Add many methods to buildsym_compunit
[deliverable/binutils-gdb.git] / gdb / buildsym.c
1 /* Support routines for building symbol tables in GDB's internal format.
2 Copyright (C) 1986-2018 Free Software Foundation, Inc.
3
4 This file is part of GDB.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program. If not, see <http://www.gnu.org/licenses/>. */
18
19 /* This module provides subroutines used for creating and adding to
20 the symbol table. These routines are called from various symbol-
21 file-reading routines.
22
23 Routines to support specific debugging information formats (stabs,
24 DWARF, etc) belong somewhere else.
25
26 The basic way this module is used is as follows:
27
28 scoped_free_pendings free_pending;
29 cust = start_symtab (...);
30 ... read debug info ...
31 cust = end_symtab (...);
32
33 The compunit symtab pointer ("cust") is returned from both start_symtab
34 and end_symtab to simplify the debug info readers.
35
36 There are minor variations on this, e.g., dwarf2read.c splits end_symtab
37 into two calls: end_symtab_get_static_block, end_symtab_from_static_block,
38 but all debug info readers follow this basic flow.
39
40 Reading DWARF Type Units is another variation:
41
42 scoped_free_pendings free_pending;
43 cust = start_symtab (...);
44 ... read debug info ...
45 cust = end_expandable_symtab (...);
46
47 And then reading subsequent Type Units within the containing "Comp Unit"
48 will use a second flow:
49
50 scoped_free_pendings free_pending;
51 cust = restart_symtab (...);
52 ... read debug info ...
53 cust = augment_type_symtab (...);
54
55 dbxread.c and xcoffread.c use another variation:
56
57 scoped_free_pendings free_pending;
58 cust = start_symtab (...);
59 ... read debug info ...
60 cust = end_symtab (...);
61 ... start_symtab + read + end_symtab repeated ...
62 */
63
64 #include "defs.h"
65 #include "buildsym.h"
66 #include "bfd.h"
67 #include "gdb_obstack.h"
68 #include "symtab.h"
69 #include "symfile.h"
70 #include "objfiles.h"
71 #include "gdbtypes.h"
72 #include "complaints.h"
73 #include "expression.h" /* For "enum exp_opcode" used by... */
74 #include "filenames.h" /* For DOSish file names. */
75 #include "macrotab.h"
76 #include "demangle.h" /* Needed by SYMBOL_INIT_DEMANGLED_NAME. */
77 #include "block.h"
78 #include "cp-support.h"
79 #include "dictionary.h"
80 #include "addrmap.h"
81 #include <algorithm>
82
83 /* For cleanup_undefined_stabs_types and finish_global_stabs (somewhat
84 questionable--see comment where we call them). */
85
86 #include "stabsread.h"
87
88 /* Buildsym's counterpart to struct compunit_symtab. */
89
90 struct buildsym_compunit
91 {
92 /* Start recording information about a primary source file (IOW, not an
93 included source file).
94 COMP_DIR is the directory in which the compilation unit was compiled
95 (or NULL if not known). */
96
97 buildsym_compunit (struct objfile *objfile_, const char *name,
98 const char *comp_dir_, enum language language_,
99 CORE_ADDR last_addr)
100 : objfile (objfile_),
101 m_last_source_file (name == nullptr ? nullptr : xstrdup (name)),
102 comp_dir (comp_dir_ == nullptr ? nullptr : xstrdup (comp_dir_)),
103 language (language_),
104 m_last_source_start_addr (last_addr)
105 {
106 /* Allocate the compunit symtab now. The caller needs it to allocate
107 non-primary symtabs. It is also needed by get_macro_table. */
108 compunit_symtab = allocate_compunit_symtab (objfile, name);
109
110 /* Build the subfile for NAME (the main source file) so that we can record
111 a pointer to it for later.
112 IMPORTANT: Do not allocate a struct symtab for NAME here.
113 It can happen that the debug info provides a different path to NAME than
114 DIRNAME,NAME. We cope with this in watch_main_source_file_lossage but
115 that only works if the main_subfile doesn't have a symtab yet. */
116 start_subfile (name);
117 /* Save this so that we don't have to go looking for it at the end
118 of the subfiles list. */
119 main_subfile = m_current_subfile;
120 }
121
122 /* Reopen an existing compunit_symtab so that additional symbols can
123 be added to it. Arguments are as for the main constructor. CUST
124 is the expandable compunit_symtab to be reopened. */
125
126 buildsym_compunit (struct objfile *objfile_, const char *name,
127 const char *comp_dir_, enum language language_,
128 CORE_ADDR last_addr, struct compunit_symtab *cust)
129 : objfile (objfile_),
130 m_last_source_file (name == nullptr ? nullptr : xstrdup (name)),
131 comp_dir (comp_dir_ == nullptr ? nullptr : xstrdup (comp_dir_)),
132 compunit_symtab (cust),
133 language (language_),
134 m_last_source_start_addr (last_addr)
135 {
136 }
137
138 ~buildsym_compunit ()
139 {
140 struct subfile *subfile, *nextsub;
141
142 if (m_pending_macros != nullptr)
143 free_macro_table (m_pending_macros);
144
145 for (subfile = subfiles;
146 subfile != NULL;
147 subfile = nextsub)
148 {
149 nextsub = subfile->next;
150 xfree (subfile->name);
151 xfree (subfile->line_vector);
152 xfree (subfile);
153 }
154
155 struct pending *next, *next1;
156
157 for (next = m_file_symbols; next != NULL; next = next1)
158 {
159 next1 = next->next;
160 xfree ((void *) next);
161 }
162
163 for (next = m_global_symbols; next != NULL; next = next1)
164 {
165 next1 = next->next;
166 xfree ((void *) next);
167 }
168 }
169
170 void set_last_source_file (const char *name)
171 {
172 char *new_name = name == NULL ? NULL : xstrdup (name);
173 m_last_source_file.reset (new_name);
174 }
175
176 const char *get_last_source_file ()
177 {
178 return m_last_source_file.get ();
179 }
180
181 struct macro_table *get_macro_table ()
182 {
183 if (m_pending_macros == nullptr)
184 m_pending_macros = new_macro_table (&objfile->per_bfd->storage_obstack,
185 objfile->per_bfd->macro_cache,
186 compunit_symtab);
187 return m_pending_macros;
188 }
189
190 struct macro_table *release_macros ()
191 {
192 struct macro_table *result = m_pending_macros;
193 m_pending_macros = nullptr;
194 return result;
195 }
196
197 /* This function is called to discard any pending blocks. */
198
199 void free_pending_blocks ()
200 {
201 m_pending_block_obstack.clear ();
202 m_pending_blocks = nullptr;
203 }
204
205 struct block *finish_block (struct symbol *symbol,
206 struct pending_block *old_blocks,
207 const struct dynamic_prop *static_link,
208 CORE_ADDR start, CORE_ADDR end);
209
210 void record_block_range (struct block *block,
211 CORE_ADDR start, CORE_ADDR end_inclusive);
212
213 void start_subfile (const char *name);
214
215 void patch_subfile_names (struct subfile *subfile, const char *name);
216
217 void push_subfile ();
218
219 const char *pop_subfile ();
220
221 void record_line (struct subfile *subfile, int line, CORE_ADDR pc);
222
223 struct compunit_symtab *get_compunit_symtab ()
224 {
225 return compunit_symtab;
226 }
227
228 void set_last_source_start_addr (CORE_ADDR addr)
229 {
230 m_last_source_start_addr = addr;
231 }
232
233 CORE_ADDR get_last_source_start_addr ()
234 {
235 return m_last_source_start_addr;
236 }
237
238 struct using_direct **get_local_using_directives ()
239 {
240 return &m_local_using_directives;
241 }
242
243 void set_local_using_directives (struct using_direct *new_local)
244 {
245 m_local_using_directives = new_local;
246 }
247
248 struct using_direct **get_global_using_directives ()
249 {
250 return &m_global_using_directives;
251 }
252
253 bool outermost_context_p () const
254 {
255 return m_context_stack.empty ();
256 }
257
258 struct context_stack *get_current_context_stack ()
259 {
260 if (m_context_stack.empty ())
261 return nullptr;
262 return &m_context_stack.back ();
263 }
264
265 int get_context_stack_depth () const
266 {
267 return m_context_stack.size ();
268 }
269
270 struct subfile *get_current_subfile ()
271 {
272 return m_current_subfile;
273 }
274
275 struct pending **get_local_symbols ()
276 {
277 return &m_local_symbols;
278 }
279
280 struct pending **get_file_symbols ()
281 {
282 return &m_file_symbols;
283 }
284
285 struct pending **get_global_symbols ()
286 {
287 return &m_global_symbols;
288 }
289
290 void record_debugformat (const char *format)
291 {
292 debugformat = format;
293 }
294
295 void record_producer (const char *producer)
296 {
297 this->producer = producer;
298 }
299
300 struct context_stack *push_context (int desc, CORE_ADDR valu);
301
302 struct context_stack pop_context ();
303
304 struct block *end_symtab_get_static_block (CORE_ADDR end_addr,
305 int expandable, int required);
306
307 struct compunit_symtab *end_symtab_from_static_block
308 (struct block *static_block, int section, int expandable);
309
310 struct compunit_symtab *end_symtab (CORE_ADDR end_addr, int section);
311
312 struct compunit_symtab *end_expandable_symtab (CORE_ADDR end_addr,
313 int section);
314
315 void augment_type_symtab ();
316
317 private:
318
319 void record_pending_block (struct block *block, struct pending_block *opblock);
320
321 struct block *finish_block_internal (struct symbol *symbol,
322 struct pending **listhead,
323 struct pending_block *old_blocks,
324 const struct dynamic_prop *static_link,
325 CORE_ADDR start, CORE_ADDR end,
326 int is_global, int expandable);
327
328 struct blockvector *make_blockvector ();
329
330 void watch_main_source_file_lossage ();
331
332 struct compunit_symtab *end_symtab_with_blockvector
333 (struct block *static_block, int section, int expandable);
334
335 /* The objfile we're reading debug info from. */
336 struct objfile *objfile;
337
338 /* List of subfiles (source files).
