Coverage Report

Created: 2026-10-02 09:53

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/binutils-gdb/bfd/syms.c
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Source
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/* Generic symbol-table support for the BFD library.
2
   Copyright (C) 1990-2026 Free Software Foundation, Inc.
3
   Written by Cygnus Support.
4
5
   This file is part of BFD, the Binary File Descriptor library.
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, write to the Free Software
19
   Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
20
   MA 02110-1301, USA.  */
21
22
/*
23
SECTION
24
  Symbols
25
26
  BFD tries to maintain as much symbol information as it can when
27
  it moves information from file to file. BFD passes information
28
  to applications though the <<asymbol>> structure. When the
29
  application requests the symbol table, BFD reads the table in
30
  the native form and translates parts of it into the internal
31
  format. To maintain more than the information passed to
32
  applications, some targets keep some information ``behind the
33
  scenes'' in a structure only the particular back end knows
34
  about. For example, the coff back end keeps the original
35
  symbol table structure as well as the canonical structure when
36
  a BFD is read in. On output, the coff back end can reconstruct
37
  the output symbol table so that no information is lost, even
38
  information unique to coff which BFD doesn't know or
39
  understand. If a coff symbol table were read, but were written
40
  through an a.out back end, all the coff specific information
41
  would be lost. The symbol table of a BFD
42
  is not necessarily read in until a canonicalize request is
43
  made. Then the BFD back end fills in a table provided by the
44
  application with pointers to the canonical information.  To
45
  output symbols, the application provides BFD with a table of
46
  pointers to pointers to <<asymbol>>s. This allows applications
47
  like the linker to output a symbol as it was read, since the ``behind
48
  the scenes'' information will be still available.
49
@menu
50
@* Reading Symbols::
51
@* Writing Symbols::
52
@* Mini Symbols::
53
@* typedef asymbol::
54
@* symbol handling functions::
55
@end menu
56
57
INODE
58
Reading Symbols, Writing Symbols, Symbols, Symbols
59
SUBSECTION
60
  Reading symbols
61
62
  There are two stages to reading a symbol table from a BFD:
63
  allocating storage, and the actual reading process. This is an
64
  excerpt from an application which reads the symbol table:
65
66
|         long storage_needed;
67
|         asymbol **symbol_table;
68
|         long number_of_symbols;
69
|         long i;
70
|
71
|         storage_needed = bfd_get_symtab_upper_bound (abfd);
72
|
73
|         if (storage_needed < 0)
74
|           FAIL
75
|
76
|         if (storage_needed == 0)
77
|           return;
78
|
79
|         symbol_table = xmalloc (storage_needed);
80
|           ...
81
|         number_of_symbols =
82
|            bfd_canonicalize_symtab (abfd, symbol_table);
83
|
84
|         if (number_of_symbols < 0)
85
|           FAIL
86
|
87
|         for (i = 0; i < number_of_symbols; i++)
88
|           process_symbol (symbol_table[i]);
89
90
  All storage for the symbols themselves is in an objalloc
91
  connected to the BFD; it is freed when the BFD is closed.
92
93
INODE
94
Writing Symbols, Mini Symbols, Reading Symbols, Symbols
95
SUBSECTION
96
  Writing symbols
97
98
  Writing of a symbol table is automatic when a BFD open for
99
  writing is closed. The application attaches a vector of
100
  pointers to pointers to symbols to the BFD being written, and
101
  fills in the symbol count. The close and cleanup code reads
102
  through the table provided and performs all the necessary
103
  operations. The BFD output code must always be provided with an
104
  ``owned'' symbol: one which has come from another BFD, or one
105
  which has been created using <<bfd_make_empty_symbol>>.  Here is an
106
  example showing the creation of a symbol table with only one element:
107
108
|       #include "sysdep.h"
109
|       #include "bfd.h"
110
|       int main (void)
111
|       {
112
|         bfd *abfd;
113
|         asymbol *ptrs[2];
114
|         asymbol *new;
115
|
116
|         abfd = bfd_openw ("foo","a.out-sunos-big");
117
|         bfd_set_format (abfd, bfd_object);
118
|         new = bfd_make_empty_symbol (abfd);
119
|         new->name = "dummy_symbol";
120
|         new->section = bfd_make_section_old_way (abfd, ".text");
121
|         new->flags = BSF_GLOBAL;
122
|         new->value = 0x12345;
123
|
124
|         ptrs[0] = new;
125
|         ptrs[1] = 0;
126
|
127
|         bfd_set_symtab (abfd, ptrs, 1);
128
|         bfd_close (abfd);
129
|         return 0;
130
|       }
131
|
132
|       ./makesym
133
|       nm foo
134
|       00012345 A dummy_symbol
135
136
  Many formats cannot represent arbitrary symbol information; for
137
  instance, the <<a.out>> object format does not allow an
138
  arbitrary number of sections. A symbol pointing to a section
139
  which is not one  of <<.text>>, <<.data>> or <<.bss>> cannot
140
  be described.
141
142
INODE
143
Mini Symbols, typedef asymbol, Writing Symbols, Symbols
144
SUBSECTION
145
  Mini Symbols
146
147
  Mini symbols provide read-only access to the symbol table.
148
  They use less memory space, but require more time to access.
149
  They can be useful for tools like nm or objdump, which may
150
  have to handle symbol tables of extremely large executables.
151
152
  The <<bfd_read_minisymbols>> function will read the symbols
153
  into memory in an internal form.  It will return a <<void *>>
154
  pointer to a block of memory, a symbol count, and the size of
155
  each symbol.  The pointer is allocated using <<malloc>>, and
156
  should be freed by the caller when it is no longer needed.
157
158
  The function <<bfd_minisymbol_to_symbol>> will take a pointer
159
  to a minisymbol, and a pointer to a structure returned by
160
  <<bfd_make_empty_symbol>>, and return a <<asymbol>> structure.
161
  The return value may or may not be the same as the value from
162
  <<bfd_make_empty_symbol>> which was passed in.
163
164
*/
165
166
/*
167
DOCDD
168
INODE
169
typedef asymbol, symbol handling functions, Mini Symbols, Symbols
170
171
SUBSECTION
172
  typedef asymbol
173
174
  An <<asymbol>> has the form:
175
176
CODE_FRAGMENT
177
.typedef struct bfd_symbol
178
.{
179
.  {* A pointer to the BFD which owns the symbol. This information
180
.     is necessary so that a back end can work out what additional
181
.     information (invisible to the application writer) is carried
182
.     with the symbol.
183
.
184
.     This field is *almost* redundant, since you can use section->owner
185
.     instead, except that some symbols point to the global sections
186
.     bfd_{abs,com,und}_section.  This could be fixed by making
187
.     these globals be per-bfd (or per-target-flavor).  FIXME.  *}
188
.  struct bfd *the_bfd; {* Use bfd_asymbol_bfd(sym) to access this field.  *}
189
.
190
.  {* The text of the symbol. The name is left alone, and not copied; the
191
.     application may not alter it.  *}
192
.  const char *name;
193
.
194
.  {* The value of the symbol.  This really should be a union of a
195
.     numeric value with a pointer, since some flags indicate that
196
.     a pointer to another symbol is stored here.  *}
197
.  symvalue value;
198
.
199
.  {* Attributes of a symbol.  *}
200
.#define BSF_NO_FLAGS            0
201
.
202
.  {* The symbol has local scope; <<static>> in <<C>>. The value
203
.     is the offset into the section of the data.  *}
204
.#define BSF_LOCAL               (1 << 0)
205
.
206
.  {* The symbol has global scope; initialized data in <<C>>. The
207
.     value is the offset into the section of the data.  *}
208
.#define BSF_GLOBAL              (1 << 1)
209
.
210
.  {* The symbol has global scope and is exported. The value is
211
.     the offset into the section of the data.  *}
212
.#define BSF_EXPORT              BSF_GLOBAL {* No real difference.  *}
213
.
214
.  {* A normal C symbol would be one of:
215
.     <<BSF_LOCAL>>, <<BSF_UNDEFINED>> or <<BSF_GLOBAL>>.  *}
216
.
