Coverage Report

Created: 2026-09-14 08:07

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/binutils-gdb/bfd/dwarf2.c
Line
Count
Source
1
/* DWARF 2 support.
2
   Copyright (C) 1994-2026 Free Software Foundation, Inc.
3
4
   Adapted from gdb/dwarf2read.c by Gavin Koch of Cygnus Solutions
5
   (gavin@cygnus.com).
6
7
   From the dwarf2read.c header:
8
   Adapted by Gary Funck (gary@intrepid.com), Intrepid Technology,
9
   Inc.  with support from Florida State University (under contract
10
   with the Ada Joint Program Office), and Silicon Graphics, Inc.
11
   Initial contribution by Brent Benson, Harris Computer Systems, Inc.,
12
   based on Fred Fish's (Cygnus Support) implementation of DWARF 1
13
   support in dwarfread.c
14
15
   This file is part of BFD.
16
17
   This program is free software; you can redistribute it and/or modify
18
   it under the terms of the GNU General Public License as published by
19
   the Free Software Foundation; either version 3 of the License, or (at
20
   your option) any later version.
21
22
   This program is distributed in the hope that it will be useful, but
23
   WITHOUT ANY WARRANTY; without even the implied warranty of
24
   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
25
   General Public License for more details.
26
27
   You should have received a copy of the GNU General Public License
28
   along with this program; if not, write to the Free Software
29
   Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
30
   MA 02110-1301, USA.  */
31
32
#include "sysdep.h"
33
#include "bfd.h"
34
#include "libiberty.h"
35
#include "demangle.h"
36
#include "libbfd.h"
37
#include "elf-bfd.h"
38
#include "dwarf2.h"
39
#include "hashtab.h"
40
#include "splay-tree.h"
41
42
/* The data in the .debug_line statement prologue looks like this.  */
43
44
struct line_head
45
{
46
  bfd_vma total_length;
47
  unsigned short version;
48
  bfd_vma prologue_length;
49
  unsigned char minimum_instruction_length;
50
  unsigned char maximum_ops_per_insn;
51
  unsigned char default_is_stmt;
52
  int line_base;
53
  unsigned char line_range;
54
  unsigned char opcode_base;
55
  unsigned char *standard_opcode_lengths;
56
};
57
58
/* Attributes have a name and a value.  */
59
60
struct attribute
61
{
62
  enum dwarf_attribute name;
63
  enum dwarf_form form;
64
  union
65
  {
66
    char *str;
67
    struct dwarf_block *blk;
68
    uint64_t val;
69
    int64_t sval;
70
  }
71
  u;
72
};
73
74
/* Blocks are a bunch of untyped bytes.  */
75
struct dwarf_block
76
{
77
  unsigned int size;
78
  bfd_byte *data;
79
};
80
81
struct adjusted_section
82
{
83
  asection *section;
84
  bfd_vma adj_vma;
85
  bfd_vma orig_vma;
86
};
87
88
/* A trie to map quickly from address range to compilation unit.
89
90
   This is a fairly standard radix-256 trie, used to quickly locate which
91
   compilation unit any given address belongs to.  Given that each compilation
92
   unit may register hundreds of very small and unaligned ranges (which may
93
   potentially overlap, due to inlining and other concerns), and a large
94
   program may end up containing hundreds of thousands of such ranges, we cannot
95
   scan through them linearly without undue slowdown.
96
97
   We use a hybrid trie to avoid memory explosion: There are two types of trie
98
   nodes, leaves and interior nodes.  (Almost all nodes are leaves, so they
99
   take up the bulk of the memory usage.) Leaves contain a simple array of
100
   ranges (high/low address) and which compilation unit contains those ranges,
101
   and when we get to a leaf, we scan through it linearly.  Interior nodes
102
   contain pointers to 256 other nodes, keyed by the next byte of the address.
103
   So for a 64-bit address like 0x1234567abcd, we would start at the root and go
104
   down child[0x00]->child[0x00]->child[0x01]->child[0x23]->child[0x45] etc.,
105
   until we hit a leaf.  (Nodes are, in general, leaves until they exceed the
106
   default allocation of 16 elements, at which point they are converted to
107
   interior node if possible.) This gives us near-constant lookup times;
108
   the only thing that can be costly is if there are lots of overlapping ranges
109
   within a single 256-byte segment of the binary, in which case we have to
110
   scan through them all to find the best match.
111
112
   For a binary with few ranges, we will in practice only have a single leaf
113
   node at the root, containing a simple array.  Thus, the scheme is efficient
114
   for both small and large binaries.
115
 */
116
117
/* Experiments have shown 16 to be a memory-efficient default leaf size.
118
   The only case where a leaf will hold more memory than this, is at the
119
   bottomost level (covering 256 bytes in the binary), where we'll expand
120
   the leaf to be able to hold more ranges if needed.
121
 */
122
30.3k
#define TRIE_LEAF_SIZE 16
123
124
/* All trie_node pointers will really be trie_leaf or trie_interior,
125
   but they have this common head.  */
126
struct trie_node
127
{
128
  /* If zero, we are an interior node.
129
     Otherwise, how many ranges we have room for in this leaf.  */
130
  unsigned int num_room_in_leaf;
131
};
132
133
struct trie_leaf
134
{
135
  struct trie_node head;
136
  unsigned int num_stored_in_leaf;
137
  struct {
138
    struct comp_unit *unit;
139
    bfd_vma low_pc, high_pc;
140
  } ranges[];
141
};
142
143
struct trie_interior
144
{
145
  struct trie_node head;
146
  struct trie_node *children[256];
147
};
148
149
static struct trie_node *alloc_trie_leaf (bfd *abfd)
150
15.1k
{
151
15.1k
  struct trie_leaf *leaf;
152
15.1k
  size_t amt = sizeof (*leaf) + TRIE_LEAF_SIZE * sizeof (leaf->ranges[0]);
153
15.1k
  leaf = bfd_zalloc (abfd, amt);
154
15.1k
  if (leaf == NULL)
155
0
    return NULL;
156
15.1k
  leaf->head.num_room_in_leaf = TRIE_LEAF_SIZE;
157
15.1k
  return &leaf->head;
158
15.1k
}
159
160
struct addr_range
161
{
162
  bfd_byte *start;
163
  bfd_byte *end;
164
};
165
166
/* Return true if address range do intersect.  */
167
168
static bool
169
addr_range_intersects (struct addr_range *r1, struct addr_range *r2)
170
720
{
171
720
  return (r1->start <= r2->start && r2->start < r1->end)
172
720
    || (r1->start <= (r2->end - 1) && (r2->end - 1) < r1->end);
173
720
}
174
175
/* Compare function for splay tree of addr_ranges.  */
176
177
static int
178
splay_tree_compare_addr_range (splay_tree_key xa, splay_tree_key xb)
179
360
{
180
360
  struct addr_range *r1 = (struct addr_range *) xa;
181
360
  struct addr_range *r2 = (struct addr_range *) xb;
182
183
360
  if (addr_range_intersects (r1, r2) || addr_range_intersects (r2, r1))
184
0
    return 0;
185
360
  else if (r1->end <= r2->start)
186
180
    return -1;
187
180
  else
188
180
    return 1;
189
360
}
190
191
/* Splay tree release function for keys (addr_range).  */
192
193
static void
194
splay_tree_free_addr_range (splay_tree_key key)
195
1.21k
{
196
1.21k
  free ((struct addr_range *)key);
197
1.21k
}
198
199
struct dwarf2_debug_file
200
{
201
  /* The actual bfd from which debug info was loaded.  Might be
202
     different to orig_bfd because of gnu_debuglink sections.  */
203
  bfd *bfd_ptr;
204
205
  /* Pointer to the symbol table.  */
206
  asymbol **syms;
207
208
  /* The current info pointer for the .debug_info section being parsed.  */
209
  bfd_byte *info_ptr;
210
211
  /* A pointer to the memory block allocated for .debug_info sections.  */
212
  bfd_byte *dwarf_info_buffer;
213
214
  /* Length of the loaded .debug_info sections.  */
215
  bfd_size_type dwarf_info_size;
216
217
  /* Pointer to the .debug_abbrev section loaded into memory.  */
218
  bfd_byte *dwarf_abbrev_buffer;
219
220
  /* Length of the loaded .debug_abbrev section.  */
221
  bfd_size_type dwarf_abbrev_size;
222
223
  /* Buffer for decode_line_info.  */
224
  bfd_byte *dwarf_line_buffer;
225
226
  /* Length of the loaded .debug_line section.  */
227
  bfd_size_type dwarf_line_size;
228
229
  /* Pointer to the .debug_str section loaded into memory.  */
230
  bfd_byte *dwarf_str_buffer;
231
232
  /* Length of the loaded .debug_str section.  */
233
  bfd_size_type dwarf_str_size;
234
235
  /* Pointer to the .debug_str_offsets section loaded into memory.  */
236
  bfd_byte *dwarf_str_offsets_buffer;
237
238
  /* Length of the loaded .debug_str_offsets section.  */
239
  bfd_size_type dwarf_str_offsets_size;
240
241
  /* Pointer to the .debug_addr section loaded into memory.  */
242
  bfd_byte *dwarf_addr_buffer;
243
244
  /* Length of the loaded .debug_addr section.  */
245
  bfd_size_type dwarf_addr_size;
246
247
  /* Pointer to the .debug_line_str section loaded into memory.  */
248
  bfd_byte *dwarf_line_str_buffer;
249
250
  /* Length of the loaded .debug_line_str section.  */
251
  bfd_size_type dwarf_line_str_size;
252
253
  /* Pointer to the .debug_ranges section loaded into memory.  */
254
  bfd_byte *dwarf_ranges_buffer;
255
256
  /* Length of the loaded .debug_ranges section.  */
257
  bfd_size_type dwarf_ranges_size;
258
259
  /* Pointer to the .debug_rnglists section loaded into memory.  */
260
  bfd_byte *dwarf_rnglists_buffer;
261
262
  /* Length of the loaded .debug_rnglists section.  */
263
  bfd_size_type dwarf_rnglists_size;
264
265
  /* A list of all previously read comp_units.  */
266
  struct comp_unit *all_comp_units;
267
268
  /* A list of all previously read comp_units with no ranges (yet).  */
269
  struct comp_unit *all_comp_units_without_ranges;
270
271
  /* Last comp unit in list above.  */
272
  struct comp_unit *last_comp_unit;
273
274
  /* Line table at line_offset zero.  */
275
  struct line_info_table *line_table;
276
277
  /* Hash table to map offsets to decoded abbrevs.  */
278
  htab_t abbrev_offsets;
279
280
  /* Root of a trie to map addresses to compilation units.  */
281
  struct trie_node *trie_root;
282
283
  /* Splay tree to map info_ptr address to compilation units.  */
284
  splay_tree comp_unit_tree;
285
};
286
287
struct dwarf2_debug
288
{
289
  /* Names of the debug sections.  */
290
  const struct dwarf_debug_section *debug_sections;
291
292
  /* Per-file stuff.  */
293
  struct dwarf2_debug_file f, alt;
294
295
  /* If the most recent call to bfd_find_nearest_line was given an
296
     address in an inlined function, preserve a pointer into the
297
     calling chain for subsequent calls to bfd_find_inliner_info to
298
     use.  */
299
  struct funcinfo *inliner_chain;
300
301
  /* Section VMAs at the time the stash was built.  */
302
  bfd_vma *sec_vma;
303
  /* Number of sections in the SEC_VMA table.  */
304
  unsigned int sec_vma_count;
305
306
  /* Number of sections whose VMA we must adjust.  */
307
  int adjusted_section_count;
308
309
  /* Array of sections with adjusted VMA.  */
310
  struct adjusted_section *adjusted_sections;
311
312
  /* Used to validate the cached debug data.  */
313
  unsigned int orig_bfd_id;
314
315
  /* Number of times find_line is called.  This is used in
316
     the heuristic for enabling the info hash tables.  */
317
  int info_hash_count;
318
319
5.32k
#define STASH_INFO_HASH_TRIGGER    100
320
321
  /* Hash table mapping symbol names to function infos.  */
322
  struct info_hash_table *funcinfo_hash_table;
323
324
  /* Hash table mapping symbol names to variable infos.  */
325
  struct info_hash_table *varinfo_hash_table;
326
327
  /* Head of comp_unit list in the last hash table update.  */
328
  struct comp_unit *hash_units_head;
329
330
  /* Status of info hash.  */
331
  int info_hash_status;
332
5.32k
#define STASH_INFO_HASH_OFF    0
333
10.6k
#define STASH_INFO_HASH_ON     1
334
0
#define STASH_INFO_HASH_DISABLED   2
335
336
  /* True if we opened bfd_ptr.  */
337
  bool close_on_cleanup;
338
};
339
340
struct arange
341
{
342
  struct arange *next;
343
  bfd_vma low;
344
  bfd_vma high;
345
};
346
347
/* A minimal decoding of DWARF2 compilation units.  We only decode
348
   what's needed to get to the line number information.  */
349
350
struct comp_unit
351
{
352
  /* Chain the previously read compilation units.  */
353
  struct comp_unit *next_unit;
354
355
  /* Chain the previously read compilation units that have no ranges yet.
356
     We scan these separately when we have a trie over the ranges.
357
     Unused if arange.high != 0. */
358
  struct comp_unit *next_unit_without_ranges;
359
360
  /* Likewise, chain the compilation unit read after this one.
361
     The comp units are stored in reversed reading order.  */
362
  struct comp_unit *prev_unit;
363
364
  /* Keep the bfd convenient (for memory allocation).  */
365
  bfd *abfd;
366
367
  /* The lowest and highest addresses contained in this compilation
368
     unit as specified in the compilation unit header.  */
369
  struct arange arange;
370
371
  /* The DW_AT_name attribute (for error messages).  */
372
  char *name;
373
374
  /* The abbrev hash table.  */
375
  struct abbrev_info **abbrevs;
376
377
  /* DW_AT_language.  */
378
  int lang;
379
380
  /* Note that an error was found by comp_unit_find_nearest_line.  */
381
  int error;
382
383
  /* The DW_AT_comp_dir attribute.  */
384
  char *comp_dir;
385
386
  /* TRUE if there is a line number table associated with this comp. unit.  */
387
  int stmtlist;
388
389
  /* Pointer to the current comp_unit so that we can find a given entry
390
     by its reference.  */
391
  bfd_byte *info_ptr_unit;
392
393
  /* The offset into .debug_line of the line number table.  */
394
  unsigned long line_offset;
395
396
  /* Pointer to the first child die for the comp unit.  */
397
  bfd_byte *first_child_die_ptr;
398
399
  /* The end of the comp unit.  */
400
  bfd_byte *end_ptr;
401
402
  /* The decoded line number, NULL if not yet decoded.  */
403
  struct line_info_table *line_table;
404
405
  /* A list of the functions found in this comp. unit.  */
406
  struct funcinfo *function_table;
407
408
  /* A table of function information references searchable by address.  */
409
  struct lookup_funcinfo *lookup_funcinfo_table;
410
411
  /* Number of functions in the function_table and sorted_function_table.  */
412
  bfd_size_type number_of_functions;
413
414
  /* A list of the variables found in this comp. unit.  */
415
  struct varinfo *variable_table;
416
417
  /* Pointers to dwarf2_debug structures.  */
418
  struct dwarf2_debug *stash;
419
  struct dwarf2_debug_file *file;
420
421
  /* DWARF format version for this unit - from unit header.  */
422
  int version;
423
424
  /* Address size for this unit - from unit header.  */
425
  unsigned char addr_size;
426
427
  /* Offset size for this unit - from unit header.  */
428
  unsigned char offset_size;
429
430
  /* Base address for this unit - from DW_AT_low_pc attribute of
431
     DW_TAG_compile_unit DIE */
432
  bfd_vma base_address;
433
434
  /* TRUE if symbols are cached in hash table for faster lookup by name.  */
435
  bool cached;
436
437
  /* Used when iterating over trie leaves to know which units we have
438
     already seen in this iteration.  */
439
  bool mark;
440
441
 /* Base address of debug_addr section.  */
442
  size_t dwarf_addr_offset;
443
444
  /* Base address of string offset table.  */
445
  size_t dwarf_str_offset;
446
};
447
448
/* This data structure holds the information of an abbrev.  */
449
struct abbrev_info
450
{
451
  unsigned int         number;    /* Number identifying abbrev.  */
452
  enum dwarf_tag       tag;   /* DWARF tag.  */
453
  bool                 has_children;  /* TRUE if the abbrev has children.  */
454
  unsigned int         num_attrs; /* Number of attributes.  */
455
  struct attr_abbrev * attrs;   /* An array of attribute descriptions.  */
456
  struct abbrev_info * next;    /* Next in chain.  */
457
};
458
459
struct attr_abbrev
460
{
461
  enum dwarf_attribute name;
462
  enum dwarf_form form;
463
  bfd_vma implicit_const;
464
};
465
466
/* Map of uncompressed DWARF debug section name to compressed one.  It
467
   is terminated by NULL uncompressed_name.  */
468
469
const struct dwarf_debug_section dwarf_debug_sections[] =
470
{
471
  { ".debug_abbrev",    ".zdebug_abbrev" },
472
  { ".debug_aranges",   ".zdebug_aranges" },
473
  { ".debug_frame",   ".zdebug_frame" },
474
  { ".debug_info",    ".zdebug_info" },
475
  { ".debug_info",    ".zdebug_info" },
476
  { ".debug_line",    ".zdebug_line" },
477
  { ".debug_loc",   ".zdebug_loc" },
478
  { ".debug_macinfo",   ".zdebug_macinfo" },
479
  { ".debug_macro",   ".zdebug_macro" },
480
  { ".debug_pubnames",    ".zdebug_pubnames" },
481
  { ".debug_pubtypes",    ".zdebug_pubtypes" },
482
  { ".debug_ranges",    ".zdebug_ranges" },
483
  { ".debug_rnglists",    ".zdebug_rnglist" },
484
  { ".debug_static_func", ".zdebug_static_func" },
485
  { ".debug_static_vars", ".zdebug_static_vars" },
486
  { ".debug_str",   ".zdebug_str", },
487
  { ".debug_str",   ".zdebug_str", },
488
  { ".debug_str_offsets", ".zdebug_str_offsets", },
489
  { ".debug_addr",    ".zdebug_addr", },
490
  { ".debug_line_str",    ".zdebug_line_str", },
491
  { ".debug_types",   ".zdebug_types" },
492
  /* GNU DWARF 1 extensions */
493
  { ".debug_sfnames",   ".zdebug_sfnames" },
494
  { ".debug_srcinfo",   ".zebug_srcinfo" },
495
  /* SGI/MIPS DWARF 2 extensions */
496
  { ".debug_funcnames",   ".zdebug_funcnames" },
497
  { ".debug_typenames",   ".zdebug_typenames" },
498
  { ".debug_varnames",    ".zdebug_varnames" },
499
  { ".debug_weaknames",   ".zdebug_weaknames" },
500
  { NULL,     NULL },
501
};
502
503
/* NB/ Numbers in this enum must match up with indices
504
   into the dwarf_debug_sections[] array above.  */
505
enum dwarf_debug_section_enum
506
{
507
  debug_abbrev = 0,
508
  debug_aranges,
509
  debug_frame,
510
  debug_info,
511
  debug_info_alt,
512
  debug_line,
513
  debug_loc,
514
  debug_macinfo,
515
  debug_macro,
516
  debug_pubnames,
517
  debug_pubtypes,
518
  debug_ranges,
519
  debug_rnglists,
520
  debug_static_func,
521
  debug_static_vars,
522
  debug_str,
523
  debug_str_alt,
524
  debug_str_offsets,
525
  debug_addr,
526
  debug_line_str,
527
  debug_types,
528
  debug_sfnames,
529
  debug_srcinfo,
530
  debug_funcnames,
531
  debug_typenames,
532
  debug_varnames,
533
  debug_weaknames,
534
  debug_max
535
};
536
537
/* A static assertion.  */
538
extern int dwarf_debug_section_assert[ARRAY_SIZE (dwarf_debug_sections)
539
              == debug_max + 1 ? 1 : -1];
540
541
#ifndef ABBREV_HASH_SIZE
542
186k
#define ABBREV_HASH_SIZE 121
543
#endif
544
#ifndef ATTR_ALLOC_CHUNK
545
44.4k
#define ATTR_ALLOC_CHUNK 4
546
#endif
547
548
/* Variable and function hash tables.  This is used to speed up look-up
549
   in lookup_symbol_in_var_table() and lookup_symbol_in_function_table().
550
   In order to share code between variable and function infos, we use
551
   a list of untyped pointer for all variable/function info associated with
552
   a symbol.  We waste a bit of memory for list with one node but that
553
   simplifies the code.  */
554
555
struct info_list_node
556
{
557
  struct info_list_node *next;
558
  void *info;
559
};
560
561
/* Info hash entry.  */
562
struct info_hash_entry
563
{
564
  struct bfd_hash_entry root;
565
  struct info_list_node *head;
566
};
567
568
struct info_hash_table
569
{
570
  struct bfd_hash_table base;
571
};
572
573
/* Function to create a new entry in info hash table.  */
574
575
static struct bfd_hash_entry *
576
info_hash_table_newfunc (struct bfd_hash_entry *entry,
577
       struct bfd_hash_table *table,
578
       const char *string)
579
0
{
580
0
  struct info_hash_entry *ret = (struct info_hash_entry *) entry;
581
582
  /* Allocate the structure if it has not already been allocated by a
583
     derived class.  */
584
0
  if (ret == NULL)
585
0
    {
586
0
      ret = (struct info_hash_entry *) bfd_hash_allocate (table,
587
0
                sizeof (* ret));
588
0
      if (ret == NULL)
589
0
  return NULL;
590
0
    }
591
592
  /* Call the allocation method of the base class.  */
593
0
  ret = ((struct info_hash_entry *)
594
0
   bfd_hash_newfunc ((struct bfd_hash_entry *) ret, table, string));
595
596
  /* Initialize the local fields here.  */
597
0
  if (ret)
598
0
    ret->head = NULL;
599
600
0
  return (struct bfd_hash_entry *) ret;
601
0
}
602
603
/* Function to create a new info hash table.  It returns a pointer to the
604
   newly created table or NULL if there is any error.  We need abfd
605
   solely for memory allocation.  */
606
607
static struct info_hash_table *
608
create_info_hash_table (bfd *abfd)
609
0
{
610
0
  struct info_hash_table *hash_table;
611
612
0
  hash_table = ((struct info_hash_table *)
613
0
    bfd_alloc (abfd, sizeof (struct info_hash_table)));
614
0
  if (!hash_table)
615
0
    return hash_table;
616
617
0
  if (!bfd_hash_table_init (&hash_table->base, info_hash_table_newfunc,
618
0
          sizeof (struct info_hash_entry)))
619
0
    {
620
0
      bfd_release (abfd, hash_table);
621
0
      return NULL;
622
0
    }
623
624
0
  return hash_table;
625
0
}
626
627
/* Insert an info entry into an info hash table.  We do not check of
628
   duplicate entries.  Also, the caller need to guarantee that the
629
   right type of info in inserted as info is passed as a void* pointer.
630
   This function returns true if there is no error.  */
631
632
static bool
633
insert_info_hash_table (struct info_hash_table *hash_table,
634
      const char *key,
635
      void *info,
636
      bool copy_p)
637
0
{
638
0
  struct info_hash_entry *entry;
639
0
  struct info_list_node *node;
640
641
0
  entry = (struct info_hash_entry*) bfd_hash_lookup (&hash_table->base,
642
0
                 key, true, copy_p);
643
0
  if (!entry)
644
0
    return false;
645
646
0
  node = (struct info_list_node *) bfd_hash_allocate (&hash_table->base,
647
0
                  sizeof (*node));
648
0
  if (!node)
649
0
    return false;
650
651
0
  node->info = info;
652
0
  node->next = entry->head;
653
0
  entry->head = node;
654
655
0
  return true;
656
0
}
657
658
/* Look up an info entry list from an info hash table.  Return NULL
659
   if there is none.  */
660
661
static struct info_list_node *
662
lookup_info_hash_table (struct info_hash_table *hash_table, const char *key)
663
0
{
664
0
  struct info_hash_entry *entry;
665
666
0
  entry = (struct info_hash_entry*) bfd_hash_lookup (&hash_table->base, key,
667
0
                 false, false);
668
0
  return entry ? entry->head : NULL;
669
0
}
670
671
/* Read a section into its appropriate place in the dwarf2_debug
672
   struct (indicated by SECTION_BUFFER and SECTION_SIZE).  If SYMS is
673
   not NULL, use bfd_simple_get_relocated_section_contents to read the
674
   section contents, otherwise use bfd_get_section_contents.  Fail if
675
   the located section does not contain at least OFFSET bytes.  */
676
677
static bool
678
read_section (bfd *abfd,
679
        const struct dwarf_debug_section *sec,
680
        asymbol **syms,
681
        uint64_t offset,
682
        bfd_byte **section_buffer,
683
        bfd_size_type *section_size)
684
17.6k
{
685
17.6k
  const char *section_name = sec->uncompressed_name;
686
17.6k
  bfd_byte *contents = *section_buffer;
687
688
  /* The section may have already been read.  */
689
17.6k
  if (contents == NULL)
690
11.2k
    {
691
11.2k
      bfd_size_type amt;
692
11.2k
      asection *msec;
693
694
11.2k
      msec = bfd_get_section_by_name (abfd, section_name);
695
11.2k
      if (msec == NULL)
696
2.48k
  {
697
2.48k
    section_name = sec->compressed_name;
698
2.48k
          msec = bfd_get_section_by_name (abfd, section_name);
699
2.48k
  }
700
11.2k
      if (msec == NULL)
701
2.48k
  {
702
2.48k
    _bfd_error_handler (_("DWARF error: can't find %s section."),
703
2.48k
            sec->uncompressed_name);
704
2.48k
    bfd_set_error (bfd_error_bad_value);
705
2.48k
    return false;
706
2.48k
  }
707
708
8.75k
      if ((msec->flags & SEC_HAS_CONTENTS) == 0)
709
13
  {
710
13
    _bfd_error_handler (_("DWARF error: section %s has no contents"),
711
13
            section_name);
712
13
    bfd_set_error (bfd_error_no_contents);
713
13
    return false;
714
13
  }
715
716
8.73k
      if (bfd_section_size_insane (abfd, msec))
717
1.44k
  {
718
    /* PR 26946 */
719
1.44k
    _bfd_error_handler (_("DWARF error: section %s is too big"),
720
1.44k
            section_name);
721
1.44k
    return false;
722
1.44k
  }
723
7.29k
      amt = bfd_get_section_limit_octets (abfd, msec);
724
7.29k
      *section_size = amt;
725
      /* Paranoia - alloc one extra so that we can make sure a string
726
   section is NUL terminated.  */
727
7.29k
      amt += 1;
728
7.29k
      if (amt == 0)
729
0
  {
730
    /* Paranoia - this should never happen.  */
731
0
    bfd_set_error (bfd_error_no_memory);
732
0
    return false;
733
0
  }
734
7.29k
      contents = (bfd_byte *) bfd_malloc (amt);
735
7.29k
      if (contents == NULL)
736
1
  return false;
737
7.29k
      if (syms
738
7.29k
    ? !bfd_simple_get_relocated_section_contents (abfd, msec, contents,
739
5.71k
              syms)
740
7.29k
    : !bfd_get_section_contents (abfd, msec, contents, 0, *section_size))
741
2.62k
  {
742
2.62k
    free (contents);
743
2.62k
    return false;
744
2.62k
  }
745
4.67k
      contents[*section_size] = 0;
746
4.67k
      *section_buffer = contents;
747
4.67k
    }
748
749
  /* It is possible to get a bad value for the offset into the section
750
     that the client wants.  Validate it here to avoid trouble later.  */
751
11.0k
  if (offset != 0 && offset >= *section_size)
752
596
    {
753
      /* xgettext: c-format */
754
596
      _bfd_error_handler (_("DWARF error: offset (%" PRIu64 ")"
755
596
          " greater than or equal to %s size (%" PRIu64 ")"),
756
596
        (uint64_t) offset, section_name,
757
596
        (uint64_t) *section_size);
758
596
      bfd_set_error (bfd_error_bad_value);
759
596
      return false;
760
596
    }
761
762
10.4k
  return true;
763
11.0k
}
764
765
/* Read dwarf information from a buffer.  */
766
767
static inline uint64_t
768
read_n_bytes (bfd *abfd, bfd_byte **ptr, bfd_byte *end, int n)
769
188k
{
770
188k
  bfd_byte *buf = *ptr;
771
188k
  if (end - buf < n)
772
105
    {
773
105
      *ptr = end;
774
105
      return 0;
775
105
    }
776
187k
  *ptr = buf + n;
777
187k
  return bfd_get (n * 8, abfd, buf);
778
187k
}
779
780
static unsigned int
781
read_1_byte (bfd *abfd, bfd_byte **ptr, bfd_byte *end)
782
154k
{
783
154k
  return read_n_bytes (abfd, ptr, end, 1);
784
154k
}
785
786
static int
787
read_1_signed_byte (bfd *abfd ATTRIBUTE_UNUSED, bfd_byte **ptr, bfd_byte *end)
788
885
{
789
885
  bfd_byte *buf = *ptr;
790
885
  if (end - buf < 1)
791
0
    {
792
0
      *ptr = end;
793
0
      return 0;
794
0
    }
795
885
  *ptr = buf + 1;
796
885
  return bfd_get_signed_8 (abfd, buf);
797
885
}
798
799
static unsigned int
800
read_2_bytes (bfd *abfd, bfd_byte **ptr, bfd_byte *end)
801
4.79k
{
802
4.79k
  return read_n_bytes (abfd, ptr, end, 2);
803
4.79k
}
804
805
static unsigned int
806
read_3_bytes (bfd *abfd, bfd_byte **ptr, bfd_byte *end)
807
103
{
808
103
  unsigned int val = read_1_byte (abfd, ptr, end);
809
103
  val <<= 8;
810
103
  val |= read_1_byte (abfd, ptr, end);
811
103
  val <<= 8;
812
103
  val |= read_1_byte (abfd, ptr, end);
813
103
  if (bfd_little_endian (abfd))
814
103
    val = (((val >> 16) & 0xff)
815
103
     | (val & 0xff00)
816
103
     | ((val & 0xff) << 16));
817
103
  return val;
818
103
}
819
820
static unsigned int
821
read_4_bytes (bfd *abfd, bfd_byte **ptr, bfd_byte *end)
822
27.7k
{
823
27.7k
  return read_n_bytes (abfd, ptr, end, 4);
824
27.7k
}
825
826
static uint64_t
827
read_8_bytes (bfd *abfd, bfd_byte **ptr, bfd_byte *end)
828
1.00k
{
829
1.00k
  return read_n_bytes (abfd, ptr, end, 8);
830
1.00k
}
831
832
static struct dwarf_block *
833
read_blk (bfd *abfd, bfd_byte **ptr, bfd_byte *end, size_t size)
834
1.03k
{
835
1.03k
  bfd_byte *buf = *ptr;
836
1.03k
  struct dwarf_block *block;
837
838
1.03k
  block = (struct dwarf_block *) bfd_alloc (abfd, sizeof (*block));
839
1.03k
  if (block == NULL)
840
0
    return NULL;
841
842
1.03k
  if (size > (size_t) (end - buf))
843
29
    {
844
29
      *ptr = end;
845
29
      block->data = NULL;
846
29
      block->size = 0;
847
29
    }
848
1.00k
  else
849
1.00k
    {
850
1.00k
      *ptr = buf + size;
851
1.00k
      block->data = buf;
852
1.00k
      block->size = size;
853
1.00k
    }
854
1.03k
  return block;
855
1.03k
}
856
857
/* Scans a NUL terminated string starting at *PTR, returning a pointer to it.
858
   Bytes at or beyond BUF_END will not be read.  Returns NULL if the
859
   terminator is not found or if the string is empty.  *PTR is
860
   incremented over the bytes scanned, including the terminator.  */
861
862
static char *
863
read_string (bfd_byte **ptr,
864
       bfd_byte *buf_end)
865
6.16k
{
866
6.16k
  bfd_byte *buf = *ptr;
867
6.16k
  bfd_byte *str = buf;
868
869
51.4k
  while (buf < buf_end)
870
51.3k
    if (*buf++ == 0)
871
6.06k
      {
872
6.06k
  if (str == buf - 1)
873
1.65k
    break;
874
4.40k
  *ptr = buf;
875
4.40k
  return (char *) str;
876
6.06k
      }
877
878
1.76k
  *ptr = buf;
879
1.76k
  return NULL;
880
6.16k
}
881
882
/* Reads an offset from *PTR and then locates the string at this offset
883
   inside the debug string section.  Returns a pointer to the string.
