gdb/dwarf: add assertion in maybe_queue_comp_unit
[binutils-gdb.git] / gdb / dwarf2 / read.c
1 /* DWARF 2 debugging format support for GDB.
2
3 Copyright (C) 1994-2021 Free Software Foundation, Inc.
4
5 Adapted by Gary Funck (gary@intrepid.com), Intrepid Technology,
6 Inc. with support from Florida State University (under contract
7 with the Ada Joint Program Office), and Silicon Graphics, Inc.
8 Initial contribution by Brent Benson, Harris Computer Systems, Inc.,
9 based on Fred Fish's (Cygnus Support) implementation of DWARF 1
10 support.
11
12 This file is part of GDB.
13
14 This program is free software; you can redistribute it and/or modify
15 it under the terms of the GNU General Public License as published by
16 the Free Software Foundation; either version 3 of the License, or
17 (at your option) any later version.
18
19 This program is distributed in the hope that it will be useful,
20 but WITHOUT ANY WARRANTY; without even the implied warranty of
21 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
22 GNU General Public License for more details.
23
24 You should have received a copy of the GNU General Public License
25 along with this program. If not, see <http://www.gnu.org/licenses/>. */
26
27 /* FIXME: Various die-reading functions need to be more careful with
28 reading off the end of the section.
29 E.g., load_partial_dies, read_partial_die. */
30
31 #include "defs.h"
32 #include "dwarf2/read.h"
33 #include "dwarf2/abbrev.h"
34 #include "dwarf2/attribute.h"
35 #include "dwarf2/comp-unit.h"
36 #include "dwarf2/index-cache.h"
37 #include "dwarf2/index-common.h"
38 #include "dwarf2/leb.h"
39 #include "dwarf2/line-header.h"
40 #include "dwarf2/dwz.h"
41 #include "dwarf2/macro.h"
42 #include "dwarf2/die.h"
43 #include "dwarf2/stringify.h"
44 #include "bfd.h"
45 #include "elf-bfd.h"
46 #include "symtab.h"
47 #include "gdbtypes.h"
48 #include "objfiles.h"
49 #include "dwarf2.h"
50 #include "buildsym.h"
51 #include "demangle.h"
52 #include "gdb-demangle.h"
53 #include "filenames.h" /* for DOSish file names */
54 #include "language.h"
55 #include "complaints.h"
56 #include "dwarf2/expr.h"
57 #include "dwarf2/loc.h"
58 #include "cp-support.h"
59 #include "hashtab.h"
60 #include "command.h"
61 #include "gdbcmd.h"
62 #include "block.h"
63 #include "addrmap.h"
64 #include "typeprint.h"
65 #include "psympriv.h"
66 #include "c-lang.h"
67 #include "go-lang.h"
68 #include "valprint.h"
69 #include "gdbcore.h" /* for gnutarget */
70 #include "gdb/gdb-index.h"
71 #include "gdb_bfd.h"
72 #include "f-lang.h"
73 #include "source.h"
74 #include "build-id.h"
75 #include "namespace.h"
76 #include "gdbsupport/function-view.h"
77 #include "gdbsupport/gdb_optional.h"
78 #include "gdbsupport/underlying.h"
79 #include "gdbsupport/hash_enum.h"
80 #include "filename-seen-cache.h"
81 #include "producer.h"
82 #include <fcntl.h>
83 #include <algorithm>
84 #include <unordered_map>
85 #include "gdbsupport/selftest.h"
86 #include "rust-lang.h"
87 #include "gdbsupport/pathstuff.h"
88 #include "count-one-bits.h"
89 #include "debuginfod-support.h"
90
91 /* When == 1, print basic high level tracing messages.
92 When > 1, be more verbose.
93 This is in contrast to the low level DIE reading of dwarf_die_debug. */
94 static unsigned int dwarf_read_debug = 0;
95
96 /* Print a "dwarf-read" debug statement if dwarf_read_debug is >= 1. */
97
98 #define dwarf_read_debug_printf(fmt, ...) \
99 debug_prefixed_printf_cond (dwarf_read_debug >= 1, "dwarf-read", fmt, \
100 ##__VA_ARGS__)
101
102 /* Print a "dwarf-read" debug statement if dwarf_read_debug is >= 2. */
103
104 #define dwarf_read_debug_printf_v(fmt, ...) \
105 debug_prefixed_printf_cond (dwarf_read_debug >= 2, "dwarf-read", fmt, \
106 ##__VA_ARGS__)
107
108 /* When non-zero, dump DIEs after they are read in. */
109 static unsigned int dwarf_die_debug = 0;
110
111 /* When non-zero, dump line number entries as they are read in. */
112 unsigned int dwarf_line_debug = 0;
113
114 /* When true, cross-check physname against demangler. */
115 static bool check_physname = false;
116
117 /* When true, do not reject deprecated .gdb_index sections. */
118 static bool use_deprecated_index_sections = false;
119
120 /* This is used to store the data that is always per objfile. */
121 static const objfile_key<dwarf2_per_objfile> dwarf2_objfile_data_key;
122
123 /* These are used to store the dwarf2_per_bfd objects.
124
125 objfiles having the same BFD, which doesn't require relocations, are going to
126 share a dwarf2_per_bfd object, which is held in the _bfd_data_key version.
127
128 Other objfiles are not going to share a dwarf2_per_bfd with any other
129 objfiles, so they'll have their own version kept in the _objfile_data_key
130 version. */
131 static const struct bfd_key<dwarf2_per_bfd> dwarf2_per_bfd_bfd_data_key;
132 static const struct objfile_key<dwarf2_per_bfd> dwarf2_per_bfd_objfile_data_key;
133
134 /* The "aclass" indices for various kinds of computed DWARF symbols. */
135
136 static int dwarf2_locexpr_index;
137 static int dwarf2_loclist_index;
138 static int dwarf2_locexpr_block_index;
139 static int dwarf2_loclist_block_index;
140
141 /* Size of .debug_loclists section header for 32-bit DWARF format. */
142 #define LOCLIST_HEADER_SIZE32 12
143
144 /* Size of .debug_loclists section header for 64-bit DWARF format. */
145 #define LOCLIST_HEADER_SIZE64 20
146
147 /* Size of .debug_rnglists section header for 32-bit DWARF format. */
148 #define RNGLIST_HEADER_SIZE32 12
149
150 /* Size of .debug_rnglists section header for 64-bit DWARF format. */
151 #define RNGLIST_HEADER_SIZE64 20
152
153 /* An index into a (C++) symbol name component in a symbol name as
154 recorded in the mapped_index's symbol table. For each C++ symbol
155 in the symbol table, we record one entry for the start of each
156 component in the symbol in a table of name components, and then
157 sort the table, in order to be able to binary search symbol names,
158 ignoring leading namespaces, both completion and regular look up.
159 For example, for symbol "A::B::C", we'll have an entry that points
160 to "A::B::C", another that points to "B::C", and another for "C".
161 Note that function symbols in GDB index have no parameter
162 information, just the function/method names. You can convert a
163 name_component to a "const char *" using the
164 'mapped_index::symbol_name_at(offset_type)' method. */
165
166 struct name_component
167 {
168 /* Offset in the symbol name where the component starts. Stored as
169 a (32-bit) offset instead of a pointer to save memory and improve
170 locality on 64-bit architectures. */
171 offset_type name_offset;
172
173 /* The symbol's index in the symbol and constant pool tables of a
174 mapped_index. */
175 offset_type idx;
176 };
177
178 /* Base class containing bits shared by both .gdb_index and
179 .debug_name indexes. */
180
181 struct mapped_index_base
182 {
183 mapped_index_base () = default;
184 DISABLE_COPY_AND_ASSIGN (mapped_index_base);
185
186 /* The name_component table (a sorted vector). See name_component's
187 description above. */
188 std::vector<name_component> name_components;
189
190 /* How NAME_COMPONENTS is sorted. */
191 enum case_sensitivity name_components_casing;
192
193 /* Return the number of names in the symbol table. */
194 virtual size_t symbol_name_count () const = 0;
195
196 /* Get the name of the symbol at IDX in the symbol table. */
197 virtual const char *symbol_name_at
198 (offset_type idx, dwarf2_per_objfile *per_objfile) const = 0;
199
200 /* Return whether the name at IDX in the symbol table should be
201 ignored. */
202 virtual bool symbol_name_slot_invalid (offset_type idx) const
203 {
204 return false;
205 }
206
207 /* Build the symbol name component sorted vector, if we haven't
208 yet. */
209 void build_name_components (dwarf2_per_objfile *per_objfile);
210
211 /* Returns the lower (inclusive) and upper (exclusive) bounds of the
212 possible matches for LN_NO_PARAMS in the name component
213 vector. */
214 std::pair<std::vector<name_component>::const_iterator,
215 std::vector<name_component>::const_iterator>
216 find_name_components_bounds (const lookup_name_info &ln_no_params,
217 enum language lang,
218 dwarf2_per_objfile *per_objfile) const;
219
220 /* Prevent deleting/destroying via a base class pointer. */
221 protected:
222 ~mapped_index_base() = default;
223 };
224
225 /* A description of the mapped index. The file format is described in
226 a comment by the code that writes the index. */
227 struct mapped_index final : public mapped_index_base
228 {
229 /* A slot/bucket in the symbol table hash. */
230 struct symbol_table_slot
231 {
232 const offset_type name;
233 const offset_type vec;
234 };
235
236 /* Index data format version. */
237 int version = 0;
238
239 /* The address table data. */
240 gdb::array_view<const gdb_byte> address_table;
241
242 /* The symbol table, implemented as a hash table. */
243 gdb::array_view<symbol_table_slot> symbol_table;
244
245 /* A pointer to the constant pool. */
246 const char *constant_pool = nullptr;
247
248 bool symbol_name_slot_invalid (offset_type idx) const override
249 {
250 const auto &bucket = this->symbol_table[idx];
251 return bucket.name == 0 && bucket.vec == 0;
252 }
253
254 /* Convenience method to get at the name of the symbol at IDX in the
255 symbol table. */
256 const char *symbol_name_at
257 (offset_type idx, dwarf2_per_objfile *per_objfile) const override
258 { return this->constant_pool + MAYBE_SWAP (this->symbol_table[idx].name); }
259
260 size_t symbol_name_count () const override
261 { return this->symbol_table.size (); }
262 };
263
264 /* A description of the mapped .debug_names.
265 Uninitialized map has CU_COUNT 0. */
266 struct mapped_debug_names final : public mapped_index_base
267 {
268 bfd_endian dwarf5_byte_order;
269 bool dwarf5_is_dwarf64;
270 bool augmentation_is_gdb;
271 uint8_t offset_size;
272 uint32_t cu_count = 0;
273 uint32_t tu_count, bucket_count, name_count;
274 const gdb_byte *cu_table_reordered, *tu_table_reordered;
275 const uint32_t *bucket_table_reordered, *hash_table_reordered;
276 const gdb_byte *name_table_string_offs_reordered;
277 const gdb_byte *name_table_entry_offs_reordered;
278 const gdb_byte *entry_pool;
279
280 struct index_val
281 {
282 ULONGEST dwarf_tag;
283 struct attr
284 {
285 /* Attribute name DW_IDX_*. */
286 ULONGEST dw_idx;
287
288 /* Attribute form DW_FORM_*. */
289 ULONGEST form;
290
291 /* Value if FORM is DW_FORM_implicit_const. */
292 LONGEST implicit_const;
293 };
294 std::vector<attr> attr_vec;
295 };
296
297 std::unordered_map<ULONGEST, index_val> abbrev_map;
298
299 const char *namei_to_name
300 (uint32_t namei, dwarf2_per_objfile *per_objfile) const;
301
302 /* Implementation of the mapped_index_base virtual interface, for
303 the name_components cache. */
304
305 const char *symbol_name_at
306 (offset_type idx, dwarf2_per_objfile *per_objfile) const override
307 { return namei_to_name (idx, per_objfile); }
308
309 size_t symbol_name_count () const override
310 { return this->name_count; }
311 };
312
313 /* See dwarf2read.h. */
314
315 dwarf2_per_objfile *
316 get_dwarf2_per_objfile (struct objfile *objfile)
317 {
318 return dwarf2_objfile_data_key.get (objfile);
319 }
320
321 /* Default names of the debugging sections. */
322
323 /* Note that if the debugging section has been compressed, it might
324 have a name like .zdebug_info. */
325
326 static const struct dwarf2_debug_sections dwarf2_elf_names =
327 {
328 { ".debug_info", ".zdebug_info" },
329 { ".debug_abbrev", ".zdebug_abbrev" },
330 { ".debug_line", ".zdebug_line" },
331 { ".debug_loc", ".zdebug_loc" },
332 { ".debug_loclists", ".zdebug_loclists" },
333 { ".debug_macinfo", ".zdebug_macinfo" },
334 { ".debug_macro", ".zdebug_macro" },
335 { ".debug_str", ".zdebug_str" },
336 { ".debug_str_offsets", ".zdebug_str_offsets" },
337 { ".debug_line_str", ".zdebug_line_str" },
338 { ".debug_ranges", ".zdebug_ranges" },
339 { ".debug_rnglists", ".zdebug_rnglists" },
340 { ".debug_types", ".zdebug_types" },
341 { ".debug_addr", ".zdebug_addr" },
342 { ".debug_frame", ".zdebug_frame" },
343 { ".eh_frame", NULL },
344 { ".gdb_index", ".zgdb_index" },
345 { ".debug_names", ".zdebug_names" },
346 { ".debug_aranges", ".zdebug_aranges" },
347 23
348 };
349
350 /* List of DWO/DWP sections. */
351
352 static const struct dwop_section_names
353 {
354 struct dwarf2_section_names abbrev_dwo;
355 struct dwarf2_section_names info_dwo;
356 struct dwarf2_section_names line_dwo;
357 struct dwarf2_section_names loc_dwo;
358 struct dwarf2_section_names loclists_dwo;
359 struct dwarf2_section_names macinfo_dwo;
360 struct dwarf2_section_names macro_dwo;
361 struct dwarf2_section_names rnglists_dwo;
362 struct dwarf2_section_names str_dwo;
363 struct dwarf2_section_names str_offsets_dwo;
364 struct dwarf2_section_names types_dwo;
365 struct dwarf2_section_names cu_index;
366 struct dwarf2_section_names tu_index;
367 }
368 dwop_section_names =
369 {
370 { ".debug_abbrev.dwo", ".zdebug_abbrev.dwo" },
371 { ".debug_info.dwo", ".zdebug_info.dwo" },
372 { ".debug_line.dwo", ".zdebug_line.dwo" },
373 { ".debug_loc.dwo", ".zdebug_loc.dwo" },
374 { ".debug_loclists.dwo", ".zdebug_loclists.dwo" },
375 { ".debug_macinfo.dwo", ".zdebug_macinfo.dwo" },
376 { ".debug_macro.dwo", ".zdebug_macro.dwo" },
377 { ".debug_rnglists.dwo", ".zdebug_rnglists.dwo" },
378 { ".debug_str.dwo", ".zdebug_str.dwo" },
379 { ".debug_str_offsets.dwo", ".zdebug_str_offsets.dwo" },
380 { ".debug_types.dwo", ".zdebug_types.dwo" },
381 { ".debug_cu_index", ".zdebug_cu_index" },
382 { ".debug_tu_index", ".zdebug_tu_index" },
383 };
384
385 /* local data types */
386
387 /* The location list and range list sections (.debug_loclists & .debug_rnglists)
388 begin with a header, which contains the following information. */
389 struct loclists_rnglists_header
390 {
391 /* A 4-byte or 12-byte length containing the length of the
392 set of entries for this compilation unit, not including the
393 length field itself. */
394 unsigned int length;
395
396 /* A 2-byte version identifier. */
397 short version;
398
399 /* A 1-byte unsigned integer containing the size in bytes of an address on
400 the target system. */
401 unsigned char addr_size;
402
403 /* A 1-byte unsigned integer containing the size in bytes of a segment selector
404 on the target system. */
405 unsigned char segment_collector_size;
406
407 /* A 4-byte count of the number of offsets that follow the header. */
408 unsigned int offset_entry_count;
409 };
410
411 /* Type used for delaying computation of method physnames.
412 See comments for compute_delayed_physnames. */
413 struct delayed_method_info
414 {
415 /* The type to which the method is attached, i.e., its parent class. */
416 struct type *type;
417
418 /* The index of the method in the type's function fieldlists. */
419 int fnfield_index;
420
421 /* The index of the method in the fieldlist. */
422 int index;
423
424 /* The name of the DIE. */
425 const char *name;
426
427 /* The DIE associated with this method. */
428 struct die_info *die;
429 };
430
431 /* Internal state when decoding a particular compilation unit. */
432 struct dwarf2_cu
433 {
434 explicit dwarf2_cu (dwarf2_per_cu_data *per_cu,
435 dwarf2_per_objfile *per_objfile);
436
437 DISABLE_COPY_AND_ASSIGN (dwarf2_cu);
438
439 /* TU version of handle_DW_AT_stmt_list for read_type_unit_scope.
440 Create the set of symtabs used by this TU, or if this TU is sharing
441 symtabs with another TU and the symtabs have already been created
442 then restore those symtabs in the line header.
443 We don't need the pc/line-number mapping for type units. */
444 void setup_type_unit_groups (struct die_info *die);
445
446 /* Start a symtab for DWARF. NAME, COMP_DIR, LOW_PC are passed to the
447 buildsym_compunit constructor. */
448 struct compunit_symtab *start_symtab (const char *name,
449 const char *comp_dir,
450 CORE_ADDR low_pc);
451
452 /* Reset the builder. */
453 void reset_builder () { m_builder.reset (); }
454
455 /* Return a type that is a generic pointer type, the size of which
456 matches the address size given in the compilation unit header for
457 this CU. */
458 struct type *addr_type () const;
459
460 /* Find an integer type the same size as the address size given in
461 the compilation unit header for this CU. UNSIGNED_P controls if
462 the integer is unsigned or not. */
463 struct type *addr_sized_int_type (bool unsigned_p) const;
464
465 /* The header of the compilation unit. */
466 struct comp_unit_head header {};
467
468 /* Base address of this compilation unit. */
469 gdb::optional<CORE_ADDR> base_address;
470
471 /* The language we are debugging. */
472 enum language language = language_unknown;
473 const struct language_defn *language_defn = nullptr;
474
475 const char *producer = nullptr;
476
477 private:
478 /* The symtab builder for this CU. This is only non-NULL when full
479 symbols are being read. */
480 std::unique_ptr<buildsym_compunit> m_builder;
481
482 public:
483 /* The generic symbol table building routines have separate lists for
484 file scope symbols and all all other scopes (local scopes). So
485 we need to select the right one to pass to add_symbol_to_list().
486 We do it by keeping a pointer to the correct list in list_in_scope.
487
488 FIXME: The original dwarf code just treated the file scope as the
489 first local scope, and all other local scopes as nested local
490 scopes, and worked fine. Check to see if we really need to
491 distinguish these in buildsym.c. */
492 struct pending **list_in_scope = nullptr;
493
494 /* Hash table holding all the loaded partial DIEs
495 with partial_die->offset.SECT_OFF as hash. */
496 htab_t partial_dies = nullptr;
497
498 /* Storage for things with the same lifetime as this read-in compilation
499 unit, including partial DIEs. */
500 auto_obstack comp_unit_obstack;
501
502 /* Backlink to our per_cu entry. */
503 struct dwarf2_per_cu_data *per_cu;
504
505 /* The dwarf2_per_objfile that owns this. */
506 dwarf2_per_objfile *per_objfile;
507
508 /* How many compilation units ago was this CU last referenced? */
509 int last_used = 0;
510
511 /* A hash table of DIE cu_offset for following references with
512 die_info->offset.sect_off as hash. */
513 htab_t die_hash = nullptr;
514
515 /* Full DIEs if read in. */
516 struct die_info *dies = nullptr;
517
518 /* A set of pointers to dwarf2_per_cu_data objects for compilation
519 units referenced by this one. Only set during full symbol processing;
520 partial symbol tables do not have dependencies. */
521 htab_t dependencies = nullptr;
522
523 /* Header data from the line table, during full symbol processing. */
524 struct line_header *line_header = nullptr;
525 /* Non-NULL if LINE_HEADER is owned by this DWARF_CU. Otherwise,
526 it's owned by dwarf2_per_bfd::line_header_hash. If non-NULL,
527 this is the DW_TAG_compile_unit die for this CU. We'll hold on
528 to the line header as long as this DIE is being processed. See
529 process_die_scope. */
530 die_info *line_header_die_owner = nullptr;
531
532 /* A list of methods which need to have physnames computed
533 after all type information has been read. */
534 std::vector<delayed_method_info> method_list;
535
536 /* To be copied to symtab->call_site_htab. */
537 htab_t call_site_htab = nullptr;
538
539 /* Non-NULL if this CU came from a DWO file.
540 There is an invariant here that is important to remember:
541 Except for attributes copied from the top level DIE in the "main"
542 (or "stub") file in preparation for reading the DWO file
543 (e.g., DW_AT_addr_base), we KISS: there is only *one* CU.
544 Either there isn't a DWO file (in which case this is NULL and the point
545 is moot), or there is and either we're not going to read it (in which
546 case this is NULL) or there is and we are reading it (in which case this
547 is non-NULL). */
548 struct dwo_unit *dwo_unit = nullptr;
549
550 /* The DW_AT_addr_base (DW_AT_GNU_addr_base) attribute if present.
551 Note this value comes from the Fission stub CU/TU's DIE. */
552 gdb::optional<ULONGEST> addr_base;
553
554 /* The DW_AT_rnglists_base attribute if present.
555 Note this value comes from the Fission stub CU/TU's DIE.
556 Also note that the value is zero in the non-DWO case so this value can
557 be used without needing to know whether DWO files are in use or not.
558 N.B. This does not apply to DW_AT_ranges appearing in
559 DW_TAG_compile_unit dies. This is a bit of a wart, consider if ever
560 DW_AT_ranges appeared in the DW_TAG_compile_unit of DWO DIEs: then
561 DW_AT_rnglists_base *would* have to be applied, and we'd have to care
562 whether the DW_AT_ranges attribute came from the skeleton or DWO. */
563 ULONGEST ranges_base = 0;
564
565 /* The DW_AT_loclists_base attribute if present. */
566 ULONGEST loclist_base = 0;
567
568 /* When reading debug info generated by older versions of rustc, we
569 have to rewrite some union types to be struct types with a
570 variant part. This rewriting must be done after the CU is fully
571 read in, because otherwise at the point of rewriting some struct
572 type might not have been fully processed. So, we keep a list of
573 all such types here and process them after expansion. */
574 std::vector<struct type *> rust_unions;
575
576 /* The DW_AT_str_offsets_base attribute if present. For DWARF 4 version DWO
577 files, the value is implicitly zero. For DWARF 5 version DWO files, the
578 value is often implicit and is the size of the header of
579 .debug_str_offsets section (8 or 4, depending on the address size). */
580 gdb::optional<ULONGEST> str_offsets_base;
581
582 /* Mark used when releasing cached dies. */
583 bool mark : 1;
584
585 /* This CU references .debug_loc. See the symtab->locations_valid field.
586 This test is imperfect as there may exist optimized debug code not using
587 any location list and still facing inlining issues if handled as
588 unoptimized code. For a future better test see GCC PR other/32998. */
589 bool has_loclist : 1;
590
591 /* These cache the results for producer_is_* fields. CHECKED_PRODUCER is true
592 if all the producer_is_* fields are valid. This information is cached
593 because profiling CU expansion showed excessive time spent in
594 producer_is_gxx_lt_4_6. */
595 bool checked_producer : 1;
596 bool producer_is_gxx_lt_4_6 : 1;
597 bool producer_is_gcc_lt_4_3 : 1;
598 bool producer_is_icc : 1;
599 bool producer_is_icc_lt_14 : 1;
600 bool producer_is_codewarrior : 1;
601
602 /* When true, the file that we're processing is known to have
603 debugging info for C++ namespaces. GCC 3.3.x did not produce
604 this information, but later versions do. */
605
606 bool processing_has_namespace_info : 1;
607
608 struct partial_die_info *find_partial_die (sect_offset sect_off);
609
610 /* If this CU was inherited by another CU (via specification,
611 abstract_origin, etc), this is the ancestor CU. */
612 dwarf2_cu *ancestor;
613
614 /* Get the buildsym_compunit for this CU. */
615 buildsym_compunit *get_builder ()
616 {
617 /* If this CU has a builder associated with it, use that. */
618 if (m_builder != nullptr)
619 return m_builder.get ();
620
621 /* Otherwise, search ancestors for a valid builder. */
622 if (ancestor != nullptr)
623 return ancestor->get_builder ();
624
625 return nullptr;
626 }
627 };
628
629 /* A struct that can be used as a hash key for tables based on DW_AT_stmt_list.
630 This includes type_unit_group and quick_file_names. */
631
632 struct stmt_list_hash
633 {
634 /* The DWO unit this table is from or NULL if there is none. */
635 struct dwo_unit *dwo_unit;
636
637 /* Offset in .debug_line or .debug_line.dwo. */
638 sect_offset line_sect_off;
639 };
640
641 /* Each element of dwarf2_per_bfd->type_unit_groups is a pointer to
642 an object of this type. This contains elements of type unit groups
643 that can be shared across objfiles. The non-shareable parts are in
644 type_unit_group_unshareable. */
645
646 struct type_unit_group
647 {
648 /* dwarf2read.c's main "handle" on a TU symtab.
649 To simplify things we create an artificial CU that "includes" all the
650 type units using this stmt_list so that the rest of the code still has
651 a "per_cu" handle on the symtab. */
652 struct dwarf2_per_cu_data per_cu;
653
654 /* The TUs that share this DW_AT_stmt_list entry.
655 This is added to while parsing type units to build partial symtabs,
656 and is deleted afterwards and not used again. */
657 std::vector<signatured_type *> *tus;
658
659 /* The data used to construct the hash key. */
660 struct stmt_list_hash hash;
661 };
662
663 /* These sections are what may appear in a (real or virtual) DWO file. */
664
665 struct dwo_sections
666 {
667 struct dwarf2_section_info abbrev;
668 struct dwarf2_section_info line;
669 struct dwarf2_section_info loc;
670 struct dwarf2_section_info loclists;
671 struct dwarf2_section_info macinfo;
672 struct dwarf2_section_info macro;
673 struct dwarf2_section_info rnglists;
674 struct dwarf2_section_info str;
675 struct dwarf2_section_info str_offsets;
676 /* In the case of a virtual DWO file, these two are unused. */
677 struct dwarf2_section_info info;
678 std::vector<dwarf2_section_info> types;
679 };
680
681 /* CUs/TUs in DWP/DWO files. */
682
683 struct dwo_unit
684 {
685 /* Backlink to the containing struct dwo_file. */
686 struct dwo_file *dwo_file;
687
688 /* The "id" that distinguishes this CU/TU.
689 .debug_info calls this "dwo_id", .debug_types calls this "signature".
690 Since signatures came first, we stick with it for consistency. */
691 ULONGEST signature;
692
693 /* The section this CU/TU lives in, in the DWO file. */
694 struct dwarf2_section_info *section;
695
696 /* Same as dwarf2_per_cu_data:{sect_off,length} but in the DWO section. */
697 sect_offset sect_off;
698 unsigned int length;
699
700 /* For types, offset in the type's DIE of the type defined by this TU. */
701 cu_offset type_offset_in_tu;
702 };
703
704 /* include/dwarf2.h defines the DWP section codes.
705 It defines a max value but it doesn't define a min value, which we
706 use for error checking, so provide one. */
707
708 enum dwp_v2_section_ids
709 {
710 DW_SECT_MIN = 1
711 };
712
713 /* Data for one DWO file.
714
715 This includes virtual DWO files (a virtual DWO file is a DWO file as it
716 appears in a DWP file). DWP files don't really have DWO files per se -
717 comdat folding of types "loses" the DWO file they came from, and from
718 a high level view DWP files appear to contain a mass of random types.
719 However, to maintain consistency with the non-DWP case we pretend DWP
720 files contain virtual DWO files, and we assign each TU with one virtual
721 DWO file (generally based on the line and abbrev section offsets -
722 a heuristic that seems to work in practice). */
723
724 struct dwo_file
725 {
726 dwo_file () = default;
727 DISABLE_COPY_AND_ASSIGN (dwo_file);
728
729 /* The DW_AT_GNU_dwo_name or DW_AT_dwo_name attribute.
730 For virtual DWO files the name is constructed from the section offsets
731 of abbrev,line,loc,str_offsets so that we combine virtual DWO files
732 from related CU+TUs. */
733 const char *dwo_name = nullptr;
734
735 /* The DW_AT_comp_dir attribute. */
736 const char *comp_dir = nullptr;
737
738 /* The bfd, when the file is open. Otherwise this is NULL.
739 This is unused(NULL) for virtual DWO files where we use dwp_file.dbfd. */
740 gdb_bfd_ref_ptr dbfd;
741
742 /* The sections that make up this DWO file.
743 Remember that for virtual DWO files in DWP V2 or DWP V5, these are virtual
744 sections (for lack of a better name). */
745 struct dwo_sections sections {};
746
747 /* The CUs in the file.
748 Each element is a struct dwo_unit. Multiple CUs per DWO are supported as
749 an extension to handle LLVM's Link Time Optimization output (where
750 multiple source files may be compiled into a single object/dwo pair). */
751 htab_up cus;
752
753 /* Table of TUs in the file.
754 Each element is a struct dwo_unit. */
755 htab_up tus;
756 };
757
758 /* These sections are what may appear in a DWP file. */
759
760 struct dwp_sections
761 {
762 /* These are used by all DWP versions (1, 2 and 5). */
763 struct dwarf2_section_info str;
764 struct dwarf2_section_info cu_index;
765 struct dwarf2_section_info tu_index;
766
767 /* These are only used by DWP version 2 and version 5 files.
768 In DWP version 1 the .debug_info.dwo, .debug_types.dwo, and other
769 sections are referenced by section number, and are not recorded here.
770 In DWP version 2 or 5 there is at most one copy of all these sections,
771 each section being (effectively) comprised of the concatenation of all of
772 the individual sections that exist in the version 1 format.
773 To keep the code simple we treat each of these concatenated pieces as a
774 section itself (a virtual section?). */
775 struct dwarf2_section_info abbrev;
776 struct dwarf2_section_info info;
777 struct dwarf2_section_info line;
778 struct dwarf2_section_info loc;
779 struct dwarf2_section_info loclists;
780 struct dwarf2_section_info macinfo;
781 struct dwarf2_section_info macro;
782 struct dwarf2_section_info rnglists;
783 struct dwarf2_section_info str_offsets;
784 struct dwarf2_section_info types;
785 };
786
787 /* These sections are what may appear in a virtual DWO file in DWP version 1.
788 A virtual DWO file is a DWO file as it appears in a DWP file. */
789
790 struct virtual_v1_dwo_sections
791 {
792 struct dwarf2_section_info abbrev;
793 struct dwarf2_section_info line;
794 struct dwarf2_section_info loc;
795 struct dwarf2_section_info macinfo;
796 struct dwarf2_section_info macro;
797 struct dwarf2_section_info str_offsets;
798 /* Each DWP hash table entry records one CU or one TU.
799 That is recorded here, and copied to dwo_unit.section. */
800 struct dwarf2_section_info info_or_types;
801 };
802
803 /* Similar to virtual_v1_dwo_sections, but for DWP version 2 or 5.
804 In version 2, the sections of the DWO files are concatenated together
805 and stored in one section of that name. Thus each ELF section contains
806 several "virtual" sections. */
807
808 struct virtual_v2_or_v5_dwo_sections
809 {
810 bfd_size_type abbrev_offset;
811 bfd_size_type abbrev_size;
812
813 bfd_size_type line_offset;
814 bfd_size_type line_size;
815
816 bfd_size_type loc_offset;
817 bfd_size_type loc_size;
818
819 bfd_size_type loclists_offset;
820 bfd_size_type loclists_size;
821
822 bfd_size_type macinfo_offset;
823 bfd_size_type macinfo_size;
824
825 bfd_size_type macro_offset;
826 bfd_size_type macro_size;
827
828 bfd_size_type rnglists_offset;
829 bfd_size_type rnglists_size;
830
831 bfd_size_type str_offsets_offset;
832 bfd_size_type str_offsets_size;
833
834 /* Each DWP hash table entry records one CU or one TU.
835 That is recorded here, and copied to dwo_unit.section. */
836 bfd_size_type info_or_types_offset;
837 bfd_size_type info_or_types_size;
838 };
839
840 /* Contents of DWP hash tables. */
841
842 struct dwp_hash_table
843 {
844 uint32_t version, nr_columns;
845 uint32_t nr_units, nr_slots;
846 const gdb_byte *hash_table, *unit_table;
847 union
848 {
849 struct
850 {
851 const gdb_byte *indices;
852 } v1;
853 struct
854 {
855 /* This is indexed by column number and gives the id of the section
856 in that column. */
857 #define MAX_NR_V2_DWO_SECTIONS \
858 (1 /* .debug_info or .debug_types */ \
859 + 1 /* .debug_abbrev */ \
860 + 1 /* .debug_line */ \
861 + 1 /* .debug_loc */ \
862 + 1 /* .debug_str_offsets */ \
863 + 1 /* .debug_macro or .debug_macinfo */)
864 int section_ids[MAX_NR_V2_DWO_SECTIONS];
865 const gdb_byte *offsets;
866 const gdb_byte *sizes;
867 } v2;
868 struct
869 {
870 /* This is indexed by column number and gives the id of the section
871 in that column. */
872 #define MAX_NR_V5_DWO_SECTIONS \
873 (1 /* .debug_info */ \
874 + 1 /* .debug_abbrev */ \
875 + 1 /* .debug_line */ \
876 + 1 /* .debug_loclists */ \
877 + 1 /* .debug_str_offsets */ \
878 + 1 /* .debug_macro */ \
879 + 1 /* .debug_rnglists */)
880 int section_ids[MAX_NR_V5_DWO_SECTIONS];
881 const gdb_byte *offsets;
882 const gdb_byte *sizes;
883 } v5;
884 } section_pool;
885 };
886
887 /* Data for one DWP file. */
888
889 struct dwp_file
890 {
891 dwp_file (const char *name_, gdb_bfd_ref_ptr &&abfd)
892 : name (name_),
893 dbfd (std::move (abfd))
894 {
895 }
896
897 /* Name of the file. */
898 const char *name;
899
900 /* File format version. */
901 int version = 0;
902
903 /* The bfd. */
904 gdb_bfd_ref_ptr dbfd;
905
906 /* Section info for this file. */
907 struct dwp_sections sections {};
908
909 /* Table of CUs in the file. */
910 const struct dwp_hash_table *cus = nullptr;
911
912 /* Table of TUs in the file. */
913 const struct dwp_hash_table *tus = nullptr;
914
915 /* Tables of loaded CUs/TUs. Each entry is a struct dwo_unit *. */
916 htab_up loaded_cus;
917 htab_up loaded_tus;
918
919 /* Table to map ELF section numbers to their sections.
920 This is only needed for the DWP V1 file format. */
921 unsigned int num_sections = 0;
922 asection **elf_sections = nullptr;
923 };
924
925 /* Struct used to pass misc. parameters to read_die_and_children, et
926 al. which are used for both .debug_info and .debug_types dies.
927 All parameters here are unchanging for the life of the call. This
928 struct exists to abstract away the constant parameters of die reading. */
929
930 struct die_reader_specs
931 {
932 /* The bfd of die_section. */
933 bfd* abfd;
934
935 /* The CU of the DIE we are parsing. */
936 struct dwarf2_cu *cu;
937
938 /* Non-NULL if reading a DWO file (including one packaged into a DWP). */
939 struct dwo_file *dwo_file;
940
941 /* The section the die comes from.
942 This is either .debug_info or .debug_types, or the .dwo variants. */
943 struct dwarf2_section_info *die_section;
944
945 /* die_section->buffer. */
946 const gdb_byte *buffer;
947
948 /* The end of the buffer. */
949 const gdb_byte *buffer_end;
950
951 /* The abbreviation table to use when reading the DIEs. */
952 struct abbrev_table *abbrev_table;
953 };
954
955 /* A subclass of die_reader_specs that holds storage and has complex
956 constructor and destructor behavior. */
957
958 class cutu_reader : public die_reader_specs
959 {
960 public:
961
962 cutu_reader (dwarf2_per_cu_data *this_cu,
963 dwarf2_per_objfile *per_objfile,
964 struct abbrev_table *abbrev_table,
965 dwarf2_cu *existing_cu,
966 bool skip_partial);
967
968 explicit cutu_reader (struct dwarf2_per_cu_data *this_cu,
969 dwarf2_per_objfile *per_objfile,
970 struct dwarf2_cu *parent_cu = nullptr,
971 struct dwo_file *dwo_file = nullptr);
972
973 DISABLE_COPY_AND_ASSIGN (cutu_reader);
974
975 const gdb_byte *info_ptr = nullptr;
976 struct die_info *comp_unit_die = nullptr;
977 bool dummy_p = false;
978
979 /* Release the new CU, putting it on the chain. This cannot be done
980 for dummy CUs. */
981 void keep ();
982
983 private:
984 void init_tu_and_read_dwo_dies (dwarf2_per_cu_data *this_cu,
985 dwarf2_per_objfile *per_objfile,
986 dwarf2_cu *existing_cu);
987
988 struct dwarf2_per_cu_data *m_this_cu;
989 std::unique_ptr<dwarf2_cu> m_new_cu;
990
991 /* The ordinary abbreviation table. */
992 abbrev_table_up m_abbrev_table_holder;
993
994 /* The DWO abbreviation table. */
995 abbrev_table_up m_dwo_abbrev_table;
996 };
997
998 /* When we construct a partial symbol table entry we only
999 need this much information. */
1000 struct partial_die_info : public allocate_on_obstack
1001 {
1002 partial_die_info (sect_offset sect_off, struct abbrev_info *abbrev);
1003
1004 /* Disable assign but still keep copy ctor, which is needed
1005 load_partial_dies. */
1006 partial_die_info& operator=(const partial_die_info& rhs) = delete;
1007
1008 /* Adjust the partial die before generating a symbol for it. This
1009 function may set the is_external flag or change the DIE's
1010 name. */
1011 void fixup (struct dwarf2_cu *cu);
1012
1013 /* Read a minimal amount of information into the minimal die
1014 structure. */
1015 const gdb_byte *read (const struct die_reader_specs *reader,
1016 const struct abbrev_info &abbrev,
1017 const gdb_byte *info_ptr);
1018
1019 /* Compute the name of this partial DIE. This memoizes the
1020 result, so it is safe to call multiple times. */
1021 const char *name (dwarf2_cu *cu);
1022
1023 /* Offset of this DIE. */
1024 const sect_offset sect_off;
1025
1026 /* DWARF-2 tag for this DIE. */
1027 const ENUM_BITFIELD(dwarf_tag) tag : 16;
1028
1029 /* Assorted flags describing the data found in this DIE. */
1030 const unsigned int has_children : 1;
1031
1032 unsigned int is_external : 1;
1033 unsigned int is_declaration : 1;
1034 unsigned int has_type : 1;
1035 unsigned int has_specification : 1;
1036 unsigned int has_pc_info : 1;
1037 unsigned int may_be_inlined : 1;
1038
1039 /* This DIE has been marked DW_AT_main_subprogram. */
1040 unsigned int main_subprogram : 1;
1041
1042 /* Flag set if the SCOPE field of this structure has been
1043 computed. */
1044 unsigned int scope_set : 1;
1045
1046 /* Flag set if the DIE has a byte_size attribute. */
1047 unsigned int has_byte_size : 1;
1048
1049 /* Flag set if the DIE has a DW_AT_const_value attribute. */
1050 unsigned int has_const_value : 1;
1051
1052 /* Flag set if any of the DIE's children are template arguments. */
1053 unsigned int has_template_arguments : 1;
1054
1055 /* Flag set if fixup has been called on this die. */
1056 unsigned int fixup_called : 1;
1057
1058 /* Flag set if DW_TAG_imported_unit uses DW_FORM_GNU_ref_alt. */
1059 unsigned int is_dwz : 1;
1060
1061 /* Flag set if spec_offset uses DW_FORM_GNU_ref_alt. */
1062 unsigned int spec_is_dwz : 1;
1063
1064 unsigned int canonical_name : 1;
1065
1066 /* The name of this DIE. Normally the value of DW_AT_name, but
1067 sometimes a default name for unnamed DIEs. */
1068 const char *raw_name = nullptr;
1069
1070 /* The linkage name, if present. */
1071 const char *linkage_name = nullptr;
1072
1073 /* The scope to prepend to our children. This is generally
1074 allocated on the comp_unit_obstack, so will disappear
1075 when this compilation unit leaves the cache. */
1076 const char *scope = nullptr;
1077
1078 /* Some data associated with the partial DIE. The tag determines
1079 which field is live. */
1080 union
1081 {
1082 /* The location description associated with this DIE, if any. */
1083 struct dwarf_block *locdesc;
1084 /* The offset of an import, for DW_TAG_imported_unit. */
1085 sect_offset sect_off;
1086 } d {};
1087
1088 /* If HAS_PC_INFO, the PC range associated with this DIE. */
1089 CORE_ADDR lowpc = 0;
1090 CORE_ADDR highpc = 0;
1091
1092 /* Pointer into the info_buffer (or types_buffer) pointing at the target of
1093 DW_AT_sibling, if any. */
1094 /* NOTE: This member isn't strictly necessary, partial_die_info::read
1095 could return DW_AT_sibling values to its caller load_partial_dies. */
1096 const gdb_byte *sibling = nullptr;
1097
1098 /* If HAS_SPECIFICATION, the offset of the DIE referred to by
1099 DW_AT_specification (or DW_AT_abstract_origin or
1100 DW_AT_extension). */
1101 sect_offset spec_offset {};
1102
1103 /* Pointers to this DIE's parent, first child, and next sibling,
1104 if any. */
1105 struct partial_die_info *die_parent = nullptr;
1106 struct partial_die_info *die_child = nullptr;
1107 struct partial_die_info *die_sibling = nullptr;
1108
1109 friend struct partial_die_info *
1110 dwarf2_cu::find_partial_die (sect_offset sect_off);
1111
1112 private:
1113 /* Only need to do look up in dwarf2_cu::find_partial_die. */
1114 partial_die_info (sect_offset sect_off)
1115 : partial_die_info (sect_off, DW_TAG_padding, 0)
1116 {
1117 }
1118
1119 partial_die_info (sect_offset sect_off_, enum dwarf_tag tag_,
1120 int has_children_)
1121 : sect_off (sect_off_), tag (tag_), has_children (has_children_)
1122 {
1123 is_external = 0;
1124 is_declaration = 0;
1125 has_type = 0;
1126 has_specification = 0;
1127 has_pc_info = 0;
1128 may_be_inlined = 0;
1129 main_subprogram = 0;
1130 scope_set = 0;
1131 has_byte_size = 0;
1132 has_const_value = 0;
1133 has_template_arguments = 0;
1134 fixup_called = 0;
1135 is_dwz = 0;
1136 spec_is_dwz = 0;
1137 canonical_name = 0;
1138 }
1139 };
1140
1141 /* FIXME: We might want to set this from BFD via bfd_arch_bits_per_byte,
1142 but this would require a corresponding change in unpack_field_as_long
1143 and friends. */
1144 static int bits_per_byte = 8;
1145
1146 struct variant_part_builder;
1147
1148 /* When reading a variant, we track a bit more information about the
1149 field, and store it in an object of this type. */
1150
1151 struct variant_field
1152 {
1153 int first_field = -1;
1154 int last_field = -1;
1155
1156 /* A variant can contain other variant parts. */
1157 std::vector<variant_part_builder> variant_parts;
1158
1159 /* If we see a DW_TAG_variant, then this will be set if this is the
1160 default branch. */
1161 bool default_branch = false;
1162 /* If we see a DW_AT_discr_value, then this will be the discriminant
1163 value. */
1164 ULONGEST discriminant_value = 0;
1165 /* If we see a DW_AT_discr_list, then this is a pointer to the list
1166 data. */
1167 struct dwarf_block *discr_list_data = nullptr;
1168 };
1169
1170 /* This represents a DW_TAG_variant_part. */
1171
1172 struct variant_part_builder
1173 {
1174 /* The offset of the discriminant field. */
1175 sect_offset discriminant_offset {};
1176
1177 /* Variants that are direct children of this variant part. */
1178 std::vector<variant_field> variants;
1179
1180 /* True if we're currently reading a variant. */
1181 bool processing_variant = false;
1182 };
1183
1184 struct nextfield
1185 {
1186 int accessibility = 0;
1187 int virtuality = 0;
1188 /* Variant parts need to find the discriminant, which is a DIE
1189 reference. We track the section offset of each field to make
1190 this link. */
1191 sect_offset offset;
1192 struct field field {};
1193 };
1194
1195 struct fnfieldlist
1196 {
1197 const char *name = nullptr;
1198 std::vector<struct fn_field> fnfields;
1199 };
1200
1201 /* The routines that read and process dies for a C struct or C++ class
1202 pass lists of data member fields and lists of member function fields
1203 in an instance of a field_info structure, as defined below. */
1204 struct field_info
1205 {
1206 /* List of data member and baseclasses fields. */
1207 std::vector<struct nextfield> fields;
1208 std::vector<struct nextfield> baseclasses;
1209
1210 /* Set if the accessibility of one of the fields is not public. */
1211 bool non_public_fields = false;
1212
1213 /* Member function fieldlist array, contains name of possibly overloaded
1214 member function, number of overloaded member functions and a pointer
1215 to the head of the member function field chain. */
1216 std::vector<struct fnfieldlist> fnfieldlists;
1217
1218 /* typedefs defined inside this class. TYPEDEF_FIELD_LIST contains head of
1219 a NULL terminated list of TYPEDEF_FIELD_LIST_COUNT elements. */
1220 std::vector<struct decl_field> typedef_field_list;
1221
1222 /* Nested types defined by this class and the number of elements in this
1223 list. */
1224 std::vector<struct decl_field> nested_types_list;
1225
1226 /* If non-null, this is the variant part we are currently
1227 reading. */
1228 variant_part_builder *current_variant_part = nullptr;
1229 /* This holds all the top-level variant parts attached to the type
1230 we're reading. */
1231 std::vector<variant_part_builder> variant_parts;
1232
1233 /* Return the total number of fields (including baseclasses). */
1234 int nfields () const
1235 {
1236 return fields.size () + baseclasses.size ();
1237 }
1238 };
1239
1240 /* Loaded secondary compilation units are kept in memory until they
1241 have not been referenced for the processing of this many
1242 compilation units. Set this to zero to disable caching. Cache
1243 sizes of up to at least twenty will improve startup time for
1244 typical inter-CU-reference binaries, at an obvious memory cost. */
1245 static int dwarf_max_cache_age = 5;
1246 static void
1247 show_dwarf_max_cache_age (struct ui_file *file, int from_tty,
1248 struct cmd_list_element *c, const char *value)
1249 {
1250 fprintf_filtered (file, _("The upper bound on the age of cached "
1251 "DWARF compilation units is %s.\n"),
1252 value);
1253 }
1254 \f
1255 /* local function prototypes */
1256
1257 static void dwarf2_find_base_address (struct die_info *die,
1258 struct dwarf2_cu *cu);
1259
1260 static dwarf2_psymtab *create_partial_symtab
1261 (dwarf2_per_cu_data *per_cu, dwarf2_per_objfile *per_objfile,
1262 const char *name);
1263
1264 static void build_type_psymtabs_reader (const struct die_reader_specs *reader,
1265 const gdb_byte *info_ptr,
1266 struct die_info *type_unit_die);
1267
1268 static void dwarf2_build_psymtabs_hard (dwarf2_per_objfile *per_objfile);
1269
1270 static void scan_partial_symbols (struct partial_die_info *,
1271 CORE_ADDR *, CORE_ADDR *,
1272 int, struct dwarf2_cu *);
1273
1274 static void add_partial_symbol (struct partial_die_info *,
1275 struct dwarf2_cu *);
1276
1277 static void add_partial_namespace (struct partial_die_info *pdi,
1278 CORE_ADDR *lowpc, CORE_ADDR *highpc,
1279 int set_addrmap, struct dwarf2_cu *cu);
1280
1281 static void add_partial_module (struct partial_die_info *pdi, CORE_ADDR *lowpc,
1282 CORE_ADDR *highpc, int set_addrmap,
1283 struct dwarf2_cu *cu);
1284
1285 static void add_partial_enumeration (struct partial_die_info *enum_pdi,
1286 struct dwarf2_cu *cu);
1287
1288 static void add_partial_subprogram (struct partial_die_info *pdi,
1289 CORE_ADDR *lowpc, CORE_ADDR *highpc,
1290 int need_pc, struct dwarf2_cu *cu);
1291
1292 static unsigned int peek_abbrev_code (bfd *, const gdb_byte *);
1293
1294 static struct partial_die_info *load_partial_dies
1295 (const struct die_reader_specs *, const gdb_byte *, int);
1296
1297 /* A pair of partial_die_info and compilation unit. */
1298 struct cu_partial_die_info
1299 {
1300 /* The compilation unit of the partial_die_info. */
1301 struct dwarf2_cu *cu;
1302 /* A partial_die_info. */
1303 struct partial_die_info *pdi;
1304
1305 cu_partial_die_info (struct dwarf2_cu *cu, struct partial_die_info *pdi)
1306 : cu (cu),
1307 pdi (pdi)
1308 { /* Nothing. */ }
1309
1310 private:
1311 cu_partial_die_info () = delete;
1312 };
1313
1314 static const struct cu_partial_die_info find_partial_die (sect_offset, int,
1315 struct dwarf2_cu *);
1316
1317 static const gdb_byte *read_attribute (const struct die_reader_specs *,
1318 struct attribute *, struct attr_abbrev *,
1319 const gdb_byte *);
1320
1321 static void read_attribute_reprocess (const struct die_reader_specs *reader,
1322 struct attribute *attr, dwarf_tag tag);
1323
1324 static CORE_ADDR read_addr_index (struct dwarf2_cu *cu, unsigned int addr_index);
1325
1326 static sect_offset read_abbrev_offset (dwarf2_per_objfile *per_objfile,
1327 dwarf2_section_info *, sect_offset);
1328
1329 static const char *read_indirect_string
1330 (dwarf2_per_objfile *per_objfile, bfd *, const gdb_byte *,
1331 const struct comp_unit_head *, unsigned int *);
1332
1333 static const char *read_indirect_string_at_offset
1334 (dwarf2_per_objfile *per_objfile, LONGEST str_offset);
1335
1336 static CORE_ADDR read_addr_index_from_leb128 (struct dwarf2_cu *,
1337 const gdb_byte *,
1338 unsigned int *);
1339
1340 static const char *read_dwo_str_index (const struct die_reader_specs *reader,
1341 ULONGEST str_index);
1342
1343 static const char *read_stub_str_index (struct dwarf2_cu *cu,
1344 ULONGEST str_index);
1345
1346 static void set_cu_language (unsigned int, struct dwarf2_cu *);
1347
1348 static struct attribute *dwarf2_attr (struct die_info *, unsigned int,
1349 struct dwarf2_cu *);
1350
1351 static const char *dwarf2_string_attr (struct die_info *die, unsigned int name,
1352 struct dwarf2_cu *cu);
1353
1354 static const char *dwarf2_dwo_name (struct die_info *die, struct dwarf2_cu *cu);
1355
1356 static int dwarf2_flag_true_p (struct die_info *die, unsigned name,
1357 struct dwarf2_cu *cu);
1358
1359 static int die_is_declaration (struct die_info *, struct dwarf2_cu *cu);
1360
1361 static struct die_info *die_specification (struct die_info *die,
1362 struct dwarf2_cu **);
1363
1364 static line_header_up dwarf_decode_line_header (sect_offset sect_off,
1365 struct dwarf2_cu *cu);
1366
1367 static void dwarf_decode_lines (struct line_header *, const char *,
1368 struct dwarf2_cu *, dwarf2_psymtab *,
1369 CORE_ADDR, int decode_mapping);
1370
1371 static void dwarf2_start_subfile (struct dwarf2_cu *, const char *,
1372 const char *);
1373
1374 static struct symbol *new_symbol (struct die_info *, struct type *,
1375 struct dwarf2_cu *, struct symbol * = NULL);
1376
1377 static void dwarf2_const_value (const struct attribute *, struct symbol *,
1378 struct dwarf2_cu *);
1379
1380 static void dwarf2_const_value_attr (const struct attribute *attr,
1381 struct type *type,
1382 const char *name,
1383 struct obstack *obstack,
1384 struct dwarf2_cu *cu, LONGEST *value,
1385 const gdb_byte **bytes,
1386 struct dwarf2_locexpr_baton **baton);
1387
1388 static struct type *read_subrange_index_type (struct die_info *die,
1389 struct dwarf2_cu *cu);
1390
1391 static struct type *die_type (struct die_info *, struct dwarf2_cu *);
1392
1393 static int need_gnat_info (struct dwarf2_cu *);
1394
1395 static struct type *die_descriptive_type (struct die_info *,
1396 struct dwarf2_cu *);
1397
1398 static void set_descriptive_type (struct type *, struct die_info *,
1399 struct dwarf2_cu *);
1400
1401 static struct type *die_containing_type (struct die_info *,
1402 struct dwarf2_cu *);
1403
1404 static struct type *lookup_die_type (struct die_info *, const struct attribute *,
1405 struct dwarf2_cu *);
1406
1407 static struct type *read_type_die (struct die_info *, struct dwarf2_cu *);
1408
1409 static struct type *read_type_die_1 (struct die_info *, struct dwarf2_cu *);
1410
1411 static const char *determine_prefix (struct die_info *die, struct dwarf2_cu *);
1412
1413 static char *typename_concat (struct obstack *obs, const char *prefix,
1414 const char *suffix, int physname,
1415 struct dwarf2_cu *cu);
1416
1417 static void read_file_scope (struct die_info *, struct dwarf2_cu *);
1418
1419 static void read_type_unit_scope (struct die_info *, struct dwarf2_cu *);
1420
1421 static void read_func_scope (struct die_info *, struct dwarf2_cu *);
1422
1423 static void read_lexical_block_scope (struct die_info *, struct dwarf2_cu *);
1424
1425 static void read_call_site_scope (struct die_info *die, struct dwarf2_cu *cu);
1426
1427 static void read_variable (struct die_info *die, struct dwarf2_cu *cu);
1428
1429 /* Return the .debug_loclists section to use for cu. */
1430 static struct dwarf2_section_info *cu_debug_loc_section (struct dwarf2_cu *cu);
1431
1432 /* Return the .debug_rnglists section to use for cu. */
1433 static struct dwarf2_section_info *cu_debug_rnglists_section
1434 (struct dwarf2_cu *cu, dwarf_tag tag);
1435
1436 /* How dwarf2_get_pc_bounds constructed its *LOWPC and *HIGHPC return
1437 values. Keep the items ordered with increasing constraints compliance. */
1438 enum pc_bounds_kind
1439 {
1440 /* No attribute DW_AT_low_pc, DW_AT_high_pc or DW_AT_ranges was found. */
1441 PC_BOUNDS_NOT_PRESENT,
1442
1443 /* Some of the attributes DW_AT_low_pc, DW_AT_high_pc or DW_AT_ranges
1444 were present but they do not form a valid range of PC addresses. */
1445 PC_BOUNDS_INVALID,
1446
1447 /* Discontiguous range was found - that is DW_AT_ranges was found. */
1448 PC_BOUNDS_RANGES,
1449
1450 /* Contiguous range was found - DW_AT_low_pc and DW_AT_high_pc were found. */
1451 PC_BOUNDS_HIGH_LOW,
1452 };
1453
1454 static enum pc_bounds_kind dwarf2_get_pc_bounds (struct die_info *,
1455 CORE_ADDR *, CORE_ADDR *,
1456 struct dwarf2_cu *,
1457 dwarf2_psymtab *);
1458
1459 static void get_scope_pc_bounds (struct die_info *,
1460 CORE_ADDR *, CORE_ADDR *,
1461 struct dwarf2_cu *);
1462
1463 static void dwarf2_record_block_ranges (struct die_info *, struct block *,
1464 CORE_ADDR, struct dwarf2_cu *);
1465
1466 static void dwarf2_add_field (struct field_info *, struct die_info *,
1467 struct dwarf2_cu *);
1468
1469 static void dwarf2_attach_fields_to_type (struct field_info *,
1470 struct type *, struct dwarf2_cu *);
1471
1472 static void dwarf2_add_member_fn (struct field_info *,
1473 struct die_info *, struct type *,
1474 struct dwarf2_cu *);
1475
1476 static void dwarf2_attach_fn_fields_to_type (struct field_info *,
1477 struct type *,
1478 struct dwarf2_cu *);
1479
1480 static void process_structure_scope (struct die_info *, struct dwarf2_cu *);
1481
1482 static void read_common_block (struct die_info *, struct dwarf2_cu *);
1483
1484 static void read_namespace (struct die_info *die, struct dwarf2_cu *);
1485
1486 static void read_module (struct die_info *die, struct dwarf2_cu *cu);
1487
1488 static struct using_direct **using_directives (struct dwarf2_cu *cu);
1489
1490 static void read_import_statement (struct die_info *die, struct dwarf2_cu *);
1491
1492 static int read_namespace_alias (struct die_info *die, struct dwarf2_cu *cu);
1493
1494 static struct type *read_module_type (struct die_info *die,
1495 struct dwarf2_cu *cu);
1496
1497 static const char *namespace_name (struct die_info *die,
1498 int *is_anonymous, struct dwarf2_cu *);
1499
1500 static void process_enumeration_scope (struct die_info *, struct dwarf2_cu *);
1501
1502 static CORE_ADDR decode_locdesc (struct dwarf_block *, struct dwarf2_cu *,
1503 bool * = nullptr);
1504
1505 static enum dwarf_array_dim_ordering read_array_order (struct die_info *,
1506 struct dwarf2_cu *);
1507
1508 static struct die_info *read_die_and_siblings_1
1509 (const struct die_reader_specs *, const gdb_byte *, const gdb_byte **,
1510 struct die_info *);
1511
1512 static struct die_info *read_die_and_siblings (const struct die_reader_specs *,
1513 const gdb_byte *info_ptr,
1514 const gdb_byte **new_info_ptr,
1515 struct die_info *parent);
1516
1517 static const gdb_byte *read_full_die_1 (const struct die_reader_specs *,
1518 struct die_info **, const gdb_byte *,
1519 int);
1520
1521 static const gdb_byte *read_full_die (const struct die_reader_specs *,
1522 struct die_info **, const gdb_byte *);
1523
1524 static void process_die (struct die_info *, struct dwarf2_cu *);
1525
1526 static const char *dwarf2_canonicalize_name (const char *, struct dwarf2_cu *,
1527 struct objfile *);
1528
1529 static const char *dwarf2_name (struct die_info *die, struct dwarf2_cu *);
1530
1531 static const char *dwarf2_full_name (const char *name,
1532 struct die_info *die,
1533 struct dwarf2_cu *cu);
1534
1535 static const char *dwarf2_physname (const char *name, struct die_info *die,
1536 struct dwarf2_cu *cu);
1537
1538 static struct die_info *dwarf2_extension (struct die_info *die,
1539 struct dwarf2_cu **);
1540
1541 static void dump_die_shallow (struct ui_file *, int indent, struct die_info *);
1542
1543 static void dump_die_for_error (struct die_info *);
1544
1545 static void dump_die_1 (struct ui_file *, int level, int max_level,
1546 struct die_info *);
1547
1548 /*static*/ void dump_die (struct die_info *, int max_level);
1549
1550 static void store_in_ref_table (struct die_info *,
1551 struct dwarf2_cu *);
1552
1553 static struct die_info *follow_die_ref_or_sig (struct die_info *,
1554 const struct attribute *,
1555 struct dwarf2_cu **);
1556
1557 static struct die_info *follow_die_ref (struct die_info *,
1558 const struct attribute *,
1559 struct dwarf2_cu **);
1560
1561 static struct die_info *follow_die_sig (struct die_info *,
1562 const struct attribute *,
1563 struct dwarf2_cu **);
1564
1565 static struct type *get_signatured_type (struct die_info *, ULONGEST,
1566 struct dwarf2_cu *);
1567
1568 static struct type *get_DW_AT_signature_type (struct die_info *,
1569 const struct attribute *,
1570 struct dwarf2_cu *);
1571
1572 static void load_full_type_unit (dwarf2_per_cu_data *per_cu,
1573 dwarf2_per_objfile *per_objfile);
1574
1575 static void read_signatured_type (signatured_type *sig_type,
1576 dwarf2_per_objfile *per_objfile);
1577
1578 static int attr_to_dynamic_prop (const struct attribute *attr,
1579 struct die_info *die, struct dwarf2_cu *cu,
1580 struct dynamic_prop *prop, struct type *type);
1581
1582 /* memory allocation interface */
1583
1584 static struct dwarf_block *dwarf_alloc_block (struct dwarf2_cu *);
1585
1586 static struct die_info *dwarf_alloc_die (struct dwarf2_cu *, int);
1587
1588 static void dwarf_decode_macros (struct dwarf2_cu *, unsigned int, int);
1589
1590 static void fill_in_loclist_baton (struct dwarf2_cu *cu,
1591 struct dwarf2_loclist_baton *baton,
1592 const struct attribute *attr);
1593
1594 static void dwarf2_symbol_mark_computed (const struct attribute *attr,
1595 struct symbol *sym,
1596 struct dwarf2_cu *cu,
1597 int is_block);
1598
1599 static const gdb_byte *skip_one_die (const struct die_reader_specs *reader,
1600 const gdb_byte *info_ptr,
1601 struct abbrev_info *abbrev);
1602
1603 static hashval_t partial_die_hash (const void *item);
1604
1605 static int partial_die_eq (const void *item_lhs, const void *item_rhs);
1606
1607 static struct dwarf2_per_cu_data *dwarf2_find_containing_comp_unit
1608 (sect_offset sect_off, unsigned int offset_in_dwz,
1609 dwarf2_per_objfile *per_objfile);
1610
1611 static void prepare_one_comp_unit (struct dwarf2_cu *cu,
1612 struct die_info *comp_unit_die,
1613 enum language pretend_language);
1614
1615 static struct type *set_die_type (struct die_info *, struct type *,
1616 struct dwarf2_cu *, bool = false);
1617
1618 static void create_all_comp_units (dwarf2_per_objfile *per_objfile);
1619
1620 static int create_all_type_units (dwarf2_per_objfile *per_objfile);
1621
1622 static void load_full_comp_unit (dwarf2_per_cu_data *per_cu,
1623 dwarf2_per_objfile *per_objfile,
1624 dwarf2_cu *existing_cu,
1625 bool skip_partial,
1626 enum language pretend_language);
1627
1628 static void process_full_comp_unit (dwarf2_cu *cu,
1629 enum language pretend_language);
1630
1631 static void process_full_type_unit (dwarf2_cu *cu,
1632 enum language pretend_language);
1633
1634 static void dwarf2_add_dependence (struct dwarf2_cu *,
1635 struct dwarf2_per_cu_data *);
1636
1637 static void dwarf2_mark (struct dwarf2_cu *);
1638
1639 static struct type *get_die_type_at_offset (sect_offset,
1640 dwarf2_per_cu_data *per_cu,
1641 dwarf2_per_objfile *per_objfile);
1642
1643 static struct type *get_die_type (struct die_info *die, struct dwarf2_cu *cu);
1644
1645 static void queue_comp_unit (dwarf2_per_cu_data *per_cu,
1646 dwarf2_per_objfile *per_objfile,
1647 enum language pretend_language);
1648
1649 static void process_queue (dwarf2_per_objfile *per_objfile);
1650
1651 /* Class, the destructor of which frees all allocated queue entries. This
1652 will only have work to do if an error was thrown while processing the
1653 dwarf. If no error was thrown then the queue entries should have all
1654 been processed, and freed, as we went along. */
1655
1656 class dwarf2_queue_guard
1657 {
1658 public:
1659 explicit dwarf2_queue_guard (dwarf2_per_objfile *per_objfile)
1660 : m_per_objfile (per_objfile)
1661 {
1662 }
1663
1664 /* Free any entries remaining on the queue. There should only be
1665 entries left if we hit an error while processing the dwarf. */
1666 ~dwarf2_queue_guard ()
1667 {
1668 /* Ensure that no memory is allocated by the queue. */
1669 std::queue<dwarf2_queue_item> empty;
1670 std::swap (m_per_objfile->per_bfd->queue, empty);
1671 }
1672
1673 DISABLE_COPY_AND_ASSIGN (dwarf2_queue_guard);
1674
1675 private:
1676 dwarf2_per_objfile *m_per_objfile;
1677 };
1678
1679 dwarf2_queue_item::~dwarf2_queue_item ()
1680 {
1681 /* Anything still marked queued is likely to be in an
1682 inconsistent state, so discard it. */
1683 if (per_cu->queued)
1684 {
1685 per_objfile->remove_cu (per_cu);
1686 per_cu->queued = 0;
1687 }
1688 }
1689
1690 /* The return type of find_file_and_directory. Note, the enclosed
1691 string pointers are only valid while this object is valid. */
1692
1693 struct file_and_directory
1694 {
1695 /* The filename. This is never NULL. */
1696 const char *name;
1697
1698 /* The compilation directory. NULL if not known. If we needed to
1699 compute a new string, this points to COMP_DIR_STORAGE, otherwise,
1700 points directly to the DW_AT_comp_dir string attribute owned by
1701 the obstack that owns the DIE. */
1702 const char *comp_dir;
1703
1704 /* If we needed to build a new string for comp_dir, this is what
1705 owns the storage. */
1706 std::string comp_dir_storage;
1707 };
1708
1709 static file_and_directory find_file_and_directory (struct die_info *die,
1710 struct dwarf2_cu *cu);
1711
1712 static htab_up allocate_signatured_type_table ();
1713
1714 static htab_up allocate_dwo_unit_table ();
1715
1716 static struct dwo_unit *lookup_dwo_unit_in_dwp
1717 (dwarf2_per_objfile *per_objfile, struct dwp_file *dwp_file,
1718 const char *comp_dir, ULONGEST signature, int is_debug_types);
1719
1720 static struct dwp_file *get_dwp_file (dwarf2_per_objfile *per_objfile);
1721
1722 static struct dwo_unit *lookup_dwo_comp_unit
1723 (dwarf2_cu *cu, const char *dwo_name, const char *comp_dir,
1724 ULONGEST signature);
1725
1726 static struct dwo_unit *lookup_dwo_type_unit
1727 (dwarf2_cu *cu, const char *dwo_name, const char *comp_dir);
1728
1729 static void queue_and_load_all_dwo_tus (dwarf2_cu *cu);
1730
1731 /* A unique pointer to a dwo_file. */
1732
1733 typedef std::unique_ptr<struct dwo_file> dwo_file_up;
1734
1735 static void process_cu_includes (dwarf2_per_objfile *per_objfile);
1736
1737 static void check_producer (struct dwarf2_cu *cu);
1738
1739 static void free_line_header_voidp (void *arg);
1740 \f
1741 /* Various complaints about symbol reading that don't abort the process. */
1742
1743 static void
1744 dwarf2_debug_line_missing_file_complaint (void)
1745 {
1746 complaint (_(".debug_line section has line data without a file"));
1747 }
1748
1749 static void
1750 dwarf2_debug_line_missing_end_sequence_complaint (void)
1751 {
1752 complaint (_(".debug_line section has line "
1753 "program sequence without an end"));
1754 }
1755
1756 static void
1757 dwarf2_complex_location_expr_complaint (void)
1758 {
1759 complaint (_("location expression too complex"));
1760 }
1761
1762 static void
1763 dwarf2_const_value_length_mismatch_complaint (const char *arg1, int arg2,
1764 int arg3)
1765 {
1766 complaint (_("const value length mismatch for '%s', got %d, expected %d"),
1767 arg1, arg2, arg3);
1768 }
1769
1770 static void
1771 dwarf2_invalid_attrib_class_complaint (const char *arg1, const char *arg2)
1772 {
1773 complaint (_("invalid attribute class or form for '%s' in '%s'"),
1774 arg1, arg2);
1775 }
1776
1777 /* Hash function for line_header_hash. */
1778
1779 static hashval_t
1780 line_header_hash (const struct line_header *ofs)
1781 {
1782 return to_underlying (ofs->sect_off) ^ ofs->offset_in_dwz;
1783 }
1784
1785 /* Hash function for htab_create_alloc_ex for line_header_hash. */
1786
1787 static hashval_t
1788 line_header_hash_voidp (const void *item)
1789 {
1790 const struct line_header *ofs = (const struct line_header *) item;
1791
1792 return line_header_hash (ofs);
1793 }
1794
1795 /* Equality function for line_header_hash. */
1796
1797 static int
1798 line_header_eq_voidp (const void *item_lhs, const void *item_rhs)
1799 {
1800 const struct line_header *ofs_lhs = (const struct line_header *) item_lhs;
1801 const struct line_header *ofs_rhs = (const struct line_header *) item_rhs;
1802
1803 return (ofs_lhs->sect_off == ofs_rhs->sect_off
1804 && ofs_lhs->offset_in_dwz == ofs_rhs->offset_in_dwz);
1805 }
1806
1807 \f
1808
1809 /* See declaration. */
1810
1811 dwarf2_per_bfd::dwarf2_per_bfd (bfd *obfd, const dwarf2_debug_sections *names,
1812 bool can_copy_)
1813 : obfd (obfd),
1814 can_copy (can_copy_)
1815 {
1816 if (names == NULL)
1817 names = &dwarf2_elf_names;
1818
1819 for (asection *sec = obfd->sections; sec != NULL; sec = sec->next)
1820 locate_sections (obfd, sec, *names);
1821 }
1822
1823 dwarf2_per_bfd::~dwarf2_per_bfd ()
1824 {
1825 for (dwarf2_per_cu_data *per_cu : all_comp_units)
1826 per_cu->imported_symtabs_free ();
1827
1828 for (signatured_type *sig_type : all_type_units)
1829 sig_type->per_cu.imported_symtabs_free ();
1830
1831 /* Everything else should be on this->obstack. */
1832 }
1833
1834 /* See read.h. */
1835
1836 void
1837 dwarf2_per_objfile::remove_all_cus ()
1838 {
1839 for (auto pair : m_dwarf2_cus)
1840 delete pair.second;
1841
1842 m_dwarf2_cus.clear ();
1843 }
1844
1845 /* A helper class that calls free_cached_comp_units on
1846 destruction. */
1847
1848 class free_cached_comp_units
1849 {
1850 public:
1851
1852 explicit free_cached_comp_units (dwarf2_per_objfile *per_objfile)
1853 : m_per_objfile (per_objfile)
1854 {
1855 }
1856
1857 ~free_cached_comp_units ()
1858 {
1859 m_per_objfile->remove_all_cus ();
1860 }
1861
1862 DISABLE_COPY_AND_ASSIGN (free_cached_comp_units);
1863
1864 private:
1865
1866 dwarf2_per_objfile *m_per_objfile;
1867 };
1868
1869 /* See read.h. */
1870
1871 bool
1872 dwarf2_per_objfile::symtab_set_p (const dwarf2_per_cu_data *per_cu) const
1873 {
1874 gdb_assert (per_cu->index < this->m_symtabs.size ());
1875
1876 return this->m_symtabs[per_cu->index] != nullptr;
1877 }
1878
1879 /* See read.h. */
1880
1881 compunit_symtab *
1882 dwarf2_per_objfile::get_symtab (const dwarf2_per_cu_data *per_cu) const
1883 {
1884 gdb_assert (per_cu->index < this->m_symtabs.size ());
1885
1886 return this->m_symtabs[per_cu->index];
1887 }
1888
1889 /* See read.h. */
1890
1891 void
1892 dwarf2_per_objfile::set_symtab (const dwarf2_per_cu_data *per_cu,
1893 compunit_symtab *symtab)
1894 {
1895 gdb_assert (per_cu->index < this->m_symtabs.size ());
1896 gdb_assert (this->m_symtabs[per_cu->index] == nullptr);
1897
1898 this->m_symtabs[per_cu->index] = symtab;
1899 }
1900
1901 /* Try to locate the sections we need for DWARF 2 debugging
1902 information and return true if we have enough to do something.
1903 NAMES points to the dwarf2 section names, or is NULL if the standard
1904 ELF names are used. CAN_COPY is true for formats where symbol
1905 interposition is possible and so symbol values must follow copy
1906 relocation rules. */
1907
1908 int
1909 dwarf2_has_info (struct objfile *objfile,
1910 const struct dwarf2_debug_sections *names,
1911 bool can_copy)
1912 {
1913 if (objfile->flags & OBJF_READNEVER)
1914 return 0;
1915
1916 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
1917
1918 if (per_objfile == NULL)
1919 {
1920 dwarf2_per_bfd *per_bfd;
1921
1922 /* We can share a "dwarf2_per_bfd" with other objfiles if the BFD
1923 doesn't require relocations and if there aren't partial symbols
1924 from some other reader. */
1925 if (!objfile_has_partial_symbols (objfile)
1926 && !gdb_bfd_requires_relocations (objfile->obfd))
1927 {
1928 /* See if one has been created for this BFD yet. */
1929 per_bfd = dwarf2_per_bfd_bfd_data_key.get (objfile->obfd);
1930
1931 if (per_bfd == nullptr)
1932 {
1933 /* No, create it now. */
1934 per_bfd = new dwarf2_per_bfd (objfile->obfd, names, can_copy);
1935 dwarf2_per_bfd_bfd_data_key.set (objfile->obfd, per_bfd);
1936 }
1937 }
1938 else
1939 {
1940 /* No sharing possible, create one specifically for this objfile. */
1941 per_bfd = new dwarf2_per_bfd (objfile->obfd, names, can_copy);
1942 dwarf2_per_bfd_objfile_data_key.set (objfile, per_bfd);
1943 }
1944
1945 per_objfile = dwarf2_objfile_data_key.emplace (objfile, objfile, per_bfd);
1946 }
1947
1948 return (!per_objfile->per_bfd->info.is_virtual
1949 && per_objfile->per_bfd->info.s.section != NULL
1950 && !per_objfile->per_bfd->abbrev.is_virtual
1951 && per_objfile->per_bfd->abbrev.s.section != NULL);
1952 }
1953
1954 /* When loading sections, we look either for uncompressed section or for
1955 compressed section names. */
1956
1957 static int
1958 section_is_p (const char *section_name,
1959 const struct dwarf2_section_names *names)
1960 {
1961 if (names->normal != NULL
1962 && strcmp (section_name, names->normal) == 0)
1963 return 1;
1964 if (names->compressed != NULL
1965 && strcmp (section_name, names->compressed) == 0)
1966 return 1;
1967 return 0;
1968 }
1969
1970 /* See declaration. */
1971
1972 void
1973 dwarf2_per_bfd::locate_sections (bfd *abfd, asection *sectp,
1974 const dwarf2_debug_sections &names)
1975 {
1976 flagword aflag = bfd_section_flags (sectp);
1977
1978 if ((aflag & SEC_HAS_CONTENTS) == 0)
1979 {
1980 }
1981 else if (elf_section_data (sectp)->this_hdr.sh_size
1982 > bfd_get_file_size (abfd))
1983 {
1984 bfd_size_type size = elf_section_data (sectp)->this_hdr.sh_size;
1985 warning (_("Discarding section %s which has a section size (%s"
1986 ") larger than the file size [in module %s]"),
1987 bfd_section_name (sectp), phex_nz (size, sizeof (size)),
1988 bfd_get_filename (abfd));
1989 }
1990 else if (section_is_p (sectp->name, &names.info))
1991 {
1992 this->info.s.section = sectp;
1993 this->info.size = bfd_section_size (sectp);
1994 }
1995 else if (section_is_p (sectp->name, &names.abbrev))
1996 {
1997 this->abbrev.s.section = sectp;
1998 this->abbrev.size = bfd_section_size (sectp);
1999 }
2000 else if (section_is_p (sectp->name, &names.line))
2001 {
2002 this->line.s.section = sectp;
2003 this->line.size = bfd_section_size (sectp);
2004 }
2005 else if (section_is_p (sectp->name, &names.loc))
2006 {
2007 this->loc.s.section = sectp;
2008 this->loc.size = bfd_section_size (sectp);
2009 }
2010 else if (section_is_p (sectp->name, &names.loclists))
2011 {
2012 this->loclists.s.section = sectp;
2013 this->loclists.size = bfd_section_size (sectp);
2014 }
2015 else if (section_is_p (sectp->name, &names.macinfo))
2016 {
2017 this->macinfo.s.section = sectp;
2018 this->macinfo.size = bfd_section_size (sectp);
2019 }
2020 else if (section_is_p (sectp->name, &names.macro))
2021 {
2022 this->macro.s.section = sectp;
2023 this->macro.size = bfd_section_size (sectp);
2024 }
2025 else if (section_is_p (sectp->name, &names.str))
2026 {
2027 this->str.s.section = sectp;
2028 this->str.size = bfd_section_size (sectp);
2029 }
2030 else if (section_is_p (sectp->name, &names.str_offsets))
2031 {
2032 this->str_offsets.s.section = sectp;
2033 this->str_offsets.size = bfd_section_size (sectp);
2034 }
2035 else if (section_is_p (sectp->name, &names.line_str))
2036 {
2037 this->line_str.s.section = sectp;
2038 this->line_str.size = bfd_section_size (sectp);
2039 }
2040 else if (section_is_p (sectp->name, &names.addr))
2041 {
2042 this->addr.s.section = sectp;
2043 this->addr.size = bfd_section_size (sectp);
2044 }
2045 else if (section_is_p (sectp->name, &names.frame))
2046 {
2047 this->frame.s.section = sectp;
2048 this->frame.size = bfd_section_size (sectp);
2049 }
2050 else if (section_is_p (sectp->name, &names.eh_frame))
2051 {
2052 this->eh_frame.s.section = sectp;
2053 this->eh_frame.size = bfd_section_size (sectp);
2054 }
2055 else if (section_is_p (sectp->name, &names.ranges))
2056 {
2057 this->ranges.s.section = sectp;
2058 this->ranges.size = bfd_section_size (sectp);
2059 }
2060 else if (section_is_p (sectp->name, &names.rnglists))
2061 {
2062 this->rnglists.s.section = sectp;
2063 this->rnglists.size = bfd_section_size (sectp);
2064 }
2065 else if (section_is_p (sectp->name, &names.types))
2066 {
2067 struct dwarf2_section_info type_section;
2068
2069 memset (&type_section, 0, sizeof (type_section));
2070 type_section.s.section = sectp;
2071 type_section.size = bfd_section_size (sectp);
2072
2073 this->types.push_back (type_section);
2074 }
2075 else if (section_is_p (sectp->name, &names.gdb_index))
2076 {
2077 this->gdb_index.s.section = sectp;
2078 this->gdb_index.size = bfd_section_size (sectp);
2079 }
2080 else if (section_is_p (sectp->name, &names.debug_names))
2081 {
2082 this->debug_names.s.section = sectp;
2083 this->debug_names.size = bfd_section_size (sectp);
2084 }
2085 else if (section_is_p (sectp->name, &names.debug_aranges))
2086 {
2087 this->debug_aranges.s.section = sectp;
2088 this->debug_aranges.size = bfd_section_size (sectp);
2089 }
2090
2091 if ((bfd_section_flags (sectp) & (SEC_LOAD | SEC_ALLOC))
2092 && bfd_section_vma (sectp) == 0)
2093 this->has_section_at_zero = true;
2094 }
2095
2096 /* Fill in SECTP, BUFP and SIZEP with section info, given OBJFILE and
2097 SECTION_NAME. */
2098
2099 void
2100 dwarf2_get_section_info (struct objfile *objfile,
2101 enum dwarf2_section_enum sect,
2102 asection **sectp, const gdb_byte **bufp,
2103 bfd_size_type *sizep)
2104 {
2105 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
2106 struct dwarf2_section_info *info;
2107
2108 /* We may see an objfile without any DWARF, in which case we just
2109 return nothing. */
2110 if (per_objfile == NULL)
2111 {
2112 *sectp = NULL;
2113 *bufp = NULL;
2114 *sizep = 0;
2115 return;
2116 }
2117 switch (sect)
2118 {
2119 case DWARF2_DEBUG_FRAME:
2120 info = &per_objfile->per_bfd->frame;
2121 break;
2122 case DWARF2_EH_FRAME:
2123 info = &per_objfile->per_bfd->eh_frame;
2124 break;
2125 default:
2126 gdb_assert_not_reached ("unexpected section");
2127 }
2128
2129 info->read (objfile);
2130
2131 *sectp = info->get_bfd_section ();
2132 *bufp = info->buffer;
2133 *sizep = info->size;
2134 }
2135
2136 /* A helper function to find the sections for a .dwz file. */
2137
2138 static void
2139 locate_dwz_sections (bfd *abfd, asection *sectp, dwz_file *dwz_file)
2140 {
2141 /* Note that we only support the standard ELF names, because .dwz
2142 is ELF-only (at the time of writing). */
2143 if (section_is_p (sectp->name, &dwarf2_elf_names.abbrev))
2144 {
2145 dwz_file->abbrev.s.section = sectp;
2146 dwz_file->abbrev.size = bfd_section_size (sectp);
2147 }
2148 else if (section_is_p (sectp->name, &dwarf2_elf_names.info))
2149 {
2150 dwz_file->info.s.section = sectp;
2151 dwz_file->info.size = bfd_section_size (sectp);
2152 }
2153 else if (section_is_p (sectp->name, &dwarf2_elf_names.str))
2154 {
2155 dwz_file->str.s.section = sectp;
2156 dwz_file->str.size = bfd_section_size (sectp);
2157 }
2158 else if (section_is_p (sectp->name, &dwarf2_elf_names.line))
2159 {
2160 dwz_file->line.s.section = sectp;
2161 dwz_file->line.size = bfd_section_size (sectp);
2162 }
2163 else if (section_is_p (sectp->name, &dwarf2_elf_names.macro))
2164 {
2165 dwz_file->macro.s.section = sectp;
2166 dwz_file->macro.size = bfd_section_size (sectp);
2167 }
2168 else if (section_is_p (sectp->name, &dwarf2_elf_names.gdb_index))
2169 {
2170 dwz_file->gdb_index.s.section = sectp;
2171 dwz_file->gdb_index.size = bfd_section_size (sectp);
2172 }
2173 else if (section_is_p (sectp->name, &dwarf2_elf_names.debug_names))
2174 {
2175 dwz_file->debug_names.s.section = sectp;
2176 dwz_file->debug_names.size = bfd_section_size (sectp);
2177 }
2178 }
2179
2180 /* Attempt to find a .dwz file (whose full path is represented by
2181 FILENAME) in all of the specified debug file directories provided.
2182
2183 Return the equivalent gdb_bfd_ref_ptr of the .dwz file found, or
2184 nullptr if it could not find anything. */
2185
2186 static gdb_bfd_ref_ptr
2187 dwz_search_other_debugdirs (std::string &filename, bfd_byte *buildid,
2188 size_t buildid_len)
2189 {
2190 /* Let's assume that the path represented by FILENAME has the
2191 "/.dwz/" subpath in it. This is what (most) GNU/Linux
2192 distributions do, anyway. */
2193 size_t dwz_pos = filename.find ("/.dwz/");
2194
2195 if (dwz_pos == std::string::npos)
2196 return nullptr;
2197
2198 /* This is an obvious assertion, but it's here more to educate
2199 future readers of this code that FILENAME at DWZ_POS *must*
2200 contain a directory separator. */
2201 gdb_assert (IS_DIR_SEPARATOR (filename[dwz_pos]));
2202
2203 gdb_bfd_ref_ptr dwz_bfd;
2204 std::vector<gdb::unique_xmalloc_ptr<char>> debugdir_vec
2205 = dirnames_to_char_ptr_vec (debug_file_directory);
2206
2207 for (const gdb::unique_xmalloc_ptr<char> &debugdir : debugdir_vec)
2208 {
2209 /* The idea is to iterate over the
2210 debug file directories provided by the user and
2211 replace the hard-coded path in the "filename" by each
2212 debug-file-directory.
2213
2214 For example, suppose that filename is:
2215
2216 /usr/lib/debug/.dwz/foo.dwz
2217
2218 And suppose that we have "$HOME/bar" as the
2219 debug-file-directory. We would then adjust filename
2220 to look like:
2221
2222 $HOME/bar/.dwz/foo.dwz
2223
2224 which would hopefully allow us to find the alt debug
2225 file. */
2226 std::string ddir = debugdir.get ();
2227
2228 if (ddir.empty ())
2229 continue;
2230
2231 /* Make sure the current debug-file-directory ends with a
2232 directory separator. This is needed because, if FILENAME
2233 contains something like "/usr/lib/abcde/.dwz/foo.dwz" and
2234 DDIR is "/usr/lib/abc", then could wrongfully skip it
2235 below. */
2236 if (!IS_DIR_SEPARATOR (ddir.back ()))
2237 ddir += SLASH_STRING;
2238
2239 /* Check whether the beginning of FILENAME is DDIR. If it is,
2240 then we are dealing with a file which we already attempted to
2241 open before, so we just skip it and continue processing the
2242 remaining debug file directories. */
2243 if (filename.size () > ddir.size ()
2244 && filename.compare (0, ddir.size (), ddir) == 0)
2245 continue;
2246
2247 /* Replace FILENAME's default debug-file-directory with
2248 DDIR. */
2249 std::string new_filename = ddir + &filename[dwz_pos + 1];
2250
2251 dwz_bfd = gdb_bfd_open (new_filename.c_str (), gnutarget);
2252
2253 if (dwz_bfd == nullptr)
2254 continue;
2255
2256 if (!build_id_verify (dwz_bfd.get (), buildid_len, buildid))
2257 {
2258 dwz_bfd.reset (nullptr);
2259 continue;
2260 }
2261
2262 /* Found it. */
2263 break;
2264 }
2265
2266 return dwz_bfd;
2267 }
2268
2269 /* See dwarf2read.h. */
2270
2271 struct dwz_file *
2272 dwarf2_get_dwz_file (dwarf2_per_bfd *per_bfd)
2273 {
2274 bfd_size_type buildid_len_arg;
2275 size_t buildid_len;
2276 bfd_byte *buildid;
2277
2278 if (per_bfd->dwz_file != NULL)
2279 return per_bfd->dwz_file.get ();
2280
2281 bfd_set_error (bfd_error_no_error);
2282 gdb::unique_xmalloc_ptr<char> data
2283 (bfd_get_alt_debug_link_info (per_bfd->obfd,
2284 &buildid_len_arg, &buildid));
2285 if (data == NULL)
2286 {
2287 if (bfd_get_error () == bfd_error_no_error)
2288 return NULL;
2289 error (_("could not read '.gnu_debugaltlink' section: %s"),
2290 bfd_errmsg (bfd_get_error ()));
2291 }
2292
2293 gdb::unique_xmalloc_ptr<bfd_byte> buildid_holder (buildid);
2294
2295 buildid_len = (size_t) buildid_len_arg;
2296
2297 std::string filename = data.get ();
2298
2299 if (!IS_ABSOLUTE_PATH (filename.c_str ()))
2300 {
2301 gdb::unique_xmalloc_ptr<char> abs
2302 = gdb_realpath (bfd_get_filename (per_bfd->obfd));
2303
2304 filename = ldirname (abs.get ()) + SLASH_STRING + filename;
2305 }
2306
2307 /* First try the file name given in the section. If that doesn't
2308 work, try to use the build-id instead. */
2309 gdb_bfd_ref_ptr dwz_bfd (gdb_bfd_open (filename.c_str (), gnutarget));
2310 if (dwz_bfd != NULL)
2311 {
2312 if (!build_id_verify (dwz_bfd.get (), buildid_len, buildid))
2313 dwz_bfd.reset (nullptr);
2314 }
2315
2316 if (dwz_bfd == NULL)
2317 dwz_bfd = build_id_to_debug_bfd (buildid_len, buildid);
2318
2319 if (dwz_bfd == nullptr)
2320 {
2321 /* If the user has provided us with different
2322 debug file directories, we can try them in order. */
2323 dwz_bfd = dwz_search_other_debugdirs (filename, buildid, buildid_len);
2324 }
2325
2326 if (dwz_bfd == nullptr)
2327 {
2328 gdb::unique_xmalloc_ptr<char> alt_filename;
2329 const char *origname = bfd_get_filename (per_bfd->obfd);
2330
2331 scoped_fd fd (debuginfod_debuginfo_query (buildid,
2332 buildid_len,
2333 origname,
2334 &alt_filename));
2335
2336 if (fd.get () >= 0)
2337 {
2338 /* File successfully retrieved from server. */
2339 dwz_bfd = gdb_bfd_open (alt_filename.get (), gnutarget);
2340
2341 if (dwz_bfd == nullptr)
2342 warning (_("File \"%s\" from debuginfod cannot be opened as bfd"),
2343 alt_filename.get ());
2344 else if (!build_id_verify (dwz_bfd.get (), buildid_len, buildid))
2345 dwz_bfd.reset (nullptr);
2346 }
2347 }
2348
2349 if (dwz_bfd == NULL)
2350 error (_("could not find '.gnu_debugaltlink' file for %s"),
2351 bfd_get_filename (per_bfd->obfd));
2352
2353 std::unique_ptr<struct dwz_file> result
2354 (new struct dwz_file (std::move (dwz_bfd)));
2355
2356 for (asection *sec : gdb_bfd_sections (result->dwz_bfd))
2357 locate_dwz_sections (result->dwz_bfd.get (), sec, result.get ());
2358
2359 gdb_bfd_record_inclusion (per_bfd->obfd, result->dwz_bfd.get ());
2360 per_bfd->dwz_file = std::move (result);
2361 return per_bfd->dwz_file.get ();
2362 }
2363 \f
2364 /* DWARF quick_symbols_functions support. */
2365
2366 /* TUs can share .debug_line entries, and there can be a lot more TUs than
2367 unique line tables, so we maintain a separate table of all .debug_line
2368 derived entries to support the sharing.
2369 All the quick functions need is the list of file names. We discard the
2370 line_header when we're done and don't need to record it here. */
2371 struct quick_file_names
2372 {
2373 /* The data used to construct the hash key. */
2374 struct stmt_list_hash hash;
2375
2376 /* The number of entries in file_names, real_names. */
2377 unsigned int num_file_names;
2378
2379 /* The file names from the line table, after being run through
2380 file_full_name. */
2381 const char **file_names;
2382
2383 /* The file names from the line table after being run through
2384 gdb_realpath. These are computed lazily. */
2385 const char **real_names;
2386 };
2387
2388 /* When using the index (and thus not using psymtabs), each CU has an
2389 object of this type. This is used to hold information needed by
2390 the various "quick" methods. */
2391 struct dwarf2_per_cu_quick_data
2392 {
2393 /* The file table. This can be NULL if there was no file table
2394 or it's currently not read in.
2395 NOTE: This points into dwarf2_per_objfile->per_bfd->quick_file_names_table. */
2396 struct quick_file_names *file_names;
2397
2398 /* A temporary mark bit used when iterating over all CUs in
2399 expand_symtabs_matching. */
2400 unsigned int mark : 1;
2401
2402 /* True if we've tried to read the file table and found there isn't one.
2403 There will be no point in trying to read it again next time. */
2404 unsigned int no_file_data : 1;
2405 };
2406
2407 /* Utility hash function for a stmt_list_hash. */
2408
2409 static hashval_t
2410 hash_stmt_list_entry (const struct stmt_list_hash *stmt_list_hash)
2411 {
2412 hashval_t v = 0;
2413
2414 if (stmt_list_hash->dwo_unit != NULL)
2415 v += (uintptr_t) stmt_list_hash->dwo_unit->dwo_file;
2416 v += to_underlying (stmt_list_hash->line_sect_off);
2417 return v;
2418 }
2419
2420 /* Utility equality function for a stmt_list_hash. */
2421
2422 static int
2423 eq_stmt_list_entry (const struct stmt_list_hash *lhs,
2424 const struct stmt_list_hash *rhs)
2425 {
2426 if ((lhs->dwo_unit != NULL) != (rhs->dwo_unit != NULL))
2427 return 0;
2428 if (lhs->dwo_unit != NULL
2429 && lhs->dwo_unit->dwo_file != rhs->dwo_unit->dwo_file)
2430 return 0;
2431
2432 return lhs->line_sect_off == rhs->line_sect_off;
2433 }
2434
2435 /* Hash function for a quick_file_names. */
2436
2437 static hashval_t
2438 hash_file_name_entry (const void *e)
2439 {
2440 const struct quick_file_names *file_data
2441 = (const struct quick_file_names *) e;
2442
2443 return hash_stmt_list_entry (&file_data->hash);
2444 }
2445
2446 /* Equality function for a quick_file_names. */
2447
2448 static int
2449 eq_file_name_entry (const void *a, const void *b)
2450 {
2451 const struct quick_file_names *ea = (const struct quick_file_names *) a;
2452 const struct quick_file_names *eb = (const struct quick_file_names *) b;
2453
2454 return eq_stmt_list_entry (&ea->hash, &eb->hash);
2455 }
2456
2457 /* Delete function for a quick_file_names. */
2458
2459 static void
2460 delete_file_name_entry (void *e)
2461 {
2462 struct quick_file_names *file_data = (struct quick_file_names *) e;
2463 int i;
2464
2465 for (i = 0; i < file_data->num_file_names; ++i)
2466 {
2467 xfree ((void*) file_data->file_names[i]);
2468 if (file_data->real_names)
2469 xfree ((void*) file_data->real_names[i]);
2470 }
2471
2472 /* The space for the struct itself lives on the obstack, so we don't
2473 free it here. */
2474 }
2475
2476 /* Create a quick_file_names hash table. */
2477
2478 static htab_up
2479 create_quick_file_names_table (unsigned int nr_initial_entries)
2480 {
2481 return htab_up (htab_create_alloc (nr_initial_entries,
2482 hash_file_name_entry, eq_file_name_entry,
2483 delete_file_name_entry, xcalloc, xfree));
2484 }
2485
2486 /* Read in CU (dwarf2_cu object) for PER_CU in the context of PER_OBJFILE. This
2487 function is unrelated to symtabs, symtab would have to be created afterwards.
2488 You should call age_cached_comp_units after processing the CU. */
2489
2490 static dwarf2_cu *
2491 load_cu (dwarf2_per_cu_data *per_cu, dwarf2_per_objfile *per_objfile,
2492 bool skip_partial)
2493 {
2494 if (per_cu->is_debug_types)
2495 load_full_type_unit (per_cu, per_objfile);
2496 else
2497 load_full_comp_unit (per_cu, per_objfile, per_objfile->get_cu (per_cu),
2498 skip_partial, language_minimal);
2499
2500 dwarf2_cu *cu = per_objfile->get_cu (per_cu);
2501 if (cu == nullptr)
2502 return nullptr; /* Dummy CU. */
2503
2504 dwarf2_find_base_address (cu->dies, cu);
2505
2506 return cu;
2507 }
2508
2509 /* Read in the symbols for PER_CU in the context of PER_OBJFILE. */
2510
2511 static void
2512 dw2_do_instantiate_symtab (dwarf2_per_cu_data *per_cu,
2513 dwarf2_per_objfile *per_objfile, bool skip_partial)
2514 {
2515 /* Skip type_unit_groups, reading the type units they contain
2516 is handled elsewhere. */
2517 if (per_cu->type_unit_group_p ())
2518 return;
2519
2520 /* The destructor of dwarf2_queue_guard frees any entries left on
2521 the queue. After this point we're guaranteed to leave this function
2522 with the dwarf queue empty. */
2523 dwarf2_queue_guard q_guard (per_objfile);
2524
2525 if (!per_objfile->symtab_set_p (per_cu))
2526 {
2527 queue_comp_unit (per_cu, per_objfile, language_minimal);
2528 dwarf2_cu *cu = load_cu (per_cu, per_objfile, skip_partial);
2529
2530 /* If we just loaded a CU from a DWO, and we're working with an index
2531 that may badly handle TUs, load all the TUs in that DWO as well.
2532 http://sourceware.org/bugzilla/show_bug.cgi?id=15021 */
2533 if (!per_cu->is_debug_types
2534 && cu != NULL
2535 && cu->dwo_unit != NULL
2536 && per_objfile->per_bfd->index_table != NULL
2537 && per_objfile->per_bfd->index_table->version <= 7
2538 /* DWP files aren't supported yet. */
2539 && get_dwp_file (per_objfile) == NULL)
2540 queue_and_load_all_dwo_tus (cu);
2541 }
2542
2543 process_queue (per_objfile);
2544
2545 /* Age the cache, releasing compilation units that have not
2546 been used recently. */
2547 per_objfile->age_comp_units ();
2548 }
2549
2550 /* Ensure that the symbols for PER_CU have been read in. DWARF2_PER_OBJFILE is
2551 the per-objfile for which this symtab is instantiated.