217
.  {* The symbol is a debugging record. The value has an arbitrary
218
.     meaning, unless BSF_DEBUGGING_RELOC is also set.  *}
219
.#define BSF_DEBUGGING           (1 << 2)
220
.
221
.  {* The symbol denotes a function entry point.  Used in ELF,
222
.     perhaps others someday.  *}
223
.#define BSF_FUNCTION            (1 << 3)
224
.
225
.  {* Used by the linker.  *}
226
.#define BSF_KEEP                (1 << 5)
227
.
228
.  {* An ELF common symbol.  *}
229
.#define BSF_ELF_COMMON          (1 << 6)
230
.
231
.  {* A weak global symbol, overridable without warnings by
232
.     a regular global symbol of the same name.  *}
233
.#define BSF_WEAK                (1 << 7)
234
.
235
.  {* This symbol was created to point to a section, e.g. ELF's
236
.     STT_SECTION symbols.  *}
237
.#define BSF_SECTION_SYM         (1 << 8)
238
.
239
.  {* The symbol used to be a common symbol, but now it is
240
.     allocated.  *}
241
.#define BSF_OLD_COMMON          (1 << 9)
242
.
243
.  {* In some files the type of a symbol sometimes alters its
244
.     location in an output file - ie in coff a <<ISFCN>> symbol
245
.     which is also <<C_EXT>> symbol appears where it was
246
.     declared and not at the end of a section.  This bit is set
247
.     by the target BFD part to convey this information.  *}
248
.#define BSF_NOT_AT_END          (1 << 10)
249
.
250
.  {* Signal that the symbol is the label of constructor section.  *}
251
.#define BSF_CONSTRUCTOR         (1 << 11)
252
.
253
.  {* Signal that the symbol is a warning symbol.  The name is a
254
.     warning.  The name of the next symbol is the one to warn about;
255
.     if a reference is made to a symbol with the same name as the next
256
.     symbol, a warning is issued by the linker.  *}
257
.#define BSF_WARNING             (1 << 12)
258
.
259
.  {* Signal that the symbol is indirect.  This symbol is an indirect
260
.     pointer to the symbol with the same name as the next symbol.  *}
261
.#define BSF_INDIRECT            (1 << 13)
262
.
263
.  {* BSF_FILE marks symbols that contain a file name.  This is used
264
.     for ELF STT_FILE symbols.  *}
265
.#define BSF_FILE                (1 << 14)
266
.
267
.  {* Symbol is from dynamic linking information.  *}
268
.#define BSF_DYNAMIC             (1 << 15)
269
.
270
.  {* The symbol denotes a data object.  Used in ELF, and perhaps
271
.     others someday.  *}
272
.#define BSF_OBJECT              (1 << 16)
273
.
274
.  {* This symbol is a debugging symbol.  The value is the offset
275
.     into the section of the data.  BSF_DEBUGGING should be set
276
.     as well.  *}
277
.#define BSF_DEBUGGING_RELOC     (1 << 17)
278
.
279
.  {* This symbol is thread local.  Used in ELF.  *}
280
.#define BSF_THREAD_LOCAL        (1 << 18)
281
.
282
.  {* This symbol represents a complex relocation expression,
283
.     with the expression tree serialized in the symbol name.  *}
284
.#define BSF_RELC                (1 << 19)
285
.
286
.  {* This symbol represents a signed complex relocation expression,
287
.     with the expression tree serialized in the symbol name.  *}
288
.#define BSF_SRELC               (1 << 20)
289
.
290
.  {* This symbol was created by bfd_get_synthetic_symtab.  *}
291
.#define BSF_SYNTHETIC           (1 << 21)
292
.
293
.  {* This symbol is an indirect code object.  Unrelated to BSF_INDIRECT.
294
.     The dynamic linker will compute the value of this symbol by
295
.     calling the function that it points to.  BSF_FUNCTION must
296
.     also be also set.  *}
297
.#define BSF_GNU_INDIRECT_FUNCTION (1 << 22)
298
.  {* This symbol is a globally unique data object.  The dynamic linker
299
.     will make sure that in the entire process there is just one symbol
300
.     with this name and type in use.  BSF_OBJECT must also be set.  *}
301
.#define BSF_GNU_UNIQUE          (1 << 23)
302
.
303
.  {* This section symbol should be included in the symbol table.  *}
304
.#define BSF_SECTION_SYM_USED    (1 << 24)
305
.
306
.  {* This symbol underwent section merge resolution.  *}
307
.#define BSF_MERGE_RESOLVED      (1 << 25)
308
.
309
.  flagword flags;
310
.
311
.  {* A pointer to the section to which this symbol is
312
.     relative.  This will always be non NULL, there are special
313
.     sections for undefined and absolute symbols.  *}
314
.  struct bfd_section *section;
315
.
316
.  {* Back end special data.  *}
317
.  union
318
.    {
319
.      void *p;
320
.      bfd_vma i;
321
.    }
322
.  udata;
323
.}
324
.asymbol;
325
.
326
327
EXTERNAL
328
.typedef enum bfd_print_symbol
329
.{
330
.  bfd_print_symbol_name,
331
.  bfd_print_symbol_more,
332
.  bfd_print_symbol_all
333
.} bfd_print_symbol_type;
334
.
335
.{* Information about a symbol that nm needs.  *}
336
.
337
.typedef struct _symbol_info
338
.{
339
.  symvalue value;
340
.  const char *name;    {* Symbol name.  *}
341
.  const char *stab_name; {* String for stab type.  *}
342
.  unsigned char stab_type; {* Stab type.  *}
343
.  char stab_other;   {* Stab other.  *}
344
.  short stab_desc;   {* Stab desc.  *}
345
.  char type;
346
.} symbol_info;
347
.
348
.{* An empty string that will not match the address of any other
349
.   symbol name, even unnamed local symbols which will also have empty
350
.   string names.  This can be used to flag a symbol as corrupt if its
351
.   name uses an out of range string table index.  *}
352
.extern const char bfd_symbol_error_name[];
353
*/
354
355
#include "sysdep.h"
356
#include "bfd.h"
357
#include "libbfd.h"
358
#include "safe-ctype.h"
359
#include "bfdlink.h"
360
#include "aout/stab_gnu.h"
361
362
const char bfd_symbol_error_name[] = { 0 };
363
364
/*
365
DOCDD
366
INODE
367
symbol handling functions,  , typedef asymbol, Symbols
368
SUBSECTION
369
  Symbol handling functions
370
*/
371
372
/*
373
FUNCTION
374
  bfd_get_symtab_upper_bound
375
376
DESCRIPTION
377
  Return the number of bytes required to store a vector of pointers
378
  to <<asymbols>> for all the symbols in the BFD @var{abfd},
379
  including a terminal NULL pointer. If there are no symbols in
380
  the BFD, then return 0.  If an error occurs, return -1.
381
382
.#define bfd_get_symtab_upper_bound(abfd) \
383
. BFD_SEND (abfd, _bfd_get_symtab_upper_bound, (abfd))
384
.
385
*/
386
387
/*
388
FUNCTION
389
  bfd_is_local_label
390
391
SYNOPSIS
392
  bool bfd_is_local_label (bfd *abfd, asymbol *sym);
393
394
DESCRIPTION
395
  Return TRUE if the given symbol @var{sym} in the BFD @var{abfd} is
396
  a compiler generated local label, else return FALSE.
397
*/
398
399
bool
400
bfd_is_local_label (bfd *abfd, asymbol *sym)
401
0
{
402
  /* The BSF_SECTION_SYM check is needed for IA-64, where every label that
403
     starts with '.' is local.  This would accidentally catch section names
404
     if we didn't reject them here.  */
405
0
  if ((sym->flags & (BSF_GLOBAL | BSF_WEAK | BSF_FILE | BSF_SECTION_SYM)) != 0)
406
0
    return false;
407
0
  if (sym->name == NULL || sym->name == bfd_symbol_error_name)
408
0
    return false;
409
0
  return bfd_is_local_label_name (abfd, sym->name);
410
0
}
411
412
/*
413
FUNCTION
414
  bfd_is_local_label_name
415
416
SYNOPSIS
417
  bool bfd_is_local_label_name (bfd *abfd, const char *name);
418
419
DESCRIPTION
420
  Return TRUE if a symbol with the name @var{name} in the BFD
421
  @var{abfd} is a compiler generated local label, else return
422
  FALSE.  This just checks whether the name has the form of a
423
  local label.
