Fix a couple of comments
[deliverable/binutils-gdb.git] / gdb / objfiles.c
1 /* GDB routines for manipulating objfiles.
2
3 Copyright (C) 1992-2019 Free Software Foundation, Inc.
4
5 Contributed by Cygnus Support, using pieces from other GDB modules.
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 3 of the License, or
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
21
22 /* This file contains support routines for creating, manipulating, and
23 destroying objfile structures. */
24
25 #include "defs.h"
26 #include "bfd.h" /* Binary File Description */
27 #include "symtab.h"
28 #include "symfile.h"
29 #include "objfiles.h"
30 #include "gdb-stabs.h"
31 #include "target.h"
32 #include "bcache.h"
33 #include "expression.h"
34 #include "parser-defs.h"
35
36 #include <sys/types.h>
37 #include <sys/stat.h>
38 #include <fcntl.h>
39 #include "gdb_obstack.h"
40 #include "hashtab.h"
41
42 #include "breakpoint.h"
43 #include "block.h"
44 #include "dictionary.h"
45 #include "source.h"
46 #include "addrmap.h"
47 #include "arch-utils.h"
48 #include "exec.h"
49 #include "observable.h"
50 #include "complaints.h"
51 #include "psymtab.h"
52 #include "solist.h"
53 #include "gdb_bfd.h"
54 #include "btrace.h"
55 #include "common/pathstuff.h"
56
57 #include <vector>
58
59 /* Keep a registry of per-objfile data-pointers required by other GDB
60 modules. */
61
62 DEFINE_REGISTRY (objfile, REGISTRY_ACCESS_FIELD)
63
64 /* Externally visible variables that are owned by this module.
65 See declarations in objfile.h for more info. */
66
67 struct objfile_pspace_info
68 {
69 struct obj_section **sections;
70 int num_sections;
71
72 /* Nonzero if object files have been added since the section map
73 was last updated. */
74 int new_objfiles_available;
75
76 /* Nonzero if the section map MUST be updated before use. */
77 int section_map_dirty;
78
79 /* Nonzero if section map updates should be inhibited if possible. */
80 int inhibit_updates;
81 };
82
83 /* Per-program-space data key. */
84 static const struct program_space_data *objfiles_pspace_data;
85
86 static void
87 objfiles_pspace_data_cleanup (struct program_space *pspace, void *arg)
88 {
89 struct objfile_pspace_info *info = (struct objfile_pspace_info *) arg;
90
91 xfree (info->sections);
92 xfree (info);
93 }
94
95 /* Get the current svr4 data. If none is found yet, add it now. This
96 function always returns a valid object. */
97
98 static struct objfile_pspace_info *
99 get_objfile_pspace_data (struct program_space *pspace)
100 {
101 struct objfile_pspace_info *info;
102
103 info = ((struct objfile_pspace_info *)
104 program_space_data (pspace, objfiles_pspace_data));
105 if (info == NULL)
106 {
107 info = XCNEW (struct objfile_pspace_info);
108 set_program_space_data (pspace, objfiles_pspace_data, info);
109 }
110
111 return info;
112 }
113
114 \f
115
116 /* Per-BFD data key. */
117
118 static const struct bfd_data *objfiles_bfd_data;
119
120 objfile_per_bfd_storage::~objfile_per_bfd_storage ()
121 {
122 }
123
124 /* Create the per-BFD storage object for OBJFILE. If ABFD is not
125 NULL, and it already has a per-BFD storage object, use that.
126 Otherwise, allocate a new per-BFD storage object. Note that it is
127 not safe to call this multiple times for a given OBJFILE -- it can
128 only be called when allocating or re-initializing OBJFILE. */
129
130 static struct objfile_per_bfd_storage *
131 get_objfile_bfd_data (struct objfile *objfile, struct bfd *abfd)
132 {
133 struct objfile_per_bfd_storage *storage = NULL;
134
135 if (abfd != NULL)
136 storage = ((struct objfile_per_bfd_storage *)
137 bfd_data (abfd, objfiles_bfd_data));
138
139 if (storage == NULL)
140 {
141 storage = new objfile_per_bfd_storage;
142 /* If the object requires gdb to do relocations, we simply fall
143 back to not sharing data across users. These cases are rare
144 enough that this seems reasonable. */
145 if (abfd != NULL && !gdb_bfd_requires_relocations (abfd))
146 set_bfd_data (abfd, objfiles_bfd_data, storage);
147
148 /* Look up the gdbarch associated with the BFD. */
149 if (abfd != NULL)
150 storage->gdbarch = gdbarch_from_bfd (abfd);
151 }
152
153 return storage;
154 }
155
156 /* A deleter for objfile_per_bfd_storage that can be passed as a
157 cleanup function to the BFD registry. */
158
159 static void
160 objfile_bfd_data_free (struct bfd *unused, void *d)
161 {
162 delete (struct objfile_per_bfd_storage *) d;
163 }
164
165 /* See objfiles.h. */
166
167 void
168 set_objfile_per_bfd (struct objfile *objfile)
169 {
170 objfile->per_bfd = get_objfile_bfd_data (objfile, objfile->obfd);
171 }
172
173 /* Set the objfile's per-BFD notion of the "main" name and
174 language. */
175
176 void
177 set_objfile_main_name (struct objfile *objfile,
178 const char *name, enum language lang)
179 {
180 if (objfile->per_bfd->name_of_main == NULL
181 || strcmp (objfile->per_bfd->name_of_main, name) != 0)
182 objfile->per_bfd->name_of_main
183 = (const char *) obstack_copy0 (&objfile->per_bfd->storage_obstack, name,
184 strlen (name));
185 objfile->per_bfd->language_of_main = lang;
186 }
187
188 /* Helper structure to map blocks to static link properties in hash tables. */
189
190 struct static_link_htab_entry
191 {
192 const struct block *block;
193 const struct dynamic_prop *static_link;
194 };
195
196 /* Return a hash code for struct static_link_htab_entry *P. */
197
198 static hashval_t
199 static_link_htab_entry_hash (const void *p)
200 {
201 const struct static_link_htab_entry *e
202 = (const struct static_link_htab_entry *) p;
203
204 return htab_hash_pointer (e->block);
205 }
206
207 /* Return whether P1 an P2 (pointers to struct static_link_htab_entry) are
208 mappings for the same block. */
209
210 static int
211 static_link_htab_entry_eq (const void *p1, const void *p2)
212 {
213 const struct static_link_htab_entry *e1
214 = (const struct static_link_htab_entry *) p1;
215 const struct static_link_htab_entry *e2
216 = (const struct static_link_htab_entry *) p2;
217
218 return e1->block == e2->block;
219 }
220
221 /* Register STATIC_LINK as the static link for BLOCK, which is part of OBJFILE.
