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1 /* Handle shared libraries for GDB, the GNU Debugger.
2
3 Copyright (C) 1990-2019 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20 #include "defs.h"
21
22 #include <sys/types.h>
23 #include <fcntl.h>
24 #include "symtab.h"
25 #include "bfd.h"
26 #include "symfile.h"
27 #include "objfiles.h"
28 #include "gdbcore.h"
29 #include "command.h"
30 #include "target.h"
31 #include "frame.h"
32 #include "gdb_regex.h"
33 #include "inferior.h"
34 #include "common/environ.h"
35 #include "language.h"
36 #include "gdbcmd.h"
37 #include "completer.h"
38 #include "filenames.h" /* for DOSish file names */
39 #include "exec.h"
40 #include "solist.h"
41 #include "observable.h"
42 #include "readline/readline.h"
43 #include "remote.h"
44 #include "solib.h"
45 #include "interps.h"
46 #include "filesystem.h"
47 #include "gdb_bfd.h"
48 #include "common/filestuff.h"
49 #include "source.h"
50
51 /* Architecture-specific operations. */
52
53 /* Per-architecture data key. */
54 static struct gdbarch_data *solib_data;
55
56 static void *
57 solib_init (struct obstack *obstack)
58 {
59 struct target_so_ops **ops;
60
61 ops = OBSTACK_ZALLOC (obstack, struct target_so_ops *);
62 *ops = current_target_so_ops;
63 return ops;
64 }
65
66 static const struct target_so_ops *
67 solib_ops (struct gdbarch *gdbarch)
68 {
69 const struct target_so_ops **ops
70 = (const struct target_so_ops **) gdbarch_data (gdbarch, solib_data);
71
72 return *ops;
73 }
74
75 /* Set the solib operations for GDBARCH to NEW_OPS. */
76
77 void
78 set_solib_ops (struct gdbarch *gdbarch, const struct target_so_ops *new_ops)
79 {
80 const struct target_so_ops **ops
81 = (const struct target_so_ops **) gdbarch_data (gdbarch, solib_data);
82
83 *ops = new_ops;
84 }
85 \f
86
87 /* external data declarations */
88
89 /* FIXME: gdbarch needs to control this variable, or else every
90 configuration needs to call set_solib_ops. */
91 struct target_so_ops *current_target_so_ops;
92
93 /* Local function prototypes */
94
95 /* If non-empty, this is a search path for loading non-absolute shared library
96 symbol files. This takes precedence over the environment variables PATH
97 and LD_LIBRARY_PATH. */
98 static char *solib_search_path = NULL;
99 static void
100 show_solib_search_path (struct ui_file *file, int from_tty,
101 struct cmd_list_element *c, const char *value)
102 {
103 fprintf_filtered (file, _("The search path for loading non-absolute "
104 "shared library symbol files is %s.\n"),
105 value);
106 }
107
108 /* Same as HAVE_DOS_BASED_FILE_SYSTEM, but useable as an rvalue. */
109 #if (HAVE_DOS_BASED_FILE_SYSTEM)
110 # define DOS_BASED_FILE_SYSTEM 1
111 #else
112 # define DOS_BASED_FILE_SYSTEM 0
113 #endif
114
115 /* Return the full pathname of a binary file (the main executable or a
116 shared library file), or NULL if not found. If FD is non-NULL, *FD
117 is set to either -1 or an open file handle for the binary file.
118
119 Global variable GDB_SYSROOT is used as a prefix directory
120 to search for binary files if they have an absolute path.
121 If GDB_SYSROOT starts with "target:" and target filesystem
122 is the local filesystem then the "target:" prefix will be
123 stripped before the search starts. This ensures that the
124 same search algorithm is used for local files regardless of
125 whether a "target:" prefix was used.
126
127 Global variable SOLIB_SEARCH_PATH is used as a prefix directory
128 (or set of directories, as in LD_LIBRARY_PATH) to search for all
129 shared libraries if not found in either the sysroot (if set) or
130 the local filesystem. SOLIB_SEARCH_PATH is not used when searching
131 for the main executable.
132
133 Search algorithm:
134 * If a sysroot is set and path is absolute:
135 * Search for sysroot/path.
136 * else
137 * Look for it literally (unmodified).
138 * If IS_SOLIB is non-zero:
139 * Look in SOLIB_SEARCH_PATH.
140 * If available, use target defined search function.
141 * If NO sysroot is set, perform the following two searches:
142 * Look in inferior's $PATH.
143 * If IS_SOLIB is non-zero:
144 * Look in inferior's $LD_LIBRARY_PATH.
145 *
146 * The last check avoids doing this search when targetting remote
147 * machines since a sysroot will almost always be set.
148 */
149
150 static gdb::unique_xmalloc_ptr<char>
151 solib_find_1 (const char *in_pathname, int *fd, int is_solib)
152 {
153 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
154 int found_file = -1;
155 gdb::unique_xmalloc_ptr<char> temp_pathname;
156 const char *fskind = effective_target_file_system_kind ();
157 const char *sysroot = gdb_sysroot;
158 int prefix_len, orig_prefix_len;
159
160 /* If the absolute prefix starts with "target:" but the filesystem
161 accessed by the target_fileio_* methods is the local filesystem
162 then we strip the "target:" prefix now and work with the local
163 filesystem. This ensures that the same search algorithm is used
164 for all local files regardless of whether a "target:" prefix was
165 used. */
166 if (is_target_filename (sysroot) && target_filesystem_is_local ())
167 sysroot += strlen (TARGET_SYSROOT_PREFIX);
168
169 /* Strip any trailing slashes from the absolute prefix. */
170 prefix_len = orig_prefix_len = strlen (sysroot);
171
172 while (prefix_len > 0 && IS_DIR_SEPARATOR (sysroot[prefix_len - 1]))
173 prefix_len--;
174
175 std::string sysroot_holder;
176 if (prefix_len == 0)
177 sysroot = NULL;
178 else if (prefix_len != orig_prefix_len)
179 {
180 sysroot_holder = std::string (sysroot, prefix_len);
181 sysroot = sysroot_holder.c_str ();
182 }
183
184 /* If we're on a non-DOS-based system, backslashes won't be
185 understood as directory separator, so, convert them to forward
186 slashes, iff we're supposed to handle DOS-based file system
187 semantics for target paths. */
188 if (!DOS_BASED_FILE_SYSTEM && fskind == file_system_kind_dos_based)
189 {
190 char *p;
191
192 /* Avoid clobbering our input. */
193 p = (char *) alloca (strlen (in_pathname) + 1);
194 strcpy (p, in_pathname);
195 in_pathname = p;
196
197 for (; *p; p++)
198 {
199 if (*p == '\\')
200 *p = '/';
201 }
202 }
203
204 /* Note, we're interested in IS_TARGET_ABSOLUTE_PATH, not
205 IS_ABSOLUTE_PATH. The latter is for host paths only, while
206 IN_PATHNAME is a target path. For example, if we're supposed to
207 be handling DOS-like semantics we want to consider a
208 'c:/foo/bar.dll' path as an absolute path, even on a Unix box.
