E @var{NN}
33329 for an error
33330
33331 @end table
33332
33333 @item close
33334 Closes the in-process agent. This command is sent when @value{GDBN} or GDBserver
33335 is about to kill inferiors.
33336
33337 @item qTfSTM
33338 @xref{qTfSTM}.
33339 @item qTsSTM
33340 @xref{qTsSTM}.
33341 @item qTSTMat
33342 @xref{qTSTMat}.
33343 @item probe_marker_at:@var{address}
33344 Asks in-process agent to probe the marker at @var{address}.
33345
33346 Replies:
33347 @table @samp
33348 @item E @var{NN}
33349 for an error
33350 @end table
33351 @item unprobe_marker_at:@var{address}
33352 Asks in-process agent to unprobe the marker at @var{address}.
33353 @end table
33354
33355 @node GDB Bugs
33356 @chapter Reporting Bugs in @value{GDBN}
33357 @cindex bugs in @value{GDBN}
33358 @cindex reporting bugs in @value{GDBN}
33359
33360 Your bug reports play an essential role in making @value{GDBN} reliable.
33361
33362 Reporting a bug may help you by bringing a solution to your problem, or it
33363 may not. But in any case the principal function of a bug report is to help
33364 the entire community by making the next version of @value{GDBN} work better. Bug
33365 reports are your contribution to the maintenance of @value{GDBN}.
33366
33367 In order for a bug report to serve its purpose, you must include the
33368 information that enables us to fix the bug.
33369
33370 @menu
33371 * Bug Criteria:: Have you found a bug?
33372 * Bug Reporting:: How to report bugs
33373 @end menu
33374
33375 @node Bug Criteria
33376 @section Have You Found a Bug?
33377 @cindex bug criteria
33378
33379 If you are not sure whether you have found a bug, here are some guidelines:
33380
33381 @itemize @bullet
33382 @cindex fatal signal
33383 @cindex debugger crash
33384 @cindex crash of debugger
33385 @item
33386 If the debugger gets a fatal signal, for any input whatever, that is a
33387 @value{GDBN} bug. Reliable debuggers never crash.
33388
33389 @cindex error on valid input
33390 @item
33391 If @value{GDBN} produces an error message for valid input, that is a
33392 bug. (Note that if you're cross debugging, the problem may also be
33393 somewhere in the connection to the target.)
33394
33395 @cindex invalid input
33396 @item
33397 If @value{GDBN} does not produce an error message for invalid input,
33398 that is a bug. However, you should note that your idea of
33399 ``invalid input'' might be our idea of ``an extension'' or ``support
33400 for traditional practice''.
33401
33402 @item
33403 If you are an experienced user of debugging tools, your suggestions
33404 for improvement of @value{GDBN} are welcome in any case.
33405 @end itemize
33406
33407 @node Bug Reporting
33408 @section How to Report Bugs
33409 @cindex bug reports
33410 @cindex @value{GDBN} bugs, reporting
33411
33412 A number of companies and individuals offer support for @sc{gnu} products.
33413 If you obtained @value{GDBN} from a support organization, we recommend you
33414 contact that organization first.
33415
33416 You can find contact information for many support companies and
33417 individuals in the file @file{etc/SERVICE} in the @sc{gnu} Emacs
33418 distribution.
33419 @c should add a web page ref...
33420
33421 @ifset BUGURL
33422 @ifset BUGURL_DEFAULT
33423 In any event, we also recommend that you submit bug reports for
33424 @value{GDBN}. The preferred method is to submit them directly using
33425 @uref{http://www.gnu.org/software/gdb/bugs/, @value{GDBN}'s Bugs web
33426 page}. Alternatively, the @email{bug-gdb@@gnu.org, e-mail gateway} can
33427 be used.
33428
33429 @strong{Do not send bug reports to @samp{info-gdb}, or to
33430 @samp{help-gdb}, or to any newsgroups.} Most users of @value{GDBN} do
33431 not want to receive bug reports. Those that do have arranged to receive
33432 @samp{bug-gdb}.
33433
33434 The mailing list @samp{bug-gdb} has a newsgroup @samp{gnu.gdb.bug} which
33435 serves as a repeater. The mailing list and the newsgroup carry exactly
33436 the same messages. Often people think of posting bug reports to the
33437 newsgroup instead of mailing them. This appears to work, but it has one
33438 problem which can be crucial: a newsgroup posting often lacks a mail
33439 path back to the sender. Thus, if we need to ask for more information,
33440 we may be unable to reach you. For this reason, it is better to send
33441 bug reports to the mailing list.
33442 @end ifset
33443 @ifclear BUGURL_DEFAULT
33444 In any event, we also recommend that you submit bug reports for
33445 @value{GDBN} to @value{BUGURL}.
33446 @end ifclear
33447 @end ifset
33448
33449 The fundamental principle of reporting bugs usefully is this:
33450 @strong{report all the facts}. If you are not sure whether to state a
33451 fact or leave it out, state it!
33452
33453 Often people omit facts because they think they know what causes the
33454 problem and assume that some details do not matter. Thus, you might
33455 assume that the name of the variable you use in an example does not matter.
33456 Well, probably it does not, but one cannot be sure. Perhaps the bug is a
33457 stray memory reference which happens to fetch from the location where that
33458 name is stored in memory; perhaps, if the name were different, the contents
33459 of that location would fool the debugger into doing the right thing despite
33460 the bug. Play it safe and give a specific, complete example. That is the
33461 easiest thing for you to do, and the most helpful.
33462
33463 Keep in mind that the purpose of a bug report is to enable us to fix the
33464 bug. It may be that the bug has been reported previously, but neither
33465 you nor we can know that unless your bug report is complete and
33466 self-contained.
33467
33468 Sometimes people give a few sketchy facts and ask, ``Does this ring a
33469 bell?'' Those bug reports are useless, and we urge everyone to
33470 @emph{refuse to respond to them} except to chide the sender to report
33471 bugs properly.
33472
33473 To enable us to fix the bug, you should include all these things:
33474
33475 @itemize @bullet
33476 @item
33477 The version of @value{GDBN}. @value{GDBN} announces it if you start
33478 with no arguments; you can also print it at any time using @code{show
33479 version}.
33480
33481 Without this, we will not know whether there is any point in looking for
33482 the bug in the current version of @value{GDBN}.
33483
33484 @item
33485 The type of machine you are using, and the operating system name and
33486 version number.
33487
33488 @item
33489 The details of the @value{GDBN} build-time configuration.
33490 @value{GDBN} shows these details if you invoke it with the
33491 @option{--configuration} command-line option, or if you type
33492 @code{show configuration} at @value{GDBN}'s prompt.
33493
33494 @item
33495 What compiler (and its version) was used to compile @value{GDBN}---e.g.@:
33496 ``@value{GCC}--2.8.1''.
33497
33498 @item
33499 What compiler (and its version) was used to compile the program you are
33500 debugging---e.g.@: ``@value{GCC}--2.8.1'', or ``HP92453-01 A.10.32.03 HP
33501 C Compiler''. For @value{NGCC}, you can say @kbd{@value{GCC} --version}
33502 to get this information; for other compilers, see the documentation for
33503 those compilers.
33504
33505 @item
33506 The command arguments you gave the compiler to compile your example and
33507 observe the bug. For example, did you use @samp{-O}? To guarantee
33508 you will not omit something important, list them all. A copy of the
33509 Makefile (or the output from make) is sufficient.
33510
33511 If we were to try to guess the arguments, we would probably guess wrong
33512 and then we might not encounter the bug.
33513
33514 @item
33515 A complete input script, and all necessary source files, that will
33516 reproduce the bug.
33517
33518 @item
33519 A description of what behavior you observe that you believe is
33520 incorrect. For example, ``It gets a fatal signal.''
33521
33522 Of course, if the bug is that @value{GDBN} gets a fatal signal, then we
33523 will certainly notice it. But if the bug is incorrect output, we might
33524 not notice unless it is glaringly wrong. You might as well not give us
33525 a chance to make a mistake.
33526
33527 Even if the problem you experience is a fatal signal, you should still
33528 say so explicitly. Suppose something strange is going on, such as, your
33529 copy of @value{GDBN} is out of synch, or you have encountered a bug in
33530 the C library on your system. (This has happened!) Your copy might
33531 crash and ours would not. If you told us to expect a crash, then when
33532 ours fails to crash, we would know that the bug was not happening for
33533 us. If you had not told us to expect a crash, then we would not be able
33534 to draw any conclusion from our observations.
33535
33536 @pindex script
33537 @cindex recording a session script
33538 To collect all this information, you can use a session recording program
33539 such as @command{script}, which is available on many Unix systems.
33540 Just run your @value{GDBN} session inside @command{script} and then
33541 include the @file{typescript} file with your bug report.
33542
33543 Another way to record a @value{GDBN} session is to run @value{GDBN}
33544 inside Emacs and then save the entire buffer to a file.
33545
33546 @item
33547 If you wish to suggest changes to the @value{GDBN} source, send us context
33548 diffs. If you even discuss something in the @value{GDBN} source, refer to
33549 it by context, not by line number.
33550
33551 The line numbers in our development sources will not match those in your
33552 sources. Your line numbers would convey no useful information to us.
33553
33554 @end itemize
33555
33556 Here are some things that are not necessary:
33557
33558 @itemize @bullet
33559 @item
33560 A description of the envelope of the bug.
33561
33562 Often people who encounter a bug spend a lot of time investigating
33563 which changes to the input file will make the bug go away and which
33564 changes will not affect it.
33565
33566 This is often time consuming and not very useful, because the way we
33567 will find the bug is by running a single example under the debugger
33568 with breakpoints, not by pure deduction from a series of examples.
33569 We recommend that you save your time for something else.
33570
33571 Of course, if you can find a simpler example to report @emph{instead}
33572 of the original one, that is a convenience for us. Errors in the
33573 output will be easier to spot, running under the debugger will take
33574 less time, and so on.
33575
33576 However, simplification is not vital; if you do not want to do this,
33577 report the bug anyway and send us the entire test case you used.
33578
33579 @item
33580 A patch for the bug.
33581
33582 A patch for the bug does help us if it is a good one. But do not omit
33583 the necessary information, such as the test case, on the assumption that
33584 a patch is all we need. We might see problems with your patch and decide
33585 to fix the problem another way, or we might not understand it at all.
33586
33587 Sometimes with a program as complicated as @value{GDBN} it is very hard to
33588 construct an example that will make the program follow a certain path
33589 through the code. If you do not send us the example, we will not be able
33590 to construct one, so we will not be able to verify that the bug is fixed.
33591
33592 And if we cannot understand what bug you are trying to fix, or why your
33593 patch should be an improvement, we will not install it. A test case will
33594 help us to understand.
33595
33596 @item
33597 A guess about what the bug is or what it depends on.
33598
33599 Such guesses are usually wrong. Even we cannot guess right about such
33600 things without first using the debugger to find the facts.
33601 @end itemize
33602
33603 @c The readline documentation is distributed with the readline code
33604 @c and consists of the two following files:
33605 @c rluser.texi
33606 @c hsuser.texi
33607 @c Use -I with makeinfo to point to the appropriate directory,
33608 @c environment var TEXINPUTS with TeX.
33609 @ifclear SYSTEM_READLINE
33610 @include rluser.texi
33611 @include hsuser.texi
33612 @end ifclear
33613
33614 @node In Memoriam
33615 @appendix In Memoriam
33616
33617 The @value{GDBN} project mourns the loss of the following long-time
33618 contributors:
33619
33620 @table @code
33621 @item Fred Fish
33622 Fred was a long-standing contributor to @value{GDBN} (1991-2006), and
33623 to Free Software in general. Outside of @value{GDBN}, he was known in
33624 the Amiga world for his series of Fish Disks, and the GeekGadget project.
33625
33626 @item Michael Snyder
33627 Michael was one of the Global Maintainers of the @value{GDBN} project,
33628 with contributions recorded as early as 1996, until 2011. In addition
33629 to his day to day participation, he was a large driving force behind
33630 adding Reverse Debugging to @value{GDBN}.
33631 @end table
33632
33633 Beyond their technical contributions to the project, they were also
33634 enjoyable members of the Free Software Community. We will miss them.
33635
33636 @node Formatting Documentation
33637 @appendix Formatting Documentation
33638
33639 @cindex @value{GDBN} reference card
33640 @cindex reference card
33641 The @value{GDBN} 4 release includes an already-formatted reference card, ready
33642 for printing with PostScript or Ghostscript, in the @file{gdb}
33643 subdirectory of the main source directory@footnote{In
33644 @file{gdb-@value{GDBVN}/gdb/refcard.ps} of the version @value{GDBVN}
33645 release.}. If you can use PostScript or Ghostscript with your printer,
33646 you can print the reference card immediately with @file{refcard.ps}.
33647
33648 The release also includes the source for the reference card. You
33649 can format it, using @TeX{}, by typing:
33650
33651 @smallexample
33652 make refcard.dvi
33653 @end smallexample
33654
33655 The @value{GDBN} reference card is designed to print in @dfn{landscape}
33656 mode on US ``letter'' size paper;
33657 that is, on a sheet 11 inches wide by 8.5 inches
33658 high. You will need to specify this form of printing as an option to
33659 your @sc{dvi} output program.
33660
33661 @cindex documentation
33662
33663 All the documentation for @value{GDBN} comes as part of the machine-readable
33664 distribution. The documentation is written in Texinfo format, which is
33665 a documentation system that uses a single source file to produce both
33666 on-line information and a printed manual. You can use one of the Info
33667 formatting commands to create the on-line version of the documentation
33668 and @TeX{} (or @code{texi2roff}) to typeset the printed version.
33669
33670 @value{GDBN} includes an already formatted copy of the on-line Info
33671 version of this manual in the @file{gdb} subdirectory. The main Info
33672 file is @file{gdb-@value{GDBVN}/gdb/gdb.info}, and it refers to
33673 subordinate files matching @samp{gdb.info*} in the same directory. If
33674 necessary, you can print out these files, or read them with any editor;
33675 but they are easier to read using the @code{info} subsystem in @sc{gnu}
33676 Emacs or the standalone @code{info} program, available as part of the
33677 @sc{gnu} Texinfo distribution.
33678
33679 If you want to format these Info files yourself, you need one of the
33680 Info formatting programs, such as @code{texinfo-format-buffer} or
33681 @code{makeinfo}.
33682
33683 If you have @code{makeinfo} installed, and are in the top level
33684 @value{GDBN} source directory (@file{gdb-@value{GDBVN}}, in the case of
33685 version @value{GDBVN}), you can make the Info file by typing:
33686
33687 @smallexample
33688 cd gdb
33689 make gdb.info
33690 @end smallexample
33691
33692 If you want to typeset and print copies of this manual, you need @TeX{},
33693 a program to print its @sc{dvi} output files, and @file{texinfo.tex}, the
33694 Texinfo definitions file.
33695
33696 @TeX{} is a typesetting program; it does not print files directly, but
33697 produces output files called @sc{dvi} files. To print a typeset
33698 document, you need a program to print @sc{dvi} files. If your system
33699 has @TeX{} installed, chances are it has such a program. The precise
33700 command to use depends on your system; @kbd{lpr -d} is common; another
33701 (for PostScript devices) is @kbd{dvips}. The @sc{dvi} print command may
33702 require a file name without any extension or a @samp{.dvi} extension.
33703
33704 @TeX{} also requires a macro definitions file called
33705 @file{texinfo.tex}. This file tells @TeX{} how to typeset a document
33706 written in Texinfo format. On its own, @TeX{} cannot either read or
33707 typeset a Texinfo file. @file{texinfo.tex} is distributed with GDB
33708 and is located in the @file{gdb-@var{version-number}/texinfo}
33709 directory.
33710
33711 If you have @TeX{} and a @sc{dvi} printer program installed, you can
33712 typeset and print this manual. First switch to the @file{gdb}
33713 subdirectory of the main source directory (for example, to
33714 @file{gdb-@value{GDBVN}/gdb}) and type:
33715
33716 @smallexample
33717 make gdb.dvi
33718 @end smallexample
33719
33720 Then give @file{gdb.dvi} to your @sc{dvi} printing program.
33721
33722 @node Installing GDB
33723 @appendix Installing @value{GDBN}
33724 @cindex installation
33725
33726 @menu
33727 * Requirements:: Requirements for building @value{GDBN}
33728 * Running Configure:: Invoking the @value{GDBN} @file{configure} script
33729 * Separate Objdir:: Compiling @value{GDBN} in another directory
33730 * Config Names:: Specifying names for hosts and targets
33731 * Configure Options:: Summary of options for configure
33732 * System-wide configuration:: Having a system-wide init file
33733 @end menu
33734
33735 @node Requirements
33736 @section Requirements for Building @value{GDBN}
33737 @cindex building @value{GDBN}, requirements for
33738
33739 Building @value{GDBN} requires various tools and packages to be available.
33740 Other packages will be used only if they are found.
33741
33742 @heading Tools/Packages Necessary for Building @value{GDBN}
33743 @table @asis
33744 @item ISO C90 compiler
33745 @value{GDBN} is written in ISO C90. It should be buildable with any
33746 working C90 compiler, e.g.@: GCC.
33747
33748 @end table
33749
33750 @heading Tools/Packages Optional for Building @value{GDBN}
33751 @table @asis
33752 @item Expat
33753 @anchor{Expat}
33754 @value{GDBN} can use the Expat XML parsing library. This library may be
33755 included with your operating system distribution; if it is not, you
33756 can get the latest version from @url{http://expat.sourceforge.net}.
33757 The @file{configure} script will search for this library in several
33758 standard locations; if it is installed in an unusual path, you can
33759 use the @option{--with-libexpat-prefix} option to specify its location.
33760
33761 Expat is used for:
33762
33763 @itemize @bullet
33764 @item
33765 Remote protocol memory maps (@pxref{Memory Map Format})
33766 @item
33767 Target descriptions (@pxref{Target Descriptions})
33768 @item
33769 Remote shared library lists (@xref{Library List Format},
33770 or alternatively @pxref{Library List Format for SVR4 Targets})
33771 @item
33772 MS-Windows shared libraries (@pxref{Shared Libraries})
33773 @item
33774 Traceframe info (@pxref{Traceframe Info Format})
33775 @item
33776 Branch trace (@pxref{Branch Trace Format},
33777 @pxref{Branch Trace Configuration Format})
33778 @end itemize
33779
33780 @item zlib
33781 @cindex compressed debug sections
33782 @value{GDBN} will use the @samp{zlib} library, if available, to read
33783 compressed debug sections. Some linkers, such as GNU gold, are capable
33784 of producing binaries with compressed debug sections. If @value{GDBN}
33785 is compiled with @samp{zlib}, it will be able to read the debug
33786 information in such binaries.
33787
33788 The @samp{zlib} library is likely included with your operating system
33789 distribution; if it is not, you can get the latest version from
33790 @url{http://zlib.net}.
33791
33792 @item iconv
33793 @value{GDBN}'s features related to character sets (@pxref{Character
33794 Sets}) require a functioning @code{iconv} implementation. If you are
33795 on a GNU system, then this is provided by the GNU C Library. Some
33796 other systems also provide a working @code{iconv}.
33797
33798 If @value{GDBN} is using the @code{iconv} program which is installed
33799 in a non-standard place, you will need to tell @value{GDBN} where to find it.
33800 This is done with @option{--with-iconv-bin} which specifies the
33801 directory that contains the @code{iconv} program.
33802
33803 On systems without @code{iconv}, you can install GNU Libiconv. If you
33804 have previously installed Libiconv, you can use the
33805 @option{--with-libiconv-prefix} option to configure.
33806
33807 @value{GDBN}'s top-level @file{configure} and @file{Makefile} will
33808 arrange to build Libiconv if a directory named @file{libiconv} appears
33809 in the top-most source directory. If Libiconv is built this way, and
33810 if the operating system does not provide a suitable @code{iconv}
33811 implementation, then the just-built library will automatically be used
33812 by @value{GDBN}. One easy way to set this up is to download GNU
33813 Libiconv, unpack it, and then rename the directory holding the
33814 Libiconv source code to @samp{libiconv}.
33815 @end table
33816
33817 @node Running Configure
33818 @section Invoking the @value{GDBN} @file{configure} Script
33819 @cindex configuring @value{GDBN}
33820 @value{GDBN} comes with a @file{configure} script that automates the process
33821 of preparing @value{GDBN} for installation; you can then use @code{make} to
33822 build the @code{gdb} program.
33823 @iftex
33824 @c irrelevant in info file; it's as current as the code it lives with.
33825 @footnote{If you have a more recent version of @value{GDBN} than @value{GDBVN},
33826 look at the @file{README} file in the sources; we may have improved the
33827 installation procedures since publishing this manual.}
33828 @end iftex
33829
33830 The @value{GDBN} distribution includes all the source code you need for
33831 @value{GDBN} in a single directory, whose name is usually composed by
33832 appending the version number to @samp{gdb}.
33833
33834 For example, the @value{GDBN} version @value{GDBVN} distribution is in the
33835 @file{gdb-@value{GDBVN}} directory. That directory contains:
33836
33837 @table @code
33838 @item gdb-@value{GDBVN}/configure @r{(and supporting files)}
33839 script for configuring @value{GDBN} and all its supporting libraries
33840
33841 @item gdb-@value{GDBVN}/gdb
33842 the source specific to @value{GDBN} itself
33843
33844 @item gdb-@value{GDBVN}/bfd
33845 source for the Binary File Descriptor library
33846
33847 @item gdb-@value{GDBVN}/include
33848 @sc{gnu} include files
33849
33850 @item gdb-@value{GDBVN}/libiberty
33851 source for the @samp{-liberty} free software library
33852
33853 @item gdb-@value{GDBVN}/opcodes
33854 source for the library of opcode tables and disassemblers
33855
33856 @item gdb-@value{GDBVN}/readline
33857 source for the @sc{gnu} command-line interface
33858
33859 @item gdb-@value{GDBVN}/glob
33860 source for the @sc{gnu} filename pattern-matching subroutine
33861
33862 @item gdb-@value{GDBVN}/mmalloc
33863 source for the @sc{gnu} memory-mapped malloc package
33864 @end table
33865
33866 The simplest way to configure and build @value{GDBN} is to run @file{configure}
33867 from the @file{gdb-@var{version-number}} source directory, which in
33868 this example is the @file{gdb-@value{GDBVN}} directory.
33869
33870 First switch to the @file{gdb-@var{version-number}} source directory
33871 if you are not already in it; then run @file{configure}. Pass the
33872 identifier for the platform on which @value{GDBN} will run as an
33873 argument.
33874
33875 For example:
33876
33877 @smallexample
33878 cd gdb-@value{GDBVN}
33879 ./configure @var{host}
33880 make
33881 @end smallexample
33882
33883 @noindent
33884 where @var{host} is an identifier such as @samp{sun4} or
33885 @samp{decstation}, that identifies the platform where @value{GDBN} will run.
33886 (You can often leave off @var{host}; @file{configure} tries to guess the
33887 correct value by examining your system.)
33888
33889 Running @samp{configure @var{host}} and then running @code{make} builds the
33890 @file{bfd}, @file{readline}, @file{mmalloc}, and @file{libiberty}
33891 libraries, then @code{gdb} itself. The configured source files, and the
33892 binaries, are left in the corresponding source directories.
33893
33894 @need 750
33895 @file{configure} is a Bourne-shell (@code{/bin/sh}) script; if your
33896 system does not recognize this automatically when you run a different
33897 shell, you may need to run @code{sh} on it explicitly:
33898
33899 @smallexample
33900 sh configure @var{host}
33901 @end smallexample
33902
33903 If you run @file{configure} from a directory that contains source
33904 directories for multiple libraries or programs, such as the
33905 @file{gdb-@value{GDBVN}} source directory for version @value{GDBVN},
33906 @file{configure}
33907 creates configuration files for every directory level underneath (unless
33908 you tell it not to, with the @samp{--norecursion} option).
33909
33910 You should run the @file{configure} script from the top directory in the
33911 source tree, the @file{gdb-@var{version-number}} directory. If you run
33912 @file{configure} from one of the subdirectories, you will configure only
33913 that subdirectory. That is usually not what you want. In particular,
33914 if you run the first @file{configure} from the @file{gdb} subdirectory
33915 of the @file{gdb-@var{version-number}} directory, you will omit the
33916 configuration of @file{bfd}, @file{readline}, and other sibling
33917 directories of the @file{gdb} subdirectory. This leads to build errors
33918 about missing include files such as @file{bfd/bfd.h}.
33919
33920 You can install @code{@value{GDBP}} anywhere; it has no hardwired paths.
33921 However, you should make sure that the shell on your path (named by
33922 the @samp{SHELL} environment variable) is publicly readable. Remember
33923 that @value{GDBN} uses the shell to start your program---some systems refuse to
33924 let @value{GDBN} debug child processes whose programs are not readable.
33925
33926 @node Separate Objdir
33927 @section Compiling @value{GDBN} in Another Directory
33928
33929 If you want to run @value{GDBN} versions for several host or target machines,
33930 you need a different @code{gdb} compiled for each combination of
33931 host and target. @file{configure} is designed to make this easy by
33932 allowing you to generate each configuration in a separate subdirectory,
33933 rather than in the source directory. If your @code{make} program
33934 handles the @samp{VPATH} feature (@sc{gnu} @code{make} does), running
33935 @code{make} in each of these directories builds the @code{gdb}
33936 program specified there.
33937
33938 To build @code{gdb} in a separate directory, run @file{configure}
33939 with the @samp{--srcdir} option to specify where to find the source.
33940 (You also need to specify a path to find @file{configure}
33941 itself from your working directory. If the path to @file{configure}
33942 would be the same as the argument to @samp{--srcdir}, you can leave out
33943 the @samp{--srcdir} option; it is assumed.)
33944
33945 For example, with version @value{GDBVN}, you can build @value{GDBN} in a
33946 separate directory for a Sun 4 like this:
33947
33948 @smallexample
33949 @group
33950 cd gdb-@value{GDBVN}
33951 mkdir ../gdb-sun4
33952 cd ../gdb-sun4
33953 ../gdb-@value{GDBVN}/configure sun4
33954 make
33955 @end group
33956 @end smallexample
33957
33958 When @file{configure} builds a configuration using a remote source
33959 directory, it creates a tree for the binaries with the same structure
33960 (and using the same names) as the tree under the source directory. In
33961 the example, you'd find the Sun 4 library @file{libiberty.a} in the
33962 directory @file{gdb-sun4/libiberty}, and @value{GDBN} itself in
33963 @file{gdb-sun4/gdb}.
33964
33965 Make sure that your path to the @file{configure} script has just one
33966 instance of @file{gdb} in it. If your path to @file{configure} looks
33967 like @file{../gdb-@value{GDBVN}/gdb/configure}, you are configuring only
33968 one subdirectory of @value{GDBN}, not the whole package. This leads to
33969 build errors about missing include files such as @file{bfd/bfd.h}.
33970
33971 One popular reason to build several @value{GDBN} configurations in separate
33972 directories is to configure @value{GDBN} for cross-compiling (where
33973 @value{GDBN} runs on one machine---the @dfn{host}---while debugging
33974 programs that run on another machine---the @dfn{target}).
33975 You specify a cross-debugging target by
33976 giving the @samp{--target=@var{target}} option to @file{configure}.
33977
33978 When you run @code{make} to build a program or library, you must run
33979 it in a configured directory---whatever directory you were in when you
33980 called @file{configure} (or one of its subdirectories).
33981
33982 The @code{Makefile} that @file{configure} generates in each source
33983 directory also runs recursively. If you type @code{make} in a source
33984 directory such as @file{gdb-@value{GDBVN}} (or in a separate configured
33985 directory configured with @samp{--srcdir=@var{dirname}/gdb-@value{GDBVN}}), you
33986 will build all the required libraries, and then build GDB.
33987
33988 When you have multiple hosts or targets configured in separate
33989 directories, you can run @code{make} on them in parallel (for example,
33990 if they are NFS-mounted on each of the hosts); they will not interfere
33991 with each other.
33992
33993 @node Config Names
33994 @section Specifying Names for Hosts and Targets
33995
33996 The specifications used for hosts and targets in the @file{configure}
33997 script are based on a three-part naming scheme, but some short predefined
33998 aliases are also supported. The full naming scheme encodes three pieces
33999 of information in the following pattern:
34000
34001 @smallexample
34002 @var{architecture}-@var{vendor}-@var{os}
34003 @end smallexample
34004
34005 For example, you can use the alias @code{sun4} as a @var{host} argument,
34006 or as the value for @var{target} in a @code{--target=@var{target}}
34007 option. The equivalent full name is @samp{sparc-sun-sunos4}.
34008
34009 The @file{configure} script accompanying @value{GDBN} does not provide
34010 any query facility to list all supported host and target names or
34011 aliases. @file{configure} calls the Bourne shell script
34012 @code{config.sub} to map abbreviations to full names; you can read the
34013 script, if you wish, or you can use it to test your guesses on
34014 abbreviations---for example:
34015
34016 @smallexample
34017 % sh config.sub i386-linux
34018 i386-pc-linux-gnu
34019 % sh config.sub alpha-linux
34020 alpha-unknown-linux-gnu
34021 % sh config.sub hp9k700
34022 hppa1.1-hp-hpux
34023 % sh config.sub sun4
34024 sparc-sun-sunos4.1.1
34025 % sh config.sub sun3
34026 m68k-sun-sunos4.1.1
34027 % sh config.sub i986v
34028 Invalid configuration `i986v': machine `i986v' not recognized
34029 @end smallexample
34030
34031 @noindent
34032 @code{config.sub} is also distributed in the @value{GDBN} source
34033 directory (@file{gdb-@value{GDBVN}}, for version @value{GDBVN}).
34034
34035 @node Configure Options
34036 @section @file{configure} Options
34037
34038 Here is a summary of the @file{configure} options and arguments that
34039 are most often useful for building @value{GDBN}. @file{configure} also has
34040 several other options not listed here. @inforef{What Configure
34041 Does,,configure.info}, for a full explanation of @file{configure}.
34042
34043 @smallexample
34044 configure @r{[}--help@r{]}
34045 @r{[}--prefix=@var{dir}@r{]}
34046 @r{[}--exec-prefix=@var{dir}@r{]}
34047 @r{[}--srcdir=@var{dirname}@r{]}
34048 @r{[}--norecursion@r{]} @r{[}--rm@r{]}
34049 @r{[}--target=@var{target}@r{]}
34050 @var{host}
34051 @end smallexample
34052
34053 @noindent
34054 You may introduce options with a single @samp{-} rather than
34055 @samp{--} if you prefer; but you may abbreviate option names if you use
34056 @samp{--}.
34057
34058 @table @code
34059 @item --help
34060 Display a quick summary of how to invoke @file{configure}.
34061
34062 @item --prefix=@var{dir}
34063 Configure the source to install programs and files under directory
34064 @file{@var{dir}}.
34065
34066 @item --exec-prefix=@var{dir}
34067 Configure the source to install programs under directory
34068 @file{@var{dir}}.
34069
34070 @c avoid splitting the warning from the explanation:
34071 @need 2000
34072 @item --srcdir=@var{dirname}
34073 @strong{Warning: using this option requires @sc{gnu} @code{make}, or another
34074 @code{make} that implements the @code{VPATH} feature.}@*
34075 Use this option to make configurations in directories separate from the
34076 @value{GDBN} source directories. Among other things, you can use this to
34077 build (or maintain) several configurations simultaneously, in separate
34078 directories. @file{configure} writes configuration-specific files in
34079 the current directory, but arranges for them to use the source in the
34080 directory @var{dirname}. @file{configure} creates directories under
34081 the working directory in parallel to the source directories below
34082 @var{dirname}.
34083
34084 @item --norecursion
34085 Configure only the directory level where @file{configure} is executed; do not
34086 propagate configuration to subdirectories.
34087
34088 @item --target=@var{target}
34089 Configure @value{GDBN} for cross-debugging programs running on the specified
34090 @var{target}. Without this option, @value{GDBN} is configured to debug
34091 programs that run on the same machine (@var{host}) as @value{GDBN} itself.
34092
34093 There is no convenient way to generate a list of all available targets.
34094
34095 @item @var{host} @dots{}
34096 Configure @value{GDBN} to run on the specified @var{host}.
34097
34098 There is no convenient way to generate a list of all available hosts.
34099 @end table
34100
34101 There are many other options available as well, but they are generally
34102 needed for special purposes only.
34103
34104 @node System-wide configuration
34105 @section System-wide configuration and settings
34106 @cindex system-wide init file
34107
34108 @value{GDBN} can be configured to have a system-wide init file;
34109 this file will be read and executed at startup (@pxref{Startup, , What
34110 @value{GDBN} does during startup}).
34111
34112 Here is the corresponding configure option:
34113
34114 @table @code
34115 @item --with-system-gdbinit=@var{file}
34116 Specify that the default location of the system-wide init file is
34117 @var{file}.
34118 @end table
34119
34120 If @value{GDBN} has been configured with the option @option{--prefix=$prefix},
34121 it may be subject to relocation. Two possible cases:
34122
34123 @itemize @bullet
34124 @item
34125 If the default location of this init file contains @file{$prefix},
34126 it will be subject to relocation. Suppose that the configure options
34127 are @option{--prefix=$prefix --with-system-gdbinit=$prefix/etc/gdbinit};
34128 if @value{GDBN} is moved from @file{$prefix} to @file{$install}, the system
34129 init file is looked for as @file{$install/etc/gdbinit} instead of
34130 @file{$prefix/etc/gdbinit}.
34131
34132 @item
34133 By contrast, if the default location does not contain the prefix,
34134 it will not be relocated. E.g.@: if @value{GDBN} has been configured with
34135 @option{--prefix=/usr/local --with-system-gdbinit=/usr/share/gdb/gdbinit},
34136 then @value{GDBN} will always look for @file{/usr/share/gdb/gdbinit},
34137 wherever @value{GDBN} is installed.
34138 @end itemize
34139
34140 If the configured location of the system-wide init file (as given by the
34141 @option{--with-system-gdbinit} option at configure time) is in the
34142 data-directory (as specified by @option{--with-gdb-datadir} at configure
34143 time) or in one of its subdirectories, then @value{GDBN} will look for the
34144 system-wide init file in the directory specified by the
34145 @option{--data-directory} command-line option.
34146 Note that the system-wide init file is only read once, during @value{GDBN}
34147 initialization. If the data-directory is changed after @value{GDBN} has
34148 started with the @code{set data-directory} command, the file will not be
34149 reread.
34150
34151 @menu
34152 * System-wide Configuration Scripts:: Installed System-wide Configuration Scripts
34153 @end menu
34154
34155 @node System-wide Configuration Scripts
34156 @subsection Installed System-wide Configuration Scripts
34157 @cindex system-wide configuration scripts
34158
34159 The @file{system-gdbinit} directory, located inside the data-directory
34160 (as specified by @option{--with-gdb-datadir} at configure time) contains
34161 a number of scripts which can be used as system-wide init files. To
34162 automatically source those scripts at startup, @value{GDBN} should be
34163 configured with @option{--with-system-gdbinit}. Otherwise, any user
34164 should be able to source them by hand as needed.
34165
34166 The following scripts are currently available:
34167 @itemize @bullet
34168
34169 @item @file{elinos.py}
34170 @pindex elinos.py
34171 @cindex ELinOS system-wide configuration script
34172 This script is useful when debugging a program on an ELinOS target.
34173 It takes advantage of the environment variables defined in a standard
34174 ELinOS environment in order to determine the location of the system
34175 shared libraries, and then sets the @samp{solib-absolute-prefix}
34176 and @samp{solib-search-path} variables appropriately.
34177
34178 @item @file{wrs-linux.py}
34179 @pindex wrs-linux.py
34180 @cindex Wind River Linux system-wide configuration script
34181 This script is useful when debugging a program on a target running
34182 Wind River Linux. It expects the @env{ENV_PREFIX} to be set to
34183 the host-side sysroot used by the target system.
34184
34185 @end itemize
34186
34187 @node Maintenance Commands
34188 @appendix Maintenance Commands
34189 @cindex maintenance commands
34190 @cindex internal commands
34191
34192 In addition to commands intended for @value{GDBN} users, @value{GDBN}
34193 includes a number of commands intended for @value{GDBN} developers,
34194 that are not documented elsewhere in this manual. These commands are
34195 provided here for reference. (For commands that turn on debugging
34196 messages, see @ref{Debugging Output}.)
34197
34198 @table @code
34199 @kindex maint agent
34200 @kindex maint agent-eval
34201 @item maint agent @r{[}-at @var{location}@r{,}@r{]} @var{expression}
34202 @itemx maint agent-eval @r{[}-at @var{location}@r{,}@r{]} @var{expression}
34203 Translate the given @var{expression} into remote agent bytecodes.
34204 This command is useful for debugging the Agent Expression mechanism
34205 (@pxref{Agent Expressions}). The @samp{agent} version produces an
34206 expression useful for data collection, such as by tracepoints, while
34207 @samp{maint agent-eval} produces an expression that evaluates directly
34208 to a result. For instance, a collection expression for @code{globa +
34209 globb} will include bytecodes to record four bytes of memory at each
34210 of the addresses of @code{globa} and @code{globb}, while discarding
34211 the result of the addition, while an evaluation expression will do the
34212 addition and return the sum.
34213 If @code{-at} is given, generate remote agent bytecode for @var{location}.
34214 If not, generate remote agent bytecode for current frame PC address.
34215
34216 @kindex maint agent-printf
34217 @item maint agent-printf @var{format},@var{expr},...
34218 Translate the given format string and list of argument expressions
34219 into remote agent bytecodes and display them as a disassembled list.
34220 This command is useful for debugging the agent version of dynamic
34221 printf (@pxref{Dynamic Printf}).
34222
34223 @kindex maint info breakpoints
34224 @item @anchor{maint info breakpoints}maint info breakpoints
34225 Using the same format as @samp{info breakpoints}, display both the
34226 breakpoints you've set explicitly, and those @value{GDBN} is using for
34227 internal purposes. Internal breakpoints are shown with negative
34228 breakpoint numbers. The type column identifies what kind of breakpoint
34229 is shown:
34230
34231 @table @code
34232 @item breakpoint
34233 Normal, explicitly set breakpoint.
34234
34235 @item watchpoint
34236 Normal, explicitly set watchpoint.
34237
34238 @item longjmp
34239 Internal breakpoint, used to handle correctly stepping through
34240 @code{longjmp} calls.
34241
34242 @item longjmp resume
34243 Internal breakpoint at the target of a @code{longjmp}.
34244
34245 @item until
34246 Temporary internal breakpoint used by the @value{GDBN} @code{until} command.
34247
34248 @item finish
34249 Temporary internal breakpoint used by the @value{GDBN} @code{finish} command.
34250
34251 @item shlib events
34252 Shared library events.
34253
34254 @end table
34255
34256 @kindex maint info btrace
34257 @item maint info btrace
34258 Pint information about raw branch tracing data.
34259
34260 @kindex maint btrace packet-history
34261 @item maint btrace packet-history
34262 Print the raw branch trace packets that are used to compute the
34263 execution history for the @samp{record btrace} command. Both the
34264 information and the format in which it is printed depend on the btrace
34265 recording format.
34266
34267 @table @code
34268 @item bts
34269 For the BTS recording format, print a list of blocks of sequential
34270 code. For each block, the following information is printed:
34271
34272 @table @asis
34273 @item Block number
34274 Newer blocks have higher numbers. The oldest block has number zero.
34275 @item Lowest @samp{PC}
34276 @item Highest @samp{PC}
34277 @end table
34278
34279 @item pt
34280 For the Intel Processor Trace recording format, print a list of
34281 Intel Processor Trace packets. For each packet, the following
34282 information is printed:
34283
34284 @table @asis
34285 @item Packet number
34286 Newer packets have higher numbers. The oldest packet has number zero.
34287 @item Trace offset
34288 The packet's offset in the trace stream.
34289 @item Packet opcode and payload
34290 @end table
34291 @end table
34292
34293 @kindex maint btrace clear-packet-history
34294 @item maint btrace clear-packet-history
34295 Discards the cached packet history printed by the @samp{maint btrace
34296 packet-history} command. The history will be computed again when
34297 needed.
34298
34299 @kindex maint btrace clear
34300 @item maint btrace clear
34301 Discard the branch trace data. The data will be fetched anew and the
34302 branch trace will be recomputed when needed.
34303
34304 This implicitly truncates the branch trace to a single branch trace
34305 buffer. When updating branch trace incrementally, the branch trace
34306 available to @value{GDBN} may be bigger than a single branch trace
34307 buffer.
34308
34309 @kindex maint set btrace pt skip-pad
34310 @item maint set btrace pt skip-pad
34311 @kindex maint show btrace pt skip-pad
34312 @item maint show btrace pt skip-pad
34313 Control whether @value{GDBN} will skip PAD packets when computing the
34314 packet history.
34315
34316 @kindex set displaced-stepping
34317 @kindex show displaced-stepping
34318 @cindex displaced stepping support
34319 @cindex out-of-line single-stepping
34320 @item set displaced-stepping
34321 @itemx show displaced-stepping
34322 Control whether or not @value{GDBN} will do @dfn{displaced stepping}
34323 if the target supports it. Displaced stepping is a way to single-step
34324 over breakpoints without removing them from the inferior, by executing
34325 an out-of-line copy of the instruction that was originally at the
34326 breakpoint location. It is also known as out-of-line single-stepping.
34327
34328 @table @code
34329 @item set displaced-stepping on
34330 If the target architecture supports it, @value{GDBN} will use
34331 displaced stepping to step over breakpoints.
34332
34333 @item set displaced-stepping off
34334 @value{GDBN} will not use displaced stepping to step over breakpoints,
34335 even if such is supported by the target architecture.
34336
34337 @cindex non-stop mode, and @samp{set displaced-stepping}
34338 @item set displaced-stepping auto
34339 This is the default mode. @value{GDBN} will use displaced stepping
34340 only if non-stop mode is active (@pxref{Non-Stop Mode}) and the target
34341 architecture supports displaced stepping.
34342 @end table
34343
34344 @kindex maint check-psymtabs
34345 @item maint check-psymtabs
34346 Check the consistency of currently expanded psymtabs versus symtabs.
34347 Use this to check, for example, whether a symbol is in one but not the other.
34348
34349 @kindex maint check-symtabs
34350 @item maint check-symtabs
34351 Check the consistency of currently expanded symtabs.
34352
34353 @kindex maint expand-symtabs
34354 @item maint expand-symtabs [@var{regexp}]
34355 Expand symbol tables.
34356 If @var{regexp} is specified, only expand symbol tables for file
34357 names matching @var{regexp}.
34358
34359 @kindex maint set catch-demangler-crashes
34360 @kindex maint show catch-demangler-crashes
34361 @cindex demangler crashes
34362 @item maint set catch-demangler-crashes [on|off]
34363 @itemx maint show catch-demangler-crashes
34364 Control whether @value{GDBN} should attempt to catch crashes in the
34365 symbol name demangler. The default is to attempt to catch crashes.
34366 If enabled, the first time a crash is caught, a core file is created,
34367 the offending symbol is displayed and the user is presented with the
34368 option to terminate the current session.
