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c906108c 1/* Print values for GNU debugger GDB.
d9fcf2fb 2 Copyright 1986-1991, 1993-1995, 1998, 2000 Free Software Foundation, Inc.
c906108c 3
c5aa993b 4 This file is part of GDB.
c906108c 5
c5aa993b
JM
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2 of the License, or
9 (at your option) any later version.
c906108c 10
c5aa993b
JM
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
c906108c 15
c5aa993b
JM
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software
18 Foundation, Inc., 59 Temple Place - Suite 330,
19 Boston, MA 02111-1307, USA. */
c906108c
SS
20
21#include "defs.h"
22#include "gdb_string.h"
23#include "frame.h"
24#include "symtab.h"
25#include "gdbtypes.h"
26#include "value.h"
27#include "language.h"
28#include "expression.h"
29#include "gdbcore.h"
30#include "gdbcmd.h"
31#include "target.h"
32#include "breakpoint.h"
33#include "demangle.h"
34#include "valprint.h"
35#include "annotate.h"
c5aa993b
JM
36#include "symfile.h" /* for overlay functions */
37#include "objfiles.h" /* ditto */
8b93c638
JM
38#ifdef UI_OUT
39#include "ui-out.h"
40#endif
c906108c
SS
41
42extern int asm_demangle; /* Whether to demangle syms in asm printouts */
43extern int addressprint; /* Whether to print hex addresses in HLL " */
44
45struct format_data
c5aa993b
JM
46 {
47 int count;
48 char format;
49 char size;
50 };
c906108c
SS
51
52/* Last specified output format. */
53
54static char last_format = 'x';
55
56/* Last specified examination size. 'b', 'h', 'w' or `q'. */
57
58static char last_size = 'w';
59
60/* Default address to examine next. */
61
62static CORE_ADDR next_address;
63
64/* Default section to examine next. */
65
66static asection *next_section;
67
68/* Last address examined. */
69
70static CORE_ADDR last_examine_address;
71
72/* Contents of last address examined.
73 This is not valid past the end of the `x' command! */
74
75static value_ptr last_examine_value;
76
77/* Largest offset between a symbolic value and an address, that will be
78 printed as `0x1234 <symbol+offset>'. */
79
80static unsigned int max_symbolic_offset = UINT_MAX;
81
82/* Append the source filename and linenumber of the symbol when
83 printing a symbolic value as `<symbol at filename:linenum>' if set. */
84static int print_symbol_filename = 0;
85
86/* Number of auto-display expression currently being displayed.
87 So that we can disable it if we get an error or a signal within it.
88 -1 when not doing one. */
89
90int current_display_number;
91
92/* Flag to low-level print routines that this value is being printed
93 in an epoch window. We'd like to pass this as a parameter, but
94 every routine would need to take it. Perhaps we can encapsulate
95 this in the I/O stream once we have GNU stdio. */
96
97int inspect_it = 0;
98
99struct display
c5aa993b
JM
100 {
101 /* Chain link to next auto-display item. */
102 struct display *next;
103 /* Expression to be evaluated and displayed. */
104 struct expression *exp;
105 /* Item number of this auto-display item. */
106 int number;
107 /* Display format specified. */
108 struct format_data format;
109 /* Innermost block required by this expression when evaluated */
110 struct block *block;
111 /* Status of this display (enabled or disabled) */
112 enum enable status;
113 };
c906108c
SS
114
115/* Chain of expressions whose values should be displayed
116 automatically each time the program stops. */
117
118static struct display *display_chain;
119
120static int display_number;
121
122/* Prototypes for exported functions. */
123
124void output_command PARAMS ((char *, int));
125
126void _initialize_printcmd PARAMS ((void));
127
128/* Prototypes for local functions. */
129
130static void delete_display PARAMS ((int));
131
132static void enable_display PARAMS ((char *, int));
133
134static void disable_display_command PARAMS ((char *, int));
135
136static void disassemble_command PARAMS ((char *, int));
137
138static void printf_command PARAMS ((char *, int));
139
d9fcf2fb
JM
140static void print_frame_nameless_args (struct frame_info *, long,
141 int, int, struct ui_file *);
c906108c
SS
142
143static void display_info PARAMS ((char *, int));
144
145static void do_one_display PARAMS ((struct display *));
146
147static void undisplay_command PARAMS ((char *, int));
148
149static void free_display PARAMS ((struct display *));
150
151static void display_command PARAMS ((char *, int));
152
153void x_command PARAMS ((char *, int));
154
155static void address_info PARAMS ((char *, int));
156
157static void set_command PARAMS ((char *, int));
158
159static void call_command PARAMS ((char *, int));
160
161static void inspect_command PARAMS ((char *, int));
162
163static void print_command PARAMS ((char *, int));
164
165static void print_command_1 PARAMS ((char *, int, int));
166
167static void validate_format PARAMS ((struct format_data, char *));
168
c5aa993b 169static void do_examine PARAMS ((struct format_data, CORE_ADDR addr, asection * section));
c906108c 170
d9fcf2fb 171static void print_formatted (value_ptr, int, int, struct ui_file *);
c906108c
SS
172
173static struct format_data decode_format PARAMS ((char **, int, int));
174
d9fcf2fb 175static int print_insn (CORE_ADDR, struct ui_file *);
c906108c
SS
176
177static void sym_info PARAMS ((char *, int));
c906108c 178\f
c5aa993b 179
c906108c
SS
180/* Decode a format specification. *STRING_PTR should point to it.
181 OFORMAT and OSIZE are used as defaults for the format and size
182 if none are given in the format specification.
183 If OSIZE is zero, then the size field of the returned value
184 should be set only if a size is explicitly specified by the
185 user.
186 The structure returned describes all the data
187 found in the specification. In addition, *STRING_PTR is advanced
188 past the specification and past all whitespace following it. */
189
190static struct format_data
191decode_format (string_ptr, oformat, osize)
192 char **string_ptr;
193 int oformat;
194 int osize;
195{
196 struct format_data val;
197 register char *p = *string_ptr;
198
199 val.format = '?';
200 val.size = '?';
201 val.count = 1;
202
203 if (*p >= '0' && *p <= '9')
204 val.count = atoi (p);
c5aa993b
JM
205 while (*p >= '0' && *p <= '9')
206 p++;
c906108c
SS
207
208 /* Now process size or format letters that follow. */
209
210 while (1)
211 {
212 if (*p == 'b' || *p == 'h' || *p == 'w' || *p == 'g')
213 val.size = *p++;
214 else if (*p >= 'a' && *p <= 'z')
215 val.format = *p++;
216 else
217 break;
218 }
219
c5aa993b
JM
220 while (*p == ' ' || *p == '\t')
221 p++;
c906108c
SS
222 *string_ptr = p;
223
224 /* Set defaults for format and size if not specified. */
225 if (val.format == '?')
226 {
227 if (val.size == '?')
228 {
229 /* Neither has been specified. */
230 val.format = oformat;
231 val.size = osize;
232 }
233 else
234 /* If a size is specified, any format makes a reasonable
235 default except 'i'. */
236 val.format = oformat == 'i' ? 'x' : oformat;
237 }
238 else if (val.size == '?')
239 switch (val.format)
240 {
241 case 'a':
242 case 's':
243 /* Pick the appropriate size for an address. */
244 if (TARGET_PTR_BIT == 64)
245 val.size = osize ? 'g' : osize;
246 else if (TARGET_PTR_BIT == 32)
247 val.size = osize ? 'w' : osize;
248 else if (TARGET_PTR_BIT == 16)
249 val.size = osize ? 'h' : osize;
250 else
251 /* Bad value for TARGET_PTR_BIT */
252 abort ();
253 break;
254 case 'f':
255 /* Floating point has to be word or giantword. */
256 if (osize == 'w' || osize == 'g')
257 val.size = osize;
258 else
259 /* Default it to giantword if the last used size is not
260 appropriate. */
261 val.size = osize ? 'g' : osize;
262 break;
263 case 'c':
264 /* Characters default to one byte. */
265 val.size = osize ? 'b' : osize;
266 break;
267 default:
268 /* The default is the size most recently specified. */
269 val.size = osize;
270 }
271
272 return val;
273}
274\f
2acceee2 275/* Print value VAL on stream according to FORMAT, a letter or 0.
c906108c
SS
276 Do not end with a newline.
277 0 means print VAL according to its own type.
278 SIZE is the letter for the size of datum being printed.
279 This is used to pad hex numbers so they line up. */
280
281static void
2acceee2 282print_formatted (val, format, size, stream)
c906108c
SS
283 register value_ptr val;
284 register int format;
285 int size;
d9fcf2fb 286 struct ui_file *stream;
c906108c
SS
287{
288 struct type *type = check_typedef (VALUE_TYPE (val));
289 int len = TYPE_LENGTH (type);
290
291 if (VALUE_LVAL (val) == lval_memory)
292 {
293 next_address = VALUE_ADDRESS (val) + len;
294 next_section = VALUE_BFD_SECTION (val);
295 }
296
297 switch (format)
298 {
299 case 's':
300 /* FIXME: Need to handle wchar_t's here... */
301 next_address = VALUE_ADDRESS (val)
2acceee2 302 + val_print_string (VALUE_ADDRESS (val), -1, 1, stream);
c906108c
SS
303 next_section = VALUE_BFD_SECTION (val);
304 break;
305
306 case 'i':
307 /* The old comment says
c5aa993b
JM
308 "Force output out, print_insn not using _filtered".
309 I'm not completely sure what that means, I suspect most print_insn
310 now do use _filtered, so I guess it's obsolete.
311 --Yes, it does filter now, and so this is obsolete. -JB */
c906108c
SS
312
313 /* We often wrap here if there are long symbolic names. */
314 wrap_here (" ");
315 next_address = VALUE_ADDRESS (val)
2acceee2 316 + print_insn (VALUE_ADDRESS (val), stream);
c906108c
SS
317 next_section = VALUE_BFD_SECTION (val);
318 break;
319
320 default:
321 if (format == 0
322 || TYPE_CODE (type) == TYPE_CODE_ARRAY
323 || TYPE_CODE (type) == TYPE_CODE_STRING
324 || TYPE_CODE (type) == TYPE_CODE_STRUCT
325 || TYPE_CODE (type) == TYPE_CODE_UNION)
c5aa993b
JM
326 /* If format is 0, use the 'natural' format for
327 * that type of value. If the type is non-scalar,
328 * we have to use language rules to print it as
329 * a series of scalars.
330 */
2acceee2 331 value_print (val, stream, format, Val_pretty_default);
c906108c 332 else
c5aa993b
JM
333 /* User specified format, so don't look to the
334 * the type to tell us what to do.
335 */
c906108c 336 print_scalar_formatted (VALUE_CONTENTS (val), type,
2acceee2 337 format, size, stream);
c906108c
SS
338 }
339}
340
341/* Print a scalar of data of type TYPE, pointed to in GDB by VALADDR,
342 according to letters FORMAT and SIZE on STREAM.
343 FORMAT may not be zero. Formats s and i are not supported at this level.
344
345 This is how the elements of an array or structure are printed
346 with a format. */
347
348void
349print_scalar_formatted (valaddr, type, format, size, stream)
350 char *valaddr;
351 struct type *type;
352 int format;
353 int size;
d9fcf2fb 354 struct ui_file *stream;
c906108c
SS
355{
356 LONGEST val_long;
357 unsigned int len = TYPE_LENGTH (type);
358
359 if (len > sizeof (LONGEST)
360 && (format == 't'
361 || format == 'c'
362 || format == 'o'
363 || format == 'u'
364 || format == 'd'
365 || format == 'x'))
366 {
c5aa993b
JM
367 if (!TYPE_UNSIGNED (type)
368 || !extract_long_unsigned_integer (valaddr, len, &val_long))
c906108c
SS
369 {
370 /* We can't print it normally, but we can print it in hex.