209 With such a path, before giving up on the sysroot, we'll try:
210
211 1st attempt, c:/foo/bar.dll ==> /sysroot/c:/foo/bar.dll
212 2nd attempt, c:/foo/bar.dll ==> /sysroot/c/foo/bar.dll
213 3rd attempt, c:/foo/bar.dll ==> /sysroot/foo/bar.dll
214 */
215
216 if (!IS_TARGET_ABSOLUTE_PATH (fskind, in_pathname) || sysroot == NULL)
217 temp_pathname.reset (xstrdup (in_pathname));
218 else
219 {
220 int need_dir_separator;
221
222 /* Concatenate the sysroot and the target reported filename. We
223 may need to glue them with a directory separator. Cases to
224 consider:
225
226 | sysroot | separator | in_pathname |
227 |-----------------+-----------+----------------|
228 | /some/dir | / | c:/foo/bar.dll |
229 | /some/dir | | /foo/bar.dll |
230 | target: | | c:/foo/bar.dll |
231 | target: | | /foo/bar.dll |
232 | target:some/dir | / | c:/foo/bar.dll |
233 | target:some/dir | | /foo/bar.dll |
234
235 IOW, we don't need to add a separator if IN_PATHNAME already
236 has one, or when the sysroot is exactly "target:".
237 There's no need to check for drive spec explicitly, as we only
238 get here if IN_PATHNAME is considered an absolute path. */
239 need_dir_separator = !(IS_DIR_SEPARATOR (in_pathname[0])
240 || strcmp (TARGET_SYSROOT_PREFIX, sysroot) == 0);
241
242 /* Cat the prefixed pathname together. */
243 temp_pathname.reset (concat (sysroot,
244 need_dir_separator ? SLASH_STRING : "",
245 in_pathname, (char *) NULL));
246 }
247
248 /* Handle files to be accessed via the target. */
249 if (is_target_filename (temp_pathname.get ()))
250 {
251 if (fd != NULL)
252 *fd = -1;
253 return temp_pathname;
254 }
255
256 /* Now see if we can open it. */
257 found_file = gdb_open_cloexec (temp_pathname.get (), O_RDONLY | O_BINARY, 0);
258
259 /* If the search in gdb_sysroot failed, and the path name has a
260 drive spec (e.g, c:/foo), try stripping ':' from the drive spec,
261 and retrying in the sysroot:
262 c:/foo/bar.dll ==> /sysroot/c/foo/bar.dll. */
263
264 if (found_file < 0
265 && sysroot != NULL
266 && HAS_TARGET_DRIVE_SPEC (fskind, in_pathname))
267 {
268 int need_dir_separator = !IS_DIR_SEPARATOR (in_pathname[2]);
269 char drive[2] = { in_pathname[0], '\0' };
270
271 temp_pathname.reset (concat (sysroot,
272 SLASH_STRING,
273 drive,
274 need_dir_separator ? SLASH_STRING : "",
275 in_pathname + 2, (char *) NULL));
276
277 found_file = gdb_open_cloexec (temp_pathname.get (),
278 O_RDONLY | O_BINARY, 0);
279 if (found_file < 0)
280 {
281 /* If the search in gdb_sysroot still failed, try fully
282 stripping the drive spec, and trying once more in the
283 sysroot before giving up.
284
285 c:/foo/bar.dll ==> /sysroot/foo/bar.dll. */
286
287 temp_pathname.reset (concat (sysroot,
288 need_dir_separator ? SLASH_STRING : "",
289 in_pathname + 2, (char *) NULL));
290
291 found_file = gdb_open_cloexec (temp_pathname.get (),
292 O_RDONLY | O_BINARY, 0);
293 }
294 }
295
296 /* We try to find the library in various ways. After each attempt,
297 either found_file >= 0 and temp_pathname is a malloc'd string, or
298 found_file < 0 and temp_pathname does not point to storage that
299 needs to be freed. */
300
301 if (found_file < 0)
302 temp_pathname.reset (NULL);
303
304 /* If the search in gdb_sysroot failed, and the path name is
305 absolute at this point, make it relative. (openp will try and open the
306 file according to its absolute path otherwise, which is not what we want.)
307 Affects subsequent searches for this solib. */
308 if (found_file < 0 && IS_TARGET_ABSOLUTE_PATH (fskind, in_pathname))
309 {
310 /* First, get rid of any drive letters etc. */
311 while (!IS_TARGET_DIR_SEPARATOR (fskind, *in_pathname))
312 in_pathname++;
313
314 /* Next, get rid of all leading dir separators. */
315 while (IS_TARGET_DIR_SEPARATOR (fskind, *in_pathname))
316 in_pathname++;
317 }
318
319 /* If not found, and we're looking for a solib, search the
320 solib_search_path (if any). */
321 if (is_solib && found_file < 0 && solib_search_path != NULL)
322 found_file = openp (solib_search_path,
323 OPF_TRY_CWD_FIRST | OPF_RETURN_REALPATH,
324 in_pathname, O_RDONLY | O_BINARY, &temp_pathname);
325
326 /* If not found, and we're looking for a solib, next search the
327 solib_search_path (if any) for the basename only (ignoring the
328 path). This is to allow reading solibs from a path that differs
329 from the opened path. */
330 if (is_solib && found_file < 0 && solib_search_path != NULL)
331 found_file = openp (solib_search_path,
332 OPF_TRY_CWD_FIRST | OPF_RETURN_REALPATH,
333 target_lbasename (fskind, in_pathname),
334 O_RDONLY | O_BINARY, &temp_pathname);
335
336 /* If not found, and we're looking for a solib, try to use target
337 supplied solib search method. */
338 if (is_solib && found_file < 0 && ops->find_and_open_solib)
339 found_file = ops->find_and_open_solib (in_pathname, O_RDONLY | O_BINARY,
340 &temp_pathname);
341
342 /* If not found, next search the inferior's $PATH environment variable. */
343 if (found_file < 0 && sysroot == NULL)
344 found_file = openp (current_inferior ()->environment.get ("PATH"),
345 OPF_TRY_CWD_FIRST | OPF_RETURN_REALPATH, in_pathname,
346 O_RDONLY | O_BINARY, &temp_pathname);
347
348 /* If not found, and we're looking for a solib, next search the
349 inferior's $LD_LIBRARY_PATH environment variable. */
350 if (is_solib && found_file < 0 && sysroot == NULL)
351 found_file = openp (current_inferior ()->environment.get
352 ("LD_LIBRARY_PATH"),
353 OPF_TRY_CWD_FIRST | OPF_RETURN_REALPATH, in_pathname,
354 O_RDONLY | O_BINARY, &temp_pathname);
355
356 if (fd == NULL)
357 {
358 if (found_file >= 0)
359 close (found_file);
360 }
361 else
362 *fd = found_file;
363
364 return temp_pathname;
365 }
366
367 /* Return the full pathname of the main executable, or NULL if not
368 found. If FD is non-NULL, *FD is set to either -1 or an open file
369 handle for the main executable. */
370
371 gdb::unique_xmalloc_ptr<char>
372 exec_file_find (const char *in_pathname, int *fd)
373 {
374 gdb::unique_xmalloc_ptr<char> result;
375 const char *fskind = effective_target_file_system_kind ();
376
377 if (in_pathname == NULL)
378 return NULL;
379
380 if (*gdb_sysroot != '\0' && IS_TARGET_ABSOLUTE_PATH (fskind, in_pathname))
381 {
382 result = solib_find_1 (in_pathname, fd, 0);
383
384 if (result == NULL && fskind == file_system_kind_dos_based)
385 {
386 char *new_pathname;
387
388 new_pathname = (char *) alloca (strlen (in_pathname) + 5);
389 strcpy (new_pathname, in_pathname);
390 strcat (new_pathname, ".exe");
391
392 result = solib_find_1 (new_pathname, fd, 0);
393 }
394 }
395 else
396 {
397 /* It's possible we don't have a full path, but rather just a
398 filename. Some targets, such as HP-UX, don't provide the
399 full path, sigh.