34369
34370 @kindex maint cplus first_component
34371 @item maint cplus first_component @var{name}
34372 Print the first C@t{++} class/namespace component of @var{name}.
34373
34374 @kindex maint cplus namespace
34375 @item maint cplus namespace
34376 Print the list of possible C@t{++} namespaces.
34377
34378 @kindex maint deprecate
34379 @kindex maint undeprecate
34380 @cindex deprecated commands
34381 @item maint deprecate @var{command} @r{[}@var{replacement}@r{]}
34382 @itemx maint undeprecate @var{command}
34383 Deprecate or undeprecate the named @var{command}. Deprecated commands
34384 cause @value{GDBN} to issue a warning when you use them. The optional
34385 argument @var{replacement} says which newer command should be used in
34386 favor of the deprecated one; if it is given, @value{GDBN} will mention
34387 the replacement as part of the warning.
34388
34389 @kindex maint dump-me
34390 @item maint dump-me
34391 @cindex @code{SIGQUIT} signal, dump core of @value{GDBN}
34392 Cause a fatal signal in the debugger and force it to dump its core.
34393 This is supported only on systems which support aborting a program
34394 with the @code{SIGQUIT} signal.
34395
34396 @kindex maint internal-error
34397 @kindex maint internal-warning
34398 @kindex maint demangler-warning
34399 @cindex demangler crashes
34400 @item maint internal-error @r{[}@var{message-text}@r{]}
34401 @itemx maint internal-warning @r{[}@var{message-text}@r{]}
34402 @itemx maint demangler-warning @r{[}@var{message-text}@r{]}
34403
34404 Cause @value{GDBN} to call the internal function @code{internal_error},
34405 @code{internal_warning} or @code{demangler_warning} and hence behave
34406 as though an internal problem has been detected. In addition to
34407 reporting the internal problem, these functions give the user the
34408 opportunity to either quit @value{GDBN} or (for @code{internal_error}
34409 and @code{internal_warning}) create a core file of the current
34410 @value{GDBN} session.
34411
34412 These commands take an optional parameter @var{message-text} that is
34413 used as the text of the error or warning message.
34414
34415 Here's an example of using @code{internal-error}:
34416
34417 @smallexample
34418 (@value{GDBP}) @kbd{maint internal-error testing, 1, 2}
34419 @dots{}/maint.c:121: internal-error: testing, 1, 2
34420 A problem internal to GDB has been detected. Further
34421 debugging may prove unreliable.
34422 Quit this debugging session? (y or n) @kbd{n}
34423 Create a core file? (y or n) @kbd{n}
34424 (@value{GDBP})
34425 @end smallexample
34426
34427 @cindex @value{GDBN} internal error
34428 @cindex internal errors, control of @value{GDBN} behavior
34429 @cindex demangler crashes
34430
34431 @kindex maint set internal-error
34432 @kindex maint show internal-error
34433 @kindex maint set internal-warning
34434 @kindex maint show internal-warning
34435 @kindex maint set demangler-warning
34436 @kindex maint show demangler-warning
34437 @item maint set internal-error @var{action} [ask|yes|no]
34438 @itemx maint show internal-error @var{action}
34439 @itemx maint set internal-warning @var{action} [ask|yes|no]
34440 @itemx maint show internal-warning @var{action}
34441 @itemx maint set demangler-warning @var{action} [ask|yes|no]
34442 @itemx maint show demangler-warning @var{action}
34443 When @value{GDBN} reports an internal problem (error or warning) it
34444 gives the user the opportunity to both quit @value{GDBN} and create a
34445 core file of the current @value{GDBN} session. These commands let you
34446 override the default behaviour for each particular @var{action},
34447 described in the table below.
34448
34449 @table @samp
34450 @item quit
34451 You can specify that @value{GDBN} should always (yes) or never (no)
34452 quit. The default is to ask the user what to do.
34453
34454 @item corefile
34455 You can specify that @value{GDBN} should always (yes) or never (no)
34456 create a core file. The default is to ask the user what to do. Note
34457 that there is no @code{corefile} option for @code{demangler-warning}:
34458 demangler warnings always create a core file and this cannot be
34459 disabled.
34460 @end table
34461
34462 @kindex maint packet
34463 @item maint packet @var{text}
34464 If @value{GDBN} is talking to an inferior via the serial protocol,
34465 then this command sends the string @var{text} to the inferior, and
34466 displays the response packet. @value{GDBN} supplies the initial
34467 @samp{$} character, the terminating @samp{#} character, and the
34468 checksum.
34469
34470 @kindex maint print architecture
34471 @item maint print architecture @r{[}@var{file}@r{]}
34472 Print the entire architecture configuration. The optional argument
34473 @var{file} names the file where the output goes.
34474
34475 @kindex maint print c-tdesc
34476 @item maint print c-tdesc
34477 Print the current target description (@pxref{Target Descriptions}) as
34478 a C source file. The created source file can be used in @value{GDBN}
34479 when an XML parser is not available to parse the description.
34480
34481 @kindex maint print dummy-frames
34482 @item maint print dummy-frames
34483 Prints the contents of @value{GDBN}'s internal dummy-frame stack.
34484
34485 @smallexample
34486 (@value{GDBP}) @kbd{b add}
34487 @dots{}
34488 (@value{GDBP}) @kbd{print add(2,3)}
34489 Breakpoint 2, add (a=2, b=3) at @dots{}
34490 58 return (a + b);
34491 The program being debugged stopped while in a function called from GDB.
34492 @dots{}
34493 (@value{GDBP}) @kbd{maint print dummy-frames}
34494 0xa8206d8: id=@{stack=0xbfffe734,code=0xbfffe73f,!special@}, ptid=process 9353
34495 (@value{GDBP})
34496 @end smallexample
34497
34498 Takes an optional file parameter.
34499
34500 @kindex maint print registers
34501 @kindex maint print raw-registers
34502 @kindex maint print cooked-registers
34503 @kindex maint print register-groups
34504 @kindex maint print remote-registers
34505 @item maint print registers @r{[}@var{file}@r{]}
34506 @itemx maint print raw-registers @r{[}@var{file}@r{]}
34507 @itemx maint print cooked-registers @r{[}@var{file}@r{]}
34508 @itemx maint print register-groups @r{[}@var{file}@r{]}
34509 @itemx maint print remote-registers @r{[}@var{file}@r{]}
34510 Print @value{GDBN}'s internal register data structures.
34511
34512 The command @code{maint print raw-registers} includes the contents of
34513 the raw register cache; the command @code{maint print
34514 cooked-registers} includes the (cooked) value of all registers,
34515 including registers which aren't available on the target nor visible
34516 to user; the command @code{maint print register-groups} includes the
34517 groups that each register is a member of; and the command @code{maint
34518 print remote-registers} includes the remote target's register numbers
34519 and offsets in the `G' packets.
34520
34521 These commands take an optional parameter, a file name to which to
34522 write the information.
34523
34524 @kindex maint print reggroups
34525 @item maint print reggroups @r{[}@var{file}@r{]}
34526 Print @value{GDBN}'s internal register group data structures. The
34527 optional argument @var{file} tells to what file to write the
34528 information.
34529
34530 The register groups info looks like this:
34531
34532 @smallexample
34533 (@value{GDBP}) @kbd{maint print reggroups}
34534 Group Type
34535 general user
34536 float user
34537 all user
34538 vector user
34539 system user
34540 save internal
34541 restore internal
34542 @end smallexample
34543
34544 @kindex flushregs
34545 @item flushregs
34546 This command forces @value{GDBN} to flush its internal register cache.
34547
34548 @kindex maint print objfiles
34549 @cindex info for known object files
34550 @item maint print objfiles @r{[}@var{regexp}@r{]}
34551 Print a dump of all known object files.
34552 If @var{regexp} is specified, only print object files whose names
34553 match @var{regexp}. For each object file, this command prints its name,
34554 address in memory, and all of its psymtabs and symtabs.
34555
34556 @kindex maint print user-registers
34557 @cindex user registers
34558 @item maint print user-registers
34559 List all currently available @dfn{user registers}. User registers
34560 typically provide alternate names for actual hardware registers. They
34561 include the four ``standard'' registers @code{$fp}, @code{$pc},
34562 @code{$sp}, and @code{$ps}. @xref{standard registers}. User
34563 registers can be used in expressions in the same way as the canonical
34564 register names, but only the latter are listed by the @code{info
34565 registers} and @code{maint print registers} commands.
34566
34567 @kindex maint print section-scripts
34568 @cindex info for known .debug_gdb_scripts-loaded scripts
34569 @item maint print section-scripts [@var{regexp}]
34570 Print a dump of scripts specified in the @code{.debug_gdb_section} section.
34571 If @var{regexp} is specified, only print scripts loaded by object files
34572 matching @var{regexp}.
34573 For each script, this command prints its name as specified in the objfile,
34574 and the full path if known.
34575 @xref{dotdebug_gdb_scripts section}.
34576
34577 @kindex maint print statistics
34578 @cindex bcache statistics
34579 @item maint print statistics
34580 This command prints, for each object file in the program, various data
34581 about that object file followed by the byte cache (@dfn{bcache})
34582 statistics for the object file. The objfile data includes the number
34583 of minimal, partial, full, and stabs symbols, the number of types
34584 defined by the objfile, the number of as yet unexpanded psym tables,
34585 the number of line tables and string tables, and the amount of memory
34586 used by the various tables. The bcache statistics include the counts,
34587 sizes, and counts of duplicates of all and unique objects, max,
34588 average, and median entry size, total memory used and its overhead and
34589 savings, and various measures of the hash table size and chain
34590 lengths.
34591
34592 @kindex maint print target-stack
34593 @cindex target stack description
34594 @item maint print target-stack
34595 A @dfn{target} is an interface between the debugger and a particular
34596 kind of file or process. Targets can be stacked in @dfn{strata},
34597 so that more than one target can potentially respond to a request.
34598 In particular, memory accesses will walk down the stack of targets
34599 until they find a target that is interested in handling that particular
34600 address.
34601
34602 This command prints a short description of each layer that was pushed on
34603 the @dfn{target stack}, starting from the top layer down to the bottom one.
34604
34605 @kindex maint print type
34606 @cindex type chain of a data type
34607 @item maint print type @var{expr}
34608 Print the type chain for a type specified by @var{expr}. The argument
34609 can be either a type name or a symbol. If it is a symbol, the type of
34610 that symbol is described. The type chain produced by this command is
34611 a recursive definition of the data type as stored in @value{GDBN}'s
34612 data structures, including its flags and contained types.
34613
34614 @kindex maint set dwarf always-disassemble
34615 @kindex maint show dwarf always-disassemble
34616 @item maint set dwarf always-disassemble
34617 @item maint show dwarf always-disassemble
34618 Control the behavior of @code{info address} when using DWARF debugging
34619 information.
34620
34621 The default is @code{off}, which means that @value{GDBN} should try to
34622 describe a variable's location in an easily readable format. When
34623 @code{on}, @value{GDBN} will instead display the DWARF location
34624 expression in an assembly-like format. Note that some locations are
34625 too complex for @value{GDBN} to describe simply; in this case you will
34626 always see the disassembly form.
34627
34628 Here is an example of the resulting disassembly:
34629
34630 @smallexample
34631 (gdb) info addr argc
34632 Symbol "argc" is a complex DWARF expression:
34633 1: DW_OP_fbreg 0
34634 @end smallexample
34635
34636 For more information on these expressions, see
34637 @uref{http://www.dwarfstd.org/, the DWARF standard}.
34638
34639 @kindex maint set dwarf max-cache-age
34640 @kindex maint show dwarf max-cache-age
34641 @item maint set dwarf max-cache-age
34642 @itemx maint show dwarf max-cache-age
34643 Control the DWARF compilation unit cache.
34644
34645 @cindex DWARF compilation units cache
34646 In object files with inter-compilation-unit references, such as those
34647 produced by the GCC option @samp{-feliminate-dwarf2-dups}, the DWARF
34648 reader needs to frequently refer to previously read compilation units.
34649 This setting controls how long a compilation unit will remain in the
34650 cache if it is not referenced. A higher limit means that cached
34651 compilation units will be stored in memory longer, and more total
34652 memory will be used. Setting it to zero disables caching, which will
34653 slow down @value{GDBN} startup, but reduce memory consumption.
34654
34655 @kindex maint set profile
34656 @kindex maint show profile
34657 @cindex profiling GDB
34658 @item maint set profile
34659 @itemx maint show profile
34660 Control profiling of @value{GDBN}.
34661
34662 Profiling will be disabled until you use the @samp{maint set profile}
34663 command to enable it. When you enable profiling, the system will begin
34664 collecting timing and execution count data; when you disable profiling or
34665 exit @value{GDBN}, the results will be written to a log file. Remember that
34666 if you use profiling, @value{GDBN} will overwrite the profiling log file
34667 (often called @file{gmon.out}). If you have a record of important profiling
34668 data in a @file{gmon.out} file, be sure to move it to a safe location.
34669
34670 Configuring with @samp{--enable-profiling} arranges for @value{GDBN} to be
34671 compiled with the @samp{-pg} compiler option.
34672
34673 @kindex maint set show-debug-regs
34674 @kindex maint show show-debug-regs
34675 @cindex hardware debug registers
34676 @item maint set show-debug-regs
34677 @itemx maint show show-debug-regs
34678 Control whether to show variables that mirror the hardware debug
34679 registers. Use @code{on} to enable, @code{off} to disable. If
34680 enabled, the debug registers values are shown when @value{GDBN} inserts or
34681 removes a hardware breakpoint or watchpoint, and when the inferior
34682 triggers a hardware-assisted breakpoint or watchpoint.
34683
34684 @kindex maint set show-all-tib
34685 @kindex maint show show-all-tib
34686 @item maint set show-all-tib
34687 @itemx maint show show-all-tib
34688 Control whether to show all non zero areas within a 1k block starting
34689 at thread local base, when using the @samp{info w32 thread-information-block}
34690 command.
34691
34692 @kindex maint set target-async
34693 @kindex maint show target-async
34694 @item maint set target-async
34695 @itemx maint show target-async
34696 This controls whether @value{GDBN} targets operate in synchronous or
34697 asynchronous mode (@pxref{Background Execution}). Normally the
34698 default is asynchronous, if it is available; but this can be changed
34699 to more easily debug problems occurring only in synchronous mode.
34700
34701 @kindex maint set target-non-stop @var{mode} [on|off|auto]
34702 @kindex maint show target-non-stop
34703 @item maint set target-non-stop
34704 @itemx maint show target-non-stop
34705
34706 This controls whether @value{GDBN} targets always operate in non-stop
34707 mode even if @code{set non-stop} is @code{off} (@pxref{Non-Stop
34708 Mode}). The default is @code{auto}, meaning non-stop mode is enabled
34709 if supported by the target.
34710
34711 @table @code
34712 @item maint set target-non-stop auto
34713 This is the default mode. @value{GDBN} controls the target in
34714 non-stop mode if the target supports it.
34715
34716 @item maint set target-non-stop on
34717 @value{GDBN} controls the target in non-stop mode even if the target
34718 does not indicate support.
34719
34720 @item maint set target-non-stop off
34721 @value{GDBN} does not control the target in non-stop mode even if the
34722 target supports it.
34723 @end table
34724
34725 @kindex maint set per-command
34726 @kindex maint show per-command
34727 @item maint set per-command
34728 @itemx maint show per-command
34729 @cindex resources used by commands
34730
34731 @value{GDBN} can display the resources used by each command.
34732 This is useful in debugging performance problems.
34733
34734 @table @code
34735 @item maint set per-command space [on|off]
34736 @itemx maint show per-command space
34737 Enable or disable the printing of the memory used by GDB for each command.
34738 If enabled, @value{GDBN} will display how much memory each command
34739 took, following the command's own output.
34740 This can also be requested by invoking @value{GDBN} with the
34741 @option{--statistics} command-line switch (@pxref{Mode Options}).
34742
34743 @item maint set per-command time [on|off]
34744 @itemx maint show per-command time
34745 Enable or disable the printing of the execution time of @value{GDBN}
34746 for each command.
34747 If enabled, @value{GDBN} will display how much time it
34748 took to execute each command, following the command's own output.
34749 Both CPU time and wallclock time are printed.
34750 Printing both is useful when trying to determine whether the cost is
34751 CPU or, e.g., disk/network latency.
34752 Note that the CPU time printed is for @value{GDBN} only, it does not include
34753 the execution time of the inferior because there's no mechanism currently
34754 to compute how much time was spent by @value{GDBN} and how much time was
34755 spent by the program been debugged.
34756 This can also be requested by invoking @value{GDBN} with the
34757 @option{--statistics} command-line switch (@pxref{Mode Options}).
34758
34759 @item maint set per-command symtab [on|off]
34760 @itemx maint show per-command symtab
34761 Enable or disable the printing of basic symbol table statistics
34762 for each command.
34763 If enabled, @value{GDBN} will display the following information:
34764
34765 @enumerate a
34766 @item
34767 number of symbol tables
34768 @item
34769 number of primary symbol tables
34770 @item
34771 number of blocks in the blockvector
34772 @end enumerate
34773 @end table
34774
34775 @kindex maint space
34776 @cindex memory used by commands
34777 @item maint space @var{value}
34778 An alias for @code{maint set per-command space}.
34779 A non-zero value enables it, zero disables it.
34780
34781 @kindex maint time
34782 @cindex time of command execution
34783 @item maint time @var{value}
34784 An alias for @code{maint set per-command time}.
34785 A non-zero value enables it, zero disables it.
34786
34787 @kindex maint translate-address
34788 @item maint translate-address @r{[}@var{section}@r{]} @var{addr}
34789 Find the symbol stored at the location specified by the address
34790 @var{addr} and an optional section name @var{section}. If found,
34791 @value{GDBN} prints the name of the closest symbol and an offset from
34792 the symbol's location to the specified address. This is similar to
34793 the @code{info address} command (@pxref{Symbols}), except that this
34794 command also allows to find symbols in other sections.
34795
34796 If section was not specified, the section in which the symbol was found
34797 is also printed. For dynamically linked executables, the name of
34798 executable or shared library containing the symbol is printed as well.
34799
34800 @end table
34801
34802 The following command is useful for non-interactive invocations of
34803 @value{GDBN}, such as in the test suite.
34804
34805 @table @code
34806 @item set watchdog @var{nsec}
34807 @kindex set watchdog
34808 @cindex watchdog timer
34809 @cindex timeout for commands
34810 Set the maximum number of seconds @value{GDBN} will wait for the
34811 target operation to finish. If this time expires, @value{GDBN}
34812 reports and error and the command is aborted.
34813
34814 @item show watchdog
34815 Show the current setting of the target wait timeout.
34816 @end table
34817
34818 @node Remote Protocol
34819 @appendix @value{GDBN} Remote Serial Protocol
34820
34821 @menu
34822 * Overview::
34823 * Packets::
34824 * Stop Reply Packets::
34825 * General Query Packets::
34826 * Architecture-Specific Protocol Details::
34827 * Tracepoint Packets::
34828 * Host I/O Packets::
34829 * Interrupts::
34830 * Notification Packets::
34831 * Remote Non-Stop::
34832 * Packet Acknowledgment::
34833 * Examples::
34834 * File-I/O Remote Protocol Extension::
34835 * Library List Format::
34836 * Library List Format for SVR4 Targets::
34837 * Memory Map Format::
34838 * Thread List Format::
34839 * Traceframe Info Format::
34840 * Branch Trace Format::
34841 * Branch Trace Configuration Format::
34842 @end menu
34843
34844 @node Overview
34845 @section Overview
34846
34847 There may be occasions when you need to know something about the
34848 protocol---for example, if there is only one serial port to your target
34849 machine, you might want your program to do something special if it
34850 recognizes a packet meant for @value{GDBN}.
34851
34852 In the examples below, @samp{->} and @samp{<-} are used to indicate
34853 transmitted and received data, respectively.
34854
34855 @cindex protocol, @value{GDBN} remote serial
34856 @cindex serial protocol, @value{GDBN} remote
34857 @cindex remote serial protocol
34858 All @value{GDBN} commands and responses (other than acknowledgments
34859 and notifications, see @ref{Notification Packets}) are sent as a
34860 @var{packet}. A @var{packet} is introduced with the character
34861 @samp{$}, the actual @var{packet-data}, and the terminating character
34862 @samp{#} followed by a two-digit @var{checksum}:
34863
34864 @smallexample
34865 @code{$}@var{packet-data}@code{#}@var{checksum}
34866 @end smallexample
34867 @noindent
34868
34869 @cindex checksum, for @value{GDBN} remote
34870 @noindent
34871 The two-digit @var{checksum} is computed as the modulo 256 sum of all
34872 characters between the leading @samp{$} and the trailing @samp{#} (an
34873 eight bit unsigned checksum).
34874
34875 Implementors should note that prior to @value{GDBN} 5.0 the protocol
34876 specification also included an optional two-digit @var{sequence-id}:
34877
34878 @smallexample
34879 @code{$}@var{sequence-id}@code{:}@var{packet-data}@code{#}@var{checksum}
34880 @end smallexample
34881
34882 @cindex sequence-id, for @value{GDBN} remote
34883 @noindent
34884 That @var{sequence-id} was appended to the acknowledgment. @value{GDBN}
34885 has never output @var{sequence-id}s. Stubs that handle packets added
34886 since @value{GDBN} 5.0 must not accept @var{sequence-id}.
34887
34888 When either the host or the target machine receives a packet, the first
34889 response expected is an acknowledgment: either @samp{+} (to indicate
34890 the package was received correctly) or @samp{-} (to request
34891 retransmission):
34892
34893 @smallexample
34894 -> @code{$}@var{packet-data}@code{#}@var{checksum}
34895 <- @code{+}
34896 @end smallexample
34897 @noindent
34898
34899 The @samp{+}/@samp{-} acknowledgments can be disabled
34900 once a connection is established.
34901 @xref{Packet Acknowledgment}, for details.
34902
34903 The host (@value{GDBN}) sends @var{command}s, and the target (the
34904 debugging stub incorporated in your program) sends a @var{response}. In
34905 the case of step and continue @var{command}s, the response is only sent
34906 when the operation has completed, and the target has again stopped all
34907 threads in all attached processes. This is the default all-stop mode
34908 behavior, but the remote protocol also supports @value{GDBN}'s non-stop
34909 execution mode; see @ref{Remote Non-Stop}, for details.
34910
34911 @var{packet-data} consists of a sequence of characters with the
34912 exception of @samp{#} and @samp{$} (see @samp{X} packet for additional
34913 exceptions).
34914
34915 @cindex remote protocol, field separator
34916 Fields within the packet should be separated using @samp{,} @samp{;} or
34917 @samp{:}. Except where otherwise noted all numbers are represented in
34918 @sc{hex} with leading zeros suppressed.
34919
34920 Implementors should note that prior to @value{GDBN} 5.0, the character
34921 @samp{:} could not appear as the third character in a packet (as it
34922 would potentially conflict with the @var{sequence-id}).
34923
34924 @cindex remote protocol, binary data
34925 @anchor{Binary Data}
34926 Binary data in most packets is encoded either as two hexadecimal
34927 digits per byte of binary data. This allowed the traditional remote
34928 protocol to work over connections which were only seven-bit clean.
34929 Some packets designed more recently assume an eight-bit clean
34930 connection, and use a more efficient encoding to send and receive
34931 binary data.
34932
34933 The binary data representation uses @code{7d} (@sc{ascii} @samp{@}})
34934 as an escape character. Any escaped byte is transmitted as the escape
34935 character followed by the original character XORed with @code{0x20}.
34936 For example, the byte @code{0x7d} would be transmitted as the two
34937 bytes @code{0x7d 0x5d}. The bytes @code{0x23} (@sc{ascii} @samp{#}),
34938 @code{0x24} (@sc{ascii} @samp{$}), and @code{0x7d} (@sc{ascii}
34939 @samp{@}}) must always be escaped. Responses sent by the stub
34940 must also escape @code{0x2a} (@sc{ascii} @samp{*}), so that it
34941 is not interpreted as the start of a run-length encoded sequence
34942 (described next).
34943
34944 Response @var{data} can be run-length encoded to save space.
34945 Run-length encoding replaces runs of identical characters with one
34946 instance of the repeated character, followed by a @samp{*} and a
34947 repeat count. The repeat count is itself sent encoded, to avoid
34948 binary characters in @var{data}: a value of @var{n} is sent as
34949 @code{@var{n}+29}. For a repeat count greater or equal to 3, this
34950 produces a printable @sc{ascii} character, e.g.@: a space (@sc{ascii}
34951 code 32) for a repeat count of 3. (This is because run-length
34952 encoding starts to win for counts 3 or more.) Thus, for example,
34953 @samp{0* } is a run-length encoding of ``0000'': the space character
34954 after @samp{*} means repeat the leading @code{0} @w{@code{32 - 29 =
34955 3}} more times.
34956
34957 The printable characters @samp{#} and @samp{$} or with a numeric value
34958 greater than 126 must not be used. Runs of six repeats (@samp{#}) or
34959 seven repeats (@samp{$}) can be expanded using a repeat count of only
34960 five (@samp{"}). For example, @samp{00000000} can be encoded as
34961 @samp{0*"00}.
34962
34963 The error response returned for some packets includes a two character
34964 error number. That number is not well defined.
34965
34966 @cindex empty response, for unsupported packets
34967 For any @var{command} not supported by the stub, an empty response
34968 (@samp{$#00}) should be returned. That way it is possible to extend the
34969 protocol. A newer @value{GDBN} can tell if a packet is supported based
34970 on that response.
34971
34972 At a minimum, a stub is required to support the @samp{g} and @samp{G}
34973 commands for register access, and the @samp{m} and @samp{M} commands
34974 for memory access. Stubs that only control single-threaded targets
34975 can implement run control with the @samp{c} (continue), and @samp{s}
34976 (step) commands. Stubs that support multi-threading targets should
34977 support the @samp{vCont} command. All other commands are optional.
34978
34979 @node Packets
34980 @section Packets
34981
34982 The following table provides a complete list of all currently defined
34983 @var{command}s and their corresponding response @var{data}.
34984 @xref{File-I/O Remote Protocol Extension}, for details about the File
34985 I/O extension of the remote protocol.
34986
34987 Each packet's description has a template showing the packet's overall
34988 syntax, followed by an explanation of the packet's meaning. We
34989 include spaces in some of the templates for clarity; these are not
34990 part of the packet's syntax. No @value{GDBN} packet uses spaces to
34991 separate its components. For example, a template like @samp{foo
34992 @var{bar} @var{baz}} describes a packet beginning with the three ASCII
34993 bytes @samp{foo}, followed by a @var{bar}, followed directly by a
34994 @var{baz}. @value{GDBN} does not transmit a space character between the
34995 @samp{foo} and the @var{bar}, or between the @var{bar} and the
34996 @var{baz}.
34997
34998 @cindex @var{thread-id}, in remote protocol
34999 @anchor{thread-id syntax}
35000 Several packets and replies include a @var{thread-id} field to identify
35001 a thread. Normally these are positive numbers with a target-specific
35002 interpretation, formatted as big-endian hex strings. A @var{thread-id}
35003 can also be a literal @samp{-1} to indicate all threads, or @samp{0} to
35004 pick any thread.
35005
35006 In addition, the remote protocol supports a multiprocess feature in
35007 which the @var{thread-id} syntax is extended to optionally include both
35008 process and thread ID fields, as @samp{p@var{pid}.@var{tid}}.
35009 The @var{pid} (process) and @var{tid} (thread) components each have the
35010 format described above: a positive number with target-specific
35011 interpretation formatted as a big-endian hex string, literal @samp{-1}
35012 to indicate all processes or threads (respectively), or @samp{0} to
35013 indicate an arbitrary process or thread. Specifying just a process, as
35014 @samp{p@var{pid}}, is equivalent to @samp{p@var{pid}.-1}. It is an
35015 error to specify all processes but a specific thread, such as
35016 @samp{p-1.@var{tid}}. Note that the @samp{p} prefix is @emph{not} used
35017 for those packets and replies explicitly documented to include a process
35018 ID, rather than a @var{thread-id}.
35019
35020 The multiprocess @var{thread-id} syntax extensions are only used if both
35021 @value{GDBN} and the stub report support for the @samp{multiprocess}
35022 feature using @samp{qSupported}. @xref{multiprocess extensions}, for
35023 more information.
35024
35025 Note that all packet forms beginning with an upper- or lower-case
35026 letter, other than those described here, are reserved for future use.
35027
35028 Here are the packet descriptions.
35029
35030 @table @samp
35031
35032 @item !
35033 @cindex @samp{!} packet
35034 @anchor{extended mode}
35035 Enable extended mode. In extended mode, the remote server is made
35036 persistent. The @samp{R} packet is used to restart the program being
35037 debugged.
35038
35039 Reply:
35040 @table @samp
35041 @item OK
35042 The remote target both supports and has enabled extended mode.
35043 @end table
35044
35045 @item ?
35046 @cindex @samp{?} packet
35047 @anchor{? packet}
35048 Indicate the reason the target halted. The reply is the same as for
35049 step and continue. This packet has a special interpretation when the
35050 target is in non-stop mode; see @ref{Remote Non-Stop}.
35051
35052 Reply:
35053 @xref{Stop Reply Packets}, for the reply specifications.
35054
35055 @item A @var{arglen},@var{argnum},@var{arg},@dots{}
35056 @cindex @samp{A} packet
35057 Initialized @code{argv[]} array passed into program. @var{arglen}
35058 specifies the number of bytes in the hex encoded byte stream
35059 @var{arg}. See @code{gdbserver} for more details.
35060
35061 Reply:
35062 @table @samp
35063 @item OK
35064 The arguments were set.
35065 @item E @var{NN}
35066 An error occurred.
35067 @end table
35068
35069 @item b @var{baud}
35070 @cindex @samp{b} packet
35071 (Don't use this packet; its behavior is not well-defined.)
35072 Change the serial line speed to @var{baud}.
35073
35074 JTC: @emph{When does the transport layer state change? When it's
35075 received, or after the ACK is transmitted. In either case, there are
35076 problems if the command or the acknowledgment packet is dropped.}
35077
35078 Stan: @emph{If people really wanted to add something like this, and get
35079 it working for the first time, they ought to modify ser-unix.c to send
35080 some kind of out-of-band message to a specially-setup stub and have the
35081 switch happen "in between" packets, so that from remote protocol's point
35082 of view, nothing actually happened.}
35083
35084 @item B @var{addr},@var{mode}
35085 @cindex @samp{B} packet
35086 Set (@var{mode} is @samp{S}) or clear (@var{mode} is @samp{C}) a
35087 breakpoint at @var{addr}.
35088
35089 Don't use this packet. Use the @samp{Z} and @samp{z} packets instead
35090 (@pxref{insert breakpoint or watchpoint packet}).
35091
35092 @cindex @samp{bc} packet
35093 @anchor{bc}
35094 @item bc
35095 Backward continue. Execute the target system in reverse. No parameter.
35096 @xref{Reverse Execution}, for more information.
35097
35098 Reply:
35099 @xref{Stop Reply Packets}, for the reply specifications.
35100
35101 @cindex @samp{bs} packet
35102 @anchor{bs}
35103 @item bs
35104 Backward single step. Execute one instruction in reverse. No parameter.
35105 @xref{Reverse Execution}, for more information.
35106
35107 Reply:
35108 @xref{Stop Reply Packets}, for the reply specifications.
35109
35110 @item c @r{[}@var{addr}@r{]}
35111 @cindex @samp{c} packet
35112 Continue at @var{addr}, which is the address to resume. If @var{addr}
35113 is omitted, resume at current address.
35114
35115 This packet is deprecated for multi-threading support. @xref{vCont
35116 packet}.
35117
35118 Reply:
35119 @xref{Stop Reply Packets}, for the reply specifications.
35120
35121 @item C @var{sig}@r{[};@var{addr}@r{]}
35122 @cindex @samp{C} packet
35123 Continue with signal @var{sig} (hex signal number). If
35124 @samp{;@var{addr}} is omitted, resume at same address.
35125
35126 This packet is deprecated for multi-threading support. @xref{vCont
35127 packet}.
35128
35129 Reply:
35130 @xref{Stop Reply Packets}, for the reply specifications.
35131
35132 @item d
35133 @cindex @samp{d} packet
35134 Toggle debug flag.
35135
35136 Don't use this packet; instead, define a general set packet
35137 (@pxref{General Query Packets}).
35138
35139 @item D
35140 @itemx D;@var{pid}
35141 @cindex @samp{D} packet
35142 The first form of the packet is used to detach @value{GDBN} from the
35143 remote system. It is sent to the remote target
35144 before @value{GDBN} disconnects via the @code{detach} command.
35145
35146 The second form, including a process ID, is used when multiprocess
35147 protocol extensions are enabled (@pxref{multiprocess extensions}), to
35148 detach only a specific process. The @var{pid} is specified as a
35149 big-endian hex string.
35150
35151 Reply:
35152 @table @samp
35153 @item OK
35154 for success
35155 @item E @var{NN}
35156 for an error
35157 @end table
35158
35159 @item F @var{RC},@var{EE},@var{CF};@var{XX}
35160 @cindex @samp{F} packet
35161 A reply from @value{GDBN} to an @samp{F} packet sent by the target.
35162 This is part of the File-I/O protocol extension. @xref{File-I/O
35163 Remote Protocol Extension}, for the specification.
35164
35165 @item g
35166 @anchor{read registers packet}
35167 @cindex @samp{g} packet
35168 Read general registers.
35169
35170 Reply:
35171 @table @samp
35172 @item @var{XX@dots{}}
35173 Each byte of register data is described by two hex digits. The bytes
35174 with the register are transmitted in target byte order. The size of
35175 each register and their position within the @samp{g} packet are
35176 determined by the @value{GDBN} internal gdbarch functions
35177 @code{DEPRECATED_REGISTER_RAW_SIZE} and @code{gdbarch_register_name}. The
35178 specification of several standard @samp{g} packets is specified below.
35179
35180 When reading registers from a trace frame (@pxref{Analyze Collected
35181 Data,,Using the Collected Data}), the stub may also return a string of
35182 literal @samp{x}'s in place of the register data digits, to indicate
35183 that the corresponding register has not been collected, thus its value
35184 is unavailable. For example, for an architecture with 4 registers of
35185 4 bytes each, the following reply indicates to @value{GDBN} that
35186 registers 0 and 2 have not been collected, while registers 1 and 3
35187 have been collected, and both have zero value:
35188
35189 @smallexample
35190 -> @code{g}
35191 <- @code{xxxxxxxx00000000xxxxxxxx00000000}
35192 @end smallexample
35193
35194 @item E @var{NN}
35195 for an error.
35196 @end table
35197
35198 @item G @var{XX@dots{}}
35199 @cindex @samp{G} packet
35200 Write general registers. @xref{read registers packet}, for a
35201 description of the @var{XX@dots{}} data.
35202
35203 Reply:
35204 @table @samp
35205 @item OK
35206 for success
35207 @item E @var{NN}
35208 for an error
35209 @end table
35210
35211 @item H @var{op} @var{thread-id}
35212 @cindex @samp{H} packet
35213 Set thread for subsequent operations (@samp{m}, @samp{M}, @samp{g},
35214 @samp{G}, et.al.). Depending on the operation to be performed, @var{op}
35215 should be @samp{c} for step and continue operations (note that this
35216 is deprecated, supporting the @samp{vCont} command is a better
35217 option), and @samp{g} for other operations. The thread designator
35218 @var{thread-id} has the format and interpretation described in
35219 @ref{thread-id syntax}.
35220
35221 Reply:
35222 @table @samp
35223 @item OK
35224 for success
35225 @item E @var{NN}
35226 for an error
35227 @end table
35228
35229 @c FIXME: JTC:
35230 @c 'H': How restrictive (or permissive) is the thread model. If a
35231 @c thread is selected and stopped, are other threads allowed
35232 @c to continue to execute? As I mentioned above, I think the
35233 @c semantics of each command when a thread is selected must be
35234 @c described. For example:
35235 @c
35236 @c 'g': If the stub supports threads and a specific thread is
35237 @c selected, returns the register block from that thread;
35238 @c otherwise returns current registers.
35239 @c
35240 @c 'G' If the stub supports threads and a specific thread is
35241 @c selected, sets the registers of the register block of
35242 @c that thread; otherwise sets current registers.
35243
35244 @item i @r{[}@var{addr}@r{[},@var{nnn}@r{]]}
35245 @anchor{cycle step packet}
35246 @cindex @samp{i} packet
35247 Step the remote target by a single clock cycle. If @samp{,@var{nnn}} is
35248 present, cycle step @var{nnn} cycles. If @var{addr} is present, cycle
35249 step starting at that address.
35250
35251 @item I
35252 @cindex @samp{I} packet
35253 Signal, then cycle step. @xref{step with signal packet}. @xref{cycle
35254 step packet}.
35255
35256 @item k
35257 @cindex @samp{k} packet
35258 Kill request.
35259
35260 The exact effect of this packet is not specified.
35261
35262 For a bare-metal target, it may power cycle or reset the target
35263 system. For that reason, the @samp{k} packet has no reply.
35264
35265 For a single-process target, it may kill that process if possible.
35266
35267 A multiple-process target may choose to kill just one process, or all
35268 that are under @value{GDBN}'s control. For more precise control, use
35269 the vKill packet (@pxref{vKill packet}).
35270
35271 If the target system immediately closes the connection in response to
35272 @samp{k}, @value{GDBN} does not consider the lack of packet
35273 acknowledgment to be an error, and assumes the kill was successful.
35274
35275 If connected using @kbd{target extended-remote}, and the target does
35276 not close the connection in response to a kill request, @value{GDBN}
35277 probes the target state as if a new connection was opened
35278 (@pxref{? packet}).
35279
35280 @item m @var{addr},@var{length}
35281 @cindex @samp{m} packet
35282 Read @var{length} addressable memory units starting at address @var{addr}
35283 (@pxref{addressable memory unit}). Note that @var{addr} may not be aligned to
35284 any particular boundary.
35285
35286 The stub need not use any particular size or alignment when gathering
35287 data from memory for the response; even if @var{addr} is word-aligned
35288 and @var{length} is a multiple of the word size, the stub is free to
35289 use byte accesses, or not. For this reason, this packet may not be
35290 suitable for accessing memory-mapped I/O devices.
35291 @cindex alignment of remote memory accesses
35292 @cindex size of remote memory accesses
35293 @cindex memory, alignment and size of remote accesses
35294
35295 Reply:
35296 @table @samp
35297 @item @var{XX@dots{}}
35298 Memory contents; each byte is transmitted as a two-digit hexadecimal number.
35299 The reply may contain fewer addressable memory units than requested if the
35300 server was able to read only part of the region of memory.
35301 @item E @var{NN}
35302 @var{NN} is errno
35303 @end table
35304
35305 @item M @var{addr},@var{length}:@var{XX@dots{}}
35306 @cindex @samp{M} packet
35307 Write @var{length} addressable memory units starting at address @var{addr}
35308 (@pxref{addressable memory unit}). The data is given by @var{XX@dots{}}; each
35309 byte is transmitted as a two-digit hexadecimal number.
35310
35311 Reply:
35312 @table @samp
35313 @item OK
35314 for success
35315 @item E @var{NN}
35316 for an error (this includes the case where only part of the data was
35317 written).
35318 @end table
35319
35320 @item p @var{n}
35321 @cindex @samp{p} packet
35322 Read the value of register @var{n}; @var{n} is in hex.
35323 @xref{read registers packet}, for a description of how the returned
35324 register value is encoded.
35325
35326 Reply:
35327 @table @samp
35328 @item @var{XX@dots{}}
35329 the register's value
35330 @item E @var{NN}
35331 for an error
35332 @item @w{}
35333 Indicating an unrecognized @var{query}.
35334 @end table
35335
35336 @item P @var{n@dots{}}=@var{r@dots{}}
35337 @anchor{write register packet}
35338 @cindex @samp{P} packet
35339 Write register @var{n@dots{}} with value @var{r@dots{}}. The register
35340 number @var{n} is in hexadecimal, and @var{r@dots{}} contains two hex
35341 digits for each byte in the register (target byte order).
35342
35343 Reply:
35344 @table @samp
35345 @item OK
35346 for success
35347 @item E @var{NN}
35348 for an error
35349 @end table
35350
35351 @item q @var{name} @var{params}@dots{}
35352 @itemx Q @var{name} @var{params}@dots{}
35353 @cindex @samp{q} packet
35354 @cindex @samp{Q} packet
35355 General query (@samp{q}) and set (@samp{Q}). These packets are
35356 described fully in @ref{General Query Packets}.
35357
35358 @item r
35359 @cindex @samp{r} packet
35360 Reset the entire system.
35361
35362 Don't use this packet; use the @samp{R} packet instead.
35363
35364 @item R @var{XX}
35365 @cindex @samp{R} packet
35366 Restart the program being debugged. The @var{XX}, while needed, is ignored.
35367 This packet is only available in extended mode (@pxref{extended mode}).
35368
35369 The @samp{R} packet has no reply.
35370
35371 @item s @r{[}@var{addr}@r{]}
35372 @cindex @samp{s} packet
35373 Single step, resuming at @var{addr}. If
35374 @var{addr} is omitted, resume at same address.
35375
35376 This packet is deprecated for multi-threading support. @xref{vCont
35377 packet}.
35378
35379 Reply:
35380 @xref{Stop Reply Packets}, for the reply specifications.
35381
35382 @item S @var{sig}@r{[};@var{addr}@r{]}
35383 @anchor{step with signal packet}
35384 @cindex @samp{S} packet
35385 Step with signal. This is analogous to the @samp{C} packet, but
35386 requests a single-step, rather than a normal resumption of execution.
35387
35388 This packet is deprecated for multi-threading support. @xref{vCont
35389 packet}.
35390
35391 Reply:
35392 @xref{Stop Reply Packets}, for the reply specifications.
35393
35394 @item t @var{addr}:@var{PP},@var{MM}
35395 @cindex @samp{t} packet
35396 Search backwards starting at address @var{addr} for a match with pattern
35397 @var{PP} and mask @var{MM}, both of which are are 4 byte long.
35398 There must be at least 3 digits in @var{addr}.
35399
35400 @item T @var{thread-id}
35401 @cindex @samp{T} packet
35402 Find out if the thread @var{thread-id} is alive. @xref{thread-id syntax}.
35403
35404 Reply:
35405 @table @samp
35406 @item OK
35407 thread is still alive
35408 @item E @var{NN}
35409 thread is dead
35410 @end table
35411
35412 @item v
35413 Packets starting with @samp{v} are identified by a multi-letter name,
35414 up to the first @samp{;} or @samp{?} (or the end of the packet).
35415
35416 @item vAttach;@var{pid}
35417 @cindex @samp{vAttach} packet
35418 Attach to a new process with the specified process ID @var{pid}.
35419 The process ID is a
35420 hexadecimal integer identifying the process. In all-stop mode, all
35421 threads in the attached process are stopped; in non-stop mode, it may be
35422 attached without being stopped if that is supported by the target.