222 Must not be called more than once for each BLOCK. */
223
224 void
225 objfile_register_static_link (struct objfile *objfile,
226 const struct block *block,
227 const struct dynamic_prop *static_link)
228 {
229 void **slot;
230 struct static_link_htab_entry lookup_entry;
231 struct static_link_htab_entry *entry;
232
233 if (objfile->static_links == NULL)
234 objfile->static_links = htab_create_alloc
235 (1, &static_link_htab_entry_hash, static_link_htab_entry_eq, NULL,
236 xcalloc, xfree);
237
238 /* Create a slot for the mapping, make sure it's the first mapping for this
239 block and then create the mapping itself. */
240 lookup_entry.block = block;
241 slot = htab_find_slot (objfile->static_links, &lookup_entry, INSERT);
242 gdb_assert (*slot == NULL);
243
244 entry = XOBNEW (&objfile->objfile_obstack, static_link_htab_entry);
245 entry->block = block;
246 entry->static_link = static_link;
247 *slot = (void *) entry;
248 }
249
250 /* Look for a static link for BLOCK, which is part of OBJFILE. Return NULL if
251 none was found. */
252
253 const struct dynamic_prop *
254 objfile_lookup_static_link (struct objfile *objfile,
255 const struct block *block)
256 {
257 struct static_link_htab_entry *entry;
258 struct static_link_htab_entry lookup_entry;
259
260 if (objfile->static_links == NULL)
261 return NULL;
262 lookup_entry.block = block;
263 entry
264 = (struct static_link_htab_entry *) htab_find (objfile->static_links,
265 &lookup_entry);
266 if (entry == NULL)
267 return NULL;
268
269 gdb_assert (entry->block == block);
270 return entry->static_link;
271 }
272
273 \f
274
275 /* Called via bfd_map_over_sections to build up the section table that
276 the objfile references. The objfile contains pointers to the start
277 of the table (objfile->sections) and to the first location after
278 the end of the table (objfile->sections_end). */
279
280 static void
281 add_to_objfile_sections_full (struct bfd *abfd, struct bfd_section *asect,
282 struct objfile *objfile, int force)
283 {
284 struct obj_section *section;
285
286 if (!force)
287 {
288 flagword aflag;
289
290 aflag = bfd_get_section_flags (abfd, asect);
291 if (!(aflag & SEC_ALLOC))
292 return;
293 }
294
295 section = &objfile->sections[gdb_bfd_section_index (abfd, asect)];
296 section->objfile = objfile;
297 section->the_bfd_section = asect;
298 section->ovly_mapped = 0;
299 }
300
301 static void
302 add_to_objfile_sections (struct bfd *abfd, struct bfd_section *asect,
303 void *objfilep)
304 {
305 add_to_objfile_sections_full (abfd, asect, (struct objfile *) objfilep, 0);
306 }
307
308 /* Builds a section table for OBJFILE.
309
310 Note that the OFFSET and OVLY_MAPPED in each table entry are
311 initialized to zero. */
312
313 void
314 build_objfile_section_table (struct objfile *objfile)
315 {
316 int count = gdb_bfd_count_sections (objfile->obfd);
317
318 objfile->sections = OBSTACK_CALLOC (&objfile->objfile_obstack,
319 count,
320 struct obj_section);
321 objfile->sections_end = (objfile->sections + count);
322 bfd_map_over_sections (objfile->obfd,
323 add_to_objfile_sections, (void *) objfile);
324
325 /* See gdb_bfd_section_index. */
326 add_to_objfile_sections_full (objfile->obfd, bfd_com_section_ptr, objfile, 1);
327 add_to_objfile_sections_full (objfile->obfd, bfd_und_section_ptr, objfile, 1);
328 add_to_objfile_sections_full (objfile->obfd, bfd_abs_section_ptr, objfile, 1);
329 add_to_objfile_sections_full (objfile->obfd, bfd_ind_section_ptr, objfile, 1);
330 }
331
332 /* Given a pointer to an initialized bfd (ABFD) and some flag bits,
333 initialize the new objfile as best we can and link it into the list
334 of all known objfiles.
335
336 NAME should contain original non-canonicalized filename or other
337 identifier as entered by user. If there is no better source use
338 bfd_get_filename (ABFD). NAME may be NULL only if ABFD is NULL.
339 NAME content is copied into returned objfile.
340
341 The FLAGS word contains various bits (OBJF_*) that can be taken as
342 requests for specific operations. Other bits like OBJF_SHARED are
343 simply copied through to the new objfile flags member. */
344
345 objfile::objfile (bfd *abfd, const char *name, objfile_flags flags_)
346 : flags (flags_),
347 pspace (current_program_space),
348 partial_symtabs (new psymtab_storage ()),
349 obfd (abfd)
350 {
351 const char *expanded_name;
352
353 /* We could use obstack_specify_allocation here instead, but
354 gdb_obstack.h specifies the alloc/dealloc functions. */
355 obstack_init (&objfile_obstack);
356
357 objfile_alloc_data (this);
358
359 gdb::unique_xmalloc_ptr<char> name_holder;
360 if (name == NULL)
361 {
362 gdb_assert (abfd == NULL);
363 gdb_assert ((flags & OBJF_NOT_FILENAME) != 0);
364 expanded_name = "<<anonymous objfile>>";
365 }
366 else if ((flags & OBJF_NOT_FILENAME) != 0
367 || is_target_filename (name))
368 expanded_name = name;
369 else
370 {
371 name_holder = gdb_abspath (name);
372 expanded_name = name_holder.get ();
373 }
374 original_name
375 = (char *) obstack_copy0 (&objfile_obstack,
376 expanded_name,
377 strlen (expanded_name));
378
379 /* Update the per-objfile information that comes from the bfd, ensuring
380 that any data that is reference is saved in the per-objfile data
381 region. */
382
383 gdb_bfd_ref (abfd);
384 if (abfd != NULL)
385 {
386 mtime = bfd_get_mtime (abfd);
387
388 /* Build section table. */
389 build_objfile_section_table (this);
390 }
391
392 per_bfd = get_objfile_bfd_data (this, abfd);
393
394 /* Add this file onto the tail of the linked list of other such files. */
395
396 if (object_files == NULL)
397 object_files = this;
398 else
399 {
400 struct objfile *last_one;
401
402 for (last_one = object_files;
403 last_one->next;
404 last_one = last_one->next);
405 last_one->next = this;
406 }
407
408 /* Rebuild section map next time we need it. */
409 get_objfile_pspace_data (pspace)->new_objfiles_available = 1;
410 }
411
412 /* Retrieve the gdbarch associated with OBJFILE. */
413
414 struct gdbarch *
415 get_objfile_arch (const struct objfile *objfile)
416 {
417 return objfile->per_bfd->gdbarch;
418 }
419
420 /* If there is a valid and known entry point, function fills *ENTRY_P with it
421 and returns non-zero; otherwise it returns zero. */
422
423 int
424 entry_point_address_query (CORE_ADDR *entry_p)
425 {
426 if (symfile_objfile == NULL || !symfile_objfile->per_bfd->ei.entry_point_p)
427 return 0;
428
429 *entry_p = (symfile_objfile->per_bfd->ei.entry_point
430 + ANOFFSET (symfile_objfile->section_offsets,
431 symfile_objfile->per_bfd->ei.the_bfd_section_index));
432
433 return 1;
434 }
435
436 /* Get current entry point address. Call error if it is not known. */
437
438 CORE_ADDR
439 entry_point_address (void)
440 {
441 CORE_ADDR retval;
442
443 if (!entry_point_address_query (&retval))
444 error (_("Entry point address is not known."));
445
446 return retval;
447 }
448
449 /* Iterator on PARENT and every separate debug objfile of PARENT.