371 Printing it in the wrong radix is more useful than saying
372 "use /x, you dummy". */
373 /* FIXME: we could also do octal or binary if that was the
374 desired format. */
375 /* FIXME: we should be using the size field to give us a
376 minimum field width to print. */
377
c5aa993b
JM
378 if (format == 'o')
379 print_octal_chars (stream, valaddr, len);
380 else if (format == 'd')
381 print_decimal_chars (stream, valaddr, len);
382 else if (format == 't')
383 print_binary_chars (stream, valaddr, len);
384 else
385 /* replace with call to print_hex_chars? Looks
386 like val_print_type_code_int is redoing
387 work. - edie */
c906108c 388
c5aa993b 389 val_print_type_code_int (type, valaddr, stream);
c906108c
SS
390
391 return;
392 }
393
394 /* If we get here, extract_long_unsigned_integer set val_long. */
395 }
396 else if (format != 'f')
397 val_long = unpack_long (type, valaddr);
398
399 /* If we are printing it as unsigned, truncate it in case it is actually
400 a negative signed value (e.g. "print/u (short)-1" should print 65535
401 (if shorts are 16 bits) instead of 4294967295). */
402 if (format != 'd')
403 {
404 if (len < sizeof (LONGEST))
405 val_long &= ((LONGEST) 1 << HOST_CHAR_BIT * len) - 1;
406 }
407
408 switch (format)
409 {
410 case 'x':
411 if (!size)
412 {
413 /* no size specified, like in print. Print varying # of digits. */
414 print_longest (stream, 'x', 1, val_long);
415 }
416 else
417 switch (size)
418 {
419 case 'b':
420 case 'h':
421 case 'w':
422 case 'g':
423 print_longest (stream, size, 1, val_long);
424 break;
425 default:
426 error ("Undefined output size \"%c\".", size);
427 }
428 break;
429
430 case 'd':
431 print_longest (stream, 'd', 1, val_long);
432 break;
433
434 case 'u':
435 print_longest (stream, 'u', 0, val_long);
436 break;
437
438 case 'o':
439 if (val_long)
440 print_longest (stream, 'o', 1, val_long);
441 else
442 fprintf_filtered (stream, "0");
443 break;
444
445 case 'a':
593de6a6
PS
446 {
447 /* Truncate address to the size of a target pointer, avoiding
eb90a51f
AC
448 shifts larger or equal than the width of a CORE_ADDR. The
449 local variable PTR_BIT stops the compiler reporting a shift
450 overflow when it won't occure. */
593de6a6 451 CORE_ADDR addr = unpack_pointer (type, valaddr);
eb90a51f
AC
452 int ptr_bit = TARGET_PTR_BIT;
453 if (ptr_bit < (sizeof (CORE_ADDR) * HOST_CHAR_BIT))
454 addr &= ((CORE_ADDR) 1 << ptr_bit) - 1;
593de6a6
PS
455 print_address (addr, stream);
456 }
c906108c
SS
457 break;
458
459 case 'c':
9e0b60a8
JM
460 value_print (value_from_longest (builtin_type_true_char, val_long),
461 stream, 0, Val_pretty_default);
c906108c
SS
462 break;
463
464 case 'f':
465 if (len == sizeof (float))
c5aa993b 466 type = builtin_type_float;
c906108c 467 else if (len == sizeof (double))
c5aa993b 468 type = builtin_type_double;
c906108c
SS
469 print_floating (valaddr, type, stream);
470 break;
471
472 case 0:
473 abort ();
474
475 case 't':
476 /* Binary; 't' stands for "two". */
477 {
c5aa993b
JM
478 char bits[8 * (sizeof val_long) + 1];
479 char buf[8 * (sizeof val_long) + 32];
c906108c
SS
480 char *cp = bits;
481 int width;
482
c5aa993b
JM
483 if (!size)
484 width = 8 * (sizeof val_long);
485 else
486 switch (size)
c906108c
SS
487 {
488 case 'b':
489 width = 8;
490 break;
491 case 'h':
492 width = 16;
493 break;
494 case 'w':
495 width = 32;
496 break;
497 case 'g':
498 width = 64;
499 break;
500 default:
501 error ("Undefined output size \"%c\".", size);
502 }
503
c5aa993b
JM
504 bits[width] = '\0';
505 while (width-- > 0)
506 {
507 bits[width] = (val_long & 1) ? '1' : '0';
508 val_long >>= 1;
509 }
c906108c
SS
510 if (!size)
511 {
512 while (*cp && *cp == '0')
513 cp++;
514 if (*cp == '\0')
515 cp--;
516 }
c5aa993b 517 strcpy (buf, local_binary_format_prefix ());
c906108c 518 strcat (buf, cp);
c5aa993b
JM
519 strcat (buf, local_binary_format_suffix ());
520 fprintf_filtered (stream, buf);
c906108c
SS
521 }
522 break;
523
524 default:
525 error ("Undefined output format \"%c\".", format);
526 }
527}
528
529/* Specify default address for `x' command.
530 `info lines' uses this. */
531
532void
533set_next_address (addr)
534 CORE_ADDR addr;
535{
536 next_address = addr;
537
538 /* Make address available to the user as $_. */
539 set_internalvar (lookup_internalvar ("_"),
4478b372
JB
540 value_from_pointer (lookup_pointer_type (builtin_type_void),
541 addr));
c906108c
SS
542}
543
544/* Optionally print address ADDR symbolically as <SYMBOL+OFFSET> on STREAM,
545 after LEADIN. Print nothing if no symbolic name is found nearby.
546 Optionally also print source file and line number, if available.
547 DO_DEMANGLE controls whether to print a symbol in its native "raw" form,
548 or to interpret it as a possible C++ name and convert it back to source
549 form. However note that DO_DEMANGLE can be overridden by the specific
550 settings of the demangle and asm_demangle variables. */
551
552void
553print_address_symbolic (addr, stream, do_demangle, leadin)
554 CORE_ADDR addr;
d9fcf2fb 555 struct ui_file *stream;
c906108c
SS
556 int do_demangle;
557 char *leadin;
dfcd3bfb
JM
558{
559 char *name = NULL;
560 char *filename = NULL;
561 int unmapped = 0;
562 int offset = 0;
563 int line = 0;
564
565 struct cleanup *cleanup_chain = make_cleanup (free, name);
566 if (print_symbol_filename)
567 make_cleanup (free, filename);
568
569 if (build_address_symbolic (addr, do_demangle, &name, &offset, &filename, &line, &unmapped))
570 return;
571
572 fputs_filtered (leadin, stream);
573 if (unmapped)
574 fputs_filtered ("<*", stream);
575 else
576 fputs_filtered ("<", stream);
577 fputs_filtered (name, stream);
578 if (offset != 0)
579 fprintf_filtered (stream, "+%u", (unsigned int) offset);
580
581 /* Append source filename and line number if desired. Give specific
582 line # of this addr, if we have it; else line # of the nearest symbol. */
583 if (print_symbol_filename && filename != NULL)
584 {
585 if (line != -1)
586 fprintf_filtered (stream, " at %s:%d", filename, line);
587 else
588 fprintf_filtered (stream, " in %s", filename);
589 }
590 if (unmapped)
591 fputs_filtered ("*>", stream);
592 else
593 fputs_filtered (">", stream);
594
595 do_cleanups (cleanup_chain);
596}
597
598/* Given an address ADDR return all the elements needed to print the
599 address in a symbolic form. NAME can be mangled or not depending
600 on DO_DEMANGLE (and also on the asm_demangle global variable,
601 manipulated via ''set print asm-demangle''). Return 0 in case of
602 success, when all the info in the OUT paramters is valid. Return 1
603 otherwise. */
604int
605build_address_symbolic (CORE_ADDR addr, /* IN */
606 int do_demangle, /* IN */
607 char **name, /* OUT */
608 int *offset, /* OUT */
609 char **filename, /* OUT */
610 int *line, /* OUT */
611 int *unmapped) /* OUT */
c906108c
SS
612{
613 struct minimal_symbol *msymbol;
614 struct symbol *symbol;
615 struct symtab *symtab = 0;
616 CORE_ADDR name_location = 0;
c906108c 617 asection *section = 0;
dfcd3bfb
JM
618 char *name_temp = "";
619
620 /* Let's say it is unmapped. */
621 *unmapped = 0;
c906108c 622
dfcd3bfb
JM
623 /* Determine if the address is in an overlay, and whether it is
624 mapped. */
c906108c
SS
625 if (overlay_debugging)
626 {
627 section = find_pc_overlay (addr);
628 if (pc_in_unmapped_range (addr, section))
629 {
dfcd3bfb 630 *unmapped = 1;
c906108c
SS
631 addr = overlay_mapped_address (addr, section);
632 }
633 }
634
635 /* On some targets, add in extra "flag" bits to PC for
636 disassembly. This should ensure that "rounding errors" in
637 symbol addresses that are masked for disassembly favour the
638 the correct symbol. */
639
640#ifdef GDB_TARGET_UNMASK_DISAS_PC
641 addr = GDB_TARGET_UNMASK_DISAS_PC (addr);
642#endif
643
644 /* First try to find the address in the symbol table, then
645 in the minsyms. Take the closest one. */
646
647 /* This is defective in the sense that it only finds text symbols. So
648 really this is kind of pointless--we should make sure that the
649 minimal symbols have everything we need (by changing that we could
650 save some memory, but for many debug format--ELF/DWARF or
651 anything/stabs--it would be inconvenient to eliminate those minimal
652 symbols anyway). */
653 msymbol = lookup_minimal_symbol_by_pc_section (addr, section);
654 symbol = find_pc_sect_function (addr, section);
655
656 if (symbol)
657 {
658 name_location = BLOCK_START (SYMBOL_BLOCK_VALUE (symbol));
659 if (do_demangle)
dfcd3bfb 660 name_temp = SYMBOL_SOURCE_NAME (symbol);
c906108c 661 else
dfcd3bfb 662 name_temp = SYMBOL_LINKAGE_NAME (symbol);
c906108c
SS
663 }
664
665 if (msymbol != NULL)
666 {
667 if (SYMBOL_VALUE_ADDRESS (msymbol) > name_location || symbol == NULL)
668 {
669 /* The msymbol is closer to the address than the symbol;
670 use the msymbol instead. */
671 symbol = 0;
672 symtab = 0;
673 name_location = SYMBOL_VALUE_ADDRESS (msymbol);
674 if (do_demangle)
dfcd3bfb 675 name_temp = SYMBOL_SOURCE_NAME (msymbol);
c906108c 676 else
dfcd3bfb 677 name_temp = SYMBOL_LINKAGE_NAME (msymbol);
c906108c
SS
678 }
679 }
680 if (symbol == NULL && msymbol == NULL)
dfcd3bfb 681 return 1;
c906108c
SS
682
683 /* On some targets, mask out extra "flag" bits from PC for handsome
684 disassembly. */
685
686#ifdef GDB_TARGET_MASK_DISAS_PC
687 name_location = GDB_TARGET_MASK_DISAS_PC (name_location);
688 addr = GDB_TARGET_MASK_DISAS_PC (addr);
689#endif
690
691 /* If the nearest symbol is too far away, don't print anything symbolic. */
692
693 /* For when CORE_ADDR is larger than unsigned int, we do math in
694 CORE_ADDR. But when we detect unsigned wraparound in the
695 CORE_ADDR math, we ignore this test and print the offset,
696 because addr+max_symbolic_offset has wrapped through the end
697 of the address space back to the beginning, giving bogus comparison. */
698 if (addr > name_location + max_symbolic_offset
699 && name_location + max_symbolic_offset > name_location)
dfcd3bfb 700 return 1;
c906108c 701
dfcd3bfb
JM
702 *offset = addr - name_location;
703
704 *name = xstrdup (name_temp);
c906108c 705
c906108c
SS
706 if (print_symbol_filename)
707 {
708 struct symtab_and_line sal;
709
710 sal = find_pc_sect_line (addr, section, 0);
711
712 if (sal.symtab)
dfcd3bfb
JM
713 {
714 *filename = xstrdup (sal.symtab->filename);
715 *line = sal.line;
716 }
c906108c 717 else if (symtab && symbol && symbol->line)
dfcd3bfb
JM
718 {
719 *filename = xstrdup (symtab->filename);
720 *line = symbol->line;
721 }
c906108c 722 else if (symtab)
dfcd3bfb
JM
723 {
724 *filename = xstrdup (symtab->filename);
725 *line = -1;
726 }
c906108c 727 }
dfcd3bfb 728 return 0;
c906108c
SS
729}
730
c906108c
SS
731/* Print address ADDR on STREAM. USE_LOCAL means the same thing as for
732 print_longest. */
733void
734print_address_numeric (addr, use_local, stream)
735 CORE_ADDR addr;
736 int use_local;
d9fcf2fb 737 struct ui_file *stream;
c906108c
SS
738{
739 /* This assumes a CORE_ADDR can fit in a LONGEST. Probably a safe
740 assumption. */
741 print_longest (stream, 'x', use_local, (ULONGEST) addr);
742}
743
744/* Print address ADDR symbolically on STREAM.