424
425
.#define bfd_is_local_label_name(abfd, name) \
426
. BFD_SEND (abfd, _bfd_is_local_label_name, (abfd, name))
427
.
428
*/
429
430
/*
431
FUNCTION
432
  bfd_is_target_special_symbol
433
434
SYNOPSIS
435
  bool bfd_is_target_special_symbol (bfd *abfd, asymbol *sym);
436
437
DESCRIPTION
438
  Return TRUE iff a symbol @var{sym} in the BFD @var{abfd} is something
439
  special to the particular target represented by the BFD.  Such symbols
440
  should normally not be mentioned to the user.
441
442
.#define bfd_is_target_special_symbol(abfd, sym) \
443
. BFD_SEND (abfd, _bfd_is_target_special_symbol, (abfd, sym))
444
.
445
*/
446
447
/*
448
FUNCTION
449
  bfd_canonicalize_symtab
450
451
DESCRIPTION
452
  Read the symbols from the BFD @var{abfd}, and fills in
453
  the vector @var{location} with pointers to the symbols and
454
  a trailing NULL.
455
  Return the actual number of symbol pointers, not
456
  including the NULL.
457
458
.#define bfd_canonicalize_symtab(abfd, location) \
459
. BFD_SEND (abfd, _bfd_canonicalize_symtab, (abfd, location))
460
.
461
*/
462
463
/*
464
FUNCTION
465
  bfd_set_symtab
466
467
SYNOPSIS
468
  bool bfd_set_symtab
469
    (bfd *abfd, asymbol **location, unsigned int count);
470
471
DESCRIPTION
472
  Arrange that when the output BFD @var{abfd} is closed,
473
  the table @var{location} of @var{count} pointers to symbols
474
  will be written.
475
*/
476
477
bool
478
bfd_set_symtab (bfd *abfd, asymbol **location, unsigned int symcount)
479
1.87k
{
480
1.87k
  if (abfd->format != bfd_object || bfd_read_p (abfd))
481
12
    {
482
12
      bfd_set_error (bfd_error_invalid_operation);
483
12
      return false;
484
12
    }
485
486
1.86k
  abfd->outsymbols = location;
487
1.86k
  abfd->symcount = symcount;
488
1.86k
  return true;
489
1.87k
}
490
491
/*
492
FUNCTION
493
  bfd_print_symbol_vandf
494
495
SYNOPSIS
496
  void bfd_print_symbol_vandf (bfd *abfd, void *file, asymbol *symbol);
497
498
DESCRIPTION
499
  Print the value and flags of the @var{symbol} supplied to the
500
  stream @var{file}.
501
*/
502
void
503
bfd_print_symbol_vandf (bfd *abfd, void *arg, asymbol *symbol)
504
0
{
505
0
  FILE *file = (FILE *) arg;
506
507
0
  flagword type = symbol->flags;
508
509
0
  if (symbol->section != NULL)
510
0
    bfd_fprintf_vma (abfd, file, symbol->value + symbol->section->vma);
511
0
  else
512
0
    bfd_fprintf_vma (abfd, file, symbol->value);
513
514
  /* This presumes that a symbol can not be both BSF_DEBUGGING and
515
     BSF_DYNAMIC, nor more than one of BSF_FUNCTION, BSF_FILE, and
516
     BSF_OBJECT.  */
517
0
  fprintf (file, " %c%c%c%c%c%c%c",
518
0
     ((type & BSF_LOCAL)
519
0
      ? (type & BSF_GLOBAL) ? '!' : 'l'
520
0
      : (type & BSF_GLOBAL) ? 'g'
521
0
      : (type & BSF_GNU_UNIQUE) ? 'u' : ' '),
522
0
     (type & BSF_WEAK) ? 'w' : ' ',
523
0
     (type & BSF_CONSTRUCTOR) ? 'C' : ' ',
524
0
     (type & BSF_WARNING) ? 'W' : ' ',
525
0
     (type & BSF_INDIRECT) ? 'I' : (type & BSF_GNU_INDIRECT_FUNCTION) ? 'i' : ' ',
526
0
     (type & BSF_DEBUGGING) ? 'd' : (type & BSF_DYNAMIC) ? 'D' : ' ',
527
0
     ((type & BSF_FUNCTION)
528
0
      ? 'F'
529
0
      : ((type & BSF_FILE)
530
0
         ? 'f'
531
0
         : ((type & BSF_OBJECT) ? 'O' : ' '))));
532
0
}
533
534
/*
535
FUNCTION
536
  bfd_make_empty_symbol
537
538
DESCRIPTION
539
  Create a new <<asymbol>> structure for the BFD @var{abfd}
540
  and return a pointer to it.
541
542
  This routine is necessary because each back end has private
543
  information surrounding the <<asymbol>>. Building your own
544
  <<asymbol>> and pointing to it will not create the private
545
  information, and will cause problems later on.
546
547
.#define bfd_make_empty_symbol(abfd) \
548
. BFD_SEND (abfd, _bfd_make_empty_symbol, (abfd))
549
.
550
*/
551
552
/*
553
FUNCTION
554
  _bfd_generic_make_empty_symbol
555
556
SYNOPSIS
557
  asymbol *_bfd_generic_make_empty_symbol (bfd *);
558
559
DESCRIPTION
560
  Create a new <<asymbol>> structure for the BFD @var{abfd}
561
  and return a pointer to it.  Used by core file routines,
562
  binary back-end and anywhere else where no private info
563
  is needed.
564
*/
565
566
asymbol *
567
_bfd_generic_make_empty_symbol (bfd *abfd)
568
67.2k
{
569
67.2k
  size_t amt = sizeof (asymbol);
570
67.2k
  asymbol *new_symbol = (asymbol *) bfd_zalloc (abfd, amt);
571
67.2k
  if (new_symbol)
572
67.2k
    new_symbol->the_bfd = abfd;
573
67.2k
  return new_symbol;
574
67.2k
}
575
576
/*
577
FUNCTION
578
  bfd_make_debug_symbol
579
580
DESCRIPTION
581
  Create a new <<asymbol>> structure for the BFD @var{abfd},
582
  to be used as a debugging symbol.
583
584
.#define bfd_make_debug_symbol(abfd) \
585
. BFD_SEND (abfd, _bfd_make_debug_symbol, (abfd))
586
.
587
*/
588
589
struct section_to_type
590
{
591
  const char *section;
592
  char type;
593
};
594
595
/* Map special section names to POSIX/BSD single-character symbol types.
596
   This table is probably incomplete.  It is sorted for convenience of
597
   adding entries.  Since it is so short, a linear search is used.  */
598
static const struct section_to_type stt[] =
599
{
600
  {".didat", 'i'},    /* MSVC's .didat (delay import) section */
601
  {".drectve", 'i'},    /* MSVC's .drective section */
602
  {".edata", 'e'},    /* MSVC's .edata (export) section */
603
  {".idata", 'i'},    /* MSVC's .idata (import) section */
604
  {".pdata", 'p'},    /* MSVC's .pdata (stack unwind) section */
605
  {0, 0}
606
};
607
608
/* Return the single-character symbol type corresponding to
609
   section S, or '?' for an unknown COFF section.
610
611
   Check for leading strings which match, followed by a number, '.',
612
   or '$' so .idata5 matches the .idata entry.  */
613
614
static char
615
coff_section_type (const char *s)
616
18.8k
{
617
18.8k
  const struct section_to_type *t;
618
619
110k
  for (t = &stt[0]; t->section; t++)
620
92.6k
    {
621
92.6k
      size_t len = strlen (t->section);
622
92.6k
      if (strncmp (s, t->section, len) == 0
623
1.30k
    && memchr (".$0123456789", s[len], 13) != 0)
624
1.09k
  return t->type;
625
92.6k
    }
626
627
17.7k
  return '?';
628
18.8k
}
629
630
/* Return the single-character symbol type corresponding to section
631
   SECTION, or '?' for an unknown section.  This uses section flags to
632
   identify sections.