884
   Increments *PTR by the number of bytes read for the offset.  This
885
   value is set even if the function fails.  Bytes at or beyond
886
   BUF_END will not be read.  Returns NULL if there was a problem, or
887
   if the string is empty.  Does not check for NUL termination of the
888
   string.  */
889
890
static char *
891
read_indirect_string (struct comp_unit *unit,
892
          bfd_byte **ptr,
893
          bfd_byte *buf_end)
894
11.7k
{
895
11.7k
  uint64_t offset;
896
11.7k
  struct dwarf2_debug *stash = unit->stash;
897
11.7k
  struct dwarf2_debug_file *file = unit->file;
898
11.7k
  char *str;
899
900
11.7k
  if (unit->offset_size > (size_t) (buf_end - *ptr))
901
7
    {
902
7
      *ptr = buf_end;
903
7
      return NULL;
904
7
    }
905
906
11.7k
  if (unit->offset_size == 4)
907
11.7k
    offset = read_4_bytes (unit->abfd, ptr, buf_end);
908
0
  else
909
0
    offset = read_8_bytes (unit->abfd, ptr, buf_end);
910
911
11.7k
  if (! read_section (unit->abfd, &stash->debug_sections[debug_str],
912
11.7k
          file->syms, offset,
913
11.7k
          &file->dwarf_str_buffer, &file->dwarf_str_size))
914
5.44k
    return NULL;
915
916
6.31k
  str = (char *) file->dwarf_str_buffer + offset;
917
6.31k
  if (*str == '\0')
918
532
    return NULL;
919
5.78k
  return str;
920
6.31k
}
921
922
/* Like read_indirect_string but from .debug_line_str section.  */
923
924
static char *
925
read_indirect_line_string (struct comp_unit *unit,
926
         bfd_byte **ptr,
927
         bfd_byte *buf_end)
928
25
{
929
25
  uint64_t offset;
930
25
  struct dwarf2_debug *stash = unit->stash;
931
25
  struct dwarf2_debug_file *file = unit->file;
932
25
  char *str;
933
934
25
  if (unit->offset_size > (size_t) (buf_end - *ptr))
935
1
    {
936
1
      *ptr = buf_end;
937
1
      return NULL;
938
1
    }
939
940
24
  if (unit->offset_size == 4)
941
24
    offset = read_4_bytes (unit->abfd, ptr, buf_end);
942
0
  else
943
0
    offset = read_8_bytes (unit->abfd, ptr, buf_end);
944
945
24
  if (! read_section (unit->abfd, &stash->debug_sections[debug_line_str],
946
24
          file->syms, offset,
947
24
          &file->dwarf_line_str_buffer,
948
24
          &file->dwarf_line_str_size))
949
24
    return NULL;
950
951
0
  str = (char *) file->dwarf_line_str_buffer + offset;
952
0
  if (*str == '\0')
953
0
    return NULL;
954
0
  return str;
955
0
}
956
957
/* Like read_indirect_string but uses a .debug_str located in
958
   an alternate file pointed to by the .gnu_debugaltlink section.
959
   Used to impement DW_FORM_GNU_strp_alt.  */
960
961
static char *
962
read_alt_indirect_string (struct comp_unit *unit,
963
        bfd_byte **ptr,
964
        bfd_byte *buf_end)
965
0
{
966
0
  uint64_t offset;
967
0
  struct dwarf2_debug *stash = unit->stash;
968
0
  char *str;
969
970
0
  if (unit->offset_size > (size_t) (buf_end - *ptr))
971
0
    {
972
0
      *ptr = buf_end;
973
0
      return NULL;
974
0
    }
975
976
0
  if (unit->offset_size == 4)
977
0
    offset = read_4_bytes (unit->abfd, ptr, buf_end);
978
0
  else
979
0
    offset = read_8_bytes (unit->abfd, ptr, buf_end);
980
981
0
  if (stash->alt.bfd_ptr == NULL)
982
0
    {
983
0
      bfd *debug_bfd;
984
0
      char *debug_filename = bfd_follow_gnu_debugaltlink (unit->abfd, DEBUGDIR);
985
986
0
      if (debug_filename == NULL)
987
0
  return NULL;
988
989
0
      debug_bfd = bfd_openr (debug_filename, NULL);
990
0
      free (debug_filename);
991
0
      if (debug_bfd == NULL)
992
  /* FIXME: Should we report our failure to follow the debuglink ?  */
993
0
  return NULL;
994
995
0
      if (!bfd_check_format (debug_bfd, bfd_object))
996
0
  {
997
0
    bfd_close (debug_bfd);
998
0
    return NULL;
999
0
  }
1000
0
      stash->alt.bfd_ptr = debug_bfd;
1001
0
    }
1002
1003
0
  if (! read_section (unit->stash->alt.bfd_ptr,
1004
0
          stash->debug_sections + debug_str_alt,
1005
0
          stash->alt.syms, offset,
1006
0
          &stash->alt.dwarf_str_buffer,
1007
0
          &stash->alt.dwarf_str_size))
1008
0
    return NULL;
1009
1010
0
  str = (char *) stash->alt.dwarf_str_buffer + offset;
1011
0
  if (*str == '\0')
1012
0
    return NULL;
1013
1014
0
  return str;
1015
0
}
1016
1017
/* Resolve an alternate reference from UNIT at OFFSET.
1018
   Returns a pointer into the loaded alternate CU upon success
1019
   or NULL upon failure.  */
1020
1021
static bfd_byte *
1022
read_alt_indirect_ref (struct comp_unit *unit, uint64_t offset)
1023
0
{
1024
0
  struct dwarf2_debug *stash = unit->stash;
1025
1026
0
  if (stash->alt.bfd_ptr == NULL)
1027
0
    {
1028
0
      bfd *debug_bfd;
1029
0
      char *debug_filename = bfd_follow_gnu_debugaltlink (unit->abfd, DEBUGDIR);
1030
1031
0
      if (debug_filename == NULL)
1032
0
  return NULL;
1033
1034
0
      debug_bfd = bfd_openr (debug_filename, NULL);
1035
0
      free (debug_filename);
1036
0
      if (debug_bfd == NULL)
1037
  /* FIXME: Should we report our failure to follow the debuglink ?  */
1038
0
  return NULL;
1039
1040
0
      if (!bfd_check_format (debug_bfd, bfd_object))
1041
0
  {
1042
0
    bfd_close (debug_bfd);
1043
0
    return NULL;
1044
0
  }
1045
0
      stash->alt.bfd_ptr = debug_bfd;
1046
0
    }
1047
1048
0
  if (! read_section (unit->stash->alt.bfd_ptr,
1049
0
          stash->debug_sections + debug_info_alt,
1050
0
          stash->alt.syms, offset,
1051
0
          &stash->alt.dwarf_info_buffer,
1052
0
          &stash->alt.dwarf_info_size))
1053
0
    return NULL;
1054
1055
0
  return stash->alt.dwarf_info_buffer + offset;
1056
0
}
1057
1058
static uint64_t
1059
read_address (struct comp_unit *unit, bfd_byte **ptr, bfd_byte *buf_end)
1060
18.0k
{
1061
18.0k
  bfd_byte *buf = *ptr;
1062
18.0k
  int signed_vma = 0;
1063
1064
18.0k
  if (bfd_get_flavour (unit->abfd) == bfd_target_elf_flavour)
1065
18.0k
    signed_vma = get_elf_backend_data (unit->abfd)->sign_extend_vma;
1066
1067
18.0k
  if (unit->addr_size > (size_t) (buf_end - buf))
1068
8
    {
1069
8
      *ptr = buf_end;
1070
8
      return 0;
1071
8
    }
1072
1073
18.0k
  *ptr = buf + unit->addr_size;
1074
18.0k
  if (signed_vma)
1075
77
    {
1076
77
      switch (unit->addr_size)
1077
77
  {
1078
77
  case 8:
1079
77
    return bfd_get_signed_64 (unit->abfd, buf);
1080
0
  case 4:
1081
0
    return bfd_get_signed_32 (unit->abfd, buf);
1082
0
  case 2:
1083
0
    return bfd_get_signed_16 (unit->abfd, buf);
1084
0
  default:
1085
0
    abort ();
1086
77
  }
1087
77
    }
1088
17.9k
  else
1089
17.9k
    {
1090
17.9k
      switch (unit->addr_size)
1091
17.9k
  {
1092
17.9k
  case 8:
1093
17.9k
    return bfd_get_64 (unit->abfd, buf);
1094
48
  case 4:
1095
48
    return bfd_get_32 (unit->abfd, buf);
1096
0
  case 2:
1097
0
    return bfd_get_16 (unit->abfd, buf);
1098
0
  default:
1099
0
    abort ();
1100
17.9k
  }
1101
17.9k
    }
1102
18.0k
}
1103
1104
/* Lookup an abbrev_info structure in the abbrev hash table.  */
1105
1106
static struct abbrev_info *
1107
lookup_abbrev (unsigned int number, struct abbrev_info **abbrevs)
1108
21.8k
{
1109
21.8k
  unsigned int hash_number;
1110
21.8k
  struct abbrev_info *abbrev;
1111
1112
21.8k
  hash_number = number % ABBREV_HASH_SIZE;
1113
21.8k
  abbrev = abbrevs[hash_number];
1114
1115
21.9k
  while (abbrev)
1116
15.2k
    {
1117
15.2k
      if (abbrev->number == number)
1118
15.0k
  return abbrev;
1119
121
      else
1120
121
  abbrev = abbrev->next;
1121
15.2k
    }
1122
1123
6.77k
  return NULL;
1124
21.8k
}
1125
1126
/* We keep a hash table to map .debug_abbrev section offsets to the
1127
   array of abbrevs, so that compilation units using the same set of
1128
   abbrevs do not waste memory.  */
1129
1130
struct abbrev_offset_entry
1131
{
1132
  size_t offset;
1133
  struct abbrev_info **abbrevs;
1134
};
1135
1136
static hashval_t
1137
hash_abbrev (const void *p)
1138
1.38k
{
1139
1.38k
  const struct abbrev_offset_entry *ent = p;
1140
1.38k
  return htab_hash_pointer ((void *) ent->offset);
1141
1.38k
}
1142
1143
static int
1144
eq_abbrev (const void *pa, const void *pb)
1145
64
{
1146
64
  const struct abbrev_offset_entry *a = pa;
1147
64
  const struct abbrev_offset_entry *b = pb;
1148
64
  return a->offset == b->offset;
1149
64
}
1150
1151
static void
1152
del_abbrev (void *p)
1153
1.28k
{
1154
1.28k
  struct abbrev_offset_entry *ent = p;
1155
1.28k
  struct abbrev_info **abbrevs = ent->abbrevs;
1156
1.28k
  size_t i;
1157
1158
156k
  for (i = 0; i < ABBREV_HASH_SIZE; i++)
1159
155k
    {
1160
155k
      struct abbrev_info *abbrev = abbrevs[i];
1161
1162
162k
      while (abbrev)
1163
6.93k
  {
1164
6.93k
    free (abbrev->attrs);
1165
6.93k
    abbrev = abbrev->next;
1166
6.93k
  }
1167
155k
    }
1168
1.28k
  free (ent);
1169
1.28k
}
1170
1171
/* In DWARF version 2, the description of the debugging information is
1172
   stored in a separate .debug_abbrev section.  Before we read any
1173
   dies from a section we read in all abbreviations and install them
1174
   in a hash table.  */
1175
1176
static struct abbrev_info**
1177
read_abbrevs (bfd *abfd, uint64_t offset, struct dwarf2_debug *stash,
1178
        struct dwarf2_debug_file *file)
1179
1.38k
{
1180
1.38k
  struct abbrev_info **abbrevs;
1181
1.38k
  bfd_byte *abbrev_ptr;
1182
1.38k
  bfd_byte *abbrev_end;
1183
1.38k
  struct abbrev_info *cur_abbrev;
1184
1.38k
  unsigned int abbrev_number, abbrev_name;
1185
1.38k
  unsigned int abbrev_form, hash_number;
1186
1.38k
  size_t amt;
1187
1.38k
  void **slot;
1188
1.38k
  struct abbrev_offset_entry ent = { offset, NULL };
1189
1190
1.38k
  if (ent.offset != offset)
1191
0
    return NULL;
1192
1193
1.38k
  slot = htab_find_slot (file->abbrev_offsets, &ent, INSERT);
1194
1.38k
  if (slot == NULL)
1195
0
    return NULL;
1196
1.38k
  if (*slot != NULL)
1197
54
    return ((struct abbrev_offset_entry *) (*slot))->abbrevs;
1198
1199
1.33k
  if (! read_section (abfd, &stash->debug_sections[debug_abbrev],
1200
1.33k
          file->syms, offset,
1201
1.33k
          &file->dwarf_abbrev_buffer,
1202
1.33k
          &file->dwarf_abbrev_size))
1203
48
    return NULL;
1204
1205
1.28k
  amt = sizeof (struct abbrev_info*) * ABBREV_HASH_SIZE;
1206
1.28k
  abbrevs = (struct abbrev_info **) bfd_zalloc (abfd, amt);
1207
1.28k
  if (abbrevs == NULL)
1208
0
    return NULL;
1209
1210
1.28k
  abbrev_ptr = file->dwarf_abbrev_buffer + offset;
1211
1.28k
  abbrev_end = file->dwarf_abbrev_buffer + file->dwarf_abbrev_size;
1212
1.28k
  abbrev_number = _bfd_safe_read_leb128 (abfd, &abbrev_ptr,
1213
1.28k
           false, abbrev_end);
1214
1215
  /* Loop until we reach an abbrev number of 0.  */
1216
7.93k
  while (abbrev_number)
1217
6.93k
    {
1218
6.93k
      amt = sizeof (struct abbrev_info);
1219
6.93k
      cur_abbrev = (struct abbrev_info *) bfd_zalloc (abfd, amt);
1220
6.93k
      if (cur_abbrev == NULL)
1221
0
  goto fail;
1222
1223
      /* Read in abbrev header.  */
1224
6.93k
      cur_abbrev->number = abbrev_number;
1225
6.93k
      cur_abbrev->tag = (enum dwarf_tag)
1226
6.93k
  _bfd_safe_read_leb128 (abfd, &abbrev_ptr,
1227
6.93k
             false, abbrev_end);
1228
6.93k
      cur_abbrev->has_children = read_1_byte (abfd, &abbrev_ptr, abbrev_end);
1229
1230
      /* Now read in declarations.  */
1231
6.93k
      for (;;)
1232
40.2k
  {
1233
    /* Initialize it just to avoid a GCC false warning.  */
1234
40.2k
    bfd_vma implicit_const = -1;
1235
1236
40.2k
    abbrev_name = _bfd_safe_read_leb128 (abfd, &abbrev_ptr,
1237
40.2k
                 false, abbrev_end);
1238
40.2k
    abbrev_form = _bfd_safe_read_leb128 (abfd, &abbrev_ptr,
1239
40.2k
                 false, abbrev_end);
1240
40.2k
    if (abbrev_form == DW_FORM_implicit_const)
1241
18
      implicit_const = _bfd_safe_read_leb128 (abfd, &abbrev_ptr,
1242
18
                true, abbrev_end);
1243
40.2k
    if (abbrev_name == 0)
1244
6.93k
      break;
1245
1246
33.3k
    if ((cur_abbrev->num_attrs % ATTR_ALLOC_CHUNK) == 0)
1247
11.0k
      {
1248
11.0k
        struct attr_abbrev *tmp;
1249
1250
11.0k
        amt = cur_abbrev->num_attrs + ATTR_ALLOC_CHUNK;
1251
11.0k
        amt *= sizeof (struct attr_abbrev);
1252
11.0k
        tmp = (struct attr_abbrev *) bfd_realloc (cur_abbrev->attrs, amt);
1253
11.0k
        if (tmp == NULL)
1254
0
    goto fail;
1255
11.0k
        cur_abbrev->attrs = tmp;
1256
11.0k
      }
1257
1258
33.3k
    cur_abbrev->attrs[cur_abbrev->num_attrs].name
1259
33.3k
      = (enum dwarf_attribute) abbrev_name;
1260
33.3k
    cur_abbrev->attrs[cur_abbrev->num_attrs].form
1261
33.3k
      = (enum dwarf_form) abbrev_form;
1262
33.3k
    cur_abbrev->attrs[cur_abbrev->num_attrs].implicit_const
1263
33.3k
      = implicit_const;
1264
33.3k
    ++cur_abbrev->num_attrs;
1265
33.3k
  }
1266
1267
6.93k
      hash_number = abbrev_number % ABBREV_HASH_SIZE;
1268
6.93k
      cur_abbrev->next = abbrevs[hash_number];
1269
6.93k
      abbrevs[hash_number] = cur_abbrev;
1270
1271
      /* Get next abbreviation.
1272
   Under Irix6 the abbreviations for a compilation unit are not
1273
   always properly terminated with an abbrev number of 0.
1274
   Exit loop if we encounter an abbreviation which we have
1275
   already read (which means we are about to read the abbreviations
1276
   for the next compile unit) or if the end of the abbreviation
1277
   table is reached.  */
1278
6.93k
      if ((size_t) (abbrev_ptr - file->dwarf_abbrev_buffer)
1279
6.93k
    >= file->dwarf_abbrev_size)
1280
225
  break;
1281
6.70k
      abbrev_number = _bfd_safe_read_leb128 (abfd, &abbrev_ptr,
1282
6.70k
               false, abbrev_end);
1283
6.70k
      if (lookup_abbrev (abbrev_number, abbrevs) != NULL)
1284
55
  break;
1285
6.70k
    }
1286
1287
1.28k
  *slot = bfd_malloc (sizeof ent);
1288
1.28k
  if (!*slot)
1289
0
    goto fail;
1290
1.28k
  ent.abbrevs = abbrevs;
1291
1.28k
  memcpy (*slot, &ent, sizeof ent);
1292
1.28k
  return abbrevs;
1293
1294
0
 fail:
1295
0
  if (abbrevs != NULL)
1296
0
    {
1297
0
      size_t i;
1298
1299
0
      for (i = 0; i < ABBREV_HASH_SIZE; i++)
1300
0
  {
1301
0
    struct abbrev_info *abbrev = abbrevs[i];
1302
1303
0
    while (abbrev)
1304
0
      {
1305
0
        free (abbrev->attrs);
1306
0
        abbrev = abbrev->next;
1307
0
      }
1308
0
  }
1309
0
      free (abbrevs);
1310
0
    }
1311
0
  return NULL;
1312
1.28k
}
1313
1314
/* Returns true if the form is one which has a string value.  */
1315
1316
static bool
1317
is_str_form (const struct attribute *attr)
1318
5.09k
{
1319
5.09k
  switch (attr->form)
1320
5.09k
    {
1321
65
    case DW_FORM_string:
1322
4.81k
    case DW_FORM_strp:
1323
4.81k
    case DW_FORM_strx:
1324
4.84k
    case DW_FORM_strx1:
1325
4.86k
    case DW_FORM_strx2:
1326
4.87k
    case DW_FORM_strx3:
1327
4.89k
    case DW_FORM_strx4:
1328
4.89k
    case DW_FORM_line_strp:
1329
4.89k
    case DW_FORM_GNU_strp_alt:
1330
4.89k
      return true;
1331
1332
196
    default:
1333
196
      return false;
1334
5.09k
    }
1335
5.09k
}
1336
1337
/* Returns true if the form is one which has an integer value.  */
1338
1339
static bool
1340
is_int_form (const struct attribute *attr)
1341
10.8k
{
1342
10.8k
  switch (attr->form)
1343
10.8k
    {
1344
1.73k
    case DW_FORM_addr:
1345
3.00k
    case DW_FORM_data2:
1346
3.80k
    case DW_FORM_data4:
1347
4.38k
    case DW_FORM_data8:
1348
7.54k
    case DW_FORM_data1:
1349
7.56k
    case DW_FORM_flag:
1350
7.57k
    case DW_FORM_sdata:
1351
7.58k
    case DW_FORM_udata:
1352
7.60k
    case DW_FORM_ref_addr:
1353
7.80k
    case DW_FORM_ref1:
1354
7.85k
    case DW_FORM_ref2:
1355
8.38k
    case DW_FORM_ref4:
1356
8.39k
    case DW_FORM_ref8:
1357
8.40k
    case DW_FORM_ref_udata:
1358
10.3k
    case DW_FORM_sec_offset:
1359
10.5k
    case DW_FORM_flag_present:
1360
10.5k
    case DW_FORM_ref_sig8:
1361
10.5k
    case DW_FORM_addrx:
1362
10.5k
    case DW_FORM_implicit_const:
1363
10.6k
    case DW_FORM_addrx1:
1364
10.6k
    case DW_FORM_addrx2:
1365
10.6k
    case DW_FORM_addrx3:
1366
10.6k
    case DW_FORM_addrx4:
1367
10.6k
    case DW_FORM_GNU_ref_alt:
1368
10.6k
      return true;
1369
1370
182
    default:
1371
182
      return false;
1372
10.8k
    }
1373
10.8k
}
1374
1375
/* Returns true if the form is strx[1-4].  */
1376
1377
static inline bool
1378
is_strx_form (enum dwarf_form form)
1379
9.19k
{
1380
9.19k
  return (form == DW_FORM_strx
1381
9.17k
    || form == DW_FORM_strx1
1382
8.99k
    || form == DW_FORM_strx2
1383
8.95k
    || form == DW_FORM_strx3
1384
8.90k
    || form == DW_FORM_strx4);
1385
9.19k
}
1386
1387
/* Return true if the form is addrx[1-4].  */
1388
1389
static inline bool
1390
is_addrx_form (enum dwarf_form form)
1391
8.96k
{
1392
8.96k
  return (form == DW_FORM_addrx
1393
8.85k
    || form == DW_FORM_addrx1
1394
8.81k
    || form == DW_FORM_addrx2
1395
8.80k
    || form == DW_FORM_addrx3
1396
8.76k
    || form == DW_FORM_addrx4);
1397
8.96k
}
1398
1399
/* Returns the address in .debug_addr section using DW_AT_addr_base.
1400
   Used to implement DW_FORM_addrx*.  */
1401
static uint64_t
1402
read_indexed_address (uint64_t idx, struct comp_unit *unit)
1403
111
{
1404
111
  struct dwarf2_debug *stash = unit->stash;
1405
111
  struct dwarf2_debug_file *file = unit->file;
1406
111
  bfd_byte *info_ptr;
1407
111
  size_t offset;
1408
1409
111
  if (stash == NULL)
1410
0
    return 0;
1411
1412
111
  if (!read_section (unit->abfd, &stash->debug_sections[debug_addr],
1413
111
         file->syms, 0,
1414
111
         &file->dwarf_addr_buffer, &file->dwarf_addr_size))
1415
104
    return 0;
1416
1417
7
  if (_bfd_mul_overflow (idx, unit->addr_size, &offset))
1418
0
    return 0;
1419
1420
7
  offset += unit->dwarf_addr_offset;
1421
7
  if (offset < unit->dwarf_addr_offset
1422
7
      || offset > file->dwarf_addr_size
1423
2
      || file->dwarf_addr_size - offset < unit->addr_size)
1424
5
    return 0;
1425
1426
2
  info_ptr = file->dwarf_addr_buffer + offset;
1427
1428
2
  if (unit->addr_size == 4)
1429
2
    return bfd_get_32 (unit->abfd, info_ptr);
1430
0
  else if (unit->addr_size == 8)
1431
0
    return bfd_get_64 (unit->abfd, info_ptr);
1432
0
  else
1433
0
    return 0;
1434
2
}
1435
1436
/* Returns the string using DW_AT_str_offsets_base.
1437
   Used to implement DW_FORM_strx*.  */
1438
static const char *
1439
read_indexed_string (uint64_t idx, struct comp_unit *unit)
1440
200
{
1441
200
  struct dwarf2_debug *stash = unit->stash;
1442
200
  struct dwarf2_debug_file *file = unit->file;
1443
200
  bfd_byte *info_ptr;
1444
200
  uint64_t str_offset;
1445
200
  size_t offset;
1446
1447
200
  if (stash == NULL)
1448
0
    return NULL;
1449
1450
200
  if (!read_section (unit->abfd, &stash->debug_sections[debug_str],
1451
200
         file->syms, 0,
1452
200
         &file->dwarf_str_buffer, &file->dwarf_str_size))
1453
150
    return NULL;
1454
1455
50
  if (!read_section (unit->abfd, &stash->debug_sections[debug_str_offsets],
1456
50
         file->syms, 0,
1457
50
         &file->dwarf_str_offsets_buffer,
1458
50
         &file->dwarf_str_offsets_size))
1459
43
    return NULL;
1460
1461
7
  if (_bfd_mul_overflow (idx, unit->offset_size, &offset))
1462
0
    return NULL;
1463
1464
7
  offset += unit->dwarf_str_offset;
1465
7
  if (offset < unit->dwarf_str_offset
1466
7
      || offset > file->dwarf_str_offsets_size
1467
7
      || file->dwarf_str_offsets_size - offset < unit->offset_size)
1468
0
    return NULL;
1469
1470
7
  info_ptr = file->dwarf_str_offsets_buffer + offset;
1471
1472
7
  if (unit->offset_size == 4)
1473
7
    str_offset = bfd_get_32 (unit->abfd, info_ptr);
1474
0
  else if (unit->offset_size == 8)
1475
0
    str_offset = bfd_get_64 (unit->abfd, info_ptr);
1476
0
  else
1477
0
    return NULL;
1478
1479
7
  if (str_offset >= file->dwarf_str_size)
1480
2
    return NULL;
1481
5
  return (const char *) file->dwarf_str_buffer + str_offset;
1482
7
}
1483
1484
/* Read and fill in the value of attribute ATTR as described by FORM.
1485
   Read data starting from INFO_PTR, but never at or beyond INFO_PTR_END.