745 First print it as a number. Then perhaps print
746 <SYMBOL + OFFSET> after the number. */
747
748void
749print_address (addr, stream)
750 CORE_ADDR addr;
d9fcf2fb 751 struct ui_file *stream;
c906108c
SS
752{
753 print_address_numeric (addr, 1, stream);
754 print_address_symbolic (addr, stream, asm_demangle, " ");
755}
756
757/* Print address ADDR symbolically on STREAM. Parameter DEMANGLE
758 controls whether to print the symbolic name "raw" or demangled.
759 Global setting "addressprint" controls whether to print hex address
760 or not. */
761
762void
763print_address_demangle (addr, stream, do_demangle)
764 CORE_ADDR addr;
d9fcf2fb 765 struct ui_file *stream;
c906108c
SS
766 int do_demangle;
767{
768 if (addr == 0)
769 {
770 fprintf_filtered (stream, "0");
771 }
772 else if (addressprint)
773 {
774 print_address_numeric (addr, 1, stream);
775 print_address_symbolic (addr, stream, do_demangle, " ");
776 }
777 else
778 {
779 print_address_symbolic (addr, stream, do_demangle, "");
780 }
781}
782\f
783
784/* These are the types that $__ will get after an examine command of one
785 of these sizes. */
786
787static struct type *examine_i_type;
788
789static struct type *examine_b_type;
790static struct type *examine_h_type;
791static struct type *examine_w_type;
792static struct type *examine_g_type;
793
794/* Examine data at address ADDR in format FMT.
795 Fetch it from memory and print on gdb_stdout. */
796
797static void
798do_examine (fmt, addr, sect)
799 struct format_data fmt;
800 CORE_ADDR addr;
801 asection *sect;
802{
803 register char format = 0;
804 register char size;
805 register int count = 1;
806 struct type *val_type = NULL;
807 register int i;
808 register int maxelts;
809
810 format = fmt.format;
811 size = fmt.size;
812 count = fmt.count;
813 next_address = addr;
814 next_section = sect;
815
816 /* String or instruction format implies fetch single bytes
817 regardless of the specified size. */
818 if (format == 's' || format == 'i')
819 size = 'b';
820
821 if (format == 'i')
822 val_type = examine_i_type;
823 else if (size == 'b')
824 val_type = examine_b_type;
825 else if (size == 'h')
826 val_type = examine_h_type;
827 else if (size == 'w')
828 val_type = examine_w_type;
829 else if (size == 'g')
830 val_type = examine_g_type;
831
832 maxelts = 8;
833 if (size == 'w')
834 maxelts = 4;
835 if (size == 'g')
836 maxelts = 2;
837 if (format == 's' || format == 'i')
838 maxelts = 1;
839
840 /* Print as many objects as specified in COUNT, at most maxelts per line,
841 with the address of the next one at the start of each line. */
842
843 while (count > 0)
844 {
845 QUIT;
846 print_address (next_address, gdb_stdout);
847 printf_filtered (":");
848 for (i = maxelts;
849 i > 0 && count > 0;
850 i--, count--)
851 {
852 printf_filtered ("\t");
853 /* Note that print_formatted sets next_address for the next
854 object. */
855 last_examine_address = next_address;
856
857 if (last_examine_value)
858 value_free (last_examine_value);
859
860 /* The value to be displayed is not fetched greedily.
c5aa993b
JM
861 Instead, to avoid the posibility of a fetched value not
862 being used, its retreval is delayed until the print code
863 uses it. When examining an instruction stream, the
864 disassembler will perform its own memory fetch using just
865 the address stored in LAST_EXAMINE_VALUE. FIXME: Should
866 the disassembler be modified so that LAST_EXAMINE_VALUE
867 is left with the byte sequence from the last complete
868 instruction fetched from memory? */
c906108c
SS
869 last_examine_value = value_at_lazy (val_type, next_address, sect);
870
871 if (last_examine_value)
872 release_value (last_examine_value);
873
2acceee2 874 print_formatted (last_examine_value, format, size, gdb_stdout);
c906108c
SS
875 }
876 printf_filtered ("\n");
877 gdb_flush (gdb_stdout);
878 }
879}
880\f
881static void
882validate_format (fmt, cmdname)
883 struct format_data fmt;
884 char *cmdname;
885{
886 if (fmt.size != 0)
887 error ("Size letters are meaningless in \"%s\" command.", cmdname);
888 if (fmt.count != 1)
889 error ("Item count other than 1 is meaningless in \"%s\" command.",
890 cmdname);
891 if (fmt.format == 'i' || fmt.format == 's')
892 error ("Format letter \"%c\" is meaningless in \"%s\" command.",
893 fmt.format, cmdname);
894}
895
896/* Evaluate string EXP as an expression in the current language and
c5aa993b
JM
897 print the resulting value. EXP may contain a format specifier as the
898 first argument ("/x myvar" for example, to print myvar in hex).
899 */
c906108c
SS
900
901static void
902print_command_1 (exp, inspect, voidprint)
903 char *exp;
904 int inspect;
905 int voidprint;
906{
907 struct expression *expr;
908 register struct cleanup *old_chain = 0;
909 register char format = 0;
910 register value_ptr val;
911 struct format_data fmt;
912 int cleanup = 0;
913
914 /* Pass inspect flag to the rest of the print routines in a global (sigh). */
915 inspect_it = inspect;
916
917 if (exp && *exp == '/')
918 {
919 exp++;
920 fmt = decode_format (&exp, last_format, 0);
921 validate_format (fmt, "print");
922 last_format = format = fmt.format;
923 }
924 else
925 {
926 fmt.count = 1;
927 fmt.format = 0;
928 fmt.size = 0;
929 }
930
931 if (exp && *exp)
932 {
c906108c
SS
933 struct type *type;
934 expr = parse_expression (exp);
c5aa993b
JM
935 old_chain = make_cleanup ((make_cleanup_func) free_current_contents,
936 &expr);
c906108c
SS
937 cleanup = 1;
938 val = evaluate_expression (expr);
939
940 /* C++: figure out what type we actually want to print it as. */
941 type = VALUE_TYPE (val);
942
943 if (objectprint
c5aa993b 944 && (TYPE_CODE (type) == TYPE_CODE_PTR
c906108c 945 || TYPE_CODE (type) == TYPE_CODE_REF)
c5aa993b 946 && (TYPE_CODE (TYPE_TARGET_TYPE (type)) == TYPE_CODE_STRUCT
c906108c
SS
947 || TYPE_CODE (TYPE_TARGET_TYPE (type)) == TYPE_CODE_UNION))
948 {
949 value_ptr v;
950
951 v = value_from_vtable_info (val, TYPE_TARGET_TYPE (type));
952 if (v != 0)
953 {
954 val = v;
955 type = VALUE_TYPE (val);
956 }
957 }
958 }
959 else
960 val = access_value_history (0);
961
962 if (voidprint || (val && VALUE_TYPE (val) &&
c5aa993b 963 TYPE_CODE (VALUE_TYPE (val)) != TYPE_CODE_VOID))
c906108c
SS
964 {
965 int histindex = record_latest_value (val);
966
967 if (histindex >= 0)
968 annotate_value_history_begin (histindex, VALUE_TYPE (val));
969 else
970 annotate_value_begin (VALUE_TYPE (val));
971
972 if (inspect)
973 printf_unfiltered ("\031(gdb-makebuffer \"%s\" %d '(\"", exp, histindex);
c5aa993b
JM
974 else if (histindex >= 0)
975 printf_filtered ("$%d = ", histindex);
c906108c
SS
976
977 if (histindex >= 0)
978 annotate_value_history_value ();
979
2acceee2 980 print_formatted (val, format, fmt.size, gdb_stdout);
c906108c
SS
981 printf_filtered ("\n");
982
983 if (histindex >= 0)
984 annotate_value_history_end ();
985 else
986 annotate_value_end ();
987
988 if (inspect)
c5aa993b 989 printf_unfiltered ("\") )\030");
c906108c
SS
990 }
991
992 if (cleanup)
993 do_cleanups (old_chain);
c5aa993b 994 inspect_it = 0; /* Reset print routines to normal */
c906108c
SS
995}
996
997/* ARGSUSED */
998static void
999print_command (exp, from_tty)
1000 char *exp;
1001 int from_tty;
1002{
1003 print_command_1 (exp, 0, 1);
1004}
1005
1006/* Same as print, except in epoch, it gets its own window */
1007/* ARGSUSED */
1008static void
1009inspect_command (exp, from_tty)
1010 char *exp;
1011 int from_tty;
1012{
1013 extern int epoch_interface;
1014
1015 print_command_1 (exp, epoch_interface, 1);
1016}
1017
1018/* Same as print, except it doesn't print void results. */
1019/* ARGSUSED */
1020static void
1021call_command (exp, from_tty)
1022 char *exp;
1023 int from_tty;
1024{
1025 print_command_1 (exp, 0, 0);
1026}
1027
1028/* ARGSUSED */
1029void
1030output_command (exp, from_tty)
1031 char *exp;
1032 int from_tty;
1033{
1034 struct expression *expr;
1035 register struct cleanup *old_chain;
1036 register char format = 0;
1037 register value_ptr val;
1038 struct format_data fmt;
1039
1040 if (exp && *exp == '/')
1041 {
1042 exp++;
1043 fmt = decode_format (&exp, 0, 0);
1044 validate_format (fmt, "output");
1045 format = fmt.format;
1046 }
1047
1048 expr = parse_expression (exp);
1049 old_chain = make_cleanup ((make_cleanup_func) free_current_contents, &expr);
1050
1051 val = evaluate_expression (expr);
1052
1053 annotate_value_begin (VALUE_TYPE (val));
1054
2acceee2 1055 print_formatted (val, format, fmt.size, gdb_stdout);
c906108c
SS
1056
1057 annotate_value_end ();
1058
2acceee2
JM
1059 wrap_here ("");
1060 gdb_flush (gdb_stdout);
1061
c906108c
SS
1062 do_cleanups (old_chain);
1063}
1064
1065/* ARGSUSED */
1066static void
1067set_command (exp, from_tty)
1068 char *exp;
1069 int from_tty;
1070{
1071 struct expression *expr = parse_expression (exp);
1072 register struct cleanup *old_chain
c5aa993b 1073 = make_cleanup ((make_cleanup_func) free_current_contents, &expr);
c906108c
SS
1074 evaluate_expression (expr);
1075 do_cleanups (old_chain);
1076}
1077
1078/* ARGSUSED */
1079static void
1080sym_info (arg, from_tty)
1081 char *arg;
c5aa993b 1082 int from_tty;
c906108c
SS
1083{
1084 struct minimal_symbol *msymbol;
c5aa993b
JM
1085 struct objfile *objfile;
1086 struct obj_section *osect;
1087 asection *sect;
1088 CORE_ADDR addr, sect_addr;
1089 int matches = 0;
1090 unsigned int offset;
c906108c
SS
1091
1092 if (!arg)
1093 error_no_arg ("address");
1094
1095 addr = parse_and_eval_address (arg);
1096 ALL_OBJSECTIONS (objfile, osect)
c5aa993b
JM
1097 {
1098 sect = osect->the_bfd_section;
1099 sect_addr = overlay_mapped_address (addr, sect);
c906108c 1100
c5aa993b
JM
1101 if (osect->addr <= sect_addr && sect_addr < osect->endaddr &&
1102 (msymbol = lookup_minimal_symbol_by_pc_section (sect_addr, sect)))
1103 {
1104 matches = 1;
1105 offset = sect_addr - SYMBOL_VALUE_ADDRESS (msymbol);
1106 if (offset)
1107 printf_filtered ("%s + %u in ",
1108 SYMBOL_SOURCE_NAME (msymbol), offset);
1109 else
1110 printf_filtered ("%s in ",