35423
35424 @c In non-stop mode, on a successful vAttach, the stub should set the
35425 @c current thread to a thread of the newly-attached process. After
35426 @c attaching, GDB queries for the attached process's thread ID with qC.
35427 @c Also note that, from a user perspective, whether or not the
35428 @c target is stopped on attach in non-stop mode depends on whether you
35429 @c use the foreground or background version of the attach command, not
35430 @c on what vAttach does; GDB does the right thing with respect to either
35431 @c stopping or restarting threads.
35432
35433 This packet is only available in extended mode (@pxref{extended mode}).
35434
35435 Reply:
35436 @table @samp
35437 @item E @var{nn}
35438 for an error
35439 @item @r{Any stop packet}
35440 for success in all-stop mode (@pxref{Stop Reply Packets})
35441 @item OK
35442 for success in non-stop mode (@pxref{Remote Non-Stop})
35443 @end table
35444
35445 @item vCont@r{[};@var{action}@r{[}:@var{thread-id}@r{]]}@dots{}
35446 @cindex @samp{vCont} packet
35447 @anchor{vCont packet}
35448 Resume the inferior, specifying different actions for each thread.
35449 If an action is specified with no @var{thread-id}, then it is applied to any
35450 threads that don't have a specific action specified; if no default action is
35451 specified then other threads should remain stopped in all-stop mode and
35452 in their current state in non-stop mode.
35453 Specifying multiple
35454 default actions is an error; specifying no actions is also an error.
35455 Thread IDs are specified using the syntax described in @ref{thread-id syntax}.
35456
35457 Currently supported actions are:
35458
35459 @table @samp
35460 @item c
35461 Continue.
35462 @item C @var{sig}
35463 Continue with signal @var{sig}. The signal @var{sig} should be two hex digits.
35464 @item s
35465 Step.
35466 @item S @var{sig}
35467 Step with signal @var{sig}. The signal @var{sig} should be two hex digits.
35468 @item t
35469 Stop.
35470 @item r @var{start},@var{end}
35471 Step once, and then keep stepping as long as the thread stops at
35472 addresses between @var{start} (inclusive) and @var{end} (exclusive).
35473 The remote stub reports a stop reply when either the thread goes out
35474 of the range or is stopped due to an unrelated reason, such as hitting
35475 a breakpoint. @xref{range stepping}.
35476
35477 If the range is empty (@var{start} == @var{end}), then the action
35478 becomes equivalent to the @samp{s} action. In other words,
35479 single-step once, and report the stop (even if the stepped instruction
35480 jumps to @var{start}).
35481
35482 (A stop reply may be sent at any point even if the PC is still within
35483 the stepping range; for example, it is valid to implement this packet
35484 in a degenerate way as a single instruction step operation.)
35485
35486 @end table
35487
35488 The optional argument @var{addr} normally associated with the
35489 @samp{c}, @samp{C}, @samp{s}, and @samp{S} packets is
35490 not supported in @samp{vCont}.
35491
35492 The @samp{t} action is only relevant in non-stop mode
35493 (@pxref{Remote Non-Stop}) and may be ignored by the stub otherwise.
35494 A stop reply should be generated for any affected thread not already stopped.
35495 When a thread is stopped by means of a @samp{t} action,
35496 the corresponding stop reply should indicate that the thread has stopped with
35497 signal @samp{0}, regardless of whether the target uses some other signal
35498 as an implementation detail.
35499
35500 The stub must support @samp{vCont} if it reports support for
35501 multiprocess extensions (@pxref{multiprocess extensions}). Note that in
35502 this case @samp{vCont} actions can be specified to apply to all threads
35503 in a process by using the @samp{p@var{pid}.-1} form of the
35504 @var{thread-id}.
35505
35506 Reply:
35507 @xref{Stop Reply Packets}, for the reply specifications.
35508
35509 @item vCont?
35510 @cindex @samp{vCont?} packet
35511 Request a list of actions supported by the @samp{vCont} packet.
35512
35513 Reply:
35514 @table @samp
35515 @item vCont@r{[};@var{action}@dots{}@r{]}
35516 The @samp{vCont} packet is supported. Each @var{action} is a supported
35517 command in the @samp{vCont} packet.
35518 @item @w{}
35519 The @samp{vCont} packet is not supported.
35520 @end table
35521
35522 @anchor{vCtrlC packet}
35523 @item vCtrlC
35524 @cindex @samp{vCtrlC} packet
35525 Interrupt remote target as if a control-C was pressed on the remote
35526 terminal. This is the equivalent to reacting to the @code{^C}
35527 (@samp{\003}, the control-C character) character in all-stop mode
35528 while the target is running, except this works in non-stop mode.
35529 @xref{interrupting remote targets}, for more info on the all-stop
35530 variant.
35531
35532 Reply:
35533 @table @samp
35534 @item E @var{nn}
35535 for an error
35536 @item OK
35537 for success
35538 @end table
35539
35540 @item vFile:@var{operation}:@var{parameter}@dots{}
35541 @cindex @samp{vFile} packet
35542 Perform a file operation on the target system. For details,
35543 see @ref{Host I/O Packets}.
35544
35545 @item vFlashErase:@var{addr},@var{length}
35546 @cindex @samp{vFlashErase} packet
35547 Direct the stub to erase @var{length} bytes of flash starting at
35548 @var{addr}. The region may enclose any number of flash blocks, but
35549 its start and end must fall on block boundaries, as indicated by the
35550 flash block size appearing in the memory map (@pxref{Memory Map
35551 Format}). @value{GDBN} groups flash memory programming operations
35552 together, and sends a @samp{vFlashDone} request after each group; the
35553 stub is allowed to delay erase operation until the @samp{vFlashDone}
35554 packet is received.
35555
35556 Reply:
35557 @table @samp
35558 @item OK
35559 for success
35560 @item E @var{NN}
35561 for an error
35562 @end table
35563
35564 @item vFlashWrite:@var{addr}:@var{XX@dots{}}
35565 @cindex @samp{vFlashWrite} packet
35566 Direct the stub to write data to flash address @var{addr}. The data
35567 is passed in binary form using the same encoding as for the @samp{X}
35568 packet (@pxref{Binary Data}). The memory ranges specified by
35569 @samp{vFlashWrite} packets preceding a @samp{vFlashDone} packet must
35570 not overlap, and must appear in order of increasing addresses
35571 (although @samp{vFlashErase} packets for higher addresses may already
35572 have been received; the ordering is guaranteed only between
35573 @samp{vFlashWrite} packets). If a packet writes to an address that was
35574 neither erased by a preceding @samp{vFlashErase} packet nor by some other
35575 target-specific method, the results are unpredictable.
35576
35577
35578 Reply:
35579 @table @samp
35580 @item OK
35581 for success
35582 @item E.memtype
35583 for vFlashWrite addressing non-flash memory
35584 @item E @var{NN}
35585 for an error
35586 @end table
35587
35588 @item vFlashDone
35589 @cindex @samp{vFlashDone} packet
35590 Indicate to the stub that flash programming operation is finished.
35591 The stub is permitted to delay or batch the effects of a group of
35592 @samp{vFlashErase} and @samp{vFlashWrite} packets until a
35593 @samp{vFlashDone} packet is received. The contents of the affected
35594 regions of flash memory are unpredictable until the @samp{vFlashDone}
35595 request is completed.
35596
35597 @item vKill;@var{pid}
35598 @cindex @samp{vKill} packet
35599 @anchor{vKill packet}
35600 Kill the process with the specified process ID @var{pid}, which is a
35601 hexadecimal integer identifying the process. This packet is used in
35602 preference to @samp{k} when multiprocess protocol extensions are
35603 supported; see @ref{multiprocess extensions}.
35604
35605 Reply:
35606 @table @samp
35607 @item E @var{nn}
35608 for an error
35609 @item OK
35610 for success
35611 @end table
35612
35613 @item vRun;@var{filename}@r{[};@var{argument}@r{]}@dots{}
35614 @cindex @samp{vRun} packet
35615 Run the program @var{filename}, passing it each @var{argument} on its
35616 command line. The file and arguments are hex-encoded strings. If
35617 @var{filename} is an empty string, the stub may use a default program
35618 (e.g.@: the last program run). The program is created in the stopped
35619 state.
35620
35621 @c FIXME: What about non-stop mode?
35622
35623 This packet is only available in extended mode (@pxref{extended mode}).
35624
35625 Reply:
35626 @table @samp
35627 @item E @var{nn}
35628 for an error
35629 @item @r{Any stop packet}
35630 for success (@pxref{Stop Reply Packets})
35631 @end table
35632
35633 @item vStopped
35634 @cindex @samp{vStopped} packet
35635 @xref{Notification Packets}.
35636
35637 @item X @var{addr},@var{length}:@var{XX@dots{}}
35638 @anchor{X packet}
35639 @cindex @samp{X} packet
35640 Write data to memory, where the data is transmitted in binary.
35641 Memory is specified by its address @var{addr} and number of addressable memory
35642 units @var{length} (@pxref{addressable memory unit});
35643 @samp{@var{XX}@dots{}} is binary data (@pxref{Binary Data}).
35644
35645 Reply:
35646 @table @samp
35647 @item OK
35648 for success
35649 @item E @var{NN}
35650 for an error
35651 @end table
35652
35653 @item z @var{type},@var{addr},@var{kind}
35654 @itemx Z @var{type},@var{addr},@var{kind}
35655 @anchor{insert breakpoint or watchpoint packet}
35656 @cindex @samp{z} packet
35657 @cindex @samp{Z} packets
35658 Insert (@samp{Z}) or remove (@samp{z}) a @var{type} breakpoint or
35659 watchpoint starting at address @var{address} of kind @var{kind}.
35660
35661 Each breakpoint and watchpoint packet @var{type} is documented
35662 separately.
35663
35664 @emph{Implementation notes: A remote target shall return an empty string
35665 for an unrecognized breakpoint or watchpoint packet @var{type}. A
35666 remote target shall support either both or neither of a given
35667 @samp{Z@var{type}@dots{}} and @samp{z@var{type}@dots{}} packet pair. To
35668 avoid potential problems with duplicate packets, the operations should
35669 be implemented in an idempotent way.}
35670
35671 @item z0,@var{addr},@var{kind}
35672 @itemx Z0,@var{addr},@var{kind}@r{[};@var{cond_list}@dots{}@r{]}@r{[};cmds:@var{persist},@var{cmd_list}@dots{}@r{]}
35673 @cindex @samp{z0} packet
35674 @cindex @samp{Z0} packet
35675 Insert (@samp{Z0}) or remove (@samp{z0}) a memory breakpoint at address
35676 @var{addr} of type @var{kind}.
35677
35678 A memory breakpoint is implemented by replacing the instruction at
35679 @var{addr} with a software breakpoint or trap instruction. The
35680 @var{kind} is target-specific and typically indicates the size of
35681 the breakpoint in bytes that should be inserted. E.g., the @sc{arm}
35682 and @sc{mips} can insert either a 2 or 4 byte breakpoint. Some
35683 architectures have additional meanings for @var{kind};
35684 @var{cond_list} is an optional list of conditional expressions in bytecode
35685 form that should be evaluated on the target's side. These are the
35686 conditions that should be taken into consideration when deciding if
35687 the breakpoint trigger should be reported back to @var{GDBN}.
35688
35689 See also the @samp{swbreak} stop reason (@pxref{swbreak stop reason})
35690 for how to best report a memory breakpoint event to @value{GDBN}.
35691
35692 The @var{cond_list} parameter is comprised of a series of expressions,
35693 concatenated without separators. Each expression has the following form:
35694
35695 @table @samp
35696
35697 @item X @var{len},@var{expr}
35698 @var{len} is the length of the bytecode expression and @var{expr} is the
35699 actual conditional expression in bytecode form.
35700
35701 @end table
35702
35703 The optional @var{cmd_list} parameter introduces commands that may be
35704 run on the target, rather than being reported back to @value{GDBN}.
35705 The parameter starts with a numeric flag @var{persist}; if the flag is
35706 nonzero, then the breakpoint may remain active and the commands
35707 continue to be run even when @value{GDBN} disconnects from the target.
35708 Following this flag is a series of expressions concatenated with no
35709 separators. Each expression has the following form:
35710
35711 @table @samp
35712
35713 @item X @var{len},@var{expr}
35714 @var{len} is the length of the bytecode expression and @var{expr} is the
35715 actual conditional expression in bytecode form.
35716
35717 @end table
35718
35719 see @ref{Architecture-Specific Protocol Details}.
35720
35721 @emph{Implementation note: It is possible for a target to copy or move
35722 code that contains memory breakpoints (e.g., when implementing
35723 overlays). The behavior of this packet, in the presence of such a
35724 target, is not defined.}
35725
35726 Reply:
35727 @table @samp
35728 @item OK
35729 success
35730 @item @w{}
35731 not supported
35732 @item E @var{NN}
35733 for an error
35734 @end table
35735
35736 @item z1,@var{addr},@var{kind}
35737 @itemx Z1,@var{addr},@var{kind}@r{[};@var{cond_list}@dots{}@r{]}
35738 @cindex @samp{z1} packet
35739 @cindex @samp{Z1} packet
35740 Insert (@samp{Z1}) or remove (@samp{z1}) a hardware breakpoint at
35741 address @var{addr}.
35742
35743 A hardware breakpoint is implemented using a mechanism that is not
35744 dependant on being able to modify the target's memory. The @var{kind}
35745 and @var{cond_list} have the same meaning as in @samp{Z0} packets.
35746
35747 @emph{Implementation note: A hardware breakpoint is not affected by code
35748 movement.}
35749
35750 Reply:
35751 @table @samp
35752 @item OK
35753 success
35754 @item @w{}
35755 not supported
35756 @item E @var{NN}
35757 for an error
35758 @end table
35759
35760 @item z2,@var{addr},@var{kind}
35761 @itemx Z2,@var{addr},@var{kind}
35762 @cindex @samp{z2} packet
35763 @cindex @samp{Z2} packet
35764 Insert (@samp{Z2}) or remove (@samp{z2}) a write watchpoint at @var{addr}.
35765 The number of bytes to watch is specified by @var{kind}.
35766
35767 Reply:
35768 @table @samp
35769 @item OK
35770 success
35771 @item @w{}
35772 not supported
35773 @item E @var{NN}
35774 for an error
35775 @end table
35776
35777 @item z3,@var{addr},@var{kind}
35778 @itemx Z3,@var{addr},@var{kind}
35779 @cindex @samp{z3} packet
35780 @cindex @samp{Z3} packet
35781 Insert (@samp{Z3}) or remove (@samp{z3}) a read watchpoint at @var{addr}.
35782 The number of bytes to watch is specified by @var{kind}.
35783
35784 Reply:
35785 @table @samp
35786 @item OK
35787 success
35788 @item @w{}
35789 not supported
35790 @item E @var{NN}
35791 for an error
35792 @end table
35793
35794 @item z4,@var{addr},@var{kind}
35795 @itemx Z4,@var{addr},@var{kind}
35796 @cindex @samp{z4} packet
35797 @cindex @samp{Z4} packet
35798 Insert (@samp{Z4}) or remove (@samp{z4}) an access watchpoint at @var{addr}.
35799 The number of bytes to watch is specified by @var{kind}.
35800
35801 Reply:
35802 @table @samp
35803 @item OK
35804 success
35805 @item @w{}
35806 not supported
35807 @item E @var{NN}
35808 for an error
35809 @end table
35810
35811 @end table
35812
35813 @node Stop Reply Packets
35814 @section Stop Reply Packets
35815 @cindex stop reply packets
35816
35817 The @samp{C}, @samp{c}, @samp{S}, @samp{s}, @samp{vCont},
35818 @samp{vAttach}, @samp{vRun}, @samp{vStopped}, and @samp{?} packets can
35819 receive any of the below as a reply. Except for @samp{?}
35820 and @samp{vStopped}, that reply is only returned
35821 when the target halts. In the below the exact meaning of @dfn{signal
35822 number} is defined by the header @file{include/gdb/signals.h} in the
35823 @value{GDBN} source code.
35824
35825 As in the description of request packets, we include spaces in the
35826 reply templates for clarity; these are not part of the reply packet's
35827 syntax. No @value{GDBN} stop reply packet uses spaces to separate its
35828 components.
35829
35830 @table @samp
35831
35832 @item S @var{AA}
35833 The program received signal number @var{AA} (a two-digit hexadecimal
35834 number). This is equivalent to a @samp{T} response with no
35835 @var{n}:@var{r} pairs.
35836
35837 @item T @var{AA} @var{n1}:@var{r1};@var{n2}:@var{r2};@dots{}
35838 @cindex @samp{T} packet reply
35839 The program received signal number @var{AA} (a two-digit hexadecimal
35840 number). This is equivalent to an @samp{S} response, except that the
35841 @samp{@var{n}:@var{r}} pairs can carry values of important registers
35842 and other information directly in the stop reply packet, reducing
35843 round-trip latency. Single-step and breakpoint traps are reported
35844 this way. Each @samp{@var{n}:@var{r}} pair is interpreted as follows:
35845
35846 @itemize @bullet
35847 @item
35848 If @var{n} is a hexadecimal number, it is a register number, and the
35849 corresponding @var{r} gives that register's value. The data @var{r} is a
35850 series of bytes in target byte order, with each byte given by a
35851 two-digit hex number.
35852
35853 @item
35854 If @var{n} is @samp{thread}, then @var{r} is the @var{thread-id} of
35855 the stopped thread, as specified in @ref{thread-id syntax}.
35856
35857 @item
35858 If @var{n} is @samp{core}, then @var{r} is the hexadecimal number of
35859 the core on which the stop event was detected.
35860
35861 @item
35862 If @var{n} is a recognized @dfn{stop reason}, it describes a more
35863 specific event that stopped the target. The currently defined stop
35864 reasons are listed below. The @var{aa} should be @samp{05}, the trap
35865 signal. At most one stop reason should be present.
35866
35867 @item
35868 Otherwise, @value{GDBN} should ignore this @samp{@var{n}:@var{r}} pair
35869 and go on to the next; this allows us to extend the protocol in the
35870 future.
35871 @end itemize
35872
35873 The currently defined stop reasons are:
35874
35875 @table @samp
35876 @item watch
35877 @itemx rwatch
35878 @itemx awatch
35879 The packet indicates a watchpoint hit, and @var{r} is the data address, in
35880 hex.
35881
35882 @item syscall_entry
35883 @itemx syscall_return
35884 The packet indicates a syscall entry or return, and @var{r} is the
35885 syscall number, in hex.
35886
35887 @cindex shared library events, remote reply
35888 @item library
35889 The packet indicates that the loaded libraries have changed.
35890 @value{GDBN} should use @samp{qXfer:libraries:read} to fetch a new
35891 list of loaded libraries. The @var{r} part is ignored.
35892
35893 @cindex replay log events, remote reply
35894 @item replaylog
35895 The packet indicates that the target cannot continue replaying
35896 logged execution events, because it has reached the end (or the
35897 beginning when executing backward) of the log. The value of @var{r}
35898 will be either @samp{begin} or @samp{end}. @xref{Reverse Execution},
35899 for more information.
35900
35901 @item swbreak
35902 @anchor{swbreak stop reason}
35903 The packet indicates a memory breakpoint instruction was executed,
35904 irrespective of whether it was @value{GDBN} that planted the
35905 breakpoint or the breakpoint is hardcoded in the program. The @var{r}
35906 part must be left empty.
35907
35908 On some architectures, such as x86, at the architecture level, when a
35909 breakpoint instruction executes the program counter points at the
35910 breakpoint address plus an offset. On such targets, the stub is
35911 responsible for adjusting the PC to point back at the breakpoint
35912 address.
35913
35914 This packet should not be sent by default; older @value{GDBN} versions
35915 did not support it. @value{GDBN} requests it, by supplying an
35916 appropriate @samp{qSupported} feature (@pxref{qSupported}). The
35917 remote stub must also supply the appropriate @samp{qSupported} feature
35918 indicating support.
35919
35920 This packet is required for correct non-stop mode operation.
35921
35922 @item hwbreak
35923 The packet indicates the target stopped for a hardware breakpoint.
35924 The @var{r} part must be left empty.
35925
35926 The same remarks about @samp{qSupported} and non-stop mode above
35927 apply.
35928
35929 @cindex fork events, remote reply
35930 @item fork
35931 The packet indicates that @code{fork} was called, and @var{r}
35932 is the thread ID of the new child process. Refer to
35933 @ref{thread-id syntax} for the format of the @var{thread-id}
35934 field. This packet is only applicable to targets that support
35935 fork events.
35936
35937 This packet should not be sent by default; older @value{GDBN} versions
35938 did not support it. @value{GDBN} requests it, by supplying an
35939 appropriate @samp{qSupported} feature (@pxref{qSupported}). The
35940 remote stub must also supply the appropriate @samp{qSupported} feature
35941 indicating support.
35942
35943 @cindex vfork events, remote reply
35944 @item vfork
35945 The packet indicates that @code{vfork} was called, and @var{r}
35946 is the thread ID of the new child process. Refer to
35947 @ref{thread-id syntax} for the format of the @var{thread-id}
35948 field. This packet is only applicable to targets that support
35949 vfork events.
35950
35951 This packet should not be sent by default; older @value{GDBN} versions
35952 did not support it. @value{GDBN} requests it, by supplying an
35953 appropriate @samp{qSupported} feature (@pxref{qSupported}). The
35954 remote stub must also supply the appropriate @samp{qSupported} feature
35955 indicating support.
35956
35957 @cindex vforkdone events, remote reply
35958 @item vforkdone
35959 The packet indicates that a child process created by a vfork
35960 has either called @code{exec} or terminated, so that the
35961 address spaces of the parent and child process are no longer
35962 shared. The @var{r} part is ignored. This packet is only
35963 applicable to targets that support vforkdone events.
35964
35965 This packet should not be sent by default; older @value{GDBN} versions
35966 did not support it. @value{GDBN} requests it, by supplying an
35967 appropriate @samp{qSupported} feature (@pxref{qSupported}). The
35968 remote stub must also supply the appropriate @samp{qSupported} feature
35969 indicating support.
35970
35971 @cindex exec events, remote reply
35972 @item exec
35973 The packet indicates that @code{execve} was called, and @var{r}
35974 is the absolute pathname of the file that was executed, in hex.
35975 This packet is only applicable to targets that support exec events.
35976
35977 This packet should not be sent by default; older @value{GDBN} versions
35978 did not support it. @value{GDBN} requests it, by supplying an
35979 appropriate @samp{qSupported} feature (@pxref{qSupported}). The
35980 remote stub must also supply the appropriate @samp{qSupported} feature
35981 indicating support.
35982
35983 @cindex thread create event, remote reply
35984 @anchor{thread create event}
35985 @item create
35986 The packet indicates that the thread was just created. The new thread
35987 is stopped until @value{GDBN} sets it running with a resumption packet
35988 (@pxref{vCont packet}). This packet should not be sent by default;
35989 @value{GDBN} requests it with the @ref{QThreadEvents} packet. See
35990 also the @samp{w} (@ref{thread exit event}) remote reply below.
35991
35992 @end table
35993
35994 @item W @var{AA}
35995 @itemx W @var{AA} ; process:@var{pid}
35996 The process exited, and @var{AA} is the exit status. This is only
35997 applicable to certain targets.
35998
35999 The second form of the response, including the process ID of the exited
36000 process, can be used only when @value{GDBN} has reported support for
36001 multiprocess protocol extensions; see @ref{multiprocess extensions}.
36002 The @var{pid} is formatted as a big-endian hex string.
36003
36004 @item X @var{AA}
36005 @itemx X @var{AA} ; process:@var{pid}
36006 The process terminated with signal @var{AA}.
36007
36008 The second form of the response, including the process ID of the
36009 terminated process, can be used only when @value{GDBN} has reported
36010 support for multiprocess protocol extensions; see @ref{multiprocess
36011 extensions}. The @var{pid} is formatted as a big-endian hex string.
36012
36013 @anchor{thread exit event}
36014 @cindex thread exit event, remote reply
36015 @item w @var{AA} ; @var{tid}
36016
36017 The thread exited, and @var{AA} is the exit status. This response
36018 should not be sent by default; @value{GDBN} requests it with the
36019 @ref{QThreadEvents} packet. See also @ref{thread create event} above.
36020
36021 @item N
36022 There are no resumed threads left in the target. In other words, even
36023 though the process is alive, the last resumed thread has exited. For
36024 example, say the target process has two threads: thread 1 and thread
36025 2. The client leaves thread 1 stopped, and resumes thread 2, which
36026 subsequently exits. At this point, even though the process is still
36027 alive, and thus no @samp{W} stop reply is sent, no thread is actually
36028 executing either. The @samp{N} stop reply thus informs the client
36029 that it can stop waiting for stop replies. This packet should not be
36030 sent by default; older @value{GDBN} versions did not support it.
36031 @value{GDBN} requests it, by supplying an appropriate
36032 @samp{qSupported} feature (@pxref{qSupported}). The remote stub must
36033 also supply the appropriate @samp{qSupported} feature indicating
36034 support.
36035
36036 @item O @var{XX}@dots{}
36037 @samp{@var{XX}@dots{}} is hex encoding of @sc{ascii} data, to be
36038 written as the program's console output. This can happen at any time
36039 while the program is running and the debugger should continue to wait
36040 for @samp{W}, @samp{T}, etc. This reply is not permitted in non-stop mode.
36041
36042 @item F @var{call-id},@var{parameter}@dots{}
36043 @var{call-id} is the identifier which says which host system call should
36044 be called. This is just the name of the function. Translation into the
36045 correct system call is only applicable as it's defined in @value{GDBN}.
36046 @xref{File-I/O Remote Protocol Extension}, for a list of implemented
36047 system calls.
36048
36049 @samp{@var{parameter}@dots{}} is a list of parameters as defined for
36050 this very system call.
36051
36052 The target replies with this packet when it expects @value{GDBN} to
36053 call a host system call on behalf of the target. @value{GDBN} replies
36054 with an appropriate @samp{F} packet and keeps up waiting for the next
36055 reply packet from the target. The latest @samp{C}, @samp{c}, @samp{S}
36056 or @samp{s} action is expected to be continued. @xref{File-I/O Remote
36057 Protocol Extension}, for more details.
36058
36059 @end table
36060
36061 @node General Query Packets
36062 @section General Query Packets
36063 @cindex remote query requests
36064
36065 Packets starting with @samp{q} are @dfn{general query packets};
36066 packets starting with @samp{Q} are @dfn{general set packets}. General
36067 query and set packets are a semi-unified form for retrieving and
36068 sending information to and from the stub.
36069
36070 The initial letter of a query or set packet is followed by a name
36071 indicating what sort of thing the packet applies to. For example,
36072 @value{GDBN} may use a @samp{qSymbol} packet to exchange symbol
36073 definitions with the stub. These packet names follow some
36074 conventions:
36075
36076 @itemize @bullet
36077 @item
36078 The name must not contain commas, colons or semicolons.
36079 @item
36080 Most @value{GDBN} query and set packets have a leading upper case
36081 letter.
36082 @item
36083 The names of custom vendor packets should use a company prefix, in
36084 lower case, followed by a period. For example, packets designed at
36085 the Acme Corporation might begin with @samp{qacme.foo} (for querying
36086 foos) or @samp{Qacme.bar} (for setting bars).
36087 @end itemize
36088
36089 The name of a query or set packet should be separated from any
36090 parameters by a @samp{:}; the parameters themselves should be
36091 separated by @samp{,} or @samp{;}. Stubs must be careful to match the
36092 full packet name, and check for a separator or the end of the packet,
36093 in case two packet names share a common prefix. New packets should not begin
36094 with @samp{qC}, @samp{qP}, or @samp{qL}@footnote{The @samp{qP} and @samp{qL}
36095 packets predate these conventions, and have arguments without any terminator
36096 for the packet name; we suspect they are in widespread use in places that
36097 are difficult to upgrade. The @samp{qC} packet has no arguments, but some
36098 existing stubs (e.g.@: RedBoot) are known to not check for the end of the
36099 packet.}.
36100
36101 Like the descriptions of the other packets, each description here
36102 has a template showing the packet's overall syntax, followed by an
36103 explanation of the packet's meaning. We include spaces in some of the
36104 templates for clarity; these are not part of the packet's syntax. No
36105 @value{GDBN} packet uses spaces to separate its components.
36106
36107 Here are the currently defined query and set packets:
36108
36109 @table @samp
36110
36111 @item QAgent:1
36112 @itemx QAgent:0
36113 Turn on or off the agent as a helper to perform some debugging operations
36114 delegated from @value{GDBN} (@pxref{Control Agent}).
36115
36116 @item QAllow:@var{op}:@var{val}@dots{}
36117 @cindex @samp{QAllow} packet
36118 Specify which operations @value{GDBN} expects to request of the
36119 target, as a semicolon-separated list of operation name and value
36120 pairs. Possible values for @var{op} include @samp{WriteReg},
36121 @samp{WriteMem}, @samp{InsertBreak}, @samp{InsertTrace},
36122 @samp{InsertFastTrace}, and @samp{Stop}. @var{val} is either 0,
36123 indicating that @value{GDBN} will not request the operation, or 1,
36124 indicating that it may. (The target can then use this to set up its
36125 own internals optimally, for instance if the debugger never expects to
36126 insert breakpoints, it may not need to install its own trap handler.)
36127
36128 @item qC
36129 @cindex current thread, remote request
36130 @cindex @samp{qC} packet
36131 Return the current thread ID.
36132
36133 Reply:
36134 @table @samp
36135 @item QC @var{thread-id}
36136 Where @var{thread-id} is a thread ID as documented in
36137 @ref{thread-id syntax}.
36138 @item @r{(anything else)}
36139 Any other reply implies the old thread ID.
36140 @end table
36141
36142 @item qCRC:@var{addr},@var{length}
36143 @cindex CRC of memory block, remote request
36144 @cindex @samp{qCRC} packet
36145 @anchor{qCRC packet}
36146 Compute the CRC checksum of a block of memory using CRC-32 defined in
36147 IEEE 802.3. The CRC is computed byte at a time, taking the most
36148 significant bit of each byte first. The initial pattern code
36149 @code{0xffffffff} is used to ensure leading zeros affect the CRC.
36150
36151 @emph{Note:} This is the same CRC used in validating separate debug
36152 files (@pxref{Separate Debug Files, , Debugging Information in Separate
36153 Files}). However the algorithm is slightly different. When validating
36154 separate debug files, the CRC is computed taking the @emph{least}
36155 significant bit of each byte first, and the final result is inverted to
36156 detect trailing zeros.
36157
36158 Reply:
36159 @table @samp
36160 @item E @var{NN}
36161 An error (such as memory fault)
36162 @item C @var{crc32}
36163 The specified memory region's checksum is @var{crc32}.
36164 @end table
36165
36166 @item QDisableRandomization:@var{value}
36167 @cindex disable address space randomization, remote request
36168 @cindex @samp{QDisableRandomization} packet
36169 Some target operating systems will randomize the virtual address space
36170 of the inferior process as a security feature, but provide a feature
36171 to disable such randomization, e.g.@: to allow for a more deterministic
36172 debugging experience. On such systems, this packet with a @var{value}
36173 of 1 directs the target to disable address space randomization for
36174 processes subsequently started via @samp{vRun} packets, while a packet
36175 with a @var{value} of 0 tells the target to enable address space
36176 randomization.
36177
36178 This packet is only available in extended mode (@pxref{extended mode}).
36179
36180 Reply:
36181 @table @samp
36182 @item OK
36183 The request succeeded.
36184
36185 @item E @var{nn}
36186 An error occurred. The error number @var{nn} is given as hex digits.
36187
36188 @item @w{}
36189 An empty reply indicates that @samp{QDisableRandomization} is not supported
36190 by the stub.
36191 @end table
36192
36193 This packet is not probed by default; the remote stub must request it,
36194 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
36195 This should only be done on targets that actually support disabling
36196 address space randomization.
36197
36198 @item qfThreadInfo
36199 @itemx qsThreadInfo
36200 @cindex list active threads, remote request
36201 @cindex @samp{qfThreadInfo} packet
36202 @cindex @samp{qsThreadInfo} packet
36203 Obtain a list of all active thread IDs from the target (OS). Since there
36204 may be too many active threads to fit into one reply packet, this query
36205 works iteratively: it may require more than one query/reply sequence to
36206 obtain the entire list of threads. The first query of the sequence will
36207 be the @samp{qfThreadInfo} query; subsequent queries in the
36208 sequence will be the @samp{qsThreadInfo} query.
36209
36210 NOTE: This packet replaces the @samp{qL} query (see below).
36211
36212 Reply:
36213 @table @samp
36214 @item m @var{thread-id}
36215 A single thread ID
36216 @item m @var{thread-id},@var{thread-id}@dots{}
36217 a comma-separated list of thread IDs
36218 @item l
36219 (lower case letter @samp{L}) denotes end of list.
36220 @end table
36221
36222 In response to each query, the target will reply with a list of one or
36223 more thread IDs, separated by commas.
36224 @value{GDBN} will respond to each reply with a request for more thread
36225 ids (using the @samp{qs} form of the query), until the target responds
36226 with @samp{l} (lower-case ell, for @dfn{last}).
36227 Refer to @ref{thread-id syntax}, for the format of the @var{thread-id}
36228 fields.
36229
36230 @emph{Note: @value{GDBN} will send the @code{qfThreadInfo} query during the
36231 initial connection with the remote target, and the very first thread ID
36232 mentioned in the reply will be stopped by @value{GDBN} in a subsequent
36233 message. Therefore, the stub should ensure that the first thread ID in
36234 the @code{qfThreadInfo} reply is suitable for being stopped by @value{GDBN}.}
36235
36236 @item qGetTLSAddr:@var{thread-id},@var{offset},@var{lm}
36237 @cindex get thread-local storage address, remote request
36238 @cindex @samp{qGetTLSAddr} packet
36239 Fetch the address associated with thread local storage specified
36240 by @var{thread-id}, @var{offset}, and @var{lm}.
36241
36242 @var{thread-id} is the thread ID associated with the
36243 thread for which to fetch the TLS address. @xref{thread-id syntax}.
36244
36245 @var{offset} is the (big endian, hex encoded) offset associated with the
36246 thread local variable. (This offset is obtained from the debug
36247 information associated with the variable.)
36248
36249 @var{lm} is the (big endian, hex encoded) OS/ABI-specific encoding of the
36250 load module associated with the thread local storage. For example,
36251 a @sc{gnu}/Linux system will pass the link map address of the shared
36252 object associated with the thread local storage under consideration.
36253 Other operating environments may choose to represent the load module
36254 differently, so the precise meaning of this parameter will vary.
36255
36256 Reply:
36257 @table @samp
36258 @item @var{XX}@dots{}
36259 Hex encoded (big endian) bytes representing the address of the thread
36260 local storage requested.
36261
36262 @item E @var{nn}
36263 An error occurred. The error number @var{nn} is given as hex digits.
36264
36265 @item @w{}
36266 An empty reply indicates that @samp{qGetTLSAddr} is not supported by the stub.
36267 @end table
36268
36269 @item qGetTIBAddr:@var{thread-id}
36270 @cindex get thread information block address
36271 @cindex @samp{qGetTIBAddr} packet
36272 Fetch address of the Windows OS specific Thread Information Block.
36273
36274 @var{thread-id} is the thread ID associated with the thread.
36275
36276 Reply:
36277 @table @samp
36278 @item @var{XX}@dots{}
36279 Hex encoded (big endian) bytes representing the linear address of the
36280 thread information block.
36281
36282 @item E @var{nn}
36283 An error occured. This means that either the thread was not found, or the
36284 address could not be retrieved.
36285
36286 @item @w{}
36287 An empty reply indicates that @samp{qGetTIBAddr} is not supported by the stub.
36288 @end table
36289
36290 @item qL @var{startflag} @var{threadcount} @var{nextthread}
36291 Obtain thread information from RTOS. Where: @var{startflag} (one hex
36292 digit) is one to indicate the first query and zero to indicate a
36293 subsequent query; @var{threadcount} (two hex digits) is the maximum
36294 number of threads the response packet can contain; and @var{nextthread}
36295 (eight hex digits), for subsequent queries (@var{startflag} is zero), is
36296 returned in the response as @var{argthread}.
36297
36298 Don't use this packet; use the @samp{qfThreadInfo} query instead (see above).
36299
36300 Reply:
36301 @table @samp
36302 @item qM @var{count} @var{done} @var{argthread} @var{thread}@dots{}
36303 Where: @var{count} (two hex digits) is the number of threads being
36304 returned; @var{done} (one hex digit) is zero to indicate more threads
36305 and one indicates no further threads; @var{argthreadid} (eight hex
36306 digits) is @var{nextthread} from the request packet; @var{thread}@dots{}
36307 is a sequence of thread IDs, @var{threadid} (eight hex
36308 digits), from the target. See @code{remote.c:parse_threadlist_response()}.
36309 @end table
36310
36311 @item qOffsets
36312 @cindex section offsets, remote request
36313 @cindex @samp{qOffsets} packet
36314 Get section offsets that the target used when relocating the downloaded
36315 image.
36316
36317 Reply:
36318 @table @samp
36319 @item Text=@var{xxx};Data=@var{yyy}@r{[};Bss=@var{zzz}@r{]}
36320 Relocate the @code{Text} section by @var{xxx} from its original address.
36321 Relocate the @code{Data} section by @var{yyy} from its original address.
36322 If the object file format provides segment information (e.g.@: @sc{elf}
36323 @samp{PT_LOAD} program headers), @value{GDBN} will relocate entire
36324 segments by the supplied offsets.
36325
36326 @emph{Note: while a @code{Bss} offset may be included in the response,
36327 @value{GDBN} ignores this and instead applies the @code{Data} offset
36328 to the @code{Bss} section.}
36329
36330 @item TextSeg=@var{xxx}@r{[};DataSeg=@var{yyy}@r{]}
36331 Relocate the first segment of the object file, which conventionally
36332 contains program code, to a starting address of @var{xxx}. If
36333 @samp{DataSeg} is specified, relocate the second segment, which
36334 conventionally contains modifiable data, to a starting address of
36335 @var{yyy}. @value{GDBN} will report an error if the object file
36336 does not contain segment information, or does not contain at least
36337 as many segments as mentioned in the reply. Extra segments are
36338 kept at fixed offsets relative to the last relocated segment.
36339 @end table
36340
36341 @item qP @var{mode} @var{thread-id}
36342 @cindex thread information, remote request
36343 @cindex @samp{qP} packet
36344 Returns information on @var{thread-id}. Where: @var{mode} is a hex
36345 encoded 32 bit mode; @var{thread-id} is a thread ID
36346 (@pxref{thread-id syntax}).
36347
36348 Don't use this packet; use the @samp{qThreadExtraInfo} query instead
36349 (see below).
36350
36351 Reply: see @code{remote.c:remote_unpack_thread_info_response()}.
36352
36353 @item QNonStop:1
36354 @itemx QNonStop:0
36355 @cindex non-stop mode, remote request
36356 @cindex @samp{QNonStop} packet
36357 @anchor{QNonStop}
36358 Enter non-stop (@samp{QNonStop:1}) or all-stop (@samp{QNonStop:0}) mode.
36359 @xref{Remote Non-Stop}, for more information.
36360
36361 Reply:
36362 @table @samp
36363 @item OK
36364 The request succeeded.
36365
36366 @item E @var{nn}
36367 An error occurred. The error number @var{nn} is given as hex digits.
36368
36369 @item @w{}
36370 An empty reply indicates that @samp{QNonStop} is not supported by
36371 the stub.
36372 @end table
36373
36374 This packet is not probed by default; the remote stub must request it,
36375 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
36376 Use of this packet is controlled by the @code{set non-stop} command;
36377 @pxref{Non-Stop Mode}.
36378
36379 @item QCatchSyscalls:1 @r{[};@var{sysno}@r{]}@dots{}
36380 @itemx QCatchSyscalls:0
36381 @cindex catch syscalls from inferior, remote request
36382 @cindex @samp{QCatchSyscalls} packet
36383 @anchor{QCatchSyscalls}
36384 Enable (@samp{QCatchSyscalls:1}) or disable (@samp{QCatchSyscalls:0})
36385 catching syscalls from the inferior process.
36386
36387 For @samp{QCatchSyscalls:1}, each listed syscall @var{sysno} (encoded
36388 in hex) should be reported to @value{GDBN}. If no syscall @var{sysno}
36389 is listed, every system call should be reported.
36390
36391 Note that if a syscall not in the list is reported, @value{GDBN} will
36392 still filter the event according to its own list from all corresponding
36393 @code{catch syscall} commands. However, it is more efficient to only
36394 report the requested syscalls.
36395
36396 Multiple @samp{QCatchSyscalls:1} packets do not combine; any earlier
36397 @samp{QCatchSyscalls:1} list is completely replaced by the new list.
36398
36399 If the inferior process execs, the state of @samp{QCatchSyscalls} is
36400 kept for the new process too. On targets where exec may affect syscall
36401 numbers, for example with exec between 32 and 64-bit processes, the
36402 client should send a new packet with the new syscall list.
36403
36404 Reply:
36405 @table @samp
36406 @item OK
36407 The request succeeded.
36408
36409 @item E @var{nn}
36410 An error occurred. @var{nn} are hex digits.
36411
36412 @item @w{}
36413 An empty reply indicates that @samp{QCatchSyscalls} is not supported by
36414 the stub.
36415 @end table
36416
36417 Use of this packet is controlled by the @code{set remote catch-syscalls}
36418 command (@pxref{Remote Configuration, set remote catch-syscalls}).
36419 This packet is not probed by default; the remote stub must request it,
36420 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
36421
36422 @item QPassSignals: @var{signal} @r{[};@var{signal}@r{]}@dots{}
36423 @cindex pass signals to inferior, remote request
36424 @cindex @samp{QPassSignals} packet
36425 @anchor{QPassSignals}
36426 Each listed @var{signal} should be passed directly to the inferior process.
36427 Signals are numbered identically to continue packets and stop replies
36428 (@pxref{Stop Reply Packets}). Each @var{signal} list item should be
36429 strictly greater than the previous item. These signals do not need to stop
36430 the inferior, or be reported to @value{GDBN}. All other signals should be
36431 reported to @value{GDBN}. Multiple @samp{QPassSignals} packets do not
36432 combine; any earlier @samp{QPassSignals} list is completely replaced by the
36433 new list. This packet improves performance when using @samp{handle
36434 @var{signal} nostop noprint pass}.
36435
36436 Reply:
36437 @table @samp
36438 @item OK
36439 The request succeeded.
36440
36441 @item E @var{nn}
36442 An error occurred. The error number @var{nn} is given as hex digits.
36443
36444 @item @w{}
36445 An empty reply indicates that @samp{QPassSignals} is not supported by
36446 the stub.
36447 @end table
36448
36449 Use of this packet is controlled by the @code{set remote pass-signals}
36450 command (@pxref{Remote Configuration, set remote pass-signals}).