339 Files are added to the front of the list.
340 This is important mostly for the language determination hacks we use,
341 which iterate over previously added files. */
342 struct subfile *subfiles = nullptr;
343
344 /* The subfile of the main source file. */
345 struct subfile *main_subfile = nullptr;
346
347 /* Name of source file whose symbol data we are now processing. This
348 comes from a symbol of type N_SO for stabs. For DWARF it comes
349 from the DW_AT_name attribute of a DW_TAG_compile_unit DIE. */
350 gdb::unique_xmalloc_ptr<char> m_last_source_file;
351
352 /* E.g., DW_AT_comp_dir if DWARF. Space for this is malloc'd. */
353 gdb::unique_xmalloc_ptr<char> comp_dir;
354
355 /* Space for this is not malloc'd, and is assumed to have at least
356 the same lifetime as objfile. */
357 const char *producer = nullptr;
358
359 /* Space for this is not malloc'd, and is assumed to have at least
360 the same lifetime as objfile. */
361 const char *debugformat = nullptr;
362
363 /* The compunit we are building. */
364 struct compunit_symtab *compunit_symtab = nullptr;
365
366 /* Language of this compunit_symtab. */
367 enum language language;
368
369 /* The macro table for the compilation unit whose symbols we're
370 currently reading. */
371 struct macro_table *m_pending_macros = nullptr;
372
373 /* True if symtab has line number info. This prevents an otherwise
374 empty symtab from being tossed. */
375 bool m_have_line_numbers = false;
376
377 /* Core address of start of text of current source file. This too
378 comes from the N_SO symbol. For Dwarf it typically comes from the
379 DW_AT_low_pc attribute of a DW_TAG_compile_unit DIE. */
380 CORE_ADDR m_last_source_start_addr;
381
382 /* Stack of subfile names. */
383 std::vector<const char *> m_subfile_stack;
384
385 /* The "using" directives local to lexical context. */
386 struct using_direct *m_local_using_directives = nullptr;
387
388 /* Global "using" directives. */
389 struct using_direct *m_global_using_directives = nullptr;
390
391 /* The stack of contexts that are pushed by push_context and popped
392 by pop_context. */
393 std::vector<struct context_stack> m_context_stack;
394
395 struct subfile *m_current_subfile = nullptr;
396
397 /* The mutable address map for the compilation unit whose symbols
398 we're currently reading. The symtabs' shared blockvector will
399 point to a fixed copy of this. */
400 struct addrmap *m_pending_addrmap = nullptr;
401
402 /* The obstack on which we allocate pending_addrmap.
403 If pending_addrmap is NULL, this is uninitialized; otherwise, it is
404 initialized (and holds pending_addrmap). */
405 auto_obstack m_pending_addrmap_obstack;
406
407 /* True if we recorded any ranges in the addrmap that are different
408 from those in the blockvector already. We set this to false when
409 we start processing a symfile, and if it's still false at the
410 end, then we just toss the addrmap. */
411 bool m_pending_addrmap_interesting = false;
412
413 /* An obstack used for allocating pending blocks. */
414 auto_obstack m_pending_block_obstack;
415
416 /* Pointer to the head of a linked list of symbol blocks which have
417 already been finalized (lexical contexts already closed) and which
418 are just waiting to be built into a blockvector when finalizing the
419 associated symtab. */
420 struct pending_block *m_pending_blocks = nullptr;
421
422 /* Pending static symbols and types at the top level. */
423 struct pending *m_file_symbols = nullptr;
424
425 /* Pending global functions and variables. */
426 struct pending *m_global_symbols = nullptr;
427
428 /* Pending symbols that are local to the lexical context. */
429 struct pending *m_local_symbols = nullptr;
430 };
431
432 /* The work-in-progress of the compunit we are building.
433 This is created first, before any subfiles by start_symtab. */
434
435 static struct buildsym_compunit *buildsym_compunit;
436
437 /* List of blocks already made (lexical contexts already closed).
438 This is used at the end to make the blockvector. */
439
440 struct pending_block
441 {
442 struct pending_block *next;
443 struct block *block;
444 };
445
446 static void free_buildsym_compunit (void);
447
448 static int compare_line_numbers (const void *ln1p, const void *ln2p);
449
450 /* Initial sizes of data structures. These are realloc'd larger if
451 needed, and realloc'd down to the size actually used, when
452 completed. */
453
454 #define INITIAL_LINE_VECTOR_LENGTH 1000
455 \f
456
457 /* Maintain the lists of symbols and blocks. */
458
459 /* Add a symbol to one of the lists of symbols. */
460
461 void
462 add_symbol_to_list (struct symbol *symbol, struct pending **listhead)
463 {
464 struct pending *link;
465
466 /* If this is an alias for another symbol, don't add it. */
467 if (symbol->ginfo.name && symbol->ginfo.name[0] == '#')
468 return;
469
470 /* We keep PENDINGSIZE symbols in each link of the list. If we
471 don't have a link with room in it, add a new link. */
472 if (*listhead == NULL || (*listhead)->nsyms == PENDINGSIZE)
473 {
474 link = XNEW (struct pending);
475 link->next = *listhead;
476 *listhead = link;
477 link->nsyms = 0;
478 }
479
480 (*listhead)->symbol[(*listhead)->nsyms++] = symbol;
481 }
482
483 /* Find a symbol named NAME on a LIST. NAME need not be
484 '\0'-terminated; LENGTH is the length of the name. */
485
486 struct symbol *
487 find_symbol_in_list (struct pending *list, char *name, int length)
488 {
489 int j;
490 const char *pp;
491
492 while (list != NULL)
493 {
494 for (j = list->nsyms; --j >= 0;)
495 {
496 pp = SYMBOL_LINKAGE_NAME (list->symbol[j]);
497 if (*pp == *name && strncmp (pp, name, length) == 0
498 && pp[length] == '\0')
499 {
500 return (list->symbol[j]);
501 }
502 }
503 list = list->next;
504 }
505 return (NULL);
506 }
507
508 /* At end of reading syms, or in case of quit, ensure everything
509 associated with building symtabs is freed.