1111 SYMBOL_SOURCE_NAME (msymbol));
1112 if (pc_in_unmapped_range (addr, sect))
1113 printf_filtered ("load address range of ");
1114 if (section_is_overlay (sect))
1115 printf_filtered ("%s overlay ",
1116 section_is_mapped (sect) ? "mapped" : "unmapped");
1117 printf_filtered ("section %s", sect->name);
1118 printf_filtered ("\n");
1119 }
1120 }
c906108c
SS
1121 if (matches == 0)
1122 printf_filtered ("No symbol matches %s.\n", arg);
1123}
1124
1125/* ARGSUSED */
1126static void
1127address_info (exp, from_tty)
1128 char *exp;
1129 int from_tty;
1130{
1131 register struct symbol *sym;
1132 register struct minimal_symbol *msymbol;
1133 register long val;
1134 register long basereg;
1135 asection *section;
1136 CORE_ADDR load_addr;
1137 int is_a_field_of_this; /* C++: lookup_symbol sets this to nonzero
1138 if exp is a field of `this'. */
1139
1140 if (exp == 0)
1141 error ("Argument required.");
1142
c5aa993b
JM
1143 sym = lookup_symbol (exp, get_selected_block (), VAR_NAMESPACE,
1144 &is_a_field_of_this, (struct symtab **) NULL);
c906108c
SS
1145 if (sym == NULL)
1146 {
1147 if (is_a_field_of_this)
1148 {
1149 printf_filtered ("Symbol \"");
1150 fprintf_symbol_filtered (gdb_stdout, exp,
1151 current_language->la_language, DMGL_ANSI);
1152 printf_filtered ("\" is a field of the local class variable `this'\n");
1153 return;
1154 }
1155
1156 msymbol = lookup_minimal_symbol (exp, NULL, NULL);
1157
1158 if (msymbol != NULL)
1159 {
1160 load_addr = SYMBOL_VALUE_ADDRESS (msymbol);
1161
1162 printf_filtered ("Symbol \"");
1163 fprintf_symbol_filtered (gdb_stdout, exp,
1164 current_language->la_language, DMGL_ANSI);
1165 printf_filtered ("\" is at ");
1166 print_address_numeric (load_addr, 1, gdb_stdout);
1167 printf_filtered (" in a file compiled without debugging");
1168 section = SYMBOL_BFD_SECTION (msymbol);
1169 if (section_is_overlay (section))
1170 {
1171 load_addr = overlay_unmapped_address (load_addr, section);
1172 printf_filtered (",\n -- loaded at ");
1173 print_address_numeric (load_addr, 1, gdb_stdout);
1174 printf_filtered (" in overlay section %s", section->name);
1175 }
1176 printf_filtered (".\n");
1177 }
1178 else
1179 error ("No symbol \"%s\" in current context.", exp);
1180 return;
1181 }
1182
1183 printf_filtered ("Symbol \"");
1184 fprintf_symbol_filtered (gdb_stdout, SYMBOL_NAME (sym),
1185 current_language->la_language, DMGL_ANSI);
1186 printf_filtered ("\" is ");
c5aa993b 1187 val = SYMBOL_VALUE (sym);
c906108c
SS
1188 basereg = SYMBOL_BASEREG (sym);
1189 section = SYMBOL_BFD_SECTION (sym);
1190
1191 switch (SYMBOL_CLASS (sym))
1192 {
1193 case LOC_CONST:
1194 case LOC_CONST_BYTES:
1195 printf_filtered ("constant");
1196 break;
1197
1198 case LOC_LABEL:
1199 printf_filtered ("a label at address ");
c5aa993b 1200 print_address_numeric (load_addr = SYMBOL_VALUE_ADDRESS (sym),
c906108c
SS
1201 1, gdb_stdout);
1202 if (section_is_overlay (section))
1203 {
1204 load_addr = overlay_unmapped_address (load_addr, section);
1205 printf_filtered (",\n -- loaded at ");
1206 print_address_numeric (load_addr, 1, gdb_stdout);
1207 printf_filtered (" in overlay section %s", section->name);
1208 }
1209 break;
1210
1211 case LOC_REGISTER:
1212 printf_filtered ("a variable in register %s", REGISTER_NAME (val));
1213 break;
1214
1215 case LOC_STATIC:
1216 printf_filtered ("static storage at address ");
c5aa993b 1217 print_address_numeric (load_addr = SYMBOL_VALUE_ADDRESS (sym),
c906108c
SS
1218 1, gdb_stdout);
1219 if (section_is_overlay (section))
1220 {
1221 load_addr = overlay_unmapped_address (load_addr, section);
1222 printf_filtered (",\n -- loaded at ");
1223 print_address_numeric (load_addr, 1, gdb_stdout);
1224 printf_filtered (" in overlay section %s", section->name);
1225 }
1226 break;
1227
1228 case LOC_INDIRECT:
1229 printf_filtered ("external global (indirect addressing), at address *(");
1230 print_address_numeric (load_addr = SYMBOL_VALUE_ADDRESS (sym),
1231 1, gdb_stdout);
1232 printf_filtered (")");
1233 if (section_is_overlay (section))
1234 {
1235 load_addr = overlay_unmapped_address (load_addr, section);
1236 printf_filtered (",\n -- loaded at ");
1237 print_address_numeric (load_addr, 1, gdb_stdout);
1238 printf_filtered (" in overlay section %s", section->name);
1239 }
1240 break;
1241
1242 case LOC_REGPARM:
1243 printf_filtered ("an argument in register %s", REGISTER_NAME (val));
1244 break;
1245
1246 case LOC_REGPARM_ADDR:
1247 printf_filtered ("address of an argument in register %s", REGISTER_NAME (val));
1248 break;
1249
1250 case LOC_ARG:
1251 printf_filtered ("an argument at offset %ld", val);
1252 break;
1253
1254 case LOC_LOCAL_ARG:
1255 printf_filtered ("an argument at frame offset %ld", val);
1256 break;
1257
1258 case LOC_LOCAL:
1259 printf_filtered ("a local variable at frame offset %ld", val);
1260 break;
1261
1262 case LOC_REF_ARG:
1263 printf_filtered ("a reference argument at offset %ld", val);
1264 break;
1265
1266 case LOC_BASEREG:
1267 printf_filtered ("a variable at offset %ld from register %s",
c5aa993b 1268 val, REGISTER_NAME (basereg));
c906108c
SS
1269 break;
1270
1271 case LOC_BASEREG_ARG:
1272 printf_filtered ("an argument at offset %ld from register %s",
c5aa993b 1273 val, REGISTER_NAME (basereg));
c906108c
SS
1274 break;
1275
1276 case LOC_TYPEDEF:
1277 printf_filtered ("a typedef");
1278 break;
1279
1280 case LOC_BLOCK:
1281 printf_filtered ("a function at address ");
1282#ifdef GDB_TARGET_MASK_DISAS_PC
1283 print_address_numeric
c5aa993b 1284 (load_addr = GDB_TARGET_MASK_DISAS_PC (BLOCK_START (SYMBOL_BLOCK_VALUE (sym))),
c906108c
SS
1285 1, gdb_stdout);
1286#else
c5aa993b 1287 print_address_numeric (load_addr = BLOCK_START (SYMBOL_BLOCK_VALUE (sym)),
c906108c
SS
1288 1, gdb_stdout);
1289#endif
1290 if (section_is_overlay (section))
1291 {
1292 load_addr = overlay_unmapped_address (load_addr, section);
1293 printf_filtered (",\n -- loaded at ");
1294 print_address_numeric (load_addr, 1, gdb_stdout);
1295 printf_filtered (" in overlay section %s", section->name);
1296 }
1297 break;
1298
1299 case LOC_UNRESOLVED:
1300 {
1301 struct minimal_symbol *msym;
1302
1303 msym = lookup_minimal_symbol (SYMBOL_NAME (sym), NULL, NULL);
1304 if (msym == NULL)
1305 printf_filtered ("unresolved");
1306 else
1307 {
1308 section = SYMBOL_BFD_SECTION (msym);
1309 printf_filtered ("static storage at address ");
c5aa993b 1310 print_address_numeric (load_addr = SYMBOL_VALUE_ADDRESS (msym),
c906108c
SS
1311 1, gdb_stdout);
1312 if (section_is_overlay (section))
1313 {
1314 load_addr = overlay_unmapped_address (load_addr, section);
1315 printf_filtered (",\n -- loaded at ");
1316 print_address_numeric (load_addr, 1, gdb_stdout);
1317 printf_filtered (" in overlay section %s", section->name);
1318 }
1319 }
1320 }
1321 break;
1322
1323 case LOC_THREAD_LOCAL_STATIC:
1324 printf_filtered (
c5aa993b
JM
1325 "a thread-local variable at offset %ld from the thread base register %s",
1326 val, REGISTER_NAME (basereg));
c906108c
SS
1327 break;
1328
1329 case LOC_OPTIMIZED_OUT:
1330 printf_filtered ("optimized out");
1331 break;
c5aa993b 1332
c906108c
SS
1333 default:
1334 printf_filtered ("of unknown (botched) type");
1335 break;
1336 }
1337 printf_filtered (".\n");
1338}
1339\f
1340void
1341x_command (exp, from_tty)
1342 char *exp;
1343 int from_tty;
1344{
1345 struct expression *expr;
1346 struct format_data fmt;
1347 struct cleanup *old_chain;
1348 struct value *val;
1349
1350 fmt.format = last_format;
1351 fmt.size = last_size;
1352 fmt.count = 1;
1353
1354 if (exp && *exp == '/')
1355 {
1356 exp++;
1357 fmt = decode_format (&exp, last_format, last_size);
1358 }
1359
1360 /* If we have an expression, evaluate it and use it as the address. */
1361
1362 if (exp != 0 && *exp != 0)
1363 {
1364 expr = parse_expression (exp);
1365 /* Cause expression not to be there any more
c5aa993b
JM
1366 if this command is repeated with Newline.
1367 But don't clobber a user-defined command's definition. */
c906108c
SS
1368 if (from_tty)
1369 *exp = 0;
c5aa993b
JM
1370 old_chain = make_cleanup ((make_cleanup_func) free_current_contents,
1371 &expr);
c906108c
SS
1372 val = evaluate_expression (expr);
1373 if (TYPE_CODE (VALUE_TYPE (val)) == TYPE_CODE_REF)
1374 val = value_ind (val);
1375 /* In rvalue contexts, such as this, functions are coerced into
c5aa993b
JM
1376 pointers to functions. This makes "x/i main" work. */
1377 if ( /* last_format == 'i'
1378 && */ TYPE_CODE (VALUE_TYPE (val)) == TYPE_CODE_FUNC
1379 && VALUE_LVAL (val) == lval_memory)
c906108c
SS
1380 next_address = VALUE_ADDRESS (val);
1381 else
1382 next_address = value_as_pointer (val);
1383 if (VALUE_BFD_SECTION (val))
1384 next_section = VALUE_BFD_SECTION (val);
1385 do_cleanups (old_chain);
1386 }
1387
1388 do_examine (fmt, next_address, next_section);
1389
1390 /* If the examine succeeds, we remember its size and format for next time. */
1391 last_size = fmt.size;
1392 last_format = fmt.format;
1393
1394 /* Set a couple of internal variables if appropriate. */
1395 if (last_examine_value)
1396 {
1397 /* Make last address examined available to the user as $_. Use
c5aa993b 1398 the correct pointer type. */
4478b372
JB
1399 struct type *pointer_type
1400 = lookup_pointer_type (VALUE_TYPE (last_examine_value));
c906108c 1401 set_internalvar (lookup_internalvar ("_"),
4478b372
JB
1402 value_from_pointer (pointer_type,
1403 last_examine_address));
c5aa993b
JM
1404
1405 /* Make contents of last address examined available to the user as $__. */
c906108c
SS
1406 /* If the last value has not been fetched from memory then don't
1407 fetch it now - instead mark it by voiding the $__ variable. */
1408 if (VALUE_LAZY (last_examine_value))
1409 set_internalvar (lookup_internalvar ("__"),
1410 allocate_value (builtin_type_void));
1411 else
1412 set_internalvar (lookup_internalvar ("__"), last_examine_value);
1413 }
1414}
c906108c 1415\f
c5aa993b 1416
c906108c
SS
1417/* Add an expression to the auto-display chain.