36451 This packet is not probed by default; the remote stub must request it,
36452 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
36453
36454 @item QProgramSignals: @var{signal} @r{[};@var{signal}@r{]}@dots{}
36455 @cindex signals the inferior may see, remote request
36456 @cindex @samp{QProgramSignals} packet
36457 @anchor{QProgramSignals}
36458 Each listed @var{signal} may be delivered to the inferior process.
36459 Others should be silently discarded.
36460
36461 In some cases, the remote stub may need to decide whether to deliver a
36462 signal to the program or not without @value{GDBN} involvement. One
36463 example of that is while detaching --- the program's threads may have
36464 stopped for signals that haven't yet had a chance of being reported to
36465 @value{GDBN}, and so the remote stub can use the signal list specified
36466 by this packet to know whether to deliver or ignore those pending
36467 signals.
36468
36469 This does not influence whether to deliver a signal as requested by a
36470 resumption packet (@pxref{vCont packet}).
36471
36472 Signals are numbered identically to continue packets and stop replies
36473 (@pxref{Stop Reply Packets}). Each @var{signal} list item should be
36474 strictly greater than the previous item. Multiple
36475 @samp{QProgramSignals} packets do not combine; any earlier
36476 @samp{QProgramSignals} list is completely replaced by the new list.
36477
36478 Reply:
36479 @table @samp
36480 @item OK
36481 The request succeeded.
36482
36483 @item E @var{nn}
36484 An error occurred. The error number @var{nn} is given as hex digits.
36485
36486 @item @w{}
36487 An empty reply indicates that @samp{QProgramSignals} is not supported
36488 by the stub.
36489 @end table
36490
36491 Use of this packet is controlled by the @code{set remote program-signals}
36492 command (@pxref{Remote Configuration, set remote program-signals}).
36493 This packet is not probed by default; the remote stub must request it,
36494 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
36495
36496 @anchor{QThreadEvents}
36497 @item QThreadEvents:1
36498 @itemx QThreadEvents:0
36499 @cindex thread create/exit events, remote request
36500 @cindex @samp{QThreadEvents} packet
36501
36502 Enable (@samp{QThreadEvents:1}) or disable (@samp{QThreadEvents:0})
36503 reporting of thread create and exit events. @xref{thread create
36504 event}, for the reply specifications. For example, this is used in
36505 non-stop mode when @value{GDBN} stops a set of threads and
36506 synchronously waits for the their corresponding stop replies. Without
36507 exit events, if one of the threads exits, @value{GDBN} would hang
36508 forever not knowing that it should no longer expect a stop for that
36509 same thread. @value{GDBN} does not enable this feature unless the
36510 stub reports that it supports it by including @samp{QThreadEvents+} in
36511 its @samp{qSupported} reply.
36512
36513 Reply:
36514 @table @samp
36515 @item OK
36516 The request succeeded.
36517
36518 @item E @var{nn}
36519 An error occurred. The error number @var{nn} is given as hex digits.
36520
36521 @item @w{}
36522 An empty reply indicates that @samp{QThreadEvents} is not supported by
36523 the stub.
36524 @end table
36525
36526 Use of this packet is controlled by the @code{set remote thread-events}
36527 command (@pxref{Remote Configuration, set remote thread-events}).
36528
36529 @item qRcmd,@var{command}
36530 @cindex execute remote command, remote request
36531 @cindex @samp{qRcmd} packet
36532 @var{command} (hex encoded) is passed to the local interpreter for
36533 execution. Invalid commands should be reported using the output
36534 string. Before the final result packet, the target may also respond
36535 with a number of intermediate @samp{O@var{output}} console output
36536 packets. @emph{Implementors should note that providing access to a
36537 stubs's interpreter may have security implications}.
36538
36539 Reply:
36540 @table @samp
36541 @item OK
36542 A command response with no output.
36543 @item @var{OUTPUT}
36544 A command response with the hex encoded output string @var{OUTPUT}.
36545 @item E @var{NN}
36546 Indicate a badly formed request.
36547 @item @w{}
36548 An empty reply indicates that @samp{qRcmd} is not recognized.
36549 @end table
36550
36551 (Note that the @code{qRcmd} packet's name is separated from the
36552 command by a @samp{,}, not a @samp{:}, contrary to the naming
36553 conventions above. Please don't use this packet as a model for new
36554 packets.)
36555
36556 @item qSearch:memory:@var{address};@var{length};@var{search-pattern}
36557 @cindex searching memory, in remote debugging
36558 @ifnotinfo
36559 @cindex @samp{qSearch:memory} packet
36560 @end ifnotinfo
36561 @cindex @samp{qSearch memory} packet
36562 @anchor{qSearch memory}
36563 Search @var{length} bytes at @var{address} for @var{search-pattern}.
36564 Both @var{address} and @var{length} are encoded in hex;
36565 @var{search-pattern} is a sequence of bytes, also hex encoded.
36566
36567 Reply:
36568 @table @samp
36569 @item 0
36570 The pattern was not found.
36571 @item 1,address
36572 The pattern was found at @var{address}.
36573 @item E @var{NN}
36574 A badly formed request or an error was encountered while searching memory.
36575 @item @w{}
36576 An empty reply indicates that @samp{qSearch:memory} is not recognized.
36577 @end table
36578
36579 @item QStartNoAckMode
36580 @cindex @samp{QStartNoAckMode} packet
36581 @anchor{QStartNoAckMode}
36582 Request that the remote stub disable the normal @samp{+}/@samp{-}
36583 protocol acknowledgments (@pxref{Packet Acknowledgment}).
36584
36585 Reply:
36586 @table @samp
36587 @item OK
36588 The stub has switched to no-acknowledgment mode.
36589 @value{GDBN} acknowledges this reponse,
36590 but neither the stub nor @value{GDBN} shall send or expect further
36591 @samp{+}/@samp{-} acknowledgments in the current connection.
36592 @item @w{}
36593 An empty reply indicates that the stub does not support no-acknowledgment mode.
36594 @end table
36595
36596 @item qSupported @r{[}:@var{gdbfeature} @r{[};@var{gdbfeature}@r{]}@dots{} @r{]}
36597 @cindex supported packets, remote query
36598 @cindex features of the remote protocol
36599 @cindex @samp{qSupported} packet
36600 @anchor{qSupported}
36601 Tell the remote stub about features supported by @value{GDBN}, and
36602 query the stub for features it supports. This packet allows
36603 @value{GDBN} and the remote stub to take advantage of each others'
36604 features. @samp{qSupported} also consolidates multiple feature probes
36605 at startup, to improve @value{GDBN} performance---a single larger
36606 packet performs better than multiple smaller probe packets on
36607 high-latency links. Some features may enable behavior which must not
36608 be on by default, e.g.@: because it would confuse older clients or
36609 stubs. Other features may describe packets which could be
36610 automatically probed for, but are not. These features must be
36611 reported before @value{GDBN} will use them. This ``default
36612 unsupported'' behavior is not appropriate for all packets, but it
36613 helps to keep the initial connection time under control with new
36614 versions of @value{GDBN} which support increasing numbers of packets.
36615
36616 Reply:
36617 @table @samp
36618 @item @var{stubfeature} @r{[};@var{stubfeature}@r{]}@dots{}
36619 The stub supports or does not support each returned @var{stubfeature},
36620 depending on the form of each @var{stubfeature} (see below for the
36621 possible forms).
36622 @item @w{}
36623 An empty reply indicates that @samp{qSupported} is not recognized,
36624 or that no features needed to be reported to @value{GDBN}.
36625 @end table
36626
36627 The allowed forms for each feature (either a @var{gdbfeature} in the
36628 @samp{qSupported} packet, or a @var{stubfeature} in the response)
36629 are:
36630
36631 @table @samp
36632 @item @var{name}=@var{value}
36633 The remote protocol feature @var{name} is supported, and associated
36634 with the specified @var{value}. The format of @var{value} depends
36635 on the feature, but it must not include a semicolon.
36636 @item @var{name}+
36637 The remote protocol feature @var{name} is supported, and does not
36638 need an associated value.
36639 @item @var{name}-
36640 The remote protocol feature @var{name} is not supported.
36641 @item @var{name}?
36642 The remote protocol feature @var{name} may be supported, and
36643 @value{GDBN} should auto-detect support in some other way when it is
36644 needed. This form will not be used for @var{gdbfeature} notifications,
36645 but may be used for @var{stubfeature} responses.
36646 @end table
36647
36648 Whenever the stub receives a @samp{qSupported} request, the
36649 supplied set of @value{GDBN} features should override any previous
36650 request. This allows @value{GDBN} to put the stub in a known
36651 state, even if the stub had previously been communicating with
36652 a different version of @value{GDBN}.
36653
36654 The following values of @var{gdbfeature} (for the packet sent by @value{GDBN})
36655 are defined:
36656
36657 @table @samp
36658 @item multiprocess
36659 This feature indicates whether @value{GDBN} supports multiprocess
36660 extensions to the remote protocol. @value{GDBN} does not use such
36661 extensions unless the stub also reports that it supports them by
36662 including @samp{multiprocess+} in its @samp{qSupported} reply.
36663 @xref{multiprocess extensions}, for details.
36664
36665 @item xmlRegisters
36666 This feature indicates that @value{GDBN} supports the XML target
36667 description. If the stub sees @samp{xmlRegisters=} with target
36668 specific strings separated by a comma, it will report register
36669 description.
36670
36671 @item qRelocInsn
36672 This feature indicates whether @value{GDBN} supports the
36673 @samp{qRelocInsn} packet (@pxref{Tracepoint Packets,,Relocate
36674 instruction reply packet}).
36675
36676 @item swbreak
36677 This feature indicates whether @value{GDBN} supports the swbreak stop
36678 reason in stop replies. @xref{swbreak stop reason}, for details.
36679
36680 @item hwbreak
36681 This feature indicates whether @value{GDBN} supports the hwbreak stop
36682 reason in stop replies. @xref{swbreak stop reason}, for details.
36683
36684 @item fork-events
36685 This feature indicates whether @value{GDBN} supports fork event
36686 extensions to the remote protocol. @value{GDBN} does not use such
36687 extensions unless the stub also reports that it supports them by
36688 including @samp{fork-events+} in its @samp{qSupported} reply.
36689
36690 @item vfork-events
36691 This feature indicates whether @value{GDBN} supports vfork event
36692 extensions to the remote protocol. @value{GDBN} does not use such
36693 extensions unless the stub also reports that it supports them by
36694 including @samp{vfork-events+} in its @samp{qSupported} reply.
36695
36696 @item exec-events
36697 This feature indicates whether @value{GDBN} supports exec event
36698 extensions to the remote protocol. @value{GDBN} does not use such
36699 extensions unless the stub also reports that it supports them by
36700 including @samp{exec-events+} in its @samp{qSupported} reply.
36701
36702 @item vContSupported
36703 This feature indicates whether @value{GDBN} wants to know the
36704 supported actions in the reply to @samp{vCont?} packet.
36705 @end table
36706
36707 Stubs should ignore any unknown values for
36708 @var{gdbfeature}. Any @value{GDBN} which sends a @samp{qSupported}
36709 packet supports receiving packets of unlimited length (earlier
36710 versions of @value{GDBN} may reject overly long responses). Additional values
36711 for @var{gdbfeature} may be defined in the future to let the stub take
36712 advantage of new features in @value{GDBN}, e.g.@: incompatible
36713 improvements in the remote protocol---the @samp{multiprocess} feature is
36714 an example of such a feature. The stub's reply should be independent
36715 of the @var{gdbfeature} entries sent by @value{GDBN}; first @value{GDBN}
36716 describes all the features it supports, and then the stub replies with
36717 all the features it supports.
36718
36719 Similarly, @value{GDBN} will silently ignore unrecognized stub feature
36720 responses, as long as each response uses one of the standard forms.
36721
36722 Some features are flags. A stub which supports a flag feature
36723 should respond with a @samp{+} form response. Other features
36724 require values, and the stub should respond with an @samp{=}
36725 form response.
36726
36727 Each feature has a default value, which @value{GDBN} will use if
36728 @samp{qSupported} is not available or if the feature is not mentioned
36729 in the @samp{qSupported} response. The default values are fixed; a
36730 stub is free to omit any feature responses that match the defaults.
36731
36732 Not all features can be probed, but for those which can, the probing
36733 mechanism is useful: in some cases, a stub's internal
36734 architecture may not allow the protocol layer to know some information
36735 about the underlying target in advance. This is especially common in
36736 stubs which may be configured for multiple targets.
36737
36738 These are the currently defined stub features and their properties:
36739
36740 @multitable @columnfractions 0.35 0.2 0.12 0.2
36741 @c NOTE: The first row should be @headitem, but we do not yet require
36742 @c a new enough version of Texinfo (4.7) to use @headitem.
36743 @item Feature Name
36744 @tab Value Required
36745 @tab Default
36746 @tab Probe Allowed
36747
36748 @item @samp{PacketSize}
36749 @tab Yes
36750 @tab @samp{-}
36751 @tab No
36752
36753 @item @samp{qXfer:auxv:read}
36754 @tab No
36755 @tab @samp{-}
36756 @tab Yes
36757
36758 @item @samp{qXfer:btrace:read}
36759 @tab No
36760 @tab @samp{-}
36761 @tab Yes
36762
36763 @item @samp{qXfer:btrace-conf:read}
36764 @tab No
36765 @tab @samp{-}
36766 @tab Yes
36767
36768 @item @samp{qXfer:exec-file:read}
36769 @tab No
36770 @tab @samp{-}
36771 @tab Yes
36772
36773 @item @samp{qXfer:features:read}
36774 @tab No
36775 @tab @samp{-}
36776 @tab Yes
36777
36778 @item @samp{qXfer:libraries:read}
36779 @tab No
36780 @tab @samp{-}
36781 @tab Yes
36782
36783 @item @samp{qXfer:libraries-svr4:read}
36784 @tab No
36785 @tab @samp{-}
36786 @tab Yes
36787
36788 @item @samp{augmented-libraries-svr4-read}
36789 @tab No
36790 @tab @samp{-}
36791 @tab No
36792
36793 @item @samp{qXfer:memory-map:read}
36794 @tab No
36795 @tab @samp{-}
36796 @tab Yes
36797
36798 @item @samp{qXfer:sdata:read}
36799 @tab No
36800 @tab @samp{-}
36801 @tab Yes
36802
36803 @item @samp{qXfer:spu:read}
36804 @tab No
36805 @tab @samp{-}
36806 @tab Yes
36807
36808 @item @samp{qXfer:spu:write}
36809 @tab No
36810 @tab @samp{-}
36811 @tab Yes
36812
36813 @item @samp{qXfer:siginfo:read}
36814 @tab No
36815 @tab @samp{-}
36816 @tab Yes
36817
36818 @item @samp{qXfer:siginfo:write}
36819 @tab No
36820 @tab @samp{-}
36821 @tab Yes
36822
36823 @item @samp{qXfer:threads:read}
36824 @tab No
36825 @tab @samp{-}
36826 @tab Yes
36827
36828 @item @samp{qXfer:traceframe-info:read}
36829 @tab No
36830 @tab @samp{-}
36831 @tab Yes
36832
36833 @item @samp{qXfer:uib:read}
36834 @tab No
36835 @tab @samp{-}
36836 @tab Yes
36837
36838 @item @samp{qXfer:fdpic:read}
36839 @tab No
36840 @tab @samp{-}
36841 @tab Yes
36842
36843 @item @samp{Qbtrace:off}
36844 @tab Yes
36845 @tab @samp{-}
36846 @tab Yes
36847
36848 @item @samp{Qbtrace:bts}
36849 @tab Yes
36850 @tab @samp{-}
36851 @tab Yes
36852
36853 @item @samp{Qbtrace:pt}
36854 @tab Yes
36855 @tab @samp{-}
36856 @tab Yes
36857
36858 @item @samp{Qbtrace-conf:bts:size}
36859 @tab Yes
36860 @tab @samp{-}
36861 @tab Yes
36862
36863 @item @samp{Qbtrace-conf:pt:size}
36864 @tab Yes
36865 @tab @samp{-}
36866 @tab Yes
36867
36868 @item @samp{QNonStop}
36869 @tab No
36870 @tab @samp{-}
36871 @tab Yes
36872
36873 @item @samp{QCatchSyscalls}
36874 @tab No
36875 @tab @samp{-}
36876 @tab Yes
36877
36878 @item @samp{QPassSignals}
36879 @tab No
36880 @tab @samp{-}
36881 @tab Yes
36882
36883 @item @samp{QStartNoAckMode}
36884 @tab No
36885 @tab @samp{-}
36886 @tab Yes
36887
36888 @item @samp{multiprocess}
36889 @tab No
36890 @tab @samp{-}
36891 @tab No
36892
36893 @item @samp{ConditionalBreakpoints}
36894 @tab No
36895 @tab @samp{-}
36896 @tab No
36897
36898 @item @samp{ConditionalTracepoints}
36899 @tab No
36900 @tab @samp{-}
36901 @tab No
36902
36903 @item @samp{ReverseContinue}
36904 @tab No
36905 @tab @samp{-}
36906 @tab No
36907
36908 @item @samp{ReverseStep}
36909 @tab No
36910 @tab @samp{-}
36911 @tab No
36912
36913 @item @samp{TracepointSource}
36914 @tab No
36915 @tab @samp{-}
36916 @tab No
36917
36918 @item @samp{QAgent}
36919 @tab No
36920 @tab @samp{-}
36921 @tab No
36922
36923 @item @samp{QAllow}
36924 @tab No
36925 @tab @samp{-}
36926 @tab No
36927
36928 @item @samp{QDisableRandomization}
36929 @tab No
36930 @tab @samp{-}
36931 @tab No
36932
36933 @item @samp{EnableDisableTracepoints}
36934 @tab No
36935 @tab @samp{-}
36936 @tab No
36937
36938 @item @samp{QTBuffer:size}
36939 @tab No
36940 @tab @samp{-}
36941 @tab No
36942
36943 @item @samp{tracenz}
36944 @tab No
36945 @tab @samp{-}
36946 @tab No
36947
36948 @item @samp{BreakpointCommands}
36949 @tab No
36950 @tab @samp{-}
36951 @tab No
36952
36953 @item @samp{swbreak}
36954 @tab No
36955 @tab @samp{-}
36956 @tab No
36957
36958 @item @samp{hwbreak}
36959 @tab No
36960 @tab @samp{-}
36961 @tab No
36962
36963 @item @samp{fork-events}
36964 @tab No
36965 @tab @samp{-}
36966 @tab No
36967
36968 @item @samp{vfork-events}
36969 @tab No
36970 @tab @samp{-}
36971 @tab No
36972
36973 @item @samp{exec-events}
36974 @tab No
36975 @tab @samp{-}
36976 @tab No
36977
36978 @item @samp{QThreadEvents}
36979 @tab No
36980 @tab @samp{-}
36981 @tab No
36982
36983 @item @samp{no-resumed}
36984 @tab No
36985 @tab @samp{-}
36986 @tab No
36987
36988 @end multitable
36989
36990 These are the currently defined stub features, in more detail:
36991
36992 @table @samp
36993 @cindex packet size, remote protocol
36994 @item PacketSize=@var{bytes}
36995 The remote stub can accept packets up to at least @var{bytes} in
36996 length. @value{GDBN} will send packets up to this size for bulk
36997 transfers, and will never send larger packets. This is a limit on the
36998 data characters in the packet, including the frame and checksum.
36999 There is no trailing NUL byte in a remote protocol packet; if the stub
37000 stores packets in a NUL-terminated format, it should allow an extra
37001 byte in its buffer for the NUL. If this stub feature is not supported,
37002 @value{GDBN} guesses based on the size of the @samp{g} packet response.
37003
37004 @item qXfer:auxv:read
37005 The remote stub understands the @samp{qXfer:auxv:read} packet
37006 (@pxref{qXfer auxiliary vector read}).
37007
37008 @item qXfer:btrace:read
37009 The remote stub understands the @samp{qXfer:btrace:read}
37010 packet (@pxref{qXfer btrace read}).
37011
37012 @item qXfer:btrace-conf:read
37013 The remote stub understands the @samp{qXfer:btrace-conf:read}
37014 packet (@pxref{qXfer btrace-conf read}).
37015
37016 @item qXfer:exec-file:read
37017 The remote stub understands the @samp{qXfer:exec-file:read} packet
37018 (@pxref{qXfer executable filename read}).
37019
37020 @item qXfer:features:read
37021 The remote stub understands the @samp{qXfer:features:read} packet
37022 (@pxref{qXfer target description read}).
37023
37024 @item qXfer:libraries:read
37025 The remote stub understands the @samp{qXfer:libraries:read} packet
37026 (@pxref{qXfer library list read}).
37027
37028 @item qXfer:libraries-svr4:read
37029 The remote stub understands the @samp{qXfer:libraries-svr4:read} packet
37030 (@pxref{qXfer svr4 library list read}).
37031
37032 @item augmented-libraries-svr4-read
37033 The remote stub understands the augmented form of the
37034 @samp{qXfer:libraries-svr4:read} packet
37035 (@pxref{qXfer svr4 library list read}).
37036
37037 @item qXfer:memory-map:read
37038 The remote stub understands the @samp{qXfer:memory-map:read} packet
37039 (@pxref{qXfer memory map read}).
37040
37041 @item qXfer:sdata:read
37042 The remote stub understands the @samp{qXfer:sdata:read} packet
37043 (@pxref{qXfer sdata read}).
37044
37045 @item qXfer:spu:read
37046 The remote stub understands the @samp{qXfer:spu:read} packet
37047 (@pxref{qXfer spu read}).
37048
37049 @item qXfer:spu:write
37050 The remote stub understands the @samp{qXfer:spu:write} packet
37051 (@pxref{qXfer spu write}).
37052
37053 @item qXfer:siginfo:read
37054 The remote stub understands the @samp{qXfer:siginfo:read} packet
37055 (@pxref{qXfer siginfo read}).
37056
37057 @item qXfer:siginfo:write
37058 The remote stub understands the @samp{qXfer:siginfo:write} packet
37059 (@pxref{qXfer siginfo write}).
37060
37061 @item qXfer:threads:read
37062 The remote stub understands the @samp{qXfer:threads:read} packet
37063 (@pxref{qXfer threads read}).
37064
37065 @item qXfer:traceframe-info:read
37066 The remote stub understands the @samp{qXfer:traceframe-info:read}
37067 packet (@pxref{qXfer traceframe info read}).
37068
37069 @item qXfer:uib:read
37070 The remote stub understands the @samp{qXfer:uib:read}
37071 packet (@pxref{qXfer unwind info block}).
37072
37073 @item qXfer:fdpic:read
37074 The remote stub understands the @samp{qXfer:fdpic:read}
37075 packet (@pxref{qXfer fdpic loadmap read}).
37076
37077 @item QNonStop
37078 The remote stub understands the @samp{QNonStop} packet
37079 (@pxref{QNonStop}).
37080
37081 @item QCatchSyscalls
37082 The remote stub understands the @samp{QCatchSyscalls} packet
37083 (@pxref{QCatchSyscalls}).
37084
37085 @item QPassSignals
37086 The remote stub understands the @samp{QPassSignals} packet
37087 (@pxref{QPassSignals}).
37088
37089 @item QStartNoAckMode
37090 The remote stub understands the @samp{QStartNoAckMode} packet and
37091 prefers to operate in no-acknowledgment mode. @xref{Packet Acknowledgment}.
37092
37093 @item multiprocess
37094 @anchor{multiprocess extensions}
37095 @cindex multiprocess extensions, in remote protocol
37096 The remote stub understands the multiprocess extensions to the remote
37097 protocol syntax. The multiprocess extensions affect the syntax of
37098 thread IDs in both packets and replies (@pxref{thread-id syntax}), and
37099 add process IDs to the @samp{D} packet and @samp{W} and @samp{X}
37100 replies. Note that reporting this feature indicates support for the
37101 syntactic extensions only, not that the stub necessarily supports
37102 debugging of more than one process at a time. The stub must not use
37103 multiprocess extensions in packet replies unless @value{GDBN} has also
37104 indicated it supports them in its @samp{qSupported} request.
37105
37106 @item qXfer:osdata:read
37107 The remote stub understands the @samp{qXfer:osdata:read} packet
37108 ((@pxref{qXfer osdata read}).
37109
37110 @item ConditionalBreakpoints
37111 The target accepts and implements evaluation of conditional expressions
37112 defined for breakpoints. The target will only report breakpoint triggers
37113 when such conditions are true (@pxref{Conditions, ,Break Conditions}).
37114
37115 @item ConditionalTracepoints
37116 The remote stub accepts and implements conditional expressions defined
37117 for tracepoints (@pxref{Tracepoint Conditions}).
37118
37119 @item ReverseContinue
37120 The remote stub accepts and implements the reverse continue packet
37121 (@pxref{bc}).
37122
37123 @item ReverseStep
37124 The remote stub accepts and implements the reverse step packet
37125 (@pxref{bs}).
37126
37127 @item TracepointSource
37128 The remote stub understands the @samp{QTDPsrc} packet that supplies
37129 the source form of tracepoint definitions.
37130
37131 @item QAgent
37132 The remote stub understands the @samp{QAgent} packet.
37133
37134 @item QAllow
37135 The remote stub understands the @samp{QAllow} packet.
37136
37137 @item QDisableRandomization
37138 The remote stub understands the @samp{QDisableRandomization} packet.
37139
37140 @item StaticTracepoint
37141 @cindex static tracepoints, in remote protocol
37142 The remote stub supports static tracepoints.
37143
37144 @item InstallInTrace
37145 @anchor{install tracepoint in tracing}
37146 The remote stub supports installing tracepoint in tracing.
37147
37148 @item EnableDisableTracepoints
37149 The remote stub supports the @samp{QTEnable} (@pxref{QTEnable}) and
37150 @samp{QTDisable} (@pxref{QTDisable}) packets that allow tracepoints
37151 to be enabled and disabled while a trace experiment is running.
37152
37153 @item QTBuffer:size
37154 The remote stub supports the @samp{QTBuffer:size} (@pxref{QTBuffer-size})
37155 packet that allows to change the size of the trace buffer.
37156
37157 @item tracenz
37158 @cindex string tracing, in remote protocol
37159 The remote stub supports the @samp{tracenz} bytecode for collecting strings.
37160 See @ref{Bytecode Descriptions} for details about the bytecode.
37161
37162 @item BreakpointCommands
37163 @cindex breakpoint commands, in remote protocol
37164 The remote stub supports running a breakpoint's command list itself,
37165 rather than reporting the hit to @value{GDBN}.
37166
37167 @item Qbtrace:off
37168 The remote stub understands the @samp{Qbtrace:off} packet.
37169
37170 @item Qbtrace:bts
37171 The remote stub understands the @samp{Qbtrace:bts} packet.
37172
37173 @item Qbtrace:pt
37174 The remote stub understands the @samp{Qbtrace:pt} packet.
37175
37176 @item Qbtrace-conf:bts:size
37177 The remote stub understands the @samp{Qbtrace-conf:bts:size} packet.
37178
37179 @item Qbtrace-conf:pt:size
37180 The remote stub understands the @samp{Qbtrace-conf:pt:size} packet.
37181
37182 @item swbreak
37183 The remote stub reports the @samp{swbreak} stop reason for memory
37184 breakpoints.
37185
37186 @item hwbreak
37187 The remote stub reports the @samp{hwbreak} stop reason for hardware
37188 breakpoints.
37189
37190 @item fork-events
37191 The remote stub reports the @samp{fork} stop reason for fork events.
37192
37193 @item vfork-events
37194 The remote stub reports the @samp{vfork} stop reason for vfork events
37195 and vforkdone events.
37196
37197 @item exec-events
37198 The remote stub reports the @samp{exec} stop reason for exec events.
37199
37200 @item vContSupported
37201 The remote stub reports the supported actions in the reply to
37202 @samp{vCont?} packet.
37203
37204 @item QThreadEvents
37205 The remote stub understands the @samp{QThreadEvents} packet.
37206
37207 @item no-resumed
37208 The remote stub reports the @samp{N} stop reply.
37209
37210 @end table
37211
37212 @item qSymbol::
37213 @cindex symbol lookup, remote request
37214 @cindex @samp{qSymbol} packet
37215 Notify the target that @value{GDBN} is prepared to serve symbol lookup
37216 requests. Accept requests from the target for the values of symbols.
37217
37218 Reply:
37219 @table @samp
37220 @item OK
37221 The target does not need to look up any (more) symbols.
37222 @item qSymbol:@var{sym_name}
37223 The target requests the value of symbol @var{sym_name} (hex encoded).
37224 @value{GDBN} may provide the value by using the
37225 @samp{qSymbol:@var{sym_value}:@var{sym_name}} message, described
37226 below.
37227 @end table
37228
37229 @item qSymbol:@var{sym_value}:@var{sym_name}
37230 Set the value of @var{sym_name} to @var{sym_value}.
37231
37232 @var{sym_name} (hex encoded) is the name of a symbol whose value the
37233 target has previously requested.
37234
37235 @var{sym_value} (hex) is the value for symbol @var{sym_name}. If
37236 @value{GDBN} cannot supply a value for @var{sym_name}, then this field
37237 will be empty.
37238
37239 Reply:
37240 @table @samp
37241 @item OK
37242 The target does not need to look up any (more) symbols.
37243 @item qSymbol:@var{sym_name}
37244 The target requests the value of a new symbol @var{sym_name} (hex
37245 encoded). @value{GDBN} will continue to supply the values of symbols
37246 (if available), until the target ceases to request them.
37247 @end table
37248
37249 @item qTBuffer
37250 @itemx QTBuffer
37251 @itemx QTDisconnected
37252 @itemx QTDP
37253 @itemx QTDPsrc
37254 @itemx QTDV
37255 @itemx qTfP
37256 @itemx qTfV
37257 @itemx QTFrame
37258 @itemx qTMinFTPILen
37259
37260 @xref{Tracepoint Packets}.
37261
37262 @item qThreadExtraInfo,@var{thread-id}
37263 @cindex thread attributes info, remote request
37264 @cindex @samp{qThreadExtraInfo} packet
37265 Obtain from the target OS a printable string description of thread
37266 attributes for the thread @var{thread-id}; see @ref{thread-id syntax},
37267 for the forms of @var{thread-id}. This
37268 string may contain anything that the target OS thinks is interesting
37269 for @value{GDBN} to tell the user about the thread. The string is
37270 displayed in @value{GDBN}'s @code{info threads} display. Some
37271 examples of possible thread extra info strings are @samp{Runnable}, or
37272 @samp{Blocked on Mutex}.
37273
37274 Reply:
37275 @table @samp
37276 @item @var{XX}@dots{}
37277 Where @samp{@var{XX}@dots{}} is a hex encoding of @sc{ascii} data,
37278 comprising the printable string containing the extra information about
37279 the thread's attributes.
37280 @end table
37281
37282 (Note that the @code{qThreadExtraInfo} packet's name is separated from
37283 the command by a @samp{,}, not a @samp{:}, contrary to the naming
37284 conventions above. Please don't use this packet as a model for new
37285 packets.)
37286
37287 @item QTNotes
37288 @itemx qTP
37289 @itemx QTSave
37290 @itemx qTsP
37291 @itemx qTsV
37292 @itemx QTStart
37293 @itemx QTStop
37294 @itemx QTEnable
37295 @itemx QTDisable
37296 @itemx QTinit
37297 @itemx QTro
37298 @itemx qTStatus
37299 @itemx qTV
37300 @itemx qTfSTM
37301 @itemx qTsSTM
37302 @itemx qTSTMat
37303 @xref{Tracepoint Packets}.
37304
37305 @item qXfer:@var{object}:read:@var{annex}:@var{offset},@var{length}
37306 @cindex read special object, remote request
37307 @cindex @samp{qXfer} packet
37308 @anchor{qXfer read}
37309 Read uninterpreted bytes from the target's special data area
37310 identified by the keyword @var{object}. Request @var{length} bytes
37311 starting at @var{offset} bytes into the data. The content and
37312 encoding of @var{annex} is specific to @var{object}; it can supply
37313 additional details about what data to access.
37314
37315 Here are the specific requests of this form defined so far. All
37316 @samp{qXfer:@var{object}:read:@dots{}} requests use the same reply
37317 formats, listed below.
37318
37319 @table @samp
37320 @item qXfer:auxv:read::@var{offset},@var{length}
37321 @anchor{qXfer auxiliary vector read}
37322 Access the target's @dfn{auxiliary vector}. @xref{OS Information,
37323 auxiliary vector}. Note @var{annex} must be empty.
37324
37325 This packet is not probed by default; the remote stub must request it,
37326 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37327
37328 @item qXfer:btrace:read:@var{annex}:@var{offset},@var{length}
37329 @anchor{qXfer btrace read}
37330
37331 Return a description of the current branch trace.
37332 @xref{Branch Trace Format}. The annex part of the generic @samp{qXfer}
37333 packet may have one of the following values:
37334
37335 @table @code
37336 @item all
37337 Returns all available branch trace.
37338
37339 @item new
37340 Returns all available branch trace if the branch trace changed since
37341 the last read request.
37342
37343 @item delta
37344 Returns the new branch trace since the last read request. Adds a new
37345 block to the end of the trace that begins at zero and ends at the source
37346 location of the first branch in the trace buffer. This extra block is
37347 used to stitch traces together.
37348
37349 If the trace buffer overflowed, returns an error indicating the overflow.
37350 @end table
37351
37352 This packet is not probed by default; the remote stub must request it
37353 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37354
37355 @item qXfer:btrace-conf:read::@var{offset},@var{length}
37356 @anchor{qXfer btrace-conf read}
37357
37358 Return a description of the current branch trace configuration.
37359 @xref{Branch Trace Configuration Format}.
37360
37361 This packet is not probed by default; the remote stub must request it
37362 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37363
37364 @item qXfer:exec-file:read:@var{annex}:@var{offset},@var{length}
37365 @anchor{qXfer executable filename read}
37366 Return the full absolute name of the file that was executed to create
37367 a process running on the remote system. The annex specifies the
37368 numeric process ID of the process to query, encoded as a hexadecimal
37369 number. If the annex part is empty the remote stub should return the
37370 filename corresponding to the currently executing process.
37371
37372 This packet is not probed by default; the remote stub must request it,
37373 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37374
37375 @item qXfer:features:read:@var{annex}:@var{offset},@var{length}
37376 @anchor{qXfer target description read}
37377 Access the @dfn{target description}. @xref{Target Descriptions}. The
37378 annex specifies which XML document to access. The main description is
37379 always loaded from the @samp{target.xml} annex.
37380
37381 This packet is not probed by default; the remote stub must request it,
37382 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37383
37384 @item qXfer:libraries:read:@var{annex}:@var{offset},@var{length}
37385 @anchor{qXfer library list read}
37386 Access the target's list of loaded libraries. @xref{Library List Format}.
37387 The annex part of the generic @samp{qXfer} packet must be empty
37388 (@pxref{qXfer read}).
37389
37390 Targets which maintain a list of libraries in the program's memory do
37391 not need to implement this packet; it is designed for platforms where
37392 the operating system manages the list of loaded libraries.
37393
37394 This packet is not probed by default; the remote stub must request it,
37395 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37396
37397 @item qXfer:libraries-svr4:read:@var{annex}:@var{offset},@var{length}
37398 @anchor{qXfer svr4 library list read}
37399 Access the target's list of loaded libraries when the target is an SVR4
37400 platform. @xref{Library List Format for SVR4 Targets}. The annex part
37401 of the generic @samp{qXfer} packet must be empty unless the remote
37402 stub indicated it supports the augmented form of this packet
37403 by supplying an appropriate @samp{qSupported} response
37404 (@pxref{qXfer read}, @ref{qSupported}).
37405
37406 This packet is optional for better performance on SVR4 targets.
37407 @value{GDBN} uses memory read packets to read the SVR4 library list otherwise.
37408
37409 This packet is not probed by default; the remote stub must request it,
37410 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37411
37412 If the remote stub indicates it supports the augmented form of this
37413 packet then the annex part of the generic @samp{qXfer} packet may
37414 contain a semicolon-separated list of @samp{@var{name}=@var{value}}
37415 arguments. The currently supported arguments are:
37416
37417 @table @code
37418 @item start=@var{address}
37419 A hexadecimal number specifying the address of the @samp{struct
37420 link_map} to start reading the library list from. If unset or zero
37421 then the first @samp{struct link_map} in the library list will be
37422 chosen as the starting point.
37423
37424 @item prev=@var{address}
37425 A hexadecimal number specifying the address of the @samp{struct
37426 link_map} immediately preceding the @samp{struct link_map}
37427 specified by the @samp{start} argument. If unset or zero then
37428 the remote stub will expect that no @samp{struct link_map}
37429 exists prior to the starting point.
37430
37431 @end table
37432
37433 Arguments that are not understood by the remote stub will be silently
37434 ignored.
37435
37436 @item qXfer:memory-map:read::@var{offset},@var{length}
37437 @anchor{qXfer memory map read}
37438 Access the target's @dfn{memory-map}. @xref{Memory Map Format}. The
37439 annex part of the generic @samp{qXfer} packet must be empty
37440 (@pxref{qXfer read}).
37441
37442 This packet is not probed by default; the remote stub must request it,
37443 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37444
37445 @item qXfer:sdata:read::@var{offset},@var{length}
37446 @anchor{qXfer sdata read}
37447
37448 Read contents of the extra collected static tracepoint marker
37449 information. The annex part of the generic @samp{qXfer} packet must
37450 be empty (@pxref{qXfer read}). @xref{Tracepoint Actions,,Tracepoint
37451 Action Lists}.
37452
37453 This packet is not probed by default; the remote stub must request it,
37454 by supplying an appropriate @samp{qSupported} response
37455 (@pxref{qSupported}).
37456
37457 @item qXfer:siginfo:read::@var{offset},@var{length}
37458 @anchor{qXfer siginfo read}
37459 Read contents of the extra signal information on the target
37460 system. The annex part of the generic @samp{qXfer} packet must be
37461 empty (@pxref{qXfer read}).
37462
37463 This packet is not probed by default; the remote stub must request it,
37464 by supplying an appropriate @samp{qSupported} response
37465 (@pxref{qSupported}).
37466
37467 @item qXfer:spu:read:@var{annex}:@var{offset},@var{length}
37468 @anchor{qXfer spu read}
37469 Read contents of an @code{spufs} file on the target system. The
37470 annex specifies which file to read; it must be of the form
37471 @file{@var{id}/@var{name}}, where @var{id} specifies an SPU context ID
37472 in the target process, and @var{name} identifes the @code{spufs} file
37473 in that context to be accessed.
37474
37475 This packet is not probed by default; the remote stub must request it,
37476 by supplying an appropriate @samp{qSupported} response
37477 (@pxref{qSupported}).
37478
37479 @item qXfer:threads:read::@var{offset},@var{length}
37480 @anchor{qXfer threads read}
37481 Access the list of threads on target. @xref{Thread List Format}. The
37482 annex part of the generic @samp{qXfer} packet must be empty
37483 (@pxref{qXfer read}).
37484
37485 This packet is not probed by default; the remote stub must request it,
37486 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37487
37488 @item qXfer:traceframe-info:read::@var{offset},@var{length}
37489 @anchor{qXfer traceframe info read}
37490
37491 Return a description of the current traceframe's contents.
37492 @xref{Traceframe Info Format}. The annex part of the generic
37493 @samp{qXfer} packet must be empty (@pxref{qXfer read}).
37494
37495 This packet is not probed by default; the remote stub must request it,
37496 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37497
37498 @item qXfer:uib:read:@var{pc}:@var{offset},@var{length}
37499 @anchor{qXfer unwind info block}
37500
37501 Return the unwind information block for @var{pc}. This packet is used
37502 on OpenVMS/ia64 to ask the kernel unwind information.
37503
37504 This packet is not probed by default.
37505
37506 @item qXfer:fdpic:read:@var{annex}:@var{offset},@var{length}
37507 @anchor{qXfer fdpic loadmap read}
37508 Read contents of @code{loadmap}s on the target system. The
37509 annex, either @samp{exec} or @samp{interp}, specifies which @code{loadmap},
37510 executable @code{loadmap} or interpreter @code{loadmap} to read.
37511
37512 This packet is not probed by default; the remote stub must request it,
37513 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37514
37515 @item qXfer:osdata:read::@var{offset},@var{length}
37516 @anchor{qXfer osdata read}
37517 Access the target's @dfn{operating system information}.
37518 @xref{Operating System Information}.
37519
37520 @end table
37521
37522 Reply:
37523 @table @samp
37524 @item m @var{data}
37525 Data @var{data} (@pxref{Binary Data}) has been read from the
37526 target. There may be more data at a higher address (although
37527 it is permitted to return @samp{m} even for the last valid
37528 block of data, as long as at least one byte of data was read).
37529 It is possible for @var{data} to have fewer bytes than the @var{length} in the
37530 request.
37531
37532 @item l @var{data}
37533 Data @var{data} (@pxref{Binary Data}) has been read from the target.
37534 There is no more data to be read. It is possible for @var{data} to
37535 have fewer bytes than the @var{length} in the request.
37536
37537 @item l
37538 The @var{offset} in the request is at the end of the data.
37539 There is no more data to be read.
37540
37541 @item E00
37542 The request was malformed, or @var{annex} was invalid.
37543
37544 @item E @var{nn}
37545 The offset was invalid, or there was an error encountered reading the data.
37546 The @var{nn} part is a hex-encoded @code{errno} value.
37547
37548 @item @w{}
37549 An empty reply indicates the @var{object} string was not recognized by
37550 the stub, or that the object does not support reading.
37551 @end table
37552
37553 @item qXfer:@var{object}:write:@var{annex}:@var{offset}:@var{data}@dots{}
37554 @cindex write data into object, remote request
37555 @anchor{qXfer write}
37556 Write uninterpreted bytes into the target's special data area
37557 identified by the keyword @var{object}, starting at @var{offset} bytes
37558 into the data. The binary-encoded data (@pxref{Binary Data}) to be
37559 written is given by @var{data}@dots{}. The content and encoding of @var{annex}
37560 is specific to @var{object}; it can supply additional details about what data
37561 to access.
37562
37563 Here are the specific requests of this form defined so far. All
37564 @samp{qXfer:@var{object}:write:@dots{}} requests use the same reply
37565 formats, listed below.
37566
37567 @table @samp
37568 @item qXfer:siginfo:write::@var{offset}:@var{data}@dots{}
37569 @anchor{qXfer siginfo write}
37570 Write @var{data} to the extra signal information on the target system.
37571 The annex part of the generic @samp{qXfer} packet must be
37572 empty (@pxref{qXfer write}).
37573
37574 This packet is not probed by default; the remote stub must request it,
37575 by supplying an appropriate @samp{qSupported} response
37576 (@pxref{qSupported}).
37577
37578 @item qXfer:spu:write:@var{annex}:@var{offset}:@var{data}@dots{}
37579 @anchor{qXfer spu write}
37580 Write @var{data} to an @code{spufs} file on the target system. The
37581 annex specifies which file to write; it must be of the form
37582 @file{@var{id}/@var{name}}, where @var{id} specifies an SPU context ID
37583 in the target process, and @var{name} identifes the @code{spufs} file
37584 in that context to be accessed.
37585
37586 This packet is not probed by default; the remote stub must request it,
37587 by supplying an appropriate @samp{qSupported} response (@pxref{qSupported}).