400
401 Attempt to qualify the filename against the source path.
402 (If that fails, we'll just fall back on the original
403 filename. Not much more we can do...) */
404
405 if (!source_full_path_of (in_pathname, &result))
406 result.reset (xstrdup (in_pathname));
407 if (fd != NULL)
408 *fd = -1;
409 }
410
411 return result;
412 }
413
414 /* Return the full pathname of a shared library file, or NULL if not
415 found. If FD is non-NULL, *FD is set to either -1 or an open file
416 handle for the shared library.
417
418 The search algorithm used is described in solib_find_1's comment
419 above. */
420
421 gdb::unique_xmalloc_ptr<char>
422 solib_find (const char *in_pathname, int *fd)
423 {
424 const char *solib_symbols_extension
425 = gdbarch_solib_symbols_extension (target_gdbarch ());
426
427 /* If solib_symbols_extension is set, replace the file's
428 extension. */
429 if (solib_symbols_extension != NULL)
430 {
431 const char *p = in_pathname + strlen (in_pathname);
432
433 while (p > in_pathname && *p != '.')
434 p--;
435
436 if (*p == '.')
437 {
438 char *new_pathname;
439
440 new_pathname
441 = (char *) alloca (p - in_pathname + 1
442 + strlen (solib_symbols_extension) + 1);
443 memcpy (new_pathname, in_pathname, p - in_pathname + 1);
444 strcpy (new_pathname + (p - in_pathname) + 1,
445 solib_symbols_extension);
446
447 in_pathname = new_pathname;
448 }
449 }
450
451 return solib_find_1 (in_pathname, fd, 1);
452 }
453
454 /* Open and return a BFD for the shared library PATHNAME. If FD is not -1,
455 it is used as file handle to open the file. Throws an error if the file
456 could not be opened. Handles both local and remote file access.
457
458 If unsuccessful, the FD will be closed (unless FD was -1). */
459
460 gdb_bfd_ref_ptr
461 solib_bfd_fopen (const char *pathname, int fd)
462 {
463 gdb_bfd_ref_ptr abfd (gdb_bfd_open (pathname, gnutarget, fd));
464
465 if (abfd != NULL && !gdb_bfd_has_target_filename (abfd.get ()))
466 bfd_set_cacheable (abfd.get (), 1);
467
468 if (abfd == NULL)
469 {
470 /* Arrange to free PATHNAME when the error is thrown. */
471 error (_("Could not open `%s' as an executable file: %s"),
472 pathname, bfd_errmsg (bfd_get_error ()));
473 }
474
475 return abfd;
476 }
477
478 /* Find shared library PATHNAME and open a BFD for it. */
479
480 gdb_bfd_ref_ptr
481 solib_bfd_open (const char *pathname)
482 {
483 int found_file;
484 const struct bfd_arch_info *b;
485
486 /* Search for shared library file. */
487 gdb::unique_xmalloc_ptr<char> found_pathname
488 = solib_find (pathname, &found_file);
489 if (found_pathname == NULL)
490 {
491 /* Return failure if the file could not be found, so that we can
492 accumulate messages about missing libraries. */
493 if (errno == ENOENT)
494 return NULL;
495
496 perror_with_name (pathname);
497 }
498
499 /* Open bfd for shared library. */
500 gdb_bfd_ref_ptr abfd (solib_bfd_fopen (found_pathname.get (), found_file));
501
502 /* Check bfd format. */
503 if (!bfd_check_format (abfd.get (), bfd_object))
504 error (_("`%s': not in executable format: %s"),
505 bfd_get_filename (abfd), bfd_errmsg (bfd_get_error ()));
506
507 /* Check bfd arch. */
508 b = gdbarch_bfd_arch_info (target_gdbarch ());
509 if (!b->compatible (b, bfd_get_arch_info (abfd.get ())))
510 warning (_("`%s': Shared library architecture %s is not compatible "
511 "with target architecture %s."), bfd_get_filename (abfd),
512 bfd_get_arch_info (abfd.get ())->printable_name,
513 b->printable_name);
514
515 return abfd;
516 }
517
518 /* Given a pointer to one of the shared objects in our list of mapped
519 objects, use the recorded name to open a bfd descriptor for the
520 object, build a section table, relocate all the section addresses
521 by the base address at which the shared object was mapped, and then
522 add the sections to the target's section table.
523
524 FIXME: In most (all?) cases the shared object file name recorded in
525 the dynamic linkage tables will be a fully qualified pathname. For
526 cases where it isn't, do we really mimic the systems search
527 mechanism correctly in the below code (particularly the tilde
528 expansion stuff?). */
529
530 static int
531 solib_map_sections (struct so_list *so)
532 {
533 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
534 struct target_section *p;
535
536 gdb::unique_xmalloc_ptr<char> filename (tilde_expand (so->so_name));
537 gdb_bfd_ref_ptr abfd (ops->bfd_open (filename.get ()));
538
539 if (abfd == NULL)
540 return 0;
541
542 /* Leave bfd open, core_xfer_memory and "info files" need it. */
543 so->abfd = abfd.release ();
544
545 /* Copy the full path name into so_name, allowing symbol_file_add
546 to find it later. This also affects the =library-loaded GDB/MI
547 event, and in particular the part of that notification providing
548 the library's host-side path. If we let the target dictate
549 that objfile's path, and the target is different from the host,
550 GDB/MI will not provide the correct host-side path. */
551 if (strlen (bfd_get_filename (so->abfd)) >= SO_NAME_MAX_PATH_SIZE)
552 error (_("Shared library file name is too long."));
553 strcpy (so->so_name, bfd_get_filename (so->abfd));
554
555 if (build_section_table (so->abfd, &so->sections, &so->sections_end))
556 {
557 error (_("Can't find the file sections in `%s': %s"),
558 bfd_get_filename (so->abfd), bfd_errmsg (bfd_get_error ()));
559 }
560
561 for (p = so->sections; p < so->sections_end; p++)
562 {
563 /* Relocate the section binding addresses as recorded in the shared
564 object's file by the base address to which the object was actually
565 mapped. */
566 ops->relocate_section_addresses (so, p);
567
568 /* If the target didn't provide information about the address
569 range of the shared object, assume we want the location of
570 the .text section. */
571 if (so->addr_low == 0 && so->addr_high == 0
572 && strcmp (p->the_bfd_section->name, ".text") == 0)
573 {
574 so->addr_low = p->addr;
575 so->addr_high = p->endaddr;
576 }
577 }
578
579 /* Add the shared object's sections to the current set of file
580 section tables. Do this immediately after mapping the object so
581 that later nodes in the list can query this object, as is needed
582 in solib-osf.c. */
583 add_target_sections (so, so->sections, so->sections_end);
584
585 return 1;
586 }
587
588 /* Free symbol-file related contents of SO and reset for possible reloading
589 of SO. If we have opened a BFD for SO, close it. If we have placed SO's
590 sections in some target's section table, the caller is responsible for
591 removing them.