510
511 N.B. This is *not* intended to be used when building psymtabs. Some debug
512 info readers call this anyway, which is harmless if confusing. */
513
514 scoped_free_pendings::~scoped_free_pendings ()
515 {
516 free_buildsym_compunit ();
517 }
518
519 /* Record BLOCK on the list of all blocks in the file. Put it after
520 OPBLOCK, or at the beginning if opblock is NULL. This puts the
521 block in the list after all its subblocks. */
522
523 void
524 buildsym_compunit::record_pending_block (struct block *block,
525 struct pending_block *opblock)
526 {
527 struct pending_block *pblock;
528
529 pblock = XOBNEW (&m_pending_block_obstack, struct pending_block);
530 pblock->block = block;
531 if (opblock)
532 {
533 pblock->next = opblock->next;
534 opblock->next = pblock;
535 }
536 else
537 {
538 pblock->next = m_pending_blocks;
539 m_pending_blocks = pblock;
540 }
541 }
542
543 /* Take one of the lists of symbols and make a block from it. Keep
544 the order the symbols have in the list (reversed from the input
545 file). Put the block on the list of pending blocks. */
546
547 struct block *
548 buildsym_compunit::finish_block_internal
549 (struct symbol *symbol,
550 struct pending **listhead,
551 struct pending_block *old_blocks,
552 const struct dynamic_prop *static_link,
553 CORE_ADDR start, CORE_ADDR end,
554 int is_global, int expandable)
555 {
556 struct gdbarch *gdbarch = get_objfile_arch (objfile);
557 struct pending *next, *next1;
558 struct block *block;
559 struct pending_block *pblock;
560 struct pending_block *opblock;
561
562 block = (is_global
563 ? allocate_global_block (&objfile->objfile_obstack)
564 : allocate_block (&objfile->objfile_obstack));
565
566 if (symbol)
567 {
568 BLOCK_DICT (block)
569 = dict_create_linear (&objfile->objfile_obstack,
570 language, *listhead);
571 }
572 else
573 {
574 if (expandable)
575 {
576 BLOCK_DICT (block) = dict_create_hashed_expandable (language);
577 dict_add_pending (BLOCK_DICT (block), *listhead);
578 }
579 else
580 {
581 BLOCK_DICT (block) =
582 dict_create_hashed (&objfile->objfile_obstack,
583 language, *listhead);
584 }
585 }
586
587 BLOCK_START (block) = start;
588 BLOCK_END (block) = end;
589
590 /* Put the block in as the value of the symbol that names it. */
591
592 if (symbol)
593 {
594 struct type *ftype = SYMBOL_TYPE (symbol);
595 struct dict_iterator iter;
596 SYMBOL_BLOCK_VALUE (symbol) = block;
597 BLOCK_FUNCTION (block) = symbol;
598
599 if (TYPE_NFIELDS (ftype) <= 0)
600 {
601 /* No parameter type information is recorded with the
602 function's type. Set that from the type of the
603 parameter symbols. */
604 int nparams = 0, iparams;
605 struct symbol *sym;
606
607 /* Here we want to directly access the dictionary, because
608 we haven't fully initialized the block yet. */
609 ALL_DICT_SYMBOLS (BLOCK_DICT (block), iter, sym)
610 {
611 if (SYMBOL_IS_ARGUMENT (sym))
612 nparams++;
613 }
614 if (nparams > 0)
615 {
616 TYPE_NFIELDS (ftype) = nparams;
617 TYPE_FIELDS (ftype) = (struct field *)
618 TYPE_ALLOC (ftype, nparams * sizeof (struct field));
619
620 iparams = 0;
621 /* Here we want to directly access the dictionary, because
622 we haven't fully initialized the block yet. */
623 ALL_DICT_SYMBOLS (BLOCK_DICT (block), iter, sym)
624 {
625 if (iparams == nparams)
626 break;
627
628 if (SYMBOL_IS_ARGUMENT (sym))
629 {
630 TYPE_FIELD_TYPE (ftype, iparams) = SYMBOL_TYPE (sym);
631 TYPE_FIELD_ARTIFICIAL (ftype, iparams) = 0;
632 iparams++;
633 }
634 }
635 }
636 }
637 }
638 else
639 {
640 BLOCK_FUNCTION (block) = NULL;
641 }
642
643 if (static_link != NULL)
644 objfile_register_static_link (objfile, block, static_link);
645
646 /* Now free the links of the list, and empty the list. */
647
648 for (next = *listhead; next; next = next1)
649 {
650 next1 = next->next;
651 xfree (next);
652 }
653 *listhead = NULL;
654
655 /* Check to be sure that the blocks have an end address that is
656 greater than starting address. */
657
658 if (BLOCK_END (block) < BLOCK_START (block))
659 {
660 if (symbol)
661 {
662 complaint (_("block end address less than block "
663 "start address in %s (patched it)"),
664 SYMBOL_PRINT_NAME (symbol));
665 }
666 else
667 {
668 complaint (_("block end address %s less than block "
669 "start address %s (patched it)"),
670 paddress (gdbarch, BLOCK_END (block)),
671 paddress (gdbarch, BLOCK_START (block)));
672 }
673 /* Better than nothing. */
674 BLOCK_END (block) = BLOCK_START (block);
675 }
676
677 /* Install this block as the superblock of all blocks made since the
678 start of this scope that don't have superblocks yet. */
679
680 opblock = NULL;
681 for (pblock = m_pending_blocks;
682 pblock && pblock != old_blocks;
683 pblock = pblock->next)
684 {
685 if (BLOCK_SUPERBLOCK (pblock->block) == NULL)
686 {
687 /* Check to be sure the blocks are nested as we receive
688 them. If the compiler/assembler/linker work, this just
689 burns a small amount of time.
690
691 Skip blocks which correspond to a function; they're not
692 physically nested inside this other blocks, only
693 lexically nested. */
694 if (BLOCK_FUNCTION (pblock->block) == NULL
695 && (BLOCK_START (pblock->block) < BLOCK_START (block)
696 || BLOCK_END (pblock->block) > BLOCK_END (block)))
697 {
698 if (symbol)
699 {
700 complaint (_("inner block not inside outer block in %s"),
701 SYMBOL_PRINT_NAME (symbol));
702 }
703 else
704 {
705 complaint (_("inner block (%s-%s) not "
706 "inside outer block (%s-%s)"),
707 paddress (gdbarch, BLOCK_START (pblock->block)),
708 paddress (gdbarch, BLOCK_END (pblock->block)),
709 paddress (gdbarch, BLOCK_START (block)),
710 paddress (gdbarch, BLOCK_END (block)));
711 }
712 if (BLOCK_START (pblock->block) < BLOCK_START (block))
713 BLOCK_START (pblock->block) = BLOCK_START (block);
714 if (BLOCK_END (pblock->block) > BLOCK_END (block))
715 BLOCK_END (pblock->block) = BLOCK_END (block);
716 }
717 BLOCK_SUPERBLOCK (pblock->block) = block;
718 }
719 opblock = pblock;
720 }
721
722 block_set_using (block,
723 (is_global
724 ? m_global_using_directives
725 : m_local_using_directives),
726 &objfile->objfile_obstack);
727 if (is_global)
728 m_global_using_directives = NULL;
729 else
730 m_local_using_directives = NULL;
731
732 record_pending_block (block, opblock);
733
734 return block;
735 }
736
737 struct block *
738 buildsym_compunit::finish_block (struct symbol *symbol,
739 struct pending_block *old_blocks,
740 const struct dynamic_prop *static_link,
741 CORE_ADDR start, CORE_ADDR end)
742 {
743 return finish_block_internal (symbol, &m_local_symbols,
744 old_blocks, static_link, start, end, 0, 0);