450 The usage pattern is:
451 for (objfile = parent;
452 objfile;
453 objfile = objfile_separate_debug_iterate (parent, objfile))
454 ...
455 */
456
457 struct objfile *
458 objfile_separate_debug_iterate (const struct objfile *parent,
459 const struct objfile *objfile)
460 {
461 struct objfile *res;
462
463 /* If any, return the first child. */
464 res = objfile->separate_debug_objfile;
465 if (res)
466 return res;
467
468 /* Common case where there is no separate debug objfile. */
469 if (objfile == parent)
470 return NULL;
471
472 /* Return the brother if any. Note that we don't iterate on brothers of
473 the parents. */
474 res = objfile->separate_debug_objfile_link;
475 if (res)
476 return res;
477
478 for (res = objfile->separate_debug_objfile_backlink;
479 res != parent;
480 res = res->separate_debug_objfile_backlink)
481 {
482 gdb_assert (res != NULL);
483 if (res->separate_debug_objfile_link)
484 return res->separate_debug_objfile_link;
485 }
486 return NULL;
487 }
488
489 /* Put one object file before a specified on in the global list.
490 This can be used to make sure an object file is destroyed before
491 another when using objfiles_safe to free all objfiles. */
492 void
493 put_objfile_before (struct objfile *objfile, struct objfile *before_this)
494 {
495 struct objfile **objp;
496
497 unlink_objfile (objfile);
498
499 for (objp = &object_files; *objp != NULL; objp = &((*objp)->next))
500 {
501 if (*objp == before_this)
502 {
503 objfile->next = *objp;
504 *objp = objfile;
505 return;
506 }
507 }
508
509 internal_error (__FILE__, __LINE__,
510 _("put_objfile_before: before objfile not in list"));
511 }
512
513 /* Unlink OBJFILE from the list of known objfiles, if it is found in the
514 list.
515
516 It is not a bug, or error, to call this function if OBJFILE is not known
517 to be in the current list. This is done in the case of mapped objfiles,
518 for example, just to ensure that the mapped objfile doesn't appear twice
519 in the list. Since the list is threaded, linking in a mapped objfile
520 twice would create a circular list.
521
522 If OBJFILE turns out to be in the list, we zap it's NEXT pointer after
523 unlinking it, just to ensure that we have completely severed any linkages
524 between the OBJFILE and the list. */
525
526 void
527 unlink_objfile (struct objfile *objfile)
528 {
529 struct objfile **objpp;
530
531 for (objpp = &object_files; *objpp != NULL; objpp = &((*objpp)->next))
532 {
533 if (*objpp == objfile)
534 {
535 *objpp = (*objpp)->next;
536 objfile->next = NULL;
537 return;
538 }
539 }
540
541 internal_error (__FILE__, __LINE__,
542 _("unlink_objfile: objfile already unlinked"));
543 }
544
545 /* Add OBJFILE as a separate debug objfile of PARENT. */
546
547 void
548 add_separate_debug_objfile (struct objfile *objfile, struct objfile *parent)
549 {
550 gdb_assert (objfile && parent);
551
552 /* Must not be already in a list. */
553 gdb_assert (objfile->separate_debug_objfile_backlink == NULL);
554 gdb_assert (objfile->separate_debug_objfile_link == NULL);
555 gdb_assert (objfile->separate_debug_objfile == NULL);
556 gdb_assert (parent->separate_debug_objfile_backlink == NULL);
557 gdb_assert (parent->separate_debug_objfile_link == NULL);
558
559 objfile->separate_debug_objfile_backlink = parent;
560 objfile->separate_debug_objfile_link = parent->separate_debug_objfile;
561 parent->separate_debug_objfile = objfile;
562
563 /* Put the separate debug object before the normal one, this is so that
564 usage of objfiles_safe will stay safe. */
565 put_objfile_before (objfile, parent);
566 }
567
568 /* Free all separate debug objfile of OBJFILE, but don't free OBJFILE
569 itself. */
570
571 void
572 free_objfile_separate_debug (struct objfile *objfile)
573 {
574 struct objfile *child;
575
576 for (child = objfile->separate_debug_objfile; child;)
577 {
578 struct objfile *next_child = child->separate_debug_objfile_link;
579 delete child;
580 child = next_child;
581 }
582 }
583
584 /* Destroy an objfile and all the symtabs and psymtabs under it. */
585
586 objfile::~objfile ()
587 {
588 /* First notify observers that this objfile is about to be freed. */
589 gdb::observers::free_objfile.notify (this);
590
591 /* Free all separate debug objfiles. */
592 free_objfile_separate_debug (this);
593
594 if (separate_debug_objfile_backlink)
595 {
596 /* We freed the separate debug file, make sure the base objfile
597 doesn't reference it. */
598 struct objfile *child;
599
600 child = separate_debug_objfile_backlink->separate_debug_objfile;
601
602 if (child == this)
603 {
604 /* THIS is the first child. */
605 separate_debug_objfile_backlink->separate_debug_objfile =
606 separate_debug_objfile_link;
607 }
608 else
609 {
610 /* Find THIS in the list. */
611 while (1)
612 {
613 if (child->separate_debug_objfile_link == this)
614 {
615 child->separate_debug_objfile_link =
616 separate_debug_objfile_link;
617 break;
618 }
619 child = child->separate_debug_objfile_link;
620 gdb_assert (child);
621 }
622 }
623 }
624
625 /* Remove any references to this objfile in the global value
626 lists. */
627 preserve_values (this);
628
629 /* It still may reference data modules have associated with the objfile and
630 the symbol file data. */
631 forget_cached_source_info_for_objfile (this);
632
633 breakpoint_free_objfile (this);
634 btrace_free_objfile (this);
635
636 /* First do any symbol file specific actions required when we are
637 finished with a particular symbol file. Note that if the objfile