592
593 This function doesn't mess with objfiles at all. If there is an
594 objfile associated with SO that needs to be removed, the caller is
595 responsible for taking care of that. */
596
597 static void
598 clear_so (struct so_list *so)
599 {
600 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
601
602 if (so->sections)
603 {
604 xfree (so->sections);
605 so->sections = so->sections_end = NULL;
606 }
607
608 gdb_bfd_unref (so->abfd);
609 so->abfd = NULL;
610
611 /* Our caller closed the objfile, possibly via objfile_purge_solibs. */
612 so->symbols_loaded = 0;
613 so->objfile = NULL;
614
615 so->addr_low = so->addr_high = 0;
616
617 /* Restore the target-supplied file name. SO_NAME may be the path
618 of the symbol file. */
619 strcpy (so->so_name, so->so_original_name);
620
621 /* Do the same for target-specific data. */
622 if (ops->clear_so != NULL)
623 ops->clear_so (so);
624 }
625
626 /* Free the storage associated with the `struct so_list' object SO.
627 If we have opened a BFD for SO, close it.
628
629 The caller is responsible for removing SO from whatever list it is
630 a member of. If we have placed SO's sections in some target's
631 section table, the caller is responsible for removing them.
632
633 This function doesn't mess with objfiles at all. If there is an
634 objfile associated with SO that needs to be removed, the caller is
635 responsible for taking care of that. */
636
637 void
638 free_so (struct so_list *so)
639 {
640 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
641
642 clear_so (so);
643 ops->free_so (so);
644
645 xfree (so);
646 }
647
648
649 /* Return address of first so_list entry in master shared object list. */
650 struct so_list *
651 master_so_list (void)
652 {
653 return so_list_head;
654 }
655
656 /* Read in symbols for shared object SO. If SYMFILE_VERBOSE is set in FLAGS,
657 be chatty about it. Return non-zero if any symbols were actually
658 loaded. */
659
660 int
661 solib_read_symbols (struct so_list *so, symfile_add_flags flags)
662 {
663 if (so->symbols_loaded)
664 {
665 /* If needed, we've already warned in our caller. */
666 }
667 else if (so->abfd == NULL)
668 {
669 /* We've already warned about this library, when trying to open
670 it. */
671 }
672 else
673 {
674
675 flags |= current_inferior ()->symfile_flags;
676
677 TRY
678 {
679 /* Have we already loaded this shared object? */
680 so->objfile = nullptr;
681 for (objfile *objfile : current_program_space->objfiles ())
682 {
683 if (filename_cmp (objfile_name (objfile), so->so_name) == 0
684 && objfile->addr_low == so->addr_low)
685 {
686 so->objfile = objfile;
687 break;
688 }
689 }
690 if (so->objfile == NULL)
691 {
692 section_addr_info sap
693 = build_section_addr_info_from_section_table (so->sections,
694 so->sections_end);
695 so->objfile = symbol_file_add_from_bfd (so->abfd, so->so_name,
696 flags, &sap,
697 OBJF_SHARED, NULL);
698 so->objfile->addr_low = so->addr_low;
699 }
700
701 so->symbols_loaded = 1;
702 }
703 CATCH (e, RETURN_MASK_ERROR)
704 {
705 exception_fprintf (gdb_stderr, e, _("Error while reading shared"
706 " library symbols for %s:\n"),
707 so->so_name);
708 }
709 END_CATCH
710
711 return 1;
712 }
713
714 return 0;
715 }
716
717 /* Return 1 if KNOWN->objfile is used by any other so_list object in the
718 SO_LIST_HEAD list. Return 0 otherwise. */
719
720 static int
721 solib_used (const struct so_list *const known)
722 {
723 const struct so_list *pivot;
724
725 for (pivot = so_list_head; pivot != NULL; pivot = pivot->next)
726 if (pivot != known && pivot->objfile == known->objfile)
727 return 1;
728 return 0;
729 }
730
731 /* See solib.h. */
732
733 void
734 update_solib_list (int from_tty)
735 {
736 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
737 struct so_list *inferior = ops->current_sos();
738 struct so_list *gdb, **gdb_link;
739
740 /* We can reach here due to changing solib-search-path or the
741 sysroot, before having any inferior. */
742 if (target_has_execution && inferior_ptid != null_ptid)
743 {
744 struct inferior *inf = current_inferior ();
745
746 /* If we are attaching to a running process for which we
747 have not opened a symbol file, we may be able to get its
748 symbols now! */
749 if (inf->attach_flag && symfile_objfile == NULL)
750 {
751 TRY
752 {
753 ops->open_symbol_file_object (from_tty);
754 }
755 CATCH (ex, RETURN_MASK_ALL)
756 {
757 exception_fprintf (gdb_stderr, ex,
758 "Error reading attached "
759 "process's symbol file.\n");
760 }
761 END_CATCH
762 }
763 }
764
765 /* GDB and the inferior's dynamic linker each maintain their own
766 list of currently loaded shared objects; we want to bring the
767 former in sync with the latter. Scan both lists, seeing which
768 shared objects appear where. There are three cases:
769
770 - A shared object appears on both lists. This means that GDB
771 knows about it already, and it's still loaded in the inferior.
772 Nothing needs to happen.
773
774 - A shared object appears only on GDB's list. This means that
775 the inferior has unloaded it. We should remove the shared
776 object from GDB's tables.
777
778 - A shared object appears only on the inferior's list. This
779 means that it's just been loaded. We should add it to GDB's
780 tables.