2552
2553 Returns the resulting symbol table. */
2554
2555 static struct compunit_symtab *
2556 dw2_instantiate_symtab (dwarf2_per_cu_data *per_cu,
2557 dwarf2_per_objfile *per_objfile,
2558 bool skip_partial)
2559 {
2560 gdb_assert (per_objfile->per_bfd->using_index);
2561
2562 if (!per_objfile->symtab_set_p (per_cu))
2563 {
2564 free_cached_comp_units freer (per_objfile);
2565 scoped_restore decrementer = increment_reading_symtab ();
2566 dw2_do_instantiate_symtab (per_cu, per_objfile, skip_partial);
2567 process_cu_includes (per_objfile);
2568 }
2569
2570 return per_objfile->get_symtab (per_cu);
2571 }
2572
2573 /* See declaration. */
2574
2575 dwarf2_per_cu_data *
2576 dwarf2_per_bfd::get_cutu (int index)
2577 {
2578 if (index >= this->all_comp_units.size ())
2579 {
2580 index -= this->all_comp_units.size ();
2581 gdb_assert (index < this->all_type_units.size ());
2582 return &this->all_type_units[index]->per_cu;
2583 }
2584
2585 return this->all_comp_units[index];
2586 }
2587
2588 /* See declaration. */
2589
2590 dwarf2_per_cu_data *
2591 dwarf2_per_bfd::get_cu (int index)
2592 {
2593 gdb_assert (index >= 0 && index < this->all_comp_units.size ());
2594
2595 return this->all_comp_units[index];
2596 }
2597
2598 /* See declaration. */
2599
2600 signatured_type *
2601 dwarf2_per_bfd::get_tu (int index)
2602 {
2603 gdb_assert (index >= 0 && index < this->all_type_units.size ());
2604
2605 return this->all_type_units[index];
2606 }
2607
2608 /* See read.h. */
2609
2610 dwarf2_per_cu_data *
2611 dwarf2_per_bfd::allocate_per_cu ()
2612 {
2613 dwarf2_per_cu_data *result = OBSTACK_ZALLOC (&obstack, dwarf2_per_cu_data);
2614 result->per_bfd = this;
2615 result->index = m_num_psymtabs++;
2616 return result;
2617 }
2618
2619 /* See read.h. */
2620
2621 signatured_type *
2622 dwarf2_per_bfd::allocate_signatured_type ()
2623 {
2624 signatured_type *result = OBSTACK_ZALLOC (&obstack, signatured_type);
2625 result->per_cu.per_bfd = this;
2626 result->per_cu.index = m_num_psymtabs++;
2627 return result;
2628 }
2629
2630 /* Return a new dwarf2_per_cu_data allocated on the per-bfd
2631 obstack, and constructed with the specified field values. */
2632
2633 static dwarf2_per_cu_data *
2634 create_cu_from_index_list (dwarf2_per_bfd *per_bfd,
2635 struct dwarf2_section_info *section,
2636 int is_dwz,
2637 sect_offset sect_off, ULONGEST length)
2638 {
2639 dwarf2_per_cu_data *the_cu = per_bfd->allocate_per_cu ();
2640 the_cu->sect_off = sect_off;
2641 the_cu->length = length;
2642 the_cu->section = section;
2643 the_cu->v.quick = OBSTACK_ZALLOC (&per_bfd->obstack,
2644 struct dwarf2_per_cu_quick_data);
2645 the_cu->is_dwz = is_dwz;
2646 return the_cu;
2647 }
2648
2649 /* A helper for create_cus_from_index that handles a given list of
2650 CUs. */
2651
2652 static void
2653 create_cus_from_index_list (dwarf2_per_bfd *per_bfd,
2654 const gdb_byte *cu_list, offset_type n_elements,
2655 struct dwarf2_section_info *section,
2656 int is_dwz)
2657 {
2658 for (offset_type i = 0; i < n_elements; i += 2)
2659 {
2660 gdb_static_assert (sizeof (ULONGEST) >= 8);
2661
2662 sect_offset sect_off
2663 = (sect_offset) extract_unsigned_integer (cu_list, 8, BFD_ENDIAN_LITTLE);
2664 ULONGEST length = extract_unsigned_integer (cu_list + 8, 8, BFD_ENDIAN_LITTLE);
2665 cu_list += 2 * 8;
2666
2667 dwarf2_per_cu_data *per_cu
2668 = create_cu_from_index_list (per_bfd, section, is_dwz, sect_off,
2669 length);
2670 per_bfd->all_comp_units.push_back (per_cu);
2671 }
2672 }
2673
2674 /* Read the CU list from the mapped index, and use it to create all
2675 the CU objects for PER_BFD. */
2676
2677 static void
2678 create_cus_from_index (dwarf2_per_bfd *per_bfd,
2679 const gdb_byte *cu_list, offset_type cu_list_elements,
2680 const gdb_byte *dwz_list, offset_type dwz_elements)
2681 {
2682 gdb_assert (per_bfd->all_comp_units.empty ());
2683 per_bfd->all_comp_units.reserve ((cu_list_elements + dwz_elements) / 2);
2684
2685 create_cus_from_index_list (per_bfd, cu_list, cu_list_elements,
2686 &per_bfd->info, 0);
2687
2688 if (dwz_elements == 0)
2689 return;
2690
2691 dwz_file *dwz = dwarf2_get_dwz_file (per_bfd);
2692 create_cus_from_index_list (per_bfd, dwz_list, dwz_elements,
2693 &dwz->info, 1);
2694 }
2695
2696 /* Create the signatured type hash table from the index. */
2697
2698 static void
2699 create_signatured_type_table_from_index
2700 (dwarf2_per_bfd *per_bfd, struct dwarf2_section_info *section,
2701 const gdb_byte *bytes, offset_type elements)
2702 {
2703 gdb_assert (per_bfd->all_type_units.empty ());
2704 per_bfd->all_type_units.reserve (elements / 3);
2705
2706 htab_up sig_types_hash = allocate_signatured_type_table ();
2707
2708 for (offset_type i = 0; i < elements; i += 3)
2709 {
2710 struct signatured_type *sig_type;
2711 ULONGEST signature;
2712 void **slot;
2713 cu_offset type_offset_in_tu;
2714
2715 gdb_static_assert (sizeof (ULONGEST) >= 8);
2716 sect_offset sect_off
2717 = (sect_offset) extract_unsigned_integer (bytes, 8, BFD_ENDIAN_LITTLE);
2718 type_offset_in_tu
2719 = (cu_offset) extract_unsigned_integer (bytes + 8, 8,
2720 BFD_ENDIAN_LITTLE);
2721 signature = extract_unsigned_integer (bytes + 16, 8, BFD_ENDIAN_LITTLE);
2722 bytes += 3 * 8;
2723
2724 sig_type = per_bfd->allocate_signatured_type ();
2725 sig_type->signature = signature;
2726 sig_type->type_offset_in_tu = type_offset_in_tu;
2727 sig_type->per_cu.is_debug_types = 1;
2728 sig_type->per_cu.section = section;
2729 sig_type->per_cu.sect_off = sect_off;
2730 sig_type->per_cu.v.quick
2731 = OBSTACK_ZALLOC (&per_bfd->obstack,
2732 struct dwarf2_per_cu_quick_data);
2733
2734 slot = htab_find_slot (sig_types_hash.get (), sig_type, INSERT);
2735 *slot = sig_type;
2736
2737 per_bfd->all_type_units.push_back (sig_type);
2738 }
2739
2740 per_bfd->signatured_types = std::move (sig_types_hash);
2741 }
2742
2743 /* Create the signatured type hash table from .debug_names. */
2744
2745 static void
2746 create_signatured_type_table_from_debug_names
2747 (dwarf2_per_objfile *per_objfile,
2748 const mapped_debug_names &map,
2749 struct dwarf2_section_info *section,
2750 struct dwarf2_section_info *abbrev_section)
2751 {
2752 struct objfile *objfile = per_objfile->objfile;
2753
2754 section->read (objfile);
2755 abbrev_section->read (objfile);
2756
2757 gdb_assert (per_objfile->per_bfd->all_type_units.empty ());
2758 per_objfile->per_bfd->all_type_units.reserve (map.tu_count);
2759
2760 htab_up sig_types_hash = allocate_signatured_type_table ();
2761
2762 for (uint32_t i = 0; i < map.tu_count; ++i)
2763 {
2764 struct signatured_type *sig_type;
2765 void **slot;
2766
2767 sect_offset sect_off
2768 = (sect_offset) (extract_unsigned_integer
2769 (map.tu_table_reordered + i * map.offset_size,
2770 map.offset_size,
2771 map.dwarf5_byte_order));
2772
2773 comp_unit_head cu_header;
2774 read_and_check_comp_unit_head (per_objfile, &cu_header, section,
2775 abbrev_section,
2776 section->buffer + to_underlying (sect_off),
2777 rcuh_kind::TYPE);
2778
2779 sig_type = per_objfile->per_bfd->allocate_signatured_type ();
2780 sig_type->signature = cu_header.signature;
2781 sig_type->type_offset_in_tu = cu_header.type_cu_offset_in_tu;
2782 sig_type->per_cu.is_debug_types = 1;
2783 sig_type->per_cu.section = section;
2784 sig_type->per_cu.sect_off = sect_off;
2785 sig_type->per_cu.v.quick
2786 = OBSTACK_ZALLOC (&per_objfile->per_bfd->obstack,
2787 struct dwarf2_per_cu_quick_data);
2788
2789 slot = htab_find_slot (sig_types_hash.get (), sig_type, INSERT);
2790 *slot = sig_type;
2791
2792 per_objfile->per_bfd->all_type_units.push_back (sig_type);
2793 }
2794
2795 per_objfile->per_bfd->signatured_types = std::move (sig_types_hash);
2796 }
2797
2798 /* Read the address map data from the mapped index, and use it to
2799 populate the objfile's psymtabs_addrmap. */
2800
2801 static void
2802 create_addrmap_from_index (dwarf2_per_objfile *per_objfile,
2803 struct mapped_index *index)
2804 {
2805 struct objfile *objfile = per_objfile->objfile;
2806 struct gdbarch *gdbarch = objfile->arch ();
2807 const gdb_byte *iter, *end;
2808 struct addrmap *mutable_map;
2809 CORE_ADDR baseaddr;
2810
2811 auto_obstack temp_obstack;
2812
2813 mutable_map = addrmap_create_mutable (&temp_obstack);
2814
2815 iter = index->address_table.data ();
2816 end = iter + index->address_table.size ();
2817
2818 baseaddr = objfile->text_section_offset ();
2819
2820 while (iter < end)
2821 {
2822 ULONGEST hi, lo, cu_index;
2823 lo = extract_unsigned_integer (iter, 8, BFD_ENDIAN_LITTLE);
2824 iter += 8;
2825 hi = extract_unsigned_integer (iter, 8, BFD_ENDIAN_LITTLE);
2826 iter += 8;
2827 cu_index = extract_unsigned_integer (iter, 4, BFD_ENDIAN_LITTLE);
2828 iter += 4;
2829
2830 if (lo > hi)
2831 {
2832 complaint (_(".gdb_index address table has invalid range (%s - %s)"),
2833 hex_string (lo), hex_string (hi));
2834 continue;
2835 }
2836
2837 if (cu_index >= per_objfile->per_bfd->all_comp_units.size ())
2838 {
2839 complaint (_(".gdb_index address table has invalid CU number %u"),
2840 (unsigned) cu_index);
2841 continue;
2842 }
2843
2844 lo = gdbarch_adjust_dwarf2_addr (gdbarch, lo + baseaddr) - baseaddr;
2845 hi = gdbarch_adjust_dwarf2_addr (gdbarch, hi + baseaddr) - baseaddr;
2846 addrmap_set_empty (mutable_map, lo, hi - 1,
2847 per_objfile->per_bfd->get_cu (cu_index));
2848 }
2849
2850 objfile->partial_symtabs->psymtabs_addrmap
2851 = addrmap_create_fixed (mutable_map, objfile->partial_symtabs->obstack ());
2852 }
2853
2854 /* Read the address map data from DWARF-5 .debug_aranges, and use it to
2855 populate the objfile's psymtabs_addrmap. */
2856
2857 static void
2858 create_addrmap_from_aranges (dwarf2_per_objfile *per_objfile,
2859 struct dwarf2_section_info *section)
2860 {
2861 struct objfile *objfile = per_objfile->objfile;
2862 bfd *abfd = objfile->obfd;
2863 struct gdbarch *gdbarch = objfile->arch ();
2864 const CORE_ADDR baseaddr = objfile->text_section_offset ();
2865
2866 auto_obstack temp_obstack;
2867 addrmap *mutable_map = addrmap_create_mutable (&temp_obstack);
2868
2869 std::unordered_map<sect_offset,
2870 dwarf2_per_cu_data *,
2871 gdb::hash_enum<sect_offset>>
2872 debug_info_offset_to_per_cu;
2873 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
2874 {
2875 const auto insertpair
2876 = debug_info_offset_to_per_cu.emplace (per_cu->sect_off, per_cu);
2877 if (!insertpair.second)
2878 {
2879 warning (_("Section .debug_aranges in %s has duplicate "
2880 "debug_info_offset %s, ignoring .debug_aranges."),
2881 objfile_name (objfile), sect_offset_str (per_cu->sect_off));
2882 return;
2883 }
2884 }
2885
2886 section->read (objfile);
2887
2888 const bfd_endian dwarf5_byte_order = gdbarch_byte_order (gdbarch);
2889
2890 const gdb_byte *addr = section->buffer;
2891
2892 while (addr < section->buffer + section->size)
2893 {
2894 const gdb_byte *const entry_addr = addr;
2895 unsigned int bytes_read;
2896
2897 const LONGEST entry_length = read_initial_length (abfd, addr,
2898 &bytes_read);
2899 addr += bytes_read;
2900
2901 const gdb_byte *const entry_end = addr + entry_length;
2902 const bool dwarf5_is_dwarf64 = bytes_read != 4;
2903 const uint8_t offset_size = dwarf5_is_dwarf64 ? 8 : 4;
2904 if (addr + entry_length > section->buffer + section->size)
2905 {
2906 warning (_("Section .debug_aranges in %s entry at offset %s "
2907 "length %s exceeds section length %s, "
2908 "ignoring .debug_aranges."),
2909 objfile_name (objfile),
2910 plongest (entry_addr - section->buffer),
2911 plongest (bytes_read + entry_length),
2912 pulongest (section->size));
2913 return;
2914 }
2915
2916 /* The version number. */
2917 const uint16_t version = read_2_bytes (abfd, addr);
2918 addr += 2;
2919 if (version != 2)
2920 {
2921 warning (_("Section .debug_aranges in %s entry at offset %s "
2922 "has unsupported version %d, ignoring .debug_aranges."),
2923 objfile_name (objfile),
2924 plongest (entry_addr - section->buffer), version);
2925 return;
2926 }
2927
2928 const uint64_t debug_info_offset
2929 = extract_unsigned_integer (addr, offset_size, dwarf5_byte_order);
2930 addr += offset_size;
2931 const auto per_cu_it
2932 = debug_info_offset_to_per_cu.find (sect_offset (debug_info_offset));
2933 if (per_cu_it == debug_info_offset_to_per_cu.cend ())
2934 {
2935 warning (_("Section .debug_aranges in %s entry at offset %s "
2936 "debug_info_offset %s does not exists, "
2937 "ignoring .debug_aranges."),
2938 objfile_name (objfile),
2939 plongest (entry_addr - section->buffer),
2940 pulongest (debug_info_offset));
2941 return;
2942 }
2943 dwarf2_per_cu_data *const per_cu = per_cu_it->second;
2944
2945 const uint8_t address_size = *addr++;
2946 if (address_size < 1 || address_size > 8)
2947 {
2948 warning (_("Section .debug_aranges in %s entry at offset %s "
2949 "address_size %u is invalid, ignoring .debug_aranges."),
2950 objfile_name (objfile),
2951 plongest (entry_addr - section->buffer), address_size);
2952 return;
2953 }
2954
2955 const uint8_t segment_selector_size = *addr++;
2956 if (segment_selector_size != 0)
2957 {
2958 warning (_("Section .debug_aranges in %s entry at offset %s "
2959 "segment_selector_size %u is not supported, "
2960 "ignoring .debug_aranges."),
2961 objfile_name (objfile),
2962 plongest (entry_addr - section->buffer),
2963 segment_selector_size);
2964 return;
2965 }
2966
2967 /* Must pad to an alignment boundary that is twice the address
2968 size. It is undocumented by the DWARF standard but GCC does
2969 use it. */
2970 for (size_t padding = ((-(addr - section->buffer))
2971 & (2 * address_size - 1));
2972 padding > 0; padding--)
2973 if (*addr++ != 0)
2974 {
2975 warning (_("Section .debug_aranges in %s entry at offset %s "
2976 "padding is not zero, ignoring .debug_aranges."),
2977 objfile_name (objfile),
2978 plongest (entry_addr - section->buffer));
2979 return;
2980 }
2981
2982 for (;;)
2983 {
2984 if (addr + 2 * address_size > entry_end)
2985 {
2986 warning (_("Section .debug_aranges in %s entry at offset %s "
2987 "address list is not properly terminated, "
2988 "ignoring .debug_aranges."),
2989 objfile_name (objfile),
2990 plongest (entry_addr - section->buffer));
2991 return;
2992 }
2993 ULONGEST start = extract_unsigned_integer (addr, address_size,
2994 dwarf5_byte_order);
2995 addr += address_size;
2996 ULONGEST length = extract_unsigned_integer (addr, address_size,
2997 dwarf5_byte_order);
2998 addr += address_size;
2999 if (start == 0 && length == 0)
3000 break;
3001 if (start == 0 && !per_objfile->per_bfd->has_section_at_zero)
3002 {
3003 /* Symbol was eliminated due to a COMDAT group. */
3004 continue;
3005 }
3006 ULONGEST end = start + length;
3007 start = (gdbarch_adjust_dwarf2_addr (gdbarch, start + baseaddr)
3008 - baseaddr);
3009 end = (gdbarch_adjust_dwarf2_addr (gdbarch, end + baseaddr)
3010 - baseaddr);
3011 addrmap_set_empty (mutable_map, start, end - 1, per_cu);
3012 }
3013 }
3014
3015 objfile->partial_symtabs->psymtabs_addrmap
3016 = addrmap_create_fixed (mutable_map, objfile->partial_symtabs->obstack ());
3017 }
3018
3019 /* Find a slot in the mapped index INDEX for the object named NAME.
3020 If NAME is found, set *VEC_OUT to point to the CU vector in the
3021 constant pool and return true. If NAME cannot be found, return
3022 false. */
3023
3024 static bool
3025 find_slot_in_mapped_hash (struct mapped_index *index, const char *name,
3026 offset_type **vec_out)
3027 {
3028 offset_type hash;
3029 offset_type slot, step;
3030 int (*cmp) (const char *, const char *);
3031
3032 gdb::unique_xmalloc_ptr<char> without_params;
3033 if (current_language->la_language == language_cplus
3034 || current_language->la_language == language_fortran
3035 || current_language->la_language == language_d)
3036 {
3037 /* NAME is already canonical. Drop any qualifiers as .gdb_index does
3038 not contain any. */
3039
3040 if (strchr (name, '(') != NULL)
3041 {
3042 without_params = cp_remove_params (name);
3043
3044 if (without_params != NULL)
3045 name = without_params.get ();
3046 }
3047 }
3048
3049 /* Index version 4 did not support case insensitive searches. But the
3050 indices for case insensitive languages are built in lowercase, therefore
3051 simulate our NAME being searched is also lowercased. */
3052 hash = mapped_index_string_hash ((index->version == 4
3053 && case_sensitivity == case_sensitive_off
3054 ? 5 : index->version),
3055 name);
3056
3057 slot = hash & (index->symbol_table.size () - 1);
3058 step = ((hash * 17) & (index->symbol_table.size () - 1)) | 1;
3059 cmp = (case_sensitivity == case_sensitive_on ? strcmp : strcasecmp);
3060
3061 for (;;)
3062 {
3063 const char *str;
3064
3065 const auto &bucket = index->symbol_table[slot];
3066 if (bucket.name == 0 && bucket.vec == 0)
3067 return false;
3068
3069 str = index->constant_pool + MAYBE_SWAP (bucket.name);
3070 if (!cmp (name, str))
3071 {
3072 *vec_out = (offset_type *) (index->constant_pool
3073 + MAYBE_SWAP (bucket.vec));
3074 return true;
3075 }
3076
3077 slot = (slot + step) & (index->symbol_table.size () - 1);
3078 }
3079 }
3080
3081 /* A helper function that reads the .gdb_index from BUFFER and fills
3082 in MAP. FILENAME is the name of the file containing the data;
3083 it is used for error reporting. DEPRECATED_OK is true if it is
3084 ok to use deprecated sections.
3085
3086 CU_LIST, CU_LIST_ELEMENTS, TYPES_LIST, and TYPES_LIST_ELEMENTS are
3087 out parameters that are filled in with information about the CU and
3088 TU lists in the section.
3089
3090 Returns true if all went well, false otherwise. */
3091
3092 static bool
3093 read_gdb_index_from_buffer (const char *filename,
3094 bool deprecated_ok,
3095 gdb::array_view<const gdb_byte> buffer,
3096 struct mapped_index *map,
3097 const gdb_byte **cu_list,
3098 offset_type *cu_list_elements,
3099 const gdb_byte **types_list,
3100 offset_type *types_list_elements)
3101 {
3102 const gdb_byte *addr = &buffer[0];
3103
3104 /* Version check. */
3105 offset_type version = MAYBE_SWAP (*(offset_type *) addr);
3106 /* Versions earlier than 3 emitted every copy of a psymbol. This
3107 causes the index to behave very poorly for certain requests. Version 3
3108 contained incomplete addrmap. So, it seems better to just ignore such
3109 indices. */
3110 if (version < 4)
3111 {
3112 static int warning_printed = 0;
3113 if (!warning_printed)
3114 {
3115 warning (_("Skipping obsolete .gdb_index section in %s."),
3116 filename);
3117 warning_printed = 1;
3118 }
3119 return 0;
3120 }
3121 /* Index version 4 uses a different hash function than index version
3122 5 and later.
3123
3124 Versions earlier than 6 did not emit psymbols for inlined
3125 functions. Using these files will cause GDB not to be able to
3126 set breakpoints on inlined functions by name, so we ignore these
3127 indices unless the user has done
3128 "set use-deprecated-index-sections on". */
3129 if (version < 6 && !deprecated_ok)
3130 {
3131 static int warning_printed = 0;
3132 if (!warning_printed)
3133 {
3134 warning (_("\
3135 Skipping deprecated .gdb_index section in %s.\n\
3136 Do \"set use-deprecated-index-sections on\" before the file is read\n\
3137 to use the section anyway."),
3138 filename);
3139 warning_printed = 1;
3140 }
3141 return 0;
3142 }
3143 /* Version 7 indices generated by gold refer to the CU for a symbol instead
3144 of the TU (for symbols coming from TUs),
3145 http://sourceware.org/bugzilla/show_bug.cgi?id=15021.
3146 Plus gold-generated indices can have duplicate entries for global symbols,
3147 http://sourceware.org/bugzilla/show_bug.cgi?id=15646.
3148 These are just performance bugs, and we can't distinguish gdb-generated
3149 indices from gold-generated ones, so issue no warning here. */
3150
3151 /* Indexes with higher version than the one supported by GDB may be no
3152 longer backward compatible. */
3153 if (version > 8)
3154 return 0;
3155
3156 map->version = version;
3157
3158 offset_type *metadata = (offset_type *) (addr + sizeof (offset_type));
3159
3160 int i = 0;
3161 *cu_list = addr + MAYBE_SWAP (metadata[i]);
3162 *cu_list_elements = ((MAYBE_SWAP (metadata[i + 1]) - MAYBE_SWAP (metadata[i]))
3163 / 8);
3164 ++i;
3165
3166 *types_list = addr + MAYBE_SWAP (metadata[i]);
3167 *types_list_elements = ((MAYBE_SWAP (metadata[i + 1])
3168 - MAYBE_SWAP (metadata[i]))
3169 / 8);
3170 ++i;
3171
3172 const gdb_byte *address_table = addr + MAYBE_SWAP (metadata[i]);
3173 const gdb_byte *address_table_end = addr + MAYBE_SWAP (metadata[i + 1]);
3174 map->address_table
3175 = gdb::array_view<const gdb_byte> (address_table, address_table_end);
3176 ++i;
3177
3178 const gdb_byte *symbol_table = addr + MAYBE_SWAP (metadata[i]);
3179 const gdb_byte *symbol_table_end = addr + MAYBE_SWAP (metadata[i + 1]);
3180 map->symbol_table
3181 = gdb::array_view<mapped_index::symbol_table_slot>
3182 ((mapped_index::symbol_table_slot *) symbol_table,
3183 (mapped_index::symbol_table_slot *) symbol_table_end);
3184
3185 ++i;
3186 map->constant_pool = (char *) (addr + MAYBE_SWAP (metadata[i]));
3187
3188 return 1;
3189 }
3190
3191 /* Callback types for dwarf2_read_gdb_index. */
3192
3193 typedef gdb::function_view
3194 <gdb::array_view<const gdb_byte>(objfile *, dwarf2_per_bfd *)>
3195 get_gdb_index_contents_ftype;
3196 typedef gdb::function_view
3197 <gdb::array_view<const gdb_byte>(objfile *, dwz_file *)>
3198 get_gdb_index_contents_dwz_ftype;
3199
3200 /* Read .gdb_index. If everything went ok, initialize the "quick"
3201 elements of all the CUs and return 1. Otherwise, return 0. */
3202
3203 static int
3204 dwarf2_read_gdb_index
3205 (dwarf2_per_objfile *per_objfile,
3206 get_gdb_index_contents_ftype get_gdb_index_contents,
3207 get_gdb_index_contents_dwz_ftype get_gdb_index_contents_dwz)
3208 {
3209 const gdb_byte *cu_list, *types_list, *dwz_list = NULL;
3210 offset_type cu_list_elements, types_list_elements, dwz_list_elements = 0;
3211 struct dwz_file *dwz;
3212 struct objfile *objfile = per_objfile->objfile;
3213 dwarf2_per_bfd *per_bfd = per_objfile->per_bfd;
3214
3215 gdb::array_view<const gdb_byte> main_index_contents
3216 = get_gdb_index_contents (objfile, per_bfd);
3217
3218 if (main_index_contents.empty ())
3219 return 0;
3220
3221 std::unique_ptr<struct mapped_index> map (new struct mapped_index);
3222 if (!read_gdb_index_from_buffer (objfile_name (objfile),
3223 use_deprecated_index_sections,
3224 main_index_contents, map.get (), &cu_list,
3225 &cu_list_elements, &types_list,
3226 &types_list_elements))
3227 return 0;
3228
3229 /* Don't use the index if it's empty. */
3230 if (map->symbol_table.empty ())
3231 return 0;
3232
3233 /* If there is a .dwz file, read it so we can get its CU list as
3234 well. */
3235 dwz = dwarf2_get_dwz_file (per_bfd);
3236 if (dwz != NULL)
3237 {
3238 struct mapped_index dwz_map;
3239 const gdb_byte *dwz_types_ignore;
3240 offset_type dwz_types_elements_ignore;
3241
3242 gdb::array_view<const gdb_byte> dwz_index_content
3243 = get_gdb_index_contents_dwz (objfile, dwz);
3244
3245 if (dwz_index_content.empty ())
3246 return 0;
3247
3248 if (!read_gdb_index_from_buffer (bfd_get_filename (dwz->dwz_bfd.get ()),
3249 1, dwz_index_content, &dwz_map,
3250 &dwz_list, &dwz_list_elements,
3251 &dwz_types_ignore,
3252 &dwz_types_elements_ignore))
3253 {
3254 warning (_("could not read '.gdb_index' section from %s; skipping"),
3255 bfd_get_filename (dwz->dwz_bfd.get ()));
3256 return 0;
3257 }
3258 }
3259
3260 create_cus_from_index (per_bfd, cu_list, cu_list_elements, dwz_list,
3261 dwz_list_elements);
3262
3263 if (types_list_elements)
3264 {
3265 /* We can only handle a single .debug_types when we have an
3266 index. */
3267 if (per_bfd->types.size () != 1)
3268 return 0;
3269
3270 dwarf2_section_info *section = &per_bfd->types[0];
3271
3272 create_signatured_type_table_from_index (per_bfd, section, types_list,
3273 types_list_elements);
3274 }
3275
3276 create_addrmap_from_index (per_objfile, map.get ());
3277
3278 per_bfd->index_table = std::move (map);
3279 per_bfd->using_index = 1;
3280 per_bfd->quick_file_names_table =
3281 create_quick_file_names_table (per_bfd->all_comp_units.size ());
3282
3283 /* Save partial symtabs in the per_bfd object, for the benefit of subsequent
3284 objfiles using the same BFD. */
3285 gdb_assert (per_bfd->partial_symtabs == nullptr);
3286 per_bfd->partial_symtabs = objfile->partial_symtabs;
3287
3288 return 1;
3289 }
3290
3291 /* die_reader_func for dw2_get_file_names. */
3292
3293 static void
3294 dw2_get_file_names_reader (const struct die_reader_specs *reader,
3295 const gdb_byte *info_ptr,
3296 struct die_info *comp_unit_die)
3297 {
3298 struct dwarf2_cu *cu = reader->cu;
3299 struct dwarf2_per_cu_data *this_cu = cu->per_cu;
3300 dwarf2_per_objfile *per_objfile = cu->per_objfile;
3301 struct dwarf2_per_cu_data *lh_cu;
3302 struct attribute *attr;
3303 void **slot;
3304 struct quick_file_names *qfn;
3305
3306 gdb_assert (! this_cu->is_debug_types);
3307
3308 /* Our callers never want to match partial units -- instead they
3309 will match the enclosing full CU. */
3310 if (comp_unit_die->tag == DW_TAG_partial_unit)
3311 {
3312 this_cu->v.quick->no_file_data = 1;
3313 return;
3314 }
3315
3316 lh_cu = this_cu;
3317 slot = NULL;
3318
3319 line_header_up lh;
3320 sect_offset line_offset {};
3321
3322 attr = dwarf2_attr (comp_unit_die, DW_AT_stmt_list, cu);
3323 if (attr != nullptr && attr->form_is_unsigned ())
3324 {
3325 struct quick_file_names find_entry;
3326
3327 line_offset = (sect_offset) attr->as_unsigned ();
3328
3329 /* We may have already read in this line header (TU line header sharing).
3330 If we have we're done. */
3331 find_entry.hash.dwo_unit = cu->dwo_unit;
3332 find_entry.hash.line_sect_off = line_offset;
3333 slot = htab_find_slot (per_objfile->per_bfd->quick_file_names_table.get (),
3334 &find_entry, INSERT);
3335 if (*slot != NULL)
3336 {
3337 lh_cu->v.quick->file_names = (struct quick_file_names *) *slot;
3338 return;
3339 }
3340
3341 lh = dwarf_decode_line_header (line_offset, cu);
3342 }
3343 if (lh == NULL)
3344 {
3345 lh_cu->v.quick->no_file_data = 1;
3346 return;
3347 }
3348
3349 qfn = XOBNEW (&per_objfile->per_bfd->obstack, struct quick_file_names);
3350 qfn->hash.dwo_unit = cu->dwo_unit;
3351 qfn->hash.line_sect_off = line_offset;
3352 gdb_assert (slot != NULL);
3353 *slot = qfn;
3354
3355 file_and_directory fnd = find_file_and_directory (comp_unit_die, cu);
3356
3357 int offset = 0;
3358 if (strcmp (fnd.name, "<unknown>") != 0)
3359 ++offset;
3360
3361 qfn->num_file_names = offset + lh->file_names_size ();
3362 qfn->file_names =
3363 XOBNEWVEC (&per_objfile->per_bfd->obstack, const char *,
3364 qfn->num_file_names);
3365 if (offset != 0)
3366 qfn->file_names[0] = xstrdup (fnd.name);
3367 for (int i = 0; i < lh->file_names_size (); ++i)
3368 qfn->file_names[i + offset] = lh->file_full_name (i + 1,
3369 fnd.comp_dir).release ();
3370 qfn->real_names = NULL;
3371
3372 lh_cu->v.quick->file_names = qfn;
3373 }
3374
3375 /* A helper for the "quick" functions which attempts to read the line
3376 table for THIS_CU. */
3377
3378 static struct quick_file_names *
3379 dw2_get_file_names (dwarf2_per_cu_data *this_cu,
3380 dwarf2_per_objfile *per_objfile)
3381 {
3382 /* This should never be called for TUs. */
3383 gdb_assert (! this_cu->is_debug_types);
3384 /* Nor type unit groups. */
3385 gdb_assert (! this_cu->type_unit_group_p ());
3386
3387 if (this_cu->v.quick->file_names != NULL)
3388 return this_cu->v.quick->file_names;
3389 /* If we know there is no line data, no point in looking again. */
3390 if (this_cu->v.quick->no_file_data)
3391 return NULL;
3392
3393 cutu_reader reader (this_cu, per_objfile);
3394 if (!reader.dummy_p)
3395 dw2_get_file_names_reader (&reader, reader.info_ptr, reader.comp_unit_die);
3396
3397 if (this_cu->v.quick->no_file_data)
3398 return NULL;
3399 return this_cu->v.quick->file_names;
3400 }
3401
3402 /* A helper for the "quick" functions which computes and caches the
3403 real path for a given file name from the line table. */
3404
3405 static const char *
3406 dw2_get_real_path (dwarf2_per_objfile *per_objfile,
3407 struct quick_file_names *qfn, int index)
3408 {
3409 if (qfn->real_names == NULL)
3410 qfn->real_names = OBSTACK_CALLOC (&per_objfile->per_bfd->obstack,
3411 qfn->num_file_names, const char *);
3412
3413 if (qfn->real_names[index] == NULL)
3414 qfn->real_names[index] = gdb_realpath (qfn->file_names[index]).release ();
3415
3416 return qfn->real_names[index];
3417 }
3418
3419 static struct symtab *
3420 dw2_find_last_source_symtab (struct objfile *objfile)
3421 {
3422 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3423 dwarf2_per_cu_data *dwarf_cu = per_objfile->per_bfd->all_comp_units.back ();
3424 compunit_symtab *cust = dw2_instantiate_symtab (dwarf_cu, per_objfile, false);
3425
3426 if (cust == NULL)
3427 return NULL;
3428
3429 return compunit_primary_filetab (cust);
3430 }
3431
3432 /* Traversal function for dw2_forget_cached_source_info. */
3433
3434 static int
3435 dw2_free_cached_file_names (void **slot, void *info)
3436 {
3437 struct quick_file_names *file_data = (struct quick_file_names *) *slot;
3438
3439 if (file_data->real_names)
3440 {
3441 int i;
3442
3443 for (i = 0; i < file_data->num_file_names; ++i)
3444 {
3445 xfree ((void*) file_data->real_names[i]);
3446 file_data->real_names[i] = NULL;
3447 }
3448 }
3449
3450 return 1;
3451 }
3452
3453 static void
3454 dw2_forget_cached_source_info (struct objfile *objfile)
3455 {
3456 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3457
3458 htab_traverse_noresize (per_objfile->per_bfd->quick_file_names_table.get (),
3459 dw2_free_cached_file_names, NULL);
3460 }
3461
3462 /* Helper function for dw2_map_symtabs_matching_filename that expands
3463 the symtabs and calls the iterator. */
3464
3465 static int
3466 dw2_map_expand_apply (struct objfile *objfile,
3467 struct dwarf2_per_cu_data *per_cu,
3468 const char *name, const char *real_path,
3469 gdb::function_view<bool (symtab *)> callback)
3470 {
3471 struct compunit_symtab *last_made = objfile->compunit_symtabs;
3472
3473 /* Don't visit already-expanded CUs. */
3474 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3475 if (per_objfile->symtab_set_p (per_cu))
3476 return 0;
3477
3478 /* This may expand more than one symtab, and we want to iterate over
3479 all of them. */
3480 dw2_instantiate_symtab (per_cu, per_objfile, false);
3481
3482 return iterate_over_some_symtabs (name, real_path, objfile->compunit_symtabs,
3483 last_made, callback);
3484 }
3485
3486 /* Implementation of the map_symtabs_matching_filename method. */
3487
3488 static bool
3489 dw2_map_symtabs_matching_filename
3490 (struct objfile *objfile, const char *name, const char *real_path,
3491 gdb::function_view<bool (symtab *)> callback)
3492 {
3493 const char *name_basename = lbasename (name);
3494 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3495
3496 /* The rule is CUs specify all the files, including those used by
3497 any TU, so there's no need to scan TUs here. */
3498
3499 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
3500 {
3501 /* We only need to look at symtabs not already expanded. */
3502 if (per_objfile->symtab_set_p (per_cu))
3503 continue;
3504
3505 quick_file_names *file_data = dw2_get_file_names (per_cu, per_objfile);
3506 if (file_data == NULL)
3507 continue;
3508
3509 for (int j = 0; j < file_data->num_file_names; ++j)
3510 {
3511 const char *this_name = file_data->file_names[j];
3512 const char *this_real_name;
3513
3514 if (compare_filenames_for_search (this_name, name))
3515 {
3516 if (dw2_map_expand_apply (objfile, per_cu, name, real_path,
3517 callback))
3518 return true;
3519 continue;
3520 }
3521
3522 /* Before we invoke realpath, which can get expensive when many
3523 files are involved, do a quick comparison of the basenames. */
3524 if (! basenames_may_differ
3525 && FILENAME_CMP (lbasename (this_name), name_basename) != 0)
3526 continue;
3527
3528 this_real_name = dw2_get_real_path (per_objfile, file_data, j);
3529 if (compare_filenames_for_search (this_real_name, name))
3530 {
3531 if (dw2_map_expand_apply (objfile, per_cu, name, real_path,
3532 callback))
3533 return true;
3534 continue;
3535 }
3536
3537 if (real_path != NULL)
3538 {
3539 gdb_assert (IS_ABSOLUTE_PATH (real_path));
3540 gdb_assert (IS_ABSOLUTE_PATH (name));
3541 if (this_real_name != NULL
3542 && FILENAME_CMP (real_path, this_real_name) == 0)
3543 {
3544 if (dw2_map_expand_apply (objfile, per_cu, name, real_path,
3545 callback))
3546 return true;
3547 continue;
3548 }
3549 }
3550 }
3551 }
3552
3553 return false;
3554 }
3555
3556 /* Struct used to manage iterating over all CUs looking for a symbol. */
3557
3558 struct dw2_symtab_iterator
3559 {
3560 /* The dwarf2_per_objfile owning the CUs we are iterating on. */
3561 dwarf2_per_objfile *per_objfile;
3562 /* If set, only look for symbols that match that block. Valid values are
3563 GLOBAL_BLOCK and STATIC_BLOCK. */
3564 gdb::optional<block_enum> block_index;
3565 /* The kind of symbol we're looking for. */
3566 domain_enum domain;
3567 /* The list of CUs from the index entry of the symbol,
3568 or NULL if not found. */
3569 offset_type *vec;
3570 /* The next element in VEC to look at. */
3571 int next;
3572 /* The number of elements in VEC, or zero if there is no match. */
3573 int length;
3574 /* Have we seen a global version of the symbol?
3575 If so we can ignore all further global instances.
3576 This is to work around gold/15646, inefficient gold-generated
3577 indices. */
3578 int global_seen;
3579 };
3580
3581 /* Initialize the index symtab iterator ITER, common part. */
3582
3583 static void
3584 dw2_symtab_iter_init_common (struct dw2_symtab_iterator *iter,
3585 dwarf2_per_objfile *per_objfile,
3586 gdb::optional<block_enum> block_index,
3587 domain_enum domain)
3588 {
3589 iter->per_objfile = per_objfile;
3590 iter->block_index = block_index;
3591 iter->domain = domain;
3592 iter->next = 0;
3593 iter->global_seen = 0;
3594 iter->vec = NULL;
3595 iter->length = 0;
3596 }
3597
3598 /* Initialize the index symtab iterator ITER, const char *NAME variant. */
3599
3600 static void
3601 dw2_symtab_iter_init (struct dw2_symtab_iterator *iter,
3602 dwarf2_per_objfile *per_objfile,
3603 gdb::optional<block_enum> block_index,
3604 domain_enum domain,
3605 const char *name)
3606 {
3607 dw2_symtab_iter_init_common (iter, per_objfile, block_index, domain);
3608
3609 mapped_index *index = per_objfile->per_bfd->index_table.get ();
3610 /* index is NULL if OBJF_READNOW. */
3611 if (index == NULL)
3612 return;
3613
3614 if (find_slot_in_mapped_hash (index, name, &iter->vec))
3615 iter->length = MAYBE_SWAP (*iter->vec);
3616 }
3617
3618 /* Initialize the index symtab iterator ITER, offset_type NAMEI variant. */
3619
3620 static void
3621 dw2_symtab_iter_init (struct dw2_symtab_iterator *iter,
3622 dwarf2_per_objfile *per_objfile,
3623 gdb::optional<block_enum> block_index,
3624 domain_enum domain, offset_type namei)
3625 {
3626 dw2_symtab_iter_init_common (iter, per_objfile, block_index, domain);
3627
3628 mapped_index *index = per_objfile->per_bfd->index_table.get ();
3629 /* index is NULL if OBJF_READNOW. */
3630 if (index == NULL)
3631 return;
3632
3633 gdb_assert (!index->symbol_name_slot_invalid (namei));
3634 const auto &bucket = index->symbol_table[namei];
3635
3636 iter->vec = (offset_type *) (index->constant_pool
3637 + MAYBE_SWAP (bucket.vec));
3638 iter->length = MAYBE_SWAP (*iter->vec);
3639 }
3640
3641 /* Return the next matching CU or NULL if there are no more. */
3642
3643 static struct dwarf2_per_cu_data *
3644 dw2_symtab_iter_next (struct dw2_symtab_iterator *iter)
3645 {
3646 dwarf2_per_objfile *per_objfile = iter->per_objfile;
3647
3648 for ( ; iter->next < iter->length; ++iter->next)
3649 {
3650 offset_type cu_index_and_attrs =
3651 MAYBE_SWAP (iter->vec[iter->next + 1]);
3652 offset_type cu_index = GDB_INDEX_CU_VALUE (cu_index_and_attrs);
3653 gdb_index_symbol_kind symbol_kind =
3654 GDB_INDEX_SYMBOL_KIND_VALUE (cu_index_and_attrs);
3655 /* Only check the symbol attributes if they're present.
3656 Indices prior to version 7 don't record them,
3657 and indices >= 7 may elide them for certain symbols
3658 (gold does this). */
3659 int attrs_valid =
3660 (per_objfile->per_bfd->index_table->version >= 7
3661 && symbol_kind != GDB_INDEX_SYMBOL_KIND_NONE);
3662
3663 /* Don't crash on bad data. */
3664 if (cu_index >= (per_objfile->per_bfd->all_comp_units.size ()
3665 + per_objfile->per_bfd->all_type_units.size ()))
3666 {
3667 complaint (_(".gdb_index entry has bad CU index"
3668 " [in module %s]"), objfile_name (per_objfile->objfile));
3669 continue;
3670 }
3671
3672 dwarf2_per_cu_data *per_cu = per_objfile->per_bfd->get_cutu (cu_index);
3673
3674 /* Skip if already read in. */
3675 if (per_objfile->symtab_set_p (per_cu))
3676 continue;
3677
3678 /* Check static vs global. */
3679 if (attrs_valid)
3680 {
3681 bool is_static = GDB_INDEX_SYMBOL_STATIC_VALUE (cu_index_and_attrs);
3682
3683 if (iter->block_index.has_value ())
3684 {
3685 bool want_static = *iter->block_index == STATIC_BLOCK;
3686
3687 if (is_static != want_static)
3688 continue;
3689 }
3690
3691 /* Work around gold/15646. */
3692 if (!is_static
3693 && symbol_kind == GDB_INDEX_SYMBOL_KIND_TYPE)
3694 {
3695 if (iter->global_seen)
3696 continue;
3697
3698 iter->global_seen = 1;
3699 }
3700 }
3701
3702 /* Only check the symbol's kind if it has one. */
3703 if (attrs_valid)
3704 {
3705 switch (iter->domain)
3706 {
3707 case VAR_DOMAIN:
3708 if (symbol_kind != GDB_INDEX_SYMBOL_KIND_VARIABLE
3709 && symbol_kind != GDB_INDEX_SYMBOL_KIND_FUNCTION
3710 /* Some types are also in VAR_DOMAIN. */
3711 && symbol_kind != GDB_INDEX_SYMBOL_KIND_TYPE)
3712 continue;
3713 break;
3714 case STRUCT_DOMAIN:
3715 if (symbol_kind != GDB_INDEX_SYMBOL_KIND_TYPE)
3716 continue;
3717 break;
3718 case LABEL_DOMAIN:
3719 if (symbol_kind != GDB_INDEX_SYMBOL_KIND_OTHER)
3720 continue;
3721 break;
3722 case MODULE_DOMAIN:
3723 if (symbol_kind != GDB_INDEX_SYMBOL_KIND_OTHER)
3724 continue;
3725 break;
3726 default:
3727 break;
3728 }
3729 }
3730
3731 ++iter->next;
3732 return per_cu;
3733 }
3734
3735 return NULL;
3736 }
3737
3738 static struct compunit_symtab *
3739 dw2_lookup_symbol (struct objfile *objfile, block_enum block_index,
3740 const char *name, domain_enum domain)
3741 {
3742 struct compunit_symtab *stab_best = NULL;
3743 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3744
3745 lookup_name_info lookup_name (name, symbol_name_match_type::FULL);
3746
3747 struct dw2_symtab_iterator iter;
3748 struct dwarf2_per_cu_data *per_cu;
3749
3750 dw2_symtab_iter_init (&iter, per_objfile, block_index, domain, name);
3751
3752 while ((per_cu = dw2_symtab_iter_next (&iter)) != NULL)
3753 {
3754 struct symbol *sym, *with_opaque = NULL;
3755 struct compunit_symtab *stab
3756 = dw2_instantiate_symtab (per_cu, per_objfile, false);
3757 const struct blockvector *bv = COMPUNIT_BLOCKVECTOR (stab);
3758 const struct block *block = BLOCKVECTOR_BLOCK (bv, block_index);
3759
3760 sym = block_find_symbol (block, name, domain,
3761 block_find_non_opaque_type_preferred,
3762 &with_opaque);
3763
3764 /* Some caution must be observed with overloaded functions
3765 and methods, since the index will not contain any overload
3766 information (but NAME might contain it). */
3767
3768 if (sym != NULL
3769 && SYMBOL_MATCHES_SEARCH_NAME (sym, lookup_name))
3770 return stab;
3771 if (with_opaque != NULL
3772 && SYMBOL_MATCHES_SEARCH_NAME (with_opaque, lookup_name))
3773 stab_best = stab;
3774
3775 /* Keep looking through other CUs. */
3776 }
3777
3778 return stab_best;
3779 }
3780
3781 static void
3782 dw2_print_stats (struct objfile *objfile)
3783 {
3784 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3785 int total = (per_objfile->per_bfd->all_comp_units.size ()
3786 + per_objfile->per_bfd->all_type_units.size ());
3787 int count = 0;
3788
3789 for (int i = 0; i < total; ++i)
3790 {
3791 dwarf2_per_cu_data *per_cu = per_objfile->per_bfd->get_cutu (i);
3792
3793 if (!per_objfile->symtab_set_p (per_cu))
3794 ++count;
3795 }
3796 printf_filtered (_(" Number of read CUs: %d\n"), total - count);
3797 printf_filtered (_(" Number of unread CUs: %d\n"), count);
3798 }
3799
3800 /* This dumps minimal information about the index.
3801 It is called via "mt print objfiles".
3802 One use is to verify .gdb_index has been loaded by the
3803 gdb.dwarf2/gdb-index.exp testcase. */
3804
3805 static void
3806 dw2_dump (struct objfile *objfile)
3807 {
3808 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3809
3810 gdb_assert (per_objfile->per_bfd->using_index);
3811 printf_filtered (".gdb_index:");
3812 if (per_objfile->per_bfd->index_table != NULL)
3813 {
3814 printf_filtered (" version %d\n",
3815 per_objfile->per_bfd->index_table->version);
3816 }
3817 else
3818 printf_filtered (" faked for \"readnow\"\n");
3819 printf_filtered ("\n");
3820 }
3821
3822 static void
3823 dw2_expand_symtabs_for_function (struct objfile *objfile,
3824 const char *func_name)
3825 {
3826 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3827
3828 struct dw2_symtab_iterator iter;
3829 struct dwarf2_per_cu_data *per_cu;
3830
3831 dw2_symtab_iter_init (&iter, per_objfile, {}, VAR_DOMAIN, func_name);
3832
3833 while ((per_cu = dw2_symtab_iter_next (&iter)) != NULL)
3834 dw2_instantiate_symtab (per_cu, per_objfile, false);
3835
3836 }
3837
3838 static void
3839 dw2_expand_all_symtabs (struct objfile *objfile)
3840 {
3841 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3842 int total_units = (per_objfile->per_bfd->all_comp_units.size ()
3843 + per_objfile->per_bfd->all_type_units.size ());
3844
3845 for (int i = 0; i < total_units; ++i)
3846 {
3847 dwarf2_per_cu_data *per_cu = per_objfile->per_bfd->get_cutu (i);
3848
3849 /* We don't want to directly expand a partial CU, because if we
3850 read it with the wrong language, then assertion failures can
3851 be triggered later on. See PR symtab/23010. So, tell
3852 dw2_instantiate_symtab to skip partial CUs -- any important
3853 partial CU will be read via DW_TAG_imported_unit anyway. */
3854 dw2_instantiate_symtab (per_cu, per_objfile, true);
3855 }
3856 }
3857
3858 static void
3859 dw2_expand_symtabs_with_fullname (struct objfile *objfile,
3860 const char *fullname)
3861 {
3862 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3863
3864 /* We don't need to consider type units here.
3865 This is only called for examining code, e.g. expand_line_sal.
3866 There can be an order of magnitude (or more) more type units
3867 than comp units, and we avoid them if we can. */
3868
3869 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
3870 {
3871 /* We only need to look at symtabs not already expanded. */
3872 if (per_objfile->symtab_set_p (per_cu))
3873 continue;
3874
3875 quick_file_names *file_data = dw2_get_file_names (per_cu, per_objfile);
3876 if (file_data == NULL)
3877 continue;
3878
3879 for (int j = 0; j < file_data->num_file_names; ++j)
3880 {
3881 const char *this_fullname = file_data->file_names[j];
3882
3883 if (filename_cmp (this_fullname, fullname) == 0)
3884 {
3885 dw2_instantiate_symtab (per_cu, per_objfile, false);
3886 break;
3887 }
3888 }
3889 }
3890 }
3891
3892 static void
3893 dw2_expand_symtabs_matching_symbol
3894 (mapped_index_base &index,
3895 const lookup_name_info &lookup_name_in,
3896 gdb::function_view<expand_symtabs_symbol_matcher_ftype> symbol_matcher,
3897 enum search_domain kind,
3898 gdb::function_view<bool (offset_type)> match_callback,
3899 dwarf2_per_objfile *per_objfile);
3900
3901 static void
3902 dw2_expand_symtabs_matching_one
3903 (dwarf2_per_cu_data *per_cu,
3904 dwarf2_per_objfile *per_objfile,
3905 gdb::function_view<expand_symtabs_file_matcher_ftype> file_matcher,
3906 gdb::function_view<expand_symtabs_exp_notify_ftype> expansion_notify);
3907
3908 static void
3909 dw2_map_matching_symbols
3910 (struct objfile *objfile,
3911 const lookup_name_info &name, domain_enum domain,
3912 int global,
3913 gdb::function_view<symbol_found_callback_ftype> callback,
3914 symbol_compare_ftype *ordered_compare)
3915 {
3916 /* Used for Ada. */
3917 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
3918
3919 const block_enum block_kind = global ? GLOBAL_BLOCK : STATIC_BLOCK;
3920
3921 if (per_objfile->per_bfd->index_table != nullptr)
3922 {
3923 mapped_index &index = *per_objfile->per_bfd->index_table;
3924
3925 const char *match_name = name.ada ().lookup_name ().c_str ();
3926 auto matcher = [&] (const char *symname)
3927 {
3928 if (ordered_compare == nullptr)
3929 return true;
3930 return ordered_compare (symname, match_name) == 0;
3931 };
3932
3933 dw2_expand_symtabs_matching_symbol (index, name, matcher, ALL_DOMAIN,
3934 [&] (offset_type namei)
3935 {
3936 struct dw2_symtab_iterator iter;
3937 struct dwarf2_per_cu_data *per_cu;
3938
3939 dw2_symtab_iter_init (&iter, per_objfile, block_kind, domain,
3940 namei);
3941 while ((per_cu = dw2_symtab_iter_next (&iter)) != NULL)
3942 dw2_expand_symtabs_matching_one (per_cu, per_objfile, nullptr,
3943 nullptr);
3944 return true;
3945 }, per_objfile);
3946 }
3947 else
3948 {
3949 /* We have -readnow: no .gdb_index, but no partial symtabs either. So,
3950 proceed assuming all symtabs have been read in. */
3951 }
3952
3953 for (compunit_symtab *cust : objfile->compunits ())
3954 {
3955 const struct block *block;
3956
3957 if (cust == NULL)
3958 continue;
3959 block = BLOCKVECTOR_BLOCK (COMPUNIT_BLOCKVECTOR (cust), block_kind);
3960 if (!iterate_over_symbols_terminated (block, name,
3961 domain, callback))
3962 return;
3963 }
3964 }
3965
3966 /* Starting from a search name, return the string that finds the upper
3967 bound of all strings that start with SEARCH_NAME in a sorted name
3968 list. Returns the empty string to indicate that the upper bound is
3969 the end of the list. */
3970
3971 static std::string
3972 make_sort_after_prefix_name (const char *search_name)
3973 {
3974 /* When looking to complete "func", we find the upper bound of all
3975 symbols that start with "func" by looking for where we'd insert
3976 the closest string that would follow "func" in lexicographical
3977 order. Usually, that's "func"-with-last-character-incremented,
3978 i.e. "fund". Mind non-ASCII characters, though. Usually those
3979 will be UTF-8 multi-byte sequences, but we can't be certain.
3980 Especially mind the 0xff character, which is a valid character in
3981 non-UTF-8 source character sets (e.g. Latin1 'ÿ'), and we can't
3982 rule out compilers allowing it in identifiers. Note that
3983 conveniently, strcmp/strcasecmp are specified to compare
3984 characters interpreted as unsigned char. So what we do is treat
3985 the whole string as a base 256 number composed of a sequence of
3986 base 256 "digits" and add 1 to it. I.e., adding 1 to 0xff wraps
3987 to 0, and carries 1 to the following more-significant position.
3988 If the very first character in SEARCH_NAME ends up incremented
3989 and carries/overflows, then the upper bound is the end of the
3990 list. The string after the empty string is also the empty
3991 string.
3992
3993 Some examples of this operation:
3994
3995 SEARCH_NAME => "+1" RESULT
3996
3997 "abc" => "abd"
3998 "ab\xff" => "ac"
3999 "\xff" "a" "\xff" => "\xff" "b"
4000 "\xff" => ""
4001 "\xff\xff" => ""
4002 "" => ""
4003
4004 Then, with these symbols for example:
4005
4006 func
4007 func1
4008 fund
4009
4010 completing "func" looks for symbols between "func" and
4011 "func"-with-last-character-incremented, i.e. "fund" (exclusive),
4012 which finds "func" and "func1", but not "fund".
4013
4014 And with:
4015
4016 funcÿ (Latin1 'ÿ' [0xff])
4017 funcÿ1
4018 fund
4019
4020 completing "funcÿ" looks for symbols between "funcÿ" and "fund"
4021 (exclusive), which finds "funcÿ" and "funcÿ1", but not "fund".
4022
4023 And with:
4024
4025 ÿÿ (Latin1 'ÿ' [0xff])
4026 ÿÿ1
4027
4028 completing "ÿ" or "ÿÿ" looks for symbols between between "ÿÿ" and
4029 the end of the list.
4030 */
4031 std::string after = search_name;
4032 while (!after.empty () && (unsigned char) after.back () == 0xff)
4033 after.pop_back ();
4034 if (!after.empty ())
4035 after.back () = (unsigned char) after.back () + 1;
4036 return after;
4037 }
4038
4039 /* See declaration. */
4040
4041 std::pair<std::vector<name_component>::const_iterator,
4042 std::vector<name_component>::const_iterator>
4043 mapped_index_base::find_name_components_bounds
4044 (const lookup_name_info &lookup_name_without_params, language lang,
4045 dwarf2_per_objfile *per_objfile) const
4046 {
4047 auto *name_cmp
4048 = this->name_components_casing == case_sensitive_on ? strcmp : strcasecmp;
4049
4050 const char *lang_name
4051 = lookup_name_without_params.language_lookup_name (lang);
4052
4053 /* Comparison function object for lower_bound that matches against a
4054 given symbol name. */
4055 auto lookup_compare_lower = [&] (const name_component &elem,
4056 const char *name)
4057 {
4058 const char *elem_qualified = this->symbol_name_at (elem.idx, per_objfile);
4059 const char *elem_name = elem_qualified + elem.name_offset;
4060 return name_cmp (elem_name, name) < 0;
4061 };
4062
4063 /* Comparison function object for upper_bound that matches against a
4064 given symbol name. */
4065 auto lookup_compare_upper = [&] (const char *name,
4066 const name_component &elem)
4067 {
4068 const char *elem_qualified = this->symbol_name_at (elem.idx, per_objfile);
4069 const char *elem_name = elem_qualified + elem.name_offset;
4070 return name_cmp (name, elem_name) < 0;
4071 };
4072
4073 auto begin = this->name_components.begin ();
4074 auto end = this->name_components.end ();
4075
4076 /* Find the lower bound. */
4077 auto lower = [&] ()
4078 {
4079 if (lookup_name_without_params.completion_mode () && lang_name[0] == '\0')
4080 return begin;
4081 else
4082 return std::lower_bound (begin, end, lang_name, lookup_compare_lower);
4083 } ();
4084
4085 /* Find the upper bound. */
4086 auto upper = [&] ()
4087 {
4088 if (lookup_name_without_params.completion_mode ())
4089 {
4090 /* In completion mode, we want UPPER to point past all
4091 symbols names that have the same prefix. I.e., with
4092 these symbols, and completing "func":
4093
4094 function << lower bound
4095 function1
4096 other_function << upper bound
4097
4098 We find the upper bound by looking for the insertion
4099 point of "func"-with-last-character-incremented,
4100 i.e. "fund". */
4101 std::string after = make_sort_after_prefix_name (lang_name);
4102 if (after.empty ())
4103 return end;
4104 return std::lower_bound (lower, end, after.c_str (),
4105 lookup_compare_lower);
4106 }
4107 else
4108 return std::upper_bound (lower, end, lang_name, lookup_compare_upper);
4109 } ();
4110
4111 return {lower, upper};
4112 }
4113
4114 /* See declaration. */
4115
4116 void
4117 mapped_index_base::build_name_components (dwarf2_per_objfile *per_objfile)
4118 {
4119 if (!this->name_components.empty ())
4120 return;
4121
4122 this->name_components_casing = case_sensitivity;
4123 auto *name_cmp
4124 = this->name_components_casing == case_sensitive_on ? strcmp : strcasecmp;
4125
4126 /* The code below only knows how to break apart components of C++
4127 symbol names (and other languages that use '::' as
4128 namespace/module separator) and Ada symbol names. */
4129 auto count = this->symbol_name_count ();
4130 for (offset_type idx = 0; idx < count; idx++)
4131 {
4132 if (this->symbol_name_slot_invalid (idx))
4133 continue;
4134
4135 const char *name = this->symbol_name_at (idx, per_objfile);
4136
4137 /* Add each name component to the name component table. */
4138 unsigned int previous_len = 0;
4139
4140 if (strstr (name, "::") != nullptr)
4141 {
4142 for (unsigned int current_len = cp_find_first_component (name);
4143 name[current_len] != '\0';
4144 current_len += cp_find_first_component (name + current_len))
4145 {
4146 gdb_assert (name[current_len] == ':');
4147 this->name_components.push_back ({previous_len, idx});
4148 /* Skip the '::'. */
4149 current_len += 2;
4150 previous_len = current_len;
4151 }
4152 }
4153 else
4154 {
4155 /* Handle the Ada encoded (aka mangled) form here. */
4156 for (const char *iter = strstr (name, "__");
4157 iter != nullptr;
4158 iter = strstr (iter, "__"))
4159 {
4160 this->name_components.push_back ({previous_len, idx});
4161 iter += 2;
4162 previous_len = iter - name;
4163 }
4164 }
4165
4166 this->name_components.push_back ({previous_len, idx});
4167 }
4168
4169 /* Sort name_components elements by name. */
4170 auto name_comp_compare = [&] (const name_component &left,
4171 const name_component &right)
4172 {
4173 const char *left_qualified
4174 = this->symbol_name_at (left.idx, per_objfile);
4175 const char *right_qualified
4176 = this->symbol_name_at (right.idx, per_objfile);
4177
4178 const char *left_name = left_qualified + left.name_offset;
4179 const char *right_name = right_qualified + right.name_offset;
4180
4181 return name_cmp (left_name, right_name) < 0;
4182 };
4183
4184 std::sort (this->name_components.begin (),
4185 this->name_components.end (),
4186 name_comp_compare);
4187 }
4188
4189 /* Helper for dw2_expand_symtabs_matching that works with a
4190 mapped_index_base instead of the containing objfile. This is split
4191 to a separate function in order to be able to unit test the
4192 name_components matching using a mock mapped_index_base. For each
4193 symbol name that matches, calls MATCH_CALLBACK, passing it the
4194 symbol's index in the mapped_index_base symbol table. */
4195
4196 static void
4197 dw2_expand_symtabs_matching_symbol
4198 (mapped_index_base &index,
4199 const lookup_name_info &lookup_name_in,
4200 gdb::function_view<expand_symtabs_symbol_matcher_ftype> symbol_matcher,
4201 enum search_domain kind,
4202 gdb::function_view<bool (offset_type)> match_callback,
4203 dwarf2_per_objfile *per_objfile)
4204 {
4205 lookup_name_info lookup_name_without_params
4206 = lookup_name_in.make_ignore_params ();
4207
4208 /* Build the symbol name component sorted vector, if we haven't
4209 yet. */
4210 index.build_name_components (per_objfile);
4211
4212 /* The same symbol may appear more than once in the range though.
4213 E.g., if we're looking for symbols that complete "w", and we have
4214 a symbol named "w1::w2", we'll find the two name components for
4215 that same symbol in the range. To be sure we only call the
4216 callback once per symbol, we first collect the symbol name
4217 indexes that matched in a temporary vector and ignore
4218 duplicates. */
4219 std::vector<offset_type> matches;
4220
4221 struct name_and_matcher
4222 {
4223 symbol_name_matcher_ftype *matcher;
4224 const char *name;
4225
4226 bool operator== (const name_and_matcher &other) const
4227 {
4228 return matcher == other.matcher && strcmp (name, other.name) == 0;
4229 }
4230 };
4231
4232 /* A vector holding all the different symbol name matchers, for all
4233 languages. */
4234 std::vector<name_and_matcher> matchers;
4235
4236 for (int i = 0; i < nr_languages; i++)
4237 {
4238 enum language lang_e = (enum language) i;
4239
4240 const language_defn *lang = language_def (lang_e);
4241 symbol_name_matcher_ftype *name_matcher
4242 = lang->get_symbol_name_matcher (lookup_name_without_params);
4243
4244 name_and_matcher key {
4245 name_matcher,
4246 lookup_name_without_params.language_lookup_name (lang_e)
4247 };
4248
4249 /* Don't insert the same comparison routine more than once.
4250 Note that we do this linear walk. This is not a problem in
4251 practice because the number of supported languages is
4252 low. */
4253 if (std::find (matchers.begin (), matchers.end (), key)
4254 != matchers.end ())
4255 continue;
4256 matchers.push_back (std::move (key));
4257
4258 auto bounds
4259 = index.find_name_components_bounds (lookup_name_without_params,
4260 lang_e, per_objfile);
4261
4262 /* Now for each symbol name in range, check to see if we have a name
4263 match, and if so, call the MATCH_CALLBACK callback. */
4264
4265 for (; bounds.first != bounds.second; ++bounds.first)
4266 {
4267 const char *qualified
4268 = index.symbol_name_at (bounds.first->idx, per_objfile);
4269
4270 if (!name_matcher (qualified, lookup_name_without_params, NULL)
4271 || (symbol_matcher != NULL && !symbol_matcher (qualified)))
4272 continue;
4273
4274 matches.push_back (bounds.first->idx);
4275 }
4276 }
4277
4278 std::sort (matches.begin (), matches.end ());
4279
4280 /* Finally call the callback, once per match. */
4281 ULONGEST prev = -1;
4282 for (offset_type idx : matches)
4283 {
4284 if (prev != idx)
4285 {
4286 if (!match_callback (idx))
4287 break;
4288 prev = idx;
4289 }
4290 }
4291
4292 /* Above we use a type wider than idx's for 'prev', since 0 and
4293 (offset_type)-1 are both possible values. */
4294 static_assert (sizeof (prev) > sizeof (offset_type), "");
4295 }
4296
4297 #if GDB_SELF_TEST
4298
4299 namespace selftests { namespace dw2_expand_symtabs_matching {
4300
4301 /* A mock .gdb_index/.debug_names-like name index table, enough to
4302 exercise dw2_expand_symtabs_matching_symbol, which works with the
4303 mapped_index_base interface. Builds an index from the symbol list
4304 passed as parameter to the constructor. */
4305 class mock_mapped_index : public mapped_index_base
4306 {
4307 public:
4308 mock_mapped_index (gdb::array_view<const char *> symbols)
4309 : m_symbol_table (symbols)
4310 {}
4311
4312 DISABLE_COPY_AND_ASSIGN (mock_mapped_index);
4313
4314 /* Return the number of names in the symbol table. */
4315 size_t symbol_name_count () const override
4316 {
4317 return m_symbol_table.size ();
4318 }
4319
4320 /* Get the name of the symbol at IDX in the symbol table. */
4321 const char *symbol_name_at
4322 (offset_type idx, dwarf2_per_objfile *per_objfile) const override
4323 {
4324 return m_symbol_table[idx];
4325 }
4326
4327 private:
4328 gdb::array_view<const char *> m_symbol_table;
4329 };
4330
4331 /* Convenience function that converts a NULL pointer to a "<null>"
4332 string, to pass to print routines. */
4333
4334 static const char *
4335 string_or_null (const char *str)
4336 {
4337 return str != NULL ? str : "<null>";
4338 }
4339
4340 /* Check if a lookup_name_info built from
4341 NAME/MATCH_TYPE/COMPLETION_MODE matches the symbols in the mock
4342 index. EXPECTED_LIST is the list of expected matches, in expected
4343 matching order. If no match expected, then an empty list is
4344 specified. Returns true on success. On failure prints a warning
4345 indicating the file:line that failed, and returns false. */
4346
4347 static bool
4348 check_match (const char *file, int line,
4349 mock_mapped_index &mock_index,
4350 const char *name, symbol_name_match_type match_type,
4351 bool completion_mode,
4352 std::initializer_list<const char *> expected_list,
4353 dwarf2_per_objfile *per_objfile)
4354 {
4355 lookup_name_info lookup_name (name, match_type, completion_mode);
4356
4357 bool matched = true;
4358
4359 auto mismatch = [&] (const char *expected_str,
4360 const char *got)
4361 {
4362 warning (_("%s:%d: match_type=%s, looking-for=\"%s\", "
4363 "expected=\"%s\", got=\"%s\"\n"),
4364 file, line,
4365 (match_type == symbol_name_match_type::FULL
4366 ? "FULL" : "WILD"),
4367 name, string_or_null (expected_str), string_or_null (got));
4368 matched = false;
4369 };
4370
4371 auto expected_it = expected_list.begin ();
4372 auto expected_end = expected_list.end ();
4373
4374 dw2_expand_symtabs_matching_symbol (mock_index, lookup_name,
4375 NULL, ALL_DOMAIN,
4376 [&] (offset_type idx)
4377 {
4378 const char *matched_name = mock_index.symbol_name_at (idx, per_objfile);
4379 const char *expected_str
4380 = expected_it == expected_end ? NULL : *expected_it++;
4381
4382 if (expected_str == NULL || strcmp (expected_str, matched_name) != 0)
4383 mismatch (expected_str, matched_name);
4384 return true;
4385 }, per_objfile);
4386
4387 const char *expected_str
4388 = expected_it == expected_end ? NULL : *expected_it++;
4389 if (expected_str != NULL)
4390 mismatch (expected_str, NULL);
4391
4392 return matched;
4393 }
4394
4395 /* The symbols added to the mock mapped_index for testing (in
4396 canonical form). */
4397 static const char *test_symbols[] = {
4398 "function",
4399 "std::bar",
4400 "std::zfunction",
4401 "std::zfunction2",
4402 "w1::w2",
4403 "ns::foo<char*>",
4404 "ns::foo<int>",
4405 "ns::foo<long>",
4406 "ns2::tmpl<int>::foo2",
4407 "(anonymous namespace)::A::B::C",
4408
4409 /* These are used to check that the increment-last-char in the
4410 matching algorithm for completion doesn't match "t1_fund" when
4411 completing "t1_func". */
4412 "t1_func",
4413 "t1_func1",
4414 "t1_fund",
4415 "t1_fund1",
4416
4417 /* A UTF-8 name with multi-byte sequences to make sure that
4418 cp-name-parser understands this as a single identifier ("função"
4419 is "function" in PT). */
4420 u8"u8função",
4421
4422 /* \377 (0xff) is Latin1 'ÿ'. */
4423 "yfunc\377",
4424
4425 /* \377 (0xff) is Latin1 'ÿ'. */
4426 "\377",
4427 "\377\377123",
4428
4429 /* A name with all sorts of complications. Starts with "z" to make
4430 it easier for the completion tests below. */
4431 #define Z_SYM_NAME \
4432 "z::std::tuple<(anonymous namespace)::ui*, std::bar<(anonymous namespace)::ui> >" \
4433 "::tuple<(anonymous namespace)::ui*, " \
4434 "std::default_delete<(anonymous namespace)::ui>, void>"
4435
4436 Z_SYM_NAME
4437 };
4438
4439 /* Returns true if the mapped_index_base::find_name_component_bounds
4440 method finds EXPECTED_SYMS in INDEX when looking for SEARCH_NAME,
4441 in completion mode. */
4442
4443 static bool
4444 check_find_bounds_finds (mapped_index_base &index,
4445 const char *search_name,
4446 gdb::array_view<const char *> expected_syms,
4447 dwarf2_per_objfile *per_objfile)
4448 {
4449 lookup_name_info lookup_name (search_name,
4450 symbol_name_match_type::FULL, true);
4451
4452 auto bounds = index.find_name_components_bounds (lookup_name,
4453 language_cplus,
4454 per_objfile);
4455
4456 size_t distance = std::distance (bounds.first, bounds.second);
4457 if (distance != expected_syms.size ())
4458 return false;
4459
4460 for (size_t exp_elem = 0; exp_elem < distance; exp_elem++)
4461 {
4462 auto nc_elem = bounds.first + exp_elem;
4463 const char *qualified = index.symbol_name_at (nc_elem->idx, per_objfile);
4464 if (strcmp (qualified, expected_syms[exp_elem]) != 0)
4465 return false;
4466 }
4467
4468 return true;
4469 }
4470
4471 /* Test the lower-level mapped_index::find_name_component_bounds
4472 method. */
4473
4474 static void
4475 test_mapped_index_find_name_component_bounds ()
4476 {
4477 mock_mapped_index mock_index (test_symbols);
4478
4479 mock_index.build_name_components (NULL /* per_objfile */);
4480
4481 /* Test the lower-level mapped_index::find_name_component_bounds
4482 method in completion mode. */
4483 {
4484 static const char *expected_syms[] = {
4485 "t1_func",
4486 "t1_func1",
4487 };
4488
4489 SELF_CHECK (check_find_bounds_finds
4490 (mock_index, "t1_func", expected_syms,
4491 NULL /* per_objfile */));
4492 }
4493
4494 /* Check that the increment-last-char in the name matching algorithm
4495 for completion doesn't get confused with Ansi1 'ÿ' / 0xff. */
4496 {
4497 static const char *expected_syms1[] = {
4498 "\377",
4499 "\377\377123",
4500 };
4501 SELF_CHECK (check_find_bounds_finds
4502 (mock_index, "\377", expected_syms1, NULL /* per_objfile */));
4503
4504 static const char *expected_syms2[] = {
4505 "\377\377123",
4506 };
4507 SELF_CHECK (check_find_bounds_finds
4508 (mock_index, "\377\377", expected_syms2,
4509 NULL /* per_objfile */));
4510 }
4511 }
4512
4513 /* Test dw2_expand_symtabs_matching_symbol. */
4514
4515 static void
4516 test_dw2_expand_symtabs_matching_symbol ()
4517 {
4518 mock_mapped_index mock_index (test_symbols);
4519
4520 /* We let all tests run until the end even if some fails, for debug
4521 convenience. */
4522 bool any_mismatch = false;
4523
4524 /* Create the expected symbols list (an initializer_list). Needed
4525 because lists have commas, and we need to pass them to CHECK,
4526 which is a macro. */
4527 #define EXPECT(...) { __VA_ARGS__ }
4528
4529 /* Wrapper for check_match that passes down the current
4530 __FILE__/__LINE__. */
4531 #define CHECK_MATCH(NAME, MATCH_TYPE, COMPLETION_MODE, EXPECTED_LIST) \
4532 any_mismatch |= !check_match (__FILE__, __LINE__, \
4533 mock_index, \
4534 NAME, MATCH_TYPE, COMPLETION_MODE, \
4535 EXPECTED_LIST, NULL)
4536
4537 /* Identity checks. */
4538 for (const char *sym : test_symbols)
4539 {
4540 /* Should be able to match all existing symbols. */
4541 CHECK_MATCH (sym, symbol_name_match_type::FULL, false,
4542 EXPECT (sym));
4543
4544 /* Should be able to match all existing symbols with
4545 parameters. */
4546 std::string with_params = std::string (sym) + "(int)";
4547 CHECK_MATCH (with_params.c_str (), symbol_name_match_type::FULL, false,
4548 EXPECT (sym));
4549
4550 /* Should be able to match all existing symbols with
4551 parameters and qualifiers. */
4552 with_params = std::string (sym) + " ( int ) const";
4553 CHECK_MATCH (with_params.c_str (), symbol_name_match_type::FULL, false,
4554 EXPECT (sym));
4555
4556 /* This should really find sym, but cp-name-parser.y doesn't
4557 know about lvalue/rvalue qualifiers yet. */
4558 with_params = std::string (sym) + " ( int ) &&";
4559 CHECK_MATCH (with_params.c_str (), symbol_name_match_type::FULL, false,
4560 {});
4561 }
4562
4563 /* Check that the name matching algorithm for completion doesn't get
4564 confused with Latin1 'ÿ' / 0xff. */
4565 {
4566 static const char str[] = "\377";
4567 CHECK_MATCH (str, symbol_name_match_type::FULL, true,
4568 EXPECT ("\377", "\377\377123"));
4569 }
4570
4571 /* Check that the increment-last-char in the matching algorithm for
4572 completion doesn't match "t1_fund" when completing "t1_func". */
4573 {
4574 static const char str[] = "t1_func";
4575 CHECK_MATCH (str, symbol_name_match_type::FULL, true,
4576 EXPECT ("t1_func", "t1_func1"));
4577 }
4578
4579 /* Check that completion mode works at each prefix of the expected
4580 symbol name. */
4581 {
4582 static const char str[] = "function(int)";
4583 size_t len = strlen (str);
4584 std::string lookup;
4585
4586 for (size_t i = 1; i < len; i++)
4587 {
4588 lookup.assign (str, i);
4589 CHECK_MATCH (lookup.c_str (), symbol_name_match_type::FULL, true,
4590 EXPECT ("function"));
4591 }
4592 }
4593
4594 /* While "w" is a prefix of both components, the match function
4595 should still only be called once. */
4596 {
4597 CHECK_MATCH ("w", symbol_name_match_type::FULL, true,
4598 EXPECT ("w1::w2"));
4599 CHECK_MATCH ("w", symbol_name_match_type::WILD, true,
4600 EXPECT ("w1::w2"));
4601 }
4602
4603 /* Same, with a "complicated" symbol. */
4604 {
4605 static const char str[] = Z_SYM_NAME;
4606 size_t len = strlen (str);
4607 std::string lookup;
4608
4609 for (size_t i = 1; i < len; i++)
4610 {
4611 lookup.assign (str, i);
4612 CHECK_MATCH (lookup.c_str (), symbol_name_match_type::FULL, true,
4613 EXPECT (Z_SYM_NAME));
4614 }
4615 }
4616
4617 /* In FULL mode, an incomplete symbol doesn't match. */
4618 {
4619 CHECK_MATCH ("std::zfunction(int", symbol_name_match_type::FULL, false,
4620 {});
4621 }
4622
4623 /* A complete symbol with parameters matches any overload, since the
4624 index has no overload info. */
4625 {
4626 CHECK_MATCH ("std::zfunction(int)", symbol_name_match_type::FULL, true,
4627 EXPECT ("std::zfunction", "std::zfunction2"));
4628 CHECK_MATCH ("zfunction(int)", symbol_name_match_type::WILD, true,
4629 EXPECT ("std::zfunction", "std::zfunction2"));
4630 CHECK_MATCH ("zfunc", symbol_name_match_type::WILD, true,
4631 EXPECT ("std::zfunction", "std::zfunction2"));
4632 }
4633
4634 /* Check that whitespace is ignored appropriately. A symbol with a
4635 template argument list. */
4636 {
4637 static const char expected[] = "ns::foo<int>";
4638 CHECK_MATCH ("ns :: foo < int > ", symbol_name_match_type::FULL, false,
4639 EXPECT (expected));
4640 CHECK_MATCH ("foo < int > ", symbol_name_match_type::WILD, false,
4641 EXPECT (expected));
4642 }
4643
4644 /* Check that whitespace is ignored appropriately. A symbol with a
4645 template argument list that includes a pointer. */
4646 {
4647 static const char expected[] = "ns::foo<char*>";
4648 /* Try both completion and non-completion modes. */
4649 static const bool completion_mode[2] = {false, true};
4650 for (size_t i = 0; i < 2; i++)
4651 {
4652 CHECK_MATCH ("ns :: foo < char * >", symbol_name_match_type::FULL,
4653 completion_mode[i], EXPECT (expected));
4654 CHECK_MATCH ("foo < char * >", symbol_name_match_type::WILD,
4655 completion_mode[i], EXPECT (expected));
4656
4657 CHECK_MATCH ("ns :: foo < char * > (int)", symbol_name_match_type::FULL,
4658 completion_mode[i], EXPECT (expected));
4659 CHECK_MATCH ("foo < char * > (int)", symbol_name_match_type::WILD,
4660 completion_mode[i], EXPECT (expected));
4661 }
4662 }
4663
4664 {
4665 /* Check method qualifiers are ignored. */
4666 static const char expected[] = "ns::foo<char*>";
4667 CHECK_MATCH ("ns :: foo < char * > ( int ) const",
4668 symbol_name_match_type::FULL, true, EXPECT (expected));
4669 CHECK_MATCH ("ns :: foo < char * > ( int ) &&",
4670 symbol_name_match_type::FULL, true, EXPECT (expected));
4671 CHECK_MATCH ("foo < char * > ( int ) const",
4672 symbol_name_match_type::WILD, true, EXPECT (expected));
4673 CHECK_MATCH ("foo < char * > ( int ) &&",
4674 symbol_name_match_type::WILD, true, EXPECT (expected));
4675 }
4676
4677 /* Test lookup names that don't match anything. */
4678 {
4679 CHECK_MATCH ("bar2", symbol_name_match_type::WILD, false,
4680 {});
4681
4682 CHECK_MATCH ("doesntexist", symbol_name_match_type::FULL, false,
4683 {});
4684 }
4685
4686 /* Some wild matching tests, exercising "(anonymous namespace)",
4687 which should not be confused with a parameter list. */
4688 {
4689 static const char *syms[] = {
4690 "A::B::C",
4691 "B::C",
4692 "C",
4693 "A :: B :: C ( int )",
4694 "B :: C ( int )",
4695 "C ( int )",
4696 };
4697
4698 for (const char *s : syms)
4699 {
4700 CHECK_MATCH (s, symbol_name_match_type::WILD, false,
4701 EXPECT ("(anonymous namespace)::A::B::C"));
4702 }
4703 }
4704
4705 {
4706 static const char expected[] = "ns2::tmpl<int>::foo2";
4707 CHECK_MATCH ("tmp", symbol_name_match_type::WILD, true,
4708 EXPECT (expected));
4709 CHECK_MATCH ("tmpl<", symbol_name_match_type::WILD, true,
4710 EXPECT (expected));
4711 }
4712
4713 SELF_CHECK (!any_mismatch);
4714
4715 #undef EXPECT
4716 #undef CHECK_MATCH
4717 }
4718
4719 static void
4720 run_test ()
4721 {
4722 test_mapped_index_find_name_component_bounds ();
4723 test_dw2_expand_symtabs_matching_symbol ();
4724 }
4725
4726 }} // namespace selftests::dw2_expand_symtabs_matching
4727
4728 #endif /* GDB_SELF_TEST */
4729
4730 /* If FILE_MATCHER is NULL or if PER_CU has
4731 dwarf2_per_cu_quick_data::MARK set (see
4732 dw_expand_symtabs_matching_file_matcher), expand the CU and call
4733 EXPANSION_NOTIFY on it. */
4734
4735 static void
4736 dw2_expand_symtabs_matching_one
4737 (dwarf2_per_cu_data *per_cu,
4738 dwarf2_per_objfile *per_objfile,
4739 gdb::function_view<expand_symtabs_file_matcher_ftype> file_matcher,
4740 gdb::function_view<expand_symtabs_exp_notify_ftype> expansion_notify)
4741 {
4742 if (file_matcher == NULL || per_cu->v.quick->mark)
4743 {
4744 bool symtab_was_null = !per_objfile->symtab_set_p (per_cu);
4745
4746 compunit_symtab *symtab
4747 = dw2_instantiate_symtab (per_cu, per_objfile, false);
4748 gdb_assert (symtab != nullptr);
4749
4750 if (expansion_notify != NULL && symtab_was_null)
4751 expansion_notify (symtab);
4752 }
4753 }
4754
4755 /* Helper for dw2_expand_matching symtabs. Called on each symbol
4756 matched, to expand corresponding CUs that were marked. IDX is the
4757 index of the symbol name that matched. */
4758
4759 static void
4760 dw2_expand_marked_cus
4761 (dwarf2_per_objfile *per_objfile, offset_type idx,
4762 gdb::function_view<expand_symtabs_file_matcher_ftype> file_matcher,
4763 gdb::function_view<expand_symtabs_exp_notify_ftype> expansion_notify,
4764 search_domain kind)
4765 {
4766 offset_type *vec, vec_len, vec_idx;
4767 bool global_seen = false;
4768 mapped_index &index = *per_objfile->per_bfd->index_table;
4769
4770 vec = (offset_type *) (index.constant_pool
4771 + MAYBE_SWAP (index.symbol_table[idx].vec));
4772 vec_len = MAYBE_SWAP (vec[0]);
4773 for (vec_idx = 0; vec_idx < vec_len; ++vec_idx)
4774 {
4775 offset_type cu_index_and_attrs = MAYBE_SWAP (vec[vec_idx + 1]);
4776 /* This value is only valid for index versions >= 7. */
4777 int is_static = GDB_INDEX_SYMBOL_STATIC_VALUE (cu_index_and_attrs);
4778 gdb_index_symbol_kind symbol_kind =
4779 GDB_INDEX_SYMBOL_KIND_VALUE (cu_index_and_attrs);
4780 int cu_index = GDB_INDEX_CU_VALUE (cu_index_and_attrs);
4781 /* Only check the symbol attributes if they're present.
4782 Indices prior to version 7 don't record them,
4783 and indices >= 7 may elide them for certain symbols
4784 (gold does this). */
4785 int attrs_valid =
4786 (index.version >= 7
4787 && symbol_kind != GDB_INDEX_SYMBOL_KIND_NONE);
4788
4789 /* Work around gold/15646. */
4790 if (attrs_valid
4791 && !is_static
4792 && symbol_kind == GDB_INDEX_SYMBOL_KIND_TYPE)
4793 {
4794 if (global_seen)
4795 continue;
4796
4797 global_seen = true;
4798 }
4799
4800 /* Only check the symbol's kind if it has one. */
4801 if (attrs_valid)
4802 {
4803 switch (kind)
4804 {
4805 case VARIABLES_DOMAIN:
4806 if (symbol_kind != GDB_INDEX_SYMBOL_KIND_VARIABLE)
4807 continue;
4808 break;
4809 case FUNCTIONS_DOMAIN:
4810 if (symbol_kind != GDB_INDEX_SYMBOL_KIND_FUNCTION)
4811 continue;
4812 break;
4813 case TYPES_DOMAIN:
4814 if (symbol_kind != GDB_INDEX_SYMBOL_KIND_TYPE)
4815 continue;
4816 break;
4817 case MODULES_DOMAIN:
4818 if (symbol_kind != GDB_INDEX_SYMBOL_KIND_OTHER)
4819 continue;
4820 break;
4821 default:
4822 break;
4823 }
4824 }
4825
4826 /* Don't crash on bad data. */
4827 if (cu_index >= (per_objfile->per_bfd->all_comp_units.size ()
4828 + per_objfile->per_bfd->all_type_units.size ()))
4829 {
4830 complaint (_(".gdb_index entry has bad CU index"
4831 " [in module %s]"), objfile_name (per_objfile->objfile));
4832 continue;
4833 }
4834
4835 dwarf2_per_cu_data *per_cu = per_objfile->per_bfd->get_cutu (cu_index);
4836 dw2_expand_symtabs_matching_one (per_cu, per_objfile, file_matcher,
4837 expansion_notify);
4838 }
4839 }
4840
4841 /* If FILE_MATCHER is non-NULL, set all the
4842 dwarf2_per_cu_quick_data::MARK of the current DWARF2_PER_OBJFILE
4843 that match FILE_MATCHER. */
4844
4845 static void
4846 dw_expand_symtabs_matching_file_matcher
4847 (dwarf2_per_objfile *per_objfile,
4848 gdb::function_view<expand_symtabs_file_matcher_ftype> file_matcher)
4849 {
4850 if (file_matcher == NULL)
4851 return;
4852
4853 htab_up visited_found (htab_create_alloc (10, htab_hash_pointer,
4854 htab_eq_pointer,
4855 NULL, xcalloc, xfree));
4856 htab_up visited_not_found (htab_create_alloc (10, htab_hash_pointer,
4857 htab_eq_pointer,
4858 NULL, xcalloc, xfree));
4859
4860 /* The rule is CUs specify all the files, including those used by
4861 any TU, so there's no need to scan TUs here. */
4862
4863 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
4864 {
4865 QUIT;
4866
4867 per_cu->v.quick->mark = 0;
4868
4869 /* We only need to look at symtabs not already expanded. */
4870 if (per_objfile->symtab_set_p (per_cu))
4871 continue;
4872
4873 quick_file_names *file_data = dw2_get_file_names (per_cu, per_objfile);
4874 if (file_data == NULL)
4875 continue;
4876
4877 if (htab_find (visited_not_found.get (), file_data) != NULL)
4878 continue;
4879 else if (htab_find (visited_found.get (), file_data) != NULL)
4880 {
4881 per_cu->v.quick->mark = 1;
4882 continue;
4883 }
4884
4885 for (int j = 0; j < file_data->num_file_names; ++j)
4886 {
4887 const char *this_real_name;
4888
4889 if (file_matcher (file_data->file_names[j], false))
4890 {
4891 per_cu->v.quick->mark = 1;
4892 break;
4893 }
4894
4895 /* Before we invoke realpath, which can get expensive when many
4896 files are involved, do a quick comparison of the basenames. */
4897 if (!basenames_may_differ
4898 && !file_matcher (lbasename (file_data->file_names[j]),
4899 true))
4900 continue;
4901
4902 this_real_name = dw2_get_real_path (per_objfile, file_data, j);
4903 if (file_matcher (this_real_name, false))
4904 {
4905 per_cu->v.quick->mark = 1;
4906 break;
4907 }
4908 }
4909
4910 void **slot = htab_find_slot (per_cu->v.quick->mark
4911 ? visited_found.get ()
4912 : visited_not_found.get (),
4913 file_data, INSERT);
4914 *slot = file_data;
4915 }
4916 }
4917
4918 static void
4919 dw2_expand_symtabs_matching
4920 (struct objfile *objfile,
4921 gdb::function_view<expand_symtabs_file_matcher_ftype> file_matcher,
4922 const lookup_name_info *lookup_name,
4923 gdb::function_view<expand_symtabs_symbol_matcher_ftype> symbol_matcher,
4924 gdb::function_view<expand_symtabs_exp_notify_ftype> expansion_notify,
4925 enum search_domain kind)
4926 {
4927 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
4928
4929 /* index_table is NULL if OBJF_READNOW. */
4930 if (!per_objfile->per_bfd->index_table)
4931 return;
4932
4933 dw_expand_symtabs_matching_file_matcher (per_objfile, file_matcher);
4934
4935 if (symbol_matcher == NULL && lookup_name == NULL)
4936 {
4937 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
4938 {
4939 QUIT;
4940
4941 dw2_expand_symtabs_matching_one (per_cu, per_objfile,
4942 file_matcher, expansion_notify);
4943 }
4944 return;
4945 }
4946
4947 mapped_index &index = *per_objfile->per_bfd->index_table;
4948
4949 dw2_expand_symtabs_matching_symbol (index, *lookup_name,
4950 symbol_matcher,
4951 kind, [&] (offset_type idx)
4952 {
4953 dw2_expand_marked_cus (per_objfile, idx, file_matcher, expansion_notify,
4954 kind);
4955 return true;
4956 }, per_objfile);
4957 }
4958
4959 /* A helper for dw2_find_pc_sect_compunit_symtab which finds the most specific
4960 symtab. */
4961
4962 static struct compunit_symtab *
4963 recursively_find_pc_sect_compunit_symtab (struct compunit_symtab *cust,
4964 CORE_ADDR pc)
4965 {
4966 int i;
4967
4968 if (COMPUNIT_BLOCKVECTOR (cust) != NULL
4969 && blockvector_contains_pc (COMPUNIT_BLOCKVECTOR (cust), pc))
4970 return cust;
4971
4972 if (cust->includes == NULL)
4973 return NULL;
4974
4975 for (i = 0; cust->includes[i]; ++i)
4976 {
4977 struct compunit_symtab *s = cust->includes[i];
4978
4979 s = recursively_find_pc_sect_compunit_symtab (s, pc);
4980 if (s != NULL)
4981 return s;
4982 }
4983
4984 return NULL;
4985 }
4986
4987 static struct compunit_symtab *
4988 dw2_find_pc_sect_compunit_symtab (struct objfile *objfile,
4989 struct bound_minimal_symbol msymbol,
4990 CORE_ADDR pc,
4991 struct obj_section *section,
4992 int warn_if_readin)
4993 {
4994 struct dwarf2_per_cu_data *data;
4995 struct compunit_symtab *result;
4996
4997 if (!objfile->partial_symtabs->psymtabs_addrmap)
4998 return NULL;
4999
5000 CORE_ADDR baseaddr = objfile->text_section_offset ();
5001 data = (struct dwarf2_per_cu_data *) addrmap_find
5002 (objfile->partial_symtabs->psymtabs_addrmap, pc - baseaddr);
5003 if (!data)
5004 return NULL;
5005
5006 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
5007 if (warn_if_readin && per_objfile->symtab_set_p (data))
5008 warning (_("(Internal error: pc %s in read in CU, but not in symtab.)"),
5009 paddress (objfile->arch (), pc));
5010
5011 result = recursively_find_pc_sect_compunit_symtab
5012 (dw2_instantiate_symtab (data, per_objfile, false), pc);
5013
5014 gdb_assert (result != NULL);
5015 return result;
5016 }
5017
5018 static void
5019 dw2_map_symbol_filenames (struct objfile *objfile, symbol_filename_ftype *fun,
5020 void *data, int need_fullname)
5021 {
5022 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
5023
5024 if (!per_objfile->per_bfd->filenames_cache)
5025 {
5026 per_objfile->per_bfd->filenames_cache.emplace ();
5027
5028 htab_up visited (htab_create_alloc (10,
5029 htab_hash_pointer, htab_eq_pointer,
5030 NULL, xcalloc, xfree));
5031
5032 /* The rule is CUs specify all the files, including those used
5033 by any TU, so there's no need to scan TUs here. We can
5034 ignore file names coming from already-expanded CUs. */
5035
5036 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
5037 {
5038 if (per_objfile->symtab_set_p (per_cu))
5039 {
5040 void **slot = htab_find_slot (visited.get (),
5041 per_cu->v.quick->file_names,
5042 INSERT);
5043
5044 *slot = per_cu->v.quick->file_names;
5045 }
5046 }
5047
5048 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
5049 {
5050 /* We only need to look at symtabs not already expanded. */
5051 if (per_objfile->symtab_set_p (per_cu))
5052 continue;
5053
5054 quick_file_names *file_data
5055 = dw2_get_file_names (per_cu, per_objfile);
5056 if (file_data == NULL)
5057 continue;
5058
5059 void **slot = htab_find_slot (visited.get (), file_data, INSERT);
5060 if (*slot)
5061 {
5062 /* Already visited. */
5063 continue;
5064 }
5065 *slot = file_data;
5066
5067 for (int j = 0; j < file_data->num_file_names; ++j)
5068 {
5069 const char *filename = file_data->file_names[j];
5070 per_objfile->per_bfd->filenames_cache->seen (filename);
5071 }
5072 }
5073 }
5074
5075 per_objfile->per_bfd->filenames_cache->traverse ([&] (const char *filename)
5076 {
5077 gdb::unique_xmalloc_ptr<char> this_real_name;
5078
5079 if (need_fullname)
5080 this_real_name = gdb_realpath (filename);
5081 (*fun) (filename, this_real_name.get (), data);
5082 });
5083 }
5084
5085 static int
5086 dw2_has_symbols (struct objfile *objfile)
5087 {
5088 return 1;
5089 }
5090
5091 const struct quick_symbol_functions dwarf2_gdb_index_functions =
5092 {
5093 dw2_has_symbols,
5094 dw2_find_last_source_symtab,
5095 dw2_forget_cached_source_info,
5096 dw2_map_symtabs_matching_filename,
5097 dw2_lookup_symbol,
5098 NULL,
5099 dw2_print_stats,
5100 dw2_dump,
5101 dw2_expand_symtabs_for_function,
5102 dw2_expand_all_symtabs,
5103 dw2_expand_symtabs_with_fullname,
5104 dw2_map_matching_symbols,
5105 dw2_expand_symtabs_matching,
5106 dw2_find_pc_sect_compunit_symtab,
5107 NULL,
5108 dw2_map_symbol_filenames
5109 };
5110
5111 /* DWARF-5 debug_names reader. */
5112
5113 /* DWARF-5 augmentation string for GDB's DW_IDX_GNU_* extension. */
5114 static const gdb_byte dwarf5_augmentation[] = { 'G', 'D', 'B', 0 };
5115
5116 /* A helper function that reads the .debug_names section in SECTION
5117 and fills in MAP. FILENAME is the name of the file containing the
5118 section; it is used for error reporting.