1486
   Returns an updated INFO_PTR taking into account the amount of data read.  */
1487
1488
static bfd_byte *
1489
read_attribute_value (struct attribute *  attr,
1490
          unsigned      form,
1491
          bfd_vma     implicit_const,
1492
          struct comp_unit *  unit,
1493
          bfd_byte *    info_ptr,
1494
          bfd_byte *    info_ptr_end)
1495
58.6k
{
1496
58.6k
  bfd *abfd = unit->abfd;
1497
58.6k
  size_t amt;
1498
1499
58.6k
  if (info_ptr >= info_ptr_end && form != DW_FORM_flag_present)
1500
43
    {
1501
43
      _bfd_error_handler (_("DWARF error: info pointer extends beyond end of attributes"));
1502
43
      bfd_set_error (bfd_error_bad_value);
1503
43
      return NULL;
1504
43
    }
1505
1506
58.6k
  attr->form = (enum dwarf_form) form;
1507
1508
58.6k
  switch (form)
1509
58.6k
    {
1510
7.51k
    case DW_FORM_flag_present:
1511
7.51k
      attr->u.val = 1;
1512
7.51k
      break;
1513
84
    case DW_FORM_ref_addr:
1514
      /* DW_FORM_ref_addr is an address in DWARF2, and an offset in
1515
   DWARF3.  */
1516
84
      if (unit->version >= 3)
1517
83
  {
1518
83
    if (unit->offset_size == 4)
1519
83
      attr->u.val = read_4_bytes (unit->abfd, &info_ptr, info_ptr_end);
1520
0
    else
1521
0
      attr->u.val = read_8_bytes (unit->abfd, &info_ptr, info_ptr_end);
1522
83
    break;
1523
83
  }
1524
      /* FALLTHROUGH */
1525
6.33k
    case DW_FORM_addr:
1526
6.33k
      attr->u.val = read_address (unit, &info_ptr, info_ptr_end);
1527
6.33k
      break;
1528
0
    case DW_FORM_GNU_ref_alt:
1529
2.67k
    case DW_FORM_sec_offset:
1530
2.67k
      if (unit->offset_size == 4)
1531
2.67k
  attr->u.val = read_4_bytes (unit->abfd, &info_ptr, info_ptr_end);
1532
0
      else
1533
0
  attr->u.val = read_8_bytes (unit->abfd, &info_ptr, info_ptr_end);
1534
2.67k
      break;
1535
57
    case DW_FORM_block2:
1536
57
      amt = read_2_bytes (abfd, &info_ptr, info_ptr_end);
1537
57
      attr->u.blk = read_blk (abfd, &info_ptr, info_ptr_end, amt);
1538
57
      if (attr->u.blk == NULL)
1539
0
  return NULL;
1540
57
      break;
1541
57
    case DW_FORM_block4:
1542
24
      amt = read_4_bytes (abfd, &info_ptr, info_ptr_end);
1543
24
      attr->u.blk = read_blk (abfd, &info_ptr, info_ptr_end, amt);
1544
24
      if (attr->u.blk == NULL)
1545
0
  return NULL;
1546
24
      break;
1547
258
    case DW_FORM_ref1:
1548
329
    case DW_FORM_flag:
1549
16.3k
    case DW_FORM_data1:
1550
16.3k
      attr->u.val = read_1_byte (abfd, &info_ptr, info_ptr_end);
1551
16.3k
      break;
1552
305
    case DW_FORM_addrx1:
1553
305
      attr->u.val = read_1_byte (abfd, &info_ptr, info_ptr_end);
1554
      /* dwarf_addr_offset value 0 indicates the attribute DW_AT_addr_base
1555
   is not yet read.  */
1556
305
      if (unit->dwarf_addr_offset != 0)
1557
0
  attr->u.val = read_indexed_address (attr->u.val, unit);
1558
305
      break;
1559
2.06k
    case DW_FORM_data2:
1560
2.13k
    case DW_FORM_ref2:
1561
2.13k
      attr->u.val = read_2_bytes (abfd, &info_ptr, info_ptr_end);
1562
2.13k
      break;
1563
25
    case DW_FORM_addrx2:
1564
25
      attr->u.val = read_2_bytes (abfd, &info_ptr, info_ptr_end);
1565
25
      if (unit->dwarf_addr_offset != 0)
1566
0
  attr->u.val = read_indexed_address (attr->u.val, unit);
1567
25
      break;
1568
48
    case DW_FORM_addrx3:
1569
48
      attr->u.val = read_3_bytes (abfd, &info_ptr, info_ptr_end);
1570
48
      if (unit->dwarf_addr_offset != 0)
1571
1
  attr->u.val = read_indexed_address(attr->u.val, unit);
1572
48
      break;
1573
6.23k
    case DW_FORM_ref4:
1574
7.73k
    case DW_FORM_data4:
1575
7.73k
      attr->u.val = read_4_bytes (abfd, &info_ptr, info_ptr_end);
1576
7.73k
      break;
1577
186
    case DW_FORM_addrx4:
1578
186
      attr->u.val = read_4_bytes (abfd, &info_ptr, info_ptr_end);
1579
186
      if (unit->dwarf_addr_offset != 0)
1580
0
  attr->u.val = read_indexed_address (attr->u.val, unit);
1581
186
      break;
1582
845
    case DW_FORM_data8:
1583
868
    case DW_FORM_ref8:
1584
965
    case DW_FORM_ref_sig8:
1585
965
      attr->u.val = read_8_bytes (abfd, &info_ptr, info_ptr_end);
1586
965
      break;
1587
460
    case DW_FORM_string:
1588
460
      attr->u.str = read_string (&info_ptr, info_ptr_end);
1589
460
      break;
1590
11.7k
    case DW_FORM_strp:
1591
11.7k
      attr->u.str = read_indirect_string (unit, &info_ptr, info_ptr_end);
1592
11.7k
      break;
1593
25
    case DW_FORM_line_strp:
1594
25
      attr->u.str = read_indirect_line_string (unit, &info_ptr, info_ptr_end);
1595
25
      break;
1596
0
    case DW_FORM_GNU_strp_alt:
1597
0
      attr->u.str = read_alt_indirect_string (unit, &info_ptr, info_ptr_end);
1598
0
      break;
1599
114
    case DW_FORM_strx1:
1600
114
      attr->u.val = read_1_byte (abfd, &info_ptr, info_ptr_end);
1601
      /* dwarf_str_offset value 0 indicates the attribute DW_AT_str_offsets_base
1602
   is not yet read.  */
1603
114
      if (unit->dwarf_str_offset != 0)
1604
0
  attr->u.str = (char *) read_indexed_string (attr->u.val, unit);
1605
114
      else
1606
114
  attr->u.str = NULL;
1607
114
      break;
1608
80
    case DW_FORM_strx2:
1609
80
      attr->u.val = read_2_bytes (abfd, &info_ptr, info_ptr_end);
1610
80
      if (unit->dwarf_str_offset != 0)
1611
0
  attr->u.str = (char *) read_indexed_string (attr->u.val, unit);
1612
80
      else
1613
80
  attr->u.str = NULL;
1614
80
      break;
1615
55
    case DW_FORM_strx3:
1616
55
      attr->u.val = read_3_bytes (abfd, &info_ptr, info_ptr_end);
1617
55
      if (unit->dwarf_str_offset != 0)
1618
0
  attr->u.str = (char *) read_indexed_string (attr->u.val, unit);
1619
55
      else
1620
55
  attr->u.str = NULL;
1621
55
      break;
1622
121
    case DW_FORM_strx4:
1623
121
      attr->u.val = read_4_bytes (abfd, &info_ptr, info_ptr_end);
1624
121
      if (unit->dwarf_str_offset != 0)
1625
0
  attr->u.str = (char *) read_indexed_string (attr->u.val, unit);
1626
121
      else
1627
121
  attr->u.str = NULL;
1628
121
      break;
1629
33
    case DW_FORM_strx:
1630
33
      attr->u.val = _bfd_safe_read_leb128 (abfd, &info_ptr,
1631
33
             false, info_ptr_end);
1632
33
      if (unit->dwarf_str_offset != 0)
1633
0
  attr->u.str = (char *) read_indexed_string (attr->u.val, unit);
1634
33
      else
1635
33
  attr->u.str = NULL;
1636
33
      break;
1637
743
    case DW_FORM_exprloc:
1638
819
    case DW_FORM_block:
1639
819
      amt = _bfd_safe_read_leb128 (abfd, &info_ptr,
1640
819
           false, info_ptr_end);
1641
819
      attr->u.blk = read_blk (abfd, &info_ptr, info_ptr_end, amt);
1642
819
      if (attr->u.blk == NULL)
1643
0
  return NULL;
1644
819
      break;
1645
819
    case DW_FORM_block1:
1646
89
      amt = read_1_byte (abfd, &info_ptr, info_ptr_end);
1647
89
      attr->u.blk = read_blk (abfd, &info_ptr, info_ptr_end, amt);
1648
89
      if (attr->u.blk == NULL)
1649
0
  return NULL;
1650
89
      break;
1651
89
    case DW_FORM_sdata:
1652
41
      attr->u.sval = _bfd_safe_read_leb128 (abfd, &info_ptr,
1653
41
              true, info_ptr_end);
1654
41
      break;
1655
1656
5
    case DW_FORM_rnglistx:
1657
90
    case DW_FORM_loclistx:
1658
      /* FIXME: Add support for these forms!  */
1659
      /* Fall through.  */
1660
150
    case DW_FORM_ref_udata:
1661
220
    case DW_FORM_udata:
1662
220
      attr->u.val = _bfd_safe_read_leb128 (abfd, &info_ptr,
1663
220
             false, info_ptr_end);
1664
220
      break;
1665
159
    case DW_FORM_addrx:
1666
159
      attr->u.val = _bfd_safe_read_leb128 (abfd, &info_ptr,
1667
159
             false, info_ptr_end);
1668
159
      if (unit->dwarf_addr_offset != 0)
1669
0
  attr->u.val = read_indexed_address (attr->u.val, unit);
1670
159
      break;
1671
8
    case DW_FORM_indirect:
1672
8
      form = _bfd_safe_read_leb128 (abfd, &info_ptr,
1673
8
            false, info_ptr_end);
1674
8
      if (form == DW_FORM_implicit_const)
1675
0
  implicit_const = _bfd_safe_read_leb128 (abfd, &info_ptr,
1676
0
            true, info_ptr_end);
1677
8
      info_ptr = read_attribute_value (attr, form, implicit_const, unit,
1678
8
               info_ptr, info_ptr_end);
1679
8
      break;
1680
9
    case DW_FORM_implicit_const:
1681
9
      attr->form = DW_FORM_sdata;
1682
9
      attr->u.sval = implicit_const;
1683
9
      break;
1684
44
    case DW_FORM_data16:
1685
      /* This is really a "constant", but there is no way to store that
1686
         so pretend it is a 16 byte block instead.  */
1687
44
      attr->u.blk = read_blk (abfd, &info_ptr, info_ptr_end, 16);
1688
44
      if (attr->u.blk == NULL)
1689
0
  return NULL;
1690
44
      break;
1691
1692
85
    default:
1693
85
      _bfd_error_handler (_("DWARF error: invalid or unhandled FORM value: %#x"),
1694
85
        form);
1695
85
      bfd_set_error (bfd_error_bad_value);
1696
85
      return NULL;
1697
58.6k
    }
1698
58.5k
  return info_ptr;
1699
58.6k
}
1700
1701
/* Read an attribute described by an abbreviated attribute.  */
1702
1703
static bfd_byte *
1704
read_attribute (struct attribute *    attr,
1705
    struct attr_abbrev *  abbrev,
1706
    struct comp_unit *    unit,
1707
    bfd_byte *        info_ptr,
1708
    bfd_byte *        info_ptr_end)
1709
58.2k
{
1710
58.2k
  attr->name = abbrev->name;
1711
58.2k
  info_ptr = read_attribute_value (attr, abbrev->form, abbrev->implicit_const,
1712
58.2k
           unit, info_ptr, info_ptr_end);
1713
58.2k
  return info_ptr;
1714
58.2k
}
1715
1716
/* Return mangling style given LANG.  */
1717
1718
static int
1719
mangle_style (int lang)
1720
2.46k
{
1721
2.46k
  switch (lang)
1722
2.46k
    {
1723
3
    case DW_LANG_Ada83:
1724
33
    case DW_LANG_Ada95:
1725
77
    case DW_LANG_Ada2005:
1726
77
    case DW_LANG_Ada2012:
1727
77
      return DMGL_GNAT;
1728
1729
172
    case DW_LANG_C_plus_plus:
1730
172
    case DW_LANG_C_plus_plus_03:
1731
176
    case DW_LANG_C_plus_plus_11:
1732
176
    case DW_LANG_C_plus_plus_14:
1733
176
    case DW_LANG_C_plus_plus_17:
1734
180
    case DW_LANG_C_plus_plus_20:
1735
180
    case DW_LANG_C_plus_plus_23:
1736
180
      return DMGL_GNU_V3;
1737
1738
32
    case DW_LANG_Java:
1739
32
      return DMGL_JAVA;
1740
1741
76
    case DW_LANG_D:
1742
76
      return DMGL_DLANG;
1743
1744
59
    case DW_LANG_Rust:
1745
59
    case DW_LANG_Rust_old:
1746
59
      return DMGL_RUST;
1747
1748
292
    default:
1749
292
      return DMGL_AUTO;
1750
1751
99
    case DW_LANG_C89:
1752
303
    case DW_LANG_C:
1753
303
    case DW_LANG_Cobol74:
1754
303
    case DW_LANG_Cobol85:
1755
303
    case DW_LANG_Fortran77:
1756
303
    case DW_LANG_Fortran18:
1757
305
    case DW_LANG_Fortran23:
1758
320
    case DW_LANG_Pascal83:
1759
323
    case DW_LANG_PLI:
1760
1.73k
    case DW_LANG_C99:
1761
1.74k
    case DW_LANG_UPC:
1762
1.74k
    case DW_LANG_C11:
1763
1.74k
    case DW_LANG_C17:
1764
1.74k
    case DW_LANG_C23:
1765
1.74k
    case DW_LANG_Mips_Assembler:
1766
1.74k
    case DW_LANG_Assembly:
1767
1.74k
    case DW_LANG_Upc:
1768
1.74k
    case DW_LANG_HP_Basic91:
1769
1.74k
    case DW_LANG_HP_IMacro:
1770
1.74k
    case DW_LANG_HP_Assembler:
1771
1.74k
      return 0;
1772
2.46k
    }
1773
2.46k
}
1774
1775
/* Source line information table routines.  */
1776
1777
3.51k
#define FILE_ALLOC_CHUNK 5
1778
2.33k
#define DIR_ALLOC_CHUNK 5
1779
1780
struct line_info
1781
{
1782
  struct line_info *  prev_line;
1783
  bfd_vma   address;
1784
  char *    filename;
1785
  unsigned int    line;
1786
  unsigned int    column;
1787
  unsigned int    discriminator;
1788
  unsigned char   op_index;
1789
  unsigned char   end_sequence;   /* End of (sequential) code sequence.  */
1790
};
1791
1792
struct fileinfo
1793
{
1794
  char *    name;
1795
  unsigned int    dir;
1796
  unsigned int    time;
1797
  unsigned int    size;
1798
};
1799
1800
struct line_sequence
1801
{
1802
  bfd_vma   low_pc;
1803
  struct line_sequence* prev_sequence;
1804
  struct line_info* last_line;  /* Largest VMA.  */
1805
  struct line_info**  line_info_lookup;
1806
  bfd_size_type   num_lines;
1807
};
1808
1809
struct line_info_table
1810
{
1811
  bfd *     abfd;
1812
  unsigned int    num_files;
1813
  unsigned int    num_dirs;
1814
  unsigned int    num_sequences;
1815
  bool                  use_dir_and_file_0;
1816
  char *    comp_dir;
1817
  char **   dirs;
1818
  struct fileinfo*  files;
1819
  struct line_sequence* sequences;
1820
  struct line_info* lcl_head;   /* Local head; used in 'add_line_info'.  */
1821
};
1822
1823
/* Remember some information about each function.  If the function is
1824
   inlined (DW_TAG_inlined_subroutine) it may have two additional
1825
   attributes, DW_AT_call_file and DW_AT_call_line, which specify the
1826
   source code location where this function was inlined.  */
1827
1828
struct funcinfo
1829
{
1830
  /* Pointer to previous function in list of all functions.  */
1831
  struct funcinfo *prev_func;
1832
  /* Pointer to function one scope higher.  */
1833
  struct funcinfo *caller_func;
1834
  /* Source location file name where caller_func inlines this func.  */
1835
  char *caller_file;
1836
  /* Source location file name.  */
1837
  char *file;
1838
  /* Source location line number where caller_func inlines this func.  */
1839
  int caller_line;
1840
  /* Source location line number.  */
1841
  int line;
1842
  int tag;
1843
  bool is_linkage;
1844
  const char *name;
1845
  struct arange arange;
1846
  /* The offset of the funcinfo from the start of the unit.  */
1847
  uint64_t unit_offset;
1848
};
1849
1850
struct lookup_funcinfo
1851
{
1852
  /* Function information corresponding to this lookup table entry.  */
1853
  struct funcinfo *funcinfo;
1854
1855
  /* The lowest address for this specific function.  */
1856
  bfd_vma low_addr;
1857
1858
  /* The highest address of this function before the lookup table is sorted.
1859
     The highest address of all prior functions after the lookup table is
1860
     sorted, which is used for binary search.  */
1861
  bfd_vma high_addr;
1862
  /* Index of this function, used to ensure qsort is stable.  */
1863
  unsigned int idx;
1864
};
1865
1866
struct varinfo
1867
{
1868
  /* Pointer to previous variable in list of all variables.  */
1869
  struct varinfo *prev_var;
1870
  /* The offset of the varinfo from the start of the unit.  */
1871
  uint64_t unit_offset;
1872
  /* Source location file name.  */
1873
  char *file;
1874
  /* Source location line number.  */
1875
  int line;
1876
  /* The type of this variable.  */
1877
  int tag;
1878
  /* The name of the variable, if it has one.  */
1879
  const char *name;
1880
  /* The address of the variable.  */
1881
  bfd_vma addr;
1882
  /* Is this a stack variable?  */
1883
  bool stack;
1884
};
1885
1886
/* Return TRUE if NEW_LINE should sort after LINE.  */
1887
1888
static inline bool
1889
new_line_sorts_after (struct line_info *new_line, struct line_info *line)
1890
455k
{
1891
455k
  return (new_line->address > line->address
1892
428k
    || (new_line->address == line->address
1893
384k
        && new_line->op_index > line->op_index));
1894
455k
}
1895
1896
1897
/* Adds a new entry to the line_info list in the line_info_table, ensuring
1898
   that the list is sorted.  Note that the line_info list is sorted from
1899
   highest to lowest VMA (with possible duplicates); that is,
1900
   line_info->prev_line always accesses an equal or smaller VMA.  */
1901
1902
static bool
1903
add_line_info (struct line_info_table *table,
1904
         bfd_vma address,
1905
         unsigned char op_index,
1906
         char *filename,
1907
         unsigned int line,
1908
         unsigned int column,
1909
         unsigned int discriminator,
1910
         int end_sequence)
1911
39.7k
{
1912
39.7k
  size_t amt = sizeof (struct line_info);
1913
39.7k
  struct line_sequence* seq = table->sequences;
1914
39.7k
  struct line_info* info = (struct line_info *) bfd_alloc (table->abfd, amt);
1915
1916
39.7k
  if (info == NULL)
1917
0
    return false;
1918
1919
  /* Set member data of 'info'.  */
1920
39.7k
  info->prev_line = NULL;
1921
39.7k
  info->address = address;
1922
39.7k
  info->op_index = op_index;
1923
39.7k
  info->line = line;
1924
39.7k
  info->column = column;
1925
39.7k
  info->discriminator = discriminator;
1926
39.7k
  info->end_sequence = end_sequence;
1927
1928
39.7k
  if (filename && filename[0])
1929
34.0k
    {
1930
34.0k
      info->filename = (char *) bfd_alloc (table->abfd, strlen (filename) + 1);
1931
34.0k
      if (info->filename == NULL)
1932
0
  return false;
1933
34.0k
      strcpy (info->filename, filename);
1934
34.0k
    }
1935
5.66k
  else
1936
5.66k
    info->filename = NULL;
1937
1938
  /* Find the correct location for 'info'.  Normally we will receive
1939
     new line_info data 1) in order and 2) with increasing VMAs.
1940
     However some compilers break the rules (cf. decode_line_info) and
1941
     so we include some heuristics for quickly finding the correct
1942
     location for 'info'. In particular, these heuristics optimize for
1943
     the common case in which the VMA sequence that we receive is a
1944
     list of locally sorted VMAs such as
1945
       p...z a...j  (where a < j < p < z)
1946
1947
     Note: table->lcl_head is used to head an *actual* or *possible*
1948
     sub-sequence within the list (such as a...j) that is not directly
1949
     headed by table->last_line
1950
1951
     Note: we may receive duplicate entries from 'decode_line_info'.  */
1952
1953
39.7k
  if (seq
1954
39.0k
      && seq->last_line->address == address
1955
10.8k
      && seq->last_line->op_index == op_index
1956
4.57k
      && seq->last_line->end_sequence == end_sequence)
1957
4.53k
    {
1958
      /* We only keep the last entry with the same address and end
1959
   sequence.  See PR ld/4986.  */
1960
4.53k
      if (table->lcl_head == seq->last_line)
1961
1.01k
  table->lcl_head = info;
1962
4.53k
      info->prev_line = seq->last_line->prev_line;
1963
4.53k
      seq->last_line = info;
1964
4.53k
    }
1965
35.2k
  else if (!seq || seq->last_line->end_sequence)
1966
991
    {
1967
      /* Start a new line sequence.  */
1968
991
      amt = sizeof (struct line_sequence);
1969
991
      seq = (struct line_sequence *) bfd_malloc (amt);
1970
991
      if (seq == NULL)
1971
0
  return false;
1972
991
      seq->low_pc = address;
1973
991
      seq->prev_sequence = table->sequences;
1974
991
      seq->last_line = info;
1975
991
      table->lcl_head = info;
1976
991
      table->sequences = seq;
1977
991
      table->num_sequences++;
1978
991
    }
1979
34.2k
  else if (info->end_sequence
1980
33.5k
     || new_line_sorts_after (info, seq->last_line))
1981
27.6k
    {
1982
      /* Normal case: add 'info' to the beginning of the current sequence.  */
1983
27.6k
      info->prev_line = seq->last_line;
1984
27.6k
      seq->last_line = info;
1985
1986
      /* lcl_head: initialize to head a *possible* sequence at the end.  */
1987
27.6k
      if (!table->lcl_head)
1988
0
  table->lcl_head = info;
1989
27.6k
    }
1990
6.59k
  else if (!new_line_sorts_after (info, table->lcl_head)
1991
3.92k
     && (!table->lcl_head->prev_line
1992
3.82k
         || new_line_sorts_after (info, table->lcl_head->prev_line)))
1993
2.87k
    {
1994
      /* Abnormal but easy: lcl_head is the head of 'info'.  */
1995
2.87k
      info->prev_line = table->lcl_head->prev_line;
1996
2.87k
      table->lcl_head->prev_line = info;
1997
2.87k
    }
1998
3.72k
  else
1999
3.72k
    {
2000
      /* Abnormal and hard: Neither 'last_line' nor 'lcl_head'
2001
   are valid heads for 'info'.  Reset 'lcl_head'.  */
2002
3.72k
      struct line_info* li2 = seq->last_line; /* Always non-NULL.  */
2003
3.72k
      struct line_info* li1 = li2->prev_line;
2004
2005
205k
      while (li1)
2006
205k
  {
2007
205k
    if (!new_line_sorts_after (info, li2)
2008
205k
        && new_line_sorts_after (info, li1))
2009
3.52k
      break;
2010
2011
202k
    li2 = li1; /* always non-NULL */
2012
202k
    li1 = li1->prev_line;
2013
202k
  }
2014
3.72k
      table->lcl_head = li2;
2015
3.72k
      info->prev_line = table->lcl_head->prev_line;
2016
3.72k
      table->lcl_head->prev_line = info;
2017
3.72k
      if (address < seq->low_pc)
2018
43
  seq->low_pc = address;
2019
3.72k
    }
2020
39.7k
  return true;
2021
39.7k
}
2022
2023
/* Extract a fully qualified filename from a line info table.
2024
   The returned string has been malloc'ed and it is the caller's
2025
   responsibility to free it.  */
2026
2027
static char *
2028
concat_filename (struct line_info_table *table, unsigned int file)
2029
2.81k
{
2030
2.81k
  char *filename;
2031
2032
  /* Pre DWARF-5 entry 0 in the directory and filename tables was not used.
2033
     So in order to save space in the tables used here the info for, eg
2034
     directory 1 is stored in slot 0 of the directory table, directory 2
2035
     in slot 1 and so on.
2036
2037
     Starting with DWARF-5 the 0'th entry is used so there is a one to one
2038
     mapping between DWARF slots and internal table entries.  */
2039
2.81k
  if (! table->use_dir_and_file_0)
2040
2.81k
    {
2041
      /* Pre DWARF-5, FILE == 0 means unknown.  */
2042
2.81k
      if (file == 0)
2043
82
  return strdup ("<unknown>");
2044
2.73k
      -- file;
2045
2.73k
    }
2046
2047
2.73k
  if (table == NULL || file >= table->num_files)
2048
155
    {
2049
155
      _bfd_error_handler
2050
155
  (_("DWARF error: mangled line number section (bad file number)"));
2051
155
      return strdup ("<unknown>");
2052
155
    }
2053
2054
2.58k
  filename = table->files[file].name;
2055
2056
2.58k
  if (filename == NULL)
2057
10
    return strdup ("<unknown>");
2058
2059
2.57k
  if (!IS_ABSOLUTE_PATH (filename))
2060
2.56k
    {
2061
2.56k
      char *dir_name = NULL;
2062
2.56k
      char *subdir_name = NULL;
2063
2.56k
      char *name;
2064
2.56k
      size_t len;
2065
2.56k
      unsigned int dir = table->files[file].dir;
2066
2067
2.56k
      if (!table->use_dir_and_file_0)
2068
2.56k
  --dir;
2069
      /* Wrapping from 0 to -1u above gives the intended result with
2070
   the test below of leaving subdir_name NULL for pre-DWARF5 dir
2071
   of 0.  */
2072
      /* PR 17512: file: 0317e960, file: 7f3d2e4b.  */
2073
2.56k
      if (dir < table->num_dirs)
2074
884
  subdir_name = table->dirs[dir];
2075
2076
2.56k
      if (!subdir_name || !IS_ABSOLUTE_PATH (subdir_name))
2077
1.92k
  dir_name = table->comp_dir;
2078
2079
2.56k
      if (!dir_name)
2080
1.52k
  {
2081
1.52k
    dir_name = subdir_name;
2082
1.52k
    subdir_name = NULL;
2083
1.52k
  }
2084
2085
2.56k
      if (!dir_name)
2086
818
  return strdup (filename);
2087
2088
1.74k
      len = strlen (dir_name) + strlen (filename) + 2;
2089
2090
1.74k
      if (subdir_name)
2091
175
  {
2092
175
    len += strlen (subdir_name) + 1;
2093
175
    name = (char *) bfd_malloc (len);
2094
175
    if (name)
2095
175
      sprintf (name, "%s/%s/%s", dir_name, subdir_name, filename);
2096
175
  }
2097
1.56k
      else
2098
1.56k
  {
2099
1.56k
    name = (char *) bfd_malloc (len);
2100
1.56k
    if (name)
2101
1.56k
      sprintf (name, "%s/%s", dir_name, filename);
2102
1.56k
  }
2103
2104
1.74k
      return name;
2105
2.56k
    }
2106
2107
10
  return strdup (filename);
2108
2.57k
}
2109
2110
/* Number of bits in a bfd_vma.  */
2111
43.4k
#define VMA_BITS (8 * sizeof (bfd_vma))
2112
2113
/* Check whether [low1, high1) can be combined with [low2, high2),
2114
   i.e., they touch or overlap.  */
2115
2116
static bool
2117
ranges_overlap (bfd_vma low1,
2118
    bfd_vma high1,
2119
    bfd_vma low2,
2120
    bfd_vma high2)
2121
33.3k
{
2122
33.3k
  if (low1 == low2 || high1 == high2)
2123
12.4k
    return true;
2124
2125
  /* Sort so that low1 is below low2. */
2126
20.9k
  if (low1 > low2)
2127
17.4k
    {
2128
17.4k
      bfd_vma tmp;
2129
2130
17.4k
      tmp = low1;
2131
17.4k
      low1 = low2;
2132
17.4k
      low2 = tmp;
2133
2134
17.4k
      tmp = high1;
2135
17.4k
      high1 = high2;
2136
17.4k
      high2 = tmp;
2137
17.4k
    }
2138
2139
  /* We touch iff low2 == high1.
2140
     We overlap iff low2 is within [low1, high1). */
2141
20.9k
  return low2 <= high1;
2142
33.3k
}
2143
2144
/* Insert an address range in the trie mapping addresses to compilation units.
2145
   Will return the new trie node (usually the same as is being sent in, but
2146
   in case of a leaf-to-interior conversion, or expansion of a leaf, it may be
2147
   different), or NULL on failure.  */
2148
2149
static struct trie_node *
2150
insert_arange_in_trie (bfd *abfd,
2151
           struct trie_node *trie,
2152
           bfd_vma trie_pc,
2153
           unsigned int trie_pc_bits,
2154
           struct comp_unit *unit,
2155
           bfd_vma low_pc,
2156
           bfd_vma high_pc)
2157
30.6k
{
2158
30.6k
  bfd_vma clamped_low_pc, clamped_high_pc;
2159
30.6k
  int ch, from_ch, to_ch;
2160
30.6k
  bool is_full_leaf = false;
2161
30.6k
  bool splitting_leaf_will_help = false;
2162
2163
  /* See if we can extend any of the existing ranges.  This merging
2164
     isn't perfect (if merging opens up the possibility of merging two existing
2165
     ranges, we won't find them), but it takes the majority of the cases.  */
2166
30.6k
  if (trie->num_room_in_leaf > 0)
2167
29.4k
    {
2168
29.4k
      struct trie_leaf *leaf = (struct trie_leaf *) trie;
2169
29.4k
      unsigned int i;
2170
2171
38.7k
      for (i = 0; i < leaf->num_stored_in_leaf; ++i)
2172
33.4k
  {
2173
33.4k
    if (leaf->ranges[i].unit == unit
2174
33.3k
        && ranges_overlap (low_pc, high_pc,
2175
33.3k
         leaf->ranges[i].low_pc,
2176
33.3k
         leaf->ranges[i].high_pc))
2177
24.0k
      {
2178
24.0k
        if (low_pc < leaf->ranges[i].low_pc)
2179
1.48k
    leaf->ranges[i].low_pc = low_pc;
2180
24.0k
        if (high_pc > leaf->ranges[i].high_pc)
2181
3.47k
    leaf->ranges[i].high_pc = high_pc;
2182
24.0k
        return trie;
2183
24.0k
      }
2184
33.4k
  }
2185
2186
5.33k
      is_full_leaf = leaf->num_stored_in_leaf == trie->num_room_in_leaf;
2187
2188
5.33k
      if (is_full_leaf && trie_pc_bits < VMA_BITS)
2189
22
  {
2190
    /* See if we have at least one leaf that does _not_ cover the
2191
       entire bucket, so that splitting will actually reduce the number
2192
       of elements in at least one of the child nodes.  (For simplicity,
2193
       we don't test the range we're inserting, but it will be counted
2194
       on the next insertion where we're full, if any.)   */
2195
22
    bfd_vma bucket_high_pc =
2196
22
      trie_pc + ((bfd_vma) -1 >> trie_pc_bits);  /* Inclusive.  */
2197
22
    for (i = 0; i < leaf->num_stored_in_leaf; ++i)
2198
22
      {
2199
22
        if (leaf->ranges[i].low_pc > trie_pc
2200
1
      || leaf->ranges[i].high_pc <= bucket_high_pc)
2201
22
    {
2202
22
      splitting_leaf_will_help = true;
2203
22
      break;
2204
22
    }
2205
22
      }
2206
22
  }
2207
5.33k
    }
2208
2209
  /* If we're a leaf with no more room and we're _not_ at the bottom,
2210
     convert to an interior node.  */
2211
6.53k
  if (is_full_leaf && splitting_leaf_will_help)
2212
22
    {
2213
22
      const struct trie_leaf *leaf = (struct trie_leaf *) trie;
2214
22
      unsigned int i;
2215
2216
22
      trie = bfd_zalloc (abfd, sizeof (struct trie_interior));
2217
22
      if (!trie)
2218
0
  return NULL;
2219
22
      is_full_leaf = false;
2220
2221
      /* TODO: If we wanted to save a little more memory at the cost of
2222
   complexity, we could have reused the old leaf node as one of the
2223
   children of the new interior node, instead of throwing it away.  */
2224
374
      for (i = 0; i < leaf->num_stored_in_leaf; ++i)
2225
352
        {
2226
352
    if (!insert_arange_in_trie (abfd, trie, trie_pc, trie_pc_bits,
2227
352
              leaf->ranges[i].unit, leaf->ranges[i].low_pc,
2228
352
              leaf->ranges[i].high_pc))
2229
0
      return NULL;
2230
352
  }
2231
22
    }
2232
2233
  /* If we're a leaf with no more room and we _are_ at the bottom
2234
     (or splitting it won't help), we have no choice but to just
2235
     make it larger.  */
2236
6.53k
  if (is_full_leaf)
2237
0
    {
2238
0
      const struct trie_leaf *leaf = (struct trie_leaf *) trie;
2239
0
      unsigned int new_room_in_leaf = trie->num_room_in_leaf * 2;
2240
0
      struct trie_leaf *new_leaf;
2241
0
      size_t amt = sizeof (*leaf) + new_room_in_leaf * sizeof (leaf->ranges[0]);
2242
0
      new_leaf = bfd_zalloc (abfd, amt);
2243
0
      new_leaf->head.num_room_in_leaf = new_room_in_leaf;
2244
0
      new_leaf->num_stored_in_leaf = leaf->num_stored_in_leaf;
2245
2246
0
      memcpy (new_leaf->ranges,
2247
0
        leaf->ranges,
2248
0
        leaf->num_stored_in_leaf * sizeof (leaf->ranges[0]));
2249
0
      trie = &new_leaf->head;
2250
0
      is_full_leaf = false;
2251
2252
      /* Now the insert below will go through.  */
2253
0
    }
2254
2255
  /* If we're a leaf (now with room), we can just insert at the end.  */
2256
6.53k
  if (trie->num_room_in_leaf > 0)
2257
5.30k
    {
2258
5.30k
      struct trie_leaf *leaf = (struct trie_leaf *) trie;
2259
2260
5.30k
      unsigned int i = leaf->num_stored_in_leaf++;
2261
5.30k
      leaf->ranges[i].unit = unit;
2262
5.30k
      leaf->ranges[i].low_pc = low_pc;
2263
5.30k
      leaf->ranges[i].high_pc = high_pc;
2264
5.30k
      return trie;
2265
5.30k
    }
2266
2267
  /* Now we are definitely an interior node, so recurse into all
2268
     the relevant buckets.  */
2269
2270
  /* Clamp the range to the current trie bucket.  */
2271
1.22k
  clamped_low_pc = low_pc;
2272
1.22k
  clamped_high_pc = high_pc;
2273
1.22k
  if (trie_pc_bits > 0)
2274
413
    {
2275
413
      bfd_vma bucket_high_pc =
2276
413
  trie_pc + ((bfd_vma) -1 >> trie_pc_bits);  /* Inclusive.  */
2277
413
      if (clamped_low_pc < trie_pc)
2278
0
  clamped_low_pc = trie_pc;
2279
413
      if (clamped_high_pc > bucket_high_pc)
2280
28
  clamped_high_pc = bucket_high_pc;
2281
413
    }
2282
2283
  /* Insert the ranges in all buckets that it spans.  */
2284
1.22k
  from_ch = (clamped_low_pc >> (VMA_BITS - trie_pc_bits - 8)) & 0xff;
2285
1.22k
  to_ch = ((clamped_high_pc - 1) >> (VMA_BITS - trie_pc_bits - 8)) & 0xff;
2286
25.1k
  for (ch = from_ch; ch <= to_ch; ++ch)
2287
23.9k
    {
2288
23.9k
      struct trie_interior *interior = (struct trie_interior *) trie;
2289
23.9k
      struct trie_node *child = interior->children[ch];
2290
2291
23.9k
      if (child == NULL)
2292
2.91k
        {
2293
2.91k
    child = alloc_trie_leaf (abfd);
2294
2.91k
    if (!child)
2295
0
      return NULL;
2296
2.91k
  }
2297
23.9k
      bfd_vma bucket = (bfd_vma) ch << (VMA_BITS - trie_pc_bits - 8);
2298
23.9k
      child = insert_arange_in_trie (abfd,
2299
23.9k
             child,
2300
23.9k
             trie_pc + bucket,
2301
23.9k
             trie_pc_bits + 8,
2302
23.9k
             unit,
2303
23.9k
             low_pc,
2304
23.9k
             high_pc);
2305
23.9k
      if (!child)
2306
0
  return NULL;
2307
2308
23.9k
      interior->children[ch] = child;
2309
23.9k
    }
2310
2311
1.22k
    return trie;
2312
1.22k
}
2313
2314
static bool
2315
arange_add (struct comp_unit *unit, struct arange *first_arange,
2316
      struct trie_node **trie_root, bfd_vma low_pc, bfd_vma high_pc)
2317
6.69k
{
2318
6.69k
  struct arange *arange;
2319
2320
  /* Ignore empty ranges.  */
2321
6.69k
  if (low_pc == high_pc)
2322
367
    return true;
2323
2324
6.32k
  if (trie_root != NULL)
2325
6.32k
    {
2326
6.32k
      *trie_root = insert_arange_in_trie (unit->file->bfd_ptr,
2327
6.32k
            *trie_root,
2328
6.32k
            0,
2329
6.32k
            0,
2330
6.32k
            unit,
2331
6.32k
            low_pc,
2332
6.32k
            high_pc);
2333
6.32k
      if (*trie_root == NULL)
2334
0
  return false;
2335
6.32k
    }
2336
2337
  /* If the first arange is empty, use it.  */
2338
6.32k
  if (first_arange->high == 0)
2339
2.09k
    {
2340
2.09k
      first_arange->low = low_pc;
2341
2.09k
      first_arange->high = high_pc;
2342
2.09k
      return true;
2343
2.09k
    }
2344
2345
  /* Next see if we can cheaply extend an existing range.  */
2346
4.23k
  arange = first_arange;
2347
4.23k
  do
2348
18.8k
    {
2349
18.8k
      if (low_pc == arange->high)
2350
112
  {
2351
112
    arange->high = high_pc;
2352
112
    return true;
2353
112
  }
2354
18.7k
      if (high_pc == arange->low)
2355
115
  {
2356
115
    arange->low = low_pc;
2357
115
    return true;
2358
115
  }
2359
18.6k
      arange = arange->next;
2360
18.6k
    }
2361
18.6k
  while (arange);
2362
2363
  /* Need to allocate a new arange and insert it into the arange list.