781
782 So we walk GDB's list, checking each entry to see if it appears
783 in the inferior's list too. If it does, no action is needed, and
784 we remove it from the inferior's list. If it doesn't, the
785 inferior has unloaded it, and we remove it from GDB's list. By
786 the time we're done walking GDB's list, the inferior's list
787 contains only the new shared objects, which we then add. */
788
789 gdb = so_list_head;
790 gdb_link = &so_list_head;
791 while (gdb)
792 {
793 struct so_list *i = inferior;
794 struct so_list **i_link = &inferior;
795
796 /* Check to see whether the shared object *gdb also appears in
797 the inferior's current list. */
798 while (i)
799 {
800 if (ops->same)
801 {
802 if (ops->same (gdb, i))
803 break;
804 }
805 else
806 {
807 if (! filename_cmp (gdb->so_original_name, i->so_original_name))
808 break;
809 }
810
811 i_link = &i->next;
812 i = *i_link;
813 }
814
815 /* If the shared object appears on the inferior's list too, then
816 it's still loaded, so we don't need to do anything. Delete
817 it from the inferior's list, and leave it on GDB's list. */
818 if (i)
819 {
820 *i_link = i->next;
821 free_so (i);
822 gdb_link = &gdb->next;
823 gdb = *gdb_link;
824 }
825
826 /* If it's not on the inferior's list, remove it from GDB's tables. */
827 else
828 {
829 /* Notify any observer that the shared object has been
830 unloaded before we remove it from GDB's tables. */
831 gdb::observers::solib_unloaded.notify (gdb);
832
833 current_program_space->deleted_solibs.push_back (gdb->so_name);
834
835 *gdb_link = gdb->next;
836
837 /* Unless the user loaded it explicitly, free SO's objfile. */
838 if (gdb->objfile && ! (gdb->objfile->flags & OBJF_USERLOADED)
839 && !solib_used (gdb))
840 delete gdb->objfile;
841
842 /* Some targets' section tables might be referring to
843 sections from so->abfd; remove them. */
844 remove_target_sections (gdb);
845
846 free_so (gdb);
847 gdb = *gdb_link;
848 }
849 }
850
851 /* Now the inferior's list contains only shared objects that don't
852 appear in GDB's list --- those that are newly loaded. Add them
853 to GDB's shared object list. */
854 if (inferior)
855 {
856 int not_found = 0;
857 const char *not_found_filename = NULL;
858
859 struct so_list *i;
860
861 /* Add the new shared objects to GDB's list. */
862 *gdb_link = inferior;
863
864 /* Fill in the rest of each of the `struct so_list' nodes. */
865 for (i = inferior; i; i = i->next)
866 {
867
868 i->pspace = current_program_space;
869 current_program_space->added_solibs.push_back (i);
870
871 TRY
872 {
873 /* Fill in the rest of the `struct so_list' node. */
874 if (!solib_map_sections (i))
875 {
876 not_found++;
877 if (not_found_filename == NULL)
878 not_found_filename = i->so_original_name;
879 }
880 }
881
882 CATCH (e, RETURN_MASK_ERROR)
883 {
884 exception_fprintf (gdb_stderr, e,
885 _("Error while mapping shared "
886 "library sections:\n"));
887 }
888 END_CATCH
889
890 /* Notify any observer that the shared object has been
891 loaded now that we've added it to GDB's tables. */
892 gdb::observers::solib_loaded.notify (i);
893 }
894
895 /* If a library was not found, issue an appropriate warning
896 message. We have to use a single call to warning in case the
897 front end does something special with warnings, e.g., pop up
898 a dialog box. It Would Be Nice if we could get a "warning: "
899 prefix on each line in the CLI front end, though - it doesn't
900 stand out well. */
901
902 if (not_found == 1)
903 warning (_("Could not load shared library symbols for %s.\n"
904 "Do you need \"set solib-search-path\" "
905 "or \"set sysroot\"?"),
906 not_found_filename);
907 else if (not_found > 1)
908 warning (_("\
909 Could not load shared library symbols for %d libraries, e.g. %s.\n\
910 Use the \"info sharedlibrary\" command to see the complete listing.\n\
911 Do you need \"set solib-search-path\" or \"set sysroot\"?"),
912 not_found, not_found_filename);
913 }
914 }
915
916
917 /* Return non-zero if NAME is the libpthread shared library.
918
919 Uses a fairly simplistic heuristic approach where we check
920 the file name against "/libpthread". This can lead to false
921 positives, but this should be good enough in practice. */
922
923 int
924 libpthread_name_p (const char *name)
925 {
926 return (strstr (name, "/libpthread") != NULL);
927 }
928
929 /* Return non-zero if SO is the libpthread shared library. */
930
931 static int
932 libpthread_solib_p (struct so_list *so)
933 {
934 return libpthread_name_p (so->so_name);
935 }
936
937 /* Read in symbolic information for any shared objects whose names
938 match PATTERN. (If we've already read a shared object's symbol
939 info, leave it alone.) If PATTERN is zero, read them all.
940
941 If READSYMS is 0, defer reading symbolic information until later
942 but still do any needed low level processing.
943
944 FROM_TTY is described for update_solib_list, above. */
945
946 void
947 solib_add (const char *pattern, int from_tty, int readsyms)
948 {
949 struct so_list *gdb;
950
951 if (print_symbol_loading_p (from_tty, 0, 0))
952 {
953 if (pattern != NULL)
954 {
955 printf_unfiltered (_("Loading symbols for shared libraries: %s\n"),
956 pattern);
957 }
958 else
959 printf_unfiltered (_("Loading symbols for shared libraries.\n"));
960 }
961
962 current_program_space->solib_add_generation++;
963
964 if (pattern)
965 {
966 char *re_err = re_comp (pattern);
967
968 if (re_err)
969 error (_("Invalid regexp: %s"), re_err);
970 }
971
972 update_solib_list (from_tty);
973
974 /* Walk the list of currently loaded shared libraries, and read
975 symbols for any that match the pattern --- or any whose symbols
976 aren't already loaded, if no pattern was given. */
977 {
978 int any_matches = 0;
979 int loaded_any_symbols = 0;
980 symfile_add_flags add_flags = SYMFILE_DEFER_BP_RESET;
981
982 if (from_tty)
983 add_flags |= SYMFILE_VERBOSE;
984
985 for (gdb = so_list_head; gdb; gdb = gdb->next)
986 if (! pattern || re_exec (gdb->so_name))
987 {
988 /* Normally, we would read the symbols from that library
989 only if READSYMS is set. However, we're making a small
990 exception for the pthread library, because we sometimes
991 need the library symbols to be loaded in order to provide
992 thread support (x86-linux for instance). */
993 const int add_this_solib =
994 (readsyms || libpthread_solib_p (gdb));
995
996 any_matches = 1;
997 if (add_this_solib)
998 {
999 if (gdb->symbols_loaded)
1000 {
1001 /* If no pattern was given, be quiet for shared
1002 libraries we have already loaded. */
1003 if (pattern && (from_tty || info_verbose))
1004 printf_unfiltered (_("Symbols already loaded for %s\n"),
1005 gdb->so_name);
1006 }
1007 else if (solib_read_symbols (gdb, add_flags))
1008 loaded_any_symbols = 1;