638 is using reusable symbol information (via mmalloc) then each of
639 these routines is responsible for doing the correct thing, either
640 freeing things which are valid only during this particular gdb
641 execution, or leaving them to be reused during the next one. */
642
643 if (sf != NULL)
644 (*sf->sym_finish) (this);
645
646 /* Discard any data modules have associated with the objfile. The function
647 still may reference obfd. */
648 objfile_free_data (this);
649
650 if (obfd)
651 gdb_bfd_unref (obfd);
652 else
653 delete per_bfd;
654
655 /* Remove it from the chain of all objfiles. */
656
657 unlink_objfile (this);
658
659 if (this == symfile_objfile)
660 symfile_objfile = NULL;
661
662 /* Before the symbol table code was redone to make it easier to
663 selectively load and remove information particular to a specific
664 linkage unit, gdb used to do these things whenever the monolithic
665 symbol table was blown away. How much still needs to be done
666 is unknown, but we play it safe for now and keep each action until
667 it is shown to be no longer needed. */
668
669 /* Not all our callers call clear_symtab_users (objfile_purge_solibs,
670 for example), so we need to call this here. */
671 clear_pc_function_cache ();
672
673 /* Check to see if the current_source_symtab belongs to this objfile,
674 and if so, call clear_current_source_symtab_and_line. */
675
676 {
677 struct symtab_and_line cursal = get_current_source_symtab_and_line ();
678
679 if (cursal.symtab && SYMTAB_OBJFILE (cursal.symtab) == this)
680 clear_current_source_symtab_and_line ();
681 }
682
683 /* Free the obstacks for non-reusable objfiles. */
684 obstack_free (&objfile_obstack, 0);
685
686 /* Rebuild section map next time we need it. */
687 get_objfile_pspace_data (pspace)->section_map_dirty = 1;
688
689 /* Free the map for static links. There's no need to free static link
690 themselves since they were allocated on the objstack. */
691 if (static_links != NULL)
692 htab_delete (static_links);
693 }
694
695 /* Free all the object files at once and clean up their users. */
696
697 void
698 free_all_objfiles (void)
699 {
700 struct so_list *so;
701
702 /* Any objfile reference would become stale. */
703 for (so = master_so_list (); so; so = so->next)
704 gdb_assert (so->objfile == NULL);
705
706 for (objfile *objfile : current_program_space->objfiles_safe ())
707 delete objfile;
708 clear_symtab_users (0);
709 }
710 \f
711 /* A helper function for objfile_relocate1 that relocates a single
712 symbol. */
713
714 static void
715 relocate_one_symbol (struct symbol *sym, struct objfile *objfile,
716 struct section_offsets *delta)
717 {
718 fixup_symbol_section (sym, objfile);
719
720 /* The RS6000 code from which this was taken skipped
721 any symbols in STRUCT_DOMAIN or UNDEF_DOMAIN.
722 But I'm leaving out that test, on the theory that
723 they can't possibly pass the tests below. */
724 if ((SYMBOL_CLASS (sym) == LOC_LABEL
725 || SYMBOL_CLASS (sym) == LOC_STATIC)
726 && SYMBOL_SECTION (sym) >= 0)
727 {
728 SYMBOL_VALUE_ADDRESS (sym) += ANOFFSET (delta, SYMBOL_SECTION (sym));
729 }
730 }
731
732 /* Relocate OBJFILE to NEW_OFFSETS. There should be OBJFILE->NUM_SECTIONS
733 entries in new_offsets. SEPARATE_DEBUG_OBJFILE is not touched here.
734 Return non-zero iff any change happened. */
735
736 static int
737 objfile_relocate1 (struct objfile *objfile,
738 const struct section_offsets *new_offsets)
739 {
740 struct section_offsets *delta =
741 ((struct section_offsets *)
742 alloca (SIZEOF_N_SECTION_OFFSETS (objfile->num_sections)));
743
744 int something_changed = 0;
745
746 for (int i = 0; i < objfile->num_sections; ++i)
747 {
748 delta->offsets[i] =
749 ANOFFSET (new_offsets, i) - ANOFFSET (objfile->section_offsets, i);
750 if (ANOFFSET (delta, i) != 0)
751 something_changed = 1;
752 }
753 if (!something_changed)
754 return 0;
755
756 /* OK, get all the symtabs. */
757 {
758 for (compunit_symtab *cust : objfile->compunits ())
759 {
760 for (symtab *s : compunit_filetabs (cust))
761 {
762 struct linetable *l;
763
764 /* First the line table. */
765 l = SYMTAB_LINETABLE (s);
766 if (l)
767 {
768 for (int i = 0; i < l->nitems; ++i)
769 l->item[i].pc += ANOFFSET (delta,
770 COMPUNIT_BLOCK_LINE_SECTION
771 (cust));
772 }
773 }
774 }
775
776 for (compunit_symtab *cust : objfile->compunits ())
777 {
778 const struct blockvector *bv = COMPUNIT_BLOCKVECTOR (cust);
779 int block_line_section = COMPUNIT_BLOCK_LINE_SECTION (cust);
780
781 if (BLOCKVECTOR_MAP (bv))
782 addrmap_relocate (BLOCKVECTOR_MAP (bv),
783 ANOFFSET (delta, block_line_section));
784
785 for (int i = 0; i < BLOCKVECTOR_NBLOCKS (bv); ++i)
786 {
787 struct block *b;
788 struct symbol *sym;
789 struct mdict_iterator miter;
790
791 b = BLOCKVECTOR_BLOCK (bv, i);
792 BLOCK_START (b) += ANOFFSET (delta, block_line_section);
793 BLOCK_END (b) += ANOFFSET (delta, block_line_section);
794
795 if (BLOCK_RANGES (b) != nullptr)
796 for (int j = 0; j < BLOCK_NRANGES (b); j++)
797 {
798 BLOCK_RANGE_START (b, j)
799 += ANOFFSET (delta, block_line_section);
800 BLOCK_RANGE_END (b, j) += ANOFFSET (delta,
801 block_line_section);
802 }
803
804 /* We only want to iterate over the local symbols, not any
805 symbols in included symtabs. */
806 ALL_DICT_SYMBOLS (BLOCK_MULTIDICT (b), miter, sym)
807 {
808 relocate_one_symbol (sym, objfile, delta);
809 }
810 }
811 }
812 }
813
814 /* This stores relocated addresses and so must be cleared. This
815 will cause it to be recreated on demand. */
816 objfile->psymbol_map.clear ();