745 }
746
747 /* Record that the range of addresses from START to END_INCLUSIVE
748 (inclusive, like it says) belongs to BLOCK. BLOCK's start and end
749 addresses must be set already. You must apply this function to all
750 BLOCK's children before applying it to BLOCK.
751
752 If a call to this function complicates the picture beyond that
753 already provided by BLOCK_START and BLOCK_END, then we create an
754 address map for the block. */
755 void
756 buildsym_compunit::record_block_range (struct block *block,
757 CORE_ADDR start,
758 CORE_ADDR end_inclusive)
759 {
760 /* If this is any different from the range recorded in the block's
761 own BLOCK_START and BLOCK_END, then note that the address map has
762 become interesting. Note that even if this block doesn't have
763 any "interesting" ranges, some later block might, so we still
764 need to record this block in the addrmap. */
765 if (start != BLOCK_START (block)
766 || end_inclusive + 1 != BLOCK_END (block))
767 m_pending_addrmap_interesting = true;
768
769 if (m_pending_addrmap == nullptr)
770 m_pending_addrmap = addrmap_create_mutable (&m_pending_addrmap_obstack);
771
772 addrmap_set_empty (m_pending_addrmap, start, end_inclusive, block);
773 }
774
775 struct blockvector *
776 buildsym_compunit::make_blockvector ()
777 {
778 struct pending_block *next;
779 struct blockvector *blockvector;
780 int i;
781
782 /* Count the length of the list of blocks. */
783
784 for (next = m_pending_blocks, i = 0; next; next = next->next, i++)
785 {
786 }
787
788 blockvector = (struct blockvector *)
789 obstack_alloc (&objfile->objfile_obstack,
790 (sizeof (struct blockvector)
791 + (i - 1) * sizeof (struct block *)));
792
793 /* Copy the blocks into the blockvector. This is done in reverse
794 order, which happens to put the blocks into the proper order
795 (ascending starting address). finish_block has hair to insert
796 each block into the list after its subblocks in order to make
797 sure this is true. */
798
799 BLOCKVECTOR_NBLOCKS (blockvector) = i;
800 for (next = m_pending_blocks; next; next = next->next)
801 {
802 BLOCKVECTOR_BLOCK (blockvector, --i) = next->block;
803 }
804
805 free_pending_blocks ();
806
807 /* If we needed an address map for this symtab, record it in the
808 blockvector. */
809 if (m_pending_addrmap != nullptr && m_pending_addrmap_interesting)
810 BLOCKVECTOR_MAP (blockvector)
811 = addrmap_create_fixed (m_pending_addrmap, &objfile->objfile_obstack);
812 else
813 BLOCKVECTOR_MAP (blockvector) = 0;
814
815 /* Some compilers output blocks in the wrong order, but we depend on
816 their being in the right order so we can binary search. Check the
817 order and moan about it.
818 Note: Remember that the first two blocks are the global and static
819 blocks. We could special case that fact and begin checking at block 2.
820 To avoid making that assumption we do not. */
821 if (BLOCKVECTOR_NBLOCKS (blockvector) > 1)
822 {
823 for (i = 1; i < BLOCKVECTOR_NBLOCKS (blockvector); i++)
824 {
825 if (BLOCK_START (BLOCKVECTOR_BLOCK (blockvector, i - 1))
826 > BLOCK_START (BLOCKVECTOR_BLOCK (blockvector, i)))
827 {
828 CORE_ADDR start
829 = BLOCK_START (BLOCKVECTOR_BLOCK (blockvector, i));
830
831 complaint (_("block at %s out of order"),
832 hex_string ((LONGEST) start));
833 }
834 }
835 }
836
837 return (blockvector);
838 }
839 \f
840 /* Start recording information about source code that came from an
841 included (or otherwise merged-in) source file with a different
842 name. NAME is the name of the file (cannot be NULL). */
843
844 void
845 buildsym_compunit::start_subfile (const char *name)
846 {
847 const char *subfile_dirname;
848 struct subfile *subfile;
849
850 subfile_dirname = comp_dir.get ();
851
852 /* See if this subfile is already registered. */
853
854 for (subfile = subfiles; subfile; subfile = subfile->next)
855 {
856 char *subfile_name;
857
858 /* If NAME is an absolute path, and this subfile is not, then
859 attempt to create an absolute path to compare. */
860 if (IS_ABSOLUTE_PATH (name)
861 && !IS_ABSOLUTE_PATH (subfile->name)
862 && subfile_dirname != NULL)
863 subfile_name = concat (subfile_dirname, SLASH_STRING,
864 subfile->name, (char *) NULL);
865 else
866 subfile_name = subfile->name;
867
868 if (FILENAME_CMP (subfile_name, name) == 0)
869 {
870 m_current_subfile = subfile;
871 if (subfile_name != subfile->name)
872 xfree (subfile_name);
873 return;
874 }
875 if (subfile_name != subfile->name)
876 xfree (subfile_name);
877 }
878
879 /* This subfile is not known. Add an entry for it. */
880
881 subfile = XNEW (struct subfile);
882 memset (subfile, 0, sizeof (struct subfile));
883 subfile->buildsym_compunit = this;
884
885 subfile->next = subfiles;
886 subfiles = subfile;
887
888 m_current_subfile = subfile;
889
890 subfile->name = xstrdup (name);
891
892 /* Initialize line-number recording for this subfile. */
893 subfile->line_vector = NULL;
894
895 /* Default the source language to whatever can be deduced from the
896 filename. If nothing can be deduced (such as for a C/C++ include
897 file with a ".h" extension), then inherit whatever language the
898 previous subfile had. This kludgery is necessary because there
899 is no standard way in some object formats to record the source
900 language. Also, when symtabs are allocated we try to deduce a
901 language then as well, but it is too late for us to use that
902 information while reading symbols, since symtabs aren't allocated
903 until after all the symbols have been processed for a given
904 source file. */
905
906 subfile->language = deduce_language_from_filename (subfile->name);
907 if (subfile->language == language_unknown
908 && subfile->next != NULL)
909 {
910 subfile->language = subfile->next->language;
911 }
912
913 /* If the filename of this subfile ends in .C, then change the
914 language of any pending subfiles from C to C++. We also accept
915 any other C++ suffixes accepted by deduce_language_from_filename. */
916 /* Likewise for f2c. */
917
918 if (subfile->name)
919 {
920 struct subfile *s;
921 enum language sublang = deduce_language_from_filename (subfile->name);
922
923 if (sublang == language_cplus || sublang == language_fortran)
924 for (s = subfiles; s != NULL; s = s->next)
925 if (s->language == language_c)
926 s->language = sublang;
927 }
928
929 /* And patch up this file if necessary. */
930 if (subfile->language == language_c
931 && subfile->next != NULL
932 && (subfile->next->language == language_cplus
933 || subfile->next->language == language_fortran))
934 {
935 subfile->language = subfile->next->language;
936 }
937 }
938
939 /* Delete the buildsym compunit. */
940
941 static void
942 free_buildsym_compunit (void)
943 {
944 if (buildsym_compunit == NULL)
945 return;
946 delete buildsym_compunit;
947 buildsym_compunit = NULL;
948 }
949
950 /* For stabs readers, the first N_SO symbol is assumed to be the
951 source file name, and the subfile struct is initialized using that
952 assumption. If another N_SO symbol is later seen, immediately
953 following the first one, then the first one is assumed to be the
954 directory name and the second one is really the source file name.