1418 Specify the expression. */
1419
1420static void
1421display_command (exp, from_tty)
1422 char *exp;
1423 int from_tty;
1424{
1425 struct format_data fmt;
1426 register struct expression *expr;
1427 register struct display *new;
1428 int display_it = 1;
1429
1430#if defined(TUI)
1431 if (tui_version && *exp == '$')
c5aa993b
JM
1432 display_it = ((TuiStatus) tuiDo (
1433 (TuiOpaqueFuncPtr) tui_vSetLayoutTo, exp) == TUI_FAILURE);
c906108c
SS
1434#endif
1435
1436 if (display_it)
1437 {
1438 if (exp == 0)
1439 {
1440 do_displays ();
1441 return;
1442 }
1443
1444 if (*exp == '/')
1445 {
1446 exp++;
1447 fmt = decode_format (&exp, 0, 0);
1448 if (fmt.size && fmt.format == 0)
1449 fmt.format = 'x';
1450 if (fmt.format == 'i' || fmt.format == 's')
1451 fmt.size = 'b';
1452 }
1453 else
1454 {
1455 fmt.format = 0;
1456 fmt.size = 0;
1457 fmt.count = 0;
1458 }
1459
1460 innermost_block = 0;
1461 expr = parse_expression (exp);
1462
1463 new = (struct display *) xmalloc (sizeof (struct display));
1464
1465 new->exp = expr;
1466 new->block = innermost_block;
1467 new->next = display_chain;
1468 new->number = ++display_number;
1469 new->format = fmt;
1470 new->status = enabled;
1471 display_chain = new;
1472
1473 if (from_tty && target_has_execution)
1474 do_one_display (new);
1475
1476 dont_repeat ();
1477 }
1478}
1479
1480static void
1481free_display (d)
1482 struct display *d;
1483{
c5aa993b
JM
1484 free ((PTR) d->exp);
1485 free ((PTR) d);
c906108c
SS
1486}
1487
1488/* Clear out the display_chain.
1489 Done when new symtabs are loaded, since this invalidates
1490 the types stored in many expressions. */
1491
1492void
1493clear_displays ()
1494{
1495 register struct display *d;
1496
1497 while ((d = display_chain) != NULL)
1498 {
c5aa993b 1499 free ((PTR) d->exp);
c906108c 1500 display_chain = d->next;
c5aa993b 1501 free ((PTR) d);
c906108c
SS
1502 }
1503}
1504
1505/* Delete the auto-display number NUM. */
1506
1507static void
1508delete_display (num)
1509 int num;
1510{
1511 register struct display *d1, *d;
1512
1513 if (!display_chain)
1514 error ("No display number %d.", num);
1515
1516 if (display_chain->number == num)
1517 {
1518 d1 = display_chain;
1519 display_chain = d1->next;
1520 free_display (d1);
1521 }
1522 else
c5aa993b 1523 for (d = display_chain;; d = d->next)
c906108c
SS
1524 {
1525 if (d->next == 0)
1526 error ("No display number %d.", num);
1527 if (d->next->number == num)
1528 {
1529 d1 = d->next;
1530 d->next = d1->next;
1531 free_display (d1);
1532 break;
1533 }
1534 }
1535}
1536
1537/* Delete some values from the auto-display chain.
1538 Specify the element numbers. */
1539
1540static void
1541undisplay_command (args, from_tty)
1542 char *args;
1543 int from_tty;
1544{
1545 register char *p = args;
1546 register char *p1;
1547 register int num;
1548
1549 if (args == 0)
1550 {
1551 if (query ("Delete all auto-display expressions? "))
1552 clear_displays ();
1553 dont_repeat ();
1554 return;
1555 }
1556
1557 while (*p)
1558 {
1559 p1 = p;
c5aa993b
JM
1560 while (*p1 >= '0' && *p1 <= '9')
1561 p1++;
c906108c
SS
1562 if (*p1 && *p1 != ' ' && *p1 != '\t')
1563 error ("Arguments must be display numbers.");
1564
1565 num = atoi (p);
1566
1567 delete_display (num);
1568
1569 p = p1;
c5aa993b
JM
1570 while (*p == ' ' || *p == '\t')
1571 p++;
c906108c
SS
1572 }
1573 dont_repeat ();
1574}
1575
1576/* Display a single auto-display.
1577 Do nothing if the display cannot be printed in the current context,
1578 or if the display is disabled. */
1579
1580static void
1581do_one_display (d)
1582 struct display *d;
1583{
1584 int within_current_scope;
1585
1586 if (d->status == disabled)
1587 return;
1588
1589 if (d->block)
1590 within_current_scope = contained_in (get_selected_block (), d->block);
1591 else
1592 within_current_scope = 1;
1593 if (!within_current_scope)
1594 return;
1595
1596 current_display_number = d->number;
1597
1598 annotate_display_begin ();
1599 printf_filtered ("%d", d->number);
1600 annotate_display_number_end ();
1601 printf_filtered (": ");
1602 if (d->format.size)
1603 {
1604 CORE_ADDR addr;
1605 value_ptr val;
1606
1607 annotate_display_format ();
1608
1609 printf_filtered ("x/");
1610 if (d->format.count != 1)
1611 printf_filtered ("%d", d->format.count);
1612 printf_filtered ("%c", d->format.format);
1613 if (d->format.format != 'i' && d->format.format != 's')
1614 printf_filtered ("%c", d->format.size);
1615 printf_filtered (" ");
1616
1617 annotate_display_expression ();
1618
1619 print_expression (d->exp, gdb_stdout);
1620 annotate_display_expression_end ();
1621
1622 if (d->format.count != 1)
1623 printf_filtered ("\n");
1624 else
1625 printf_filtered (" ");
c5aa993b 1626
c906108c
SS
1627 val = evaluate_expression (d->exp);
1628 addr = value_as_pointer (val);
1629 if (d->format.format == 'i')
1630 addr = ADDR_BITS_REMOVE (addr);
1631
1632 annotate_display_value ();
1633
1634 do_examine (d->format, addr, VALUE_BFD_SECTION (val));
1635 }
1636 else
1637 {
1638 annotate_display_format ();
1639
1640 if (d->format.format)
1641 printf_filtered ("/%c ", d->format.format);
1642
1643 annotate_display_expression ();
1644
1645 print_expression (d->exp, gdb_stdout);
1646 annotate_display_expression_end ();
1647
1648 printf_filtered (" = ");
1649
1650 annotate_display_expression ();
1651
1652 print_formatted (evaluate_expression (d->exp),
2acceee2 1653 d->format.format, d->format.size, gdb_stdout);
c906108c
SS
1654 printf_filtered ("\n");
1655 }
1656
1657 annotate_display_end ();
1658
1659 gdb_flush (gdb_stdout);
1660 current_display_number = -1;
1661}
1662
1663/* Display all of the values on the auto-display chain which can be
1664 evaluated in the current scope. */
1665
1666void
1667do_displays ()
1668{
1669 register struct display *d;
1670
1671 for (d = display_chain; d; d = d->next)
1672 do_one_display (d);
1673}
1674
1675/* Delete the auto-display which we were in the process of displaying.
1676 This is done when there is an error or a signal. */
1677
1678void
1679disable_display (num)
1680 int num;
1681{
1682 register struct display *d;
1683
1684 for (d = display_chain; d; d = d->next)
1685 if (d->number == num)
1686 {
1687 d->status = disabled;
1688 return;
1689 }
1690 printf_unfiltered ("No display number %d.\n", num);
1691}
c5aa993b 1692
c906108c
SS
1693void
1694disable_current_display ()
1695{
1696 if (current_display_number >= 0)
1697 {
1698 disable_display (current_display_number);
1699 fprintf_unfiltered (gdb_stderr, "Disabling display %d to avoid infinite recursion.\n",
c5aa993b 1700 current_display_number);
c906108c
SS
1701 }
1702 current_display_number = -1;
1703}
1704
1705static void
1706display_info (ignore, from_tty)
1707 char *ignore;
1708 int from_tty;
1709{
1710 register struct display *d;
1711
1712 if (!display_chain)
1713 printf_unfiltered ("There are no auto-display expressions now.\n");
1714 else
c5aa993b 1715 printf_filtered ("Auto-display expressions now in effect:\n\
c906108c
SS
1716Num Enb Expression\n");
1717
1718 for (d = display_chain; d; d = d->next)
1719 {
c5aa993b 1720 printf_filtered ("%d: %c ", d->number, "ny"[(int) d->status]);
c906108c
SS
1721 if (d->format.size)
1722 printf_filtered ("/%d%c%c ", d->format.count, d->format.size,
c5aa993b 1723 d->format.format);
c906108c
SS
1724 else if (d->format.format)
1725 printf_filtered ("/%c ", d->format.format);
1726 print_expression (d->exp, gdb_stdout);
1727 if (d->block && !contained_in (get_selected_block (), d->block))
1728 printf_filtered (" (cannot be evaluated in the current context)");
1729 printf_filtered ("\n");
1730 gdb_flush (gdb_stdout);
1731 }
1732}
1733
1734static void
1735enable_display (args, from_tty)
1736 char *args;
1737 int from_tty;
1738{
1739 register char *p = args;
1740 register char *p1;
1741 register int num;
1742 register struct display *d;
1743
1744 if (p == 0)
1745 {
1746 for (d = display_chain; d; d = d->next)
1747 d->status = enabled;
1748 }
1749 else
1750 while (*p)
1751 {
1752 p1 = p;
1753 while (*p1 >= '0' && *p1 <= '9')
1754 p1++;
1755 if (*p1 && *p1 != ' ' && *p1 != '\t')
1756 error ("Arguments must be display numbers.");
c5aa993b 1757
c906108c 1758 num = atoi (p);
c5aa993b 1759
c906108c
SS
1760 for (d = display_chain; d; d = d->next)
1761 if (d->number == num)
1762 {
1763 d->status = enabled;
1764 goto win;
1765 }
1766 printf_unfiltered ("No display number %d.\n", num);
1767 win:
1768 p = p1;
1769 while (*p == ' ' || *p == '\t')
1770 p++;
1771 }
1772}
1773
1774/* ARGSUSED */
1775static void
1776disable_display_command (args, from_tty)
1777 char *args;
1778 int from_tty;
1779{
1780 register char *p = args;
1781 register char *p1;
1782 register struct display *d;
1783
1784 if (p == 0)
1785 {
1786 for (d = display_chain; d; d = d->next)
1787 d->status = disabled;
1788 }
1789 else
1790 while (*p)
1791 {
1792 p1 = p;
1793 while (*p1 >= '0' && *p1 <= '9')
1794 p1++;
1795 if (*p1 && *p1 != ' ' && *p1 != '\t')
1796 error ("Arguments must be display numbers.");
c5aa993b 1797
c906108c
SS
1798 disable_display (atoi (p));
1799
1800 p = p1;
1801 while (*p == ' ' || *p == '\t')
1802 p++;
1803 }
1804}
c906108c 1805\f
c5aa993b 1806
c906108c
SS
1807/* Print the value in stack frame FRAME of a variable
1808 specified by a struct symbol. */
1809
1810void
1811print_variable_value (var, frame, stream)
1812 struct symbol *var;
1813 struct frame_info *frame;
d9fcf2fb 1814 struct ui_file *stream;
c906108c
SS
1815{
1816 value_ptr val = read_var_value (var, frame);
1817
1818 value_print (val, stream, 0, Val_pretty_default);
1819}
1820
1821/* Print the arguments of a stack frame, given the function FUNC
1822 running in that frame (as a symbol), the info on the frame,
1823 and the number of args according to the stack frame (or -1 if unknown). */
1824
1825/* References here and elsewhere to "number of args according to the
1826 stack frame" appear in all cases to refer to "number of ints of args
1827 according to the stack frame". At least for VAX, i386, isi. */
1828
1829void
1830print_frame_args (func, fi, num, stream)
1831 struct symbol *func;
1832 struct frame_info *fi;
1833 int num;
d9fcf2fb 1834 struct ui_file *stream;
c906108c
SS
1835{
1836 struct block *b = NULL;
1837 int nsyms = 0;
1838 int first = 1;
1839 register int i;
1840 register struct symbol *sym;
1841 register value_ptr val;
1842 /* Offset of next stack argument beyond the one we have seen that is
1843 at the highest offset.