2364
     Order isn't significant, so just insert after the first arange.  */
2365
4.01k
  arange = (struct arange *) bfd_alloc (unit->abfd, sizeof (*arange));
2366
4.01k
  if (arange == NULL)
2367
0
    return false;
2368
4.01k
  arange->low = low_pc;
2369
4.01k
  arange->high = high_pc;
2370
4.01k
  arange->next = first_arange->next;
2371
4.01k
  first_arange->next = arange;
2372
4.01k
  return true;
2373
4.01k
}
2374
2375
/* Compare function for line sequences.  */
2376
2377
static int
2378
compare_sequences (const void* a, const void* b)
2379
264
{
2380
264
  const struct line_sequence* seq1 = a;
2381
264
  const struct line_sequence* seq2 = b;
2382
2383
  /* Sort by low_pc as the primary key.  */
2384
264
  if (seq1->low_pc < seq2->low_pc)
2385
54
    return -1;
2386
210
  if (seq1->low_pc > seq2->low_pc)
2387
76
    return 1;
2388
2389
  /* If low_pc values are equal, sort in reverse order of
2390
     high_pc, so that the largest region comes first.  */
2391
134
  if (seq1->last_line->address < seq2->last_line->address)
2392
26
    return 1;
2393
108
  if (seq1->last_line->address > seq2->last_line->address)
2394
44
    return -1;
2395
2396
64
  if (seq1->last_line->op_index < seq2->last_line->op_index)
2397
32
    return 1;
2398
32
  if (seq1->last_line->op_index > seq2->last_line->op_index)
2399
29
    return -1;
2400
2401
  /* num_lines is initially an index, to make the sort stable.  */
2402
3
  if (seq1->num_lines < seq2->num_lines)
2403
3
    return -1;
2404
0
  if (seq1->num_lines > seq2->num_lines)
2405
0
    return 1;
2406
0
  return 0;
2407
0
}
2408
2409
/* Construct the line information table for quick lookup.  */
2410
2411
static bool
2412
build_line_info_table (struct line_info_table *  table,
2413
           struct line_sequence *    seq)
2414
1.31k
{
2415
1.31k
  size_t amt;
2416
1.31k
  struct line_info **line_info_lookup;
2417
1.31k
  struct line_info *each_line;
2418
1.31k
  unsigned int num_lines;
2419
1.31k
  unsigned int line_index;
2420
2421
1.31k
  if (seq->line_info_lookup != NULL)
2422
1.10k
    return true;
2423
2424
  /* Count the number of line information entries.  We could do this while
2425
     scanning the debug information, but some entries may be added via
2426
     lcl_head without having a sequence handy to increment the number of
2427
     lines.  */
2428
209
  num_lines = 0;
2429
11.8k
  for (each_line = seq->last_line; each_line; each_line = each_line->prev_line)
2430
11.6k
    num_lines++;
2431
2432
209
  seq->num_lines = num_lines;
2433
209
  if (num_lines == 0)
2434
0
    return true;
2435
2436
  /* Allocate space for the line information lookup table.  */
2437
209
  amt = sizeof (struct line_info*) * num_lines;
2438
209
  line_info_lookup = (struct line_info**) bfd_alloc (table->abfd, amt);
2439
209
  seq->line_info_lookup = line_info_lookup;
2440
209
  if (line_info_lookup == NULL)
2441
0
    return false;
2442
2443
  /* Create the line information lookup table.  */
2444
209
  line_index = num_lines;
2445
11.8k
  for (each_line = seq->last_line; each_line; each_line = each_line->prev_line)
2446
11.6k
    line_info_lookup[--line_index] = each_line;
2447
2448
209
  BFD_ASSERT (line_index == 0);
2449
209
  return true;
2450
209
}
2451
2452
/* Sort the line sequences for quick lookup.  */
2453
2454
static bool
2455
sort_line_sequences (struct line_info_table* table)
2456
743
{
2457
743
  size_t amt;
2458
743
  struct line_sequence *sequences;
2459
743
  struct line_sequence *seq;
2460
743
  unsigned int n = 0;
2461
743
  unsigned int num_sequences = table->num_sequences;
2462
743
  bfd_vma last_high_pc;
2463
2464
743
  if (num_sequences == 0)
2465
85
    return true;
2466
2467
  /* Allocate space for an array of sequences.  */
2468
658
  amt = sizeof (struct line_sequence) * num_sequences;
2469
658
  sequences = (struct line_sequence *) bfd_alloc (table->abfd, amt);
2470
658
  if (sequences == NULL)
2471
0
    return false;
2472
2473
  /* Copy the linked list into the array, freeing the original nodes.  */
2474
658
  seq = table->sequences;
2475
1.54k
  for (n = 0; n < num_sequences; n++)
2476
882
    {
2477
882
      struct line_sequence* last_seq = seq;
2478
2479
882
      BFD_ASSERT (seq);
2480
882
      sequences[n].low_pc = seq->low_pc;
2481
882
      sequences[n].prev_sequence = NULL;
2482
882
      sequences[n].last_line = seq->last_line;
2483
882
      sequences[n].line_info_lookup = NULL;
2484
882
      sequences[n].num_lines = n;
2485
882
      seq = seq->prev_sequence;
2486
882
      free (last_seq);
2487
882
    }
2488
658
  BFD_ASSERT (seq == NULL);
2489
2490
658
  qsort (sequences, n, sizeof (struct line_sequence), compare_sequences);
2491
2492
  /* Make the list binary-searchable by trimming overlapping entries
2493
     and removing nested entries.  */
2494
658
  num_sequences = 1;
2495
658
  last_high_pc = sequences[0].last_line->address;
2496
882
  for (n = 1; n < table->num_sequences; n++)
2497
224
    {
2498
224
      if (sequences[n].low_pc < last_high_pc)
2499
85
  {
2500
85
    if (sequences[n].last_line->address <= last_high_pc)
2501
      /* Skip nested entries.  */
2502
77
      continue;
2503
2504
    /* Trim overlapping entries.  */
2505
8
    sequences[n].low_pc = last_high_pc;
2506
8
  }
2507
147
      last_high_pc = sequences[n].last_line->address;
2508
147
      if (n > num_sequences)
2509
4
  {
2510
    /* Close up the gap.  */
2511
4
    sequences[num_sequences].low_pc = sequences[n].low_pc;
2512
4
    sequences[num_sequences].last_line = sequences[n].last_line;
2513
4
  }
2514
147
      num_sequences++;
2515
147
    }
2516
2517
658
  table->sequences = sequences;
2518
658
  table->num_sequences = num_sequences;
2519
658
  return true;
2520
658
}
2521
2522
/* Add directory to TABLE.  CUR_DIR memory ownership is taken by TABLE.  */
2523
2524
static bool
2525
line_info_add_include_dir (struct line_info_table *table, char *cur_dir)
2526
1.59k
{
2527
1.59k
  if ((table->num_dirs % DIR_ALLOC_CHUNK) == 0)
2528
744
    {
2529
744
      char **tmp;
2530
744
      size_t amt;
2531
2532
744
      amt = table->num_dirs + DIR_ALLOC_CHUNK;
2533
744
      amt *= sizeof (char *);
2534
2535
744
      tmp = (char **) bfd_realloc (table->dirs, amt);
2536
744
      if (tmp == NULL)
2537
0
  return false;
2538
744
      table->dirs = tmp;
2539
744
    }
2540
2541
1.59k
  table->dirs[table->num_dirs++] = cur_dir;
2542
1.59k
  return true;
2543
1.59k
}
2544
2545
static bool
2546
line_info_add_include_dir_stub (struct line_info_table *table, char *cur_dir,
2547
        unsigned int dir ATTRIBUTE_UNUSED,
2548
        unsigned int xtime ATTRIBUTE_UNUSED,
2549
        unsigned int size ATTRIBUTE_UNUSED)
2550
73
{
2551
73
  return line_info_add_include_dir (table, cur_dir);
2552
73
}
2553
2554
/* Add file to TABLE.  CUR_FILE memory ownership is taken by TABLE.  */
2555
2556
static bool
2557
line_info_add_file_name (struct line_info_table *table, char *cur_file,
2558
       unsigned int dir, unsigned int xtime,
2559
       unsigned int size)
2560
2.52k
{
2561
2.52k
  if ((table->num_files % FILE_ALLOC_CHUNK) == 0)
2562
991
    {
2563
991
      struct fileinfo *tmp;
2564
991
      size_t amt;
2565
2566
991
      amt = table->num_files + FILE_ALLOC_CHUNK;
2567
991
      amt *= sizeof (struct fileinfo);
2568
2569
991
      tmp = (struct fileinfo *) bfd_realloc (table->files, amt);
2570
991
      if (tmp == NULL)
2571
0
  return false;
2572
991
      table->files = tmp;
2573
991
    }
2574
2575
2.52k
  table->files[table->num_files].name = cur_file;
2576
2.52k
  table->files[table->num_files].dir = dir;
2577
2.52k
  table->files[table->num_files].time = xtime;
2578
2.52k
  table->files[table->num_files].size = size;
2579
2.52k
  table->num_files++;
2580
2.52k
  return true;
2581
2.52k
}
2582
2583
/* Read directory or file name entry format, starting with byte of
2584
   format count entries, ULEB128 pairs of entry formats, ULEB128 of
2585
   entries count and the entries themselves in the described entry
2586
   format.  */
2587
2588
static bool
2589
read_formatted_entries (struct comp_unit *unit, bfd_byte **bufp,
2590
      bfd_byte *buf_end, struct line_info_table *table,
2591
      bool (*callback) (struct line_info_table *table,
2592
            char *cur_file,
2593
            unsigned int dir,
2594
            unsigned int time,
2595
            unsigned int size))
2596
66
{
2597
66
  bfd *abfd = unit->abfd;
2598
66
  bfd_byte format_count, formati;
2599
66
  bfd_vma data_count, datai;
2600
66
  bfd_byte *buf = *bufp;
2601
66
  bfd_byte *format_header_data;
2602
2603
66
  format_count = read_1_byte (abfd, &buf, buf_end);
2604
66
  format_header_data = buf;
2605
614
  for (formati = 0; formati < format_count; formati++)
2606
548
    {
2607
548
      _bfd_safe_read_leb128 (abfd, &buf, false, buf_end);
2608
548
      _bfd_safe_read_leb128 (abfd, &buf, false, buf_end);
2609
548
    }
2610
2611
66
  data_count = _bfd_safe_read_leb128 (abfd, &buf, false, buf_end);
2612
66
  if (format_count == 0 && data_count != 0)
2613
4
    {
2614
4
      _bfd_error_handler (_("DWARF error: zero format count"));
2615
4
      bfd_set_error (bfd_error_bad_value);
2616
4
      return false;
2617
4
    }
2618
2619
  /* PR 22210.  Paranoia check.  Don't bother running the loop
2620
     if we know that we are going to run out of buffer.  */
2621
62
  if (data_count > (bfd_vma) (buf_end - buf))
2622
2
    {
2623
2
      _bfd_error_handler
2624
2
  (_("DWARF error: data count (%" PRIx64 ") larger than buffer size"),
2625
2
   (uint64_t) data_count);
2626
2
      bfd_set_error (bfd_error_bad_value);
2627
2
      return false;
2628
2
    }
2629
2630
142
  for (datai = 0; datai < data_count; datai++)
2631
93
    {
2632
93
      bfd_byte *format = format_header_data;
2633
93
      struct fileinfo fe;
2634
2635
93
      memset (&fe, 0, sizeof fe);
2636
472
      for (formati = 0; formati < format_count; formati++)
2637
390
  {
2638
390
    bfd_vma content_type, form;
2639
390
    char *string_trash;
2640
390
    char **stringp = &string_trash;
2641
390
    unsigned int uint_trash, *uintp = &uint_trash;
2642
390
    struct attribute attr;
2643
2644
390
    content_type = _bfd_safe_read_leb128 (abfd, &format, false, buf_end);
2645
390
    switch (content_type)
2646
390
      {
2647
15
      case DW_LNCT_path:
2648
15
        stringp = &fe.name;
2649
15
        break;
2650
9
      case DW_LNCT_directory_index:
2651
9
        uintp = &fe.dir;
2652
9
        break;
2653
74
      case DW_LNCT_timestamp:
2654
74
        uintp = &fe.time;
2655
74
        break;
2656
73
      case DW_LNCT_size:
2657
73
        uintp = &fe.size;
2658
73
        break;
2659
215
      case DW_LNCT_MD5:
2660
215
        break;
2661
4
      default:
2662
4
        _bfd_error_handler
2663
4
    (_("DWARF error: unknown format content type %" PRIu64),
2664
4
     (uint64_t) content_type);
2665
4
        bfd_set_error (bfd_error_bad_value);
2666
4
        return false;
2667
390
      }
2668
2669
386
    form = _bfd_safe_read_leb128 (abfd, &format, false, buf_end);
2670
386
    buf = read_attribute_value (&attr, form, 0, unit, buf, buf_end);
2671
386
    if (buf == NULL)
2672
7
      return false;
2673
379
    switch (form)
2674
379
      {
2675
15
      case DW_FORM_string:
2676
15
      case DW_FORM_line_strp:
2677
15
      case DW_FORM_strx:
2678
15
      case DW_FORM_strx1:
2679
63
      case DW_FORM_strx2:
2680
63
      case DW_FORM_strx3:
2681
63
      case DW_FORM_strx4:
2682
63
        *stringp = attr.u.str;
2683
63
        break;
2684
2685
6
      case DW_FORM_data1:
2686
74
      case DW_FORM_data2:
2687
75
      case DW_FORM_data4:
2688
75
      case DW_FORM_data8:
2689
75
      case DW_FORM_udata:
2690
75
        *uintp = attr.u.val;
2691
75
        break;
2692
2693
0
      case DW_FORM_data16:
2694
        /* MD5 data is in the attr.blk, but we are ignoring those.  */
2695
0
        break;
2696
379
      }
2697
379
  }
2698
2699
82
      if (!callback (table, fe.name, fe.dir, fe.time, fe.size))
2700
0
  return false;
2701
82
    }
2702
2703
49
  *bufp = buf;
2704
49
  return true;
2705
60
}
2706
2707
/* Decode the line number information for UNIT.  */
2708
2709
static struct line_info_table*
2710
decode_line_info (struct comp_unit *unit)
2711
1.15k
{
2712
1.15k
  bfd *abfd = unit->abfd;
2713
1.15k
  struct dwarf2_debug *stash = unit->stash;
2714
1.15k
  struct dwarf2_debug_file *file = unit->file;
2715
1.15k
  struct line_info_table* table;
2716
1.15k
  bfd_byte *line_ptr;
2717
1.15k
  bfd_byte *line_end;
2718
1.15k
  struct line_head lh;
2719
1.15k
  unsigned int i, offset_size;
2720
1.15k
  char *cur_file, *cur_dir;
2721
1.15k
  unsigned char op_code, extended_op, adj_opcode;
2722
1.15k
  unsigned int exop_len;
2723
1.15k
  size_t amt;
2724
2725
1.15k
  if (unit->line_offset == 0 && file->line_table)
2726
13
    return file->line_table;
2727
2728
1.14k
  if (! read_section (abfd, &stash->debug_sections[debug_line],
2729
1.14k
          file->syms, unit->line_offset,
2730
1.14k
          &file->dwarf_line_buffer, &file->dwarf_line_size))
2731
173
    return NULL;
2732
2733
969
  if (file->dwarf_line_size < 16)
2734
4
    {
2735
4
      _bfd_error_handler
2736
4
  (_("DWARF error: line info section is too small (%" PRId64 ")"),
2737
4
   (int64_t) file->dwarf_line_size);
2738
4
      bfd_set_error (bfd_error_bad_value);
2739
4
      return NULL;
2740
4
    }
2741
965
  line_ptr = file->dwarf_line_buffer + unit->line_offset;
2742
965
  line_end = file->dwarf_line_buffer + file->dwarf_line_size;
2743
2744
  /* Read in the prologue.  */
2745
965
  lh.total_length = read_4_bytes (abfd, &line_ptr, line_end);
2746
965
  offset_size = 4;
2747
965
  if (lh.total_length == 0xffffffff)
2748
7
    {
2749
7
      lh.total_length = read_8_bytes (abfd, &line_ptr, line_end);
2750
7
      offset_size = 8;
2751
7
    }
2752
958
  else if (lh.total_length == 0 && unit->addr_size == 8)
2753
30
    {
2754
      /* Handle (non-standard) 64-bit DWARF2 formats.  */
2755
30
      lh.total_length = read_4_bytes (abfd, &line_ptr, line_end);
2756
30
      offset_size = 8;
2757
30
    }
2758
2759
965
  if (lh.total_length > (size_t) (line_end - line_ptr))
2760
49
    {
2761
49
      _bfd_error_handler
2762
  /* xgettext: c-format */
2763
49
  (_("DWARF error: line info data is bigger (%#" PRIx64 ")"
2764
49
     " than the space remaining in the section (%#lx)"),
2765
49
   (uint64_t) lh.total_length, (unsigned long) (line_end - line_ptr));
2766
49
      bfd_set_error (bfd_error_bad_value);
2767
49
      return NULL;
2768
49
    }
2769
2770
916
  line_end = line_ptr + lh.total_length;
2771
2772
916
  lh.version = read_2_bytes (abfd, &line_ptr, line_end);
2773
916
  if (lh.version < 2 || lh.version > 5)
2774
22
    {
2775
22
      _bfd_error_handler
2776
22
  (_("DWARF error: unhandled .debug_line version %d"), lh.version);
2777
22
      bfd_set_error (bfd_error_bad_value);
2778
22
      return NULL;
2779
22
    }
2780
2781
894
  if (line_ptr + offset_size + (lh.version >= 5 ? 8 : (lh.version >= 4 ? 6 : 5))
2782
894
      >= line_end)
2783
2
    {
2784
2
      _bfd_error_handler
2785
2
  (_("DWARF error: ran out of room reading prologue"));
2786
2
      bfd_set_error (bfd_error_bad_value);
2787
2
      return NULL;
2788
2
    }
2789
2790
892
  if (lh.version >= 5)
2791
45
    {
2792
45
      unsigned int segment_selector_size;
2793
2794
      /* Skip address size.  */
2795
45
      read_1_byte (abfd, &line_ptr, line_end);
2796
2797
45
      segment_selector_size = read_1_byte (abfd, &line_ptr, line_end);
2798
45
      if (segment_selector_size != 0)
2799
2
  {
2800
2
    _bfd_error_handler
2801
2
      (_("DWARF error: line info unsupported segment selector size %u"),
2802
2
       segment_selector_size);
2803
2
    bfd_set_error (bfd_error_bad_value);
2804
2
    return NULL;
2805
2
  }
2806
45
    }
2807
2808
890
  if (offset_size == 4)
2809
878
    lh.prologue_length = read_4_bytes (abfd, &line_ptr, line_end);
2810
12
  else
2811
12
    lh.prologue_length = read_8_bytes (abfd, &line_ptr, line_end);
2812
2813
890
  lh.minimum_instruction_length = read_1_byte (abfd, &line_ptr, line_end);
2814
2815
890
  if (lh.version >= 4)
2816
568
    lh.maximum_ops_per_insn = read_1_byte (abfd, &line_ptr, line_end);
2817
322
  else
2818
322
    lh.maximum_ops_per_insn = 1;
2819
2820
890
  if (lh.maximum_ops_per_insn == 0)
2821
5
    {
2822
5
      _bfd_error_handler
2823
5
  (_("DWARF error: invalid maximum operations per instruction"));
2824
5
      bfd_set_error (bfd_error_bad_value);
2825
5
      return NULL;
2826
5
    }
2827
2828
885
  lh.default_is_stmt = read_1_byte (abfd, &line_ptr, line_end);
2829
885
  lh.line_base = read_1_signed_byte (abfd, &line_ptr, line_end);
2830
885
  lh.line_range = read_1_byte (abfd, &line_ptr, line_end);
2831
885
  lh.opcode_base = read_1_byte (abfd, &line_ptr, line_end);
2832
2833
885
  if (line_ptr + (lh.opcode_base - 1) >= line_end)
2834
6
    {
2835
6
      _bfd_error_handler (_("DWARF error: ran out of room reading opcodes"));
2836
6
      bfd_set_error (bfd_error_bad_value);
2837
6
      return NULL;
2838
6
    }
2839
2840
879
  amt = lh.opcode_base * sizeof (unsigned char);
2841
879
  lh.standard_opcode_lengths = (unsigned char *) bfd_alloc (abfd, amt);
2842
2843
879
  lh.standard_opcode_lengths[0] = 1;
2844
2845
20.2k
  for (i = 1; i < lh.opcode_base; ++i)
2846
19.3k
    lh.standard_opcode_lengths[i] = read_1_byte (abfd, &line_ptr, line_end);
2847
2848
879
  amt = sizeof (struct line_info_table);
2849
879
  table = (struct line_info_table *) bfd_alloc (abfd, amt);
2850
879
  if (table == NULL)
2851
0
    return NULL;
2852
879
  table->abfd = abfd;
2853
879
  table->comp_dir = unit->comp_dir;
2854
2855
879
  table->num_files = 0;
2856
879
  table->files = NULL;
2857
2858
879
  table->num_dirs = 0;
2859
879
  table->dirs = NULL;
2860
2861
879
  table->num_sequences = 0;
2862
879
  table->sequences = NULL;
2863
2864
879
  table->lcl_head = NULL;
2865
2866
879
  if (lh.version >= 5)
2867
40
    {
2868
      /* Read directory table.  */
2869
40
      if (!read_formatted_entries (unit, &line_ptr, line_end, table,
2870
40
           line_info_add_include_dir_stub))
2871
14
  goto fail;
2872
2873
      /* Read file name table.  */
2874
26
      if (!read_formatted_entries (unit, &line_ptr, line_end, table,
2875
26
           line_info_add_file_name))
2876
3
  goto fail;
2877
23
      table->use_dir_and_file_0 = true;
2878
23
    }
2879
839
  else
2880
839
    {
2881
      /* Read directory table.  */
2882
2.35k
      while ((cur_dir = read_string (&line_ptr, line_end)) != NULL)
2883
1.51k
  {
2884
1.51k
    if (!line_info_add_include_dir (table, cur_dir))
2885
0
      goto fail;
2886
1.51k
  }
2887
2888
      /* Read file name table.  */
2889
3.29k
      while ((cur_file = read_string (&line_ptr, line_end)) != NULL)
2890
2.45k
  {
2891
2.45k
    unsigned int dir, xtime, size;
2892
2893
2.45k
    dir = _bfd_safe_read_leb128 (abfd, &line_ptr, false, line_end);
2894
2.45k
    xtime = _bfd_safe_read_leb128 (abfd, &line_ptr, false, line_end);
2895
2.45k
    size = _bfd_safe_read_leb128 (abfd, &line_ptr, false, line_end);
2896
2897
2.45k
    if (!line_info_add_file_name (table, cur_file, dir, xtime, size))
2898
0
      goto fail;
2899
2.45k
  }
2900
839
      table->use_dir_and_file_0 = false;
2901
839
    }
2902
2903
  /* Read the statement sequences until there's nothing left.  */
2904
1.79k
  while (line_ptr < line_end)
2905
1.05k
    {
2906
      /* State machine registers.  */
2907
1.05k
      bfd_vma address = 0;
2908
1.05k
      unsigned char op_index = 0;
2909
1.05k
      char * filename = NULL;
2910
1.05k
      unsigned int line = 1;
2911
1.05k
      unsigned int column = 0;
2912
1.05k
      unsigned int discriminator = 0;
2913
1.05k
      int is_stmt = lh.default_is_stmt;
2914
1.05k
      int end_sequence = 0;
2915
1.05k
      unsigned int dir, xtime, size;
2916
      /* eraxxon@alumni.rice.edu: Against the DWARF2 specs, some
2917
   compilers generate address sequences that are wildly out of
2918
   order using DW_LNE_set_address (e.g. Intel C++ 6.0 compiler
2919
   for ia64-Linux).  Thus, to determine the low and high
2920
   address, we must compare on every DW_LNS_copy, etc.  */
2921
1.05k
      bfd_vma low_pc  = (bfd_vma) -1;
2922
1.05k
      bfd_vma high_pc = 0;
2923
2924
1.05k
      if (table->num_files)
2925
954
  {
2926
    /* PR 30783: Always start with a file index of 1, even
2927
       for DWARF-5.  */
2928
954
    filename = concat_filename (table, 1);
2929
954
  }
2930
2931
      /* Decode the table.  */
2932
104k
      while (!end_sequence && line_ptr < line_end)
2933
103k
  {
2934
103k
    op_code = read_1_byte (abfd, &line_ptr, line_end);
2935
2936
103k
    if (op_code >= lh.opcode_base)
2937
37.7k
      {
2938
        /* Special operand.  */
2939
37.7k
        adj_opcode = op_code - lh.opcode_base;
2940
37.7k
        if (lh.line_range == 0)
2941
3
    goto line_fail;
2942
37.7k
        if (lh.maximum_ops_per_insn == 1)
2943
26.2k
    address += (adj_opcode / lh.line_range
2944
26.2k
          * lh.minimum_instruction_length);
2945
11.4k
        else
2946
11.4k
    {
2947
11.4k
      address += ((op_index + adj_opcode / lh.line_range)
2948
11.4k
            / lh.maximum_ops_per_insn
2949
11.4k
            * lh.minimum_instruction_length);
2950
11.4k
      op_index = ((op_index + adj_opcode / lh.line_range)
2951
11.4k
            % lh.maximum_ops_per_insn);
2952
11.4k
    }
2953
37.7k
        line += lh.line_base + (adj_opcode % lh.line_range);
2954
        /* Append row to matrix using current values.  */
2955
37.7k
        if (!add_line_info (table, address, op_index, filename,
2956
37.7k
          line, column, discriminator, 0))
2957
0
    goto line_fail;
2958
37.7k
        discriminator = 0;
2959
37.7k
        if (address < low_pc)
2960
420
    low_pc = address;
2961
37.7k
        if (address > high_pc)
2962
23.9k
    high_pc = address;
2963
37.7k
      }
2964
65.6k
    else switch (op_code)
2965
65.6k
      {
2966
1.85k
      case DW_LNS_extended_op:
2967
1.85k
        exop_len = _bfd_safe_read_leb128 (abfd, &line_ptr,
2968
1.85k
            false, line_end);
2969
1.85k
        extended_op = read_1_byte (abfd, &line_ptr, line_end);
2970
2971
1.85k
        switch (extended_op)
2972
1.85k
    {
2973
771
    case DW_LNE_end_sequence:
2974
771
      end_sequence = 1;
2975
771
      if (!add_line_info (table, address, op_index, filename, line,
2976
771
              column, discriminator, end_sequence))
2977
0
        goto line_fail;
2978
771
      discriminator = 0;
2979
771
      if (address < low_pc)
2980
69
        low_pc = address;
2981
771
      if (address > high_pc)
2982
568
        high_pc = address;
2983
771
      if (!arange_add (unit, &unit->arange, &unit->file->trie_root,
2984
771
           low_pc, high_pc))
2985
0
        goto line_fail;
2986
771
      break;
2987
894
    case DW_LNE_set_address:
2988
894
      address = read_address (unit, &line_ptr, line_end);
2989
894
      op_index = 0;
2990
894
      break;
2991
52
    case DW_LNE_define_file:
2992
52
      cur_file = read_string (&line_ptr, line_end);
2993
52
      dir = _bfd_safe_read_leb128 (abfd, &line_ptr,
2994
52
                 false, line_end);
2995
52
      xtime = _bfd_safe_read_leb128 (abfd, &line_ptr,
2996
52
             false, line_end);
2997
52
      size = _bfd_safe_read_leb128 (abfd, &line_ptr,
2998
52
            false, line_end);
2999
52
      if (!line_info_add_file_name (table, cur_file, dir,
3000
52
            xtime, size))
3001
0
        goto line_fail;
3002
52
      break;
3003
52
    case DW_LNE_set_discriminator:
3004
7
      discriminator = _bfd_safe_read_leb128 (abfd, &line_ptr,
3005
7
               false, line_end);
3006
7
      break;
3007
11
    case DW_LNE_HP_source_file_correlation:
3008
11
      line_ptr += exop_len - 1;
3009
11
      break;
3010
115
    default:
3011
115
      _bfd_error_handler
3012
115
        (_("DWARF error: mangled line number section"));
3013
115
      bfd_set_error (bfd_error_bad_value);
3014
119
    line_fail:
3015
119
      free (filename);
3016
119
      goto fail;
3017
1.85k
    }
3018
1.73k
        break;
3019
1.73k
      case DW_LNS_copy:
3020
1.23k
        if (!add_line_info (table, address, op_index,
3021
1.23k
          filename, line, column, discriminator, 0))
3022
0
    goto line_fail;
3023
1.23k
        discriminator = 0;
3024
1.23k
        if (address < low_pc)
3025
566
    low_pc = address;
3026
1.23k
        if (address > high_pc)
3027
514
    high_pc = address;
3028
1.23k
        break;
3029
2.79k
      case DW_LNS_advance_pc:
3030
2.79k
        if (lh.maximum_ops_per_insn == 1)
3031
2.12k
    address += (lh.minimum_instruction_length
3032
2.12k
          * _bfd_safe_read_leb128 (abfd, &line_ptr,
3033
2.12k
                 false, line_end));
3034
674
        else
3035
674
    {
3036
674
      bfd_vma adjust = _bfd_safe_read_leb128 (abfd, &line_ptr,
3037
674
                false, line_end);
3038
674
      address = ((op_index + adjust) / lh.maximum_ops_per_insn
3039
674
           * lh.minimum_instruction_length);
3040
674
      op_index = (op_index + adjust) % lh.maximum_ops_per_insn;
3041
674
    }
3042
2.79k
        break;
3043
14.5k
      case DW_LNS_advance_line:
3044
14.5k
        line += _bfd_safe_read_leb128 (abfd, &line_ptr,
3045
14.5k
               true, line_end);
3046
14.5k
        break;
3047
138
      case DW_LNS_set_file:
3048
138
        {
3049
138
    unsigned int filenum;
3050
3051
    /* The file and directory tables are 0
3052
       based, the references are 1 based.  */
3053
138
    filenum = _bfd_safe_read_leb128 (abfd, &line_ptr,
3054
138
             false, line_end);
3055
138
    free (filename);
3056
138
    filename = concat_filename (table, filenum);
3057
138
    break;
3058
1.23k
        }
3059
20.3k
      case DW_LNS_set_column:
3060
20.3k
        column = _bfd_safe_read_leb128 (abfd, &line_ptr,
3061
20.3k
                false, line_end);
3062
20.3k
        break;
3063
13.7k
      case DW_LNS_negate_stmt:
3064
13.7k
        is_stmt = (!is_stmt);
3065
13.7k
        break;
3066
62
      case DW_LNS_set_basic_block:
3067
62
        break;
3068
9.69k
      case DW_LNS_const_add_pc:
3069
9.69k
        if (lh.line_range == 0)
3070
1
    goto line_fail;
3071
9.69k
        if (lh.maximum_ops_per_insn == 1)
3072
7.99k
    address += (lh.minimum_instruction_length
3073
7.99k
          * ((255 - lh.opcode_base) / lh.line_range));
3074
1.70k
        else
3075
1.70k
    {
3076
1.70k
      bfd_vma adjust = ((255 - lh.opcode_base) / lh.line_range);
3077
1.70k
      address += (lh.minimum_instruction_length
3078
1.70k
            * ((op_index + adjust)
3079
1.70k
         / lh.maximum_ops_per_insn));
3080
1.70k
      op_index = (op_index + adjust) % lh.maximum_ops_per_insn;
3081
1.70k
    }
3082
9.69k
        break;
3083
122
      case DW_LNS_fixed_advance_pc:
3084
122
        address += read_2_bytes (abfd, &line_ptr, line_end);
3085
122
        op_index = 0;
3086
122
        break;
3087
1.11k
      default:
3088
        /* Unknown standard opcode, ignore it.  */
3089
28.0k
        for (i = 0; i < lh.standard_opcode_lengths[op_code]; i++)
3090
26.9k
    (void) _bfd_safe_read_leb128 (abfd, &line_ptr,
3091
26.9k
                false, line_end);
3092
1.11k
        break;
3093
65.6k
      }
3094
103k
  }
3095
3096
931
      free (filename);
3097
931
    }
3098
3099
743
  if (unit->line_offset == 0)
3100
721
    file->line_table = table;
3101
743
  if (sort_line_sequences (table))
3102
743
    return table;
3103
3104
136
 fail:
3105
245
  while (table->sequences != NULL)
3106
109
    {
3107
109
      struct line_sequence* seq = table->sequences;
3108
109
      table->sequences = table->sequences->prev_sequence;
3109
109
      free (seq);
3110
109
    }
3111
136
  free (table->files);
3112
136
  free (table->dirs);
3113
136
  return NULL;
3114
743
}
3115
3116
/* If ADDR is within TABLE set the output parameters and return TRUE,
3117
   otherwise set *FILENAME_PTR to NULL and return FALSE.