633
634
   FIXME These types are unhandled: e, i, p.  If we handled these also,
635
   we could perhaps obsolete coff_section_type.  */
636
637
static char
638
decode_section_type (const struct bfd_section *section)
639
17.7k
{
640
17.7k
  if (section->flags & SEC_CODE)
641
8.25k
    return 't';
642
9.51k
  if (section->flags & SEC_DATA)
643
6.33k
    {
644
6.33k
      if (section->flags & SEC_READONLY)
645
1.68k
  return 'r';
646
4.65k
      else if (section->flags & SEC_SMALL_DATA)
647
1
  return 'g';
648
4.65k
      else
649
4.65k
  return 'd';
650
6.33k
    }
651
3.18k
  if ((section->flags & SEC_HAS_CONTENTS) == 0)
652
1.59k
    {
653
1.59k
      if (section->flags & SEC_SMALL_DATA)
654
2
  return 's';
655
1.59k
      else
656
1.59k
  return 'b';
657
1.59k
    }
658
1.58k
  if (section->flags & SEC_DEBUGGING)
659
100
    return 'N';
660
1.48k
  if ((section->flags & SEC_HAS_CONTENTS) && (section->flags & SEC_READONLY))
661
727
    return 'n';
662
663
760
  return '?';
664
1.48k
}
665
666
/*
667
FUNCTION
668
  bfd_decode_symclass
669
670
SYNOPSIS
671
  int bfd_decode_symclass (asymbol *symbol);
672
673
DESCRIPTION
674
  Return a character corresponding to the symbol
675
  class of @var{symbol}, or '?' for an unknown class.
676
*/
677
int
678
bfd_decode_symclass (asymbol *symbol)
679
79.0k
{
680
79.0k
  char c;
681
682
  /* Paranoia...  */
683
79.0k
  if (symbol == NULL || symbol->section == NULL)
684
0
    return '?';
685
686
79.0k
  if (symbol->section && bfd_is_com_section (symbol->section))
687
802
    {
688
802
      if (symbol->section->flags & SEC_SMALL_DATA)
689
97
  return 'c';
690
705
      else
691
705
  return 'C';
692
802
    }
693
78.2k
  if (bfd_is_und_section (symbol->section))
694
38.6k
    {
695
38.6k
      if (symbol->flags & BSF_WEAK)
696
2.69k
  {
697
    /* If weak, determine if it's specifically an object
698
       or non-object weak.  */
699
2.69k
    if (symbol->flags & BSF_OBJECT)
700
163
      return 'v';
701
2.53k
    else
702
2.53k
      return 'w';
703
2.69k
  }
704
35.9k
      else
705
35.9k
  return 'U';
706
38.6k
    }
707
39.6k
  if (bfd_is_ind_section (symbol->section))
708
436
    return 'I';
709
39.2k
  if (symbol->flags & BSF_GNU_INDIRECT_FUNCTION)
710
383
    return 'i';
711
38.8k
  if (symbol->flags & BSF_WEAK)
712
1.11k
    {
713
      /* If weak, determine if it's specifically an object
714
   or non-object weak.  */
715
1.11k
      if (symbol->flags & BSF_OBJECT)
716
38
  return 'V';
717
1.07k
      else
718
1.07k
  return 'W';
719
1.11k
    }
720
37.7k
  if (symbol->flags & BSF_GNU_UNIQUE)
721
268
    return 'u';
722
37.4k
  if (!(symbol->flags & (BSF_GLOBAL | BSF_LOCAL)))
723
2.81k
    return '?';
724
725
34.6k
  if (bfd_is_abs_section (symbol->section))
726
15.7k
    c = 'a';
727
18.8k
  else if (symbol->section)
728
18.8k
    {
729
18.8k
      c = coff_section_type (symbol->section->name);
730
18.8k
      if (c == '?')
731
17.7k
  c = decode_section_type (symbol->section);
732
18.8k
    }
733
0
  else
734
0
    return '?';
735
34.6k
  if (symbol->flags & BSF_GLOBAL)
736
13.2k
    c = TOUPPER (c);
737
34.6k
  return c;
738
739
  /* We don't have to handle these cases just yet, but we will soon:
740
     N_SETV: 'v';
741
     N_SETA: 'l';
742
     N_SETT: 'x';
743
     N_SETD: 'z';
744
     N_SETB: 's';
745
     N_INDR: 'i';
746
     */
747
34.6k
}
748
749
/*
750
FUNCTION
751
  bfd_is_undefined_symclass
752
753
SYNOPSIS
754
  bool bfd_is_undefined_symclass (int symclass);
755
756
DESCRIPTION
757
  Returns non-zero if the class symbol returned by
758
  bfd_decode_symclass represents an undefined symbol.
759
  Returns zero otherwise.
760
*/
761
762
bool
763
bfd_is_undefined_symclass (int symclass)
764
133k
{
765
133k
  return symclass == 'U' || symclass == 'w' || symclass == 'v';
766
133k
}
767
768
/*
769
FUNCTION
770
  bfd_symbol_info
771
772
SYNOPSIS
773
  void bfd_symbol_info (asymbol *symbol, symbol_info *ret);
774
775
DESCRIPTION
776
  Fill in the basic info about symbol that nm needs.
777
  Additional info may be added by the back-ends after
778
  calling this function.
779
*/
780
781
void
782
bfd_symbol_info (asymbol *symbol, symbol_info *ret)
783
67.9k
{
784
67.9k
  ret->type = bfd_decode_symclass (symbol);
785
786
67.9k
  if (bfd_is_undefined_symclass (ret->type))
787
34.2k
    ret->value = 0;
788
33.6k
  else
789
33.6k
    ret->value = symbol->value + symbol->section->vma;
790
791
67.9k
  ret->name = (symbol->name != bfd_symbol_error_name
792
67.9k
         ? symbol->name : _("<corrupt>"));
793
67.9k
}
794
795
/*
796
FUNCTION
797
  bfd_copy_private_symbol_data
798
799
DESCRIPTION
800
  Copy private symbol information from @var{isym} in the BFD
801
  @var{ibfd} to the symbol @var{osym} in the BFD @var{obfd}.
802
  Return <<TRUE>> on success, <<FALSE>> on error.  Possible error
803
  returns are:
804
805
  o <<bfd_error_no_memory>> -
806
  Not enough memory exists to create private data for @var{osec}.
807
808
.#define bfd_copy_private_symbol_data(ibfd, isymbol, obfd, osymbol) \
809
. BFD_SEND (obfd, _bfd_copy_private_symbol_data, \
810
.     (ibfd, isymbol, obfd, osymbol))
811
.
812
*/
813
814
/* The generic version of the function which returns mini symbols.