37588 @end table
37589
37590 Reply:
37591 @table @samp
37592 @item @var{nn}
37593 @var{nn} (hex encoded) is the number of bytes written.
37594 This may be fewer bytes than supplied in the request.
37595
37596 @item E00
37597 The request was malformed, or @var{annex} was invalid.
37598
37599 @item E @var{nn}
37600 The offset was invalid, or there was an error encountered writing the data.
37601 The @var{nn} part is a hex-encoded @code{errno} value.
37602
37603 @item @w{}
37604 An empty reply indicates the @var{object} string was not
37605 recognized by the stub, or that the object does not support writing.
37606 @end table
37607
37608 @item qXfer:@var{object}:@var{operation}:@dots{}
37609 Requests of this form may be added in the future. When a stub does
37610 not recognize the @var{object} keyword, or its support for
37611 @var{object} does not recognize the @var{operation} keyword, the stub
37612 must respond with an empty packet.
37613
37614 @item qAttached:@var{pid}
37615 @cindex query attached, remote request
37616 @cindex @samp{qAttached} packet
37617 Return an indication of whether the remote server attached to an
37618 existing process or created a new process. When the multiprocess
37619 protocol extensions are supported (@pxref{multiprocess extensions}),
37620 @var{pid} is an integer in hexadecimal format identifying the target
37621 process. Otherwise, @value{GDBN} will omit the @var{pid} field and
37622 the query packet will be simplified as @samp{qAttached}.
37623
37624 This query is used, for example, to know whether the remote process
37625 should be detached or killed when a @value{GDBN} session is ended with
37626 the @code{quit} command.
37627
37628 Reply:
37629 @table @samp
37630 @item 1
37631 The remote server attached to an existing process.
37632 @item 0
37633 The remote server created a new process.
37634 @item E @var{NN}
37635 A badly formed request or an error was encountered.
37636 @end table
37637
37638 @item Qbtrace:bts
37639 Enable branch tracing for the current thread using Branch Trace Store.
37640
37641 Reply:
37642 @table @samp
37643 @item OK
37644 Branch tracing has been enabled.
37645 @item E.errtext
37646 A badly formed request or an error was encountered.
37647 @end table
37648
37649 @item Qbtrace:pt
37650 Enable branch tracing for the current thread using Intel Processor Trace.
37651
37652 Reply:
37653 @table @samp
37654 @item OK
37655 Branch tracing has been enabled.
37656 @item E.errtext
37657 A badly formed request or an error was encountered.
37658 @end table
37659
37660 @item Qbtrace:off
37661 Disable branch tracing for the current thread.
37662
37663 Reply:
37664 @table @samp
37665 @item OK
37666 Branch tracing has been disabled.
37667 @item E.errtext
37668 A badly formed request or an error was encountered.
37669 @end table
37670
37671 @item Qbtrace-conf:bts:size=@var{value}
37672 Set the requested ring buffer size for new threads that use the
37673 btrace recording method in bts format.
37674
37675 Reply:
37676 @table @samp
37677 @item OK
37678 The ring buffer size has been set.
37679 @item E.errtext
37680 A badly formed request or an error was encountered.
37681 @end table
37682
37683 @item Qbtrace-conf:pt:size=@var{value}
37684 Set the requested ring buffer size for new threads that use the
37685 btrace recording method in pt format.
37686
37687 Reply:
37688 @table @samp
37689 @item OK
37690 The ring buffer size has been set.
37691 @item E.errtext
37692 A badly formed request or an error was encountered.
37693 @end table
37694
37695 @end table
37696
37697 @node Architecture-Specific Protocol Details
37698 @section Architecture-Specific Protocol Details
37699
37700 This section describes how the remote protocol is applied to specific
37701 target architectures. Also see @ref{Standard Target Features}, for
37702 details of XML target descriptions for each architecture.
37703
37704 @menu
37705 * ARM-Specific Protocol Details::
37706 * MIPS-Specific Protocol Details::
37707 @end menu
37708
37709 @node ARM-Specific Protocol Details
37710 @subsection @acronym{ARM}-specific Protocol Details
37711
37712 @menu
37713 * ARM Breakpoint Kinds::
37714 @end menu
37715
37716 @node ARM Breakpoint Kinds
37717 @subsubsection @acronym{ARM} Breakpoint Kinds
37718 @cindex breakpoint kinds, @acronym{ARM}
37719
37720 These breakpoint kinds are defined for the @samp{Z0} and @samp{Z1} packets.
37721
37722 @table @r
37723
37724 @item 2
37725 16-bit Thumb mode breakpoint.
37726
37727 @item 3
37728 32-bit Thumb mode (Thumb-2) breakpoint.
37729
37730 @item 4
37731 32-bit @acronym{ARM} mode breakpoint.
37732
37733 @end table
37734
37735 @node MIPS-Specific Protocol Details
37736 @subsection @acronym{MIPS}-specific Protocol Details
37737
37738 @menu
37739 * MIPS Register packet Format::
37740 * MIPS Breakpoint Kinds::
37741 @end menu
37742
37743 @node MIPS Register packet Format
37744 @subsubsection @acronym{MIPS} Register Packet Format
37745 @cindex register packet format, @acronym{MIPS}
37746
37747 The following @code{g}/@code{G} packets have previously been defined.
37748 In the below, some thirty-two bit registers are transferred as
37749 sixty-four bits. Those registers should be zero/sign extended (which?)
37750 to fill the space allocated. Register bytes are transferred in target
37751 byte order. The two nibbles within a register byte are transferred
37752 most-significant -- least-significant.
37753
37754 @table @r
37755
37756 @item MIPS32
37757 All registers are transferred as thirty-two bit quantities in the order:
37758 32 general-purpose; sr; lo; hi; bad; cause; pc; 32 floating-point
37759 registers; fsr; fir; fp.
37760
37761 @item MIPS64
37762 All registers are transferred as sixty-four bit quantities (including
37763 thirty-two bit registers such as @code{sr}). The ordering is the same
37764 as @code{MIPS32}.
37765
37766 @end table
37767
37768 @node MIPS Breakpoint Kinds
37769 @subsubsection @acronym{MIPS} Breakpoint Kinds
37770 @cindex breakpoint kinds, @acronym{MIPS}
37771
37772 These breakpoint kinds are defined for the @samp{Z0} and @samp{Z1} packets.
37773
37774 @table @r
37775
37776 @item 2
37777 16-bit @acronym{MIPS16} mode breakpoint.
37778
37779 @item 3
37780 16-bit @acronym{microMIPS} mode breakpoint.
37781
37782 @item 4
37783 32-bit standard @acronym{MIPS} mode breakpoint.
37784
37785 @item 5
37786 32-bit @acronym{microMIPS} mode breakpoint.
37787
37788 @end table
37789
37790 @node Tracepoint Packets
37791 @section Tracepoint Packets
37792 @cindex tracepoint packets
37793 @cindex packets, tracepoint
37794
37795 Here we describe the packets @value{GDBN} uses to implement
37796 tracepoints (@pxref{Tracepoints}).
37797
37798 @table @samp
37799
37800 @item QTDP:@var{n}:@var{addr}:@var{ena}:@var{step}:@var{pass}[:F@var{flen}][:X@var{len},@var{bytes}]@r{[}-@r{]}
37801 @cindex @samp{QTDP} packet
37802 Create a new tracepoint, number @var{n}, at @var{addr}. If @var{ena}
37803 is @samp{E}, then the tracepoint is enabled; if it is @samp{D}, then
37804 the tracepoint is disabled. The @var{step} gives the tracepoint's step
37805 count, and @var{pass} gives its pass count. If an @samp{F} is present,
37806 then the tracepoint is to be a fast tracepoint, and the @var{flen} is
37807 the number of bytes that the target should copy elsewhere to make room
37808 for the tracepoint. If an @samp{X} is present, it introduces a
37809 tracepoint condition, which consists of a hexadecimal length, followed
37810 by a comma and hex-encoded bytes, in a manner similar to action
37811 encodings as described below. If the trailing @samp{-} is present,
37812 further @samp{QTDP} packets will follow to specify this tracepoint's
37813 actions.
37814
37815 Replies:
37816 @table @samp
37817 @item OK
37818 The packet was understood and carried out.
37819 @item qRelocInsn
37820 @xref{Tracepoint Packets,,Relocate instruction reply packet}.
37821 @item @w{}
37822 The packet was not recognized.
37823 @end table
37824
37825 @item QTDP:-@var{n}:@var{addr}:@r{[}S@r{]}@var{action}@dots{}@r{[}-@r{]}
37826 Define actions to be taken when a tracepoint is hit. The @var{n} and
37827 @var{addr} must be the same as in the initial @samp{QTDP} packet for
37828 this tracepoint. This packet may only be sent immediately after
37829 another @samp{QTDP} packet that ended with a @samp{-}. If the
37830 trailing @samp{-} is present, further @samp{QTDP} packets will follow,
37831 specifying more actions for this tracepoint.
37832
37833 In the series of action packets for a given tracepoint, at most one
37834 can have an @samp{S} before its first @var{action}. If such a packet
37835 is sent, it and the following packets define ``while-stepping''
37836 actions. Any prior packets define ordinary actions --- that is, those
37837 taken when the tracepoint is first hit. If no action packet has an
37838 @samp{S}, then all the packets in the series specify ordinary
37839 tracepoint actions.
37840
37841 The @samp{@var{action}@dots{}} portion of the packet is a series of
37842 actions, concatenated without separators. Each action has one of the
37843 following forms:
37844
37845 @table @samp
37846
37847 @item R @var{mask}
37848 Collect the registers whose bits are set in @var{mask},
37849 a hexadecimal number whose @var{i}'th bit is set if register number
37850 @var{i} should be collected. (The least significant bit is numbered
37851 zero.) Note that @var{mask} may be any number of digits long; it may
37852 not fit in a 32-bit word.
37853
37854 @item M @var{basereg},@var{offset},@var{len}
37855 Collect @var{len} bytes of memory starting at the address in register
37856 number @var{basereg}, plus @var{offset}. If @var{basereg} is
37857 @samp{-1}, then the range has a fixed address: @var{offset} is the
37858 address of the lowest byte to collect. The @var{basereg},
37859 @var{offset}, and @var{len} parameters are all unsigned hexadecimal
37860 values (the @samp{-1} value for @var{basereg} is a special case).
37861
37862 @item X @var{len},@var{expr}
37863 Evaluate @var{expr}, whose length is @var{len}, and collect memory as
37864 it directs. The agent expression @var{expr} is as described in
37865 @ref{Agent Expressions}. Each byte of the expression is encoded as a
37866 two-digit hex number in the packet; @var{len} is the number of bytes
37867 in the expression (and thus one-half the number of hex digits in the
37868 packet).
37869
37870 @end table
37871
37872 Any number of actions may be packed together in a single @samp{QTDP}
37873 packet, as long as the packet does not exceed the maximum packet
37874 length (400 bytes, for many stubs). There may be only one @samp{R}
37875 action per tracepoint, and it must precede any @samp{M} or @samp{X}
37876 actions. Any registers referred to by @samp{M} and @samp{X} actions
37877 must be collected by a preceding @samp{R} action. (The
37878 ``while-stepping'' actions are treated as if they were attached to a
37879 separate tracepoint, as far as these restrictions are concerned.)
37880
37881 Replies:
37882 @table @samp
37883 @item OK
37884 The packet was understood and carried out.
37885 @item qRelocInsn
37886 @xref{Tracepoint Packets,,Relocate instruction reply packet}.
37887 @item @w{}
37888 The packet was not recognized.
37889 @end table
37890
37891 @item QTDPsrc:@var{n}:@var{addr}:@var{type}:@var{start}:@var{slen}:@var{bytes}
37892 @cindex @samp{QTDPsrc} packet
37893 Specify a source string of tracepoint @var{n} at address @var{addr}.
37894 This is useful to get accurate reproduction of the tracepoints
37895 originally downloaded at the beginning of the trace run. The @var{type}
37896 is the name of the tracepoint part, such as @samp{cond} for the
37897 tracepoint's conditional expression (see below for a list of types), while
37898 @var{bytes} is the string, encoded in hexadecimal.
37899
37900 @var{start} is the offset of the @var{bytes} within the overall source
37901 string, while @var{slen} is the total length of the source string.
37902 This is intended for handling source strings that are longer than will
37903 fit in a single packet.
37904 @c Add detailed example when this info is moved into a dedicated
37905 @c tracepoint descriptions section.
37906
37907 The available string types are @samp{at} for the location,
37908 @samp{cond} for the conditional, and @samp{cmd} for an action command.
37909 @value{GDBN} sends a separate packet for each command in the action
37910 list, in the same order in which the commands are stored in the list.
37911
37912 The target does not need to do anything with source strings except
37913 report them back as part of the replies to the @samp{qTfP}/@samp{qTsP}
37914 query packets.
37915
37916 Although this packet is optional, and @value{GDBN} will only send it
37917 if the target replies with @samp{TracepointSource} @xref{General
37918 Query Packets}, it makes both disconnected tracing and trace files
37919 much easier to use. Otherwise the user must be careful that the
37920 tracepoints in effect while looking at trace frames are identical to
37921 the ones in effect during the trace run; even a small discrepancy
37922 could cause @samp{tdump} not to work, or a particular trace frame not
37923 be found.
37924
37925 @item QTDV:@var{n}:@var{value}:@var{builtin}:@var{name}
37926 @cindex define trace state variable, remote request
37927 @cindex @samp{QTDV} packet
37928 Create a new trace state variable, number @var{n}, with an initial
37929 value of @var{value}, which is a 64-bit signed integer. Both @var{n}
37930 and @var{value} are encoded as hexadecimal values. @value{GDBN} has
37931 the option of not using this packet for initial values of zero; the
37932 target should simply create the trace state variables as they are
37933 mentioned in expressions. The value @var{builtin} should be 1 (one)
37934 if the trace state variable is builtin and 0 (zero) if it is not builtin.
37935 @value{GDBN} only sets @var{builtin} to 1 if a previous @samp{qTfV} or
37936 @samp{qTsV} packet had it set. The contents of @var{name} is the
37937 hex-encoded name (without the leading @samp{$}) of the trace state
37938 variable.
37939
37940 @item QTFrame:@var{n}
37941 @cindex @samp{QTFrame} packet
37942 Select the @var{n}'th tracepoint frame from the buffer, and use the
37943 register and memory contents recorded there to answer subsequent
37944 request packets from @value{GDBN}.
37945
37946 A successful reply from the stub indicates that the stub has found the
37947 requested frame. The response is a series of parts, concatenated
37948 without separators, describing the frame we selected. Each part has
37949 one of the following forms:
37950
37951 @table @samp
37952 @item F @var{f}
37953 The selected frame is number @var{n} in the trace frame buffer;
37954 @var{f} is a hexadecimal number. If @var{f} is @samp{-1}, then there
37955 was no frame matching the criteria in the request packet.
37956
37957 @item T @var{t}
37958 The selected trace frame records a hit of tracepoint number @var{t};
37959 @var{t} is a hexadecimal number.
37960
37961 @end table
37962
37963 @item QTFrame:pc:@var{addr}
37964 Like @samp{QTFrame:@var{n}}, but select the first tracepoint frame after the
37965 currently selected frame whose PC is @var{addr};
37966 @var{addr} is a hexadecimal number.
37967
37968 @item QTFrame:tdp:@var{t}
37969 Like @samp{QTFrame:@var{n}}, but select the first tracepoint frame after the
37970 currently selected frame that is a hit of tracepoint @var{t}; @var{t}
37971 is a hexadecimal number.
37972
37973 @item QTFrame:range:@var{start}:@var{end}
37974 Like @samp{QTFrame:@var{n}}, but select the first tracepoint frame after the
37975 currently selected frame whose PC is between @var{start} (inclusive)
37976 and @var{end} (inclusive); @var{start} and @var{end} are hexadecimal
37977 numbers.
37978
37979 @item QTFrame:outside:@var{start}:@var{end}
37980 Like @samp{QTFrame:range:@var{start}:@var{end}}, but select the first
37981 frame @emph{outside} the given range of addresses (exclusive).
37982
37983 @item qTMinFTPILen
37984 @cindex @samp{qTMinFTPILen} packet
37985 This packet requests the minimum length of instruction at which a fast
37986 tracepoint (@pxref{Set Tracepoints}) may be placed. For instance, on
37987 the 32-bit x86 architecture, it is possible to use a 4-byte jump, but
37988 it depends on the target system being able to create trampolines in
37989 the first 64K of memory, which might or might not be possible for that
37990 system. So the reply to this packet will be 4 if it is able to
37991 arrange for that.
37992
37993 Replies:
37994
37995 @table @samp
37996 @item 0
37997 The minimum instruction length is currently unknown.
37998 @item @var{length}
37999 The minimum instruction length is @var{length}, where @var{length}
38000 is a hexadecimal number greater or equal to 1. A reply
38001 of 1 means that a fast tracepoint may be placed on any instruction
38002 regardless of size.
38003 @item E
38004 An error has occurred.
38005 @item @w{}
38006 An empty reply indicates that the request is not supported by the stub.
38007 @end table
38008
38009 @item QTStart
38010 @cindex @samp{QTStart} packet
38011 Begin the tracepoint experiment. Begin collecting data from
38012 tracepoint hits in the trace frame buffer. This packet supports the
38013 @samp{qRelocInsn} reply (@pxref{Tracepoint Packets,,Relocate
38014 instruction reply packet}).
38015
38016 @item QTStop
38017 @cindex @samp{QTStop} packet
38018 End the tracepoint experiment. Stop collecting trace frames.
38019
38020 @item QTEnable:@var{n}:@var{addr}
38021 @anchor{QTEnable}
38022 @cindex @samp{QTEnable} packet
38023 Enable tracepoint @var{n} at address @var{addr} in a started tracepoint
38024 experiment. If the tracepoint was previously disabled, then collection
38025 of data from it will resume.
38026
38027 @item QTDisable:@var{n}:@var{addr}
38028 @anchor{QTDisable}
38029 @cindex @samp{QTDisable} packet
38030 Disable tracepoint @var{n} at address @var{addr} in a started tracepoint
38031 experiment. No more data will be collected from the tracepoint unless
38032 @samp{QTEnable:@var{n}:@var{addr}} is subsequently issued.
38033
38034 @item QTinit
38035 @cindex @samp{QTinit} packet
38036 Clear the table of tracepoints, and empty the trace frame buffer.
38037
38038 @item QTro:@var{start1},@var{end1}:@var{start2},@var{end2}:@dots{}
38039 @cindex @samp{QTro} packet
38040 Establish the given ranges of memory as ``transparent''. The stub
38041 will answer requests for these ranges from memory's current contents,
38042 if they were not collected as part of the tracepoint hit.
38043
38044 @value{GDBN} uses this to mark read-only regions of memory, like those
38045 containing program code. Since these areas never change, they should
38046 still have the same contents they did when the tracepoint was hit, so
38047 there's no reason for the stub to refuse to provide their contents.
38048
38049 @item QTDisconnected:@var{value}
38050 @cindex @samp{QTDisconnected} packet
38051 Set the choice to what to do with the tracing run when @value{GDBN}
38052 disconnects from the target. A @var{value} of 1 directs the target to
38053 continue the tracing run, while 0 tells the target to stop tracing if
38054 @value{GDBN} is no longer in the picture.
38055
38056 @item qTStatus
38057 @cindex @samp{qTStatus} packet
38058 Ask the stub if there is a trace experiment running right now.
38059
38060 The reply has the form:
38061
38062 @table @samp
38063
38064 @item T@var{running}@r{[};@var{field}@r{]}@dots{}
38065 @var{running} is a single digit @code{1} if the trace is presently
38066 running, or @code{0} if not. It is followed by semicolon-separated
38067 optional fields that an agent may use to report additional status.
38068
38069 @end table
38070
38071 If the trace is not running, the agent may report any of several
38072 explanations as one of the optional fields:
38073
38074 @table @samp
38075
38076 @item tnotrun:0
38077 No trace has been run yet.
38078
38079 @item tstop[:@var{text}]:0
38080 The trace was stopped by a user-originated stop command. The optional
38081 @var{text} field is a user-supplied string supplied as part of the
38082 stop command (for instance, an explanation of why the trace was
38083 stopped manually). It is hex-encoded.
38084
38085 @item tfull:0
38086 The trace stopped because the trace buffer filled up.
38087
38088 @item tdisconnected:0
38089 The trace stopped because @value{GDBN} disconnected from the target.
38090
38091 @item tpasscount:@var{tpnum}
38092 The trace stopped because tracepoint @var{tpnum} exceeded its pass count.
38093
38094 @item terror:@var{text}:@var{tpnum}
38095 The trace stopped because tracepoint @var{tpnum} had an error. The
38096 string @var{text} is available to describe the nature of the error
38097 (for instance, a divide by zero in the condition expression); it
38098 is hex encoded.
38099
38100 @item tunknown:0
38101 The trace stopped for some other reason.
38102
38103 @end table
38104
38105 Additional optional fields supply statistical and other information.
38106 Although not required, they are extremely useful for users monitoring
38107 the progress of a trace run. If a trace has stopped, and these
38108 numbers are reported, they must reflect the state of the just-stopped
38109 trace.
38110
38111 @table @samp
38112
38113 @item tframes:@var{n}
38114 The number of trace frames in the buffer.
38115
38116 @item tcreated:@var{n}
38117 The total number of trace frames created during the run. This may
38118 be larger than the trace frame count, if the buffer is circular.
38119
38120 @item tsize:@var{n}
38121 The total size of the trace buffer, in bytes.
38122
38123 @item tfree:@var{n}
38124 The number of bytes still unused in the buffer.
38125
38126 @item circular:@var{n}
38127 The value of the circular trace buffer flag. @code{1} means that the
38128 trace buffer is circular and old trace frames will be discarded if
38129 necessary to make room, @code{0} means that the trace buffer is linear
38130 and may fill up.
38131
38132 @item disconn:@var{n}
38133 The value of the disconnected tracing flag. @code{1} means that
38134 tracing will continue after @value{GDBN} disconnects, @code{0} means
38135 that the trace run will stop.
38136
38137 @end table
38138
38139 @item qTP:@var{tp}:@var{addr}
38140 @cindex tracepoint status, remote request
38141 @cindex @samp{qTP} packet
38142 Ask the stub for the current state of tracepoint number @var{tp} at
38143 address @var{addr}.
38144
38145 Replies:
38146 @table @samp
38147 @item V@var{hits}:@var{usage}
38148 The tracepoint has been hit @var{hits} times so far during the trace
38149 run, and accounts for @var{usage} in the trace buffer. Note that
38150 @code{while-stepping} steps are not counted as separate hits, but the
38151 steps' space consumption is added into the usage number.
38152
38153 @end table
38154
38155 @item qTV:@var{var}
38156 @cindex trace state variable value, remote request
38157 @cindex @samp{qTV} packet
38158 Ask the stub for the value of the trace state variable number @var{var}.
38159
38160 Replies:
38161 @table @samp
38162 @item V@var{value}
38163 The value of the variable is @var{value}. This will be the current
38164 value of the variable if the user is examining a running target, or a
38165 saved value if the variable was collected in the trace frame that the
38166 user is looking at. Note that multiple requests may result in
38167 different reply values, such as when requesting values while the
38168 program is running.
38169
38170 @item U
38171 The value of the variable is unknown. This would occur, for example,
38172 if the user is examining a trace frame in which the requested variable
38173 was not collected.
38174 @end table
38175
38176 @item qTfP
38177 @cindex @samp{qTfP} packet
38178 @itemx qTsP
38179 @cindex @samp{qTsP} packet
38180 These packets request data about tracepoints that are being used by
38181 the target. @value{GDBN} sends @code{qTfP} to get the first piece
38182 of data, and multiple @code{qTsP} to get additional pieces. Replies
38183 to these packets generally take the form of the @code{QTDP} packets
38184 that define tracepoints. (FIXME add detailed syntax)
38185
38186 @item qTfV
38187 @cindex @samp{qTfV} packet
38188 @itemx qTsV
38189 @cindex @samp{qTsV} packet
38190 These packets request data about trace state variables that are on the
38191 target. @value{GDBN} sends @code{qTfV} to get the first vari of data,
38192 and multiple @code{qTsV} to get additional variables. Replies to
38193 these packets follow the syntax of the @code{QTDV} packets that define
38194 trace state variables.
38195
38196 @item qTfSTM
38197 @itemx qTsSTM
38198 @anchor{qTfSTM}
38199 @anchor{qTsSTM}
38200 @cindex @samp{qTfSTM} packet
38201 @cindex @samp{qTsSTM} packet
38202 These packets request data about static tracepoint markers that exist
38203 in the target program. @value{GDBN} sends @code{qTfSTM} to get the
38204 first piece of data, and multiple @code{qTsSTM} to get additional
38205 pieces. Replies to these packets take the following form:
38206
38207 Reply:
38208 @table @samp
38209 @item m @var{address}:@var{id}:@var{extra}
38210 A single marker
38211 @item m @var{address}:@var{id}:@var{extra},@var{address}:@var{id}:@var{extra}@dots{}
38212 a comma-separated list of markers
38213 @item l
38214 (lower case letter @samp{L}) denotes end of list.
38215 @item E @var{nn}
38216 An error occurred. The error number @var{nn} is given as hex digits.
38217 @item @w{}
38218 An empty reply indicates that the request is not supported by the
38219 stub.
38220 @end table
38221
38222 The @var{address} is encoded in hex;
38223 @var{id} and @var{extra} are strings encoded in hex.
38224
38225 In response to each query, the target will reply with a list of one or
38226 more markers, separated by commas. @value{GDBN} will respond to each
38227 reply with a request for more markers (using the @samp{qs} form of the
38228 query), until the target responds with @samp{l} (lower-case ell, for
38229 @dfn{last}).
38230
38231 @item qTSTMat:@var{address}
38232 @anchor{qTSTMat}
38233 @cindex @samp{qTSTMat} packet
38234 This packets requests data about static tracepoint markers in the
38235 target program at @var{address}. Replies to this packet follow the
38236 syntax of the @samp{qTfSTM} and @code{qTsSTM} packets that list static
38237 tracepoint markers.
38238
38239 @item QTSave:@var{filename}
38240 @cindex @samp{QTSave} packet
38241 This packet directs the target to save trace data to the file name
38242 @var{filename} in the target's filesystem. The @var{filename} is encoded
38243 as a hex string; the interpretation of the file name (relative vs
38244 absolute, wild cards, etc) is up to the target.
38245
38246 @item qTBuffer:@var{offset},@var{len}
38247 @cindex @samp{qTBuffer} packet
38248 Return up to @var{len} bytes of the current contents of trace buffer,
38249 starting at @var{offset}. The trace buffer is treated as if it were
38250 a contiguous collection of traceframes, as per the trace file format.
38251 The reply consists as many hex-encoded bytes as the target can deliver
38252 in a packet; it is not an error to return fewer than were asked for.
38253 A reply consisting of just @code{l} indicates that no bytes are
38254 available.
38255
38256 @item QTBuffer:circular:@var{value}
38257 This packet directs the target to use a circular trace buffer if
38258 @var{value} is 1, or a linear buffer if the value is 0.
38259
38260 @item QTBuffer:size:@var{size}
38261 @anchor{QTBuffer-size}
38262 @cindex @samp{QTBuffer size} packet
38263 This packet directs the target to make the trace buffer be of size
38264 @var{size} if possible. A value of @code{-1} tells the target to
38265 use whatever size it prefers.
38266
38267 @item QTNotes:@r{[}@var{type}:@var{text}@r{]}@r{[};@var{type}:@var{text}@r{]}@dots{}
38268 @cindex @samp{QTNotes} packet
38269 This packet adds optional textual notes to the trace run. Allowable
38270 types include @code{user}, @code{notes}, and @code{tstop}, the
38271 @var{text} fields are arbitrary strings, hex-encoded.
38272
38273 @end table
38274
38275 @subsection Relocate instruction reply packet
38276 When installing fast tracepoints in memory, the target may need to
38277 relocate the instruction currently at the tracepoint address to a
38278 different address in memory. For most instructions, a simple copy is
38279 enough, but, for example, call instructions that implicitly push the
38280 return address on the stack, and relative branches or other
38281 PC-relative instructions require offset adjustment, so that the effect
38282 of executing the instruction at a different address is the same as if
38283 it had executed in the original location.
38284
38285 In response to several of the tracepoint packets, the target may also
38286 respond with a number of intermediate @samp{qRelocInsn} request
38287 packets before the final result packet, to have @value{GDBN} handle
38288 this relocation operation. If a packet supports this mechanism, its
38289 documentation will explicitly say so. See for example the above
38290 descriptions for the @samp{QTStart} and @samp{QTDP} packets. The
38291 format of the request is:
38292
38293 @table @samp
38294 @item qRelocInsn:@var{from};@var{to}
38295
38296 This requests @value{GDBN} to copy instruction at address @var{from}
38297 to address @var{to}, possibly adjusted so that executing the
38298 instruction at @var{to} has the same effect as executing it at
38299 @var{from}. @value{GDBN} writes the adjusted instruction to target
38300 memory starting at @var{to}.
38301 @end table
38302
38303 Replies:
38304 @table @samp
38305 @item qRelocInsn:@var{adjusted_size}
38306 Informs the stub the relocation is complete. The @var{adjusted_size} is
38307 the length in bytes of resulting relocated instruction sequence.
38308 @item E @var{NN}
38309 A badly formed request was detected, or an error was encountered while
38310 relocating the instruction.
38311 @end table
38312
38313 @node Host I/O Packets
38314 @section Host I/O Packets
38315 @cindex Host I/O, remote protocol
38316 @cindex file transfer, remote protocol
38317
38318 The @dfn{Host I/O} packets allow @value{GDBN} to perform I/O
38319 operations on the far side of a remote link. For example, Host I/O is
38320 used to upload and download files to a remote target with its own
38321 filesystem. Host I/O uses the same constant values and data structure
38322 layout as the target-initiated File-I/O protocol. However, the
38323 Host I/O packets are structured differently. The target-initiated
38324 protocol relies on target memory to store parameters and buffers.
38325 Host I/O requests are initiated by @value{GDBN}, and the
38326 target's memory is not involved. @xref{File-I/O Remote Protocol
38327 Extension}, for more details on the target-initiated protocol.
38328
38329 The Host I/O request packets all encode a single operation along with
38330 its arguments. They have this format:
38331
38332 @table @samp
38333
38334 @item vFile:@var{operation}: @var{parameter}@dots{}
38335 @var{operation} is the name of the particular request; the target
38336 should compare the entire packet name up to the second colon when checking
38337 for a supported operation. The format of @var{parameter} depends on
38338 the operation. Numbers are always passed in hexadecimal. Negative
38339 numbers have an explicit minus sign (i.e.@: two's complement is not
38340 used). Strings (e.g.@: filenames) are encoded as a series of
38341 hexadecimal bytes. The last argument to a system call may be a
38342 buffer of escaped binary data (@pxref{Binary Data}).
38343
38344 @end table
38345
38346 The valid responses to Host I/O packets are:
38347
38348 @table @samp
38349
38350 @item F @var{result} [, @var{errno}] [; @var{attachment}]
38351 @var{result} is the integer value returned by this operation, usually
38352 non-negative for success and -1 for errors. If an error has occured,
38353 @var{errno} will be included in the result specifying a
38354 value defined by the File-I/O protocol (@pxref{Errno Values}). For
38355 operations which return data, @var{attachment} supplies the data as a
38356 binary buffer. Binary buffers in response packets are escaped in the
38357 normal way (@pxref{Binary Data}). See the individual packet
38358 documentation for the interpretation of @var{result} and
38359 @var{attachment}.
38360
38361 @item @w{}
38362 An empty response indicates that this operation is not recognized.
38363
38364 @end table
38365
38366 These are the supported Host I/O operations:
38367
38368 @table @samp
38369 @item vFile:open: @var{filename}, @var{flags}, @var{mode}
38370 Open a file at @var{filename} and return a file descriptor for it, or
38371 return -1 if an error occurs. The @var{filename} is a string,
38372 @var{flags} is an integer indicating a mask of open flags
38373 (@pxref{Open Flags}), and @var{mode} is an integer indicating a mask
38374 of mode bits to use if the file is created (@pxref{mode_t Values}).
38375 @xref{open}, for details of the open flags and mode values.
38376
38377 @item vFile:close: @var{fd}
38378 Close the open file corresponding to @var{fd} and return 0, or
38379 -1 if an error occurs.
38380
38381 @item vFile:pread: @var{fd}, @var{count}, @var{offset}
38382 Read data from the open file corresponding to @var{fd}. Up to
38383 @var{count} bytes will be read from the file, starting at @var{offset}
38384 relative to the start of the file. The target may read fewer bytes;
38385 common reasons include packet size limits and an end-of-file
38386 condition. The number of bytes read is returned. Zero should only be
38387 returned for a successful read at the end of the file, or if
38388 @var{count} was zero.
38389
38390 The data read should be returned as a binary attachment on success.
38391 If zero bytes were read, the response should include an empty binary
38392 attachment (i.e.@: a trailing semicolon). The return value is the
38393 number of target bytes read; the binary attachment may be longer if
38394 some characters were escaped.
38395
38396 @item vFile:pwrite: @var{fd}, @var{offset}, @var{data}
38397 Write @var{data} (a binary buffer) to the open file corresponding
38398 to @var{fd}. Start the write at @var{offset} from the start of the
38399 file. Unlike many @code{write} system calls, there is no
38400 separate @var{count} argument; the length of @var{data} in the
38401 packet is used. @samp{vFile:write} returns the number of bytes written,
38402 which may be shorter than the length of @var{data}, or -1 if an
38403 error occurred.
38404
38405 @item vFile:fstat: @var{fd}
38406 Get information about the open file corresponding to @var{fd}.
38407 On success the information is returned as a binary attachment
38408 and the return value is the size of this attachment in bytes.
38409 If an error occurs the return value is -1. The format of the
38410 returned binary attachment is as described in @ref{struct stat}.
38411
38412 @item vFile:unlink: @var{filename}
38413 Delete the file at @var{filename} on the target. Return 0,
38414 or -1 if an error occurs. The @var{filename} is a string.
38415
38416 @item vFile:readlink: @var{filename}
38417 Read value of symbolic link @var{filename} on the target. Return
38418 the number of bytes read, or -1 if an error occurs.
38419
38420 The data read should be returned as a binary attachment on success.
38421 If zero bytes were read, the response should include an empty binary
38422 attachment (i.e.@: a trailing semicolon). The return value is the
38423 number of target bytes read; the binary attachment may be longer if
38424 some characters were escaped.
38425
38426 @item vFile:setfs: @var{pid}
38427 Select the filesystem on which @code{vFile} operations with
38428 @var{filename} arguments will operate. This is required for
38429 @value{GDBN} to be able to access files on remote targets where
38430 the remote stub does not share a common filesystem with the
38431 inferior(s).
38432
38433 If @var{pid} is nonzero, select the filesystem as seen by process
38434 @var{pid}. If @var{pid} is zero, select the filesystem as seen by
38435 the remote stub. Return 0 on success, or -1 if an error occurs.
38436 If @code{vFile:setfs:} indicates success, the selected filesystem
38437 remains selected until the next successful @code{vFile:setfs:}
38438 operation.
38439
38440 @end table
38441
38442 @node Interrupts
38443 @section Interrupts
38444 @cindex interrupts (remote protocol)
38445 @anchor{interrupting remote targets}
38446
38447 In all-stop mode, when a program on the remote target is running,
38448 @value{GDBN} may attempt to interrupt it by sending a @samp{Ctrl-C},
38449 @code{BREAK} or a @code{BREAK} followed by @code{g}, control of which
38450 is specified via @value{GDBN}'s @samp{interrupt-sequence}.
38451
38452 The precise meaning of @code{BREAK} is defined by the transport
38453 mechanism and may, in fact, be undefined. @value{GDBN} does not
38454 currently define a @code{BREAK} mechanism for any of the network
38455 interfaces except for TCP, in which case @value{GDBN} sends the
38456 @code{telnet} BREAK sequence.
38457
38458 @samp{Ctrl-C}, on the other hand, is defined and implemented for all
38459 transport mechanisms. It is represented by sending the single byte
38460 @code{0x03} without any of the usual packet overhead described in
38461 the Overview section (@pxref{Overview}). When a @code{0x03} byte is
38462 transmitted as part of a packet, it is considered to be packet data
38463 and does @emph{not} represent an interrupt. E.g., an @samp{X} packet
38464 (@pxref{X packet}), used for binary downloads, may include an unescaped
38465 @code{0x03} as part of its packet.
38466
38467 @code{BREAK} followed by @code{g} is also known as Magic SysRq g.
38468 When Linux kernel receives this sequence from serial port,
38469 it stops execution and connects to gdb.
38470
38471 In non-stop mode, because packet resumptions are asynchronous
38472 (@pxref{vCont packet}), @value{GDBN} is always free to send a remote
38473 command to the remote stub, even when the target is running. For that
38474 reason, @value{GDBN} instead sends a regular packet (@pxref{vCtrlC
38475 packet}) with the usual packet framing instead of the single byte
38476 @code{0x03}.
38477
38478 Stubs are not required to recognize these interrupt mechanisms and the
38479 precise meaning associated with receipt of the interrupt is
38480 implementation defined. If the target supports debugging of multiple
38481 threads and/or processes, it should attempt to interrupt all
38482 currently-executing threads and processes.
38483 If the stub is successful at interrupting the
38484 running program, it should send one of the stop
38485 reply packets (@pxref{Stop Reply Packets}) to @value{GDBN} as a result
38486 of successfully stopping the program in all-stop mode, and a stop reply
38487 for each stopped thread in non-stop mode.
38488 Interrupts received while the
38489 program is stopped are queued and the program will be interrupted when
38490 it is resumed next time.
38491
38492 @node Notification Packets
38493 @section Notification Packets
38494 @cindex notification packets
38495 @cindex packets, notification
38496
38497 The @value{GDBN} remote serial protocol includes @dfn{notifications},
38498 packets that require no acknowledgment. Both the GDB and the stub
38499 may send notifications (although the only notifications defined at
38500 present are sent by the stub). Notifications carry information
38501 without incurring the round-trip latency of an acknowledgment, and so
38502 are useful for low-impact communications where occasional packet loss
38503 is not a problem.
38504
38505 A notification packet has the form @samp{% @var{data} #
38506 @var{checksum}}, where @var{data} is the content of the notification,
38507 and @var{checksum} is a checksum of @var{data}, computed and formatted
38508 as for ordinary @value{GDBN} packets. A notification's @var{data}
38509 never contains @samp{$}, @samp{%} or @samp{#} characters. Upon
38510 receiving a notification, the recipient sends no @samp{+} or @samp{-}
38511 to acknowledge the notification's receipt or to report its corruption.
38512
38513 Every notification's @var{data} begins with a name, which contains no
38514 colon characters, followed by a colon character.
38515
38516 Recipients should silently ignore corrupted notifications and
38517 notifications they do not understand. Recipients should restart
38518 timeout periods on receipt of a well-formed notification, whether or
38519 not they understand it.
38520
38521 Senders should only send the notifications described here when this
38522 protocol description specifies that they are permitted. In the
38523 future, we may extend the protocol to permit existing notifications in
38524 new contexts; this rule helps older senders avoid confusing newer
38525 recipients.
38526
38527 (Older versions of @value{GDBN} ignore bytes received until they see
38528 the @samp{$} byte that begins an ordinary packet, so new stubs may
38529 transmit notifications without fear of confusing older clients. There
38530 are no notifications defined for @value{GDBN} to send at the moment, but we
38531 assume that most older stubs would ignore them, as well.)
38532
38533 Each notification is comprised of three parts:
38534 @table @samp
38535 @item @var{name}:@var{event}
38536 The notification packet is sent by the side that initiates the
38537 exchange (currently, only the stub does that), with @var{event}
38538 carrying the specific information about the notification, and
38539 @var{name} specifying the name of the notification.
38540 @item @var{ack}
38541 The acknowledge sent by the other side, usually @value{GDBN}, to
38542 acknowledge the exchange and request the event.
38543 @end table
38544
38545 The purpose of an asynchronous notification mechanism is to report to
38546 @value{GDBN} that something interesting happened in the remote stub.
38547
38548 The remote stub may send notification @var{name}:@var{event}
38549 at any time, but @value{GDBN} acknowledges the notification when
38550 appropriate. The notification event is pending before @value{GDBN}
38551 acknowledges. Only one notification at a time may be pending; if
38552 additional events occur before @value{GDBN} has acknowledged the
38553 previous notification, they must be queued by the stub for later
38554 synchronous transmission in response to @var{ack} packets from
38555 @value{GDBN}. Because the notification mechanism is unreliable,
38556 the stub is permitted to resend a notification if it believes
38557 @value{GDBN} may not have received it.
38558
38559 Specifically, notifications may appear when @value{GDBN} is not
38560 otherwise reading input from the stub, or when @value{GDBN} is
38561 expecting to read a normal synchronous response or a
38562 @samp{+}/@samp{-} acknowledgment to a packet it has sent.
38563 Notification packets are distinct from any other communication from
38564 the stub so there is no ambiguity.
38565
38566 After receiving a notification, @value{GDBN} shall acknowledge it by
38567 sending a @var{ack} packet as a regular, synchronous request to the
38568 stub. Such acknowledgment is not required to happen immediately, as
38569 @value{GDBN} is permitted to send other, unrelated packets to the
38570 stub first, which the stub should process normally.
38571
38572 Upon receiving a @var{ack} packet, if the stub has other queued
38573 events to report to @value{GDBN}, it shall respond by sending a
38574 normal @var{event}. @value{GDBN} shall then send another @var{ack}
38575 packet to solicit further responses; again, it is permitted to send
38576 other, unrelated packets as well which the stub should process
38577 normally.
38578
38579 If the stub receives a @var{ack} packet and there are no additional
38580 @var{event} to report, the stub shall return an @samp{OK} response.
38581 At this point, @value{GDBN} has finished processing a notification
38582 and the stub has completed sending any queued events. @value{GDBN}
38583 won't accept any new notifications until the final @samp{OK} is
38584 received . If further notification events occur, the stub shall send
38585 a new notification, @value{GDBN} shall accept the notification, and
38586 the process shall be repeated.
38587
38588 The process of asynchronous notification can be illustrated by the
38589 following example:
38590 @smallexample
38591 <- @code{%%Stop:T0505:98e7ffbf;04:4ce6ffbf;08:b1b6e54c;thread:p7526.7526;core:0;}
38592 @code{...}
38593 -> @code{vStopped}
38594 <- @code{T0505:68f37db7;04:40f37db7;08:63850408;thread:p7526.7528;core:0;}
38595 -> @code{vStopped}
38596 <- @code{T0505:68e3fdb6;04:40e3fdb6;08:63850408;thread:p7526.7529;core:0;}
38597 -> @code{vStopped}
38598 <- @code{OK}
38599 @end smallexample
38600
38601 The following notifications are defined:
38602 @multitable @columnfractions 0.12 0.12 0.38 0.38
38603
38604 @item Notification
38605 @tab Ack
38606 @tab Event
38607 @tab Description
38608
38609 @item Stop
38610 @tab vStopped
38611 @tab @var{reply}. The @var{reply} has the form of a stop reply, as
38612 described in @ref{Stop Reply Packets}. Refer to @ref{Remote Non-Stop},
38613 for information on how these notifications are acknowledged by
38614 @value{GDBN}.