3118
   The parameters FILENAME_PTR, LINENUMBER_PTR and DISCRIMINATOR_PTR
3119
   are pointers to the objects to be filled in.  */
3120
3121
static bool
3122
lookup_address_in_line_info_table (struct line_info_table *table,
3123
           bfd_vma addr,
3124
           const char **filename_ptr,
3125
           unsigned int *linenumber_ptr,
3126
           unsigned int *discriminator_ptr)
3127
4.81k
{
3128
4.81k
  struct line_sequence *seq = NULL;
3129
4.81k
  struct line_info *info;
3130
4.81k
  int low, high, mid;
3131
3132
  /* Binary search the array of sequences.  */
3133
4.81k
  low = 0;
3134
4.81k
  high = table->num_sequences;
3135
8.70k
  while (low < high)
3136
5.20k
    {
3137
5.20k
      mid = (low + high) / 2;
3138
5.20k
      seq = &table->sequences[mid];
3139
5.20k
      if (addr < seq->low_pc)
3140
1.07k
  high = mid;
3141
4.13k
      else if (addr >= seq->last_line->address)
3142
2.81k
  low = mid + 1;
3143
1.31k
      else
3144
1.31k
  break;
3145
5.20k
    }
3146
3147
  /* Check for a valid sequence.  */
3148
4.81k
  if (!seq || addr < seq->low_pc || addr >= seq->last_line->address)
3149
3.50k
    goto fail;
3150
3151
1.31k
  if (!build_line_info_table (table, seq))
3152
0
    goto fail;
3153
3154
  /* Binary search the array of line information.  */
3155
1.31k
  low = 0;
3156
1.31k
  high = seq->num_lines;
3157
1.31k
  info = NULL;
3158
6.89k
  while (low < high)
3159
6.89k
    {
3160
6.89k
      mid = (low + high) / 2;
3161
6.89k
      info = seq->line_info_lookup[mid];
3162
6.89k
      if (addr < info->address)
3163
4.14k
  high = mid;
3164
2.75k
      else if (addr >= seq->line_info_lookup[mid + 1]->address)
3165
1.44k
  low = mid + 1;
3166
1.31k
      else
3167
1.31k
  break;
3168
6.89k
    }
3169
3170
  /* Check for a valid line information entry.  */
3171
1.31k
  if (info
3172
1.31k
      && addr >= info->address
3173
1.31k
      && addr < seq->line_info_lookup[mid + 1]->address
3174
1.31k
      && !(info->end_sequence || info == seq->last_line))
3175
1.31k
    {
3176
1.31k
      *filename_ptr = info->filename;
3177
1.31k
      *linenumber_ptr = info->line;
3178
1.31k
      if (discriminator_ptr)
3179
95
  *discriminator_ptr = info->discriminator;
3180
1.31k
      return true;
3181
1.31k
    }
3182
3183
3.50k
 fail:
3184
3.50k
  *filename_ptr = NULL;
3185
3.50k
  return false;
3186
1.31k
}
3187
3188
/* Read in the .debug_ranges section for future reference.  */
3189
3190
static bool
3191
read_debug_ranges (struct comp_unit * unit)
3192
412
{
3193
412
  struct dwarf2_debug *stash = unit->stash;
3194
412
  struct dwarf2_debug_file *file = unit->file;
3195
3196
412
  return read_section (unit->abfd, &stash->debug_sections[debug_ranges],
3197
412
           file->syms, 0,
3198
412
           &file->dwarf_ranges_buffer, &file->dwarf_ranges_size);
3199
412
}
3200
3201
/* Read in the .debug_rnglists section for future reference.  */
3202
3203
static bool
3204
read_debug_rnglists (struct comp_unit * unit)
3205
0
{
3206
0
  struct dwarf2_debug *stash = unit->stash;
3207
0
  struct dwarf2_debug_file *file = unit->file;
3208
3209
0
  return read_section (unit->abfd, &stash->debug_sections[debug_rnglists],
3210
0
           file->syms, 0,
3211
0
           &file->dwarf_rnglists_buffer, &file->dwarf_rnglists_size);
3212
0
}
3213
3214
/* Function table functions.  */
3215
3216
static int
3217
compare_lookup_funcinfos (const void * a, const void * b)
3218
4.84k
{
3219
4.84k
  const struct lookup_funcinfo * lookup1 = a;
3220
4.84k
  const struct lookup_funcinfo * lookup2 = b;
3221
3222
4.84k
  if (lookup1->low_addr < lookup2->low_addr)
3223
466
    return -1;
3224
4.37k
  if (lookup1->low_addr > lookup2->low_addr)
3225
926
    return 1;
3226
3.45k
  if (lookup1->high_addr < lookup2->high_addr)
3227
326
    return -1;
3228
3.12k
  if (lookup1->high_addr > lookup2->high_addr)
3229
1.05k
    return 1;
3230
3231
2.06k
  if (lookup1->idx < lookup2->idx)
3232
2.06k
    return -1;
3233
0
  if (lookup1->idx > lookup2->idx)
3234
0
    return 1;
3235
0
  return 0;
3236
0
}
3237
3238
static bool
3239
build_lookup_funcinfo_table (struct comp_unit * unit)
3240
3.96k
{
3241
3.96k
  struct lookup_funcinfo *lookup_funcinfo_table = unit->lookup_funcinfo_table;
3242
3.96k
  unsigned int number_of_functions = unit->number_of_functions;
3243
3.96k
  struct funcinfo *each;
3244
3.96k
  struct lookup_funcinfo *entry;
3245
3.96k
  size_t func_index;
3246
3.96k
  struct arange *range;
3247
3.96k
  bfd_vma low_addr, high_addr;
3248
3249
3.96k
  if (lookup_funcinfo_table || number_of_functions == 0)
3250
3.58k
    return true;
3251
3252
  /* Create the function info lookup table.  */
3253
381
  lookup_funcinfo_table = (struct lookup_funcinfo *)
3254
381
    bfd_malloc (number_of_functions * sizeof (struct lookup_funcinfo));
3255
381
  if (lookup_funcinfo_table == NULL)
3256
0
    return false;
3257
3258
  /* Populate the function info lookup table.  */
3259
381
  func_index = number_of_functions;
3260
2.79k
  for (each = unit->function_table; each; each = each->prev_func)
3261
2.41k
    {
3262
2.41k
      entry = &lookup_funcinfo_table[--func_index];
3263
2.41k
      entry->funcinfo = each;
3264
2.41k
      entry->idx = func_index;
3265
3266
      /* Calculate the lowest and highest address for this function entry.  */
3267
2.41k
      low_addr  = entry->funcinfo->arange.low;
3268
2.41k
      high_addr = entry->funcinfo->arange.high;
3269
3270
4.86k
      for (range = entry->funcinfo->arange.next; range; range = range->next)
3271
2.45k
  {
3272
2.45k
    if (range->low < low_addr)
3273
476
      low_addr = range->low;
3274
2.45k
    if (range->high > high_addr)
3275
510
      high_addr = range->high;
3276
2.45k
  }
3277
3278
2.41k
      entry->low_addr = low_addr;
3279
2.41k
      entry->high_addr = high_addr;
3280
2.41k
    }
3281
3282
381
  BFD_ASSERT (func_index == 0);
3283
3284
  /* Sort the function by address.  */
3285
381
  qsort (lookup_funcinfo_table,
3286
381
   number_of_functions,
3287
381
   sizeof (struct lookup_funcinfo),
3288
381
   compare_lookup_funcinfos);
3289
3290
  /* Calculate the high watermark for each function in the lookup table.  */
3291
381
  high_addr = lookup_funcinfo_table[0].high_addr;
3292
2.41k
  for (func_index = 1; func_index < number_of_functions; func_index++)
3293
2.02k
    {
3294
2.02k
      entry = &lookup_funcinfo_table[func_index];
3295
2.02k
      if (entry->high_addr > high_addr)
3296
528
  high_addr = entry->high_addr;
3297
1.50k
      else
3298
1.50k
  entry->high_addr = high_addr;
3299
2.02k
    }
3300
3301
381
  unit->lookup_funcinfo_table = lookup_funcinfo_table;
3302
381
  return true;
3303
381
}
3304
3305
/* If ADDR is within UNIT's function tables, set FUNCTION_PTR, and return
3306
   TRUE.  Note that we need to find the function that has the smallest range
3307
   that contains ADDR, to handle inlined functions without depending upon
3308
   them being ordered in TABLE by increasing range.  */
3309
3310
static bool
3311
lookup_address_in_function_table (struct comp_unit *unit,
3312
          bfd_vma addr,
3313
          struct funcinfo **function_ptr)
3314
4.81k
{
3315
4.81k
  unsigned int number_of_functions = unit->number_of_functions;
3316
4.81k
  struct lookup_funcinfo* lookup_funcinfo = NULL;
3317
4.81k
  struct funcinfo* funcinfo = NULL;
3318
4.81k
  struct funcinfo* best_fit = NULL;
3319
4.81k
  bfd_vma best_fit_len = (bfd_vma) -1;
3320
4.81k
  bfd_size_type low, high, mid, first;
3321
4.81k
  struct arange *arange;
3322
3323
4.81k
  if (number_of_functions == 0)
3324
848
    return false;
3325
3326
3.96k
  if (!build_lookup_funcinfo_table (unit))
3327
0
    return false;
3328
3329
3.96k
  if (unit->lookup_funcinfo_table[number_of_functions - 1].high_addr < addr)
3330
683
    return false;
3331
3332
  /* Find the first function in the lookup table which may contain the
3333
     specified address.  */
3334
3.28k
  low = 0;
3335
3.28k
  high = number_of_functions;
3336
3.28k
  first = high;
3337
13.5k
  while (low < high)
3338
10.3k
    {
3339
10.3k
      mid = (low + high) / 2;
3340
10.3k
      lookup_funcinfo = &unit->lookup_funcinfo_table[mid];
3341
10.3k
      if (addr < lookup_funcinfo->low_addr)
3342
1.12k
  high = mid;
3343
9.19k
      else if (addr >= lookup_funcinfo->high_addr)
3344
5.23k
  low = mid + 1;
3345
3.95k
      else
3346
3.95k
  high = first = mid;
3347
10.3k
    }
3348
3349
  /* Find the 'best' match for the address.  The prior algorithm defined the
3350
     best match as the function with the smallest address range containing
3351
     the specified address.  This definition should probably be changed to the
3352
     innermost inline routine containing the address, but right now we want
3353
     to get the same results we did before.  */
3354
9.53k
  while (first < number_of_functions)
3355
7.76k
    {
3356
7.76k
      if (addr < unit->lookup_funcinfo_table[first].low_addr)
3357
1.51k
  break;
3358
6.25k
      funcinfo = unit->lookup_funcinfo_table[first].funcinfo;
3359
3360
34.6k
      for (arange = &funcinfo->arange; arange; arange = arange->next)
3361
28.4k
  {
3362
28.4k
    if (addr < arange->low || addr >= arange->high)
3363
22.0k
      continue;
3364
3365
6.37k
    if (arange->high - arange->low < best_fit_len
3366
        /* The following comparison is designed to return the same
3367
     match as the previous algorithm for routines which have the
3368
     same best fit length.  */
3369
3.19k
        || (arange->high - arange->low == best_fit_len
3370
1.02k
      && funcinfo > best_fit))
3371
4.06k
      {
3372
4.06k
        best_fit = funcinfo;
3373
4.06k
        best_fit_len = arange->high - arange->low;
3374
4.06k
      }
3375
6.37k
  }
3376
3377
6.25k
      first++;
3378
6.25k
    }
3379
3380
3.28k
  if (!best_fit)
3381
564
    return false;
3382
3383
2.71k
  *function_ptr = best_fit;
3384
2.71k
  return true;
3385
3.28k
}
3386
3387
/* If SYM at ADDR is within function table of UNIT, set FILENAME_PTR
3388
   and LINENUMBER_PTR, and return TRUE.  */
3389
3390
static bool
3391
lookup_symbol_in_function_table (struct comp_unit *unit,
3392
         asymbol *sym,
3393
         bfd_vma addr,
3394
         const char **filename_ptr,
3395
         unsigned int *linenumber_ptr)
3396
553
{
3397
553
  struct funcinfo* each;
3398
553
  struct funcinfo* best_fit = NULL;
3399
553
  bfd_vma best_fit_len = (bfd_vma) -1;
3400
553
  struct arange *arange;
3401
553
  const char *name = bfd_asymbol_name (sym);
3402
3403
5.04k
  for (each = unit->function_table; each; each = each->prev_func)
3404
13.8k
    for (arange = &each->arange; arange; arange = arange->next)
3405
9.37k
      if (addr >= arange->low
3406
4.54k
    && addr < arange->high
3407
669
    && arange->high - arange->low < best_fit_len
3408
669
    && each->file
3409
101
    && each->name
3410
38
    && strstr (name, each->name) != NULL)
3411
0
  {
3412
0
    best_fit = each;
3413
0
    best_fit_len = arange->high - arange->low;
3414
0
  }
3415
3416
553
  if (best_fit)
3417
0
    {
3418
0
      *filename_ptr = best_fit->file;
3419
0
      *linenumber_ptr = best_fit->line;
3420
0
      return true;
3421
0
    }
3422
3423
553
  return false;
3424
553
}
3425
3426
/* Variable table functions.  */
3427
3428
/* If SYM is within variable table of UNIT, set FILENAME_PTR and
3429
   LINENUMBER_PTR, and return TRUE.  */
3430
3431
static bool
3432
lookup_symbol_in_variable_table (struct comp_unit *unit,
3433
         asymbol *sym,
3434
         bfd_vma addr,
3435
         const char **filename_ptr,
3436
         unsigned int *linenumber_ptr)
3437
1.28k
{
3438
1.28k
  struct varinfo* each;
3439
1.28k
  const char *name = bfd_asymbol_name (sym);
3440
3441
1.32k
  for (each = unit->variable_table; each; each = each->prev_var)
3442
47
    if (each->addr == addr
3443
0
  && !each->stack
3444
0
  && each->file != NULL
3445
0
  && each->name != NULL
3446
0
  && strstr (name, each->name) != NULL)
3447
0
      break;
3448
3449
1.28k
  if (each)
3450
0
    {
3451
0
      *filename_ptr = each->file;
3452
0
      *linenumber_ptr = each->line;
3453
0
      return true;
3454
0
    }
3455
3456
1.28k
  return false;
3457
1.28k
}
3458
3459
static struct comp_unit *stash_comp_unit (struct dwarf2_debug *,
3460
            struct dwarf2_debug_file *);
3461
static bool comp_unit_maybe_decode_line_info (struct comp_unit *);
3462
3463
static bool
3464
find_abstract_instance (struct comp_unit *unit,
3465
      struct attribute *attr_ptr,
3466
      unsigned int recur_count,
3467
      const char **pname,
3468
      bool *is_linkage,
3469
      char **filename_ptr,
3470
      int *linenumber_ptr)
3471
555
{
3472
555
  bfd *abfd = unit->abfd;
3473
555
  bfd_byte *info_ptr = NULL;
3474
555
  bfd_byte *info_ptr_end;
3475
555
  unsigned int abbrev_number, i;
3476
555
  struct abbrev_info *abbrev;
3477
555
  uint64_t die_ref = attr_ptr->u.val;
3478
555
  struct attribute attr;
3479
3480
555
  if (recur_count == 100)
3481
0
    {
3482
0
      _bfd_error_handler
3483
0
  (_("DWARF error: abstract instance recursion detected"));
3484
0
      bfd_set_error (bfd_error_bad_value);
3485
0
      return false;
3486
0
    }
3487
3488
  /* DW_FORM_ref_addr can reference an entry in a different CU. It
3489
     is an offset from the .debug_info section, not the current CU.  */
3490
555
  if (attr_ptr->form == DW_FORM_ref_addr)
3491
12
    {
3492
      /* We only support DW_FORM_ref_addr within the same file, so
3493
   any relocations should be resolved already.  Check this by
3494
   testing for a zero die_ref;  There can't be a valid reference
3495
   to the header of a .debug_info section.
3496
   DW_FORM_ref_addr is an offset relative to .debug_info.
3497
   Normally when using the GNU linker this is accomplished by
3498
   emitting a symbolic reference to a label, because .debug_info
3499
   sections are linked at zero.  When there are multiple section
3500
   groups containing .debug_info, as there might be in a
3501
   relocatable object file, it would be reasonable to assume that
3502
   a symbolic reference to a label in any .debug_info section
3503
   might be used.  Since we lay out multiple .debug_info
3504
   sections at non-zero VMAs (see place_sections), and read
3505
   them contiguously into dwarf_info_buffer, that means the
3506
   reference is relative to dwarf_info_buffer.  */
3507
12
      size_t total;
3508
3509
12
      info_ptr = unit->file->dwarf_info_buffer;
3510
12
      info_ptr_end = info_ptr + unit->file->dwarf_info_size;
3511
12
      total = info_ptr_end - info_ptr;
3512
12
      if (!die_ref)
3513
2
  return true;
3514
10
      else if (die_ref >= total)
3515
0
  {
3516
0
    _bfd_error_handler
3517
0
      (_("DWARF error: invalid abstract instance DIE ref"));
3518
0
    bfd_set_error (bfd_error_bad_value);
3519
0
    return false;
3520
0
  }
3521
10
      info_ptr += die_ref;
3522
10
    }
3523
543
  else if (attr_ptr->form == DW_FORM_GNU_ref_alt)
3524
0
    {
3525
0
      bool first_time = unit->stash->alt.dwarf_info_buffer == NULL;
3526
3527
0
      info_ptr = read_alt_indirect_ref (unit, die_ref);
3528
0
      if (first_time)
3529
0
  unit->stash->alt.info_ptr = unit->stash->alt.dwarf_info_buffer;
3530
0
      if (info_ptr == NULL)
3531
0
  {
3532
0
    _bfd_error_handler
3533
0
      (_("DWARF error: unable to read alt ref %" PRIu64),
3534
0
       (uint64_t) die_ref);
3535
0
    bfd_set_error (bfd_error_bad_value);
3536
0
    return false;
3537
0
  }
3538
0
      info_ptr_end = (unit->stash->alt.dwarf_info_buffer
3539
0
          + unit->stash->alt.dwarf_info_size);
3540
0
      if (unit->stash->alt.all_comp_units)
3541
0
  unit = unit->stash->alt.all_comp_units;
3542
0
    }
3543
3544
553
  if (attr_ptr->form == DW_FORM_ref_addr
3545
543
      || attr_ptr->form == DW_FORM_GNU_ref_alt)
3546
10
    {
3547
      /* Now find the CU containing this pointer.  */
3548
10
      if (info_ptr >= unit->info_ptr_unit && info_ptr < unit->end_ptr)
3549
10
  info_ptr_end = unit->end_ptr;
3550
0
      else
3551
0
  {
3552
    /* Check other CUs to see if they contain the abbrev.  */
3553
0
    struct comp_unit *u = NULL;
3554
0
    struct addr_range range = { info_ptr, info_ptr };
3555
0
    splay_tree_node v = splay_tree_lookup (unit->file->comp_unit_tree,
3556
0
             (splay_tree_key)&range);
3557
0
    if (v != NULL)
3558
0
      u = (struct comp_unit *)v->value;
3559
3560
0
    if (attr_ptr->form == DW_FORM_ref_addr)
3561
0
      while (u == NULL)
3562
0
        {
3563
0
    u = stash_comp_unit (unit->stash, &unit->stash->f);
3564
0
    if (u == NULL)
3565
0
      break;
3566
0
    if (info_ptr >= u->info_ptr_unit && info_ptr < u->end_ptr)
3567
0
      break;
3568
0
    u = NULL;
3569
0
        }
3570
3571
0
    if (attr_ptr->form == DW_FORM_GNU_ref_alt)
3572
0
      while (u == NULL)
3573
0
        {
3574
0
    u = stash_comp_unit (unit->stash, &unit->stash->alt);
3575
0
    if (u == NULL)
3576
0
      break;
3577
0
    if (info_ptr >= u->info_ptr_unit && info_ptr < u->end_ptr)
3578
0
      break;
3579
0
    u = NULL;
3580
0
        }
3581
3582
0
    if (u == NULL)
3583
0
      {
3584
0
        _bfd_error_handler
3585
0
    (_("DWARF error: unable to locate abstract instance DIE ref %"
3586
0
       PRIu64), (uint64_t) die_ref);
3587
0
        bfd_set_error (bfd_error_bad_value);
3588
0
        return false;
3589
0
      }
3590
0
    unit = u;
3591
0
    info_ptr_end = unit->end_ptr;
3592
0
  }
3593
10
    }
3594
543
  else
3595
543
    {
3596
      /* DW_FORM_ref1, DW_FORM_ref2, DW_FORM_ref4, DW_FORM_ref8 or
3597
   DW_FORM_ref_udata.  These are all references relative to the
3598
   start of the current CU.  */
3599
543
      size_t total;
3600
3601
543
      info_ptr = unit->info_ptr_unit;
3602
543
      info_ptr_end = unit->end_ptr;
3603
543
      total = info_ptr_end - info_ptr;
3604
543
      if (!die_ref || die_ref >= total)
3605
10
  {
3606
10
    _bfd_error_handler
3607
10
      (_("DWARF error: invalid abstract instance DIE ref"));
3608
10
    bfd_set_error (bfd_error_bad_value);
3609
10
    return false;
3610
10
  }
3611
533
      info_ptr += die_ref;
3612
533
    }
3613
3614
543
  abbrev_number = _bfd_safe_read_leb128 (abfd, &info_ptr,
3615
543
           false, info_ptr_end);
3616
543
  if (abbrev_number)
3617
504
    {
3618
504
      abbrev = lookup_abbrev (abbrev_number, unit->abbrevs);
3619
504
      if (! abbrev)
3620
4
  {
3621
4
    _bfd_error_handler
3622
4
      (_("DWARF error: could not find abbrev number %u"), abbrev_number);
3623
4
    bfd_set_error (bfd_error_bad_value);
3624
4
    return false;
3625
4
  }
3626
500
      else
3627
500
  {
3628
1.57k
    for (i = 0; i < abbrev->num_attrs; ++i)
3629
1.07k
      {
3630
1.07k
        info_ptr = read_attribute (&attr, &abbrev->attrs[i], unit,
3631
1.07k
           info_ptr, info_ptr_end);
3632
1.07k
        if (info_ptr == NULL)
3633
1
    break;
3634
1.07k
        switch (attr.name)
3635
1.07k
    {
3636
499
    case DW_AT_name:
3637
      /* Prefer DW_AT_MIPS_linkage_name or DW_AT_linkage_name
3638
         over DW_AT_name.  */
3639
499
      if (*pname == NULL && is_str_form (&attr))
3640
494
        {
3641
494
          *pname = attr.u.str;
3642
494
          if (mangle_style (unit->lang) == 0)
3643
356
      *is_linkage = true;
3644
494
        }
3645
499
      break;
3646
0
    case DW_AT_specification:
3647
0
      if (is_int_form (&attr)
3648
0
          && !find_abstract_instance (unit, &attr, recur_count + 1,
3649
0
              pname, is_linkage,
3650
0
              filename_ptr, linenumber_ptr))
3651
0
        return false;
3652
0
      break;
3653
0
    case DW_AT_linkage_name:
3654
0
    case DW_AT_MIPS_linkage_name:
3655
      /* PR 16949:  Corrupt debug info can place
3656
         non-string forms into these attributes.  */
3657
0
      if (is_str_form (&attr))
3658
0
        {
3659
0
          *pname = attr.u.str;
3660
0
          *is_linkage = true;
3661
0
        }
3662
0
      break;
3663
7
    case DW_AT_decl_file:
3664
7
      if (!comp_unit_maybe_decode_line_info (unit))
3665
0
        return false;
3666
7
      if (is_int_form (&attr))
3667
7
        {
3668
7
          free (*filename_ptr);
3669
7
          *filename_ptr = concat_filename (unit->line_table,
3670
7
                   attr.u.val);
3671
7
        }
3672
7
      break;
3673
5
    case DW_AT_decl_line:
3674
5
      if (is_int_form (&attr))
3675
4
        *linenumber_ptr = attr.u.val;
3676
5
      break;
3677
562
    default:
3678
562
      break;
3679
1.07k
    }
3680
1.07k
      }
3681
500
  }
3682
504
    }
3683
539
  return true;
3684
543
}
3685
3686
static bool
3687
read_ranges (struct comp_unit *unit, struct arange *arange,
3688
       struct trie_node **trie_root, uint64_t offset)
3689
912
{
3690
912
  bfd_byte *ranges_ptr;
3691
912
  bfd_byte *ranges_end;
3692
912
  bfd_vma base_address = unit->base_address;
3693
3694
912
  if (! unit->file->dwarf_ranges_buffer)
3695
412
    {
3696
412
      if (! read_debug_ranges (unit))
3697
48
  return false;
3698
412
    }
3699
3700
864
  if (offset > unit->file->dwarf_ranges_size)
3701
8
    return false;
3702
856
  ranges_ptr = unit->file->dwarf_ranges_buffer + offset;
3703
856
  ranges_end = unit->file->dwarf_ranges_buffer + unit->file->dwarf_ranges_size;
3704
3705
856
  for (;;)
3706
5.45k
    {
3707
5.45k
      bfd_vma low_pc;
3708
5.45k
      bfd_vma high_pc;
3709
3710
      /* PR 17512: file: 62cada7d.  */
3711
5.45k
      if (2u * unit->addr_size > (size_t) (ranges_end - ranges_ptr))
3712
44
  return false;
3713
3714
5.40k
      low_pc = read_address (unit, &ranges_ptr, ranges_end);
3715
5.40k
      high_pc = read_address (unit, &ranges_ptr, ranges_end);
3716
3717
5.40k
      if (low_pc == 0 && high_pc == 0)
3718
812
  break;
3719
4.59k
      if (low_pc == (bfd_vma) -1 && high_pc != (bfd_vma) -1)
3720
35
  base_address = high_pc;
3721
4.55k
      else
3722
4.55k
  {
3723
4.55k
    if (!arange_add (unit, arange, trie_root,
3724
4.55k
         base_address + low_pc, base_address + high_pc))
3725
0
      return false;
3726
4.55k
  }
3727
4.59k
    }
3728
812
  return true;
3729
856
}
3730
3731
static bool
3732
read_rnglists (struct comp_unit *unit, struct arange *arange,
3733
         struct trie_node **trie_root, uint64_t offset)
3734
0
{
3735
0
  bfd_byte *rngs_ptr;
3736
0
  bfd_byte *rngs_end;
3737
0
  bfd_vma base_address = unit->base_address;
3738
0
  bfd_vma low_pc;
3739
0
  bfd_vma high_pc;
3740
0
  bfd *abfd = unit->abfd;
3741
3742
0
  if (! unit->file->dwarf_rnglists_buffer)
3743
0
    {
3744
0
      if (! read_debug_rnglists (unit))
3745
0
  return false;
3746
0
    }
3747
3748
0
  rngs_ptr = unit->file->dwarf_rnglists_buffer + offset;
3749
0
  if (rngs_ptr < unit->file->dwarf_rnglists_buffer)
3750
0
    return false;
3751
0
  rngs_end = unit->file->dwarf_rnglists_buffer;
3752
0
  rngs_end +=  unit->file->dwarf_rnglists_size;
3753
3754
0
  for (;;)
3755
0
    {
3756
0
      enum dwarf_range_list_entry rlet;
3757
3758
0
      if (rngs_ptr >= rngs_end)
3759
0
  return false;
3760
3761
0
      rlet = read_1_byte (abfd, &rngs_ptr, rngs_end);
3762
3763
0
      switch (rlet)
3764
0
  {
3765
0
  case DW_RLE_end_of_list:
3766
0
    return true;
3767
3768
0
  case DW_RLE_base_address:
3769
0
    if (unit->addr_size > (size_t) (rngs_end - rngs_ptr))
3770
0
      return false;
3771
0
    base_address = read_address (unit, &rngs_ptr, rngs_end);
3772
0
    continue;
3773
3774
0
  case DW_RLE_start_length:
3775
0
    if (unit->addr_size > (size_t) (rngs_end - rngs_ptr))
3776
0
      return false;
3777
0
    low_pc = read_address (unit, &rngs_ptr, rngs_end);
3778
0
    high_pc = low_pc;
3779
0
    high_pc += _bfd_safe_read_leb128 (abfd, &rngs_ptr,
3780
0
              false, rngs_end);
3781
0
    break;
3782
3783
0
  case DW_RLE_offset_pair:
3784
0
    low_pc = base_address;
3785
0
    low_pc += _bfd_safe_read_leb128 (abfd, &rngs_ptr,
3786
0
             false, rngs_end);
3787
0
    high_pc = base_address;
3788
0
    high_pc += _bfd_safe_read_leb128 (abfd, &rngs_ptr,
3789
0
              false, rngs_end);
3790
0
    break;
3791
3792
0
  case DW_RLE_start_end:
3793
0
    if (2u * unit->addr_size > (size_t) (rngs_end - rngs_ptr))
3794
0
      return false;
3795
0
    low_pc = read_address (unit, &rngs_ptr, rngs_end);
3796
0
    high_pc = read_address (unit, &rngs_ptr, rngs_end);
3797
0
    break;
3798
3799
  /* TODO x-variants need .debug_addr support used for split-dwarf.  */
3800
0
  case DW_RLE_base_addressx:
3801
0
  case DW_RLE_startx_endx:
3802
0
  case DW_RLE_startx_length:
3803
0
  default:
3804
0
    return false;
3805
0
  }
3806
3807
0
      if (!arange_add (unit, arange, trie_root, low_pc, high_pc))
3808
0
  return false;
3809
0
    }
3810
0
}
3811
3812
static bool
3813
read_rangelist (struct comp_unit *unit, struct arange *arange,
3814
    struct trie_node **trie_root, uint64_t offset)
3815
912
{
3816
912
  if (unit->version <= 4)
3817
912
    return read_ranges (unit, arange, trie_root, offset);
3818
0
  else
3819
0
    return read_rnglists (unit, arange, trie_root, offset);
3820
912
}
3821
3822
static struct funcinfo *
3823
lookup_func_by_offset (uint64_t offset, struct funcinfo * table)
3824
431
{
3825
431
  for (; table != NULL; table = table->prev_func)
3826
431
    if (table->unit_offset == offset)
3827
431
      return table;
3828
0
  return NULL;
3829
431
}
3830
3831
static struct varinfo *
3832
lookup_var_by_offset (uint64_t offset, struct varinfo * table)
3833
56
{
3834
56
  while (table)
3835
56
    {
3836
56
      if (table->unit_offset == offset)
3837
56
  return table;
3838
0
      table = table->prev_var;
3839
0
    }
3840
3841
0
  return NULL;
3842
56
}
3843
3844
3845
/* DWARF2 Compilation unit functions.  */
3846
3847
static struct funcinfo *
3848
reverse_funcinfo_list (struct funcinfo *head)
3849
1.02k
{
3850
1.02k
  struct funcinfo *rhead;
3851
1.02k
  struct funcinfo *temp;
3852
3853
6.24k
  for (rhead = NULL; head; head = temp)
3854
5.21k
    {
3855
5.21k
      temp = head->prev_func;
3856
5.21k
      head->prev_func = rhead;
3857
5.21k
      rhead = head;
3858
5.21k
    }
3859
1.02k
  return rhead;
3860
1.02k
}
3861
3862
static struct varinfo *
3863
reverse_varinfo_list (struct varinfo *head)
3864
1.02k
{
3865
1.02k
  struct varinfo *rhead;
3866
1.02k
  struct varinfo *temp;
3867
3868
1.34k
  for (rhead = NULL; head; head = temp)
3869
314
    {
3870
314
      temp = head->prev_var;
3871
314
      head->prev_var = rhead;
3872
314
      rhead = head;
3873
314
    }
3874
1.02k
  return rhead;
3875
1.02k
}
3876
3877
/* Scan over each die in a comp. unit looking for functions to add
3878
   to the function table and variables to the variable table.  */
3879
3880
static bool
3881
scan_unit_for_symbols (struct comp_unit *unit)
3882
719
{
3883
719
  bfd *abfd = unit->abfd;
3884
719
  bfd_byte *info_ptr = unit->first_child_die_ptr;
3885
719
  bfd_byte *info_ptr_end = unit->end_ptr;
3886
719
  int nesting_level = 0;
3887
719
  struct nest_funcinfo
3888
719
  {
3889
719
    struct funcinfo *func;
3890
719
  } *nested_funcs;
3891
719
  int nested_funcs_size;
3892
719
  struct funcinfo *last_func;
3893
719
  struct varinfo *last_var;
3894
  
3895
  /* Maintain a stack of in-scope functions and inlined functions, which we
3896
     can use to set the caller_func field.  */
3897
719
  nested_funcs_size = 32;
3898
719
  nested_funcs = (struct nest_funcinfo *)
3899
719
    bfd_malloc (nested_funcs_size * sizeof (*nested_funcs));
3900
719
  if (nested_funcs == NULL)
3901
0
    return false;
3902
719
  nested_funcs[nesting_level].func = 0;
3903
3904
  /* PR 27484: We must scan the DIEs twice.  The first time we look for
3905
     function and variable tags and accumulate them into their respective
3906
     tables.  The second time through we process the attributes of the
3907
     functions/variables and augment the table entries.  */
3908
9.31k
  while (nesting_level >= 0)
3909
8.77k
    {
3910
8.77k
      unsigned int abbrev_number, i;
3911
8.77k
      struct abbrev_info *abbrev;
3912
8.77k
      struct funcinfo *func;
3913
8.77k
      struct varinfo *var;
3914
8.77k
      uint64_t current_offset;
3915
3916
      /* PR 17512: file: 9f405d9d.  */
3917
8.77k
      if (info_ptr >= info_ptr_end)
3918
12
  goto fail;
3919
3920
8.76k
      current_offset = info_ptr - unit->info_ptr_unit;
3921
8.76k
      abbrev_number = _bfd_safe_read_leb128 (abfd, &info_ptr,