5119
5120 Returns true if all went well, false otherwise. */
5121
5122 static bool
5123 read_debug_names_from_section (struct objfile *objfile,
5124 const char *filename,
5125 struct dwarf2_section_info *section,
5126 mapped_debug_names &map)
5127 {
5128 if (section->empty ())
5129 return false;
5130
5131 /* Older elfutils strip versions could keep the section in the main
5132 executable while splitting it for the separate debug info file. */
5133 if ((section->get_flags () & SEC_HAS_CONTENTS) == 0)
5134 return false;
5135
5136 section->read (objfile);
5137
5138 map.dwarf5_byte_order = gdbarch_byte_order (objfile->arch ());
5139
5140 const gdb_byte *addr = section->buffer;
5141
5142 bfd *const abfd = section->get_bfd_owner ();
5143
5144 unsigned int bytes_read;
5145 LONGEST length = read_initial_length (abfd, addr, &bytes_read);
5146 addr += bytes_read;
5147
5148 map.dwarf5_is_dwarf64 = bytes_read != 4;
5149 map.offset_size = map.dwarf5_is_dwarf64 ? 8 : 4;
5150 if (bytes_read + length != section->size)
5151 {
5152 /* There may be multiple per-CU indices. */
5153 warning (_("Section .debug_names in %s length %s does not match "
5154 "section length %s, ignoring .debug_names."),
5155 filename, plongest (bytes_read + length),
5156 pulongest (section->size));
5157 return false;
5158 }
5159
5160 /* The version number. */
5161 uint16_t version = read_2_bytes (abfd, addr);
5162 addr += 2;
5163 if (version != 5)
5164 {
5165 warning (_("Section .debug_names in %s has unsupported version %d, "
5166 "ignoring .debug_names."),
5167 filename, version);
5168 return false;
5169 }
5170
5171 /* Padding. */
5172 uint16_t padding = read_2_bytes (abfd, addr);
5173 addr += 2;
5174 if (padding != 0)
5175 {
5176 warning (_("Section .debug_names in %s has unsupported padding %d, "
5177 "ignoring .debug_names."),
5178 filename, padding);
5179 return false;
5180 }
5181
5182 /* comp_unit_count - The number of CUs in the CU list. */
5183 map.cu_count = read_4_bytes (abfd, addr);
5184 addr += 4;
5185
5186 /* local_type_unit_count - The number of TUs in the local TU
5187 list. */
5188 map.tu_count = read_4_bytes (abfd, addr);
5189 addr += 4;
5190
5191 /* foreign_type_unit_count - The number of TUs in the foreign TU
5192 list. */
5193 uint32_t foreign_tu_count = read_4_bytes (abfd, addr);
5194 addr += 4;
5195 if (foreign_tu_count != 0)
5196 {
5197 warning (_("Section .debug_names in %s has unsupported %lu foreign TUs, "
5198 "ignoring .debug_names."),
5199 filename, static_cast<unsigned long> (foreign_tu_count));
5200 return false;
5201 }
5202
5203 /* bucket_count - The number of hash buckets in the hash lookup
5204 table. */
5205 map.bucket_count = read_4_bytes (abfd, addr);
5206 addr += 4;
5207
5208 /* name_count - The number of unique names in the index. */
5209 map.name_count = read_4_bytes (abfd, addr);
5210 addr += 4;
5211
5212 /* abbrev_table_size - The size in bytes of the abbreviations
5213 table. */
5214 uint32_t abbrev_table_size = read_4_bytes (abfd, addr);
5215 addr += 4;
5216
5217 /* augmentation_string_size - The size in bytes of the augmentation
5218 string. This value is rounded up to a multiple of 4. */
5219 uint32_t augmentation_string_size = read_4_bytes (abfd, addr);
5220 addr += 4;
5221 map.augmentation_is_gdb = ((augmentation_string_size
5222 == sizeof (dwarf5_augmentation))
5223 && memcmp (addr, dwarf5_augmentation,
5224 sizeof (dwarf5_augmentation)) == 0);
5225 augmentation_string_size += (-augmentation_string_size) & 3;
5226 addr += augmentation_string_size;
5227
5228 /* List of CUs */
5229 map.cu_table_reordered = addr;
5230 addr += map.cu_count * map.offset_size;
5231
5232 /* List of Local TUs */
5233 map.tu_table_reordered = addr;
5234 addr += map.tu_count * map.offset_size;
5235
5236 /* Hash Lookup Table */
5237 map.bucket_table_reordered = reinterpret_cast<const uint32_t *> (addr);
5238 addr += map.bucket_count * 4;
5239 map.hash_table_reordered = reinterpret_cast<const uint32_t *> (addr);
5240 addr += map.name_count * 4;
5241
5242 /* Name Table */
5243 map.name_table_string_offs_reordered = addr;
5244 addr += map.name_count * map.offset_size;
5245 map.name_table_entry_offs_reordered = addr;
5246 addr += map.name_count * map.offset_size;
5247
5248 const gdb_byte *abbrev_table_start = addr;
5249 for (;;)
5250 {
5251 const ULONGEST index_num = read_unsigned_leb128 (abfd, addr, &bytes_read);
5252 addr += bytes_read;
5253 if (index_num == 0)
5254 break;
5255
5256 const auto insertpair
5257 = map.abbrev_map.emplace (index_num, mapped_debug_names::index_val ());
5258 if (!insertpair.second)
5259 {
5260 warning (_("Section .debug_names in %s has duplicate index %s, "
5261 "ignoring .debug_names."),
5262 filename, pulongest (index_num));
5263 return false;
5264 }
5265 mapped_debug_names::index_val &indexval = insertpair.first->second;
5266 indexval.dwarf_tag = read_unsigned_leb128 (abfd, addr, &bytes_read);
5267 addr += bytes_read;
5268
5269 for (;;)
5270 {
5271 mapped_debug_names::index_val::attr attr;
5272 attr.dw_idx = read_unsigned_leb128 (abfd, addr, &bytes_read);
5273 addr += bytes_read;
5274 attr.form = read_unsigned_leb128 (abfd, addr, &bytes_read);
5275 addr += bytes_read;
5276 if (attr.form == DW_FORM_implicit_const)
5277 {
5278 attr.implicit_const = read_signed_leb128 (abfd, addr,
5279 &bytes_read);
5280 addr += bytes_read;
5281 }
5282 if (attr.dw_idx == 0 && attr.form == 0)
5283 break;
5284 indexval.attr_vec.push_back (std::move (attr));
5285 }
5286 }
5287 if (addr != abbrev_table_start + abbrev_table_size)
5288 {
5289 warning (_("Section .debug_names in %s has abbreviation_table "
5290 "of size %s vs. written as %u, ignoring .debug_names."),
5291 filename, plongest (addr - abbrev_table_start),
5292 abbrev_table_size);
5293 return false;
5294 }
5295 map.entry_pool = addr;
5296
5297 return true;
5298 }
5299
5300 /* A helper for create_cus_from_debug_names that handles the MAP's CU
5301 list. */
5302
5303 static void
5304 create_cus_from_debug_names_list (dwarf2_per_bfd *per_bfd,
5305 const mapped_debug_names &map,
5306 dwarf2_section_info &section,
5307 bool is_dwz)
5308 {
5309 if (!map.augmentation_is_gdb)
5310 {
5311 for (uint32_t i = 0; i < map.cu_count; ++i)
5312 {
5313 sect_offset sect_off
5314 = (sect_offset) (extract_unsigned_integer
5315 (map.cu_table_reordered + i * map.offset_size,
5316 map.offset_size,
5317 map.dwarf5_byte_order));
5318 /* We don't know the length of the CU, because the CU list in a
5319 .debug_names index can be incomplete, so we can't use the start of
5320 the next CU as end of this CU. We create the CUs here with length 0,
5321 and in cutu_reader::cutu_reader we'll fill in the actual length. */
5322 dwarf2_per_cu_data *per_cu
5323 = create_cu_from_index_list (per_bfd, &section, is_dwz, sect_off, 0);
5324 per_bfd->all_comp_units.push_back (per_cu);
5325 }
5326 }
5327
5328 sect_offset sect_off_prev;
5329 for (uint32_t i = 0; i <= map.cu_count; ++i)
5330 {
5331 sect_offset sect_off_next;
5332 if (i < map.cu_count)
5333 {
5334 sect_off_next
5335 = (sect_offset) (extract_unsigned_integer
5336 (map.cu_table_reordered + i * map.offset_size,
5337 map.offset_size,
5338 map.dwarf5_byte_order));
5339 }
5340 else
5341 sect_off_next = (sect_offset) section.size;
5342 if (i >= 1)
5343 {
5344 const ULONGEST length = sect_off_next - sect_off_prev;
5345 dwarf2_per_cu_data *per_cu
5346 = create_cu_from_index_list (per_bfd, &section, is_dwz,
5347 sect_off_prev, length);
5348 per_bfd->all_comp_units.push_back (per_cu);
5349 }
5350 sect_off_prev = sect_off_next;
5351 }
5352 }
5353
5354 /* Read the CU list from the mapped index, and use it to create all
5355 the CU objects for this dwarf2_per_objfile. */
5356
5357 static void
5358 create_cus_from_debug_names (dwarf2_per_bfd *per_bfd,
5359 const mapped_debug_names &map,
5360 const mapped_debug_names &dwz_map)
5361 {
5362 gdb_assert (per_bfd->all_comp_units.empty ());
5363 per_bfd->all_comp_units.reserve (map.cu_count + dwz_map.cu_count);
5364
5365 create_cus_from_debug_names_list (per_bfd, map, per_bfd->info,
5366 false /* is_dwz */);
5367
5368 if (dwz_map.cu_count == 0)
5369 return;
5370
5371 dwz_file *dwz = dwarf2_get_dwz_file (per_bfd);
5372 create_cus_from_debug_names_list (per_bfd, dwz_map, dwz->info,
5373 true /* is_dwz */);
5374 }
5375
5376 /* Read .debug_names. If everything went ok, initialize the "quick"
5377 elements of all the CUs and return true. Otherwise, return false. */
5378
5379 static bool
5380 dwarf2_read_debug_names (dwarf2_per_objfile *per_objfile)
5381 {
5382 std::unique_ptr<mapped_debug_names> map (new mapped_debug_names);
5383 mapped_debug_names dwz_map;
5384 struct objfile *objfile = per_objfile->objfile;
5385 dwarf2_per_bfd *per_bfd = per_objfile->per_bfd;
5386
5387 if (!read_debug_names_from_section (objfile, objfile_name (objfile),
5388 &per_objfile->per_bfd->debug_names, *map))
5389 return false;
5390
5391 /* Don't use the index if it's empty. */
5392 if (map->name_count == 0)
5393 return false;
5394
5395 /* If there is a .dwz file, read it so we can get its CU list as
5396 well. */
5397 dwz_file *dwz = dwarf2_get_dwz_file (per_bfd);
5398 if (dwz != NULL)
5399 {
5400 if (!read_debug_names_from_section (objfile,
5401 bfd_get_filename (dwz->dwz_bfd.get ()),
5402 &dwz->debug_names, dwz_map))
5403 {
5404 warning (_("could not read '.debug_names' section from %s; skipping"),
5405 bfd_get_filename (dwz->dwz_bfd.get ()));
5406 return false;
5407 }
5408 }
5409
5410 create_cus_from_debug_names (per_bfd, *map, dwz_map);
5411
5412 if (map->tu_count != 0)
5413 {
5414 /* We can only handle a single .debug_types when we have an
5415 index. */
5416 if (per_bfd->types.size () != 1)
5417 return false;
5418
5419 dwarf2_section_info *section = &per_bfd->types[0];
5420
5421 create_signatured_type_table_from_debug_names
5422 (per_objfile, *map, section, &per_bfd->abbrev);
5423 }
5424
5425 create_addrmap_from_aranges (per_objfile, &per_bfd->debug_aranges);
5426
5427 per_bfd->debug_names_table = std::move (map);
5428 per_bfd->using_index = 1;
5429 per_bfd->quick_file_names_table =
5430 create_quick_file_names_table (per_objfile->per_bfd->all_comp_units.size ());
5431
5432 /* Save partial symtabs in the per_bfd object, for the benefit of subsequent
5433 objfiles using the same BFD. */
5434 gdb_assert (per_bfd->partial_symtabs == nullptr);
5435 per_bfd->partial_symtabs = objfile->partial_symtabs;
5436
5437 return true;
5438 }
5439
5440 /* Type used to manage iterating over all CUs looking for a symbol for
5441 .debug_names. */
5442
5443 class dw2_debug_names_iterator
5444 {
5445 public:
5446 dw2_debug_names_iterator (const mapped_debug_names &map,
5447 gdb::optional<block_enum> block_index,
5448 domain_enum domain,
5449 const char *name, dwarf2_per_objfile *per_objfile)
5450 : m_map (map), m_block_index (block_index), m_domain (domain),
5451 m_addr (find_vec_in_debug_names (map, name, per_objfile)),
5452 m_per_objfile (per_objfile)
5453 {}
5454
5455 dw2_debug_names_iterator (const mapped_debug_names &map,
5456 search_domain search, uint32_t namei, dwarf2_per_objfile *per_objfile)
5457 : m_map (map),
5458 m_search (search),
5459 m_addr (find_vec_in_debug_names (map, namei, per_objfile)),
5460 m_per_objfile (per_objfile)
5461 {}
5462
5463 dw2_debug_names_iterator (const mapped_debug_names &map,
5464 block_enum block_index, domain_enum domain,
5465 uint32_t namei, dwarf2_per_objfile *per_objfile)
5466 : m_map (map), m_block_index (block_index), m_domain (domain),
5467 m_addr (find_vec_in_debug_names (map, namei, per_objfile)),
5468 m_per_objfile (per_objfile)
5469 {}
5470
5471 /* Return the next matching CU or NULL if there are no more. */
5472 dwarf2_per_cu_data *next ();
5473
5474 private:
5475 static const gdb_byte *find_vec_in_debug_names (const mapped_debug_names &map,
5476 const char *name,
5477 dwarf2_per_objfile *per_objfile);
5478 static const gdb_byte *find_vec_in_debug_names (const mapped_debug_names &map,
5479 uint32_t namei,
5480 dwarf2_per_objfile *per_objfile);
5481
5482 /* The internalized form of .debug_names. */
5483 const mapped_debug_names &m_map;
5484
5485 /* If set, only look for symbols that match that block. Valid values are
5486 GLOBAL_BLOCK and STATIC_BLOCK. */
5487 const gdb::optional<block_enum> m_block_index;
5488
5489 /* The kind of symbol we're looking for. */
5490 const domain_enum m_domain = UNDEF_DOMAIN;
5491 const search_domain m_search = ALL_DOMAIN;
5492
5493 /* The list of CUs from the index entry of the symbol, or NULL if
5494 not found. */
5495 const gdb_byte *m_addr;
5496
5497 dwarf2_per_objfile *m_per_objfile;
5498 };
5499
5500 const char *
5501 mapped_debug_names::namei_to_name
5502 (uint32_t namei, dwarf2_per_objfile *per_objfile) const
5503 {
5504 const ULONGEST namei_string_offs
5505 = extract_unsigned_integer ((name_table_string_offs_reordered
5506 + namei * offset_size),
5507 offset_size,
5508 dwarf5_byte_order);
5509 return read_indirect_string_at_offset (per_objfile, namei_string_offs);
5510 }
5511
5512 /* Find a slot in .debug_names for the object named NAME. If NAME is
5513 found, return pointer to its pool data. If NAME cannot be found,
5514 return NULL. */
5515
5516 const gdb_byte *
5517 dw2_debug_names_iterator::find_vec_in_debug_names
5518 (const mapped_debug_names &map, const char *name,
5519 dwarf2_per_objfile *per_objfile)
5520 {
5521 int (*cmp) (const char *, const char *);
5522
5523 gdb::unique_xmalloc_ptr<char> without_params;
5524 if (current_language->la_language == language_cplus
5525 || current_language->la_language == language_fortran
5526 || current_language->la_language == language_d)
5527 {
5528 /* NAME is already canonical. Drop any qualifiers as
5529 .debug_names does not contain any. */
5530
5531 if (strchr (name, '(') != NULL)
5532 {
5533 without_params = cp_remove_params (name);
5534 if (without_params != NULL)
5535 name = without_params.get ();
5536 }
5537 }
5538
5539 cmp = (case_sensitivity == case_sensitive_on ? strcmp : strcasecmp);
5540
5541 const uint32_t full_hash = dwarf5_djb_hash (name);
5542 uint32_t namei
5543 = extract_unsigned_integer (reinterpret_cast<const gdb_byte *>
5544 (map.bucket_table_reordered
5545 + (full_hash % map.bucket_count)), 4,
5546 map.dwarf5_byte_order);
5547 if (namei == 0)
5548 return NULL;
5549 --namei;
5550 if (namei >= map.name_count)
5551 {
5552 complaint (_("Wrong .debug_names with name index %u but name_count=%u "
5553 "[in module %s]"),
5554 namei, map.name_count,
5555 objfile_name (per_objfile->objfile));
5556 return NULL;
5557 }
5558
5559 for (;;)
5560 {
5561 const uint32_t namei_full_hash
5562 = extract_unsigned_integer (reinterpret_cast<const gdb_byte *>
5563 (map.hash_table_reordered + namei), 4,
5564 map.dwarf5_byte_order);
5565 if (full_hash % map.bucket_count != namei_full_hash % map.bucket_count)
5566 return NULL;
5567
5568 if (full_hash == namei_full_hash)
5569 {
5570 const char *const namei_string = map.namei_to_name (namei, per_objfile);
5571
5572 #if 0 /* An expensive sanity check. */
5573 if (namei_full_hash != dwarf5_djb_hash (namei_string))
5574 {
5575 complaint (_("Wrong .debug_names hash for string at index %u "
5576 "[in module %s]"),
5577 namei, objfile_name (dwarf2_per_objfile->objfile));
5578 return NULL;
5579 }
5580 #endif
5581
5582 if (cmp (namei_string, name) == 0)
5583 {
5584 const ULONGEST namei_entry_offs
5585 = extract_unsigned_integer ((map.name_table_entry_offs_reordered
5586 + namei * map.offset_size),
5587 map.offset_size, map.dwarf5_byte_order);
5588 return map.entry_pool + namei_entry_offs;
5589 }
5590 }
5591
5592 ++namei;
5593 if (namei >= map.name_count)
5594 return NULL;
5595 }
5596 }
5597
5598 const gdb_byte *
5599 dw2_debug_names_iterator::find_vec_in_debug_names
5600 (const mapped_debug_names &map, uint32_t namei, dwarf2_per_objfile *per_objfile)
5601 {
5602 if (namei >= map.name_count)
5603 {
5604 complaint (_("Wrong .debug_names with name index %u but name_count=%u "
5605 "[in module %s]"),
5606 namei, map.name_count,
5607 objfile_name (per_objfile->objfile));
5608 return NULL;
5609 }
5610
5611 const ULONGEST namei_entry_offs
5612 = extract_unsigned_integer ((map.name_table_entry_offs_reordered
5613 + namei * map.offset_size),
5614 map.offset_size, map.dwarf5_byte_order);
5615 return map.entry_pool + namei_entry_offs;
5616 }
5617
5618 /* See dw2_debug_names_iterator. */
5619
5620 dwarf2_per_cu_data *
5621 dw2_debug_names_iterator::next ()
5622 {
5623 if (m_addr == NULL)
5624 return NULL;
5625
5626 dwarf2_per_bfd *per_bfd = m_per_objfile->per_bfd;
5627 struct objfile *objfile = m_per_objfile->objfile;
5628 bfd *const abfd = objfile->obfd;
5629
5630 again:
5631
5632 unsigned int bytes_read;
5633 const ULONGEST abbrev = read_unsigned_leb128 (abfd, m_addr, &bytes_read);
5634 m_addr += bytes_read;
5635 if (abbrev == 0)
5636 return NULL;
5637
5638 const auto indexval_it = m_map.abbrev_map.find (abbrev);
5639 if (indexval_it == m_map.abbrev_map.cend ())
5640 {
5641 complaint (_("Wrong .debug_names undefined abbrev code %s "
5642 "[in module %s]"),
5643 pulongest (abbrev), objfile_name (objfile));
5644 return NULL;
5645 }
5646 const mapped_debug_names::index_val &indexval = indexval_it->second;
5647 enum class symbol_linkage {
5648 unknown,
5649 static_,
5650 extern_,
5651 } symbol_linkage_ = symbol_linkage::unknown;
5652 dwarf2_per_cu_data *per_cu = NULL;
5653 for (const mapped_debug_names::index_val::attr &attr : indexval.attr_vec)
5654 {
5655 ULONGEST ull;
5656 switch (attr.form)
5657 {
5658 case DW_FORM_implicit_const:
5659 ull = attr.implicit_const;
5660 break;
5661 case DW_FORM_flag_present:
5662 ull = 1;
5663 break;
5664 case DW_FORM_udata:
5665 ull = read_unsigned_leb128 (abfd, m_addr, &bytes_read);
5666 m_addr += bytes_read;
5667 break;
5668 case DW_FORM_ref4:
5669 ull = read_4_bytes (abfd, m_addr);
5670 m_addr += 4;
5671 break;
5672 case DW_FORM_ref8:
5673 ull = read_8_bytes (abfd, m_addr);
5674 m_addr += 8;
5675 break;
5676 case DW_FORM_ref_sig8:
5677 ull = read_8_bytes (abfd, m_addr);
5678 m_addr += 8;
5679 break;
5680 default:
5681 complaint (_("Unsupported .debug_names form %s [in module %s]"),
5682 dwarf_form_name (attr.form),
5683 objfile_name (objfile));
5684 return NULL;
5685 }
5686 switch (attr.dw_idx)
5687 {
5688 case DW_IDX_compile_unit:
5689 /* Don't crash on bad data. */
5690 if (ull >= m_per_objfile->per_bfd->all_comp_units.size ())
5691 {
5692 complaint (_(".debug_names entry has bad CU index %s"
5693 " [in module %s]"),
5694 pulongest (ull),
5695 objfile_name (objfile));
5696 continue;
5697 }
5698 per_cu = per_bfd->get_cutu (ull);
5699 break;
5700 case DW_IDX_type_unit:
5701 /* Don't crash on bad data. */
5702 if (ull >= per_bfd->all_type_units.size ())
5703 {
5704 complaint (_(".debug_names entry has bad TU index %s"
5705 " [in module %s]"),
5706 pulongest (ull),
5707 objfile_name (objfile));
5708 continue;
5709 }
5710 per_cu = &per_bfd->get_tu (ull)->per_cu;
5711 break;
5712 case DW_IDX_die_offset:
5713 /* In a per-CU index (as opposed to a per-module index), index
5714 entries without CU attribute implicitly refer to the single CU. */
5715 if (per_cu == NULL)
5716 per_cu = per_bfd->get_cu (0);
5717 break;
5718 case DW_IDX_GNU_internal:
5719 if (!m_map.augmentation_is_gdb)
5720 break;
5721 symbol_linkage_ = symbol_linkage::static_;
5722 break;
5723 case DW_IDX_GNU_external:
5724 if (!m_map.augmentation_is_gdb)
5725 break;
5726 symbol_linkage_ = symbol_linkage::extern_;
5727 break;
5728 }
5729 }
5730
5731 /* Skip if already read in. */
5732 if (m_per_objfile->symtab_set_p (per_cu))
5733 goto again;
5734
5735 /* Check static vs global. */
5736 if (symbol_linkage_ != symbol_linkage::unknown && m_block_index.has_value ())
5737 {
5738 const bool want_static = *m_block_index == STATIC_BLOCK;
5739 const bool symbol_is_static =
5740 symbol_linkage_ == symbol_linkage::static_;
5741 if (want_static != symbol_is_static)
5742 goto again;
5743 }
5744
5745 /* Match dw2_symtab_iter_next, symbol_kind
5746 and debug_names::psymbol_tag. */
5747 switch (m_domain)
5748 {
5749 case VAR_DOMAIN:
5750 switch (indexval.dwarf_tag)
5751 {
5752 case DW_TAG_variable:
5753 case DW_TAG_subprogram:
5754 /* Some types are also in VAR_DOMAIN. */
5755 case DW_TAG_typedef:
5756 case DW_TAG_structure_type:
5757 break;
5758 default:
5759 goto again;
5760 }
5761 break;
5762 case STRUCT_DOMAIN:
5763 switch (indexval.dwarf_tag)
5764 {
5765 case DW_TAG_typedef:
5766 case DW_TAG_structure_type:
5767 break;
5768 default:
5769 goto again;
5770 }
5771 break;
5772 case LABEL_DOMAIN:
5773 switch (indexval.dwarf_tag)
5774 {
5775 case 0:
5776 case DW_TAG_variable:
5777 break;
5778 default:
5779 goto again;
5780 }
5781 break;
5782 case MODULE_DOMAIN:
5783 switch (indexval.dwarf_tag)
5784 {
5785 case DW_TAG_module:
5786 break;
5787 default:
5788 goto again;
5789 }
5790 break;
5791 default:
5792 break;
5793 }
5794
5795 /* Match dw2_expand_symtabs_matching, symbol_kind and
5796 debug_names::psymbol_tag. */
5797 switch (m_search)
5798 {
5799 case VARIABLES_DOMAIN:
5800 switch (indexval.dwarf_tag)
5801 {
5802 case DW_TAG_variable:
5803 break;
5804 default:
5805 goto again;
5806 }
5807 break;
5808 case FUNCTIONS_DOMAIN:
5809 switch (indexval.dwarf_tag)
5810 {
5811 case DW_TAG_subprogram:
5812 break;
5813 default:
5814 goto again;
5815 }
5816 break;
5817 case TYPES_DOMAIN:
5818 switch (indexval.dwarf_tag)
5819 {
5820 case DW_TAG_typedef:
5821 case DW_TAG_structure_type:
5822 break;
5823 default:
5824 goto again;
5825 }
5826 break;
5827 case MODULES_DOMAIN:
5828 switch (indexval.dwarf_tag)
5829 {
5830 case DW_TAG_module:
5831 break;
5832 default:
5833 goto again;
5834 }
5835 default:
5836 break;
5837 }
5838
5839 return per_cu;
5840 }
5841
5842 static struct compunit_symtab *
5843 dw2_debug_names_lookup_symbol (struct objfile *objfile, block_enum block_index,
5844 const char *name, domain_enum domain)
5845 {
5846 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
5847
5848 const auto &mapp = per_objfile->per_bfd->debug_names_table;
5849 if (!mapp)
5850 {
5851 /* index is NULL if OBJF_READNOW. */
5852 return NULL;
5853 }
5854 const auto &map = *mapp;
5855
5856 dw2_debug_names_iterator iter (map, block_index, domain, name, per_objfile);
5857
5858 struct compunit_symtab *stab_best = NULL;
5859 struct dwarf2_per_cu_data *per_cu;
5860 while ((per_cu = iter.next ()) != NULL)
5861 {
5862 struct symbol *sym, *with_opaque = NULL;
5863 compunit_symtab *stab
5864 = dw2_instantiate_symtab (per_cu, per_objfile, false);
5865 const struct blockvector *bv = COMPUNIT_BLOCKVECTOR (stab);
5866 const struct block *block = BLOCKVECTOR_BLOCK (bv, block_index);
5867
5868 sym = block_find_symbol (block, name, domain,
5869 block_find_non_opaque_type_preferred,
5870 &with_opaque);
5871
5872 /* Some caution must be observed with overloaded functions and
5873 methods, since the index will not contain any overload
5874 information (but NAME might contain it). */
5875
5876 if (sym != NULL
5877 && strcmp_iw (sym->search_name (), name) == 0)
5878 return stab;
5879 if (with_opaque != NULL
5880 && strcmp_iw (with_opaque->search_name (), name) == 0)
5881 stab_best = stab;
5882
5883 /* Keep looking through other CUs. */
5884 }
5885
5886 return stab_best;
5887 }
5888
5889 /* This dumps minimal information about .debug_names. It is called
5890 via "mt print objfiles". The gdb.dwarf2/gdb-index.exp testcase
5891 uses this to verify that .debug_names has been loaded. */
5892
5893 static void
5894 dw2_debug_names_dump (struct objfile *objfile)
5895 {
5896 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
5897
5898 gdb_assert (per_objfile->per_bfd->using_index);
5899 printf_filtered (".debug_names:");
5900 if (per_objfile->per_bfd->debug_names_table)
5901 printf_filtered (" exists\n");
5902 else
5903 printf_filtered (" faked for \"readnow\"\n");
5904 printf_filtered ("\n");
5905 }
5906
5907 static void
5908 dw2_debug_names_expand_symtabs_for_function (struct objfile *objfile,
5909 const char *func_name)
5910 {
5911 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
5912
5913 /* per_objfile->per_bfd->debug_names_table is NULL if OBJF_READNOW. */
5914 if (per_objfile->per_bfd->debug_names_table)
5915 {
5916 const mapped_debug_names &map = *per_objfile->per_bfd->debug_names_table;
5917
5918 dw2_debug_names_iterator iter (map, {}, VAR_DOMAIN, func_name,
5919 per_objfile);
5920
5921 struct dwarf2_per_cu_data *per_cu;
5922 while ((per_cu = iter.next ()) != NULL)
5923 dw2_instantiate_symtab (per_cu, per_objfile, false);
5924 }
5925 }
5926
5927 static void
5928 dw2_debug_names_map_matching_symbols
5929 (struct objfile *objfile,
5930 const lookup_name_info &name, domain_enum domain,
5931 int global,
5932 gdb::function_view<symbol_found_callback_ftype> callback,
5933 symbol_compare_ftype *ordered_compare)
5934 {
5935 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
5936
5937 /* debug_names_table is NULL if OBJF_READNOW. */
5938 if (!per_objfile->per_bfd->debug_names_table)
5939 return;
5940
5941 mapped_debug_names &map = *per_objfile->per_bfd->debug_names_table;
5942 const block_enum block_kind = global ? GLOBAL_BLOCK : STATIC_BLOCK;
5943
5944 const char *match_name = name.ada ().lookup_name ().c_str ();
5945 auto matcher = [&] (const char *symname)
5946 {
5947 if (ordered_compare == nullptr)
5948 return true;
5949 return ordered_compare (symname, match_name) == 0;
5950 };
5951
5952 dw2_expand_symtabs_matching_symbol (map, name, matcher, ALL_DOMAIN,
5953 [&] (offset_type namei)
5954 {
5955 /* The name was matched, now expand corresponding CUs that were
5956 marked. */
5957 dw2_debug_names_iterator iter (map, block_kind, domain, namei,
5958 per_objfile);
5959
5960 struct dwarf2_per_cu_data *per_cu;
5961 while ((per_cu = iter.next ()) != NULL)
5962 dw2_expand_symtabs_matching_one (per_cu, per_objfile, nullptr,
5963 nullptr);
5964 return true;
5965 }, per_objfile);
5966
5967 /* It's a shame we couldn't do this inside the
5968 dw2_expand_symtabs_matching_symbol callback, but that skips CUs
5969 that have already been expanded. Instead, this loop matches what
5970 the psymtab code does. */
5971 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
5972 {
5973 compunit_symtab *symtab = per_objfile->get_symtab (per_cu);
5974 if (symtab != nullptr)
5975 {
5976 const struct block *block
5977 = BLOCKVECTOR_BLOCK (COMPUNIT_BLOCKVECTOR (symtab), block_kind);
5978 if (!iterate_over_symbols_terminated (block, name,
5979 domain, callback))
5980 break;
5981 }
5982 }
5983 }
5984
5985 static void
5986 dw2_debug_names_expand_symtabs_matching
5987 (struct objfile *objfile,
5988 gdb::function_view<expand_symtabs_file_matcher_ftype> file_matcher,
5989 const lookup_name_info *lookup_name,
5990 gdb::function_view<expand_symtabs_symbol_matcher_ftype> symbol_matcher,
5991 gdb::function_view<expand_symtabs_exp_notify_ftype> expansion_notify,
5992 enum search_domain kind)
5993 {
5994 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
5995
5996 /* debug_names_table is NULL if OBJF_READNOW. */
5997 if (!per_objfile->per_bfd->debug_names_table)
5998 return;
5999
6000 dw_expand_symtabs_matching_file_matcher (per_objfile, file_matcher);
6001
6002 if (symbol_matcher == NULL && lookup_name == NULL)
6003 {
6004 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
6005 {
6006 QUIT;
6007
6008 dw2_expand_symtabs_matching_one (per_cu, per_objfile, file_matcher,
6009 expansion_notify);
6010 }
6011 return;
6012 }
6013
6014 mapped_debug_names &map = *per_objfile->per_bfd->debug_names_table;
6015
6016 dw2_expand_symtabs_matching_symbol (map, *lookup_name,
6017 symbol_matcher,
6018 kind, [&] (offset_type namei)
6019 {
6020 /* The name was matched, now expand corresponding CUs that were
6021 marked. */
6022 dw2_debug_names_iterator iter (map, kind, namei, per_objfile);
6023
6024 struct dwarf2_per_cu_data *per_cu;
6025 while ((per_cu = iter.next ()) != NULL)
6026 dw2_expand_symtabs_matching_one (per_cu, per_objfile, file_matcher,
6027 expansion_notify);
6028 return true;
6029 }, per_objfile);
6030 }
6031
6032 const struct quick_symbol_functions dwarf2_debug_names_functions =
6033 {
6034 dw2_has_symbols,
6035 dw2_find_last_source_symtab,
6036 dw2_forget_cached_source_info,
6037 dw2_map_symtabs_matching_filename,
6038 dw2_debug_names_lookup_symbol,
6039 NULL,
6040 dw2_print_stats,
6041 dw2_debug_names_dump,
6042 dw2_debug_names_expand_symtabs_for_function,
6043 dw2_expand_all_symtabs,
6044 dw2_expand_symtabs_with_fullname,
6045 dw2_debug_names_map_matching_symbols,
6046 dw2_debug_names_expand_symtabs_matching,
6047 dw2_find_pc_sect_compunit_symtab,
6048 NULL,
6049 dw2_map_symbol_filenames
6050 };
6051
6052 /* Get the content of the .gdb_index section of OBJ. SECTION_OWNER should point
6053 to either a dwarf2_per_bfd or dwz_file object. */
6054
6055 template <typename T>
6056 static gdb::array_view<const gdb_byte>
6057 get_gdb_index_contents_from_section (objfile *obj, T *section_owner)
6058 {
6059 dwarf2_section_info *section = &section_owner->gdb_index;
6060
6061 if (section->empty ())
6062 return {};
6063
6064 /* Older elfutils strip versions could keep the section in the main
6065 executable while splitting it for the separate debug info file. */
6066 if ((section->get_flags () & SEC_HAS_CONTENTS) == 0)
6067 return {};
6068
6069 section->read (obj);
6070
6071 /* dwarf2_section_info::size is a bfd_size_type, while
6072 gdb::array_view works with size_t. On 32-bit hosts, with
6073 --enable-64-bit-bfd, bfd_size_type is a 64-bit type, while size_t
6074 is 32-bit. So we need an explicit narrowing conversion here.
6075 This is fine, because it's impossible to allocate or mmap an
6076 array/buffer larger than what size_t can represent. */
6077 return gdb::make_array_view (section->buffer, section->size);
6078 }
6079
6080 /* Lookup the index cache for the contents of the index associated to
6081 DWARF2_OBJ. */
6082
6083 static gdb::array_view<const gdb_byte>
6084 get_gdb_index_contents_from_cache (objfile *obj, dwarf2_per_bfd *dwarf2_per_bfd)
6085 {
6086 const bfd_build_id *build_id = build_id_bfd_get (obj->obfd);
6087 if (build_id == nullptr)
6088 return {};
6089
6090 return global_index_cache.lookup_gdb_index (build_id,
6091 &dwarf2_per_bfd->index_cache_res);
6092 }
6093
6094 /* Same as the above, but for DWZ. */
6095
6096 static gdb::array_view<const gdb_byte>
6097 get_gdb_index_contents_from_cache_dwz (objfile *obj, dwz_file *dwz)
6098 {
6099 const bfd_build_id *build_id = build_id_bfd_get (dwz->dwz_bfd.get ());
6100 if (build_id == nullptr)
6101 return {};
6102
6103 return global_index_cache.lookup_gdb_index (build_id, &dwz->index_cache_res);
6104 }
6105
6106 /* See symfile.h. */
6107
6108 bool
6109 dwarf2_initialize_objfile (struct objfile *objfile, dw_index_kind *index_kind)
6110 {
6111 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
6112 dwarf2_per_bfd *per_bfd = per_objfile->per_bfd;
6113
6114 /* If we're about to read full symbols, don't bother with the
6115 indices. In this case we also don't care if some other debug
6116 format is making psymtabs, because they are all about to be
6117 expanded anyway. */
6118 if ((objfile->flags & OBJF_READNOW))
6119 {
6120 /* When using READNOW, the using_index flag (set below) indicates that
6121 PER_BFD was already initialized, when we loaded some other objfile. */
6122 if (per_bfd->using_index)
6123 {
6124 *index_kind = dw_index_kind::GDB_INDEX;
6125 per_objfile->resize_symtabs ();
6126 return true;
6127 }
6128
6129 per_bfd->using_index = 1;
6130 create_all_comp_units (per_objfile);
6131 create_all_type_units (per_objfile);
6132 per_bfd->quick_file_names_table
6133 = create_quick_file_names_table (per_bfd->all_comp_units.size ());
6134 per_objfile->resize_symtabs ();
6135
6136 for (int i = 0; i < (per_bfd->all_comp_units.size ()
6137 + per_bfd->all_type_units.size ()); ++i)
6138 {
6139 dwarf2_per_cu_data *per_cu = per_bfd->get_cutu (i);
6140
6141 per_cu->v.quick = OBSTACK_ZALLOC (&per_bfd->obstack,
6142 struct dwarf2_per_cu_quick_data);
6143 }
6144
6145 /* Return 1 so that gdb sees the "quick" functions. However,
6146 these functions will be no-ops because we will have expanded
6147 all symtabs. */
6148 *index_kind = dw_index_kind::GDB_INDEX;
6149 return true;
6150 }
6151
6152 /* Was a debug names index already read when we processed an objfile sharing
6153 PER_BFD? */
6154 if (per_bfd->debug_names_table != nullptr)
6155 {
6156 *index_kind = dw_index_kind::DEBUG_NAMES;
6157 per_objfile->objfile->partial_symtabs = per_bfd->partial_symtabs;
6158 per_objfile->resize_symtabs ();
6159 return true;
6160 }
6161
6162 /* Was a GDB index already read when we processed an objfile sharing
6163 PER_BFD? */
6164 if (per_bfd->index_table != nullptr)
6165 {
6166 *index_kind = dw_index_kind::GDB_INDEX;
6167 per_objfile->objfile->partial_symtabs = per_bfd->partial_symtabs;
6168 per_objfile->resize_symtabs ();
6169 return true;
6170 }
6171
6172 /* There might already be partial symtabs built for this BFD. This happens
6173 when loading the same binary twice with the index-cache enabled. If so,
6174 don't try to read an index. The objfile / per_objfile initialization will
6175 be completed in dwarf2_build_psymtabs, in the standard partial symtabs
6176 code path. */
6177 if (per_bfd->partial_symtabs != nullptr)
6178 return false;
6179
6180 if (dwarf2_read_debug_names (per_objfile))
6181 {
6182 *index_kind = dw_index_kind::DEBUG_NAMES;
6183 per_objfile->resize_symtabs ();
6184 return true;
6185 }
6186
6187 if (dwarf2_read_gdb_index (per_objfile,
6188 get_gdb_index_contents_from_section<struct dwarf2_per_bfd>,
6189 get_gdb_index_contents_from_section<dwz_file>))
6190 {
6191 *index_kind = dw_index_kind::GDB_INDEX;
6192 per_objfile->resize_symtabs ();
6193 return true;
6194 }
6195
6196 /* ... otherwise, try to find the index in the index cache. */
6197 if (dwarf2_read_gdb_index (per_objfile,
6198 get_gdb_index_contents_from_cache,
6199 get_gdb_index_contents_from_cache_dwz))
6200 {
6201 global_index_cache.hit ();
6202 *index_kind = dw_index_kind::GDB_INDEX;
6203 per_objfile->resize_symtabs ();
6204 return true;
6205 }
6206
6207 global_index_cache.miss ();
6208 return false;
6209 }
6210
6211 \f
6212
6213 /* Build a partial symbol table. */
6214
6215 void
6216 dwarf2_build_psymtabs (struct objfile *objfile)
6217 {
6218 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
6219 dwarf2_per_bfd *per_bfd = per_objfile->per_bfd;
6220
6221 if (per_bfd->partial_symtabs != nullptr)
6222 {
6223 /* Partial symbols were already read, so now we can simply
6224 attach them. */
6225 objfile->partial_symtabs = per_bfd->partial_symtabs;
6226 per_objfile->resize_symtabs ();
6227 return;
6228 }
6229
6230 try
6231 {
6232 /* This isn't really ideal: all the data we allocate on the
6233 objfile's obstack is still uselessly kept around. However,
6234 freeing it seems unsafe. */
6235 psymtab_discarder psymtabs (objfile);
6236 dwarf2_build_psymtabs_hard (per_objfile);
6237 psymtabs.keep ();
6238
6239 per_objfile->resize_symtabs ();
6240
6241 /* (maybe) store an index in the cache. */
6242 global_index_cache.store (per_objfile);
6243 }
6244 catch (const gdb_exception_error &except)
6245 {
6246 exception_print (gdb_stderr, except);
6247 }
6248
6249 /* Finish by setting the local reference to partial symtabs, so that
6250 we don't try to read them again if reading another objfile with the same
6251 BFD. If we can't in fact share, this won't make a difference anyway as
6252 the dwarf2_per_bfd object won't be shared. */
6253 per_bfd->partial_symtabs = objfile->partial_symtabs;
6254 }
6255
6256 /* Find the base address of the compilation unit for range lists and
6257 location lists. It will normally be specified by DW_AT_low_pc.
6258 In DWARF-3 draft 4, the base address could be overridden by
6259 DW_AT_entry_pc. It's been removed, but GCC still uses this for
6260 compilation units with discontinuous ranges. */
6261
6262 static void
6263 dwarf2_find_base_address (struct die_info *die, struct dwarf2_cu *cu)
6264 {
6265 struct attribute *attr;
6266
6267 cu->base_address.reset ();
6268
6269 attr = dwarf2_attr (die, DW_AT_entry_pc, cu);
6270 if (attr != nullptr)
6271 cu->base_address = attr->as_address ();
6272 else
6273 {
6274 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
6275 if (attr != nullptr)
6276 cu->base_address = attr->as_address ();
6277 }
6278 }
6279
6280 /* Helper function that returns the proper abbrev section for
6281 THIS_CU. */
6282
6283 static struct dwarf2_section_info *
6284 get_abbrev_section_for_cu (struct dwarf2_per_cu_data *this_cu)
6285 {
6286 struct dwarf2_section_info *abbrev;
6287 dwarf2_per_bfd *per_bfd = this_cu->per_bfd;
6288
6289 if (this_cu->is_dwz)
6290 abbrev = &dwarf2_get_dwz_file (per_bfd)->abbrev;
6291 else
6292 abbrev = &per_bfd->abbrev;
6293
6294 return abbrev;
6295 }
6296
6297 /* Fetch the abbreviation table offset from a comp or type unit header. */
6298
6299 static sect_offset
6300 read_abbrev_offset (dwarf2_per_objfile *per_objfile,
6301 struct dwarf2_section_info *section,
6302 sect_offset sect_off)
6303 {
6304 bfd *abfd = section->get_bfd_owner ();
6305 const gdb_byte *info_ptr;
6306 unsigned int initial_length_size, offset_size;
6307 uint16_t version;
6308
6309 section->read (per_objfile->objfile);
6310 info_ptr = section->buffer + to_underlying (sect_off);
6311 read_initial_length (abfd, info_ptr, &initial_length_size);
6312 offset_size = initial_length_size == 4 ? 4 : 8;
6313 info_ptr += initial_length_size;
6314
6315 version = read_2_bytes (abfd, info_ptr);
6316 info_ptr += 2;
6317 if (version >= 5)
6318 {
6319 /* Skip unit type and address size. */
6320 info_ptr += 2;
6321 }
6322
6323 return (sect_offset) read_offset (abfd, info_ptr, offset_size);
6324 }
6325
6326 /* A partial symtab that is used only for include files. */
6327 struct dwarf2_include_psymtab : public partial_symtab
6328 {
6329 dwarf2_include_psymtab (const char *filename, struct objfile *objfile)
6330 : partial_symtab (filename, objfile)
6331 {
6332 }
6333
6334 void read_symtab (struct objfile *objfile) override
6335 {
6336 /* It's an include file, no symbols to read for it.
6337 Everything is in the includer symtab. */
6338
6339 /* The expansion of a dwarf2_include_psymtab is just a trigger for
6340 expansion of the includer psymtab. We use the dependencies[0] field to
6341 model the includer. But if we go the regular route of calling
6342 expand_psymtab here, and having expand_psymtab call expand_dependencies
6343 to expand the includer, we'll only use expand_psymtab on the includer
6344 (making it a non-toplevel psymtab), while if we expand the includer via
6345 another path, we'll use read_symtab (making it a toplevel psymtab).
6346 So, don't pretend a dwarf2_include_psymtab is an actual toplevel
6347 psymtab, and trigger read_symtab on the includer here directly. */
6348 includer ()->read_symtab (objfile);
6349 }
6350
6351 void expand_psymtab (struct objfile *objfile) override
6352 {
6353 /* This is not called by read_symtab, and should not be called by any
6354 expand_dependencies. */
6355 gdb_assert (false);
6356 }
6357
6358 bool readin_p (struct objfile *objfile) const override
6359 {
6360 return includer ()->readin_p (objfile);
6361 }
6362
6363 compunit_symtab *get_compunit_symtab (struct objfile *objfile) const override
6364 {
6365 return nullptr;
6366 }
6367
6368 private:
6369 partial_symtab *includer () const
6370 {
6371 /* An include psymtab has exactly one dependency: the psymtab that
6372 includes it. */
6373 gdb_assert (this->number_of_dependencies == 1);
6374 return this->dependencies[0];
6375 }
6376 };
6377
6378 /* Allocate a new partial symtab for file named NAME and mark this new
6379 partial symtab as being an include of PST. */
6380
6381 static void
6382 dwarf2_create_include_psymtab (const char *name, dwarf2_psymtab *pst,
6383 struct objfile *objfile)
6384 {
6385 dwarf2_include_psymtab *subpst = new dwarf2_include_psymtab (name, objfile);
6386
6387 if (!IS_ABSOLUTE_PATH (subpst->filename))
6388 subpst->dirname = pst->dirname;
6389
6390 subpst->dependencies = objfile->partial_symtabs->allocate_dependencies (1);
6391 subpst->dependencies[0] = pst;
6392 subpst->number_of_dependencies = 1;
6393 }
6394
6395 /* Read the Line Number Program data and extract the list of files
6396 included by the source file represented by PST. Build an include
6397 partial symtab for each of these included files. */
6398
6399 static void
6400 dwarf2_build_include_psymtabs (struct dwarf2_cu *cu,
6401 struct die_info *die,
6402 dwarf2_psymtab *pst)
6403 {
6404 line_header_up lh;
6405 struct attribute *attr;
6406
6407 attr = dwarf2_attr (die, DW_AT_stmt_list, cu);
6408 if (attr != nullptr && attr->form_is_unsigned ())
6409 lh = dwarf_decode_line_header ((sect_offset) attr->as_unsigned (), cu);
6410 if (lh == NULL)
6411 return; /* No linetable, so no includes. */
6412
6413 /* NOTE: pst->dirname is DW_AT_comp_dir (if present). Also note
6414 that we pass in the raw text_low here; that is ok because we're
6415 only decoding the line table to make include partial symtabs, and
6416 so the addresses aren't really used. */
6417 dwarf_decode_lines (lh.get (), pst->dirname, cu, pst,
6418 pst->raw_text_low (), 1);
6419 }
6420
6421 static hashval_t
6422 hash_signatured_type (const void *item)
6423 {
6424 const struct signatured_type *sig_type
6425 = (const struct signatured_type *) item;
6426
6427 /* This drops the top 32 bits of the signature, but is ok for a hash. */
6428 return sig_type->signature;
6429 }
6430
6431 static int
6432 eq_signatured_type (const void *item_lhs, const void *item_rhs)
6433 {
6434 const struct signatured_type *lhs = (const struct signatured_type *) item_lhs;
6435 const struct signatured_type *rhs = (const struct signatured_type *) item_rhs;
6436
6437 return lhs->signature == rhs->signature;
6438 }
6439
6440 /* Allocate a hash table for signatured types. */
6441
6442 static htab_up
6443 allocate_signatured_type_table ()
6444 {
6445 return htab_up (htab_create_alloc (41,
6446 hash_signatured_type,
6447 eq_signatured_type,
6448 NULL, xcalloc, xfree));
6449 }
6450
6451 /* A helper function to add a signatured type CU to a table. */
6452
6453 static int
6454 add_signatured_type_cu_to_table (void **slot, void *datum)
6455 {
6456 struct signatured_type *sigt = (struct signatured_type *) *slot;
6457 std::vector<signatured_type *> *all_type_units
6458 = (std::vector<signatured_type *> *) datum;
6459
6460 all_type_units->push_back (sigt);
6461
6462 return 1;
6463 }
6464
6465 /* A helper for create_debug_types_hash_table. Read types from SECTION
6466 and fill them into TYPES_HTAB. It will process only type units,
6467 therefore DW_UT_type. */
6468
6469 static void
6470 create_debug_type_hash_table (dwarf2_per_objfile *per_objfile,
6471 struct dwo_file *dwo_file,
6472 dwarf2_section_info *section, htab_up &types_htab,
6473 rcuh_kind section_kind)
6474 {
6475 struct objfile *objfile = per_objfile->objfile;
6476 struct dwarf2_section_info *abbrev_section;
6477 bfd *abfd;
6478 const gdb_byte *info_ptr, *end_ptr;
6479
6480 abbrev_section = (dwo_file != NULL
6481 ? &dwo_file->sections.abbrev
6482 : &per_objfile->per_bfd->abbrev);
6483
6484 dwarf_read_debug_printf ("Reading %s for %s:",
6485 section->get_name (),
6486 abbrev_section->get_file_name ());
6487
6488 section->read (objfile);
6489 info_ptr = section->buffer;
6490
6491 if (info_ptr == NULL)
6492 return;
6493
6494 /* We can't set abfd until now because the section may be empty or
6495 not present, in which case the bfd is unknown. */
6496 abfd = section->get_bfd_owner ();
6497
6498 /* We don't use cutu_reader here because we don't need to read
6499 any dies: the signature is in the header. */
6500
6501 end_ptr = info_ptr + section->size;
6502 while (info_ptr < end_ptr)
6503 {
6504 struct signatured_type *sig_type;
6505 struct dwo_unit *dwo_tu;
6506 void **slot;
6507 const gdb_byte *ptr = info_ptr;
6508 struct comp_unit_head header;
6509 unsigned int length;
6510
6511 sect_offset sect_off = (sect_offset) (ptr - section->buffer);
6512
6513 /* Initialize it due to a false compiler warning. */
6514 header.signature = -1;
6515 header.type_cu_offset_in_tu = (cu_offset) -1;
6516
6517 /* We need to read the type's signature in order to build the hash
6518 table, but we don't need anything else just yet. */
6519
6520 ptr = read_and_check_comp_unit_head (per_objfile, &header, section,
6521 abbrev_section, ptr, section_kind);
6522
6523 length = header.get_length ();
6524
6525 /* Skip dummy type units. */
6526 if (ptr >= info_ptr + length
6527 || peek_abbrev_code (abfd, ptr) == 0
6528 || (header.unit_type != DW_UT_type
6529 && header.unit_type != DW_UT_split_type))
6530 {
6531 info_ptr += length;
6532 continue;
6533 }
6534
6535 if (types_htab == NULL)
6536 {
6537 if (dwo_file)
6538 types_htab = allocate_dwo_unit_table ();
6539 else
6540 types_htab = allocate_signatured_type_table ();
6541 }
6542
6543 if (dwo_file)
6544 {
6545 sig_type = NULL;
6546 dwo_tu = OBSTACK_ZALLOC (&per_objfile->per_bfd->obstack, dwo_unit);
6547 dwo_tu->dwo_file = dwo_file;
6548 dwo_tu->signature = header.signature;
6549 dwo_tu->type_offset_in_tu = header.type_cu_offset_in_tu;
6550 dwo_tu->section = section;
6551 dwo_tu->sect_off = sect_off;
6552 dwo_tu->length = length;
6553 }
6554 else
6555 {
6556 /* N.B.: type_offset is not usable if this type uses a DWO file.
6557 The real type_offset is in the DWO file. */
6558 dwo_tu = NULL;
6559 sig_type = per_objfile->per_bfd->allocate_signatured_type ();
6560 sig_type->signature = header.signature;
6561 sig_type->type_offset_in_tu = header.type_cu_offset_in_tu;
6562 sig_type->per_cu.is_debug_types = 1;
6563 sig_type->per_cu.section = section;
6564 sig_type->per_cu.sect_off = sect_off;
6565 sig_type->per_cu.length = length;
6566 }
6567
6568 slot = htab_find_slot (types_htab.get (),
6569 dwo_file ? (void*) dwo_tu : (void *) sig_type,
6570 INSERT);
6571 gdb_assert (slot != NULL);
6572 if (*slot != NULL)
6573 {
6574 sect_offset dup_sect_off;
6575
6576 if (dwo_file)
6577 {
6578 const struct dwo_unit *dup_tu
6579 = (const struct dwo_unit *) *slot;
6580
6581 dup_sect_off = dup_tu->sect_off;
6582 }
6583 else
6584 {
6585 const struct signatured_type *dup_tu
6586 = (const struct signatured_type *) *slot;
6587
6588 dup_sect_off = dup_tu->per_cu.sect_off;
6589 }
6590
6591 complaint (_("debug type entry at offset %s is duplicate to"
6592 " the entry at offset %s, signature %s"),
6593 sect_offset_str (sect_off), sect_offset_str (dup_sect_off),
6594 hex_string (header.signature));
6595 }
6596 *slot = dwo_file ? (void *) dwo_tu : (void *) sig_type;
6597
6598 dwarf_read_debug_printf_v (" offset %s, signature %s",
6599 sect_offset_str (sect_off),
6600 hex_string (header.signature));
6601
6602 info_ptr += length;
6603 }
6604 }
6605
6606 /* Create the hash table of all entries in the .debug_types
6607 (or .debug_types.dwo) section(s).
6608 If reading a DWO file, then DWO_FILE is a pointer to the DWO file object,
6609 otherwise it is NULL.
6610
6611 The result is a pointer to the hash table or NULL if there are no types.
6612
6613 Note: This function processes DWO files only, not DWP files. */
6614
6615 static void
6616 create_debug_types_hash_table (dwarf2_per_objfile *per_objfile,
6617 struct dwo_file *dwo_file,
6618 gdb::array_view<dwarf2_section_info> type_sections,
6619 htab_up &types_htab)
6620 {
6621 for (dwarf2_section_info &section : type_sections)
6622 create_debug_type_hash_table (per_objfile, dwo_file, &section, types_htab,
6623 rcuh_kind::TYPE);
6624 }
6625
6626 /* Create the hash table of all entries in the .debug_types section,
6627 and initialize all_type_units.
6628 The result is zero if there is an error (e.g. missing .debug_types section),
6629 otherwise non-zero. */
6630
6631 static int
6632 create_all_type_units (dwarf2_per_objfile *per_objfile)
6633 {
6634 htab_up types_htab;
6635
6636 create_debug_type_hash_table (per_objfile, NULL, &per_objfile->per_bfd->info,
6637 types_htab, rcuh_kind::COMPILE);
6638 create_debug_types_hash_table (per_objfile, NULL, per_objfile->per_bfd->types,
6639 types_htab);
6640 if (types_htab == NULL)
6641 {
6642 per_objfile->per_bfd->signatured_types = NULL;
6643 return 0;
6644 }
6645
6646 per_objfile->per_bfd->signatured_types = std::move (types_htab);
6647
6648 gdb_assert (per_objfile->per_bfd->all_type_units.empty ());
6649 per_objfile->per_bfd->all_type_units.reserve
6650 (htab_elements (per_objfile->per_bfd->signatured_types.get ()));
6651
6652 htab_traverse_noresize (per_objfile->per_bfd->signatured_types.get (),
6653 add_signatured_type_cu_to_table,
6654 &per_objfile->per_bfd->all_type_units);
6655
6656 return 1;
6657 }
6658
6659 /* Add an entry for signature SIG to dwarf2_per_objfile->per_bfd->signatured_types.
6660 If SLOT is non-NULL, it is the entry to use in the hash table.
6661 Otherwise we find one. */
6662
6663 static struct signatured_type *
6664 add_type_unit (dwarf2_per_objfile *per_objfile, ULONGEST sig, void **slot)
6665 {
6666 if (per_objfile->per_bfd->all_type_units.size ()
6667 == per_objfile->per_bfd->all_type_units.capacity ())
6668 ++per_objfile->per_bfd->tu_stats.nr_all_type_units_reallocs;
6669
6670 signatured_type *sig_type = per_objfile->per_bfd->allocate_signatured_type ();
6671
6672 per_objfile->resize_symtabs ();
6673
6674 per_objfile->per_bfd->all_type_units.push_back (sig_type);
6675 sig_type->signature = sig;
6676 sig_type->per_cu.is_debug_types = 1;
6677 if (per_objfile->per_bfd->using_index)
6678 {
6679 sig_type->per_cu.v.quick =
6680 OBSTACK_ZALLOC (&per_objfile->per_bfd->obstack,
6681 struct dwarf2_per_cu_quick_data);
6682 }
6683
6684 if (slot == NULL)
6685 {
6686 slot = htab_find_slot (per_objfile->per_bfd->signatured_types.get (),
6687 sig_type, INSERT);
6688 }
6689 gdb_assert (*slot == NULL);
6690 *slot = sig_type;
6691 /* The rest of sig_type must be filled in by the caller. */
6692 return sig_type;
6693 }
6694
6695 /* Subroutine of lookup_dwo_signatured_type and lookup_dwp_signatured_type.
6696 Fill in SIG_ENTRY with DWO_ENTRY. */
6697
6698 static void
6699 fill_in_sig_entry_from_dwo_entry (dwarf2_per_objfile *per_objfile,
6700 struct signatured_type *sig_entry,
6701 struct dwo_unit *dwo_entry)
6702 {
6703 dwarf2_per_bfd *per_bfd = per_objfile->per_bfd;
6704
6705 /* Make sure we're not clobbering something we don't expect to. */
6706 gdb_assert (! sig_entry->per_cu.queued);
6707 gdb_assert (per_objfile->get_cu (&sig_entry->per_cu) == NULL);
6708 if (per_bfd->using_index)
6709 {
6710 gdb_assert (sig_entry->per_cu.v.quick != NULL);
6711 gdb_assert (!per_objfile->symtab_set_p (&sig_entry->per_cu));
6712 }
6713 else
6714 gdb_assert (sig_entry->per_cu.v.psymtab == NULL);
6715 gdb_assert (sig_entry->signature == dwo_entry->signature);
6716 gdb_assert (to_underlying (sig_entry->type_offset_in_section) == 0);
6717 gdb_assert (sig_entry->type_unit_group == NULL);
6718 gdb_assert (sig_entry->dwo_unit == NULL);
6719
6720 sig_entry->per_cu.section = dwo_entry->section;
6721 sig_entry->per_cu.sect_off = dwo_entry->sect_off;
6722 sig_entry->per_cu.length = dwo_entry->length;
6723 sig_entry->per_cu.reading_dwo_directly = 1;
6724 sig_entry->per_cu.per_bfd = per_bfd;
6725 sig_entry->type_offset_in_tu = dwo_entry->type_offset_in_tu;
6726 sig_entry->dwo_unit = dwo_entry;
6727 }
6728
6729 /* Subroutine of lookup_signatured_type.
6730 If we haven't read the TU yet, create the signatured_type data structure
6731 for a TU to be read in directly from a DWO file, bypassing the stub.
6732 This is the "Stay in DWO Optimization": When there is no DWP file and we're
6733 using .gdb_index, then when reading a CU we want to stay in the DWO file
6734 containing that CU. Otherwise we could end up reading several other DWO
6735 files (due to comdat folding) to process the transitive closure of all the
6736 mentioned TUs, and that can be slow. The current DWO file will have every
6737 type signature that it needs.
6738 We only do this for .gdb_index because in the psymtab case we already have
6739 to read all the DWOs to build the type unit groups. */
6740
6741 static struct signatured_type *
6742 lookup_dwo_signatured_type (struct dwarf2_cu *cu, ULONGEST sig)
6743 {
6744 dwarf2_per_objfile *per_objfile = cu->per_objfile;
6745 struct dwo_file *dwo_file;
6746 struct dwo_unit find_dwo_entry, *dwo_entry;
6747 struct signatured_type find_sig_entry, *sig_entry;
6748 void **slot;
6749
6750 gdb_assert (cu->dwo_unit && per_objfile->per_bfd->using_index);
6751
6752 /* If TU skeletons have been removed then we may not have read in any
6753 TUs yet. */
6754 if (per_objfile->per_bfd->signatured_types == NULL)
6755 per_objfile->per_bfd->signatured_types = allocate_signatured_type_table ();
6756
6757 /* We only ever need to read in one copy of a signatured type.
6758 Use the global signatured_types array to do our own comdat-folding
6759 of types. If this is the first time we're reading this TU, and
6760 the TU has an entry in .gdb_index, replace the recorded data from
6761 .gdb_index with this TU. */
6762
6763 find_sig_entry.signature = sig;
6764 slot = htab_find_slot (per_objfile->per_bfd->signatured_types.get (),
6765 &find_sig_entry, INSERT);
6766 sig_entry = (struct signatured_type *) *slot;
6767
6768 /* We can get here with the TU already read, *or* in the process of being
6769 read. Don't reassign the global entry to point to this DWO if that's
6770 the case. Also note that if the TU is already being read, it may not
6771 have come from a DWO, the program may be a mix of Fission-compiled
6772 code and non-Fission-compiled code. */
6773
6774 /* Have we already tried to read this TU?
6775 Note: sig_entry can be NULL if the skeleton TU was removed (thus it
6776 needn't exist in the global table yet). */
6777 if (sig_entry != NULL && sig_entry->per_cu.tu_read)
6778 return sig_entry;
6779
6780 /* Note: cu->dwo_unit is the dwo_unit that references this TU, not the
6781 dwo_unit of the TU itself. */
6782 dwo_file = cu->dwo_unit->dwo_file;
6783
6784 /* Ok, this is the first time we're reading this TU. */
6785 if (dwo_file->tus == NULL)
6786 return NULL;
6787 find_dwo_entry.signature = sig;
6788 dwo_entry = (struct dwo_unit *) htab_find (dwo_file->tus.get (),
6789 &find_dwo_entry);
6790 if (dwo_entry == NULL)
6791 return NULL;
6792
6793 /* If the global table doesn't have an entry for this TU, add one. */
6794 if (sig_entry == NULL)
6795 sig_entry = add_type_unit (per_objfile, sig, slot);
6796
6797 fill_in_sig_entry_from_dwo_entry (per_objfile, sig_entry, dwo_entry);
6798 sig_entry->per_cu.tu_read = 1;
6799 return sig_entry;
6800 }
6801
6802 /* Subroutine of lookup_signatured_type.
6803 Look up the type for signature SIG, and if we can't find SIG in .gdb_index
6804 then try the DWP file. If the TU stub (skeleton) has been removed then
6805 it won't be in .gdb_index. */
6806
6807 static struct signatured_type *
6808 lookup_dwp_signatured_type (struct dwarf2_cu *cu, ULONGEST sig)
6809 {
6810 dwarf2_per_objfile *per_objfile = cu->per_objfile;
6811 struct dwp_file *dwp_file = get_dwp_file (per_objfile);
6812 struct dwo_unit *dwo_entry;
6813 struct signatured_type find_sig_entry, *sig_entry;
6814 void **slot;
6815
6816 gdb_assert (cu->dwo_unit && per_objfile->per_bfd->using_index);
6817 gdb_assert (dwp_file != NULL);
6818
6819 /* If TU skeletons have been removed then we may not have read in any
6820 TUs yet. */
6821 if (per_objfile->per_bfd->signatured_types == NULL)
6822 per_objfile->per_bfd->signatured_types = allocate_signatured_type_table ();
6823
6824 find_sig_entry.signature = sig;
6825 slot = htab_find_slot (per_objfile->per_bfd->signatured_types.get (),
6826 &find_sig_entry, INSERT);
6827 sig_entry = (struct signatured_type *) *slot;
6828
6829 /* Have we already tried to read this TU?
6830 Note: sig_entry can be NULL if the skeleton TU was removed (thus it
6831 needn't exist in the global table yet). */
6832 if (sig_entry != NULL)
6833 return sig_entry;
6834
6835 if (dwp_file->tus == NULL)
6836 return NULL;
6837 dwo_entry = lookup_dwo_unit_in_dwp (per_objfile, dwp_file, NULL, sig,
6838 1 /* is_debug_types */);
6839 if (dwo_entry == NULL)
6840 return NULL;
6841
6842 sig_entry = add_type_unit (per_objfile, sig, slot);
6843 fill_in_sig_entry_from_dwo_entry (per_objfile, sig_entry, dwo_entry);
6844
6845 return sig_entry;
6846 }
6847
6848 /* Lookup a signature based type for DW_FORM_ref_sig8.
6849 Returns NULL if signature SIG is not present in the table.
6850 It is up to the caller to complain about this. */
6851
6852 static struct signatured_type *
6853 lookup_signatured_type (struct dwarf2_cu *cu, ULONGEST sig)
6854 {
6855 dwarf2_per_objfile *per_objfile = cu->per_objfile;
6856
6857 if (cu->dwo_unit && per_objfile->per_bfd->using_index)
6858 {
6859 /* We're in a DWO/DWP file, and we're using .gdb_index.
6860 These cases require special processing. */
6861 if (get_dwp_file (per_objfile) == NULL)
6862 return lookup_dwo_signatured_type (cu, sig);
6863 else
6864 return lookup_dwp_signatured_type (cu, sig);
6865 }
6866 else
6867 {
6868 struct signatured_type find_entry, *entry;
6869
6870 if (per_objfile->per_bfd->signatured_types == NULL)
6871 return NULL;
6872 find_entry.signature = sig;
6873 entry = ((struct signatured_type *)
6874 htab_find (per_objfile->per_bfd->signatured_types.get (),
6875 &find_entry));
6876 return entry;
6877 }
6878 }
6879
6880 /* Low level DIE reading support. */
6881
6882 /* Initialize a die_reader_specs struct from a dwarf2_cu struct. */
6883
6884 static void
6885 init_cu_die_reader (struct die_reader_specs *reader,
6886 struct dwarf2_cu *cu,
6887 struct dwarf2_section_info *section,
6888 struct dwo_file *dwo_file,
6889 struct abbrev_table *abbrev_table)
6890 {
6891 gdb_assert (section->readin && section->buffer != NULL);
6892 reader->abfd = section->get_bfd_owner ();
6893 reader->cu = cu;
6894 reader->dwo_file = dwo_file;
6895 reader->die_section = section;
6896 reader->buffer = section->buffer;
6897 reader->buffer_end = section->buffer + section->size;
6898 reader->abbrev_table = abbrev_table;
6899 }
6900
6901 /* Subroutine of cutu_reader to simplify it.
6902 Read in the rest of a CU/TU top level DIE from DWO_UNIT.
6903 There's just a lot of work to do, and cutu_reader is big enough
6904 already.
6905
6906 STUB_COMP_UNIT_DIE is for the stub DIE, we copy over certain attributes
6907 from it to the DIE in the DWO. If NULL we are skipping the stub.
6908 STUB_COMP_DIR is similar to STUB_COMP_UNIT_DIE: When reading a TU directly
6909 from the DWO file, bypassing the stub, it contains the DW_AT_comp_dir
6910 attribute of the referencing CU. At most one of STUB_COMP_UNIT_DIE and
6911 STUB_COMP_DIR may be non-NULL.
6912 *RESULT_READER,*RESULT_INFO_PTR,*RESULT_COMP_UNIT_DIE
6913 are filled in with the info of the DIE from the DWO file.
6914 *RESULT_DWO_ABBREV_TABLE will be filled in with the abbrev table allocated
6915 from the dwo. Since *RESULT_READER references this abbrev table, it must be
6916 kept around for at least as long as *RESULT_READER.
6917
6918 The result is non-zero if a valid (non-dummy) DIE was found. */
6919
6920 static int
6921 read_cutu_die_from_dwo (dwarf2_cu *cu,
6922 struct dwo_unit *dwo_unit,
6923 struct die_info *stub_comp_unit_die,
6924 const char *stub_comp_dir,
6925 struct die_reader_specs *result_reader,
6926 const gdb_byte **result_info_ptr,
6927 struct die_info **result_comp_unit_die,
6928 abbrev_table_up *result_dwo_abbrev_table)
6929 {
6930 dwarf2_per_objfile *per_objfile = cu->per_objfile;
6931 dwarf2_per_cu_data *per_cu = cu->per_cu;
6932 struct objfile *objfile = per_objfile->objfile;
6933 bfd *abfd;
6934 const gdb_byte *begin_info_ptr, *info_ptr;
6935 struct attribute *comp_dir, *stmt_list, *low_pc, *high_pc, *ranges;
6936 int i,num_extra_attrs;
6937 struct dwarf2_section_info *dwo_abbrev_section;
6938 struct die_info *comp_unit_die;
6939
6940 /* At most one of these may be provided. */
6941 gdb_assert ((stub_comp_unit_die != NULL) + (stub_comp_dir != NULL) <= 1);
6942
6943 /* These attributes aren't processed until later:
6944 DW_AT_stmt_list, DW_AT_low_pc, DW_AT_high_pc, DW_AT_ranges.
6945 DW_AT_comp_dir is used now, to find the DWO file, but it is also
6946 referenced later. However, these attributes are found in the stub
6947 which we won't have later. In order to not impose this complication
6948 on the rest of the code, we read them here and copy them to the
6949 DWO CU/TU die. */
6950
6951 stmt_list = NULL;
6952 low_pc = NULL;
6953 high_pc = NULL;
6954 ranges = NULL;
6955 comp_dir = NULL;
6956
6957 if (stub_comp_unit_die != NULL)
6958 {
6959 /* For TUs in DWO files, the DW_AT_stmt_list attribute lives in the
6960 DWO file. */
6961 if (!per_cu->is_debug_types)
6962 stmt_list = dwarf2_attr (stub_comp_unit_die, DW_AT_stmt_list, cu);
6963 low_pc = dwarf2_attr (stub_comp_unit_die, DW_AT_low_pc, cu);
6964 high_pc = dwarf2_attr (stub_comp_unit_die, DW_AT_high_pc, cu);
6965 ranges = dwarf2_attr (stub_comp_unit_die, DW_AT_ranges, cu);
6966 comp_dir = dwarf2_attr (stub_comp_unit_die, DW_AT_comp_dir, cu);
6967
6968 cu->addr_base = stub_comp_unit_die->addr_base ();
6969
6970 /* There should be a DW_AT_rnglists_base (DW_AT_GNU_ranges_base) attribute
6971 here (if needed). We need the value before we can process
6972 DW_AT_ranges. */
6973 cu->ranges_base = stub_comp_unit_die->ranges_base ();
6974 }
6975 else if (stub_comp_dir != NULL)
6976 {
6977 /* Reconstruct the comp_dir attribute to simplify the code below. */
6978 comp_dir = OBSTACK_ZALLOC (&cu->comp_unit_obstack, struct attribute);
6979 comp_dir->name = DW_AT_comp_dir;
6980 comp_dir->form = DW_FORM_string;
6981 comp_dir->set_string_noncanonical (stub_comp_dir);
6982 }
6983
6984 /* Set up for reading the DWO CU/TU. */
6985 cu->dwo_unit = dwo_unit;
6986 dwarf2_section_info *section = dwo_unit->section;
6987 section->read (objfile);
6988 abfd = section->get_bfd_owner ();
6989 begin_info_ptr = info_ptr = (section->buffer
6990 + to_underlying (dwo_unit->sect_off));
6991 dwo_abbrev_section = &dwo_unit->dwo_file->sections.abbrev;
6992
6993 if (per_cu->is_debug_types)
6994 {
6995 signatured_type *sig_type = (struct signatured_type *) per_cu;
6996
6997 info_ptr = read_and_check_comp_unit_head (per_objfile, &cu->header,
6998 section, dwo_abbrev_section,
6999 info_ptr, rcuh_kind::TYPE);
7000 /* This is not an assert because it can be caused by bad debug info. */
7001 if (sig_type->signature != cu->header.signature)
7002 {
7003 error (_("Dwarf Error: signature mismatch %s vs %s while reading"
7004 " TU at offset %s [in module %s]"),
7005 hex_string (sig_type->signature),
7006 hex_string (cu->header.signature),
7007 sect_offset_str (dwo_unit->sect_off),
7008 bfd_get_filename (abfd));
7009 }
7010 gdb_assert (dwo_unit->sect_off == cu->header.sect_off);
7011 /* For DWOs coming from DWP files, we don't know the CU length
7012 nor the type's offset in the TU until now. */
7013 dwo_unit->length = cu->header.get_length ();
7014 dwo_unit->type_offset_in_tu = cu->header.type_cu_offset_in_tu;
7015
7016 /* Establish the type offset that can be used to lookup the type.
7017 For DWO files, we don't know it until now. */
7018 sig_type->type_offset_in_section
7019 = dwo_unit->sect_off + to_underlying (dwo_unit->type_offset_in_tu);
7020 }
7021 else
7022 {
7023 info_ptr = read_and_check_comp_unit_head (per_objfile, &cu->header,
7024 section, dwo_abbrev_section,
7025 info_ptr, rcuh_kind::COMPILE);
7026 gdb_assert (dwo_unit->sect_off == cu->header.sect_off);
7027 /* For DWOs coming from DWP files, we don't know the CU length
7028 until now. */
7029 dwo_unit->length = cu->header.get_length ();
7030 }
7031
7032 dwo_abbrev_section->read (objfile);
7033 *result_dwo_abbrev_table
7034 = abbrev_table::read (dwo_abbrev_section, cu->header.abbrev_sect_off);
7035 init_cu_die_reader (result_reader, cu, section, dwo_unit->dwo_file,
7036 result_dwo_abbrev_table->get ());
7037
7038 /* Read in the die, but leave space to copy over the attributes
7039 from the stub. This has the benefit of simplifying the rest of
7040 the code - all the work to maintain the illusion of a single
7041 DW_TAG_{compile,type}_unit DIE is done here. */
7042 num_extra_attrs = ((stmt_list != NULL)
7043 + (low_pc != NULL)
7044 + (high_pc != NULL)
7045 + (ranges != NULL)
7046 + (comp_dir != NULL));
7047 info_ptr = read_full_die_1 (result_reader, result_comp_unit_die, info_ptr,
7048 num_extra_attrs);
7049
7050 /* Copy over the attributes from the stub to the DIE we just read in. */
7051 comp_unit_die = *result_comp_unit_die;
7052 i = comp_unit_die->num_attrs;
7053 if (stmt_list != NULL)
7054 comp_unit_die->attrs[i++] = *stmt_list;
7055 if (low_pc != NULL)
7056 comp_unit_die->attrs[i++] = *low_pc;
7057 if (high_pc != NULL)
7058 comp_unit_die->attrs[i++] = *high_pc;
7059 if (ranges != NULL)
7060 comp_unit_die->attrs[i++] = *ranges;
7061 if (comp_dir != NULL)
7062 comp_unit_die->attrs[i++] = *comp_dir;
7063 comp_unit_die->num_attrs += num_extra_attrs;
7064
7065 if (dwarf_die_debug)
7066 {
7067 fprintf_unfiltered (gdb_stdlog,
7068 "Read die from %s@0x%x of %s:\n",
7069 section->get_name (),
7070 (unsigned) (begin_info_ptr - section->buffer),
7071 bfd_get_filename (abfd));
7072 dump_die (comp_unit_die, dwarf_die_debug);
7073 }
7074
7075 /* Skip dummy compilation units. */
7076 if (info_ptr >= begin_info_ptr + dwo_unit->length
7077 || peek_abbrev_code (abfd, info_ptr) == 0)
7078 return 0;
7079
7080 *result_info_ptr = info_ptr;
7081 return 1;
7082 }
7083
7084 /* Return the signature of the compile unit, if found. In DWARF 4 and before,
7085 the signature is in the DW_AT_GNU_dwo_id attribute. In DWARF 5 and later, the
7086 signature is part of the header. */
7087 static gdb::optional<ULONGEST>
7088 lookup_dwo_id (struct dwarf2_cu *cu, struct die_info* comp_unit_die)
7089 {
7090 if (cu->header.version >= 5)
7091 return cu->header.signature;
7092 struct attribute *attr;
7093 attr = dwarf2_attr (comp_unit_die, DW_AT_GNU_dwo_id, cu);
7094 if (attr == nullptr || !attr->form_is_unsigned ())
7095 return gdb::optional<ULONGEST> ();
7096 return attr->as_unsigned ();
7097 }
7098
7099 /* Subroutine of cutu_reader to simplify it.
7100 Look up the DWO unit specified by COMP_UNIT_DIE of THIS_CU.
7101 Returns NULL if the specified DWO unit cannot be found. */
7102
7103 static struct dwo_unit *
7104 lookup_dwo_unit (dwarf2_cu *cu, die_info *comp_unit_die, const char *dwo_name)
7105 {
7106 dwarf2_per_cu_data *per_cu = cu->per_cu;
7107 struct dwo_unit *dwo_unit;
7108 const char *comp_dir;
7109
7110 gdb_assert (cu != NULL);
7111
7112 /* Yeah, we look dwo_name up again, but it simplifies the code. */
7113 dwo_name = dwarf2_dwo_name (comp_unit_die, cu);
7114 comp_dir = dwarf2_string_attr (comp_unit_die, DW_AT_comp_dir, cu);
7115
7116 if (per_cu->is_debug_types)
7117 dwo_unit = lookup_dwo_type_unit (cu, dwo_name, comp_dir);
7118 else
7119 {
7120 gdb::optional<ULONGEST> signature = lookup_dwo_id (cu, comp_unit_die);
7121
7122 if (!signature.has_value ())
7123 error (_("Dwarf Error: missing dwo_id for dwo_name %s"
7124 " [in module %s]"),
7125 dwo_name, bfd_get_filename (per_cu->per_bfd->obfd));
7126
7127 dwo_unit = lookup_dwo_comp_unit (cu, dwo_name, comp_dir, *signature);
7128 }
7129
7130 return dwo_unit;
7131 }
7132
7133 /* Subroutine of cutu_reader to simplify it.
7134 See it for a description of the parameters.
7135 Read a TU directly from a DWO file, bypassing the stub. */
7136
7137 void
7138 cutu_reader::init_tu_and_read_dwo_dies (dwarf2_per_cu_data *this_cu,
7139 dwarf2_per_objfile *per_objfile,
7140 dwarf2_cu *existing_cu)
7141 {
7142 struct signatured_type *sig_type;
7143
7144 /* Verify we can do the following downcast, and that we have the
7145 data we need. */
7146 gdb_assert (this_cu->is_debug_types && this_cu->reading_dwo_directly);
7147 sig_type = (struct signatured_type *) this_cu;
7148 gdb_assert (sig_type->dwo_unit != NULL);
7149
7150 dwarf2_cu *cu;
7151
7152 if (existing_cu != nullptr)
7153 {
7154 cu = existing_cu;
7155 gdb_assert (cu->dwo_unit == sig_type->dwo_unit);
7156 /* There's no need to do the rereading_dwo_cu handling that
7157 cutu_reader does since we don't read the stub. */
7158 }
7159 else
7160 {
7161 /* If an existing_cu is provided, a dwarf2_cu must not exist for this_cu
7162 in per_objfile yet. */
7163 gdb_assert (per_objfile->get_cu (this_cu) == nullptr);
7164 m_new_cu.reset (new dwarf2_cu (this_cu, per_objfile));
7165 cu = m_new_cu.get ();
7166 }
7167
7168 /* A future optimization, if needed, would be to use an existing
7169 abbrev table. When reading DWOs with skeletonless TUs, all the TUs
7170 could share abbrev tables. */
7171
7172 if (read_cutu_die_from_dwo (cu, sig_type->dwo_unit,
7173 NULL /* stub_comp_unit_die */,
7174 sig_type->dwo_unit->dwo_file->comp_dir,
7175 this, &info_ptr,
7176 &comp_unit_die,
7177 &m_dwo_abbrev_table) == 0)
7178 {
7179 /* Dummy die. */
7180 dummy_p = true;
7181 }
7182 }
7183
7184 /* Initialize a CU (or TU) and read its DIEs.
7185 If the CU defers to a DWO file, read the DWO file as well.
7186
7187 ABBREV_TABLE, if non-NULL, is the abbreviation table to use.
7188 Otherwise the table specified in the comp unit header is read in and used.
7189 This is an optimization for when we already have the abbrev table.
7190
7191 If EXISTING_CU is non-NULL, then use it. Otherwise, a new CU is
7192 allocated. */
7193
7194 cutu_reader::cutu_reader (dwarf2_per_cu_data *this_cu,
7195 dwarf2_per_objfile *per_objfile,
7196 struct abbrev_table *abbrev_table,
7197 dwarf2_cu *existing_cu,
7198 bool skip_partial)
7199 : die_reader_specs {},
7200 m_this_cu (this_cu)
7201 {
7202 struct objfile *objfile = per_objfile->objfile;
7203 struct dwarf2_section_info *section = this_cu->section;
7204 bfd *abfd = section->get_bfd_owner ();
7205 const gdb_byte *begin_info_ptr;
7206 struct signatured_type *sig_type = NULL;
7207 struct dwarf2_section_info *abbrev_section;
7208 /* Non-zero if CU currently points to a DWO file and we need to
7209 reread it. When this happens we need to reread the skeleton die
7210 before we can reread the DWO file (this only applies to CUs, not TUs). */
7211 int rereading_dwo_cu = 0;
7212
7213 if (dwarf_die_debug)
7214 fprintf_unfiltered (gdb_stdlog, "Reading %s unit at offset %s\n",
7215 this_cu->is_debug_types ? "type" : "comp",
7216 sect_offset_str (this_cu->sect_off));
7217
7218 /* If we're reading a TU directly from a DWO file, including a virtual DWO
7219 file (instead of going through the stub), short-circuit all of this. */
7220 if (this_cu->reading_dwo_directly)
7221 {
7222 /* Narrow down the scope of possibilities to have to understand. */
7223 gdb_assert (this_cu->is_debug_types);
7224 gdb_assert (abbrev_table == NULL);
7225 init_tu_and_read_dwo_dies (this_cu, per_objfile, existing_cu);
7226 return;
7227 }
7228
7229 /* This is cheap if the section is already read in. */
7230 section->read (objfile);
7231
7232 begin_info_ptr = info_ptr = section->buffer + to_underlying (this_cu->sect_off);
7233
7234 abbrev_section = get_abbrev_section_for_cu (this_cu);
7235
7236 dwarf2_cu *cu;
7237
7238 if (existing_cu != nullptr)
7239 {
7240 cu = existing_cu;
7241 /* If this CU is from a DWO file we need to start over, we need to
7242 refetch the attributes from the skeleton CU.
7243 This could be optimized by retrieving those attributes from when we
7244 were here the first time: the previous comp_unit_die was stored in
7245 comp_unit_obstack. But there's no data yet that we need this
7246 optimization. */
7247 if (cu->dwo_unit != NULL)
7248 rereading_dwo_cu = 1;
7249 }
7250 else
7251 {
7252 /* If an existing_cu is provided, a dwarf2_cu must not exist for this_cu
7253 in per_objfile yet. */
7254 gdb_assert (per_objfile->get_cu (this_cu) == nullptr);
7255 m_new_cu.reset (new dwarf2_cu (this_cu, per_objfile));
7256 cu = m_new_cu.get ();
7257 }
7258
7259 /* Get the header. */
7260 if (to_underlying (cu->header.first_die_cu_offset) != 0 && !rereading_dwo_cu)
7261 {
7262 /* We already have the header, there's no need to read it in again. */
7263 info_ptr += to_underlying (cu->header.first_die_cu_offset);
7264 }
7265 else
7266 {
7267 if (this_cu->is_debug_types)
7268 {
7269 info_ptr = read_and_check_comp_unit_head (per_objfile, &cu->header,
7270 section, abbrev_section,
7271 info_ptr, rcuh_kind::TYPE);
7272
7273 /* Since per_cu is the first member of struct signatured_type,
7274 we can go from a pointer to one to a pointer to the other. */
7275 sig_type = (struct signatured_type *) this_cu;
7276 gdb_assert (sig_type->signature == cu->header.signature);
7277 gdb_assert (sig_type->type_offset_in_tu
7278 == cu->header.type_cu_offset_in_tu);
7279 gdb_assert (this_cu->sect_off == cu->header.sect_off);
7280
7281 /* LENGTH has not been set yet for type units if we're
7282 using .gdb_index. */
7283 this_cu->length = cu->header.get_length ();
7284
7285 /* Establish the type offset that can be used to lookup the type. */
7286 sig_type->type_offset_in_section =
7287 this_cu->sect_off + to_underlying (sig_type->type_offset_in_tu);
7288
7289 this_cu->dwarf_version = cu->header.version;
7290 }
7291 else
7292 {
7293 info_ptr = read_and_check_comp_unit_head (per_objfile, &cu->header,
7294 section, abbrev_section,
7295 info_ptr,
7296 rcuh_kind::COMPILE);
7297
7298 gdb_assert (this_cu->sect_off == cu->header.sect_off);
7299 if (this_cu->length == 0)
7300 this_cu->length = cu->header.get_length ();
7301 else
7302 gdb_assert (this_cu->length == cu->header.get_length ());
7303 this_cu->dwarf_version = cu->header.version;
7304 }
7305 }
7306
7307 /* Skip dummy compilation units. */
7308 if (info_ptr >= begin_info_ptr + this_cu->length
7309 || peek_abbrev_code (abfd, info_ptr) == 0)
7310 {
7311 dummy_p = true;
7312 return;
7313 }
7314
7315 /* If we don't have them yet, read the abbrevs for this compilation unit.
7316 And if we need to read them now, make sure they're freed when we're
7317 done. */
7318 if (abbrev_table != NULL)
7319 gdb_assert (cu->header.abbrev_sect_off == abbrev_table->sect_off);
7320 else
7321 {
7322 abbrev_section->read (objfile);
7323 m_abbrev_table_holder
7324 = abbrev_table::read (abbrev_section, cu->header.abbrev_sect_off);
7325 abbrev_table = m_abbrev_table_holder.get ();
7326 }
7327
7328 /* Read the top level CU/TU die. */
7329 init_cu_die_reader (this, cu, section, NULL, abbrev_table);
7330 info_ptr = read_full_die (this, &comp_unit_die, info_ptr);
7331
7332 if (skip_partial && comp_unit_die->tag == DW_TAG_partial_unit)
7333 {
7334 dummy_p = true;
7335 return;
7336 }
7337
7338 /* If we are in a DWO stub, process it and then read in the "real" CU/TU
7339 from the DWO file. read_cutu_die_from_dwo will allocate the abbreviation
7340 table from the DWO file and pass the ownership over to us. It will be
7341 referenced from READER, so we must make sure to free it after we're done
7342 with READER.
7343
7344 Note that if USE_EXISTING_OK != 0, and THIS_CU->cu already contains a
7345 DWO CU, that this test will fail (the attribute will not be present). */
7346 const char *dwo_name = dwarf2_dwo_name (comp_unit_die, cu);
7347 if (dwo_name != nullptr)
7348 {
7349 struct dwo_unit *dwo_unit;
7350 struct die_info *dwo_comp_unit_die;
7351
7352 if (comp_unit_die->has_children)
7353 {
7354 complaint (_("compilation unit with DW_AT_GNU_dwo_name"
7355 " has children (offset %s) [in module %s]"),
7356 sect_offset_str (this_cu->sect_off),
7357 bfd_get_filename (abfd));
7358 }
7359 dwo_unit = lookup_dwo_unit (cu, comp_unit_die, dwo_name);
7360 if (dwo_unit != NULL)
7361 {
7362 if (read_cutu_die_from_dwo (cu, dwo_unit,
7363 comp_unit_die, NULL,
7364 this, &info_ptr,
7365 &dwo_comp_unit_die,
7366 &m_dwo_abbrev_table) == 0)
7367 {
7368 /* Dummy die. */
7369 dummy_p = true;
7370 return;
7371 }
7372 comp_unit_die = dwo_comp_unit_die;
7373 }
7374 else
7375 {
7376 /* Yikes, we couldn't find the rest of the DIE, we only have
7377 the stub. A complaint has already been logged. There's
7378 not much more we can do except pass on the stub DIE to
7379 die_reader_func. We don't want to throw an error on bad
7380 debug info. */
7381 }
7382 }
7383 }
7384
7385 void
7386 cutu_reader::keep ()
7387 {
7388 /* Done, clean up. */
7389 gdb_assert (!dummy_p);
7390 if (m_new_cu != NULL)
7391 {
7392 /* Save this dwarf2_cu in the per_objfile. The per_objfile owns it
7393 now. */
7394 dwarf2_per_objfile *per_objfile = m_new_cu->per_objfile;
7395 per_objfile->set_cu (m_this_cu, m_new_cu.release ());
7396 }
7397 }
7398
7399 /* Read CU/TU THIS_CU but do not follow DW_AT_GNU_dwo_name (DW_AT_dwo_name)
7400 if present. DWO_FILE, if non-NULL, is the DWO file to read (the caller is
7401 assumed to have already done the lookup to find the DWO file).
7402
7403 The caller is required to fill in THIS_CU->section, THIS_CU->offset, and
7404 THIS_CU->is_debug_types, but nothing else.
7405
7406 We fill in THIS_CU->length.
7407
7408 THIS_CU->cu is always freed when done.
7409 This is done in order to not leave THIS_CU->cu in a state where we have
7410 to care whether it refers to the "main" CU or the DWO CU.
7411
7412 When parent_cu is passed, it is used to provide a default value for
7413 str_offsets_base and addr_base from the parent. */
7414
7415 cutu_reader::cutu_reader (dwarf2_per_cu_data *this_cu,
7416 dwarf2_per_objfile *per_objfile,
7417 struct dwarf2_cu *parent_cu,
7418 struct dwo_file *dwo_file)
7419 : die_reader_specs {},
7420 m_this_cu (this_cu)
7421 {
7422 struct objfile *objfile = per_objfile->objfile;
7423 struct dwarf2_section_info *section = this_cu->section;
7424 bfd *abfd = section->get_bfd_owner ();
7425 struct dwarf2_section_info *abbrev_section;
7426 const gdb_byte *begin_info_ptr, *info_ptr;
7427
7428 if (dwarf_die_debug)
7429 fprintf_unfiltered (gdb_stdlog, "Reading %s unit at offset %s\n",
7430 this_cu->is_debug_types ? "type" : "comp",
7431 sect_offset_str (this_cu->sect_off));
7432
7433 gdb_assert (per_objfile->get_cu (this_cu) == nullptr);
7434
7435 abbrev_section = (dwo_file != NULL
7436 ? &dwo_file->sections.abbrev
7437 : get_abbrev_section_for_cu (this_cu));
7438
7439 /* This is cheap if the section is already read in. */
7440 section->read (objfile);
7441
7442 m_new_cu.reset (new dwarf2_cu (this_cu, per_objfile));
7443
7444 begin_info_ptr = info_ptr = section->buffer + to_underlying (this_cu->sect_off);
7445 info_ptr = read_and_check_comp_unit_head (per_objfile, &m_new_cu->header,
7446 section, abbrev_section, info_ptr,
7447 (this_cu->is_debug_types
7448 ? rcuh_kind::TYPE
7449 : rcuh_kind::COMPILE));
7450
7451 if (parent_cu != nullptr)
7452 {
7453 m_new_cu->str_offsets_base = parent_cu->str_offsets_base;
7454 m_new_cu->addr_base = parent_cu->addr_base;
7455 }
7456 this_cu->length = m_new_cu->header.get_length ();
7457
7458 /* Skip dummy compilation units. */
7459 if (info_ptr >= begin_info_ptr + this_cu->length
7460 || peek_abbrev_code (abfd, info_ptr) == 0)
7461 {
7462 dummy_p = true;
7463 return;
7464 }
7465
7466 abbrev_section->read (objfile);
7467 m_abbrev_table_holder
7468 = abbrev_table::read (abbrev_section, m_new_cu->header.abbrev_sect_off);
7469
7470 init_cu_die_reader (this, m_new_cu.get (), section, dwo_file,
7471 m_abbrev_table_holder.get ());
7472 info_ptr = read_full_die (this, &comp_unit_die, info_ptr);
7473 }
7474
7475 \f
7476 /* Type Unit Groups.
7477
7478 Type Unit Groups are a way to collapse the set of all TUs (type units) into
7479 a more manageable set. The grouping is done by DW_AT_stmt_list entry
7480 so that all types coming from the same compilation (.o file) are grouped
7481 together. A future step could be to put the types in the same symtab as
7482 the CU the types ultimately came from. */
7483
7484 static hashval_t
7485 hash_type_unit_group (const void *item)
7486 {
7487 const struct type_unit_group *tu_group
7488 = (const struct type_unit_group *) item;
7489
7490 return hash_stmt_list_entry (&tu_group->hash);
7491 }
7492
7493 static int
7494 eq_type_unit_group (const void *item_lhs, const void *item_rhs)
7495 {
7496 const struct type_unit_group *lhs = (const struct type_unit_group *) item_lhs;
7497 const struct type_unit_group *rhs = (const struct type_unit_group *) item_rhs;
7498
7499 return eq_stmt_list_entry (&lhs->hash, &rhs->hash);
7500 }
7501
7502 /* Allocate a hash table for type unit groups. */
7503
7504 static htab_up
7505 allocate_type_unit_groups_table ()
7506 {
7507 return htab_up (htab_create_alloc (3,
7508 hash_type_unit_group,
7509 eq_type_unit_group,
7510 NULL, xcalloc, xfree));
7511 }
7512
7513 /* Type units that don't have DW_AT_stmt_list are grouped into their own
7514 partial symtabs. We combine several TUs per psymtab to not let the size
7515 of any one psymtab grow too big. */
7516 #define NO_STMT_LIST_TYPE_UNIT_PSYMTAB (1 << 31)
7517 #define NO_STMT_LIST_TYPE_UNIT_PSYMTAB_SIZE 10
7518
7519 /* Helper routine for get_type_unit_group.
7520 Create the type_unit_group object used to hold one or more TUs. */
7521
7522 static struct type_unit_group *
7523 create_type_unit_group (struct dwarf2_cu *cu, sect_offset line_offset_struct)
7524 {
7525 dwarf2_per_objfile *per_objfile = cu->per_objfile;
7526 dwarf2_per_bfd *per_bfd = per_objfile->per_bfd;
7527 struct dwarf2_per_cu_data *per_cu;
7528 struct type_unit_group *tu_group;
7529
7530 tu_group = OBSTACK_ZALLOC (&per_objfile->per_bfd->obstack, type_unit_group);
7531 per_cu = &tu_group->per_cu;
7532 per_cu->per_bfd = per_bfd;
7533
7534 if (per_bfd->using_index)
7535 {
7536 per_cu->v.quick = OBSTACK_ZALLOC (&per_bfd->obstack,
7537 struct dwarf2_per_cu_quick_data);
7538 }
7539 else
7540 {
7541 unsigned int line_offset = to_underlying (line_offset_struct);
7542 dwarf2_psymtab *pst;
7543 std::string name;
7544
7545 /* Give the symtab a useful name for debug purposes. */
7546 if ((line_offset & NO_STMT_LIST_TYPE_UNIT_PSYMTAB) != 0)
7547 name = string_printf ("<type_units_%d>",
7548 (line_offset & ~NO_STMT_LIST_TYPE_UNIT_PSYMTAB));
7549 else
7550 name = string_printf ("<type_units_at_0x%x>", line_offset);
7551
7552 pst = create_partial_symtab (per_cu, per_objfile, name.c_str ());
7553 pst->anonymous = true;
7554 }
7555
7556 tu_group->hash.dwo_unit = cu->dwo_unit;
7557 tu_group->hash.line_sect_off = line_offset_struct;
7558
7559 return tu_group;
7560 }
7561
7562 /* Look up the type_unit_group for type unit CU, and create it if necessary.
7563 STMT_LIST is a DW_AT_stmt_list attribute. */
7564
7565 static struct type_unit_group *
7566 get_type_unit_group (struct dwarf2_cu *cu, const struct attribute *stmt_list)
7567 {
7568 dwarf2_per_objfile *per_objfile = cu->per_objfile;
7569 struct tu_stats *tu_stats = &per_objfile->per_bfd->tu_stats;
7570 struct type_unit_group *tu_group;
7571 void **slot;
7572 unsigned int line_offset;
7573 struct type_unit_group type_unit_group_for_lookup;
7574
7575 if (per_objfile->per_bfd->type_unit_groups == NULL)
7576 per_objfile->per_bfd->type_unit_groups = allocate_type_unit_groups_table ();
7577
7578 /* Do we need to create a new group, or can we use an existing one? */
7579
7580 if (stmt_list != nullptr && stmt_list->form_is_unsigned ())
7581 {
7582 line_offset = stmt_list->as_unsigned ();
7583 ++tu_stats->nr_symtab_sharers;
7584 }
7585 else
7586 {
7587 /* Ugh, no stmt_list. Rare, but we have to handle it.
7588 We can do various things here like create one group per TU or
7589 spread them over multiple groups to split up the expansion work.
7590 To avoid worst case scenarios (too many groups or too large groups)
7591 we, umm, group them in bunches. */
7592 line_offset = (NO_STMT_LIST_TYPE_UNIT_PSYMTAB
7593 | (tu_stats->nr_stmt_less_type_units
7594 / NO_STMT_LIST_TYPE_UNIT_PSYMTAB_SIZE));
7595 ++tu_stats->nr_stmt_less_type_units;
7596 }
7597
7598 type_unit_group_for_lookup.hash.dwo_unit = cu->dwo_unit;
7599 type_unit_group_for_lookup.hash.line_sect_off = (sect_offset) line_offset;
7600 slot = htab_find_slot (per_objfile->per_bfd->type_unit_groups.get (),
7601 &type_unit_group_for_lookup, INSERT);
7602 if (*slot != NULL)
7603 {
7604 tu_group = (struct type_unit_group *) *slot;
7605 gdb_assert (tu_group != NULL);
7606 }
7607 else
7608 {
7609 sect_offset line_offset_struct = (sect_offset) line_offset;
7610 tu_group = create_type_unit_group (cu, line_offset_struct);
7611 *slot = tu_group;
7612 ++tu_stats->nr_symtabs;
7613 }
7614
7615 return tu_group;
7616 }
7617 \f
7618 /* Partial symbol tables. */
7619
7620 /* Create a psymtab named NAME and assign it to PER_CU.
7621
7622 The caller must fill in the following details:
7623 dirname, textlow, texthigh. */
7624
7625 static dwarf2_psymtab *
7626 create_partial_symtab (dwarf2_per_cu_data *per_cu,
7627 dwarf2_per_objfile *per_objfile,
7628 const char *name)
7629 {
7630 struct objfile *objfile = per_objfile->objfile;
7631 dwarf2_psymtab *pst;
7632
7633 pst = new dwarf2_psymtab (name, objfile, per_cu);
7634
7635 pst->psymtabs_addrmap_supported = true;
7636
7637 /* This is the glue that links PST into GDB's symbol API. */
7638 per_cu->v.psymtab = pst;
7639
7640 return pst;
7641 }
7642
7643 /* DIE reader function for process_psymtab_comp_unit. */
7644
7645 static void
7646 process_psymtab_comp_unit_reader (const struct die_reader_specs *reader,
7647 const gdb_byte *info_ptr,
7648 struct die_info *comp_unit_die,
7649 enum language pretend_language)
7650 {
7651 struct dwarf2_cu *cu = reader->cu;
7652 dwarf2_per_objfile *per_objfile = cu->per_objfile;
7653 struct objfile *objfile = per_objfile->objfile;
7654 struct gdbarch *gdbarch = objfile->arch ();
7655 struct dwarf2_per_cu_data *per_cu = cu->per_cu;
7656 CORE_ADDR baseaddr;
7657 CORE_ADDR best_lowpc = 0, best_highpc = 0;
7658 dwarf2_psymtab *pst;
7659 enum pc_bounds_kind cu_bounds_kind;
7660 const char *filename;
7661
7662 gdb_assert (! per_cu->is_debug_types);
7663
7664 prepare_one_comp_unit (cu, comp_unit_die, pretend_language);
7665
7666 /* Allocate a new partial symbol table structure. */
7667 gdb::unique_xmalloc_ptr<char> debug_filename;
7668 static const char artificial[] = "<artificial>";
7669 filename = dwarf2_string_attr (comp_unit_die, DW_AT_name, cu);
7670 if (filename == NULL)
7671 filename = "";
7672 else if (strcmp (filename, artificial) == 0)
7673 {
7674 debug_filename.reset (concat (artificial, "@",
7675 sect_offset_str (per_cu->sect_off),
7676 (char *) NULL));
7677 filename = debug_filename.get ();
7678 }
7679
7680 pst = create_partial_symtab (per_cu, per_objfile, filename);
7681
7682 /* This must be done before calling dwarf2_build_include_psymtabs. */
7683 pst->dirname = dwarf2_string_attr (comp_unit_die, DW_AT_comp_dir, cu);
7684
7685 baseaddr = objfile->text_section_offset ();
7686
7687 dwarf2_find_base_address (comp_unit_die, cu);
7688
7689 /* Possibly set the default values of LOWPC and HIGHPC from
7690 `DW_AT_ranges'. */
7691 cu_bounds_kind = dwarf2_get_pc_bounds (comp_unit_die, &best_lowpc,
7692 &best_highpc, cu, pst);
7693 if (cu_bounds_kind == PC_BOUNDS_HIGH_LOW && best_lowpc < best_highpc)
7694 {
7695 CORE_ADDR low
7696 = (gdbarch_adjust_dwarf2_addr (gdbarch, best_lowpc + baseaddr)
7697 - baseaddr);
7698 CORE_ADDR high
7699 = (gdbarch_adjust_dwarf2_addr (gdbarch, best_highpc + baseaddr)
7700 - baseaddr - 1);
7701 /* Store the contiguous range if it is not empty; it can be
7702 empty for CUs with no code. */
7703 addrmap_set_empty (objfile->partial_symtabs->psymtabs_addrmap,
7704 low, high, pst);
7705 }
7706
7707 /* Check if comp unit has_children.
7708 If so, read the rest of the partial symbols from this comp unit.
7709 If not, there's no more debug_info for this comp unit. */
7710 if (comp_unit_die->has_children)
7711 {
7712 struct partial_die_info *first_die;
7713 CORE_ADDR lowpc, highpc;
7714
7715 lowpc = ((CORE_ADDR) -1);
7716 highpc = ((CORE_ADDR) 0);
7717
7718 first_die = load_partial_dies (reader, info_ptr, 1);
7719
7720 scan_partial_symbols (first_die, &lowpc, &highpc,
7721 cu_bounds_kind <= PC_BOUNDS_INVALID, cu);
7722
7723 /* If we didn't find a lowpc, set it to highpc to avoid
7724 complaints from `maint check'. */
7725 if (lowpc == ((CORE_ADDR) -1))
7726 lowpc = highpc;
7727
7728 /* If the compilation unit didn't have an explicit address range,
7729 then use the information extracted from its child dies. */
7730 if (cu_bounds_kind <= PC_BOUNDS_INVALID)
7731 {
7732 best_lowpc = lowpc;
7733 best_highpc = highpc;
7734 }
7735 }
7736 pst->set_text_low (gdbarch_adjust_dwarf2_addr (gdbarch,
7737 best_lowpc + baseaddr)
7738 - baseaddr);
7739 pst->set_text_high (gdbarch_adjust_dwarf2_addr (gdbarch,
7740 best_highpc + baseaddr)
7741 - baseaddr);
7742
7743 pst->end ();
7744
7745 if (!cu->per_cu->imported_symtabs_empty ())
7746 {
7747 int i;
7748 int len = cu->per_cu->imported_symtabs_size ();
7749
7750 /* Fill in 'dependencies' here; we fill in 'users' in a
7751 post-pass. */
7752 pst->number_of_dependencies = len;
7753 pst->dependencies
7754 = objfile->partial_symtabs->allocate_dependencies (len);
7755 for (i = 0; i < len; ++i)
7756 {
7757 pst->dependencies[i]
7758 = cu->per_cu->imported_symtabs->at (i)->v.psymtab;
7759 }
7760
7761 cu->per_cu->imported_symtabs_free ();
7762 }
7763
7764 /* Get the list of files included in the current compilation unit,
7765 and build a psymtab for each of them. */
7766 dwarf2_build_include_psymtabs (cu, comp_unit_die, pst);
7767
7768 dwarf_read_debug_printf ("Psymtab for %s unit @%s: %s - %s"
7769 ", %d global, %d static syms",
7770 per_cu->is_debug_types ? "type" : "comp",
7771 sect_offset_str (per_cu->sect_off),
7772 paddress (gdbarch, pst->text_low (objfile)),
7773 paddress (gdbarch, pst->text_high (objfile)),
7774 (int) pst->global_psymbols.size (),
7775 (int) pst->static_psymbols.size ());
7776 }
7777
7778 /* Subroutine of dwarf2_build_psymtabs_hard to simplify it.
7779 Process compilation unit THIS_CU for a psymtab. */
7780
7781 static void
7782 process_psymtab_comp_unit (dwarf2_per_cu_data *this_cu,
7783 dwarf2_per_objfile *per_objfile,
7784 bool want_partial_unit,
7785 enum language pretend_language)
7786 {
7787 /* If this compilation unit was already read in, free the
7788 cached copy in order to read it in again. This is
7789 necessary because we skipped some symbols when we first
7790 read in the compilation unit (see load_partial_dies).