815
   This is used when the backend does not provide a more efficient
816
   version.  It just uses BFD asymbol structures as mini symbols.  */
817
818
long
819
_bfd_generic_read_minisymbols (bfd *abfd,
820
             bool dynamic,
821
             void **minisymsp,
822
             unsigned int *sizep)
823
19.6k
{
824
19.6k
  long storage;
825
19.6k
  asymbol **syms = NULL;
826
19.6k
  long symcount;
827
828
19.6k
  if (dynamic)
829
0
    storage = bfd_get_dynamic_symtab_upper_bound (abfd);
830
19.6k
  else
831
19.6k
    storage = bfd_get_symtab_upper_bound (abfd);
832
19.6k
  if (storage < 0)
833
12.7k
    goto error_return;
834
6.91k
  if (storage == 0)
835
22
    return 0;
836
837
6.88k
  syms = (asymbol **) bfd_malloc (storage);
838
6.88k
  if (syms == NULL)
839
0
    goto error_return;
840
841
6.88k
  if (dynamic)
842
0
    symcount = bfd_canonicalize_dynamic_symtab (abfd, syms);
843
6.88k
  else
844
6.88k
    symcount = bfd_canonicalize_symtab (abfd, syms);
845
6.88k
  if (symcount < 0)
846
253
    goto error_return;
847
848
6.63k
  if (symcount == 0)
849
    /* We return 0 above when storage is 0.  Exit in the same state
850
       here, so as to not complicate callers with having to deal with
851
       freeing memory for zero symcount.  */
852
153
    free (syms);
853
6.48k
  else
854
6.48k
    {
855
6.48k
      *minisymsp = syms;
856
6.48k
      *sizep = sizeof (asymbol *);
857
6.48k
    }
858
6.63k
  return symcount;
859
860
12.9k
 error_return:
861
12.9k
  free (syms);
862
12.9k
  return -1;
863
6.88k
}
864
865
/* The generic version of the function which converts a minisymbol to
866
   an asymbol.  We don't worry about the sym argument we are passed;
867
   we just return the asymbol the minisymbol points to.  */
868
869
asymbol *
870
_bfd_generic_minisymbol_to_symbol (bfd *abfd ATTRIBUTE_UNUSED,
871
           bool dynamic ATTRIBUTE_UNUSED,
872
           const void *minisym,
873
           asymbol *sym ATTRIBUTE_UNUSED)
874
820k
{
875
820k
  return *(asymbol **) minisym;
876
820k
}
877
878
/* Look through stabs debugging information in .stab and .stabstr
879
   sections to find the source file and line closest to a desired
880
   location.  This is used by COFF and ELF targets.  It sets *pfound
881
   to TRUE if it finds some information.  The *pinfo field is used to
882
   pass cached information in and out of this routine; this first time
883
   the routine is called for a BFD, *pinfo should be NULL.  The value
884
   placed in *pinfo should be saved with the BFD, and passed back each
885
   time this function is called.  */
886
887
/* We use a cache by default.  */
888
889
#define ENABLE_CACHING
890
891
/* We keep an array of indexentry structures to record where in the
892
   stabs section we should look to find line number information for a
893
   particular address.  */
894
895
struct indexentry
896
{
897
  bfd_vma val;
898
  bfd_byte *stab;
899
  bfd_byte *str;
900
  char *directory_name;
901
  char *file_name;
902
  char *function_name;
903
  int idx;
904
};
905
906
/* Compare two indexentry structures.  This is called via qsort.  */
907
908
static int
909
cmpindexentry (const void *a, const void *b)
910
9.36k
{
911
9.36k
  const struct indexentry *contestantA = (const struct indexentry *) a;
912
9.36k
  const struct indexentry *contestantB = (const struct indexentry *) b;
913
914
9.36k
  if (contestantA->val < contestantB->val)
915
1.79k
    return -1;
916
7.56k
  if (contestantA->val > contestantB->val)
917
3.55k
    return 1;
918
4.01k
  return contestantA->idx - contestantB->idx;
919
7.56k
}
920
921
/* A pointer to this structure is stored in *pinfo.  */
922
923
struct stab_find_info
924
{
925
  /* The .stab section.  */
926
  asection *stabsec;
927
  /* The .stabstr section.  */
928
  asection *strsec;
929
  /* The contents of the .stab section.  */
930
  bfd_byte *stabs;
931
  /* The contents of the .stabstr section.  */
932
  bfd_byte *strs;
933
934
  /* A table that indexes stabs by memory address.  */
935
  struct indexentry *indextable;
936
  /* The number of entries in indextable.  */
937
  int indextablesize;
938
939
#ifdef ENABLE_CACHING
940
  /* Cached values to restart quickly.  */
941
  struct indexentry *cached_indexentry;
942
  bfd_vma cached_offset;
943
  bfd_byte *cached_stab;
944
  char *cached_file_name;
945
#endif
946
947
  /* Saved ptr to malloc'ed filename.  */
948
  char *filename;
949
};
950
951
bool
952
_bfd_stab_section_find_nearest_line (bfd *abfd,
953
             asymbol **symbols,
954
             asection *section,
955
             bfd_vma offset,
956
             bool *pfound,
957
             const char **pfilename,
958
             const char **pfnname,
959
             unsigned int *pline,
960
             void **pinfo)
961
59.5k
{
962
59.5k
  struct stab_find_info *info;
963
59.5k
  bfd_size_type stabsize, strsize;
964
59.5k
  bfd_byte *stab, *str;
965
59.5k
  bfd_byte *nul_fun, *nul_str;
966
59.5k
  bfd_size_type stroff;
967
59.5k
  struct indexentry *indexentry;
968
59.5k
  char *file_name;
969
59.5k
  char *directory_name;
970
59.5k
  bool saw_line, saw_func;
971
972
59.5k
  *pfound = false;
973
59.5k
  *pfilename = bfd_get_filename (abfd);
974
59.5k
  *pfnname = NULL;
975
59.5k
  *pline = 0;
976
977
  /* Stabs entries use a 12 byte format:
978
       4 byte string table index
979
       1 byte stab type
980
       1 byte stab other field
981
       2 byte stab desc field
982
       4 byte stab value
983
     FIXME: This will have to change for a 64 bit object format.
984
985
     The stabs symbols are divided into compilation units.  For the
986
     first entry in each unit, the type of 0, the value is the length
987
     of the string table for this unit, and the desc field is the
988
     number of stabs symbols for this unit.  */
989
990
59.5k
#define STRDXOFF (0)
991
82.5k
#define TYPEOFF (4)
992
59.5k
#define OTHEROFF (5)
993
59.5k
#define DESCOFF (6)
994
59.5k
#define VALOFF (8)
995
65.2k
#define STABSIZE (12)
996
997
59.5k
  info = (struct stab_find_info *) *pinfo;
998
59.5k
  if (info != NULL)
999
51.5k
    {
1000
51.5k
      if (info->stabsec == NULL || info->strsec == NULL)
1001
50.6k
  {
1002
    /* No usable stabs debugging information.  */
1003
50.6k
    return true;
1004
50.6k
  }
1005
1006
925
      stabsize = (info->stabsec->rawsize
1007
925
      ? info->stabsec->rawsize
1008
925
      : info->stabsec->size);
1009
925
      strsize = (info->strsec->rawsize
1010
925
     ? info->strsec->rawsize
1011
925
     : info->strsec->size);
1012
925
    }
1013
7.96k
  else
1014
7.96k
    {
1015
7.96k
      long reloc_size, reloc_count;
1016
7.96k
      arelent **reloc_vector;
1017
7.96k
      int i;
1018
7.96k
      char *function_name;
1019
7.96k
      bfd_size_type amt = sizeof *info;
1020
1021
7.96k
      info = (struct stab_find_info *) bfd_zalloc (abfd, amt);
1022
7.96k
      if (info == NULL)
1023
0
  return false;
1024
7.96k
      *pinfo = info;
1025
1026
      /* FIXME: When using the linker --split-by-file or
1027