817
818 /* Relocate isolated symbols. */
819 {
820 struct symbol *iter;
821
822 for (iter = objfile->template_symbols; iter; iter = iter->hash_next)
823 relocate_one_symbol (iter, objfile, delta);
824 }
825
826 {
827 int i;
828
829 for (i = 0; i < objfile->num_sections; ++i)
830 (objfile->section_offsets)->offsets[i] = ANOFFSET (new_offsets, i);
831 }
832
833 /* Rebuild section map next time we need it. */
834 get_objfile_pspace_data (objfile->pspace)->section_map_dirty = 1;
835
836 /* Update the table in exec_ops, used to read memory. */
837 struct obj_section *s;
838 ALL_OBJFILE_OSECTIONS (objfile, s)
839 {
840 int idx = s - objfile->sections;
841
842 exec_set_section_address (bfd_get_filename (objfile->obfd), idx,
843 obj_section_addr (s));
844 }
845
846 /* Data changed. */
847 return 1;
848 }
849
850 /* Relocate OBJFILE to NEW_OFFSETS. There should be OBJFILE->NUM_SECTIONS
851 entries in new_offsets. Process also OBJFILE's SEPARATE_DEBUG_OBJFILEs.
852
853 The number and ordering of sections does differ between the two objfiles.
854 Only their names match. Also the file offsets will differ (objfile being
855 possibly prelinked but separate_debug_objfile is probably not prelinked) but
856 the in-memory absolute address as specified by NEW_OFFSETS must match both
857 files. */
858
859 void
860 objfile_relocate (struct objfile *objfile,
861 const struct section_offsets *new_offsets)
862 {
863 struct objfile *debug_objfile;
864 int changed = 0;
865
866 changed |= objfile_relocate1 (objfile, new_offsets);
867
868 for (debug_objfile = objfile->separate_debug_objfile;
869 debug_objfile;
870 debug_objfile = objfile_separate_debug_iterate (objfile, debug_objfile))
871 {
872 section_addr_info objfile_addrs
873 = build_section_addr_info_from_objfile (objfile);
874
875 /* Here OBJFILE_ADDRS contain the correct absolute addresses, the
876 relative ones must be already created according to debug_objfile. */
877
878 addr_info_make_relative (&objfile_addrs, debug_objfile->obfd);
879
880 gdb_assert (debug_objfile->num_sections
881 == gdb_bfd_count_sections (debug_objfile->obfd));
882 std::vector<struct section_offsets>
883 new_debug_offsets (SIZEOF_N_SECTION_OFFSETS (debug_objfile->num_sections));
884 relative_addr_info_to_section_offsets (new_debug_offsets.data (),
885 debug_objfile->num_sections,
886 objfile_addrs);
887
888 changed |= objfile_relocate1 (debug_objfile, new_debug_offsets.data ());
889 }
890
891 /* Relocate breakpoints as necessary, after things are relocated. */
892 if (changed)
893 breakpoint_re_set ();
894 }
895
896 /* Rebase (add to the offsets) OBJFILE by SLIDE. SEPARATE_DEBUG_OBJFILE is
897 not touched here.
898 Return non-zero iff any change happened. */
899
900 static int
901 objfile_rebase1 (struct objfile *objfile, CORE_ADDR slide)
902 {
903 struct section_offsets *new_offsets =
904 ((struct section_offsets *)
905 alloca (SIZEOF_N_SECTION_OFFSETS (objfile->num_sections)));
906 int i;
907
908 for (i = 0; i < objfile->num_sections; ++i)
909 new_offsets->offsets[i] = slide;
910
911 return objfile_relocate1 (objfile, new_offsets);
912 }
913
914 /* Rebase (add to the offsets) OBJFILE by SLIDE. Process also OBJFILE's
915 SEPARATE_DEBUG_OBJFILEs. */
916
917 void
918 objfile_rebase (struct objfile *objfile, CORE_ADDR slide)
919 {
920 struct objfile *debug_objfile;
921 int changed = 0;
922
923 changed |= objfile_rebase1 (objfile, slide);
924
925 for (debug_objfile = objfile->separate_debug_objfile;
926 debug_objfile;
927 debug_objfile = objfile_separate_debug_iterate (objfile, debug_objfile))
928 changed |= objfile_rebase1 (debug_objfile, slide);
929
930 /* Relocate breakpoints as necessary, after things are relocated. */
931 if (changed)
932 breakpoint_re_set ();
933 }
934 \f
935 /* Return non-zero if OBJFILE has partial symbols. */
936
937 int
938 objfile_has_partial_symbols (struct objfile *objfile)
939 {
940 if (!objfile->sf)
941 return 0;
942
943 /* If we have not read psymbols, but we have a function capable of reading
944 them, then that is an indication that they are in fact available. Without
945 this function the symbols may have been already read in but they also may
946 not be present in this objfile. */
947 if ((objfile->flags & OBJF_PSYMTABS_READ) == 0
948 && objfile->sf->sym_read_psymbols != NULL)
949 return 1;
950
951 return objfile->sf->qf->has_symbols (objfile);
952 }
953
954 /* Return non-zero if OBJFILE has full symbols. */
955
956 int
957 objfile_has_full_symbols (struct objfile *objfile)
958 {
959 return objfile->compunit_symtabs != NULL;
960 }
961
962 /* Return non-zero if OBJFILE has full or partial symbols, either directly
963 or through a separate debug file. */
964
965 int
966 objfile_has_symbols (struct objfile *objfile)
967 {
968 struct objfile *o;
969
970 for (o = objfile; o; o = objfile_separate_debug_iterate (objfile, o))
971 if (objfile_has_partial_symbols (o) || objfile_has_full_symbols (o))
972 return 1;
973 return 0;
974 }
975
976
977 /* Many places in gdb want to test just to see if we have any partial
978 symbols available. This function returns zero if none are currently
979 available, nonzero otherwise. */
980
981 int
982 have_partial_symbols (void)
983 {
984 for (objfile *ofp : current_program_space->objfiles ())
985 {
986 if (objfile_has_partial_symbols (ofp))
987 return 1;
988 }
989 return 0;
990 }
991
992 /* Many places in gdb want to test just to see if we have any full
993 symbols available. This function returns zero if none are currently