7791 This problem could be avoided, but the benefit is unclear. */
7792 per_objfile->remove_cu (this_cu);
7793
7794 cutu_reader reader (this_cu, per_objfile, nullptr, nullptr, false);
7795
7796 switch (reader.comp_unit_die->tag)
7797 {
7798 case DW_TAG_compile_unit:
7799 this_cu->unit_type = DW_UT_compile;
7800 break;
7801 case DW_TAG_partial_unit:
7802 this_cu->unit_type = DW_UT_partial;
7803 break;
7804 default:
7805 abort ();
7806 }
7807
7808 if (reader.dummy_p)
7809 {
7810 /* Nothing. */
7811 }
7812 else if (this_cu->is_debug_types)
7813 build_type_psymtabs_reader (&reader, reader.info_ptr,
7814 reader.comp_unit_die);
7815 else if (want_partial_unit
7816 || reader.comp_unit_die->tag != DW_TAG_partial_unit)
7817 process_psymtab_comp_unit_reader (&reader, reader.info_ptr,
7818 reader.comp_unit_die,
7819 pretend_language);
7820
7821 this_cu->lang = reader.cu->language;
7822
7823 /* Age out any secondary CUs. */
7824 per_objfile->age_comp_units ();
7825 }
7826
7827 /* Reader function for build_type_psymtabs. */
7828
7829 static void
7830 build_type_psymtabs_reader (const struct die_reader_specs *reader,
7831 const gdb_byte *info_ptr,
7832 struct die_info *type_unit_die)
7833 {
7834 dwarf2_per_objfile *per_objfile = reader->cu->per_objfile;
7835 struct dwarf2_cu *cu = reader->cu;
7836 struct dwarf2_per_cu_data *per_cu = cu->per_cu;
7837 struct signatured_type *sig_type;
7838 struct type_unit_group *tu_group;
7839 struct attribute *attr;
7840 struct partial_die_info *first_die;
7841 CORE_ADDR lowpc, highpc;
7842 dwarf2_psymtab *pst;
7843
7844 gdb_assert (per_cu->is_debug_types);
7845 sig_type = (struct signatured_type *) per_cu;
7846
7847 if (! type_unit_die->has_children)
7848 return;
7849
7850 attr = type_unit_die->attr (DW_AT_stmt_list);
7851 tu_group = get_type_unit_group (cu, attr);
7852
7853 if (tu_group->tus == nullptr)
7854 tu_group->tus = new std::vector<signatured_type *>;
7855 tu_group->tus->push_back (sig_type);
7856
7857 prepare_one_comp_unit (cu, type_unit_die, language_minimal);
7858 pst = create_partial_symtab (per_cu, per_objfile, "");
7859 pst->anonymous = true;
7860
7861 first_die = load_partial_dies (reader, info_ptr, 1);
7862
7863 lowpc = (CORE_ADDR) -1;
7864 highpc = (CORE_ADDR) 0;
7865 scan_partial_symbols (first_die, &lowpc, &highpc, 0, cu);
7866
7867 pst->end ();
7868 }
7869
7870 /* Struct used to sort TUs by their abbreviation table offset. */
7871
7872 struct tu_abbrev_offset
7873 {
7874 tu_abbrev_offset (signatured_type *sig_type_, sect_offset abbrev_offset_)
7875 : sig_type (sig_type_), abbrev_offset (abbrev_offset_)
7876 {}
7877
7878 signatured_type *sig_type;
7879 sect_offset abbrev_offset;
7880 };
7881
7882 /* Helper routine for build_type_psymtabs_1, passed to std::sort. */
7883
7884 static bool
7885 sort_tu_by_abbrev_offset (const struct tu_abbrev_offset &a,
7886 const struct tu_abbrev_offset &b)
7887 {
7888 return a.abbrev_offset < b.abbrev_offset;
7889 }
7890
7891 /* Efficiently read all the type units.
7892 This does the bulk of the work for build_type_psymtabs.
7893
7894 The efficiency is because we sort TUs by the abbrev table they use and
7895 only read each abbrev table once. In one program there are 200K TUs
7896 sharing 8K abbrev tables.
7897
7898 The main purpose of this function is to support building the
7899 dwarf2_per_objfile->per_bfd->type_unit_groups table.
7900 TUs typically share the DW_AT_stmt_list of the CU they came from, so we
7901 can collapse the search space by grouping them by stmt_list.
7902 The savings can be significant, in the same program from above the 200K TUs
7903 share 8K stmt_list tables.
7904
7905 FUNC is expected to call get_type_unit_group, which will create the
7906 struct type_unit_group if necessary and add it to
7907 dwarf2_per_objfile->per_bfd->type_unit_groups. */
7908
7909 static void
7910 build_type_psymtabs_1 (dwarf2_per_objfile *per_objfile)
7911 {
7912 struct tu_stats *tu_stats = &per_objfile->per_bfd->tu_stats;
7913 abbrev_table_up abbrev_table;
7914 sect_offset abbrev_offset;
7915
7916 /* It's up to the caller to not call us multiple times. */
7917 gdb_assert (per_objfile->per_bfd->type_unit_groups == NULL);
7918
7919 if (per_objfile->per_bfd->all_type_units.empty ())
7920 return;
7921
7922 /* TUs typically share abbrev tables, and there can be way more TUs than
7923 abbrev tables. Sort by abbrev table to reduce the number of times we
7924 read each abbrev table in.
7925 Alternatives are to punt or to maintain a cache of abbrev tables.
7926 This is simpler and efficient enough for now.
7927
7928 Later we group TUs by their DW_AT_stmt_list value (as this defines the
7929 symtab to use). Typically TUs with the same abbrev offset have the same
7930 stmt_list value too so in practice this should work well.
7931
7932 The basic algorithm here is:
7933
7934 sort TUs by abbrev table
7935 for each TU with same abbrev table:
7936 read abbrev table if first user
7937 read TU top level DIE
7938 [IWBN if DWO skeletons had DW_AT_stmt_list]
7939 call FUNC */
7940
7941 dwarf_read_debug_printf ("Building type unit groups ...");
7942
7943 /* Sort in a separate table to maintain the order of all_type_units
7944 for .gdb_index: TU indices directly index all_type_units. */
7945 std::vector<tu_abbrev_offset> sorted_by_abbrev;
7946 sorted_by_abbrev.reserve (per_objfile->per_bfd->all_type_units.size ());
7947
7948 for (signatured_type *sig_type : per_objfile->per_bfd->all_type_units)
7949 sorted_by_abbrev.emplace_back
7950 (sig_type, read_abbrev_offset (per_objfile, sig_type->per_cu.section,
7951 sig_type->per_cu.sect_off));
7952
7953 std::sort (sorted_by_abbrev.begin (), sorted_by_abbrev.end (),
7954 sort_tu_by_abbrev_offset);
7955
7956 abbrev_offset = (sect_offset) ~(unsigned) 0;
7957
7958 for (const tu_abbrev_offset &tu : sorted_by_abbrev)
7959 {
7960 /* Switch to the next abbrev table if necessary. */
7961 if (abbrev_table == NULL
7962 || tu.abbrev_offset != abbrev_offset)
7963 {
7964 abbrev_offset = tu.abbrev_offset;
7965 per_objfile->per_bfd->abbrev.read (per_objfile->objfile);
7966 abbrev_table =
7967 abbrev_table::read (&per_objfile->per_bfd->abbrev, abbrev_offset);
7968 ++tu_stats->nr_uniq_abbrev_tables;
7969 }
7970
7971 cutu_reader reader (&tu.sig_type->per_cu, per_objfile,
7972 abbrev_table.get (), nullptr, false);
7973 if (!reader.dummy_p)
7974 build_type_psymtabs_reader (&reader, reader.info_ptr,
7975 reader.comp_unit_die);
7976 }
7977 }
7978
7979 /* Print collected type unit statistics. */
7980
7981 static void
7982 print_tu_stats (dwarf2_per_objfile *per_objfile)
7983 {
7984 struct tu_stats *tu_stats = &per_objfile->per_bfd->tu_stats;
7985
7986 dwarf_read_debug_printf ("Type unit statistics:");
7987 dwarf_read_debug_printf (" %zu TUs",
7988 per_objfile->per_bfd->all_type_units.size ());
7989 dwarf_read_debug_printf (" %d uniq abbrev tables",
7990 tu_stats->nr_uniq_abbrev_tables);
7991 dwarf_read_debug_printf (" %d symtabs from stmt_list entries",
7992 tu_stats->nr_symtabs);
7993 dwarf_read_debug_printf (" %d symtab sharers",
7994 tu_stats->nr_symtab_sharers);
7995 dwarf_read_debug_printf (" %d type units without a stmt_list",
7996 tu_stats->nr_stmt_less_type_units);
7997 dwarf_read_debug_printf (" %d all_type_units reallocs",
7998 tu_stats->nr_all_type_units_reallocs);
7999 }
8000
8001 /* Traversal function for build_type_psymtabs. */
8002
8003 static int
8004 build_type_psymtab_dependencies (void **slot, void *info)
8005 {
8006 dwarf2_per_objfile *per_objfile = (dwarf2_per_objfile *) info;
8007 struct objfile *objfile = per_objfile->objfile;
8008 struct type_unit_group *tu_group = (struct type_unit_group *) *slot;
8009 struct dwarf2_per_cu_data *per_cu = &tu_group->per_cu;
8010 dwarf2_psymtab *pst = per_cu->v.psymtab;
8011 int len = (tu_group->tus == nullptr) ? 0 : tu_group->tus->size ();
8012 int i;
8013
8014 gdb_assert (len > 0);
8015 gdb_assert (per_cu->type_unit_group_p ());
8016
8017 pst->number_of_dependencies = len;
8018 pst->dependencies = objfile->partial_symtabs->allocate_dependencies (len);
8019 for (i = 0; i < len; ++i)
8020 {
8021 struct signatured_type *iter = tu_group->tus->at (i);
8022 gdb_assert (iter->per_cu.is_debug_types);
8023 pst->dependencies[i] = iter->per_cu.v.psymtab;
8024 iter->type_unit_group = tu_group;
8025 }
8026
8027 delete tu_group->tus;
8028 tu_group->tus = nullptr;
8029
8030 return 1;
8031 }
8032
8033 /* Subroutine of dwarf2_build_psymtabs_hard to simplify it.
8034 Build partial symbol tables for the .debug_types comp-units. */
8035
8036 static void
8037 build_type_psymtabs (dwarf2_per_objfile *per_objfile)
8038 {
8039 if (! create_all_type_units (per_objfile))
8040 return;
8041
8042 build_type_psymtabs_1 (per_objfile);
8043 }
8044
8045 /* Traversal function for process_skeletonless_type_unit.
8046 Read a TU in a DWO file and build partial symbols for it. */
8047
8048 static int
8049 process_skeletonless_type_unit (void **slot, void *info)
8050 {
8051 struct dwo_unit *dwo_unit = (struct dwo_unit *) *slot;
8052 dwarf2_per_objfile *per_objfile = (dwarf2_per_objfile *) info;
8053 struct signatured_type find_entry, *entry;
8054
8055 /* If this TU doesn't exist in the global table, add it and read it in. */
8056
8057 if (per_objfile->per_bfd->signatured_types == NULL)
8058 per_objfile->per_bfd->signatured_types = allocate_signatured_type_table ();
8059
8060 find_entry.signature = dwo_unit->signature;
8061 slot = htab_find_slot (per_objfile->per_bfd->signatured_types.get (),
8062 &find_entry, INSERT);
8063 /* If we've already seen this type there's nothing to do. What's happening
8064 is we're doing our own version of comdat-folding here. */
8065 if (*slot != NULL)
8066 return 1;
8067
8068 /* This does the job that create_all_type_units would have done for
8069 this TU. */
8070 entry = add_type_unit (per_objfile, dwo_unit->signature, slot);
8071 fill_in_sig_entry_from_dwo_entry (per_objfile, entry, dwo_unit);
8072 *slot = entry;
8073
8074 /* This does the job that build_type_psymtabs_1 would have done. */
8075 cutu_reader reader (&entry->per_cu, per_objfile, nullptr, nullptr, false);
8076 if (!reader.dummy_p)
8077 build_type_psymtabs_reader (&reader, reader.info_ptr,
8078 reader.comp_unit_die);
8079
8080 return 1;
8081 }
8082
8083 /* Traversal function for process_skeletonless_type_units. */
8084
8085 static int
8086 process_dwo_file_for_skeletonless_type_units (void **slot, void *info)
8087 {
8088 struct dwo_file *dwo_file = (struct dwo_file *) *slot;
8089
8090 if (dwo_file->tus != NULL)
8091 htab_traverse_noresize (dwo_file->tus.get (),
8092 process_skeletonless_type_unit, info);
8093
8094 return 1;
8095 }
8096
8097 /* Scan all TUs of DWO files, verifying we've processed them.
8098 This is needed in case a TU was emitted without its skeleton.
8099 Note: This can't be done until we know what all the DWO files are. */
8100
8101 static void
8102 process_skeletonless_type_units (dwarf2_per_objfile *per_objfile)
8103 {
8104 /* Skeletonless TUs in DWP files without .gdb_index is not supported yet. */
8105 if (get_dwp_file (per_objfile) == NULL
8106 && per_objfile->per_bfd->dwo_files != NULL)
8107 {
8108 htab_traverse_noresize (per_objfile->per_bfd->dwo_files.get (),
8109 process_dwo_file_for_skeletonless_type_units,
8110 per_objfile);
8111 }
8112 }
8113
8114 /* Compute the 'user' field for each psymtab in DWARF2_PER_OBJFILE. */
8115
8116 static void
8117 set_partial_user (dwarf2_per_objfile *per_objfile)
8118 {
8119 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
8120 {
8121 dwarf2_psymtab *pst = per_cu->v.psymtab;
8122
8123 if (pst == NULL)
8124 continue;
8125
8126 for (int j = 0; j < pst->number_of_dependencies; ++j)
8127 {
8128 /* Set the 'user' field only if it is not already set. */
8129 if (pst->dependencies[j]->user == NULL)
8130 pst->dependencies[j]->user = pst;
8131 }
8132 }
8133 }
8134
8135 /* Build the partial symbol table by doing a quick pass through the
8136 .debug_info and .debug_abbrev sections. */
8137
8138 static void
8139 dwarf2_build_psymtabs_hard (dwarf2_per_objfile *per_objfile)
8140 {
8141 struct objfile *objfile = per_objfile->objfile;
8142
8143 dwarf_read_debug_printf ("Building psymtabs of objfile %s ...",
8144 objfile_name (objfile));
8145
8146 scoped_restore restore_reading_psyms
8147 = make_scoped_restore (&per_objfile->per_bfd->reading_partial_symbols,
8148 true);
8149
8150 per_objfile->per_bfd->info.read (objfile);
8151
8152 /* Any cached compilation units will be linked by the per-objfile
8153 read_in_chain. Make sure to free them when we're done. */
8154 free_cached_comp_units freer (per_objfile);
8155
8156 build_type_psymtabs (per_objfile);
8157
8158 create_all_comp_units (per_objfile);
8159
8160 /* Create a temporary address map on a temporary obstack. We later
8161 copy this to the final obstack. */
8162 auto_obstack temp_obstack;
8163
8164 scoped_restore save_psymtabs_addrmap
8165 = make_scoped_restore (&objfile->partial_symtabs->psymtabs_addrmap,
8166 addrmap_create_mutable (&temp_obstack));
8167
8168 for (dwarf2_per_cu_data *per_cu : per_objfile->per_bfd->all_comp_units)
8169 {
8170 if (per_cu->v.psymtab != NULL)
8171 /* In case a forward DW_TAG_imported_unit has read the CU already. */
8172 continue;
8173 process_psymtab_comp_unit (per_cu, per_objfile, false,
8174 language_minimal);
8175 }
8176
8177 /* This has to wait until we read the CUs, we need the list of DWOs. */
8178 process_skeletonless_type_units (per_objfile);
8179
8180 /* Now that all TUs have been processed we can fill in the dependencies. */
8181 if (per_objfile->per_bfd->type_unit_groups != NULL)
8182 {
8183 htab_traverse_noresize (per_objfile->per_bfd->type_unit_groups.get (),
8184 build_type_psymtab_dependencies, per_objfile);
8185 }
8186
8187 if (dwarf_read_debug > 0)
8188 print_tu_stats (per_objfile);
8189
8190 set_partial_user (per_objfile);
8191
8192 objfile->partial_symtabs->psymtabs_addrmap
8193 = addrmap_create_fixed (objfile->partial_symtabs->psymtabs_addrmap,
8194 objfile->partial_symtabs->obstack ());
8195 /* At this point we want to keep the address map. */
8196 save_psymtabs_addrmap.release ();
8197
8198 dwarf_read_debug_printf ("Done building psymtabs of %s",
8199 objfile_name (objfile));
8200 }
8201
8202 /* Load the partial DIEs for a secondary CU into memory.
8203 This is also used when rereading a primary CU with load_all_dies. */
8204
8205 static void
8206 load_partial_comp_unit (dwarf2_per_cu_data *this_cu,
8207 dwarf2_per_objfile *per_objfile,
8208 dwarf2_cu *existing_cu)
8209 {
8210 cutu_reader reader (this_cu, per_objfile, nullptr, existing_cu, false);
8211
8212 if (!reader.dummy_p)
8213 {
8214 prepare_one_comp_unit (reader.cu, reader.comp_unit_die,
8215 language_minimal);
8216
8217 /* Check if comp unit has_children.
8218 If so, read the rest of the partial symbols from this comp unit.
8219 If not, there's no more debug_info for this comp unit. */
8220 if (reader.comp_unit_die->has_children)
8221 load_partial_dies (&reader, reader.info_ptr, 0);
8222
8223 reader.keep ();
8224 }
8225 }
8226
8227 static void
8228 read_comp_units_from_section (dwarf2_per_objfile *per_objfile,
8229 struct dwarf2_section_info *section,
8230 struct dwarf2_section_info *abbrev_section,
8231 unsigned int is_dwz)
8232 {
8233 const gdb_byte *info_ptr;
8234 struct objfile *objfile = per_objfile->objfile;
8235
8236 dwarf_read_debug_printf ("Reading %s for %s",
8237 section->get_name (),
8238 section->get_file_name ());
8239
8240 section->read (objfile);
8241
8242 info_ptr = section->buffer;
8243
8244 while (info_ptr < section->buffer + section->size)
8245 {
8246 struct dwarf2_per_cu_data *this_cu;
8247
8248 sect_offset sect_off = (sect_offset) (info_ptr - section->buffer);
8249
8250 comp_unit_head cu_header;
8251 read_and_check_comp_unit_head (per_objfile, &cu_header, section,
8252 abbrev_section, info_ptr,
8253 rcuh_kind::COMPILE);
8254
8255 /* Save the compilation unit for later lookup. */
8256 if (cu_header.unit_type != DW_UT_type)
8257 this_cu = per_objfile->per_bfd->allocate_per_cu ();
8258 else
8259 {
8260 auto sig_type = per_objfile->per_bfd->allocate_signatured_type ();
8261 sig_type->signature = cu_header.signature;
8262 sig_type->type_offset_in_tu = cu_header.type_cu_offset_in_tu;
8263 this_cu = &sig_type->per_cu;
8264 }
8265 this_cu->is_debug_types = (cu_header.unit_type == DW_UT_type);
8266 this_cu->sect_off = sect_off;
8267 this_cu->length = cu_header.length + cu_header.initial_length_size;
8268 this_cu->is_dwz = is_dwz;
8269 this_cu->section = section;
8270
8271 per_objfile->per_bfd->all_comp_units.push_back (this_cu);
8272
8273 info_ptr = info_ptr + this_cu->length;
8274 }
8275 }
8276
8277 /* Create a list of all compilation units in OBJFILE.
8278 This is only done for -readnow and building partial symtabs. */
8279
8280 static void
8281 create_all_comp_units (dwarf2_per_objfile *per_objfile)
8282 {
8283 gdb_assert (per_objfile->per_bfd->all_comp_units.empty ());
8284 read_comp_units_from_section (per_objfile, &per_objfile->per_bfd->info,
8285 &per_objfile->per_bfd->abbrev, 0);
8286
8287 dwz_file *dwz = dwarf2_get_dwz_file (per_objfile->per_bfd);
8288 if (dwz != NULL)
8289 read_comp_units_from_section (per_objfile, &dwz->info, &dwz->abbrev, 1);
8290 }
8291
8292 /* Process all loaded DIEs for compilation unit CU, starting at
8293 FIRST_DIE. The caller should pass SET_ADDRMAP == 1 if the compilation
8294 unit DIE did not have PC info (DW_AT_low_pc and DW_AT_high_pc, or
8295 DW_AT_ranges). See the comments of add_partial_subprogram on how
8296 SET_ADDRMAP is used and how *LOWPC and *HIGHPC are updated. */
8297
8298 static void
8299 scan_partial_symbols (struct partial_die_info *first_die, CORE_ADDR *lowpc,
8300 CORE_ADDR *highpc, int set_addrmap,
8301 struct dwarf2_cu *cu)
8302 {
8303 struct partial_die_info *pdi;
8304
8305 /* Now, march along the PDI's, descending into ones which have
8306 interesting children but skipping the children of the other ones,
8307 until we reach the end of the compilation unit. */
8308
8309 pdi = first_die;
8310
8311 while (pdi != NULL)
8312 {
8313 pdi->fixup (cu);
8314
8315 /* Anonymous namespaces or modules have no name but have interesting
8316 children, so we need to look at them. Ditto for anonymous
8317 enums. */
8318
8319 if (pdi->raw_name != NULL || pdi->tag == DW_TAG_namespace
8320 || pdi->tag == DW_TAG_module || pdi->tag == DW_TAG_enumeration_type
8321 || pdi->tag == DW_TAG_imported_unit
8322 || pdi->tag == DW_TAG_inlined_subroutine)
8323 {
8324 switch (pdi->tag)
8325 {
8326 case DW_TAG_subprogram:
8327 case DW_TAG_inlined_subroutine:
8328 add_partial_subprogram (pdi, lowpc, highpc, set_addrmap, cu);
8329 if (cu->language == language_cplus)
8330 scan_partial_symbols (pdi->die_child, lowpc, highpc,
8331 set_addrmap, cu);
8332 break;
8333 case DW_TAG_constant:
8334 case DW_TAG_variable:
8335 case DW_TAG_typedef:
8336 case DW_TAG_union_type:
8337 if (!pdi->is_declaration
8338 || (pdi->tag == DW_TAG_variable && pdi->is_external))
8339 {
8340 add_partial_symbol (pdi, cu);
8341 }
8342 break;
8343 case DW_TAG_class_type:
8344 case DW_TAG_interface_type:
8345 case DW_TAG_structure_type:
8346 if (!pdi->is_declaration)
8347 {
8348 add_partial_symbol (pdi, cu);
8349 }
8350 if ((cu->language == language_rust
8351 || cu->language == language_cplus) && pdi->has_children)
8352 scan_partial_symbols (pdi->die_child, lowpc, highpc,
8353 set_addrmap, cu);
8354 break;
8355 case DW_TAG_enumeration_type:
8356 if (!pdi->is_declaration)
8357 add_partial_enumeration (pdi, cu);
8358 break;
8359 case DW_TAG_base_type:
8360 case DW_TAG_subrange_type:
8361 /* File scope base type definitions are added to the partial
8362 symbol table. */
8363 add_partial_symbol (pdi, cu);
8364 break;
8365 case DW_TAG_namespace:
8366 add_partial_namespace (pdi, lowpc, highpc, set_addrmap, cu);
8367 break;
8368 case DW_TAG_module:
8369 if (!pdi->is_declaration)
8370 add_partial_module (pdi, lowpc, highpc, set_addrmap, cu);
8371 break;
8372 case DW_TAG_imported_unit:
8373 {
8374 struct dwarf2_per_cu_data *per_cu;
8375
8376 /* For now we don't handle imported units in type units. */
8377 if (cu->per_cu->is_debug_types)
8378 {
8379 error (_("Dwarf Error: DW_TAG_imported_unit is not"
8380 " supported in type units [in module %s]"),
8381 objfile_name (cu->per_objfile->objfile));
8382 }
8383
8384 per_cu = dwarf2_find_containing_comp_unit
8385 (pdi->d.sect_off, pdi->is_dwz, cu->per_objfile);
8386
8387 /* Go read the partial unit, if needed. */
8388 if (per_cu->v.psymtab == NULL)
8389 process_psymtab_comp_unit (per_cu, cu->per_objfile, true,
8390 cu->language);
8391
8392 cu->per_cu->imported_symtabs_push (per_cu);
8393 }
8394 break;
8395 case DW_TAG_imported_declaration:
8396 add_partial_symbol (pdi, cu);
8397 break;
8398 default:
8399 break;
8400 }
8401 }
8402
8403 /* If the die has a sibling, skip to the sibling. */
8404
8405 pdi = pdi->die_sibling;
8406 }
8407 }
8408
8409 /* Functions used to compute the fully scoped name of a partial DIE.
8410
8411 Normally, this is simple. For C++, the parent DIE's fully scoped
8412 name is concatenated with "::" and the partial DIE's name.
8413 Enumerators are an exception; they use the scope of their parent
8414 enumeration type, i.e. the name of the enumeration type is not
8415 prepended to the enumerator.
8416
8417 There are two complexities. One is DW_AT_specification; in this
8418 case "parent" means the parent of the target of the specification,
8419 instead of the direct parent of the DIE. The other is compilers
8420 which do not emit DW_TAG_namespace; in this case we try to guess
8421 the fully qualified name of structure types from their members'
8422 linkage names. This must be done using the DIE's children rather
8423 than the children of any DW_AT_specification target. We only need
8424 to do this for structures at the top level, i.e. if the target of
8425 any DW_AT_specification (if any; otherwise the DIE itself) does not
8426 have a parent. */
8427
8428 /* Compute the scope prefix associated with PDI's parent, in
8429 compilation unit CU. The result will be allocated on CU's
8430 comp_unit_obstack, or a copy of the already allocated PDI->NAME
8431 field. NULL is returned if no prefix is necessary. */
8432 static const char *
8433 partial_die_parent_scope (struct partial_die_info *pdi,
8434 struct dwarf2_cu *cu)
8435 {
8436 const char *grandparent_scope;
8437 struct partial_die_info *parent, *real_pdi;
8438
8439 /* We need to look at our parent DIE; if we have a DW_AT_specification,
8440 then this means the parent of the specification DIE. */
8441
8442 real_pdi = pdi;
8443 while (real_pdi->has_specification)
8444 {
8445 auto res = find_partial_die (real_pdi->spec_offset,
8446 real_pdi->spec_is_dwz, cu);
8447 real_pdi = res.pdi;
8448 cu = res.cu;
8449 }
8450
8451 parent = real_pdi->die_parent;
8452 if (parent == NULL)
8453 return NULL;
8454
8455 if (parent->scope_set)
8456 return parent->scope;
8457
8458 parent->fixup (cu);
8459
8460 grandparent_scope = partial_die_parent_scope (parent, cu);
8461
8462 /* GCC 4.0 and 4.1 had a bug (PR c++/28460) where they generated bogus
8463 DW_TAG_namespace DIEs with a name of "::" for the global namespace.
8464 Work around this problem here. */
8465 if (cu->language == language_cplus
8466 && parent->tag == DW_TAG_namespace
8467 && strcmp (parent->name (cu), "::") == 0
8468 && grandparent_scope == NULL)
8469 {
8470 parent->scope = NULL;
8471 parent->scope_set = 1;
8472 return NULL;
8473 }
8474
8475 /* Nested subroutines in Fortran get a prefix. */
8476 if (pdi->tag == DW_TAG_enumerator)
8477 /* Enumerators should not get the name of the enumeration as a prefix. */
8478 parent->scope = grandparent_scope;
8479 else if (parent->tag == DW_TAG_namespace
8480 || parent->tag == DW_TAG_module
8481 || parent->tag == DW_TAG_structure_type
8482 || parent->tag == DW_TAG_class_type
8483 || parent->tag == DW_TAG_interface_type
8484 || parent->tag == DW_TAG_union_type
8485 || parent->tag == DW_TAG_enumeration_type
8486 || (cu->language == language_fortran
8487 && parent->tag == DW_TAG_subprogram
8488 && pdi->tag == DW_TAG_subprogram))
8489 {
8490 if (grandparent_scope == NULL)
8491 parent->scope = parent->name (cu);
8492 else
8493 parent->scope = typename_concat (&cu->comp_unit_obstack,
8494 grandparent_scope,
8495 parent->name (cu), 0, cu);
8496 }
8497 else
8498 {
8499 /* FIXME drow/2004-04-01: What should we be doing with
8500 function-local names? For partial symbols, we should probably be
8501 ignoring them. */
8502 complaint (_("unhandled containing DIE tag %s for DIE at %s"),
8503 dwarf_tag_name (parent->tag),
8504 sect_offset_str (pdi->sect_off));
8505 parent->scope = grandparent_scope;
8506 }
8507
8508 parent->scope_set = 1;
8509 return parent->scope;
8510 }
8511
8512 /* Return the fully scoped name associated with PDI, from compilation unit
8513 CU. The result will be allocated with malloc. */
8514
8515 static gdb::unique_xmalloc_ptr<char>
8516 partial_die_full_name (struct partial_die_info *pdi,
8517 struct dwarf2_cu *cu)
8518 {
8519 const char *parent_scope;
8520
8521 /* If this is a template instantiation, we can not work out the
8522 template arguments from partial DIEs. So, unfortunately, we have
8523 to go through the full DIEs. At least any work we do building
8524 types here will be reused if full symbols are loaded later. */
8525 if (pdi->has_template_arguments)
8526 {
8527 pdi->fixup (cu);
8528
8529 if (pdi->name (cu) != NULL && strchr (pdi->name (cu), '<') == NULL)
8530 {
8531 struct die_info *die;
8532 struct attribute attr;
8533 struct dwarf2_cu *ref_cu = cu;
8534
8535 /* DW_FORM_ref_addr is using section offset. */
8536 attr.name = (enum dwarf_attribute) 0;
8537 attr.form = DW_FORM_ref_addr;
8538 attr.u.unsnd = to_underlying (pdi->sect_off);
8539 die = follow_die_ref (NULL, &attr, &ref_cu);
8540
8541 return make_unique_xstrdup (dwarf2_full_name (NULL, die, ref_cu));
8542 }
8543 }
8544
8545 parent_scope = partial_die_parent_scope (pdi, cu);
8546 if (parent_scope == NULL)
8547 return NULL;
8548 else
8549 return gdb::unique_xmalloc_ptr<char> (typename_concat (NULL, parent_scope,
8550 pdi->name (cu),
8551 0, cu));
8552 }
8553
8554 static void
8555 add_partial_symbol (struct partial_die_info *pdi, struct dwarf2_cu *cu)
8556 {
8557 dwarf2_per_objfile *per_objfile = cu->per_objfile;
8558 struct objfile *objfile = per_objfile->objfile;
8559 struct gdbarch *gdbarch = objfile->arch ();
8560 CORE_ADDR addr = 0;
8561 const char *actual_name = NULL;
8562 CORE_ADDR baseaddr;
8563
8564 baseaddr = objfile->text_section_offset ();
8565
8566 gdb::unique_xmalloc_ptr<char> built_actual_name
8567 = partial_die_full_name (pdi, cu);
8568 if (built_actual_name != NULL)
8569 actual_name = built_actual_name.get ();
8570
8571 if (actual_name == NULL)
8572 actual_name = pdi->name (cu);
8573
8574 partial_symbol psymbol;
8575 memset (&psymbol, 0, sizeof (psymbol));
8576 psymbol.ginfo.set_language (cu->language, &objfile->objfile_obstack);
8577 psymbol.ginfo.section = -1;
8578
8579 /* The code below indicates that the psymbol should be installed by
8580 setting this. */
8581 gdb::optional<psymbol_placement> where;
8582
8583 switch (pdi->tag)
8584 {
8585 case DW_TAG_inlined_subroutine:
8586 case DW_TAG_subprogram:
8587 addr = (gdbarch_adjust_dwarf2_addr (gdbarch, pdi->lowpc + baseaddr)
8588 - baseaddr);
8589 if (pdi->is_external
8590 || cu->language == language_ada
8591 || (cu->language == language_fortran
8592 && pdi->die_parent != NULL
8593 && pdi->die_parent->tag == DW_TAG_subprogram))
8594 {
8595 /* Normally, only "external" DIEs are part of the global scope.
8596 But in Ada and Fortran, we want to be able to access nested
8597 procedures globally. So all Ada and Fortran subprograms are
8598 stored in the global scope. */
8599 where = psymbol_placement::GLOBAL;
8600 }
8601 else
8602 where = psymbol_placement::STATIC;
8603
8604 psymbol.domain = VAR_DOMAIN;
8605 psymbol.aclass = LOC_BLOCK;
8606 psymbol.ginfo.section = SECT_OFF_TEXT (objfile);
8607 psymbol.ginfo.value.address = addr;
8608
8609 if (pdi->main_subprogram && actual_name != NULL)
8610 set_objfile_main_name (objfile, actual_name, cu->language);
8611 break;
8612 case DW_TAG_constant:
8613 psymbol.domain = VAR_DOMAIN;
8614 psymbol.aclass = LOC_STATIC;
8615 where = (pdi->is_external
8616 ? psymbol_placement::GLOBAL
8617 : psymbol_placement::STATIC);
8618 break;
8619 case DW_TAG_variable:
8620 if (pdi->d.locdesc)
8621 addr = decode_locdesc (pdi->d.locdesc, cu);
8622
8623 if (pdi->d.locdesc
8624 && addr == 0
8625 && !per_objfile->per_bfd->has_section_at_zero)
8626 {
8627 /* A global or static variable may also have been stripped
8628 out by the linker if unused, in which case its address
8629 will be nullified; do not add such variables into partial
8630 symbol table then. */
8631 }
8632 else if (pdi->is_external)
8633 {
8634 /* Global Variable.
8635 Don't enter into the minimal symbol tables as there is
8636 a minimal symbol table entry from the ELF symbols already.
8637 Enter into partial symbol table if it has a location
8638 descriptor or a type.
8639 If the location descriptor is missing, new_symbol will create
8640 a LOC_UNRESOLVED symbol, the address of the variable will then
8641 be determined from the minimal symbol table whenever the variable
8642 is referenced.
8643 The address for the partial symbol table entry is not
8644 used by GDB, but it comes in handy for debugging partial symbol
8645 table building. */
8646
8647 if (pdi->d.locdesc || pdi->has_type)
8648 {
8649 psymbol.domain = VAR_DOMAIN;
8650 psymbol.aclass = LOC_STATIC;
8651 psymbol.ginfo.section = SECT_OFF_TEXT (objfile);
8652 psymbol.ginfo.value.address = addr;
8653 where = psymbol_placement::GLOBAL;
8654 }
8655 }
8656 else
8657 {
8658 int has_loc = pdi->d.locdesc != NULL;
8659
8660 /* Static Variable. Skip symbols whose value we cannot know (those
8661 without location descriptors or constant values). */
8662 if (!has_loc && !pdi->has_const_value)
8663 return;
8664
8665 psymbol.domain = VAR_DOMAIN;
8666 psymbol.aclass = LOC_STATIC;
8667 psymbol.ginfo.section = SECT_OFF_TEXT (objfile);
8668 if (has_loc)
8669 psymbol.ginfo.value.address = addr;
8670 where = psymbol_placement::STATIC;
8671 }
8672 break;
8673 case DW_TAG_array_type:
8674 case DW_TAG_typedef:
8675 case DW_TAG_base_type:
8676 case DW_TAG_subrange_type:
8677 psymbol.domain = VAR_DOMAIN;
8678 psymbol.aclass = LOC_TYPEDEF;
8679 where = psymbol_placement::STATIC;
8680 break;
8681 case DW_TAG_imported_declaration:
8682 case DW_TAG_namespace:
8683 psymbol.domain = VAR_DOMAIN;
8684 psymbol.aclass = LOC_TYPEDEF;
8685 where = psymbol_placement::GLOBAL;
8686 break;
8687 case DW_TAG_module:
8688 /* With Fortran 77 there might be a "BLOCK DATA" module
8689 available without any name. If so, we skip the module as it
8690 doesn't bring any value. */
8691 if (actual_name != nullptr)
8692 {
8693 psymbol.domain = MODULE_DOMAIN;
8694 psymbol.aclass = LOC_TYPEDEF;
8695 where = psymbol_placement::GLOBAL;
8696 }
8697 break;
8698 case DW_TAG_class_type:
8699 case DW_TAG_interface_type:
8700 case DW_TAG_structure_type:
8701 case DW_TAG_union_type:
8702 case DW_TAG_enumeration_type:
8703 /* Skip external references. The DWARF standard says in the section
8704 about "Structure, Union, and Class Type Entries": "An incomplete
8705 structure, union or class type is represented by a structure,
8706 union or class entry that does not have a byte size attribute
8707 and that has a DW_AT_declaration attribute." */
8708 if (!pdi->has_byte_size && pdi->is_declaration)
8709 return;
8710
8711 /* NOTE: carlton/2003-10-07: See comment in new_symbol about
8712 static vs. global. */
8713 psymbol.domain = STRUCT_DOMAIN;
8714 psymbol.aclass = LOC_TYPEDEF;
8715 where = (cu->language == language_cplus
8716 ? psymbol_placement::GLOBAL
8717 : psymbol_placement::STATIC);
8718 break;
8719 case DW_TAG_enumerator:
8720 psymbol.domain = VAR_DOMAIN;
8721 psymbol.aclass = LOC_CONST;
8722 where = (cu->language == language_cplus
8723 ? psymbol_placement::GLOBAL
8724 : psymbol_placement::STATIC);
8725 break;
8726 default:
8727 break;
8728 }
8729
8730 if (where.has_value ())
8731 {
8732 if (built_actual_name != nullptr)
8733 actual_name = objfile->intern (actual_name);
8734 if (pdi->linkage_name == nullptr || cu->language == language_ada)
8735 psymbol.ginfo.set_linkage_name (actual_name);
8736 else
8737 {
8738 psymbol.ginfo.set_demangled_name (actual_name,
8739 &objfile->objfile_obstack);
8740 psymbol.ginfo.set_linkage_name (pdi->linkage_name);
8741 }
8742 cu->per_cu->v.psymtab->add_psymbol (psymbol, *where, objfile);
8743 }
8744 }
8745
8746 /* Read a partial die corresponding to a namespace; also, add a symbol
8747 corresponding to that namespace to the symbol table. NAMESPACE is
8748 the name of the enclosing namespace. */
8749
8750 static void
8751 add_partial_namespace (struct partial_die_info *pdi,
8752 CORE_ADDR *lowpc, CORE_ADDR *highpc,
8753 int set_addrmap, struct dwarf2_cu *cu)
8754 {
8755 /* Add a symbol for the namespace. */
8756
8757 add_partial_symbol (pdi, cu);
8758
8759 /* Now scan partial symbols in that namespace. */
8760
8761 if (pdi->has_children)
8762 scan_partial_symbols (pdi->die_child, lowpc, highpc, set_addrmap, cu);
8763 }
8764
8765 /* Read a partial die corresponding to a Fortran module. */
8766
8767 static void
8768 add_partial_module (struct partial_die_info *pdi, CORE_ADDR *lowpc,
8769 CORE_ADDR *highpc, int set_addrmap, struct dwarf2_cu *cu)
8770 {
8771 /* Add a symbol for the namespace. */
8772
8773 add_partial_symbol (pdi, cu);
8774
8775 /* Now scan partial symbols in that module. */
8776
8777 if (pdi->has_children)
8778 scan_partial_symbols (pdi->die_child, lowpc, highpc, set_addrmap, cu);
8779 }
8780
8781 /* Read a partial die corresponding to a subprogram or an inlined
8782 subprogram and create a partial symbol for that subprogram.
8783 When the CU language allows it, this routine also defines a partial
8784 symbol for each nested subprogram that this subprogram contains.
8785 If SET_ADDRMAP is true, record the covered ranges in the addrmap.
8786 Set *LOWPC and *HIGHPC to the lowest and highest PC values found in PDI.
8787
8788 PDI may also be a lexical block, in which case we simply search
8789 recursively for subprograms defined inside that lexical block.
8790 Again, this is only performed when the CU language allows this
8791 type of definitions. */
8792
8793 static void
8794 add_partial_subprogram (struct partial_die_info *pdi,
8795 CORE_ADDR *lowpc, CORE_ADDR *highpc,
8796 int set_addrmap, struct dwarf2_cu *cu)
8797 {
8798 if (pdi->tag == DW_TAG_subprogram || pdi->tag == DW_TAG_inlined_subroutine)
8799 {
8800 if (pdi->has_pc_info)
8801 {
8802 if (pdi->lowpc < *lowpc)
8803 *lowpc = pdi->lowpc;
8804 if (pdi->highpc > *highpc)
8805 *highpc = pdi->highpc;
8806 if (set_addrmap)
8807 {
8808 struct objfile *objfile = cu->per_objfile->objfile;
8809 struct gdbarch *gdbarch = objfile->arch ();
8810 CORE_ADDR baseaddr;
8811 CORE_ADDR this_highpc;
8812 CORE_ADDR this_lowpc;
8813
8814 baseaddr = objfile->text_section_offset ();
8815 this_lowpc
8816 = (gdbarch_adjust_dwarf2_addr (gdbarch,
8817 pdi->lowpc + baseaddr)
8818 - baseaddr);
8819 this_highpc
8820 = (gdbarch_adjust_dwarf2_addr (gdbarch,
8821 pdi->highpc + baseaddr)
8822 - baseaddr);
8823 addrmap_set_empty (objfile->partial_symtabs->psymtabs_addrmap,
8824 this_lowpc, this_highpc - 1,
8825 cu->per_cu->v.psymtab);
8826 }
8827 }
8828
8829 if (pdi->has_pc_info || (!pdi->is_external && pdi->may_be_inlined))
8830 {
8831 if (!pdi->is_declaration)
8832 /* Ignore subprogram DIEs that do not have a name, they are
8833 illegal. Do not emit a complaint at this point, we will
8834 do so when we convert this psymtab into a symtab. */
8835 if (pdi->name (cu))
8836 add_partial_symbol (pdi, cu);
8837 }
8838 }
8839
8840 if (! pdi->has_children)
8841 return;
8842
8843 if (cu->language == language_ada || cu->language == language_fortran)
8844 {
8845 pdi = pdi->die_child;
8846 while (pdi != NULL)
8847 {
8848 pdi->fixup (cu);
8849 if (pdi->tag == DW_TAG_subprogram
8850 || pdi->tag == DW_TAG_inlined_subroutine
8851 || pdi->tag == DW_TAG_lexical_block)
8852 add_partial_subprogram (pdi, lowpc, highpc, set_addrmap, cu);
8853 pdi = pdi->die_sibling;
8854 }
8855 }
8856 }
8857
8858 /* Read a partial die corresponding to an enumeration type. */
8859
8860 static void
8861 add_partial_enumeration (struct partial_die_info *enum_pdi,
8862 struct dwarf2_cu *cu)
8863 {
8864 struct partial_die_info *pdi;
8865
8866 if (enum_pdi->name (cu) != NULL)
8867 add_partial_symbol (enum_pdi, cu);
8868
8869 pdi = enum_pdi->die_child;
8870 while (pdi)
8871 {
8872 if (pdi->tag != DW_TAG_enumerator || pdi->raw_name == NULL)
8873 complaint (_("malformed enumerator DIE ignored"));
8874 else
8875 add_partial_symbol (pdi, cu);
8876 pdi = pdi->die_sibling;
8877 }
8878 }
8879
8880 /* Return the initial uleb128 in the die at INFO_PTR. */
8881
8882 static unsigned int
8883 peek_abbrev_code (bfd *abfd, const gdb_byte *info_ptr)
8884 {
8885 unsigned int bytes_read;
8886
8887 return read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
8888 }
8889
8890 /* Read the initial uleb128 in the die at INFO_PTR in compilation unit
8891 READER::CU. Use READER::ABBREV_TABLE to lookup any abbreviation.
8892
8893 Return the corresponding abbrev, or NULL if the number is zero (indicating
8894 an empty DIE). In either case *BYTES_READ will be set to the length of
8895 the initial number. */
8896
8897 static struct abbrev_info *
8898 peek_die_abbrev (const die_reader_specs &reader,
8899 const gdb_byte *info_ptr, unsigned int *bytes_read)
8900 {
8901 dwarf2_cu *cu = reader.cu;
8902 bfd *abfd = cu->per_objfile->objfile->obfd;
8903 unsigned int abbrev_number
8904 = read_unsigned_leb128 (abfd, info_ptr, bytes_read);
8905
8906 if (abbrev_number == 0)
8907 return NULL;
8908
8909 abbrev_info *abbrev = reader.abbrev_table->lookup_abbrev (abbrev_number);
8910 if (!abbrev)
8911 {
8912 error (_("Dwarf Error: Could not find abbrev number %d in %s"
8913 " at offset %s [in module %s]"),
8914 abbrev_number, cu->per_cu->is_debug_types ? "TU" : "CU",
8915 sect_offset_str (cu->header.sect_off), bfd_get_filename (abfd));
8916 }
8917
8918 return abbrev;
8919 }
8920
8921 /* Scan the debug information for CU starting at INFO_PTR in buffer BUFFER.
8922 Returns a pointer to the end of a series of DIEs, terminated by an empty
8923 DIE. Any children of the skipped DIEs will also be skipped. */
8924
8925 static const gdb_byte *
8926 skip_children (const struct die_reader_specs *reader, const gdb_byte *info_ptr)
8927 {
8928 while (1)
8929 {
8930 unsigned int bytes_read;
8931 abbrev_info *abbrev = peek_die_abbrev (*reader, info_ptr, &bytes_read);
8932
8933 if (abbrev == NULL)
8934 return info_ptr + bytes_read;
8935 else
8936 info_ptr = skip_one_die (reader, info_ptr + bytes_read, abbrev);
8937 }
8938 }
8939
8940 /* Scan the debug information for CU starting at INFO_PTR in buffer BUFFER.
8941 INFO_PTR should point just after the initial uleb128 of a DIE, and the
8942 abbrev corresponding to that skipped uleb128 should be passed in
8943 ABBREV. Returns a pointer to this DIE's sibling, skipping any
8944 children. */
8945
8946 static const gdb_byte *
8947 skip_one_die (const struct die_reader_specs *reader, const gdb_byte *info_ptr,
8948 struct abbrev_info *abbrev)
8949 {
8950 unsigned int bytes_read;
8951 struct attribute attr;
8952 bfd *abfd = reader->abfd;
8953 struct dwarf2_cu *cu = reader->cu;
8954 const gdb_byte *buffer = reader->buffer;
8955 const gdb_byte *buffer_end = reader->buffer_end;
8956 unsigned int form, i;
8957
8958 for (i = 0; i < abbrev->num_attrs; i++)
8959 {
8960 /* The only abbrev we care about is DW_AT_sibling. */
8961 if (abbrev->attrs[i].name == DW_AT_sibling)
8962 {
8963 read_attribute (reader, &attr, &abbrev->attrs[i], info_ptr);
8964 if (attr.form == DW_FORM_ref_addr)
8965 complaint (_("ignoring absolute DW_AT_sibling"));
8966 else
8967 {
8968 sect_offset off = attr.get_ref_die_offset ();
8969 const gdb_byte *sibling_ptr = buffer + to_underlying (off);
8970
8971 if (sibling_ptr < info_ptr)
8972 complaint (_("DW_AT_sibling points backwards"));
8973 else if (sibling_ptr > reader->buffer_end)
8974 reader->die_section->overflow_complaint ();
8975 else
8976 return sibling_ptr;
8977 }
8978 }
8979
8980 /* If it isn't DW_AT_sibling, skip this attribute. */
8981 form = abbrev->attrs[i].form;
8982 skip_attribute:
8983 switch (form)
8984 {
8985 case DW_FORM_ref_addr:
8986 /* In DWARF 2, DW_FORM_ref_addr is address sized; in DWARF 3
8987 and later it is offset sized. */
8988 if (cu->header.version == 2)
8989 info_ptr += cu->header.addr_size;
8990 else
8991 info_ptr += cu->header.offset_size;
8992 break;
8993 case DW_FORM_GNU_ref_alt:
8994 info_ptr += cu->header.offset_size;
8995 break;
8996 case DW_FORM_addr:
8997 info_ptr += cu->header.addr_size;
8998 break;
8999 case DW_FORM_data1:
9000 case DW_FORM_ref1:
9001 case DW_FORM_flag:
9002 case DW_FORM_strx1:
9003 info_ptr += 1;
9004 break;
9005 case DW_FORM_flag_present:
9006 case DW_FORM_implicit_const:
9007 break;
9008 case DW_FORM_data2:
9009 case DW_FORM_ref2:
9010 case DW_FORM_strx2:
9011 info_ptr += 2;
9012 break;
9013 case DW_FORM_strx3:
9014 info_ptr += 3;
9015 break;
9016 case DW_FORM_data4:
9017 case DW_FORM_ref4:
9018 case DW_FORM_strx4:
9019 info_ptr += 4;
9020 break;
9021 case DW_FORM_data8:
9022 case DW_FORM_ref8:
9023 case DW_FORM_ref_sig8:
9024 info_ptr += 8;
9025 break;
9026 case DW_FORM_data16:
9027 info_ptr += 16;
9028 break;
9029 case DW_FORM_string:
9030 read_direct_string (abfd, info_ptr, &bytes_read);
9031 info_ptr += bytes_read;
9032 break;
9033 case DW_FORM_sec_offset:
9034 case DW_FORM_strp:
9035 case DW_FORM_GNU_strp_alt:
9036 info_ptr += cu->header.offset_size;
9037 break;
9038 case DW_FORM_exprloc:
9039 case DW_FORM_block:
9040 info_ptr += read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
9041 info_ptr += bytes_read;
9042 break;
9043 case DW_FORM_block1:
9044 info_ptr += 1 + read_1_byte (abfd, info_ptr);
9045 break;
9046 case DW_FORM_block2:
9047 info_ptr += 2 + read_2_bytes (abfd, info_ptr);
9048 break;
9049 case DW_FORM_block4:
9050 info_ptr += 4 + read_4_bytes (abfd, info_ptr);
9051 break;
9052 case DW_FORM_addrx:
9053 case DW_FORM_strx:
9054 case DW_FORM_sdata:
9055 case DW_FORM_udata:
9056 case DW_FORM_ref_udata:
9057 case DW_FORM_GNU_addr_index:
9058 case DW_FORM_GNU_str_index:
9059 case DW_FORM_rnglistx:
9060 case DW_FORM_loclistx:
9061 info_ptr = safe_skip_leb128 (info_ptr, buffer_end);
9062 break;
9063 case DW_FORM_indirect:
9064 form = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
9065 info_ptr += bytes_read;
9066 /* We need to continue parsing from here, so just go back to
9067 the top. */
9068 goto skip_attribute;
9069
9070 default:
9071 error (_("Dwarf Error: Cannot handle %s "
9072 "in DWARF reader [in module %s]"),
9073 dwarf_form_name (form),
9074 bfd_get_filename (abfd));
9075 }
9076 }
9077
9078 if (abbrev->has_children)
9079 return skip_children (reader, info_ptr);
9080 else
9081 return info_ptr;
9082 }
9083
9084 /* Locate ORIG_PDI's sibling.
9085 INFO_PTR should point to the start of the next DIE after ORIG_PDI. */
9086
9087 static const gdb_byte *
9088 locate_pdi_sibling (const struct die_reader_specs *reader,
9089 struct partial_die_info *orig_pdi,
9090 const gdb_byte *info_ptr)
9091 {
9092 /* Do we know the sibling already? */
9093
9094 if (orig_pdi->sibling)
9095 return orig_pdi->sibling;
9096
9097 /* Are there any children to deal with? */
9098
9099 if (!orig_pdi->has_children)
9100 return info_ptr;
9101
9102 /* Skip the children the long way. */
9103
9104 return skip_children (reader, info_ptr);
9105 }
9106
9107 /* Expand this partial symbol table into a full symbol table. SELF is
9108 not NULL. */
9109
9110 void
9111 dwarf2_psymtab::read_symtab (struct objfile *objfile)
9112 {
9113 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
9114
9115 gdb_assert (!per_objfile->symtab_set_p (per_cu_data));
9116
9117 /* If this psymtab is constructed from a debug-only objfile, the
9118 has_section_at_zero flag will not necessarily be correct. We
9119 can get the correct value for this flag by looking at the data
9120 associated with the (presumably stripped) associated objfile. */
9121 if (objfile->separate_debug_objfile_backlink)
9122 {
9123 dwarf2_per_objfile *per_objfile_backlink
9124 = get_dwarf2_per_objfile (objfile->separate_debug_objfile_backlink);
9125
9126 per_objfile->per_bfd->has_section_at_zero
9127 = per_objfile_backlink->per_bfd->has_section_at_zero;
9128 }
9129
9130 expand_psymtab (objfile);
9131
9132 process_cu_includes (per_objfile);
9133 }
9134 \f
9135 /* Reading in full CUs. */
9136
9137 /* Add PER_CU to the queue. */
9138
9139 static void
9140 queue_comp_unit (dwarf2_per_cu_data *per_cu,
9141 dwarf2_per_objfile *per_objfile,
9142 enum language pretend_language)
9143 {
9144 per_cu->queued = 1;
9145 per_cu->per_bfd->queue.emplace (per_cu, per_objfile, pretend_language);
9146 }
9147
9148 /* If PER_CU is not yet queued, add it to the queue.
9149 If DEPENDENT_CU is non-NULL, it has a reference to PER_CU so add a
9150 dependency.
9151 The result is non-zero if PER_CU was queued, otherwise the result is zero
9152 meaning either PER_CU is already queued or it is already loaded.
9153
9154 N.B. There is an invariant here that if a CU is queued then it is loaded.
9155 The caller is required to load PER_CU if we return non-zero. */
9156
9157 static int
9158 maybe_queue_comp_unit (struct dwarf2_cu *dependent_cu,
9159 dwarf2_per_cu_data *per_cu,
9160 dwarf2_per_objfile *per_objfile,
9161 enum language pretend_language)
9162 {
9163 /* We may arrive here during partial symbol reading, if we need full
9164 DIEs to process an unusual case (e.g. template arguments). Do
9165 not queue PER_CU, just tell our caller to load its DIEs. */
9166 if (per_cu->per_bfd->reading_partial_symbols)
9167 {
9168 dwarf2_cu *cu = per_objfile->get_cu (per_cu);
9169
9170 if (cu == NULL || cu->dies == NULL)
9171 return 1;
9172 return 0;
9173 }
9174
9175 /* Mark the dependence relation so that we don't flush PER_CU
9176 too early. */
9177 if (dependent_cu != NULL)
9178 dwarf2_add_dependence (dependent_cu, per_cu);
9179
9180 /* If it's already on the queue, we have nothing to do. */
9181 if (per_cu->queued)
9182 {
9183 /* Verify the invariant that if a CU is queued for expansion, its DIEs are
9184 loaded. */
9185 gdb_assert (per_objfile->get_cu (per_cu) != nullptr);
9186 return 0;
9187 }
9188
9189 /* If the compilation unit is already loaded, just mark it as
9190 used. */
9191 dwarf2_cu *cu = per_objfile->get_cu (per_cu);
9192 if (cu != nullptr)
9193 {
9194 cu->last_used = 0;
9195 return 0;
9196 }
9197
9198 /* Add it to the queue. */
9199 queue_comp_unit (per_cu, per_objfile, pretend_language);
9200
9201 return 1;
9202 }
9203
9204 /* Process the queue. */
9205
9206 static void
9207 process_queue (dwarf2_per_objfile *per_objfile)
9208 {
9209 dwarf_read_debug_printf ("Expanding one or more symtabs of objfile %s ...",
9210 objfile_name (per_objfile->objfile));
9211
9212 /* The queue starts out with one item, but following a DIE reference
9213 may load a new CU, adding it to the end of the queue. */
9214 while (!per_objfile->per_bfd->queue.empty ())
9215 {
9216 dwarf2_queue_item &item = per_objfile->per_bfd->queue.front ();
9217 dwarf2_per_cu_data *per_cu = item.per_cu;
9218
9219 if (!per_objfile->symtab_set_p (per_cu))
9220 {
9221 dwarf2_cu *cu = per_objfile->get_cu (per_cu);
9222
9223 /* Skip dummy CUs. */
9224 if (cu != nullptr)
9225 {
9226 unsigned int debug_print_threshold;
9227 char buf[100];
9228
9229 if (per_cu->is_debug_types)
9230 {
9231 struct signatured_type *sig_type =
9232 (struct signatured_type *) per_cu;
9233
9234 sprintf (buf, "TU %s at offset %s",
9235 hex_string (sig_type->signature),
9236 sect_offset_str (per_cu->sect_off));
9237 /* There can be 100s of TUs.
9238 Only print them in verbose mode. */
9239 debug_print_threshold = 2;
9240 }
9241 else
9242 {
9243 sprintf (buf, "CU at offset %s",
9244 sect_offset_str (per_cu->sect_off));
9245 debug_print_threshold = 1;
9246 }
9247
9248 if (dwarf_read_debug >= debug_print_threshold)
9249 dwarf_read_debug_printf ("Expanding symtab of %s", buf);
9250
9251 if (per_cu->is_debug_types)
9252 process_full_type_unit (cu, item.pretend_language);
9253 else
9254 process_full_comp_unit (cu, item.pretend_language);
9255
9256 if (dwarf_read_debug >= debug_print_threshold)
9257 dwarf_read_debug_printf ("Done expanding %s", buf);
9258 }
9259 }
9260
9261 per_cu->queued = 0;
9262 per_objfile->per_bfd->queue.pop ();
9263 }
9264
9265 dwarf_read_debug_printf ("Done expanding symtabs of %s.",
9266 objfile_name (per_objfile->objfile));
9267 }
9268
9269 /* Read in full symbols for PST, and anything it depends on. */
9270
9271 void
9272 dwarf2_psymtab::expand_psymtab (struct objfile *objfile)
9273 {
9274 gdb_assert (!readin_p (objfile));
9275
9276 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
9277 free_cached_comp_units freer (per_objfile);
9278 expand_dependencies (objfile);
9279
9280 dw2_do_instantiate_symtab (per_cu_data, per_objfile, false);
9281 gdb_assert (get_compunit_symtab (objfile) != nullptr);
9282 }
9283
9284 /* See psympriv.h. */
9285
9286 bool
9287 dwarf2_psymtab::readin_p (struct objfile *objfile) const
9288 {
9289 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
9290 return per_objfile->symtab_set_p (per_cu_data);
9291 }
9292
9293 /* See psympriv.h. */
9294
9295 compunit_symtab *
9296 dwarf2_psymtab::get_compunit_symtab (struct objfile *objfile) const
9297 {
9298 dwarf2_per_objfile *per_objfile = get_dwarf2_per_objfile (objfile);
9299 return per_objfile->get_symtab (per_cu_data);
9300 }
9301
9302 /* Trivial hash function for die_info: the hash value of a DIE
9303 is its offset in .debug_info for this objfile. */
9304
9305 static hashval_t
9306 die_hash (const void *item)
9307 {
9308 const struct die_info *die = (const struct die_info *) item;
9309
9310 return to_underlying (die->sect_off);
9311 }
9312
9313 /* Trivial comparison function for die_info structures: two DIEs
9314 are equal if they have the same offset. */
9315
9316 static int
9317 die_eq (const void *item_lhs, const void *item_rhs)
9318 {
9319 const struct die_info *die_lhs = (const struct die_info *) item_lhs;
9320 const struct die_info *die_rhs = (const struct die_info *) item_rhs;
9321
9322 return die_lhs->sect_off == die_rhs->sect_off;
9323 }
9324
9325 /* Load the DIEs associated with PER_CU into memory.
9326
9327 In some cases, the caller, while reading partial symbols, will need to load
9328 the full symbols for the CU for some reason. It will already have a
9329 dwarf2_cu object for THIS_CU and pass it as EXISTING_CU, so it can be re-used
9330 rather than creating a new one. */
9331
9332 static void
9333 load_full_comp_unit (dwarf2_per_cu_data *this_cu,
9334 dwarf2_per_objfile *per_objfile,
9335 dwarf2_cu *existing_cu,
9336 bool skip_partial,
9337 enum language pretend_language)
9338 {
9339 gdb_assert (! this_cu->is_debug_types);
9340
9341 cutu_reader reader (this_cu, per_objfile, NULL, existing_cu, skip_partial);
9342 if (reader.dummy_p)
9343 return;
9344
9345 struct dwarf2_cu *cu = reader.cu;
9346 const gdb_byte *info_ptr = reader.info_ptr;
9347
9348 gdb_assert (cu->die_hash == NULL);
9349 cu->die_hash =
9350 htab_create_alloc_ex (cu->header.length / 12,
9351 die_hash,
9352 die_eq,
9353 NULL,
9354 &cu->comp_unit_obstack,
9355 hashtab_obstack_allocate,
9356 dummy_obstack_deallocate);
9357
9358 if (reader.comp_unit_die->has_children)
9359 reader.comp_unit_die->child
9360 = read_die_and_siblings (&reader, reader.info_ptr,
9361 &info_ptr, reader.comp_unit_die);
9362 cu->dies = reader.comp_unit_die;
9363 /* comp_unit_die is not stored in die_hash, no need. */
9364
9365 /* We try not to read any attributes in this function, because not
9366 all CUs needed for references have been loaded yet, and symbol
9367 table processing isn't initialized. But we have to set the CU language,
9368 or we won't be able to build types correctly.
9369 Similarly, if we do not read the producer, we can not apply
9370 producer-specific interpretation. */
9371 prepare_one_comp_unit (cu, cu->dies, pretend_language);
9372
9373 reader.keep ();
9374 }
9375
9376 /* Add a DIE to the delayed physname list. */
9377
9378 static void
9379 add_to_method_list (struct type *type, int fnfield_index, int index,
9380 const char *name, struct die_info *die,
9381 struct dwarf2_cu *cu)
9382 {
9383 struct delayed_method_info mi;
9384 mi.type = type;
9385 mi.fnfield_index = fnfield_index;
9386 mi.index = index;
9387 mi.name = name;
9388 mi.die = die;
9389 cu->method_list.push_back (mi);
9390 }
9391
9392 /* Check whether [PHYSNAME, PHYSNAME+LEN) ends with a modifier like
9393 "const" / "volatile". If so, decrements LEN by the length of the
9394 modifier and return true. Otherwise return false. */
9395
9396 template<size_t N>
9397 static bool
9398 check_modifier (const char *physname, size_t &len, const char (&mod)[N])
9399 {
9400 size_t mod_len = sizeof (mod) - 1;
9401 if (len > mod_len && startswith (physname + (len - mod_len), mod))
9402 {
9403 len -= mod_len;
9404 return true;
9405 }
9406 return false;
9407 }
9408
9409 /* Compute the physnames of any methods on the CU's method list.
9410
9411 The computation of method physnames is delayed in order to avoid the
9412 (bad) condition that one of the method's formal parameters is of an as yet
9413 incomplete type. */
9414
9415 static void
9416 compute_delayed_physnames (struct dwarf2_cu *cu)
9417 {
9418 /* Only C++ delays computing physnames. */
9419 if (cu->method_list.empty ())
9420 return;
9421 gdb_assert (cu->language == language_cplus);
9422
9423 for (const delayed_method_info &mi : cu->method_list)
9424 {
9425 const char *physname;
9426 struct fn_fieldlist *fn_flp
9427 = &TYPE_FN_FIELDLIST (mi.type, mi.fnfield_index);
9428 physname = dwarf2_physname (mi.name, mi.die, cu);
9429 TYPE_FN_FIELD_PHYSNAME (fn_flp->fn_fields, mi.index)
9430 = physname ? physname : "";
9431
9432 /* Since there's no tag to indicate whether a method is a
9433 const/volatile overload, extract that information out of the
9434 demangled name. */
9435 if (physname != NULL)
9436 {
9437 size_t len = strlen (physname);
9438
9439 while (1)
9440 {
9441 if (physname[len] == ')') /* shortcut */
9442 break;
9443 else if (check_modifier (physname, len, " const"))
9444 TYPE_FN_FIELD_CONST (fn_flp->fn_fields, mi.index) = 1;
9445 else if (check_modifier (physname, len, " volatile"))
9446 TYPE_FN_FIELD_VOLATILE (fn_flp->fn_fields, mi.index) = 1;
9447 else
9448 break;
9449 }
9450 }
9451 }
9452
9453 /* The list is no longer needed. */
9454 cu->method_list.clear ();
9455 }
9456
9457 /* Go objects should be embedded in a DW_TAG_module DIE,
9458 and it's not clear if/how imported objects will appear.
9459 To keep Go support simple until that's worked out,
9460 go back through what we've read and create something usable.
9461 We could do this while processing each DIE, and feels kinda cleaner,
9462 but that way is more invasive.
9463 This is to, for example, allow the user to type "p var" or "b main"
9464 without having to specify the package name, and allow lookups
9465 of module.object to work in contexts that use the expression
9466 parser. */
9467
9468 static void
9469 fixup_go_packaging (struct dwarf2_cu *cu)
9470 {
9471 gdb::unique_xmalloc_ptr<char> package_name;
9472 struct pending *list;
9473 int i;
9474
9475 for (list = *cu->get_builder ()->get_global_symbols ();
9476 list != NULL;
9477 list = list->next)
9478 {
9479 for (i = 0; i < list->nsyms; ++i)
9480 {
9481 struct symbol *sym = list->symbol[i];
9482
9483 if (sym->language () == language_go
9484 && SYMBOL_CLASS (sym) == LOC_BLOCK)
9485 {
9486 gdb::unique_xmalloc_ptr<char> this_package_name
9487 (go_symbol_package_name (sym));
9488
9489 if (this_package_name == NULL)
9490 continue;
9491 if (package_name == NULL)
9492 package_name = std::move (this_package_name);
9493 else
9494 {
9495 struct objfile *objfile = cu->per_objfile->objfile;
9496 if (strcmp (package_name.get (), this_package_name.get ()) != 0)
9497 complaint (_("Symtab %s has objects from two different Go packages: %s and %s"),
9498 (symbol_symtab (sym) != NULL
9499 ? symtab_to_filename_for_display
9500 (symbol_symtab (sym))
9501 : objfile_name (objfile)),
9502 this_package_name.get (), package_name.get ());
9503 }
9504 }
9505 }
9506 }
9507
9508 if (package_name != NULL)
9509 {
9510 struct objfile *objfile = cu->per_objfile->objfile;
9511 const char *saved_package_name = objfile->intern (package_name.get ());
9512 struct type *type = init_type (objfile, TYPE_CODE_MODULE, 0,
9513 saved_package_name);
9514 struct symbol *sym;
9515
9516 sym = new (&objfile->objfile_obstack) symbol;
9517 sym->set_language (language_go, &objfile->objfile_obstack);
9518 sym->compute_and_set_names (saved_package_name, false, objfile->per_bfd);
9519 /* This is not VAR_DOMAIN because we want a way to ensure a lookup of,
9520 e.g., "main" finds the "main" module and not C's main(). */
9521 SYMBOL_DOMAIN (sym) = STRUCT_DOMAIN;
9522 SYMBOL_ACLASS_INDEX (sym) = LOC_TYPEDEF;
9523 SYMBOL_TYPE (sym) = type;
9524
9525 add_symbol_to_list (sym, cu->get_builder ()->get_global_symbols ());
9526 }
9527 }
9528
9529 /* Allocate a fully-qualified name consisting of the two parts on the
9530 obstack. */
9531
9532 static const char *
9533 rust_fully_qualify (struct obstack *obstack, const char *p1, const char *p2)
9534 {
9535 return obconcat (obstack, p1, "::", p2, (char *) NULL);
9536 }
9537
9538 /* A helper that allocates a variant part to attach to a Rust enum
9539 type. OBSTACK is where the results should be allocated. TYPE is
9540 the type we're processing. DISCRIMINANT_INDEX is the index of the
9541 discriminant. It must be the index of one of the fields of TYPE,
9542 or -1 to mean there is no discriminant (univariant enum).
9543 DEFAULT_INDEX is the index of the default field; or -1 if there is
9544 no default. RANGES is indexed by "effective" field number (the
9545 field index, but omitting the discriminant and default fields) and
9546 must hold the discriminant values used by the variants. Note that
9547 RANGES must have a lifetime at least as long as OBSTACK -- either
9548 already allocated on it, or static. */
9549
9550 static void
9551 alloc_rust_variant (struct obstack *obstack, struct type *type,
9552 int discriminant_index, int default_index,
9553 gdb::array_view<discriminant_range> ranges)
9554 {
9555 /* When DISCRIMINANT_INDEX == -1, we have a univariant enum. */
9556 gdb_assert (discriminant_index == -1
9557 || (discriminant_index >= 0
9558 && discriminant_index < type->num_fields ()));
9559 gdb_assert (default_index == -1
9560 || (default_index >= 0 && default_index < type->num_fields ()));
9561
9562 /* We have one variant for each non-discriminant field. */
9563 int n_variants = type->num_fields ();
9564 if (discriminant_index != -1)
9565 --n_variants;
9566
9567 variant *variants = new (obstack) variant[n_variants];
9568 int var_idx = 0;
9569 int range_idx = 0;
9570 for (int i = 0; i < type->num_fields (); ++i)
9571 {
9572 if (i == discriminant_index)
9573 continue;
9574
9575 variants[var_idx].first_field = i;
9576 variants[var_idx].last_field = i + 1;
9577
9578 /* The default field does not need a range, but other fields do.
9579 We skipped the discriminant above. */
9580 if (i != default_index)
9581 {
9582 variants[var_idx].discriminants = ranges.slice (range_idx, 1);
9583 ++range_idx;
9584 }
9585
9586 ++var_idx;
9587 }
9588
9589 gdb_assert (range_idx == ranges.size ());
9590 gdb_assert (var_idx == n_variants);
9591
9592 variant_part *part = new (obstack) variant_part;
9593 part->discriminant_index = discriminant_index;
9594 /* If there is no discriminant, then whether it is signed is of no
9595 consequence. */
9596 part->is_unsigned
9597 = (discriminant_index == -1
9598 ? false
9599 : type->field (discriminant_index).type ()->is_unsigned ());
9600 part->variants = gdb::array_view<variant> (variants, n_variants);
9601
9602 void *storage = obstack_alloc (obstack, sizeof (gdb::array_view<variant_part>));
9603 gdb::array_view<variant_part> *prop_value
9604 = new (storage) gdb::array_view<variant_part> (part, 1);
9605
9606 struct dynamic_prop prop;
9607 prop.set_variant_parts (prop_value);
9608
9609 type->add_dyn_prop (DYN_PROP_VARIANT_PARTS, prop);
9610 }
9611
9612 /* Some versions of rustc emitted enums in an unusual way.
9613
9614 Ordinary enums were emitted as unions. The first element of each
9615 structure in the union was named "RUST$ENUM$DISR". This element
9616 held the discriminant.
9617
9618 These versions of Rust also implemented the "non-zero"
9619 optimization. When the enum had two values, and one is empty and
9620 the other holds a pointer that cannot be zero, the pointer is used
9621 as the discriminant, with a zero value meaning the empty variant.
9622 Here, the union's first member is of the form
9623 RUST$ENCODED$ENUM$<fieldno>$<fieldno>$...$<variantname>
9624 where the fieldnos are the indices of the fields that should be
9625 traversed in order to find the field (which may be several fields deep)
9626 and the variantname is the name of the variant of the case when the
9627 field is zero.
9628
9629 This function recognizes whether TYPE is of one of these forms,
9630 and, if so, smashes it to be a variant type. */
9631
9632 static void
9633 quirk_rust_enum (struct type *type, struct objfile *objfile)
9634 {
9635 gdb_assert (type->code () == TYPE_CODE_UNION);
9636
9637 /* We don't need to deal with empty enums. */
9638 if (type->num_fields () == 0)
9639 return;
9640
9641 #define RUST_ENUM_PREFIX "RUST$ENCODED$ENUM$"
9642 if (type->num_fields () == 1
9643 && startswith (TYPE_FIELD_NAME (type, 0), RUST_ENUM_PREFIX))
9644 {
9645 const char *name = TYPE_FIELD_NAME (type, 0) + strlen (RUST_ENUM_PREFIX);
9646
9647 /* Decode the field name to find the offset of the
9648 discriminant. */
9649 ULONGEST bit_offset = 0;
9650 struct type *field_type = type->field (0).type ();
9651 while (name[0] >= '0' && name[0] <= '9')
9652 {
9653 char *tail;
9654 unsigned long index = strtoul (name, &tail, 10);
9655 name = tail;
9656 if (*name != '$'
9657 || index >= field_type->num_fields ()
9658 || (TYPE_FIELD_LOC_KIND (field_type, index)
9659 != FIELD_LOC_KIND_BITPOS))
9660 {
9661 complaint (_("Could not parse Rust enum encoding string \"%s\""
9662 "[in module %s]"),
9663 TYPE_FIELD_NAME (type, 0),
9664 objfile_name (objfile));
9665 return;
9666 }
9667 ++name;
9668
9669 bit_offset += TYPE_FIELD_BITPOS (field_type, index);
9670 field_type = field_type->field (index).type ();
9671 }
9672
9673 /* Smash this type to be a structure type. We have to do this
9674 because the type has already been recorded. */
9675 type->set_code (TYPE_CODE_STRUCT);
9676 type->set_num_fields (3);
9677 /* Save the field we care about. */
9678 struct field saved_field = type->field (0);
9679 type->set_fields
9680 ((struct field *) TYPE_ZALLOC (type, 3 * sizeof (struct field)));
9681
9682 /* Put the discriminant at index 0. */
9683 type->field (0).set_type (field_type);
9684 TYPE_FIELD_ARTIFICIAL (type, 0) = 1;
9685 TYPE_FIELD_NAME (type, 0) = "<<discriminant>>";
9686 SET_FIELD_BITPOS (type->field (0), bit_offset);
9687
9688 /* The order of fields doesn't really matter, so put the real
9689 field at index 1 and the data-less field at index 2. */
9690 type->field (1) = saved_field;
9691 TYPE_FIELD_NAME (type, 1)
9692 = rust_last_path_segment (type->field (1).type ()->name ());
9693 type->field (1).type ()->set_name
9694 (rust_fully_qualify (&objfile->objfile_obstack, type->name (),
9695 TYPE_FIELD_NAME (type, 1)));
9696
9697 const char *dataless_name
9698 = rust_fully_qualify (&objfile->objfile_obstack, type->name (),
9699 name);
9700 struct type *dataless_type = init_type (objfile, TYPE_CODE_VOID, 0,
9701 dataless_name);
9702 type->field (2).set_type (dataless_type);
9703 /* NAME points into the original discriminant name, which
9704 already has the correct lifetime. */
9705 TYPE_FIELD_NAME (type, 2) = name;
9706 SET_FIELD_BITPOS (type->field (2), 0);
9707
9708 /* Indicate that this is a variant type. */
9709 static discriminant_range ranges[1] = { { 0, 0 } };
9710 alloc_rust_variant (&objfile->objfile_obstack, type, 0, 1, ranges);
9711 }
9712 /* A union with a single anonymous field is probably an old-style
9713 univariant enum. */
9714 else if (type->num_fields () == 1 && streq (TYPE_FIELD_NAME (type, 0), ""))
9715 {
9716 /* Smash this type to be a structure type. We have to do this
9717 because the type has already been recorded. */
9718 type->set_code (TYPE_CODE_STRUCT);
9719
9720 struct type *field_type = type->field (0).type ();
9721 const char *variant_name
9722 = rust_last_path_segment (field_type->name ());
9723 TYPE_FIELD_NAME (type, 0) = variant_name;
9724 field_type->set_name
9725 (rust_fully_qualify (&objfile->objfile_obstack,
9726 type->name (), variant_name));
9727
9728 alloc_rust_variant (&objfile->objfile_obstack, type, -1, 0, {});
9729 }
9730 else
9731 {
9732 struct type *disr_type = nullptr;
9733 for (int i = 0; i < type->num_fields (); ++i)
9734 {
9735 disr_type = type->field (i).type ();
9736
9737 if (disr_type->code () != TYPE_CODE_STRUCT)
9738 {
9739 /* All fields of a true enum will be structs. */
9740 return;
9741 }
9742 else if (disr_type->num_fields () == 0)
9743 {
9744 /* Could be data-less variant, so keep going. */
9745 disr_type = nullptr;
9746 }
9747 else if (strcmp (TYPE_FIELD_NAME (disr_type, 0),
9748 "RUST$ENUM$DISR") != 0)
9749 {
9750 /* Not a Rust enum. */
9751 return;
9752 }
9753 else
9754 {
9755 /* Found one. */
9756 break;
9757 }
9758 }
9759
9760 /* If we got here without a discriminant, then it's probably
9761 just a union. */
9762 if (disr_type == nullptr)
9763 return;
9764
9765 /* Smash this type to be a structure type. We have to do this
9766 because the type has already been recorded. */
9767 type->set_code (TYPE_CODE_STRUCT);
9768
9769 /* Make space for the discriminant field. */
9770 struct field *disr_field = &disr_type->field (0);
9771 field *new_fields
9772 = (struct field *) TYPE_ZALLOC (type, ((type->num_fields () + 1)
9773 * sizeof (struct field)));
9774 memcpy (new_fields + 1, type->fields (),
9775 type->num_fields () * sizeof (struct field));
9776 type->set_fields (new_fields);
9777 type->set_num_fields (type->num_fields () + 1);
9778
9779 /* Install the discriminant at index 0 in the union. */
9780 type->field (0) = *disr_field;
9781 TYPE_FIELD_ARTIFICIAL (type, 0) = 1;
9782 TYPE_FIELD_NAME (type, 0) = "<<discriminant>>";
9783
9784 /* We need a way to find the correct discriminant given a
9785 variant name. For convenience we build a map here. */
9786 struct type *enum_type = disr_field->type ();
9787 std::unordered_map<std::string, ULONGEST> discriminant_map;
9788 for (int i = 0; i < enum_type->num_fields (); ++i)
9789 {
9790 if (TYPE_FIELD_LOC_KIND (enum_type, i) == FIELD_LOC_KIND_ENUMVAL)
9791 {
9792 const char *name
9793 = rust_last_path_segment (TYPE_FIELD_NAME (enum_type, i));
9794 discriminant_map[name] = TYPE_FIELD_ENUMVAL (enum_type, i);
9795 }
9796 }
9797
9798 int n_fields = type->num_fields ();
9799 /* We don't need a range entry for the discriminant, but we do
9800 need one for every other field, as there is no default
9801 variant. */
9802 discriminant_range *ranges = XOBNEWVEC (&objfile->objfile_obstack,
9803 discriminant_range,
9804 n_fields - 1);
9805 /* Skip the discriminant here. */
9806 for (int i = 1; i < n_fields; ++i)
9807 {
9808 /* Find the final word in the name of this variant's type.
9809 That name can be used to look up the correct
9810 discriminant. */
9811 const char *variant_name
9812 = rust_last_path_segment (type->field (i).type ()->name ());
9813
9814 auto iter = discriminant_map.find (variant_name);
9815 if (iter != discriminant_map.end ())
9816 {
9817 ranges[i - 1].low = iter->second;
9818 ranges[i - 1].high = iter->second;
9819 }
9820
9821 /* In Rust, each element should have the size of the
9822 enclosing enum. */
9823 TYPE_LENGTH (type->field (i).type ()) = TYPE_LENGTH (type);
9824
9825 /* Remove the discriminant field, if it exists. */
9826 struct type *sub_type = type->field (i).type ();
9827 if (sub_type->num_fields () > 0)
9828 {
9829 sub_type->set_num_fields (sub_type->num_fields () - 1);
9830 sub_type->set_fields (sub_type->fields () + 1);
9831 }
9832 TYPE_FIELD_NAME (type, i) = variant_name;
9833 sub_type->set_name
9834 (rust_fully_qualify (&objfile->objfile_obstack,
9835 type->name (), variant_name));
9836 }
9837
9838 /* Indicate that this is a variant type. */
9839 alloc_rust_variant (&objfile->objfile_obstack, type, 0, -1,
9840 gdb::array_view<discriminant_range> (ranges,
9841 n_fields - 1));
9842 }
9843 }
9844
9845 /* Rewrite some Rust unions to be structures with variants parts. */
9846
9847 static void
9848 rust_union_quirks (struct dwarf2_cu *cu)
9849 {
9850 gdb_assert (cu->language == language_rust);
9851 for (type *type_ : cu->rust_unions)
9852 quirk_rust_enum (type_, cu->per_objfile->objfile);
9853 /* We don't need this any more. */
9854 cu->rust_unions.clear ();
9855 }
9856
9857 /* See read.h. */
9858
9859 type_unit_group_unshareable *
9860 dwarf2_per_objfile::get_type_unit_group_unshareable (type_unit_group *tu_group)
9861 {
9862 auto iter = this->m_type_units.find (tu_group);
9863 if (iter != this->m_type_units.end ())
9864 return iter->second.get ();
9865
9866 type_unit_group_unshareable_up uniq (new type_unit_group_unshareable);
9867 type_unit_group_unshareable *result = uniq.get ();
9868 this->m_type_units[tu_group] = std::move (uniq);
9869 return result;
9870 }
9871
9872 struct type *
9873 dwarf2_per_objfile::get_type_for_signatured_type
9874 (signatured_type *sig_type) const
9875 {
9876 auto iter = this->m_type_map.find (sig_type);
9877 if (iter == this->m_type_map.end ())
9878 return nullptr;
9879
9880 return iter->second;
9881 }
9882
9883 void dwarf2_per_objfile::set_type_for_signatured_type
9884 (signatured_type *sig_type, struct type *type)
9885 {
9886 gdb_assert (this->m_type_map.find (sig_type) == this->m_type_map.end ());
9887
9888 this->m_type_map[sig_type] = type;
9889 }
9890
9891 /* A helper function for computing the list of all symbol tables
9892 included by PER_CU. */
9893
9894 static void
9895 recursively_compute_inclusions (std::vector<compunit_symtab *> *result,
9896 htab_t all_children, htab_t all_type_symtabs,
9897 dwarf2_per_cu_data *per_cu,
9898 dwarf2_per_objfile *per_objfile,
9899 struct compunit_symtab *immediate_parent)
9900 {
9901 void **slot = htab_find_slot (all_children, per_cu, INSERT);
9902 if (*slot != NULL)
9903 {
9904 /* This inclusion and its children have been processed. */
9905 return;
9906 }
9907
9908 *slot = per_cu;
9909
9910 /* Only add a CU if it has a symbol table. */
9911 compunit_symtab *cust = per_objfile->get_symtab (per_cu);
9912 if (cust != NULL)
9913 {
9914 /* If this is a type unit only add its symbol table if we haven't
9915 seen it yet (type unit per_cu's can share symtabs). */
9916 if (per_cu->is_debug_types)
9917 {
9918 slot = htab_find_slot (all_type_symtabs, cust, INSERT);
9919 if (*slot == NULL)
9920 {
9921 *slot = cust;
9922 result->push_back (cust);
9923 if (cust->user == NULL)
9924 cust->user = immediate_parent;
9925 }
9926 }
9927 else
9928 {
9929 result->push_back (cust);
9930 if (cust->user == NULL)
9931 cust->user = immediate_parent;
9932 }
9933 }
9934
9935 if (!per_cu->imported_symtabs_empty ())
9936 for (dwarf2_per_cu_data *ptr : *per_cu->imported_symtabs)
9937 {
9938 recursively_compute_inclusions (result, all_children,
9939 all_type_symtabs, ptr, per_objfile,
9940 cust);
9941 }
9942 }
9943
9944 /* Compute the compunit_symtab 'includes' fields for the compunit_symtab of
9945 PER_CU. */
9946
9947 static void
9948 compute_compunit_symtab_includes (dwarf2_per_cu_data *per_cu,
9949 dwarf2_per_objfile *per_objfile)
9950 {
9951 gdb_assert (! per_cu->is_debug_types);
9952
9953 if (!per_cu->imported_symtabs_empty ())
9954 {
9955 int len;
9956 std::vector<compunit_symtab *> result_symtabs;
9957 compunit_symtab *cust = per_objfile->get_symtab (per_cu);
9958
9959 /* If we don't have a symtab, we can just skip this case. */
9960 if (cust == NULL)
9961 return;
9962
9963 htab_up all_children (htab_create_alloc (1, htab_hash_pointer,
9964 htab_eq_pointer,
9965 NULL, xcalloc, xfree));
9966 htab_up all_type_symtabs (htab_create_alloc (1, htab_hash_pointer,
9967 htab_eq_pointer,
9968 NULL, xcalloc, xfree));
9969
9970 for (dwarf2_per_cu_data *ptr : *per_cu->imported_symtabs)
9971 {
9972 recursively_compute_inclusions (&result_symtabs, all_children.get (),
9973 all_type_symtabs.get (), ptr,
9974 per_objfile, cust);
9975 }
9976
9977 /* Now we have a transitive closure of all the included symtabs. */
9978 len = result_symtabs.size ();
9979 cust->includes
9980 = XOBNEWVEC (&per_objfile->objfile->objfile_obstack,
9981 struct compunit_symtab *, len + 1);
9982 memcpy (cust->includes, result_symtabs.data (),
9983 len * sizeof (compunit_symtab *));
9984 cust->includes[len] = NULL;
9985 }
9986 }
9987
9988 /* Compute the 'includes' field for the symtabs of all the CUs we just
9989 read. */
9990
9991 static void
9992 process_cu_includes (dwarf2_per_objfile *per_objfile)
9993 {
9994 for (dwarf2_per_cu_data *iter : per_objfile->per_bfd->just_read_cus)
9995 {
9996 if (! iter->is_debug_types)
9997 compute_compunit_symtab_includes (iter, per_objfile);
9998 }
9999
10000 per_objfile->per_bfd->just_read_cus.clear ();
10001 }
10002
10003 /* Generate full symbol information for CU, whose DIEs have
10004 already been loaded into memory. */
10005
10006 static void
10007 process_full_comp_unit (dwarf2_cu *cu, enum language pretend_language)
10008 {
10009 dwarf2_per_objfile *per_objfile = cu->per_objfile;
10010 struct objfile *objfile = per_objfile->objfile;
10011 struct gdbarch *gdbarch = objfile->arch ();
10012 CORE_ADDR lowpc, highpc;
10013 struct compunit_symtab *cust;
10014 CORE_ADDR baseaddr;
10015 struct block *static_block;
10016 CORE_ADDR addr;
10017
10018 baseaddr = objfile->text_section_offset ();
10019
10020 /* Clear the list here in case something was left over. */
10021 cu->method_list.clear ();
10022
10023 cu->language = pretend_language;
10024 cu->language_defn = language_def (cu->language);
10025
10026 dwarf2_find_base_address (cu->dies, cu);
10027
10028 /* Do line number decoding in read_file_scope () */
10029 process_die (cu->dies, cu);
10030
10031 /* For now fudge the Go package. */
10032 if (cu->language == language_go)
10033 fixup_go_packaging (cu);
10034
10035 /* Now that we have processed all the DIEs in the CU, all the types
10036 should be complete, and it should now be safe to compute all of the
10037 physnames. */
10038 compute_delayed_physnames (cu);
10039
10040 if (cu->language == language_rust)
10041 rust_union_quirks (cu);
10042
10043 /* Some compilers don't define a DW_AT_high_pc attribute for the
10044 compilation unit. If the DW_AT_high_pc is missing, synthesize
10045 it, by scanning the DIE's below the compilation unit. */
10046 get_scope_pc_bounds (cu->dies, &lowpc, &highpc, cu);
10047
10048 addr = gdbarch_adjust_dwarf2_addr (gdbarch, highpc + baseaddr);
10049 static_block = cu->get_builder ()->end_symtab_get_static_block (addr, 0, 1);
10050
10051 /* If the comp unit has DW_AT_ranges, it may have discontiguous ranges.
10052 Also, DW_AT_ranges may record ranges not belonging to any child DIEs
10053 (such as virtual method tables). Record the ranges in STATIC_BLOCK's
10054 addrmap to help ensure it has an accurate map of pc values belonging to
10055 this comp unit. */
10056 dwarf2_record_block_ranges (cu->dies, static_block, baseaddr, cu);
10057
10058 cust = cu->get_builder ()->end_symtab_from_static_block (static_block,
10059 SECT_OFF_TEXT (objfile),
10060 0);
10061
10062 if (cust != NULL)
10063 {
10064 int gcc_4_minor = producer_is_gcc_ge_4 (cu->producer);
10065
10066 /* Set symtab language to language from DW_AT_language. If the
10067 compilation is from a C file generated by language preprocessors, do
10068 not set the language if it was already deduced by start_subfile. */
10069 if (!(cu->language == language_c
10070 && COMPUNIT_FILETABS (cust)->language != language_unknown))
10071 COMPUNIT_FILETABS (cust)->language = cu->language;
10072
10073 /* GCC-4.0 has started to support -fvar-tracking. GCC-3.x still can
10074 produce DW_AT_location with location lists but it can be possibly
10075 invalid without -fvar-tracking. Still up to GCC-4.4.x incl. 4.4.0
10076 there were bugs in prologue debug info, fixed later in GCC-4.5
10077 by "unwind info for epilogues" patch (which is not directly related).
10078
10079 For -gdwarf-4 type units LOCATIONS_VALID indication is fortunately not
10080 needed, it would be wrong due to missing DW_AT_producer there.
10081
10082 Still one can confuse GDB by using non-standard GCC compilation
10083 options - this waits on GCC PR other/32998 (-frecord-gcc-switches).
10084 */
10085 if (cu->has_loclist && gcc_4_minor >= 5)
10086 cust->locations_valid = 1;
10087
10088 if (gcc_4_minor >= 5)
10089 cust->epilogue_unwind_valid = 1;
10090
10091 cust->call_site_htab = cu->call_site_htab;
10092 }
10093
10094 per_objfile->set_symtab (cu->per_cu, cust);
10095
10096 /* Push it for inclusion processing later. */
10097 per_objfile->per_bfd->just_read_cus.push_back (cu->per_cu);
10098
10099 /* Not needed any more. */
10100 cu->reset_builder ();
10101 }
10102
10103 /* Generate full symbol information for type unit CU, whose DIEs have
10104 already been loaded into memory. */
10105
10106 static void
10107 process_full_type_unit (dwarf2_cu *cu,
10108 enum language pretend_language)
10109 {
10110 dwarf2_per_objfile *per_objfile = cu->per_objfile;
10111 struct objfile *objfile = per_objfile->objfile;
10112 struct compunit_symtab *cust;
10113 struct signatured_type *sig_type;
10114
10115 gdb_assert (cu->per_cu->is_debug_types);
10116 sig_type = (struct signatured_type *) cu->per_cu;
10117
10118 /* Clear the list here in case something was left over. */
10119 cu->method_list.clear ();
10120
10121 cu->language = pretend_language;
10122 cu->language_defn = language_def (cu->language);
10123
10124 /* The symbol tables are set up in read_type_unit_scope. */
10125 process_die (cu->dies, cu);
10126
10127 /* For now fudge the Go package. */
10128 if (cu->language == language_go)
10129 fixup_go_packaging (cu);
10130
10131 /* Now that we have processed all the DIEs in the CU, all the types
10132 should be complete, and it should now be safe to compute all of the
10133 physnames. */
10134 compute_delayed_physnames (cu);
10135
10136 if (cu->language == language_rust)
10137 rust_union_quirks (cu);
10138
10139 /* TUs share symbol tables.
10140 If this is the first TU to use this symtab, complete the construction
10141 of it with end_expandable_symtab. Otherwise, complete the addition of
10142 this TU's symbols to the existing symtab. */
10143 type_unit_group_unshareable *tug_unshare =
10144 per_objfile->get_type_unit_group_unshareable (sig_type->type_unit_group);
10145 if (tug_unshare->compunit_symtab == NULL)
10146 {
10147 buildsym_compunit *builder = cu->get_builder ();
10148 cust = builder->end_expandable_symtab (0, SECT_OFF_TEXT (objfile));
10149 tug_unshare->compunit_symtab = cust;
10150
10151 if (cust != NULL)
10152 {
10153 /* Set symtab language to language from DW_AT_language. If the
10154 compilation is from a C file generated by language preprocessors,
10155 do not set the language if it was already deduced by
10156 start_subfile. */
10157 if (!(cu->language == language_c
10158 && COMPUNIT_FILETABS (cust)->language != language_c))
10159 COMPUNIT_FILETABS (cust)->language = cu->language;
10160 }
10161 }
10162 else
10163 {
10164 cu->get_builder ()->augment_type_symtab ();
10165 cust = tug_unshare->compunit_symtab;
10166 }
10167
10168 per_objfile->set_symtab (cu->per_cu, cust);
10169
10170 /* Not needed any more. */
10171 cu->reset_builder ();
10172 }
10173
10174 /* Process an imported unit DIE. */
10175
10176 static void
10177 process_imported_unit_die (struct die_info *die, struct dwarf2_cu *cu)
10178 {
10179 struct attribute *attr;
10180
10181 /* For now we don't handle imported units in type units. */
10182 if (cu->per_cu->is_debug_types)
10183 {
10184 error (_("Dwarf Error: DW_TAG_imported_unit is not"
10185 " supported in type units [in module %s]"),
10186 objfile_name (cu->per_objfile->objfile));
10187 }
10188
10189 attr = dwarf2_attr (die, DW_AT_import, cu);
10190 if (attr != NULL)
10191 {
10192 sect_offset sect_off = attr->get_ref_die_offset ();
10193 bool is_dwz = (attr->form == DW_FORM_GNU_ref_alt || cu->per_cu->is_dwz);
10194 dwarf2_per_objfile *per_objfile = cu->per_objfile;
10195 dwarf2_per_cu_data *per_cu
10196 = dwarf2_find_containing_comp_unit (sect_off, is_dwz, per_objfile);
10197
10198 /* We're importing a C++ compilation unit with tag DW_TAG_compile_unit
10199 into another compilation unit, at root level. Regard this as a hint,
10200 and ignore it. */
10201 if (die->parent && die->parent->parent == NULL
10202 && per_cu->unit_type == DW_UT_compile
10203 && per_cu->lang == language_cplus)
10204 return;
10205
10206 /* If necessary, add it to the queue and load its DIEs. */
10207 if (maybe_queue_comp_unit (cu, per_cu, per_objfile, cu->language))
10208 load_full_comp_unit (per_cu, per_objfile, per_objfile->get_cu (per_cu),
10209 false, cu->language);
10210
10211 cu->per_cu->imported_symtabs_push (per_cu);
10212 }
10213 }
10214
10215 /* RAII object that represents a process_die scope: i.e.,
10216 starts/finishes processing a DIE. */
10217 class process_die_scope
10218 {
10219 public:
10220 process_die_scope (die_info *die, dwarf2_cu *cu)
10221 : m_die (die), m_cu (cu)
10222 {
10223 /* We should only be processing DIEs not already in process. */
10224 gdb_assert (!m_die->in_process);
10225 m_die->in_process = true;
10226 }
10227
10228 ~process_die_scope ()
10229 {
10230 m_die->in_process = false;
10231
10232 /* If we're done processing the DIE for the CU that owns the line
10233 header, we don't need the line header anymore. */
10234 if (m_cu->line_header_die_owner == m_die)
10235 {
10236 delete m_cu->line_header;
10237 m_cu->line_header = NULL;
10238 m_cu->line_header_die_owner = NULL;
10239 }
10240 }
10241
10242 private:
10243 die_info *m_die;
10244 dwarf2_cu *m_cu;
10245 };
10246
10247 /* Process a die and its children. */
10248
10249 static void
10250 process_die (struct die_info *die, struct dwarf2_cu *cu)
10251 {
10252 process_die_scope scope (die, cu);
10253
10254 switch (die->tag)
10255 {
10256 case DW_TAG_padding:
10257 break;
10258 case DW_TAG_compile_unit:
10259 case DW_TAG_partial_unit:
10260 read_file_scope (die, cu);
10261 break;
10262 case DW_TAG_type_unit:
10263 read_type_unit_scope (die, cu);
10264 break;
10265 case DW_TAG_subprogram:
10266 /* Nested subprograms in Fortran get a prefix. */
10267 if (cu->language == language_fortran
10268 && die->parent != NULL
10269 && die->parent->tag == DW_TAG_subprogram)
10270 cu->processing_has_namespace_info = true;
10271 /* Fall through. */
10272 case DW_TAG_inlined_subroutine:
10273 read_func_scope (die, cu);
10274 break;
10275 case DW_TAG_lexical_block:
10276 case DW_TAG_try_block:
10277 case DW_TAG_catch_block:
10278 read_lexical_block_scope (die, cu);
10279 break;
10280 case DW_TAG_call_site:
10281 case DW_TAG_GNU_call_site:
10282 read_call_site_scope (die, cu);
10283 break;
10284 case DW_TAG_class_type:
10285 case DW_TAG_interface_type:
10286 case DW_TAG_structure_type:
10287 case DW_TAG_union_type:
10288 process_structure_scope (die, cu);
10289 break;
10290 case DW_TAG_enumeration_type:
10291 process_enumeration_scope (die, cu);
10292 break;
10293
10294 /* These dies have a type, but processing them does not create
10295 a symbol or recurse to process the children. Therefore we can
10296 read them on-demand through read_type_die. */
10297 case DW_TAG_subroutine_type:
10298 case DW_TAG_set_type:
10299 case DW_TAG_pointer_type:
10300 case DW_TAG_ptr_to_member_type:
10301 case DW_TAG_reference_type:
10302 case DW_TAG_rvalue_reference_type:
10303 case DW_TAG_string_type:
10304 break;
10305
10306 case DW_TAG_array_type:
10307 /* We only need to handle this case for Ada -- in other
10308 languages, it's normal for the compiler to emit a typedef
10309 instead. */
10310 if (cu->language != language_ada)
10311 break;
10312 /* FALLTHROUGH */
10313 case DW_TAG_base_type:
10314 case DW_TAG_subrange_type:
10315 case DW_TAG_typedef:
10316 /* Add a typedef symbol for the type definition, if it has a
10317 DW_AT_name. */
10318 new_symbol (die, read_type_die (die, cu), cu);
10319 break;
10320 case DW_TAG_common_block:
10321 read_common_block (die, cu);
10322 break;
10323 case DW_TAG_common_inclusion:
10324 break;
10325 case DW_TAG_namespace:
10326 cu->processing_has_namespace_info = true;
10327 read_namespace (die, cu);
10328 break;
10329 case DW_TAG_module:
10330 cu->processing_has_namespace_info = true;
10331 read_module (die, cu);
10332 break;
10333 case DW_TAG_imported_declaration:
10334 cu->processing_has_namespace_info = true;
10335 if (read_namespace_alias (die, cu))
10336 break;
10337 /* The declaration is not a global namespace alias. */
10338 /* Fall through. */
10339 case DW_TAG_imported_module:
10340 cu->processing_has_namespace_info = true;
10341 if (die->child != NULL && (die->tag == DW_TAG_imported_declaration
10342 || cu->language != language_fortran))
10343 complaint (_("Tag '%s' has unexpected children"),
10344 dwarf_tag_name (die->tag));
10345 read_import_statement (die, cu);
10346 break;
10347
10348 case DW_TAG_imported_unit:
10349 process_imported_unit_die (die, cu);
10350 break;
10351
10352 case DW_TAG_variable:
10353 read_variable (die, cu);
10354 break;
10355
10356 default:
10357 new_symbol (die, NULL, cu);
10358 break;
10359 }
10360 }
10361 \f
10362 /* DWARF name computation. */
10363
10364 /* A helper function for dwarf2_compute_name which determines whether DIE
10365 needs to have the name of the scope prepended to the name listed in the
10366 die. */
10367
10368 static int
10369 die_needs_namespace (struct die_info *die, struct dwarf2_cu *cu)
10370 {
10371 struct attribute *attr;
10372
10373 switch (die->tag)
10374 {
10375 case DW_TAG_namespace:
10376 case DW_TAG_typedef:
10377 case DW_TAG_class_type:
10378 case DW_TAG_interface_type:
10379 case DW_TAG_structure_type:
10380 case DW_TAG_union_type:
10381 case DW_TAG_enumeration_type:
10382 case DW_TAG_enumerator:
10383 case DW_TAG_subprogram:
10384 case DW_TAG_inlined_subroutine:
10385 case DW_TAG_member:
10386 case DW_TAG_imported_declaration:
10387 return 1;
10388
10389 case DW_TAG_variable:
10390 case DW_TAG_constant:
10391 /* We only need to prefix "globally" visible variables. These include
10392 any variable marked with DW_AT_external or any variable that
10393 lives in a namespace. [Variables in anonymous namespaces
10394 require prefixing, but they are not DW_AT_external.] */
10395
10396 if (dwarf2_attr (die, DW_AT_specification, cu))
10397 {
10398 struct dwarf2_cu *spec_cu = cu;
10399
10400 return die_needs_namespace (die_specification (die, &spec_cu),
10401 spec_cu);
10402 }
10403
10404 attr = dwarf2_attr (die, DW_AT_external, cu);
10405 if (attr == NULL && die->parent->tag != DW_TAG_namespace
10406 && die->parent->tag != DW_TAG_module)
10407 return 0;
10408 /* A variable in a lexical block of some kind does not need a
10409 namespace, even though in C++ such variables may be external
10410 and have a mangled name. */
10411 if (die->parent->tag == DW_TAG_lexical_block
10412 || die->parent->tag == DW_TAG_try_block
10413 || die->parent->tag == DW_TAG_catch_block
10414 || die->parent->tag == DW_TAG_subprogram)
10415 return 0;
10416 return 1;
10417
10418 default:
10419 return 0;
10420 }
10421 }
10422
10423 /* Return the DIE's linkage name attribute, either DW_AT_linkage_name
10424 or DW_AT_MIPS_linkage_name. Returns NULL if the attribute is not
10425 defined for the given DIE. */
10426
10427 static struct attribute *
10428 dw2_linkage_name_attr (struct die_info *die, struct dwarf2_cu *cu)
10429 {
10430 struct attribute *attr;
10431
10432 attr = dwarf2_attr (die, DW_AT_linkage_name, cu);
10433 if (attr == NULL)
10434 attr = dwarf2_attr (die, DW_AT_MIPS_linkage_name, cu);
10435
10436 return attr;
10437 }
10438
10439 /* Return the DIE's linkage name as a string, either DW_AT_linkage_name
10440 or DW_AT_MIPS_linkage_name. Returns NULL if the attribute is not
10441 defined for the given DIE. */
10442
10443 static const char *
10444 dw2_linkage_name (struct die_info *die, struct dwarf2_cu *cu)
10445 {
10446 const char *linkage_name;
10447
10448 linkage_name = dwarf2_string_attr (die, DW_AT_linkage_name, cu);
10449 if (linkage_name == NULL)
10450 linkage_name = dwarf2_string_attr (die, DW_AT_MIPS_linkage_name, cu);
10451
10452 /* rustc emits invalid values for DW_AT_linkage_name. Ignore these.