   --split-by-reloc options, it is possible for the .stab and
1028
   .stabstr sections to be split.  We should handle that.  */
1029
1030
7.96k
      info->stabsec = bfd_get_section_by_name (abfd, ".stab");
1031
7.96k
      info->strsec = bfd_get_section_by_name (abfd, ".stabstr");
1032
1033
7.96k
      if (info->stabsec == NULL || info->strsec == NULL)
1034
7.52k
  {
1035
    /* Try SOM section names.  */
1036
7.52k
    info->stabsec = bfd_get_section_by_name (abfd, "$GDB_SYMBOLS$");
1037
7.52k
    info->strsec  = bfd_get_section_by_name (abfd, "$GDB_STRINGS$");
1038
1039
7.52k
    if (info->stabsec == NULL || info->strsec == NULL)
1040
7.52k
      return true;
1041
7.52k
  }
1042
1043
439
      if ((info->stabsec->flags & SEC_HAS_CONTENTS) == 0
1044
438
    || (info->strsec->flags & SEC_HAS_CONTENTS) == 0)
1045
2
  goto out;
1046
1047
437
      stabsize = (info->stabsec->rawsize
1048
437
      ? info->stabsec->rawsize
1049
437
      : info->stabsec->size);
1050
437
      stabsize = (stabsize / STABSIZE) * STABSIZE;
1051
437
      strsize = (info->strsec->rawsize
1052
437
     ? info->strsec->rawsize
1053
437
     : info->strsec->size);
1054
1055
437
      if (stabsize == 0 || strsize == 0)
1056
2
  goto out;
1057
1058
435
      if (!bfd_malloc_and_get_section (abfd, info->stabsec, &info->stabs))
1059
8
  goto out;
1060
427
      if (!bfd_malloc_and_get_section (abfd, info->strsec, &info->strs))
1061
1
  goto out1;
1062
1063
      /* Stab strings ought to be nul terminated.  Ensure the last one
1064
   is, to prevent running off the end of the buffer.  */
1065
426
      info->strs[strsize - 1] = 0;
1066
1067
      /* If this is a relocatable object file, we have to relocate
1068
   the entries in .stab.  This should always be simple 32 bit
1069
   relocations against symbols defined in this object file, so
1070
   this should be no big deal.  */
1071
426
      reloc_size = bfd_get_reloc_upper_bound (abfd, info->stabsec);
1072
426
      if (reloc_size < 0)
1073
14
  goto out2;
1074
412
      reloc_vector = (arelent **) bfd_malloc (reloc_size);
1075
412
      if (reloc_vector == NULL && reloc_size != 0)
1076
0
  goto out2;
1077
412
      reloc_count = bfd_canonicalize_reloc (abfd, info->stabsec, reloc_vector,
1078
412
              symbols);
1079
412
      if (reloc_count < 0)
1080
247
  {
1081
276
  out3:
1082
276
    free (reloc_vector);
1083
290
  out2:
1084
290
    free (info->strs);
1085
290
    info->strs = NULL;
1086
291
  out1:
1087
291
    free (info->stabs);
1088
291
    info->stabs = NULL;
1089
303
  out:
1090
303
    info->stabsec = NULL;
1091
303
    return false;
1092
291
  }
1093
165
      if (reloc_count > 0)
1094
34
  {
1095
34
    arelent **pr;
1096
1097
134
    for (pr = reloc_vector; *pr != NULL; pr++)
1098
129
      {
1099
129
        arelent *r;
1100
129
        unsigned long val;
1101
129
        asymbol *sym;
1102
129
        bfd_size_type octets;
1103
1104
129
        r = *pr;
1105
        /* Ignore R_*_NONE relocs.  */
1106
129
        if (r->howto->dst_mask == 0)
1107
97
    continue;
1108
1109
32
        octets = r->address * bfd_octets_per_byte (abfd, NULL);
1110
32
        if (r->howto->rightshift != 0
1111
22
      || bfd_get_reloc_size (r->howto) != 4
1112
16
      || r->howto->bitsize != 32
1113
15
      || r->howto->pc_relative
1114
13
      || r->howto->bitpos != 0
1115
13
      || r->howto->dst_mask != 0xffffffff
1116
13
      || octets > stabsize - 4)
1117
29
    {
1118
29
      _bfd_error_handler
1119
29
        (_("unsupported .stab relocation"));
1120
29
      bfd_set_error (bfd_error_invalid_operation);
1121
29
      goto out3;
1122
29
    }
1123
1124
3
        val = bfd_get_32 (abfd, info->stabs + octets);
1125
3
        val &= r->howto->src_mask;
1126
3
        sym = *r->sym_ptr_ptr;
1127
3
        val += sym->value + sym->section->vma + r->addend;
1128
3
        bfd_put_32 (abfd, (bfd_vma) val, info->stabs + octets);
1129
3
      }
1130
34
  }
1131
1132
136
      free (reloc_vector);
1133
136
      reloc_vector = NULL;
1134
1135
      /* First time through this function, build a table matching
1136
   function VM addresses to stabs, then sort based on starting
1137
   VM address.  Do this in two passes: once to count how many
1138
   table entries we'll need, and a second to actually build the
1139
   table.  */
1140
1141
136
      info->indextablesize = 0;
1142
136
      nul_fun = NULL;
1143
22.3k
      for (stab = info->stabs; stab < info->stabs + stabsize; stab += STABSIZE)
1144
22.1k
  {
1145
22.1k
    if (stab[TYPEOFF] == (bfd_byte) N_SO)
1146
1.57k
      {
1147
        /* if we did not see a function def, leave space for one.  */
1148
1.57k
        if (nul_fun != NULL)
1149
1.31k
    ++info->indextablesize;
1150
1151
        /* N_SO with null name indicates EOF */
1152
1.57k
        if (bfd_get_32 (abfd, stab + STRDXOFF) == 0)
1153
33
    nul_fun = NULL;
1154
1.54k
        else
1155
1.54k
    {
1156
1.54k
      nul_fun = stab;
1157
1158
      /* two N_SO's in a row is a filename and directory. Skip */
1159
1.54k
      if (stab + STABSIZE + TYPEOFF < info->stabs + stabsize
1160
1.53k
          && *(stab + STABSIZE + TYPEOFF) == (bfd_byte) N_SO)
1161
1.09k
        stab += STABSIZE;
1162
1.54k
    }
1163
1.57k
      }
1164
20.5k
    else if (stab[TYPEOFF] == (bfd_byte) N_FUN
1165
936
       && bfd_get_32 (abfd, stab + STRDXOFF) != 0)
1166
898
      {
1167
898
        nul_fun = NULL;
1168
898
        ++info->indextablesize;
1169
898
      }
1170
22.1k
  }
1171
1172
136
      if (nul_fun != NULL)
1173
62
  ++info->indextablesize;
1174
1175
136
      if (info->indextablesize == 0)
1176
12
  {
1177
12
    free (info->strs);
1178
12
    info->strs = NULL;
1179
12
    free (info->stabs);
1180
12
    info->stabs = NULL;
1181
12
    info->stabsec = NULL;
1182
12
    return true;
1183
12
  }
1184
124
      ++info->indextablesize;
1185
1186
124
      amt = info->indextablesize;
1187
124
      amt *= sizeof (struct indexentry);
1188
124
      info->indextable = (struct indexentry *) bfd_malloc (amt);
1189
124
      if (info->indextable == NULL)
1190
0
  goto out2;
1191
1192
124
      file_name = NULL;
1193
124
      directory_name = NULL;
1194
124
      nul_fun = NULL;
1195
124
      stroff = 0;
1196
1197
124
      for (i = 0, stab = info->stabs, nul_str = str = info->strs;
1198
21.6k
     i < info->indextablesize && stab < info->stabs + stabsize;
1199
21.5k
     stab += STABSIZE)
1200
21.5k
  {
1201
21.5k
    switch (stab[TYPEOFF])
1202
21.5k
      {
1203
9.85k
      case 0:
1204
        /* This is the first entry in a compilation unit.  */
1205
9.85k
        if ((bfd_size_type) ((info->strs + strsize) - str) < stroff)
1206
9.60k
    break;
1207
249
        str += stroff;
1208
249
        stroff = bfd_get_32 (abfd, stab + VALOFF);
1209
249
        break;
1210
1211
1.57k
      case N_SO:
1212
        /* The main file name.  */
1213
1214
        /* The following code creates a new indextable entry with
1215
     a NULL function name if there were no N_FUNs in a file.