955
956 So we have to patch up the subfile struct by moving the old name
957 value to dirname and remembering the new name. Some sanity
958 checking is performed to ensure that the state of the subfile
959 struct is reasonable and that the old name we are assuming to be a
960 directory name actually is (by checking for a trailing '/'). */
961
962 void
963 buildsym_compunit::patch_subfile_names (struct subfile *subfile,
964 const char *name)
965 {
966 if (subfile != NULL
967 && comp_dir == NULL
968 && subfile->name != NULL
969 && IS_DIR_SEPARATOR (subfile->name[strlen (subfile->name) - 1]))
970 {
971 comp_dir.reset (subfile->name);
972 subfile->name = xstrdup (name);
973 set_last_source_file (name);
974
975 /* Default the source language to whatever can be deduced from
976 the filename. If nothing can be deduced (such as for a C/C++
977 include file with a ".h" extension), then inherit whatever
978 language the previous subfile had. This kludgery is
979 necessary because there is no standard way in some object
980 formats to record the source language. Also, when symtabs
981 are allocated we try to deduce a language then as well, but
982 it is too late for us to use that information while reading
983 symbols, since symtabs aren't allocated until after all the
984 symbols have been processed for a given source file. */
985
986 subfile->language = deduce_language_from_filename (subfile->name);
987 if (subfile->language == language_unknown
988 && subfile->next != NULL)
989 {
990 subfile->language = subfile->next->language;
991 }
992 }
993 }
994 \f
995 /* Handle the N_BINCL and N_EINCL symbol types that act like N_SOL for
996 switching source files (different subfiles, as we call them) within
997 one object file, but using a stack rather than in an arbitrary
998 order. */
999
1000 void
1001 buildsym_compunit::push_subfile ()
1002 {
1003 gdb_assert (m_current_subfile != NULL);
1004 gdb_assert (m_current_subfile->name != NULL);
1005 m_subfile_stack.push_back (m_current_subfile->name);
1006 }
1007
1008 const char *
1009 buildsym_compunit::pop_subfile ()
1010 {
1011 gdb_assert (!m_subfile_stack.empty ());
1012 const char *name = m_subfile_stack.back ();
1013 m_subfile_stack.pop_back ();
1014 return name;
1015 }
1016 \f
1017 /* Add a linetable entry for line number LINE and address PC to the
1018 line vector for SUBFILE. */
1019
1020 void
1021 buildsym_compunit::record_line (struct subfile *subfile, int line,
1022 CORE_ADDR pc)
1023 {
1024 struct linetable_entry *e;
1025
1026 /* Ignore the dummy line number in libg.o */
1027 if (line == 0xffff)
1028 {
1029 return;
1030 }
1031
1032 /* Make sure line vector exists and is big enough. */
1033 if (!subfile->line_vector)
1034 {
1035 subfile->line_vector_length = INITIAL_LINE_VECTOR_LENGTH;
1036 subfile->line_vector = (struct linetable *)
1037 xmalloc (sizeof (struct linetable)
1038 + subfile->line_vector_length * sizeof (struct linetable_entry));
1039 subfile->line_vector->nitems = 0;
1040 m_have_line_numbers = true;
1041 }
1042
1043 if (subfile->line_vector->nitems + 1 >= subfile->line_vector_length)
1044 {
1045 subfile->line_vector_length *= 2;
1046 subfile->line_vector = (struct linetable *)
1047 xrealloc ((char *) subfile->line_vector,
1048 (sizeof (struct linetable)
1049 + (subfile->line_vector_length
1050 * sizeof (struct linetable_entry))));
1051 }
1052
1053 /* Normally, we treat lines as unsorted. But the end of sequence
1054 marker is special. We sort line markers at the same PC by line
1055 number, so end of sequence markers (which have line == 0) appear
1056 first. This is right if the marker ends the previous function,
1057 and there is no padding before the next function. But it is
1058 wrong if the previous line was empty and we are now marking a
1059 switch to a different subfile. We must leave the end of sequence
1060 marker at the end of this group of lines, not sort the empty line
1061 to after the marker. The easiest way to accomplish this is to
1062 delete any empty lines from our table, if they are followed by
1063 end of sequence markers. All we lose is the ability to set
1064 breakpoints at some lines which contain no instructions
1065 anyway. */
1066 if (line == 0 && subfile->line_vector->nitems > 0)
1067 {
1068 e = subfile->line_vector->item + subfile->line_vector->nitems - 1;
1069 while (subfile->line_vector->nitems > 0 && e->pc == pc)
1070 {
1071 e--;
1072 subfile->line_vector->nitems--;
1073 }
1074 }
1075
1076 e = subfile->line_vector->item + subfile->line_vector->nitems++;
1077 e->line = line;
1078 e->pc = pc;
1079 }
1080
1081 /* Needed in order to sort line tables from IBM xcoff files. Sigh! */
1082
1083 static int
1084 compare_line_numbers (const void *ln1p, const void *ln2p)
1085 {
1086 struct linetable_entry *ln1 = (struct linetable_entry *) ln1p;
1087 struct linetable_entry *ln2 = (struct linetable_entry *) ln2p;
1088
1089 /* Note: this code does not assume that CORE_ADDRs can fit in ints.
1090 Please keep it that way. */
1091 if (ln1->pc < ln2->pc)
1092 return -1;
1093
1094 if (ln1->pc > ln2->pc)
1095 return 1;
1096
1097 /* If pc equal, sort by line. I'm not sure whether this is optimum
1098 behavior (see comment at struct linetable in symtab.h). */
1099 return ln1->line - ln2->line;
1100 }
1101 \f
1102 /* See buildsym.h. */
1103
1104 struct compunit_symtab *
1105 buildsym_compunit_symtab (void)
1106 {
1107 gdb_assert (buildsym_compunit != NULL);
1108
1109 return buildsym_compunit->get_compunit_symtab ();
1110 }
1111
1112 /* See buildsym.h. */
1113
1114 struct macro_table *
1115 get_macro_table (void)
1116 {
1117 struct objfile *objfile;
1118
1119 gdb_assert (buildsym_compunit != NULL);
1120 return buildsym_compunit->get_macro_table ();
1121 }
1122 \f
1123 /* Start a new symtab for a new source file in OBJFILE. Called, for example,
1124 when a stabs symbol of type N_SO is seen, or when a DWARF
1125 TAG_compile_unit DIE is seen. It indicates the start of data for
1126 one original source file.
1127
1128 NAME is the name of the file (cannot be NULL). COMP_DIR is the
1129 directory in which the file was compiled (or NULL if not known).
1130 START_ADDR is the lowest address of objects in the file (or 0 if
1131 not known). LANGUAGE is the language of the source file, or
1132 language_unknown if not known, in which case it'll be deduced from
1133 the filename. */
1134
1135 struct compunit_symtab *
1136 start_symtab (struct objfile *objfile, const char *name, const char *comp_dir,
1137 CORE_ADDR start_addr, enum language language)
1138 {
1139 /* These should have been reset either by successful completion of building
1140 a symtab, or by the scoped_free_pendings destructor. */
1141 gdb_assert (buildsym_compunit == nullptr);
1142
1143 buildsym_compunit = new struct buildsym_compunit (objfile, name, comp_dir,
1144 language, start_addr);
1145
1146 return buildsym_compunit->get_compunit_symtab ();
1147 }
1148
1149 /* Restart compilation for a symtab.
1150 CUST is the result of end_expandable_symtab.
1151 NAME, START_ADDR are the source file we are resuming with.
1152
1153 This is used when a symtab is built from multiple sources.
1154 The symtab is first built with start_symtab/end_expandable_symtab
1155 and then for each additional piece call restart_symtab/augment_*_symtab.
1156 Note: At the moment there is only augment_type_symtab. */
1157
1158 void
1159 restart_symtab (struct compunit_symtab *cust,
1160 const char *name, CORE_ADDR start_addr)
1161 {
1162 /* These should have been reset either by successful completion of building
1163 a symtab, or by the scoped_free_pendings destructor. */
1164 gdb_assert (buildsym_compunit == nullptr);
1165
1166 buildsym_compunit
1167 = new struct buildsym_compunit (COMPUNIT_OBJFILE (cust),
1168 name,
1169 COMPUNIT_DIRNAME (cust),
1170 compunit_language (cust),
1171 start_addr,
1172 cust);
1173 }
1174
1175 /* Subroutine of end_symtab to simplify it. Look for a subfile that
1176 matches the main source file's basename. If there is only one, and
1177 if the main source file doesn't have any symbol or line number
1178 information, then copy this file's symtab and line_vector to the
1179 main source file's subfile and discard the other subfile. This can
1180 happen because of a compiler bug or from the user playing games
1181 with #line or from things like a distributed build system that
1182 manipulates the debug info. This can also happen from an innocent
1183 symlink in the paths, we don't canonicalize paths here. */
1184
1185 void
1186 buildsym_compunit::watch_main_source_file_lossage ()
1187 {
1188 struct subfile *mainsub, *subfile;
1189
1190 /* Get the main source file. */
1191 mainsub = main_subfile;
1192
1193 /* If the main source file doesn't have any line number or symbol
1194 info, look for an alias in another subfile. */
1195
1196 if (mainsub->line_vector == NULL
1197 && mainsub->symtab == NULL)
1198 {
1199 const char *mainbase = lbasename (mainsub->name);
1200 int nr_matches = 0;
1201 struct subfile *prevsub;
1202 struct subfile *mainsub_alias = NULL;
1203 struct subfile *prev_mainsub_alias = NULL;
1204
1205 prevsub = NULL;
1206 for (subfile = subfiles;
1207 subfile != NULL;
1208 subfile = subfile->next)
1209 {
1210 if (subfile == mainsub)
1211 continue;
1212 if (filename_cmp (lbasename (subfile->name), mainbase) == 0)
1213 {
1214 ++nr_matches;
1215 mainsub_alias = subfile;
1216 prev_mainsub_alias = prevsub;
1217 }
1218 prevsub = subfile;
1219 }
1220
1221 if (nr_matches == 1)
1222 {
1223 gdb_assert (mainsub_alias != NULL && mainsub_alias != mainsub);
1224
1225 /* Found a match for the main source file.