10453 See https://github.com/rust-lang/rust/issues/32925. */
10454 if (cu->language == language_rust && linkage_name != NULL
10455 && strchr (linkage_name, '{') != NULL)
10456 linkage_name = NULL;
10457
10458 return linkage_name;
10459 }
10460
10461 /* Compute the fully qualified name of DIE in CU. If PHYSNAME is nonzero,
10462 compute the physname for the object, which include a method's:
10463 - formal parameters (C++),
10464 - receiver type (Go),
10465
10466 The term "physname" is a bit confusing.
10467 For C++, for example, it is the demangled name.
10468 For Go, for example, it's the mangled name.
10469
10470 For Ada, return the DIE's linkage name rather than the fully qualified
10471 name. PHYSNAME is ignored..
10472
10473 The result is allocated on the objfile->per_bfd's obstack and
10474 canonicalized. */
10475
10476 static const char *
10477 dwarf2_compute_name (const char *name,
10478 struct die_info *die, struct dwarf2_cu *cu,
10479 int physname)
10480 {
10481 struct objfile *objfile = cu->per_objfile->objfile;
10482
10483 if (name == NULL)
10484 name = dwarf2_name (die, cu);
10485
10486 /* For Fortran GDB prefers DW_AT_*linkage_name for the physname if present
10487 but otherwise compute it by typename_concat inside GDB.
10488 FIXME: Actually this is not really true, or at least not always true.
10489 It's all very confusing. compute_and_set_names doesn't try to demangle
10490 Fortran names because there is no mangling standard. So new_symbol
10491 will set the demangled name to the result of dwarf2_full_name, and it is
10492 the demangled name that GDB uses if it exists. */
10493 if (cu->language == language_ada
10494 || (cu->language == language_fortran && physname))
10495 {
10496 /* For Ada unit, we prefer the linkage name over the name, as
10497 the former contains the exported name, which the user expects
10498 to be able to reference. Ideally, we want the user to be able
10499 to reference this entity using either natural or linkage name,
10500 but we haven't started looking at this enhancement yet. */
10501 const char *linkage_name = dw2_linkage_name (die, cu);
10502
10503 if (linkage_name != NULL)
10504 return linkage_name;
10505 }
10506
10507 /* These are the only languages we know how to qualify names in. */
10508 if (name != NULL
10509 && (cu->language == language_cplus
10510 || cu->language == language_fortran || cu->language == language_d
10511 || cu->language == language_rust))
10512 {
10513 if (die_needs_namespace (die, cu))
10514 {
10515 const char *prefix;
10516 const char *canonical_name = NULL;
10517
10518 string_file buf;
10519
10520 prefix = determine_prefix (die, cu);
10521 if (*prefix != '\0')
10522 {
10523 gdb::unique_xmalloc_ptr<char> prefixed_name
10524 (typename_concat (NULL, prefix, name, physname, cu));
10525
10526 buf.puts (prefixed_name.get ());
10527 }
10528 else
10529 buf.puts (name);
10530
10531 /* Template parameters may be specified in the DIE's DW_AT_name, or
10532 as children with DW_TAG_template_type_param or
10533 DW_TAG_value_type_param. If the latter, add them to the name
10534 here. If the name already has template parameters, then
10535 skip this step; some versions of GCC emit both, and
10536 it is more efficient to use the pre-computed name.
10537
10538 Something to keep in mind about this process: it is very
10539 unlikely, or in some cases downright impossible, to produce
10540 something that will match the mangled name of a function.
10541 If the definition of the function has the same debug info,
10542 we should be able to match up with it anyway. But fallbacks
10543 using the minimal symbol, for instance to find a method
10544 implemented in a stripped copy of libstdc++, will not work.
10545 If we do not have debug info for the definition, we will have to
10546 match them up some other way.
10547
10548 When we do name matching there is a related problem with function
10549 templates; two instantiated function templates are allowed to
10550 differ only by their return types, which we do not add here. */
10551
10552 if (cu->language == language_cplus && strchr (name, '<') == NULL)
10553 {
10554 struct attribute *attr;
10555 struct die_info *child;
10556 int first = 1;
10557 const language_defn *cplus_lang = language_def (cu->language);
10558
10559 die->building_fullname = 1;
10560
10561 for (child = die->child; child != NULL; child = child->sibling)
10562 {
10563 struct type *type;
10564 LONGEST value;
10565 const gdb_byte *bytes;
10566 struct dwarf2_locexpr_baton *baton;
10567 struct value *v;
10568
10569 if (child->tag != DW_TAG_template_type_param
10570 && child->tag != DW_TAG_template_value_param)
10571 continue;
10572
10573 if (first)
10574 {
10575 buf.puts ("<");
10576 first = 0;
10577 }
10578 else
10579 buf.puts (", ");
10580
10581 attr = dwarf2_attr (child, DW_AT_type, cu);
10582 if (attr == NULL)
10583 {
10584 complaint (_("template parameter missing DW_AT_type"));
10585 buf.puts ("UNKNOWN_TYPE");
10586 continue;
10587 }
10588 type = die_type (child, cu);
10589
10590 if (child->tag == DW_TAG_template_type_param)
10591 {
10592 cplus_lang->print_type (type, "", &buf, -1, 0,
10593 &type_print_raw_options);
10594 continue;
10595 }
10596
10597 attr = dwarf2_attr (child, DW_AT_const_value, cu);
10598 if (attr == NULL)
10599 {
10600 complaint (_("template parameter missing "
10601 "DW_AT_const_value"));
10602 buf.puts ("UNKNOWN_VALUE");
10603 continue;
10604 }
10605
10606 dwarf2_const_value_attr (attr, type, name,
10607 &cu->comp_unit_obstack, cu,
10608 &value, &bytes, &baton);
10609
10610 if (type->has_no_signedness ())
10611 /* GDB prints characters as NUMBER 'CHAR'. If that's
10612 changed, this can use value_print instead. */
10613 cplus_lang->printchar (value, type, &buf);
10614 else
10615 {
10616 struct value_print_options opts;
10617
10618 if (baton != NULL)
10619 v = dwarf2_evaluate_loc_desc (type, NULL,
10620 baton->data,
10621 baton->size,
10622 baton->per_cu,
10623 baton->per_objfile);
10624 else if (bytes != NULL)
10625 {
10626 v = allocate_value (type);
10627 memcpy (value_contents_writeable (v), bytes,
10628 TYPE_LENGTH (type));
10629 }
10630 else
10631 v = value_from_longest (type, value);
10632
10633 /* Specify decimal so that we do not depend on
10634 the radix. */
10635 get_formatted_print_options (&opts, 'd');
10636 opts.raw = 1;
10637 value_print (v, &buf, &opts);
10638 release_value (v);
10639 }
10640 }
10641
10642 die->building_fullname = 0;
10643
10644 if (!first)
10645 {
10646 /* Close the argument list, with a space if necessary
10647 (nested templates). */
10648 if (!buf.empty () && buf.string ().back () == '>')
10649 buf.puts (" >");
10650 else
10651 buf.puts (">");
10652 }
10653 }
10654
10655 /* For C++ methods, append formal parameter type
10656 information, if PHYSNAME. */
10657
10658 if (physname && die->tag == DW_TAG_subprogram
10659 && cu->language == language_cplus)
10660 {
10661 struct type *type = read_type_die (die, cu);
10662
10663 c_type_print_args (type, &buf, 1, cu->language,
10664 &type_print_raw_options);
10665
10666 if (cu->language == language_cplus)
10667 {
10668 /* Assume that an artificial first parameter is
10669 "this", but do not crash if it is not. RealView
10670 marks unnamed (and thus unused) parameters as
10671 artificial; there is no way to differentiate
10672 the two cases. */
10673 if (type->num_fields () > 0
10674 && TYPE_FIELD_ARTIFICIAL (type, 0)
10675 && type->field (0).type ()->code () == TYPE_CODE_PTR
10676 && TYPE_CONST (TYPE_TARGET_TYPE (type->field (0).type ())))
10677 buf.puts (" const");
10678 }
10679 }
10680
10681 const std::string &intermediate_name = buf.string ();
10682
10683 if (cu->language == language_cplus)
10684 canonical_name
10685 = dwarf2_canonicalize_name (intermediate_name.c_str (), cu,
10686 objfile);
10687
10688 /* If we only computed INTERMEDIATE_NAME, or if
10689 INTERMEDIATE_NAME is already canonical, then we need to
10690 intern it. */
10691 if (canonical_name == NULL || canonical_name == intermediate_name.c_str ())
10692 name = objfile->intern (intermediate_name);
10693 else
10694 name = canonical_name;
10695 }
10696 }
10697
10698 return name;
10699 }
10700
10701 /* Return the fully qualified name of DIE, based on its DW_AT_name.
10702 If scope qualifiers are appropriate they will be added. The result
10703 will be allocated on the storage_obstack, or NULL if the DIE does
10704 not have a name. NAME may either be from a previous call to
10705 dwarf2_name or NULL.
10706
10707 The output string will be canonicalized (if C++). */
10708
10709 static const char *
10710 dwarf2_full_name (const char *name, struct die_info *die, struct dwarf2_cu *cu)
10711 {
10712 return dwarf2_compute_name (name, die, cu, 0);
10713 }
10714
10715 /* Construct a physname for the given DIE in CU. NAME may either be
10716 from a previous call to dwarf2_name or NULL. The result will be
10717 allocated on the objfile_objstack or NULL if the DIE does not have a
10718 name.
10719
10720 The output string will be canonicalized (if C++). */
10721
10722 static const char *
10723 dwarf2_physname (const char *name, struct die_info *die, struct dwarf2_cu *cu)
10724 {
10725 struct objfile *objfile = cu->per_objfile->objfile;
10726 const char *retval, *mangled = NULL, *canon = NULL;
10727 int need_copy = 1;
10728
10729 /* In this case dwarf2_compute_name is just a shortcut not building anything
10730 on its own. */
10731 if (!die_needs_namespace (die, cu))
10732 return dwarf2_compute_name (name, die, cu, 1);
10733
10734 if (cu->language != language_rust)
10735 mangled = dw2_linkage_name (die, cu);
10736
10737 /* DW_AT_linkage_name is missing in some cases - depend on what GDB
10738 has computed. */
10739 gdb::unique_xmalloc_ptr<char> demangled;
10740 if (mangled != NULL)
10741 {
10742
10743 if (language_def (cu->language)->store_sym_names_in_linkage_form_p ())
10744 {
10745 /* Do nothing (do not demangle the symbol name). */
10746 }
10747 else
10748 {
10749 /* Use DMGL_RET_DROP for C++ template functions to suppress
10750 their return type. It is easier for GDB users to search
10751 for such functions as `name(params)' than `long name(params)'.
10752 In such case the minimal symbol names do not match the full
10753 symbol names but for template functions there is never a need
10754 to look up their definition from their declaration so
10755 the only disadvantage remains the minimal symbol variant
10756 `long name(params)' does not have the proper inferior type. */
10757 demangled.reset (gdb_demangle (mangled,
10758 (DMGL_PARAMS | DMGL_ANSI
10759 | DMGL_RET_DROP)));
10760 }
10761 if (demangled)
10762 canon = demangled.get ();
10763 else
10764 {
10765 canon = mangled;
10766 need_copy = 0;
10767 }
10768 }
10769
10770 if (canon == NULL || check_physname)
10771 {
10772 const char *physname = dwarf2_compute_name (name, die, cu, 1);
10773
10774 if (canon != NULL && strcmp (physname, canon) != 0)
10775 {
10776 /* It may not mean a bug in GDB. The compiler could also
10777 compute DW_AT_linkage_name incorrectly. But in such case
10778 GDB would need to be bug-to-bug compatible. */
10779
10780 complaint (_("Computed physname <%s> does not match demangled <%s> "
10781 "(from linkage <%s>) - DIE at %s [in module %s]"),
10782 physname, canon, mangled, sect_offset_str (die->sect_off),
10783 objfile_name (objfile));
10784
10785 /* Prefer DW_AT_linkage_name (in the CANON form) - when it
10786 is available here - over computed PHYSNAME. It is safer
10787 against both buggy GDB and buggy compilers. */
10788
10789 retval = canon;
10790 }
10791 else
10792 {
10793 retval = physname;
10794 need_copy = 0;
10795 }
10796 }
10797 else
10798 retval = canon;
10799
10800 if (need_copy)
10801 retval = objfile->intern (retval);
10802
10803 return retval;
10804 }
10805
10806 /* Inspect DIE in CU for a namespace alias. If one exists, record
10807 a new symbol for it.
10808
10809 Returns 1 if a namespace alias was recorded, 0 otherwise. */
10810
10811 static int
10812 read_namespace_alias (struct die_info *die, struct dwarf2_cu *cu)
10813 {
10814 struct attribute *attr;
10815
10816 /* If the die does not have a name, this is not a namespace
10817 alias. */
10818 attr = dwarf2_attr (die, DW_AT_name, cu);
10819 if (attr != NULL)
10820 {
10821 int num;
10822 struct die_info *d = die;
10823 struct dwarf2_cu *imported_cu = cu;
10824
10825 /* If the compiler has nested DW_AT_imported_declaration DIEs,
10826 keep inspecting DIEs until we hit the underlying import. */
10827 #define MAX_NESTED_IMPORTED_DECLARATIONS 100
10828 for (num = 0; num < MAX_NESTED_IMPORTED_DECLARATIONS; ++num)
10829 {
10830 attr = dwarf2_attr (d, DW_AT_import, cu);
10831 if (attr == NULL)
10832 break;
10833
10834 d = follow_die_ref (d, attr, &imported_cu);
10835 if (d->tag != DW_TAG_imported_declaration)
10836 break;
10837 }
10838
10839 if (num == MAX_NESTED_IMPORTED_DECLARATIONS)
10840 {
10841 complaint (_("DIE at %s has too many recursively imported "
10842 "declarations"), sect_offset_str (d->sect_off));
10843 return 0;
10844 }
10845
10846 if (attr != NULL)
10847 {
10848 struct type *type;
10849 sect_offset sect_off = attr->get_ref_die_offset ();
10850
10851 type = get_die_type_at_offset (sect_off, cu->per_cu, cu->per_objfile);
10852 if (type != NULL && type->code () == TYPE_CODE_NAMESPACE)
10853 {
10854 /* This declaration is a global namespace alias. Add
10855 a symbol for it whose type is the aliased namespace. */
10856 new_symbol (die, type, cu);
10857 return 1;
10858 }
10859 }
10860 }
10861
10862 return 0;
10863 }
10864
10865 /* Return the using directives repository (global or local?) to use in the
10866 current context for CU.
10867
10868 For Ada, imported declarations can materialize renamings, which *may* be
10869 global. However it is impossible (for now?) in DWARF to distinguish
10870 "external" imported declarations and "static" ones. As all imported
10871 declarations seem to be static in all other languages, make them all CU-wide
10872 global only in Ada. */
10873
10874 static struct using_direct **
10875 using_directives (struct dwarf2_cu *cu)
10876 {
10877 if (cu->language == language_ada
10878 && cu->get_builder ()->outermost_context_p ())
10879 return cu->get_builder ()->get_global_using_directives ();
10880 else
10881 return cu->get_builder ()->get_local_using_directives ();
10882 }
10883
10884 /* Read the import statement specified by the given die and record it. */
10885
10886 static void
10887 read_import_statement (struct die_info *die, struct dwarf2_cu *cu)
10888 {
10889 struct objfile *objfile = cu->per_objfile->objfile;
10890 struct attribute *import_attr;
10891 struct die_info *imported_die, *child_die;
10892 struct dwarf2_cu *imported_cu;
10893 const char *imported_name;
10894 const char *imported_name_prefix;
10895 const char *canonical_name;
10896 const char *import_alias;
10897 const char *imported_declaration = NULL;
10898 const char *import_prefix;
10899 std::vector<const char *> excludes;
10900
10901 import_attr = dwarf2_attr (die, DW_AT_import, cu);
10902 if (import_attr == NULL)
10903 {
10904 complaint (_("Tag '%s' has no DW_AT_import"),
10905 dwarf_tag_name (die->tag));
10906 return;
10907 }
10908
10909 imported_cu = cu;
10910 imported_die = follow_die_ref_or_sig (die, import_attr, &imported_cu);
10911 imported_name = dwarf2_name (imported_die, imported_cu);
10912 if (imported_name == NULL)
10913 {
10914 /* GCC bug: https://bugzilla.redhat.com/show_bug.cgi?id=506524
10915
10916 The import in the following code:
10917 namespace A
10918 {
10919 typedef int B;
10920 }
10921
10922 int main ()
10923 {
10924 using A::B;
10925 B b;
10926 return b;
10927 }
10928
10929 ...
10930 <2><51>: Abbrev Number: 3 (DW_TAG_imported_declaration)
10931 <52> DW_AT_decl_file : 1
10932 <53> DW_AT_decl_line : 6
10933 <54> DW_AT_import : <0x75>
10934 <2><58>: Abbrev Number: 4 (DW_TAG_typedef)
10935 <59> DW_AT_name : B
10936 <5b> DW_AT_decl_file : 1
10937 <5c> DW_AT_decl_line : 2
10938 <5d> DW_AT_type : <0x6e>
10939 ...
10940 <1><75>: Abbrev Number: 7 (DW_TAG_base_type)
10941 <76> DW_AT_byte_size : 4
10942 <77> DW_AT_encoding : 5 (signed)
10943
10944 imports the wrong die ( 0x75 instead of 0x58 ).
10945 This case will be ignored until the gcc bug is fixed. */
10946 return;
10947 }
10948
10949 /* Figure out the local name after import. */
10950 import_alias = dwarf2_name (die, cu);
10951
10952 /* Figure out where the statement is being imported to. */
10953 import_prefix = determine_prefix (die, cu);
10954
10955 /* Figure out what the scope of the imported die is and prepend it
10956 to the name of the imported die. */
10957 imported_name_prefix = determine_prefix (imported_die, imported_cu);
10958
10959 if (imported_die->tag != DW_TAG_namespace
10960 && imported_die->tag != DW_TAG_module)
10961 {
10962 imported_declaration = imported_name;
10963 canonical_name = imported_name_prefix;
10964 }
10965 else if (strlen (imported_name_prefix) > 0)
10966 canonical_name = obconcat (&objfile->objfile_obstack,
10967 imported_name_prefix,
10968 (cu->language == language_d ? "." : "::"),
10969 imported_name, (char *) NULL);
10970 else
10971 canonical_name = imported_name;
10972
10973 if (die->tag == DW_TAG_imported_module && cu->language == language_fortran)
10974 for (child_die = die->child; child_die && child_die->tag;
10975 child_die = child_die->sibling)
10976 {
10977 /* DWARF-4: A Fortran use statement with a “rename list” may be
10978 represented by an imported module entry with an import attribute
10979 referring to the module and owned entries corresponding to those
10980 entities that are renamed as part of being imported. */
10981
10982 if (child_die->tag != DW_TAG_imported_declaration)
10983 {
10984 complaint (_("child DW_TAG_imported_declaration expected "
10985 "- DIE at %s [in module %s]"),
10986 sect_offset_str (child_die->sect_off),
10987 objfile_name (objfile));
10988 continue;
10989 }
10990
10991 import_attr = dwarf2_attr (child_die, DW_AT_import, cu);
10992 if (import_attr == NULL)
10993 {
10994 complaint (_("Tag '%s' has no DW_AT_import"),
10995 dwarf_tag_name (child_die->tag));
10996 continue;
10997 }
10998
10999 imported_cu = cu;
11000 imported_die = follow_die_ref_or_sig (child_die, import_attr,
11001 &imported_cu);
11002 imported_name = dwarf2_name (imported_die, imported_cu);
11003 if (imported_name == NULL)
11004 {
11005 complaint (_("child DW_TAG_imported_declaration has unknown "
11006 "imported name - DIE at %s [in module %s]"),
11007 sect_offset_str (child_die->sect_off),
11008 objfile_name (objfile));
11009 continue;
11010 }
11011
11012 excludes.push_back (imported_name);
11013
11014 process_die (child_die, cu);
11015 }
11016
11017 add_using_directive (using_directives (cu),
11018 import_prefix,
11019 canonical_name,
11020 import_alias,
11021 imported_declaration,
11022 excludes,
11023 0,
11024 &objfile->objfile_obstack);
11025 }
11026
11027 /* ICC<14 does not output the required DW_AT_declaration on incomplete
11028 types, but gives them a size of zero. Starting with version 14,
11029 ICC is compatible with GCC. */
11030
11031 static bool
11032 producer_is_icc_lt_14 (struct dwarf2_cu *cu)
11033 {
11034 if (!cu->checked_producer)
11035 check_producer (cu);
11036
11037 return cu->producer_is_icc_lt_14;
11038 }
11039
11040 /* ICC generates a DW_AT_type for C void functions. This was observed on
11041 ICC 14.0.5.212, and appears to be against the DWARF spec (V5 3.3.2)
11042 which says that void functions should not have a DW_AT_type. */
11043
11044 static bool
11045 producer_is_icc (struct dwarf2_cu *cu)
11046 {
11047 if (!cu->checked_producer)
11048 check_producer (cu);
11049
11050 return cu->producer_is_icc;
11051 }
11052
11053 /* Check for possibly missing DW_AT_comp_dir with relative .debug_line
11054 directory paths. GCC SVN r127613 (new option -fdebug-prefix-map) fixed
11055 this, it was first present in GCC release 4.3.0. */
11056
11057 static bool
11058 producer_is_gcc_lt_4_3 (struct dwarf2_cu *cu)
11059 {
11060 if (!cu->checked_producer)
11061 check_producer (cu);
11062
11063 return cu->producer_is_gcc_lt_4_3;
11064 }
11065
11066 static file_and_directory
11067 find_file_and_directory (struct die_info *die, struct dwarf2_cu *cu)
11068 {
11069 file_and_directory res;
11070
11071 /* Find the filename. Do not use dwarf2_name here, since the filename
11072 is not a source language identifier. */
11073 res.name = dwarf2_string_attr (die, DW_AT_name, cu);
11074 res.comp_dir = dwarf2_string_attr (die, DW_AT_comp_dir, cu);
11075
11076 if (res.comp_dir == NULL
11077 && producer_is_gcc_lt_4_3 (cu) && res.name != NULL
11078 && IS_ABSOLUTE_PATH (res.name))
11079 {
11080 res.comp_dir_storage = ldirname (res.name);
11081 if (!res.comp_dir_storage.empty ())
11082 res.comp_dir = res.comp_dir_storage.c_str ();
11083 }
11084 if (res.comp_dir != NULL)
11085 {
11086 /* Irix 6.2 native cc prepends <machine>.: to the compilation
11087 directory, get rid of it. */
11088 const char *cp = strchr (res.comp_dir, ':');
11089
11090 if (cp && cp != res.comp_dir && cp[-1] == '.' && cp[1] == '/')
11091 res.comp_dir = cp + 1;
11092 }
11093
11094 if (res.name == NULL)
11095 res.name = "<unknown>";
11096
11097 return res;
11098 }
11099
11100 /* Handle DW_AT_stmt_list for a compilation unit.
11101 DIE is the DW_TAG_compile_unit die for CU.
11102 COMP_DIR is the compilation directory. LOWPC is passed to
11103 dwarf_decode_lines. See dwarf_decode_lines comments about it. */
11104
11105 static void
11106 handle_DW_AT_stmt_list (struct die_info *die, struct dwarf2_cu *cu,
11107 const char *comp_dir, CORE_ADDR lowpc) /* ARI: editCase function */
11108 {
11109 dwarf2_per_objfile *per_objfile = cu->per_objfile;
11110 struct attribute *attr;
11111 struct line_header line_header_local;
11112 hashval_t line_header_local_hash;
11113 void **slot;
11114 int decode_mapping;
11115
11116 gdb_assert (! cu->per_cu->is_debug_types);
11117
11118 attr = dwarf2_attr (die, DW_AT_stmt_list, cu);
11119 if (attr == NULL || !attr->form_is_unsigned ())
11120 return;
11121
11122 sect_offset line_offset = (sect_offset) attr->as_unsigned ();
11123
11124 /* The line header hash table is only created if needed (it exists to
11125 prevent redundant reading of the line table for partial_units).
11126 If we're given a partial_unit, we'll need it. If we're given a
11127 compile_unit, then use the line header hash table if it's already
11128 created, but don't create one just yet. */
11129
11130 if (per_objfile->line_header_hash == NULL
11131 && die->tag == DW_TAG_partial_unit)
11132 {
11133 per_objfile->line_header_hash
11134 .reset (htab_create_alloc (127, line_header_hash_voidp,
11135 line_header_eq_voidp,
11136 free_line_header_voidp,
11137 xcalloc, xfree));
11138 }
11139
11140 line_header_local.sect_off = line_offset;
11141 line_header_local.offset_in_dwz = cu->per_cu->is_dwz;
11142 line_header_local_hash = line_header_hash (&line_header_local);
11143 if (per_objfile->line_header_hash != NULL)
11144 {
11145 slot = htab_find_slot_with_hash (per_objfile->line_header_hash.get (),
11146 &line_header_local,
11147 line_header_local_hash, NO_INSERT);
11148
11149 /* For DW_TAG_compile_unit we need info like symtab::linetable which
11150 is not present in *SLOT (since if there is something in *SLOT then
11151 it will be for a partial_unit). */
11152 if (die->tag == DW_TAG_partial_unit && slot != NULL)
11153 {
11154 gdb_assert (*slot != NULL);
11155 cu->line_header = (struct line_header *) *slot;
11156 return;
11157 }
11158 }
11159
11160 /* dwarf_decode_line_header does not yet provide sufficient information.
11161 We always have to call also dwarf_decode_lines for it. */
11162 line_header_up lh = dwarf_decode_line_header (line_offset, cu);
11163 if (lh == NULL)
11164 return;
11165
11166 cu->line_header = lh.release ();
11167 cu->line_header_die_owner = die;
11168
11169 if (per_objfile->line_header_hash == NULL)
11170 slot = NULL;
11171 else
11172 {
11173 slot = htab_find_slot_with_hash (per_objfile->line_header_hash.get (),
11174 &line_header_local,
11175 line_header_local_hash, INSERT);
11176 gdb_assert (slot != NULL);
11177 }
11178 if (slot != NULL && *slot == NULL)
11179 {
11180 /* This newly decoded line number information unit will be owned
11181 by line_header_hash hash table. */
11182 *slot = cu->line_header;
11183 cu->line_header_die_owner = NULL;
11184 }
11185 else
11186 {
11187 /* We cannot free any current entry in (*slot) as that struct line_header
11188 may be already used by multiple CUs. Create only temporary decoded
11189 line_header for this CU - it may happen at most once for each line
11190 number information unit. And if we're not using line_header_hash
11191 then this is what we want as well. */
11192 gdb_assert (die->tag != DW_TAG_partial_unit);
11193 }
11194 decode_mapping = (die->tag != DW_TAG_partial_unit);
11195 dwarf_decode_lines (cu->line_header, comp_dir, cu, NULL, lowpc,
11196 decode_mapping);
11197
11198 }
11199
11200 /* Process DW_TAG_compile_unit or DW_TAG_partial_unit. */
11201
11202 static void
11203 read_file_scope (struct die_info *die, struct dwarf2_cu *cu)
11204 {
11205 dwarf2_per_objfile *per_objfile = cu->per_objfile;
11206 struct objfile *objfile = per_objfile->objfile;
11207 struct gdbarch *gdbarch = objfile->arch ();
11208 CORE_ADDR lowpc = ((CORE_ADDR) -1);
11209 CORE_ADDR highpc = ((CORE_ADDR) 0);
11210 struct attribute *attr;
11211 struct die_info *child_die;
11212 CORE_ADDR baseaddr;
11213
11214 prepare_one_comp_unit (cu, die, cu->language);
11215 baseaddr = objfile->text_section_offset ();
11216
11217 get_scope_pc_bounds (die, &lowpc, &highpc, cu);
11218
11219 /* If we didn't find a lowpc, set it to highpc to avoid complaints
11220 from finish_block. */
11221 if (lowpc == ((CORE_ADDR) -1))
11222 lowpc = highpc;
11223 lowpc = gdbarch_adjust_dwarf2_addr (gdbarch, lowpc + baseaddr);
11224
11225 file_and_directory fnd = find_file_and_directory (die, cu);
11226
11227 /* The XLCL doesn't generate DW_LANG_OpenCL because this attribute is not
11228 standardised yet. As a workaround for the language detection we fall
11229 back to the DW_AT_producer string. */
11230 if (cu->producer && strstr (cu->producer, "IBM XL C for OpenCL") != NULL)
11231 cu->language = language_opencl;
11232
11233 /* Similar hack for Go. */
11234 if (cu->producer && strstr (cu->producer, "GNU Go ") != NULL)
11235 set_cu_language (DW_LANG_Go, cu);
11236
11237 cu->start_symtab (fnd.name, fnd.comp_dir, lowpc);
11238
11239 /* Decode line number information if present. We do this before
11240 processing child DIEs, so that the line header table is available
11241 for DW_AT_decl_file. */
11242 handle_DW_AT_stmt_list (die, cu, fnd.comp_dir, lowpc);
11243
11244 /* Process all dies in compilation unit. */
11245 if (die->child != NULL)
11246 {
11247 child_die = die->child;
11248 while (child_die && child_die->tag)
11249 {
11250 process_die (child_die, cu);
11251 child_die = child_die->sibling;
11252 }
11253 }
11254
11255 /* Decode macro information, if present. Dwarf 2 macro information
11256 refers to information in the line number info statement program
11257 header, so we can only read it if we've read the header
11258 successfully. */
11259 attr = dwarf2_attr (die, DW_AT_macros, cu);
11260 if (attr == NULL)
11261 attr = dwarf2_attr (die, DW_AT_GNU_macros, cu);
11262 if (attr != nullptr && attr->form_is_unsigned () && cu->line_header)
11263 {
11264 if (dwarf2_attr (die, DW_AT_macro_info, cu))
11265 complaint (_("CU refers to both DW_AT_macros and DW_AT_macro_info"));
11266
11267 dwarf_decode_macros (cu, attr->as_unsigned (), 1);
11268 }
11269 else
11270 {
11271 attr = dwarf2_attr (die, DW_AT_macro_info, cu);
11272 if (attr != nullptr && attr->form_is_unsigned () && cu->line_header)
11273 {
11274 unsigned int macro_offset = attr->as_unsigned ();
11275
11276 dwarf_decode_macros (cu, macro_offset, 0);
11277 }
11278 }
11279 }
11280
11281 void
11282 dwarf2_cu::setup_type_unit_groups (struct die_info *die)
11283 {
11284 struct type_unit_group *tu_group;
11285 int first_time;
11286 struct attribute *attr;
11287 unsigned int i;
11288 struct signatured_type *sig_type;
11289
11290 gdb_assert (per_cu->is_debug_types);
11291 sig_type = (struct signatured_type *) per_cu;
11292
11293 attr = dwarf2_attr (die, DW_AT_stmt_list, this);
11294
11295 /* If we're using .gdb_index (includes -readnow) then
11296 per_cu->type_unit_group may not have been set up yet. */
11297 if (sig_type->type_unit_group == NULL)
11298 sig_type->type_unit_group = get_type_unit_group (this, attr);
11299 tu_group = sig_type->type_unit_group;
11300
11301 /* If we've already processed this stmt_list there's no real need to
11302 do it again, we could fake it and just recreate the part we need
11303 (file name,index -> symtab mapping). If data shows this optimization
11304 is useful we can do it then. */
11305 type_unit_group_unshareable *tug_unshare
11306 = per_objfile->get_type_unit_group_unshareable (tu_group);
11307 first_time = tug_unshare->compunit_symtab == NULL;
11308
11309 /* We have to handle the case of both a missing DW_AT_stmt_list or bad
11310 debug info. */
11311 line_header_up lh;
11312 if (attr != NULL && attr->form_is_unsigned ())
11313 {
11314 sect_offset line_offset = (sect_offset) attr->as_unsigned ();
11315 lh = dwarf_decode_line_header (line_offset, this);
11316 }
11317 if (lh == NULL)
11318 {
11319 if (first_time)
11320 start_symtab ("", NULL, 0);
11321 else
11322 {
11323 gdb_assert (tug_unshare->symtabs == NULL);
11324 gdb_assert (m_builder == nullptr);
11325 struct compunit_symtab *cust = tug_unshare->compunit_symtab;
11326 m_builder.reset (new struct buildsym_compunit
11327 (COMPUNIT_OBJFILE (cust), "",
11328 COMPUNIT_DIRNAME (cust),
11329 compunit_language (cust),
11330 0, cust));
11331 list_in_scope = get_builder ()->get_file_symbols ();
11332 }
11333 return;
11334 }
11335
11336 line_header = lh.release ();
11337 line_header_die_owner = die;
11338
11339 if (first_time)
11340 {
11341 struct compunit_symtab *cust = start_symtab ("", NULL, 0);
11342
11343 /* Note: We don't assign tu_group->compunit_symtab yet because we're
11344 still initializing it, and our caller (a few levels up)
11345 process_full_type_unit still needs to know if this is the first
11346 time. */
11347
11348 tug_unshare->symtabs
11349 = XOBNEWVEC (&COMPUNIT_OBJFILE (cust)->objfile_obstack,
11350 struct symtab *, line_header->file_names_size ());
11351
11352 auto &file_names = line_header->file_names ();
11353 for (i = 0; i < file_names.size (); ++i)
11354 {
11355 file_entry &fe = file_names[i];
11356 dwarf2_start_subfile (this, fe.name,
11357 fe.include_dir (line_header));
11358 buildsym_compunit *b = get_builder ();
11359 if (b->get_current_subfile ()->symtab == NULL)
11360 {
11361 /* NOTE: start_subfile will recognize when it's been
11362 passed a file it has already seen. So we can't
11363 assume there's a simple mapping from
11364 cu->line_header->file_names to subfiles, plus
11365 cu->line_header->file_names may contain dups. */
11366 b->get_current_subfile ()->symtab
11367 = allocate_symtab (cust, b->get_current_subfile ()->name);
11368 }
11369
11370 fe.symtab = b->get_current_subfile ()->symtab;
11371 tug_unshare->symtabs[i] = fe.symtab;
11372 }
11373 }
11374 else
11375 {
11376 gdb_assert (m_builder == nullptr);
11377 struct compunit_symtab *cust = tug_unshare->compunit_symtab;
11378 m_builder.reset (new struct buildsym_compunit
11379 (COMPUNIT_OBJFILE (cust), "",
11380 COMPUNIT_DIRNAME (cust),
11381 compunit_language (cust),
11382 0, cust));
11383 list_in_scope = get_builder ()->get_file_symbols ();
11384
11385 auto &file_names = line_header->file_names ();
11386 for (i = 0; i < file_names.size (); ++i)
11387 {
11388 file_entry &fe = file_names[i];
11389 fe.symtab = tug_unshare->symtabs[i];
11390 }
11391 }
11392
11393 /* The main symtab is allocated last. Type units don't have DW_AT_name
11394 so they don't have a "real" (so to speak) symtab anyway.
11395 There is later code that will assign the main symtab to all symbols
11396 that don't have one. We need to handle the case of a symbol with a
11397 missing symtab (DW_AT_decl_file) anyway. */
11398 }
11399
11400 /* Process DW_TAG_type_unit.
11401 For TUs we want to skip the first top level sibling if it's not the
11402 actual type being defined by this TU. In this case the first top
11403 level sibling is there to provide context only. */
11404
11405 static void
11406 read_type_unit_scope (struct die_info *die, struct dwarf2_cu *cu)
11407 {
11408 struct die_info *child_die;
11409
11410 prepare_one_comp_unit (cu, die, language_minimal);
11411
11412 /* Initialize (or reinitialize) the machinery for building symtabs.
11413 We do this before processing child DIEs, so that the line header table
11414 is available for DW_AT_decl_file. */
11415 cu->setup_type_unit_groups (die);
11416
11417 if (die->child != NULL)
11418 {
11419 child_die = die->child;
11420 while (child_die && child_die->tag)
11421 {
11422 process_die (child_die, cu);
11423 child_die = child_die->sibling;
11424 }
11425 }
11426 }
11427 \f
11428 /* DWO/DWP files.
11429
11430 http://gcc.gnu.org/wiki/DebugFission
11431 http://gcc.gnu.org/wiki/DebugFissionDWP
11432
11433 To simplify handling of both DWO files ("object" files with the DWARF info)
11434 and DWP files (a file with the DWOs packaged up into one file), we treat
11435 DWP files as having a collection of virtual DWO files. */
11436
11437 static hashval_t
11438 hash_dwo_file (const void *item)
11439 {
11440 const struct dwo_file *dwo_file = (const struct dwo_file *) item;
11441 hashval_t hash;
11442
11443 hash = htab_hash_string (dwo_file->dwo_name);
11444 if (dwo_file->comp_dir != NULL)
11445 hash += htab_hash_string (dwo_file->comp_dir);
11446 return hash;
11447 }
11448
11449 static int
11450 eq_dwo_file (const void *item_lhs, const void *item_rhs)
11451 {
11452 const struct dwo_file *lhs = (const struct dwo_file *) item_lhs;
11453 const struct dwo_file *rhs = (const struct dwo_file *) item_rhs;
11454
11455 if (strcmp (lhs->dwo_name, rhs->dwo_name) != 0)
11456 return 0;
11457 if (lhs->comp_dir == NULL || rhs->comp_dir == NULL)
11458 return lhs->comp_dir == rhs->comp_dir;
11459 return strcmp (lhs->comp_dir, rhs->comp_dir) == 0;
11460 }
11461
11462 /* Allocate a hash table for DWO files. */
11463
11464 static htab_up
11465 allocate_dwo_file_hash_table ()
11466 {
11467 auto delete_dwo_file = [] (void *item)
11468 {
11469 struct dwo_file *dwo_file = (struct dwo_file *) item;
11470
11471 delete dwo_file;
11472 };
11473
11474 return htab_up (htab_create_alloc (41,
11475 hash_dwo_file,
11476 eq_dwo_file,
11477 delete_dwo_file,
11478 xcalloc, xfree));
11479 }
11480
11481 /* Lookup DWO file DWO_NAME. */
11482
11483 static void **
11484 lookup_dwo_file_slot (dwarf2_per_objfile *per_objfile,
11485 const char *dwo_name,
11486 const char *comp_dir)
11487 {
11488 struct dwo_file find_entry;
11489 void **slot;
11490
11491 if (per_objfile->per_bfd->dwo_files == NULL)
11492 per_objfile->per_bfd->dwo_files = allocate_dwo_file_hash_table ();
11493
11494 find_entry.dwo_name = dwo_name;
11495 find_entry.comp_dir = comp_dir;
11496 slot = htab_find_slot (per_objfile->per_bfd->dwo_files.get (), &find_entry,
11497 INSERT);
11498
11499 return slot;
11500 }
11501
11502 static hashval_t
11503 hash_dwo_unit (const void *item)
11504 {
11505 const struct dwo_unit *dwo_unit = (const struct dwo_unit *) item;
11506
11507 /* This drops the top 32 bits of the id, but is ok for a hash. */
11508 return dwo_unit->signature;
11509 }
11510
11511 static int
11512 eq_dwo_unit (const void *item_lhs, const void *item_rhs)
11513 {
11514 const struct dwo_unit *lhs = (const struct dwo_unit *) item_lhs;
11515 const struct dwo_unit *rhs = (const struct dwo_unit *) item_rhs;
11516
11517 /* The signature is assumed to be unique within the DWO file.
11518 So while object file CU dwo_id's always have the value zero,
11519 that's OK, assuming each object file DWO file has only one CU,
11520 and that's the rule for now. */
11521 return lhs->signature == rhs->signature;
11522 }
11523
11524 /* Allocate a hash table for DWO CUs,TUs.
11525 There is one of these tables for each of CUs,TUs for each DWO file. */
11526
11527 static htab_up
11528 allocate_dwo_unit_table ()
11529 {
11530 /* Start out with a pretty small number.
11531 Generally DWO files contain only one CU and maybe some TUs. */
11532 return htab_up (htab_create_alloc (3,
11533 hash_dwo_unit,
11534 eq_dwo_unit,
11535 NULL, xcalloc, xfree));
11536 }
11537
11538 /* die_reader_func for create_dwo_cu. */
11539
11540 static void
11541 create_dwo_cu_reader (const struct die_reader_specs *reader,
11542 const gdb_byte *info_ptr,
11543 struct die_info *comp_unit_die,
11544 struct dwo_file *dwo_file,
11545 struct dwo_unit *dwo_unit)
11546 {
11547 struct dwarf2_cu *cu = reader->cu;
11548 sect_offset sect_off = cu->per_cu->sect_off;
11549 struct dwarf2_section_info *section = cu->per_cu->section;
11550
11551 gdb::optional<ULONGEST> signature = lookup_dwo_id (cu, comp_unit_die);
11552 if (!signature.has_value ())
11553 {
11554 complaint (_("Dwarf Error: debug entry at offset %s is missing"
11555 " its dwo_id [in module %s]"),
11556 sect_offset_str (sect_off), dwo_file->dwo_name);
11557 return;
11558 }
11559
11560 dwo_unit->dwo_file = dwo_file;
11561 dwo_unit->signature = *signature;
11562 dwo_unit->section = section;
11563 dwo_unit->sect_off = sect_off;
11564 dwo_unit->length = cu->per_cu->length;
11565
11566 dwarf_read_debug_printf (" offset %s, dwo_id %s",
11567 sect_offset_str (sect_off),
11568 hex_string (dwo_unit->signature));
11569 }
11570
11571 /* Create the dwo_units for the CUs in a DWO_FILE.
11572 Note: This function processes DWO files only, not DWP files. */
11573
11574 static void
11575 create_cus_hash_table (dwarf2_per_objfile *per_objfile,
11576 dwarf2_cu *cu, struct dwo_file &dwo_file,
11577 dwarf2_section_info &section, htab_up &cus_htab)
11578 {
11579 struct objfile *objfile = per_objfile->objfile;
11580 dwarf2_per_bfd *per_bfd = per_objfile->per_bfd;
11581 const gdb_byte *info_ptr, *end_ptr;
11582
11583 section.read (objfile);
11584 info_ptr = section.buffer;
11585
11586 if (info_ptr == NULL)
11587 return;
11588
11589 dwarf_read_debug_printf ("Reading %s for %s:",
11590 section.get_name (),
11591 section.get_file_name ());
11592
11593 end_ptr = info_ptr + section.size;
11594 while (info_ptr < end_ptr)
11595 {
11596 struct dwarf2_per_cu_data per_cu;
11597 struct dwo_unit read_unit {};
11598 struct dwo_unit *dwo_unit;
11599 void **slot;
11600 sect_offset sect_off = (sect_offset) (info_ptr - section.buffer);
11601
11602 memset (&per_cu, 0, sizeof (per_cu));
11603 per_cu.per_bfd = per_bfd;
11604 per_cu.is_debug_types = 0;
11605 per_cu.sect_off = sect_offset (info_ptr - section.buffer);
11606 per_cu.section = &section;
11607
11608 cutu_reader reader (&per_cu, per_objfile, cu, &dwo_file);
11609 if (!reader.dummy_p)
11610 create_dwo_cu_reader (&reader, reader.info_ptr, reader.comp_unit_die,
11611 &dwo_file, &read_unit);
11612 info_ptr += per_cu.length;
11613
11614 // If the unit could not be parsed, skip it.
11615 if (read_unit.dwo_file == NULL)
11616 continue;
11617
11618 if (cus_htab == NULL)
11619 cus_htab = allocate_dwo_unit_table ();
11620
11621 dwo_unit = OBSTACK_ZALLOC (&per_bfd->obstack,
11622 struct dwo_unit);
11623 *dwo_unit = read_unit;
11624 slot = htab_find_slot (cus_htab.get (), dwo_unit, INSERT);
11625 gdb_assert (slot != NULL);
11626 if (*slot != NULL)
11627 {
11628 const struct dwo_unit *dup_cu = (const struct dwo_unit *)*slot;
11629 sect_offset dup_sect_off = dup_cu->sect_off;
11630
11631 complaint (_("debug cu entry at offset %s is duplicate to"
11632 " the entry at offset %s, signature %s"),
11633 sect_offset_str (sect_off), sect_offset_str (dup_sect_off),
11634 hex_string (dwo_unit->signature));
11635 }
11636 *slot = (void *)dwo_unit;
11637 }
11638 }
11639
11640 /* DWP file .debug_{cu,tu}_index section format:
11641 [ref: http://gcc.gnu.org/wiki/DebugFissionDWP]
11642 [ref: http://dwarfstd.org/doc/DWARF5.pdf, sect 7.3.5 "DWARF Package Files"]
11643
11644 DWP Versions 1 & 2 are older, pre-standard format versions. The first
11645 officially standard DWP format was published with DWARF v5 and is called
11646 Version 5. There are no versions 3 or 4.
11647
11648 DWP Version 1:
11649
11650 Both index sections have the same format, and serve to map a 64-bit
11651 signature to a set of section numbers. Each section begins with a header,
11652 followed by a hash table of 64-bit signatures, a parallel table of 32-bit
11653 indexes, and a pool of 32-bit section numbers. The index sections will be
11654 aligned at 8-byte boundaries in the file.
11655
11656 The index section header consists of:
11657
11658 V, 32 bit version number
11659 -, 32 bits unused
11660 N, 32 bit number of compilation units or type units in the index
11661 M, 32 bit number of slots in the hash table
11662
11663 Numbers are recorded using the byte order of the application binary.
11664
11665 The hash table begins at offset 16 in the section, and consists of an array
11666 of M 64-bit slots. Each slot contains a 64-bit signature (using the byte
11667 order of the application binary). Unused slots in the hash table are 0.
11668 (We rely on the extreme unlikeliness of a signature being exactly 0.)
11669
11670 The parallel table begins immediately after the hash table
11671 (at offset 16 + 8 * M from the beginning of the section), and consists of an
11672 array of 32-bit indexes (using the byte order of the application binary),
11673 corresponding 1-1 with slots in the hash table. Each entry in the parallel
11674 table contains a 32-bit index into the pool of section numbers. For unused
11675 hash table slots, the corresponding entry in the parallel table will be 0.
11676
11677 The pool of section numbers begins immediately following the hash table
11678 (at offset 16 + 12 * M from the beginning of the section). The pool of
11679 section numbers consists of an array of 32-bit words (using the byte order
11680 of the application binary). Each item in the array is indexed starting
11681 from 0. The hash table entry provides the index of the first section
11682 number in the set. Additional section numbers in the set follow, and the
11683 set is terminated by a 0 entry (section number 0 is not used in ELF).
11684
11685 In each set of section numbers, the .debug_info.dwo or .debug_types.dwo
11686 section must be the first entry in the set, and the .debug_abbrev.dwo must
11687 be the second entry. Other members of the set may follow in any order.
11688
11689 ---
11690
11691 DWP Versions 2 and 5:
11692
11693 DWP Versions 2 and 5 combine all the .debug_info, etc. sections into one,
11694 and the entries in the index tables are now offsets into these sections.
11695 CU offsets begin at 0. TU offsets begin at the size of the .debug_info
11696 section.
11697
11698 Index Section Contents:
11699 Header
11700 Hash Table of Signatures dwp_hash_table.hash_table
11701 Parallel Table of Indices dwp_hash_table.unit_table
11702 Table of Section Offsets dwp_hash_table.{v2|v5}.{section_ids,offsets}
11703 Table of Section Sizes dwp_hash_table.{v2|v5}.sizes
11704
11705 The index section header consists of:
11706
11707 V, 32 bit version number
11708 L, 32 bit number of columns in the table of section offsets
11709 N, 32 bit number of compilation units or type units in the index
11710 M, 32 bit number of slots in the hash table
11711
11712 Numbers are recorded using the byte order of the application binary.
11713
11714 The hash table has the same format as version 1.
11715 The parallel table of indices has the same format as version 1,
11716 except that the entries are origin-1 indices into the table of sections
11717 offsets and the table of section sizes.
11718
11719 The table of offsets begins immediately following the parallel table
11720 (at offset 16 + 12 * M from the beginning of the section). The table is
11721 a two-dimensional array of 32-bit words (using the byte order of the
11722 application binary), with L columns and N+1 rows, in row-major order.
11723 Each row in the array is indexed starting from 0. The first row provides
11724 a key to the remaining rows: each column in this row provides an identifier
11725 for a debug section, and the offsets in the same column of subsequent rows
11726 refer to that section. The section identifiers for Version 2 are:
11727
11728 DW_SECT_INFO 1 .debug_info.dwo
11729 DW_SECT_TYPES 2 .debug_types.dwo
11730 DW_SECT_ABBREV 3 .debug_abbrev.dwo
11731 DW_SECT_LINE 4 .debug_line.dwo
11732 DW_SECT_LOC 5 .debug_loc.dwo
11733 DW_SECT_STR_OFFSETS 6 .debug_str_offsets.dwo
11734 DW_SECT_MACINFO 7 .debug_macinfo.dwo
11735 DW_SECT_MACRO 8 .debug_macro.dwo
11736
11737 The section identifiers for Version 5 are:
11738
11739 DW_SECT_INFO_V5 1 .debug_info.dwo
11740 DW_SECT_RESERVED_V5 2 --
11741 DW_SECT_ABBREV_V5 3 .debug_abbrev.dwo
11742 DW_SECT_LINE_V5 4 .debug_line.dwo
11743 DW_SECT_LOCLISTS_V5 5 .debug_loclists.dwo
11744 DW_SECT_STR_OFFSETS_V5 6 .debug_str_offsets.dwo
11745 DW_SECT_MACRO_V5 7 .debug_macro.dwo
11746 DW_SECT_RNGLISTS_V5 8 .debug_rnglists.dwo
11747
11748 The offsets provided by the CU and TU index sections are the base offsets
11749 for the contributions made by each CU or TU to the corresponding section
11750 in the package file. Each CU and TU header contains an abbrev_offset
11751 field, used to find the abbreviations table for that CU or TU within the
11752 contribution to the .debug_abbrev.dwo section for that CU or TU, and should
11753 be interpreted as relative to the base offset given in the index section.
11754 Likewise, offsets into .debug_line.dwo from DW_AT_stmt_list attributes
11755 should be interpreted as relative to the base offset for .debug_line.dwo,
11756 and offsets into other debug sections obtained from DWARF attributes should
11757 also be interpreted as relative to the corresponding base offset.
11758
11759 The table of sizes begins immediately following the table of offsets.
11760 Like the table of offsets, it is a two-dimensional array of 32-bit words,
11761 with L columns and N rows, in row-major order. Each row in the array is
11762 indexed starting from 1 (row 0 is shared by the two tables).
11763
11764 ---
11765
11766 Hash table lookup is handled the same in version 1 and 2:
11767
11768 We assume that N and M will not exceed 2^32 - 1.
11769 The size of the hash table, M, must be 2^k such that 2^k > 3*N/2.
11770
11771 Given a 64-bit compilation unit signature or a type signature S, an entry
11772 in the hash table is located as follows:
11773
11774 1) Calculate a primary hash H = S & MASK(k), where MASK(k) is a mask with
11775 the low-order k bits all set to 1.
11776
11777 2) Calculate a secondary hash H' = (((S >> 32) & MASK(k)) | 1).
11778
11779 3) If the hash table entry at index H matches the signature, use that
11780 entry. If the hash table entry at index H is unused (all zeroes),
11781 terminate the search: the signature is not present in the table.
11782
11783 4) Let H = (H + H') modulo M. Repeat at Step 3.
11784
11785 Because M > N and H' and M are relatively prime, the search is guaranteed
11786 to stop at an unused slot or find the match. */
11787
11788 /* Create a hash table to map DWO IDs to their CU/TU entry in
11789 .debug_{info,types}.dwo in DWP_FILE.
11790 Returns NULL if there isn't one.
11791 Note: This function processes DWP files only, not DWO files. */
11792
11793 static struct dwp_hash_table *
11794 create_dwp_hash_table (dwarf2_per_objfile *per_objfile,
11795 struct dwp_file *dwp_file, int is_debug_types)
11796 {
11797 struct objfile *objfile = per_objfile->objfile;
11798 bfd *dbfd = dwp_file->dbfd.get ();
11799 const gdb_byte *index_ptr, *index_end;
11800 struct dwarf2_section_info *index;
11801 uint32_t version, nr_columns, nr_units, nr_slots;
11802 struct dwp_hash_table *htab;
11803
11804 if (is_debug_types)
11805 index = &dwp_file->sections.tu_index;
11806 else
11807 index = &dwp_file->sections.cu_index;
11808
11809 if (index->empty ())
11810 return NULL;
11811 index->read (objfile);
11812
11813 index_ptr = index->buffer;
11814 index_end = index_ptr + index->size;
11815
11816 /* For Version 5, the version is really 2 bytes of data & 2 bytes of padding.
11817 For now it's safe to just read 4 bytes (particularly as it's difficult to
11818 tell if you're dealing with Version 5 before you've read the version). */
11819 version = read_4_bytes (dbfd, index_ptr);
11820 index_ptr += 4;
11821 if (version == 2 || version == 5)
11822 nr_columns = read_4_bytes (dbfd, index_ptr);
11823 else
11824 nr_columns = 0;
11825 index_ptr += 4;
11826 nr_units = read_4_bytes (dbfd, index_ptr);
11827 index_ptr += 4;
11828 nr_slots = read_4_bytes (dbfd, index_ptr);
11829 index_ptr += 4;
11830
11831 if (version != 1 && version != 2 && version != 5)
11832 {
11833 error (_("Dwarf Error: unsupported DWP file version (%s)"
11834 " [in module %s]"),
11835 pulongest (version), dwp_file->name);
11836 }
11837 if (nr_slots != (nr_slots & -nr_slots))
11838 {
11839 error (_("Dwarf Error: number of slots in DWP hash table (%s)"
11840 " is not power of 2 [in module %s]"),
11841 pulongest (nr_slots), dwp_file->name);
11842 }
11843
11844 htab = OBSTACK_ZALLOC (&per_objfile->per_bfd->obstack, struct dwp_hash_table);
11845 htab->version = version;
11846 htab->nr_columns = nr_columns;
11847 htab->nr_units = nr_units;
11848 htab->nr_slots = nr_slots;
11849 htab->hash_table = index_ptr;
11850 htab->unit_table = htab->hash_table + sizeof (uint64_t) * nr_slots;
11851
11852 /* Exit early if the table is empty. */
11853 if (nr_slots == 0 || nr_units == 0
11854 || (version == 2 && nr_columns == 0)
11855 || (version == 5 && nr_columns == 0))
11856 {
11857 /* All must be zero. */
11858 if (nr_slots != 0 || nr_units != 0
11859 || (version == 2 && nr_columns != 0)
11860 || (version == 5 && nr_columns != 0))
11861 {
11862 complaint (_("Empty DWP but nr_slots,nr_units,nr_columns not"
11863 " all zero [in modules %s]"),
11864 dwp_file->name);
11865 }
11866 return htab;
11867 }
11868
11869 if (version == 1)
11870 {
11871 htab->section_pool.v1.indices =
11872 htab->unit_table + sizeof (uint32_t) * nr_slots;
11873 /* It's harder to decide whether the section is too small in v1.
11874 V1 is deprecated anyway so we punt. */
11875 }
11876 else if (version == 2)
11877 {
11878 const gdb_byte *ids_ptr = htab->unit_table + sizeof (uint32_t) * nr_slots;
11879 int *ids = htab->section_pool.v2.section_ids;
11880 size_t sizeof_ids = sizeof (htab->section_pool.v2.section_ids);
11881 /* Reverse map for error checking. */
11882 int ids_seen[DW_SECT_MAX + 1];
11883 int i;
11884
11885 if (nr_columns < 2)
11886 {
11887 error (_("Dwarf Error: bad DWP hash table, too few columns"
11888 " in section table [in module %s]"),
11889 dwp_file->name);
11890 }
11891 if (nr_columns > MAX_NR_V2_DWO_SECTIONS)
11892 {
11893 error (_("Dwarf Error: bad DWP hash table, too many columns"
11894 " in section table [in module %s]"),
11895 dwp_file->name);
11896 }
11897 memset (ids, 255, sizeof_ids);
11898 memset (ids_seen, 255, sizeof (ids_seen));
11899 for (i = 0; i < nr_columns; ++i)
11900 {
11901 int id = read_4_bytes (dbfd, ids_ptr + i * sizeof (uint32_t));
11902
11903 if (id < DW_SECT_MIN || id > DW_SECT_MAX)
11904 {
11905 error (_("Dwarf Error: bad DWP hash table, bad section id %d"
11906 " in section table [in module %s]"),
11907 id, dwp_file->name);
11908 }
11909 if (ids_seen[id] != -1)
11910 {
11911 error (_("Dwarf Error: bad DWP hash table, duplicate section"
11912 " id %d in section table [in module %s]"),
11913 id, dwp_file->name);
11914 }
11915 ids_seen[id] = i;
11916 ids[i] = id;
11917 }
11918 /* Must have exactly one info or types section. */
11919 if (((ids_seen[DW_SECT_INFO] != -1)
11920 + (ids_seen[DW_SECT_TYPES] != -1))
11921 != 1)
11922 {
11923 error (_("Dwarf Error: bad DWP hash table, missing/duplicate"
11924 " DWO info/types section [in module %s]"),
11925 dwp_file->name);
11926 }
11927 /* Must have an abbrev section. */
11928 if (ids_seen[DW_SECT_ABBREV] == -1)
11929 {
11930 error (_("Dwarf Error: bad DWP hash table, missing DWO abbrev"
11931 " section [in module %s]"),
11932 dwp_file->name);
11933 }
11934 htab->section_pool.v2.offsets = ids_ptr + sizeof (uint32_t) * nr_columns;
11935 htab->section_pool.v2.sizes =
11936 htab->section_pool.v2.offsets + (sizeof (uint32_t)
11937 * nr_units * nr_columns);
11938 if ((htab->section_pool.v2.sizes + (sizeof (uint32_t)
11939 * nr_units * nr_columns))
11940 > index_end)
11941 {
11942 error (_("Dwarf Error: DWP index section is corrupt (too small)"
11943 " [in module %s]"),
11944 dwp_file->name);
11945 }
11946 }
11947 else /* version == 5 */
11948 {
11949 const gdb_byte *ids_ptr = htab->unit_table + sizeof (uint32_t) * nr_slots;
11950 int *ids = htab->section_pool.v5.section_ids;
11951 size_t sizeof_ids = sizeof (htab->section_pool.v5.section_ids);
11952 /* Reverse map for error checking. */
11953 int ids_seen[DW_SECT_MAX_V5 + 1];
11954
11955 if (nr_columns < 2)
11956 {
11957 error (_("Dwarf Error: bad DWP hash table, too few columns"
11958 " in section table [in module %s]"),
11959 dwp_file->name);
11960 }
11961 if (nr_columns > MAX_NR_V5_DWO_SECTIONS)
11962 {
11963 error (_("Dwarf Error: bad DWP hash table, too many columns"
11964 " in section table [in module %s]"),
11965 dwp_file->name);
11966 }
11967 memset (ids, 255, sizeof_ids);
11968 memset (ids_seen, 255, sizeof (ids_seen));
11969 for (int i = 0; i < nr_columns; ++i)
11970 {
11971 int id = read_4_bytes (dbfd, ids_ptr + i * sizeof (uint32_t));
11972
11973 if (id < DW_SECT_MIN || id > DW_SECT_MAX_V5)
11974 {
11975 error (_("Dwarf Error: bad DWP hash table, bad section id %d"
11976 " in section table [in module %s]"),
11977 id, dwp_file->name);
11978 }
11979 if (ids_seen[id] != -1)
11980 {
11981 error (_("Dwarf Error: bad DWP hash table, duplicate section"
11982 " id %d in section table [in module %s]"),
11983 id, dwp_file->name);
11984 }
11985 ids_seen[id] = i;
11986 ids[i] = id;
11987 }
11988 /* Must have seen an info section. */
11989 if (ids_seen[DW_SECT_INFO_V5] == -1)
11990 {
11991 error (_("Dwarf Error: bad DWP hash table, missing/duplicate"
11992 " DWO info/types section [in module %s]"),
11993 dwp_file->name);
11994 }
11995 /* Must have an abbrev section. */
11996 if (ids_seen[DW_SECT_ABBREV_V5] == -1)
11997 {
11998 error (_("Dwarf Error: bad DWP hash table, missing DWO abbrev"
11999 " section [in module %s]"),
12000 dwp_file->name);
12001 }
12002 htab->section_pool.v5.offsets = ids_ptr + sizeof (uint32_t) * nr_columns;
12003 htab->section_pool.v5.sizes
12004 = htab->section_pool.v5.offsets + (sizeof (uint32_t)
12005 * nr_units * nr_columns);
12006 if ((htab->section_pool.v5.sizes + (sizeof (uint32_t)
12007 * nr_units * nr_columns))
12008 > index_end)
12009 {
12010 error (_("Dwarf Error: DWP index section is corrupt (too small)"
12011 " [in module %s]"),
12012 dwp_file->name);
12013 }
12014 }
12015
12016 return htab;
12017 }
12018
12019 /* Update SECTIONS with the data from SECTP.
12020
12021 This function is like the other "locate" section routines, but in
12022 this context the sections to read comes from the DWP V1 hash table,
12023 not the full ELF section table.
12024
12025 The result is non-zero for success, or zero if an error was found. */
12026
12027 static int
12028 locate_v1_virtual_dwo_sections (asection *sectp,
12029 struct virtual_v1_dwo_sections *sections)
12030 {
12031 const struct dwop_section_names *names = &dwop_section_names;
12032
12033 if (section_is_p (sectp->name, &names->abbrev_dwo))
12034 {
12035 /* There can be only one. */
12036 if (sections->abbrev.s.section != NULL)
12037 return 0;
12038 sections->abbrev.s.section = sectp;
12039 sections->abbrev.size = bfd_section_size (sectp);
12040 }
12041 else if (section_is_p (sectp->name, &names->info_dwo)
12042 || section_is_p (sectp->name, &names->types_dwo))
12043 {
12044 /* There can be only one. */
12045 if (sections->info_or_types.s.section != NULL)
12046 return 0;
12047 sections->info_or_types.s.section = sectp;
12048 sections->info_or_types.size = bfd_section_size (sectp);
12049 }
12050 else if (section_is_p (sectp->name, &names->line_dwo))
12051 {
12052 /* There can be only one. */
12053 if (sections->line.s.section != NULL)
12054 return 0;
12055 sections->line.s.section = sectp;
12056 sections->line.size = bfd_section_size (sectp);
12057 }
12058 else if (section_is_p (sectp->name, &names->loc_dwo))
12059 {
12060 /* There can be only one. */
12061 if (sections->loc.s.section != NULL)
12062 return 0;
12063 sections->loc.s.section = sectp;
12064 sections->loc.size = bfd_section_size (sectp);
12065 }
12066 else if (section_is_p (sectp->name, &names->macinfo_dwo))
12067 {
12068 /* There can be only one. */
12069 if (sections->macinfo.s.section != NULL)
12070 return 0;
12071 sections->macinfo.s.section = sectp;
12072 sections->macinfo.size = bfd_section_size (sectp);
12073 }
12074 else if (section_is_p (sectp->name, &names->macro_dwo))
12075 {
12076 /* There can be only one. */
12077 if (sections->macro.s.section != NULL)
12078 return 0;
12079 sections->macro.s.section = sectp;
12080 sections->macro.size = bfd_section_size (sectp);
12081 }
12082 else if (section_is_p (sectp->name, &names->str_offsets_dwo))
12083 {
12084 /* There can be only one. */
12085 if (sections->str_offsets.s.section != NULL)
12086 return 0;
12087 sections->str_offsets.s.section = sectp;
12088 sections->str_offsets.size = bfd_section_size (sectp);
12089 }
12090 else
12091 {
12092 /* No other kind of section is valid. */
12093 return 0;
12094 }
12095
12096 return 1;
12097 }
12098
12099 /* Create a dwo_unit object for the DWO unit with signature SIGNATURE.
12100 UNIT_INDEX is the index of the DWO unit in the DWP hash table.
12101 COMP_DIR is the DW_AT_comp_dir attribute of the referencing CU.
12102 This is for DWP version 1 files. */
12103
12104 static struct dwo_unit *
12105 create_dwo_unit_in_dwp_v1 (dwarf2_per_objfile *per_objfile,
12106 struct dwp_file *dwp_file,
12107 uint32_t unit_index,
12108 const char *comp_dir,
12109 ULONGEST signature, int is_debug_types)
12110 {
12111 const struct dwp_hash_table *dwp_htab =
12112 is_debug_types ? dwp_file->tus : dwp_file->cus;
12113 bfd *dbfd = dwp_file->dbfd.get ();
12114 const char *kind = is_debug_types ? "TU" : "CU";
12115 struct dwo_file *dwo_file;
12116 struct dwo_unit *dwo_unit;
12117 struct virtual_v1_dwo_sections sections;
12118 void **dwo_file_slot;
12119 int i;
12120
12121 gdb_assert (dwp_file->version == 1);
12122
12123 dwarf_read_debug_printf ("Reading %s %s/%s in DWP V1 file: %s",
12124 kind, pulongest (unit_index), hex_string (signature),
12125 dwp_file->name);
12126
12127 /* Fetch the sections of this DWO unit.
12128 Put a limit on the number of sections we look for so that bad data
12129 doesn't cause us to loop forever. */
12130
12131 #define MAX_NR_V1_DWO_SECTIONS \
12132 (1 /* .debug_info or .debug_types */ \
12133 + 1 /* .debug_abbrev */ \
12134 + 1 /* .debug_line */ \
12135 + 1 /* .debug_loc */ \
12136 + 1 /* .debug_str_offsets */ \
12137 + 1 /* .debug_macro or .debug_macinfo */ \
12138 + 1 /* trailing zero */)
12139
12140 memset (&sections, 0, sizeof (sections));
12141
12142 for (i = 0; i < MAX_NR_V1_DWO_SECTIONS; ++i)
12143 {
12144 asection *sectp;
12145 uint32_t section_nr =
12146 read_4_bytes (dbfd,
12147 dwp_htab->section_pool.v1.indices
12148 + (unit_index + i) * sizeof (uint32_t));
12149
12150 if (section_nr == 0)
12151 break;
12152 if (section_nr >= dwp_file->num_sections)
12153 {
12154 error (_("Dwarf Error: bad DWP hash table, section number too large"
12155 " [in module %s]"),
12156 dwp_file->name);
12157 }
12158
12159 sectp = dwp_file->elf_sections[section_nr];
12160 if (! locate_v1_virtual_dwo_sections (sectp, &sections))
12161 {
12162 error (_("Dwarf Error: bad DWP hash table, invalid section found"
12163 " [in module %s]"),
12164 dwp_file->name);
12165 }
12166 }
12167
12168 if (i < 2
12169 || sections.info_or_types.empty ()
12170 || sections.abbrev.empty ())
12171 {
12172 error (_("Dwarf Error: bad DWP hash table, missing DWO sections"
12173 " [in module %s]"),
12174 dwp_file->name);
12175 }
12176 if (i == MAX_NR_V1_DWO_SECTIONS)
12177 {
12178 error (_("Dwarf Error: bad DWP hash table, too many DWO sections"
12179 " [in module %s]"),
12180 dwp_file->name);
12181 }
12182
12183 /* It's easier for the rest of the code if we fake a struct dwo_file and
12184 have dwo_unit "live" in that. At least for now.
12185
12186 The DWP file can be made up of a random collection of CUs and TUs.
12187 However, for each CU + set of TUs that came from the same original DWO
12188 file, we can combine them back into a virtual DWO file to save space
12189 (fewer struct dwo_file objects to allocate). Remember that for really
12190 large apps there can be on the order of 8K CUs and 200K TUs, or more. */
12191
12192 std::string virtual_dwo_name =
12193 string_printf ("virtual-dwo/%d-%d-%d-%d",
12194 sections.abbrev.get_id (),
12195 sections.line.get_id (),
12196 sections.loc.get_id (),
12197 sections.str_offsets.get_id ());
12198 /* Can we use an existing virtual DWO file? */
12199 dwo_file_slot = lookup_dwo_file_slot (per_objfile, virtual_dwo_name.c_str (),
12200 comp_dir);
12201 /* Create one if necessary. */
12202 if (*dwo_file_slot == NULL)
12203 {
12204 dwarf_read_debug_printf ("Creating virtual DWO: %s",
12205 virtual_dwo_name.c_str ());
12206
12207 dwo_file = new struct dwo_file;
12208 dwo_file->dwo_name = per_objfile->objfile->intern (virtual_dwo_name);
12209 dwo_file->comp_dir = comp_dir;
12210 dwo_file->sections.abbrev = sections.abbrev;
12211 dwo_file->sections.line = sections.line;
12212 dwo_file->sections.loc = sections.loc;
12213 dwo_file->sections.macinfo = sections.macinfo;
12214 dwo_file->sections.macro = sections.macro;
12215 dwo_file->sections.str_offsets = sections.str_offsets;
12216 /* The "str" section is global to the entire DWP file. */
12217 dwo_file->sections.str = dwp_file->sections.str;
12218 /* The info or types section is assigned below to dwo_unit,
12219 there's no need to record it in dwo_file.
12220 Also, we can't simply record type sections in dwo_file because
12221 we record a pointer into the vector in dwo_unit. As we collect more
12222 types we'll grow the vector and eventually have to reallocate space
12223 for it, invalidating all copies of pointers into the previous
12224 contents. */
12225 *dwo_file_slot = dwo_file;
12226 }
12227 else
12228 {
12229 dwarf_read_debug_printf ("Using existing virtual DWO: %s",
12230 virtual_dwo_name.c_str ());
12231
12232 dwo_file = (struct dwo_file *) *dwo_file_slot;
12233 }
12234
12235 dwo_unit = OBSTACK_ZALLOC (&per_objfile->per_bfd->obstack, struct dwo_unit);
12236 dwo_unit->dwo_file = dwo_file;
12237 dwo_unit->signature = signature;
12238 dwo_unit->section =
12239 XOBNEW (&per_objfile->per_bfd->obstack, struct dwarf2_section_info);
12240 *dwo_unit->section = sections.info_or_types;
12241 /* dwo_unit->{offset,length,type_offset_in_tu} are set later. */
12242
12243 return dwo_unit;
12244 }
12245
12246 /* Subroutine of create_dwo_unit_in_dwp_v2 and create_dwo_unit_in_dwp_v5 to
12247 simplify them. Given a pointer to the containing section SECTION, and
12248 OFFSET,SIZE of the piece within that section used by a TU/CU, return a
12249 virtual section of just that piece. */
12250
12251 static struct dwarf2_section_info
12252 create_dwp_v2_or_v5_section (dwarf2_per_objfile *per_objfile,
12253 struct dwarf2_section_info *section,
12254 bfd_size_type offset, bfd_size_type size)
12255 {
12256 struct dwarf2_section_info result;
12257 asection *sectp;
12258
12259 gdb_assert (section != NULL);
12260 gdb_assert (!section->is_virtual);
12261
12262 memset (&result, 0, sizeof (result));
12263 result.s.containing_section = section;
12264 result.is_virtual = true;
12265
12266 if (size == 0)
12267 return result;
12268
12269 sectp = section->get_bfd_section ();
12270
12271 /* Flag an error if the piece denoted by OFFSET,SIZE is outside the
12272 bounds of the real section. This is a pretty-rare event, so just
12273 flag an error (easier) instead of a warning and trying to cope. */
12274 if (sectp == NULL
12275 || offset + size > bfd_section_size (sectp))
12276 {
12277 error (_("Dwarf Error: Bad DWP V2 or V5 section info, doesn't fit"
12278 " in section %s [in module %s]"),
12279 sectp ? bfd_section_name (sectp) : "<unknown>",
12280 objfile_name (per_objfile->objfile));
12281 }
12282
12283 result.virtual_offset = offset;
12284 result.size = size;
12285 return result;
12286 }
12287
12288 /* Create a dwo_unit object for the DWO unit with signature SIGNATURE.
12289 UNIT_INDEX is the index of the DWO unit in the DWP hash table.
12290 COMP_DIR is the DW_AT_comp_dir attribute of the referencing CU.
12291 This is for DWP version 2 files. */
12292
12293 static struct dwo_unit *
12294 create_dwo_unit_in_dwp_v2 (dwarf2_per_objfile *per_objfile,
12295 struct dwp_file *dwp_file,
12296 uint32_t unit_index,
12297 const char *comp_dir,
12298 ULONGEST signature, int is_debug_types)
12299 {
12300 const struct dwp_hash_table *dwp_htab =
12301 is_debug_types ? dwp_file->tus : dwp_file->cus;
12302 bfd *dbfd = dwp_file->dbfd.get ();
12303 const char *kind = is_debug_types ? "TU" : "CU";
12304 struct dwo_file *dwo_file;
12305 struct dwo_unit *dwo_unit;
12306 struct virtual_v2_or_v5_dwo_sections sections;
12307 void **dwo_file_slot;
12308 int i;
12309
12310 gdb_assert (dwp_file->version == 2);
12311
12312 dwarf_read_debug_printf ("Reading %s %s/%s in DWP V2 file: %s",
12313 kind, pulongest (unit_index), hex_string (signature),
12314 dwp_file->name);
12315
12316 /* Fetch the section offsets of this DWO unit. */
12317
12318 memset (&sections, 0, sizeof (sections));
12319
12320 for (i = 0; i < dwp_htab->nr_columns; ++i)
12321 {
12322 uint32_t offset = read_4_bytes (dbfd,
12323 dwp_htab->section_pool.v2.offsets
12324 + (((unit_index - 1) * dwp_htab->nr_columns
12325 + i)
12326 * sizeof (uint32_t)));
12327 uint32_t size = read_4_bytes (dbfd,
12328 dwp_htab->section_pool.v2.sizes
12329 + (((unit_index - 1) * dwp_htab->nr_columns
12330 + i)
12331 * sizeof (uint32_t)));
12332
12333 switch (dwp_htab->section_pool.v2.section_ids[i])
12334 {
12335 case DW_SECT_INFO:
12336 case DW_SECT_TYPES:
12337 sections.info_or_types_offset = offset;
12338 sections.info_or_types_size = size;
12339 break;
12340 case DW_SECT_ABBREV:
12341 sections.abbrev_offset = offset;
12342 sections.abbrev_size = size;
12343 break;
12344 case DW_SECT_LINE:
12345 sections.line_offset = offset;
12346 sections.line_size = size;
12347 break;
12348 case DW_SECT_LOC:
12349 sections.loc_offset = offset;
12350 sections.loc_size = size;
12351 break;
12352 case DW_SECT_STR_OFFSETS:
12353 sections.str_offsets_offset = offset;
12354 sections.str_offsets_size = size;
12355 break;
12356 case DW_SECT_MACINFO:
12357 sections.macinfo_offset = offset;
12358 sections.macinfo_size = size;
12359 break;
12360 case DW_SECT_MACRO:
12361 sections.macro_offset = offset;
12362 sections.macro_size = size;
12363 break;
12364 }
12365 }
12366
12367 /* It's easier for the rest of the code if we fake a struct dwo_file and
12368 have dwo_unit "live" in that. At least for now.
12369
12370 The DWP file can be made up of a random collection of CUs and TUs.
12371 However, for each CU + set of TUs that came from the same original DWO
12372 file, we can combine them back into a virtual DWO file to save space
12373 (fewer struct dwo_file objects to allocate). Remember that for really
12374 large apps there can be on the order of 8K CUs and 200K TUs, or more. */
12375
12376 std::string virtual_dwo_name =
12377 string_printf ("virtual-dwo/%ld-%ld-%ld-%ld",
12378 (long) (sections.abbrev_size ? sections.abbrev_offset : 0),
12379 (long) (sections.line_size ? sections.line_offset : 0),
12380 (long) (sections.loc_size ? sections.loc_offset : 0),
12381 (long) (sections.str_offsets_size
12382 ? sections.str_offsets_offset : 0));
12383 /* Can we use an existing virtual DWO file? */
12384 dwo_file_slot = lookup_dwo_file_slot (per_objfile, virtual_dwo_name.c_str (),
12385 comp_dir);
12386 /* Create one if necessary. */
12387 if (*dwo_file_slot == NULL)
12388 {
12389 dwarf_read_debug_printf ("Creating virtual DWO: %s",
12390 virtual_dwo_name.c_str ());
12391
12392 dwo_file = new struct dwo_file;
12393 dwo_file->dwo_name = per_objfile->objfile->intern (virtual_dwo_name);
12394 dwo_file->comp_dir = comp_dir;
12395 dwo_file->sections.abbrev =
12396 create_dwp_v2_or_v5_section (per_objfile, &dwp_file->sections.abbrev,
12397 sections.abbrev_offset,
12398 sections.abbrev_size);
12399 dwo_file->sections.line =
12400 create_dwp_v2_or_v5_section (per_objfile, &dwp_file->sections.line,
12401 sections.line_offset,
12402 sections.line_size);
12403 dwo_file->sections.loc =
12404 create_dwp_v2_or_v5_section (per_objfile, &dwp_file->sections.loc,
12405 sections.loc_offset, sections.loc_size);
12406 dwo_file->sections.macinfo =
12407 create_dwp_v2_or_v5_section (per_objfile, &dwp_file->sections.macinfo,
12408 sections.macinfo_offset,
12409 sections.macinfo_size);
12410 dwo_file->sections.macro =
12411 create_dwp_v2_or_v5_section (per_objfile, &dwp_file->sections.macro,
12412 sections.macro_offset,
12413 sections.macro_size);
12414 dwo_file->sections.str_offsets =
12415 create_dwp_v2_or_v5_section (per_objfile,
12416 &dwp_file->sections.str_offsets,
12417 sections.str_offsets_offset,
12418 sections.str_offsets_size);
12419 /* The "str" section is global to the entire DWP file. */
12420 dwo_file->sections.str = dwp_file->sections.str;
12421 /* The info or types section is assigned below to dwo_unit,
12422 there's no need to record it in dwo_file.
12423 Also, we can't simply record type sections in dwo_file because
12424 we record a pointer into the vector in dwo_unit. As we collect more
12425 types we'll grow the vector and eventually have to reallocate space
12426 for it, invalidating all copies of pointers into the previous
12427 contents. */
12428 *dwo_file_slot = dwo_file;
12429 }
12430 else
12431 {
12432 dwarf_read_debug_printf ("Using existing virtual DWO: %s",
12433 virtual_dwo_name.c_str ());
12434
12435 dwo_file = (struct dwo_file *) *dwo_file_slot;
12436 }
12437
12438 dwo_unit = OBSTACK_ZALLOC (&per_objfile->per_bfd->obstack, struct dwo_unit);
12439 dwo_unit->dwo_file = dwo_file;
12440 dwo_unit->signature = signature;
12441 dwo_unit->section =
12442 XOBNEW (&per_objfile->per_bfd->obstack, struct dwarf2_section_info);
12443 *dwo_unit->section = create_dwp_v2_or_v5_section
12444 (per_objfile,
12445 is_debug_types
12446 ? &dwp_file->sections.types
12447 : &dwp_file->sections.info,
12448 sections.info_or_types_offset,
12449 sections.info_or_types_size);
12450 /* dwo_unit->{offset,length,type_offset_in_tu} are set later. */
12451
12452 return dwo_unit;
12453 }
12454
12455 /* Create a dwo_unit object for the DWO unit with signature SIGNATURE.
12456 UNIT_INDEX is the index of the DWO unit in the DWP hash table.
12457 COMP_DIR is the DW_AT_comp_dir attribute of the referencing CU.
12458 This is for DWP version 5 files. */
12459
12460 static struct dwo_unit *
12461 create_dwo_unit_in_dwp_v5 (dwarf2_per_objfile *per_objfile,
12462 struct dwp_file *dwp_file,
12463 uint32_t unit_index,
12464 const char *comp_dir,
12465 ULONGEST signature, int is_debug_types)
12466 {
12467 const struct dwp_hash_table *dwp_htab
12468 = is_debug_types ? dwp_file->tus : dwp_file->cus;
12469 bfd *dbfd = dwp_file->dbfd.get ();
12470 const char *kind = is_debug_types ? "TU" : "CU";
12471 struct dwo_file *dwo_file;
12472 struct dwo_unit *dwo_unit;
12473 struct virtual_v2_or_v5_dwo_sections sections {};
12474 void **dwo_file_slot;
12475
12476 gdb_assert (dwp_file->version == 5);
12477
12478 dwarf_read_debug_printf ("Reading %s %s/%s in DWP V5 file: %s",
12479 kind, pulongest (unit_index), hex_string (signature),
12480 dwp_file->name);
12481
12482 /* Fetch the section offsets of this DWO unit. */
12483
12484 /* memset (&sections, 0, sizeof (sections)); */
12485
12486 for (int i = 0; i < dwp_htab->nr_columns; ++i)
12487 {
12488 uint32_t offset = read_4_bytes (dbfd,
12489 dwp_htab->section_pool.v5.offsets
12490 + (((unit_index - 1)
12491 * dwp_htab->nr_columns
12492 + i)
12493 * sizeof (uint32_t)));
12494 uint32_t size = read_4_bytes (dbfd,
12495 dwp_htab->section_pool.v5.sizes
12496 + (((unit_index - 1) * dwp_htab->nr_columns
12497 + i)
12498 * sizeof (uint32_t)));
12499
12500 switch (dwp_htab->section_pool.v5.section_ids[i])
12501 {
12502 case DW_SECT_ABBREV_V5:
12503 sections.abbrev_offset = offset;
12504 sections.abbrev_size = size;
12505 break;
12506 case DW_SECT_INFO_V5:
12507 sections.info_or_types_offset = offset;
12508 sections.info_or_types_size = size;
12509 break;
12510 case DW_SECT_LINE_V5:
12511 sections.line_offset = offset;
12512 sections.line_size = size;
12513 break;
12514 case DW_SECT_LOCLISTS_V5:
12515 sections.loclists_offset = offset;
12516 sections.loclists_size = size;
12517 break;
12518 case DW_SECT_MACRO_V5:
12519 sections.macro_offset = offset;
12520 sections.macro_size = size;
12521 break;
12522 case DW_SECT_RNGLISTS_V5:
12523 sections.rnglists_offset = offset;
12524 sections.rnglists_size = size;
12525 break;
12526 case DW_SECT_STR_OFFSETS_V5:
12527 sections.str_offsets_offset = offset;
12528 sections.str_offsets_size = size;
12529 break;
12530 case DW_SECT_RESERVED_V5:
12531 default:
12532 break;
12533 }
12534 }
12535
12536 /* It's easier for the rest of the code if we fake a struct dwo_file and
12537 have dwo_unit "live" in that. At least for now.
12538
12539 The DWP file can be made up of a random collection of CUs and TUs.
12540 However, for each CU + set of TUs that came from the same original DWO
12541 file, we can combine them back into a virtual DWO file to save space
12542 (fewer struct dwo_file objects to allocate). Remember that for really
12543 large apps there can be on the order of 8K CUs and 200K TUs, or more. */
12544
12545 std::string virtual_dwo_name =
12546 string_printf ("virtual-dwo/%ld-%ld-%ld-%ld-%ld-%ld",
12547 (long) (sections.abbrev_size ? sections.abbrev_offset : 0),
12548 (long) (sections.line_size ? sections.line_offset : 0),
12549 (long) (sections.loclists_size ? sections.loclists_offset : 0),
12550 (long) (sections.str_offsets_size
12551 ? sections.str_offsets_offset : 0),
12552 (long) (sections.macro_size ? sections.macro_offset : 0),
12553 (long) (sections.rnglists_size ? sections.rnglists_offset: 0));
12554 /* Can we use an existing virtual DWO file? */
12555 dwo_file_slot = lookup_dwo_file_slot (per_objfile,
12556 virtual_dwo_name.c_str (),
12557 comp_dir);
12558 /* Create one if necessary. */
12559 if (*dwo_file_slot == NULL)
12560 {
12561 dwarf_read_debug_printf ("Creating virtual DWO: %s",
12562 virtual_dwo_name.c_str ());
12563
12564 dwo_file = new struct dwo_file;
12565 dwo_file->dwo_name = per_objfile->objfile->intern (virtual_dwo_name);
12566 dwo_file->comp_dir = comp_dir;
12567 dwo_file->sections.abbrev =
12568 create_dwp_v2_or_v5_section (per_objfile,
12569 &dwp_file->sections.abbrev,
12570 sections.abbrev_offset,
12571 sections.abbrev_size);
12572 dwo_file->sections.line =
12573 create_dwp_v2_or_v5_section (per_objfile,
12574 &dwp_file->sections.line,
12575 sections.line_offset, sections.line_size);
12576 dwo_file->sections.macro =
12577 create_dwp_v2_or_v5_section (per_objfile,
12578 &dwp_file->sections.macro,
12579 sections.macro_offset,
12580 sections.macro_size);
12581 dwo_file->sections.loclists =
12582 create_dwp_v2_or_v5_section (per_objfile,
12583 &dwp_file->sections.loclists,
12584 sections.loclists_offset,
12585 sections.loclists_size);
12586 dwo_file->sections.rnglists =
12587 create_dwp_v2_or_v5_section (per_objfile,
12588 &dwp_file->sections.rnglists,
12589 sections.rnglists_offset,
12590 sections.rnglists_size);
12591 dwo_file->sections.str_offsets =
12592 create_dwp_v2_or_v5_section (per_objfile,
12593 &dwp_file->sections.str_offsets,
12594 sections.str_offsets_offset,
12595 sections.str_offsets_size);
12596 /* The "str" section is global to the entire DWP file. */
12597 dwo_file->sections.str = dwp_file->sections.str;
12598 /* The info or types section is assigned below to dwo_unit,
12599 there's no need to record it in dwo_file.
12600 Also, we can't simply record type sections in dwo_file because
12601 we record a pointer into the vector in dwo_unit. As we collect more
12602 types we'll grow the vector and eventually have to reallocate space
12603 for it, invalidating all copies of pointers into the previous
12604 contents. */
12605 *dwo_file_slot = dwo_file;
12606 }
12607 else
12608 {
12609 dwarf_read_debug_printf ("Using existing virtual DWO: %s",
12610 virtual_dwo_name.c_str ());
12611
12612 dwo_file = (struct dwo_file *) *dwo_file_slot;
12613 }
12614
12615 dwo_unit = OBSTACK_ZALLOC (&per_objfile->per_bfd->obstack, struct dwo_unit);
12616 dwo_unit->dwo_file = dwo_file;
12617 dwo_unit->signature = signature;
12618 dwo_unit->section
12619 = XOBNEW (&per_objfile->per_bfd->obstack, struct dwarf2_section_info);
12620 *dwo_unit->section = create_dwp_v2_or_v5_section (per_objfile,
12621 &dwp_file->sections.info,
12622 sections.info_or_types_offset,
12623 sections.info_or_types_size);
12624 /* dwo_unit->{offset,length,type_offset_in_tu} are set later. */
12625
12626 return dwo_unit;
12627 }
12628
12629 /* Lookup the DWO unit with SIGNATURE in DWP_FILE.
12630 Returns NULL if the signature isn't found. */
12631
12632 static struct dwo_unit *
12633 lookup_dwo_unit_in_dwp (dwarf2_per_objfile *per_objfile,
12634 struct dwp_file *dwp_file, const char *comp_dir,
12635 ULONGEST signature, int is_debug_types)
12636 {
12637 const struct dwp_hash_table *dwp_htab =
12638 is_debug_types ? dwp_file->tus : dwp_file->cus;
12639 bfd *dbfd = dwp_file->dbfd.get ();
12640 uint32_t mask = dwp_htab->nr_slots - 1;
12641 uint32_t hash = signature & mask;
12642 uint32_t hash2 = ((signature >> 32) & mask) | 1;
12643 unsigned int i;
12644 void **slot;
12645 struct dwo_unit find_dwo_cu;
12646
12647 memset (&find_dwo_cu, 0, sizeof (find_dwo_cu));
12648 find_dwo_cu.signature = signature;
12649 slot = htab_find_slot (is_debug_types
12650 ? dwp_file->loaded_tus.get ()
12651 : dwp_file->loaded_cus.get (),
12652 &find_dwo_cu, INSERT);
12653
12654 if (*slot != NULL)
12655 return (struct dwo_unit *) *slot;
12656
12657 /* Use a for loop so that we don't loop forever on bad debug info. */
12658 for (i = 0; i < dwp_htab->nr_slots; ++i)
12659 {
12660 ULONGEST signature_in_table;
12661
12662 signature_in_table =
12663 read_8_bytes (dbfd, dwp_htab->hash_table + hash * sizeof (uint64_t));
12664 if (signature_in_table == signature)
12665 {
12666 uint32_t unit_index =
12667 read_4_bytes (dbfd,
12668 dwp_htab->unit_table + hash * sizeof (uint32_t));
12669
12670 if (dwp_file->version == 1)
12671 {
12672 *slot = create_dwo_unit_in_dwp_v1 (per_objfile, dwp_file,
12673 unit_index, comp_dir,
12674 signature, is_debug_types);
12675 }
12676 else if (dwp_file->version == 2)
12677 {
12678 *slot = create_dwo_unit_in_dwp_v2 (per_objfile, dwp_file,
12679 unit_index, comp_dir,
12680 signature, is_debug_types);
12681 }
12682 else /* version == 5 */
12683 {
12684 *slot = create_dwo_unit_in_dwp_v5 (per_objfile, dwp_file,
12685 unit_index, comp_dir,
12686 signature, is_debug_types);
12687 }
12688 return (struct dwo_unit *) *slot;
12689 }
12690 if (signature_in_table == 0)
12691 return NULL;
12692 hash = (hash + hash2) & mask;
12693 }
12694
12695 error (_("Dwarf Error: bad DWP hash table, lookup didn't terminate"
12696 " [in module %s]"),
12697 dwp_file->name);
12698 }
12699
12700 /* Subroutine of open_dwo_file,open_dwp_file to simplify them.
12701 Open the file specified by FILE_NAME and hand it off to BFD for
12702 preliminary analysis. Return a newly initialized bfd *, which
12703 includes a canonicalized copy of FILE_NAME.
12704 If IS_DWP is TRUE, we're opening a DWP file, otherwise a DWO file.
12705 SEARCH_CWD is true if the current directory is to be searched.
12706 It will be searched before debug-file-directory.
12707 If successful, the file is added to the bfd include table of the
12708 objfile's bfd (see gdb_bfd_record_inclusion).
12709 If unable to find/open the file, return NULL.
12710 NOTE: This function is derived from symfile_bfd_open. */
12711
12712 static gdb_bfd_ref_ptr
12713 try_open_dwop_file (dwarf2_per_objfile *per_objfile,
12714 const char *file_name, int is_dwp, int search_cwd)
12715 {
12716 int desc;
12717 /* Blech. OPF_TRY_CWD_FIRST also disables searching the path list if
12718 FILE_NAME contains a '/'. So we can't use it. Instead prepend "."
12719 to debug_file_directory. */
12720 const char *search_path;
12721 static const char dirname_separator_string[] = { DIRNAME_SEPARATOR, '\0' };
12722
12723 gdb::unique_xmalloc_ptr<char> search_path_holder;
12724 if (search_cwd)
12725 {
12726 if (*debug_file_directory != '\0')
12727 {
12728 search_path_holder.reset (concat (".", dirname_separator_string,
12729 debug_file_directory,
12730 (char *) NULL));
12731 search_path = search_path_holder.get ();
12732 }
12733 else
12734 search_path = ".";
12735 }
12736 else
12737 search_path = debug_file_directory;
12738
12739 openp_flags flags = OPF_RETURN_REALPATH;
12740 if (is_dwp)
12741 flags |= OPF_SEARCH_IN_PATH;
12742
12743 gdb::unique_xmalloc_ptr<char> absolute_name;
12744 desc = openp (search_path, flags, file_name,
12745 O_RDONLY | O_BINARY, &absolute_name);
12746 if (desc < 0)
12747 return NULL;
12748
12749 gdb_bfd_ref_ptr sym_bfd (gdb_bfd_open (absolute_name.get (),
12750 gnutarget, desc));
12751 if (sym_bfd == NULL)
12752 return NULL;
12753 bfd_set_cacheable (sym_bfd.get (), 1);
12754
12755 if (!bfd_check_format (sym_bfd.get (), bfd_object))
12756 return NULL;
12757
12758 /* Success. Record the bfd as having been included by the objfile's bfd.
12759 This is important because things like demangled_names_hash lives in the
12760 objfile's per_bfd space and may have references to things like symbol
12761 names that live in the DWO/DWP file's per_bfd space. PR 16426. */
12762 gdb_bfd_record_inclusion (per_objfile->objfile->obfd, sym_bfd.get ());
12763
12764 return sym_bfd;
12765 }
12766
12767 /* Try to open DWO file FILE_NAME.
12768 COMP_DIR is the DW_AT_comp_dir attribute.
12769 The result is the bfd handle of the file.
12770 If there is a problem finding or opening the file, return NULL.
12771 Upon success, the canonicalized path of the file is stored in the bfd,
12772 same as symfile_bfd_open. */
12773
12774 static gdb_bfd_ref_ptr
12775 open_dwo_file (dwarf2_per_objfile *per_objfile,
12776 const char *file_name, const char *comp_dir)
12777 {
12778 if (IS_ABSOLUTE_PATH (file_name))
12779 return try_open_dwop_file (per_objfile, file_name,
12780 0 /*is_dwp*/, 0 /*search_cwd*/);
12781
12782 /* Before trying the search path, try DWO_NAME in COMP_DIR. */
12783
12784 if (comp_dir != NULL)
12785 {
12786 gdb::unique_xmalloc_ptr<char> path_to_try
12787 (concat (comp_dir, SLASH_STRING, file_name, (char *) NULL));
12788
12789 /* NOTE: If comp_dir is a relative path, this will also try the
12790 search path, which seems useful. */
12791 gdb_bfd_ref_ptr abfd (try_open_dwop_file (per_objfile, path_to_try.get (),
12792 0 /*is_dwp*/,
12793 1 /*search_cwd*/));
12794 if (abfd != NULL)
12795 return abfd;
12796 }
12797
12798 /* That didn't work, try debug-file-directory, which, despite its name,
12799 is a list of paths. */
12800
12801 if (*debug_file_directory == '\0')
12802 return NULL;
12803
12804 return try_open_dwop_file (per_objfile, file_name,
12805 0 /*is_dwp*/, 1 /*search_cwd*/);
12806 }
12807
12808 /* This function is mapped across the sections and remembers the offset and
12809 size of each of the DWO debugging sections we are interested in. */
12810
12811 static void
12812 dwarf2_locate_dwo_sections (bfd *abfd, asection *sectp,
12813 dwo_sections *dwo_sections)
12814 {
12815 const struct dwop_section_names *names = &dwop_section_names;
12816
12817 if (section_is_p (sectp->name, &names->abbrev_dwo))
12818 {
12819 dwo_sections->abbrev.s.section = sectp;
12820 dwo_sections->abbrev.size = bfd_section_size (sectp);
12821 }
12822 else if (section_is_p (sectp->name, &names->info_dwo))
12823 {
12824 dwo_sections->info.s.section = sectp;
12825 dwo_sections->info.size = bfd_section_size (sectp);
12826 }
12827 else if (section_is_p (sectp->name, &names->line_dwo))
12828 {
12829 dwo_sections->line.s.section = sectp;
12830 dwo_sections->line.size = bfd_section_size (sectp);
12831 }
12832 else if (section_is_p (sectp->name, &names->loc_dwo))
12833 {
12834 dwo_sections->loc.s.section = sectp;
12835 dwo_sections->loc.size = bfd_section_size (sectp);
12836 }
12837 else if (section_is_p (sectp->name, &names->loclists_dwo))
12838 {
12839 dwo_sections->loclists.s.section = sectp;
12840 dwo_sections->loclists.size = bfd_section_size (sectp);
12841 }
12842 else if (section_is_p (sectp->name, &names->macinfo_dwo))
12843 {
12844 dwo_sections->macinfo.s.section = sectp;
12845 dwo_sections->macinfo.size = bfd_section_size (sectp);
12846 }
12847 else if (section_is_p (sectp->name, &names->macro_dwo))
12848 {
12849 dwo_sections->macro.s.section = sectp;
12850 dwo_sections->macro.size = bfd_section_size (sectp);
12851 }
12852 else if (section_is_p (sectp->name, &names->rnglists_dwo))
12853 {
12854 dwo_sections->rnglists.s.section = sectp;
12855 dwo_sections->rnglists.size = bfd_section_size (sectp);
12856 }
12857 else if (section_is_p (sectp->name, &names->str_dwo))
12858 {
12859 dwo_sections->str.s.section = sectp;
12860 dwo_sections->str.size = bfd_section_size (sectp);
12861 }
12862 else if (section_is_p (sectp->name, &names->str_offsets_dwo))
12863 {
12864 dwo_sections->str_offsets.s.section = sectp;
12865 dwo_sections->str_offsets.size = bfd_section_size (sectp);
12866 }
12867 else if (section_is_p (sectp->name, &names->types_dwo))
12868 {
12869 struct dwarf2_section_info type_section;
12870
12871 memset (&type_section, 0, sizeof (type_section));
12872 type_section.s.section = sectp;
12873 type_section.size = bfd_section_size (sectp);
12874 dwo_sections->types.push_back (type_section);
12875 }
12876 }
12877
12878 /* Initialize the use of the DWO file specified by DWO_NAME and referenced
12879 by PER_CU. This is for the non-DWP case.