38615 @tab Report an asynchronous stop event in non-stop mode.
38616
38617 @end multitable
38618
38619 @node Remote Non-Stop
38620 @section Remote Protocol Support for Non-Stop Mode
38621
38622 @value{GDBN}'s remote protocol supports non-stop debugging of
38623 multi-threaded programs, as described in @ref{Non-Stop Mode}. If the stub
38624 supports non-stop mode, it should report that to @value{GDBN} by including
38625 @samp{QNonStop+} in its @samp{qSupported} response (@pxref{qSupported}).
38626
38627 @value{GDBN} typically sends a @samp{QNonStop} packet only when
38628 establishing a new connection with the stub. Entering non-stop mode
38629 does not alter the state of any currently-running threads, but targets
38630 must stop all threads in any already-attached processes when entering
38631 all-stop mode. @value{GDBN} uses the @samp{?} packet as necessary to
38632 probe the target state after a mode change.
38633
38634 In non-stop mode, when an attached process encounters an event that
38635 would otherwise be reported with a stop reply, it uses the
38636 asynchronous notification mechanism (@pxref{Notification Packets}) to
38637 inform @value{GDBN}. In contrast to all-stop mode, where all threads
38638 in all processes are stopped when a stop reply is sent, in non-stop
38639 mode only the thread reporting the stop event is stopped. That is,
38640 when reporting a @samp{S} or @samp{T} response to indicate completion
38641 of a step operation, hitting a breakpoint, or a fault, only the
38642 affected thread is stopped; any other still-running threads continue
38643 to run. When reporting a @samp{W} or @samp{X} response, all running
38644 threads belonging to other attached processes continue to run.
38645
38646 In non-stop mode, the target shall respond to the @samp{?} packet as
38647 follows. First, any incomplete stop reply notification/@samp{vStopped}
38648 sequence in progress is abandoned. The target must begin a new
38649 sequence reporting stop events for all stopped threads, whether or not
38650 it has previously reported those events to @value{GDBN}. The first
38651 stop reply is sent as a synchronous reply to the @samp{?} packet, and
38652 subsequent stop replies are sent as responses to @samp{vStopped} packets
38653 using the mechanism described above. The target must not send
38654 asynchronous stop reply notifications until the sequence is complete.
38655 If all threads are running when the target receives the @samp{?} packet,
38656 or if the target is not attached to any process, it shall respond
38657 @samp{OK}.
38658
38659 If the stub supports non-stop mode, it should also support the
38660 @samp{swbreak} stop reason if software breakpoints are supported, and
38661 the @samp{hwbreak} stop reason if hardware breakpoints are supported
38662 (@pxref{swbreak stop reason}). This is because given the asynchronous
38663 nature of non-stop mode, between the time a thread hits a breakpoint
38664 and the time the event is finally processed by @value{GDBN}, the
38665 breakpoint may have already been removed from the target. Due to
38666 this, @value{GDBN} needs to be able to tell whether a trap stop was
38667 caused by a delayed breakpoint event, which should be ignored, as
38668 opposed to a random trap signal, which should be reported to the user.
38669 Note the @samp{swbreak} feature implies that the target is responsible
38670 for adjusting the PC when a software breakpoint triggers, if
38671 necessary, such as on the x86 architecture.
38672
38673 @node Packet Acknowledgment
38674 @section Packet Acknowledgment
38675
38676 @cindex acknowledgment, for @value{GDBN} remote
38677 @cindex packet acknowledgment, for @value{GDBN} remote
38678 By default, when either the host or the target machine receives a packet,
38679 the first response expected is an acknowledgment: either @samp{+} (to indicate
38680 the package was received correctly) or @samp{-} (to request retransmission).
38681 This mechanism allows the @value{GDBN} remote protocol to operate over
38682 unreliable transport mechanisms, such as a serial line.
38683
38684 In cases where the transport mechanism is itself reliable (such as a pipe or
38685 TCP connection), the @samp{+}/@samp{-} acknowledgments are redundant.
38686 It may be desirable to disable them in that case to reduce communication
38687 overhead, or for other reasons. This can be accomplished by means of the
38688 @samp{QStartNoAckMode} packet; @pxref{QStartNoAckMode}.
38689
38690 When in no-acknowledgment mode, neither the stub nor @value{GDBN} shall send or
38691 expect @samp{+}/@samp{-} protocol acknowledgments. The packet
38692 and response format still includes the normal checksum, as described in
38693 @ref{Overview}, but the checksum may be ignored by the receiver.
38694
38695 If the stub supports @samp{QStartNoAckMode} and prefers to operate in
38696 no-acknowledgment mode, it should report that to @value{GDBN}
38697 by including @samp{QStartNoAckMode+} in its response to @samp{qSupported};
38698 @pxref{qSupported}.
38699 If @value{GDBN} also supports @samp{QStartNoAckMode} and it has not been
38700 disabled via the @code{set remote noack-packet off} command
38701 (@pxref{Remote Configuration}),
38702 @value{GDBN} may then send a @samp{QStartNoAckMode} packet to the stub.
38703 Only then may the stub actually turn off packet acknowledgments.
38704 @value{GDBN} sends a final @samp{+} acknowledgment of the stub's @samp{OK}
38705 response, which can be safely ignored by the stub.
38706
38707 Note that @code{set remote noack-packet} command only affects negotiation
38708 between @value{GDBN} and the stub when subsequent connections are made;
38709 it does not affect the protocol acknowledgment state for any current
38710 connection.
38711 Since @samp{+}/@samp{-} acknowledgments are enabled by default when a
38712 new connection is established,
38713 there is also no protocol request to re-enable the acknowledgments
38714 for the current connection, once disabled.
38715
38716 @node Examples
38717 @section Examples
38718
38719 Example sequence of a target being re-started. Notice how the restart
38720 does not get any direct output:
38721
38722 @smallexample
38723 -> @code{R00}
38724 <- @code{+}
38725 @emph{target restarts}
38726 -> @code{?}
38727 <- @code{+}
38728 <- @code{T001:1234123412341234}
38729 -> @code{+}
38730 @end smallexample
38731
38732 Example sequence of a target being stepped by a single instruction:
38733
38734 @smallexample
38735 -> @code{G1445@dots{}}
38736 <- @code{+}
38737 -> @code{s}
38738 <- @code{+}
38739 @emph{time passes}
38740 <- @code{T001:1234123412341234}
38741 -> @code{+}
38742 -> @code{g}
38743 <- @code{+}
38744 <- @code{1455@dots{}}
38745 -> @code{+}
38746 @end smallexample
38747
38748 @node File-I/O Remote Protocol Extension
38749 @section File-I/O Remote Protocol Extension
38750 @cindex File-I/O remote protocol extension
38751
38752 @menu
38753 * File-I/O Overview::
38754 * Protocol Basics::
38755 * The F Request Packet::
38756 * The F Reply Packet::
38757 * The Ctrl-C Message::
38758 * Console I/O::
38759 * List of Supported Calls::
38760 * Protocol-specific Representation of Datatypes::
38761 * Constants::
38762 * File-I/O Examples::
38763 @end menu
38764
38765 @node File-I/O Overview
38766 @subsection File-I/O Overview
38767 @cindex file-i/o overview
38768
38769 The @dfn{File I/O remote protocol extension} (short: File-I/O) allows the
38770 target to use the host's file system and console I/O to perform various
38771 system calls. System calls on the target system are translated into a
38772 remote protocol packet to the host system, which then performs the needed
38773 actions and returns a response packet to the target system.
38774 This simulates file system operations even on targets that lack file systems.
38775
38776 The protocol is defined to be independent of both the host and target systems.
38777 It uses its own internal representation of datatypes and values. Both
38778 @value{GDBN} and the target's @value{GDBN} stub are responsible for
38779 translating the system-dependent value representations into the internal
38780 protocol representations when data is transmitted.
38781
38782 The communication is synchronous. A system call is possible only when
38783 @value{GDBN} is waiting for a response from the @samp{C}, @samp{c}, @samp{S}
38784 or @samp{s} packets. While @value{GDBN} handles the request for a system call,
38785 the target is stopped to allow deterministic access to the target's
38786 memory. Therefore File-I/O is not interruptible by target signals. On
38787 the other hand, it is possible to interrupt File-I/O by a user interrupt
38788 (@samp{Ctrl-C}) within @value{GDBN}.
38789
38790 The target's request to perform a host system call does not finish
38791 the latest @samp{C}, @samp{c}, @samp{S} or @samp{s} action. That means,
38792 after finishing the system call, the target returns to continuing the
38793 previous activity (continue, step). No additional continue or step
38794 request from @value{GDBN} is required.
38795
38796 @smallexample
38797 (@value{GDBP}) continue
38798 <- target requests 'system call X'
38799 target is stopped, @value{GDBN} executes system call
38800 -> @value{GDBN} returns result
38801 ... target continues, @value{GDBN} returns to wait for the target
38802 <- target hits breakpoint and sends a Txx packet
38803 @end smallexample
38804
38805 The protocol only supports I/O on the console and to regular files on
38806 the host file system. Character or block special devices, pipes,
38807 named pipes, sockets or any other communication method on the host
38808 system are not supported by this protocol.
38809
38810 File I/O is not supported in non-stop mode.
38811
38812 @node Protocol Basics
38813 @subsection Protocol Basics
38814 @cindex protocol basics, file-i/o
38815
38816 The File-I/O protocol uses the @code{F} packet as the request as well
38817 as reply packet. Since a File-I/O system call can only occur when
38818 @value{GDBN} is waiting for a response from the continuing or stepping target,
38819 the File-I/O request is a reply that @value{GDBN} has to expect as a result
38820 of a previous @samp{C}, @samp{c}, @samp{S} or @samp{s} packet.
38821 This @code{F} packet contains all information needed to allow @value{GDBN}
38822 to call the appropriate host system call:
38823
38824 @itemize @bullet
38825 @item
38826 A unique identifier for the requested system call.
38827
38828 @item
38829 All parameters to the system call. Pointers are given as addresses
38830 in the target memory address space. Pointers to strings are given as
38831 pointer/length pair. Numerical values are given as they are.
38832 Numerical control flags are given in a protocol-specific representation.
38833
38834 @end itemize
38835
38836 At this point, @value{GDBN} has to perform the following actions.
38837
38838 @itemize @bullet
38839 @item
38840 If the parameters include pointer values to data needed as input to a
38841 system call, @value{GDBN} requests this data from the target with a
38842 standard @code{m} packet request. This additional communication has to be
38843 expected by the target implementation and is handled as any other @code{m}
38844 packet.
38845
38846 @item
38847 @value{GDBN} translates all value from protocol representation to host
38848 representation as needed. Datatypes are coerced into the host types.
38849
38850 @item
38851 @value{GDBN} calls the system call.
38852
38853 @item
38854 It then coerces datatypes back to protocol representation.
38855
38856 @item
38857 If the system call is expected to return data in buffer space specified
38858 by pointer parameters to the call, the data is transmitted to the
38859 target using a @code{M} or @code{X} packet. This packet has to be expected
38860 by the target implementation and is handled as any other @code{M} or @code{X}
38861 packet.
38862
38863 @end itemize
38864
38865 Eventually @value{GDBN} replies with another @code{F} packet which contains all
38866 necessary information for the target to continue. This at least contains
38867
38868 @itemize @bullet
38869 @item
38870 Return value.
38871
38872 @item
38873 @code{errno}, if has been changed by the system call.
38874
38875 @item
38876 ``Ctrl-C'' flag.
38877
38878 @end itemize
38879
38880 After having done the needed type and value coercion, the target continues
38881 the latest continue or step action.
38882
38883 @node The F Request Packet
38884 @subsection The @code{F} Request Packet
38885 @cindex file-i/o request packet
38886 @cindex @code{F} request packet
38887
38888 The @code{F} request packet has the following format:
38889
38890 @table @samp
38891 @item F@var{call-id},@var{parameter@dots{}}
38892
38893 @var{call-id} is the identifier to indicate the host system call to be called.
38894 This is just the name of the function.
38895
38896 @var{parameter@dots{}} are the parameters to the system call.
38897 Parameters are hexadecimal integer values, either the actual values in case
38898 of scalar datatypes, pointers to target buffer space in case of compound
38899 datatypes and unspecified memory areas, or pointer/length pairs in case
38900 of string parameters. These are appended to the @var{call-id} as a
38901 comma-delimited list. All values are transmitted in ASCII
38902 string representation, pointer/length pairs separated by a slash.
38903
38904 @end table
38905
38906
38907
38908 @node The F Reply Packet
38909 @subsection The @code{F} Reply Packet
38910 @cindex file-i/o reply packet
38911 @cindex @code{F} reply packet
38912
38913 The @code{F} reply packet has the following format:
38914
38915 @table @samp
38916
38917 @item F@var{retcode},@var{errno},@var{Ctrl-C flag};@var{call-specific attachment}
38918
38919 @var{retcode} is the return code of the system call as hexadecimal value.
38920
38921 @var{errno} is the @code{errno} set by the call, in protocol-specific
38922 representation.
38923 This parameter can be omitted if the call was successful.
38924
38925 @var{Ctrl-C flag} is only sent if the user requested a break. In this
38926 case, @var{errno} must be sent as well, even if the call was successful.
38927 The @var{Ctrl-C flag} itself consists of the character @samp{C}:
38928
38929 @smallexample
38930 F0,0,C
38931 @end smallexample
38932
38933 @noindent
38934 or, if the call was interrupted before the host call has been performed:
38935
38936 @smallexample
38937 F-1,4,C
38938 @end smallexample
38939
38940 @noindent
38941 assuming 4 is the protocol-specific representation of @code{EINTR}.
38942
38943 @end table
38944
38945
38946 @node The Ctrl-C Message
38947 @subsection The @samp{Ctrl-C} Message
38948 @cindex ctrl-c message, in file-i/o protocol
38949
38950 If the @samp{Ctrl-C} flag is set in the @value{GDBN}
38951 reply packet (@pxref{The F Reply Packet}),
38952 the target should behave as if it had
38953 gotten a break message. The meaning for the target is ``system call
38954 interrupted by @code{SIGINT}''. Consequentially, the target should actually stop
38955 (as with a break message) and return to @value{GDBN} with a @code{T02}
38956 packet.
38957
38958 It's important for the target to know in which
38959 state the system call was interrupted. There are two possible cases:
38960
38961 @itemize @bullet
38962 @item
38963 The system call hasn't been performed on the host yet.
38964
38965 @item
38966 The system call on the host has been finished.
38967
38968 @end itemize
38969
38970 These two states can be distinguished by the target by the value of the
38971 returned @code{errno}. If it's the protocol representation of @code{EINTR}, the system
38972 call hasn't been performed. This is equivalent to the @code{EINTR} handling
38973 on POSIX systems. In any other case, the target may presume that the
38974 system call has been finished --- successfully or not --- and should behave
38975 as if the break message arrived right after the system call.
38976
38977 @value{GDBN} must behave reliably. If the system call has not been called
38978 yet, @value{GDBN} may send the @code{F} reply immediately, setting @code{EINTR} as
38979 @code{errno} in the packet. If the system call on the host has been finished
38980 before the user requests a break, the full action must be finished by
38981 @value{GDBN}. This requires sending @code{M} or @code{X} packets as necessary.
38982 The @code{F} packet may only be sent when either nothing has happened
38983 or the full action has been completed.
38984
38985 @node Console I/O
38986 @subsection Console I/O
38987 @cindex console i/o as part of file-i/o
38988
38989 By default and if not explicitly closed by the target system, the file
38990 descriptors 0, 1 and 2 are connected to the @value{GDBN} console. Output
38991 on the @value{GDBN} console is handled as any other file output operation
38992 (@code{write(1, @dots{})} or @code{write(2, @dots{})}). Console input is handled
38993 by @value{GDBN} so that after the target read request from file descriptor
38994 0 all following typing is buffered until either one of the following
38995 conditions is met:
38996
38997 @itemize @bullet
38998 @item
38999 The user types @kbd{Ctrl-c}. The behaviour is as explained above, and the
39000 @code{read}
39001 system call is treated as finished.
39002
39003 @item
39004 The user presses @key{RET}. This is treated as end of input with a trailing
39005 newline.
39006
39007 @item
39008 The user types @kbd{Ctrl-d}. This is treated as end of input. No trailing
39009 character (neither newline nor @samp{Ctrl-D}) is appended to the input.
39010
39011 @end itemize
39012
39013 If the user has typed more characters than fit in the buffer given to
39014 the @code{read} call, the trailing characters are buffered in @value{GDBN} until
39015 either another @code{read(0, @dots{})} is requested by the target, or debugging
39016 is stopped at the user's request.
39017
39018
39019 @node List of Supported Calls
39020 @subsection List of Supported Calls
39021 @cindex list of supported file-i/o calls
39022
39023 @menu
39024 * open::
39025 * close::
39026 * read::
39027 * write::
39028 * lseek::
39029 * rename::
39030 * unlink::
39031 * stat/fstat::
39032 * gettimeofday::
39033 * isatty::
39034 * system::
39035 @end menu
39036
39037 @node open
39038 @unnumberedsubsubsec open
39039 @cindex open, file-i/o system call
39040
39041 @table @asis
39042 @item Synopsis:
39043 @smallexample
39044 int open(const char *pathname, int flags);
39045 int open(const char *pathname, int flags, mode_t mode);
39046 @end smallexample
39047
39048 @item Request:
39049 @samp{Fopen,@var{pathptr}/@var{len},@var{flags},@var{mode}}
39050
39051 @noindent
39052 @var{flags} is the bitwise @code{OR} of the following values:
39053
39054 @table @code
39055 @item O_CREAT
39056 If the file does not exist it will be created. The host
39057 rules apply as far as file ownership and time stamps
39058 are concerned.
39059
39060 @item O_EXCL
39061 When used with @code{O_CREAT}, if the file already exists it is
39062 an error and open() fails.
39063
39064 @item O_TRUNC
39065 If the file already exists and the open mode allows
39066 writing (@code{O_RDWR} or @code{O_WRONLY} is given) it will be
39067 truncated to zero length.
39068
39069 @item O_APPEND
39070 The file is opened in append mode.
39071
39072 @item O_RDONLY
39073 The file is opened for reading only.
39074
39075 @item O_WRONLY
39076 The file is opened for writing only.
39077
39078 @item O_RDWR
39079 The file is opened for reading and writing.
39080 @end table
39081
39082 @noindent
39083 Other bits are silently ignored.
39084
39085
39086 @noindent
39087 @var{mode} is the bitwise @code{OR} of the following values:
39088
39089 @table @code
39090 @item S_IRUSR
39091 User has read permission.
39092
39093 @item S_IWUSR
39094 User has write permission.
39095
39096 @item S_IRGRP
39097 Group has read permission.
39098
39099 @item S_IWGRP
39100 Group has write permission.
39101
39102 @item S_IROTH
39103 Others have read permission.
39104
39105 @item S_IWOTH
39106 Others have write permission.
39107 @end table
39108
39109 @noindent
39110 Other bits are silently ignored.
39111
39112
39113 @item Return value:
39114 @code{open} returns the new file descriptor or -1 if an error
39115 occurred.
39116
39117 @item Errors:
39118
39119 @table @code
39120 @item EEXIST
39121 @var{pathname} already exists and @code{O_CREAT} and @code{O_EXCL} were used.
39122
39123 @item EISDIR
39124 @var{pathname} refers to a directory.
39125
39126 @item EACCES
39127 The requested access is not allowed.
39128
39129 @item ENAMETOOLONG
39130 @var{pathname} was too long.
39131
39132 @item ENOENT
39133 A directory component in @var{pathname} does not exist.
39134
39135 @item ENODEV
39136 @var{pathname} refers to a device, pipe, named pipe or socket.
39137
39138 @item EROFS
39139 @var{pathname} refers to a file on a read-only filesystem and
39140 write access was requested.
39141
39142 @item EFAULT
39143 @var{pathname} is an invalid pointer value.
39144
39145 @item ENOSPC
39146 No space on device to create the file.
39147
39148 @item EMFILE
39149 The process already has the maximum number of files open.
39150
39151 @item ENFILE
39152 The limit on the total number of files open on the system
39153 has been reached.
39154
39155 @item EINTR
39156 The call was interrupted by the user.
39157 @end table
39158
39159 @end table
39160
39161 @node close
39162 @unnumberedsubsubsec close
39163 @cindex close, file-i/o system call
39164
39165 @table @asis
39166 @item Synopsis:
39167 @smallexample
39168 int close(int fd);
39169 @end smallexample
39170
39171 @item Request:
39172 @samp{Fclose,@var{fd}}
39173
39174 @item Return value:
39175 @code{close} returns zero on success, or -1 if an error occurred.
39176
39177 @item Errors:
39178
39179 @table @code
39180 @item EBADF
39181 @var{fd} isn't a valid open file descriptor.
39182
39183 @item EINTR
39184 The call was interrupted by the user.
39185 @end table
39186
39187 @end table
39188
39189 @node read
39190 @unnumberedsubsubsec read
39191 @cindex read, file-i/o system call
39192
39193 @table @asis
39194 @item Synopsis:
39195 @smallexample
39196 int read(int fd, void *buf, unsigned int count);
39197 @end smallexample
39198
39199 @item Request:
39200 @samp{Fread,@var{fd},@var{bufptr},@var{count}}
39201
39202 @item Return value:
39203 On success, the number of bytes read is returned.
39204 Zero indicates end of file. If count is zero, read
39205 returns zero as well. On error, -1 is returned.
39206
39207 @item Errors:
39208
39209 @table @code
39210 @item EBADF
39211 @var{fd} is not a valid file descriptor or is not open for
39212 reading.
39213
39214 @item EFAULT
39215 @var{bufptr} is an invalid pointer value.
39216
39217 @item EINTR
39218 The call was interrupted by the user.
39219 @end table
39220
39221 @end table
39222
39223 @node write
39224 @unnumberedsubsubsec write
39225 @cindex write, file-i/o system call
39226
39227 @table @asis
39228 @item Synopsis:
39229 @smallexample
39230 int write(int fd, const void *buf, unsigned int count);
39231 @end smallexample
39232
39233 @item Request:
39234 @samp{Fwrite,@var{fd},@var{bufptr},@var{count}}
39235
39236 @item Return value:
39237 On success, the number of bytes written are returned.
39238 Zero indicates nothing was written. On error, -1
39239 is returned.
39240
39241 @item Errors:
39242
39243 @table @code
39244 @item EBADF
39245 @var{fd} is not a valid file descriptor or is not open for
39246 writing.
39247
39248 @item EFAULT
39249 @var{bufptr} is an invalid pointer value.
39250
39251 @item EFBIG
39252 An attempt was made to write a file that exceeds the
39253 host-specific maximum file size allowed.
39254
39255 @item ENOSPC
39256 No space on device to write the data.
39257
39258 @item EINTR
39259 The call was interrupted by the user.
39260 @end table
39261
39262 @end table
39263
39264 @node lseek
39265 @unnumberedsubsubsec lseek
39266 @cindex lseek, file-i/o system call
39267
39268 @table @asis
39269 @item Synopsis:
39270 @smallexample
39271 long lseek (int fd, long offset, int flag);
39272 @end smallexample
39273
39274 @item Request:
39275 @samp{Flseek,@var{fd},@var{offset},@var{flag}}
39276
39277 @var{flag} is one of:
39278
39279 @table @code
39280 @item SEEK_SET
39281 The offset is set to @var{offset} bytes.
39282
39283 @item SEEK_CUR
39284 The offset is set to its current location plus @var{offset}
39285 bytes.
39286
39287 @item SEEK_END
39288 The offset is set to the size of the file plus @var{offset}
39289 bytes.
39290 @end table
39291
39292 @item Return value:
39293 On success, the resulting unsigned offset in bytes from
39294 the beginning of the file is returned. Otherwise, a
39295 value of -1 is returned.
39296
39297 @item Errors:
39298
39299 @table @code
39300 @item EBADF
39301 @var{fd} is not a valid open file descriptor.
39302
39303 @item ESPIPE
39304 @var{fd} is associated with the @value{GDBN} console.
39305
39306 @item EINVAL
39307 @var{flag} is not a proper value.
39308
39309 @item EINTR
39310 The call was interrupted by the user.
39311 @end table
39312
39313 @end table
39314
39315 @node rename
39316 @unnumberedsubsubsec rename
39317 @cindex rename, file-i/o system call
39318
39319 @table @asis
39320 @item Synopsis:
39321 @smallexample
39322 int rename(const char *oldpath, const char *newpath);
39323 @end smallexample
39324
39325 @item Request:
39326 @samp{Frename,@var{oldpathptr}/@var{len},@var{newpathptr}/@var{len}}
39327
39328 @item Return value:
39329 On success, zero is returned. On error, -1 is returned.
39330
39331 @item Errors:
39332
39333 @table @code
39334 @item EISDIR
39335 @var{newpath} is an existing directory, but @var{oldpath} is not a
39336 directory.
39337
39338 @item EEXIST
39339 @var{newpath} is a non-empty directory.
39340
39341 @item EBUSY
39342 @var{oldpath} or @var{newpath} is a directory that is in use by some
39343 process.
39344
39345 @item EINVAL
39346 An attempt was made to make a directory a subdirectory
39347 of itself.
39348
39349 @item ENOTDIR
39350 A component used as a directory in @var{oldpath} or new
39351 path is not a directory. Or @var{oldpath} is a directory
39352 and @var{newpath} exists but is not a directory.
39353
39354 @item EFAULT
39355 @var{oldpathptr} or @var{newpathptr} are invalid pointer values.
39356
39357 @item EACCES
39358 No access to the file or the path of the file.
39359
39360 @item ENAMETOOLONG
39361
39362 @var{oldpath} or @var{newpath} was too long.
39363
39364 @item ENOENT
39365 A directory component in @var{oldpath} or @var{newpath} does not exist.
39366
39367 @item EROFS
39368 The file is on a read-only filesystem.
39369
39370 @item ENOSPC
39371 The device containing the file has no room for the new
39372 directory entry.
39373
39374 @item EINTR
39375 The call was interrupted by the user.
39376 @end table
39377
39378 @end table
39379
39380 @node unlink
39381 @unnumberedsubsubsec unlink
39382 @cindex unlink, file-i/o system call
39383
39384 @table @asis
39385 @item Synopsis:
39386 @smallexample
39387 int unlink(const char *pathname);
39388 @end smallexample
39389
39390 @item Request:
39391 @samp{Funlink,@var{pathnameptr}/@var{len}}
39392
39393 @item Return value:
39394 On success, zero is returned. On error, -1 is returned.
39395
39396 @item Errors:
39397
39398 @table @code
39399 @item EACCES
39400 No access to the file or the path of the file.
39401
39402 @item EPERM
39403 The system does not allow unlinking of directories.
39404
39405 @item EBUSY
39406 The file @var{pathname} cannot be unlinked because it's
39407 being used by another process.
39408
39409 @item EFAULT
39410 @var{pathnameptr} is an invalid pointer value.
39411
39412 @item ENAMETOOLONG
39413 @var{pathname} was too long.
39414
39415 @item ENOENT
39416 A directory component in @var{pathname} does not exist.
39417
39418 @item ENOTDIR
39419 A component of the path is not a directory.
39420
39421 @item EROFS
39422 The file is on a read-only filesystem.
39423
39424 @item EINTR
39425 The call was interrupted by the user.
39426 @end table
39427
39428 @end table
39429
39430 @node stat/fstat
39431 @unnumberedsubsubsec stat/fstat
39432 @cindex fstat, file-i/o system call
39433 @cindex stat, file-i/o system call
39434
39435 @table @asis
39436 @item Synopsis:
39437 @smallexample
39438 int stat(const char *pathname, struct stat *buf);
39439 int fstat(int fd, struct stat *buf);
39440 @end smallexample
39441
39442 @item Request:
39443 @samp{Fstat,@var{pathnameptr}/@var{len},@var{bufptr}}@*
39444 @samp{Ffstat,@var{fd},@var{bufptr}}
39445
39446 @item Return value:
39447 On success, zero is returned. On error, -1 is returned.
39448
39449 @item Errors:
39450
39451 @table @code
39452 @item EBADF
39453 @var{fd} is not a valid open file.
39454
39455 @item ENOENT
39456 A directory component in @var{pathname} does not exist or the
39457 path is an empty string.
39458
39459 @item ENOTDIR
39460 A component of the path is not a directory.
39461
39462 @item EFAULT
39463 @var{pathnameptr} is an invalid pointer value.
39464
39465 @item EACCES
39466 No access to the file or the path of the file.
39467
39468 @item ENAMETOOLONG
39469 @var{pathname} was too long.
39470
39471 @item EINTR
39472 The call was interrupted by the user.
39473 @end table
39474
39475 @end table
39476
39477 @node gettimeofday
39478 @unnumberedsubsubsec gettimeofday
39479 @cindex gettimeofday, file-i/o system call
39480
39481 @table @asis
39482 @item Synopsis:
39483 @smallexample
39484 int gettimeofday(struct timeval *tv, void *tz);
39485 @end smallexample
39486
39487 @item Request:
39488 @samp{Fgettimeofday,@var{tvptr},@var{tzptr}}
39489
39490 @item Return value:
39491 On success, 0 is returned, -1 otherwise.
39492
39493 @item Errors:
39494
39495 @table @code
39496 @item EINVAL
39497 @var{tz} is a non-NULL pointer.
39498
39499 @item EFAULT
39500 @var{tvptr} and/or @var{tzptr} is an invalid pointer value.
39501 @end table
39502
39503 @end table
39504
39505 @node isatty
39506 @unnumberedsubsubsec isatty
39507 @cindex isatty, file-i/o system call
39508
39509 @table @asis
39510 @item Synopsis:
39511 @smallexample
39512 int isatty(int fd);
39513 @end smallexample
39514
39515 @item Request:
39516 @samp{Fisatty,@var{fd}}
39517
39518 @item Return value:
39519 Returns 1 if @var{fd} refers to the @value{GDBN} console, 0 otherwise.
39520
39521 @item Errors:
39522
39523 @table @code
39524 @item EINTR
39525 The call was interrupted by the user.
39526 @end table
39527
39528 @end table
39529
39530 Note that the @code{isatty} call is treated as a special case: it returns
39531 1 to the target if the file descriptor is attached
39532 to the @value{GDBN} console, 0 otherwise. Implementing through system calls
39533 would require implementing @code{ioctl} and would be more complex than
39534 needed.
39535
39536
39537 @node system
39538 @unnumberedsubsubsec system
39539 @cindex system, file-i/o system call
39540
39541 @table @asis
39542 @item Synopsis:
39543 @smallexample
39544 int system(const char *command);
39545 @end smallexample
39546
39547 @item Request:
39548 @samp{Fsystem,@var{commandptr}/@var{len}}
39549
39550 @item Return value:
39551 If @var{len} is zero, the return value indicates whether a shell is
39552 available. A zero return value indicates a shell is not available.
39553 For non-zero @var{len}, the value returned is -1 on error and the
39554 return status of the command otherwise. Only the exit status of the
39555 command is returned, which is extracted from the host's @code{system}
39556 return value by calling @code{WEXITSTATUS(retval)}. In case
39557 @file{/bin/sh} could not be executed, 127 is returned.
39558
39559 @item Errors:
39560
39561 @table @code
39562 @item EINTR
39563 The call was interrupted by the user.
39564 @end table
39565
39566 @end table
39567
39568 @value{GDBN} takes over the full task of calling the necessary host calls
39569 to perform the @code{system} call. The return value of @code{system} on
39570 the host is simplified before it's returned
39571 to the target. Any termination signal information from the child process
39572 is discarded, and the return value consists
39573 entirely of the exit status of the called command.
39574
39575 Due to security concerns, the @code{system} call is by default refused
39576 by @value{GDBN}. The user has to allow this call explicitly with the
39577 @code{set remote system-call-allowed 1} command.
39578
39579 @table @code
39580 @item set remote system-call-allowed
39581 @kindex set remote system-call-allowed
39582 Control whether to allow the @code{system} calls in the File I/O
39583 protocol for the remote target. The default is zero (disabled).
39584
39585 @item show remote system-call-allowed
39586 @kindex show remote system-call-allowed
39587 Show whether the @code{system} calls are allowed in the File I/O
39588 protocol.
39589 @end table
39590
39591 @node Protocol-specific Representation of Datatypes
39592 @subsection Protocol-specific Representation of Datatypes
39593 @cindex protocol-specific representation of datatypes, in file-i/o protocol
39594
39595 @menu
39596 * Integral Datatypes::
39597 * Pointer Values::
39598 * Memory Transfer::
39599 * struct stat::
39600 * struct timeval::
39601 @end menu
39602
39603 @node Integral Datatypes
39604 @unnumberedsubsubsec Integral Datatypes
39605 @cindex integral datatypes, in file-i/o protocol
39606
39607 The integral datatypes used in the system calls are @code{int},
39608 @code{unsigned int}, @code{long}, @code{unsigned long},
39609 @code{mode_t}, and @code{time_t}.
39610
39611 @code{int}, @code{unsigned int}, @code{mode_t} and @code{time_t} are
39612 implemented as 32 bit values in this protocol.
39613
39614 @code{long} and @code{unsigned long} are implemented as 64 bit types.
39615
39616 @xref{Limits}, for corresponding MIN and MAX values (similar to those
39617 in @file{limits.h}) to allow range checking on host and target.
39618
39619 @code{time_t} datatypes are defined as seconds since the Epoch.
39620
39621 All integral datatypes transferred as part of a memory read or write of a
39622 structured datatype e.g.@: a @code{struct stat} have to be given in big endian
39623 byte order.
39624
39625 @node Pointer Values
39626 @unnumberedsubsubsec Pointer Values
39627 @cindex pointer values, in file-i/o protocol
39628
39629 Pointers to target data are transmitted as they are. An exception
39630 is made for pointers to buffers for which the length isn't
39631 transmitted as part of the function call, namely strings. Strings
39632 are transmitted as a pointer/length pair, both as hex values, e.g.@:
39633
39634 @smallexample
39635 @code{1aaf/12}
39636 @end smallexample
39637
39638 @noindent
39639 which is a pointer to data of length 18 bytes at position 0x1aaf.
39640 The length is defined as the full string length in bytes, including
39641 the trailing null byte. For example, the string @code{"hello world"}
39642 at address 0x123456 is transmitted as
39643
39644 @smallexample
39645 @code{123456/d}
39646 @end smallexample
39647
39648 @node Memory Transfer
39649 @unnumberedsubsubsec Memory Transfer
39650 @cindex memory transfer, in file-i/o protocol
39651
39652 Structured data which is transferred using a memory read or write (for
39653 example, a @code{struct stat}) is expected to be in a protocol-specific format
39654 with all scalar multibyte datatypes being big endian. Translation to
39655 this representation needs to be done both by the target before the @code{F}
39656 packet is sent, and by @value{GDBN} before
39657 it transfers memory to the target. Transferred pointers to structured
39658 data should point to the already-coerced data at any time.
39659
39660
39661 @node struct stat
39662 @unnumberedsubsubsec struct stat
39663 @cindex struct stat, in file-i/o protocol
39664
39665 The buffer of type @code{struct stat} used by the target and @value{GDBN}
39666 is defined as follows:
39667
39668 @smallexample
39669 struct stat @{
39670 unsigned int st_dev; /* device */
39671 unsigned int st_ino; /* inode */
39672 mode_t st_mode; /* protection */
39673 unsigned int st_nlink; /* number of hard links */
39674 unsigned int st_uid; /* user ID of owner */
39675 unsigned int st_gid; /* group ID of owner */
39676 unsigned int st_rdev; /* device type (if inode device) */
39677 unsigned long st_size; /* total size, in bytes */
39678 unsigned long st_blksize; /* blocksize for filesystem I/O */
39679 unsigned long st_blocks; /* number of blocks allocated */
39680 time_t st_atime; /* time of last access */
39681 time_t st_mtime; /* time of last modification */
39682 time_t st_ctime; /* time of last change */
39683 @};
39684 @end smallexample
39685
39686 The integral datatypes conform to the definitions given in the
39687 appropriate section (see @ref{Integral Datatypes}, for details) so this
39688 structure is of size 64 bytes.
39689
39690 The values of several fields have a restricted meaning and/or
39691 range of values.
39692
39693 @table @code
39694
39695 @item st_dev
39696 A value of 0 represents a file, 1 the console.
39697
39698 @item st_ino
39699 No valid meaning for the target. Transmitted unchanged.
39700
39701 @item st_mode
39702 Valid mode bits are described in @ref{Constants}. Any other
39703 bits have currently no meaning for the target.
39704
39705 @item st_uid
39706 @itemx st_gid
39707 @itemx st_rdev
39708 No valid meaning for the target. Transmitted unchanged.
39709
39710 @item st_atime
39711 @itemx st_mtime
39712 @itemx st_ctime
39713 These values have a host and file system dependent
39714 accuracy. Especially on Windows hosts, the file system may not
39715 support exact timing values.
39716 @end table
39717
39718 The target gets a @code{struct stat} of the above representation and is
39719 responsible for coercing it to the target representation before
39720 continuing.
39721
39722 Note that due to size differences between the host, target, and protocol
39723 representations of @code{struct stat} members, these members could eventually
39724 get truncated on the target.
39725
39726 @node struct timeval
39727 @unnumberedsubsubsec struct timeval
39728 @cindex struct timeval, in file-i/o protocol
39729
39730 The buffer of type @code{struct timeval} used by the File-I/O protocol
39731 is defined as follows:
39732
39733 @smallexample
39734 struct timeval @{
39735 time_t tv_sec; /* second */
39736 long tv_usec; /* microsecond */
39737 @};
39738 @end smallexample
39739
39740 The integral datatypes conform to the definitions given in the
39741 appropriate section (see @ref{Integral Datatypes}, for details) so this
39742 structure is of size 8 bytes.
39743
39744 @node Constants
39745 @subsection Constants
39746 @cindex constants, in file-i/o protocol
39747
39748 The following values are used for the constants inside of the
39749 protocol. @value{GDBN} and target are responsible for translating these
39750 values before and after the call as needed.
39751
39752 @menu
39753 * Open Flags::
39754 * mode_t Values::
39755 * Errno Values::
39756 * Lseek Flags::
39757 * Limits::
39758 @end menu
39759
39760 @node Open Flags
39761 @unnumberedsubsubsec Open Flags
39762 @cindex open flags, in file-i/o protocol
39763
39764 All values are given in hexadecimal representation.
39765
39766 @smallexample
39767 O_RDONLY 0x0
39768 O_WRONLY 0x1
39769 O_RDWR 0x2
39770 O_APPEND 0x8
39771 O_CREAT 0x200
39772 O_TRUNC 0x400
39773 O_EXCL 0x800
39774 @end smallexample
39775
39776 @node mode_t Values
39777 @unnumberedsubsubsec mode_t Values
39778 @cindex mode_t values, in file-i/o protocol
39779
39780 All values are given in octal representation.
39781
39782 @smallexample
39783 S_IFREG 0100000
39784 S_IFDIR 040000
39785 S_IRUSR 0400
39786 S_IWUSR 0200
39787 S_IXUSR 0100
39788 S_IRGRP 040
39789 S_IWGRP 020
39790 S_IXGRP 010
39791 S_IROTH 04
39792 S_IWOTH 02
39793 S_IXOTH 01
39794 @end smallexample
39795
39796 @node Errno Values
39797 @unnumberedsubsubsec Errno Values
39798 @cindex errno values, in file-i/o protocol
39799
39800 All values are given in decimal representation.
39801
39802 @smallexample
39803 EPERM 1
39804 ENOENT 2
39805 EINTR 4
39806 EBADF 9
39807 EACCES 13
39808 EFAULT 14
39809 EBUSY 16
39810 EEXIST 17
39811 ENODEV 19
39812 ENOTDIR 20
39813 EISDIR 21
39814 EINVAL 22
39815 ENFILE 23
39816 EMFILE 24
39817 EFBIG 27
39818 ENOSPC 28
39819 ESPIPE 29
39820 EROFS 30
39821 ENAMETOOLONG 91
39822 EUNKNOWN 9999
39823 @end smallexample
39824
39825 @code{EUNKNOWN} is used as a fallback error value if a host system returns
39826 any error value not in the list of supported error numbers.
39827
39828 @node Lseek Flags
39829 @unnumberedsubsubsec Lseek Flags
39830 @cindex lseek flags, in file-i/o protocol
39831
39832 @smallexample
39833 SEEK_SET 0
39834 SEEK_CUR 1
39835 SEEK_END 2
39836 @end smallexample
39837
39838 @node Limits
39839 @unnumberedsubsubsec Limits
39840 @cindex limits, in file-i/o protocol
39841
39842 All values are given in decimal representation.
39843
39844 @smallexample
39845 INT_MIN -2147483648
39846 INT_MAX 2147483647
39847 UINT_MAX 4294967295
39848 LONG_MIN -9223372036854775808
39849 LONG_MAX 9223372036854775807
39850 ULONG_MAX 18446744073709551615
39851 @end smallexample
39852
39853 @node File-I/O Examples
39854 @subsection File-I/O Examples
39855 @cindex file-i/o examples
39856
39857 Example sequence of a write call, file descriptor 3, buffer is at target
39858 address 0x1234, 6 bytes should be written:
39859
39860 @smallexample
39861 <- @code{Fwrite,3,1234,6}
39862 @emph{request memory read from target}
39863 -> @code{m1234,6}
39864 <- XXXXXX
39865 @emph{return "6 bytes written"}
39866 -> @code{F6}
39867 @end smallexample
39868
39869 Example sequence of a read call, file descriptor 3, buffer is at target
39870 address 0x1234, 6 bytes should be read:
39871
39872 @smallexample
39873 <- @code{Fread,3,1234,6}
39874 @emph{request memory write to target}
39875 -> @code{X1234,6:XXXXXX}
39876 @emph{return "6 bytes read"}
39877 -> @code{F6}
39878 @end smallexample
39879
39880 Example sequence of a read call, call fails on the host due to invalid
39881 file descriptor (@code{EBADF}):
39882
39883 @smallexample
39884 <- @code{Fread,3,1234,6}
39885 -> @code{F-1,9}
39886 @end smallexample
39887
39888 Example sequence of a read call, user presses @kbd{Ctrl-c} before syscall on
39889 host is called:
39890
39891 @smallexample
39892 <- @code{Fread,3,1234,6}
39893 -> @code{F-1,4,C}
39894 <- @code{T02}
39895 @end smallexample
39896
39897 Example sequence of a read call, user presses @kbd{Ctrl-c} after syscall on
39898 host is called:
39899
39900 @smallexample
39901 <- @code{Fread,3,1234,6}
39902 -> @code{X1234,6:XXXXXX}
39903 <- @code{T02}
39904 @end smallexample
39905
39906 @node Library List Format
39907 @section Library List Format
39908 @cindex library list format, remote protocol
39909
39910 On some platforms, a dynamic loader (e.g.@: @file{ld.so}) runs in the
39911 same process as your application to manage libraries. In this case,
39912 @value{GDBN} can use the loader's symbol table and normal memory
39913 operations to maintain a list of shared libraries. On other
39914 platforms, the operating system manages loaded libraries.