1226 Copy its line_vector and symtab to the main subfile
1227 and then discard it. */
1228
1229 mainsub->line_vector = mainsub_alias->line_vector;
1230 mainsub->line_vector_length = mainsub_alias->line_vector_length;
1231 mainsub->symtab = mainsub_alias->symtab;
1232
1233 if (prev_mainsub_alias == NULL)
1234 subfiles = mainsub_alias->next;
1235 else
1236 prev_mainsub_alias->next = mainsub_alias->next;
1237 xfree (mainsub_alias->name);
1238 xfree (mainsub_alias);
1239 }
1240 }
1241 }
1242
1243 /* Reset state after a successful building of a symtab. */
1244
1245 static void
1246 reset_symtab_globals (void)
1247 {
1248 free_buildsym_compunit ();
1249 }
1250
1251 /* Implementation of the first part of end_symtab. It allows modifying
1252 STATIC_BLOCK before it gets finalized by end_symtab_from_static_block.
1253 If the returned value is NULL there is no blockvector created for
1254 this symtab (you still must call end_symtab_from_static_block).
1255
1256 END_ADDR is the same as for end_symtab: the address of the end of the
1257 file's text.
1258
1259 If EXPANDABLE is non-zero the STATIC_BLOCK dictionary is made
1260 expandable.
1261
1262 If REQUIRED is non-zero, then a symtab is created even if it does
1263 not contain any symbols. */
1264
1265 struct block *
1266 buildsym_compunit::end_symtab_get_static_block (CORE_ADDR end_addr,
1267 int expandable, int required)
1268 {
1269 /* Finish the lexical context of the last function in the file; pop
1270 the context stack. */
1271
1272 if (!m_context_stack.empty ())
1273 {
1274 struct context_stack cstk = pop_context ();
1275
1276 /* Make a block for the local symbols within. */
1277 finish_block (cstk.name, cstk.old_blocks, NULL,
1278 cstk.start_addr, end_addr);
1279
1280 if (!m_context_stack.empty ())
1281 {
1282 /* This is said to happen with SCO. The old coffread.c
1283 code simply emptied the context stack, so we do the
1284 same. FIXME: Find out why it is happening. This is not
1285 believed to happen in most cases (even for coffread.c);
1286 it used to be an abort(). */
1287 complaint (_("Context stack not empty in end_symtab"));
1288 m_context_stack.clear ();
1289 }
1290 }
1291
1292 /* Reordered executables may have out of order pending blocks; if
1293 OBJF_REORDERED is true, then sort the pending blocks. */
1294
1295 if ((objfile->flags & OBJF_REORDERED) && m_pending_blocks)
1296 {
1297 struct pending_block *pb;
1298
1299 std::vector<block *> barray;
1300
1301 for (pb = m_pending_blocks; pb != NULL; pb = pb->next)
1302 barray.push_back (pb->block);
1303
1304 /* Sort blocks by start address in descending order. Blocks with the
1305 same start address must remain in the original order to preserve
1306 inline function caller/callee relationships. */
1307 std::stable_sort (barray.begin (), barray.end (),
1308 [] (const block *a, const block *b)
1309 {
1310 return BLOCK_START (a) > BLOCK_START (b);
1311 });
1312
1313 int i = 0;
1314 for (pb = m_pending_blocks; pb != NULL; pb = pb->next)
1315 pb->block = barray[i++];
1316 }
1317
1318 /* Cleanup any undefined types that have been left hanging around
1319 (this needs to be done before the finish_blocks so that
1320 file_symbols is still good).
1321
1322 Both cleanup_undefined_stabs_types and finish_global_stabs are stabs
1323 specific, but harmless for other symbol readers, since on gdb
1324 startup or when finished reading stabs, the state is set so these
1325 are no-ops. FIXME: Is this handled right in case of QUIT? Can
1326 we make this cleaner? */
1327
1328 cleanup_undefined_stabs_types (objfile);
1329 finish_global_stabs (objfile);
1330
1331 if (!required
1332 && m_pending_blocks == NULL
1333 && m_file_symbols == NULL
1334 && m_global_symbols == NULL
1335 && !m_have_line_numbers
1336 && m_pending_macros == NULL
1337 && m_global_using_directives == NULL)
1338 {
1339 /* Ignore symtabs that have no functions with real debugging info. */
1340 return NULL;
1341 }
1342 else
1343 {
1344 /* Define the STATIC_BLOCK. */
1345 return finish_block_internal (NULL, get_file_symbols (), NULL, NULL,
1346 m_last_source_start_addr,
1347 end_addr, 0, expandable);
1348 }
1349 }
1350
1351 /* Subroutine of end_symtab_from_static_block to simplify it.
1352 Handle the "have blockvector" case.
1353 See end_symtab_from_static_block for a description of the arguments. */
1354
1355 struct compunit_symtab *
1356 buildsym_compunit::end_symtab_with_blockvector (struct block *static_block,
1357 int section, int expandable)
1358 {
1359 struct compunit_symtab *cu = compunit_symtab;
1360 struct symtab *symtab;
1361 struct blockvector *blockvector;
1362 struct subfile *subfile;
1363 CORE_ADDR end_addr;
1364
1365 gdb_assert (static_block != NULL);
1366 gdb_assert (subfiles != NULL);
1367
1368 end_addr = BLOCK_END (static_block);
1369
1370 /* Create the GLOBAL_BLOCK and build the blockvector. */
1371 finish_block_internal (NULL, get_global_symbols (), NULL, NULL,
1372 m_last_source_start_addr, end_addr,
1373 1, expandable);
1374 blockvector = make_blockvector ();
1375
1376 /* Read the line table if it has to be read separately.
1377 This is only used by xcoffread.c. */
1378 if (objfile->sf->sym_read_linetable != NULL)
1379 objfile->sf->sym_read_linetable (objfile);
1380
1381 /* Handle the case where the debug info specifies a different path
1382 for the main source file. It can cause us to lose track of its
1383 line number information. */
1384 watch_main_source_file_lossage ();
1385
1386 /* Now create the symtab objects proper, if not already done,
1387 one for each subfile. */
1388
1389 for (subfile = subfiles;
1390 subfile != NULL;
1391 subfile = subfile->next)
1392 {
1393 int linetablesize = 0;
1394
1395 if (subfile->line_vector)
1396 {
1397 linetablesize = sizeof (struct linetable) +
1398 subfile->line_vector->nitems * sizeof (struct linetable_entry);
1399
1400 /* Like the pending blocks, the line table may be
1401 scrambled in reordered executables. Sort it if
1402 OBJF_REORDERED is true. */
1403 if (objfile->flags & OBJF_REORDERED)
1404 qsort (subfile->line_vector->item,
1405 subfile->line_vector->nitems,
1406 sizeof (struct linetable_entry), compare_line_numbers);
1407 }
1408
1409 /* Allocate a symbol table if necessary. */
1410 if (subfile->symtab == NULL)
1411 subfile->symtab = allocate_symtab (cu, subfile->name);
1412 symtab = subfile->symtab;
1413
1414 /* Fill in its components. */
1415
1416 if (subfile->line_vector)
1417 {
1418 /* Reallocate the line table on the symbol obstack. */
1419 SYMTAB_LINETABLE (symtab) = (struct linetable *)
1420 obstack_alloc (&objfile->objfile_obstack, linetablesize);
1421 memcpy (SYMTAB_LINETABLE (symtab), subfile->line_vector,
1422 linetablesize);
1423 }
1424 else
1425 {
1426 SYMTAB_LINETABLE (symtab) = NULL;
1427 }
1428
1429 /* Use whatever language we have been using for this
1430 subfile, not the one that was deduced in allocate_symtab
1431 from the filename. We already did our own deducing when
1432 we created the subfile, and we may have altered our
1433 opinion of what language it is from things we found in
1434 the symbols. */
1435 symtab->language = subfile->language;
1436 }
1437
1438 /* Make sure the symtab of main_subfile is the first in its list. */
1439 {
1440 struct symtab *main_symtab, *prev_symtab;
1441
1442 main_symtab = main_subfile->symtab;
1443 prev_symtab = NULL;
1444 ALL_COMPUNIT_FILETABS (cu, symtab)
1445 {
1446 if (symtab == main_symtab)
1447 {
1448 if (prev_symtab != NULL)
1449 {
1450 prev_symtab->next = main_symtab->next;
1451 main_symtab->next = COMPUNIT_FILETABS (cu);
1452 COMPUNIT_FILETABS (cu) = main_symtab;
1453 }
1454 break;
1455 }
1456 prev_symtab = symtab;
1457 }
1458 gdb_assert (main_symtab == COMPUNIT_FILETABS (cu));
1459 }
1460
1461 /* Fill out the compunit symtab. */
1462
1463 if (comp_dir != NULL)
1464 {
1465 /* Reallocate the dirname on the symbol obstack. */
1466 const char *comp_dir = this->comp_dir.get ();
1467 COMPUNIT_DIRNAME (cu)
1468 = (const char *) obstack_copy0 (&objfile->objfile_obstack,
1469 comp_dir, strlen (comp_dir));
1470 }
1471
1472 /* Save the debug format string (if any) in the symtab. */
1473 COMPUNIT_DEBUGFORMAT (cu) = debugformat;
1474
1475 /* Similarly for the producer. */
1476 COMPUNIT_PRODUCER (cu) = producer;
1477
1478 COMPUNIT_BLOCKVECTOR (cu) = blockvector;
1479 {
1480 struct block *b = BLOCKVECTOR_BLOCK (blockvector, GLOBAL_BLOCK);
1481
1482 set_block_compunit_symtab (b, cu);
1483 }
1484
1485 COMPUNIT_BLOCK_LINE_SECTION (cu) = section;
1486
1487 COMPUNIT_MACRO_TABLE (cu) = release_macros ();
1488
1489 /* Default any symbols without a specified symtab to the primary symtab. */
1490 {
1491 int block_i;
1492
1493 /* The main source file's symtab. */
1494 symtab = COMPUNIT_FILETABS (cu);
1495
1496 for (block_i = 0; block_i < BLOCKVECTOR_NBLOCKS (blockvector); block_i++)
1497 {
1498 struct block *block = BLOCKVECTOR_BLOCK (blockvector, block_i);
1499 struct symbol *sym;
1500 struct dict_iterator iter;
1501
1502 /* Inlined functions may have symbols not in the global or
1503 static symbol lists. */
1504 if (BLOCK_FUNCTION (block) != NULL)
1505 if (symbol_symtab (BLOCK_FUNCTION (block)) == NULL)
1506 symbol_set_symtab (BLOCK_FUNCTION (block), symtab);
1507
1508 /* Note that we only want to fix up symbols from the local
1509 blocks, not blocks coming from included symtabs. That is why
1510 we use ALL_DICT_SYMBOLS here and not ALL_BLOCK_SYMBOLS. */
1511 ALL_DICT_SYMBOLS (BLOCK_DICT (block), iter, sym)
1512 if (symbol_symtab (sym) == NULL)
1513 symbol_set_symtab (sym, symtab);
1514 }
1515 }
1516
1517 add_compunit_symtab_to_objfile (cu);
1518
1519 return cu;
1520 }
1521
1522 /* Implementation of the second part of end_symtab. Pass STATIC_BLOCK
1523 as value returned by end_symtab_get_static_block.