12880 The result is NULL if DWO_NAME can't be found. */
12881
12882 static struct dwo_file *
12883 open_and_init_dwo_file (dwarf2_cu *cu, const char *dwo_name,
12884 const char *comp_dir)
12885 {
12886 dwarf2_per_objfile *per_objfile = cu->per_objfile;
12887
12888 gdb_bfd_ref_ptr dbfd = open_dwo_file (per_objfile, dwo_name, comp_dir);
12889 if (dbfd == NULL)
12890 {
12891 dwarf_read_debug_printf ("DWO file not found: %s", dwo_name);
12892
12893 return NULL;
12894 }
12895
12896 dwo_file_up dwo_file (new struct dwo_file);
12897 dwo_file->dwo_name = dwo_name;
12898 dwo_file->comp_dir = comp_dir;
12899 dwo_file->dbfd = std::move (dbfd);
12900
12901 for (asection *sec : gdb_bfd_sections (dwo_file->dbfd))
12902 dwarf2_locate_dwo_sections (dwo_file->dbfd.get (), sec,
12903 &dwo_file->sections);
12904
12905 create_cus_hash_table (per_objfile, cu, *dwo_file, dwo_file->sections.info,
12906 dwo_file->cus);
12907
12908 if (cu->per_cu->dwarf_version < 5)
12909 {
12910 create_debug_types_hash_table (per_objfile, dwo_file.get (),
12911 dwo_file->sections.types, dwo_file->tus);
12912 }
12913 else
12914 {
12915 create_debug_type_hash_table (per_objfile, dwo_file.get (),
12916 &dwo_file->sections.info, dwo_file->tus,
12917 rcuh_kind::TYPE);
12918 }
12919
12920 dwarf_read_debug_printf ("DWO file found: %s", dwo_name);
12921
12922 return dwo_file.release ();
12923 }
12924
12925 /* This function is mapped across the sections and remembers the offset and
12926 size of each of the DWP debugging sections common to version 1 and 2 that
12927 we are interested in. */
12928
12929 static void
12930 dwarf2_locate_common_dwp_sections (bfd *abfd, asection *sectp,
12931 dwp_file *dwp_file)
12932 {
12933 const struct dwop_section_names *names = &dwop_section_names;
12934 unsigned int elf_section_nr = elf_section_data (sectp)->this_idx;
12935
12936 /* Record the ELF section number for later lookup: this is what the
12937 .debug_cu_index,.debug_tu_index tables use in DWP V1. */
12938 gdb_assert (elf_section_nr < dwp_file->num_sections);
12939 dwp_file->elf_sections[elf_section_nr] = sectp;
12940
12941 /* Look for specific sections that we need. */
12942 if (section_is_p (sectp->name, &names->str_dwo))
12943 {
12944 dwp_file->sections.str.s.section = sectp;
12945 dwp_file->sections.str.size = bfd_section_size (sectp);
12946 }
12947 else if (section_is_p (sectp->name, &names->cu_index))
12948 {
12949 dwp_file->sections.cu_index.s.section = sectp;
12950 dwp_file->sections.cu_index.size = bfd_section_size (sectp);
12951 }
12952 else if (section_is_p (sectp->name, &names->tu_index))
12953 {
12954 dwp_file->sections.tu_index.s.section = sectp;
12955 dwp_file->sections.tu_index.size = bfd_section_size (sectp);
12956 }
12957 }
12958
12959 /* This function is mapped across the sections and remembers the offset and
12960 size of each of the DWP version 2 debugging sections that we are interested
12961 in. This is split into a separate function because we don't know if we
12962 have version 1 or 2 or 5 until we parse the cu_index/tu_index sections. */
12963
12964 static void
12965 dwarf2_locate_v2_dwp_sections (bfd *abfd, asection *sectp, void *dwp_file_ptr)
12966 {
12967 struct dwp_file *dwp_file = (struct dwp_file *) dwp_file_ptr;
12968 const struct dwop_section_names *names = &dwop_section_names;
12969 unsigned int elf_section_nr = elf_section_data (sectp)->this_idx;
12970
12971 /* Record the ELF section number for later lookup: this is what the
12972 .debug_cu_index,.debug_tu_index tables use in DWP V1. */
12973 gdb_assert (elf_section_nr < dwp_file->num_sections);
12974 dwp_file->elf_sections[elf_section_nr] = sectp;
12975
12976 /* Look for specific sections that we need. */
12977 if (section_is_p (sectp->name, &names->abbrev_dwo))
12978 {
12979 dwp_file->sections.abbrev.s.section = sectp;
12980 dwp_file->sections.abbrev.size = bfd_section_size (sectp);
12981 }
12982 else if (section_is_p (sectp->name, &names->info_dwo))
12983 {
12984 dwp_file->sections.info.s.section = sectp;
12985 dwp_file->sections.info.size = bfd_section_size (sectp);
12986 }
12987 else if (section_is_p (sectp->name, &names->line_dwo))
12988 {
12989 dwp_file->sections.line.s.section = sectp;
12990 dwp_file->sections.line.size = bfd_section_size (sectp);
12991 }
12992 else if (section_is_p (sectp->name, &names->loc_dwo))
12993 {
12994 dwp_file->sections.loc.s.section = sectp;
12995 dwp_file->sections.loc.size = bfd_section_size (sectp);
12996 }
12997 else if (section_is_p (sectp->name, &names->macinfo_dwo))
12998 {
12999 dwp_file->sections.macinfo.s.section = sectp;
13000 dwp_file->sections.macinfo.size = bfd_section_size (sectp);
13001 }
13002 else if (section_is_p (sectp->name, &names->macro_dwo))
13003 {
13004 dwp_file->sections.macro.s.section = sectp;
13005 dwp_file->sections.macro.size = bfd_section_size (sectp);
13006 }
13007 else if (section_is_p (sectp->name, &names->str_offsets_dwo))
13008 {
13009 dwp_file->sections.str_offsets.s.section = sectp;
13010 dwp_file->sections.str_offsets.size = bfd_section_size (sectp);
13011 }
13012 else if (section_is_p (sectp->name, &names->types_dwo))
13013 {
13014 dwp_file->sections.types.s.section = sectp;
13015 dwp_file->sections.types.size = bfd_section_size (sectp);
13016 }
13017 }
13018
13019 /* This function is mapped across the sections and remembers the offset and
13020 size of each of the DWP version 5 debugging sections that we are interested
13021 in. This is split into a separate function because we don't know if we
13022 have version 1 or 2 or 5 until we parse the cu_index/tu_index sections. */
13023
13024 static void
13025 dwarf2_locate_v5_dwp_sections (bfd *abfd, asection *sectp, void *dwp_file_ptr)
13026 {
13027 struct dwp_file *dwp_file = (struct dwp_file *) dwp_file_ptr;
13028 const struct dwop_section_names *names = &dwop_section_names;
13029 unsigned int elf_section_nr = elf_section_data (sectp)->this_idx;
13030
13031 /* Record the ELF section number for later lookup: this is what the
13032 .debug_cu_index,.debug_tu_index tables use in DWP V1. */
13033 gdb_assert (elf_section_nr < dwp_file->num_sections);
13034 dwp_file->elf_sections[elf_section_nr] = sectp;
13035
13036 /* Look for specific sections that we need. */
13037 if (section_is_p (sectp->name, &names->abbrev_dwo))
13038 {
13039 dwp_file->sections.abbrev.s.section = sectp;
13040 dwp_file->sections.abbrev.size = bfd_section_size (sectp);
13041 }
13042 else if (section_is_p (sectp->name, &names->info_dwo))
13043 {
13044 dwp_file->sections.info.s.section = sectp;
13045 dwp_file->sections.info.size = bfd_section_size (sectp);
13046 }
13047 else if (section_is_p (sectp->name, &names->line_dwo))
13048 {
13049 dwp_file->sections.line.s.section = sectp;
13050 dwp_file->sections.line.size = bfd_section_size (sectp);
13051 }
13052 else if (section_is_p (sectp->name, &names->loclists_dwo))
13053 {
13054 dwp_file->sections.loclists.s.section = sectp;
13055 dwp_file->sections.loclists.size = bfd_section_size (sectp);
13056 }
13057 else if (section_is_p (sectp->name, &names->macro_dwo))
13058 {
13059 dwp_file->sections.macro.s.section = sectp;
13060 dwp_file->sections.macro.size = bfd_section_size (sectp);
13061 }
13062 else if (section_is_p (sectp->name, &names->rnglists_dwo))
13063 {
13064 dwp_file->sections.rnglists.s.section = sectp;
13065 dwp_file->sections.rnglists.size = bfd_section_size (sectp);
13066 }
13067 else if (section_is_p (sectp->name, &names->str_offsets_dwo))
13068 {
13069 dwp_file->sections.str_offsets.s.section = sectp;
13070 dwp_file->sections.str_offsets.size = bfd_section_size (sectp);
13071 }
13072 }
13073
13074 /* Hash function for dwp_file loaded CUs/TUs. */
13075
13076 static hashval_t
13077 hash_dwp_loaded_cutus (const void *item)
13078 {
13079 const struct dwo_unit *dwo_unit = (const struct dwo_unit *) item;
13080
13081 /* This drops the top 32 bits of the signature, but is ok for a hash. */
13082 return dwo_unit->signature;
13083 }
13084
13085 /* Equality function for dwp_file loaded CUs/TUs. */
13086
13087 static int
13088 eq_dwp_loaded_cutus (const void *a, const void *b)
13089 {
13090 const struct dwo_unit *dua = (const struct dwo_unit *) a;
13091 const struct dwo_unit *dub = (const struct dwo_unit *) b;
13092
13093 return dua->signature == dub->signature;
13094 }
13095
13096 /* Allocate a hash table for dwp_file loaded CUs/TUs. */
13097
13098 static htab_up
13099 allocate_dwp_loaded_cutus_table ()
13100 {
13101 return htab_up (htab_create_alloc (3,
13102 hash_dwp_loaded_cutus,
13103 eq_dwp_loaded_cutus,
13104 NULL, xcalloc, xfree));
13105 }
13106
13107 /* Try to open DWP file FILE_NAME.
13108 The result is the bfd handle of the file.
13109 If there is a problem finding or opening the file, return NULL.
13110 Upon success, the canonicalized path of the file is stored in the bfd,
13111 same as symfile_bfd_open. */
13112
13113 static gdb_bfd_ref_ptr
13114 open_dwp_file (dwarf2_per_objfile *per_objfile, const char *file_name)
13115 {
13116 gdb_bfd_ref_ptr abfd (try_open_dwop_file (per_objfile, file_name,
13117 1 /*is_dwp*/,
13118 1 /*search_cwd*/));
13119 if (abfd != NULL)
13120 return abfd;
13121
13122 /* Work around upstream bug 15652.
13123 http://sourceware.org/bugzilla/show_bug.cgi?id=15652
13124 [Whether that's a "bug" is debatable, but it is getting in our way.]
13125 We have no real idea where the dwp file is, because gdb's realpath-ing
13126 of the executable's path may have discarded the needed info.
13127 [IWBN if the dwp file name was recorded in the executable, akin to
13128 .gnu_debuglink, but that doesn't exist yet.]
13129 Strip the directory from FILE_NAME and search again. */
13130 if (*debug_file_directory != '\0')
13131 {
13132 /* Don't implicitly search the current directory here.
13133 If the user wants to search "." to handle this case,
13134 it must be added to debug-file-directory. */
13135 return try_open_dwop_file (per_objfile, lbasename (file_name),
13136 1 /*is_dwp*/,
13137 0 /*search_cwd*/);
13138 }
13139
13140 return NULL;
13141 }
13142
13143 /* Initialize the use of the DWP file for the current objfile.
13144 By convention the name of the DWP file is ${objfile}.dwp.
13145 The result is NULL if it can't be found. */
13146
13147 static std::unique_ptr<struct dwp_file>
13148 open_and_init_dwp_file (dwarf2_per_objfile *per_objfile)
13149 {
13150 struct objfile *objfile = per_objfile->objfile;
13151
13152 /* Try to find first .dwp for the binary file before any symbolic links
13153 resolving. */
13154
13155 /* If the objfile is a debug file, find the name of the real binary
13156 file and get the name of dwp file from there. */
13157 std::string dwp_name;
13158 if (objfile->separate_debug_objfile_backlink != NULL)
13159 {
13160 struct objfile *backlink = objfile->separate_debug_objfile_backlink;
13161 const char *backlink_basename = lbasename (backlink->original_name);
13162
13163 dwp_name = ldirname (objfile->original_name) + SLASH_STRING + backlink_basename;
13164 }
13165 else
13166 dwp_name = objfile->original_name;
13167
13168 dwp_name += ".dwp";
13169
13170 gdb_bfd_ref_ptr dbfd (open_dwp_file (per_objfile, dwp_name.c_str ()));
13171 if (dbfd == NULL
13172 && strcmp (objfile->original_name, objfile_name (objfile)) != 0)
13173 {
13174 /* Try to find .dwp for the binary file after gdb_realpath resolving. */
13175 dwp_name = objfile_name (objfile);
13176 dwp_name += ".dwp";
13177 dbfd = open_dwp_file (per_objfile, dwp_name.c_str ());
13178 }
13179
13180 if (dbfd == NULL)
13181 {
13182 dwarf_read_debug_printf ("DWP file not found: %s", dwp_name.c_str ());
13183
13184 return std::unique_ptr<dwp_file> ();
13185 }
13186
13187 const char *name = bfd_get_filename (dbfd.get ());
13188 std::unique_ptr<struct dwp_file> dwp_file
13189 (new struct dwp_file (name, std::move (dbfd)));
13190
13191 dwp_file->num_sections = elf_numsections (dwp_file->dbfd);
13192 dwp_file->elf_sections =
13193 OBSTACK_CALLOC (&per_objfile->per_bfd->obstack,
13194 dwp_file->num_sections, asection *);
13195
13196 for (asection *sec : gdb_bfd_sections (dwp_file->dbfd))
13197 dwarf2_locate_common_dwp_sections (dwp_file->dbfd.get (), sec,
13198 dwp_file.get ());
13199
13200 dwp_file->cus = create_dwp_hash_table (per_objfile, dwp_file.get (), 0);
13201
13202 dwp_file->tus = create_dwp_hash_table (per_objfile, dwp_file.get (), 1);
13203
13204 /* The DWP file version is stored in the hash table. Oh well. */
13205 if (dwp_file->cus && dwp_file->tus
13206 && dwp_file->cus->version != dwp_file->tus->version)
13207 {
13208 /* Technically speaking, we should try to limp along, but this is
13209 pretty bizarre. We use pulongest here because that's the established
13210 portability solution (e.g, we cannot use %u for uint32_t). */
13211 error (_("Dwarf Error: DWP file CU version %s doesn't match"
13212 " TU version %s [in DWP file %s]"),
13213 pulongest (dwp_file->cus->version),
13214 pulongest (dwp_file->tus->version), dwp_name.c_str ());
13215 }
13216
13217 if (dwp_file->cus)
13218 dwp_file->version = dwp_file->cus->version;
13219 else if (dwp_file->tus)
13220 dwp_file->version = dwp_file->tus->version;
13221 else
13222 dwp_file->version = 2;
13223
13224 for (asection *sec : gdb_bfd_sections (dwp_file->dbfd))
13225 {
13226 if (dwp_file->version == 2)
13227 dwarf2_locate_v2_dwp_sections (dwp_file->dbfd.get (), sec,
13228 dwp_file.get ());
13229 else
13230 dwarf2_locate_v5_dwp_sections (dwp_file->dbfd.get (), sec,
13231 dwp_file.get ());
13232 }
13233
13234 dwp_file->loaded_cus = allocate_dwp_loaded_cutus_table ();
13235 dwp_file->loaded_tus = allocate_dwp_loaded_cutus_table ();
13236
13237 dwarf_read_debug_printf ("DWP file found: %s", dwp_file->name);
13238 dwarf_read_debug_printf (" %s CUs, %s TUs",
13239 pulongest (dwp_file->cus ? dwp_file->cus->nr_units : 0),
13240 pulongest (dwp_file->tus ? dwp_file->tus->nr_units : 0));
13241
13242 return dwp_file;
13243 }
13244
13245 /* Wrapper around open_and_init_dwp_file, only open it once. */
13246
13247 static struct dwp_file *
13248 get_dwp_file (dwarf2_per_objfile *per_objfile)
13249 {
13250 if (!per_objfile->per_bfd->dwp_checked)
13251 {
13252 per_objfile->per_bfd->dwp_file = open_and_init_dwp_file (per_objfile);
13253 per_objfile->per_bfd->dwp_checked = 1;
13254 }
13255 return per_objfile->per_bfd->dwp_file.get ();
13256 }
13257
13258 /* Subroutine of lookup_dwo_comp_unit, lookup_dwo_type_unit.
13259 Look up the CU/TU with signature SIGNATURE, either in DWO file DWO_NAME
13260 or in the DWP file for the objfile, referenced by THIS_UNIT.
13261 If non-NULL, comp_dir is the DW_AT_comp_dir attribute.
13262 IS_DEBUG_TYPES is non-zero if reading a TU, otherwise read a CU.
13263
13264 This is called, for example, when wanting to read a variable with a
13265 complex location. Therefore we don't want to do file i/o for every call.
13266 Therefore we don't want to look for a DWO file on every call.
13267 Therefore we first see if we've already seen SIGNATURE in a DWP file,
13268 then we check if we've already seen DWO_NAME, and only THEN do we check
13269 for a DWO file.
13270
13271 The result is a pointer to the dwo_unit object or NULL if we didn't find it
13272 (dwo_id mismatch or couldn't find the DWO/DWP file). */
13273
13274 static struct dwo_unit *
13275 lookup_dwo_cutu (dwarf2_cu *cu, const char *dwo_name, const char *comp_dir,
13276 ULONGEST signature, int is_debug_types)
13277 {
13278 dwarf2_per_objfile *per_objfile = cu->per_objfile;
13279 struct objfile *objfile = per_objfile->objfile;
13280 const char *kind = is_debug_types ? "TU" : "CU";
13281 void **dwo_file_slot;
13282 struct dwo_file *dwo_file;
13283 struct dwp_file *dwp_file;
13284
13285 /* First see if there's a DWP file.
13286 If we have a DWP file but didn't find the DWO inside it, don't
13287 look for the original DWO file. It makes gdb behave differently
13288 depending on whether one is debugging in the build tree. */
13289
13290 dwp_file = get_dwp_file (per_objfile);
13291 if (dwp_file != NULL)
13292 {
13293 const struct dwp_hash_table *dwp_htab =
13294 is_debug_types ? dwp_file->tus : dwp_file->cus;
13295
13296 if (dwp_htab != NULL)
13297 {
13298 struct dwo_unit *dwo_cutu =
13299 lookup_dwo_unit_in_dwp (per_objfile, dwp_file, comp_dir, signature,
13300 is_debug_types);
13301
13302 if (dwo_cutu != NULL)
13303 {
13304 dwarf_read_debug_printf ("Virtual DWO %s %s found: @%s",
13305 kind, hex_string (signature),
13306 host_address_to_string (dwo_cutu));
13307
13308 return dwo_cutu;
13309 }
13310 }
13311 }
13312 else
13313 {
13314 /* No DWP file, look for the DWO file. */
13315
13316 dwo_file_slot = lookup_dwo_file_slot (per_objfile, dwo_name, comp_dir);
13317 if (*dwo_file_slot == NULL)
13318 {
13319 /* Read in the file and build a table of the CUs/TUs it contains. */
13320 *dwo_file_slot = open_and_init_dwo_file (cu, dwo_name, comp_dir);
13321 }
13322 /* NOTE: This will be NULL if unable to open the file. */
13323 dwo_file = (struct dwo_file *) *dwo_file_slot;
13324
13325 if (dwo_file != NULL)
13326 {
13327 struct dwo_unit *dwo_cutu = NULL;
13328
13329 if (is_debug_types && dwo_file->tus)
13330 {
13331 struct dwo_unit find_dwo_cutu;
13332
13333 memset (&find_dwo_cutu, 0, sizeof (find_dwo_cutu));
13334 find_dwo_cutu.signature = signature;
13335 dwo_cutu
13336 = (struct dwo_unit *) htab_find (dwo_file->tus.get (),
13337 &find_dwo_cutu);
13338 }
13339 else if (!is_debug_types && dwo_file->cus)
13340 {
13341 struct dwo_unit find_dwo_cutu;
13342
13343 memset (&find_dwo_cutu, 0, sizeof (find_dwo_cutu));
13344 find_dwo_cutu.signature = signature;
13345 dwo_cutu = (struct dwo_unit *)htab_find (dwo_file->cus.get (),
13346 &find_dwo_cutu);
13347 }
13348
13349 if (dwo_cutu != NULL)
13350 {
13351 dwarf_read_debug_printf ("DWO %s %s(%s) found: @%s",
13352 kind, dwo_name, hex_string (signature),
13353 host_address_to_string (dwo_cutu));
13354
13355 return dwo_cutu;
13356 }
13357 }
13358 }
13359
13360 /* We didn't find it. This could mean a dwo_id mismatch, or
13361 someone deleted the DWO/DWP file, or the search path isn't set up
13362 correctly to find the file. */
13363
13364 dwarf_read_debug_printf ("DWO %s %s(%s) not found",
13365 kind, dwo_name, hex_string (signature));
13366
13367 /* This is a warning and not a complaint because it can be caused by
13368 pilot error (e.g., user accidentally deleting the DWO). */
13369 {
13370 /* Print the name of the DWP file if we looked there, helps the user
13371 better diagnose the problem. */
13372 std::string dwp_text;
13373
13374 if (dwp_file != NULL)
13375 dwp_text = string_printf (" [in DWP file %s]",
13376 lbasename (dwp_file->name));
13377
13378 warning (_("Could not find DWO %s %s(%s)%s referenced by %s at offset %s"
13379 " [in module %s]"),
13380 kind, dwo_name, hex_string (signature), dwp_text.c_str (), kind,
13381 sect_offset_str (cu->per_cu->sect_off), objfile_name (objfile));
13382 }
13383 return NULL;
13384 }
13385
13386 /* Lookup the DWO CU DWO_NAME/SIGNATURE referenced from THIS_CU.
13387 See lookup_dwo_cutu_unit for details. */
13388
13389 static struct dwo_unit *
13390 lookup_dwo_comp_unit (dwarf2_cu *cu, const char *dwo_name, const char *comp_dir,
13391 ULONGEST signature)
13392 {
13393 gdb_assert (!cu->per_cu->is_debug_types);
13394
13395 return lookup_dwo_cutu (cu, dwo_name, comp_dir, signature, 0);
13396 }
13397
13398 /* Lookup the DWO TU DWO_NAME/SIGNATURE referenced from THIS_TU.
13399 See lookup_dwo_cutu_unit for details. */
13400
13401 static struct dwo_unit *
13402 lookup_dwo_type_unit (dwarf2_cu *cu, const char *dwo_name, const char *comp_dir)
13403 {
13404 gdb_assert (cu->per_cu->is_debug_types);
13405
13406 signatured_type *sig_type = (signatured_type *) cu->per_cu;
13407
13408 return lookup_dwo_cutu (cu, dwo_name, comp_dir, sig_type->signature, 1);
13409 }
13410
13411 /* Traversal function for queue_and_load_all_dwo_tus. */
13412
13413 static int
13414 queue_and_load_dwo_tu (void **slot, void *info)
13415 {
13416 struct dwo_unit *dwo_unit = (struct dwo_unit *) *slot;
13417 dwarf2_cu *cu = (dwarf2_cu *) info;
13418 ULONGEST signature = dwo_unit->signature;
13419 signatured_type *sig_type = lookup_dwo_signatured_type (cu, signature);
13420
13421 if (sig_type != NULL)
13422 {
13423 struct dwarf2_per_cu_data *sig_cu = &sig_type->per_cu;
13424
13425 /* We pass NULL for DEPENDENT_CU because we don't yet know if there's
13426 a real dependency of PER_CU on SIG_TYPE. That is detected later
13427 while processing PER_CU. */
13428 if (maybe_queue_comp_unit (NULL, sig_cu, cu->per_objfile, cu->language))
13429 load_full_type_unit (sig_cu, cu->per_objfile);
13430 cu->per_cu->imported_symtabs_push (sig_cu);
13431 }
13432
13433 return 1;
13434 }
13435
13436 /* Queue all TUs contained in the DWO of CU to be read in.
13437 The DWO may have the only definition of the type, though it may not be
13438 referenced anywhere in PER_CU. Thus we have to load *all* its TUs.
13439 http://sourceware.org/bugzilla/show_bug.cgi?id=15021 */
13440
13441 static void
13442 queue_and_load_all_dwo_tus (dwarf2_cu *cu)
13443 {
13444 struct dwo_unit *dwo_unit;
13445 struct dwo_file *dwo_file;
13446
13447 gdb_assert (cu != nullptr);
13448 gdb_assert (!cu->per_cu->is_debug_types);
13449 gdb_assert (get_dwp_file (cu->per_objfile) == nullptr);
13450
13451 dwo_unit = cu->dwo_unit;
13452 gdb_assert (dwo_unit != NULL);
13453
13454 dwo_file = dwo_unit->dwo_file;
13455 if (dwo_file->tus != NULL)
13456 htab_traverse_noresize (dwo_file->tus.get (), queue_and_load_dwo_tu, cu);
13457 }
13458
13459 /* Read in various DIEs. */
13460
13461 /* DW_AT_abstract_origin inherits whole DIEs (not just their attributes).
13462 Inherit only the children of the DW_AT_abstract_origin DIE not being
13463 already referenced by DW_AT_abstract_origin from the children of the
13464 current DIE. */
13465
13466 static void
13467 inherit_abstract_dies (struct die_info *die, struct dwarf2_cu *cu)
13468 {
13469 struct die_info *child_die;
13470 sect_offset *offsetp;
13471 /* Parent of DIE - referenced by DW_AT_abstract_origin. */
13472 struct die_info *origin_die;
13473 /* Iterator of the ORIGIN_DIE children. */
13474 struct die_info *origin_child_die;
13475 struct attribute *attr;
13476 struct dwarf2_cu *origin_cu;
13477 struct pending **origin_previous_list_in_scope;
13478
13479 attr = dwarf2_attr (die, DW_AT_abstract_origin, cu);
13480 if (!attr)
13481 return;
13482
13483 /* Note that following die references may follow to a die in a
13484 different cu. */
13485
13486 origin_cu = cu;
13487 origin_die = follow_die_ref (die, attr, &origin_cu);
13488
13489 /* We're inheriting ORIGIN's children into the scope we'd put DIE's
13490 symbols in. */
13491 origin_previous_list_in_scope = origin_cu->list_in_scope;
13492 origin_cu->list_in_scope = cu->list_in_scope;
13493
13494 if (die->tag != origin_die->tag
13495 && !(die->tag == DW_TAG_inlined_subroutine
13496 && origin_die->tag == DW_TAG_subprogram))
13497 complaint (_("DIE %s and its abstract origin %s have different tags"),
13498 sect_offset_str (die->sect_off),
13499 sect_offset_str (origin_die->sect_off));
13500
13501 std::vector<sect_offset> offsets;
13502
13503 for (child_die = die->child;
13504 child_die && child_die->tag;
13505 child_die = child_die->sibling)
13506 {
13507 struct die_info *child_origin_die;
13508 struct dwarf2_cu *child_origin_cu;
13509
13510 /* We are trying to process concrete instance entries:
13511 DW_TAG_call_site DIEs indeed have a DW_AT_abstract_origin tag, but
13512 it's not relevant to our analysis here. i.e. detecting DIEs that are
13513 present in the abstract instance but not referenced in the concrete
13514 one. */
13515 if (child_die->tag == DW_TAG_call_site
13516 || child_die->tag == DW_TAG_GNU_call_site)
13517 continue;
13518
13519 /* For each CHILD_DIE, find the corresponding child of
13520 ORIGIN_DIE. If there is more than one layer of
13521 DW_AT_abstract_origin, follow them all; there shouldn't be,
13522 but GCC versions at least through 4.4 generate this (GCC PR
13523 40573). */
13524 child_origin_die = child_die;
13525 child_origin_cu = cu;
13526 while (1)
13527 {
13528 attr = dwarf2_attr (child_origin_die, DW_AT_abstract_origin,
13529 child_origin_cu);
13530 if (attr == NULL)
13531 break;
13532 child_origin_die = follow_die_ref (child_origin_die, attr,
13533 &child_origin_cu);
13534 }
13535
13536 /* According to DWARF3 3.3.8.2 #3 new entries without their abstract
13537 counterpart may exist. */
13538 if (child_origin_die != child_die)
13539 {
13540 if (child_die->tag != child_origin_die->tag
13541 && !(child_die->tag == DW_TAG_inlined_subroutine
13542 && child_origin_die->tag == DW_TAG_subprogram))
13543 complaint (_("Child DIE %s and its abstract origin %s have "
13544 "different tags"),
13545 sect_offset_str (child_die->sect_off),
13546 sect_offset_str (child_origin_die->sect_off));
13547 if (child_origin_die->parent != origin_die)
13548 complaint (_("Child DIE %s and its abstract origin %s have "
13549 "different parents"),
13550 sect_offset_str (child_die->sect_off),
13551 sect_offset_str (child_origin_die->sect_off));
13552 else
13553 offsets.push_back (child_origin_die->sect_off);
13554 }
13555 }
13556 std::sort (offsets.begin (), offsets.end ());
13557 sect_offset *offsets_end = offsets.data () + offsets.size ();
13558 for (offsetp = offsets.data () + 1; offsetp < offsets_end; offsetp++)
13559 if (offsetp[-1] == *offsetp)
13560 complaint (_("Multiple children of DIE %s refer "
13561 "to DIE %s as their abstract origin"),
13562 sect_offset_str (die->sect_off), sect_offset_str (*offsetp));
13563
13564 offsetp = offsets.data ();
13565 origin_child_die = origin_die->child;
13566 while (origin_child_die && origin_child_die->tag)
13567 {
13568 /* Is ORIGIN_CHILD_DIE referenced by any of the DIE children? */
13569 while (offsetp < offsets_end
13570 && *offsetp < origin_child_die->sect_off)
13571 offsetp++;
13572 if (offsetp >= offsets_end
13573 || *offsetp > origin_child_die->sect_off)
13574 {
13575 /* Found that ORIGIN_CHILD_DIE is really not referenced.
13576 Check whether we're already processing ORIGIN_CHILD_DIE.
13577 This can happen with mutually referenced abstract_origins.
13578 PR 16581. */
13579 if (!origin_child_die->in_process)
13580 process_die (origin_child_die, origin_cu);
13581 }
13582 origin_child_die = origin_child_die->sibling;
13583 }
13584 origin_cu->list_in_scope = origin_previous_list_in_scope;
13585
13586 if (cu != origin_cu)
13587 compute_delayed_physnames (origin_cu);
13588 }
13589
13590 static void
13591 read_func_scope (struct die_info *die, struct dwarf2_cu *cu)
13592 {
13593 struct objfile *objfile = cu->per_objfile->objfile;
13594 struct gdbarch *gdbarch = objfile->arch ();
13595 struct context_stack *newobj;
13596 CORE_ADDR lowpc;
13597 CORE_ADDR highpc;
13598 struct die_info *child_die;
13599 struct attribute *attr, *call_line, *call_file;
13600 const char *name;
13601 CORE_ADDR baseaddr;
13602 struct block *block;
13603 int inlined_func = (die->tag == DW_TAG_inlined_subroutine);
13604 std::vector<struct symbol *> template_args;
13605 struct template_symbol *templ_func = NULL;
13606
13607 if (inlined_func)
13608 {
13609 /* If we do not have call site information, we can't show the
13610 caller of this inlined function. That's too confusing, so
13611 only use the scope for local variables. */
13612 call_line = dwarf2_attr (die, DW_AT_call_line, cu);
13613 call_file = dwarf2_attr (die, DW_AT_call_file, cu);
13614 if (call_line == NULL || call_file == NULL)
13615 {
13616 read_lexical_block_scope (die, cu);
13617 return;
13618 }
13619 }
13620
13621 baseaddr = objfile->text_section_offset ();
13622
13623 name = dwarf2_name (die, cu);
13624
13625 /* Ignore functions with missing or empty names. These are actually
13626 illegal according to the DWARF standard. */
13627 if (name == NULL)
13628 {
13629 complaint (_("missing name for subprogram DIE at %s"),
13630 sect_offset_str (die->sect_off));
13631 return;
13632 }
13633
13634 /* Ignore functions with missing or invalid low and high pc attributes. */
13635 if (dwarf2_get_pc_bounds (die, &lowpc, &highpc, cu, NULL)
13636 <= PC_BOUNDS_INVALID)
13637 {
13638 attr = dwarf2_attr (die, DW_AT_external, cu);
13639 if (attr == nullptr || !attr->as_boolean ())
13640 complaint (_("cannot get low and high bounds "
13641 "for subprogram DIE at %s"),
13642 sect_offset_str (die->sect_off));
13643 return;
13644 }
13645
13646 lowpc = gdbarch_adjust_dwarf2_addr (gdbarch, lowpc + baseaddr);
13647 highpc = gdbarch_adjust_dwarf2_addr (gdbarch, highpc + baseaddr);
13648
13649 /* If we have any template arguments, then we must allocate a
13650 different sort of symbol. */
13651 for (child_die = die->child; child_die; child_die = child_die->sibling)
13652 {
13653 if (child_die->tag == DW_TAG_template_type_param
13654 || child_die->tag == DW_TAG_template_value_param)
13655 {
13656 templ_func = new (&objfile->objfile_obstack) template_symbol;
13657 templ_func->subclass = SYMBOL_TEMPLATE;
13658 break;
13659 }
13660 }
13661
13662 newobj = cu->get_builder ()->push_context (0, lowpc);
13663 newobj->name = new_symbol (die, read_type_die (die, cu), cu,
13664 (struct symbol *) templ_func);
13665
13666 if (dwarf2_flag_true_p (die, DW_AT_main_subprogram, cu))
13667 set_objfile_main_name (objfile, newobj->name->linkage_name (),
13668 cu->language);
13669
13670 /* If there is a location expression for DW_AT_frame_base, record
13671 it. */
13672 attr = dwarf2_attr (die, DW_AT_frame_base, cu);
13673 if (attr != nullptr)
13674 dwarf2_symbol_mark_computed (attr, newobj->name, cu, 1);
13675
13676 /* If there is a location for the static link, record it. */
13677 newobj->static_link = NULL;
13678 attr = dwarf2_attr (die, DW_AT_static_link, cu);
13679 if (attr != nullptr)
13680 {
13681 newobj->static_link
13682 = XOBNEW (&objfile->objfile_obstack, struct dynamic_prop);
13683 attr_to_dynamic_prop (attr, die, cu, newobj->static_link,
13684 cu->addr_type ());
13685 }
13686
13687 cu->list_in_scope = cu->get_builder ()->get_local_symbols ();
13688
13689 if (die->child != NULL)
13690 {
13691 child_die = die->child;
13692 while (child_die && child_die->tag)
13693 {
13694 if (child_die->tag == DW_TAG_template_type_param
13695 || child_die->tag == DW_TAG_template_value_param)
13696 {
13697 struct symbol *arg = new_symbol (child_die, NULL, cu);
13698
13699 if (arg != NULL)
13700 template_args.push_back (arg);
13701 }
13702 else
13703 process_die (child_die, cu);
13704 child_die = child_die->sibling;
13705 }
13706 }
13707
13708 inherit_abstract_dies (die, cu);
13709
13710 /* If we have a DW_AT_specification, we might need to import using
13711 directives from the context of the specification DIE. See the
13712 comment in determine_prefix. */
13713 if (cu->language == language_cplus
13714 && dwarf2_attr (die, DW_AT_specification, cu))
13715 {
13716 struct dwarf2_cu *spec_cu = cu;
13717 struct die_info *spec_die = die_specification (die, &spec_cu);
13718
13719 while (spec_die)
13720 {
13721 child_die = spec_die->child;
13722 while (child_die && child_die->tag)
13723 {
13724 if (child_die->tag == DW_TAG_imported_module)
13725 process_die (child_die, spec_cu);
13726 child_die = child_die->sibling;
13727 }
13728
13729 /* In some cases, GCC generates specification DIEs that
13730 themselves contain DW_AT_specification attributes. */
13731 spec_die = die_specification (spec_die, &spec_cu);
13732 }
13733 }
13734
13735 struct context_stack cstk = cu->get_builder ()->pop_context ();
13736 /* Make a block for the local symbols within. */
13737 block = cu->get_builder ()->finish_block (cstk.name, cstk.old_blocks,
13738 cstk.static_link, lowpc, highpc);
13739
13740 /* For C++, set the block's scope. */
13741 if ((cu->language == language_cplus
13742 || cu->language == language_fortran
13743 || cu->language == language_d
13744 || cu->language == language_rust)
13745 && cu->processing_has_namespace_info)
13746 block_set_scope (block, determine_prefix (die, cu),
13747 &objfile->objfile_obstack);
13748
13749 /* If we have address ranges, record them. */
13750 dwarf2_record_block_ranges (die, block, baseaddr, cu);
13751
13752 gdbarch_make_symbol_special (gdbarch, cstk.name, objfile);
13753
13754 /* Attach template arguments to function. */
13755 if (!template_args.empty ())
13756 {
13757 gdb_assert (templ_func != NULL);
13758
13759 templ_func->n_template_arguments = template_args.size ();
13760 templ_func->template_arguments
13761 = XOBNEWVEC (&objfile->objfile_obstack, struct symbol *,
13762 templ_func->n_template_arguments);
13763 memcpy (templ_func->template_arguments,
13764 template_args.data (),
13765 (templ_func->n_template_arguments * sizeof (struct symbol *)));
13766
13767 /* Make sure that the symtab is set on the new symbols. Even
13768 though they don't appear in this symtab directly, other parts
13769 of gdb assume that symbols do, and this is reasonably
13770 true. */
13771 for (symbol *sym : template_args)
13772 symbol_set_symtab (sym, symbol_symtab (templ_func));
13773 }
13774
13775 /* In C++, we can have functions nested inside functions (e.g., when
13776 a function declares a class that has methods). This means that
13777 when we finish processing a function scope, we may need to go
13778 back to building a containing block's symbol lists. */
13779 *cu->get_builder ()->get_local_symbols () = cstk.locals;
13780 cu->get_builder ()->set_local_using_directives (cstk.local_using_directives);
13781
13782 /* If we've finished processing a top-level function, subsequent
13783 symbols go in the file symbol list. */
13784 if (cu->get_builder ()->outermost_context_p ())
13785 cu->list_in_scope = cu->get_builder ()->get_file_symbols ();
13786 }
13787
13788 /* Process all the DIES contained within a lexical block scope. Start
13789 a new scope, process the dies, and then close the scope. */
13790
13791 static void
13792 read_lexical_block_scope (struct die_info *die, struct dwarf2_cu *cu)
13793 {
13794 struct objfile *objfile = cu->per_objfile->objfile;
13795 struct gdbarch *gdbarch = objfile->arch ();
13796 CORE_ADDR lowpc, highpc;
13797 struct die_info *child_die;
13798 CORE_ADDR baseaddr;
13799
13800 baseaddr = objfile->text_section_offset ();
13801
13802 /* Ignore blocks with missing or invalid low and high pc attributes. */
13803 /* ??? Perhaps consider discontiguous blocks defined by DW_AT_ranges
13804 as multiple lexical blocks? Handling children in a sane way would
13805 be nasty. Might be easier to properly extend generic blocks to
13806 describe ranges. */
13807 switch (dwarf2_get_pc_bounds (die, &lowpc, &highpc, cu, NULL))
13808 {
13809 case PC_BOUNDS_NOT_PRESENT:
13810 /* DW_TAG_lexical_block has no attributes, process its children as if
13811 there was no wrapping by that DW_TAG_lexical_block.
13812 GCC does no longer produces such DWARF since GCC r224161. */
13813 for (child_die = die->child;
13814 child_die != NULL && child_die->tag;
13815 child_die = child_die->sibling)
13816 {
13817 /* We might already be processing this DIE. This can happen
13818 in an unusual circumstance -- where a subroutine A
13819 appears lexically in another subroutine B, but A actually
13820 inlines B. The recursion is broken here, rather than in
13821 inherit_abstract_dies, because it seems better to simply
13822 drop concrete children here. */
13823 if (!child_die->in_process)
13824 process_die (child_die, cu);
13825 }
13826 return;
13827 case PC_BOUNDS_INVALID:
13828 return;
13829 }
13830 lowpc = gdbarch_adjust_dwarf2_addr (gdbarch, lowpc + baseaddr);
13831 highpc = gdbarch_adjust_dwarf2_addr (gdbarch, highpc + baseaddr);
13832
13833 cu->get_builder ()->push_context (0, lowpc);
13834 if (die->child != NULL)
13835 {
13836 child_die = die->child;
13837 while (child_die && child_die->tag)
13838 {
13839 process_die (child_die, cu);
13840 child_die = child_die->sibling;
13841 }
13842 }
13843 inherit_abstract_dies (die, cu);
13844 struct context_stack cstk = cu->get_builder ()->pop_context ();
13845
13846 if (*cu->get_builder ()->get_local_symbols () != NULL
13847 || (*cu->get_builder ()->get_local_using_directives ()) != NULL)
13848 {
13849 struct block *block
13850 = cu->get_builder ()->finish_block (0, cstk.old_blocks, NULL,
13851 cstk.start_addr, highpc);
13852
13853 /* Note that recording ranges after traversing children, as we
13854 do here, means that recording a parent's ranges entails
13855 walking across all its children's ranges as they appear in
13856 the address map, which is quadratic behavior.
13857
13858 It would be nicer to record the parent's ranges before
13859 traversing its children, simply overriding whatever you find
13860 there. But since we don't even decide whether to create a
13861 block until after we've traversed its children, that's hard
13862 to do. */
13863 dwarf2_record_block_ranges (die, block, baseaddr, cu);
13864 }
13865 *cu->get_builder ()->get_local_symbols () = cstk.locals;
13866 cu->get_builder ()->set_local_using_directives (cstk.local_using_directives);
13867 }
13868
13869 /* Read in DW_TAG_call_site and insert it to CU->call_site_htab. */
13870
13871 static void
13872 read_call_site_scope (struct die_info *die, struct dwarf2_cu *cu)
13873 {
13874 dwarf2_per_objfile *per_objfile = cu->per_objfile;
13875 struct objfile *objfile = per_objfile->objfile;
13876 struct gdbarch *gdbarch = objfile->arch ();
13877 CORE_ADDR pc, baseaddr;
13878 struct attribute *attr;
13879 struct call_site *call_site, call_site_local;
13880 void **slot;
13881 int nparams;
13882 struct die_info *child_die;
13883
13884 baseaddr = objfile->text_section_offset ();
13885
13886 attr = dwarf2_attr (die, DW_AT_call_return_pc, cu);
13887 if (attr == NULL)
13888 {
13889 /* This was a pre-DWARF-5 GNU extension alias
13890 for DW_AT_call_return_pc. */
13891 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
13892 }
13893 if (!attr)
13894 {
13895 complaint (_("missing DW_AT_call_return_pc for DW_TAG_call_site "
13896 "DIE %s [in module %s]"),
13897 sect_offset_str (die->sect_off), objfile_name (objfile));
13898 return;
13899 }
13900 pc = attr->as_address () + baseaddr;
13901 pc = gdbarch_adjust_dwarf2_addr (gdbarch, pc);
13902
13903 if (cu->call_site_htab == NULL)
13904 cu->call_site_htab = htab_create_alloc_ex (16, core_addr_hash, core_addr_eq,
13905 NULL, &objfile->objfile_obstack,
13906 hashtab_obstack_allocate, NULL);
13907 call_site_local.pc = pc;
13908 slot = htab_find_slot (cu->call_site_htab, &call_site_local, INSERT);
13909 if (*slot != NULL)
13910 {
13911 complaint (_("Duplicate PC %s for DW_TAG_call_site "
13912 "DIE %s [in module %s]"),
13913 paddress (gdbarch, pc), sect_offset_str (die->sect_off),
13914 objfile_name (objfile));
13915 return;
13916 }
13917
13918 /* Count parameters at the caller. */
13919
13920 nparams = 0;
13921 for (child_die = die->child; child_die && child_die->tag;
13922 child_die = child_die->sibling)
13923 {
13924 if (child_die->tag != DW_TAG_call_site_parameter
13925 && child_die->tag != DW_TAG_GNU_call_site_parameter)
13926 {
13927 complaint (_("Tag %d is not DW_TAG_call_site_parameter in "
13928 "DW_TAG_call_site child DIE %s [in module %s]"),
13929 child_die->tag, sect_offset_str (child_die->sect_off),
13930 objfile_name (objfile));
13931 continue;
13932 }
13933
13934 nparams++;
13935 }
13936
13937 call_site
13938 = ((struct call_site *)
13939 obstack_alloc (&objfile->objfile_obstack,
13940 sizeof (*call_site)
13941 + (sizeof (*call_site->parameter) * (nparams - 1))));
13942 *slot = call_site;
13943 memset (call_site, 0, sizeof (*call_site) - sizeof (*call_site->parameter));
13944 call_site->pc = pc;
13945
13946 if (dwarf2_flag_true_p (die, DW_AT_call_tail_call, cu)
13947 || dwarf2_flag_true_p (die, DW_AT_GNU_tail_call, cu))
13948 {
13949 struct die_info *func_die;
13950
13951 /* Skip also over DW_TAG_inlined_subroutine. */
13952 for (func_die = die->parent;
13953 func_die && func_die->tag != DW_TAG_subprogram
13954 && func_die->tag != DW_TAG_subroutine_type;
13955 func_die = func_die->parent);
13956
13957 /* DW_AT_call_all_calls is a superset
13958 of DW_AT_call_all_tail_calls. */
13959 if (func_die
13960 && !dwarf2_flag_true_p (func_die, DW_AT_call_all_calls, cu)
13961 && !dwarf2_flag_true_p (func_die, DW_AT_GNU_all_call_sites, cu)
13962 && !dwarf2_flag_true_p (func_die, DW_AT_call_all_tail_calls, cu)
13963 && !dwarf2_flag_true_p (func_die, DW_AT_GNU_all_tail_call_sites, cu))
13964 {
13965 /* TYPE_TAIL_CALL_LIST is not interesting in functions where it is
13966 not complete. But keep CALL_SITE for look ups via call_site_htab,
13967 both the initial caller containing the real return address PC and
13968 the final callee containing the current PC of a chain of tail
13969 calls do not need to have the tail call list complete. But any
13970 function candidate for a virtual tail call frame searched via
13971 TYPE_TAIL_CALL_LIST must have the tail call list complete to be
13972 determined unambiguously. */
13973 }
13974 else
13975 {
13976 struct type *func_type = NULL;
13977
13978 if (func_die)
13979 func_type = get_die_type (func_die, cu);
13980 if (func_type != NULL)
13981 {
13982 gdb_assert (func_type->code () == TYPE_CODE_FUNC);
13983
13984 /* Enlist this call site to the function. */
13985 call_site->tail_call_next = TYPE_TAIL_CALL_LIST (func_type);
13986 TYPE_TAIL_CALL_LIST (func_type) = call_site;
13987 }
13988 else
13989 complaint (_("Cannot find function owning DW_TAG_call_site "
13990 "DIE %s [in module %s]"),
13991 sect_offset_str (die->sect_off), objfile_name (objfile));
13992 }
13993 }
13994
13995 attr = dwarf2_attr (die, DW_AT_call_target, cu);
13996 if (attr == NULL)
13997 attr = dwarf2_attr (die, DW_AT_GNU_call_site_target, cu);
13998 if (attr == NULL)
13999 attr = dwarf2_attr (die, DW_AT_call_origin, cu);
14000 if (attr == NULL)
14001 {
14002 /* This was a pre-DWARF-5 GNU extension alias for DW_AT_call_origin. */
14003 attr = dwarf2_attr (die, DW_AT_abstract_origin, cu);
14004 }
14005 SET_FIELD_DWARF_BLOCK (call_site->target, NULL);
14006 if (!attr || (attr->form_is_block () && attr->as_block ()->size == 0))
14007 /* Keep NULL DWARF_BLOCK. */;
14008 else if (attr->form_is_block ())
14009 {
14010 struct dwarf2_locexpr_baton *dlbaton;
14011 struct dwarf_block *block = attr->as_block ();
14012
14013 dlbaton = XOBNEW (&objfile->objfile_obstack, struct dwarf2_locexpr_baton);
14014 dlbaton->data = block->data;
14015 dlbaton->size = block->size;
14016 dlbaton->per_objfile = per_objfile;
14017 dlbaton->per_cu = cu->per_cu;
14018
14019 SET_FIELD_DWARF_BLOCK (call_site->target, dlbaton);
14020 }
14021 else if (attr->form_is_ref ())
14022 {
14023 struct dwarf2_cu *target_cu = cu;
14024 struct die_info *target_die;
14025
14026 target_die = follow_die_ref (die, attr, &target_cu);
14027 gdb_assert (target_cu->per_objfile->objfile == objfile);
14028 if (die_is_declaration (target_die, target_cu))
14029 {
14030 const char *target_physname;
14031
14032 /* Prefer the mangled name; otherwise compute the demangled one. */
14033 target_physname = dw2_linkage_name (target_die, target_cu);
14034 if (target_physname == NULL)
14035 target_physname = dwarf2_physname (NULL, target_die, target_cu);
14036 if (target_physname == NULL)
14037 complaint (_("DW_AT_call_target target DIE has invalid "
14038 "physname, for referencing DIE %s [in module %s]"),
14039 sect_offset_str (die->sect_off), objfile_name (objfile));
14040 else
14041 SET_FIELD_PHYSNAME (call_site->target, target_physname);
14042 }
14043 else
14044 {
14045 CORE_ADDR lowpc;
14046
14047 /* DW_AT_entry_pc should be preferred. */
14048 if (dwarf2_get_pc_bounds (target_die, &lowpc, NULL, target_cu, NULL)
14049 <= PC_BOUNDS_INVALID)
14050 complaint (_("DW_AT_call_target target DIE has invalid "
14051 "low pc, for referencing DIE %s [in module %s]"),
14052 sect_offset_str (die->sect_off), objfile_name (objfile));
14053 else
14054 {
14055 lowpc = gdbarch_adjust_dwarf2_addr (gdbarch, lowpc + baseaddr);
14056 SET_FIELD_PHYSADDR (call_site->target, lowpc);
14057 }
14058 }
14059 }
14060 else
14061 complaint (_("DW_TAG_call_site DW_AT_call_target is neither "
14062 "block nor reference, for DIE %s [in module %s]"),
14063 sect_offset_str (die->sect_off), objfile_name (objfile));
14064
14065 call_site->per_cu = cu->per_cu;
14066 call_site->per_objfile = per_objfile;
14067
14068 for (child_die = die->child;
14069 child_die && child_die->tag;
14070 child_die = child_die->sibling)
14071 {
14072 struct call_site_parameter *parameter;
14073 struct attribute *loc, *origin;
14074
14075 if (child_die->tag != DW_TAG_call_site_parameter
14076 && child_die->tag != DW_TAG_GNU_call_site_parameter)
14077 {
14078 /* Already printed the complaint above. */
14079 continue;
14080 }
14081
14082 gdb_assert (call_site->parameter_count < nparams);
14083 parameter = &call_site->parameter[call_site->parameter_count];
14084
14085 /* DW_AT_location specifies the register number or DW_AT_abstract_origin
14086 specifies DW_TAG_formal_parameter. Value of the data assumed for the
14087 register is contained in DW_AT_call_value. */
14088
14089 loc = dwarf2_attr (child_die, DW_AT_location, cu);
14090 origin = dwarf2_attr (child_die, DW_AT_call_parameter, cu);
14091 if (origin == NULL)
14092 {
14093 /* This was a pre-DWARF-5 GNU extension alias
14094 for DW_AT_call_parameter. */
14095 origin = dwarf2_attr (child_die, DW_AT_abstract_origin, cu);
14096 }
14097 if (loc == NULL && origin != NULL && origin->form_is_ref ())
14098 {
14099 parameter->kind = CALL_SITE_PARAMETER_PARAM_OFFSET;
14100
14101 sect_offset sect_off = origin->get_ref_die_offset ();
14102 if (!cu->header.offset_in_cu_p (sect_off))
14103 {
14104 /* As DW_OP_GNU_parameter_ref uses CU-relative offset this
14105 binding can be done only inside one CU. Such referenced DIE
14106 therefore cannot be even moved to DW_TAG_partial_unit. */
14107 complaint (_("DW_AT_call_parameter offset is not in CU for "
14108 "DW_TAG_call_site child DIE %s [in module %s]"),
14109 sect_offset_str (child_die->sect_off),
14110 objfile_name (objfile));
14111 continue;
14112 }
14113 parameter->u.param_cu_off
14114 = (cu_offset) (sect_off - cu->header.sect_off);
14115 }
14116 else if (loc == NULL || origin != NULL || !loc->form_is_block ())
14117 {
14118 complaint (_("No DW_FORM_block* DW_AT_location for "
14119 "DW_TAG_call_site child DIE %s [in module %s]"),
14120 sect_offset_str (child_die->sect_off), objfile_name (objfile));
14121 continue;
14122 }
14123 else
14124 {
14125 struct dwarf_block *block = loc->as_block ();
14126
14127 parameter->u.dwarf_reg = dwarf_block_to_dwarf_reg
14128 (block->data, &block->data[block->size]);
14129 if (parameter->u.dwarf_reg != -1)
14130 parameter->kind = CALL_SITE_PARAMETER_DWARF_REG;
14131 else if (dwarf_block_to_sp_offset (gdbarch, block->data,
14132 &block->data[block->size],
14133 &parameter->u.fb_offset))
14134 parameter->kind = CALL_SITE_PARAMETER_FB_OFFSET;
14135 else
14136 {
14137 complaint (_("Only single DW_OP_reg or DW_OP_fbreg is supported "
14138 "for DW_FORM_block* DW_AT_location is supported for "
14139 "DW_TAG_call_site child DIE %s "
14140 "[in module %s]"),
14141 sect_offset_str (child_die->sect_off),
14142 objfile_name (objfile));
14143 continue;
14144 }
14145 }
14146
14147 attr = dwarf2_attr (child_die, DW_AT_call_value, cu);
14148 if (attr == NULL)
14149 attr = dwarf2_attr (child_die, DW_AT_GNU_call_site_value, cu);
14150 if (attr == NULL || !attr->form_is_block ())
14151 {
14152 complaint (_("No DW_FORM_block* DW_AT_call_value for "
14153 "DW_TAG_call_site child DIE %s [in module %s]"),
14154 sect_offset_str (child_die->sect_off),
14155 objfile_name (objfile));
14156 continue;
14157 }
14158
14159 struct dwarf_block *block = attr->as_block ();
14160 parameter->value = block->data;
14161 parameter->value_size = block->size;
14162
14163 /* Parameters are not pre-cleared by memset above. */
14164 parameter->data_value = NULL;
14165 parameter->data_value_size = 0;
14166 call_site->parameter_count++;
14167
14168 attr = dwarf2_attr (child_die, DW_AT_call_data_value, cu);
14169 if (attr == NULL)
14170 attr = dwarf2_attr (child_die, DW_AT_GNU_call_site_data_value, cu);
14171 if (attr != nullptr)
14172 {
14173 if (!attr->form_is_block ())
14174 complaint (_("No DW_FORM_block* DW_AT_call_data_value for "
14175 "DW_TAG_call_site child DIE %s [in module %s]"),
14176 sect_offset_str (child_die->sect_off),
14177 objfile_name (objfile));
14178 else
14179 {
14180 block = attr->as_block ();
14181 parameter->data_value = block->data;
14182 parameter->data_value_size = block->size;
14183 }
14184 }
14185 }
14186 }
14187
14188 /* Helper function for read_variable. If DIE represents a virtual
14189 table, then return the type of the concrete object that is
14190 associated with the virtual table. Otherwise, return NULL. */
14191
14192 static struct type *
14193 rust_containing_type (struct die_info *die, struct dwarf2_cu *cu)
14194 {
14195 struct attribute *attr = dwarf2_attr (die, DW_AT_type, cu);
14196 if (attr == NULL)
14197 return NULL;
14198
14199 /* Find the type DIE. */
14200 struct die_info *type_die = NULL;
14201 struct dwarf2_cu *type_cu = cu;
14202
14203 if (attr->form_is_ref ())
14204 type_die = follow_die_ref (die, attr, &type_cu);
14205 if (type_die == NULL)
14206 return NULL;
14207
14208 if (dwarf2_attr (type_die, DW_AT_containing_type, type_cu) == NULL)
14209 return NULL;
14210 return die_containing_type (type_die, type_cu);
14211 }
14212
14213 /* Read a variable (DW_TAG_variable) DIE and create a new symbol. */
14214
14215 static void
14216 read_variable (struct die_info *die, struct dwarf2_cu *cu)
14217 {
14218 struct rust_vtable_symbol *storage = NULL;
14219
14220 if (cu->language == language_rust)
14221 {
14222 struct type *containing_type = rust_containing_type (die, cu);
14223
14224 if (containing_type != NULL)
14225 {
14226 struct objfile *objfile = cu->per_objfile->objfile;
14227
14228 storage = new (&objfile->objfile_obstack) rust_vtable_symbol;
14229 storage->concrete_type = containing_type;
14230 storage->subclass = SYMBOL_RUST_VTABLE;
14231 }
14232 }
14233
14234 struct symbol *res = new_symbol (die, NULL, cu, storage);
14235 struct attribute *abstract_origin
14236 = dwarf2_attr (die, DW_AT_abstract_origin, cu);
14237 struct attribute *loc = dwarf2_attr (die, DW_AT_location, cu);
14238 if (res == NULL && loc && abstract_origin)
14239 {
14240 /* We have a variable without a name, but with a location and an abstract
14241 origin. This may be a concrete instance of an abstract variable
14242 referenced from an DW_OP_GNU_variable_value, so save it to find it back
14243 later. */
14244 struct dwarf2_cu *origin_cu = cu;
14245 struct die_info *origin_die
14246 = follow_die_ref (die, abstract_origin, &origin_cu);
14247 dwarf2_per_objfile *per_objfile = cu->per_objfile;
14248 per_objfile->per_bfd->abstract_to_concrete
14249 [origin_die->sect_off].push_back (die->sect_off);
14250 }
14251 }
14252
14253 /* Call CALLBACK from DW_AT_ranges attribute value OFFSET
14254 reading .debug_rnglists.
14255 Callback's type should be:
14256 void (CORE_ADDR range_beginning, CORE_ADDR range_end)
14257 Return true if the attributes are present and valid, otherwise,
14258 return false. */
14259
14260 template <typename Callback>
14261 static bool
14262 dwarf2_rnglists_process (unsigned offset, struct dwarf2_cu *cu,
14263 dwarf_tag tag, Callback &&callback)
14264 {
14265 dwarf2_per_objfile *per_objfile = cu->per_objfile;
14266 struct objfile *objfile = per_objfile->objfile;
14267 bfd *obfd = objfile->obfd;
14268 /* Base address selection entry. */
14269 gdb::optional<CORE_ADDR> base;
14270 const gdb_byte *buffer;
14271 CORE_ADDR baseaddr;
14272 bool overflow = false;
14273 ULONGEST addr_index;
14274 struct dwarf2_section_info *rnglists_section;
14275
14276 base = cu->base_address;
14277 rnglists_section = cu_debug_rnglists_section (cu, tag);
14278 rnglists_section->read (objfile);
14279
14280 if (offset >= rnglists_section->size)
14281 {
14282 complaint (_("Offset %d out of bounds for DW_AT_ranges attribute"),
14283 offset);
14284 return false;
14285 }
14286 buffer = rnglists_section->buffer + offset;
14287
14288 baseaddr = objfile->text_section_offset ();
14289
14290 while (1)
14291 {
14292 /* Initialize it due to a false compiler warning. */
14293 CORE_ADDR range_beginning = 0, range_end = 0;
14294 const gdb_byte *buf_end = (rnglists_section->buffer
14295 + rnglists_section->size);
14296 unsigned int bytes_read;
14297
14298 if (buffer == buf_end)
14299 {
14300 overflow = true;
14301 break;
14302 }
14303 const auto rlet = static_cast<enum dwarf_range_list_entry>(*buffer++);
14304 switch (rlet)
14305 {
14306 case DW_RLE_end_of_list:
14307 break;
14308 case DW_RLE_base_address:
14309 if (buffer + cu->header.addr_size > buf_end)
14310 {
14311 overflow = true;
14312 break;
14313 }
14314 base = cu->header.read_address (obfd, buffer, &bytes_read);
14315 buffer += bytes_read;
14316 break;
14317 case DW_RLE_base_addressx:
14318 addr_index = read_unsigned_leb128 (obfd, buffer, &bytes_read);
14319 buffer += bytes_read;
14320 base = read_addr_index (cu, addr_index);
14321 break;
14322 case DW_RLE_start_length:
14323 if (buffer + cu->header.addr_size > buf_end)
14324 {
14325 overflow = true;
14326 break;
14327 }
14328 range_beginning = cu->header.read_address (obfd, buffer,
14329 &bytes_read);
14330 buffer += bytes_read;
14331 range_end = (range_beginning
14332 + read_unsigned_leb128 (obfd, buffer, &bytes_read));
14333 buffer += bytes_read;
14334 if (buffer > buf_end)
14335 {
14336 overflow = true;
14337 break;
14338 }
14339 break;
14340 case DW_RLE_startx_length:
14341 addr_index = read_unsigned_leb128 (obfd, buffer, &bytes_read);
14342 buffer += bytes_read;
14343 range_beginning = read_addr_index (cu, addr_index);
14344 if (buffer > buf_end)
14345 {
14346 overflow = true;
14347 break;
14348 }
14349 range_end = (range_beginning
14350 + read_unsigned_leb128 (obfd, buffer, &bytes_read));
14351 buffer += bytes_read;
14352 break;
14353 case DW_RLE_offset_pair:
14354 range_beginning = read_unsigned_leb128 (obfd, buffer, &bytes_read);
14355 buffer += bytes_read;
14356 if (buffer > buf_end)
14357 {
14358 overflow = true;
14359 break;
14360 }
14361 range_end = read_unsigned_leb128 (obfd, buffer, &bytes_read);
14362 buffer += bytes_read;
14363 if (buffer > buf_end)
14364 {
14365 overflow = true;
14366 break;
14367 }
14368 break;
14369 case DW_RLE_start_end:
14370 if (buffer + 2 * cu->header.addr_size > buf_end)
14371 {
14372 overflow = true;
14373 break;
14374 }
14375 range_beginning = cu->header.read_address (obfd, buffer,
14376 &bytes_read);
14377 buffer += bytes_read;
14378 range_end = cu->header.read_address (obfd, buffer, &bytes_read);
14379 buffer += bytes_read;
14380 break;
14381 case DW_RLE_startx_endx:
14382 addr_index = read_unsigned_leb128 (obfd, buffer, &bytes_read);
14383 buffer += bytes_read;
14384 range_beginning = read_addr_index (cu, addr_index);
14385 if (buffer > buf_end)
14386 {
14387 overflow = true;
14388 break;
14389 }
14390 addr_index = read_unsigned_leb128 (obfd, buffer, &bytes_read);
14391 buffer += bytes_read;
14392 range_end = read_addr_index (cu, addr_index);
14393 break;
14394 default:
14395 complaint (_("Invalid .debug_rnglists data (no base address)"));
14396 return false;
14397 }
14398 if (rlet == DW_RLE_end_of_list || overflow)
14399 break;
14400 if (rlet == DW_RLE_base_address)
14401 continue;
14402
14403 if (range_beginning > range_end)
14404 {
14405 /* Inverted range entries are invalid. */
14406 complaint (_("Invalid .debug_rnglists data (inverted range)"));
14407 return false;
14408 }
14409
14410 /* Empty range entries have no effect. */
14411 if (range_beginning == range_end)
14412 continue;
14413
14414 /* Only DW_RLE_offset_pair needs the base address added. */
14415 if (rlet == DW_RLE_offset_pair)
14416 {
14417 if (!base.has_value ())
14418 {
14419 /* We have no valid base address for the DW_RLE_offset_pair. */
14420 complaint (_("Invalid .debug_rnglists data (no base address for "
14421 "DW_RLE_offset_pair)"));
14422 return false;
14423 }
14424
14425 range_beginning += *base;
14426 range_end += *base;
14427 }
14428
14429 /* A not-uncommon case of bad debug info.
14430 Don't pollute the addrmap with bad data. */
14431 if (range_beginning + baseaddr == 0
14432 && !per_objfile->per_bfd->has_section_at_zero)
14433 {
14434 complaint (_(".debug_rnglists entry has start address of zero"
14435 " [in module %s]"), objfile_name (objfile));
14436 continue;
14437 }
14438
14439 callback (range_beginning, range_end);
14440 }
14441
14442 if (overflow)
14443 {
14444 complaint (_("Offset %d is not terminated "
14445 "for DW_AT_ranges attribute"),
14446 offset);
14447 return false;
14448 }
14449
14450 return true;
14451 }
14452
14453 /* Call CALLBACK from DW_AT_ranges attribute value OFFSET reading .debug_ranges.
14454 Callback's type should be:
14455 void (CORE_ADDR range_beginning, CORE_ADDR range_end)
14456 Return 1 if the attributes are present and valid, otherwise, return 0. */
14457
14458 template <typename Callback>
14459 static int
14460 dwarf2_ranges_process (unsigned offset, struct dwarf2_cu *cu, dwarf_tag tag,
14461 Callback &&callback)
14462 {
14463 dwarf2_per_objfile *per_objfile = cu->per_objfile;
14464 struct objfile *objfile = per_objfile->objfile;
14465 struct comp_unit_head *cu_header = &cu->header;
14466 bfd *obfd = objfile->obfd;
14467 unsigned int addr_size = cu_header->addr_size;
14468 CORE_ADDR mask = ~(~(CORE_ADDR)1 << (addr_size * 8 - 1));
14469 /* Base address selection entry. */
14470 gdb::optional<CORE_ADDR> base;
14471 unsigned int dummy;
14472 const gdb_byte *buffer;
14473 CORE_ADDR baseaddr;
14474
14475 if (cu_header->version >= 5)
14476 return dwarf2_rnglists_process (offset, cu, tag, callback);
14477
14478 base = cu->base_address;
14479
14480 per_objfile->per_bfd->ranges.read (objfile);
14481 if (offset >= per_objfile->per_bfd->ranges.size)
14482 {
14483 complaint (_("Offset %d out of bounds for DW_AT_ranges attribute"),
14484 offset);
14485 return 0;
14486 }
14487 buffer = per_objfile->per_bfd->ranges.buffer + offset;
14488
14489 baseaddr = objfile->text_section_offset ();
14490
14491 while (1)
14492 {
14493 CORE_ADDR range_beginning, range_end;
14494
14495 range_beginning = cu->header.read_address (obfd, buffer, &dummy);
14496 buffer += addr_size;
14497 range_end = cu->header.read_address (obfd, buffer, &dummy);
14498 buffer += addr_size;
14499 offset += 2 * addr_size;
14500
14501 /* An end of list marker is a pair of zero addresses. */
14502 if (range_beginning == 0 && range_end == 0)
14503 /* Found the end of list entry. */
14504 break;
14505
14506 /* Each base address selection entry is a pair of 2 values.
14507 The first is the largest possible address, the second is
14508 the base address. Check for a base address here. */
14509 if ((range_beginning & mask) == mask)
14510 {
14511 /* If we found the largest possible address, then we already
14512 have the base address in range_end. */
14513 base = range_end;
14514 continue;
14515 }
14516
14517 if (!base.has_value ())
14518 {
14519 /* We have no valid base address for the ranges
14520 data. */
14521 complaint (_("Invalid .debug_ranges data (no base address)"));
14522 return 0;
14523 }
14524
14525 if (range_beginning > range_end)
14526 {
14527 /* Inverted range entries are invalid. */
14528 complaint (_("Invalid .debug_ranges data (inverted range)"));
14529 return 0;
14530 }
14531
14532 /* Empty range entries have no effect. */
14533 if (range_beginning == range_end)
14534 continue;
14535
14536 range_beginning += *base;
14537 range_end += *base;
14538
14539 /* A not-uncommon case of bad debug info.
14540 Don't pollute the addrmap with bad data. */
14541 if (range_beginning + baseaddr == 0
14542 && !per_objfile->per_bfd->has_section_at_zero)
14543 {
14544 complaint (_(".debug_ranges entry has start address of zero"
14545 " [in module %s]"), objfile_name (objfile));
14546 continue;
14547 }
14548
14549 callback (range_beginning, range_end);
14550 }
14551
14552 return 1;
14553 }
14554
14555 /* Get low and high pc attributes from DW_AT_ranges attribute value OFFSET.
14556 Return 1 if the attributes are present and valid, otherwise, return 0.
14557 If RANGES_PST is not NULL we should setup `objfile->psymtabs_addrmap'. */
14558
14559 static int
14560 dwarf2_ranges_read (unsigned offset, CORE_ADDR *low_return,
14561 CORE_ADDR *high_return, struct dwarf2_cu *cu,
14562 dwarf2_psymtab *ranges_pst, dwarf_tag tag)
14563 {
14564 struct objfile *objfile = cu->per_objfile->objfile;
14565 struct gdbarch *gdbarch = objfile->arch ();
14566 const CORE_ADDR baseaddr = objfile->text_section_offset ();
14567 int low_set = 0;
14568 CORE_ADDR low = 0;
14569 CORE_ADDR high = 0;
14570 int retval;
14571
14572 retval = dwarf2_ranges_process (offset, cu, tag,
14573 [&] (CORE_ADDR range_beginning, CORE_ADDR range_end)
14574 {
14575 if (ranges_pst != NULL)
14576 {
14577 CORE_ADDR lowpc;
14578 CORE_ADDR highpc;
14579
14580 lowpc = (gdbarch_adjust_dwarf2_addr (gdbarch,
14581 range_beginning + baseaddr)
14582 - baseaddr);
14583 highpc = (gdbarch_adjust_dwarf2_addr (gdbarch,
14584 range_end + baseaddr)
14585 - baseaddr);
14586 addrmap_set_empty (objfile->partial_symtabs->psymtabs_addrmap,
14587 lowpc, highpc - 1, ranges_pst);
14588 }
14589
14590 /* FIXME: This is recording everything as a low-high
14591 segment of consecutive addresses. We should have a
14592 data structure for discontiguous block ranges
14593 instead. */
14594 if (! low_set)
14595 {
14596 low = range_beginning;
14597 high = range_end;
14598 low_set = 1;
14599 }
14600 else
14601 {
14602 if (range_beginning < low)
14603 low = range_beginning;
14604 if (range_end > high)
14605 high = range_end;
14606 }
14607 });
14608 if (!retval)
14609 return 0;
14610
14611 if (! low_set)
14612 /* If the first entry is an end-of-list marker, the range
14613 describes an empty scope, i.e. no instructions. */
14614 return 0;
14615
14616 if (low_return)
14617 *low_return = low;
14618 if (high_return)
14619 *high_return = high;
14620 return 1;
14621 }
14622
14623 /* Get low and high pc attributes from a die. See enum pc_bounds_kind
14624 definition for the return value. *LOWPC and *HIGHPC are set iff
14625 neither PC_BOUNDS_NOT_PRESENT nor PC_BOUNDS_INVALID are returned. */
14626
14627 static enum pc_bounds_kind
14628 dwarf2_get_pc_bounds (struct die_info *die, CORE_ADDR *lowpc,
14629 CORE_ADDR *highpc, struct dwarf2_cu *cu,
14630 dwarf2_psymtab *pst)
14631 {
14632 dwarf2_per_objfile *per_objfile = cu->per_objfile;
14633 struct attribute *attr;
14634 struct attribute *attr_high;
14635 CORE_ADDR low = 0;
14636 CORE_ADDR high = 0;
14637 enum pc_bounds_kind ret;
14638
14639 attr_high = dwarf2_attr (die, DW_AT_high_pc, cu);
14640 if (attr_high)
14641 {
14642 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
14643 if (attr != nullptr)
14644 {
14645 low = attr->as_address ();
14646 high = attr_high->as_address ();
14647 if (cu->header.version >= 4 && attr_high->form_is_constant ())
14648 high += low;
14649 }
14650 else
14651 /* Found high w/o low attribute. */
14652 return PC_BOUNDS_INVALID;
14653
14654 /* Found consecutive range of addresses. */
14655 ret = PC_BOUNDS_HIGH_LOW;
14656 }
14657 else
14658 {
14659 attr = dwarf2_attr (die, DW_AT_ranges, cu);
14660 if (attr != nullptr && attr->form_is_unsigned ())
14661 {
14662 /* DW_AT_rnglists_base does not apply to DIEs from the DWO skeleton.
14663 We take advantage of the fact that DW_AT_ranges does not appear
14664 in DW_TAG_compile_unit of DWO files.
14665
14666 Attributes of the form DW_FORM_rnglistx have already had their
14667 value changed by read_rnglist_index and already include
14668 DW_AT_rnglists_base, so don't need to add the ranges base,
14669 either. */
14670 int need_ranges_base = (die->tag != DW_TAG_compile_unit
14671 && attr->form != DW_FORM_rnglistx);
14672 unsigned int ranges_offset = (attr->as_unsigned ()
14673 + (need_ranges_base
14674 ? cu->ranges_base
14675 : 0));
14676
14677 /* Value of the DW_AT_ranges attribute is the offset in the
14678 .debug_ranges section. */
14679 if (!dwarf2_ranges_read (ranges_offset, &low, &high, cu, pst,
14680 die->tag))
14681 return PC_BOUNDS_INVALID;
14682 /* Found discontinuous range of addresses. */
14683 ret = PC_BOUNDS_RANGES;
14684 }
14685 else
14686 return PC_BOUNDS_NOT_PRESENT;
14687 }
14688
14689 /* partial_die_info::read has also the strict LOW < HIGH requirement. */
14690 if (high <= low)
14691 return PC_BOUNDS_INVALID;
14692
14693 /* When using the GNU linker, .gnu.linkonce. sections are used to
14694 eliminate duplicate copies of functions and vtables and such.
14695 The linker will arbitrarily choose one and discard the others.
14696 The AT_*_pc values for such functions refer to local labels in
14697 these sections. If the section from that file was discarded, the
14698 labels are not in the output, so the relocs get a value of 0.
14699 If this is a discarded function, mark the pc bounds as invalid,
14700 so that GDB will ignore it. */
14701 if (low == 0 && !per_objfile->per_bfd->has_section_at_zero)
14702 return PC_BOUNDS_INVALID;
14703
14704 *lowpc = low;
14705 if (highpc)
14706 *highpc = high;
14707 return ret;
14708 }
14709
14710 /* Assuming that DIE represents a subprogram DIE or a lexical block, get
14711 its low and high PC addresses. Do nothing if these addresses could not
14712 be determined. Otherwise, set LOWPC to the low address if it is smaller,
14713 and HIGHPC to the high address if greater than HIGHPC. */
14714
14715 static void
14716 dwarf2_get_subprogram_pc_bounds (struct die_info *die,
14717 CORE_ADDR *lowpc, CORE_ADDR *highpc,
14718 struct dwarf2_cu *cu)
14719 {
14720 CORE_ADDR low, high;
14721 struct die_info *child = die->child;
14722
14723 if (dwarf2_get_pc_bounds (die, &low, &high, cu, NULL) >= PC_BOUNDS_RANGES)
14724 {
14725 *lowpc = std::min (*lowpc, low);
14726 *highpc = std::max (*highpc, high);
14727 }
14728
14729 /* If the language does not allow nested subprograms (either inside
14730 subprograms or lexical blocks), we're done. */
14731 if (cu->language != language_ada)
14732 return;
14733
14734 /* Check all the children of the given DIE. If it contains nested
14735 subprograms, then check their pc bounds. Likewise, we need to
14736 check lexical blocks as well, as they may also contain subprogram
14737 definitions. */
14738 while (child && child->tag)
14739 {
14740 if (child->tag == DW_TAG_subprogram
14741 || child->tag == DW_TAG_lexical_block)
14742 dwarf2_get_subprogram_pc_bounds (child, lowpc, highpc, cu);
14743 child = child->sibling;
14744 }
14745 }
14746
14747 /* Get the low and high pc's represented by the scope DIE, and store
14748 them in *LOWPC and *HIGHPC. If the correct values can't be
14749 determined, set *LOWPC to -1 and *HIGHPC to 0. */
14750
14751 static void
14752 get_scope_pc_bounds (struct die_info *die,
14753 CORE_ADDR *lowpc, CORE_ADDR *highpc,
14754 struct dwarf2_cu *cu)
14755 {
14756 CORE_ADDR best_low = (CORE_ADDR) -1;
14757 CORE_ADDR best_high = (CORE_ADDR) 0;
14758 CORE_ADDR current_low, current_high;
14759
14760 if (dwarf2_get_pc_bounds (die, &current_low, &current_high, cu, NULL)
14761 >= PC_BOUNDS_RANGES)
14762 {
14763 best_low = current_low;
14764 best_high = current_high;
14765 }
14766 else
14767 {
14768 struct die_info *child = die->child;
14769
14770 while (child && child->tag)
14771 {
14772 switch (child->tag) {
14773 case DW_TAG_subprogram:
14774 dwarf2_get_subprogram_pc_bounds (child, &best_low, &best_high, cu);
14775 break;
14776 case DW_TAG_namespace:
14777 case DW_TAG_module:
14778 /* FIXME: carlton/2004-01-16: Should we do this for
14779 DW_TAG_class_type/DW_TAG_structure_type, too? I think
14780 that current GCC's always emit the DIEs corresponding
14781 to definitions of methods of classes as children of a
14782 DW_TAG_compile_unit or DW_TAG_namespace (as opposed to
14783 the DIEs giving the declarations, which could be
14784 anywhere). But I don't see any reason why the
14785 standards says that they have to be there. */
14786 get_scope_pc_bounds (child, &current_low, &current_high, cu);
14787
14788 if (current_low != ((CORE_ADDR) -1))
14789 {
14790 best_low = std::min (best_low, current_low);
14791 best_high = std::max (best_high, current_high);
14792 }
14793 break;
14794 default:
14795 /* Ignore. */
14796 break;
14797 }
14798
14799 child = child->sibling;
14800 }
14801 }
14802
14803 *lowpc = best_low;
14804 *highpc = best_high;
14805 }
14806
14807 /* Record the address ranges for BLOCK, offset by BASEADDR, as given
14808 in DIE. */
14809
14810 static void
14811 dwarf2_record_block_ranges (struct die_info *die, struct block *block,
14812 CORE_ADDR baseaddr, struct dwarf2_cu *cu)
14813 {
14814 struct objfile *objfile = cu->per_objfile->objfile;
14815 struct gdbarch *gdbarch = objfile->arch ();
14816 struct attribute *attr;
14817 struct attribute *attr_high;
14818
14819 attr_high = dwarf2_attr (die, DW_AT_high_pc, cu);
14820 if (attr_high)
14821 {
14822 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
14823 if (attr != nullptr)
14824 {
14825 CORE_ADDR low = attr->as_address ();
14826 CORE_ADDR high = attr_high->as_address ();
14827
14828 if (cu->header.version >= 4 && attr_high->form_is_constant ())
14829 high += low;
14830
14831 low = gdbarch_adjust_dwarf2_addr (gdbarch, low + baseaddr);
14832 high = gdbarch_adjust_dwarf2_addr (gdbarch, high + baseaddr);
14833 cu->get_builder ()->record_block_range (block, low, high - 1);
14834 }
14835 }
14836
14837 attr = dwarf2_attr (die, DW_AT_ranges, cu);
14838 if (attr != nullptr && attr->form_is_unsigned ())
14839 {
14840 /* DW_AT_rnglists_base does not apply to DIEs from the DWO skeleton.
14841 We take advantage of the fact that DW_AT_ranges does not appear
14842 in DW_TAG_compile_unit of DWO files.
14843
14844 Attributes of the form DW_FORM_rnglistx have already had their
14845 value changed by read_rnglist_index and already include
14846 DW_AT_rnglists_base, so don't need to add the ranges base,
14847 either. */
14848 int need_ranges_base = (die->tag != DW_TAG_compile_unit
14849 && attr->form != DW_FORM_rnglistx);
14850
14851 /* The value of the DW_AT_ranges attribute is the offset of the
14852 address range list in the .debug_ranges section. */
14853 unsigned long offset = (attr->as_unsigned ()
14854 + (need_ranges_base ? cu->ranges_base : 0));
14855
14856 std::vector<blockrange> blockvec;
14857 dwarf2_ranges_process (offset, cu, die->tag,
14858 [&] (CORE_ADDR start, CORE_ADDR end)
14859 {
14860 start += baseaddr;
14861 end += baseaddr;
14862 start = gdbarch_adjust_dwarf2_addr (gdbarch, start);
14863 end = gdbarch_adjust_dwarf2_addr (gdbarch, end);
14864 cu->get_builder ()->record_block_range (block, start, end - 1);
14865 blockvec.emplace_back (start, end);
14866 });
14867
14868 BLOCK_RANGES(block) = make_blockranges (objfile, blockvec);
14869 }
14870 }
14871
14872 /* Check whether the producer field indicates either of GCC < 4.6, or the
14873 Intel C/C++ compiler, and cache the result in CU. */
14874
14875 static void
14876 check_producer (struct dwarf2_cu *cu)
14877 {
14878 int major, minor;
14879
14880 if (cu->producer == NULL)
14881 {
14882 /* For unknown compilers expect their behavior is DWARF version
14883 compliant.
14884
14885 GCC started to support .debug_types sections by -gdwarf-4 since
14886 gcc-4.5.x. As the .debug_types sections are missing DW_AT_producer
14887 for their space efficiency GDB cannot workaround gcc-4.5.x -gdwarf-4
14888 combination. gcc-4.5.x -gdwarf-4 binaries have DW_AT_accessibility
14889 interpreted incorrectly by GDB now - GCC PR debug/48229. */
14890 }
14891 else if (producer_is_gcc (cu->producer, &major, &minor))
14892 {
14893 cu->producer_is_gxx_lt_4_6 = major < 4 || (major == 4 && minor < 6);
14894 cu->producer_is_gcc_lt_4_3 = major < 4 || (major == 4 && minor < 3);
14895 }
14896 else if (producer_is_icc (cu->producer, &major, &minor))
14897 {
14898 cu->producer_is_icc = true;
14899 cu->producer_is_icc_lt_14 = major < 14;
14900 }
14901 else if (startswith (cu->producer, "CodeWarrior S12/L-ISA"))
14902 cu->producer_is_codewarrior = true;
14903 else
14904 {
14905 /* For other non-GCC compilers, expect their behavior is DWARF version
14906 compliant. */
14907 }
14908
14909 cu->checked_producer = true;
14910 }
14911
14912 /* Check for GCC PR debug/45124 fix which is not present in any G++ version up
14913 to 4.5.any while it is present already in G++ 4.6.0 - the PR has been fixed
14914 during 4.6.0 experimental. */
14915
14916 static bool
14917 producer_is_gxx_lt_4_6 (struct dwarf2_cu *cu)
14918 {
14919 if (!cu->checked_producer)
14920 check_producer (cu);
14921
14922 return cu->producer_is_gxx_lt_4_6;
14923 }
14924
14925
14926 /* Codewarrior (at least as of version 5.0.40) generates dwarf line information
14927 with incorrect is_stmt attributes. */
14928
14929 static bool
14930 producer_is_codewarrior (struct dwarf2_cu *cu)
14931 {
14932 if (!cu->checked_producer)
14933 check_producer (cu);
14934
14935 return cu->producer_is_codewarrior;
14936 }
14937
14938 /* Return the accessibility of DIE, as given by DW_AT_accessibility.
14939 If that attribute is not available, return the appropriate
14940 default. */
14941
14942 static enum dwarf_access_attribute
14943 dwarf2_access_attribute (struct die_info *die, struct dwarf2_cu *cu)
14944 {
14945 attribute *attr = dwarf2_attr (die, DW_AT_accessibility, cu);
14946 if (attr != nullptr)
14947 {
14948 LONGEST value = attr->constant_value (-1);
14949 if (value == DW_ACCESS_public
14950 || value == DW_ACCESS_protected
14951 || value == DW_ACCESS_private)
14952 return (dwarf_access_attribute) value;
14953 complaint (_("Unhandled DW_AT_accessibility value (%s)"),
14954 plongest (value));
14955 }
14956
14957 if (cu->header.version < 3 || producer_is_gxx_lt_4_6 (cu))
14958 {
14959 /* The default DWARF 2 accessibility for members is public, the default
14960 accessibility for inheritance is private. */
14961
14962 if (die->tag != DW_TAG_inheritance)
14963 return DW_ACCESS_public;
14964 else
14965 return DW_ACCESS_private;
14966 }
14967 else
14968 {
14969 /* DWARF 3+ defines the default accessibility a different way. The same
14970 rules apply now for DW_TAG_inheritance as for the members and it only
14971 depends on the container kind. */
14972
14973 if (die->parent->tag == DW_TAG_class_type)
14974 return DW_ACCESS_private;
14975 else
14976 return DW_ACCESS_public;
14977 }
14978 }
14979
14980 /* Look for DW_AT_data_member_location. Set *OFFSET to the byte
14981 offset. If the attribute was not found return 0, otherwise return
14982 1. If it was found but could not properly be handled, set *OFFSET
14983 to 0. */
14984
14985 static int
14986 handle_data_member_location (struct die_info *die, struct dwarf2_cu *cu,
14987 LONGEST *offset)
14988 {
14989 struct attribute *attr;
14990
14991 attr = dwarf2_attr (die, DW_AT_data_member_location, cu);
14992 if (attr != NULL)
14993 {
14994 *offset = 0;
14995
14996 /* Note that we do not check for a section offset first here.
14997 This is because DW_AT_data_member_location is new in DWARF 4,
14998 so if we see it, we can assume that a constant form is really
14999 a constant and not a section offset. */
15000 if (attr->form_is_constant ())
15001 *offset = attr->constant_value (0);
15002 else if (attr->form_is_section_offset ())
15003 dwarf2_complex_location_expr_complaint ();
15004 else if (attr->form_is_block ())
15005 *offset = decode_locdesc (attr->as_block (), cu);
15006 else
15007 dwarf2_complex_location_expr_complaint ();
15008
15009 return 1;
15010 }
15011
15012 return 0;
15013 }
15014
15015 /* Look for DW_AT_data_member_location and store the results in FIELD. */
15016
15017 static void
15018 handle_data_member_location (struct die_info *die, struct dwarf2_cu *cu,
15019 struct field *field)
15020 {
15021 struct attribute *attr;
15022
15023 attr = dwarf2_attr (die, DW_AT_data_member_location, cu);
15024 if (attr != NULL)
15025 {
15026 if (attr->form_is_constant ())
15027 {
15028 LONGEST offset = attr->constant_value (0);
15029 SET_FIELD_BITPOS (*field, offset * bits_per_byte);
15030 }
15031 else if (attr->form_is_section_offset ())
15032 dwarf2_complex_location_expr_complaint ();
15033 else if (attr->form_is_block ())
15034 {
15035 bool handled;
15036 CORE_ADDR offset = decode_locdesc (attr->as_block (), cu, &handled);
15037 if (handled)
15038 SET_FIELD_BITPOS (*field, offset * bits_per_byte);
15039 else
15040 {
15041 dwarf2_per_objfile *per_objfile = cu->per_objfile;
15042 struct objfile *objfile = per_objfile->objfile;
15043 struct dwarf2_locexpr_baton *dlbaton
15044 = XOBNEW (&objfile->objfile_obstack,
15045 struct dwarf2_locexpr_baton);
15046 dlbaton->data = attr->as_block ()->data;
15047 dlbaton->size = attr->as_block ()->size;
15048 /* When using this baton, we want to compute the address
15049 of the field, not the value. This is why
15050 is_reference is set to false here. */
15051 dlbaton->is_reference = false;
15052 dlbaton->per_objfile = per_objfile;
15053 dlbaton->per_cu = cu->per_cu;
15054
15055 SET_FIELD_DWARF_BLOCK (*field, dlbaton);
15056 }
15057 }
15058 else
15059 dwarf2_complex_location_expr_complaint ();
15060 }
15061 }
15062
15063 /* Add an aggregate field to the field list. */
15064
15065 static void
15066 dwarf2_add_field (struct field_info *fip, struct die_info *die,
15067 struct dwarf2_cu *cu)
15068 {
15069 struct objfile *objfile = cu->per_objfile->objfile;
15070 struct gdbarch *gdbarch = objfile->arch ();
15071 struct nextfield *new_field;
15072 struct attribute *attr;
15073 struct field *fp;
15074 const char *fieldname = "";
15075
15076 if (die->tag == DW_TAG_inheritance)
15077 {
15078 fip->baseclasses.emplace_back ();
15079 new_field = &fip->baseclasses.back ();
15080 }
15081 else
15082 {
15083 fip->fields.emplace_back ();
15084 new_field = &fip->fields.back ();
15085 }
15086
15087 new_field->offset = die->sect_off;
15088
15089 new_field->accessibility = dwarf2_access_attribute (die, cu);
15090 if (new_field->accessibility != DW_ACCESS_public)
15091 fip->non_public_fields = true;
15092
15093 attr = dwarf2_attr (die, DW_AT_virtuality, cu);
15094 if (attr != nullptr)
15095 new_field->virtuality = attr->as_virtuality ();
15096 else
15097 new_field->virtuality = DW_VIRTUALITY_none;
15098
15099 fp = &new_field->field;
15100
15101 if (die->tag == DW_TAG_member && ! die_is_declaration (die, cu))
15102 {
15103 /* Data member other than a C++ static data member. */
15104
15105 /* Get type of field. */
15106 fp->set_type (die_type (die, cu));
15107
15108 SET_FIELD_BITPOS (*fp, 0);
15109
15110 /* Get bit size of field (zero if none). */
15111 attr = dwarf2_attr (die, DW_AT_bit_size, cu);
15112 if (attr != nullptr)
15113 {
15114 FIELD_BITSIZE (*fp) = attr->constant_value (0);
15115 }
15116 else
15117 {
15118 FIELD_BITSIZE (*fp) = 0;
15119 }
15120
15121 /* Get bit offset of field. */
15122 handle_data_member_location (die, cu, fp);
15123 attr = dwarf2_attr (die, DW_AT_bit_offset, cu);
15124 if (attr != nullptr && attr->form_is_constant ())
15125 {
15126 if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
15127 {
15128 /* For big endian bits, the DW_AT_bit_offset gives the
15129 additional bit offset from the MSB of the containing
15130 anonymous object to the MSB of the field. We don't
15131 have to do anything special since we don't need to
15132 know the size of the anonymous object. */
15133 SET_FIELD_BITPOS (*fp, (FIELD_BITPOS (*fp)
15134 + attr->constant_value (0)));
15135 }
15136 else
15137 {
15138 /* For little endian bits, compute the bit offset to the
15139 MSB of the anonymous object, subtract off the number of
15140 bits from the MSB of the field to the MSB of the
15141 object, and then subtract off the number of bits of
15142 the field itself. The result is the bit offset of
15143 the LSB of the field. */
15144 int anonymous_size;
15145 int bit_offset = attr->constant_value (0);
15146
15147 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
15148 if (attr != nullptr && attr->form_is_constant ())
15149 {
15150 /* The size of the anonymous object containing
15151 the bit field is explicit, so use the
15152 indicated size (in bytes). */
15153 anonymous_size = attr->constant_value (0);
15154 }
15155 else
15156 {
15157 /* The size of the anonymous object containing
15158 the bit field must be inferred from the type
15159 attribute of the data member containing the
15160 bit field. */
15161 anonymous_size = TYPE_LENGTH (fp->type ());
15162 }
15163 SET_FIELD_BITPOS (*fp,
15164 (FIELD_BITPOS (*fp)
15165 + anonymous_size * bits_per_byte
15166 - bit_offset - FIELD_BITSIZE (*fp)));
15167 }
15168 }
15169 attr = dwarf2_attr (die, DW_AT_data_bit_offset, cu);
15170 if (attr != NULL)
15171 SET_FIELD_BITPOS (*fp, (FIELD_BITPOS (*fp)
15172 + attr->constant_value (0)));
15173
15174 /* Get name of field. */
15175 fieldname = dwarf2_name (die, cu);
15176 if (fieldname == NULL)
15177 fieldname = "";
15178
15179 /* The name is already allocated along with this objfile, so we don't
15180 need to duplicate it for the type. */
15181 fp->name = fieldname;
15182
15183 /* Change accessibility for artificial fields (e.g. virtual table
15184 pointer or virtual base class pointer) to private. */
15185 if (dwarf2_attr (die, DW_AT_artificial, cu))
15186 {
15187 FIELD_ARTIFICIAL (*fp) = 1;
15188 new_field->accessibility = DW_ACCESS_private;
15189 fip->non_public_fields = true;
15190 }
15191 }
15192 else if (die->tag == DW_TAG_member || die->tag == DW_TAG_variable)
15193 {
15194 /* C++ static member. */
15195
15196 /* NOTE: carlton/2002-11-05: It should be a DW_TAG_member that
15197 is a declaration, but all versions of G++ as of this writing
15198 (so through at least 3.2.1) incorrectly generate
15199 DW_TAG_variable tags. */
15200
15201 const char *physname;
15202
15203 /* Get name of field. */
15204 fieldname = dwarf2_name (die, cu);
15205 if (fieldname == NULL)
15206 return;
15207
15208 attr = dwarf2_attr (die, DW_AT_const_value, cu);
15209 if (attr
15210 /* Only create a symbol if this is an external value.
15211 new_symbol checks this and puts the value in the global symbol
15212 table, which we want. If it is not external, new_symbol
15213 will try to put the value in cu->list_in_scope which is wrong. */
15214 && dwarf2_flag_true_p (die, DW_AT_external, cu))
15215 {
15216 /* A static const member, not much different than an enum as far as
15217 we're concerned, except that we can support more types. */
15218 new_symbol (die, NULL, cu);
15219 }
15220
15221 /* Get physical name. */
15222 physname = dwarf2_physname (fieldname, die, cu);
15223
15224 /* The name is already allocated along with this objfile, so we don't
15225 need to duplicate it for the type. */
15226 SET_FIELD_PHYSNAME (*fp, physname ? physname : "");
15227 fp->set_type (die_type (die, cu));
15228 FIELD_NAME (*fp) = fieldname;
15229 }
15230 else if (die->tag == DW_TAG_inheritance)
15231 {
15232 /* C++ base class field. */
15233 handle_data_member_location (die, cu, fp);
15234 FIELD_BITSIZE (*fp) = 0;
15235 fp->set_type (die_type (die, cu));
15236 FIELD_NAME (*fp) = fp->type ()->name ();
15237 }
15238 else
15239 gdb_assert_not_reached ("missing case in dwarf2_add_field");
15240 }
15241
15242 /* Can the type given by DIE define another type? */
15243
15244 static bool
15245 type_can_define_types (const struct die_info *die)
15246 {
15247 switch (die->tag)
15248 {
15249 case DW_TAG_typedef:
15250 case DW_TAG_class_type:
15251 case DW_TAG_structure_type:
15252 case DW_TAG_union_type:
15253 case DW_TAG_enumeration_type:
15254 return true;
15255
15256 default:
15257 return false;
15258 }
15259 }
15260
15261 /* Add a type definition defined in the scope of the FIP's class. */
15262
15263 static void
15264 dwarf2_add_type_defn (struct field_info *fip, struct die_info *die,
15265 struct dwarf2_cu *cu)
15266 {
15267 struct decl_field fp;
15268 memset (&fp, 0, sizeof (fp));
15269
15270 gdb_assert (type_can_define_types (die));
15271
15272 /* Get name of field. NULL is okay here, meaning an anonymous type. */
15273 fp.name = dwarf2_name (die, cu);
15274 fp.type = read_type_die (die, cu);
15275
15276 /* Save accessibility. */
15277 dwarf_access_attribute accessibility = dwarf2_access_attribute (die, cu);
15278 switch (accessibility)
15279 {
15280 case DW_ACCESS_public:
15281 /* The assumed value if neither private nor protected. */
15282 break;
15283 case DW_ACCESS_private:
15284 fp.is_private = 1;
15285 break;
15286 case DW_ACCESS_protected:
15287 fp.is_protected = 1;
15288 break;
15289 }
15290
15291 if (die->tag == DW_TAG_typedef)
15292 fip->typedef_field_list.push_back (fp);
15293 else
15294 fip->nested_types_list.push_back (fp);
15295 }
15296
15297 /* A convenience typedef that's used when finding the discriminant
15298 field for a variant part. */
15299 typedef std::unordered_map<sect_offset, int, gdb::hash_enum<sect_offset>>
15300 offset_map_type;
15301
15302 /* Compute the discriminant range for a given variant. OBSTACK is
15303 where the results will be stored. VARIANT is the variant to
15304 process. IS_UNSIGNED indicates whether the discriminant is signed
15305 or unsigned. */
15306
15307 static const gdb::array_view<discriminant_range>
15308 convert_variant_range (struct obstack *obstack, const variant_field &variant,
15309 bool is_unsigned)
15310 {
15311 std::vector<discriminant_range> ranges;
15312
15313 if (variant.default_branch)
15314 return {};
15315
15316 if (variant.discr_list_data == nullptr)
15317 {
15318 discriminant_range r
15319 = {variant.discriminant_value, variant.discriminant_value};
15320 ranges.push_back (r);
15321 }
15322 else
15323 {
15324 gdb::array_view<const gdb_byte> data (variant.discr_list_data->data,
15325 variant.discr_list_data->size);
15326 while (!data.empty ())
15327 {
15328 if (data[0] != DW_DSC_range && data[0] != DW_DSC_label)
15329 {
15330 complaint (_("invalid discriminant marker: %d"), data[0]);
15331 break;
15332 }
15333 bool is_range = data[0] == DW_DSC_range;
15334 data = data.slice (1);
15335
15336 ULONGEST low, high;
15337 unsigned int bytes_read;
15338
15339 if (data.empty ())
15340 {
15341 complaint (_("DW_AT_discr_list missing low value"));
15342 break;
15343 }
15344 if (is_unsigned)
15345 low = read_unsigned_leb128 (nullptr, data.data (), &bytes_read);
15346 else
15347 low = (ULONGEST) read_signed_leb128 (nullptr, data.data (),
15348 &bytes_read);
15349 data = data.slice (bytes_read);
15350
15351 if (is_range)
15352 {
15353 if (data.empty ())
15354 {
15355 complaint (_("DW_AT_discr_list missing high value"));
15356 break;
15357 }
15358 if (is_unsigned)
15359 high = read_unsigned_leb128 (nullptr, data.data (),
15360 &bytes_read);
15361 else
15362 high = (LONGEST) read_signed_leb128 (nullptr, data.data (),
15363 &bytes_read);
15364 data = data.slice (bytes_read);
15365 }
15366 else
15367 high = low;
15368
15369 ranges.push_back ({ low, high });
15370 }
15371 }
15372
15373 discriminant_range *result = XOBNEWVEC (obstack, discriminant_range,
15374 ranges.size ());
15375 std::copy (ranges.begin (), ranges.end (), result);
15376 return gdb::array_view<discriminant_range> (result, ranges.size ());
15377 }
15378
15379 static const gdb::array_view<variant_part> create_variant_parts
15380 (struct obstack *obstack,
15381 const offset_map_type &offset_map,
15382 struct field_info *fi,
15383 const std::vector<variant_part_builder> &variant_parts);
15384
15385 /* Fill in a "struct variant" for a given variant field. RESULT is
15386 the variant to fill in. OBSTACK is where any needed allocations
15387 will be done. OFFSET_MAP holds the mapping from section offsets to
15388 fields for the type. FI describes the fields of the type we're
15389 processing. FIELD is the variant field we're converting. */
15390
15391 static void
15392 create_one_variant (variant &result, struct obstack *obstack,
15393 const offset_map_type &offset_map,
15394 struct field_info *fi, const variant_field &field)
15395 {
15396 result.discriminants = convert_variant_range (obstack, field, false);
15397 result.first_field = field.first_field + fi->baseclasses.size ();
15398 result.last_field = field.last_field + fi->baseclasses.size ();
15399 result.parts = create_variant_parts (obstack, offset_map, fi,
15400 field.variant_parts);
15401 }
15402
15403 /* Fill in a "struct variant_part" for a given variant part. RESULT
15404 is the variant part to fill in. OBSTACK is where any needed
15405 allocations will be done. OFFSET_MAP holds the mapping from
15406 section offsets to fields for the type. FI describes the fields of
15407 the type we're processing. BUILDER is the variant part to be
15408 converted. */
15409
15410 static void
15411 create_one_variant_part (variant_part &result,
15412 struct obstack *obstack,
15413 const offset_map_type &offset_map,
15414 struct field_info *fi,
15415 const variant_part_builder &builder)
15416 {
15417 auto iter = offset_map.find (builder.discriminant_offset);
15418 if (iter == offset_map.end ())
15419 {
15420 result.discriminant_index = -1;
15421 /* Doesn't matter. */
15422 result.is_unsigned = false;
15423 }
15424 else
15425 {
15426 result.discriminant_index = iter->second;
15427 result.is_unsigned
15428 = fi->fields[result.discriminant_index].field.type ()->is_unsigned ();
15429 }
15430
15431 size_t n = builder.variants.size ();
15432 variant *output = new (obstack) variant[n];
15433 for (size_t i = 0; i < n; ++i)
15434 create_one_variant (output[i], obstack, offset_map, fi,
15435 builder.variants[i]);
15436
15437 result.variants = gdb::array_view<variant> (output, n);
15438 }
15439
15440 /* Create a vector of variant parts that can be attached to a type.