1009 }
1010 }
1011
1012 if (loaded_any_symbols)
1013 breakpoint_re_set ();
1014
1015 if (from_tty && pattern && ! any_matches)
1016 printf_unfiltered
1017 ("No loaded shared libraries match the pattern `%s'.\n", pattern);
1018
1019 if (loaded_any_symbols)
1020 {
1021 /* Getting new symbols may change our opinion about what is
1022 frameless. */
1023 reinit_frame_cache ();
1024 }
1025 }
1026 }
1027
1028 /* Implement the "info sharedlibrary" command. Walk through the
1029 shared library list and print information about each attached
1030 library matching PATTERN. If PATTERN is elided, print them
1031 all. */
1032
1033 static void
1034 info_sharedlibrary_command (const char *pattern, int from_tty)
1035 {
1036 struct so_list *so = NULL; /* link map state variable */
1037 int so_missing_debug_info = 0;
1038 int addr_width;
1039 int nr_libs;
1040 struct gdbarch *gdbarch = target_gdbarch ();
1041 struct ui_out *uiout = current_uiout;
1042
1043 if (pattern)
1044 {
1045 char *re_err = re_comp (pattern);
1046
1047 if (re_err)
1048 error (_("Invalid regexp: %s"), re_err);
1049 }
1050
1051 /* "0x", a little whitespace, and two hex digits per byte of pointers. */
1052 addr_width = 4 + (gdbarch_ptr_bit (gdbarch) / 4);
1053
1054 update_solib_list (from_tty);
1055
1056 /* ui_out_emit_table table_emitter needs to know the number of rows,
1057 so we need to make two passes over the libs. */
1058
1059 for (nr_libs = 0, so = so_list_head; so; so = so->next)
1060 {
1061 if (so->so_name[0])
1062 {
1063 if (pattern && ! re_exec (so->so_name))
1064 continue;
1065 ++nr_libs;
1066 }
1067 }
1068
1069 {
1070 ui_out_emit_table table_emitter (uiout, 4, nr_libs, "SharedLibraryTable");
1071
1072 /* The "- 1" is because ui_out adds one space between columns. */
1073 uiout->table_header (addr_width - 1, ui_left, "from", "From");
1074 uiout->table_header (addr_width - 1, ui_left, "to", "To");
1075 uiout->table_header (12 - 1, ui_left, "syms-read", "Syms Read");
1076 uiout->table_header (0, ui_noalign, "name", "Shared Object Library");
1077
1078 uiout->table_body ();
1079
1080 ALL_SO_LIBS (so)
1081 {
1082 if (! so->so_name[0])
1083 continue;
1084 if (pattern && ! re_exec (so->so_name))
1085 continue;
1086
1087 ui_out_emit_tuple tuple_emitter (uiout, "lib");
1088
1089 if (so->addr_high != 0)
1090 {
1091 uiout->field_core_addr ("from", gdbarch, so->addr_low);
1092 uiout->field_core_addr ("to", gdbarch, so->addr_high);
1093 }
1094 else
1095 {
1096 uiout->field_skip ("from");
1097 uiout->field_skip ("to");
1098 }
1099
1100 if (! top_level_interpreter ()->interp_ui_out ()->is_mi_like_p ()
1101 && so->symbols_loaded
1102 && !objfile_has_symbols (so->objfile))
1103 {
1104 so_missing_debug_info = 1;
1105 uiout->field_string ("syms-read", "Yes (*)");
1106 }
1107 else
1108 uiout->field_string ("syms-read", so->symbols_loaded ? "Yes" : "No");
1109
1110 uiout->field_string ("name", so->so_name);
1111
1112 uiout->text ("\n");
1113 }
1114 }
1115
1116 if (nr_libs == 0)
1117 {
1118 if (pattern)
1119 uiout->message (_("No shared libraries matched.\n"));
1120 else
1121 uiout->message (_("No shared libraries loaded at this time.\n"));
1122 }
1123 else
1124 {
1125 if (so_missing_debug_info)
1126 uiout->message (_("(*): Shared library is missing "
1127 "debugging information.\n"));
1128 }
1129 }
1130
1131 /* Return 1 if ADDRESS lies within SOLIB. */
1132
1133 int
1134 solib_contains_address_p (const struct so_list *const solib,
1135 CORE_ADDR address)
1136 {
1137 struct target_section *p;
1138
1139 for (p = solib->sections; p < solib->sections_end; p++)
1140 if (p->addr <= address && address < p->endaddr)
1141 return 1;
1142
1143 return 0;
1144 }
1145
1146 /* If ADDRESS is in a shared lib in program space PSPACE, return its
1147 name.
1148
1149 Provides a hook for other gdb routines to discover whether or not a
1150 particular address is within the mapped address space of a shared
1151 library.
1152
1153 For example, this routine is called at one point to disable
1154 breakpoints which are in shared libraries that are not currently
1155 mapped in. */
1156
1157 char *
1158 solib_name_from_address (struct program_space *pspace, CORE_ADDR address)
1159 {
1160 struct so_list *so = NULL;
1161
1162 for (so = pspace->so_list; so; so = so->next)
1163 if (solib_contains_address_p (so, address))
1164 return (so->so_name);
1165
1166 return (0);
1167 }
1168
1169 /* Return whether the data starting at VADDR, size SIZE, must be kept
1170 in a core file for shared libraries loaded before "gcore" is used
1171 to be handled correctly when the core file is loaded. This only
1172 applies when the section would otherwise not be kept in the core
1173 file (in particular, for readonly sections). */
1174
1175 int
1176 solib_keep_data_in_core (CORE_ADDR vaddr, unsigned long size)
1177 {
1178 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
1179
1180 if (ops->keep_data_in_core)
1181 return ops->keep_data_in_core (vaddr, size);
1182 else
1183 return 0;
1184 }
1185
1186 /* Called by free_all_symtabs */
1187
1188 void
1189 clear_solib (void)
1190 {
1191 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
1192
1193 disable_breakpoints_in_shlibs ();
1194
1195 while (so_list_head)
1196 {
1197 struct so_list *so = so_list_head;
1198
1199 so_list_head = so->next;
1200 gdb::observers::solib_unloaded.notify (so);
1201 remove_target_sections (so);
1202 free_so (so);
1203 }
1204
1205 ops->clear_solib ();
1206 }
1207
1208 /* Shared library startup support. When GDB starts up the inferior,
1209 it nurses it along (through the shell) until it is ready to execute
1210 its first instruction. At this point, this function gets
1211 called. */
1212
1213 void
1214 solib_create_inferior_hook (int from_tty)
1215 {
1216 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
1217
1218 ops->solib_create_inferior_hook (from_tty);
1219 }
1220
1221 /* Check to see if an address is in the dynamic loader's dynamic
1222 symbol resolution code. Return 1 if so, 0 otherwise. */
1223
1224 int
1225 in_solib_dynsym_resolve_code (CORE_ADDR pc)
1226 {
1227 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
1228
1229 return ops->in_dynsym_resolve_code (pc);
1230 }
1231
1232 /* Implements the "sharedlibrary" command. */
1233
1234 static void
1235 sharedlibrary_command (const char *args, int from_tty)
1236 {
1237 dont_repeat ();
1238 solib_add (args, from_tty, 1);
1239 }
1240
1241 /* Implements the command "nosharedlibrary", which discards symbols
1242 that have been auto-loaded from shared libraries. Symbols from
1243 shared libraries that were added by explicit request of the user
1244 are not discarded. Also called from remote.c. */
1245
1246 void
1247 no_shared_libraries (const char *ignored, int from_tty)
1248 {