1524
1525 SECTION is the same as for end_symtab: the section number
1526 (in objfile->section_offsets) of the blockvector and linetable.
1527
1528 If EXPANDABLE is non-zero the GLOBAL_BLOCK dictionary is made
1529 expandable. */
1530
1531 struct compunit_symtab *
1532 buildsym_compunit::end_symtab_from_static_block (struct block *static_block,
1533 int section, int expandable)
1534 {
1535 struct compunit_symtab *cu;
1536
1537 if (static_block == NULL)
1538 {
1539 /* Handle the "no blockvector" case.
1540 When this happens there is nothing to record, so there's nothing
1541 to do: memory will be freed up later.
1542
1543 Note: We won't be adding a compunit to the objfile's list of
1544 compunits, so there's nothing to unchain. However, since each symtab
1545 is added to the objfile's obstack we can't free that space.
1546 We could do better, but this is believed to be a sufficiently rare
1547 event. */
1548 cu = NULL;
1549 }
1550 else
1551 cu = end_symtab_with_blockvector (static_block, section, expandable);
1552
1553 reset_symtab_globals ();
1554
1555 return cu;
1556 }
1557
1558 /* Finish the symbol definitions for one main source file, close off
1559 all the lexical contexts for that file (creating struct block's for
1560 them), then make the struct symtab for that file and put it in the
1561 list of all such.
1562
1563 END_ADDR is the address of the end of the file's text. SECTION is
1564 the section number (in objfile->section_offsets) of the blockvector
1565 and linetable.
1566
1567 Note that it is possible for end_symtab() to return NULL. In
1568 particular, for the DWARF case at least, it will return NULL when
1569 it finds a compilation unit that has exactly one DIE, a
1570 TAG_compile_unit DIE. This can happen when we link in an object
1571 file that was compiled from an empty source file. Returning NULL
1572 is probably not the correct thing to do, because then gdb will
1573 never know about this empty file (FIXME).
1574
1575 If you need to modify STATIC_BLOCK before it is finalized you should
1576 call end_symtab_get_static_block and end_symtab_from_static_block
1577 yourself. */
1578
1579 struct compunit_symtab *
1580 buildsym_compunit::end_symtab (CORE_ADDR end_addr, int section)
1581 {
1582 struct block *static_block;
1583
1584 static_block = end_symtab_get_static_block (end_addr, 0, 0);
1585 return end_symtab_from_static_block (static_block, section, 0);
1586 }
1587
1588 /* Same as end_symtab except create a symtab that can be later added to. */
1589
1590 struct compunit_symtab *
1591 buildsym_compunit::end_expandable_symtab (CORE_ADDR end_addr, int section)
1592 {
1593 struct block *static_block;
1594
1595 static_block = end_symtab_get_static_block (end_addr, 1, 0);
1596 return end_symtab_from_static_block (static_block, section, 1);
1597 }
1598
1599 /* Subroutine of augment_type_symtab to simplify it.
1600 Attach the main source file's symtab to all symbols in PENDING_LIST that
1601 don't have one. */
1602
1603 static void
1604 set_missing_symtab (struct pending *pending_list,
1605 struct compunit_symtab *cu)
1606 {
1607 struct pending *pending;
1608 int i;
1609
1610 for (pending = pending_list; pending != NULL; pending = pending->next)
1611 {
1612 for (i = 0; i < pending->nsyms; ++i)
1613 {
1614 if (symbol_symtab (pending->symbol[i]) == NULL)
1615 symbol_set_symtab (pending->symbol[i], COMPUNIT_FILETABS (cu));
1616 }
1617 }
1618 }
1619
1620 /* Same as end_symtab, but for the case where we're adding more symbols
1621 to an existing symtab that is known to contain only type information.