1216
     Note that a N_SO without a file name is an EOF and
1217
     there could be 2 N_SO following it with the new filename
1218
     and directory.  */
1219
1.57k
        if (nul_fun != NULL)
1220
1.31k
    {
1221
1.31k
      info->indextable[i].val = bfd_get_32 (abfd, nul_fun + VALOFF);
1222
1.31k
      info->indextable[i].stab = nul_fun;
1223
1.31k
      info->indextable[i].str = nul_str;
1224
1.31k
      info->indextable[i].directory_name = directory_name;
1225
1.31k
      info->indextable[i].file_name = file_name;
1226
1.31k
      info->indextable[i].function_name = NULL;
1227
1.31k
      info->indextable[i].idx = i;
1228
1.31k
      ++i;
1229
1.31k
    }
1230
1231
1.57k
        directory_name = NULL;
1232
1.57k
        file_name = (char *) str + bfd_get_32 (abfd, stab + STRDXOFF);
1233
1.57k
        if (file_name == (char *) str)
1234
30
    {
1235
30
      file_name = NULL;
1236
30
      nul_fun = NULL;
1237
30
    }
1238
1.54k
        else
1239
1.54k
    {
1240
1.54k
      nul_fun = stab;
1241
1.54k
      nul_str = str;
1242
1.54k
      if (file_name >= (char *) info->strs + strsize
1243
55
          || file_name < (char *) str)
1244
1.48k
        file_name = NULL;
1245
1.54k
      if (stab + STABSIZE + TYPEOFF < info->stabs + stabsize
1246
1.53k
          && *(stab + STABSIZE + TYPEOFF) == (bfd_byte) N_SO)
1247
1.09k
        {
1248
          /* Two consecutive N_SOs are a directory and a
1249
       file name.  */
1250
1.09k
          stab += STABSIZE;
1251
1.09k
          directory_name = file_name;
1252
1.09k
          file_name = ((char *) str
1253
1.09k
           + bfd_get_32 (abfd, stab + STRDXOFF));
1254
1.09k
          if (file_name >= (char *) info->strs + strsize
1255
35
        || file_name < (char *) str)
1256
1.05k
      file_name = NULL;
1257
1.09k
        }
1258
1.54k
    }
1259
1.57k
        break;
1260
1261
470
      case N_SOL:
1262
        /* The name of an include file.  */
1263
470
        file_name = (char *) str + bfd_get_32 (abfd, stab + STRDXOFF);
1264
        /* PR 17512: file: 0c680a1f.  */
1265
        /* PR 17512: file: 5da8aec4.  */
1266
470
        if (file_name >= (char *) info->strs + strsize
1267
72
      || file_name < (char *) str)
1268
398
    file_name = NULL;
1269
470
        break;
1270
1271
936
      case N_FUN:
1272
        /* A function name.  */
1273
936
        function_name = (char *) str + bfd_get_32 (abfd, stab + STRDXOFF);
1274
936
        if (function_name == (char *) str)
1275
38
    continue;
1276
898
        if (function_name >= (char *) info->strs + strsize
1277
306
      || function_name < (char *) str)
1278
592
    function_name = NULL;
1279
1280
898
        nul_fun = NULL;
1281
898
        info->indextable[i].val = bfd_get_32 (abfd, stab + VALOFF);
1282
898
        info->indextable[i].stab = stab;
1283
898
        info->indextable[i].str = str;
1284
898
        info->indextable[i].directory_name = directory_name;
1285
898
        info->indextable[i].file_name = file_name;
1286
898
        info->indextable[i].function_name = function_name;
1287
898
        info->indextable[i].idx = i;
1288
898
        ++i;
1289
898
        break;
1290
21.5k
      }
1291
21.5k
  }
1292
1293
124
      if (nul_fun != NULL)
1294
62
  {
1295
62
    info->indextable[i].val = bfd_get_32 (abfd, nul_fun + VALOFF);
1296
62
    info->indextable[i].stab = nul_fun;
1297
62
    info->indextable[i].str = nul_str;
1298
62
    info->indextable[i].directory_name = directory_name;
1299
62
    info->indextable[i].file_name = file_name;
1300
62
    info->indextable[i].function_name = NULL;
1301
62
    info->indextable[i].idx = i;
1302
62
    ++i;
1303
62
  }
1304
1305
124
      info->indextable[i].val = (bfd_vma) -1;
1306
124
      info->indextable[i].stab = info->stabs + stabsize;
1307
124
      info->indextable[i].str = str;
1308
124
      info->indextable[i].directory_name = NULL;
1309
124
      info->indextable[i].file_name = NULL;
1310
124
      info->indextable[i].function_name = NULL;
1311
124
      info->indextable[i].idx = i;
1312
124
      ++i;
1313
1314
124
      info->indextablesize = i;
1315
124
      qsort (info->indextable, (size_t) i, sizeof (struct indexentry),
1316
124
       cmpindexentry);
1317
124
    }
1318
1319
  /* We are passed a section relative offset.  The offsets in the
1320
     stabs information are absolute.  */
1321
1.04k
  offset += bfd_section_vma (section);
1322
1323
1.04k
#ifdef ENABLE_CACHING
1324
1.04k
  if (info->cached_indexentry != NULL
1325
176
      && offset >= info->cached_offset
1326
59
      && offset < (info->cached_indexentry + 1)->val)
1327
44
    {
1328
44
      stab = info->cached_stab;
1329
44
      indexentry = info->cached_indexentry;
1330
44
      file_name = info->cached_file_name;
1331
44
    }
1332
1.00k
  else
1333
1.00k
#endif
1334
1.00k
    {
1335
1.00k
      long low, high;
1336
1.00k
      long mid = -1;
1337
1338
      /* Cache non-existent or invalid.  Do binary search on
1339
   indextable.  */
1340
1.00k
      indexentry = NULL;
1341
1342
1.00k
      low = 0;
1343
1.00k
      high = info->indextablesize - 1;
1344
2.79k
      while (low != high)
1345
2.14k
  {
1346
2.14k
    mid = (high + low) / 2;
1347
2.14k
    if (offset >= info->indextable[mid].val
1348
721
        && offset < info->indextable[mid + 1].val)
1349
359
      {
1350
359
        indexentry = &info->indextable[mid];
1351
359
        break;
1352
359
      }
1353
1354
1.78k
    if (info->indextable[mid].val > offset)
1355
1.42k
      high = mid;
1356
362
    else
1357
362
      low = mid + 1;
1358
1.78k
  }
1359
1360
1.00k
      if (indexentry == NULL)
1361
646
  return true;
1362
1363
359
      stab = indexentry->stab + STABSIZE;
1364
359
      file_name = indexentry->file_name;
1365
359
    }
1366
1367
403
  directory_name = indexentry->directory_name;
1368
403
  str = indexentry->str;
1369
1370
403
  saw_line = false;
1371
403
  saw_func = false;
1372
12.3k
  for (; stab < (indexentry+1)->stab; stab += STABSIZE)
1373
12.1k
    {
1374
12.1k
      bool done;
1375
12.1k
      bfd_vma val;
1376
1377
12.1k
      done = false;
1378
1379
12.1k
      switch (stab[TYPEOFF])
1380
12.1k
  {
1381
1.23k
  case N_SOL:
1382
    /* The name of an include file.  */
1383
1.23k
    val = bfd_get_32 (abfd, stab + VALOFF);
1384
1.23k
    if (val <= offset)
1385
677
      {
1386
677
        file_name = (char *) str + bfd_get_32 (abfd, stab + STRDXOFF);
1387
677
        if (file_name >= (char *) info->strs + strsize
1388
115
      || file_name < (char *) str)
1389
562
    file_name = NULL;
1390
677
        *pline = 0;
1391
677
      }
1392
1.23k
    break;
1393
1394
128
  case N_SLINE:
1395
266
  case N_DSLINE:
1396
368
  case N_BSLINE:
1397
    /* A line number.  If the function was specified, then the value
1398
       is relative to the start of the function.  Otherwise, the
1399
       value is an absolute address.  */
1400
368
    val = ((indexentry->function_name ? indexentry->val : 0)
1401
368
     + bfd_get_32 (abfd, stab + VALOFF));
1402