1249 /* The order of the two routines below is important: clear_solib notifies
1250 the solib_unloaded observers, and some of these observers might need
1251 access to their associated objfiles. Therefore, we can not purge the
1252 solibs' objfiles before clear_solib has been called. */
1253
1254 clear_solib ();
1255 objfile_purge_solibs ();
1256 }
1257
1258 /* See solib.h. */
1259
1260 void
1261 update_solib_breakpoints (void)
1262 {
1263 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
1264
1265 if (ops->update_breakpoints != NULL)
1266 ops->update_breakpoints ();
1267 }
1268
1269 /* See solib.h. */
1270
1271 void
1272 handle_solib_event (void)
1273 {
1274 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
1275
1276 if (ops->handle_event != NULL)
1277 ops->handle_event ();
1278
1279 clear_program_space_solib_cache (current_inferior ()->pspace);
1280
1281 /* Check for any newly added shared libraries if we're supposed to
1282 be adding them automatically. Switch terminal for any messages
1283 produced by breakpoint_re_set. */
1284 target_terminal::ours_for_output ();
1285 solib_add (NULL, 0, auto_solib_add);
1286 target_terminal::inferior ();
1287 }
1288
1289 /* Reload shared libraries, but avoid reloading the same symbol file
1290 we already have loaded. */
1291
1292 static void
1293 reload_shared_libraries_1 (int from_tty)
1294 {
1295 struct so_list *so;
1296
1297 if (print_symbol_loading_p (from_tty, 0, 0))
1298 printf_unfiltered (_("Loading symbols for shared libraries.\n"));
1299
1300 for (so = so_list_head; so != NULL; so = so->next)
1301 {
1302 char *found_pathname = NULL;
1303 int was_loaded = so->symbols_loaded;
1304 symfile_add_flags add_flags = SYMFILE_DEFER_BP_RESET;
1305
1306 if (from_tty)
1307 add_flags |= SYMFILE_VERBOSE;
1308
1309 gdb::unique_xmalloc_ptr<char> filename
1310 (tilde_expand (so->so_original_name));
1311 gdb_bfd_ref_ptr abfd (solib_bfd_open (filename.get ()));
1312 if (abfd != NULL)
1313 found_pathname = bfd_get_filename (abfd.get ());
1314
1315 /* If this shared library is no longer associated with its previous
1316 symbol file, close that. */
1317 if ((found_pathname == NULL && was_loaded)
1318 || (found_pathname != NULL
1319 && filename_cmp (found_pathname, so->so_name) != 0))
1320 {
1321 if (so->objfile && ! (so->objfile->flags & OBJF_USERLOADED)
1322 && !solib_used (so))
1323 delete so->objfile;
1324 remove_target_sections (so);
1325 clear_so (so);
1326 }
1327
1328 /* If this shared library is now associated with a new symbol
1329 file, open it. */
1330 if (found_pathname != NULL
1331 && (!was_loaded
1332 || filename_cmp (found_pathname, so->so_name) != 0))
1333 {
1334 int got_error = 0;
1335
1336 TRY
1337 {
1338 solib_map_sections (so);
1339 }
1340
1341 CATCH (e, RETURN_MASK_ERROR)
1342 {
1343 exception_fprintf (gdb_stderr, e,
1344 _("Error while mapping "
1345 "shared library sections:\n"));
1346 got_error = 1;
1347 }
1348 END_CATCH
1349
1350 if (!got_error
1351 && (auto_solib_add || was_loaded || libpthread_solib_p (so)))
1352 solib_read_symbols (so, add_flags);
1353 }
1354 }
1355 }
1356
1357 static void
1358 reload_shared_libraries (const char *ignored, int from_tty,
1359 struct cmd_list_element *e)
1360 {
1361 const struct target_so_ops *ops;
1362
1363 reload_shared_libraries_1 (from_tty);
1364
1365 ops = solib_ops (target_gdbarch ());
1366
1367 /* Creating inferior hooks here has two purposes. First, if we reload
1368 shared libraries then the address of solib breakpoint we've computed
1369 previously might be no longer valid. For example, if we forgot to set
1370 solib-absolute-prefix and are setting it right now, then the previous
1371 breakpoint address is plain wrong. Second, installing solib hooks
1372 also implicitly figures were ld.so is and loads symbols for it.
1373 Absent this call, if we've just connected to a target and set
1374 solib-absolute-prefix or solib-search-path, we'll lose all information
1375 about ld.so. */
1376 if (target_has_execution)
1377 {
1378 /* Reset or free private data structures not associated with
1379 so_list entries. */
1380 ops->clear_solib ();
1381
1382 /* Remove any previous solib event breakpoint. This is usually
1383 done in common code, at breakpoint_init_inferior time, but
1384 we're not really starting up the inferior here. */
1385 remove_solib_event_breakpoints ();
1386
1387 solib_create_inferior_hook (from_tty);
1388 }
1389
1390 /* Sometimes the platform-specific hook loads initial shared
1391 libraries, and sometimes it doesn't. If it doesn't FROM_TTY will be
1392 incorrectly 0 but such solib targets should be fixed anyway. If we
1393 made all the inferior hook methods consistent, this call could be
1394 removed. Call it only after the solib target has been initialized by
1395 solib_create_inferior_hook. */
1396
1397 solib_add (NULL, 0, auto_solib_add);
1398
1399 breakpoint_re_set ();
1400
1401 /* We may have loaded or unloaded debug info for some (or all)
1402 shared libraries. However, frames may still reference them. For
1403 example, a frame's unwinder might still point at DWARF FDE
1404 structures that are now freed. Also, getting new symbols may
1405 change our opinion about what is frameless. */
1406 reinit_frame_cache ();
1407 }
1408
1409 /* Wrapper for reload_shared_libraries that replaces "remote:"
1410 at the start of gdb_sysroot with "target:". */
1411
1412 static void
1413 gdb_sysroot_changed (const char *ignored, int from_tty,
1414 struct cmd_list_element *e)
1415 {
1416 const char *old_prefix = "remote:";
1417 const char *new_prefix = TARGET_SYSROOT_PREFIX;
1418
1419 if (startswith (gdb_sysroot, old_prefix))
1420 {
1421 static int warning_issued = 0;
1422
1423 gdb_assert (strlen (old_prefix) == strlen (new_prefix));
1424 memcpy (gdb_sysroot, new_prefix, strlen (new_prefix));
1425
1426 if (!warning_issued)
1427 {
1428 warning (_("\"%s\" is deprecated, use \"%s\" instead."),
1429 old_prefix, new_prefix);
1430 warning (_("sysroot set to \"%s\"."), gdb_sysroot);
1431
1432 warning_issued = 1;
1433 }
1434 }
1435
1436 reload_shared_libraries (ignored, from_tty, e);
1437 }
1438
1439 static void
1440 show_auto_solib_add (struct ui_file *file, int from_tty,
1441 struct cmd_list_element *c, const char *value)
1442 {
1443 fprintf_filtered (file, _("Autoloading of shared library symbols is %s.\n"),
1444 value);
1445 }
1446
1447
1448 /* Handler for library-specific lookup of global symbol NAME in OBJFILE. Call
1449 the library-specific handler if it is installed for the current target. */
1450
1451 struct block_symbol
1452 solib_global_lookup (struct objfile *objfile,
1453 const char *name,
1454 const domain_enum domain)
1455 {
1456 const struct target_so_ops *ops = solib_ops (target_gdbarch ());
1457
1458 if (ops->lookup_lib_global_symbol != NULL)