1622 This is the case for DWARF4 Type Units. */
1623
1624 void
1625 buildsym_compunit::augment_type_symtab ()
1626 {
1627 struct compunit_symtab *cust = compunit_symtab;
1628 const struct blockvector *blockvector = COMPUNIT_BLOCKVECTOR (cust);
1629
1630 if (!m_context_stack.empty ())
1631 complaint (_("Context stack not empty in augment_type_symtab"));
1632 if (m_pending_blocks != NULL)
1633 complaint (_("Blocks in a type symtab"));
1634 if (m_pending_macros != NULL)
1635 complaint (_("Macro in a type symtab"));
1636 if (m_have_line_numbers)
1637 complaint (_("Line numbers recorded in a type symtab"));
1638
1639 if (m_file_symbols != NULL)
1640 {
1641 struct block *block = BLOCKVECTOR_BLOCK (blockvector, STATIC_BLOCK);
1642
1643 /* First mark any symbols without a specified symtab as belonging
1644 to the primary symtab. */
1645 set_missing_symtab (m_file_symbols, cust);
1646
1647 dict_add_pending (BLOCK_DICT (block), m_file_symbols);
1648 }
1649
1650 if (m_global_symbols != NULL)
1651 {
1652 struct block *block = BLOCKVECTOR_BLOCK (blockvector, GLOBAL_BLOCK);
1653
1654 /* First mark any symbols without a specified symtab as belonging
1655 to the primary symtab. */
1656 set_missing_symtab (m_global_symbols, cust);
1657
1658 dict_add_pending (BLOCK_DICT (block),
1659 m_global_symbols);
1660 }
1661
1662 reset_symtab_globals ();
1663 }
1664
1665 /* Push a context block. Args are an identifying nesting level
1666 (checkable when you pop it), and the starting PC address of this
1667 context. */
1668
1669 struct context_stack *
1670 buildsym_compunit::push_context (int desc, CORE_ADDR valu)
1671 {
1672 m_context_stack.emplace_back ();
1673 struct context_stack *newobj = &m_context_stack.back ();
1674
1675 newobj->depth = desc;
1676 newobj->locals = m_local_symbols;
1677 newobj->old_blocks = m_pending_blocks;
1678 newobj->start_addr = valu;
1679 newobj->local_using_directives = m_local_using_directives;
1680 newobj->name = NULL;
1681
1682 m_local_symbols = NULL;
1683 m_local_using_directives = NULL;
1684
1685 return newobj;
1686 }
1687
1688 /* Pop a context block. Returns the address of the context block just
1689 popped. */
1690
1691 struct context_stack
1692 buildsym_compunit::pop_context ()
1693 {
1694 gdb_assert (!m_context_stack.empty ());
1695 struct context_stack result = m_context_stack.back ();
1696 m_context_stack.pop_back ();
1697 return result;
1698 }
1699
1700 \f
1701
1702 void
1703 record_debugformat (const char *format)
1704 {
1705 buildsym_compunit->record_debugformat (format);
1706 }
1707
1708 void
1709 record_producer (const char *producer)
1710 {
1711 buildsym_compunit->record_producer (producer);
1712 }
1713
1714 \f
1715
1716 /* See buildsym.h. */
1717
1718 void
1719 set_last_source_file (const char *name)
1720 {
1721 gdb_assert (buildsym_compunit != nullptr || name == nullptr);
1722 if (buildsym_compunit != nullptr)
1723 buildsym_compunit->set_last_source_file (name);
1724 }
1725
1726 /* See buildsym.h. */
1727
1728 const char *
1729 get_last_source_file ()
1730 {
1731 if (buildsym_compunit == nullptr)
1732 return nullptr;
1733 return buildsym_compunit->get_last_source_file ();
1734 }
1735
1736 /* See buildsym.h. */
1737
1738 void
1739 set_last_source_start_addr (CORE_ADDR addr)
1740 {
1741 gdb_assert (buildsym_compunit != nullptr);
1742 buildsym_compunit->set_last_source_start_addr (addr);
1743 }
1744
1745 /* See buildsym.h. */
1746
1747 CORE_ADDR
1748 get_last_source_start_addr ()
1749 {
1750 gdb_assert (buildsym_compunit != nullptr);
1751 return buildsym_compunit->get_last_source_start_addr ();
1752 }
1753
1754 /* See buildsym.h. */
1755
1756 struct using_direct **
1757 get_local_using_directives ()
1758 {
1759 gdb_assert (buildsym_compunit != nullptr);
1760 return buildsym_compunit->get_local_using_directives ();
1761 }
1762
1763 /* See buildsym.h. */
1764
1765 void
1766 set_local_using_directives (struct using_direct *new_local)
1767 {
1768 gdb_assert (buildsym_compunit != nullptr);
1769 buildsym_compunit->set_local_using_directives (new_local);
1770 }
1771
1772 /* See buildsym.h. */
1773
1774 struct using_direct **
1775 get_global_using_directives ()
1776 {
1777 gdb_assert (buildsym_compunit != nullptr);
1778 return buildsym_compunit->get_global_using_directives ();
1779 }
1780
1781 /* See buildsym.h. */
1782
1783 bool
1784 outermost_context_p ()
1785 {
1786 gdb_assert (buildsym_compunit != nullptr);
1787 return buildsym_compunit->outermost_context_p ();
1788 }
1789
1790 /* See buildsym.h. */
1791
1792 struct context_stack *
1793 get_current_context_stack ()
1794 {
1795 gdb_assert (buildsym_compunit != nullptr);
1796 return buildsym_compunit->get_current_context_stack ();
1797 }
1798
1799 /* See buildsym.h. */
1800
1801 int
1802 get_context_stack_depth ()
1803 {
1804 gdb_assert (buildsym_compunit != nullptr);
1805 return buildsym_compunit->get_context_stack_depth ();
1806 }
1807
1808 /* See buildsym.h. */
1809
1810 struct subfile *
1811 get_current_subfile ()
1812 {
1813 gdb_assert (buildsym_compunit != nullptr);
1814 return buildsym_compunit->get_current_subfile ();
1815 }
1816
1817 /* See buildsym.h. */
1818
1819 struct pending **
1820 get_local_symbols ()
1821 {
1822 gdb_assert (buildsym_compunit != nullptr);
1823 return buildsym_compunit->get_local_symbols ();
1824 }
1825
1826 /* See buildsym.h. */
1827
1828 struct pending **
1829 get_file_symbols ()
1830 {
1831 gdb_assert (buildsym_compunit != nullptr);
1832 return buildsym_compunit->get_file_symbols ();
1833 }
1834
1835 /* See buildsym.h. */
1836
1837 struct pending **
1838 get_global_symbols ()
1839 {
1840 gdb_assert (buildsym_compunit != nullptr);
1841 return buildsym_compunit->get_global_symbols ();
1842 }
1843
1844 void
1845 start_subfile (const char *name)
1846 {
1847 gdb_assert (buildsym_compunit != nullptr);
1848 buildsym_compunit->start_subfile (name);
1849 }
1850
1851 void
1852 patch_subfile_names (struct subfile *subfile, const char *name)
1853 {
1854 gdb_assert (buildsym_compunit != nullptr);
1855 buildsym_compunit->patch_subfile_names (subfile, name);
1856 }
1857
1858 void
1859 push_subfile ()
1860 {
1861 gdb_assert (buildsym_compunit != nullptr);
1862 buildsym_compunit->push_subfile ();
1863 }
1864
1865 const char *
1866 pop_subfile ()
1867 {
1868 gdb_assert (buildsym_compunit != nullptr);
1869 return buildsym_compunit->pop_subfile ();
1870 }
1871
1872 struct block *
1873 end_symtab_get_static_block (CORE_ADDR end_addr, int expandable, int required)
1874 {
1875 gdb_assert (buildsym_compunit != nullptr);
1876 return buildsym_compunit->end_symtab_get_static_block (end_addr, expandable,
1877 required);
1878 }
1879
1880 struct compunit_symtab *
1881 end_symtab_from_static_block (struct block *static_block,
1882 int section, int expandable)
1883 {
1884 gdb_assert (buildsym_compunit != nullptr);
1885 struct compunit_symtab *result
1886 = buildsym_compunit->end_symtab_from_static_block (static_block,
1887 section, expandable);
1888 reset_symtab_globals ();
1889 return result;
1890 }
1891
1892 struct compunit_symtab *
1893 end_symtab (CORE_ADDR end_addr, int section)
1894 {
1895 gdb_assert (buildsym_compunit != nullptr);
1896 struct compunit_symtab *result
1897 = buildsym_compunit->end_symtab (end_addr, section);
1898 reset_symtab_globals ();
1899 return result;
1900 }
1901
1902 struct compunit_symtab *
1903 end_expandable_symtab (CORE_ADDR end_addr, int section)
1904 {
1905 gdb_assert (buildsym_compunit != nullptr);
1906 struct compunit_symtab *result
1907 = buildsym_compunit->end_expandable_symtab (end_addr, section);
1908 reset_symtab_globals ();
1909 return result;
1910 }
1911
1912 void
1913 augment_type_symtab ()
1914 {
1915 gdb_assert (buildsym_compunit != nullptr);
1916 buildsym_compunit->augment_type_symtab ();
1917 reset_symtab_globals ();
1918 }
1919
1920 struct context_stack *
1921 push_context (int desc, CORE_ADDR valu)
1922 {
1923 gdb_assert (buildsym_compunit != nullptr);
1924 return buildsym_compunit->push_context (desc, valu);
1925 }
1926
1927 struct context_stack
1928 pop_context ()
1929 {
1930 gdb_assert (buildsym_compunit != nullptr);
1931 return buildsym_compunit->pop_context ();
1932 }
1933
1934 struct block *
1935 finish_block (struct symbol *symbol, struct pending_block *old_blocks,
1936 const struct dynamic_prop *static_link,
1937 CORE_ADDR start, CORE_ADDR end)
1938 {
1939 gdb_assert (buildsym_compunit != nullptr);
1940 return buildsym_compunit->finish_block (symbol, old_blocks, static_link,
1941 start, end);
1942 }
1943
1944 void
1945 record_block_range (struct block *block, CORE_ADDR start,
1946 CORE_ADDR end_inclusive)
1947 {
1948 gdb_assert (buildsym_compunit != nullptr);
1949 buildsym_compunit->record_block_range (block, start, end_inclusive);
1950 }
1951
1952 void
1953 record_line (struct subfile *subfile, int line, CORE_ADDR pc)
1954 {
1955 gdb_assert (buildsym_compunit != nullptr);
1956 buildsym_compunit->record_line (subfile, line, pc);
1957 }
This page took 0.214551 seconds and 5 git commands to generate.