1844 -1 if we haven't come to a stack argument yet. */
1845 long highest_offset = -1;
1846 int arg_size;
1847 /* Number of ints of arguments that we have printed so far. */
1848 int args_printed = 0;
8b93c638
JM
1849#ifdef UI_OUT
1850 struct cleanup *old_chain;
1851 struct ui_stream *stb;
1852
1853 stb = ui_out_stream_new (uiout);
1854 old_chain = make_cleanup ((make_cleanup_func) ui_out_stream_delete, stb);
1855#endif /* UI_OUT */
c906108c
SS
1856
1857 if (func)
1858 {
1859 b = SYMBOL_BLOCK_VALUE (func);
1860 nsyms = BLOCK_NSYMS (b);
1861 }
1862
1863 for (i = 0; i < nsyms; i++)
1864 {
1865 QUIT;
1866 sym = BLOCK_SYM (b, i);
1867
1868 /* Keep track of the highest stack argument offset seen, and
c5aa993b 1869 skip over any kinds of symbols we don't care about. */
c906108c 1870
c5aa993b 1871 switch (SYMBOL_CLASS (sym))
c906108c 1872 {
c5aa993b
JM
1873 case LOC_ARG:
1874 case LOC_REF_ARG:
1875 {
1876 long current_offset = SYMBOL_VALUE (sym);
1877 arg_size = TYPE_LENGTH (SYMBOL_TYPE (sym));
1878
1879 /* Compute address of next argument by adding the size of
1880 this argument and rounding to an int boundary. */
1881 current_offset
1882 = ((current_offset + arg_size + sizeof (int) - 1)
1883 & ~(sizeof (int) - 1));
1884
1885 /* If this is the highest offset seen yet, set highest_offset. */
1886 if (highest_offset == -1
1887 || (current_offset > highest_offset))
1888 highest_offset = current_offset;
1889
1890 /* Add the number of ints we're about to print to args_printed. */
1891 args_printed += (arg_size + sizeof (int) - 1) / sizeof (int);
1892 }
c906108c 1893
c5aa993b
JM
1894 /* We care about types of symbols, but don't need to keep track of
1895 stack offsets in them. */
1896 case LOC_REGPARM:
1897 case LOC_REGPARM_ADDR:
1898 case LOC_LOCAL_ARG:
1899 case LOC_BASEREG_ARG:
1900 break;
c906108c 1901
c5aa993b
JM
1902 /* Other types of symbols we just skip over. */
1903 default:
1904 continue;
1905 }
c906108c
SS
1906
1907 /* We have to look up the symbol because arguments can have
c5aa993b
JM
1908 two entries (one a parameter, one a local) and the one we
1909 want is the local, which lookup_symbol will find for us.
1910 This includes gcc1 (not gcc2) on the sparc when passing a
1911 small structure and gcc2 when the argument type is float
1912 and it is passed as a double and converted to float by
1913 the prologue (in the latter case the type of the LOC_ARG
1914 symbol is double and the type of the LOC_LOCAL symbol is
1915 float). */
c906108c 1916 /* But if the parameter name is null, don't try it.
c5aa993b
JM
1917 Null parameter names occur on the RS/6000, for traceback tables.
1918 FIXME, should we even print them? */
c906108c
SS
1919
1920 if (*SYMBOL_NAME (sym))
1921 {
1922 struct symbol *nsym;
1923 nsym = lookup_symbol
1924 (SYMBOL_NAME (sym),
c5aa993b 1925 b, VAR_NAMESPACE, (int *) NULL, (struct symtab **) NULL);
c906108c
SS
1926 if (SYMBOL_CLASS (nsym) == LOC_REGISTER)
1927 {
1928 /* There is a LOC_ARG/LOC_REGISTER pair. This means that
c5aa993b
JM
1929 it was passed on the stack and loaded into a register,
1930 or passed in a register and stored in a stack slot.
1931 GDB 3.x used the LOC_ARG; GDB 4.0-4.11 used the LOC_REGISTER.
1932
1933 Reasons for using the LOC_ARG:
1934 (1) because find_saved_registers may be slow for remote
1935 debugging,
1936 (2) because registers are often re-used and stack slots
1937 rarely (never?) are. Therefore using the stack slot is
1938 much less likely to print garbage.
1939
1940 Reasons why we might want to use the LOC_REGISTER:
1941 (1) So that the backtrace prints the same value as
1942 "print foo". I see no compelling reason why this needs
1943 to be the case; having the backtrace print the value which
1944 was passed in, and "print foo" print the value as modified
1945 within the called function, makes perfect sense to me.
1946
1947 Additional note: It might be nice if "info args" displayed
1948 both values.
1949 One more note: There is a case with sparc structure passing
1950 where we need to use the LOC_REGISTER, but this is dealt with
1951 by creating a single LOC_REGPARM in symbol reading. */
c906108c
SS
1952
1953 /* Leave sym (the LOC_ARG) alone. */
1954 ;
1955 }
1956 else
1957 sym = nsym;
1958 }
1959
8b93c638
JM
1960#ifdef UI_OUT
1961 /* Print the current arg. */
1962 if (!first)
1963 ui_out_text (uiout, ", ");
1964 ui_out_wrap_hint (uiout, " ");
1965
1966 annotate_arg_begin ();
1967
1968 ui_out_list_begin (uiout, NULL);
1969 fprintf_symbol_filtered (stb->stream, SYMBOL_SOURCE_NAME (sym),
1970 SYMBOL_LANGUAGE (sym), DMGL_PARAMS | DMGL_ANSI);
1971 ui_out_field_stream (uiout, "name", stb);
1972 annotate_arg_name_end ();
1973 ui_out_text (uiout, "=");
1974#else
c906108c 1975 /* Print the current arg. */
c5aa993b 1976 if (!first)
c906108c
SS
1977 fprintf_filtered (stream, ", ");
1978 wrap_here (" ");
1979
1980 annotate_arg_begin ();
1981
1982 fprintf_symbol_filtered (stream, SYMBOL_SOURCE_NAME (sym),
c5aa993b 1983 SYMBOL_LANGUAGE (sym), DMGL_PARAMS | DMGL_ANSI);
c906108c
SS
1984 annotate_arg_name_end ();
1985 fputs_filtered ("=", stream);
8b93c638 1986#endif
c906108c
SS
1987
1988 /* Avoid value_print because it will deref ref parameters. We just
c5aa993b
JM
1989 want to print their addresses. Print ??? for args whose address
1990 we do not know. We pass 2 as "recurse" to val_print because our
1991 standard indentation here is 4 spaces, and val_print indents
1992 2 for each recurse. */
c906108c
SS
1993 val = read_var_value (sym, fi);
1994
1995 annotate_arg_value (val == NULL ? NULL : VALUE_TYPE (val));
1996
1997 if (val)
1998 {
7a292a7a 1999 if (GDB_TARGET_IS_D10V
c5aa993b
JM
2000 && SYMBOL_CLASS (sym) == LOC_REGPARM && TYPE_CODE (VALUE_TYPE (val)) == TYPE_CODE_PTR)
2001 TYPE_LENGTH (VALUE_TYPE (val)) = 2;
8b93c638
JM
2002#ifdef UI_OUT
2003 val_print (VALUE_TYPE (val), VALUE_CONTENTS (val), 0,
2004 VALUE_ADDRESS (val),
2005 stb->stream, 0, 0, 2, Val_no_prettyprint);
2006 ui_out_field_stream (uiout, "value", stb);
2007 }
2008 else
2009 ui_out_text (uiout, "???");
2010
2011 ui_out_list_end (uiout);
2012#else
c906108c 2013 val_print (VALUE_TYPE (val), VALUE_CONTENTS (val), 0,
c5aa993b
JM
2014 VALUE_ADDRESS (val),
2015 stream, 0, 0, 2, Val_no_prettyprint);
c906108c
SS
2016 }
2017 else
2018 fputs_filtered ("???", stream);
8b93c638 2019#endif
c906108c
SS
2020
2021 annotate_arg_end ();
2022
2023 first = 0;
2024 }
2025
2026 /* Don't print nameless args in situations where we don't know
2027 enough about the stack to find them. */
2028 if (num != -1)
2029 {
2030 long start;
2031
2032 if (highest_offset == -1)
2033 start = FRAME_ARGS_SKIP;
2034 else
2035 start = highest_offset;
2036
2037 print_frame_nameless_args (fi, start, num - args_printed,
2038 first, stream);
2039 }
8b93c638
JM
2040#ifdef UI_OUT
2041 do_cleanups (old_chain);
2042#endif /* no UI_OUT */
c906108c
SS
2043}
2044
2045/* Print nameless args on STREAM.