39915 @value{GDBN} can not retrieve the list of currently loaded libraries
39916 through memory operations, so it uses the @samp{qXfer:libraries:read}
39917 packet (@pxref{qXfer library list read}) instead. The remote stub
39918 queries the target's operating system and reports which libraries
39919 are loaded.
39920
39921 The @samp{qXfer:libraries:read} packet returns an XML document which
39922 lists loaded libraries and their offsets. Each library has an
39923 associated name and one or more segment or section base addresses,
39924 which report where the library was loaded in memory.
39925
39926 For the common case of libraries that are fully linked binaries, the
39927 library should have a list of segments. If the target supports
39928 dynamic linking of a relocatable object file, its library XML element
39929 should instead include a list of allocated sections. The segment or
39930 section bases are start addresses, not relocation offsets; they do not
39931 depend on the library's link-time base addresses.
39932
39933 @value{GDBN} must be linked with the Expat library to support XML
39934 library lists. @xref{Expat}.
39935
39936 A simple memory map, with one loaded library relocated by a single
39937 offset, looks like this:
39938
39939 @smallexample
39940 <library-list>
39941 <library name="/lib/libc.so.6">
39942 <segment address="0x10000000"/>
39943 </library>
39944 </library-list>
39945 @end smallexample
39946
39947 Another simple memory map, with one loaded library with three
39948 allocated sections (.text, .data, .bss), looks like this:
39949
39950 @smallexample
39951 <library-list>
39952 <library name="sharedlib.o">
39953 <section address="0x10000000"/>
39954 <section address="0x20000000"/>
39955 <section address="0x30000000"/>
39956 </library>
39957 </library-list>
39958 @end smallexample
39959
39960 The format of a library list is described by this DTD:
39961
39962 @smallexample
39963 <!-- library-list: Root element with versioning -->
39964 <!ELEMENT library-list (library)*>
39965 <!ATTLIST library-list version CDATA #FIXED "1.0">
39966 <!ELEMENT library (segment*, section*)>
39967 <!ATTLIST library name CDATA #REQUIRED>
39968 <!ELEMENT segment EMPTY>
39969 <!ATTLIST segment address CDATA #REQUIRED>
39970 <!ELEMENT section EMPTY>
39971 <!ATTLIST section address CDATA #REQUIRED>
39972 @end smallexample
39973
39974 In addition, segments and section descriptors cannot be mixed within a
39975 single library element, and you must supply at least one segment or
39976 section for each library.
39977
39978 @node Library List Format for SVR4 Targets
39979 @section Library List Format for SVR4 Targets
39980 @cindex library list format, remote protocol
39981
39982 On SVR4 platforms @value{GDBN} can use the symbol table of a dynamic loader
39983 (e.g.@: @file{ld.so}) and normal memory operations to maintain a list of
39984 shared libraries. Still a special library list provided by this packet is
39985 more efficient for the @value{GDBN} remote protocol.
39986
39987 The @samp{qXfer:libraries-svr4:read} packet returns an XML document which lists
39988 loaded libraries and their SVR4 linker parameters. For each library on SVR4
39989 target, the following parameters are reported:
39990
39991 @itemize @minus
39992 @item
39993 @code{name}, the absolute file name from the @code{l_name} field of
39994 @code{struct link_map}.
39995 @item
39996 @code{lm} with address of @code{struct link_map} used for TLS
39997 (Thread Local Storage) access.
39998 @item
39999 @code{l_addr}, the displacement as read from the field @code{l_addr} of
40000 @code{struct link_map}. For prelinked libraries this is not an absolute
40001 memory address. It is a displacement of absolute memory address against
40002 address the file was prelinked to during the library load.
40003 @item
40004 @code{l_ld}, which is memory address of the @code{PT_DYNAMIC} segment
40005 @end itemize
40006
40007 Additionally the single @code{main-lm} attribute specifies address of
40008 @code{struct link_map} used for the main executable. This parameter is used
40009 for TLS access and its presence is optional.
40010
40011 @value{GDBN} must be linked with the Expat library to support XML
40012 SVR4 library lists. @xref{Expat}.
40013
40014 A simple memory map, with two loaded libraries (which do not use prelink),
40015 looks like this:
40016
40017 @smallexample
40018 <library-list-svr4 version="1.0" main-lm="0xe4f8f8">
40019 <library name="/lib/ld-linux.so.2" lm="0xe4f51c" l_addr="0xe2d000"
40020 l_ld="0xe4eefc"/>
40021 <library name="/lib/libc.so.6" lm="0xe4fbe8" l_addr="0x154000"
40022 l_ld="0x152350"/>
40023 </library-list-svr>
40024 @end smallexample
40025
40026 The format of an SVR4 library list is described by this DTD:
40027
40028 @smallexample
40029 <!-- library-list-svr4: Root element with versioning -->
40030 <!ELEMENT library-list-svr4 (library)*>
40031 <!ATTLIST library-list-svr4 version CDATA #FIXED "1.0">
40032 <!ATTLIST library-list-svr4 main-lm CDATA #IMPLIED>
40033 <!ELEMENT library EMPTY>
40034 <!ATTLIST library name CDATA #REQUIRED>
40035 <!ATTLIST library lm CDATA #REQUIRED>
40036 <!ATTLIST library l_addr CDATA #REQUIRED>
40037 <!ATTLIST library l_ld CDATA #REQUIRED>
40038 @end smallexample
40039
40040 @node Memory Map Format
40041 @section Memory Map Format
40042 @cindex memory map format
40043
40044 To be able to write into flash memory, @value{GDBN} needs to obtain a
40045 memory map from the target. This section describes the format of the
40046 memory map.
40047
40048 The memory map is obtained using the @samp{qXfer:memory-map:read}
40049 (@pxref{qXfer memory map read}) packet and is an XML document that
40050 lists memory regions.
40051
40052 @value{GDBN} must be linked with the Expat library to support XML
40053 memory maps. @xref{Expat}.
40054
40055 The top-level structure of the document is shown below:
40056
40057 @smallexample
40058 <?xml version="1.0"?>
40059 <!DOCTYPE memory-map
40060 PUBLIC "+//IDN gnu.org//DTD GDB Memory Map V1.0//EN"
40061 "http://sourceware.org/gdb/gdb-memory-map.dtd">
40062 <memory-map>
40063 region...
40064 </memory-map>
40065 @end smallexample
40066
40067 Each region can be either:
40068
40069 @itemize
40070
40071 @item
40072 A region of RAM starting at @var{addr} and extending for @var{length}
40073 bytes from there:
40074
40075 @smallexample
40076 <memory type="ram" start="@var{addr}" length="@var{length}"/>
40077 @end smallexample
40078
40079
40080 @item
40081 A region of read-only memory:
40082
40083 @smallexample
40084 <memory type="rom" start="@var{addr}" length="@var{length}"/>
40085 @end smallexample
40086
40087
40088 @item
40089 A region of flash memory, with erasure blocks @var{blocksize}
40090 bytes in length:
40091
40092 @smallexample
40093 <memory type="flash" start="@var{addr}" length="@var{length}">
40094 <property name="blocksize">@var{blocksize}</property>
40095 </memory>
40096 @end smallexample
40097
40098 @end itemize
40099
40100 Regions must not overlap. @value{GDBN} assumes that areas of memory not covered
40101 by the memory map are RAM, and uses the ordinary @samp{M} and @samp{X}
40102 packets to write to addresses in such ranges.
40103
40104 The formal DTD for memory map format is given below:
40105
40106 @smallexample
40107 <!-- ................................................... -->
40108 <!-- Memory Map XML DTD ................................ -->
40109 <!-- File: memory-map.dtd .............................. -->
40110 <!-- .................................... .............. -->
40111 <!-- memory-map.dtd -->
40112 <!-- memory-map: Root element with versioning -->
40113 <!ELEMENT memory-map (memory | property)>
40114 <!ATTLIST memory-map version CDATA #FIXED "1.0.0">
40115 <!ELEMENT memory (property)>
40116 <!-- memory: Specifies a memory region,
40117 and its type, or device. -->
40118 <!ATTLIST memory type CDATA #REQUIRED
40119 start CDATA #REQUIRED
40120 length CDATA #REQUIRED
40121 device CDATA #IMPLIED>
40122 <!-- property: Generic attribute tag -->
40123 <!ELEMENT property (#PCDATA | property)*>
40124 <!ATTLIST property name CDATA #REQUIRED>
40125 @end smallexample
40126
40127 @node Thread List Format
40128 @section Thread List Format
40129 @cindex thread list format
40130
40131 To efficiently update the list of threads and their attributes,
40132 @value{GDBN} issues the @samp{qXfer:threads:read} packet
40133 (@pxref{qXfer threads read}) and obtains the XML document with
40134 the following structure:
40135
40136 @smallexample
40137 <?xml version="1.0"?>
40138 <threads>
40139 <thread id="id" core="0" name="name">
40140 ... description ...
40141 </thread>
40142 </threads>
40143 @end smallexample
40144
40145 Each @samp{thread} element must have the @samp{id} attribute that
40146 identifies the thread (@pxref{thread-id syntax}). The
40147 @samp{core} attribute, if present, specifies which processor core
40148 the thread was last executing on. The @samp{name} attribute, if
40149 present, specifies the human-readable name of the thread. The content
40150 of the of @samp{thread} element is interpreted as human-readable
40151 auxiliary information.
40152
40153 @node Traceframe Info Format
40154 @section Traceframe Info Format
40155 @cindex traceframe info format
40156
40157 To be able to know which objects in the inferior can be examined when
40158 inspecting a tracepoint hit, @value{GDBN} needs to obtain the list of
40159 memory ranges, registers and trace state variables that have been
40160 collected in a traceframe.
40161
40162 This list is obtained using the @samp{qXfer:traceframe-info:read}
40163 (@pxref{qXfer traceframe info read}) packet and is an XML document.
40164
40165 @value{GDBN} must be linked with the Expat library to support XML
40166 traceframe info discovery. @xref{Expat}.
40167
40168 The top-level structure of the document is shown below:
40169
40170 @smallexample
40171 <?xml version="1.0"?>
40172 <!DOCTYPE traceframe-info
40173 PUBLIC "+//IDN gnu.org//DTD GDB Memory Map V1.0//EN"
40174 "http://sourceware.org/gdb/gdb-traceframe-info.dtd">
40175 <traceframe-info>
40176 block...
40177 </traceframe-info>
40178 @end smallexample
40179
40180 Each traceframe block can be either:
40181
40182 @itemize
40183
40184 @item
40185 A region of collected memory starting at @var{addr} and extending for
40186 @var{length} bytes from there:
40187
40188 @smallexample
40189 <memory start="@var{addr}" length="@var{length}"/>
40190 @end smallexample
40191
40192 @item
40193 A block indicating trace state variable numbered @var{number} has been
40194 collected:
40195
40196 @smallexample
40197 <tvar id="@var{number}"/>
40198 @end smallexample
40199
40200 @end itemize
40201
40202 The formal DTD for the traceframe info format is given below:
40203
40204 @smallexample
40205 <!ELEMENT traceframe-info (memory | tvar)* >
40206 <!ATTLIST traceframe-info version CDATA #FIXED "1.0">
40207
40208 <!ELEMENT memory EMPTY>
40209 <!ATTLIST memory start CDATA #REQUIRED
40210 length CDATA #REQUIRED>
40211 <!ELEMENT tvar>
40212 <!ATTLIST tvar id CDATA #REQUIRED>
40213 @end smallexample
40214
40215 @node Branch Trace Format
40216 @section Branch Trace Format
40217 @cindex branch trace format
40218
40219 In order to display the branch trace of an inferior thread,
40220 @value{GDBN} needs to obtain the list of branches. This list is
40221 represented as list of sequential code blocks that are connected via
40222 branches. The code in each block has been executed sequentially.
40223
40224 This list is obtained using the @samp{qXfer:btrace:read}
40225 (@pxref{qXfer btrace read}) packet and is an XML document.
40226
40227 @value{GDBN} must be linked with the Expat library to support XML
40228 traceframe info discovery. @xref{Expat}.
40229
40230 The top-level structure of the document is shown below:
40231
40232 @smallexample
40233 <?xml version="1.0"?>
40234 <!DOCTYPE btrace
40235 PUBLIC "+//IDN gnu.org//DTD GDB Branch Trace V1.0//EN"
40236 "http://sourceware.org/gdb/gdb-btrace.dtd">
40237 <btrace>
40238 block...
40239 </btrace>
40240 @end smallexample
40241
40242 @itemize
40243
40244 @item
40245 A block of sequentially executed instructions starting at @var{begin}
40246 and ending at @var{end}:
40247
40248 @smallexample
40249 <block begin="@var{begin}" end="@var{end}"/>
40250 @end smallexample
40251
40252 @end itemize
40253
40254 The formal DTD for the branch trace format is given below:
40255
40256 @smallexample
40257 <!ELEMENT btrace (block* | pt) >
40258 <!ATTLIST btrace version CDATA #FIXED "1.0">
40259
40260 <!ELEMENT block EMPTY>
40261 <!ATTLIST block begin CDATA #REQUIRED
40262 end CDATA #REQUIRED>
40263
40264 <!ELEMENT pt (pt-config?, raw?)>
40265
40266 <!ELEMENT pt-config (cpu?)>
40267
40268 <!ELEMENT cpu EMPTY>
40269 <!ATTLIST cpu vendor CDATA #REQUIRED
40270 family CDATA #REQUIRED
40271 model CDATA #REQUIRED
40272 stepping CDATA #REQUIRED>
40273
40274 <!ELEMENT raw (#PCDATA)>
40275 @end smallexample
40276
40277 @node Branch Trace Configuration Format
40278 @section Branch Trace Configuration Format
40279 @cindex branch trace configuration format
40280
40281 For each inferior thread, @value{GDBN} can obtain the branch trace
40282 configuration using the @samp{qXfer:btrace-conf:read}
40283 (@pxref{qXfer btrace-conf read}) packet.
40284
40285 The configuration describes the branch trace format and configuration
40286 settings for that format. The following information is described:
40287
40288 @table @code
40289 @item bts
40290 This thread uses the @dfn{Branch Trace Store} (@acronym{BTS}) format.
40291 @table @code
40292 @item size
40293 The size of the @acronym{BTS} ring buffer in bytes.
40294 @end table
40295 @item pt
40296 This thread uses the @dfn{Intel Processor Trace} (@acronym{Intel
40297 PT}) format.
40298 @table @code
40299 @item size
40300 The size of the @acronym{Intel PT} ring buffer in bytes.
40301 @end table
40302 @end table
40303
40304 @value{GDBN} must be linked with the Expat library to support XML
40305 branch trace configuration discovery. @xref{Expat}.
40306
40307 The formal DTD for the branch trace configuration format is given below:
40308
40309 @smallexample
40310 <!ELEMENT btrace-conf (bts?, pt?)>
40311 <!ATTLIST btrace-conf version CDATA #FIXED "1.0">
40312
40313 <!ELEMENT bts EMPTY>
40314 <!ATTLIST bts size CDATA #IMPLIED>
40315
40316 <!ELEMENT pt EMPTY>
40317 <!ATTLIST pt size CDATA #IMPLIED>
40318 @end smallexample
40319
40320 @include agentexpr.texi
40321
40322 @node Target Descriptions
40323 @appendix Target Descriptions
40324 @cindex target descriptions
40325
40326 One of the challenges of using @value{GDBN} to debug embedded systems
40327 is that there are so many minor variants of each processor
40328 architecture in use. It is common practice for vendors to start with
40329 a standard processor core --- ARM, PowerPC, or @acronym{MIPS}, for example ---
40330 and then make changes to adapt it to a particular market niche. Some
40331 architectures have hundreds of variants, available from dozens of
40332 vendors. This leads to a number of problems:
40333
40334 @itemize @bullet
40335 @item
40336 With so many different customized processors, it is difficult for
40337 the @value{GDBN} maintainers to keep up with the changes.
40338 @item
40339 Since individual variants may have short lifetimes or limited
40340 audiences, it may not be worthwhile to carry information about every
40341 variant in the @value{GDBN} source tree.
40342 @item
40343 When @value{GDBN} does support the architecture of the embedded system
40344 at hand, the task of finding the correct architecture name to give the
40345 @command{set architecture} command can be error-prone.
40346 @end itemize
40347
40348 To address these problems, the @value{GDBN} remote protocol allows a
40349 target system to not only identify itself to @value{GDBN}, but to
40350 actually describe its own features. This lets @value{GDBN} support
40351 processor variants it has never seen before --- to the extent that the
40352 descriptions are accurate, and that @value{GDBN} understands them.
40353
40354 @value{GDBN} must be linked with the Expat library to support XML
40355 target descriptions. @xref{Expat}.
40356
40357 @menu
40358 * Retrieving Descriptions:: How descriptions are fetched from a target.
40359 * Target Description Format:: The contents of a target description.
40360 * Predefined Target Types:: Standard types available for target
40361 descriptions.
40362 * Standard Target Features:: Features @value{GDBN} knows about.
40363 @end menu
40364
40365 @node Retrieving Descriptions
40366 @section Retrieving Descriptions
40367
40368 Target descriptions can be read from the target automatically, or
40369 specified by the user manually. The default behavior is to read the
40370 description from the target. @value{GDBN} retrieves it via the remote
40371 protocol using @samp{qXfer} requests (@pxref{General Query Packets,
40372 qXfer}). The @var{annex} in the @samp{qXfer} packet will be
40373 @samp{target.xml}. The contents of the @samp{target.xml} annex are an
40374 XML document, of the form described in @ref{Target Description
40375 Format}.
40376
40377 Alternatively, you can specify a file to read for the target description.
40378 If a file is set, the target will not be queried. The commands to
40379 specify a file are:
40380
40381 @table @code
40382 @cindex set tdesc filename
40383 @item set tdesc filename @var{path}
40384 Read the target description from @var{path}.
40385
40386 @cindex unset tdesc filename
40387 @item unset tdesc filename
40388 Do not read the XML target description from a file. @value{GDBN}
40389 will use the description supplied by the current target.
40390
40391 @cindex show tdesc filename
40392 @item show tdesc filename
40393 Show the filename to read for a target description, if any.
40394 @end table
40395
40396
40397 @node Target Description Format
40398 @section Target Description Format
40399 @cindex target descriptions, XML format
40400
40401 A target description annex is an @uref{http://www.w3.org/XML/, XML}
40402 document which complies with the Document Type Definition provided in
40403 the @value{GDBN} sources in @file{gdb/features/gdb-target.dtd}. This
40404 means you can use generally available tools like @command{xmllint} to
40405 check that your feature descriptions are well-formed and valid.
40406 However, to help people unfamiliar with XML write descriptions for
40407 their targets, we also describe the grammar here.
40408
40409 Target descriptions can identify the architecture of the remote target
40410 and (for some architectures) provide information about custom register
40411 sets. They can also identify the OS ABI of the remote target.
40412 @value{GDBN} can use this information to autoconfigure for your
40413 target, or to warn you if you connect to an unsupported target.
40414
40415 Here is a simple target description:
40416
40417 @smallexample
40418 <target version="1.0">
40419 <architecture>i386:x86-64</architecture>
40420 </target>
40421 @end smallexample
40422
40423 @noindent
40424 This minimal description only says that the target uses
40425 the x86-64 architecture.
40426
40427 A target description has the following overall form, with [ ] marking
40428 optional elements and @dots{} marking repeatable elements. The elements
40429 are explained further below.
40430
40431 @smallexample
40432 <?xml version="1.0"?>
40433 <!DOCTYPE target SYSTEM "gdb-target.dtd">
40434 <target version="1.0">
40435 @r{[}@var{architecture}@r{]}
40436 @r{[}@var{osabi}@r{]}
40437 @r{[}@var{compatible}@r{]}
40438 @r{[}@var{feature}@dots{}@r{]}
40439 </target>
40440 @end smallexample
40441
40442 @noindent
40443 The description is generally insensitive to whitespace and line
40444 breaks, under the usual common-sense rules. The XML version
40445 declaration and document type declaration can generally be omitted
40446 (@value{GDBN} does not require them), but specifying them may be
40447 useful for XML validation tools. The @samp{version} attribute for
40448 @samp{<target>} may also be omitted, but we recommend
40449 including it; if future versions of @value{GDBN} use an incompatible
40450 revision of @file{gdb-target.dtd}, they will detect and report
40451 the version mismatch.
40452
40453 @subsection Inclusion
40454 @cindex target descriptions, inclusion
40455 @cindex XInclude
40456 @ifnotinfo
40457 @cindex <xi:include>
40458 @end ifnotinfo
40459
40460 It can sometimes be valuable to split a target description up into
40461 several different annexes, either for organizational purposes, or to
40462 share files between different possible target descriptions. You can
40463 divide a description into multiple files by replacing any element of
40464 the target description with an inclusion directive of the form:
40465
40466 @smallexample
40467 <xi:include href="@var{document}"/>
40468 @end smallexample
40469
40470 @noindent
40471 When @value{GDBN} encounters an element of this form, it will retrieve
40472 the named XML @var{document}, and replace the inclusion directive with
40473 the contents of that document. If the current description was read
40474 using @samp{qXfer}, then so will be the included document;
40475 @var{document} will be interpreted as the name of an annex. If the
40476 current description was read from a file, @value{GDBN} will look for
40477 @var{document} as a file in the same directory where it found the
40478 original description.
40479
40480 @subsection Architecture
40481 @cindex <architecture>
40482
40483 An @samp{<architecture>} element has this form:
40484
40485 @smallexample
40486 <architecture>@var{arch}</architecture>
40487 @end smallexample
40488
40489 @var{arch} is one of the architectures from the set accepted by
40490 @code{set architecture} (@pxref{Targets, ,Specifying a Debugging Target}).
40491
40492 @subsection OS ABI
40493 @cindex @code{<osabi>}
40494
40495 This optional field was introduced in @value{GDBN} version 7.0.
40496 Previous versions of @value{GDBN} ignore it.
40497
40498 An @samp{<osabi>} element has this form:
40499
40500 @smallexample
40501 <osabi>@var{abi-name}</osabi>
40502 @end smallexample
40503
40504 @var{abi-name} is an OS ABI name from the same selection accepted by
40505 @w{@code{set osabi}} (@pxref{ABI, ,Configuring the Current ABI}).
40506
40507 @subsection Compatible Architecture
40508 @cindex @code{<compatible>}
40509
40510 This optional field was introduced in @value{GDBN} version 7.0.
40511 Previous versions of @value{GDBN} ignore it.
40512
40513 A @samp{<compatible>} element has this form:
40514
40515 @smallexample
40516 <compatible>@var{arch}</compatible>
40517 @end smallexample
40518
40519 @var{arch} is one of the architectures from the set accepted by
40520 @code{set architecture} (@pxref{Targets, ,Specifying a Debugging Target}).
40521
40522 A @samp{<compatible>} element is used to specify that the target
40523 is able to run binaries in some other than the main target architecture
40524 given by the @samp{<architecture>} element. For example, on the
40525 Cell Broadband Engine, the main architecture is @code{powerpc:common}
40526 or @code{powerpc:common64}, but the system is able to run binaries
40527 in the @code{spu} architecture as well. The way to describe this
40528 capability with @samp{<compatible>} is as follows:
40529
40530 @smallexample
40531 <architecture>powerpc:common</architecture>
40532 <compatible>spu</compatible>
40533 @end smallexample
40534
40535 @subsection Features
40536 @cindex <feature>
40537
40538 Each @samp{<feature>} describes some logical portion of the target
40539 system. Features are currently used to describe available CPU
40540 registers and the types of their contents. A @samp{<feature>} element
40541 has this form:
40542
40543 @smallexample
40544 <feature name="@var{name}">
40545 @r{[}@var{type}@dots{}@r{]}
40546 @var{reg}@dots{}
40547 </feature>
40548 @end smallexample
40549
40550 @noindent
40551 Each feature's name should be unique within the description. The name
40552 of a feature does not matter unless @value{GDBN} has some special
40553 knowledge of the contents of that feature; if it does, the feature
40554 should have its standard name. @xref{Standard Target Features}.
40555
40556 @subsection Types
40557
40558 Any register's value is a collection of bits which @value{GDBN} must
40559 interpret. The default interpretation is a two's complement integer,
40560 but other types can be requested by name in the register description.
40561 Some predefined types are provided by @value{GDBN} (@pxref{Predefined
40562 Target Types}), and the description can define additional composite types.
40563
40564 Each type element must have an @samp{id} attribute, which gives
40565 a unique (within the containing @samp{<feature>}) name to the type.
40566 Types must be defined before they are used.
40567
40568 @cindex <vector>
40569 Some targets offer vector registers, which can be treated as arrays
40570 of scalar elements. These types are written as @samp{<vector>} elements,
40571 specifying the array element type, @var{type}, and the number of elements,
40572 @var{count}:
40573
40574 @smallexample
40575 <vector id="@var{id}" type="@var{type}" count="@var{count}"/>
40576 @end smallexample
40577
40578 @cindex <union>
40579 If a register's value is usefully viewed in multiple ways, define it
40580 with a union type containing the useful representations. The
40581 @samp{<union>} element contains one or more @samp{<field>} elements,
40582 each of which has a @var{name} and a @var{type}:
40583
40584 @smallexample
40585 <union id="@var{id}">
40586 <field name="@var{name}" type="@var{type}"/>
40587 @dots{}
40588 </union>
40589 @end smallexample
40590
40591 @cindex <struct>
40592 If a register's value is composed from several separate values, define
40593 it with a structure type. There are two forms of the @samp{<struct>}
40594 element; a @samp{<struct>} element must either contain only bitfields
40595 or contain no bitfields. If the structure contains only bitfields,
40596 its total size in bytes must be specified, each bitfield must have an
40597 explicit start and end, and bitfields are automatically assigned an
40598 integer type. The field's @var{start} should be less than or
40599 equal to its @var{end}, and zero represents the least significant bit.
40600
40601 @smallexample
40602 <struct id="@var{id}" size="@var{size}">
40603 <field name="@var{name}" start="@var{start}" end="@var{end}"/>
40604 @dots{}
40605 </struct>
40606 @end smallexample
40607
40608 If the structure contains no bitfields, then each field has an
40609 explicit type, and no implicit padding is added.
40610
40611 @smallexample
40612 <struct id="@var{id}">
40613 <field name="@var{name}" type="@var{type}"/>
40614 @dots{}
40615 </struct>
40616 @end smallexample
40617
40618 @cindex <flags>
40619 If a register's value is a series of single-bit flags, define it with
40620 a flags type. The @samp{<flags>} element has an explicit @var{size}
40621 and contains one or more @samp{<field>} elements. Each field has a
40622 @var{name}, a @var{start}, and an @var{end}. Only single-bit flags
40623 are supported.
40624
40625 @smallexample
40626 <flags id="@var{id}" size="@var{size}">
40627 <field name="@var{name}" start="@var{start}" end="@var{end}"/>
40628 @dots{}
40629 </flags>
40630 @end smallexample
40631
40632 @subsection Registers
40633 @cindex <reg>
40634
40635 Each register is represented as an element with this form:
40636
40637 @smallexample
40638 <reg name="@var{name}"
40639 bitsize="@var{size}"
40640 @r{[}regnum="@var{num}"@r{]}
40641 @r{[}save-restore="@var{save-restore}"@r{]}
40642 @r{[}type="@var{type}"@r{]}
40643 @r{[}group="@var{group}"@r{]}/>
40644 @end smallexample
40645
40646 @noindent
40647 The components are as follows:
40648
40649 @table @var
40650
40651 @item name
40652 The register's name; it must be unique within the target description.
40653
40654 @item bitsize
40655 The register's size, in bits.
40656
40657 @item regnum
40658 The register's number. If omitted, a register's number is one greater
40659 than that of the previous register (either in the current feature or in
40660 a preceding feature); the first register in the target description
40661 defaults to zero. This register number is used to read or write
40662 the register; e.g.@: it is used in the remote @code{p} and @code{P}
40663 packets, and registers appear in the @code{g} and @code{G} packets
40664 in order of increasing register number.
40665
40666 @item save-restore
40667 Whether the register should be preserved across inferior function
40668 calls; this must be either @code{yes} or @code{no}. The default is
40669 @code{yes}, which is appropriate for most registers except for
40670 some system control registers; this is not related to the target's
40671 ABI.
40672
40673 @item type
40674 The type of the register. It may be a predefined type, a type
40675 defined in the current feature, or one of the special types @code{int}
40676 and @code{float}. @code{int} is an integer type of the correct size
40677 for @var{bitsize}, and @code{float} is a floating point type (in the
40678 architecture's normal floating point format) of the correct size for
40679 @var{bitsize}. The default is @code{int}.
40680
40681 @item group
40682 The register group to which this register belongs. It must
40683 be either @code{general}, @code{float}, or @code{vector}. If no
40684 @var{group} is specified, @value{GDBN} will not display the register
40685 in @code{info registers}.
40686
40687 @end table
40688
40689 @node Predefined Target Types
40690 @section Predefined Target Types
40691 @cindex target descriptions, predefined types
40692
40693 Type definitions in the self-description can build up composite types
40694 from basic building blocks, but can not define fundamental types. Instead,
40695 standard identifiers are provided by @value{GDBN} for the fundamental
40696 types. The currently supported types are:
40697
40698 @table @code
40699
40700 @item int8
40701 @itemx int16
40702 @itemx int32
40703 @itemx int64
40704 @itemx int128
40705 Signed integer types holding the specified number of bits.
40706
40707 @item uint8
40708 @itemx uint16
40709 @itemx uint32
40710 @itemx uint64
40711 @itemx uint128
40712 Unsigned integer types holding the specified number of bits.
40713
40714 @item code_ptr
40715 @itemx data_ptr
40716 Pointers to unspecified code and data. The program counter and
40717 any dedicated return address register may be marked as code
40718 pointers; printing a code pointer converts it into a symbolic
40719 address. The stack pointer and any dedicated address registers
40720 may be marked as data pointers.
40721
40722 @item ieee_single
40723 Single precision IEEE floating point.
40724
40725 @item ieee_double
40726 Double precision IEEE floating point.
40727
40728 @item arm_fpa_ext
40729 The 12-byte extended precision format used by ARM FPA registers.
40730
40731 @item i387_ext
40732 The 10-byte extended precision format used by x87 registers.
40733
40734 @item i386_eflags
40735 32bit @sc{eflags} register used by x86.
40736
40737 @item i386_mxcsr
40738 32bit @sc{mxcsr} register used by x86.
40739
40740 @end table
40741
40742 @node Standard Target Features
40743 @section Standard Target Features
40744 @cindex target descriptions, standard features
40745
40746 A target description must contain either no registers or all the
40747 target's registers. If the description contains no registers, then
40748 @value{GDBN} will assume a default register layout, selected based on
40749 the architecture. If the description contains any registers, the
40750 default layout will not be used; the standard registers must be
40751 described in the target description, in such a way that @value{GDBN}
40752 can recognize them.
40753
40754 This is accomplished by giving specific names to feature elements
40755 which contain standard registers. @value{GDBN} will look for features
40756 with those names and verify that they contain the expected registers;
40757 if any known feature is missing required registers, or if any required
40758 feature is missing, @value{GDBN} will reject the target
40759 description. You can add additional registers to any of the
40760 standard features --- @value{GDBN} will display them just as if
40761 they were added to an unrecognized feature.
40762
40763 This section lists the known features and their expected contents.
40764 Sample XML documents for these features are included in the
40765 @value{GDBN} source tree, in the directory @file{gdb/features}.
40766
40767 Names recognized by @value{GDBN} should include the name of the
40768 company or organization which selected the name, and the overall
40769 architecture to which the feature applies; so e.g.@: the feature
40770 containing ARM core registers is named @samp{org.gnu.gdb.arm.core}.
40771
40772 The names of registers are not case sensitive for the purpose
40773 of recognizing standard features, but @value{GDBN} will only display
40774 registers using the capitalization used in the description.
40775
40776 @menu
40777 * AArch64 Features::
40778 * ARM Features::
40779 * i386 Features::
40780 * MicroBlaze Features::
40781 * MIPS Features::
40782 * M68K Features::
40783 * Nios II Features::
40784 * PowerPC Features::
40785 * S/390 and System z Features::
40786 * TIC6x Features::
40787 @end menu
40788
40789
40790 @node AArch64 Features
40791 @subsection AArch64 Features
40792 @cindex target descriptions, AArch64 features
40793
40794 The @samp{org.gnu.gdb.aarch64.core} feature is required for AArch64
40795 targets. It should contain registers @samp{x0} through @samp{x30},
40796 @samp{sp}, @samp{pc}, and @samp{cpsr}.
40797
40798 The @samp{org.gnu.gdb.aarch64.fpu} feature is optional. If present,
40799 it should contain registers @samp{v0} through @samp{v31}, @samp{fpsr},
40800 and @samp{fpcr}.
40801
40802 @node ARM Features
40803 @subsection ARM Features
40804 @cindex target descriptions, ARM features
40805
40806 The @samp{org.gnu.gdb.arm.core} feature is required for non-M-profile
40807 ARM targets.
40808 It should contain registers @samp{r0} through @samp{r13}, @samp{sp},
40809 @samp{lr}, @samp{pc}, and @samp{cpsr}.
40810
40811 For M-profile targets (e.g. Cortex-M3), the @samp{org.gnu.gdb.arm.core}
40812 feature is replaced by @samp{org.gnu.gdb.arm.m-profile}. It should contain
40813 registers @samp{r0} through @samp{r13}, @samp{sp}, @samp{lr}, @samp{pc},
40814 and @samp{xpsr}.
40815
40816 The @samp{org.gnu.gdb.arm.fpa} feature is optional. If present, it
40817 should contain registers @samp{f0} through @samp{f7} and @samp{fps}.
40818
40819 The @samp{org.gnu.gdb.xscale.iwmmxt} feature is optional. If present,
40820 it should contain at least registers @samp{wR0} through @samp{wR15} and
40821 @samp{wCGR0} through @samp{wCGR3}. The @samp{wCID}, @samp{wCon},
40822 @samp{wCSSF}, and @samp{wCASF} registers are optional.
40823
40824 The @samp{org.gnu.gdb.arm.vfp} feature is optional. If present, it
40825 should contain at least registers @samp{d0} through @samp{d15}. If
40826 they are present, @samp{d16} through @samp{d31} should also be included.
40827 @value{GDBN} will synthesize the single-precision registers from
40828 halves of the double-precision registers.
40829
40830 The @samp{org.gnu.gdb.arm.neon} feature is optional. It does not
40831 need to contain registers; it instructs @value{GDBN} to display the
40832 VFP double-precision registers as vectors and to synthesize the
40833 quad-precision registers from pairs of double-precision registers.
40834 If this feature is present, @samp{org.gnu.gdb.arm.vfp} must also
40835 be present and include 32 double-precision registers.
40836
40837 @node i386 Features
40838 @subsection i386 Features
40839 @cindex target descriptions, i386 features
40840
40841 The @samp{org.gnu.gdb.i386.core} feature is required for i386/amd64
40842 targets. It should describe the following registers:
40843
40844 @itemize @minus
40845 @item
40846 @samp{eax} through @samp{edi} plus @samp{eip} for i386
40847 @item
40848 @samp{rax} through @samp{r15} plus @samp{rip} for amd64
40849 @item
40850 @samp{eflags}, @samp{cs}, @samp{ss}, @samp{ds}, @samp{es},
40851 @samp{fs}, @samp{gs}
40852 @item
40853 @samp{st0} through @samp{st7}
40854 @item
40855 @samp{fctrl}, @samp{fstat}, @samp{ftag}, @samp{fiseg}, @samp{fioff},
40856 @samp{foseg}, @samp{fooff} and @samp{fop}
40857 @end itemize
40858
40859 The register sets may be different, depending on the target.
40860
40861 The @samp{org.gnu.gdb.i386.sse} feature is optional. It should
40862 describe registers:
40863
40864 @itemize @minus
40865 @item
40866 @samp{xmm0} through @samp{xmm7} for i386
40867 @item
40868 @samp{xmm0} through @samp{xmm15} for amd64
40869 @item
40870 @samp{mxcsr}
40871 @end itemize
40872
40873 The @samp{org.gnu.gdb.i386.avx} feature is optional and requires the
40874 @samp{org.gnu.gdb.i386.sse} feature. It should
40875 describe the upper 128 bits of @sc{ymm} registers:
40876
40877 @itemize @minus
40878 @item
40879 @samp{ymm0h} through @samp{ymm7h} for i386
40880 @item
40881 @samp{ymm0h} through @samp{ymm15h} for amd64
40882 @end itemize
40883
40884 The @samp{org.gnu.gdb.i386.mpx} is an optional feature representing Intel
40885 Memory Protection Extension (MPX). It should describe the following registers:
40886
40887 @itemize @minus
40888 @item
40889 @samp{bnd0raw} through @samp{bnd3raw} for i386 and amd64.
40890 @item
40891 @samp{bndcfgu} and @samp{bndstatus} for i386 and amd64.
40892 @end itemize
40893
40894 The @samp{org.gnu.gdb.i386.linux} feature is optional. It should
40895 describe a single register, @samp{orig_eax}.
40896
40897 The @samp{org.gnu.gdb.i386.avx512} feature is optional and requires the
40898 @samp{org.gnu.gdb.i386.avx} feature. It should
40899 describe additional @sc{xmm} registers:
40900
40901 @itemize @minus
40902 @item
40903 @samp{xmm16h} through @samp{xmm31h}, only valid for amd64.
40904 @end itemize
40905
40906 It should describe the upper 128 bits of additional @sc{ymm} registers:
40907
40908 @itemize @minus
40909 @item
40910 @samp{ymm16h} through @samp{ymm31h}, only valid for amd64.
40911 @end itemize
40912
40913 It should
40914 describe the upper 256 bits of @sc{zmm} registers:
40915
40916 @itemize @minus
40917 @item
40918 @samp{zmm0h} through @samp{zmm7h} for i386.
40919 @item
40920 @samp{zmm0h} through @samp{zmm15h} for amd64.
40921 @end itemize
40922
40923 It should
40924 describe the additional @sc{zmm} registers:
40925
40926 @itemize @minus
40927 @item
40928 @samp{zmm16h} through @samp{zmm31h}, only valid for amd64.
40929 @end itemize
40930
40931 @node MicroBlaze Features
40932 @subsection MicroBlaze Features
40933 @cindex target descriptions, MicroBlaze features
40934
40935 The @samp{org.gnu.gdb.microblaze.core} feature is required for MicroBlaze
40936 targets. It should contain registers @samp{r0} through @samp{r31},
40937 @samp{rpc}, @samp{rmsr}, @samp{rear}, @samp{resr}, @samp{rfsr}, @samp{rbtr},
40938 @samp{rpvr}, @samp{rpvr1} through @samp{rpvr11}, @samp{redr}, @samp{rpid},
40939 @samp{rzpr}, @samp{rtlbx}, @samp{rtlbsx}, @samp{rtlblo}, and @samp{rtlbhi}.
40940
40941 The @samp{org.gnu.gdb.microblaze.stack-protect} feature is optional.
40942 If present, it should contain registers @samp{rshr} and @samp{rslr}
40943
40944 @node MIPS Features
40945 @subsection @acronym{MIPS} Features
40946 @cindex target descriptions, @acronym{MIPS} features
40947
40948 The @samp{org.gnu.gdb.mips.cpu} feature is required for @acronym{MIPS} targets.
40949 It should contain registers @samp{r0} through @samp{r31}, @samp{lo},
40950 @samp{hi}, and @samp{pc}. They may be 32-bit or 64-bit depending
40951 on the target.
40952
40953 The @samp{org.gnu.gdb.mips.cp0} feature is also required. It should
40954 contain at least the @samp{status}, @samp{badvaddr}, and @samp{cause}
40955 registers. They may be 32-bit or 64-bit depending on the target.
40956
40957 The @samp{org.gnu.gdb.mips.fpu} feature is currently required, though
40958 it may be optional in a future version of @value{GDBN}. It should
40959 contain registers @samp{f0} through @samp{f31}, @samp{fcsr}, and
40960 @samp{fir}. They may be 32-bit or 64-bit depending on the target.
40961
40962 The @samp{org.gnu.gdb.mips.dsp} feature is optional. It should
40963 contain registers @samp{hi1} through @samp{hi3}, @samp{lo1} through
40964 @samp{lo3}, and @samp{dspctl}. The @samp{dspctl} register should
40965 be 32-bit and the rest may be 32-bit or 64-bit depending on the target.
40966
40967 The @samp{org.gnu.gdb.mips.linux} feature is optional. It should
40968 contain a single register, @samp{restart}, which is used by the
40969 Linux kernel to control restartable syscalls.
40970
40971 @node M68K Features
40972 @subsection M68K Features
40973 @cindex target descriptions, M68K features
40974
40975 @table @code
40976 @item @samp{org.gnu.gdb.m68k.core}
40977 @itemx @samp{org.gnu.gdb.coldfire.core}
40978 @itemx @samp{org.gnu.gdb.fido.core}
40979 One of those features must be always present.
40980 The feature that is present determines which flavor of m68k is
40981 used. The feature that is present should contain registers
40982 @samp{d0} through @samp{d7}, @samp{a0} through @samp{a5}, @samp{fp},
40983 @samp{sp}, @samp{ps} and @samp{pc}.
40984
40985 @item @samp{org.gnu.gdb.coldfire.fp}
40986 This feature is optional. If present, it should contain registers
40987 @samp{fp0} through @samp{fp7}, @samp{fpcontrol}, @samp{fpstatus} and
40988 @samp{fpiaddr}.
40989 @end table
40990
40991 @node Nios II Features
40992 @subsection Nios II Features
40993 @cindex target descriptions, Nios II features
40994
40995 The @samp{org.gnu.gdb.nios2.cpu} feature is required for Nios II
40996 targets. It should contain the 32 core registers (@samp{zero},
40997 @samp{at}, @samp{r2} through @samp{r23}, @samp{et} through @samp{ra}),
40998 @samp{pc}, and the 16 control registers (@samp{status} through
40999 @samp{mpuacc}).
41000
41001 @node PowerPC Features
41002 @subsection PowerPC Features
41003 @cindex target descriptions, PowerPC features
41004
41005 The @samp{org.gnu.gdb.power.core} feature is required for PowerPC
41006 targets. It should contain registers @samp{r0} through @samp{r31},
41007 @samp{pc}, @samp{msr}, @samp{cr}, @samp{lr}, @samp{ctr}, and
41008 @samp{xer}. They may be 32-bit or 64-bit depending on the target.
41009
41010 The @samp{org.gnu.gdb.power.fpu} feature is optional. It should
41011 contain registers @samp{f0} through @samp{f31} and @samp{fpscr}.
41012
41013 The @samp{org.gnu.gdb.power.altivec} feature is optional. It should
41014 contain registers @samp{vr0} through @samp{vr31}, @samp{vscr},
41015 and @samp{vrsave}.