3922
8.76k
               false, info_ptr_end);
3923
8.76k
      if (abbrev_number == 0)
3924
1.24k
  {
3925
1.24k
    nesting_level--;
3926
1.24k
    continue;
3927
1.24k
  }
3928
3929
7.52k
      abbrev = lookup_abbrev (abbrev_number, unit->abbrevs);
3930
7.52k
      if (! abbrev)
3931
95
  {
3932
95
    static unsigned int previous_failed_abbrev = -1U;
3933
3934
    /* Avoid multiple reports of the same missing abbrev.  */
3935
95
    if (abbrev_number != previous_failed_abbrev)
3936
78
      {
3937
78
        _bfd_error_handler
3938
78
    (_("DWARF error: could not find abbrev number %u"),
3939
78
     abbrev_number);
3940
78
        previous_failed_abbrev = abbrev_number;
3941
78
      }
3942
95
    bfd_set_error (bfd_error_bad_value);
3943
95
    goto fail;
3944
95
  }
3945
3946
7.42k
      if (abbrev->tag == DW_TAG_subprogram
3947
5.00k
    || abbrev->tag == DW_TAG_entry_point
3948
4.97k
    || abbrev->tag == DW_TAG_inlined_subroutine)
3949
3.22k
  {
3950
3.22k
    size_t amt = sizeof (struct funcinfo);
3951
3952
3.22k
    var = NULL;
3953
3.22k
    func = (struct funcinfo *) bfd_zalloc (abfd, amt);
3954
3.22k
    if (func == NULL)
3955
0
      goto fail;
3956
3.22k
    func->tag = abbrev->tag;
3957
3.22k
    func->prev_func = unit->function_table;
3958
3.22k
    func->unit_offset = current_offset;
3959
3.22k
    unit->function_table = func;
3960
3.22k
    unit->number_of_functions++;
3961
3.22k
    BFD_ASSERT (!unit->cached);
3962
3963
3.22k
    if (func->tag == DW_TAG_inlined_subroutine)
3964
856
      for (i = nesting_level; i-- != 0; )
3965
753
        if (nested_funcs[i].func)
3966
666
    {
3967
666
      func->caller_func = nested_funcs[i].func;
3968
666
      break;
3969
666
    }
3970
3.22k
    nested_funcs[nesting_level].func = func;
3971
3.22k
  }
3972
4.20k
      else
3973
4.20k
  {
3974
4.20k
    func = NULL;
3975
4.20k
    if (abbrev->tag == DW_TAG_variable
3976
4.04k
        || abbrev->tag == DW_TAG_member)
3977
178
      {
3978
178
        size_t amt = sizeof (struct varinfo);
3979
3980
178
        var = (struct varinfo *) bfd_zalloc (abfd, amt);
3981
178
        if (var == NULL)
3982
0
    goto fail;
3983
178
        var->tag = abbrev->tag;
3984
178
        var->stack = true;
3985
178
        var->prev_var = unit->variable_table;
3986
178
        unit->variable_table = var;
3987
178
        var->unit_offset = current_offset;
3988
        /* PR 18205: Missing debug information can cause this
3989
     var to be attached to an already cached unit.  */
3990
178
      }
3991
4.02k
    else
3992
4.02k
      var = NULL;
3993
3994
    /* No inline function in scope at this nesting level.  */
3995
4.20k
    nested_funcs[nesting_level].func = 0;
3996
4.20k
  }
3997
3998
34.3k
      for (i = 0; i < abbrev->num_attrs; ++i)
3999
26.9k
  {
4000
26.9k
    struct attribute attr;
4001
4002
26.9k
    info_ptr = read_attribute (&attr, &abbrev->attrs[i],
4003
26.9k
             unit, info_ptr, info_ptr_end);
4004
26.9k
    if (info_ptr == NULL)
4005
75
      goto fail;
4006
26.9k
  }
4007
4008
7.35k
      if (abbrev->has_children)
4009
810
  {
4010
810
    nesting_level++;
4011
4012
810
    if (nesting_level >= nested_funcs_size)
4013
0
      {
4014
0
        struct nest_funcinfo *tmp;
4015
4016
0
        nested_funcs_size *= 2;
4017
0
        tmp = (struct nest_funcinfo *)
4018
0
    bfd_realloc (nested_funcs,
4019
0
           nested_funcs_size * sizeof (*nested_funcs));
4020
0
        if (tmp == NULL)
4021
0
    goto fail;
4022
0
        nested_funcs = tmp;
4023
0
      }
4024
810
    nested_funcs[nesting_level].func = 0;
4025
810
  }
4026
7.35k
    }
4027
4028
537
  unit->function_table = reverse_funcinfo_list (unit->function_table);
4029
537
  unit->variable_table = reverse_varinfo_list (unit->variable_table);
4030
4031
  /* This is the second pass over the abbrevs.  */      
4032
537
  info_ptr = unit->first_child_die_ptr;
4033
537
  nesting_level = 0;
4034
  
4035
537
  last_func = NULL;
4036
537
  last_var = NULL;
4037
4038
7.34k
  while (nesting_level >= 0)
4039
6.85k
    {
4040
6.85k
      unsigned int abbrev_number, i;
4041
6.85k
      struct abbrev_info *abbrev;
4042
6.85k
      struct attribute attr;
4043
6.85k
      struct funcinfo *func;
4044
6.85k
      struct varinfo *var;
4045
6.85k
      bfd_vma low_pc = 0;
4046
6.85k
      bfd_vma high_pc = 0;
4047
6.85k
      bool high_pc_relative = false;
4048
6.85k
      uint64_t current_offset;
4049
4050
      /* PR 17512: file: 9f405d9d.  */
4051
6.85k
      if (info_ptr >= info_ptr_end)
4052
0
  goto fail;
4053
4054
6.85k
      current_offset = info_ptr - unit->info_ptr_unit;
4055
6.85k
      abbrev_number = _bfd_safe_read_leb128 (abfd, &info_ptr,
4056
6.85k
               false, info_ptr_end);
4057
6.85k
      if (! abbrev_number)
4058
1.05k
  {
4059
1.05k
    nesting_level--;
4060
1.05k
    continue;
4061
1.05k
  }
4062
4063
5.80k
      abbrev = lookup_abbrev (abbrev_number, unit->abbrevs);
4064
      /* This should have been handled above.  */
4065
5.80k
      BFD_ASSERT (abbrev != NULL);
4066
4067
5.80k
      func = NULL;
4068
5.80k
      var = NULL;
4069
5.80k
      if (abbrev->tag == DW_TAG_subprogram
4070
3.81k
    || abbrev->tag == DW_TAG_entry_point
4071
3.79k
    || abbrev->tag == DW_TAG_inlined_subroutine)
4072
2.63k
  {
4073
2.63k
    if (last_func
4074
2.20k
        && last_func->prev_func
4075
2.20k
        && last_func->prev_func->unit_offset == current_offset)
4076
2.20k
      func = last_func->prev_func;
4077
431
    else
4078
431
      func = lookup_func_by_offset (current_offset, unit->function_table);
4079
4080
2.63k
    if (func == NULL)
4081
0
      goto fail;
4082
4083
2.63k
    last_func = func;
4084
2.63k
  }
4085
3.16k
      else if (abbrev->tag == DW_TAG_variable
4086
3.02k
         || abbrev->tag == DW_TAG_member)
4087
157
  {
4088
157
    if (last_var
4089
101
        && last_var->prev_var
4090
101
        && last_var->prev_var->unit_offset == current_offset)
4091
101
      var = last_var->prev_var;
4092
56
    else
4093
56
      var = lookup_var_by_offset (current_offset, unit->variable_table);
4094
4095
157
    if (var == NULL)
4096
0
      goto fail;
4097
4098
157
    last_var = var;
4099
157
  }
4100
4101
27.0k
      for (i = 0; i < abbrev->num_attrs; ++i)
4102
21.2k
  {
4103
21.2k
    info_ptr = read_attribute (&attr, &abbrev->attrs[i],
4104
21.2k
             unit, info_ptr, info_ptr_end);
4105
21.2k
    if (info_ptr == NULL)
4106
0
      goto fail;
4107
4108
21.2k
    if (func)
4109
12.4k
      {
4110
12.4k
        switch (attr.name)
4111
12.4k
    {
4112
574
    case DW_AT_call_file:
4113
574
      if (is_int_form (&attr))
4114
574
        {
4115
574
          free (func->caller_file);
4116
574
          func->caller_file = concat_filename (unit->line_table,
4117
574
                 attr.u.val);
4118
574
        }
4119
574
      break;
4120
4121
574
    case DW_AT_call_line:
4122
574
      if (is_int_form (&attr))
4123
570
        func->caller_line = attr.u.val;
4124
574
      break;
4125
4126
544
    case DW_AT_abstract_origin:
4127
551
    case DW_AT_specification:
4128
551
      if (is_int_form (&attr)
4129
550
          && !find_abstract_instance (unit, &attr, 0,
4130
550
              &func->name,
4131
550
              &func->is_linkage,
4132
550
              &func->file,
4133
550
              &func->line))
4134
12
        goto fail;
4135
539
      break;
4136
4137
2.00k
    case DW_AT_name:
4138
      /* Prefer DW_AT_MIPS_linkage_name or DW_AT_linkage_name
4139
         over DW_AT_name.  */
4140
2.00k
      if (func->name == NULL && is_str_form (&attr))
4141
1.96k
        {
4142
1.96k
          func->name = attr.u.str;
4143
1.96k
          if (mangle_style (unit->lang) == 0)
4144
1.39k
      func->is_linkage = true;
4145
1.96k
        }
4146
2.00k
      break;
4147
4148
60
    case DW_AT_linkage_name:
4149
60
    case DW_AT_MIPS_linkage_name:
4150
      /* PR 16949:  Corrupt debug info can place
4151
         non-string forms into these attributes.  */
4152
60
      if (is_str_form (&attr))
4153
0
        {
4154
0
          func->name = attr.u.str;
4155
0
          func->is_linkage = true;
4156
0
        }
4157
60
      break;
4158
4159
665
    case DW_AT_low_pc:
4160
665
      if (is_int_form (&attr))
4161
652
        low_pc = attr.u.val;
4162
665
      break;
4163
4164
642
    case DW_AT_high_pc:
4165
642
      if (is_int_form (&attr))
4166
640
        {
4167
640
          high_pc = attr.u.val;
4168
640
          high_pc_relative = attr.form != DW_FORM_addr;
4169
640
        }
4170
642
      break;
4171
4172
599
    case DW_AT_ranges:
4173
599
      if (is_int_form (&attr)
4174
593
          && !read_rangelist (unit, &func->arange,
4175
593
            &unit->file->trie_root, attr.u.val))
4176
35
        goto fail;
4177
564
      break;
4178
4179
1.02k
    case DW_AT_decl_file:
4180
1.02k
      if (is_int_form (&attr))
4181
1.01k
        {
4182
1.01k
          free (func->file);
4183
1.01k
          func->file = concat_filename (unit->line_table,
4184
1.01k
                attr.u.val);
4185
1.01k
        }
4186
1.02k
      break;
4187
4188
1.01k
    case DW_AT_decl_line:
4189
1.01k
      if (is_int_form (&attr))
4190
979
        func->line = attr.u.val;
4191
1.01k
      break;
4192
4193
4.78k
    default:
4194
4.78k
      break;
4195
12.4k
    }
4196
12.4k
      }
4197
8.77k
    else if (var)
4198
884
      {
4199
884
        switch (attr.name)
4200
884
    {
4201
10
    case DW_AT_specification:
4202
10
      if (is_int_form (&attr) && attr.u.val)
4203
5
        {
4204
5
          bool is_linkage;
4205
5
          if (!find_abstract_instance (unit, &attr, 0,
4206
5
               &var->name,
4207
5
               &is_linkage,
4208
5
               &var->file,
4209
5
               &var->line))
4210
2
      {
4211
2
        _bfd_error_handler (_("DWARF error: could not find "
4212
2
            "variable specification "
4213
2
            "at offset 0x%lx"),
4214
2
                (unsigned long) attr.u.val);
4215
2
        break;
4216
2
      }
4217
5
        }
4218
8
      break;
4219
4220
148
    case DW_AT_name:
4221
148
      if (is_str_form (&attr))
4222
142
        var->name = attr.u.str;
4223
148
      break;
4224
4225
140
    case DW_AT_decl_file:
4226
140
      if (is_int_form (&attr))
4227
132
        {
4228
132
          free (var->file);
4229
132
          var->file = concat_filename (unit->line_table,
4230
132
               attr.u.val);
4231
132
        }
4232
140
      break;
4233
4234
137
    case DW_AT_decl_line:
4235
137
      if (is_int_form (&attr))
4236
126
        var->line = attr.u.val;
4237
137
      break;
4238
4239
126
    case DW_AT_external:
4240
126
      if (is_int_form (&attr) && attr.u.val != 0)
4241
117
        var->stack = false;
4242
126
      break;
4243
4244
131
    case DW_AT_location:
4245
131
      switch (attr.form)
4246
131
        {
4247
0
        case DW_FORM_block:
4248
0
        case DW_FORM_block1:
4249
0
        case DW_FORM_block2:
4250
1
        case DW_FORM_block4:
4251
122
        case DW_FORM_exprloc:
4252
122
          if (attr.u.blk->data != NULL
4253
122
        && *attr.u.blk->data == DW_OP_addr)
4254
87
      {
4255
87
        var->stack = false;
4256
4257
        /* Verify that DW_OP_addr is the only opcode in the
4258
           location, in which case the block size will be 1
4259
           plus the address size.  */
4260
        /* ??? For TLS variables, gcc can emit
4261
           DW_OP_addr <addr> DW_OP_GNU_push_tls_address
4262
           which we don't handle here yet.  */
4263
87
        if (attr.u.blk->size == unit->addr_size + 1U)
4264
86
          var->addr = bfd_get (unit->addr_size * 8,
4265
87
             unit->abfd,
4266
87
             attr.u.blk->data + 1);
4267
87
      }
4268
122
          break;
4269
4270
122
        default:
4271
9
          break;
4272
131
        }
4273
131
      break;
4274
4275
192
    default:
4276
192
      break;
4277
884
    }
4278
884
      }
4279
21.2k
  }
4280
4281
5.75k
      if (abbrev->has_children)
4282
605
  nesting_level++;
4283
4284
5.75k
      if (high_pc_relative)
4285
636
  high_pc += low_pc;
4286
4287
5.75k
      if (func && high_pc != 0)
4288
631
  {
4289
631
    if (!arange_add (unit, &func->arange, &unit->file->trie_root,
4290
631
         low_pc, high_pc))
4291
0
      goto fail;
4292
631
  }
4293
5.75k
    }
4294
4295
490
  unit->function_table = reverse_funcinfo_list (unit->function_table);
4296
490
  unit->variable_table = reverse_varinfo_list (unit->variable_table);
4297
4298
490
  free (nested_funcs);
4299
490
  return true;
4300
4301
229
 fail:
4302
229
  free (nested_funcs);
4303
229
  return false;
4304
537
}
4305
4306
/* Read the attributes of the form strx and addrx.  */
4307
4308
static void
4309
reread_attribute (struct comp_unit *unit,
4310
      struct attribute *attr,
4311
      bfd_vma *low_pc,
4312
      bfd_vma *high_pc,
4313
      bool *high_pc_relative,
4314
      bool compunit)
4315
310
{
4316
310
  if (is_strx_form (attr->form))
4317
200
    attr->u.str = (char *) read_indexed_string (attr->u.val, unit);
4318
310
  if (is_addrx_form (attr->form))
4319
110
    attr->u.val = read_indexed_address (attr->u.val, unit);
4320
4321
310
  switch (attr->name)
4322
310
    {
4323
25
    case DW_AT_stmt_list:
4324
25
      unit->stmtlist = 1;
4325
25
      unit->line_offset = attr->u.val;
4326
25
      break;
4327
4328
43
    case DW_AT_name:
4329
43
      if (is_str_form (attr))
4330
36
  unit->name = attr->u.str;
4331
43
      break;
4332
4333
12
    case DW_AT_low_pc:
4334
12
      *low_pc = attr->u.val;
4335
12
      if (compunit)
4336
7
  unit->base_address = *low_pc;
4337
12
      break;
4338
4339
19
    case DW_AT_high_pc:
4340
19
      *high_pc = attr->u.val;
4341
19
      *high_pc_relative = attr->form != DW_FORM_addr;
4342
19
      break;
4343
4344
35
    case DW_AT_ranges:
4345
35
      if (!read_rangelist (unit, &unit->arange,
4346
35
         &unit->file->trie_root, attr->u.val))
4347
17
  return;
4348
18
      break;
4349
4350
52
    case DW_AT_comp_dir:
4351
52
      {
4352
52
  char *comp_dir = attr->u.str;
4353
4354
52
  if (!is_str_form (attr))
4355
32
    {
4356
32
      _bfd_error_handler
4357
32
        (_("DWARF error: DW_AT_comp_dir attribute encountered "
4358
32
     "with a non-string form"));
4359
32
      comp_dir = NULL;
4360
32
    }
4361
4362
52
  if (comp_dir)
4363
0
    {
4364
0
      char *cp = strchr (comp_dir, ':');
4365
4366
0
      if (cp && cp != comp_dir && cp[-1] == '.' && cp[1] == '/')
4367
0
        comp_dir = cp + 1;
4368
0
    }
4369
52
  unit->comp_dir = comp_dir;
4370
52
  break;
4371
35
      }
4372
4373
7
    case DW_AT_language:
4374
7
      unit->lang = attr->u.val;
4375
124
    default:
4376
124
      break;
4377
310
    }
4378
310
}
4379
4380
/* Parse a DWARF2 compilation unit starting at INFO_PTR.  UNIT_LENGTH
4381
   includes the compilation unit header that proceeds the DIE's, but
4382
   does not include the length field that precedes each compilation
4383
   unit header.  END_PTR points one past the end of this comp unit.
4384
   OFFSET_SIZE is the size of DWARF2 offsets (either 4 or 8 bytes).
4385
4386
   This routine does not read the whole compilation unit; only enough
4387
   to get to the line number information for the compilation unit.  */
4388
4389
static struct comp_unit *
4390
parse_comp_unit (struct dwarf2_debug *stash,
4391
     struct dwarf2_debug_file *file,
4392
     bfd_byte *info_ptr,
4393
     bfd_vma unit_length,
4394
     bfd_byte *info_ptr_unit,
4395
     unsigned int offset_size)
4396
1.46k
{
4397
1.46k
  struct comp_unit* unit;
4398
1.46k
  unsigned int version;
4399
1.46k
  uint64_t abbrev_offset = 0;
4400
  /* Initialize it just to avoid a GCC false warning.  */
4401
1.46k
  unsigned int addr_size = -1;
4402
1.46k
  struct abbrev_info** abbrevs;
4403
1.46k
  unsigned int abbrev_number, i;
4404
1.46k
  struct abbrev_info *abbrev;
4405
1.46k
  struct attribute attr;
4406
1.46k
  bfd_byte *end_ptr = info_ptr + unit_length;
4407
1.46k
  size_t amt;
4408
1.46k
  bfd_vma low_pc = 0;
4409
1.46k
  bfd_vma high_pc = 0;
4410
1.46k
  bfd *abfd = file->bfd_ptr;
4411
1.46k
  bool high_pc_relative = false;
4412
1.46k
  enum dwarf_unit_type unit_type;
4413
1.46k
  struct attribute *str_addrp = NULL;
4414
1.46k
  size_t str_count = 0;
4415
1.46k
  size_t str_alloc = 0;
4416
1.46k
  bool compunit_flag = false;
4417
4418
1.46k
  version = read_2_bytes (abfd, &info_ptr, end_ptr);
4419
1.46k
  if (version < 2 || version > 5)
4420
52
    {
4421
      /* PR 19872: A version number of 0 probably means that there is padding
4422
   at the end of the .debug_info section.  Gold puts it there when
4423
   performing an incremental link, for example.  So do not generate
4424
   an error, just return a NULL.  */
4425
52
      if (version)
4426
34
  {
4427
34
    _bfd_error_handler
4428
34
      (_("DWARF error: found dwarf version '%u', this reader"
4429
34
         " only handles version 2, 3, 4 and 5 information"), version);
4430
34
    bfd_set_error (bfd_error_bad_value);
4431
34
  }
4432
52
      return NULL;
4433
52
    }
4434
4435
1.40k
  if (version < 5)
4436
1.38k
    unit_type = DW_UT_compile;
4437
25
  else
4438
25
    {
4439
25
      unit_type = read_1_byte (abfd, &info_ptr, end_ptr);
4440
25
      addr_size = read_1_byte (abfd, &info_ptr, end_ptr);
4441
25
    }
4442
4443
1.40k
  BFD_ASSERT (offset_size == 4 || offset_size == 8);
4444
1.40k
  if (offset_size == 4)
4445
1.40k
    abbrev_offset = read_4_bytes (abfd, &info_ptr, end_ptr);
4446
3
  else
4447
3
    abbrev_offset = read_8_bytes (abfd, &info_ptr, end_ptr);
4448
4449
1.40k
  if (version < 5)
4450
1.38k
    addr_size = read_1_byte (abfd, &info_ptr, end_ptr);
4451
4452
1.40k
  switch (unit_type)
4453
1.40k
    {
4454
1
    case DW_UT_type:
4455
      /* Skip type signature.  */
4456
1
      info_ptr += 8;
4457
4458
      /* Skip type offset.  */
4459
1
      info_ptr += offset_size;
4460
1
      break;
4461
4462
0
    case DW_UT_skeleton:
4463
      /* Skip DWO_id field.  */
4464
0
      info_ptr += 8;
4465
0
      break;
4466
4467
1.40k
    default:
4468
1.40k
      break;
4469
1.40k
    }
4470
4471
1.40k
  if (addr_size > sizeof (bfd_vma))
4472
14
    {
4473
14
      _bfd_error_handler
4474
  /* xgettext: c-format */
4475
14
  (_("DWARF error: found address size '%u', this reader"
4476
14
     " can not handle sizes greater than '%u'"),
4477
14
   addr_size,
4478
14
   (unsigned int) sizeof (bfd_vma));
4479
14
      bfd_set_error (bfd_error_bad_value);
4480
14
      return NULL;
4481
14
    }
4482
4483
1.39k
  if (addr_size != 2 && addr_size != 4 && addr_size != 8)
4484
8
    {
4485
8
      _bfd_error_handler
4486
8
  ("DWARF error: found address size '%u', this reader"
4487
8
   " can only handle address sizes '2', '4' and '8'", addr_size);
4488
8
      bfd_set_error (bfd_error_bad_value);
4489
8
      return NULL;
4490
8
    }
4491
4492
  /* Read the abbrevs for this compilation unit into a table.  */
4493
1.38k
  abbrevs = read_abbrevs (abfd, abbrev_offset, stash, file);
4494
1.38k
  if (! abbrevs)
4495
48
    return NULL;
4496
4497
1.33k
  abbrev_number = _bfd_safe_read_leb128 (abfd, &info_ptr,
4498
1.33k
           false, end_ptr);
4499
1.33k
  if (! abbrev_number)
4500
3
    {
4501
      /* PR 19872: An abbrev number of 0 probably means that there is padding
4502
   at the end of the .debug_abbrev section.  Gold puts it there when
4503
   performing an incremental link, for example.  So do not generate
4504
   an error, just return a NULL.  */
4505
3
      return NULL;
4506
3
    }
4507
4508
1.33k
  abbrev = lookup_abbrev (abbrev_number, abbrevs);
4509
1.33k
  if (! abbrev)
4510
26
    {
4511
26
      _bfd_error_handler (_("DWARF error: could not find abbrev number %u"),
4512
26
        abbrev_number);
4513
26
      bfd_set_error (bfd_error_bad_value);
4514
26
      return NULL;
4515
26
    }
4516
4517
1.31k
  amt = sizeof (struct comp_unit);
4518
1.31k
  unit = (struct comp_unit *) bfd_zalloc (abfd, amt);
4519
1.31k
  if (unit == NULL)
4520
0
    return NULL;
4521
1.31k
  unit->abfd = abfd;
4522
1.31k
  unit->version = version;
4523
1.31k
  unit->addr_size = addr_size;
4524
1.31k
  unit->offset_size = offset_size;
4525
1.31k
  unit->abbrevs = abbrevs;
4526
1.31k
  unit->end_ptr = end_ptr;
4527
1.31k
  unit->stash = stash;
4528
1.31k
  unit->file = file;
4529
1.31k
  unit->info_ptr_unit = info_ptr_unit;
4530
4531
1.31k
  if (abbrev->tag == DW_TAG_compile_unit)
4532
1.21k
    compunit_flag = true;
4533
4534
10.1k
  for (i = 0; i < abbrev->num_attrs; ++i)
4535
8.93k
    {
4536
8.93k
      info_ptr = read_attribute (&attr, &abbrev->attrs[i], unit, info_ptr, end_ptr);
4537
8.93k
      if (info_ptr == NULL)
4538
45
  goto err_exit;
4539
4540
      /* Identify attributes of the form strx* and addrx* which come before
4541
   DW_AT_str_offsets_base and DW_AT_addr_base respectively in the CU.
4542
   Store the attributes in an array and process them later.  */
4543
8.88k
      if ((unit->dwarf_str_offset == 0 && is_strx_form (attr.form))
4544
8.68k
    || (unit->dwarf_addr_offset == 0 && is_addrx_form (attr.form)))
4545
332
  {
4546
332
    if (str_count <= str_alloc)
4547
332
      {
4548
332
        str_alloc = 2 * str_alloc + 200;
4549
332
        str_addrp = bfd_realloc (str_addrp,
4550
332
               str_alloc * sizeof (*str_addrp));
4551
332
        if (str_addrp == NULL)
4552
0
    goto err_exit;
4553
332
      }
4554
332
    str_addrp[str_count] = attr;
4555
332
    str_count++;
4556
332
    continue;
4557
332
  }
4558
4559
      /* Store the data if it is of an attribute we want to keep in a
4560
   partial symbol table.  */
4561
8.55k
      switch (attr.name)
4562
8.55k
  {
4563
1.19k
  case DW_AT_stmt_list:
4564
1.19k
    if (is_int_form (&attr))
4565
1.18k
      {
4566
1.18k
        unit->stmtlist = 1;
4567
1.18k
        unit->line_offset = attr.u.val;
4568
1.18k
      }
4569
1.19k
    break;
4570
4571
1.16k
  case DW_AT_name:
4572
1.16k
    if (is_str_form (&attr))
4573
1.12k
      unit->name = attr.u.str;
4574
1.16k
    break;
4575
4576
1.25k
  case DW_AT_low_pc:
4577
1.25k
    if (is_int_form (&attr))
4578
1.24k
      {
4579
1.24k
        low_pc = attr.u.val;
4580
        /* If the compilation unit DIE has a DW_AT_low_pc attribute,
4581
     this is the base address to use when reading location
4582
     lists or range lists.  */
4583
1.24k
        if (compunit_flag)
4584
1.16k
    unit->base_address = low_pc;
4585
1.24k
      }
4586
1.25k
    break;
4587
4588
821
  case DW_AT_high_pc:
4589
821
    if (is_int_form (&attr))
4590
799
      {
4591
799
        high_pc = attr.u.val;
4592
799
        high_pc_relative = attr.form != DW_FORM_addr;
4593
799
      }
4594
821
    break;
4595
4596
285
  case DW_AT_ranges:
4597
285
    if (is_int_form (&attr)
4598
284
        && !read_rangelist (unit, &unit->arange,
4599
284
          &unit->file->trie_root, attr.u.val))
4600
48
      goto err_exit;
4601
237
    break;
4602
4603
1.13k
  case DW_AT_comp_dir:
4604
1.13k
    {
4605
1.13k
      char *comp_dir = attr.u.str;
4606
4607
      /* PR 17512: file: 1fe726be.  */
4608
1.13k
      if (!is_str_form (&attr))
4609
18
        {
4610
18
    _bfd_error_handler
4611
18
      (_("DWARF error: DW_AT_comp_dir attribute encountered with a non-string form"));
4612
18
    comp_dir = NULL;
4613
18
        }
4614
4615
1.13k
      if (comp_dir)
4616
505
        {
4617
    /* Irix 6.2 native cc prepends <machine>.: to the compilation
4618
       directory, get rid of it.  */
4619
505
    char *cp = strchr (comp_dir, ':');
4620
4621
505
    if (cp && cp != comp_dir && cp[-1] == '.' && cp[1] == '/')
4622
0
      comp_dir = cp + 1;
4623
505
        }
4624
1.13k
      unit->comp_dir = comp_dir;
4625
1.13k
      break;
4626
285
    }
4627
4628
1.23k
  case DW_AT_language:
4629
1.23k
    if (is_int_form (&attr))
4630
1.18k
      unit->lang = attr.u.val;
4631
1.23k
    break;
4632
4633
8
  case DW_AT_addr_base:
4634
8
    unit->dwarf_addr_offset = attr.u.val;
4635
8
    break;
4636
4637
1
  case DW_AT_str_offsets_base:
4638
1
    unit->dwarf_str_offset = attr.u.val;
4639
1
    break;
4640
4641
1.46k
  default:
4642
1.46k
    break;
4643
8.55k
  }
4644
8.55k
    }
4645
4646
1.52k
  for (i = 0; i < str_count; ++i)
4647
310
    reread_attribute (unit, &str_addrp[i], &low_pc, &high_pc,
4648
310
          &high_pc_relative, compunit_flag);
4649
4650
1.21k
  if (high_pc_relative)
4651
727
    high_pc += low_pc;
4652
1.21k
  if (high_pc != 0)
4653
735
    {
4654
735
      if (!arange_add (unit, &unit->arange, &unit->file->trie_root,
4655
735
           low_pc, high_pc))
4656
0
  goto err_exit;
4657
735
    }
4658
4659
1.21k
  unit->first_child_die_ptr = info_ptr;
4660
4661
1.21k
  free (str_addrp);
4662
1.21k
  return unit;
4663
4664
93
 err_exit:
4665
93
  unit->error = 1;
4666
93
  free (str_addrp);
4667
93
  return NULL;
4668
1.21k
}
4669
4670
/* Return TRUE if UNIT may contain the address given by ADDR.  When
4671
   there are functions written entirely with inline asm statements, the
4672
   range info in the compilation unit header may not be correct.  We
4673
   need to consult the line info table to see if a compilation unit
4674
   really contains the given address.  */
4675
4676
static bool
4677
comp_unit_may_contain_address (struct comp_unit *unit, bfd_vma addr)
4678
2.90k
{
4679
2.90k
  struct arange *arange;
4680
4681
2.90k
  if (unit->error)
4682
803
    return false;
4683
4684
2.09k
  if (unit->arange.high == 0 /* No ranges have been computed yet.  */
4685
1.72k
      || unit->line_table == NULL) /* The line info table has not been loaded.  */
4686
1.23k
    return true;
4687
4688
2.84k
  for (arange = &unit->arange; arange != NULL; arange = arange->next)
4689
2.43k
    if (addr >= arange->low && addr < arange->high)
4690
451
      return true;
4691
4692
418
  return false;
4693
869
}
4694
4695
/* If UNIT contains ADDR, set the output parameters to the values for
4696
   the line containing ADDR and return TRUE.  Otherwise return FALSE.
4697
   The output parameters, FILENAME_PTR, FUNCTION_PTR, and
4698
   LINENUMBER_PTR, are pointers to the objects to be filled in.  */
4699
4700
static bool
4701
comp_unit_find_nearest_line (struct comp_unit *unit,
4702
           bfd_vma addr,
4703
           const char **filename_ptr,
4704
           struct funcinfo **function_ptr,
4705
           unsigned int *linenumber_ptr,
4706
           unsigned int *discriminator_ptr)
4707
9.34k
{
4708
9.34k
  bool line_p, func_p;
4709
4710
9.34k
  if (!comp_unit_maybe_decode_line_info (unit))
4711
4.53k
    return false;
4712
4713
4.81k
  *function_ptr = NULL;
4714
4.81k
  func_p = lookup_address_in_function_table (unit, addr, function_ptr);
4715
4716
4.81k
  if (func_p && (*function_ptr)->tag == DW_TAG_inlined_subroutine)
4717
887
    unit->stash->inliner_chain = *function_ptr;
4718
4719
4.81k
  line_p = lookup_address_in_line_info_table (unit->line_table, addr,
4720
4.81k
                filename_ptr,
4721
4.81k
                linenumber_ptr,
4722
4.81k
                discriminator_ptr);
4723
4.81k
  return line_p || func_p;
4724
9.34k
}
4725
4726
/* Check to see if line info is already decoded in a comp_unit.
4727
   If not, decode it.  Returns TRUE if no errors were encountered;
4728
   FALSE otherwise.  */
4729
4730
static bool
4731
comp_unit_maybe_decode_line_info (struct comp_unit *unit)
4732
13.1k
{
4733
13.1k
  if (unit->error)
4734
5.82k
    return false;
4735
4736
7.34k
  if (! unit->line_table)
4737
1.21k
    {
4738
1.21k
      if (! unit->stmtlist)
4739
62
  {
4740
62
    unit->error = 1;
4741
62
    return false;
4742
62
  }
4743
4744
1.15k
      unit->line_table = decode_line_info (unit);
4745
4746
1.15k
      if (! unit->line_table)
4747
399
  {
4748
399
    unit->error = 1;
4749
399
    return false;
4750
399
  }
4751
4752
756
      if (unit->first_child_die_ptr < unit->end_ptr
4753
719
    && ! scan_unit_for_symbols (unit))
4754
229
  {
4755
229
    unit->error = 1;
4756
229
    return false;
4757
229
  }
4758
756
    }
4759
4760
6.65k
  return true;
4761
7.34k
}
4762
4763
/* If UNIT contains SYM at ADDR, set the output parameters to the
4764
   values for the line containing SYM.  The output parameters,
4765
   FILENAME_PTR, and LINENUMBER_PTR, are pointers to the objects to be
4766
   filled in.