994 available, nonzero otherwise. */
995
996 int
997 have_full_symbols (void)
998 {
999 for (objfile *ofp : current_program_space->objfiles ())
1000 {
1001 if (objfile_has_full_symbols (ofp))
1002 return 1;
1003 }
1004 return 0;
1005 }
1006
1007
1008 /* This operations deletes all objfile entries that represent solibs that
1009 weren't explicitly loaded by the user, via e.g., the add-symbol-file
1010 command. */
1011
1012 void
1013 objfile_purge_solibs (void)
1014 {
1015 for (objfile *objf : current_program_space->objfiles_safe ())
1016 {
1017 /* We assume that the solib package has been purged already, or will
1018 be soon. */
1019
1020 if (!(objf->flags & OBJF_USERLOADED) && (objf->flags & OBJF_SHARED))
1021 delete objf;
1022 }
1023 }
1024
1025
1026 /* Many places in gdb want to test just to see if we have any minimal
1027 symbols available. This function returns zero if none are currently
1028 available, nonzero otherwise. */
1029
1030 int
1031 have_minimal_symbols (void)
1032 {
1033 for (objfile *ofp : current_program_space->objfiles ())
1034 {
1035 if (ofp->per_bfd->minimal_symbol_count > 0)
1036 {
1037 return 1;
1038 }
1039 }
1040 return 0;
1041 }
1042
1043 /* Qsort comparison function. */
1044
1045 static int
1046 qsort_cmp (const void *a, const void *b)
1047 {
1048 const struct obj_section *sect1 = *(const struct obj_section **) a;
1049 const struct obj_section *sect2 = *(const struct obj_section **) b;
1050 const CORE_ADDR sect1_addr = obj_section_addr (sect1);
1051 const CORE_ADDR sect2_addr = obj_section_addr (sect2);
1052
1053 if (sect1_addr < sect2_addr)
1054 return -1;
1055 else if (sect1_addr > sect2_addr)
1056 return 1;
1057 else
1058 {
1059 /* Sections are at the same address. This could happen if
1060 A) we have an objfile and a separate debuginfo.
1061 B) we are confused, and have added sections without proper relocation,
1062 or something like that. */
1063
1064 const struct objfile *const objfile1 = sect1->objfile;
1065 const struct objfile *const objfile2 = sect2->objfile;
1066
1067 if (objfile1->separate_debug_objfile == objfile2
1068 || objfile2->separate_debug_objfile == objfile1)
1069 {
1070 /* Case A. The ordering doesn't matter: separate debuginfo files
1071 will be filtered out later. */
1072
1073 return 0;
1074 }
1075
1076 /* Case B. Maintain stable sort order, so bugs in GDB are easier to
1077 triage. This section could be slow (since we iterate over all
1078 objfiles in each call to qsort_cmp), but this shouldn't happen
1079 very often (GDB is already in a confused state; one hopes this
1080 doesn't happen at all). If you discover that significant time is
1081 spent in the loops below, do 'set complaints 100' and examine the
1082 resulting complaints. */
1083
1084 if (objfile1 == objfile2)
1085 {
1086 /* Both sections came from the same objfile. We are really confused.
1087 Sort on sequence order of sections within the objfile. */
1088
1089 const struct obj_section *osect;
1090
1091 ALL_OBJFILE_OSECTIONS (objfile1, osect)
1092 if (osect == sect1)
1093 return -1;
1094 else if (osect == sect2)
1095 return 1;
1096
1097 /* We should have found one of the sections before getting here. */
1098 gdb_assert_not_reached ("section not found");
1099 }
1100 else
1101 {
1102 /* Sort on sequence number of the objfile in the chain. */
1103
1104 for (objfile *objfile : current_program_space->objfiles ())
1105 if (objfile == objfile1)
1106 return -1;
1107 else if (objfile == objfile2)
1108 return 1;
1109
1110 /* We should have found one of the objfiles before getting here. */
1111 gdb_assert_not_reached ("objfile not found");
1112 }
1113 }
1114
1115 /* Unreachable. */
1116 gdb_assert_not_reached ("unexpected code path");
1117 return 0;
1118 }
1119
1120 /* Select "better" obj_section to keep. We prefer the one that came from
1121 the real object, rather than the one from separate debuginfo.
1122 Most of the time the two sections are exactly identical, but with
1123 prelinking the .rel.dyn section in the real object may have different
1124 size. */
1125
1126 static struct obj_section *
1127 preferred_obj_section (struct obj_section *a, struct obj_section *b)
1128 {
1129 gdb_assert (obj_section_addr (a) == obj_section_addr (b));
1130 gdb_assert ((a->objfile->separate_debug_objfile == b->objfile)
1131 || (b->objfile->separate_debug_objfile == a->objfile));
1132 gdb_assert ((a->objfile->separate_debug_objfile_backlink == b->objfile)
1133 || (b->objfile->separate_debug_objfile_backlink == a->objfile));
1134
1135 if (a->objfile->separate_debug_objfile != NULL)
1136 return a;
1137 return b;
1138 }
1139
1140 /* Return 1 if SECTION should be inserted into the section map.
1141 We want to insert only non-overlay and non-TLS section. */
1142
1143 static int
1144 insert_section_p (const struct bfd *abfd,
1145 const struct bfd_section *section)
1146 {
1147 const bfd_vma lma = bfd_section_lma (abfd, section);
1148
1149 if (overlay_debugging && lma != 0 && lma != bfd_section_vma (abfd, section)
1150 && (bfd_get_file_flags (abfd) & BFD_IN_MEMORY) == 0)
1151 /* This is an overlay section. IN_MEMORY check is needed to avoid
1152 discarding sections from the "system supplied DSO" (aka vdso)
1153 on some Linux systems (e.g. Fedora 11). */
1154 return 0;
1155 if ((bfd_get_section_flags (abfd, section) & SEC_THREAD_LOCAL) != 0)
1156 /* This is a TLS section. */
1157 return 0;
1158
1159 return 1;
1160 }
1161
1162 /* Filter out overlapping sections where one section came from the real
1163 objfile, and the other from a separate debuginfo file.