2046 FI is the frameinfo for this frame, START is the offset
2047 of the first nameless arg, and NUM is the number of nameless args to
2048 print. FIRST is nonzero if this is the first argument (not just
2049 the first nameless arg). */
2050
2051static void
2052print_frame_nameless_args (fi, start, num, first, stream)
2053 struct frame_info *fi;
2054 long start;
2055 int num;
2056 int first;
d9fcf2fb 2057 struct ui_file *stream;
c906108c
SS
2058{
2059 int i;
2060 CORE_ADDR argsaddr;
2061 long arg_value;
2062
2063 for (i = 0; i < num; i++)
2064 {
2065 QUIT;
2066#ifdef NAMELESS_ARG_VALUE
2067 NAMELESS_ARG_VALUE (fi, start, &arg_value);
2068#else
2069 argsaddr = FRAME_ARGS_ADDRESS (fi);
2070 if (!argsaddr)
2071 return;
2072
2073 arg_value = read_memory_integer (argsaddr + start, sizeof (int));
2074#endif
2075
2076 if (!first)
2077 fprintf_filtered (stream, ", ");
2078
2079#ifdef PRINT_NAMELESS_INTEGER
2080 PRINT_NAMELESS_INTEGER (stream, arg_value);
2081#else
2082#ifdef PRINT_TYPELESS_INTEGER
2083 PRINT_TYPELESS_INTEGER (stream, builtin_type_int, (LONGEST) arg_value);
2084#else
2085 fprintf_filtered (stream, "%ld", arg_value);
2086#endif /* PRINT_TYPELESS_INTEGER */
2087#endif /* PRINT_NAMELESS_INTEGER */
2088 first = 0;
2089 start += sizeof (int);
2090 }
2091}
2092\f
2093/* ARGSUSED */
2094static void
2095printf_command (arg, from_tty)
2096 char *arg;
2097 int from_tty;
2098{
2099 register char *f = NULL;
2100 register char *s = arg;
2101 char *string = NULL;
2102 value_ptr *val_args;
2103 char *substrings;
2104 char *current_substring;
2105 int nargs = 0;
2106 int allocated_args = 20;
2107 struct cleanup *old_cleanups;
2108
2109 val_args = (value_ptr *) xmalloc (allocated_args * sizeof (value_ptr));
c5aa993b
JM
2110 old_cleanups = make_cleanup ((make_cleanup_func) free_current_contents,
2111 &val_args);
c906108c
SS
2112
2113 if (s == 0)
2114 error_no_arg ("format-control string and values to print");
2115
2116 /* Skip white space before format string */
c5aa993b
JM
2117 while (*s == ' ' || *s == '\t')
2118 s++;
c906108c
SS
2119
2120 /* A format string should follow, enveloped in double quotes */
2121 if (*s++ != '"')
2122 error ("Bad format string, missing '\"'.");
2123
2124 /* Parse the format-control string and copy it into the string STRING,
2125 processing some kinds of escape sequence. */
2126
2127 f = string = (char *) alloca (strlen (s) + 1);
2128
2129 while (*s != '"')
2130 {
2131 int c = *s++;
2132 switch (c)
2133 {
2134 case '\0':
2135 error ("Bad format string, non-terminated '\"'.");
2136
2137 case '\\':
2138 switch (c = *s++)
2139 {
2140 case '\\':
2141 *f++ = '\\';
2142 break;
2143 case 'a':
2144#ifdef __STDC__
2145 *f++ = '\a';
2146#else
c5aa993b 2147 *f++ = '\007'; /* Bell */
c906108c
SS
2148#endif
2149 break;
2150 case 'b':
2151 *f++ = '\b';
2152 break;
2153 case 'f':
2154 *f++ = '\f';
2155 break;
2156 case 'n':
2157 *f++ = '\n';
2158 break;
2159 case 'r':
2160 *f++ = '\r';
2161 break;
2162 case 't':
2163 *f++ = '\t';
2164 break;
2165 case 'v':
2166 *f++ = '\v';
2167 break;
2168 case '"':
2169 *f++ = '"';
2170 break;
2171 default:
2172 /* ??? TODO: handle other escape sequences */
2173 error ("Unrecognized escape character \\%c in format string.",
2174 c);
2175 }
2176 break;
2177
2178 default:
2179 *f++ = c;
2180 }
2181 }
2182
2183 /* Skip over " and following space and comma. */
2184 s++;
2185 *f++ = '\0';
c5aa993b
JM
2186 while (*s == ' ' || *s == '\t')
2187 s++;
c906108c
SS
2188
2189 if (*s != ',' && *s != 0)
2190 error ("Invalid argument syntax");
2191
c5aa993b
JM
2192 if (*s == ',')
2193 s++;
2194 while (*s == ' ' || *s == '\t')
2195 s++;
c906108c
SS
2196
2197 /* Need extra space for the '\0's. Doubling the size is sufficient. */
2198 substrings = alloca (strlen (string) * 2);
2199 current_substring = substrings;
2200
2201 {
2202 /* Now scan the string for %-specs and see what kinds of args they want.
2203 argclass[I] classifies the %-specs so we can give printf_filtered
2204 something of the right size. */
2205
c5aa993b
JM
2206 enum argclass
2207 {
2208 no_arg, int_arg, string_arg, double_arg, long_long_arg
2209 };
c906108c
SS
2210 enum argclass *argclass;
2211 enum argclass this_argclass;
2212 char *last_arg;
2213 int nargs_wanted;
2214 int lcount;
2215 int i;
2216
2217 argclass = (enum argclass *) alloca (strlen (s) * sizeof *argclass);
2218 nargs_wanted = 0;
2219 f = string;
2220 last_arg = string;
2221 while (*f)
2222 if (*f++ == '%')
2223 {
2224 lcount = 0;
c5aa993b 2225 while (strchr ("0123456789.hlL-+ #", *f))
c906108c
SS
2226 {
2227 if (*f == 'l' || *f == 'L')
2228 lcount++;
2229 f++;
2230 }
2231 switch (*f)
2232 {
2233 case 's':
2234 this_argclass = string_arg;
2235 break;
2236
2237 case 'e':
2238 case 'f':
2239 case 'g':
2240 this_argclass = double_arg;
2241 break;
2242
2243 case '*':
2244 error ("`*' not supported for precision or width in printf");
2245
2246 case 'n':
2247 error ("Format specifier `n' not supported in printf");
2248
2249 case '%':
2250 this_argclass = no_arg;
2251 break;
2252
2253 default:
2254 if (lcount > 1)
2255 this_argclass = long_long_arg;
2256 else
2257 this_argclass = int_arg;
2258 break;
2259 }
2260 f++;
2261 if (this_argclass != no_arg)
2262 {
2263 strncpy (current_substring, last_arg, f - last_arg);
2264 current_substring += f - last_arg;
2265 *current_substring++ = '\0';
2266 last_arg = f;
2267 argclass[nargs_wanted++] = this_argclass;
2268 }
2269 }
2270
2271 /* Now, parse all arguments and evaluate them.
2272 Store the VALUEs in VAL_ARGS. */
2273
2274 while (*s != '\0')
2275 {
2276 char *s1;
2277 if (nargs == allocated_args)
2278 val_args = (value_ptr *) xrealloc ((char *) val_args,
2279 (allocated_args *= 2)
2280 * sizeof (value_ptr));
2281 s1 = s;
2282 val_args[nargs] = parse_to_comma_and_eval (&s1);
c5aa993b 2283
c906108c
SS
2284 /* If format string wants a float, unchecked-convert the value to
2285 floating point of the same size */
c5aa993b 2286
c906108c
SS
2287 if (argclass[nargs] == double_arg)
2288 {
2289 struct type *type = VALUE_TYPE (val_args[nargs]);
2290 if (TYPE_LENGTH (type) == sizeof (float))
c5aa993b 2291 VALUE_TYPE (val_args[nargs]) = builtin_type_float;
c906108c 2292 if (TYPE_LENGTH (type) == sizeof (double))
c5aa993b 2293 VALUE_TYPE (val_args[nargs]) = builtin_type_double;
c906108c
SS
2294 }
2295 nargs++;
2296 s = s1;
2297 if (*s == ',')
2298 s++;
2299 }
c5aa993b 2300
c906108c
SS
2301 if (nargs != nargs_wanted)
2302 error ("Wrong number of arguments for specified format-string");
2303
2304 /* Now actually print them. */
2305 current_substring = substrings;
2306 for (i = 0; i < nargs; i++)
2307 {
2308 switch (argclass[i])
2309 {
2310 case string_arg:
2311 {
2312 char *str;
2313 CORE_ADDR tem;
2314 int j;
2315 tem = value_as_pointer (val_args[i]);
2316
2317 /* This is a %s argument. Find the length of the string. */
c5aa993b 2318 for (j = 0;; j++)
c906108c
SS
2319 {
2320 char c;
2321 QUIT;
2322 read_memory_section (tem + j, &c, 1,
2323 VALUE_BFD_SECTION (val_args[i]));
2324 if (c == 0)
2325 break;
2326 }
2327
2328 /* Copy the string contents into a string inside GDB. */
2329 str = (char *) alloca (j + 1);
2330 read_memory_section (tem, str, j, VALUE_BFD_SECTION (val_args[i]));
2331 str[j] = 0;
2332
2333 printf_filtered (current_substring, str);
2334 }
2335 break;
2336 case double_arg:
2337 {
2338 double val = value_as_double (val_args[i]);
2339 printf_filtered (current_substring, val);
2340 break;
2341 }
2342 case long_long_arg:
2343#if defined (CC_HAS_LONG_LONG) && defined (PRINTF_HAS_LONG_LONG)
2344 {
2345 long long val = value_as_long (val_args[i]);
2346 printf_filtered (current_substring, val);
2347 break;
2348 }
2349#else
2350 error ("long long not supported in printf");
2351#endif
2352 case int_arg:
2353 {
2354 /* FIXME: there should be separate int_arg and long_arg. */
2355 long val = value_as_long (val_args[i]);
2356 printf_filtered (current_substring, val);
2357 break;
2358 }
c5aa993b
JM
2359 default: /* purecov: deadcode */
2360 error ("internal error in printf_command"); /* purecov: deadcode */
c906108c
SS
2361 }
2362 /* Skip to the next substring. */
2363 current_substring += strlen (current_substring) + 1;
2364 }
2365 /* Print the portion of the format string after the last argument. */
2366 printf_filtered (last_arg);
2367 }
2368 do_cleanups (old_cleanups);
2369}
2370\f
2371/* Dump a specified section of assembly code. With no command line
2372 arguments, this command will dump the assembly code for the
2373 function surrounding the pc value in the selected frame. With one
2374 argument, it will dump the assembly code surrounding that pc value.