1459 return ops->lookup_lib_global_symbol (objfile, name, domain);
1460 return (struct block_symbol) {NULL, NULL};
1461 }
1462
1463 /* Lookup the value for a specific symbol from dynamic symbol table. Look
1464 up symbol from ABFD. MATCH_SYM is a callback function to determine
1465 whether to pick up a symbol. DATA is the input of this callback
1466 function. Return NULL if symbol is not found. */
1467
1468 CORE_ADDR
1469 gdb_bfd_lookup_symbol_from_symtab (bfd *abfd,
1470 int (*match_sym) (const asymbol *,
1471 const void *),
1472 const void *data)
1473 {
1474 long storage_needed = bfd_get_symtab_upper_bound (abfd);
1475 CORE_ADDR symaddr = 0;
1476
1477 if (storage_needed > 0)
1478 {
1479 unsigned int i;
1480
1481 gdb::def_vector<asymbol *> storage (storage_needed / sizeof (asymbol *));
1482 asymbol **symbol_table = storage.data ();
1483 unsigned int number_of_symbols =
1484 bfd_canonicalize_symtab (abfd, symbol_table);
1485
1486 for (i = 0; i < number_of_symbols; i++)
1487 {
1488 asymbol *sym = *symbol_table++;
1489
1490 if (match_sym (sym, data))
1491 {
1492 struct gdbarch *gdbarch = target_gdbarch ();
1493 symaddr = sym->value;
1494
1495 /* Some ELF targets fiddle with addresses of symbols they
1496 consider special. They use minimal symbols to do that
1497 and this is needed for correct breakpoint placement,
1498 but we do not have full data here to build a complete
1499 minimal symbol, so just set the address and let the
1500 targets cope with that. */
1501 if (bfd_get_flavour (abfd) == bfd_target_elf_flavour
1502 && gdbarch_elf_make_msymbol_special_p (gdbarch))
1503 {
1504 struct minimal_symbol msym;
1505
1506 memset (&msym, 0, sizeof (msym));
1507 SET_MSYMBOL_VALUE_ADDRESS (&msym, symaddr);
1508 gdbarch_elf_make_msymbol_special (gdbarch, sym, &msym);
1509 symaddr = MSYMBOL_VALUE_RAW_ADDRESS (&msym);
1510 }
1511
1512 /* BFD symbols are section relative. */
1513 symaddr += sym->section->vma;
1514 break;
1515 }
1516 }
1517 }
1518
1519 return symaddr;
1520 }
1521
1522 /* Lookup the value for a specific symbol from symbol table. Look up symbol
1523 from ABFD. MATCH_SYM is a callback function to determine whether to pick
1524 up a symbol. DATA is the input of this callback function. Return NULL
1525 if symbol is not found. */
1526
1527 static CORE_ADDR
1528 bfd_lookup_symbol_from_dyn_symtab (bfd *abfd,
1529 int (*match_sym) (const asymbol *,
1530 const void *),
1531 const void *data)
1532 {
1533 long storage_needed = bfd_get_dynamic_symtab_upper_bound (abfd);
1534 CORE_ADDR symaddr = 0;
1535
1536 if (storage_needed > 0)
1537 {
1538 unsigned int i;
1539 gdb::def_vector<asymbol *> storage (storage_needed / sizeof (asymbol *));
1540 asymbol **symbol_table = storage.data ();
1541 unsigned int number_of_symbols =
1542 bfd_canonicalize_dynamic_symtab (abfd, symbol_table);
1543
1544 for (i = 0; i < number_of_symbols; i++)
1545 {
1546 asymbol *sym = *symbol_table++;
1547
1548 if (match_sym (sym, data))
1549 {
1550 /* BFD symbols are section relative. */
1551 symaddr = sym->value + sym->section->vma;
1552 break;
1553 }
1554 }
1555 }
1556 return symaddr;
1557 }
1558
1559 /* Lookup the value for a specific symbol from symbol table and dynamic
1560 symbol table. Look up symbol from ABFD. MATCH_SYM is a callback
1561 function to determine whether to pick up a symbol. DATA is the
1562 input of this callback function. Return NULL if symbol is not
1563 found. */
1564
1565 CORE_ADDR
1566 gdb_bfd_lookup_symbol (bfd *abfd,
1567 int (*match_sym) (const asymbol *, const void *),
1568 const void *data)
1569 {
1570 CORE_ADDR symaddr = gdb_bfd_lookup_symbol_from_symtab (abfd, match_sym, data);
1571
1572 /* On FreeBSD, the dynamic linker is stripped by default. So we'll
1573 have to check the dynamic string table too. */
1574 if (symaddr == 0)
1575 symaddr = bfd_lookup_symbol_from_dyn_symtab (abfd, match_sym, data);
1576
1577 return symaddr;
1578 }
1579
1580 /* SO_LIST_HEAD may contain user-loaded object files that can be removed
1581 out-of-band by the user. So upon notification of free_objfile remove
1582 all references to any user-loaded file that is about to be freed. */
1583
1584 static void
1585 remove_user_added_objfile (struct objfile *objfile)
1586 {
1587 struct so_list *so;
1588
1589 if (objfile != 0 && objfile->flags & OBJF_USERLOADED)
1590 {
1591 for (so = so_list_head; so != NULL; so = so->next)
1592 if (so->objfile == objfile)
1593 so->objfile = NULL;
1594 }
1595 }
1596
1597 void
1598 _initialize_solib (void)
1599 {
1600 solib_data = gdbarch_data_register_pre_init (solib_init);
1601
1602 gdb::observers::free_objfile.attach (remove_user_added_objfile);
1603
1604 add_com ("sharedlibrary", class_files, sharedlibrary_command,
1605 _("Load shared object library symbols for files matching REGEXP."));
1606 add_info ("sharedlibrary", info_sharedlibrary_command,
1607 _("Status of loaded shared object libraries."));
1608 add_info_alias ("dll", "sharedlibrary", 1);
1609 add_com ("nosharedlibrary", class_files, no_shared_libraries,
1610 _("Unload all shared object library symbols."));
1611
1612 add_setshow_boolean_cmd ("auto-solib-add", class_support,
1613 &auto_solib_add, _("\
1614 Set autoloading of shared library symbols."), _("\
1615 Show autoloading of shared library symbols."), _("\
1616 If \"on\", symbols from all shared object libraries will be loaded\n\
1617 automatically when the inferior begins execution, when the dynamic linker\n\
1618 informs gdb that a new library has been loaded, or when attaching to the\n\
1619 inferior. Otherwise, symbols must be loaded manually, using \
1620 `sharedlibrary'."),
1621 NULL,
1622 show_auto_solib_add,
1623 &setlist, &showlist);
1624
1625 add_setshow_optional_filename_cmd ("sysroot", class_support,
1626 &gdb_sysroot, _("\
1627 Set an alternate system root."), _("\
1628 Show the current system root."), _("\
1629 The system root is used to load absolute shared library symbol files.\n\
1630 For other (relative) files, you can add directories using\n\
1631 `set solib-search-path'."),
1632 gdb_sysroot_changed,
1633 NULL,
1634 &setlist, &showlist);
1635
1636 add_alias_cmd ("solib-absolute-prefix", "sysroot", class_support, 0,
1637 &setlist);
1638 add_alias_cmd ("solib-absolute-prefix", "sysroot", class_support, 0,
1639 &showlist);
1640
1641 add_setshow_optional_filename_cmd ("solib-search-path", class_support,
1642 &solib_search_path, _("\
1643 Set the search path for loading non-absolute shared library symbol files."),
1644 _("\
1645 Show the search path for loading non-absolute shared library symbol files."),
1646 _("\
1647 This takes precedence over the environment variables \
1648 PATH and LD_LIBRARY_PATH."),
1649 reload_shared_libraries,
1650 show_solib_search_path,
1651 &setlist, &showlist);
1652 }