41016
41017 The @samp{org.gnu.gdb.power.vsx} feature is optional. It should
41018 contain registers @samp{vs0h} through @samp{vs31h}. @value{GDBN}
41019 will combine these registers with the floating point registers
41020 (@samp{f0} through @samp{f31}) and the altivec registers (@samp{vr0}
41021 through @samp{vr31}) to present the 128-bit wide registers @samp{vs0}
41022 through @samp{vs63}, the set of vector registers for POWER7.
41023
41024 The @samp{org.gnu.gdb.power.spe} feature is optional. It should
41025 contain registers @samp{ev0h} through @samp{ev31h}, @samp{acc}, and
41026 @samp{spefscr}. SPE targets should provide 32-bit registers in
41027 @samp{org.gnu.gdb.power.core} and provide the upper halves in
41028 @samp{ev0h} through @samp{ev31h}. @value{GDBN} will combine
41029 these to present registers @samp{ev0} through @samp{ev31} to the
41030 user.
41031
41032 @node S/390 and System z Features
41033 @subsection S/390 and System z Features
41034 @cindex target descriptions, S/390 features
41035 @cindex target descriptions, System z features
41036
41037 The @samp{org.gnu.gdb.s390.core} feature is required for S/390 and
41038 System z targets. It should contain the PSW and the 16 general
41039 registers. In particular, System z targets should provide the 64-bit
41040 registers @samp{pswm}, @samp{pswa}, and @samp{r0} through @samp{r15}.
41041 S/390 targets should provide the 32-bit versions of these registers.
41042 A System z target that runs in 31-bit addressing mode should provide
41043 32-bit versions of @samp{pswm} and @samp{pswa}, as well as the general
41044 register's upper halves @samp{r0h} through @samp{r15h}, and their
41045 lower halves @samp{r0l} through @samp{r15l}.
41046
41047 The @samp{org.gnu.gdb.s390.fpr} feature is required. It should
41048 contain the 64-bit registers @samp{f0} through @samp{f15}, and
41049 @samp{fpc}.
41050
41051 The @samp{org.gnu.gdb.s390.acr} feature is required. It should
41052 contain the 32-bit registers @samp{acr0} through @samp{acr15}.
41053
41054 The @samp{org.gnu.gdb.s390.linux} feature is optional. It should
41055 contain the register @samp{orig_r2}, which is 64-bit wide on System z
41056 targets and 32-bit otherwise. In addition, the feature may contain
41057 the @samp{last_break} register, whose width depends on the addressing
41058 mode, as well as the @samp{system_call} register, which is always
41059 32-bit wide.
41060
41061 The @samp{org.gnu.gdb.s390.tdb} feature is optional. It should
41062 contain the 64-bit registers @samp{tdb0}, @samp{tac}, @samp{tct},
41063 @samp{atia}, and @samp{tr0} through @samp{tr15}.
41064
41065 The @samp{org.gnu.gdb.s390.vx} feature is optional. It should contain
41066 64-bit wide registers @samp{v0l} through @samp{v15l}, which will be
41067 combined by @value{GDBN} with the floating point registers @samp{f0}
41068 through @samp{f15} to present the 128-bit wide vector registers
41069 @samp{v0} through @samp{v15}. In addition, this feature should
41070 contain the 128-bit wide vector registers @samp{v16} through
41071 @samp{v31}.
41072
41073 @node TIC6x Features
41074 @subsection TMS320C6x Features
41075 @cindex target descriptions, TIC6x features
41076 @cindex target descriptions, TMS320C6x features
41077 The @samp{org.gnu.gdb.tic6x.core} feature is required for TMS320C6x
41078 targets. It should contain registers @samp{A0} through @samp{A15},
41079 registers @samp{B0} through @samp{B15}, @samp{CSR} and @samp{PC}.
41080
41081 The @samp{org.gnu.gdb.tic6x.gp} feature is optional. It should
41082 contain registers @samp{A16} through @samp{A31} and @samp{B16}
41083 through @samp{B31}.
41084
41085 The @samp{org.gnu.gdb.tic6x.c6xp} feature is optional. It should
41086 contain registers @samp{TSR}, @samp{ILC} and @samp{RILC}.
41087
41088 @node Operating System Information
41089 @appendix Operating System Information
41090 @cindex operating system information
41091
41092 @menu
41093 * Process list::
41094 @end menu
41095
41096 Users of @value{GDBN} often wish to obtain information about the state of
41097 the operating system running on the target---for example the list of
41098 processes, or the list of open files. This section describes the
41099 mechanism that makes it possible. This mechanism is similar to the
41100 target features mechanism (@pxref{Target Descriptions}), but focuses
41101 on a different aspect of target.
41102
41103 Operating system information is retrived from the target via the
41104 remote protocol, using @samp{qXfer} requests (@pxref{qXfer osdata
41105 read}). The object name in the request should be @samp{osdata}, and
41106 the @var{annex} identifies the data to be fetched.
41107
41108 @node Process list
41109 @appendixsection Process list
41110 @cindex operating system information, process list
41111
41112 When requesting the process list, the @var{annex} field in the
41113 @samp{qXfer} request should be @samp{processes}. The returned data is
41114 an XML document. The formal syntax of this document is defined in
41115 @file{gdb/features/osdata.dtd}.
41116
41117 An example document is:
41118
41119 @smallexample
41120 <?xml version="1.0"?>
41121 <!DOCTYPE target SYSTEM "osdata.dtd">
41122 <osdata type="processes">
41123 <item>
41124 <column name="pid">1</column>
41125 <column name="user">root</column>
41126 <column name="command">/sbin/init</column>
41127 <column name="cores">1,2,3</column>
41128 </item>
41129 </osdata>
41130 @end smallexample
41131
41132 Each item should include a column whose name is @samp{pid}. The value
41133 of that column should identify the process on the target. The
41134 @samp{user} and @samp{command} columns are optional, and will be
41135 displayed by @value{GDBN}. The @samp{cores} column, if present,
41136 should contain a comma-separated list of cores that this process
41137 is running on. Target may provide additional columns,
41138 which @value{GDBN} currently ignores.
41139
41140 @node Trace File Format
41141 @appendix Trace File Format
41142 @cindex trace file format
41143
41144 The trace file comes in three parts: a header, a textual description
41145 section, and a trace frame section with binary data.
41146
41147 The header has the form @code{\x7fTRACE0\n}. The first byte is
41148 @code{0x7f} so as to indicate that the file contains binary data,
41149 while the @code{0} is a version number that may have different values
41150 in the future.
41151
41152 The description section consists of multiple lines of @sc{ascii} text
41153 separated by newline characters (@code{0xa}). The lines may include a
41154 variety of optional descriptive or context-setting information, such
41155 as tracepoint definitions or register set size. @value{GDBN} will
41156 ignore any line that it does not recognize. An empty line marks the end
41157 of this section.
41158
41159 @table @code
41160 @item R @var{size}
41161 Specifies the size of a register block in bytes. This is equal to the
41162 size of a @code{g} packet payload in the remote protocol. @var{size}
41163 is an ascii decimal number. There should be only one such line in
41164 a single trace file.
41165
41166 @item status @var{status}
41167 Trace status. @var{status} has the same format as a @code{qTStatus}
41168 remote packet reply. There should be only one such line in a single trace
41169 file.
41170
41171 @item tp @var{payload}
41172 Tracepoint definition. The @var{payload} has the same format as
41173 @code{qTfP}/@code{qTsP} remote packet reply payload. A single tracepoint
41174 may take multiple lines of definition, corresponding to the multiple
41175 reply packets.
41176
41177 @item tsv @var{payload}
41178 Trace state variable definition. The @var{payload} has the same format as
41179 @code{qTfV}/@code{qTsV} remote packet reply payload. A single variable
41180 may take multiple lines of definition, corresponding to the multiple
41181 reply packets.
41182
41183 @item tdesc @var{payload}
41184 Target description in XML format. The @var{payload} is a single line of
41185 the XML file. All such lines should be concatenated together to get
41186 the original XML file. This file is in the same format as @code{qXfer}
41187 @code{features} payload, and corresponds to the main @code{target.xml}
41188 file. Includes are not allowed.
41189
41190 @end table
41191
41192 The trace frame section consists of a number of consecutive frames.
41193 Each frame begins with a two-byte tracepoint number, followed by a
41194 four-byte size giving the amount of data in the frame. The data in
41195 the frame consists of a number of blocks, each introduced by a
41196 character indicating its type (at least register, memory, and trace
41197 state variable). The data in this section is raw binary, not a
41198 hexadecimal or other encoding; its endianness matches the target's
41199 endianness.
41200
41201 @c FIXME bi-arch may require endianness/arch info in description section
41202
41203 @table @code
41204 @item R @var{bytes}
41205 Register block. The number and ordering of bytes matches that of a
41206 @code{g} packet in the remote protocol. Note that these are the
41207 actual bytes, in target order, not a hexadecimal encoding.
41208
41209 @item M @var{address} @var{length} @var{bytes}...
41210 Memory block. This is a contiguous block of memory, at the 8-byte
41211 address @var{address}, with a 2-byte length @var{length}, followed by
41212 @var{length} bytes.
41213
41214 @item V @var{number} @var{value}
41215 Trace state variable block. This records the 8-byte signed value
41216 @var{value} of trace state variable numbered @var{number}.
41217
41218 @end table
41219
41220 Future enhancements of the trace file format may include additional types
41221 of blocks.
41222
41223 @node Index Section Format
41224 @appendix @code{.gdb_index} section format
41225 @cindex .gdb_index section format
41226 @cindex index section format
41227
41228 This section documents the index section that is created by @code{save
41229 gdb-index} (@pxref{Index Files}). The index section is
41230 DWARF-specific; some knowledge of DWARF is assumed in this
41231 description.
41232
41233 The mapped index file format is designed to be directly
41234 @code{mmap}able on any architecture. In most cases, a datum is
41235 represented using a little-endian 32-bit integer value, called an
41236 @code{offset_type}. Big endian machines must byte-swap the values
41237 before using them. Exceptions to this rule are noted. The data is
41238 laid out such that alignment is always respected.
41239
41240 A mapped index consists of several areas, laid out in order.
41241
41242 @enumerate
41243 @item
41244 The file header. This is a sequence of values, of @code{offset_type}
41245 unless otherwise noted:
41246
41247 @enumerate
41248 @item
41249 The version number, currently 8. Versions 1, 2 and 3 are obsolete.
41250 Version 4 uses a different hashing function from versions 5 and 6.
41251 Version 6 includes symbols for inlined functions, whereas versions 4
41252 and 5 do not. Version 7 adds attributes to the CU indices in the
41253 symbol table. Version 8 specifies that symbols from DWARF type units
41254 (@samp{DW_TAG_type_unit}) refer to the type unit's symbol table and not the
41255 compilation unit (@samp{DW_TAG_comp_unit}) using the type.
41256
41257 @value{GDBN} will only read version 4, 5, or 6 indices
41258 by specifying @code{set use-deprecated-index-sections on}.
41259 GDB has a workaround for potentially broken version 7 indices so it is
41260 currently not flagged as deprecated.
41261
41262 @item
41263 The offset, from the start of the file, of the CU list.
41264
41265 @item
41266 The offset, from the start of the file, of the types CU list. Note
41267 that this area can be empty, in which case this offset will be equal
41268 to the next offset.
41269
41270 @item
41271 The offset, from the start of the file, of the address area.
41272
41273 @item
41274 The offset, from the start of the file, of the symbol table.
41275
41276 @item
41277 The offset, from the start of the file, of the constant pool.
41278 @end enumerate
41279
41280 @item
41281 The CU list. This is a sequence of pairs of 64-bit little-endian
41282 values, sorted by the CU offset. The first element in each pair is
41283 the offset of a CU in the @code{.debug_info} section. The second
41284 element in each pair is the length of that CU. References to a CU
41285 elsewhere in the map are done using a CU index, which is just the
41286 0-based index into this table. Note that if there are type CUs, then
41287 conceptually CUs and type CUs form a single list for the purposes of
41288 CU indices.
41289
41290 @item
41291 The types CU list. This is a sequence of triplets of 64-bit
41292 little-endian values. In a triplet, the first value is the CU offset,
41293 the second value is the type offset in the CU, and the third value is
41294 the type signature. The types CU list is not sorted.
41295
41296 @item
41297 The address area. The address area consists of a sequence of address
41298 entries. Each address entry has three elements:
41299
41300 @enumerate
41301 @item
41302 The low address. This is a 64-bit little-endian value.
41303
41304 @item
41305 The high address. This is a 64-bit little-endian value. Like
41306 @code{DW_AT_high_pc}, the value is one byte beyond the end.
41307
41308 @item
41309 The CU index. This is an @code{offset_type} value.
41310 @end enumerate
41311
41312 @item
41313 The symbol table. This is an open-addressed hash table. The size of
41314 the hash table is always a power of 2.
41315
41316 Each slot in the hash table consists of a pair of @code{offset_type}
41317 values. The first value is the offset of the symbol's name in the
41318 constant pool. The second value is the offset of the CU vector in the
41319 constant pool.
41320
41321 If both values are 0, then this slot in the hash table is empty. This
41322 is ok because while 0 is a valid constant pool index, it cannot be a
41323 valid index for both a string and a CU vector.
41324
41325 The hash value for a table entry is computed by applying an
41326 iterative hash function to the symbol's name. Starting with an
41327 initial value of @code{r = 0}, each (unsigned) character @samp{c} in
41328 the string is incorporated into the hash using the formula depending on the
41329 index version:
41330
41331 @table @asis
41332 @item Version 4
41333 The formula is @code{r = r * 67 + c - 113}.
41334
41335 @item Versions 5 to 7
41336 The formula is @code{r = r * 67 + tolower (c) - 113}.
41337 @end table
41338
41339 The terminating @samp{\0} is not incorporated into the hash.
41340
41341 The step size used in the hash table is computed via
41342 @code{((hash * 17) & (size - 1)) | 1}, where @samp{hash} is the hash
41343 value, and @samp{size} is the size of the hash table. The step size
41344 is used to find the next candidate slot when handling a hash
41345 collision.
41346
41347 The names of C@t{++} symbols in the hash table are canonicalized. We
41348 don't currently have a simple description of the canonicalization
41349 algorithm; if you intend to create new index sections, you must read
41350 the code.
41351
41352 @item
41353 The constant pool. This is simply a bunch of bytes. It is organized
41354 so that alignment is correct: CU vectors are stored first, followed by
41355 strings.
41356
41357 A CU vector in the constant pool is a sequence of @code{offset_type}
41358 values. The first value is the number of CU indices in the vector.
41359 Each subsequent value is the index and symbol attributes of a CU in
41360 the CU list. This element in the hash table is used to indicate which
41361 CUs define the symbol and how the symbol is used.
41362 See below for the format of each CU index+attributes entry.
41363
41364 A string in the constant pool is zero-terminated.
41365 @end enumerate
41366
41367 Attributes were added to CU index values in @code{.gdb_index} version 7.
41368 If a symbol has multiple uses within a CU then there is one
41369 CU index+attributes value for each use.
41370
41371 The format of each CU index+attributes entry is as follows
41372 (bit 0 = LSB):
41373
41374 @table @asis
41375
41376 @item Bits 0-23
41377 This is the index of the CU in the CU list.
41378 @item Bits 24-27
41379 These bits are reserved for future purposes and must be zero.
41380 @item Bits 28-30
41381 The kind of the symbol in the CU.
41382
41383 @table @asis
41384 @item 0
41385 This value is reserved and should not be used.
41386 By reserving zero the full @code{offset_type} value is backwards compatible
41387 with previous versions of the index.
41388 @item 1
41389 The symbol is a type.
41390 @item 2
41391 The symbol is a variable or an enum value.
41392 @item 3
41393 The symbol is a function.
41394 @item 4
41395 Any other kind of symbol.
41396 @item 5,6,7
41397 These values are reserved.
41398 @end table
41399
41400 @item Bit 31
41401 This bit is zero if the value is global and one if it is static.
41402
41403 The determination of whether a symbol is global or static is complicated.
41404 The authorative reference is the file @file{dwarf2read.c} in
41405 @value{GDBN} sources.
41406
41407 @end table
41408
41409 This pseudo-code describes the computation of a symbol's kind and
41410 global/static attributes in the index.
41411
41412 @smallexample
41413 is_external = get_attribute (die, DW_AT_external);
41414 language = get_attribute (cu_die, DW_AT_language);
41415 switch (die->tag)
41416 @{
41417 case DW_TAG_typedef:
41418 case DW_TAG_base_type:
41419 case DW_TAG_subrange_type:
41420 kind = TYPE;
41421 is_static = 1;
41422 break;
41423 case DW_TAG_enumerator:
41424 kind = VARIABLE;
41425 is_static = (language != CPLUS && language != JAVA);
41426 break;
41427 case DW_TAG_subprogram:
41428 kind = FUNCTION;
41429 is_static = ! (is_external || language == ADA);
41430 break;
41431 case DW_TAG_constant:
41432 kind = VARIABLE;
41433 is_static = ! is_external;
41434 break;
41435 case DW_TAG_variable:
41436 kind = VARIABLE;
41437 is_static = ! is_external;
41438 break;
41439 case DW_TAG_namespace:
41440 kind = TYPE;
41441 is_static = 0;
41442 break;
41443 case DW_TAG_class_type:
41444 case DW_TAG_interface_type:
41445 case DW_TAG_structure_type:
41446 case DW_TAG_union_type:
41447 case DW_TAG_enumeration_type:
41448 kind = TYPE;
41449 is_static = (language != CPLUS && language != JAVA);
41450 break;
41451 default:
41452 assert (0);
41453 @}
41454 @end smallexample
41455
41456 @node Man Pages
41457 @appendix Manual pages
41458 @cindex Man pages
41459
41460 @menu
41461 * gdb man:: The GNU Debugger man page
41462 * gdbserver man:: Remote Server for the GNU Debugger man page
41463 * gcore man:: Generate a core file of a running program
41464 * gdbinit man:: gdbinit scripts
41465 @end menu
41466
41467 @node gdb man
41468 @heading gdb man
41469
41470 @c man title gdb The GNU Debugger
41471
41472 @c man begin SYNOPSIS gdb
41473 gdb [@option{-help}] [@option{-nh}] [@option{-nx}] [@option{-q}]
41474 [@option{-batch}] [@option{-cd=}@var{dir}] [@option{-f}]
41475 [@option{-b}@w{ }@var{bps}]
41476 [@option{-tty=}@var{dev}] [@option{-s} @var{symfile}]
41477 [@option{-e}@w{ }@var{prog}] [@option{-se}@w{ }@var{prog}]
41478 [@option{-c}@w{ }@var{core}] [@option{-p}@w{ }@var{procID}]
41479 [@option{-x}@w{ }@var{cmds}] [@option{-d}@w{ }@var{dir}]
41480 [@var{prog}|@var{prog} @var{procID}|@var{prog} @var{core}]
41481 @c man end
41482
41483 @c man begin DESCRIPTION gdb
41484 The purpose of a debugger such as @value{GDBN} is to allow you to see what is
41485 going on ``inside'' another program while it executes -- or what another
41486 program was doing at the moment it crashed.
41487
41488 @value{GDBN} can do four main kinds of things (plus other things in support of
41489 these) to help you catch bugs in the act:
41490
41491 @itemize @bullet
41492 @item
41493 Start your program, specifying anything that might affect its behavior.
41494
41495 @item
41496 Make your program stop on specified conditions.
41497
41498 @item
41499 Examine what has happened, when your program has stopped.
41500
41501 @item
41502 Change things in your program, so you can experiment with correcting the
41503 effects of one bug and go on to learn about another.
41504 @end itemize
41505
41506 You can use @value{GDBN} to debug programs written in C, C@t{++}, Fortran and
41507 Modula-2.
41508
41509 @value{GDBN} is invoked with the shell command @code{gdb}. Once started, it reads
41510 commands from the terminal until you tell it to exit with the @value{GDBN}
41511 command @code{quit}. You can get online help from @value{GDBN} itself
41512 by using the command @code{help}.
41513
41514 You can run @code{gdb} with no arguments or options; but the most
41515 usual way to start @value{GDBN} is with one argument or two, specifying an
41516 executable program as the argument:
41517
41518 @smallexample
41519 gdb program
41520 @end smallexample
41521
41522 You can also start with both an executable program and a core file specified:
41523
41524 @smallexample
41525 gdb program core
41526 @end smallexample
41527
41528 You can, instead, specify a process ID as a second argument, if you want
41529 to debug a running process:
41530
41531 @smallexample
41532 gdb program 1234
41533 gdb -p 1234
41534 @end smallexample
41535
41536 @noindent
41537 would attach @value{GDBN} to process @code{1234} (unless you also have a file
41538 named @file{1234}; @value{GDBN} does check for a core file first).
41539 With option @option{-p} you can omit the @var{program} filename.
41540
41541 Here are some of the most frequently needed @value{GDBN} commands:
41542
41543 @c pod2man highlights the right hand side of the @item lines.
41544 @table @env
41545 @item break [@var{file}:]@var{functiop}
41546 Set a breakpoint at @var{function} (in @var{file}).
41547
41548 @item run [@var{arglist}]
41549 Start your program (with @var{arglist}, if specified).
41550
41551 @item bt
41552 Backtrace: display the program stack.
41553
41554 @item print @var{expr}
41555 Display the value of an expression.
41556
41557 @item c
41558 Continue running your program (after stopping, e.g. at a breakpoint).
41559
41560 @item next
41561 Execute next program line (after stopping); step @emph{over} any
41562 function calls in the line.
41563
41564 @item edit [@var{file}:]@var{function}
41565 look at the program line where it is presently stopped.
41566
41567 @item list [@var{file}:]@var{function}
41568 type the text of the program in the vicinity of where it is presently stopped.
41569
41570 @item step
41571 Execute next program line (after stopping); step @emph{into} any
41572 function calls in the line.
41573
41574 @item help [@var{name}]
41575 Show information about @value{GDBN} command @var{name}, or general information
41576 about using @value{GDBN}.
41577
41578 @item quit
41579 Exit from @value{GDBN}.
41580 @end table
41581
41582 @ifset man
41583 For full details on @value{GDBN},
41584 see @cite{Using GDB: A Guide to the GNU Source-Level Debugger},
41585 by Richard M. Stallman and Roland H. Pesch. The same text is available online
41586 as the @code{gdb} entry in the @code{info} program.
41587 @end ifset
41588 @c man end
41589
41590 @c man begin OPTIONS gdb
41591 Any arguments other than options specify an executable
41592 file and core file (or process ID); that is, the first argument
41593 encountered with no
41594 associated option flag is equivalent to a @option{-se} option, and the second,
41595 if any, is equivalent to a @option{-c} option if it's the name of a file.
41596 Many options have
41597 both long and short forms; both are shown here. The long forms are also
41598 recognized if you truncate them, so long as enough of the option is
41599 present to be unambiguous. (If you prefer, you can flag option
41600 arguments with @option{+} rather than @option{-}, though we illustrate the
41601 more usual convention.)
41602
41603 All the options and command line arguments you give are processed
41604 in sequential order. The order makes a difference when the @option{-x}
41605 option is used.
41606
41607 @table @env
41608 @item -help
41609 @itemx -h
41610 List all options, with brief explanations.
41611
41612 @item -symbols=@var{file}
41613 @itemx -s @var{file}
41614 Read symbol table from file @var{file}.
41615
41616 @item -write
41617 Enable writing into executable and core files.
41618
41619 @item -exec=@var{file}
41620 @itemx -e @var{file}
41621 Use file @var{file} as the executable file to execute when
41622 appropriate, and for examining pure data in conjunction with a core
41623 dump.
41624
41625 @item -se=@var{file}
41626 Read symbol table from file @var{file} and use it as the executable
41627 file.
41628
41629 @item -core=@var{file}
41630 @itemx -c @var{file}
41631 Use file @var{file} as a core dump to examine.
41632
41633 @item -command=@var{file}
41634 @itemx -x @var{file}
41635 Execute @value{GDBN} commands from file @var{file}.
41636
41637 @item -ex @var{command}
41638 Execute given @value{GDBN} @var{command}.
41639
41640 @item -directory=@var{directory}
41641 @itemx -d @var{directory}
41642 Add @var{directory} to the path to search for source files.
41643
41644 @item -nh
41645 Do not execute commands from @file{~/.gdbinit}.
41646
41647 @item -nx
41648 @itemx -n
41649 Do not execute commands from any @file{.gdbinit} initialization files.
41650
41651 @item -quiet
41652 @itemx -q
41653 ``Quiet''. Do not print the introductory and copyright messages. These
41654 messages are also suppressed in batch mode.
41655
41656 @item -batch
41657 Run in batch mode. Exit with status @code{0} after processing all the command
41658 files specified with @option{-x} (and @file{.gdbinit}, if not inhibited).
41659 Exit with nonzero status if an error occurs in executing the @value{GDBN}
41660 commands in the command files.
41661
41662 Batch mode may be useful for running @value{GDBN} as a filter, for example to
41663 download and run a program on another computer; in order to make this
41664 more useful, the message
41665
41666 @smallexample
41667 Program exited normally.
41668 @end smallexample
41669
41670 @noindent
41671 (which is ordinarily issued whenever a program running under @value{GDBN} control
41672 terminates) is not issued when running in batch mode.
41673
41674 @item -cd=@var{directory}
41675 Run @value{GDBN} using @var{directory} as its working directory,
41676 instead of the current directory.
41677
41678 @item -fullname
41679 @itemx -f
41680 Emacs sets this option when it runs @value{GDBN} as a subprocess. It tells
41681 @value{GDBN} to output the full file name and line number in a standard,
41682 recognizable fashion each time a stack frame is displayed (which
41683 includes each time the program stops). This recognizable format looks
41684 like two @samp{\032} characters, followed by the file name, line number
41685 and character position separated by colons, and a newline. The
41686 Emacs-to-@value{GDBN} interface program uses the two @samp{\032}
41687 characters as a signal to display the source code for the frame.
41688
41689 @item -b @var{bps}
41690 Set the line speed (baud rate or bits per second) of any serial
41691 interface used by @value{GDBN} for remote debugging.
41692
41693 @item -tty=@var{device}
41694 Run using @var{device} for your program's standard input and output.
41695 @end table
41696 @c man end
41697
41698 @c man begin SEEALSO gdb
41699 @ifset man
41700 The full documentation for @value{GDBN} is maintained as a Texinfo manual.
41701 If the @code{info} and @code{gdb} programs and @value{GDBN}'s Texinfo
41702 documentation are properly installed at your site, the command
41703
41704 @smallexample
41705 info gdb
41706 @end smallexample
41707
41708 @noindent
41709 should give you access to the complete manual.
41710
41711 @cite{Using GDB: A Guide to the GNU Source-Level Debugger},
41712 Richard M. Stallman and Roland H. Pesch, July 1991.
41713 @end ifset
41714 @c man end
41715
41716 @node gdbserver man
41717 @heading gdbserver man
41718
41719 @c man title gdbserver Remote Server for the GNU Debugger
41720 @format
41721 @c man begin SYNOPSIS gdbserver
41722 gdbserver @var{comm} @var{prog} [@var{args}@dots{}]
41723
41724 gdbserver --attach @var{comm} @var{pid}
41725
41726 gdbserver --multi @var{comm}
41727 @c man end
41728 @end format
41729
41730 @c man begin DESCRIPTION gdbserver
41731 @command{gdbserver} is a program that allows you to run @value{GDBN} on a different machine
41732 than the one which is running the program being debugged.
41733
41734 @ifclear man
41735 @subheading Usage (server (target) side)
41736 @end ifclear
41737 @ifset man
41738 Usage (server (target) side):
41739 @end ifset
41740
41741 First, you need to have a copy of the program you want to debug put onto
41742 the target system. The program can be stripped to save space if needed, as
41743 @command{gdbserver} doesn't care about symbols. All symbol handling is taken care of by
41744 the @value{GDBN} running on the host system.
41745
41746 To use the server, you log on to the target system, and run the @command{gdbserver}
41747 program. You must tell it (a) how to communicate with @value{GDBN}, (b) the name of
41748 your program, and (c) its arguments. The general syntax is:
41749
41750 @smallexample
41751 target> gdbserver @var{comm} @var{program} [@var{args} ...]
41752 @end smallexample
41753
41754 For example, using a serial port, you might say:
41755
41756 @smallexample
41757 @ifset man
41758 @c @file would wrap it as F</dev/com1>.
41759 target> gdbserver /dev/com1 emacs foo.txt
41760 @end ifset
41761 @ifclear man
41762 target> gdbserver @file{/dev/com1} emacs foo.txt
41763 @end ifclear
41764 @end smallexample
41765
41766 This tells @command{gdbserver} to debug emacs with an argument of foo.txt, and
41767 to communicate with @value{GDBN} via @file{/dev/com1}. @command{gdbserver} now
41768 waits patiently for the host @value{GDBN} to communicate with it.
41769
41770 To use a TCP connection, you could say:
41771
41772 @smallexample
41773 target> gdbserver host:2345 emacs foo.txt
41774 @end smallexample
41775
41776 This says pretty much the same thing as the last example, except that we are
41777 going to communicate with the @code{host} @value{GDBN} via TCP. The @code{host:2345} argument means
41778 that we are expecting to see a TCP connection from @code{host} to local TCP port
41779 2345. (Currently, the @code{host} part is ignored.) You can choose any number you
41780 want for the port number as long as it does not conflict with any existing TCP
41781 ports on the target system. This same port number must be used in the host
41782 @value{GDBN}s @code{target remote} command, which will be described shortly. Note that if
41783 you chose a port number that conflicts with another service, @command{gdbserver} will
41784 print an error message and exit.
41785
41786 @command{gdbserver} can also attach to running programs.
41787 This is accomplished via the @option{--attach} argument. The syntax is:
41788
41789 @smallexample
41790 target> gdbserver --attach @var{comm} @var{pid}
41791 @end smallexample
41792
41793 @var{pid} is the process ID of a currently running process. It isn't
41794 necessary to point @command{gdbserver} at a binary for the running process.
41795
41796 To start @code{gdbserver} without supplying an initial command to run
41797 or process ID to attach, use the @option{--multi} command line option.
41798 In such case you should connect using @kbd{target extended-remote} to start
41799 the program you want to debug.
41800
41801 @smallexample
41802 target> gdbserver --multi @var{comm}
41803 @end smallexample
41804
41805 @ifclear man
41806 @subheading Usage (host side)
41807 @end ifclear
41808 @ifset man
41809 Usage (host side):
41810 @end ifset
41811
41812 You need an unstripped copy of the target program on your host system, since
41813 @value{GDBN} needs to examine it's symbol tables and such. Start up @value{GDBN} as you normally
41814 would, with the target program as the first argument. (You may need to use the
41815 @option{--baud} option if the serial line is running at anything except 9600 baud.)
41816 That is @code{gdb TARGET-PROG}, or @code{gdb --baud BAUD TARGET-PROG}. After that, the only
41817 new command you need to know about is @code{target remote}
41818 (or @code{target extended-remote}). Its argument is either
41819 a device name (usually a serial device, like @file{/dev/ttyb}), or a @code{HOST:PORT}
41820 descriptor. For example:
41821
41822 @smallexample
41823 @ifset man
41824 @c @file would wrap it as F</dev/ttyb>.
41825 (gdb) target remote /dev/ttyb
41826 @end ifset
41827 @ifclear man
41828 (gdb) target remote @file{/dev/ttyb}
41829 @end ifclear
41830 @end smallexample
41831
41832 @noindent
41833 communicates with the server via serial line @file{/dev/ttyb}, and:
41834
41835 @smallexample
41836 (gdb) target remote the-target:2345
41837 @end smallexample
41838
41839 @noindent
41840 communicates via a TCP connection to port 2345 on host `the-target', where
41841 you previously started up @command{gdbserver} with the same port number. Note that for
41842 TCP connections, you must start up @command{gdbserver} prior to using the `target remote'
41843 command, otherwise you may get an error that looks something like
41844 `Connection refused'.
41845
41846 @command{gdbserver} can also debug multiple inferiors at once,
41847 described in
41848 @ifset man
41849 the @value{GDBN} manual in node @code{Inferiors and Programs}
41850 -- shell command @code{info -f gdb -n 'Inferiors and Programs'}.
41851 @end ifset
41852 @ifclear man
41853 @ref{Inferiors and Programs}.
41854 @end ifclear
41855 In such case use the @code{extended-remote} @value{GDBN} command variant:
41856
41857 @smallexample
41858 (gdb) target extended-remote the-target:2345
41859 @end smallexample
41860
41861 The @command{gdbserver} option @option{--multi} may or may not be used in such
41862 case.
41863 @c man end
41864
41865 @c man begin OPTIONS gdbserver
41866 There are three different modes for invoking @command{gdbserver}:
41867
41868 @itemize @bullet
41869
41870 @item
41871 Debug a specific program specified by its program name:
41872
41873 @smallexample
41874 gdbserver @var{comm} @var{prog} [@var{args}@dots{}]
41875 @end smallexample
41876
41877 The @var{comm} parameter specifies how should the server communicate
41878 with @value{GDBN}; it is either a device name (to use a serial line),
41879 a TCP port number (@code{:1234}), or @code{-} or @code{stdio} to use
41880 stdin/stdout of @code{gdbserver}. Specify the name of the program to
41881 debug in @var{prog}. Any remaining arguments will be passed to the
41882 program verbatim. When the program exits, @value{GDBN} will close the
41883 connection, and @code{gdbserver} will exit.
41884
41885 @item
41886 Debug a specific program by specifying the process ID of a running
41887 program:
41888
41889 @smallexample
41890 gdbserver --attach @var{comm} @var{pid}
41891 @end smallexample
41892
41893 The @var{comm} parameter is as described above. Supply the process ID
41894 of a running program in @var{pid}; @value{GDBN} will do everything
41895 else. Like with the previous mode, when the process @var{pid} exits,
41896 @value{GDBN} will close the connection, and @code{gdbserver} will exit.
41897
41898 @item
41899 Multi-process mode -- debug more than one program/process:
41900
41901 @smallexample
41902 gdbserver --multi @var{comm}
41903 @end smallexample
41904
41905 In this mode, @value{GDBN} can instruct @command{gdbserver} which
41906 command(s) to run. Unlike the other 2 modes, @value{GDBN} will not
41907 close the connection when a process being debugged exits, so you can
41908 debug several processes in the same session.
41909 @end itemize
41910
41911 In each of the modes you may specify these options:
41912
41913 @table @env
41914
41915 @item --help
41916 List all options, with brief explanations.
41917
41918 @item --version
41919 This option causes @command{gdbserver} to print its version number and exit.
41920
41921 @item --attach
41922 @command{gdbserver} will attach to a running program. The syntax is:
41923
41924 @smallexample
41925 target> gdbserver --attach @var{comm} @var{pid}
41926 @end smallexample
41927
41928 @var{pid} is the process ID of a currently running process. It isn't
41929 necessary to point @command{gdbserver} at a binary for the running process.
41930
41931 @item --multi
41932 To start @code{gdbserver} without supplying an initial command to run
41933 or process ID to attach, use this command line option.
41934 Then you can connect using @kbd{target extended-remote} and start
41935 the program you want to debug. The syntax is:
41936
41937 @smallexample
41938 target> gdbserver --multi @var{comm}
41939 @end smallexample
41940
41941 @item --debug
41942 Instruct @code{gdbserver} to display extra status information about the debugging
41943 process.
41944 This option is intended for @code{gdbserver} development and for bug reports to
41945 the developers.
41946
41947 @item --remote-debug
41948 Instruct @code{gdbserver} to display remote protocol debug output.
41949 This option is intended for @code{gdbserver} development and for bug reports to
41950 the developers.
41951
41952 @item --debug-format=option1@r{[},option2,...@r{]}
41953 Instruct @code{gdbserver} to include extra information in each line
41954 of debugging output.
41955 @xref{Other Command-Line Arguments for gdbserver}.
41956
41957 @item --wrapper
41958 Specify a wrapper to launch programs
41959 for debugging. The option should be followed by the name of the
41960 wrapper, then any command-line arguments to pass to the wrapper, then
41961 @kbd{--} indicating the end of the wrapper arguments.
41962
41963 @item --once
41964 By default, @command{gdbserver} keeps the listening TCP port open, so that
41965 additional connections are possible. However, if you start @code{gdbserver}
41966 with the @option{--once} option, it will stop listening for any further
41967 connection attempts after connecting to the first @value{GDBN} session.
41968
41969 @c --disable-packet is not documented for users.
41970
41971 @c --disable-randomization and --no-disable-randomization are superseded by
41972 @c QDisableRandomization.
41973
41974 @end table
41975 @c man end
41976
41977 @c man begin SEEALSO gdbserver
41978 @ifset man
41979 The full documentation for @value{GDBN} is maintained as a Texinfo manual.
41980 If the @code{info} and @code{gdb} programs and @value{GDBN}'s Texinfo
41981 documentation are properly installed at your site, the command
41982
41983 @smallexample
41984 info gdb
41985 @end smallexample
41986
41987 should give you access to the complete manual.
41988
41989 @cite{Using GDB: A Guide to the GNU Source-Level Debugger},
41990 Richard M. Stallman and Roland H. Pesch, July 1991.
41991 @end ifset
41992 @c man end
41993
41994 @node gcore man
41995 @heading gcore
41996
41997 @c man title gcore Generate a core file of a running program
41998
41999 @format
42000 @c man begin SYNOPSIS gcore
42001 gcore [-o @var{filename}] @var{pid}
42002 @c man end
42003 @end format
42004
42005 @c man begin DESCRIPTION gcore
42006 Generate a core dump of a running program with process ID @var{pid}.
42007 Produced file is equivalent to a kernel produced core file as if the process
42008 crashed (and if @kbd{ulimit -c} were used to set up an appropriate core dump
42009 limit). Unlike after a crash, after @command{gcore} the program remains
42010 running without any change.
42011 @c man end
42012
42013 @c man begin OPTIONS gcore
42014 @table @env
42015 @item -o @var{filename}
42016 The optional argument
42017 @var{filename} specifies the file name where to put the core dump.
42018 If not specified, the file name defaults to @file{core.@var{pid}},
42019 where @var{pid} is the running program process ID.
42020 @end table
42021 @c man end
42022
42023 @c man begin SEEALSO gcore
42024 @ifset man
42025 The full documentation for @value{GDBN} is maintained as a Texinfo manual.
42026 If the @code{info} and @code{gdb} programs and @value{GDBN}'s Texinfo
42027 documentation are properly installed at your site, the command
42028
42029 @smallexample
42030 info gdb
42031 @end smallexample
42032
42033 @noindent
42034 should give you access to the complete manual.
42035
42036 @cite{Using GDB: A Guide to the GNU Source-Level Debugger},
42037 Richard M. Stallman and Roland H. Pesch, July 1991.
42038 @end ifset
42039 @c man end
42040
42041 @node gdbinit man
42042 @heading gdbinit
42043
42044 @c man title gdbinit GDB initialization scripts
42045
42046 @format
42047 @c man begin SYNOPSIS gdbinit
42048 @ifset SYSTEM_GDBINIT
42049 @value{SYSTEM_GDBINIT}
42050 @end ifset
42051
42052 ~/.gdbinit
42053
42054 ./.gdbinit
42055 @c man end
42056 @end format
42057
42058 @c man begin DESCRIPTION gdbinit
42059 These files contain @value{GDBN} commands to automatically execute during
42060 @value{GDBN} startup. The lines of contents are canned sequences of commands,
42061 described in
42062 @ifset man
42063 the @value{GDBN} manual in node @code{Sequences}
42064 -- shell command @code{info -f gdb -n Sequences}.
42065 @end ifset
42066 @ifclear man
42067 @ref{Sequences}.
42068 @end ifclear
42069
42070 Please read more in
42071 @ifset man
42072 the @value{GDBN} manual in node @code{Startup}
42073 -- shell command @code{info -f gdb -n Startup}.
42074 @end ifset
42075 @ifclear man
42076 @ref{Startup}.
42077 @end ifclear
42078
42079 @table @env
42080 @ifset SYSTEM_GDBINIT
42081 @item @value{SYSTEM_GDBINIT}
42082 @end ifset
42083 @ifclear SYSTEM_GDBINIT
42084 @item (not enabled with @code{--with-system-gdbinit} during compilation)
42085 @end ifclear
42086 System-wide initialization file. It is executed unless user specified
42087 @value{GDBN} option @code{-nx} or @code{-n}.
42088 See more in
42089 @ifset man
42090 the @value{GDBN} manual in node @code{System-wide configuration}
42091 -- shell command @code{info -f gdb -n 'System-wide configuration'}.
42092 @end ifset
42093 @ifclear man
42094 @ref{System-wide configuration}.
42095 @end ifclear
42096
42097 @item ~/.gdbinit
42098 User initialization file. It is executed unless user specified
42099 @value{GDBN} options @code{-nx}, @code{-n} or @code{-nh}.
42100
42101 @item ./.gdbinit
42102 Initialization file for current directory. It may need to be enabled with
42103 @value{GDBN} security command @code{set auto-load local-gdbinit}.
42104 See more in
42105 @ifset man
42106 the @value{GDBN} manual in node @code{Init File in the Current Directory}
42107 -- shell command @code{info -f gdb -n 'Init File in the Current Directory'}.
42108 @end ifset
42109 @ifclear man
42110 @ref{Init File in the Current Directory}.
42111 @end ifclear
42112 @end table
42113 @c man end
42114
42115 @c man begin SEEALSO gdbinit
42116 @ifset man
42117 gdb(1), @code{info -f gdb -n Startup}
42118
42119 The full documentation for @value{GDBN} is maintained as a Texinfo manual.
42120 If the @code{info} and @code{gdb} programs and @value{GDBN}'s Texinfo
42121 documentation are properly installed at your site, the command
42122
42123 @smallexample
42124 info gdb
42125 @end smallexample
42126
42127 should give you access to the complete manual.
42128
42129 @cite{Using GDB: A Guide to the GNU Source-Level Debugger},
42130 Richard M. Stallman and Roland H. Pesch, July 1991.
42131 @end ifset
42132 @c man end
42133
42134 @include gpl.texi
42135
42136 @node GNU Free Documentation License
42137 @appendix GNU Free Documentation License
42138 @include fdl.texi
42139
42140 @node Concept Index
42141 @unnumbered Concept Index
42142
42143 @printindex cp
42144
42145 @node Command and Variable Index
42146 @unnumbered Command, Variable, and Function Index
42147
42148 @printindex fn
42149
42150 @tex
42151 % I think something like @@colophon should be in texinfo. In the
42152 % meantime:
42153 \long\def\colophon{\hbox to0pt{}\vfill
42154 \centerline{The body of this manual is set in}
42155 \centerline{\fontname\tenrm,}
42156 \centerline{with headings in {\bf\fontname\tenbf}}
42157 \centerline{and examples in {\tt\fontname\tentt}.}
42158 \centerline{{\it\fontname\tenit\/},}
42159 \centerline{{\bf\fontname\tenbf}, and}
42160 \centerline{{\sl\fontname\tensl\/}}
42161 \centerline{are used for emphasis.}\vfill}
42162 \page\colophon
42163 % Blame: doc@@cygnus.com, 1991.
42164 @end tex
42165
42166 @bye