1164 Return the size of table after redundant sections have been eliminated. */
1165
1166 static int
1167 filter_debuginfo_sections (struct obj_section **map, int map_size)
1168 {
1169 int i, j;
1170
1171 for (i = 0, j = 0; i < map_size - 1; i++)
1172 {
1173 struct obj_section *const sect1 = map[i];
1174 struct obj_section *const sect2 = map[i + 1];
1175 const struct objfile *const objfile1 = sect1->objfile;
1176 const struct objfile *const objfile2 = sect2->objfile;
1177 const CORE_ADDR sect1_addr = obj_section_addr (sect1);
1178 const CORE_ADDR sect2_addr = obj_section_addr (sect2);
1179
1180 if (sect1_addr == sect2_addr
1181 && (objfile1->separate_debug_objfile == objfile2
1182 || objfile2->separate_debug_objfile == objfile1))
1183 {
1184 map[j++] = preferred_obj_section (sect1, sect2);
1185 ++i;
1186 }
1187 else
1188 map[j++] = sect1;
1189 }
1190
1191 if (i < map_size)
1192 {
1193 gdb_assert (i == map_size - 1);
1194 map[j++] = map[i];
1195 }
1196
1197 /* The map should not have shrunk to less than half the original size. */
1198 gdb_assert (map_size / 2 <= j);
1199
1200 return j;
1201 }
1202
1203 /* Filter out overlapping sections, issuing a warning if any are found.
1204 Overlapping sections could really be overlay sections which we didn't
1205 classify as such in insert_section_p, or we could be dealing with a
1206 corrupt binary. */
1207
1208 static int
1209 filter_overlapping_sections (struct obj_section **map, int map_size)
1210 {
1211 int i, j;
1212
1213 for (i = 0, j = 0; i < map_size - 1; )
1214 {
1215 int k;
1216
1217 map[j++] = map[i];
1218 for (k = i + 1; k < map_size; k++)
1219 {
1220 struct obj_section *const sect1 = map[i];
1221 struct obj_section *const sect2 = map[k];
1222 const CORE_ADDR sect1_addr = obj_section_addr (sect1);
1223 const CORE_ADDR sect2_addr = obj_section_addr (sect2);
1224 const CORE_ADDR sect1_endaddr = obj_section_endaddr (sect1);
1225
1226 gdb_assert (sect1_addr <= sect2_addr);
1227
1228 if (sect1_endaddr <= sect2_addr)
1229 break;
1230 else
1231 {
1232 /* We have an overlap. Report it. */
1233
1234 struct objfile *const objf1 = sect1->objfile;
1235 struct objfile *const objf2 = sect2->objfile;
1236
1237 const struct bfd_section *const bfds1 = sect1->the_bfd_section;
1238 const struct bfd_section *const bfds2 = sect2->the_bfd_section;
1239
1240 const CORE_ADDR sect2_endaddr = obj_section_endaddr (sect2);
1241
1242 struct gdbarch *const gdbarch = get_objfile_arch (objf1);
1243
1244 complaint (_("unexpected overlap between:\n"
1245 " (A) section `%s' from `%s' [%s, %s)\n"
1246 " (B) section `%s' from `%s' [%s, %s).\n"
1247 "Will ignore section B"),
1248 bfd_section_name (abfd1, bfds1), objfile_name (objf1),
1249 paddress (gdbarch, sect1_addr),
1250 paddress (gdbarch, sect1_endaddr),
1251 bfd_section_name (abfd2, bfds2), objfile_name (objf2),
1252 paddress (gdbarch, sect2_addr),
1253 paddress (gdbarch, sect2_endaddr));
1254 }
1255 }
1256 i = k;
1257 }
1258
1259 if (i < map_size)
1260 {
1261 gdb_assert (i == map_size - 1);
1262 map[j++] = map[i];
1263 }
1264
1265 return j;
1266 }
1267
1268
1269 /* Update PMAP, PMAP_SIZE with sections from all objfiles, excluding any
1270 TLS, overlay and overlapping sections. */
1271
1272 static void
1273 update_section_map (struct program_space *pspace,
1274 struct obj_section ***pmap, int *pmap_size)
1275 {
1276 struct objfile_pspace_info *pspace_info;
1277 int alloc_size, map_size, i;
1278 struct obj_section *s, **map;
1279
1280 pspace_info = get_objfile_pspace_data (pspace);
1281 gdb_assert (pspace_info->section_map_dirty != 0
1282 || pspace_info->new_objfiles_available != 0);
1283
1284 map = *pmap;
1285 xfree (map);
1286
1287 alloc_size = 0;
1288 for (objfile *objfile : pspace->objfiles ())
1289 ALL_OBJFILE_OSECTIONS (objfile, s)
1290 if (insert_section_p (objfile->obfd, s->the_bfd_section))
1291 alloc_size += 1;
1292
1293 /* This happens on detach/attach (e.g. in gdb.base/attach.exp). */
1294 if (alloc_size == 0)
1295 {
1296 *pmap = NULL;
1297 *pmap_size = 0;
1298 return;
1299 }
1300
1301 map = XNEWVEC (struct obj_section *, alloc_size);
1302
1303 i = 0;
1304 for (objfile *objfile : pspace->objfiles ())
1305 ALL_OBJFILE_OSECTIONS (objfile, s)
1306 if (insert_section_p (objfile->obfd, s->the_bfd_section))
1307 map[i++] = s;
1308
1309 qsort (map, alloc_size, sizeof (*map), qsort_cmp);
1310 map_size = filter_debuginfo_sections(map, alloc_size);
1311 map_size = filter_overlapping_sections(map, map_size);
1312
1313 if (map_size < alloc_size)
1314 /* Some sections were eliminated. Trim excess space. */
1315 map = XRESIZEVEC (struct obj_section *, map, map_size);
1316 else
1317 gdb_assert (alloc_size == map_size);
1318
1319 *pmap = map;
1320 *pmap_size = map_size;
1321 }
1322
1323 /* Bsearch comparison function. */
1324
1325 static int
1326 bsearch_cmp (const void *key, const void *elt)
1327 {
1328 const CORE_ADDR pc = *(CORE_ADDR *) key;
1329 const struct obj_section *section = *(const struct obj_section **) elt;
1330
1331 if (pc < obj_section_addr (section))
1332 return -1;
1333 if (pc < obj_section_endaddr (section))
1334 return 0;
1335 return 1;
1336 }