    /* If this line starts before our desired offset, or if it's
1403
       the first line we've been able to find, use it.  The
1404
       !saw_line check works around a bug in GCC 2.95.3, which emits
1405
       the first N_SLINE late.  */
1406
368
    if (!saw_line || val <= offset)
1407
355
      {
1408
355
        *pline = bfd_get_16 (abfd, stab + DESCOFF);
1409
1410
355
#ifdef ENABLE_CACHING
1411
355
        info->cached_stab = stab;
1412
355
        info->cached_offset = val;
1413
355
        info->cached_file_name = file_name;
1414
355
        info->cached_indexentry = indexentry;
1415
355
#endif
1416
355
      }
1417
368
    if (val > offset)
1418
32
      done = true;
1419
368
    saw_line = true;
1420
368
    break;
1421
1422
73
  case N_FUN:
1423
232
  case N_SO:
1424
232
    if (saw_func || saw_line)
1425
103
      done = true;
1426
232
    saw_func = true;
1427
232
    break;
1428
12.1k
  }
1429
1430
12.1k
      if (done)
1431
135
  break;
1432
12.1k
    }
1433
1434
403
  *pfound = true;
1435
1436
403
  if (file_name == NULL || IS_ABSOLUTE_PATH (file_name)
1437
93
      || directory_name == NULL)
1438
357
    *pfilename = file_name;
1439
46
  else
1440
46
    {
1441
46
      size_t dirlen;
1442
1443
46
      dirlen = strlen (directory_name);
1444
46
      if (info->filename == NULL
1445
32
    || filename_ncmp (info->filename, directory_name, dirlen) != 0
1446
26
    || filename_cmp (info->filename + dirlen, file_name) != 0)
1447
26
  {
1448
26
    size_t len;
1449
1450
    /* Don't free info->filename here.  objdump and other
1451
       apps keep a copy of a previously returned file name
1452
       pointer.  */
1453
26
    len = strlen (file_name) + 1;
1454
26
    info->filename = (char *) bfd_alloc (abfd, dirlen + len);
1455
26
    if (info->filename == NULL)
1456
0
      return false;
1457
26
    memcpy (info->filename, directory_name, dirlen);
1458
26
    memcpy (info->filename + dirlen, file_name, len);
1459
26
  }
1460
1461
46
      *pfilename = info->filename;
1462
46
    }
1463
1464
403
  if (indexentry->function_name != NULL)
1465
84
    {
1466
84
      char *s;
1467
1468
      /* This will typically be something like main:F(0,1), so we want
1469
   to clobber the colon.  It's OK to change the name, since the
1470
   string is in our own local storage anyhow.  */
1471
84
      s = strchr (indexentry->function_name, ':');
1472
84
      if (s != NULL)
1473
1
  *s = '\0';
1474
1475
84
      *pfnname = indexentry->function_name;
1476
84
    }
1477
1478
403
  return true;
1479
403
}
1480
1481
void
1482
_bfd_stab_cleanup (bfd *abfd ATTRIBUTE_UNUSED, void **pinfo)
1483
134k
{
1484
134k
  struct stab_find_info *info = (struct stab_find_info *) *pinfo;
1485
134k
  if (info == NULL)
1486
126k
    return;
1487
1488
7.72k
  free (info->indextable);
1489
7.72k
  free (info->strs);
1490
7.72k
  free (info->stabs);
1491
7.72k
}
1492
1493
long
1494
_bfd_nosymbols_canonicalize_symtab (bfd *abfd ATTRIBUTE_UNUSED,
1495
            asymbol **location ATTRIBUTE_UNUSED)
1496
178
{
1497
178
  return 0;
1498
178
}
1499
1500
void
1501
_bfd_nosymbols_print_symbol (bfd *abfd ATTRIBUTE_UNUSED,
1502
           void *afile ATTRIBUTE_UNUSED,
1503
           asymbol *symbol ATTRIBUTE_UNUSED,
1504
           bfd_print_symbol_type how ATTRIBUTE_UNUSED)
1505
0
{
1506
0
}
1507
1508
void
1509
_bfd_nosymbols_get_symbol_info (bfd *abfd ATTRIBUTE_UNUSED,
1510
        asymbol *sym ATTRIBUTE_UNUSED,
1511
        symbol_info *ret ATTRIBUTE_UNUSED)
1512
0
{
1513
0
}
1514
1515
const char *
1516
_bfd_nosymbols_get_symbol_version_string (bfd *abfd,
1517
            asymbol *symbol ATTRIBUTE_UNUSED,
1518
            bool base_p ATTRIBUTE_UNUSED,
1519
            bool *hidden ATTRIBUTE_UNUSED)
1520
7.32k
{
1521
7.32k
  return (const char *) _bfd_ptr_bfd_null_error (abfd);
1522
7.32k
}
1523
1524
bool
1525
_bfd_nosymbols_bfd_is_local_label_name (bfd *abfd ATTRIBUTE_UNUSED,
1526
          const char *name ATTRIBUTE_UNUSED)
1527
0
{
1528
0
  return false;
1529
0
}
1530
1531
alent *
1532
_bfd_nosymbols_get_lineno (bfd *abfd, asymbol *sym ATTRIBUTE_UNUSED)
1533
0
{
1534
0
  return (alent *) _bfd_ptr_bfd_null_error (abfd);
1535
0
}
1536
1537
bool
1538
_bfd_nosymbols_find_nearest_line
1539
    (bfd *abfd,
1540
     asymbol **symbols ATTRIBUTE_UNUSED,
1541
     asection *section ATTRIBUTE_UNUSED,
1542
     bfd_vma offset ATTRIBUTE_UNUSED,
1543
     const char **filename_ptr ATTRIBUTE_UNUSED,
1544
     const char **functionname_ptr ATTRIBUTE_UNUSED,
1545
     unsigned int *line_ptr ATTRIBUTE_UNUSED,
1546
     unsigned int *discriminator_ptr ATTRIBUTE_UNUSED)
1547
3.21k
{
1548
3.21k
  return _bfd_bool_bfd_false_error (abfd);
1549
3.21k
}
1550
1551
bool
1552
_bfd_nosymbols_find_nearest_line_with_alt
1553
    (bfd *abfd,
1554
     const char *alt_filename ATTRIBUTE_UNUSED,
1555
     asymbol **symbols ATTRIBUTE_UNUSED,
1556
     asection *section ATTRIBUTE_UNUSED,
1557
     bfd_vma offset ATTRIBUTE_UNUSED,
1558
     const char **filename_ptr ATTRIBUTE_UNUSED,
1559
     const char **functionname_ptr ATTRIBUTE_UNUSED,
1560
     unsigned int *line_ptr ATTRIBUTE_UNUSED,
1561
     unsigned int *discriminator_ptr ATTRIBUTE_UNUSED)
1562
0
{
1563
0
  return _bfd_bool_bfd_false_error (abfd);
1564
0
}
1565
1566
bool
1567
_bfd_nosymbols_find_line (bfd *abfd,
1568
        asymbol **symbols ATTRIBUTE_UNUSED,
1569
        asymbol *symbol ATTRIBUTE_UNUSED,
1570
        const char **filename_ptr ATTRIBUTE_UNUSED,
1571
        unsigned int *line_ptr ATTRIBUTE_UNUSED)
1572
5.22k
{
1573
5.22k
  return _bfd_bool_bfd_false_error (abfd);
1574
5.22k
}
1575
1576
bool
1577
_bfd_nosymbols_find_inliner_info
1578
    (bfd *abfd,
1579
     const char **filename_ptr ATTRIBUTE_UNUSED,
1580
     const char **functionname_ptr ATTRIBUTE_UNUSED,
1581
     unsigned int *line_ptr ATTRIBUTE_UNUSED)
1582
0
{
1583
0
  return _bfd_bool_bfd_false_error (abfd);
1584
0
}
1585
1586
asymbol *
1587
_bfd_nosymbols_bfd_make_debug_symbol (bfd *abfd)
1588
0
{
1589
0
  return (asymbol *) _bfd_ptr_bfd_null_error (abfd);
1590
0
}
1591
1592
long
1593
_bfd_nosymbols_read_minisymbols (bfd *abfd,
1594
         bool dynamic ATTRIBUTE_UNUSED,
1595
         void **minisymsp ATTRIBUTE_UNUSED,
1596
         unsigned int *sizep ATTRIBUTE_UNUSED)
1597
0
{
1598
0
  return _bfd_long_bfd_n1_error (abfd);
1599
0
}
1600
1601
asymbol *
1602
_bfd_nosymbols_minisymbol_to_symbol (bfd *abfd,
1603
             bool dynamic ATTRIBUTE_UNUSED,
1604
             const void *minisym ATTRIBUTE_UNUSED,
1605
             asymbol *sym ATTRIBUTE_UNUSED)
1606
0
{
1607
0
  return (asymbol *) _bfd_ptr_bfd_null_error (abfd);
1608
0
}
1609
1610
long
1611
_bfd_nodynamic_get_synthetic_symtab (bfd *abfd,
1612
             long symcount ATTRIBUTE_UNUSED,
1613
             asymbol **syms ATTRIBUTE_UNUSED,
1614
             long dynsymcount ATTRIBUTE_UNUSED,
1615
             asymbol **dynsyms ATTRIBUTE_UNUSED,
1616
             asymbol **ret ATTRIBUTE_UNUSED)
1617
12.1k
{
1618
12.1k
  return _bfd_long_bfd_n1_error (abfd);
1619
12.1k
}