15441 OBSTACK is where any needed allocations will be done. OFFSET_MAP
15442 holds the mapping from section offsets to fields for the type. FI
15443 describes the fields of the type we're processing. VARIANT_PARTS
15444 is the vector to convert. */
15445
15446 static const gdb::array_view<variant_part>
15447 create_variant_parts (struct obstack *obstack,
15448 const offset_map_type &offset_map,
15449 struct field_info *fi,
15450 const std::vector<variant_part_builder> &variant_parts)
15451 {
15452 if (variant_parts.empty ())
15453 return {};
15454
15455 size_t n = variant_parts.size ();
15456 variant_part *result = new (obstack) variant_part[n];
15457 for (size_t i = 0; i < n; ++i)
15458 create_one_variant_part (result[i], obstack, offset_map, fi,
15459 variant_parts[i]);
15460
15461 return gdb::array_view<variant_part> (result, n);
15462 }
15463
15464 /* Compute the variant part vector for FIP, attaching it to TYPE when
15465 done. */
15466
15467 static void
15468 add_variant_property (struct field_info *fip, struct type *type,
15469 struct dwarf2_cu *cu)
15470 {
15471 /* Map section offsets of fields to their field index. Note the
15472 field index here does not take the number of baseclasses into
15473 account. */
15474 offset_map_type offset_map;
15475 for (int i = 0; i < fip->fields.size (); ++i)
15476 offset_map[fip->fields[i].offset] = i;
15477
15478 struct objfile *objfile = cu->per_objfile->objfile;
15479 gdb::array_view<variant_part> parts
15480 = create_variant_parts (&objfile->objfile_obstack, offset_map, fip,
15481 fip->variant_parts);
15482
15483 struct dynamic_prop prop;
15484 prop.set_variant_parts ((gdb::array_view<variant_part> *)
15485 obstack_copy (&objfile->objfile_obstack, &parts,
15486 sizeof (parts)));
15487
15488 type->add_dyn_prop (DYN_PROP_VARIANT_PARTS, prop);
15489 }
15490
15491 /* Create the vector of fields, and attach it to the type. */
15492
15493 static void
15494 dwarf2_attach_fields_to_type (struct field_info *fip, struct type *type,
15495 struct dwarf2_cu *cu)
15496 {
15497 int nfields = fip->nfields ();
15498
15499 /* Record the field count, allocate space for the array of fields,
15500 and create blank accessibility bitfields if necessary. */
15501 type->set_num_fields (nfields);
15502 type->set_fields
15503 ((struct field *) TYPE_ZALLOC (type, sizeof (struct field) * nfields));
15504
15505 if (fip->non_public_fields && cu->language != language_ada)
15506 {
15507 ALLOCATE_CPLUS_STRUCT_TYPE (type);
15508
15509 TYPE_FIELD_PRIVATE_BITS (type) =
15510 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
15511 B_CLRALL (TYPE_FIELD_PRIVATE_BITS (type), nfields);
15512
15513 TYPE_FIELD_PROTECTED_BITS (type) =
15514 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
15515 B_CLRALL (TYPE_FIELD_PROTECTED_BITS (type), nfields);
15516
15517 TYPE_FIELD_IGNORE_BITS (type) =
15518 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
15519 B_CLRALL (TYPE_FIELD_IGNORE_BITS (type), nfields);
15520 }
15521
15522 /* If the type has baseclasses, allocate and clear a bit vector for
15523 TYPE_FIELD_VIRTUAL_BITS. */
15524 if (!fip->baseclasses.empty () && cu->language != language_ada)
15525 {
15526 int num_bytes = B_BYTES (fip->baseclasses.size ());
15527 unsigned char *pointer;
15528
15529 ALLOCATE_CPLUS_STRUCT_TYPE (type);
15530 pointer = (unsigned char *) TYPE_ALLOC (type, num_bytes);
15531 TYPE_FIELD_VIRTUAL_BITS (type) = pointer;
15532 B_CLRALL (TYPE_FIELD_VIRTUAL_BITS (type), fip->baseclasses.size ());
15533 TYPE_N_BASECLASSES (type) = fip->baseclasses.size ();
15534 }
15535
15536 if (!fip->variant_parts.empty ())
15537 add_variant_property (fip, type, cu);
15538
15539 /* Copy the saved-up fields into the field vector. */
15540 for (int i = 0; i < nfields; ++i)
15541 {
15542 struct nextfield &field
15543 = ((i < fip->baseclasses.size ()) ? fip->baseclasses[i]
15544 : fip->fields[i - fip->baseclasses.size ()]);
15545
15546 type->field (i) = field.field;
15547 switch (field.accessibility)
15548 {
15549 case DW_ACCESS_private:
15550 if (cu->language != language_ada)
15551 SET_TYPE_FIELD_PRIVATE (type, i);
15552 break;
15553
15554 case DW_ACCESS_protected:
15555 if (cu->language != language_ada)
15556 SET_TYPE_FIELD_PROTECTED (type, i);
15557 break;
15558
15559 case DW_ACCESS_public:
15560 break;
15561
15562 default:
15563 /* Unknown accessibility. Complain and treat it as public. */
15564 {
15565 complaint (_("unsupported accessibility %d"),
15566 field.accessibility);
15567 }
15568 break;
15569 }
15570 if (i < fip->baseclasses.size ())
15571 {
15572 switch (field.virtuality)
15573 {
15574 case DW_VIRTUALITY_virtual:
15575 case DW_VIRTUALITY_pure_virtual:
15576 if (cu->language == language_ada)
15577 error (_("unexpected virtuality in component of Ada type"));
15578 SET_TYPE_FIELD_VIRTUAL (type, i);
15579 break;
15580 }
15581 }
15582 }
15583 }
15584
15585 /* Return true if this member function is a constructor, false
15586 otherwise. */
15587
15588 static int
15589 dwarf2_is_constructor (struct die_info *die, struct dwarf2_cu *cu)
15590 {
15591 const char *fieldname;
15592 const char *type_name;
15593 int len;
15594
15595 if (die->parent == NULL)
15596 return 0;
15597
15598 if (die->parent->tag != DW_TAG_structure_type
15599 && die->parent->tag != DW_TAG_union_type
15600 && die->parent->tag != DW_TAG_class_type)
15601 return 0;
15602
15603 fieldname = dwarf2_name (die, cu);
15604 type_name = dwarf2_name (die->parent, cu);
15605 if (fieldname == NULL || type_name == NULL)
15606 return 0;
15607
15608 len = strlen (fieldname);
15609 return (strncmp (fieldname, type_name, len) == 0
15610 && (type_name[len] == '\0' || type_name[len] == '<'));
15611 }
15612
15613 /* Add a member function to the proper fieldlist. */
15614
15615 static void
15616 dwarf2_add_member_fn (struct field_info *fip, struct die_info *die,
15617 struct type *type, struct dwarf2_cu *cu)
15618 {
15619 struct objfile *objfile = cu->per_objfile->objfile;
15620 struct attribute *attr;
15621 int i;
15622 struct fnfieldlist *flp = nullptr;
15623 struct fn_field *fnp;
15624 const char *fieldname;
15625 struct type *this_type;
15626
15627 if (cu->language == language_ada)
15628 error (_("unexpected member function in Ada type"));
15629
15630 /* Get name of member function. */
15631 fieldname = dwarf2_name (die, cu);
15632 if (fieldname == NULL)
15633 return;
15634
15635 /* Look up member function name in fieldlist. */
15636 for (i = 0; i < fip->fnfieldlists.size (); i++)
15637 {
15638 if (strcmp (fip->fnfieldlists[i].name, fieldname) == 0)
15639 {
15640 flp = &fip->fnfieldlists[i];
15641 break;
15642 }
15643 }
15644
15645 /* Create a new fnfieldlist if necessary. */
15646 if (flp == nullptr)
15647 {
15648 fip->fnfieldlists.emplace_back ();
15649 flp = &fip->fnfieldlists.back ();
15650 flp->name = fieldname;
15651 i = fip->fnfieldlists.size () - 1;
15652 }
15653
15654 /* Create a new member function field and add it to the vector of
15655 fnfieldlists. */
15656 flp->fnfields.emplace_back ();
15657 fnp = &flp->fnfields.back ();
15658
15659 /* Delay processing of the physname until later. */
15660 if (cu->language == language_cplus)
15661 add_to_method_list (type, i, flp->fnfields.size () - 1, fieldname,
15662 die, cu);
15663 else
15664 {
15665 const char *physname = dwarf2_physname (fieldname, die, cu);
15666 fnp->physname = physname ? physname : "";
15667 }
15668
15669 fnp->type = alloc_type (objfile);
15670 this_type = read_type_die (die, cu);
15671 if (this_type && this_type->code () == TYPE_CODE_FUNC)
15672 {
15673 int nparams = this_type->num_fields ();
15674
15675 /* TYPE is the domain of this method, and THIS_TYPE is the type
15676 of the method itself (TYPE_CODE_METHOD). */
15677 smash_to_method_type (fnp->type, type,
15678 TYPE_TARGET_TYPE (this_type),
15679 this_type->fields (),
15680 this_type->num_fields (),
15681 this_type->has_varargs ());
15682
15683 /* Handle static member functions.
15684 Dwarf2 has no clean way to discern C++ static and non-static
15685 member functions. G++ helps GDB by marking the first
15686 parameter for non-static member functions (which is the this
15687 pointer) as artificial. We obtain this information from
15688 read_subroutine_type via TYPE_FIELD_ARTIFICIAL. */
15689 if (nparams == 0 || TYPE_FIELD_ARTIFICIAL (this_type, 0) == 0)
15690 fnp->voffset = VOFFSET_STATIC;
15691 }
15692 else
15693 complaint (_("member function type missing for '%s'"),
15694 dwarf2_full_name (fieldname, die, cu));
15695
15696 /* Get fcontext from DW_AT_containing_type if present. */
15697 if (dwarf2_attr (die, DW_AT_containing_type, cu) != NULL)
15698 fnp->fcontext = die_containing_type (die, cu);
15699
15700 /* dwarf2 doesn't have stubbed physical names, so the setting of is_const and
15701 is_volatile is irrelevant, as it is needed by gdb_mangle_name only. */
15702
15703 /* Get accessibility. */
15704 dwarf_access_attribute accessibility = dwarf2_access_attribute (die, cu);
15705 switch (accessibility)
15706 {
15707 case DW_ACCESS_private:
15708 fnp->is_private = 1;
15709 break;
15710 case DW_ACCESS_protected:
15711 fnp->is_protected = 1;
15712 break;
15713 }
15714
15715 /* Check for artificial methods. */
15716 attr = dwarf2_attr (die, DW_AT_artificial, cu);
15717 if (attr && attr->as_boolean ())
15718 fnp->is_artificial = 1;
15719
15720 /* Check for defaulted methods. */
15721 attr = dwarf2_attr (die, DW_AT_defaulted, cu);
15722 if (attr != nullptr)
15723 fnp->defaulted = attr->defaulted ();
15724
15725 /* Check for deleted methods. */
15726 attr = dwarf2_attr (die, DW_AT_deleted, cu);
15727 if (attr != nullptr && attr->as_boolean ())
15728 fnp->is_deleted = 1;
15729
15730 fnp->is_constructor = dwarf2_is_constructor (die, cu);
15731
15732 /* Get index in virtual function table if it is a virtual member
15733 function. For older versions of GCC, this is an offset in the
15734 appropriate virtual table, as specified by DW_AT_containing_type.
15735 For everyone else, it is an expression to be evaluated relative
15736 to the object address. */
15737
15738 attr = dwarf2_attr (die, DW_AT_vtable_elem_location, cu);
15739 if (attr != nullptr)
15740 {
15741 if (attr->form_is_block () && attr->as_block ()->size > 0)
15742 {
15743 struct dwarf_block *block = attr->as_block ();
15744
15745 if (block->data[0] == DW_OP_constu)
15746 {
15747 /* Old-style GCC. */
15748 fnp->voffset = decode_locdesc (block, cu) + 2;
15749 }
15750 else if (block->data[0] == DW_OP_deref
15751 || (block->size > 1
15752 && block->data[0] == DW_OP_deref_size
15753 && block->data[1] == cu->header.addr_size))
15754 {
15755 fnp->voffset = decode_locdesc (block, cu);
15756 if ((fnp->voffset % cu->header.addr_size) != 0)
15757 dwarf2_complex_location_expr_complaint ();
15758 else
15759 fnp->voffset /= cu->header.addr_size;
15760 fnp->voffset += 2;
15761 }
15762 else
15763 dwarf2_complex_location_expr_complaint ();
15764
15765 if (!fnp->fcontext)
15766 {
15767 /* If there is no `this' field and no DW_AT_containing_type,
15768 we cannot actually find a base class context for the
15769 vtable! */
15770 if (this_type->num_fields () == 0
15771 || !TYPE_FIELD_ARTIFICIAL (this_type, 0))
15772 {
15773 complaint (_("cannot determine context for virtual member "
15774 "function \"%s\" (offset %s)"),
15775 fieldname, sect_offset_str (die->sect_off));
15776 }
15777 else
15778 {
15779 fnp->fcontext
15780 = TYPE_TARGET_TYPE (this_type->field (0).type ());
15781 }
15782 }
15783 }
15784 else if (attr->form_is_section_offset ())
15785 {
15786 dwarf2_complex_location_expr_complaint ();
15787 }
15788 else
15789 {
15790 dwarf2_invalid_attrib_class_complaint ("DW_AT_vtable_elem_location",
15791 fieldname);
15792 }
15793 }
15794 else
15795 {
15796 attr = dwarf2_attr (die, DW_AT_virtuality, cu);
15797 if (attr != nullptr && attr->as_virtuality () != DW_VIRTUALITY_none)
15798 {
15799 /* GCC does this, as of 2008-08-25; PR debug/37237. */
15800 complaint (_("Member function \"%s\" (offset %s) is virtual "
15801 "but the vtable offset is not specified"),
15802 fieldname, sect_offset_str (die->sect_off));
15803 ALLOCATE_CPLUS_STRUCT_TYPE (type);
15804 TYPE_CPLUS_DYNAMIC (type) = 1;
15805 }
15806 }
15807 }
15808
15809 /* Create the vector of member function fields, and attach it to the type. */
15810
15811 static void
15812 dwarf2_attach_fn_fields_to_type (struct field_info *fip, struct type *type,
15813 struct dwarf2_cu *cu)
15814 {
15815 if (cu->language == language_ada)
15816 error (_("unexpected member functions in Ada type"));
15817
15818 ALLOCATE_CPLUS_STRUCT_TYPE (type);
15819 TYPE_FN_FIELDLISTS (type) = (struct fn_fieldlist *)
15820 TYPE_ALLOC (type,
15821 sizeof (struct fn_fieldlist) * fip->fnfieldlists.size ());
15822
15823 for (int i = 0; i < fip->fnfieldlists.size (); i++)
15824 {
15825 struct fnfieldlist &nf = fip->fnfieldlists[i];
15826 struct fn_fieldlist *fn_flp = &TYPE_FN_FIELDLIST (type, i);
15827
15828 TYPE_FN_FIELDLIST_NAME (type, i) = nf.name;
15829 TYPE_FN_FIELDLIST_LENGTH (type, i) = nf.fnfields.size ();
15830 fn_flp->fn_fields = (struct fn_field *)
15831 TYPE_ALLOC (type, sizeof (struct fn_field) * nf.fnfields.size ());
15832
15833 for (int k = 0; k < nf.fnfields.size (); ++k)
15834 fn_flp->fn_fields[k] = nf.fnfields[k];
15835 }
15836
15837 TYPE_NFN_FIELDS (type) = fip->fnfieldlists.size ();
15838 }
15839
15840 /* Returns non-zero if NAME is the name of a vtable member in CU's
15841 language, zero otherwise. */
15842 static int
15843 is_vtable_name (const char *name, struct dwarf2_cu *cu)
15844 {
15845 static const char vptr[] = "_vptr";
15846
15847 /* Look for the C++ form of the vtable. */
15848 if (startswith (name, vptr) && is_cplus_marker (name[sizeof (vptr) - 1]))
15849 return 1;
15850
15851 return 0;
15852 }
15853
15854 /* GCC outputs unnamed structures that are really pointers to member
15855 functions, with the ABI-specified layout. If TYPE describes
15856 such a structure, smash it into a member function type.
15857
15858 GCC shouldn't do this; it should just output pointer to member DIEs.
15859 This is GCC PR debug/28767. */
15860
15861 static void
15862 quirk_gcc_member_function_pointer (struct type *type, struct objfile *objfile)
15863 {
15864 struct type *pfn_type, *self_type, *new_type;
15865
15866 /* Check for a structure with no name and two children. */
15867 if (type->code () != TYPE_CODE_STRUCT || type->num_fields () != 2)
15868 return;
15869
15870 /* Check for __pfn and __delta members. */
15871 if (TYPE_FIELD_NAME (type, 0) == NULL
15872 || strcmp (TYPE_FIELD_NAME (type, 0), "__pfn") != 0
15873 || TYPE_FIELD_NAME (type, 1) == NULL
15874 || strcmp (TYPE_FIELD_NAME (type, 1), "__delta") != 0)
15875 return;
15876
15877 /* Find the type of the method. */
15878 pfn_type = type->field (0).type ();
15879 if (pfn_type == NULL
15880 || pfn_type->code () != TYPE_CODE_PTR
15881 || TYPE_TARGET_TYPE (pfn_type)->code () != TYPE_CODE_FUNC)
15882 return;
15883
15884 /* Look for the "this" argument. */
15885 pfn_type = TYPE_TARGET_TYPE (pfn_type);
15886 if (pfn_type->num_fields () == 0
15887 /* || pfn_type->field (0).type () == NULL */
15888 || pfn_type->field (0).type ()->code () != TYPE_CODE_PTR)
15889 return;
15890
15891 self_type = TYPE_TARGET_TYPE (pfn_type->field (0).type ());
15892 new_type = alloc_type (objfile);
15893 smash_to_method_type (new_type, self_type, TYPE_TARGET_TYPE (pfn_type),
15894 pfn_type->fields (), pfn_type->num_fields (),
15895 pfn_type->has_varargs ());
15896 smash_to_methodptr_type (type, new_type);
15897 }
15898
15899 /* Helper for quirk_ada_thick_pointer. If TYPE is an array type that
15900 requires rewriting, then copy it and return the updated copy.
15901 Otherwise return nullptr. */
15902
15903 static struct type *
15904 rewrite_array_type (struct type *type)
15905 {
15906 if (type->code () != TYPE_CODE_ARRAY)
15907 return nullptr;
15908
15909 struct type *index_type = type->index_type ();
15910 range_bounds *current_bounds = index_type->bounds ();
15911
15912 /* Handle multi-dimensional arrays. */
15913 struct type *new_target = rewrite_array_type (TYPE_TARGET_TYPE (type));
15914 if (new_target == nullptr)
15915 {
15916 /* Maybe we don't need to rewrite this array. */
15917 if (current_bounds->low.kind () == PROP_CONST
15918 && current_bounds->high.kind () == PROP_CONST)
15919 return nullptr;
15920 }
15921
15922 /* Either the target type was rewritten, or the bounds have to be
15923 updated. Either way we want to copy the type and update
15924 everything. */
15925 struct type *copy = copy_type (type);
15926 int nfields = copy->num_fields ();
15927 field *new_fields
15928 = ((struct field *) TYPE_ZALLOC (copy,
15929 nfields * sizeof (struct field)));
15930 memcpy (new_fields, copy->fields (), nfields * sizeof (struct field));
15931 copy->set_fields (new_fields);
15932 if (new_target != nullptr)
15933 TYPE_TARGET_TYPE (copy) = new_target;
15934
15935 struct type *index_copy = copy_type (index_type);
15936 range_bounds *bounds
15937 = (struct range_bounds *) TYPE_ZALLOC (index_copy,
15938 sizeof (range_bounds));
15939 *bounds = *current_bounds;
15940 bounds->low.set_const_val (1);
15941 bounds->high.set_const_val (0);
15942 index_copy->set_bounds (bounds);
15943 copy->set_index_type (index_copy);
15944
15945 return copy;
15946 }
15947
15948 /* While some versions of GCC will generate complicated DWARF for an
15949 array (see quirk_ada_thick_pointer), more recent versions were
15950 modified to emit an explicit thick pointer structure. However, in
15951 this case, the array still has DWARF expressions for its ranges,
15952 and these must be ignored. */
15953
15954 static void
15955 quirk_ada_thick_pointer_struct (struct die_info *die, struct dwarf2_cu *cu,
15956 struct type *type)
15957 {
15958 gdb_assert (cu->language == language_ada);
15959
15960 /* Check for a structure with two children. */
15961 if (type->code () != TYPE_CODE_STRUCT || type->num_fields () != 2)
15962 return;
15963
15964 /* Check for P_ARRAY and P_BOUNDS members. */
15965 if (TYPE_FIELD_NAME (type, 0) == NULL
15966 || strcmp (TYPE_FIELD_NAME (type, 0), "P_ARRAY") != 0
15967 || TYPE_FIELD_NAME (type, 1) == NULL
15968 || strcmp (TYPE_FIELD_NAME (type, 1), "P_BOUNDS") != 0)
15969 return;
15970
15971 /* Make sure we're looking at a pointer to an array. */
15972 if (type->field (0).type ()->code () != TYPE_CODE_PTR)
15973 return;
15974
15975 /* The Ada code already knows how to handle these types, so all that
15976 we need to do is turn the bounds into static bounds. However, we
15977 don't want to rewrite existing array or index types in-place,
15978 because those may be referenced in other contexts where this
15979 rewriting is undesirable. */
15980 struct type *new_ary_type
15981 = rewrite_array_type (TYPE_TARGET_TYPE (type->field (0).type ()));
15982 if (new_ary_type != nullptr)
15983 type->field (0).set_type (lookup_pointer_type (new_ary_type));
15984 }
15985
15986 /* If the DIE has a DW_AT_alignment attribute, return its value, doing
15987 appropriate error checking and issuing complaints if there is a
15988 problem. */
15989
15990 static ULONGEST
15991 get_alignment (struct dwarf2_cu *cu, struct die_info *die)
15992 {
15993 struct attribute *attr = dwarf2_attr (die, DW_AT_alignment, cu);
15994
15995 if (attr == nullptr)
15996 return 0;
15997
15998 if (!attr->form_is_constant ())
15999 {
16000 complaint (_("DW_AT_alignment must have constant form"
16001 " - DIE at %s [in module %s]"),
16002 sect_offset_str (die->sect_off),
16003 objfile_name (cu->per_objfile->objfile));
16004 return 0;
16005 }
16006
16007 LONGEST val = attr->constant_value (0);
16008 if (val < 0)
16009 {
16010 complaint (_("DW_AT_alignment value must not be negative"
16011 " - DIE at %s [in module %s]"),
16012 sect_offset_str (die->sect_off),
16013 objfile_name (cu->per_objfile->objfile));
16014 return 0;
16015 }
16016 ULONGEST align = val;
16017
16018 if (align == 0)
16019 {
16020 complaint (_("DW_AT_alignment value must not be zero"
16021 " - DIE at %s [in module %s]"),
16022 sect_offset_str (die->sect_off),
16023 objfile_name (cu->per_objfile->objfile));
16024 return 0;
16025 }
16026 if ((align & (align - 1)) != 0)
16027 {
16028 complaint (_("DW_AT_alignment value must be a power of 2"
16029 " - DIE at %s [in module %s]"),
16030 sect_offset_str (die->sect_off),
16031 objfile_name (cu->per_objfile->objfile));
16032 return 0;
16033 }
16034
16035 return align;
16036 }
16037
16038 /* If the DIE has a DW_AT_alignment attribute, use its value to set
16039 the alignment for TYPE. */
16040
16041 static void
16042 maybe_set_alignment (struct dwarf2_cu *cu, struct die_info *die,
16043 struct type *type)
16044 {
16045 if (!set_type_align (type, get_alignment (cu, die)))
16046 complaint (_("DW_AT_alignment value too large"
16047 " - DIE at %s [in module %s]"),
16048 sect_offset_str (die->sect_off),
16049 objfile_name (cu->per_objfile->objfile));
16050 }
16051
16052 /* Check if the given VALUE is a valid enum dwarf_calling_convention
16053 constant for a type, according to DWARF5 spec, Table 5.5. */
16054
16055 static bool
16056 is_valid_DW_AT_calling_convention_for_type (ULONGEST value)
16057 {
16058 switch (value)
16059 {
16060 case DW_CC_normal:
16061 case DW_CC_pass_by_reference:
16062 case DW_CC_pass_by_value:
16063 return true;
16064
16065 default:
16066 complaint (_("unrecognized DW_AT_calling_convention value "
16067 "(%s) for a type"), pulongest (value));
16068 return false;
16069 }
16070 }
16071
16072 /* Check if the given VALUE is a valid enum dwarf_calling_convention
16073 constant for a subroutine, according to DWARF5 spec, Table 3.3, and
16074 also according to GNU-specific values (see include/dwarf2.h). */
16075
16076 static bool
16077 is_valid_DW_AT_calling_convention_for_subroutine (ULONGEST value)
16078 {
16079 switch (value)
16080 {
16081 case DW_CC_normal:
16082 case DW_CC_program:
16083 case DW_CC_nocall:
16084 return true;
16085
16086 case DW_CC_GNU_renesas_sh:
16087 case DW_CC_GNU_borland_fastcall_i386:
16088 case DW_CC_GDB_IBM_OpenCL:
16089 return true;
16090
16091 default:
16092 complaint (_("unrecognized DW_AT_calling_convention value "
16093 "(%s) for a subroutine"), pulongest (value));
16094 return false;
16095 }
16096 }
16097
16098 /* Called when we find the DIE that starts a structure or union scope
16099 (definition) to create a type for the structure or union. Fill in
16100 the type's name and general properties; the members will not be
16101 processed until process_structure_scope. A symbol table entry for
16102 the type will also not be done until process_structure_scope (assuming
16103 the type has a name).
16104
16105 NOTE: we need to call these functions regardless of whether or not the
16106 DIE has a DW_AT_name attribute, since it might be an anonymous
16107 structure or union. This gets the type entered into our set of
16108 user defined types. */
16109
16110 static struct type *
16111 read_structure_type (struct die_info *die, struct dwarf2_cu *cu)
16112 {
16113 struct objfile *objfile = cu->per_objfile->objfile;
16114 struct type *type;
16115 struct attribute *attr;
16116 const char *name;
16117
16118 /* If the definition of this type lives in .debug_types, read that type.
16119 Don't follow DW_AT_specification though, that will take us back up
16120 the chain and we want to go down. */
16121 attr = die->attr (DW_AT_signature);
16122 if (attr != nullptr)
16123 {
16124 type = get_DW_AT_signature_type (die, attr, cu);
16125
16126 /* The type's CU may not be the same as CU.
16127 Ensure TYPE is recorded with CU in die_type_hash. */
16128 return set_die_type (die, type, cu);
16129 }
16130
16131 type = alloc_type (objfile);
16132 INIT_CPLUS_SPECIFIC (type);
16133
16134 name = dwarf2_name (die, cu);
16135 if (name != NULL)
16136 {
16137 if (cu->language == language_cplus
16138 || cu->language == language_d
16139 || cu->language == language_rust)
16140 {
16141 const char *full_name = dwarf2_full_name (name, die, cu);
16142
16143 /* dwarf2_full_name might have already finished building the DIE's
16144 type. If so, there is no need to continue. */
16145 if (get_die_type (die, cu) != NULL)
16146 return get_die_type (die, cu);
16147
16148 type->set_name (full_name);
16149 }
16150 else
16151 {
16152 /* The name is already allocated along with this objfile, so
16153 we don't need to duplicate it for the type. */
16154 type->set_name (name);
16155 }
16156 }
16157
16158 if (die->tag == DW_TAG_structure_type)
16159 {
16160 type->set_code (TYPE_CODE_STRUCT);
16161 }
16162 else if (die->tag == DW_TAG_union_type)
16163 {
16164 type->set_code (TYPE_CODE_UNION);
16165 }
16166 else
16167 {
16168 type->set_code (TYPE_CODE_STRUCT);
16169 }
16170
16171 if (cu->language == language_cplus && die->tag == DW_TAG_class_type)
16172 TYPE_DECLARED_CLASS (type) = 1;
16173
16174 /* Store the calling convention in the type if it's available in
16175 the die. Otherwise the calling convention remains set to
16176 the default value DW_CC_normal. */
16177 attr = dwarf2_attr (die, DW_AT_calling_convention, cu);
16178 if (attr != nullptr
16179 && is_valid_DW_AT_calling_convention_for_type (attr->constant_value (0)))
16180 {
16181 ALLOCATE_CPLUS_STRUCT_TYPE (type);
16182 TYPE_CPLUS_CALLING_CONVENTION (type)
16183 = (enum dwarf_calling_convention) (attr->constant_value (0));
16184 }
16185
16186 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
16187 if (attr != nullptr)
16188 {
16189 if (attr->form_is_constant ())
16190 TYPE_LENGTH (type) = attr->constant_value (0);
16191 else
16192 {
16193 struct dynamic_prop prop;
16194 if (attr_to_dynamic_prop (attr, die, cu, &prop, cu->addr_type ()))
16195 type->add_dyn_prop (DYN_PROP_BYTE_SIZE, prop);
16196 TYPE_LENGTH (type) = 0;
16197 }
16198 }
16199 else
16200 {
16201 TYPE_LENGTH (type) = 0;
16202 }
16203
16204 maybe_set_alignment (cu, die, type);
16205
16206 if (producer_is_icc_lt_14 (cu) && (TYPE_LENGTH (type) == 0))
16207 {
16208 /* ICC<14 does not output the required DW_AT_declaration on
16209 incomplete types, but gives them a size of zero. */
16210 type->set_is_stub (true);
16211 }
16212 else
16213 type->set_stub_is_supported (true);
16214
16215 if (die_is_declaration (die, cu))
16216 type->set_is_stub (true);
16217 else if (attr == NULL && die->child == NULL
16218 && producer_is_realview (cu->producer))
16219 /* RealView does not output the required DW_AT_declaration
16220 on incomplete types. */
16221 type->set_is_stub (true);
16222
16223 /* We need to add the type field to the die immediately so we don't
16224 infinitely recurse when dealing with pointers to the structure
16225 type within the structure itself. */
16226 set_die_type (die, type, cu);
16227
16228 /* set_die_type should be already done. */
16229 set_descriptive_type (type, die, cu);
16230
16231 return type;
16232 }
16233
16234 static void handle_struct_member_die
16235 (struct die_info *child_die,
16236 struct type *type,
16237 struct field_info *fi,
16238 std::vector<struct symbol *> *template_args,
16239 struct dwarf2_cu *cu);
16240
16241 /* A helper for handle_struct_member_die that handles
16242 DW_TAG_variant_part. */
16243
16244 static void
16245 handle_variant_part (struct die_info *die, struct type *type,
16246 struct field_info *fi,
16247 std::vector<struct symbol *> *template_args,
16248 struct dwarf2_cu *cu)
16249 {
16250 variant_part_builder *new_part;
16251 if (fi->current_variant_part == nullptr)
16252 {
16253 fi->variant_parts.emplace_back ();
16254 new_part = &fi->variant_parts.back ();
16255 }
16256 else if (!fi->current_variant_part->processing_variant)
16257 {
16258 complaint (_("nested DW_TAG_variant_part seen "
16259 "- DIE at %s [in module %s]"),
16260 sect_offset_str (die->sect_off),
16261 objfile_name (cu->per_objfile->objfile));
16262 return;
16263 }
16264 else
16265 {
16266 variant_field &current = fi->current_variant_part->variants.back ();
16267 current.variant_parts.emplace_back ();
16268 new_part = &current.variant_parts.back ();
16269 }
16270
16271 /* When we recurse, we want callees to add to this new variant
16272 part. */
16273 scoped_restore save_current_variant_part
16274 = make_scoped_restore (&fi->current_variant_part, new_part);
16275
16276 struct attribute *discr = dwarf2_attr (die, DW_AT_discr, cu);
16277 if (discr == NULL)
16278 {
16279 /* It's a univariant form, an extension we support. */
16280 }
16281 else if (discr->form_is_ref ())
16282 {
16283 struct dwarf2_cu *target_cu = cu;
16284 struct die_info *target_die = follow_die_ref (die, discr, &target_cu);
16285
16286 new_part->discriminant_offset = target_die->sect_off;
16287 }
16288 else
16289 {
16290 complaint (_("DW_AT_discr does not have DIE reference form"
16291 " - DIE at %s [in module %s]"),
16292 sect_offset_str (die->sect_off),
16293 objfile_name (cu->per_objfile->objfile));
16294 }
16295
16296 for (die_info *child_die = die->child;
16297 child_die != NULL;
16298 child_die = child_die->sibling)
16299 handle_struct_member_die (child_die, type, fi, template_args, cu);
16300 }
16301
16302 /* A helper for handle_struct_member_die that handles
16303 DW_TAG_variant. */
16304
16305 static void
16306 handle_variant (struct die_info *die, struct type *type,
16307 struct field_info *fi,
16308 std::vector<struct symbol *> *template_args,
16309 struct dwarf2_cu *cu)
16310 {
16311 if (fi->current_variant_part == nullptr)
16312 {
16313 complaint (_("saw DW_TAG_variant outside DW_TAG_variant_part "
16314 "- DIE at %s [in module %s]"),
16315 sect_offset_str (die->sect_off),
16316 objfile_name (cu->per_objfile->objfile));
16317 return;
16318 }
16319 if (fi->current_variant_part->processing_variant)
16320 {
16321 complaint (_("nested DW_TAG_variant seen "
16322 "- DIE at %s [in module %s]"),
16323 sect_offset_str (die->sect_off),
16324 objfile_name (cu->per_objfile->objfile));
16325 return;
16326 }
16327
16328 scoped_restore save_processing_variant
16329 = make_scoped_restore (&fi->current_variant_part->processing_variant,
16330 true);
16331
16332 fi->current_variant_part->variants.emplace_back ();
16333 variant_field &variant = fi->current_variant_part->variants.back ();
16334 variant.first_field = fi->fields.size ();
16335
16336 /* In a variant we want to get the discriminant and also add a
16337 field for our sole member child. */
16338 struct attribute *discr = dwarf2_attr (die, DW_AT_discr_value, cu);
16339 if (discr == nullptr || !discr->form_is_constant ())
16340 {
16341 discr = dwarf2_attr (die, DW_AT_discr_list, cu);
16342 if (discr == nullptr || discr->as_block ()->size == 0)
16343 variant.default_branch = true;
16344 else
16345 variant.discr_list_data = discr->as_block ();
16346 }
16347 else
16348 variant.discriminant_value = discr->constant_value (0);
16349
16350 for (die_info *variant_child = die->child;
16351 variant_child != NULL;
16352 variant_child = variant_child->sibling)
16353 handle_struct_member_die (variant_child, type, fi, template_args, cu);
16354
16355 variant.last_field = fi->fields.size ();
16356 }
16357
16358 /* A helper for process_structure_scope that handles a single member
16359 DIE. */
16360
16361 static void
16362 handle_struct_member_die (struct die_info *child_die, struct type *type,
16363 struct field_info *fi,
16364 std::vector<struct symbol *> *template_args,
16365 struct dwarf2_cu *cu)
16366 {
16367 if (child_die->tag == DW_TAG_member
16368 || child_die->tag == DW_TAG_variable)
16369 {
16370 /* NOTE: carlton/2002-11-05: A C++ static data member
16371 should be a DW_TAG_member that is a declaration, but
16372 all versions of G++ as of this writing (so through at
16373 least 3.2.1) incorrectly generate DW_TAG_variable
16374 tags for them instead. */
16375 dwarf2_add_field (fi, child_die, cu);
16376 }
16377 else if (child_die->tag == DW_TAG_subprogram)
16378 {
16379 /* Rust doesn't have member functions in the C++ sense.
16380 However, it does emit ordinary functions as children
16381 of a struct DIE. */
16382 if (cu->language == language_rust)
16383 read_func_scope (child_die, cu);
16384 else
16385 {
16386 /* C++ member function. */
16387 dwarf2_add_member_fn (fi, child_die, type, cu);
16388 }
16389 }
16390 else if (child_die->tag == DW_TAG_inheritance)
16391 {
16392 /* C++ base class field. */
16393 dwarf2_add_field (fi, child_die, cu);
16394 }
16395 else if (type_can_define_types (child_die))
16396 dwarf2_add_type_defn (fi, child_die, cu);
16397 else if (child_die->tag == DW_TAG_template_type_param
16398 || child_die->tag == DW_TAG_template_value_param)
16399 {
16400 struct symbol *arg = new_symbol (child_die, NULL, cu);
16401
16402 if (arg != NULL)
16403 template_args->push_back (arg);
16404 }
16405 else if (child_die->tag == DW_TAG_variant_part)
16406 handle_variant_part (child_die, type, fi, template_args, cu);
16407 else if (child_die->tag == DW_TAG_variant)
16408 handle_variant (child_die, type, fi, template_args, cu);
16409 }
16410
16411 /* Finish creating a structure or union type, including filling in
16412 its members and creating a symbol for it. */
16413
16414 static void
16415 process_structure_scope (struct die_info *die, struct dwarf2_cu *cu)
16416 {
16417 struct objfile *objfile = cu->per_objfile->objfile;
16418 struct die_info *child_die;
16419 struct type *type;
16420
16421 type = get_die_type (die, cu);
16422 if (type == NULL)
16423 type = read_structure_type (die, cu);
16424
16425 bool has_template_parameters = false;
16426 if (die->child != NULL && ! die_is_declaration (die, cu))
16427 {
16428 struct field_info fi;
16429 std::vector<struct symbol *> template_args;
16430
16431 child_die = die->child;
16432
16433 while (child_die && child_die->tag)
16434 {
16435 handle_struct_member_die (child_die, type, &fi, &template_args, cu);
16436 child_die = child_die->sibling;
16437 }
16438
16439 /* Attach template arguments to type. */
16440 if (!template_args.empty ())
16441 {
16442 has_template_parameters = true;
16443 ALLOCATE_CPLUS_STRUCT_TYPE (type);
16444 TYPE_N_TEMPLATE_ARGUMENTS (type) = template_args.size ();
16445 TYPE_TEMPLATE_ARGUMENTS (type)
16446 = XOBNEWVEC (&objfile->objfile_obstack,
16447 struct symbol *,
16448 TYPE_N_TEMPLATE_ARGUMENTS (type));
16449 memcpy (TYPE_TEMPLATE_ARGUMENTS (type),
16450 template_args.data (),
16451 (TYPE_N_TEMPLATE_ARGUMENTS (type)
16452 * sizeof (struct symbol *)));
16453 }
16454
16455 /* Attach fields and member functions to the type. */
16456 if (fi.nfields () > 0)
16457 dwarf2_attach_fields_to_type (&fi, type, cu);
16458 if (!fi.fnfieldlists.empty ())
16459 {
16460 dwarf2_attach_fn_fields_to_type (&fi, type, cu);
16461
16462 /* Get the type which refers to the base class (possibly this
16463 class itself) which contains the vtable pointer for the current
16464 class from the DW_AT_containing_type attribute. This use of
16465 DW_AT_containing_type is a GNU extension. */
16466
16467 if (dwarf2_attr (die, DW_AT_containing_type, cu) != NULL)
16468 {
16469 struct type *t = die_containing_type (die, cu);
16470
16471 set_type_vptr_basetype (type, t);
16472 if (type == t)
16473 {
16474 int i;
16475
16476 /* Our own class provides vtbl ptr. */
16477 for (i = t->num_fields () - 1;
16478 i >= TYPE_N_BASECLASSES (t);
16479 --i)
16480 {
16481 const char *fieldname = TYPE_FIELD_NAME (t, i);
16482
16483 if (is_vtable_name (fieldname, cu))
16484 {
16485 set_type_vptr_fieldno (type, i);
16486 break;
16487 }
16488 }
16489
16490 /* Complain if virtual function table field not found. */
16491 if (i < TYPE_N_BASECLASSES (t))
16492 complaint (_("virtual function table pointer "
16493 "not found when defining class '%s'"),
16494 type->name () ? type->name () : "");
16495 }
16496 else
16497 {
16498 set_type_vptr_fieldno (type, TYPE_VPTR_FIELDNO (t));
16499 }
16500 }
16501 else if (cu->producer
16502 && startswith (cu->producer, "IBM(R) XL C/C++ Advanced Edition"))
16503 {
16504 /* The IBM XLC compiler does not provide direct indication
16505 of the containing type, but the vtable pointer is
16506 always named __vfp. */
16507
16508 int i;
16509
16510 for (i = type->num_fields () - 1;
16511 i >= TYPE_N_BASECLASSES (type);
16512 --i)
16513 {
16514 if (strcmp (TYPE_FIELD_NAME (type, i), "__vfp") == 0)
16515 {
16516 set_type_vptr_fieldno (type, i);
16517 set_type_vptr_basetype (type, type);
16518 break;
16519 }
16520 }
16521 }
16522 }
16523
16524 /* Copy fi.typedef_field_list linked list elements content into the
16525 allocated array TYPE_TYPEDEF_FIELD_ARRAY (type). */
16526 if (!fi.typedef_field_list.empty ())
16527 {
16528 int count = fi.typedef_field_list.size ();
16529
16530 ALLOCATE_CPLUS_STRUCT_TYPE (type);
16531 TYPE_TYPEDEF_FIELD_ARRAY (type)
16532 = ((struct decl_field *)
16533 TYPE_ALLOC (type,
16534 sizeof (TYPE_TYPEDEF_FIELD (type, 0)) * count));
16535 TYPE_TYPEDEF_FIELD_COUNT (type) = count;
16536
16537 for (int i = 0; i < fi.typedef_field_list.size (); ++i)
16538 TYPE_TYPEDEF_FIELD (type, i) = fi.typedef_field_list[i];
16539 }
16540
16541 /* Copy fi.nested_types_list linked list elements content into the
16542 allocated array TYPE_NESTED_TYPES_ARRAY (type). */
16543 if (!fi.nested_types_list.empty () && cu->language != language_ada)
16544 {
16545 int count = fi.nested_types_list.size ();
16546
16547 ALLOCATE_CPLUS_STRUCT_TYPE (type);
16548 TYPE_NESTED_TYPES_ARRAY (type)
16549 = ((struct decl_field *)
16550 TYPE_ALLOC (type, sizeof (struct decl_field) * count));
16551 TYPE_NESTED_TYPES_COUNT (type) = count;
16552
16553 for (int i = 0; i < fi.nested_types_list.size (); ++i)
16554 TYPE_NESTED_TYPES_FIELD (type, i) = fi.nested_types_list[i];
16555 }
16556 }
16557
16558 quirk_gcc_member_function_pointer (type, objfile);
16559 if (cu->language == language_rust && die->tag == DW_TAG_union_type)
16560 cu->rust_unions.push_back (type);
16561 else if (cu->language == language_ada)
16562 quirk_ada_thick_pointer_struct (die, cu, type);
16563
16564 /* NOTE: carlton/2004-03-16: GCC 3.4 (or at least one of its
16565 snapshots) has been known to create a die giving a declaration
16566 for a class that has, as a child, a die giving a definition for a
16567 nested class. So we have to process our children even if the
16568 current die is a declaration. Normally, of course, a declaration
16569 won't have any children at all. */
16570
16571 child_die = die->child;
16572
16573 while (child_die != NULL && child_die->tag)
16574 {
16575 if (child_die->tag == DW_TAG_member
16576 || child_die->tag == DW_TAG_variable
16577 || child_die->tag == DW_TAG_inheritance
16578 || child_die->tag == DW_TAG_template_value_param
16579 || child_die->tag == DW_TAG_template_type_param)
16580 {
16581 /* Do nothing. */
16582 }
16583 else
16584 process_die (child_die, cu);
16585
16586 child_die = child_die->sibling;
16587 }
16588
16589 /* Do not consider external references. According to the DWARF standard,
16590 these DIEs are identified by the fact that they have no byte_size
16591 attribute, and a declaration attribute. */
16592 if (dwarf2_attr (die, DW_AT_byte_size, cu) != NULL
16593 || !die_is_declaration (die, cu)
16594 || dwarf2_attr (die, DW_AT_signature, cu) != NULL)
16595 {
16596 struct symbol *sym = new_symbol (die, type, cu);
16597
16598 if (has_template_parameters)
16599 {
16600 struct symtab *symtab;
16601 if (sym != nullptr)
16602 symtab = symbol_symtab (sym);
16603 else if (cu->line_header != nullptr)
16604 {
16605 /* Any related symtab will do. */
16606 symtab
16607 = cu->line_header->file_names ()[0].symtab;
16608 }
16609 else
16610 {
16611 symtab = nullptr;
16612 complaint (_("could not find suitable "
16613 "symtab for template parameter"
16614 " - DIE at %s [in module %s]"),
16615 sect_offset_str (die->sect_off),
16616 objfile_name (objfile));
16617 }
16618
16619 if (symtab != nullptr)
16620 {
16621 /* Make sure that the symtab is set on the new symbols.
16622 Even though they don't appear in this symtab directly,
16623 other parts of gdb assume that symbols do, and this is
16624 reasonably true. */
16625 for (int i = 0; i < TYPE_N_TEMPLATE_ARGUMENTS (type); ++i)
16626 symbol_set_symtab (TYPE_TEMPLATE_ARGUMENT (type, i), symtab);
16627 }
16628 }
16629 }
16630 }
16631
16632 /* Assuming DIE is an enumeration type, and TYPE is its associated
16633 type, update TYPE using some information only available in DIE's
16634 children. In particular, the fields are computed. */
16635
16636 static void
16637 update_enumeration_type_from_children (struct die_info *die,
16638 struct type *type,
16639 struct dwarf2_cu *cu)
16640 {
16641 struct die_info *child_die;
16642 int unsigned_enum = 1;
16643 int flag_enum = 1;
16644
16645 auto_obstack obstack;
16646 std::vector<struct field> fields;
16647
16648 for (child_die = die->child;
16649 child_die != NULL && child_die->tag;
16650 child_die = child_die->sibling)
16651 {
16652 struct attribute *attr;
16653 LONGEST value;
16654 const gdb_byte *bytes;
16655 struct dwarf2_locexpr_baton *baton;
16656 const char *name;
16657
16658 if (child_die->tag != DW_TAG_enumerator)
16659 continue;
16660
16661 attr = dwarf2_attr (child_die, DW_AT_const_value, cu);
16662 if (attr == NULL)
16663 continue;
16664
16665 name = dwarf2_name (child_die, cu);
16666 if (name == NULL)
16667 name = "<anonymous enumerator>";
16668
16669 dwarf2_const_value_attr (attr, type, name, &obstack, cu,
16670 &value, &bytes, &baton);
16671 if (value < 0)
16672 {
16673 unsigned_enum = 0;
16674 flag_enum = 0;
16675 }
16676 else
16677 {
16678 if (count_one_bits_ll (value) >= 2)
16679 flag_enum = 0;
16680 }
16681
16682 fields.emplace_back ();
16683 struct field &field = fields.back ();
16684 FIELD_NAME (field) = dwarf2_physname (name, child_die, cu);
16685 SET_FIELD_ENUMVAL (field, value);
16686 }
16687
16688 if (!fields.empty ())
16689 {
16690 type->set_num_fields (fields.size ());
16691 type->set_fields
16692 ((struct field *)
16693 TYPE_ALLOC (type, sizeof (struct field) * fields.size ()));
16694 memcpy (type->fields (), fields.data (),
16695 sizeof (struct field) * fields.size ());
16696 }
16697
16698 if (unsigned_enum)
16699 type->set_is_unsigned (true);
16700
16701 if (flag_enum)
16702 TYPE_FLAG_ENUM (type) = 1;
16703 }
16704
16705 /* Given a DW_AT_enumeration_type die, set its type. We do not
16706 complete the type's fields yet, or create any symbols. */
16707
16708 static struct type *
16709 read_enumeration_type (struct die_info *die, struct dwarf2_cu *cu)
16710 {
16711 struct objfile *objfile = cu->per_objfile->objfile;
16712 struct type *type;
16713 struct attribute *attr;
16714 const char *name;
16715
16716 /* If the definition of this type lives in .debug_types, read that type.
16717 Don't follow DW_AT_specification though, that will take us back up
16718 the chain and we want to go down. */
16719 attr = die->attr (DW_AT_signature);
16720 if (attr != nullptr)
16721 {
16722 type = get_DW_AT_signature_type (die, attr, cu);
16723
16724 /* The type's CU may not be the same as CU.
16725 Ensure TYPE is recorded with CU in die_type_hash. */
16726 return set_die_type (die, type, cu);
16727 }
16728
16729 type = alloc_type (objfile);
16730
16731 type->set_code (TYPE_CODE_ENUM);
16732 name = dwarf2_full_name (NULL, die, cu);
16733 if (name != NULL)
16734 type->set_name (name);
16735
16736 attr = dwarf2_attr (die, DW_AT_type, cu);
16737 if (attr != NULL)
16738 {
16739 struct type *underlying_type = die_type (die, cu);
16740
16741 TYPE_TARGET_TYPE (type) = underlying_type;
16742 }
16743
16744 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
16745 if (attr != nullptr)
16746 {
16747 TYPE_LENGTH (type) = attr->constant_value (0);
16748 }
16749 else
16750 {
16751 TYPE_LENGTH (type) = 0;
16752 }
16753
16754 maybe_set_alignment (cu, die, type);
16755
16756 /* The enumeration DIE can be incomplete. In Ada, any type can be
16757 declared as private in the package spec, and then defined only
16758 inside the package body. Such types are known as Taft Amendment
16759 Types. When another package uses such a type, an incomplete DIE
16760 may be generated by the compiler. */
16761 if (die_is_declaration (die, cu))
16762 type->set_is_stub (true);
16763
16764 /* If this type has an underlying type that is not a stub, then we
16765 may use its attributes. We always use the "unsigned" attribute
16766 in this situation, because ordinarily we guess whether the type
16767 is unsigned -- but the guess can be wrong and the underlying type
16768 can tell us the reality. However, we defer to a local size
16769 attribute if one exists, because this lets the compiler override
16770 the underlying type if needed. */
16771 if (TYPE_TARGET_TYPE (type) != NULL && !TYPE_TARGET_TYPE (type)->is_stub ())
16772 {
16773 struct type *underlying_type = TYPE_TARGET_TYPE (type);
16774 underlying_type = check_typedef (underlying_type);
16775
16776 type->set_is_unsigned (underlying_type->is_unsigned ());
16777
16778 if (TYPE_LENGTH (type) == 0)
16779 TYPE_LENGTH (type) = TYPE_LENGTH (underlying_type);
16780
16781 if (TYPE_RAW_ALIGN (type) == 0
16782 && TYPE_RAW_ALIGN (underlying_type) != 0)
16783 set_type_align (type, TYPE_RAW_ALIGN (underlying_type));
16784 }
16785
16786 TYPE_DECLARED_CLASS (type) = dwarf2_flag_true_p (die, DW_AT_enum_class, cu);
16787
16788 set_die_type (die, type, cu);
16789
16790 /* Finish the creation of this type by using the enum's children.
16791 Note that, as usual, this must come after set_die_type to avoid
16792 infinite recursion when trying to compute the names of the
16793 enumerators. */
16794 update_enumeration_type_from_children (die, type, cu);
16795
16796 return type;
16797 }
16798
16799 /* Given a pointer to a die which begins an enumeration, process all
16800 the dies that define the members of the enumeration, and create the
16801 symbol for the enumeration type.
16802
16803 NOTE: We reverse the order of the element list. */
16804
16805 static void
16806 process_enumeration_scope (struct die_info *die, struct dwarf2_cu *cu)
16807 {
16808 struct type *this_type;
16809
16810 this_type = get_die_type (die, cu);
16811 if (this_type == NULL)
16812 this_type = read_enumeration_type (die, cu);
16813
16814 if (die->child != NULL)
16815 {
16816 struct die_info *child_die;
16817 const char *name;
16818
16819 child_die = die->child;
16820 while (child_die && child_die->tag)
16821 {
16822 if (child_die->tag != DW_TAG_enumerator)
16823 {
16824 process_die (child_die, cu);
16825 }
16826 else
16827 {
16828 name = dwarf2_name (child_die, cu);
16829 if (name)
16830 new_symbol (child_die, this_type, cu);
16831 }
16832
16833 child_die = child_die->sibling;
16834 }
16835 }
16836
16837 /* If we are reading an enum from a .debug_types unit, and the enum
16838 is a declaration, and the enum is not the signatured type in the
16839 unit, then we do not want to add a symbol for it. Adding a
16840 symbol would in some cases obscure the true definition of the
16841 enum, giving users an incomplete type when the definition is
16842 actually available. Note that we do not want to do this for all
16843 enums which are just declarations, because C++0x allows forward
16844 enum declarations. */
16845 if (cu->per_cu->is_debug_types
16846 && die_is_declaration (die, cu))
16847 {
16848 struct signatured_type *sig_type;
16849
16850 sig_type = (struct signatured_type *) cu->per_cu;
16851 gdb_assert (to_underlying (sig_type->type_offset_in_section) != 0);
16852 if (sig_type->type_offset_in_section != die->sect_off)
16853 return;
16854 }
16855
16856 new_symbol (die, this_type, cu);
16857 }
16858
16859 /* Helper function for quirk_ada_thick_pointer that examines a bounds
16860 expression for an index type and finds the corresponding field
16861 offset in the hidden "P_BOUNDS" structure. Returns true on success
16862 and updates *FIELD, false if it fails to recognize an
16863 expression. */
16864
16865 static bool
16866 recognize_bound_expression (struct die_info *die, enum dwarf_attribute name,
16867 int *bounds_offset, struct field *field,
16868 struct dwarf2_cu *cu)
16869 {
16870 struct attribute *attr = dwarf2_attr (die, name, cu);
16871 if (attr == nullptr || !attr->form_is_block ())
16872 return false;
16873
16874 const struct dwarf_block *block = attr->as_block ();
16875 const gdb_byte *start = block->data;
16876 const gdb_byte *end = block->data + block->size;
16877
16878 /* The expression to recognize generally looks like:
16879
16880 (DW_OP_push_object_address; DW_OP_plus_uconst: 8; DW_OP_deref;
16881 DW_OP_plus_uconst: 4; DW_OP_deref_size: 4)
16882
16883 However, the second "plus_uconst" may be missing:
16884
16885 (DW_OP_push_object_address; DW_OP_plus_uconst: 8; DW_OP_deref;
16886 DW_OP_deref_size: 4)
16887
16888 This happens when the field is at the start of the structure.
16889
16890 Also, the final deref may not be sized:
16891
16892 (DW_OP_push_object_address; DW_OP_plus_uconst: 4; DW_OP_deref;
16893 DW_OP_deref)
16894
16895 This happens when the size of the index type happens to be the
16896 same as the architecture's word size. This can occur with or
16897 without the second plus_uconst. */
16898
16899 if (end - start < 2)
16900 return false;
16901 if (*start++ != DW_OP_push_object_address)
16902 return false;
16903 if (*start++ != DW_OP_plus_uconst)
16904 return false;
16905
16906 uint64_t this_bound_off;
16907 start = gdb_read_uleb128 (start, end, &this_bound_off);
16908 if (start == nullptr || (int) this_bound_off != this_bound_off)
16909 return false;
16910 /* Update *BOUNDS_OFFSET if needed, or alternatively verify that it
16911 is consistent among all bounds. */
16912 if (*bounds_offset == -1)
16913 *bounds_offset = this_bound_off;
16914 else if (*bounds_offset != this_bound_off)
16915 return false;
16916
16917 if (start == end || *start++ != DW_OP_deref)
16918 return false;
16919
16920 int offset = 0;
16921 if (start ==end)
16922 return false;
16923 else if (*start == DW_OP_deref_size || *start == DW_OP_deref)
16924 {
16925 /* This means an offset of 0. */
16926 }
16927 else if (*start++ != DW_OP_plus_uconst)
16928 return false;
16929 else
16930 {
16931 /* The size is the parameter to DW_OP_plus_uconst. */
16932 uint64_t val;
16933 start = gdb_read_uleb128 (start, end, &val);
16934 if (start == nullptr)
16935 return false;
16936 if ((int) val != val)
16937 return false;
16938 offset = val;
16939 }
16940
16941 if (start == end)
16942 return false;
16943
16944 uint64_t size;
16945 if (*start == DW_OP_deref_size)
16946 {
16947 start = gdb_read_uleb128 (start + 1, end, &size);
16948 if (start == nullptr)
16949 return false;
16950 }
16951 else if (*start == DW_OP_deref)
16952 {
16953 size = cu->header.addr_size;
16954 ++start;
16955 }
16956 else
16957 return false;
16958
16959 SET_FIELD_BITPOS (*field, 8 * offset);
16960 if (size != TYPE_LENGTH (field->type ()))
16961 FIELD_BITSIZE (*field) = 8 * size;
16962
16963 return true;
16964 }
16965
16966 /* With -fgnat-encodings=minimal, gcc will emit some unusual DWARF for
16967 some kinds of Ada arrays:
16968
16969 <1><11db>: Abbrev Number: 7 (DW_TAG_array_type)
16970 <11dc> DW_AT_name : (indirect string, offset: 0x1bb8): string
16971 <11e0> DW_AT_data_location: 2 byte block: 97 6
16972 (DW_OP_push_object_address; DW_OP_deref)
16973 <11e3> DW_AT_type : <0x1173>
16974 <11e7> DW_AT_sibling : <0x1201>
16975 <2><11eb>: Abbrev Number: 8 (DW_TAG_subrange_type)
16976 <11ec> DW_AT_type : <0x1206>
16977 <11f0> DW_AT_lower_bound : 6 byte block: 97 23 8 6 94 4
16978 (DW_OP_push_object_address; DW_OP_plus_uconst: 8; DW_OP_deref;
16979 DW_OP_deref_size: 4)
16980 <11f7> DW_AT_upper_bound : 8 byte block: 97 23 8 6 23 4 94 4
16981 (DW_OP_push_object_address; DW_OP_plus_uconst: 8; DW_OP_deref;
16982 DW_OP_plus_uconst: 4; DW_OP_deref_size: 4)
16983
16984 This actually represents a "thick pointer", which is a structure
16985 with two elements: one that is a pointer to the array data, and one
16986 that is a pointer to another structure; this second structure holds
16987 the array bounds.
16988
16989 This returns a new type on success, or nullptr if this didn't
16990 recognize the type. */
16991
16992 static struct type *
16993 quirk_ada_thick_pointer (struct die_info *die, struct dwarf2_cu *cu,
16994 struct type *type)
16995 {
16996 struct attribute *attr = dwarf2_attr (die, DW_AT_data_location, cu);
16997 /* So far we've only seen this with block form. */
16998 if (attr == nullptr || !attr->form_is_block ())
16999 return nullptr;
17000
17001 /* Note that this will fail if the structure layout is changed by
17002 the compiler. However, we have no good way to recognize some
17003 other layout, because we don't know what expression the compiler
17004 might choose to emit should this happen. */
17005 struct dwarf_block *blk = attr->as_block ();
17006 if (blk->size != 2
17007 || blk->data[0] != DW_OP_push_object_address
17008 || blk->data[1] != DW_OP_deref)
17009 return nullptr;
17010
17011 int bounds_offset = -1;
17012 int max_align = -1;
17013 std::vector<struct field> range_fields;
17014 for (struct die_info *child_die = die->child;
17015 child_die;
17016 child_die = child_die->sibling)
17017 {
17018 if (child_die->tag == DW_TAG_subrange_type)
17019 {
17020 struct type *underlying = read_subrange_index_type (child_die, cu);
17021
17022 int this_align = type_align (underlying);
17023 if (this_align > max_align)
17024 max_align = this_align;
17025
17026 range_fields.emplace_back ();
17027 range_fields.emplace_back ();
17028
17029 struct field &lower = range_fields[range_fields.size () - 2];
17030 struct field &upper = range_fields[range_fields.size () - 1];
17031
17032 lower.set_type (underlying);
17033 FIELD_ARTIFICIAL (lower) = 1;
17034
17035 upper.set_type (underlying);
17036 FIELD_ARTIFICIAL (upper) = 1;
17037
17038 if (!recognize_bound_expression (child_die, DW_AT_lower_bound,
17039 &bounds_offset, &lower, cu)
17040 || !recognize_bound_expression (child_die, DW_AT_upper_bound,
17041 &bounds_offset, &upper, cu))
17042 return nullptr;
17043 }
17044 }
17045
17046 /* This shouldn't really happen, but double-check that we found
17047 where the bounds are stored. */
17048 if (bounds_offset == -1)
17049 return nullptr;
17050
17051 struct objfile *objfile = cu->per_objfile->objfile;
17052 for (int i = 0; i < range_fields.size (); i += 2)
17053 {
17054 char name[20];
17055
17056 /* Set the name of each field in the bounds. */
17057 xsnprintf (name, sizeof (name), "LB%d", i / 2);
17058 FIELD_NAME (range_fields[i]) = objfile->intern (name);
17059 xsnprintf (name, sizeof (name), "UB%d", i / 2);
17060 FIELD_NAME (range_fields[i + 1]) = objfile->intern (name);
17061 }
17062
17063 struct type *bounds = alloc_type (objfile);
17064 bounds->set_code (TYPE_CODE_STRUCT);
17065
17066 bounds->set_num_fields (range_fields.size ());
17067 bounds->set_fields
17068 ((struct field *) TYPE_ALLOC (bounds, (bounds->num_fields ()
17069 * sizeof (struct field))));
17070 memcpy (bounds->fields (), range_fields.data (),
17071 bounds->num_fields () * sizeof (struct field));
17072
17073 int last_fieldno = range_fields.size () - 1;
17074 int bounds_size = (TYPE_FIELD_BITPOS (bounds, last_fieldno) / 8
17075 + TYPE_LENGTH (bounds->field (last_fieldno).type ()));
17076 TYPE_LENGTH (bounds) = align_up (bounds_size, max_align);
17077
17078 /* Rewrite the existing array type in place. Specifically, we
17079 remove any dynamic properties we might have read, and we replace
17080 the index types. */
17081 struct type *iter = type;
17082 for (int i = 0; i < range_fields.size (); i += 2)
17083 {
17084 gdb_assert (iter->code () == TYPE_CODE_ARRAY);
17085 iter->main_type->dyn_prop_list = nullptr;
17086 iter->set_index_type
17087 (create_static_range_type (NULL, bounds->field (i).type (), 1, 0));
17088 iter = TYPE_TARGET_TYPE (iter);
17089 }
17090
17091 struct type *result = alloc_type (objfile);
17092 result->set_code (TYPE_CODE_STRUCT);
17093
17094 result->set_num_fields (2);
17095 result->set_fields
17096 ((struct field *) TYPE_ZALLOC (result, (result->num_fields ()
17097 * sizeof (struct field))));
17098
17099 /* The names are chosen to coincide with what the compiler does with
17100 -fgnat-encodings=all, which the Ada code in gdb already
17101 understands. */
17102 TYPE_FIELD_NAME (result, 0) = "P_ARRAY";
17103 result->field (0).set_type (lookup_pointer_type (type));
17104
17105 TYPE_FIELD_NAME (result, 1) = "P_BOUNDS";
17106 result->field (1).set_type (lookup_pointer_type (bounds));
17107 SET_FIELD_BITPOS (result->field (1), 8 * bounds_offset);
17108
17109 result->set_name (type->name ());
17110 TYPE_LENGTH (result) = (TYPE_LENGTH (result->field (0).type ())
17111 + TYPE_LENGTH (result->field (1).type ()));
17112
17113 return result;
17114 }
17115
17116 /* Extract all information from a DW_TAG_array_type DIE and put it in
17117 the DIE's type field. For now, this only handles one dimensional
17118 arrays. */
17119
17120 static struct type *
17121 read_array_type (struct die_info *die, struct dwarf2_cu *cu)
17122 {
17123 struct objfile *objfile = cu->per_objfile->objfile;
17124 struct die_info *child_die;
17125 struct type *type;
17126 struct type *element_type, *range_type, *index_type;
17127 struct attribute *attr;
17128 const char *name;
17129 struct dynamic_prop *byte_stride_prop = NULL;
17130 unsigned int bit_stride = 0;
17131
17132 element_type = die_type (die, cu);
17133
17134 /* The die_type call above may have already set the type for this DIE. */
17135 type = get_die_type (die, cu);
17136 if (type)
17137 return type;
17138
17139 attr = dwarf2_attr (die, DW_AT_byte_stride, cu);
17140 if (attr != NULL)
17141 {
17142 int stride_ok;
17143 struct type *prop_type = cu->addr_sized_int_type (false);
17144
17145 byte_stride_prop
17146 = (struct dynamic_prop *) alloca (sizeof (struct dynamic_prop));
17147 stride_ok = attr_to_dynamic_prop (attr, die, cu, byte_stride_prop,
17148 prop_type);
17149 if (!stride_ok)
17150 {
17151 complaint (_("unable to read array DW_AT_byte_stride "
17152 " - DIE at %s [in module %s]"),
17153 sect_offset_str (die->sect_off),
17154 objfile_name (cu->per_objfile->objfile));
17155 /* Ignore this attribute. We will likely not be able to print
17156 arrays of this type correctly, but there is little we can do
17157 to help if we cannot read the attribute's value. */
17158 byte_stride_prop = NULL;
17159 }
17160 }
17161
17162 attr = dwarf2_attr (die, DW_AT_bit_stride, cu);
17163 if (attr != NULL)
17164 bit_stride = attr->constant_value (0);
17165
17166 /* Irix 6.2 native cc creates array types without children for
17167 arrays with unspecified length. */
17168 if (die->child == NULL)
17169 {
17170 index_type = objfile_type (objfile)->builtin_int;
17171 range_type = create_static_range_type (NULL, index_type, 0, -1);
17172 type = create_array_type_with_stride (NULL, element_type, range_type,
17173 byte_stride_prop, bit_stride);
17174 return set_die_type (die, type, cu);
17175 }
17176
17177 std::vector<struct type *> range_types;
17178 child_die = die->child;
17179 while (child_die && child_die->tag)
17180 {
17181 if (child_die->tag == DW_TAG_subrange_type)
17182 {
17183 struct type *child_type = read_type_die (child_die, cu);
17184
17185 if (child_type != NULL)
17186 {
17187 /* The range type was succesfully read. Save it for the
17188 array type creation. */
17189 range_types.push_back (child_type);
17190 }
17191 }
17192 child_die = child_die->sibling;
17193 }
17194
17195 /* Dwarf2 dimensions are output from left to right, create the
17196 necessary array types in backwards order. */
17197
17198 type = element_type;
17199
17200 if (read_array_order (die, cu) == DW_ORD_col_major)
17201 {
17202 int i = 0;
17203
17204 while (i < range_types.size ())
17205 {
17206 type = create_array_type_with_stride (NULL, type, range_types[i++],
17207 byte_stride_prop, bit_stride);
17208 bit_stride = 0;
17209 byte_stride_prop = nullptr;
17210 }
17211 }
17212 else
17213 {
17214 size_t ndim = range_types.size ();
17215 while (ndim-- > 0)
17216 {
17217 type = create_array_type_with_stride (NULL, type, range_types[ndim],
17218 byte_stride_prop, bit_stride);
17219 bit_stride = 0;
17220 byte_stride_prop = nullptr;
17221 }
17222 }
17223
17224 /* Understand Dwarf2 support for vector types (like they occur on
17225 the PowerPC w/ AltiVec). Gcc just adds another attribute to the
17226 array type. This is not part of the Dwarf2/3 standard yet, but a
17227 custom vendor extension. The main difference between a regular
17228 array and the vector variant is that vectors are passed by value
17229 to functions. */
17230 attr = dwarf2_attr (die, DW_AT_GNU_vector, cu);
17231 if (attr != nullptr)
17232 make_vector_type (type);
17233
17234 /* The DIE may have DW_AT_byte_size set. For example an OpenCL
17235 implementation may choose to implement triple vectors using this
17236 attribute. */
17237 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
17238 if (attr != nullptr && attr->form_is_unsigned ())
17239 {
17240 if (attr->as_unsigned () >= TYPE_LENGTH (type))
17241 TYPE_LENGTH (type) = attr->as_unsigned ();
17242 else
17243 complaint (_("DW_AT_byte_size for array type smaller "
17244 "than the total size of elements"));
17245 }
17246
17247 name = dwarf2_name (die, cu);
17248 if (name)
17249 type->set_name (name);
17250
17251 maybe_set_alignment (cu, die, type);
17252
17253 struct type *replacement_type = nullptr;
17254 if (cu->language == language_ada)
17255 {
17256 replacement_type = quirk_ada_thick_pointer (die, cu, type);
17257 if (replacement_type != nullptr)
17258 type = replacement_type;
17259 }
17260
17261 /* Install the type in the die. */
17262 set_die_type (die, type, cu, replacement_type != nullptr);
17263
17264 /* set_die_type should be already done. */
17265 set_descriptive_type (type, die, cu);
17266
17267 return type;
17268 }
17269
17270 static enum dwarf_array_dim_ordering
17271 read_array_order (struct die_info *die, struct dwarf2_cu *cu)
17272 {
17273 struct attribute *attr;
17274
17275 attr = dwarf2_attr (die, DW_AT_ordering, cu);
17276
17277 if (attr != nullptr)
17278 {
17279 LONGEST val = attr->constant_value (-1);
17280 if (val == DW_ORD_row_major || val == DW_ORD_col_major)
17281 return (enum dwarf_array_dim_ordering) val;
17282 }
17283
17284 /* GNU F77 is a special case, as at 08/2004 array type info is the
17285 opposite order to the dwarf2 specification, but data is still
17286 laid out as per normal fortran.
17287
17288 FIXME: dsl/2004-8-20: If G77 is ever fixed, this will also need
17289 version checking. */
17290
17291 if (cu->language == language_fortran
17292 && cu->producer && strstr (cu->producer, "GNU F77"))
17293 {
17294 return DW_ORD_row_major;
17295 }
17296
17297 switch (cu->language_defn->array_ordering ())
17298 {
17299 case array_column_major:
17300 return DW_ORD_col_major;
17301 case array_row_major:
17302 default:
17303 return DW_ORD_row_major;
17304 };
17305 }
17306
17307 /* Extract all information from a DW_TAG_set_type DIE and put it in
17308 the DIE's type field. */
17309
17310 static struct type *
17311 read_set_type (struct die_info *die, struct dwarf2_cu *cu)
17312 {
17313 struct type *domain_type, *set_type;
17314 struct attribute *attr;
17315
17316 domain_type = die_type (die, cu);
17317
17318 /* The die_type call above may have already set the type for this DIE. */
17319 set_type = get_die_type (die, cu);
17320 if (set_type)
17321 return set_type;
17322
17323 set_type = create_set_type (NULL, domain_type);
17324
17325 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
17326 if (attr != nullptr && attr->form_is_unsigned ())
17327 TYPE_LENGTH (set_type) = attr->as_unsigned ();
17328
17329 maybe_set_alignment (cu, die, set_type);
17330
17331 return set_die_type (die, set_type, cu);
17332 }
17333
17334 /* A helper for read_common_block that creates a locexpr baton.
17335 SYM is the symbol which we are marking as computed.
17336 COMMON_DIE is the DIE for the common block.
17337 COMMON_LOC is the location expression attribute for the common
17338 block itself.
17339 MEMBER_LOC is the location expression attribute for the particular
17340 member of the common block that we are processing.
17341 CU is the CU from which the above come. */
17342
17343 static void
17344 mark_common_block_symbol_computed (struct symbol *sym,
17345 struct die_info *common_die,
17346 struct attribute *common_loc,
17347 struct attribute *member_loc,
17348 struct dwarf2_cu *cu)
17349 {
17350 dwarf2_per_objfile *per_objfile = cu->per_objfile;
17351 struct objfile *objfile = per_objfile->objfile;
17352 struct dwarf2_locexpr_baton *baton;
17353 gdb_byte *ptr;
17354 unsigned int cu_off;
17355 enum bfd_endian byte_order = gdbarch_byte_order (objfile->arch ());
17356 LONGEST offset = 0;
17357
17358 gdb_assert (common_loc && member_loc);
17359 gdb_assert (common_loc->form_is_block ());
17360 gdb_assert (member_loc->form_is_block ()
17361 || member_loc->form_is_constant ());
17362
17363 baton = XOBNEW (&objfile->objfile_obstack, struct dwarf2_locexpr_baton);
17364 baton->per_objfile = per_objfile;
17365 baton->per_cu = cu->per_cu;
17366 gdb_assert (baton->per_cu);
17367
17368 baton->size = 5 /* DW_OP_call4 */ + 1 /* DW_OP_plus */;
17369
17370 if (member_loc->form_is_constant ())
17371 {
17372 offset = member_loc->constant_value (0);
17373 baton->size += 1 /* DW_OP_addr */ + cu->header.addr_size;
17374 }
17375 else
17376 baton->size += member_loc->as_block ()->size;
17377
17378 ptr = (gdb_byte *) obstack_alloc (&objfile->objfile_obstack, baton->size);
17379 baton->data = ptr;
17380
17381 *ptr++ = DW_OP_call4;
17382 cu_off = common_die->sect_off - cu->per_cu->sect_off;
17383 store_unsigned_integer (ptr, 4, byte_order, cu_off);
17384 ptr += 4;
17385
17386 if (member_loc->form_is_constant ())
17387 {
17388 *ptr++ = DW_OP_addr;
17389 store_unsigned_integer (ptr, cu->header.addr_size, byte_order, offset);
17390 ptr += cu->header.addr_size;
17391 }
17392 else
17393 {
17394 /* We have to copy the data here, because DW_OP_call4 will only
17395 use a DW_AT_location attribute. */
17396 struct dwarf_block *block = member_loc->as_block ();
17397 memcpy (ptr, block->data, block->size);
17398 ptr += block->size;
17399 }
17400
17401 *ptr++ = DW_OP_plus;
17402 gdb_assert (ptr - baton->data == baton->size);
17403
17404 SYMBOL_LOCATION_BATON (sym) = baton;
17405 SYMBOL_ACLASS_INDEX (sym) = dwarf2_locexpr_index;
17406 }
17407
17408 /* Create appropriate locally-scoped variables for all the
17409 DW_TAG_common_block entries. Also create a struct common_block
17410 listing all such variables for `info common'. COMMON_BLOCK_DOMAIN
17411 is used to separate the common blocks name namespace from regular
17412 variable names. */
17413
17414 static void
17415 read_common_block (struct die_info *die, struct dwarf2_cu *cu)
17416 {
17417 struct attribute *attr;
17418
17419 attr = dwarf2_attr (die, DW_AT_location, cu);
17420 if (attr != nullptr)
17421 {
17422 /* Support the .debug_loc offsets. */
17423 if (attr->form_is_block ())
17424 {
17425 /* Ok. */
17426 }
17427 else if (attr->form_is_section_offset ())
17428 {
17429 dwarf2_complex_location_expr_complaint ();
17430 attr = NULL;
17431 }
17432 else
17433 {
17434 dwarf2_invalid_attrib_class_complaint ("DW_AT_location",
17435 "common block member");
17436 attr = NULL;
17437 }
17438 }
17439
17440 if (die->child != NULL)
17441 {
17442 struct objfile *objfile = cu->per_objfile->objfile;
17443 struct die_info *child_die;
17444 size_t n_entries = 0, size;
17445 struct common_block *common_block;
17446 struct symbol *sym;
17447
17448 for (child_die = die->child;
17449 child_die && child_die->tag;
17450 child_die = child_die->sibling)
17451 ++n_entries;
17452
17453 size = (sizeof (struct common_block)
17454 + (n_entries - 1) * sizeof (struct symbol *));
17455 common_block
17456 = (struct common_block *) obstack_alloc (&objfile->objfile_obstack,
17457 size);
17458 memset (common_block->contents, 0, n_entries * sizeof (struct symbol *));
17459 common_block->n_entries = 0;
17460
17461 for (child_die = die->child;
17462 child_die && child_die->tag;
17463 child_die = child_die->sibling)
17464 {
17465 /* Create the symbol in the DW_TAG_common_block block in the current
17466 symbol scope. */
17467 sym = new_symbol (child_die, NULL, cu);
17468 if (sym != NULL)
17469 {
17470 struct attribute *member_loc;
17471
17472 common_block->contents[common_block->n_entries++] = sym;
17473
17474 member_loc = dwarf2_attr (child_die, DW_AT_data_member_location,
17475 cu);
17476 if (member_loc)
17477 {
17478 /* GDB has handled this for a long time, but it is
17479 not specified by DWARF. It seems to have been
17480 emitted by gfortran at least as recently as:
17481 http://gcc.gnu.org/bugzilla/show_bug.cgi?id=23057. */
17482 complaint (_("Variable in common block has "
17483 "DW_AT_data_member_location "
17484 "- DIE at %s [in module %s]"),
17485 sect_offset_str (child_die->sect_off),
17486 objfile_name (objfile));
17487
17488 if (member_loc->form_is_section_offset ())
17489 dwarf2_complex_location_expr_complaint ();
17490 else if (member_loc->form_is_constant ()
17491 || member_loc->form_is_block ())
17492 {
17493 if (attr != nullptr)
17494 mark_common_block_symbol_computed (sym, die, attr,
17495 member_loc, cu);
17496 }
17497 else
17498 dwarf2_complex_location_expr_complaint ();
17499 }
17500 }
17501 }
17502
17503 sym = new_symbol (die, objfile_type (objfile)->builtin_void, cu);
17504 SYMBOL_VALUE_COMMON_BLOCK (sym) = common_block;
17505 }
17506 }
17507
17508 /* Create a type for a C++ namespace. */
17509
17510 static struct type *
17511 read_namespace_type (struct die_info *die, struct dwarf2_cu *cu)
17512 {
17513 struct objfile *objfile = cu->per_objfile->objfile;
17514 const char *previous_prefix, *name;
17515 int is_anonymous;
17516 struct type *type;
17517
17518 /* For extensions, reuse the type of the original namespace. */
17519 if (dwarf2_attr (die, DW_AT_extension, cu) != NULL)
17520 {
17521 struct die_info *ext_die;
17522 struct dwarf2_cu *ext_cu = cu;
17523
17524 ext_die = dwarf2_extension (die, &ext_cu);
17525 type = read_type_die (ext_die, ext_cu);
17526
17527 /* EXT_CU may not be the same as CU.
17528 Ensure TYPE is recorded with CU in die_type_hash. */
17529 return set_die_type (die, type, cu);
17530 }
17531
17532 name = namespace_name (die, &is_anonymous, cu);
17533
17534 /* Now build the name of the current namespace. */
17535
17536 previous_prefix = determine_prefix (die, cu);
17537 if (previous_prefix[0] != '\0')
17538 name = typename_concat (&objfile->objfile_obstack,
17539 previous_prefix, name, 0, cu);
17540
17541 /* Create the type. */
17542 type = init_type (objfile, TYPE_CODE_NAMESPACE, 0, name);
17543
17544 return set_die_type (die, type, cu);
17545 }
17546
17547 /* Read a namespace scope. */
17548
17549 static void
17550 read_namespace (struct die_info *die, struct dwarf2_cu *cu)
17551 {
17552 struct objfile *objfile = cu->per_objfile->objfile;
17553 int is_anonymous;
17554
17555 /* Add a symbol associated to this if we haven't seen the namespace
17556 before. Also, add a using directive if it's an anonymous
17557 namespace. */
17558
17559 if (dwarf2_attr (die, DW_AT_extension, cu) == NULL)
17560 {
17561 struct type *type;
17562
17563 type = read_type_die (die, cu);
17564 new_symbol (die, type, cu);
17565
17566 namespace_name (die, &is_anonymous, cu);
17567 if (is_anonymous)
17568 {
17569 const char *previous_prefix = determine_prefix (die, cu);
17570
17571 std::vector<const char *> excludes;
17572 add_using_directive (using_directives (cu),
17573 previous_prefix, type->name (), NULL,
17574 NULL, excludes, 0, &objfile->objfile_obstack);
17575 }
17576 }
17577
17578 if (die->child != NULL)
17579 {
17580 struct die_info *child_die = die->child;
17581
17582 while (child_die && child_die->tag)
17583 {
17584 process_die (child_die, cu);
17585 child_die = child_die->sibling;
17586 }
17587 }
17588 }
17589
17590 /* Read a Fortran module as type. This DIE can be only a declaration used for
17591 imported module. Still we need that type as local Fortran "use ... only"
17592 declaration imports depend on the created type in determine_prefix. */
17593
17594 static struct type *
17595 read_module_type (struct die_info *die, struct dwarf2_cu *cu)
17596 {
17597 struct objfile *objfile = cu->per_objfile->objfile;
17598 const char *module_name;
17599 struct type *type;
17600
17601 module_name = dwarf2_name (die, cu);
17602 type = init_type (objfile, TYPE_CODE_MODULE, 0, module_name);
17603
17604 return set_die_type (die, type, cu);
17605 }
17606
17607 /* Read a Fortran module. */
17608
17609 static void
17610 read_module (struct die_info *die, struct dwarf2_cu *cu)
17611 {
17612 struct die_info *child_die = die->child;
17613 struct type *type;
17614
17615 type = read_type_die (die, cu);
17616 new_symbol (die, type, cu);
17617
17618 while (child_die && child_die->tag)
17619 {
17620 process_die (child_die, cu);
17621 child_die = child_die->sibling;
17622 }
17623 }
17624
17625 /* Return the name of the namespace represented by DIE. Set
17626 *IS_ANONYMOUS to tell whether or not the namespace is an anonymous
17627 namespace. */
17628
17629 static const char *
17630 namespace_name (struct die_info *die, int *is_anonymous, struct dwarf2_cu *cu)
17631 {
17632 struct die_info *current_die;
17633 const char *name = NULL;
17634
17635 /* Loop through the extensions until we find a name. */
17636
17637 for (current_die = die;
17638 current_die != NULL;
17639 current_die = dwarf2_extension (die, &cu))
17640 {
17641 /* We don't use dwarf2_name here so that we can detect the absence
17642 of a name -> anonymous namespace. */
17643 name = dwarf2_string_attr (die, DW_AT_name, cu);
17644
17645 if (name != NULL)
17646 break;
17647 }
17648
17649 /* Is it an anonymous namespace? */
17650
17651 *is_anonymous = (name == NULL);
17652 if (*is_anonymous)
17653 name = CP_ANONYMOUS_NAMESPACE_STR;
17654
17655 return name;
17656 }
17657
17658 /* Extract all information from a DW_TAG_pointer_type DIE and add to
17659 the user defined type vector. */
17660
17661 static struct type *
17662 read_tag_pointer_type (struct die_info *die, struct dwarf2_cu *cu)
17663 {
17664 struct gdbarch *gdbarch = cu->per_objfile->objfile->arch ();
17665 struct comp_unit_head *cu_header = &cu->header;
17666 struct type *type;
17667 struct attribute *attr_byte_size;
17668 struct attribute *attr_address_class;
17669 int byte_size, addr_class;
17670 struct type *target_type;
17671
17672 target_type = die_type (die, cu);
17673
17674 /* The die_type call above may have already set the type for this DIE. */
17675 type = get_die_type (die, cu);
17676 if (type)
17677 return type;
17678
17679 type = lookup_pointer_type (target_type);
17680
17681 attr_byte_size = dwarf2_attr (die, DW_AT_byte_size, cu);
17682 if (attr_byte_size)
17683 byte_size = attr_byte_size->constant_value (cu_header->addr_size);
17684 else
17685 byte_size = cu_header->addr_size;
17686
17687 attr_address_class = dwarf2_attr (die, DW_AT_address_class, cu);
17688 if (attr_address_class)
17689 addr_class = attr_address_class->constant_value (DW_ADDR_none);
17690 else
17691 addr_class = DW_ADDR_none;
17692
17693 ULONGEST alignment = get_alignment (cu, die);
17694
17695 /* If the pointer size, alignment, or address class is different
17696 than the default, create a type variant marked as such and set
17697 the length accordingly. */
17698 if (TYPE_LENGTH (type) != byte_size
17699 || (alignment != 0 && TYPE_RAW_ALIGN (type) != 0
17700 && alignment != TYPE_RAW_ALIGN (type))
17701 || addr_class != DW_ADDR_none)
17702 {
17703 if (gdbarch_address_class_type_flags_p (gdbarch))
17704 {
17705 type_instance_flags type_flags
17706 = gdbarch_address_class_type_flags (gdbarch, byte_size,
17707 addr_class);
17708 gdb_assert ((type_flags & ~TYPE_INSTANCE_FLAG_ADDRESS_CLASS_ALL)
17709 == 0);
17710 type = make_type_with_address_space (type, type_flags);
17711 }
17712 else if (TYPE_LENGTH (type) != byte_size)
17713 {
17714 complaint (_("invalid pointer size %d"), byte_size);
17715 }
17716 else if (TYPE_RAW_ALIGN (type) != alignment)
17717 {
17718 complaint (_("Invalid DW_AT_alignment"
17719 " - DIE at %s [in module %s]"),
17720 sect_offset_str (die->sect_off),
17721 objfile_name (cu->per_objfile->objfile));
17722 }
17723 else
17724 {
17725 /* Should we also complain about unhandled address classes? */
17726 }
17727 }
17728
17729 TYPE_LENGTH (type) = byte_size;
17730 set_type_align (type, alignment);
17731 return set_die_type (die, type, cu);
17732 }
17733
17734 /* Extract all information from a DW_TAG_ptr_to_member_type DIE and add to
17735 the user defined type vector. */
17736
17737 static struct type *
17738 read_tag_ptr_to_member_type (struct die_info *die, struct dwarf2_cu *cu)
17739 {
17740 struct type *type;
17741 struct type *to_type;
17742 struct type *domain;
17743
17744 to_type = die_type (die, cu);
17745 domain = die_containing_type (die, cu);
17746
17747 /* The calls above may have already set the type for this DIE. */
17748 type = get_die_type (die, cu);
17749 if (type)
17750 return type;
17751
17752 if (check_typedef (to_type)->code () == TYPE_CODE_METHOD)
17753 type = lookup_methodptr_type (to_type);
17754 else if (check_typedef (to_type)->code () == TYPE_CODE_FUNC)
17755 {
17756 struct type *new_type = alloc_type (cu->per_objfile->objfile);
17757
17758 smash_to_method_type (new_type, domain, TYPE_TARGET_TYPE (to_type),
17759 to_type->fields (), to_type->num_fields (),
17760 to_type->has_varargs ());
17761 type = lookup_methodptr_type (new_type);
17762 }
17763 else
17764 type = lookup_memberptr_type (to_type, domain);
17765
17766 return set_die_type (die, type, cu);
17767 }
17768
17769 /* Extract all information from a DW_TAG_{rvalue_,}reference_type DIE and add to
17770 the user defined type vector. */
17771
17772 static struct type *
17773 read_tag_reference_type (struct die_info *die, struct dwarf2_cu *cu,
17774 enum type_code refcode)
17775 {
17776 struct comp_unit_head *cu_header = &cu->header;
17777 struct type *type, *target_type;
17778 struct attribute *attr;
17779
17780 gdb_assert (refcode == TYPE_CODE_REF || refcode == TYPE_CODE_RVALUE_REF);
17781
17782 target_type = die_type (die, cu);
17783
17784 /* The die_type call above may have already set the type for this DIE. */
17785 type = get_die_type (die, cu);
17786 if (type)
17787 return type;
17788
17789 type = lookup_reference_type (target_type, refcode);
17790 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
17791 if (attr != nullptr)
17792 {
17793 TYPE_LENGTH (type) = attr->constant_value (cu_header->addr_size);
17794 }
17795 else
17796 {
17797 TYPE_LENGTH (type) = cu_header->addr_size;
17798 }
17799 maybe_set_alignment (cu, die, type);
17800 return set_die_type (die, type, cu);
17801 }
17802
17803 /* Add the given cv-qualifiers to the element type of the array. GCC
17804 outputs DWARF type qualifiers that apply to an array, not the
17805 element type. But GDB relies on the array element type to carry
17806 the cv-qualifiers. This mimics section 6.7.3 of the C99
17807 specification. */
17808
17809 static struct type *
17810 add_array_cv_type (struct die_info *die, struct dwarf2_cu *cu,
17811 struct type *base_type, int cnst, int voltl)
17812 {
17813 struct type *el_type, *inner_array;
17814
17815 base_type = copy_type (base_type);
17816 inner_array = base_type;
17817
17818 while (TYPE_TARGET_TYPE (inner_array)->code () == TYPE_CODE_ARRAY)
17819 {
17820 TYPE_TARGET_TYPE (inner_array) =
17821 copy_type (TYPE_TARGET_TYPE (inner_array));
17822 inner_array = TYPE_TARGET_TYPE (inner_array);
17823 }
17824
17825 el_type = TYPE_TARGET_TYPE (inner_array);
17826 cnst |= TYPE_CONST (el_type);
17827 voltl |= TYPE_VOLATILE (el_type);
17828 TYPE_TARGET_TYPE (inner_array) = make_cv_type (cnst, voltl, el_type, NULL);
17829
17830 return set_die_type (die, base_type, cu);
17831 }
17832
17833 static struct type *
17834 read_tag_const_type (struct die_info *die, struct dwarf2_cu *cu)
17835 {
17836 struct type *base_type, *cv_type;
17837
17838 base_type = die_type (die, cu);
17839
17840 /* The die_type call above may have already set the type for this DIE. */
17841 cv_type = get_die_type (die, cu);
17842 if (cv_type)
17843 return cv_type;
17844
17845 /* In case the const qualifier is applied to an array type, the element type
17846 is so qualified, not the array type (section 6.7.3 of C99). */
17847 if (base_type->code () == TYPE_CODE_ARRAY)
17848 return add_array_cv_type (die, cu, base_type, 1, 0);
17849
17850 cv_type = make_cv_type (1, TYPE_VOLATILE (base_type), base_type, 0);
17851 return set_die_type (die, cv_type, cu);
17852 }
17853
17854 static struct type *
17855 read_tag_volatile_type (struct die_info *die, struct dwarf2_cu *cu)
17856 {
17857 struct type *base_type, *cv_type;
17858
17859 base_type = die_type (die, cu);
17860
17861 /* The die_type call above may have already set the type for this DIE. */
17862 cv_type = get_die_type (die, cu);
17863 if (cv_type)
17864 return cv_type;
17865
17866 /* In case the volatile qualifier is applied to an array type, the
17867 element type is so qualified, not the array type (section 6.7.3
17868 of C99). */
17869 if (base_type->code () == TYPE_CODE_ARRAY)
17870 return add_array_cv_type (die, cu, base_type, 0, 1);
17871
17872 cv_type = make_cv_type (TYPE_CONST (base_type), 1, base_type, 0);
17873 return set_die_type (die, cv_type, cu);
17874 }
17875
17876 /* Handle DW_TAG_restrict_type. */
17877
17878 static struct type *
17879 read_tag_restrict_type (struct die_info *die, struct dwarf2_cu *cu)
17880 {
17881 struct type *base_type, *cv_type;
17882
17883 base_type = die_type (die, cu);
17884
17885 /* The die_type call above may have already set the type for this DIE. */
17886 cv_type = get_die_type (die, cu);
17887 if (cv_type)
17888 return cv_type;
17889
17890 cv_type = make_restrict_type (base_type);
17891 return set_die_type (die, cv_type, cu);
17892 }
17893
17894 /* Handle DW_TAG_atomic_type. */
17895
17896 static struct type *
17897 read_tag_atomic_type (struct die_info *die, struct dwarf2_cu *cu)
17898 {
17899 struct type *base_type, *cv_type;
17900
17901 base_type = die_type (die, cu);
17902
17903 /* The die_type call above may have already set the type for this DIE. */
17904 cv_type = get_die_type (die, cu);
17905 if (cv_type)
17906 return cv_type;
17907
17908 cv_type = make_atomic_type (base_type);
17909 return set_die_type (die, cv_type, cu);
17910 }
17911
17912 /* Extract all information from a DW_TAG_string_type DIE and add to
17913 the user defined type vector. It isn't really a user defined type,
17914 but it behaves like one, with other DIE's using an AT_user_def_type
17915 attribute to reference it. */
17916
17917 static struct type *
17918 read_tag_string_type (struct die_info *die, struct dwarf2_cu *cu)
17919 {
17920 struct objfile *objfile = cu->per_objfile->objfile;
17921 struct gdbarch *gdbarch = objfile->arch ();
17922 struct type *type, *range_type, *index_type, *char_type;
17923 struct attribute *attr;
17924 struct dynamic_prop prop;
17925 bool length_is_constant = true;
17926 LONGEST length;
17927
17928 /* There are a couple of places where bit sizes might be made use of
17929 when parsing a DW_TAG_string_type, however, no producer that we know
17930 of make use of these. Handling bit sizes that are a multiple of the
17931 byte size is easy enough, but what about other bit sizes? Lets deal
17932 with that problem when we have to. Warn about these attributes being
17933 unsupported, then parse the type and ignore them like we always
17934 have. */
17935 if (dwarf2_attr (die, DW_AT_bit_size, cu) != nullptr
17936 || dwarf2_attr (die, DW_AT_string_length_bit_size, cu) != nullptr)
17937 {
17938 static bool warning_printed = false;
17939 if (!warning_printed)
17940 {
17941 warning (_("DW_AT_bit_size and DW_AT_string_length_bit_size not "
17942 "currently supported on DW_TAG_string_type."));
17943 warning_printed = true;
17944 }
17945 }
17946
17947 attr = dwarf2_attr (die, DW_AT_string_length, cu);
17948 if (attr != nullptr && !attr->form_is_constant ())
17949 {
17950 /* The string length describes the location at which the length of
17951 the string can be found. The size of the length field can be
17952 specified with one of the attributes below. */
17953 struct type *prop_type;
17954 struct attribute *len
17955 = dwarf2_attr (die, DW_AT_string_length_byte_size, cu);
17956 if (len == nullptr)
17957 len = dwarf2_attr (die, DW_AT_byte_size, cu);
17958 if (len != nullptr && len->form_is_constant ())
17959 {
17960 /* Pass 0 as the default as we know this attribute is constant
17961 and the default value will not be returned. */
17962 LONGEST sz = len->constant_value (0);
17963 prop_type = cu->per_objfile->int_type (sz, true);
17964 }
17965 else
17966 {
17967 /* If the size is not specified then we assume it is the size of
17968 an address on this target. */
17969 prop_type = cu->addr_sized_int_type (true);
17970 }
17971
17972 /* Convert the attribute into a dynamic property. */
17973 if (!attr_to_dynamic_prop (attr, die, cu, &prop, prop_type))
17974 length = 1;
17975 else
17976 length_is_constant = false;
17977 }
17978 else if (attr != nullptr)
17979 {
17980 /* This DW_AT_string_length just contains the length with no
17981 indirection. There's no need to create a dynamic property in this
17982 case. Pass 0 for the default value as we know it will not be
17983 returned in this case. */
17984 length = attr->constant_value (0);
17985 }
17986 else if ((attr = dwarf2_attr (die, DW_AT_byte_size, cu)) != nullptr)
17987 {
17988 /* We don't currently support non-constant byte sizes for strings. */
17989 length = attr->constant_value (1);
17990 }
17991 else
17992 {
17993 /* Use 1 as a fallback length if we have nothing else. */
17994 length = 1;
17995 }
17996
17997 index_type = objfile_type (objfile)->builtin_int;
17998 if (length_is_constant)
17999 range_type = create_static_range_type (NULL, index_type, 1, length);
18000 else
18001 {
18002 struct dynamic_prop low_bound;
18003
18004 low_bound.set_const_val (1);
18005 range_type = create_range_type (NULL, index_type, &low_bound, &prop, 0);
18006 }
18007 char_type = language_string_char_type (cu->language_defn, gdbarch);
18008 type = create_string_type (NULL, char_type, range_type);
18009
18010 return set_die_type (die, type, cu);
18011 }
18012
18013 /* Assuming that DIE corresponds to a function, returns nonzero
18014 if the function is prototyped. */
18015
18016 static int
18017 prototyped_function_p (struct die_info *die, struct dwarf2_cu *cu)
18018 {
18019 struct attribute *attr;
18020
18021 attr = dwarf2_attr (die, DW_AT_prototyped, cu);
18022 if (attr && attr->as_boolean ())
18023 return 1;
18024
18025 /* The DWARF standard implies that the DW_AT_prototyped attribute
18026 is only meaningful for C, but the concept also extends to other
18027 languages that allow unprototyped functions (Eg: Objective C).