1337
1338 /* Returns a section whose range includes PC or NULL if none found. */
1339
1340 struct obj_section *
1341 find_pc_section (CORE_ADDR pc)
1342 {
1343 struct objfile_pspace_info *pspace_info;
1344 struct obj_section *s, **sp;
1345
1346 /* Check for mapped overlay section first. */
1347 s = find_pc_mapped_section (pc);
1348 if (s)
1349 return s;
1350
1351 pspace_info = get_objfile_pspace_data (current_program_space);
1352 if (pspace_info->section_map_dirty
1353 || (pspace_info->new_objfiles_available
1354 && !pspace_info->inhibit_updates))
1355 {
1356 update_section_map (current_program_space,
1357 &pspace_info->sections,
1358 &pspace_info->num_sections);
1359
1360 /* Don't need updates to section map until objfiles are added,
1361 removed or relocated. */
1362 pspace_info->new_objfiles_available = 0;
1363 pspace_info->section_map_dirty = 0;
1364 }
1365
1366 /* The C standard (ISO/IEC 9899:TC2) requires the BASE argument to
1367 bsearch be non-NULL. */
1368 if (pspace_info->sections == NULL)
1369 {
1370 gdb_assert (pspace_info->num_sections == 0);
1371 return NULL;
1372 }
1373
1374 sp = (struct obj_section **) bsearch (&pc,
1375 pspace_info->sections,
1376 pspace_info->num_sections,
1377 sizeof (*pspace_info->sections),
1378 bsearch_cmp);
1379 if (sp != NULL)
1380 return *sp;
1381 return NULL;
1382 }
1383
1384
1385 /* Return non-zero if PC is in a section called NAME. */
1386
1387 int
1388 pc_in_section (CORE_ADDR pc, const char *name)
1389 {
1390 struct obj_section *s;
1391 int retval = 0;
1392
1393 s = find_pc_section (pc);
1394
1395 retval = (s != NULL
1396 && s->the_bfd_section->name != NULL
1397 && strcmp (s->the_bfd_section->name, name) == 0);
1398 return (retval);
1399 }
1400 \f
1401
1402 /* Set section_map_dirty so section map will be rebuilt next time it
1403 is used. Called by reread_symbols. */
1404
1405 void
1406 objfiles_changed (void)
1407 {
1408 /* Rebuild section map next time we need it. */
1409 get_objfile_pspace_data (current_program_space)->section_map_dirty = 1;
1410 }
1411
1412 /* See comments in objfiles.h. */
1413
1414 scoped_restore_tmpl<int>
1415 inhibit_section_map_updates (struct program_space *pspace)
1416 {
1417 return scoped_restore_tmpl<int>
1418 (&get_objfile_pspace_data (pspace)->inhibit_updates, 1);
1419 }
1420
1421 /* Return 1 if ADDR maps into one of the sections of OBJFILE and 0
1422 otherwise. */
1423
1424 int
1425 is_addr_in_objfile (CORE_ADDR addr, const struct objfile *objfile)
1426 {
1427 struct obj_section *osect;
1428
1429 if (objfile == NULL)
1430 return 0;
1431
1432 ALL_OBJFILE_OSECTIONS (objfile, osect)
1433 {
1434 if (section_is_overlay (osect) && !section_is_mapped (osect))
1435 continue;
1436
1437 if (obj_section_addr (osect) <= addr
1438 && addr < obj_section_endaddr (osect))
1439 return 1;
1440 }
1441 return 0;
1442 }
1443
1444 int
1445 shared_objfile_contains_address_p (struct program_space *pspace,
1446 CORE_ADDR address)
1447 {
1448 for (objfile *objfile : pspace->objfiles ())
1449 {
1450 if ((objfile->flags & OBJF_SHARED) != 0
1451 && is_addr_in_objfile (address, objfile))
1452 return 1;
1453 }
1454
1455 return 0;
1456 }
1457
1458 /* The default implementation for the "iterate_over_objfiles_in_search_order"
1459 gdbarch method. It is equivalent to use the objfiles iterable,
1460 searching the objfiles in the order they are stored internally,
1461 ignoring CURRENT_OBJFILE.
1462
1463 On most platorms, it should be close enough to doing the best
1464 we can without some knowledge specific to the architecture. */
1465
1466 void
1467 default_iterate_over_objfiles_in_search_order
1468 (struct gdbarch *gdbarch,
1469 iterate_over_objfiles_in_search_order_cb_ftype *cb,
1470 void *cb_data, struct objfile *current_objfile)
1471 {
1472 int stop = 0;
1473
1474 for (objfile *objfile : current_program_space->objfiles ())
1475 {
1476 stop = cb (objfile, cb_data);
1477 if (stop)
1478 return;
1479 }
1480 }
1481
1482 /* See objfiles.h. */
1483
1484 const char *
1485 objfile_name (const struct objfile *objfile)
1486 {
1487 if (objfile->obfd != NULL)
1488 return bfd_get_filename (objfile->obfd);
1489
1490 return objfile->original_name;
1491 }
1492
1493 /* See objfiles.h. */
1494
1495 const char *
1496 objfile_filename (const struct objfile *objfile)
1497 {
1498 if (objfile->obfd != NULL)
1499 return bfd_get_filename (objfile->obfd);
1500
1501 return NULL;
1502 }
1503
1504 /* See objfiles.h. */
1505
1506 const char *
1507 objfile_debug_name (const struct objfile *objfile)
1508 {
1509 return lbasename (objfile->original_name);
1510 }
1511
1512 /* See objfiles.h. */
1513
1514 const char *
1515 objfile_flavour_name (struct objfile *objfile)
1516 {
1517 if (objfile->obfd != NULL)
1518 return bfd_flavour_name (bfd_get_flavour (objfile->obfd));
1519 return NULL;
1520 }
1521
1522 void
1523 _initialize_objfiles (void)
1524 {
1525 objfiles_pspace_data
1526 = register_program_space_data_with_cleanup (NULL,
1527 objfiles_pspace_data_cleanup);
1528
1529 objfiles_bfd_data = register_bfd_data_with_cleanup (NULL,
1530 objfile_bfd_data_free);
1531 }
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