4767
4768
   Return TRUE if UNIT contains SYM, and no errors were encountered;
4769
   FALSE otherwise.  */
4770
4771
static bool
4772
comp_unit_find_line (struct comp_unit *unit,
4773
         asymbol *sym,
4774
         bfd_vma addr,
4775
         const char **filename_ptr,
4776
         unsigned int *linenumber_ptr)
4777
3.81k
{
4778
3.81k
  if (!comp_unit_maybe_decode_line_info (unit))
4779
1.97k
    return false;
4780
4781
1.83k
  if (sym->flags & BSF_FUNCTION)
4782
553
    return lookup_symbol_in_function_table (unit, sym, addr,
4783
553
              filename_ptr,
4784
553
              linenumber_ptr);
4785
4786
1.28k
  return lookup_symbol_in_variable_table (unit, sym, addr,
4787
1.28k
            filename_ptr,
4788
1.28k
            linenumber_ptr);
4789
1.83k
}
4790
4791
/* Extract all interesting funcinfos and varinfos of a compilation
4792
   unit into hash tables for faster lookup.  Returns TRUE if no
4793
   errors were enountered; FALSE otherwise.  */
4794
4795
static bool
4796
comp_unit_hash_info (struct dwarf2_debug *stash,
4797
         struct comp_unit *unit,
4798
         struct info_hash_table *funcinfo_hash_table,
4799
         struct info_hash_table *varinfo_hash_table)
4800
0
{
4801
0
  struct funcinfo* each_func;
4802
0
  struct varinfo* each_var;
4803
0
  bool okay = true;
4804
4805
0
  BFD_ASSERT (stash->info_hash_status != STASH_INFO_HASH_DISABLED);
4806
4807
0
  if (!comp_unit_maybe_decode_line_info (unit))
4808
0
    return false;
4809
4810
0
  BFD_ASSERT (!unit->cached);
4811
4812
  /* To preserve the original search order, we went to visit the function
4813
     infos in the reversed order of the list.  However, making the list
4814
     bi-directional use quite a bit of extra memory.  So we reverse
4815
     the list first, traverse the list in the now reversed order and
4816
     finally reverse the list again to get back the original order.  */
4817
0
  unit->function_table = reverse_funcinfo_list (unit->function_table);
4818
0
  for (each_func = unit->function_table;
4819
0
       each_func && okay;
4820
0
       each_func = each_func->prev_func)
4821
0
    {
4822
      /* Skip nameless functions.  */
4823
0
      if (each_func->name)
4824
  /* There is no need to copy name string into hash table as
4825
     name string is either in the dwarf string buffer or
4826
     info in the stash.  */
4827
0
  okay = insert_info_hash_table (funcinfo_hash_table, each_func->name,
4828
0
               (void*) each_func, false);
4829
0
    }
4830
0
  unit->function_table = reverse_funcinfo_list (unit->function_table);
4831
0
  if (!okay)
4832
0
    return false;
4833
4834
  /* We do the same for variable infos.  */
4835
0
  unit->variable_table = reverse_varinfo_list (unit->variable_table);
4836
0
  for (each_var = unit->variable_table;
4837
0
       each_var && okay;
4838
0
       each_var = each_var->prev_var)
4839
0
    {
4840
      /* Skip stack vars and vars with no files or names.  */
4841
0
      if (! each_var->stack
4842
0
    && each_var->file != NULL
4843
0
    && each_var->name != NULL)
4844
  /* There is no need to copy name string into hash table as
4845
     name string is either in the dwarf string buffer or
4846
     info in the stash.  */
4847
0
  okay = insert_info_hash_table (varinfo_hash_table, each_var->name,
4848
0
               (void*) each_var, false);
4849
0
    }
4850
4851
0
  unit->variable_table = reverse_varinfo_list (unit->variable_table);
4852
0
  unit->cached = true;
4853
0
  return okay;
4854
0
}
4855
4856
/* Locate a section in a BFD containing debugging info.  The search starts
4857
   from the section after AFTER_SEC, or from the first section in the BFD if
4858
   AFTER_SEC is NULL.  The search works by examining the names of the
4859
   sections.  There are three permissiable names.  The first two are given
4860
   by DEBUG_SECTIONS[debug_info] (whose standard DWARF2 names are .debug_info
4861
   and .zdebug_info).  The third is a prefix .gnu.linkonce.wi.
4862
   This is a variation on the .debug_info section which has a checksum
4863
   describing the contents appended onto the name.  This allows the linker to
4864
   identify and discard duplicate debugging sections for different
4865
   compilation units.  */
4866
177k
#define GNU_LINKONCE_INFO ".gnu.linkonce.wi."
4867
4868
static asection *
4869
find_debug_info (bfd *abfd, const struct dwarf_debug_section *debug_sections,
4870
     asection *after_sec)
4871
10.1k
{
4872
10.1k
  asection *msec;
4873
10.1k
  const char *look;
4874
4875
10.1k
  if (after_sec == NULL)
4876
6.35k
    {
4877
6.35k
      look = debug_sections[debug_info].uncompressed_name;
4878
6.35k
      msec = bfd_get_section_by_name (abfd, look);
4879
      /* Testing SEC_HAS_CONTENTS is an anti-fuzzer measure.  Of
4880
   course debug sections always have contents.  */
4881
6.35k
      if (msec != NULL && (msec->flags & SEC_HAS_CONTENTS) != 0)
4882
3.01k
  return msec;
4883
4884
3.33k
      look = debug_sections[debug_info].compressed_name;
4885
3.33k
      msec = bfd_get_section_by_name (abfd, look);
4886
3.33k
      if (msec != NULL && (msec->flags & SEC_HAS_CONTENTS) != 0)
4887
2
        return msec;
4888
4889
81.0k
      for (msec = abfd->sections; msec != NULL; msec = msec->next)
4890
77.7k
  if ((msec->flags & SEC_HAS_CONTENTS) != 0
4891
60.3k
      && startswith (msec->name, GNU_LINKONCE_INFO))
4892
38
    return msec;
4893
4894
3.29k
      return NULL;
4895
3.33k
    }
4896
4897
28.8k
  for (msec = after_sec->next; msec != NULL; msec = msec->next)
4898
25.9k
    {
4899
25.9k
      if ((msec->flags & SEC_HAS_CONTENTS) == 0)
4900
79
  continue;
4901
4902
25.8k
      look = debug_sections[debug_info].uncompressed_name;
4903
25.8k
      if (strcmp (msec->name, look) == 0)
4904
766
  return msec;
4905
4906
25.0k
      look = debug_sections[debug_info].compressed_name;
4907
25.0k
      if (look != NULL && strcmp (msec->name, look) == 0)
4908
9
  return msec;
4909
4910
25.0k
      if (startswith (msec->name, GNU_LINKONCE_INFO))
4911
52
  return msec;
4912
25.0k
    }
4913
4914
2.95k
  return NULL;
4915
3.77k
}
4916
4917
/* Transfer VMAs from object file to separate debug file.  */
4918
4919
static void
4920
set_debug_vma (bfd *orig_bfd, bfd *debug_bfd)
4921
0
{
4922
0
  asection *s, *d;
4923
4924
0
  for (s = orig_bfd->sections, d = debug_bfd->sections;
4925
0
       s != NULL && d != NULL;
4926
0
       s = s->next, d = d->next)
4927
0
    {
4928
0
      if ((d->flags & SEC_DEBUGGING) != 0)
4929
0
  break;
4930
      /* ??? Assumes 1-1 correspondence between sections in the
4931
   two files.  */
4932
0
      if (strcmp (s->name, d->name) == 0)
4933
0
  {
4934
0
    d->output_section = s->output_section;
4935
0
    d->output_offset = s->output_offset;
4936
0
    d->vma = s->vma;
4937
0
  }
4938
0
    }
4939
0
}
4940
4941
/* If the dwarf2 info was found in a separate debug file, return the
4942
   debug file section corresponding to the section in the original file
4943
   and the debug file symbols.  */
4944
4945
static void
4946
_bfd_dwarf2_stash_syms (struct dwarf2_debug *stash, bfd *abfd,
4947
      asection **sec, asymbol ***syms)
4948
16.2k
{
4949
16.2k
  if (stash->f.bfd_ptr != abfd)
4950
0
    {
4951
0
      asection *s, *d;
4952
4953
0
      if (*sec == NULL)
4954
0
  {
4955
0
    *syms = stash->f.syms;
4956
0
    return;
4957
0
  }
4958
4959
0
      for (s = abfd->sections, d = stash->f.bfd_ptr->sections;
4960
0
     s != NULL && d != NULL;
4961
0
     s = s->next, d = d->next)
4962
0
  {
4963
0
    if ((d->flags & SEC_DEBUGGING) != 0)
4964
0
      break;
4965
0
    if (s == *sec
4966
0
        && strcmp (s->name, d->name) == 0)
4967
0
      {
4968
0
        *sec = d;
4969
0
        *syms = stash->f.syms;
4970
0
        break;
4971
0
      }
4972
0
  }
4973
0
    }
4974
16.2k
}
4975
4976
/* Unset vmas for adjusted sections in STASH.  */
4977
4978
static void
4979
unset_sections (struct dwarf2_debug *stash)
4980
23.6k
{
4981
23.6k
  int i;
4982
23.6k
  struct adjusted_section *p;
4983
4984
23.6k
  i = stash->adjusted_section_count;
4985
23.6k
  p = stash->adjusted_sections;
4986
293k
  for (; i > 0; i--, p++)
4987
270k
    p->section->vma = p->orig_vma;
4988
23.6k
}
4989
4990
/* Set VMAs for allocated and .debug_info sections in ORIG_BFD, a
4991
   relocatable object file.  VMAs are normally all zero in relocatable
4992
   object files, so if we want to distinguish locations in sections by
4993
   address we need to set VMAs so the sections do not overlap.  We
4994
   also set VMA on .debug_info so that when we have multiple
4995
   .debug_info sections (or the linkonce variant) they also do not
4996
   overlap.  The multiple .debug_info sections make up a single
4997
   logical section.  ??? We should probably do the same for other
4998
   debug sections.  */
4999
5000
static bool
5001
place_sections (bfd *orig_bfd, struct dwarf2_debug *stash)
5002
22.1k
{
5003
22.1k
  bfd *abfd;
5004
22.1k
  struct adjusted_section *p;
5005
22.1k
  int i;
5006
22.1k
  const char *debug_info_name;
5007
5008
22.1k
  if (stash->adjusted_section_count != 0)
5009
19.4k
    {
5010
19.4k
      i = stash->adjusted_section_count;
5011
19.4k
      p = stash->adjusted_sections;
5012
267k
      for (; i > 0; i--, p++)
5013
247k
  p->section->vma = p->adj_vma;
5014
19.4k
      return true;
5015
19.4k
    }
5016
5017
2.73k
  debug_info_name = stash->debug_sections[debug_info].uncompressed_name;
5018
2.73k
  i = 0;
5019
2.73k
  abfd = orig_bfd;
5020
2.73k
  while (1)
5021
2.73k
    {
5022
2.73k
      asection *sect;
5023
5024
51.8k
      for (sect = abfd->sections; sect != NULL; sect = sect->next)
5025
49.1k
  {
5026
49.1k
    int is_debug_info;
5027
5028
49.1k
    if (sect->output_section != NULL
5029
0
        && sect->output_section != sect
5030
0
        && (sect->flags & SEC_DEBUGGING) == 0)
5031
0
      continue;
5032
5033
49.1k
    is_debug_info = (strcmp (sect->name, debug_info_name) == 0
5034
46.0k
         || startswith (sect->name, GNU_LINKONCE_INFO));
5035
5036
49.1k
    if (!((sect->flags & SEC_ALLOC) != 0 && abfd == orig_bfd)
5037
28.9k
        && !is_debug_info)
5038
27.0k
      continue;
5039
5040
22.1k
    i++;
5041
22.1k
  }
5042
2.73k
      if (abfd == stash->f.bfd_ptr)
5043
2.73k
  break;
5044
0
      abfd = stash->f.bfd_ptr;
5045
0
    }
5046
5047
2.73k
  if (i <= 1)
5048
0
    stash->adjusted_section_count = -1;
5049
2.73k
  else
5050
2.73k
    {
5051
2.73k
      bfd_vma last_vma = 0, last_dwarf = 0;
5052
2.73k
      size_t amt = i * sizeof (struct adjusted_section);
5053
5054
2.73k
      p = (struct adjusted_section *) bfd_malloc (amt);
5055
2.73k
      if (p == NULL)
5056
0
  return false;
5057
5058
2.73k
      stash->adjusted_sections = p;
5059
2.73k
      stash->adjusted_section_count = i;
5060
5061
2.73k
      abfd = orig_bfd;
5062
2.73k
      while (1)
5063
2.73k
  {
5064
2.73k
    asection *sect;
5065
5066
51.8k
    for (sect = abfd->sections; sect != NULL; sect = sect->next)
5067
49.1k
      {
5068
49.1k
        bfd_size_type sz;
5069
49.1k
        int is_debug_info;
5070
5071
49.1k
        if (sect->output_section != NULL
5072
0
      && sect->output_section != sect
5073
0
      && (sect->flags & SEC_DEBUGGING) == 0)
5074
0
    continue;
5075
5076
49.1k
        is_debug_info = (strcmp (sect->name, debug_info_name) == 0
5077
46.0k
             || startswith (sect->name, GNU_LINKONCE_INFO));
5078
5079
49.1k
        if (!((sect->flags & SEC_ALLOC) != 0 && abfd == orig_bfd)
5080
28.9k
      && !is_debug_info)
5081
27.0k
    continue;
5082
5083
22.1k
        sz = sect->rawsize ? sect->rawsize : sect->size;
5084
5085
22.1k
        p->section = sect;
5086
22.1k
        p->orig_vma = sect->vma;
5087
5088
22.1k
        bfd_vma *v = is_debug_info ? &last_dwarf : &last_vma;
5089
        /* Align the new address to the current section
5090
     alignment.  */
5091
22.1k
        bfd_vma mask = -(bfd_vma) 1 << sect->alignment_power;
5092
22.1k
        *v = (*v + ~mask) & mask;
5093
22.1k
        sect->vma = *v;
5094
22.1k
        *v += sz;
5095
5096
22.1k
        p->adj_vma = sect->vma;
5097
22.1k
        p++;
5098
22.1k
      }
5099
2.73k
    if (abfd == stash->f.bfd_ptr)
5100
2.73k
      break;
5101
0
    abfd = stash->f.bfd_ptr;
5102
0
  }
5103
2.73k
    }
5104
5105
2.73k
  if (orig_bfd != stash->f.bfd_ptr)
5106
0
    set_debug_vma (orig_bfd, stash->f.bfd_ptr);
5107
5108
2.73k
  return true;
5109
2.73k
}
5110
5111
/* Look up a funcinfo by name using the given info hash table.  If found,
5112
   also update the locations pointed to by filename_ptr and linenumber_ptr.
5113
5114
   This function returns TRUE if a funcinfo that matches the given symbol
5115
   and address is found with any error; otherwise it returns FALSE.  */
5116
5117
static bool
5118
info_hash_lookup_funcinfo (struct info_hash_table *hash_table,
5119
         asymbol *sym,
5120
         bfd_vma addr,
5121
         const char **filename_ptr,
5122
         unsigned int *linenumber_ptr)
5123
0
{
5124
0
  struct funcinfo* each_func;
5125
0
  struct funcinfo* best_fit = NULL;
5126
0
  bfd_vma best_fit_len = (bfd_vma) -1;
5127
0
  struct info_list_node *node;
5128
0
  struct arange *arange;
5129
0
  const char *name = bfd_asymbol_name (sym);
5130
5131
0
  for (node = lookup_info_hash_table (hash_table, name);
5132
0
       node;
5133
0
       node = node->next)
5134
0
    {
5135
0
      each_func = (struct funcinfo *) node->info;
5136
0
      for (arange = &each_func->arange;
5137
0
     arange;
5138
0
     arange = arange->next)
5139
0
  {
5140
0
    if (addr >= arange->low
5141
0
        && addr < arange->high
5142
0
        && arange->high - arange->low < best_fit_len)
5143
0
      {
5144
0
        best_fit = each_func;
5145
0
        best_fit_len = arange->high - arange->low;
5146
0
      }
5147
0
  }
5148
0
    }
5149
5150
0
  if (best_fit)
5151
0
    {
5152
0
      *filename_ptr = best_fit->file;
5153
0
      *linenumber_ptr = best_fit->line;
5154
0
      return true;
5155
0
    }
5156
5157
0
  return false;
5158
0
}
5159
5160
/* Look up a varinfo by name using the given info hash table.  If found,
5161
   also update the locations pointed to by filename_ptr and linenumber_ptr.
5162
5163
   This function returns TRUE if a varinfo that matches the given symbol
5164
   and address is found with any error; otherwise it returns FALSE.  */
5165
5166
static bool
5167
info_hash_lookup_varinfo (struct info_hash_table *hash_table,
5168
        asymbol *sym,
5169
        bfd_vma addr,
5170
        const char **filename_ptr,
5171
        unsigned int *linenumber_ptr)
5172
0
{
5173
0
  struct varinfo* each;
5174
0
  struct info_list_node *node;
5175
0
  const char *name = bfd_asymbol_name (sym);
5176
5177
0
  for (node = lookup_info_hash_table (hash_table, name);
5178
0
       node;
5179
0
       node = node->next)
5180
0
    {
5181
0
      each = (struct varinfo *) node->info;
5182
0
      if (each->addr == addr)
5183
0
  {
5184
0
    *filename_ptr = each->file;
5185
0
    *linenumber_ptr = each->line;
5186
0
    return true;
5187
0
  }
5188
0
    }
5189
5190
0
  return false;
5191
0
}
5192
5193
/* Update the funcinfo and varinfo info hash tables if they are
5194
   not up to date.  Returns TRUE if there is no error; otherwise
5195
   returns FALSE and disable the info hash tables.  */
5196
5197
static bool
5198
stash_maybe_update_info_hash_tables (struct dwarf2_debug *stash)
5199
0
{
5200
0
  struct comp_unit *each;
5201
5202
  /* Exit if hash tables are up-to-date.  */
5203
0
  if (stash->f.all_comp_units == stash->hash_units_head)
5204
0
    return true;
5205
5206
0
  if (stash->hash_units_head)
5207
0
    each = stash->hash_units_head->prev_unit;
5208
0
  else
5209
0
    each = stash->f.last_comp_unit;
5210
5211
0
  while (each)
5212
0
    {
5213
0
      if (!comp_unit_hash_info (stash, each, stash->funcinfo_hash_table,
5214
0
        stash->varinfo_hash_table))
5215
0
  {
5216
0
    stash->info_hash_status = STASH_INFO_HASH_DISABLED;
5217
0
    return false;
5218
0
  }
5219
0
      each = each->prev_unit;
5220
0
    }
5221
5222
0
  stash->hash_units_head = stash->f.all_comp_units;
5223
0
  return true;
5224
0
}
5225
5226
/* Check consistency of info hash tables.  This is for debugging only.  */
5227
5228
static void ATTRIBUTE_UNUSED
5229
stash_verify_info_hash_table (struct dwarf2_debug *stash)
5230
0
{
5231
0
  struct comp_unit *each_unit;
5232
0
  struct funcinfo *each_func;
5233
0
  struct varinfo *each_var;
5234
0
  struct info_list_node *node;
5235
0
  bool found;
5236
0
5237
0
  for (each_unit = stash->f.all_comp_units;
5238
0
       each_unit;
5239
0
       each_unit = each_unit->next_unit)
5240
0
    {
5241
0
      for (each_func = each_unit->function_table;
5242
0
     each_func;
5243
0
     each_func = each_func->prev_func)
5244
0
  {
5245
0
    if (!each_func->name)
5246
0
      continue;
5247
0
    node = lookup_info_hash_table (stash->funcinfo_hash_table,
5248
0
           each_func->name);
5249
0
    BFD_ASSERT (node);
5250
0
    found = false;
5251
0
    while (node && !found)
5252
0
      {
5253
0
        found = node->info == each_func;
5254
0
        node = node->next;
5255
0
      }
5256
0
    BFD_ASSERT (found);
5257
0
  }
5258
0
5259
0
      for (each_var = each_unit->variable_table;
5260
0
     each_var;
5261
0
     each_var = each_var->prev_var)
5262
0
  {
5263
0
    if (!each_var->name || !each_var->file || each_var->stack)
5264
0
      continue;
5265
0
    node = lookup_info_hash_table (stash->varinfo_hash_table,
5266
0
           each_var->name);
5267
0
    BFD_ASSERT (node);
5268
0
    found = false;
5269
0
    while (node && !found)
5270
0
      {
5271
0
        found = node->info == each_var;
5272
0
        node = node->next;
5273
0
      }
5274
0
    BFD_ASSERT (found);
5275
0
  }
5276
0
    }
5277
0
}
5278
5279
/* Check to see if we want to enable the info hash tables, which consume
5280
   quite a bit of memory.  Currently we only check the number times
5281
   bfd_dwarf2_find_line is called.  In the future, we may also want to
5282
   take the number of symbols into account.  */
5283
5284
static void
5285
stash_maybe_enable_info_hash_tables (bfd *abfd, struct dwarf2_debug *stash)
5286
5.32k
{
5287
5.32k
  BFD_ASSERT (stash->info_hash_status == STASH_INFO_HASH_OFF);
5288
5289
5.32k
  if (stash->info_hash_count++ < STASH_INFO_HASH_TRIGGER)
5290
5.32k
    return;
5291
5292
  /* FIXME: Maybe we should check the reduce_memory_overheads
5293
     and optimize fields in the bfd_link_info structure ?  */
5294
5295
  /* Create hash tables.  */
5296
0
  stash->funcinfo_hash_table = create_info_hash_table (abfd);
5297
0
  stash->varinfo_hash_table = create_info_hash_table (abfd);
5298
0
  if (!stash->funcinfo_hash_table || !stash->varinfo_hash_table)
5299
0
    {
5300
      /* Turn off info hashes if any allocation above fails.  */
5301
0
      stash->info_hash_status = STASH_INFO_HASH_DISABLED;
5302
0
      return;
5303
0
    }
5304
  /* We need a forced update so that the info hash tables will
5305
     be created even though there is no compilation unit.  That
5306
     happens if STASH_INFO_HASH_TRIGGER is 0.  */
5307
0
  if (stash_maybe_update_info_hash_tables (stash))
5308
0
    stash->info_hash_status = STASH_INFO_HASH_ON;
5309
0
}
5310
5311
/* Find the file and line associated with a symbol and address using the
5312
   info hash tables of a stash. If there is a match, the function returns
5313
   TRUE and update the locations pointed to by filename_ptr and linenumber_ptr;
5314
   otherwise it returns FALSE.  */
5315
5316
static bool
5317
stash_find_line_fast (struct dwarf2_debug *stash,
5318
          asymbol *sym,
5319
          bfd_vma addr,
5320
          const char **filename_ptr,
5321
          unsigned int *linenumber_ptr)
5322
0
{
5323
0
  BFD_ASSERT (stash->info_hash_status == STASH_INFO_HASH_ON);
5324
5325
0
  if (sym->flags & BSF_FUNCTION)
5326
0
    return info_hash_lookup_funcinfo (stash->funcinfo_hash_table, sym, addr,
5327
0
              filename_ptr, linenumber_ptr);
5328
0
  return info_hash_lookup_varinfo (stash->varinfo_hash_table, sym, addr,
5329
0
           filename_ptr, linenumber_ptr);
5330
0
}
5331
5332
/* Save current section VMAs.  */
5333
5334
static bool
5335
save_section_vma (const bfd *abfd, struct dwarf2_debug *stash)
5336
6.13k
{
5337
6.13k
  asection *s;
5338
6.13k
  unsigned int i;
5339
5340
6.13k
  if (abfd->section_count == 0)
5341
0
    return true;
5342
6.13k
  stash->sec_vma = bfd_malloc (sizeof (*stash->sec_vma) * abfd->section_count);
5343
6.13k
  if (stash->sec_vma == NULL)
5344
0
    return false;
5345
6.13k
  stash->sec_vma_count = abfd->section_count;
5346
6.13k
  for (i = 0, s = abfd->sections;
5347
134k
       s != NULL && i < abfd->section_count;
5348
128k
       i++, s = s->next)
5349
128k
    {
5350
128k
      if (s->output_section != NULL)
5351
0
  stash->sec_vma[i] = s->output_section->vma + s->output_offset;
5352
128k
      else
5353
128k
  stash->sec_vma[i] = s->vma;
5354
128k
    }
5355
6.13k
  return true;
5356
6.13k
}
5357
5358
/* Compare current section VMAs against those at the time the stash
5359
   was created.  If find_nearest_line is used in linker warnings or
5360
   errors early in the link process, the debug info stash will be
5361
   invalid for later calls.  This is because we relocate debug info
5362
   sections, so the stashed section contents depend on symbol values,
5363
   which in turn depend on section VMAs.  */
5364
5365
static bool
5366
section_vma_same (const bfd *abfd, const struct dwarf2_debug *stash)
5367
53.7k
{
5368
53.7k
  asection *s;
5369
53.7k
  unsigned int i;
5370
5371
  /* PR 24334: If the number of sections in ABFD has changed between
5372
     when the stash was created and now, then we cannot trust the
5373
     stashed vma information.  */
5374
53.7k
  if (abfd->section_count != stash->sec_vma_count)
5375
0
    return false;
5376
5377
53.7k
  for (i = 0, s = abfd->sections;
5378
2.81M
       s != NULL && i < abfd->section_count;
5379
2.75M
       i++, s = s->next)
5380
2.75M
    {
5381
2.75M
      bfd_vma vma;
5382
5383
2.75M
      if (s->output_section != NULL)
5384
0
  vma = s->output_section->vma + s->output_offset;
5385
2.75M
      else
5386
2.75M
  vma = s->vma;
5387
2.75M
      if (vma != stash->sec_vma[i])
5388
0
  return false;
5389
2.75M
    }
5390
53.7k
  return true;
5391
53.7k
}
5392
5393
/* Read debug information from DEBUG_BFD when DEBUG_BFD is specified.
5394
   If DEBUG_BFD is not specified, we read debug information from ABFD
5395
   or its gnu_debuglink. The results will be stored in PINFO.
5396
   The function returns TRUE iff debug information is ready.  */
5397
5398
bool
5399
_bfd_dwarf2_slurp_debug_info (bfd *abfd, bfd *debug_bfd,
5400
            const struct dwarf_debug_section *debug_sections,
5401
            asymbol **symbols,
5402
            void **pinfo,
5403
            bool do_place)
5404
59.8k
{
5405
59.8k
  bfd_size_type total_size;
5406
59.8k
  asection *msec;
5407
59.8k
  struct dwarf2_debug *stash = (struct dwarf2_debug *) *pinfo;
5408
5409
59.8k
  if (stash != NULL)
5410
53.7k
    {
5411
53.7k
      if (stash->orig_bfd_id == abfd->id
5412
53.7k
    && section_vma_same (abfd, stash))
5413
53.7k
  {
5414
    /* Check that we did previously find some debug information
5415
       before attempting to make use of it.  */
5416
53.7k
    if (stash->f.dwarf_info_size != 0)
5417
20.7k
      {
5418
20.7k
        if (do_place && !place_sections (abfd, stash))
5419
0
    return false;
5420
20.7k
        return true;
5421
20.7k
      }
5422
5423
32.9k
    return false;
5424
53.7k
  }
5425
0
      _bfd_dwarf2_cleanup_debug_info (abfd, pinfo);
5426
0
      memset (stash, 0, sizeof (*stash));
5427
0
    }
5428
6.13k
  else
5429
6.13k
    {
5430
6.13k
      stash = (struct dwarf2_debug *) bfd_zalloc (abfd, sizeof (*stash));
5431
6.13k
      if (! stash)
5432
0
  return false;
5433
6.13k
      *pinfo = stash;
5434
6.13k
    }
5435
6.13k
  stash->orig_bfd_id = abfd->id;
5436
6.13k
  stash->debug_sections = debug_sections;
5437
6.13k
  stash->f.syms = symbols;
5438
6.13k
  if (!save_section_vma (abfd, stash))
5439
0
    return false;
5440
5441
6.13k
  stash->f.abbrev_offsets = htab_create_alloc (10, hash_abbrev, eq_abbrev,
5442
6.13k
                 del_abbrev, calloc, free);
5443
6.13k
  if (!stash->f.abbrev_offsets)
5444
0
    return false;
5445
5446
6.13k
  stash->alt.abbrev_offsets = htab_create_alloc (10, hash_abbrev, eq_abbrev,
5447
6.13k
             del_abbrev, calloc, free);
5448
6.13k
  if (!stash->alt.abbrev_offsets)
5449
0
    return false;
5450
5451
6.13k
  stash->f.trie_root = alloc_trie_leaf (abfd);
5452
6.13k
  if (!stash->f.trie_root)
5453
0
    return false;
5454
5455
6.13k
  stash->alt.trie_root = alloc_trie_leaf (abfd);
5456
6.13k
  if (!stash->alt.trie_root)
5457
0
    return false;
5458
5459
6.13k
  if (debug_bfd == NULL)
5460
6.13k
    debug_bfd = abfd;
5461
5462
6.13k
  msec = find_debug_info (debug_bfd, debug_sections, NULL);
5463
6.13k
  if (msec == NULL && abfd == debug_bfd)
5464
3.29k
    {
5465
3.29k
      char * debug_filename;
5466
5467
3.29k
      debug_filename = bfd_follow_build_id_debuglink (abfd, DEBUGDIR);
5468
3.29k
      if (debug_filename == NULL)
5469
3.29k
  debug_filename = bfd_follow_gnu_debuglink (abfd, DEBUGDIR);
5470
5471
3.29k
      if (debug_filename == NULL)
5472
  /* No dwarf2 info, and no gnu_debuglink to follow.