2375 Two arguments are interpeted as bounds within which to dump
2376 assembly. */
2377
2378/* ARGSUSED */
2379static void
2380disassemble_command (arg, from_tty)
2381 char *arg;
2382 int from_tty;
2383{
2384 CORE_ADDR low, high;
2385 char *name;
2386 CORE_ADDR pc, pc_masked;
2387 char *space_index;
2388#if 0
2389 asection *section;
2390#endif
2391
2392 name = NULL;
2393 if (!arg)
2394 {
2395 if (!selected_frame)
2396 error ("No frame selected.\n");
2397
2398 pc = get_frame_pc (selected_frame);
2399 if (find_pc_partial_function (pc, &name, &low, &high) == 0)
2400 error ("No function contains program counter for selected frame.\n");
2401#if defined(TUI)
2402 else if (tui_version)
c5aa993b
JM
2403 low = (CORE_ADDR) tuiDo ((TuiOpaqueFuncPtr) tui_vGetLowDisassemblyAddress,
2404 (Opaque) low,
2405 (Opaque) pc);
c906108c
SS
2406#endif
2407 low += FUNCTION_START_OFFSET;
2408 }
2409 else if (!(space_index = (char *) strchr (arg, ' ')))
2410 {
2411 /* One argument. */
2412 pc = parse_and_eval_address (arg);
2413 if (find_pc_partial_function (pc, &name, &low, &high) == 0)
2414 error ("No function contains specified address.\n");
2415#if defined(TUI)
2416 else if (tui_version)
c5aa993b
JM
2417 low = (CORE_ADDR) tuiDo ((TuiOpaqueFuncPtr) tui_vGetLowDisassemblyAddress,
2418 (Opaque) low,
2419 (Opaque) pc);
c906108c
SS
2420#endif
2421#if 0
2422 if (overlay_debugging)
2423 {
2424 section = find_pc_overlay (pc);
2425 if (pc_in_unmapped_range (pc, section))
2426 {
2427 /* find_pc_partial_function will have returned low and high
c5aa993b
JM
2428 relative to the symbolic (mapped) address range. Need to
2429 translate them back to the unmapped range where PC is. */
2430 low = overlay_unmapped_address (low, section);
c906108c
SS
2431 high = overlay_unmapped_address (high, section);
2432 }
2433 }
2434#endif
2435 low += FUNCTION_START_OFFSET;
2436 }
2437 else
2438 {
2439 /* Two arguments. */
2440 *space_index = '\0';
2441 low = parse_and_eval_address (arg);
2442 high = parse_and_eval_address (space_index + 1);
2443 }
2444
2445#if defined(TUI)
2446 if (!tui_version ||
c5aa993b 2447 m_winPtrIsNull (disassemWin) || !disassemWin->generic.isVisible)
c906108c
SS
2448#endif
2449 {
2450 printf_filtered ("Dump of assembler code ");
2451 if (name != NULL)
2452 {
2453 printf_filtered ("for function %s:\n", name);
2454 }
2455 else
2456 {
2457 printf_filtered ("from ");
2458 print_address_numeric (low, 1, gdb_stdout);
2459 printf_filtered (" to ");
2460 print_address_numeric (high, 1, gdb_stdout);
2461 printf_filtered (":\n");
2462 }
2463
2464 /* Dump the specified range. */
2465 pc = low;
2466
2467#ifdef GDB_TARGET_MASK_DISAS_PC
2468 pc_masked = GDB_TARGET_MASK_DISAS_PC (pc);
2469#else
2470 pc_masked = pc;
2471#endif
2472
2473 while (pc_masked < high)
2474 {
2475 QUIT;
2476 print_address (pc_masked, gdb_stdout);
2477 printf_filtered (":\t");
2478 /* We often wrap here if there are long symbolic names. */
2479 wrap_here (" ");
2480 pc += print_insn (pc, gdb_stdout);
2481 printf_filtered ("\n");
2482
2483#ifdef GDB_TARGET_MASK_DISAS_PC
2484 pc_masked = GDB_TARGET_MASK_DISAS_PC (pc);
2485#else
2486 pc_masked = pc;
2487#endif
2488 }
2489 printf_filtered ("End of assembler dump.\n");
2490 gdb_flush (gdb_stdout);
2491 }
2492#if defined(TUI)
2493 else
2494 {
c5aa993b
JM
2495 tuiDo ((TuiOpaqueFuncPtr) tui_vAddWinToLayout, DISASSEM_WIN);
2496 tuiDo ((TuiOpaqueFuncPtr) tui_vUpdateSourceWindowsWithAddr, low);
c906108c
SS
2497 }
2498#endif
2499}
2500
2501/* Print the instruction at address MEMADDR in debugged memory,
2502 on STREAM. Returns length of the instruction, in bytes. */
2503
2504static int
2505print_insn (memaddr, stream)
2506 CORE_ADDR memaddr;
d9fcf2fb 2507 struct ui_file *stream;
c906108c
SS
2508{
2509 if (TARGET_BYTE_ORDER == BIG_ENDIAN)
2510 TARGET_PRINT_INSN_INFO->endian = BFD_ENDIAN_BIG;
2511 else
2512 TARGET_PRINT_INSN_INFO->endian = BFD_ENDIAN_LITTLE;
2513
2514 if (TARGET_ARCHITECTURE != NULL)
2515 TARGET_PRINT_INSN_INFO->mach = TARGET_ARCHITECTURE->mach;
2516 /* else: should set .mach=0 but some disassemblers don't grok this */
2517
2518 return TARGET_PRINT_INSN (memaddr, TARGET_PRINT_INSN_INFO);
2519}
c906108c 2520\f
c5aa993b 2521
c906108c
SS
2522void
2523_initialize_printcmd ()
2524{
2525 current_display_number = -1;
2526
2527 add_info ("address", address_info,
c5aa993b 2528 "Describe where symbol SYM is stored.");
c906108c 2529
c5aa993b 2530 add_info ("symbol", sym_info,
c906108c
SS
2531 "Describe what symbol is at location ADDR.\n\
2532Only for symbols with fixed locations (global or static scope).");
2533
2534 add_com ("x", class_vars, x_command,
2535 concat ("Examine memory: x/FMT ADDRESS.\n\
2536ADDRESS is an expression for the memory address to examine.\n\
2537FMT is a repeat count followed by a format letter and a size letter.\n\
2538Format letters are o(octal), x(hex), d(decimal), u(unsigned decimal),\n\
2539 t(binary), f(float), a(address), i(instruction), c(char) and s(string).\n",
c5aa993b 2540 "Size letters are b(byte), h(halfword), w(word), g(giant, 8 bytes).\n\
c906108c
SS
2541The specified number of objects of the specified size are printed\n\
2542according to the format.\n\n\
2543Defaults for format and size letters are those previously used.\n\
2544Default count is 1. Default address is following last thing printed\n\
2545with this command or \"print\".", NULL));
2546
2547 add_com ("disassemble", class_vars, disassemble_command,
2548 "Disassemble a specified section of memory.\n\
2549Default is the function surrounding the pc of the selected frame.\n\
2550With a single argument, the function surrounding that address is dumped.\n\
2551Two arguments are taken as a range of memory to dump.");
2552 if (xdb_commands)
c5aa993b 2553 add_com_alias ("va", "disassemble", class_xdb, 0);
c906108c
SS
2554
2555#if 0
2556 add_com ("whereis", class_vars, whereis_command,
2557 "Print line number and file of definition of variable.");
2558#endif
c5aa993b 2559
c906108c
SS
2560 add_info ("display", display_info,
2561 "Expressions to display when program stops, with code numbers.");
2562
2563 add_cmd ("undisplay", class_vars, undisplay_command,
2564 "Cancel some expressions to be displayed when program stops.\n\
2565Arguments are the code numbers of the expressions to stop displaying.\n\
2566No argument means cancel all automatic-display expressions.\n\
2567\"delete display\" has the same effect as this command.\n\
2568Do \"info display\" to see current list of code numbers.",
c5aa993b 2569 &cmdlist);
c906108c
SS
2570
2571 add_com ("display", class_vars, display_command,
2572 "Print value of expression EXP each time the program stops.\n\
2573/FMT may be used before EXP as in the \"print\" command.\n\
2574/FMT \"i\" or \"s\" or including a size-letter is allowed,\n\
2575as in the \"x\" command, and then EXP is used to get the address to examine\n\
2576and examining is done as in the \"x\" command.\n\n\
2577With no argument, display all currently requested auto-display expressions.\n\
2578Use \"undisplay\" to cancel display requests previously made."
c5aa993b 2579 );
c906108c 2580
c5aa993b 2581 add_cmd ("display", class_vars, enable_display,
c906108c
SS
2582 "Enable some expressions to be displayed when program stops.\n\
2583Arguments are the code numbers of the expressions to resume displaying.\n\
2584No argument means enable all automatic-display expressions.\n\
2585Do \"info display\" to see current list of code numbers.", &enablelist);
2586
c5aa993b 2587 add_cmd ("display", class_vars, disable_display_command,
c906108c
SS
2588 "Disable some expressions to be displayed when program stops.\n\
2589Arguments are the code numbers of the expressions to stop displaying.\n\
2590No argument means disable all automatic-display expressions.\n\
2591Do \"info display\" to see current list of code numbers.", &disablelist);
2592
c5aa993b 2593 add_cmd ("display", class_vars, undisplay_command,
c906108c
SS
2594 "Cancel some expressions to be displayed when program stops.\n\
2595Arguments are the code numbers of the expressions to stop displaying.\n\
2596No argument means cancel all automatic-display expressions.\n\
2597Do \"info display\" to see current list of code numbers.", &deletelist);
2598
2599 add_com ("printf", class_vars, printf_command,
c5aa993b 2600 "printf \"printf format string\", arg1, arg2, arg3, ..., argn\n\
c906108c
SS
2601This is useful for formatted output in user-defined commands.");
2602
2603 add_com ("output", class_vars, output_command,
2604 "Like \"print\" but don't put in value history and don't print newline.\n\
2605This is useful in user-defined commands.");
2606
2607 add_prefix_cmd ("set", class_vars, set_command,
c5aa993b 2608 concat ("Evaluate expression EXP and assign result to variable VAR, using assignment\n\
c906108c
SS
2609syntax appropriate for the current language (VAR = EXP or VAR := EXP for\n\
2610example). VAR may be a debugger \"convenience\" variable (names starting\n\
2611with $), a register (a few standard names starting with $), or an actual\n\
2612variable in the program being debugged. EXP is any valid expression.\n",
c5aa993b 2613 "Use \"set variable\" for variables with names identical to set subcommands.\n\
c906108c
SS
2614\nWith a subcommand, this command modifies parts of the gdb environment.\n\
2615You can see these environment settings with the \"show\" command.", NULL),
c5aa993b 2616 &setlist, "set ", 1, &cmdlist);
c906108c 2617 if (dbx_commands)
c5aa993b 2618 add_com ("assign", class_vars, set_command, concat ("Evaluate expression \
c906108c
SS
2619EXP and assign result to variable VAR, using assignment\n\
2620syntax appropriate for the current language (VAR = EXP or VAR := EXP for\n\
2621example). VAR may be a debugger \"convenience\" variable (names starting\n\
2622with $), a register (a few standard names starting with $), or an actual\n\
2623variable in the program being debugged. EXP is any valid expression.\n",
c5aa993b 2624 "Use \"set variable\" for variables with names identical to set subcommands.\n\
c906108c
SS
2625\nWith a subcommand, this command modifies parts of the gdb environment.\n\
2626You can see these environment settings with the \"show\" command.", NULL));
2627
2628 /* "call" is the same as "set", but handy for dbx users to call fns. */
2629 add_com ("call", class_vars, call_command,
2630 "Call a function in the program.\n\
2631The argument is the function name and arguments, in the notation of the\n\
2632current working language. The result is printed and saved in the value\n\
2633history, if it is not void.");
2634
2635 add_cmd ("variable", class_vars, set_command,
c5aa993b 2636 "Evaluate expression EXP and assign result to variable VAR, using assignment\n\
c906108c
SS
2637syntax appropriate for the current language (VAR = EXP or VAR := EXP for\n\
2638example). VAR may be a debugger \"convenience\" variable (names starting\n\
2639with $), a register (a few standard names starting with $), or an actual\n\
2640variable in the program being debugged. EXP is any valid expression.\n\
2641This may usually be abbreviated to simply \"set\".",
c5aa993b 2642 &setlist);
c906108c
SS
2643
2644 add_com ("print", class_vars, print_command,
2645 concat ("Print value of expression EXP.\n\
2646Variables accessible are those of the lexical environment of the selected\n\
2647stack frame, plus all those whose scope is global or an entire file.\n\
2648\n\
2649$NUM gets previous value number NUM. $ and $$ are the last two values.\n\
2650$$NUM refers to NUM'th value back from the last one.\n\
2651Names starting with $ refer to registers (with the values they would have\n",
c5aa993b 2652 "if the program were to return to the stack frame now selected, restoring\n\
c906108c
SS
2653all registers saved by frames farther in) or else to debugger\n\
2654\"convenience\" variables (any such name not a known register).\n\
2655Use assignment expressions to give values to convenience variables.\n",
2656 "\n\
2657{TYPE}ADREXP refers to a datum of data type TYPE, located at address ADREXP.\n\
2658@ is a binary operator for treating consecutive data objects\n\
2659anywhere in memory as an array. FOO@NUM gives an array whose first\n\
2660element is FOO, whose second element is stored in the space following\n\
2661where FOO is stored, etc. FOO must be an expression whose value\n\
2662resides in memory.\n",
2663 "\n\
2664EXP may be preceded with /FMT, where FMT is a format letter\n\
2665but no count or size letter (see \"x\" command).", NULL));
2666 add_com_alias ("p", "print", class_vars, 1);
2667
2668 add_com ("inspect", class_vars, inspect_command,
c5aa993b 2669 "Same as \"print\" command, except that if you are running in the epoch\n\
c906108c
SS
2670environment, the value is printed in its own window.");
2671
2672 add_show_from_set (
c5aa993b
JM
2673 add_set_cmd ("max-symbolic-offset", no_class, var_uinteger,
2674 (char *) &max_symbolic_offset,
2675 "Set the largest offset that will be printed in <symbol+1234> form.",
2676 &setprintlist),
2677 &showprintlist);
c906108c 2678 add_show_from_set (
c5aa993b
JM
2679 add_set_cmd ("symbol-filename", no_class, var_boolean,
2680 (char *) &print_symbol_filename,
2681 "Set printing of source filename and line number with <symbol>.",
2682 &setprintlist),
2683 &showprintlist);
c906108c
SS
2684
2685 /* For examine/instruction a single byte quantity is specified as
2686 the data. This avoids problems with value_at_lazy() requiring a
2687 valid data type (and rejecting VOID). */
2688 examine_i_type = init_type (TYPE_CODE_INT, 1, 0, "examine_i_type", NULL);
2689
2690 examine_b_type = init_type (TYPE_CODE_INT, 1, 0, "examine_b_type", NULL);
2691 examine_h_type = init_type (TYPE_CODE_INT, 2, 0, "examine_h_type", NULL);
2692 examine_w_type = init_type (TYPE_CODE_INT, 4, 0, "examine_w_type", NULL);
2693 examine_g_type = init_type (TYPE_CODE_INT, 8, 0, "examine_g_type", NULL);
2694
2695}