5473
     Note that at this point the stash has been allocated, but
5474
     contains zeros.  This lets future calls to this function
5475
     fail more quickly.  */
5476
3.29k
  return false;
5477
5478
0
      debug_bfd = bfd_openr (debug_filename, NULL);
5479
0
      free (debug_filename);
5480
0
      if (debug_bfd == NULL)
5481
  /* FIXME: Should we report our failure to follow the debuglink ?  */
5482
0
  return false;
5483
5484
      /* Set BFD_DECOMPRESS to decompress debug sections.  */
5485
0
      debug_bfd->flags |= BFD_DECOMPRESS;
5486
0
      if (!bfd_check_format (debug_bfd, bfd_object)
5487
0
    || (msec = find_debug_info (debug_bfd,
5488
0
              debug_sections, NULL)) == NULL
5489
0
    || !bfd_generic_link_read_symbols (debug_bfd))
5490
0
  {
5491
0
    bfd_close (debug_bfd);
5492
0
    return false;
5493
0
  }
5494
5495
0
      symbols = bfd_get_outsymbols (debug_bfd);
5496
0
      stash->f.syms = symbols;
5497
0
      stash->close_on_cleanup = true;
5498
0
    }
5499
2.83k
  stash->f.bfd_ptr = debug_bfd;
5500
5501
2.83k
  if (do_place
5502
2.73k
      && !place_sections (abfd, stash))
5503
0
    return false;
5504
5505
  /* There can be more than one DWARF2 info section in a BFD these
5506
     days.  First handle the easy case when there's only one.  If
5507
     there's more than one, try case two: read them all in and produce
5508
     one large stash.  We do this in two passes - in the first pass we
5509
     just accumulate the section sizes, and in the second pass we
5510
     read in the section's contents.  (The allows us to avoid
5511
     reallocing the data as we add sections to the stash.)  */
5512
5513
2.83k
  if (! find_debug_info (debug_bfd, debug_sections, msec))
5514
2.59k
    {
5515
      /* Case 1: only one info section.  */
5516
2.59k
      total_size = bfd_get_section_limit_octets (debug_bfd, msec);
5517
2.59k
      if (! read_section (debug_bfd, &stash->debug_sections[debug_info],
5518
2.59k
        symbols, 0,
5519
2.59k
        &stash->f.dwarf_info_buffer, &total_size))
5520
1.12k
  goto restore_vma;
5521
2.59k
    }
5522
249
  else
5523
249
    {
5524
      /* Case 2: multiple sections.  */
5525
249
      for (total_size = 0;
5526
800
     msec;
5527
551
     msec = find_debug_info (debug_bfd, debug_sections, msec))
5528
580
  {
5529
580
    if (bfd_section_size_insane (debug_bfd, msec))
5530
29
      goto restore_vma;
5531
551
    bfd_size_type readsz = bfd_get_section_limit_octets (debug_bfd, msec);
5532
    /* Catch PR25070 testcase overflowing size calculation here.  */
5533
551
    if (total_size + readsz < total_size)
5534
0
      {
5535
0
        bfd_set_error (bfd_error_no_memory);
5536
0
        goto restore_vma;
5537
0
      }
5538
551
    total_size += readsz;
5539
551
  }
5540
5541
220
      stash->f.dwarf_info_buffer = (bfd_byte *) bfd_malloc (total_size);
5542
220
      if (stash->f.dwarf_info_buffer == NULL)
5543
0
  goto restore_vma;
5544
5545
220
      total_size = 0;
5546
220
      for (msec = find_debug_info (debug_bfd, debug_sections, NULL);
5547
609
     msec;
5548
389
     msec = find_debug_info (debug_bfd, debug_sections, msec))
5549
467
  {
5550
467
    bfd_size_type readsz = bfd_get_section_limit_octets (debug_bfd, msec);
5551
467
    if (readsz == 0)
5552
47
      continue;
5553
5554
420
    if (!(bfd_simple_get_relocated_section_contents
5555
420
    (debug_bfd, msec, stash->f.dwarf_info_buffer + total_size,
5556
420
     symbols)))
5557
78
      goto restore_vma;
5558
5559
342
    total_size += readsz;
5560
342
  }
5561
220
    }
5562
5563
1.60k
  stash->f.info_ptr = stash->f.dwarf_info_buffer;
5564
1.60k
  stash->f.dwarf_info_size = total_size;
5565
1.60k
  return true;
5566
5567
1.23k
 restore_vma:
5568
1.23k
  unset_sections (stash);
5569
1.23k
  return false;
5570
2.83k
}
5571
5572
/* Parse the next DWARF2 compilation unit at FILE->INFO_PTR.  */
5573
5574
static struct comp_unit *
5575
stash_comp_unit (struct dwarf2_debug *stash, struct dwarf2_debug_file *file)
5576
20.3k
{
5577
20.3k
  bfd_size_type length;
5578
20.3k
  unsigned int offset_size;
5579
20.3k
  bfd_byte *info_ptr_unit = file->info_ptr;
5580
20.3k
  bfd_byte *info_ptr_end = file->dwarf_info_buffer + file->dwarf_info_size;
5581
5582
20.3k
  if (file->info_ptr >= info_ptr_end)
5583
18.5k
    return NULL;
5584
5585
1.84k
  length = read_4_bytes (file->bfd_ptr, &file->info_ptr, info_ptr_end);
5586
  /* A 0xffffff length is the DWARF3 way of indicating
5587
     we use 64-bit offsets, instead of 32-bit offsets.  */
5588
1.84k
  if (length == 0xffffffff)
5589
17
    {
5590
17
      offset_size = 8;
5591
17
      length = read_8_bytes (file->bfd_ptr, &file->info_ptr, info_ptr_end);
5592
17
    }
5593
  /* A zero length is the IRIX way of indicating 64-bit offsets,
5594
     mostly because the 64-bit length will generally fit in 32
5595
     bits, and the endianness helps.  */
5596
1.82k
  else if (length == 0)
5597
61
    {
5598
61
      offset_size = 8;
5599
61
      length = read_4_bytes (file->bfd_ptr, &file->info_ptr, info_ptr_end);
5600
61
    }
5601
  /* In the absence of the hints above, we assume 32-bit DWARF2
5602
     offsets even for targets with 64-bit addresses, because:
5603
     a) most of the time these targets will not have generated
5604
     more than 2Gb of debug info and so will not need 64-bit
5605
     offsets,
5606
     and
5607
     b) if they do use 64-bit offsets but they are not using
5608
     the size hints that are tested for above then they are
5609
     not conforming to the DWARF3 standard anyway.  */
5610
1.76k
  else
5611
1.76k
    offset_size = 4;
5612
5613
1.84k
  if (length != 0
5614
1.81k
      && length <= (size_t) (info_ptr_end - file->info_ptr))
5615
1.46k
    {
5616
1.46k
      struct comp_unit *each = parse_comp_unit (stash, file,
5617
1.46k
            file->info_ptr, length,
5618
1.46k
            info_ptr_unit, offset_size);
5619
1.46k
      if (each)
5620
1.21k
  {
5621
1.21k
    if (file->comp_unit_tree == NULL)
5622
1.12k
      file->comp_unit_tree
5623
1.12k
        = splay_tree_new (splay_tree_compare_addr_range,
5624
1.12k
        splay_tree_free_addr_range, NULL);
5625
5626
1.21k
    struct addr_range *r
5627
1.21k
      = (struct addr_range *)bfd_malloc (sizeof (struct addr_range));
5628
1.21k
    r->start = each->info_ptr_unit;
5629
1.21k
    r->end = each->end_ptr;
5630
1.21k
    splay_tree_node v = splay_tree_lookup (file->comp_unit_tree,
5631
1.21k
             (splay_tree_key)r);
5632
1.21k
    if (v != NULL || r->end <= r->start)
5633
0
      abort ();
5634
1.21k
    splay_tree_insert (file->comp_unit_tree, (splay_tree_key)r,
5635
1.21k
           (splay_tree_value)each);
5636
5637
1.21k
    if (file->all_comp_units)
5638
90
      file->all_comp_units->prev_unit = each;
5639
1.12k
    else
5640
1.12k
      file->last_comp_unit = each;
5641
5642
1.21k
    each->next_unit = file->all_comp_units;
5643
1.21k
    file->all_comp_units = each;
5644
5645
1.21k
    if (each->arange.high == 0)
5646
315
      {
5647
315
        each->next_unit_without_ranges = file->all_comp_units_without_ranges;
5648
315
        file->all_comp_units_without_ranges = each;
5649
315
      }
5650
5651
1.21k
    file->info_ptr += length;
5652
1.21k
    return each;
5653
1.21k
  }
5654
1.46k
    }
5655
5656
  /* Don't trust any of the DWARF info after a corrupted length or
5657
     parse error.  */
5658
629
  file->info_ptr = info_ptr_end;
5659
629
  return NULL;
5660
1.84k
}
5661
5662
/* Hash function for an asymbol.  */
5663
5664
static hashval_t
5665
hash_asymbol (const void *sym)
5666
410
{
5667
410
  const asymbol *asym = sym;
5668
410
  return htab_hash_string (asym->name);
5669
410
}
5670
5671
/* Equality function for asymbols.  */
5672
5673
static int
5674
eq_asymbol (const void *a, const void *b)
5675
21
{
5676
21
  const asymbol *sa = a;
5677
21
  const asymbol *sb = b;
5678
21
  return strcmp (sa->name, sb->name) == 0;
5679
21
}
5680
5681
/* Scan the debug information in PINFO looking for a DW_TAG_subprogram
5682
   abbrev with a DW_AT_low_pc attached to it.  Then lookup that same
5683
   symbol in SYMBOLS and return the difference between the low_pc and
5684
   the symbol's address.  Returns 0 if no suitable symbol could be found.  */
5685
5686
bfd_signed_vma
5687
_bfd_dwarf2_find_symbol_bias (asymbol ** symbols, void ** pinfo)
5688
1.00k
{
5689
1.00k
  struct dwarf2_debug *stash;
5690
1.00k
  struct comp_unit * unit;
5691
1.00k
  htab_t sym_hash;
5692
1.00k
  bfd_signed_vma result = 0;
5693
1.00k
  asymbol ** psym;
5694
5695
1.00k
  stash = (struct dwarf2_debug *) *pinfo;
5696
5697
1.00k
  if (stash == NULL || symbols == NULL)
5698
0
    return 0;
5699
5700
1.00k
  sym_hash = htab_create_alloc (10, hash_asymbol, eq_asymbol,
5701
1.00k
        NULL, xcalloc, free);
5702
5.72k
  for (psym = symbols; * psym != NULL; psym++)
5703
4.72k
    {
5704
4.72k
      asymbol * sym = * psym;
5705
5706
4.72k
      if (sym->flags & BSF_FUNCTION && sym->section != NULL)
5707
410
  {
5708
410
    void **slot = htab_find_slot (sym_hash, sym, INSERT);
5709
410
    *slot = sym;
5710
410
  }
5711
4.72k
    }
5712
5713
1.00k
  for (unit = stash->f.all_comp_units; unit; unit = unit->next_unit)
5714
0
    {
5715
0
      struct funcinfo * func;
5716
5717
0
      comp_unit_maybe_decode_line_info (unit);
5718
5719
0
      for (func = unit->function_table; func != NULL; func = func->prev_func)
5720
0
  if (func->name && func->arange.low)
5721
0
    {
5722
0
      asymbol search, *sym;
5723
5724
      /* FIXME: Do we need to scan the aranges looking for the
5725
         lowest pc value?  */
5726
5727
0
      search.name = func->name;
5728
0
      sym = htab_find (sym_hash, &search);
5729
0
      if (sym != NULL)
5730
0
        {
5731
0
    result = func->arange.low - (sym->value + sym->section->vma);
5732
0
    goto done;
5733
0
        }
5734
0
    }
5735
0
    }
5736
5737
1.00k
 done:
5738
1.00k
  htab_delete (sym_hash);
5739
1.00k
  return result;
5740
1.00k
}
5741
5742
/* See _bfd_dwarf2_find_nearest_line_with_alt.  */
5743
5744
int
5745
_bfd_dwarf2_find_nearest_line (bfd *abfd,
5746
             asymbol **symbols,
5747
             asymbol *symbol,
5748
             asection *section,
5749
             bfd_vma offset,
5750
             const char **filename_ptr,
5751
             const char **functionname_ptr,
5752
             unsigned int *linenumber_ptr,
5753
             unsigned int *discriminator_ptr,
5754
             const struct dwarf_debug_section *debug_sections,
5755
             void **pinfo)
5756
30.6k
{
5757
30.6k
  return _bfd_dwarf2_find_nearest_line_with_alt
5758
30.6k
    (abfd, NULL, symbols, symbol, section, offset, filename_ptr,
5759
30.6k
     functionname_ptr, linenumber_ptr, discriminator_ptr, debug_sections,
5760
30.6k
     pinfo);
5761
30.6k
}
5762
5763
/* Find the source code location of SYMBOL.  If SYMBOL is NULL
5764
   then find the nearest source code location corresponding to
5765
   the address SECTION + OFFSET.
5766
   Returns 1 if the line is found without error and fills in
5767
   FILENAME_PTR and LINENUMBER_PTR.  In the case where SYMBOL was
5768
   NULL the FUNCTIONNAME_PTR is also filled in.
5769
   Returns 2 if partial information from _bfd_elf_find_function is
5770
   returned (function and maybe file) by looking at symbols.  DWARF2
5771
   info is present but not regarding the requested code location.
5772
   Returns 0 otherwise.
5773
   SYMBOLS contains the symbol table for ABFD.
5774
   DEBUG_SECTIONS contains the name of the dwarf debug sections.
5775
   If ALT_FILENAME is given, attempt to open the file and use it
5776
   as the .gnu_debugaltlink file. Otherwise this file will be
5777
   searched for when needed.  */
5778
5779
int
5780
_bfd_dwarf2_find_nearest_line_with_alt
5781
  (bfd *abfd,
5782
   const char *alt_filename,
5783
   asymbol **symbols,
5784
   asymbol *symbol,
5785
   asection *section,
5786
   bfd_vma offset,
5787
   const char **filename_ptr,
5788
   const char **functionname_ptr,
5789
   unsigned int *linenumber_ptr,
5790
   unsigned int *discriminator_ptr,
5791
   const struct dwarf_debug_section *debug_sections,
5792
   void **pinfo)
5793
59.8k
{
5794
  /* Read each compilation unit from the section .debug_info, and check
5795
     to see if it contains the address we are searching for.  If yes,
5796
     lookup the address, and return the line number info.  If no, go
5797
     on to the next compilation unit.
5798
5799
     We keep a list of all the previously read compilation units, and
5800
     a pointer to the next un-read compilation unit.  Check the
5801
     previously read units before reading more.  */
5802
59.8k
  struct dwarf2_debug *stash;
5803
  /* What address are we looking for?  */
5804
59.8k
  bfd_vma addr;
5805
59.8k
  struct comp_unit* each;
5806
59.8k
  struct funcinfo *function = NULL;
5807
59.8k
  int found = false;
5808
59.8k
  bool do_line;
5809
5810
59.8k
  *filename_ptr = NULL;
5811
59.8k
  if (functionname_ptr != NULL)
5812
54.5k
    *functionname_ptr = NULL;
5813
59.8k
  *linenumber_ptr = 0;
5814
59.8k
  if (discriminator_ptr)
5815
19.4k
    *discriminator_ptr = 0;
5816
5817
59.8k
  if (! _bfd_dwarf2_slurp_debug_info (abfd, NULL, debug_sections,
5818
59.8k
              symbols, pinfo,
5819
59.8k
              (abfd->flags & (EXEC_P | DYNAMIC)) == 0))
5820
37.5k
    return false;
5821
5822
22.3k
  stash = (struct dwarf2_debug *) *pinfo;
5823
5824
22.3k
  if (stash->alt.bfd_ptr == NULL && alt_filename != NULL)
5825
0
    {
5826
0
      bfd *alt_bfd = bfd_openr (alt_filename, NULL);
5827
5828
0
      if (alt_bfd == NULL)
5829
  /* bfd_openr will have set the bfd_error.  */
5830
0
  return false;
5831
0
      if (!bfd_check_format (alt_bfd, bfd_object))
5832
0
  {
5833
0
    bfd_set_error (bfd_error_wrong_format);
5834
0
    bfd_close (alt_bfd);
5835
0
    return false;
5836
0
  }
5837
5838
0
      stash->alt.bfd_ptr = alt_bfd;
5839
0
    }
5840
5841
22.3k
  do_line = symbol != NULL;
5842
22.3k
  if (do_line)
5843
3.57k
    {
5844
3.57k
      BFD_ASSERT (section == NULL && offset == 0 && functionname_ptr == NULL);
5845
3.57k
      section = bfd_asymbol_section (symbol);
5846
3.57k
      addr = symbol->value;
5847
3.57k
    }
5848
18.8k
  else
5849
18.8k
    {
5850
18.8k
      BFD_ASSERT (section != NULL && functionname_ptr != NULL);
5851
18.8k
      addr = offset;
5852
5853
      /* If we have no SYMBOL but the section we're looking at is not a
5854
   code section, then take a look through the list of symbols to see
5855
   if we have a symbol at the address we're looking for.  If we do
5856
   then use this to look up line information.  This will allow us to
5857
   give file and line results for data symbols.  We exclude code
5858
   symbols here, if we look up a function symbol and then look up the
5859
   line information we'll actually return the line number for the
5860
   opening '{' rather than the function definition line.  This is
5861
   because looking up by symbol uses the line table, in which the
5862
   first line for a function is usually the opening '{', while
5863
   looking up the function by section + offset uses the
5864
   DW_AT_decl_line from the function DW_TAG_subprogram for the line,
5865
   which will be the line of the function name.  */
5866
18.8k
      if (symbols != NULL && (section->flags & SEC_CODE) == 0)
5867
5.98k
  {
5868
5.98k
    asymbol **tmp;
5869
5870
218k
    for (tmp = symbols; (*tmp) != NULL; ++tmp)
5871
212k
      if ((*tmp)->the_bfd == abfd
5872
212k
    && (*tmp)->section == section
5873
7.95k
    && (*tmp)->value == offset
5874
2.68k
    && ((*tmp)->flags & BSF_SECTION_SYM) == 0)
5875
1.88k
        {
5876
1.88k
    symbol = *tmp;
5877
1.88k
    do_line = true;
5878
    /* For local symbols, keep going in the hope we find a
5879
       global.  */
5880
1.88k
    if ((symbol->flags & BSF_GLOBAL) != 0)
5881
330
      break;
5882
1.88k
        }
5883
5.98k
  }
5884
18.8k
    }
5885
5886
22.3k
  if (section->output_section)
5887
0
    addr += section->output_section->vma + section->output_offset;
5888
22.3k
  else
5889
22.3k
    addr += section->vma;
5890
5891
  /* A null info_ptr indicates that there is no dwarf2 info
5892
     (or that an error occured while setting up the stash).  */
5893
22.3k
  if (! stash->f.info_ptr)
5894
0
    return false;
5895
5896
22.3k
  stash->inliner_chain = NULL;
5897
5898
  /* Check the previously read comp. units first.  */
5899
22.3k
  if (do_line)
5900
5.32k
    {
5901
      /* The info hash tables use quite a bit of memory.  We may not want to
5902
   always use them.  We use some heuristics to decide if and when to
5903
   turn it on.  */
5904
5.32k
      if (stash->info_hash_status == STASH_INFO_HASH_OFF)
5905
5.32k
  stash_maybe_enable_info_hash_tables (abfd, stash);
5906
5907
      /* Keep info hash table up to date if they are available.  Note that we
5908
   may disable the hash tables if there is any error duing update.  */
5909
5.32k
      if (stash->info_hash_status == STASH_INFO_HASH_ON)
5910
0
  stash_maybe_update_info_hash_tables (stash);
5911
5912
5.32k
      if (stash->info_hash_status == STASH_INFO_HASH_ON)
5913
0
  {
5914
0
    found = stash_find_line_fast (stash, symbol, addr,
5915
0
          filename_ptr, linenumber_ptr);
5916
0
    if (found)
5917
0
      goto done;
5918
0
  }
5919
5920
      /* Check the previously read comp. units first.  */
5921
10.2k
      for (each = stash->f.all_comp_units; each; each = each->next_unit)
5922
4.89k
  if ((symbol->flags & BSF_FUNCTION) == 0
5923
1.76k
      || comp_unit_may_contain_address (each, addr))
5924
3.67k
    {
5925
3.67k
      found = comp_unit_find_line (each, symbol, addr, filename_ptr,
5926
3.67k
           linenumber_ptr);
5927
3.67k
      if (found)
5928
0
        goto done;
5929
3.67k
    }
5930
5.32k
    }
5931
17.0k
  else
5932
17.0k
    {
5933
17.0k
      struct trie_node *trie = stash->f.trie_root;
5934
17.0k
      unsigned int bits = VMA_BITS - 8;
5935
17.0k
      struct comp_unit **prev_each;
5936
5937
      /* Traverse interior nodes until we get to a leaf.  */
5938
17.4k
      while (trie && trie->num_room_in_leaf == 0)
5939
357
  {
5940
357
    int ch = (addr >> bits) & 0xff;
5941
357
    trie = ((struct trie_interior *) trie)->children[ch];
5942
357
    bits -= 8;
5943
357
  }
5944
5945
17.0k
      if (trie)
5946
17.0k
  {
5947
17.0k
    const struct trie_leaf *leaf = (struct trie_leaf *) trie;
5948
17.0k
    unsigned int i;
5949
5950
41.0k
    for (i = 0; i < leaf->num_stored_in_leaf; ++i)
5951
24.0k
      leaf->ranges[i].unit->mark = false;
5952
5953
33.2k
    for (i = 0; i < leaf->num_stored_in_leaf; ++i)
5954
19.2k
      {
5955
19.2k
        struct comp_unit *unit = leaf->ranges[i].unit;
5956
19.2k
        if (unit->mark
5957
17.2k
      || addr < leaf->ranges[i].low_pc
5958
11.7k
      || addr >= leaf->ranges[i].high_pc)
5959
13.0k
          continue;
5960
6.16k
        unit->mark = true;
5961
5962
6.16k
        found = comp_unit_find_nearest_line (unit, addr,
5963
6.16k
               filename_ptr,
5964
6.16k
               &function,
5965
6.16k
               linenumber_ptr,
5966
6.16k
               discriminator_ptr);
5967
6.16k
        if (found)
5968
3.01k
    goto done;
5969
6.16k
     }
5970
17.0k
  }
5971
5972
      /* Also scan through all compilation units without any ranges,
5973
         taking them out of the list if they have acquired any since
5974
   last time.  */
5975
14.0k
      prev_each = &stash->f.all_comp_units_without_ranges;
5976
16.1k
      for (each = *prev_each; each; each = each->next_unit_without_ranges)
5977
2.15k
        {
5978
2.15k
    if (each->arange.high != 0)
5979
52
      {
5980
52
        *prev_each = each->next_unit_without_ranges;
5981
52
        continue;
5982
52
      }
5983
5984
2.10k
    found = comp_unit_find_nearest_line (each, addr,
5985
2.10k
                 filename_ptr,
5986
2.10k
                 &function,
5987
2.10k
                 linenumber_ptr,
5988
2.10k
                 discriminator_ptr);
5989
2.10k
    if (found)
5990
13
      goto done;
5991
2.08k
    prev_each = &each->next_unit_without_ranges;
5992
2.08k
  }
5993
14.0k
    }
5994
5995
  /* Read each remaining comp. units checking each as they are read.  */
5996
20.3k
  while ((each = stash_comp_unit (stash, &stash->f)) != NULL)
5997
1.21k
    {
5998
      /* DW_AT_low_pc and DW_AT_high_pc are optional for
5999
   compilation units.  If we don't have them (i.e.,
6000
   unit->high == 0), we need to consult the line info table
6001
   to see if a compilation unit contains the given
6002
   address.  */
6003
1.21k
      if (do_line)
6004
134
  found = (((symbol->flags & BSF_FUNCTION) == 0
6005
53
      || comp_unit_may_contain_address (each, addr))
6006
134
     && comp_unit_find_line (each, symbol, addr,
6007
134
           filename_ptr, linenumber_ptr));
6008
1.08k
      else
6009
1.08k
  found = (comp_unit_may_contain_address (each, addr)
6010
1.08k
     && comp_unit_find_nearest_line (each, addr,
6011
1.08k
             filename_ptr,
6012
1.08k
             &function,
6013
1.08k
             linenumber_ptr,
6014
1.08k
             discriminator_ptr));
6015
6016
1.21k
      if (found)
6017
202
  break;
6018
1.21k
    }
6019
6020
22.3k
 done:
6021
22.3k
  if (functionname_ptr && function && function->is_linkage)
6022
2.58k
    {
6023
2.58k
      *functionname_ptr = function->name;
6024
2.58k
      if (!found)
6025
0
        found = 2;
6026
2.58k
    }
6027
19.7k
  else if (functionname_ptr
6028
16.2k
     && (!*functionname_ptr
6029
0
         || (function && !function->is_linkage)))
6030
16.2k
    {
6031
16.2k
      asymbol *fun;
6032
16.2k
      asymbol **syms = symbols;
6033
16.2k
      asection *sec = section;
6034
6035
16.2k
      _bfd_dwarf2_stash_syms (stash, abfd, &sec, &syms);
6036
16.2k
      fun = _bfd_elf_find_function (abfd, syms, sec, offset,
6037
16.2k
            *filename_ptr ? NULL : filename_ptr,
6038
16.2k
            functionname_ptr);
6039
6040
16.2k
      if (!found && fun != NULL)
6041
5.46k
  found = 2;
6042
6043
16.2k
      if (function && !function->is_linkage)
6044
130
  {
6045
130
    bfd_vma sec_vma;
6046
6047
130
    sec_vma = section->vma;
6048
130
    if (section->output_section != NULL)
6049
0
      sec_vma = section->output_section->vma + section->output_offset;
6050
130
    if (fun == NULL)
6051
43
      *functionname_ptr = function->name;
6052
87
    else if (fun->value + sec_vma == function->arange.low)
6053
37
      function->name = *functionname_ptr;
6054
    /* Even if we didn't find a linkage name, say that we have
6055
       to stop a repeated search of symbols.  */
6056
130
    function->is_linkage = true;
6057
130
  }
6058
16.2k
    }
6059
6060
22.3k
  unset_sections (stash);
6061
6062
22.3k
  return found;
6063
19.3k
}
6064
6065
bool
6066
_bfd_dwarf2_find_inliner_info (bfd *abfd ATTRIBUTE_UNUSED,
6067
             const char **filename_ptr,
6068
             const char **functionname_ptr,
6069
             unsigned int *linenumber_ptr,
6070
             void **pinfo)
6071
0
{
6072
0
  struct dwarf2_debug *stash;
6073
6074
0
  stash = (struct dwarf2_debug *) *pinfo;
6075
0
  if (stash)
6076
0
    {
6077
0
      struct funcinfo *func = stash->inliner_chain;
6078
6079
0
      if (func && func->caller_func)
6080
0
  {
6081
0
    *filename_ptr = func->caller_file;
6082
0
    *functionname_ptr = func->caller_func->name;
6083
0
    *linenumber_ptr = func->caller_line;
6084
0
    stash->inliner_chain = func->caller_func;
6085
0
    return true;
6086
0
  }
6087
0
    }
6088
6089
0
  return false;
6090
0
}
6091
6092
void
6093
_bfd_dwarf2_cleanup_debug_info (bfd *abfd, void **pinfo)
6094
139k
{
6095
139k
  struct dwarf2_debug *stash = (struct dwarf2_debug *) *pinfo;
6096
139k
  struct comp_unit *each;
6097
139k
  struct dwarf2_debug_file *file;
6098
6099
139k
  if (abfd == NULL || stash == NULL)
6100
133k
    return;
6101
6102
6.13k
  if (stash->varinfo_hash_table)
6103
0
    bfd_hash_table_free (&stash->varinfo_hash_table->base);
6104
6.13k
  if (stash->funcinfo_hash_table)
6105
0
    bfd_hash_table_free (&stash->funcinfo_hash_table->base);
6106
6107
6.13k
  file = &stash->f;
6108
12.2k
  while (1)
6109
12.2k
    {
6110
13.4k
      for (each = file->all_comp_units; each; each = each->next_unit)
6111
1.21k
  {
6112
1.21k
    struct funcinfo *function_table = each->function_table;
6113
1.21k
    struct varinfo *variable_table = each->variable_table;
6114
6115
1.21k
    if (each->line_table && each->line_table != file->line_table)
6116
22
      {
6117
22
        free (each->line_table->files);
6118
22
        free (each->line_table->dirs);
6119
22
      }
6120
6121
1.21k
    free (each->lookup_funcinfo_table);
6122
1.21k
    each->lookup_funcinfo_table = NULL;
6123
6124
4.43k
    while (function_table)
6125
3.22k
      {
6126
3.22k
        free (function_table->file);
6127
3.22k
        function_table->file = NULL;
6128
3.22k
        free (function_table->caller_file);
6129
3.22k
        function_table->caller_file = NULL;
6130
3.22k
        function_table = function_table->prev_func;
6131
3.22k
      }
6132
6133
1.39k
    while (variable_table)
6134
178
      {
6135
178
        free (variable_table->file);
6136
178
        variable_table->file = NULL;
6137
178
        variable_table = variable_table->prev_var;
6138
178
      }
6139
1.21k
  }
6140
6141
12.2k
      if (file->line_table)
6142
721
  {
6143
721
    free (file->line_table->files);
6144
721
    free (file->line_table->dirs);
6145
721
  }
6146
12.2k
      htab_delete (file->abbrev_offsets);
6147
12.2k
      if (file->comp_unit_tree != NULL)
6148
1.12k
  splay_tree_delete (file->comp_unit_tree);
6149
6150
12.2k
      free (file->dwarf_line_str_buffer);
6151
12.2k
      free (file->dwarf_str_buffer);
6152
12.2k
      free (file->dwarf_ranges_buffer);
6153
12.2k
      free (file->dwarf_rnglists_buffer);
6154
12.2k
      free (file->dwarf_line_buffer);
6155
12.2k
      free (file->dwarf_abbrev_buffer);
6156
12.2k
      free (file->dwarf_info_buffer);
6157
12.2k
      free (file->dwarf_addr_buffer);
6158
12.2k
      free (file->dwarf_str_offsets_buffer);
6159
12.2k
      if (file == &stash->alt)
6160
6.13k
  break;
6161
6.13k
      file = &stash->alt;
6162
6.13k
    }
6163
6.13k
  free (stash->sec_vma);
6164
6.13k
  free (stash->adjusted_sections);
6165
6.13k
  if (stash->close_on_cleanup)
6166
0
    bfd_close (stash->f.bfd_ptr);
6167
6.13k
  if (stash->alt.bfd_ptr)
6168
0
    bfd_close (stash->alt.bfd_ptr);
6169
6.13k
}
6170
6171
typedef struct elf_find_function_cache
6172
{
6173
  asection *     last_section;
6174
  asymbol *      func;
6175
  const char *   filename;
6176
  bfd_size_type  code_size;
6177
  bfd_vma        code_off;
6178
6179
} elf_find_function_cache;
6180
6181
6182
/* Returns TRUE if symbol SYM with address CODE_OFF and size CODE_SIZE
6183
   is a better fit to match OFFSET than whatever is currenly stored in
6184
   CACHE.  */
6185
6186
static inline bool
6187
better_fit (elf_find_function_cache *  cache,
6188
      asymbol *                  sym,
6189
      bfd_vma                    code_off,
6190
      bfd_size_type              code_size,
6191
      bfd_vma                    offset)
6192
13.5k
{
6193
  /* If the symbol is beyond the desired offset, ignore it.  */
6194
13.5k
  if (code_off > offset)
6195
3.16k
    return false;
6196
6197
  /* If the symbol is further away from the desired
6198
     offset than our current best, then ignore it.  */
6199
10.3k
  if (code_off < cache->code_off)
6200
705
    return false;
6201
6202
  /* On the other hand, if it is closer, then use it.  */
6203
9.69k
  if (code_off > cache->code_off)
6204
1.62k
    return true;
6205
6206
  /* assert (code_off == cache->code_off);  */
6207
6208
  /* If our current best fit does not actually reach the desired
6209
     offset...  */
6210
8.07k
  if (cache->code_off + cache->code_size <= offset)
6211
    /* ... then return whichever candidate covers
6212
       more area and hence gets closer to OFFSET.  */
6213
6.78k
    return code_size > cache->code_size;
6214
6215
  /* The current cache'd symbol covers OFFSET.  */
6216
6217
  /* If the new symbol does not cover the desired offset then skip it.  */  
6218
1.28k
  if (code_off + code_size <= offset)
6219
364
    return false;
6220
6221
  /* Both symbols cover OFFSET.  */
6222
6223
  /* Prefer functions over non-functions.  */
6224
921
  flagword cache_flags = cache->func->flags;
6225
921
  flagword sym_flags   = sym->flags;
6226
6227
921
  if ((cache_flags & BSF_FUNCTION) && ((sym_flags & BSF_FUNCTION) == 0))
6228
110
    return false;
6229
811
  if ((sym_flags & BSF_FUNCTION) && ((cache_flags & BSF_FUNCTION) == 0))
6230
100
    return true;
6231
6232
  /* FIXME: Should we choose LOCAL over GLOBAL ?  */
6233
6234
  /* Prefer typed symbols over notyped.  */
6235
711
  int cache_type = ELF_ST_TYPE (((elf_symbol_type *) cache->func)->internal_elf_sym.st_info);
6236
711
  int sym_type   = ELF_ST_TYPE (((elf_symbol_type *) sym)->internal_elf_sym.st_info);
6237
6238
711
  if (cache_type == STT_NOTYPE && sym_type != STT_NOTYPE)
6239
31
    return true;
6240
680
  if (cache_type != STT_NOTYPE && sym_type == STT_NOTYPE)
6241
165
    return false;
6242
6243
  /* Otherwise choose whichever symbol covers a smaller area.  */
6244
515
  return code_size < cache->code_size;
6245
680
}
6246
6247
/* Find the function to a particular section and offset,
6248
   for error reporting.  */
6249
6250
asymbol *
6251
_bfd_elf_find_function (bfd *abfd,
6252
      asymbol **symbols,
6253
      asection *section,
6254
      bfd_vma offset,
6255
      const char **filename_ptr,
6256
      const char **functionname_ptr)
6257
31.1k
{
6258
31.1k
  if (symbols == NULL)
6259
4.20k
    return NULL;
6260
6261
26.9k
  if (bfd_get_flavour (abfd) != bfd_target_elf_flavour)
6262
0
    return NULL;
6263
6264
26.9k
  elf_find_function_cache * cache = elf_tdata (abfd)->elf_find_function_cache;
6265
6266
26.9k
  if (cache == NULL)
6267
3.14k
    {
6268
3.14k
      cache = bfd_zalloc (abfd, sizeof (*cache));
6269
3.14k
      elf_tdata (abfd)->elf_find_function_cache = cache;
6270
3.14k
      if (cache == NULL)
6271
0
  return NULL;
6272
3.14k
    }
6273
6274
26.9k
  if (cache->last_section != section
6275
13.1k
      || cache->func == NULL
6276
4.03k
      || offset < cache->func->value
6277
3.93k
      || offset >= cache->func->value + cache->code_size)
6278
24.2k
    {
6279
24.2k
      asymbol *file;
6280
24.2k
      asymbol **p;
6281
      /* ??? Given multiple file symbols, it is impossible to reliably
6282
   choose the right file name for global symbols.  File symbols are
6283
   local symbols, and thus all file symbols must sort before any
6284
   global symbols.  The ELF spec may be interpreted to say that a
6285
   file symbol must sort before other local symbols, but currently
6286
   ld -r doesn't do this.  So, for ld -r output, it is possible to
6287
   make a better choice of file name for local symbols by ignoring
6288
   file symbols appearing after a given local symbol.  */
6289
24.2k
      enum { nothing_seen, symbol_seen, file_after_symbol_seen } state;
6290
24.2k
      elf_backend_data *bed = get_elf_backend_data (abfd);
6291
6292
24.2k
      file = NULL;
6293
24.2k
      state = nothing_seen;
6294
24.2k
      cache->filename = NULL;
6295
24.2k
      cache->func = NULL;
6296
24.2k
      cache->code_size = 0;
6297
24.2k
      cache->code_off = 0;
6298
24.2k
      cache->last_section = section;
6299
6300
857k
      for (p = symbols; *p != NULL; p++)
6301
833k
  {
6302
833k
    asymbol *sym = *p;
6303
833k
    bfd_vma code_off;
6304
833k
    bfd_size_type size;
6305
6306
833k
    if ((sym->flags & BSF_FILE) != 0)
6307
27.7k
      {
6308
27.7k
        file = sym;
6309
27.7k
        if (state == symbol_seen)
6310
2.88k
    state = file_after_symbol_seen;
6311
27.7k
        continue;
6312
27.7k
      }
6313
6314
805k
    if (state == nothing_seen)
6315
24.2k
      state = symbol_seen;
6316
6317
805k
    size = bed->maybe_function_sym (sym, section, &code_off);
6318
6319
805k
    if (size == 0)
6320
792k
      continue;
6321
6322
13.5k
    if (better_fit (cache, sym, code_off, size, offset))
6323
7.76k
      {
6324
7.76k
        cache->func = sym;
6325
7.76k
        cache->code_size = size;
6326
7.76k
        cache->code_off = code_off;
6327
7.76k
        cache->filename = NULL;
6328
6329
7.76k
        if (file != NULL
6330
5.32k
      && ((sym->flags & BSF_LOCAL) != 0
6331
2.33k
          || state != file_after_symbol_seen))
6332
4.89k
    cache->filename = bfd_asymbol_name (file);
6333
7.76k
      }
6334
    /* Otherwise, if the symbol is beyond the desired offset but it
6335
       lies within the bounds of the current best match then reduce
6336
       the size of the current best match so that future searches
6337
       will not not used the cached symbol by mistake.  */
6338
5.79k
    else if (code_off > offset 
6339
3.16k
       && code_off > cache->code_off
6340
3.16k
       && code_off < cache->code_off + cache->code_size)
6341
121
      {
6342
121
        cache->code_size = code_off - cache->code_off;
6343
121
      }
6344
13.5k
  }
6345
24.2k
    }
6346
6347
26.9k
  if (cache->func == NULL)
6348
17.7k
    return NULL;
6349
6350
9.20k
  if (filename_ptr)
6351
8.74k
    *filename_ptr = cache->filename;
6352
9.20k
  if (functionname_ptr)
6353
9.20k
    *functionname_ptr = bfd_asymbol_name (cache->func);
6354
6355
9.20k
  return cache->func;
6356
26.9k
}