18028 For all other languages, assume that functions are always
18029 prototyped. */
18030 if (cu->language != language_c
18031 && cu->language != language_objc
18032 && cu->language != language_opencl)
18033 return 1;
18034
18035 /* RealView does not emit DW_AT_prototyped. We can not distinguish
18036 prototyped and unprototyped functions; default to prototyped,
18037 since that is more common in modern code (and RealView warns
18038 about unprototyped functions). */
18039 if (producer_is_realview (cu->producer))
18040 return 1;
18041
18042 return 0;
18043 }
18044
18045 /* Handle DIES due to C code like:
18046
18047 struct foo
18048 {
18049 int (*funcp)(int a, long l);
18050 int b;
18051 };
18052
18053 ('funcp' generates a DW_TAG_subroutine_type DIE). */
18054
18055 static struct type *
18056 read_subroutine_type (struct die_info *die, struct dwarf2_cu *cu)
18057 {
18058 struct objfile *objfile = cu->per_objfile->objfile;
18059 struct type *type; /* Type that this function returns. */
18060 struct type *ftype; /* Function that returns above type. */
18061 struct attribute *attr;
18062
18063 type = die_type (die, cu);
18064
18065 /* The die_type call above may have already set the type for this DIE. */
18066 ftype = get_die_type (die, cu);
18067 if (ftype)
18068 return ftype;
18069
18070 ftype = lookup_function_type (type);
18071
18072 if (prototyped_function_p (die, cu))
18073 ftype->set_is_prototyped (true);
18074
18075 /* Store the calling convention in the type if it's available in
18076 the subroutine die. Otherwise set the calling convention to
18077 the default value DW_CC_normal. */
18078 attr = dwarf2_attr (die, DW_AT_calling_convention, cu);
18079 if (attr != nullptr
18080 && is_valid_DW_AT_calling_convention_for_subroutine (attr->constant_value (0)))
18081 TYPE_CALLING_CONVENTION (ftype)
18082 = (enum dwarf_calling_convention) attr->constant_value (0);
18083 else if (cu->producer && strstr (cu->producer, "IBM XL C for OpenCL"))
18084 TYPE_CALLING_CONVENTION (ftype) = DW_CC_GDB_IBM_OpenCL;
18085 else
18086 TYPE_CALLING_CONVENTION (ftype) = DW_CC_normal;
18087
18088 /* Record whether the function returns normally to its caller or not
18089 if the DWARF producer set that information. */
18090 attr = dwarf2_attr (die, DW_AT_noreturn, cu);
18091 if (attr && attr->as_boolean ())
18092 TYPE_NO_RETURN (ftype) = 1;
18093
18094 /* We need to add the subroutine type to the die immediately so
18095 we don't infinitely recurse when dealing with parameters
18096 declared as the same subroutine type. */
18097 set_die_type (die, ftype, cu);
18098
18099 if (die->child != NULL)
18100 {
18101 struct type *void_type = objfile_type (objfile)->builtin_void;
18102 struct die_info *child_die;
18103 int nparams, iparams;
18104
18105 /* Count the number of parameters.
18106 FIXME: GDB currently ignores vararg functions, but knows about
18107 vararg member functions. */
18108 nparams = 0;
18109 child_die = die->child;
18110 while (child_die && child_die->tag)
18111 {
18112 if (child_die->tag == DW_TAG_formal_parameter)
18113 nparams++;
18114 else if (child_die->tag == DW_TAG_unspecified_parameters)
18115 ftype->set_has_varargs (true);
18116
18117 child_die = child_die->sibling;
18118 }
18119
18120 /* Allocate storage for parameters and fill them in. */
18121 ftype->set_num_fields (nparams);
18122 ftype->set_fields
18123 ((struct field *) TYPE_ZALLOC (ftype, nparams * sizeof (struct field)));
18124
18125 /* TYPE_FIELD_TYPE must never be NULL. Pre-fill the array to ensure it
18126 even if we error out during the parameters reading below. */
18127 for (iparams = 0; iparams < nparams; iparams++)
18128 ftype->field (iparams).set_type (void_type);
18129
18130 iparams = 0;
18131 child_die = die->child;
18132 while (child_die && child_die->tag)
18133 {
18134 if (child_die->tag == DW_TAG_formal_parameter)
18135 {
18136 struct type *arg_type;
18137
18138 /* DWARF version 2 has no clean way to discern C++
18139 static and non-static member functions. G++ helps
18140 GDB by marking the first parameter for non-static
18141 member functions (which is the this pointer) as
18142 artificial. We pass this information to
18143 dwarf2_add_member_fn via TYPE_FIELD_ARTIFICIAL.
18144
18145 DWARF version 3 added DW_AT_object_pointer, which GCC
18146 4.5 does not yet generate. */
18147 attr = dwarf2_attr (child_die, DW_AT_artificial, cu);
18148 if (attr != nullptr)
18149 TYPE_FIELD_ARTIFICIAL (ftype, iparams) = attr->as_boolean ();
18150 else
18151 TYPE_FIELD_ARTIFICIAL (ftype, iparams) = 0;
18152 arg_type = die_type (child_die, cu);
18153
18154 /* RealView does not mark THIS as const, which the testsuite
18155 expects. GCC marks THIS as const in method definitions,
18156 but not in the class specifications (GCC PR 43053). */
18157 if (cu->language == language_cplus && !TYPE_CONST (arg_type)
18158 && TYPE_FIELD_ARTIFICIAL (ftype, iparams))
18159 {
18160 int is_this = 0;
18161 struct dwarf2_cu *arg_cu = cu;
18162 const char *name = dwarf2_name (child_die, cu);
18163
18164 attr = dwarf2_attr (die, DW_AT_object_pointer, cu);
18165 if (attr != nullptr)
18166 {
18167 /* If the compiler emits this, use it. */
18168 if (follow_die_ref (die, attr, &arg_cu) == child_die)
18169 is_this = 1;
18170 }
18171 else if (name && strcmp (name, "this") == 0)
18172 /* Function definitions will have the argument names. */
18173 is_this = 1;
18174 else if (name == NULL && iparams == 0)
18175 /* Declarations may not have the names, so like
18176 elsewhere in GDB, assume an artificial first
18177 argument is "this". */
18178 is_this = 1;
18179
18180 if (is_this)
18181 arg_type = make_cv_type (1, TYPE_VOLATILE (arg_type),
18182 arg_type, 0);
18183 }
18184
18185 ftype->field (iparams).set_type (arg_type);
18186 iparams++;
18187 }
18188 child_die = child_die->sibling;
18189 }
18190 }
18191
18192 return ftype;
18193 }
18194
18195 static struct type *
18196 read_typedef (struct die_info *die, struct dwarf2_cu *cu)
18197 {
18198 struct objfile *objfile = cu->per_objfile->objfile;
18199 const char *name = NULL;
18200 struct type *this_type, *target_type;
18201
18202 name = dwarf2_full_name (NULL, die, cu);
18203 this_type = init_type (objfile, TYPE_CODE_TYPEDEF, 0, name);
18204 this_type->set_target_is_stub (true);
18205 set_die_type (die, this_type, cu);
18206 target_type = die_type (die, cu);
18207 if (target_type != this_type)
18208 TYPE_TARGET_TYPE (this_type) = target_type;
18209 else
18210 {
18211 /* Self-referential typedefs are, it seems, not allowed by the DWARF
18212 spec and cause infinite loops in GDB. */
18213 complaint (_("Self-referential DW_TAG_typedef "
18214 "- DIE at %s [in module %s]"),
18215 sect_offset_str (die->sect_off), objfile_name (objfile));
18216 TYPE_TARGET_TYPE (this_type) = NULL;
18217 }
18218 if (name == NULL)
18219 {
18220 /* Gcc-7 and before supports -feliminate-dwarf2-dups, which generates
18221 anonymous typedefs, which is, strictly speaking, invalid DWARF.
18222 Handle these by just returning the target type, rather than
18223 constructing an anonymous typedef type and trying to handle this
18224 elsewhere. */
18225 set_die_type (die, target_type, cu);
18226 return target_type;
18227 }
18228 return this_type;
18229 }
18230
18231 /* Assuming DIE is a rational DW_TAG_constant, read the DIE's
18232 numerator and denominator into NUMERATOR and DENOMINATOR (resp).
18233
18234 If the numerator and/or numerator attribute is missing,
18235 a complaint is filed, and NUMERATOR and DENOMINATOR are left
18236 untouched. */
18237
18238 static void
18239 get_dwarf2_rational_constant (struct die_info *die, struct dwarf2_cu *cu,
18240 gdb_mpz *numerator, gdb_mpz *denominator)
18241 {
18242 struct attribute *num_attr, *denom_attr;
18243
18244 num_attr = dwarf2_attr (die, DW_AT_GNU_numerator, cu);
18245 if (num_attr == nullptr)
18246 complaint (_("DW_AT_GNU_numerator missing in %s DIE at %s"),
18247 dwarf_tag_name (die->tag), sect_offset_str (die->sect_off));
18248
18249 denom_attr = dwarf2_attr (die, DW_AT_GNU_denominator, cu);
18250 if (denom_attr == nullptr)
18251 complaint (_("DW_AT_GNU_denominator missing in %s DIE at %s"),
18252 dwarf_tag_name (die->tag), sect_offset_str (die->sect_off));
18253
18254 if (num_attr == nullptr || denom_attr == nullptr)
18255 return;
18256
18257 if (num_attr->form_is_block ())
18258 {
18259 dwarf_block *blk = num_attr->as_block ();
18260 mpz_import (numerator->val, blk->size,
18261 bfd_big_endian (cu->per_objfile->objfile->obfd) ? 1 : -1,
18262 1, 0, 0, blk->data);
18263 }
18264 else
18265 *numerator = gdb_mpz (num_attr->constant_value (1));
18266
18267 if (denom_attr->form_is_block ())
18268 {
18269 dwarf_block *blk = denom_attr->as_block ();
18270 mpz_import (denominator->val, blk->size,
18271 bfd_big_endian (cu->per_objfile->objfile->obfd) ? 1 : -1,
18272 1, 0, 0, blk->data);
18273 }
18274 else
18275 *denominator = gdb_mpz (denom_attr->constant_value (1));
18276 }
18277
18278 /* Same as get_dwarf2_rational_constant, but extracting an unsigned
18279 rational constant, rather than a signed one.
18280
18281 If the rational constant has a negative value, a complaint
18282 is filed, and NUMERATOR and DENOMINATOR are left untouched. */
18283
18284 static void
18285 get_dwarf2_unsigned_rational_constant (struct die_info *die,
18286 struct dwarf2_cu *cu,
18287 gdb_mpz *numerator,
18288 gdb_mpz *denominator)
18289 {
18290 gdb_mpz num (1);
18291 gdb_mpz denom (1);
18292
18293 get_dwarf2_rational_constant (die, cu, &num, &denom);
18294 if (mpz_sgn (num.val) == -1 && mpz_sgn (denom.val) == -1)
18295 {
18296 mpz_neg (num.val, num.val);
18297 mpz_neg (denom.val, denom.val);
18298 }
18299 else if (mpz_sgn (num.val) == -1)
18300 {
18301 complaint (_("unexpected negative value for DW_AT_GNU_numerator"
18302 " in DIE at %s"),
18303 sect_offset_str (die->sect_off));
18304 return;
18305 }
18306 else if (mpz_sgn (denom.val) == -1)
18307 {
18308 complaint (_("unexpected negative value for DW_AT_GNU_denominator"
18309 " in DIE at %s"),
18310 sect_offset_str (die->sect_off));
18311 return;
18312 }
18313
18314 *numerator = std::move (num);
18315 *denominator = std::move (denom);
18316 }
18317
18318 /* Assuming DIE corresponds to a fixed point type, finish the creation
18319 of the corresponding TYPE by setting its type-specific data.
18320 CU is the DIE's CU. */
18321
18322 static void
18323 finish_fixed_point_type (struct type *type, struct die_info *die,
18324 struct dwarf2_cu *cu)
18325 {
18326 struct attribute *attr;
18327
18328 gdb_assert (type->code () == TYPE_CODE_FIXED_POINT
18329 && TYPE_SPECIFIC_FIELD (type) == TYPE_SPECIFIC_FIXED_POINT);
18330
18331 attr = dwarf2_attr (die, DW_AT_binary_scale, cu);
18332 if (!attr)
18333 attr = dwarf2_attr (die, DW_AT_decimal_scale, cu);
18334 if (!attr)
18335 attr = dwarf2_attr (die, DW_AT_small, cu);
18336
18337 /* Numerator and denominator of our fixed-point type's scaling factor.
18338 The default is a scaling factor of 1, which we use as a fallback
18339 when we are not able to decode it (problem with the debugging info,
18340 unsupported forms, bug in GDB, etc...). Using that as the default
18341 allows us to at least print the unscaled value, which might still
18342 be useful to a user. */
18343 gdb_mpz scale_num (1);
18344 gdb_mpz scale_denom (1);
18345
18346 if (attr == nullptr)
18347 {
18348 /* Scaling factor not found. Assume a scaling factor of 1,
18349 and hope for the best. At least the user will be able to see
18350 the encoded value. */
18351 complaint (_("no scale found for fixed-point type (DIE at %s)"),
18352 sect_offset_str (die->sect_off));
18353 }
18354 else if (attr->name == DW_AT_binary_scale)
18355 {
18356 LONGEST scale_exp = attr->constant_value (0);
18357 gdb_mpz *num_or_denom = scale_exp > 0 ? &scale_num : &scale_denom;
18358
18359 mpz_mul_2exp (num_or_denom->val, num_or_denom->val, std::abs (scale_exp));
18360 }
18361 else if (attr->name == DW_AT_decimal_scale)
18362 {
18363 LONGEST scale_exp = attr->constant_value (0);
18364 gdb_mpz *num_or_denom = scale_exp > 0 ? &scale_num : &scale_denom;
18365
18366 mpz_ui_pow_ui (num_or_denom->val, 10, std::abs (scale_exp));
18367 }
18368 else if (attr->name == DW_AT_small)
18369 {
18370 struct die_info *scale_die;
18371 struct dwarf2_cu *scale_cu = cu;
18372
18373 scale_die = follow_die_ref (die, attr, &scale_cu);
18374 if (scale_die->tag == DW_TAG_constant)
18375 get_dwarf2_unsigned_rational_constant (scale_die, scale_cu,
18376 &scale_num, &scale_denom);
18377 else
18378 complaint (_("%s DIE not supported as target of DW_AT_small attribute"
18379 " (DIE at %s)"),
18380 dwarf_tag_name (die->tag), sect_offset_str (die->sect_off));
18381 }
18382 else
18383 {
18384 complaint (_("unsupported scale attribute %s for fixed-point type"
18385 " (DIE at %s)"),
18386 dwarf_attr_name (attr->name),
18387 sect_offset_str (die->sect_off));
18388 }
18389
18390 gdb_mpq &scaling_factor = type->fixed_point_info ().scaling_factor;
18391 mpz_set (mpq_numref (scaling_factor.val), scale_num.val);
18392 mpz_set (mpq_denref (scaling_factor.val), scale_denom.val);
18393 mpq_canonicalize (scaling_factor.val);
18394 }
18395
18396 /* Allocate a floating-point type of size BITS and name NAME. Pass NAME_HINT
18397 (which may be different from NAME) to the architecture back-end to allow
18398 it to guess the correct format if necessary. */
18399
18400 static struct type *
18401 dwarf2_init_float_type (struct objfile *objfile, int bits, const char *name,
18402 const char *name_hint, enum bfd_endian byte_order)
18403 {
18404 struct gdbarch *gdbarch = objfile->arch ();
18405 const struct floatformat **format;
18406 struct type *type;
18407
18408 format = gdbarch_floatformat_for_type (gdbarch, name_hint, bits);
18409 if (format)
18410 type = init_float_type (objfile, bits, name, format, byte_order);
18411 else
18412 type = init_type (objfile, TYPE_CODE_ERROR, bits, name);
18413
18414 return type;
18415 }
18416
18417 /* Allocate an integer type of size BITS and name NAME. */
18418
18419 static struct type *
18420 dwarf2_init_integer_type (struct dwarf2_cu *cu, struct objfile *objfile,
18421 int bits, int unsigned_p, const char *name)
18422 {
18423 struct type *type;
18424
18425 /* Versions of Intel's C Compiler generate an integer type called "void"
18426 instead of using DW_TAG_unspecified_type. This has been seen on
18427 at least versions 14, 17, and 18. */
18428 if (bits == 0 && producer_is_icc (cu) && name != nullptr
18429 && strcmp (name, "void") == 0)
18430 type = objfile_type (objfile)->builtin_void;
18431 else
18432 type = init_integer_type (objfile, bits, unsigned_p, name);
18433
18434 return type;
18435 }
18436
18437 /* Return true if DIE has a DW_AT_small attribute whose value is
18438 a constant rational, where both the numerator and denominator
18439 are equal to zero.
18440
18441 CU is the DIE's Compilation Unit. */
18442
18443 static bool
18444 has_zero_over_zero_small_attribute (struct die_info *die,
18445 struct dwarf2_cu *cu)
18446 {
18447 struct attribute *attr = dwarf2_attr (die, DW_AT_small, cu);
18448 if (attr == nullptr)
18449 return false;
18450
18451 struct dwarf2_cu *scale_cu = cu;
18452 struct die_info *scale_die
18453 = follow_die_ref (die, attr, &scale_cu);
18454
18455 if (scale_die->tag != DW_TAG_constant)
18456 return false;
18457
18458 gdb_mpz num (1), denom (1);
18459 get_dwarf2_rational_constant (scale_die, cu, &num, &denom);
18460 return mpz_sgn (num.val) == 0 && mpz_sgn (denom.val) == 0;
18461 }
18462
18463 /* Initialise and return a floating point type of size BITS suitable for
18464 use as a component of a complex number. The NAME_HINT is passed through
18465 when initialising the floating point type and is the name of the complex
18466 type.
18467
18468 As DWARF doesn't currently provide an explicit name for the components
18469 of a complex number, but it can be helpful to have these components
18470 named, we try to select a suitable name based on the size of the
18471 component. */
18472 static struct type *
18473 dwarf2_init_complex_target_type (struct dwarf2_cu *cu,
18474 struct objfile *objfile,
18475 int bits, const char *name_hint,
18476 enum bfd_endian byte_order)
18477 {
18478 gdbarch *gdbarch = objfile->arch ();
18479 struct type *tt = nullptr;
18480
18481 /* Try to find a suitable floating point builtin type of size BITS.
18482 We're going to use the name of this type as the name for the complex
18483 target type that we are about to create. */
18484 switch (cu->language)
18485 {
18486 case language_fortran:
18487 switch (bits)
18488 {
18489 case 32:
18490 tt = builtin_f_type (gdbarch)->builtin_real;
18491 break;
18492 case 64:
18493 tt = builtin_f_type (gdbarch)->builtin_real_s8;
18494 break;
18495 case 96: /* The x86-32 ABI specifies 96-bit long double. */
18496 case 128:
18497 tt = builtin_f_type (gdbarch)->builtin_real_s16;
18498 break;
18499 }
18500 break;
18501 default:
18502 switch (bits)
18503 {
18504 case 32:
18505 tt = builtin_type (gdbarch)->builtin_float;
18506 break;
18507 case 64:
18508 tt = builtin_type (gdbarch)->builtin_double;
18509 break;
18510 case 96: /* The x86-32 ABI specifies 96-bit long double. */
18511 case 128:
18512 tt = builtin_type (gdbarch)->builtin_long_double;
18513 break;
18514 }
18515 break;
18516 }
18517
18518 /* If the type we found doesn't match the size we were looking for, then
18519 pretend we didn't find a type at all, the complex target type we
18520 create will then be nameless. */
18521 if (tt != nullptr && TYPE_LENGTH (tt) * TARGET_CHAR_BIT != bits)
18522 tt = nullptr;
18523
18524 const char *name = (tt == nullptr) ? nullptr : tt->name ();
18525 return dwarf2_init_float_type (objfile, bits, name, name_hint, byte_order);
18526 }
18527
18528 /* Find a representation of a given base type and install
18529 it in the TYPE field of the die. */
18530
18531 static struct type *
18532 read_base_type (struct die_info *die, struct dwarf2_cu *cu)
18533 {
18534 struct objfile *objfile = cu->per_objfile->objfile;
18535 struct type *type;
18536 struct attribute *attr;
18537 int encoding = 0, bits = 0;
18538 const char *name;
18539 gdbarch *arch;
18540
18541 attr = dwarf2_attr (die, DW_AT_encoding, cu);
18542 if (attr != nullptr && attr->form_is_constant ())
18543 encoding = attr->constant_value (0);
18544 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
18545 if (attr != nullptr)
18546 bits = attr->constant_value (0) * TARGET_CHAR_BIT;
18547 name = dwarf2_name (die, cu);
18548 if (!name)
18549 complaint (_("DW_AT_name missing from DW_TAG_base_type"));
18550
18551 arch = objfile->arch ();
18552 enum bfd_endian byte_order = gdbarch_byte_order (arch);
18553
18554 attr = dwarf2_attr (die, DW_AT_endianity, cu);
18555 if (attr != nullptr && attr->form_is_constant ())
18556 {
18557 int endianity = attr->constant_value (0);
18558
18559 switch (endianity)
18560 {
18561 case DW_END_big:
18562 byte_order = BFD_ENDIAN_BIG;
18563 break;
18564 case DW_END_little:
18565 byte_order = BFD_ENDIAN_LITTLE;
18566 break;
18567 default:
18568 complaint (_("DW_AT_endianity has unrecognized value %d"), endianity);
18569 break;
18570 }
18571 }
18572
18573 if ((encoding == DW_ATE_signed_fixed || encoding == DW_ATE_unsigned_fixed)
18574 && cu->language == language_ada
18575 && has_zero_over_zero_small_attribute (die, cu))
18576 {
18577 /* brobecker/2018-02-24: This is a fixed point type for which
18578 the scaling factor is represented as fraction whose value
18579 does not make sense (zero divided by zero), so we should
18580 normally never see these. However, there is a small category
18581 of fixed point types for which GNAT is unable to provide
18582 the scaling factor via the standard DWARF mechanisms, and
18583 for which the info is provided via the GNAT encodings instead.
18584 This is likely what this DIE is about.
18585
18586 Ideally, GNAT should be declaring this type the same way
18587 it declares other fixed point types when using the legacy
18588 GNAT encoding, which is to use a simple signed or unsigned
18589 base type. A report to the GNAT team has been created to
18590 look into it. In the meantime, pretend this type is a simple
18591 signed or unsigned integral, rather than a fixed point type,
18592 to avoid any confusion later on as to how to process this type. */
18593 encoding = (encoding == DW_ATE_signed_fixed
18594 ? DW_ATE_signed
18595 : DW_ATE_unsigned);
18596 }
18597
18598 switch (encoding)
18599 {
18600 case DW_ATE_address:
18601 /* Turn DW_ATE_address into a void * pointer. */
18602 type = init_type (objfile, TYPE_CODE_VOID, TARGET_CHAR_BIT, NULL);
18603 type = init_pointer_type (objfile, bits, name, type);
18604 break;
18605 case DW_ATE_boolean:
18606 type = init_boolean_type (objfile, bits, 1, name);
18607 break;
18608 case DW_ATE_complex_float:
18609 type = dwarf2_init_complex_target_type (cu, objfile, bits / 2, name,
18610 byte_order);
18611 if (type->code () == TYPE_CODE_ERROR)
18612 {
18613 if (name == nullptr)
18614 {
18615 struct obstack *obstack
18616 = &cu->per_objfile->objfile->objfile_obstack;
18617 name = obconcat (obstack, "_Complex ", type->name (),
18618 nullptr);
18619 }
18620 type = init_type (objfile, TYPE_CODE_ERROR, bits, name);
18621 }
18622 else
18623 type = init_complex_type (name, type);
18624 break;
18625 case DW_ATE_decimal_float:
18626 type = init_decfloat_type (objfile, bits, name);
18627 break;
18628 case DW_ATE_float:
18629 type = dwarf2_init_float_type (objfile, bits, name, name, byte_order);
18630 break;
18631 case DW_ATE_signed:
18632 type = dwarf2_init_integer_type (cu, objfile, bits, 0, name);
18633 break;
18634 case DW_ATE_unsigned:
18635 if (cu->language == language_fortran
18636 && name
18637 && startswith (name, "character("))
18638 type = init_character_type (objfile, bits, 1, name);
18639 else
18640 type = dwarf2_init_integer_type (cu, objfile, bits, 1, name);
18641 break;
18642 case DW_ATE_signed_char:
18643 if (cu->language == language_ada || cu->language == language_m2
18644 || cu->language == language_pascal
18645 || cu->language == language_fortran)
18646 type = init_character_type (objfile, bits, 0, name);
18647 else
18648 type = dwarf2_init_integer_type (cu, objfile, bits, 0, name);
18649 break;
18650 case DW_ATE_unsigned_char:
18651 if (cu->language == language_ada || cu->language == language_m2
18652 || cu->language == language_pascal
18653 || cu->language == language_fortran
18654 || cu->language == language_rust)
18655 type = init_character_type (objfile, bits, 1, name);
18656 else
18657 type = dwarf2_init_integer_type (cu, objfile, bits, 1, name);
18658 break;
18659 case DW_ATE_UTF:
18660 {
18661 if (bits == 16)
18662 type = builtin_type (arch)->builtin_char16;
18663 else if (bits == 32)
18664 type = builtin_type (arch)->builtin_char32;
18665 else
18666 {
18667 complaint (_("unsupported DW_ATE_UTF bit size: '%d'"),
18668 bits);
18669 type = dwarf2_init_integer_type (cu, objfile, bits, 1, name);
18670 }
18671 return set_die_type (die, type, cu);
18672 }
18673 break;
18674 case DW_ATE_signed_fixed:
18675 type = init_fixed_point_type (objfile, bits, 0, name);
18676 finish_fixed_point_type (type, die, cu);
18677 break;
18678 case DW_ATE_unsigned_fixed:
18679 type = init_fixed_point_type (objfile, bits, 1, name);
18680 finish_fixed_point_type (type, die, cu);
18681 break;
18682
18683 default:
18684 complaint (_("unsupported DW_AT_encoding: '%s'"),
18685 dwarf_type_encoding_name (encoding));
18686 type = init_type (objfile, TYPE_CODE_ERROR, bits, name);
18687 break;
18688 }
18689
18690 if (name && strcmp (name, "char") == 0)
18691 type->set_has_no_signedness (true);
18692
18693 maybe_set_alignment (cu, die, type);
18694
18695 type->set_endianity_is_not_default (gdbarch_byte_order (arch) != byte_order);
18696
18697 if (TYPE_SPECIFIC_FIELD (type) == TYPE_SPECIFIC_INT)
18698 {
18699 attr = dwarf2_attr (die, DW_AT_bit_size, cu);
18700 if (attr != nullptr && attr->as_unsigned () <= 8 * TYPE_LENGTH (type))
18701 {
18702 unsigned real_bit_size = attr->as_unsigned ();
18703 attr = dwarf2_attr (die, DW_AT_data_bit_offset, cu);
18704 /* Only use the attributes if they make sense together. */
18705 if (attr == nullptr
18706 || (attr->as_unsigned () + real_bit_size
18707 <= 8 * TYPE_LENGTH (type)))
18708 {
18709 TYPE_MAIN_TYPE (type)->type_specific.int_stuff.bit_size
18710 = real_bit_size;
18711 if (attr != nullptr)
18712 TYPE_MAIN_TYPE (type)->type_specific.int_stuff.bit_offset
18713 = attr->as_unsigned ();
18714 }
18715 }
18716 }
18717
18718 return set_die_type (die, type, cu);
18719 }
18720
18721 /* Parse dwarf attribute if it's a block, reference or constant and put the
18722 resulting value of the attribute into struct bound_prop.
18723 Returns 1 if ATTR could be resolved into PROP, 0 otherwise. */
18724
18725 static int
18726 attr_to_dynamic_prop (const struct attribute *attr, struct die_info *die,
18727 struct dwarf2_cu *cu, struct dynamic_prop *prop,
18728 struct type *default_type)
18729 {
18730 struct dwarf2_property_baton *baton;
18731 dwarf2_per_objfile *per_objfile = cu->per_objfile;
18732 struct objfile *objfile = per_objfile->objfile;
18733 struct obstack *obstack = &objfile->objfile_obstack;
18734
18735 gdb_assert (default_type != NULL);
18736
18737 if (attr == NULL || prop == NULL)
18738 return 0;
18739
18740 if (attr->form_is_block ())
18741 {
18742 baton = XOBNEW (obstack, struct dwarf2_property_baton);
18743 baton->property_type = default_type;
18744 baton->locexpr.per_cu = cu->per_cu;
18745 baton->locexpr.per_objfile = per_objfile;
18746
18747 struct dwarf_block *block = attr->as_block ();
18748 baton->locexpr.size = block->size;
18749 baton->locexpr.data = block->data;
18750 switch (attr->name)
18751 {
18752 case DW_AT_string_length:
18753 baton->locexpr.is_reference = true;
18754 break;
18755 default:
18756 baton->locexpr.is_reference = false;
18757 break;
18758 }
18759
18760 prop->set_locexpr (baton);
18761 gdb_assert (prop->baton () != NULL);
18762 }
18763 else if (attr->form_is_ref ())
18764 {
18765 struct dwarf2_cu *target_cu = cu;
18766 struct die_info *target_die;
18767 struct attribute *target_attr;
18768
18769 target_die = follow_die_ref (die, attr, &target_cu);
18770 target_attr = dwarf2_attr (target_die, DW_AT_location, target_cu);
18771 if (target_attr == NULL)
18772 target_attr = dwarf2_attr (target_die, DW_AT_data_member_location,
18773 target_cu);
18774 if (target_attr == NULL)
18775 return 0;
18776
18777 switch (target_attr->name)
18778 {
18779 case DW_AT_location:
18780 if (target_attr->form_is_section_offset ())
18781 {
18782 baton = XOBNEW (obstack, struct dwarf2_property_baton);
18783 baton->property_type = die_type (target_die, target_cu);
18784 fill_in_loclist_baton (cu, &baton->loclist, target_attr);
18785 prop->set_loclist (baton);
18786 gdb_assert (prop->baton () != NULL);
18787 }
18788 else if (target_attr->form_is_block ())
18789 {
18790 baton = XOBNEW (obstack, struct dwarf2_property_baton);
18791 baton->property_type = die_type (target_die, target_cu);
18792 baton->locexpr.per_cu = cu->per_cu;
18793 baton->locexpr.per_objfile = per_objfile;
18794 struct dwarf_block *block = target_attr->as_block ();
18795 baton->locexpr.size = block->size;
18796 baton->locexpr.data = block->data;
18797 baton->locexpr.is_reference = true;
18798 prop->set_locexpr (baton);
18799 gdb_assert (prop->baton () != NULL);
18800 }
18801 else
18802 {
18803 dwarf2_invalid_attrib_class_complaint ("DW_AT_location",
18804 "dynamic property");
18805 return 0;
18806 }
18807 break;
18808 case DW_AT_data_member_location:
18809 {
18810 LONGEST offset;
18811
18812 if (!handle_data_member_location (target_die, target_cu,
18813 &offset))
18814 return 0;
18815
18816 baton = XOBNEW (obstack, struct dwarf2_property_baton);
18817 baton->property_type = read_type_die (target_die->parent,
18818 target_cu);
18819 baton->offset_info.offset = offset;
18820 baton->offset_info.type = die_type (target_die, target_cu);
18821 prop->set_addr_offset (baton);
18822 break;
18823 }
18824 }
18825 }
18826 else if (attr->form_is_constant ())
18827 prop->set_const_val (attr->constant_value (0));
18828 else
18829 {
18830 dwarf2_invalid_attrib_class_complaint (dwarf_form_name (attr->form),
18831 dwarf2_name (die, cu));
18832 return 0;
18833 }
18834
18835 return 1;
18836 }
18837
18838 /* See read.h. */
18839
18840 struct type *
18841 dwarf2_per_objfile::int_type (int size_in_bytes, bool unsigned_p) const
18842 {
18843 struct type *int_type;
18844
18845 /* Helper macro to examine the various builtin types. */
18846 #define TRY_TYPE(F) \
18847 int_type = (unsigned_p \
18848 ? objfile_type (objfile)->builtin_unsigned_ ## F \
18849 : objfile_type (objfile)->builtin_ ## F); \
18850 if (int_type != NULL && TYPE_LENGTH (int_type) == size_in_bytes) \
18851 return int_type
18852
18853 TRY_TYPE (char);
18854 TRY_TYPE (short);
18855 TRY_TYPE (int);
18856 TRY_TYPE (long);
18857 TRY_TYPE (long_long);
18858
18859 #undef TRY_TYPE
18860
18861 gdb_assert_not_reached ("unable to find suitable integer type");
18862 }
18863
18864 /* See read.h. */
18865
18866 struct type *
18867 dwarf2_cu::addr_sized_int_type (bool unsigned_p) const
18868 {
18869 int addr_size = this->per_cu->addr_size ();
18870 return this->per_objfile->int_type (addr_size, unsigned_p);
18871 }
18872
18873 /* Read the DW_AT_type attribute for a sub-range. If this attribute is not
18874 present (which is valid) then compute the default type based on the
18875 compilation units address size. */
18876
18877 static struct type *
18878 read_subrange_index_type (struct die_info *die, struct dwarf2_cu *cu)
18879 {
18880 struct type *index_type = die_type (die, cu);
18881
18882 /* Dwarf-2 specifications explicitly allows to create subrange types
18883 without specifying a base type.
18884 In that case, the base type must be set to the type of
18885 the lower bound, upper bound or count, in that order, if any of these
18886 three attributes references an object that has a type.
18887 If no base type is found, the Dwarf-2 specifications say that
18888 a signed integer type of size equal to the size of an address should
18889 be used.
18890 For the following C code: `extern char gdb_int [];'
18891 GCC produces an empty range DIE.
18892 FIXME: muller/2010-05-28: Possible references to object for low bound,
18893 high bound or count are not yet handled by this code. */
18894 if (index_type->code () == TYPE_CODE_VOID)
18895 index_type = cu->addr_sized_int_type (false);
18896
18897 return index_type;
18898 }
18899
18900 /* Read the given DW_AT_subrange DIE. */
18901
18902 static struct type *
18903 read_subrange_type (struct die_info *die, struct dwarf2_cu *cu)
18904 {
18905 struct type *base_type, *orig_base_type;
18906 struct type *range_type;
18907 struct attribute *attr;
18908 struct dynamic_prop low, high;
18909 int low_default_is_valid;
18910 int high_bound_is_count = 0;
18911 const char *name;
18912 ULONGEST negative_mask;
18913
18914 orig_base_type = read_subrange_index_type (die, cu);
18915
18916 /* If ORIG_BASE_TYPE is a typedef, it will not be TYPE_UNSIGNED,
18917 whereas the real type might be. So, we use ORIG_BASE_TYPE when
18918 creating the range type, but we use the result of check_typedef
18919 when examining properties of the type. */
18920 base_type = check_typedef (orig_base_type);
18921
18922 /* The die_type call above may have already set the type for this DIE. */
18923 range_type = get_die_type (die, cu);
18924 if (range_type)
18925 return range_type;
18926
18927 high.set_const_val (0);
18928
18929 /* Set LOW_DEFAULT_IS_VALID if current language and DWARF version allow
18930 omitting DW_AT_lower_bound. */
18931 switch (cu->language)
18932 {
18933 case language_c:
18934 case language_cplus:
18935 low.set_const_val (0);
18936 low_default_is_valid = 1;
18937 break;
18938 case language_fortran:
18939 low.set_const_val (1);
18940 low_default_is_valid = 1;
18941 break;
18942 case language_d:
18943 case language_objc:
18944 case language_rust:
18945 low.set_const_val (0);
18946 low_default_is_valid = (cu->header.version >= 4);
18947 break;
18948 case language_ada:
18949 case language_m2:
18950 case language_pascal:
18951 low.set_const_val (1);
18952 low_default_is_valid = (cu->header.version >= 4);
18953 break;
18954 default:
18955 low.set_const_val (0);
18956 low_default_is_valid = 0;
18957 break;
18958 }
18959
18960 attr = dwarf2_attr (die, DW_AT_lower_bound, cu);
18961 if (attr != nullptr)
18962 attr_to_dynamic_prop (attr, die, cu, &low, base_type);
18963 else if (!low_default_is_valid)
18964 complaint (_("Missing DW_AT_lower_bound "
18965 "- DIE at %s [in module %s]"),
18966 sect_offset_str (die->sect_off),
18967 objfile_name (cu->per_objfile->objfile));
18968
18969 struct attribute *attr_ub, *attr_count;
18970 attr = attr_ub = dwarf2_attr (die, DW_AT_upper_bound, cu);
18971 if (!attr_to_dynamic_prop (attr, die, cu, &high, base_type))
18972 {
18973 attr = attr_count = dwarf2_attr (die, DW_AT_count, cu);
18974 if (attr_to_dynamic_prop (attr, die, cu, &high, base_type))
18975 {
18976 /* If bounds are constant do the final calculation here. */
18977 if (low.kind () == PROP_CONST && high.kind () == PROP_CONST)
18978 high.set_const_val (low.const_val () + high.const_val () - 1);
18979 else
18980 high_bound_is_count = 1;
18981 }
18982 else
18983 {
18984 if (attr_ub != NULL)
18985 complaint (_("Unresolved DW_AT_upper_bound "
18986 "- DIE at %s [in module %s]"),
18987 sect_offset_str (die->sect_off),
18988 objfile_name (cu->per_objfile->objfile));
18989 if (attr_count != NULL)
18990 complaint (_("Unresolved DW_AT_count "
18991 "- DIE at %s [in module %s]"),
18992 sect_offset_str (die->sect_off),
18993 objfile_name (cu->per_objfile->objfile));
18994 }
18995 }
18996
18997 LONGEST bias = 0;
18998 struct attribute *bias_attr = dwarf2_attr (die, DW_AT_GNU_bias, cu);
18999 if (bias_attr != nullptr && bias_attr->form_is_constant ())
19000 bias = bias_attr->constant_value (0);
19001
19002 /* Normally, the DWARF producers are expected to use a signed
19003 constant form (Eg. DW_FORM_sdata) to express negative bounds.
19004 But this is unfortunately not always the case, as witnessed
19005 with GCC, for instance, where the ambiguous DW_FORM_dataN form
19006 is used instead. To work around that ambiguity, we treat
19007 the bounds as signed, and thus sign-extend their values, when
19008 the base type is signed. */
19009 negative_mask =
19010 -((ULONGEST) 1 << (TYPE_LENGTH (base_type) * TARGET_CHAR_BIT - 1));
19011 if (low.kind () == PROP_CONST
19012 && !base_type->is_unsigned () && (low.const_val () & negative_mask))
19013 low.set_const_val (low.const_val () | negative_mask);
19014 if (high.kind () == PROP_CONST
19015 && !base_type->is_unsigned () && (high.const_val () & negative_mask))
19016 high.set_const_val (high.const_val () | negative_mask);
19017
19018 /* Check for bit and byte strides. */
19019 struct dynamic_prop byte_stride_prop;
19020 attribute *attr_byte_stride = dwarf2_attr (die, DW_AT_byte_stride, cu);
19021 if (attr_byte_stride != nullptr)
19022 {
19023 struct type *prop_type = cu->addr_sized_int_type (false);
19024 attr_to_dynamic_prop (attr_byte_stride, die, cu, &byte_stride_prop,
19025 prop_type);
19026 }
19027
19028 struct dynamic_prop bit_stride_prop;
19029 attribute *attr_bit_stride = dwarf2_attr (die, DW_AT_bit_stride, cu);
19030 if (attr_bit_stride != nullptr)
19031 {
19032 /* It only makes sense to have either a bit or byte stride. */
19033 if (attr_byte_stride != nullptr)
19034 {
19035 complaint (_("Found DW_AT_bit_stride and DW_AT_byte_stride "
19036 "- DIE at %s [in module %s]"),
19037 sect_offset_str (die->sect_off),
19038 objfile_name (cu->per_objfile->objfile));
19039 attr_bit_stride = nullptr;
19040 }
19041 else
19042 {
19043 struct type *prop_type = cu->addr_sized_int_type (false);
19044 attr_to_dynamic_prop (attr_bit_stride, die, cu, &bit_stride_prop,
19045 prop_type);
19046 }
19047 }
19048
19049 if (attr_byte_stride != nullptr
19050 || attr_bit_stride != nullptr)
19051 {
19052 bool byte_stride_p = (attr_byte_stride != nullptr);
19053 struct dynamic_prop *stride
19054 = byte_stride_p ? &byte_stride_prop : &bit_stride_prop;
19055
19056 range_type
19057 = create_range_type_with_stride (NULL, orig_base_type, &low,
19058 &high, bias, stride, byte_stride_p);
19059 }
19060 else
19061 range_type = create_range_type (NULL, orig_base_type, &low, &high, bias);
19062
19063 if (high_bound_is_count)
19064 range_type->bounds ()->flag_upper_bound_is_count = 1;
19065
19066 /* Ada expects an empty array on no boundary attributes. */
19067 if (attr == NULL && cu->language != language_ada)
19068 range_type->bounds ()->high.set_undefined ();
19069
19070 name = dwarf2_name (die, cu);
19071 if (name)
19072 range_type->set_name (name);
19073
19074 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
19075 if (attr != nullptr)
19076 TYPE_LENGTH (range_type) = attr->constant_value (0);
19077
19078 maybe_set_alignment (cu, die, range_type);
19079
19080 set_die_type (die, range_type, cu);
19081
19082 /* set_die_type should be already done. */
19083 set_descriptive_type (range_type, die, cu);
19084
19085 return range_type;
19086 }
19087
19088 static struct type *
19089 read_unspecified_type (struct die_info *die, struct dwarf2_cu *cu)
19090 {
19091 struct type *type;
19092
19093 type = init_type (cu->per_objfile->objfile, TYPE_CODE_VOID, 0, NULL);
19094 type->set_name (dwarf2_name (die, cu));
19095
19096 /* In Ada, an unspecified type is typically used when the description
19097 of the type is deferred to a different unit. When encountering
19098 such a type, we treat it as a stub, and try to resolve it later on,
19099 when needed. */
19100 if (cu->language == language_ada)
19101 type->set_is_stub (true);
19102
19103 return set_die_type (die, type, cu);
19104 }
19105
19106 /* Read a single die and all its descendents. Set the die's sibling
19107 field to NULL; set other fields in the die correctly, and set all
19108 of the descendents' fields correctly. Set *NEW_INFO_PTR to the
19109 location of the info_ptr after reading all of those dies. PARENT
19110 is the parent of the die in question. */
19111
19112 static struct die_info *
19113 read_die_and_children (const struct die_reader_specs *reader,
19114 const gdb_byte *info_ptr,
19115 const gdb_byte **new_info_ptr,
19116 struct die_info *parent)
19117 {
19118 struct die_info *die;
19119 const gdb_byte *cur_ptr;
19120
19121 cur_ptr = read_full_die_1 (reader, &die, info_ptr, 0);
19122 if (die == NULL)
19123 {
19124 *new_info_ptr = cur_ptr;
19125 return NULL;
19126 }
19127 store_in_ref_table (die, reader->cu);
19128
19129 if (die->has_children)
19130 die->child = read_die_and_siblings_1 (reader, cur_ptr, new_info_ptr, die);
19131 else
19132 {
19133 die->child = NULL;
19134 *new_info_ptr = cur_ptr;
19135 }
19136
19137 die->sibling = NULL;
19138 die->parent = parent;
19139 return die;
19140 }
19141
19142 /* Read a die, all of its descendents, and all of its siblings; set
19143 all of the fields of all of the dies correctly. Arguments are as
19144 in read_die_and_children. */
19145
19146 static struct die_info *
19147 read_die_and_siblings_1 (const struct die_reader_specs *reader,
19148 const gdb_byte *info_ptr,
19149 const gdb_byte **new_info_ptr,
19150 struct die_info *parent)
19151 {
19152 struct die_info *first_die, *last_sibling;
19153 const gdb_byte *cur_ptr;
19154
19155 cur_ptr = info_ptr;
19156 first_die = last_sibling = NULL;
19157
19158 while (1)
19159 {
19160 struct die_info *die
19161 = read_die_and_children (reader, cur_ptr, &cur_ptr, parent);
19162
19163 if (die == NULL)
19164 {
19165 *new_info_ptr = cur_ptr;
19166 return first_die;
19167 }
19168
19169 if (!first_die)
19170 first_die = die;
19171 else
19172 last_sibling->sibling = die;
19173
19174 last_sibling = die;
19175 }
19176 }
19177
19178 /* Read a die, all of its descendents, and all of its siblings; set
19179 all of the fields of all of the dies correctly. Arguments are as
19180 in read_die_and_children.
19181 This the main entry point for reading a DIE and all its children. */
19182
19183 static struct die_info *
19184 read_die_and_siblings (const struct die_reader_specs *reader,
19185 const gdb_byte *info_ptr,
19186 const gdb_byte **new_info_ptr,
19187 struct die_info *parent)
19188 {
19189 struct die_info *die = read_die_and_siblings_1 (reader, info_ptr,
19190 new_info_ptr, parent);
19191
19192 if (dwarf_die_debug)
19193 {
19194 fprintf_unfiltered (gdb_stdlog,
19195 "Read die from %s@0x%x of %s:\n",
19196 reader->die_section->get_name (),
19197 (unsigned) (info_ptr - reader->die_section->buffer),
19198 bfd_get_filename (reader->abfd));
19199 dump_die (die, dwarf_die_debug);
19200 }
19201
19202 return die;
19203 }
19204
19205 /* Read a die and all its attributes, leave space for NUM_EXTRA_ATTRS
19206 attributes.
19207 The caller is responsible for filling in the extra attributes
19208 and updating (*DIEP)->num_attrs.
19209 Set DIEP to point to a newly allocated die with its information,
19210 except for its child, sibling, and parent fields. */
19211
19212 static const gdb_byte *
19213 read_full_die_1 (const struct die_reader_specs *reader,
19214 struct die_info **diep, const gdb_byte *info_ptr,
19215 int num_extra_attrs)
19216 {
19217 unsigned int abbrev_number, bytes_read, i;
19218 struct abbrev_info *abbrev;
19219 struct die_info *die;
19220 struct dwarf2_cu *cu = reader->cu;
19221 bfd *abfd = reader->abfd;
19222
19223 sect_offset sect_off = (sect_offset) (info_ptr - reader->buffer);
19224 abbrev_number = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
19225 info_ptr += bytes_read;
19226 if (!abbrev_number)
19227 {
19228 *diep = NULL;
19229 return info_ptr;
19230 }
19231
19232 abbrev = reader->abbrev_table->lookup_abbrev (abbrev_number);
19233 if (!abbrev)
19234 error (_("Dwarf Error: could not find abbrev number %d [in module %s]"),
19235 abbrev_number,
19236 bfd_get_filename (abfd));
19237
19238 die = dwarf_alloc_die (cu, abbrev->num_attrs + num_extra_attrs);
19239 die->sect_off = sect_off;
19240 die->tag = abbrev->tag;
19241 die->abbrev = abbrev_number;
19242 die->has_children = abbrev->has_children;
19243
19244 /* Make the result usable.
19245 The caller needs to update num_attrs after adding the extra
19246 attributes. */
19247 die->num_attrs = abbrev->num_attrs;
19248
19249 bool any_need_reprocess = false;
19250 for (i = 0; i < abbrev->num_attrs; ++i)
19251 {
19252 info_ptr = read_attribute (reader, &die->attrs[i], &abbrev->attrs[i],
19253 info_ptr);
19254 if (die->attrs[i].requires_reprocessing_p ())
19255 any_need_reprocess = true;
19256 }
19257
19258 struct attribute *attr = die->attr (DW_AT_str_offsets_base);
19259 if (attr != nullptr && attr->form_is_unsigned ())
19260 cu->str_offsets_base = attr->as_unsigned ();
19261
19262 attr = die->attr (DW_AT_loclists_base);
19263 if (attr != nullptr)
19264 cu->loclist_base = attr->as_unsigned ();
19265
19266 auto maybe_addr_base = die->addr_base ();
19267 if (maybe_addr_base.has_value ())
19268 cu->addr_base = *maybe_addr_base;
19269
19270 attr = die->attr (DW_AT_rnglists_base);
19271 if (attr != nullptr)
19272 cu->ranges_base = attr->as_unsigned ();
19273
19274 if (any_need_reprocess)
19275 {
19276 for (i = 0; i < abbrev->num_attrs; ++i)
19277 {
19278 if (die->attrs[i].requires_reprocessing_p ())
19279 read_attribute_reprocess (reader, &die->attrs[i], die->tag);
19280 }
19281 }
19282 *diep = die;
19283 return info_ptr;
19284 }
19285
19286 /* Read a die and all its attributes.
19287 Set DIEP to point to a newly allocated die with its information,
19288 except for its child, sibling, and parent fields. */
19289
19290 static const gdb_byte *
19291 read_full_die (const struct die_reader_specs *reader,
19292 struct die_info **diep, const gdb_byte *info_ptr)
19293 {
19294 const gdb_byte *result;
19295
19296 result = read_full_die_1 (reader, diep, info_ptr, 0);
19297
19298 if (dwarf_die_debug)
19299 {
19300 fprintf_unfiltered (gdb_stdlog,
19301 "Read die from %s@0x%x of %s:\n",
19302 reader->die_section->get_name (),
19303 (unsigned) (info_ptr - reader->die_section->buffer),
19304 bfd_get_filename (reader->abfd));
19305 dump_die (*diep, dwarf_die_debug);
19306 }
19307
19308 return result;
19309 }
19310 \f
19311
19312 /* Returns nonzero if TAG represents a type that we might generate a partial
19313 symbol for. */
19314
19315 static int
19316 is_type_tag_for_partial (int tag, enum language lang)
19317 {
19318 switch (tag)
19319 {
19320 #if 0
19321 /* Some types that would be reasonable to generate partial symbols for,
19322 that we don't at present. Note that normally this does not
19323 matter, mainly because C compilers don't give names to these
19324 types, but instead emit DW_TAG_typedef. */
19325 case DW_TAG_file_type:
19326 case DW_TAG_ptr_to_member_type:
19327 case DW_TAG_set_type:
19328 case DW_TAG_string_type:
19329 case DW_TAG_subroutine_type:
19330 #endif
19331
19332 /* GNAT may emit an array with a name, but no typedef, so we
19333 need to make a symbol in this case. */
19334 case DW_TAG_array_type:
19335 return lang == language_ada;
19336
19337 case DW_TAG_base_type:
19338 case DW_TAG_class_type:
19339 case DW_TAG_interface_type:
19340 case DW_TAG_enumeration_type:
19341 case DW_TAG_structure_type:
19342 case DW_TAG_subrange_type:
19343 case DW_TAG_typedef:
19344 case DW_TAG_union_type:
19345 return 1;
19346 default:
19347 return 0;
19348 }
19349 }
19350
19351 /* Load all DIEs that are interesting for partial symbols into memory. */
19352
19353 static struct partial_die_info *
19354 load_partial_dies (const struct die_reader_specs *reader,
19355 const gdb_byte *info_ptr, int building_psymtab)
19356 {
19357 struct dwarf2_cu *cu = reader->cu;
19358 struct objfile *objfile = cu->per_objfile->objfile;
19359 struct partial_die_info *parent_die, *last_die, *first_die = NULL;
19360 unsigned int bytes_read;
19361 unsigned int load_all = 0;
19362 int nesting_level = 1;
19363
19364 parent_die = NULL;
19365 last_die = NULL;
19366
19367 gdb_assert (cu->per_cu != NULL);
19368 if (cu->per_cu->load_all_dies)
19369 load_all = 1;
19370
19371 cu->partial_dies
19372 = htab_create_alloc_ex (cu->header.length / 12,
19373 partial_die_hash,
19374 partial_die_eq,
19375 NULL,
19376 &cu->comp_unit_obstack,
19377 hashtab_obstack_allocate,
19378 dummy_obstack_deallocate);
19379
19380 while (1)
19381 {
19382 abbrev_info *abbrev = peek_die_abbrev (*reader, info_ptr, &bytes_read);
19383
19384 /* A NULL abbrev means the end of a series of children. */
19385 if (abbrev == NULL)
19386 {
19387 if (--nesting_level == 0)
19388 return first_die;
19389
19390 info_ptr += bytes_read;
19391 last_die = parent_die;
19392 parent_die = parent_die->die_parent;
19393 continue;
19394 }
19395
19396 /* Check for template arguments. We never save these; if
19397 they're seen, we just mark the parent, and go on our way. */
19398 if (parent_die != NULL
19399 && cu->language == language_cplus
19400 && (abbrev->tag == DW_TAG_template_type_param
19401 || abbrev->tag == DW_TAG_template_value_param))
19402 {
19403 parent_die->has_template_arguments = 1;
19404
19405 if (!load_all)
19406 {
19407 /* We don't need a partial DIE for the template argument. */
19408 info_ptr = skip_one_die (reader, info_ptr + bytes_read, abbrev);
19409 continue;
19410 }
19411 }
19412
19413 /* We only recurse into c++ subprograms looking for template arguments.
19414 Skip their other children. */
19415 if (!load_all
19416 && cu->language == language_cplus
19417 && parent_die != NULL
19418 && parent_die->tag == DW_TAG_subprogram
19419 && abbrev->tag != DW_TAG_inlined_subroutine)
19420 {
19421 info_ptr = skip_one_die (reader, info_ptr + bytes_read, abbrev);
19422 continue;
19423 }
19424
19425 /* Check whether this DIE is interesting enough to save. Normally
19426 we would not be interested in members here, but there may be
19427 later variables referencing them via DW_AT_specification (for
19428 static members). */
19429 if (!load_all
19430 && !is_type_tag_for_partial (abbrev->tag, cu->language)
19431 && abbrev->tag != DW_TAG_constant
19432 && abbrev->tag != DW_TAG_enumerator
19433 && abbrev->tag != DW_TAG_subprogram
19434 && abbrev->tag != DW_TAG_inlined_subroutine
19435 && abbrev->tag != DW_TAG_lexical_block
19436 && abbrev->tag != DW_TAG_variable
19437 && abbrev->tag != DW_TAG_namespace
19438 && abbrev->tag != DW_TAG_module
19439 && abbrev->tag != DW_TAG_member
19440 && abbrev->tag != DW_TAG_imported_unit
19441 && abbrev->tag != DW_TAG_imported_declaration)
19442 {
19443 /* Otherwise we skip to the next sibling, if any. */
19444 info_ptr = skip_one_die (reader, info_ptr + bytes_read, abbrev);
19445 continue;
19446 }
19447
19448 struct partial_die_info pdi ((sect_offset) (info_ptr - reader->buffer),
19449 abbrev);
19450
19451 info_ptr = pdi.read (reader, *abbrev, info_ptr + bytes_read);
19452
19453 /* This two-pass algorithm for processing partial symbols has a
19454 high cost in cache pressure. Thus, handle some simple cases
19455 here which cover the majority of C partial symbols. DIEs
19456 which neither have specification tags in them, nor could have
19457 specification tags elsewhere pointing at them, can simply be
19458 processed and discarded.
19459
19460 This segment is also optional; scan_partial_symbols and
19461 add_partial_symbol will handle these DIEs if we chain
19462 them in normally. When compilers which do not emit large
19463 quantities of duplicate debug information are more common,
19464 this code can probably be removed. */
19465
19466 /* Any complete simple types at the top level (pretty much all
19467 of them, for a language without namespaces), can be processed
19468 directly. */
19469 if (parent_die == NULL
19470 && pdi.has_specification == 0
19471 && pdi.is_declaration == 0
19472 && ((pdi.tag == DW_TAG_typedef && !pdi.has_children)
19473 || pdi.tag == DW_TAG_base_type
19474 || pdi.tag == DW_TAG_array_type
19475 || pdi.tag == DW_TAG_subrange_type))
19476 {
19477 if (building_psymtab && pdi.raw_name != NULL)
19478 add_partial_symbol (&pdi, cu);
19479
19480 info_ptr = locate_pdi_sibling (reader, &pdi, info_ptr);
19481 continue;
19482 }
19483
19484 /* The exception for DW_TAG_typedef with has_children above is
19485 a workaround of GCC PR debug/47510. In the case of this complaint
19486 type_name_or_error will error on such types later.
19487
19488 GDB skipped children of DW_TAG_typedef by the shortcut above and then
19489 it could not find the child DIEs referenced later, this is checked
19490 above. In correct DWARF DW_TAG_typedef should have no children. */
19491
19492 if (pdi.tag == DW_TAG_typedef && pdi.has_children)
19493 complaint (_("DW_TAG_typedef has childen - GCC PR debug/47510 bug "
19494 "- DIE at %s [in module %s]"),
19495 sect_offset_str (pdi.sect_off), objfile_name (objfile));
19496
19497 /* If we're at the second level, and we're an enumerator, and
19498 our parent has no specification (meaning possibly lives in a
19499 namespace elsewhere), then we can add the partial symbol now
19500 instead of queueing it. */
19501 if (pdi.tag == DW_TAG_enumerator
19502 && parent_die != NULL
19503 && parent_die->die_parent == NULL
19504 && parent_die->tag == DW_TAG_enumeration_type
19505 && parent_die->has_specification == 0)
19506 {
19507 if (pdi.raw_name == NULL)
19508 complaint (_("malformed enumerator DIE ignored"));
19509 else if (building_psymtab)
19510 add_partial_symbol (&pdi, cu);
19511
19512 info_ptr = locate_pdi_sibling (reader, &pdi, info_ptr);
19513 continue;
19514 }
19515
19516 struct partial_die_info *part_die
19517 = new (&cu->comp_unit_obstack) partial_die_info (pdi);
19518
19519 /* We'll save this DIE so link it in. */
19520 part_die->die_parent = parent_die;
19521 part_die->die_sibling = NULL;
19522 part_die->die_child = NULL;
19523
19524 if (last_die && last_die == parent_die)
19525 last_die->die_child = part_die;
19526 else if (last_die)
19527 last_die->die_sibling = part_die;
19528
19529 last_die = part_die;
19530
19531 if (first_die == NULL)
19532 first_die = part_die;
19533
19534 /* Maybe add the DIE to the hash table. Not all DIEs that we
19535 find interesting need to be in the hash table, because we
19536 also have the parent/sibling/child chains; only those that we
19537 might refer to by offset later during partial symbol reading.
19538
19539 For now this means things that might have be the target of a
19540 DW_AT_specification, DW_AT_abstract_origin, or
19541 DW_AT_extension. DW_AT_extension will refer only to
19542 namespaces; DW_AT_abstract_origin refers to functions (and
19543 many things under the function DIE, but we do not recurse
19544 into function DIEs during partial symbol reading) and
19545 possibly variables as well; DW_AT_specification refers to
19546 declarations. Declarations ought to have the DW_AT_declaration
19547 flag. It happens that GCC forgets to put it in sometimes, but
19548 only for functions, not for types.
19549
19550 Adding more things than necessary to the hash table is harmless
19551 except for the performance cost. Adding too few will result in
19552 wasted time in find_partial_die, when we reread the compilation
19553 unit with load_all_dies set. */
19554
19555 if (load_all
19556 || abbrev->tag == DW_TAG_constant
19557 || abbrev->tag == DW_TAG_subprogram
19558 || abbrev->tag == DW_TAG_variable
19559 || abbrev->tag == DW_TAG_namespace
19560 || part_die->is_declaration)
19561 {
19562 void **slot;
19563
19564 slot = htab_find_slot_with_hash (cu->partial_dies, part_die,
19565 to_underlying (part_die->sect_off),
19566 INSERT);
19567 *slot = part_die;
19568 }
19569
19570 /* For some DIEs we want to follow their children (if any). For C
19571 we have no reason to follow the children of structures; for other
19572 languages we have to, so that we can get at method physnames
19573 to infer fully qualified class names, for DW_AT_specification,
19574 and for C++ template arguments. For C++, we also look one level
19575 inside functions to find template arguments (if the name of the
19576 function does not already contain the template arguments).
19577
19578 For Ada and Fortran, we need to scan the children of subprograms
19579 and lexical blocks as well because these languages allow the
19580 definition of nested entities that could be interesting for the
19581 debugger, such as nested subprograms for instance. */
19582 if (last_die->has_children
19583 && (load_all
19584 || last_die->tag == DW_TAG_namespace
19585 || last_die->tag == DW_TAG_module
19586 || last_die->tag == DW_TAG_enumeration_type
19587 || (cu->language == language_cplus
19588 && last_die->tag == DW_TAG_subprogram
19589 && (last_die->raw_name == NULL
19590 || strchr (last_die->raw_name, '<') == NULL))
19591 || (cu->language != language_c
19592 && (last_die->tag == DW_TAG_class_type
19593 || last_die->tag == DW_TAG_interface_type
19594 || last_die->tag == DW_TAG_structure_type
19595 || last_die->tag == DW_TAG_union_type))
19596 || ((cu->language == language_ada
19597 || cu->language == language_fortran)
19598 && (last_die->tag == DW_TAG_subprogram
19599 || last_die->tag == DW_TAG_lexical_block))))
19600 {
19601 nesting_level++;
19602 parent_die = last_die;
19603 continue;
19604 }
19605
19606 /* Otherwise we skip to the next sibling, if any. */
19607 info_ptr = locate_pdi_sibling (reader, last_die, info_ptr);
19608
19609 /* Back to the top, do it again. */
19610 }
19611 }
19612
19613 partial_die_info::partial_die_info (sect_offset sect_off_,
19614 struct abbrev_info *abbrev)
19615 : partial_die_info (sect_off_, abbrev->tag, abbrev->has_children)
19616 {
19617 }
19618
19619 /* See class definition. */
19620
19621 const char *
19622 partial_die_info::name (dwarf2_cu *cu)
19623 {
19624 if (!canonical_name && raw_name != nullptr)
19625 {
19626 struct objfile *objfile = cu->per_objfile->objfile;
19627 raw_name = dwarf2_canonicalize_name (raw_name, cu, objfile);
19628 canonical_name = 1;
19629 }
19630
19631 return raw_name;
19632 }
19633
19634 /* Read a minimal amount of information into the minimal die structure.
19635 INFO_PTR should point just after the initial uleb128 of a DIE. */
19636
19637 const gdb_byte *
19638 partial_die_info::read (const struct die_reader_specs *reader,
19639 const struct abbrev_info &abbrev, const gdb_byte *info_ptr)
19640 {
19641 struct dwarf2_cu *cu = reader->cu;
19642 dwarf2_per_objfile *per_objfile = cu->per_objfile;
19643 unsigned int i;
19644 int has_low_pc_attr = 0;
19645 int has_high_pc_attr = 0;
19646 int high_pc_relative = 0;
19647
19648 for (i = 0; i < abbrev.num_attrs; ++i)
19649 {
19650 attribute attr;
19651 info_ptr = read_attribute (reader, &attr, &abbrev.attrs[i], info_ptr);
19652 /* String and address offsets that need to do the reprocessing have
19653 already been read at this point, so there is no need to wait until
19654 the loop terminates to do the reprocessing. */
19655 if (attr.requires_reprocessing_p ())
19656 read_attribute_reprocess (reader, &attr, tag);
19657 /* Store the data if it is of an attribute we want to keep in a
19658 partial symbol table. */
19659 switch (attr.name)
19660 {
19661 case DW_AT_name:
19662 switch (tag)
19663 {
19664 case DW_TAG_compile_unit:
19665 case DW_TAG_partial_unit:
19666 case DW_TAG_type_unit:
19667 /* Compilation units have a DW_AT_name that is a filename, not
19668 a source language identifier. */
19669 case DW_TAG_enumeration_type:
19670 case DW_TAG_enumerator:
19671 /* These tags always have simple identifiers already; no need
19672 to canonicalize them. */
19673 canonical_name = 1;
19674 raw_name = attr.as_string ();
19675 break;
19676 default:
19677 canonical_name = 0;
19678 raw_name = attr.as_string ();
19679 break;
19680 }
19681 break;
19682 case DW_AT_linkage_name:
19683 case DW_AT_MIPS_linkage_name:
19684 /* Note that both forms of linkage name might appear. We
19685 assume they will be the same, and we only store the last
19686 one we see. */
19687 linkage_name = attr.as_string ();
19688 break;
19689 case DW_AT_low_pc:
19690 has_low_pc_attr = 1;
19691 lowpc = attr.as_address ();
19692 break;
19693 case DW_AT_high_pc:
19694 has_high_pc_attr = 1;
19695 highpc = attr.as_address ();
19696 if (cu->header.version >= 4 && attr.form_is_constant ())
19697 high_pc_relative = 1;
19698 break;
19699 case DW_AT_location:
19700 /* Support the .debug_loc offsets. */
19701 if (attr.form_is_block ())
19702 {
19703 d.locdesc = attr.as_block ();
19704 }
19705 else if (attr.form_is_section_offset ())
19706 {
19707 dwarf2_complex_location_expr_complaint ();
19708 }
19709 else
19710 {
19711 dwarf2_invalid_attrib_class_complaint ("DW_AT_location",
19712 "partial symbol information");
19713 }
19714 break;
19715 case DW_AT_external:
19716 is_external = attr.as_boolean ();
19717 break;
19718 case DW_AT_declaration:
19719 is_declaration = attr.as_boolean ();
19720 break;
19721 case DW_AT_type:
19722 has_type = 1;
19723 break;
19724 case DW_AT_abstract_origin:
19725 case DW_AT_specification:
19726 case DW_AT_extension:
19727 has_specification = 1;
19728 spec_offset = attr.get_ref_die_offset ();
19729 spec_is_dwz = (attr.form == DW_FORM_GNU_ref_alt
19730 || cu->per_cu->is_dwz);
19731 break;
19732 case DW_AT_sibling:
19733 /* Ignore absolute siblings, they might point outside of
19734 the current compile unit. */
19735 if (attr.form == DW_FORM_ref_addr)
19736 complaint (_("ignoring absolute DW_AT_sibling"));
19737 else
19738 {
19739 const gdb_byte *buffer = reader->buffer;
19740 sect_offset off = attr.get_ref_die_offset ();
19741 const gdb_byte *sibling_ptr = buffer + to_underlying (off);
19742
19743 if (sibling_ptr < info_ptr)
19744 complaint (_("DW_AT_sibling points backwards"));
19745 else if (sibling_ptr > reader->buffer_end)
19746 reader->die_section->overflow_complaint ();
19747 else
19748 sibling = sibling_ptr;
19749 }
19750 break;
19751 case DW_AT_byte_size:
19752 has_byte_size = 1;
19753 break;
19754 case DW_AT_const_value:
19755 has_const_value = 1;
19756 break;
19757 case DW_AT_calling_convention:
19758 /* DWARF doesn't provide a way to identify a program's source-level
19759 entry point. DW_AT_calling_convention attributes are only meant
19760 to describe functions' calling conventions.
19761
19762 However, because it's a necessary piece of information in
19763 Fortran, and before DWARF 4 DW_CC_program was the only
19764 piece of debugging information whose definition refers to
19765 a 'main program' at all, several compilers marked Fortran
19766 main programs with DW_CC_program --- even when those
19767 functions use the standard calling conventions.
19768
19769 Although DWARF now specifies a way to provide this
19770 information, we support this practice for backward
19771 compatibility. */
19772 if (attr.constant_value (0) == DW_CC_program
19773 && cu->language == language_fortran)
19774 main_subprogram = 1;
19775 break;
19776 case DW_AT_inline:
19777 {
19778 LONGEST value = attr.constant_value (-1);
19779 if (value == DW_INL_inlined
19780 || value == DW_INL_declared_inlined)
19781 may_be_inlined = 1;
19782 }
19783 break;
19784
19785 case DW_AT_import:
19786 if (tag == DW_TAG_imported_unit)
19787 {
19788 d.sect_off = attr.get_ref_die_offset ();
19789 is_dwz = (attr.form == DW_FORM_GNU_ref_alt
19790 || cu->per_cu->is_dwz);
19791 }
19792 break;
19793
19794 case DW_AT_main_subprogram:
19795 main_subprogram = attr.as_boolean ();
19796 break;
19797
19798 case DW_AT_ranges:
19799 {
19800 /* DW_AT_rnglists_base does not apply to DIEs from the DWO
19801 skeleton. We take advantage of the fact the DW_AT_ranges
19802 does not appear in DW_TAG_compile_unit of DWO files.
19803
19804 Attributes of the form DW_FORM_rnglistx have already had
19805 their value changed by read_rnglist_index and already
19806 include DW_AT_rnglists_base, so don't need to add the ranges
19807 base, either. */
19808 int need_ranges_base = (tag != DW_TAG_compile_unit
19809 && attr.form != DW_FORM_rnglistx);
19810 /* It would be nice to reuse dwarf2_get_pc_bounds here,
19811 but that requires a full DIE, so instead we just
19812 reimplement it. */
19813 unsigned int ranges_offset = (attr.constant_value (0)
19814 + (need_ranges_base
19815 ? cu->ranges_base
19816 : 0));
19817
19818 /* Value of the DW_AT_ranges attribute is the offset in the
19819 .debug_ranges section. */
19820 if (dwarf2_ranges_read (ranges_offset, &lowpc, &highpc, cu,
19821 nullptr, tag))
19822 has_pc_info = 1;
19823 }
19824 break;
19825
19826 default:
19827 break;
19828 }
19829 }
19830
19831 /* For Ada, if both the name and the linkage name appear, we prefer
19832 the latter. This lets "catch exception" work better, regardless
19833 of the order in which the name and linkage name were emitted.
19834 Really, though, this is just a workaround for the fact that gdb
19835 doesn't store both the name and the linkage name. */
19836 if (cu->language == language_ada && linkage_name != nullptr)
19837 raw_name = linkage_name;
19838
19839 if (high_pc_relative)
19840 highpc += lowpc;
19841
19842 if (has_low_pc_attr && has_high_pc_attr)
19843 {
19844 /* When using the GNU linker, .gnu.linkonce. sections are used to
19845 eliminate duplicate copies of functions and vtables and such.
19846 The linker will arbitrarily choose one and discard the others.
19847 The AT_*_pc values for such functions refer to local labels in
19848 these sections. If the section from that file was discarded, the
19849 labels are not in the output, so the relocs get a value of 0.
19850 If this is a discarded function, mark the pc bounds as invalid,
19851 so that GDB will ignore it. */
19852 if (lowpc == 0 && !per_objfile->per_bfd->has_section_at_zero)
19853 {
19854 struct objfile *objfile = per_objfile->objfile;
19855 struct gdbarch *gdbarch = objfile->arch ();
19856
19857 complaint (_("DW_AT_low_pc %s is zero "
19858 "for DIE at %s [in module %s]"),
19859 paddress (gdbarch, lowpc),
19860 sect_offset_str (sect_off),
19861 objfile_name (objfile));
19862 }
19863 /* dwarf2_get_pc_bounds has also the strict low < high requirement. */
19864 else if (lowpc >= highpc)
19865 {
19866 struct objfile *objfile = per_objfile->objfile;
19867 struct gdbarch *gdbarch = objfile->arch ();
19868
19869 complaint (_("DW_AT_low_pc %s is not < DW_AT_high_pc %s "
19870 "for DIE at %s [in module %s]"),
19871 paddress (gdbarch, lowpc),
19872 paddress (gdbarch, highpc),
19873 sect_offset_str (sect_off),
19874 objfile_name (objfile));
19875 }
19876 else
19877 has_pc_info = 1;
19878 }
19879
19880 return info_ptr;
19881 }
19882
19883 /* Find a cached partial DIE at OFFSET in CU. */
19884
19885 struct partial_die_info *
19886 dwarf2_cu::find_partial_die (sect_offset sect_off)
19887 {
19888 struct partial_die_info *lookup_die = NULL;
19889 struct partial_die_info part_die (sect_off);
19890
19891 lookup_die = ((struct partial_die_info *)
19892 htab_find_with_hash (partial_dies, &part_die,
19893 to_underlying (sect_off)));
19894
19895 return lookup_die;
19896 }
19897
19898 /* Find a partial DIE at OFFSET, which may or may not be in CU,
19899 except in the case of .debug_types DIEs which do not reference
19900 outside their CU (they do however referencing other types via
19901 DW_FORM_ref_sig8). */
19902
19903 static const struct cu_partial_die_info
19904 find_partial_die (sect_offset sect_off, int offset_in_dwz, struct dwarf2_cu *cu)
19905 {
19906 dwarf2_per_objfile *per_objfile = cu->per_objfile;
19907 struct objfile *objfile = per_objfile->objfile;
19908 struct partial_die_info *pd = NULL;
19909
19910 if (offset_in_dwz == cu->per_cu->is_dwz
19911 && cu->header.offset_in_cu_p (sect_off))
19912 {
19913 pd = cu->find_partial_die (sect_off);
19914 if (pd != NULL)
19915 return { cu, pd };
19916 /* We missed recording what we needed.
19917 Load all dies and try again. */
19918 }
19919 else
19920 {
19921 /* TUs don't reference other CUs/TUs (except via type signatures). */
19922 if (cu->per_cu->is_debug_types)
19923 {
19924 error (_("Dwarf Error: Type Unit at offset %s contains"
19925 " external reference to offset %s [in module %s].\n"),
19926 sect_offset_str (cu->header.sect_off), sect_offset_str (sect_off),
19927 bfd_get_filename (objfile->obfd));
19928 }
19929 dwarf2_per_cu_data *per_cu
19930 = dwarf2_find_containing_comp_unit (sect_off, offset_in_dwz,
19931 per_objfile);
19932
19933 cu = per_objfile->get_cu (per_cu);
19934 if (cu == NULL || cu->partial_dies == NULL)
19935 load_partial_comp_unit (per_cu, per_objfile, nullptr);
19936
19937 cu = per_objfile->get_cu (per_cu);
19938
19939 cu->last_used = 0;
19940 pd = cu->find_partial_die (sect_off);
19941 }
19942
19943 /* If we didn't find it, and not all dies have been loaded,
19944 load them all and try again. */
19945
19946 if (pd == NULL && cu->per_cu->load_all_dies == 0)
19947 {
19948 cu->per_cu->load_all_dies = 1;
19949
19950 /* This is nasty. When we reread the DIEs, somewhere up the call chain
19951 THIS_CU->cu may already be in use. So we can't just free it and
19952 replace its DIEs with the ones we read in. Instead, we leave those
19953 DIEs alone (which can still be in use, e.g. in scan_partial_symbols),
19954 and clobber THIS_CU->cu->partial_dies with the hash table for the new
19955 set. */
19956 load_partial_comp_unit (cu->per_cu, per_objfile, cu);
19957
19958 pd = cu->find_partial_die (sect_off);
19959 }
19960
19961 if (pd == NULL)
19962 error (_("Dwarf Error: Cannot not find DIE at %s [from module %s]\n"),
19963 sect_offset_str (sect_off), bfd_get_filename (objfile->obfd));
19964 return { cu, pd };
19965 }
19966
19967 /* See if we can figure out if the class lives in a namespace. We do
19968 this by looking for a member function; its demangled name will
19969 contain namespace info, if there is any. */
19970
19971 static void
19972 guess_partial_die_structure_name (struct partial_die_info *struct_pdi,
19973 struct dwarf2_cu *cu)
19974 {
19975 /* NOTE: carlton/2003-10-07: Getting the info this way changes
19976 what template types look like, because the demangler
19977 frequently doesn't give the same name as the debug info. We
19978 could fix this by only using the demangled name to get the
19979 prefix (but see comment in read_structure_type). */
19980
19981 struct partial_die_info *real_pdi;
19982 struct partial_die_info *child_pdi;
19983
19984 /* If this DIE (this DIE's specification, if any) has a parent, then
19985 we should not do this. We'll prepend the parent's fully qualified
19986 name when we create the partial symbol. */
19987
19988 real_pdi = struct_pdi;
19989 while (real_pdi->has_specification)
19990 {
19991 auto res = find_partial_die (real_pdi->spec_offset,
19992 real_pdi->spec_is_dwz, cu);
19993 real_pdi = res.pdi;
19994 cu = res.cu;
19995 }
19996
19997 if (real_pdi->die_parent != NULL)
19998 return;
19999
20000 for (child_pdi = struct_pdi->die_child;
20001 child_pdi != NULL;
20002 child_pdi = child_pdi->die_sibling)
20003 {
20004 if (child_pdi->tag == DW_TAG_subprogram
20005 && child_pdi->linkage_name != NULL)
20006 {
20007 gdb::unique_xmalloc_ptr<char> actual_class_name
20008 (cu->language_defn->class_name_from_physname
20009 (child_pdi->linkage_name));
20010 if (actual_class_name != NULL)
20011 {
20012 struct objfile *objfile = cu->per_objfile->objfile;
20013 struct_pdi->raw_name = objfile->intern (actual_class_name.get ());
20014 struct_pdi->canonical_name = 1;
20015 }
20016 break;
20017 }
20018 }
20019 }
20020
20021 /* Return true if a DIE with TAG may have the DW_AT_const_value
20022 attribute. */
20023
20024 static bool
20025 can_have_DW_AT_const_value_p (enum dwarf_tag tag)
20026 {
20027 switch (tag)
20028 {
20029 case DW_TAG_constant:
20030 case DW_TAG_enumerator:
20031 case DW_TAG_formal_parameter:
20032 case DW_TAG_template_value_param:
20033 case DW_TAG_variable:
20034 return true;
20035 }
20036
20037 return false;
20038 }
20039
20040 void
20041 partial_die_info::fixup (struct dwarf2_cu *cu)
20042 {
20043 /* Once we've fixed up a die, there's no point in doing so again.
20044 This also avoids a memory leak if we were to call
20045 guess_partial_die_structure_name multiple times. */
20046 if (fixup_called)
20047 return;
20048
20049 /* If we found a reference attribute and the DIE has no name, try
20050 to find a name in the referred to DIE. */
20051
20052 if (raw_name == NULL && has_specification)
20053 {
20054 struct partial_die_info *spec_die;
20055
20056 auto res = find_partial_die (spec_offset, spec_is_dwz, cu);
20057 spec_die = res.pdi;
20058 cu = res.cu;
20059
20060 spec_die->fixup (cu);
20061
20062 if (spec_die->raw_name)
20063 {
20064 raw_name = spec_die->raw_name;
20065 canonical_name = spec_die->canonical_name;
20066
20067 /* Copy DW_AT_external attribute if it is set. */
20068 if (spec_die->is_external)
20069 is_external = spec_die->is_external;
20070 }
20071 }
20072
20073 if (!has_const_value && has_specification
20074 && can_have_DW_AT_const_value_p (tag))
20075 {
20076 struct partial_die_info *spec_die;
20077
20078 auto res = find_partial_die (spec_offset, spec_is_dwz, cu);
20079 spec_die = res.pdi;
20080 cu = res.cu;
20081
20082 spec_die->fixup (cu);
20083
20084 if (spec_die->has_const_value)
20085 {
20086 /* Copy DW_AT_const_value attribute if it is set. */
20087 has_const_value = spec_die->has_const_value;
20088 }
20089 }
20090
20091 /* Set default names for some unnamed DIEs. */
20092
20093 if (raw_name == NULL && tag == DW_TAG_namespace)
20094 {
20095 raw_name = CP_ANONYMOUS_NAMESPACE_STR;
20096 canonical_name = 1;
20097 }
20098
20099 /* If there is no parent die to provide a namespace, and there are
20100 children, see if we can determine the namespace from their linkage
20101 name. */
20102 if (cu->language == language_cplus
20103 && !cu->per_objfile->per_bfd->types.empty ()
20104 && die_parent == NULL
20105 && has_children
20106 && (tag == DW_TAG_class_type
20107 || tag == DW_TAG_structure_type
20108 || tag == DW_TAG_union_type))
20109 guess_partial_die_structure_name (this, cu);
20110
20111 /* GCC might emit a nameless struct or union that has a linkage
20112 name. See http://gcc.gnu.org/bugzilla/show_bug.cgi?id=47510. */
20113 if (raw_name == NULL
20114 && (tag == DW_TAG_class_type
20115 || tag == DW_TAG_interface_type
20116 || tag == DW_TAG_structure_type
20117 || tag == DW_TAG_union_type)
20118 && linkage_name != NULL)
20119 {
20120 gdb::unique_xmalloc_ptr<char> demangled
20121 (gdb_demangle (linkage_name, DMGL_TYPES));
20122 if (demangled != nullptr)
20123 {
20124 const char *base;
20125
20126 /* Strip any leading namespaces/classes, keep only the base name.
20127 DW_AT_name for named DIEs does not contain the prefixes. */
20128 base = strrchr (demangled.get (), ':');
20129 if (base && base > demangled.get () && base[-1] == ':')
20130 base++;
20131 else
20132 base = demangled.get ();
20133
20134 struct objfile *objfile = cu->per_objfile->objfile;
20135 raw_name = objfile->intern (base);
20136 canonical_name = 1;
20137 }
20138 }
20139
20140 fixup_called = 1;
20141 }
20142
20143 /* Read the .debug_loclists or .debug_rnglists header (they are the same format)
20144 contents from the given SECTION in the HEADER. */
20145 static void
20146 read_loclists_rnglists_header (struct loclists_rnglists_header *header,
20147 struct dwarf2_section_info *section)
20148 {
20149 unsigned int bytes_read;
20150 bfd *abfd = section->get_bfd_owner ();
20151 const gdb_byte *info_ptr = section->buffer;
20152 header->length = read_initial_length (abfd, info_ptr, &bytes_read);
20153 info_ptr += bytes_read;
20154 header->version = read_2_bytes (abfd, info_ptr);
20155 info_ptr += 2;
20156 header->addr_size = read_1_byte (abfd, info_ptr);
20157 info_ptr += 1;
20158 header->segment_collector_size = read_1_byte (abfd, info_ptr);
20159 info_ptr += 1;
20160 header->offset_entry_count = read_4_bytes (abfd, info_ptr);
20161 }
20162
20163 /* Return the DW_AT_loclists_base value for the CU. */
20164 static ULONGEST
20165 lookup_loclist_base (struct dwarf2_cu *cu)
20166 {
20167 /* For the .dwo unit, the loclist_base points to the first offset following
20168 the header. The header consists of the following entities-
20169 1. Unit Length (4 bytes for 32 bit DWARF format, and 12 bytes for the 64
20170 bit format)
20171 2. version (2 bytes)
20172 3. address size (1 byte)
20173 4. segment selector size (1 byte)
20174 5. offset entry count (4 bytes)
20175 These sizes are derived as per the DWARFv5 standard. */
20176 if (cu->dwo_unit != nullptr)
20177 {
20178 if (cu->header.initial_length_size == 4)
20179 return LOCLIST_HEADER_SIZE32;
20180 return LOCLIST_HEADER_SIZE64;
20181 }
20182 return cu->loclist_base;
20183 }
20184
20185 /* Given a DW_FORM_loclistx value LOCLIST_INDEX, fetch the offset from the
20186 array of offsets in the .debug_loclists section. */
20187 static CORE_ADDR
20188 read_loclist_index (struct dwarf2_cu *cu, ULONGEST loclist_index)
20189 {
20190 dwarf2_per_objfile *per_objfile = cu->per_objfile;
20191 struct objfile *objfile = per_objfile->objfile;
20192 bfd *abfd = objfile->obfd;
20193 ULONGEST loclist_base = lookup_loclist_base (cu);
20194 struct dwarf2_section_info *section = cu_debug_loc_section (cu);
20195
20196 section->read (objfile);
20197 if (section->buffer == NULL)
20198 complaint (_("DW_FORM_loclistx used without .debug_loclists "
20199 "section [in module %s]"), objfile_name (objfile));
20200 struct loclists_rnglists_header header;
20201 read_loclists_rnglists_header (&header, section);
20202 if (loclist_index >= header.offset_entry_count)
20203 complaint (_("DW_FORM_loclistx pointing outside of "
20204 ".debug_loclists offset array [in module %s]"),
20205 objfile_name (objfile));
20206 if (loclist_base + loclist_index * cu->header.offset_size
20207 >= section->size)
20208 complaint (_("DW_FORM_loclistx pointing outside of "
20209 ".debug_loclists section [in module %s]"),
20210 objfile_name (objfile));
20211 const gdb_byte *info_ptr
20212 = section->buffer + loclist_base + loclist_index * cu->header.offset_size;
20213
20214 if (cu->header.offset_size == 4)
20215 return bfd_get_32 (abfd, info_ptr) + loclist_base;
20216 else
20217 return bfd_get_64 (abfd, info_ptr) + loclist_base;
20218 }
20219
20220 /* Given a DW_FORM_rnglistx value RNGLIST_INDEX, fetch the offset from the
20221 array of offsets in the .debug_rnglists section. */
20222 static CORE_ADDR
20223 read_rnglist_index (struct dwarf2_cu *cu, ULONGEST rnglist_index,
20224 dwarf_tag tag)
20225 {
20226 struct dwarf2_per_objfile *dwarf2_per_objfile = cu->per_objfile;
20227 struct objfile *objfile = dwarf2_per_objfile->objfile;
20228 bfd *abfd = objfile->obfd;
20229 ULONGEST rnglist_header_size =
20230 (cu->header.initial_length_size == 4 ? RNGLIST_HEADER_SIZE32
20231 : RNGLIST_HEADER_SIZE64);
20232 ULONGEST rnglist_base =
20233 (cu->dwo_unit != nullptr) ? rnglist_header_size : cu->ranges_base;
20234 ULONGEST start_offset =
20235 rnglist_base + rnglist_index * cu->header.offset_size;
20236
20237 /* Get rnglists section. */
20238 struct dwarf2_section_info *section = cu_debug_rnglists_section (cu, tag);
20239
20240 /* Read the rnglists section content. */
20241 section->read (objfile);
20242 if (section->buffer == nullptr)
20243 error (_("DW_FORM_rnglistx used without .debug_rnglists section "
20244 "[in module %s]"),
20245 objfile_name (objfile));
20246
20247 /* Verify the rnglist index is valid. */
20248 struct loclists_rnglists_header header;
20249 read_loclists_rnglists_header (&header, section);
20250 if (rnglist_index >= header.offset_entry_count)
20251 error (_("DW_FORM_rnglistx index pointing outside of "
20252 ".debug_rnglists offset array [in module %s]"),
20253 objfile_name (objfile));
20254
20255 /* Validate that the offset is within the section's range. */
20256 if (start_offset >= section->size)
20257 error (_("DW_FORM_rnglistx pointing outside of "
20258 ".debug_rnglists section [in module %s]"),
20259 objfile_name (objfile));
20260
20261 /* Validate that reading won't go beyond the end of the section. */
20262 if (start_offset + cu->header.offset_size > rnglist_base + section->size)
20263 error (_("Reading DW_FORM_rnglistx index beyond end of"
20264 ".debug_rnglists section [in module %s]"),
20265 objfile_name (objfile));
20266
20267 const gdb_byte *info_ptr = section->buffer + start_offset;
20268
20269 if (cu->header.offset_size == 4)
20270 return read_4_bytes (abfd, info_ptr) + rnglist_base;
20271 else
20272 return read_8_bytes (abfd, info_ptr) + rnglist_base;
20273 }
20274
20275 /* Process the attributes that had to be skipped in the first round. These
20276 attributes are the ones that need str_offsets_base or addr_base attributes.
20277 They could not have been processed in the first round, because at the time
20278 the values of str_offsets_base or addr_base may not have been known. */
20279 static void
20280 read_attribute_reprocess (const struct die_reader_specs *reader,
20281 struct attribute *attr, dwarf_tag tag)
20282 {
20283 struct dwarf2_cu *cu = reader->cu;
20284 switch (attr->form)
20285 {
20286 case DW_FORM_addrx:
20287 case DW_FORM_GNU_addr_index:
20288 attr->set_address (read_addr_index (cu,
20289 attr->as_unsigned_reprocess ()));
20290 break;
20291 case DW_FORM_loclistx:
20292 attr->set_address (read_loclist_index (cu, attr->as_unsigned ()));
20293 break;
20294 case DW_FORM_rnglistx:
20295 attr->set_address (read_rnglist_index (cu, attr->as_unsigned (), tag));
20296 break;
20297 case DW_FORM_strx:
20298 case DW_FORM_strx1:
20299 case DW_FORM_strx2:
20300 case DW_FORM_strx3:
20301 case DW_FORM_strx4:
20302 case DW_FORM_GNU_str_index:
20303 {
20304 unsigned int str_index = attr->as_unsigned_reprocess ();
20305 gdb_assert (!attr->canonical_string_p ());
20306 if (reader->dwo_file != NULL)
20307 attr->set_string_noncanonical (read_dwo_str_index (reader,
20308 str_index));
20309 else
20310 attr->set_string_noncanonical (read_stub_str_index (cu,
20311 str_index));
20312 break;
20313 }
20314 default:
20315 gdb_assert_not_reached (_("Unexpected DWARF form."));
20316 }
20317 }
20318
20319 /* Read an attribute value described by an attribute form. */
20320
20321 static const gdb_byte *
20322 read_attribute_value (const struct die_reader_specs *reader,
20323 struct attribute *attr, unsigned form,
20324 LONGEST implicit_const, const gdb_byte *info_ptr)
20325 {
20326 struct dwarf2_cu *cu = reader->cu;
20327 dwarf2_per_objfile *per_objfile = cu->per_objfile;
20328 struct objfile *objfile = per_objfile->objfile;
20329 bfd *abfd = reader->abfd;
20330 struct comp_unit_head *cu_header = &cu->header;
20331 unsigned int bytes_read;
20332 struct dwarf_block *blk;
20333
20334 attr->form = (enum dwarf_form) form;
20335 switch (form)
20336 {
20337 case DW_FORM_ref_addr:
20338 if (cu->header.version == 2)
20339 attr->set_unsigned (cu->header.read_address (abfd, info_ptr,
20340 &bytes_read));
20341 else
20342 attr->set_unsigned (cu->header.read_offset (abfd, info_ptr,
20343 &bytes_read));
20344 info_ptr += bytes_read;
20345 break;
20346 case DW_FORM_GNU_ref_alt:
20347 attr->set_unsigned (cu->header.read_offset (abfd, info_ptr,
20348 &bytes_read));
20349 info_ptr += bytes_read;
20350 break;
20351 case DW_FORM_addr:
20352 {
20353 struct gdbarch *gdbarch = objfile->arch ();
20354 CORE_ADDR addr = cu->header.read_address (abfd, info_ptr, &bytes_read);
20355 addr = gdbarch_adjust_dwarf2_addr (gdbarch, addr);
20356 attr->set_address (addr);
20357 info_ptr += bytes_read;
20358 }
20359 break;
20360 case DW_FORM_block2:
20361 blk = dwarf_alloc_block (cu);
20362 blk->size = read_2_bytes (abfd, info_ptr);
20363 info_ptr += 2;
20364 blk->data = read_n_bytes (abfd, info_ptr, blk->size);
20365 info_ptr += blk->size;
20366 attr->set_block (blk);
20367 break;
20368 case DW_FORM_block4:
20369 blk = dwarf_alloc_block (cu);
20370 blk->size = read_4_bytes (abfd, info_ptr);
20371 info_ptr += 4;
20372 blk->data = read_n_bytes (abfd, info_ptr, blk->size);
20373 info_ptr += blk->size;
20374 attr->set_block (blk);
20375 break;
20376 case DW_FORM_data2:
20377 attr->set_unsigned (read_2_bytes (abfd, info_ptr));
20378 info_ptr += 2;
20379 break;
20380 case DW_FORM_data4:
20381 attr->set_unsigned (read_4_bytes (abfd, info_ptr));
20382 info_ptr += 4;
20383 break;
20384 case DW_FORM_data8:
20385 attr->set_unsigned (read_8_bytes (abfd, info_ptr));
20386 info_ptr += 8;
20387 break;
20388 case DW_FORM_data16:
20389 blk = dwarf_alloc_block (cu);
20390 blk->size = 16;
20391 blk->data = read_n_bytes (abfd, info_ptr, 16);
20392 info_ptr += 16;
20393 attr->set_block (blk);
20394 break;
20395 case DW_FORM_sec_offset:
20396 attr->set_unsigned (cu->header.read_offset (abfd, info_ptr,
20397 &bytes_read));
20398 info_ptr += bytes_read;
20399 break;
20400 case DW_FORM_loclistx:
20401 {
20402 attr->set_unsigned_reprocess (read_unsigned_leb128 (abfd, info_ptr,
20403 &bytes_read));
20404 info_ptr += bytes_read;
20405 }
20406 break;
20407 case DW_FORM_string:
20408 attr->set_string_noncanonical (read_direct_string (abfd, info_ptr,
20409 &bytes_read));
20410 info_ptr += bytes_read;
20411 break;
20412 case DW_FORM_strp:
20413 if (!cu->per_cu->is_dwz)
20414 {
20415 attr->set_string_noncanonical
20416 (read_indirect_string (per_objfile,
20417 abfd, info_ptr, cu_header,
20418 &bytes_read));
20419 info_ptr += bytes_read;
20420 break;
20421 }
20422 /* FALLTHROUGH */
20423 case DW_FORM_line_strp:
20424 if (!cu->per_cu->is_dwz)
20425 {
20426 attr->set_string_noncanonical
20427 (per_objfile->read_line_string (info_ptr, cu_header,
20428 &bytes_read));
20429 info_ptr += bytes_read;
20430 break;
20431 }
20432 /* FALLTHROUGH */
20433 case DW_FORM_GNU_strp_alt:
20434 {
20435 dwz_file *dwz = dwarf2_get_dwz_file (per_objfile->per_bfd);
20436 LONGEST str_offset = cu_header->read_offset (abfd, info_ptr,
20437 &bytes_read);
20438
20439 attr->set_string_noncanonical
20440 (dwz->read_string (objfile, str_offset));
20441 info_ptr += bytes_read;
20442 }
20443 break;
20444 case DW_FORM_exprloc:
20445 case DW_FORM_block:
20446 blk = dwarf_alloc_block (cu);
20447 blk->size = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
20448 info_ptr += bytes_read;
20449 blk->data = read_n_bytes (abfd, info_ptr, blk->size);
20450 info_ptr += blk->size;
20451 attr->set_block (blk);
20452 break;
20453 case DW_FORM_block1:
20454 blk = dwarf_alloc_block (cu);
20455 blk->size = read_1_byte (abfd, info_ptr);
20456 info_ptr += 1;
20457 blk->data = read_n_bytes (abfd, info_ptr, blk->size);
20458 info_ptr += blk->size;
20459 attr->set_block (blk);
20460 break;
20461 case DW_FORM_data1:
20462 case DW_FORM_flag:
20463 attr->set_unsigned (read_1_byte (abfd, info_ptr));
20464 info_ptr += 1;
20465 break;
20466 case DW_FORM_flag_present:
20467 attr->set_unsigned (1);
20468 break;
20469 case DW_FORM_sdata:
20470 attr->set_signed (read_signed_leb128 (abfd, info_ptr, &bytes_read));
20471 info_ptr += bytes_read;
20472 break;
20473 case DW_FORM_rnglistx:
20474 {
20475 attr->set_unsigned_reprocess (read_unsigned_leb128 (abfd, info_ptr,
20476 &bytes_read));
20477 info_ptr += bytes_read;
20478 }
20479 break;
20480 case DW_FORM_udata:
20481 attr->set_unsigned (read_unsigned_leb128 (abfd, info_ptr, &bytes_read));
20482 info_ptr += bytes_read;
20483 break;
20484 case DW_FORM_ref1:
20485 attr->set_unsigned ((to_underlying (cu->header.sect_off)
20486 + read_1_byte (abfd, info_ptr)));
20487 info_ptr += 1;
20488 break;
20489 case DW_FORM_ref2:
20490 attr->set_unsigned ((to_underlying (cu->header.sect_off)
20491 + read_2_bytes (abfd, info_ptr)));
20492 info_ptr += 2;
20493 break;
20494 case DW_FORM_ref4:
20495 attr->set_unsigned ((to_underlying (cu->header.sect_off)
20496 + read_4_bytes (abfd, info_ptr)));
20497 info_ptr += 4;
20498 break;
20499 case DW_FORM_ref8:
20500 attr->set_unsigned ((to_underlying (cu->header.sect_off)
20501 + read_8_bytes (abfd, info_ptr)));
20502 info_ptr += 8;
20503 break;
20504 case DW_FORM_ref_sig8:
20505 attr->set_signature (read_8_bytes (abfd, info_ptr));
20506 info_ptr += 8;
20507 break;
20508 case DW_FORM_ref_udata:
20509 attr->set_unsigned ((to_underlying (cu->header.sect_off)
20510 + read_unsigned_leb128 (abfd, info_ptr,
20511 &bytes_read)));
20512 info_ptr += bytes_read;
20513 break;
20514 case DW_FORM_indirect:
20515 form = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
20516 info_ptr += bytes_read;
20517 if (form == DW_FORM_implicit_const)
20518 {
20519 implicit_const = read_signed_leb128 (abfd, info_ptr, &bytes_read);
20520 info_ptr += bytes_read;
20521 }
20522 info_ptr = read_attribute_value (reader, attr, form, implicit_const,
20523 info_ptr);
20524 break;
20525 case DW_FORM_implicit_const:
20526 attr->set_signed (implicit_const);
20527 break;
20528 case DW_FORM_addrx:
20529 case DW_FORM_GNU_addr_index:
20530 attr->set_unsigned_reprocess (read_unsigned_leb128 (abfd, info_ptr,
20531 &bytes_read));
20532 info_ptr += bytes_read;
20533 break;
20534 case DW_FORM_strx:
20535 case DW_FORM_strx1:
20536 case DW_FORM_strx2:
20537 case DW_FORM_strx3:
20538 case DW_FORM_strx4:
20539 case DW_FORM_GNU_str_index:
20540 {
20541 ULONGEST str_index;
20542 if (form == DW_FORM_strx1)
20543 {
20544 str_index = read_1_byte (abfd, info_ptr);
20545 info_ptr += 1;
20546 }
20547 else if (form == DW_FORM_strx2)
20548 {
20549 str_index = read_2_bytes (abfd, info_ptr);
20550 info_ptr += 2;
20551 }
20552 else if (form == DW_FORM_strx3)
20553 {
20554 str_index = read_3_bytes (abfd, info_ptr);
20555 info_ptr += 3;
20556 }
20557 else if (form == DW_FORM_strx4)
20558 {
20559 str_index = read_4_bytes (abfd, info_ptr);
20560 info_ptr += 4;
20561 }
20562 else
20563 {
20564 str_index = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
20565 info_ptr += bytes_read;
20566 }
20567 attr->set_unsigned_reprocess (str_index);
20568 }
20569 break;
20570 default:
20571 error (_("Dwarf Error: Cannot handle %s in DWARF reader [in module %s]"),
20572 dwarf_form_name (form),
20573 bfd_get_filename (abfd));
20574 }
20575
20576 /* Super hack. */
20577 if (cu->per_cu->is_dwz && attr->form_is_ref ())
20578 attr->form = DW_FORM_GNU_ref_alt;
20579
20580 /* We have seen instances where the compiler tried to emit a byte
20581 size attribute of -1 which ended up being encoded as an unsigned
20582 0xffffffff. Although 0xffffffff is technically a valid size value,
20583 an object of this size seems pretty unlikely so we can relatively
20584 safely treat these cases as if the size attribute was invalid and
20585 treat them as zero by default. */
20586 if (attr->name == DW_AT_byte_size
20587 && form == DW_FORM_data4
20588 && attr->as_unsigned () >= 0xffffffff)
20589 {
20590 complaint
20591 (_("Suspicious DW_AT_byte_size value treated as zero instead of %s"),
20592 hex_string (attr->as_unsigned ()));
20593 attr->set_unsigned (0);
20594 }
20595
20596 return info_ptr;
20597 }
20598
20599 /* Read an attribute described by an abbreviated attribute. */
20600
20601 static const gdb_byte *
20602 read_attribute (const struct die_reader_specs *reader,
20603 struct attribute *attr, struct attr_abbrev *abbrev,
20604 const gdb_byte *info_ptr)
20605 {
20606 attr->name = abbrev->name;
20607 attr->string_is_canonical = 0;
20608 attr->requires_reprocessing = 0;
20609 return read_attribute_value (reader, attr, abbrev->form,
20610 abbrev->implicit_const, info_ptr);
20611 }
20612
20613 /* Return pointer to string at .debug_str offset STR_OFFSET. */
20614
20615 static const char *
20616 read_indirect_string_at_offset (dwarf2_per_objfile *per_objfile,
20617 LONGEST str_offset)
20618 {
20619 return per_objfile->per_bfd->str.read_string (per_objfile->objfile,
20620 str_offset, "DW_FORM_strp");
20621 }
20622
20623 /* Return pointer to string at .debug_str offset as read from BUF.
20624 BUF is assumed to be in a compilation unit described by CU_HEADER.
20625 Return *BYTES_READ_PTR count of bytes read from BUF. */
20626
20627 static const char *
20628 read_indirect_string (dwarf2_per_objfile *per_objfile, bfd *abfd,
20629 const gdb_byte *buf,
20630 const struct comp_unit_head *cu_header,
20631 unsigned int *bytes_read_ptr)
20632 {
20633 LONGEST str_offset = cu_header->read_offset (abfd, buf, bytes_read_ptr);
20634
20635 return read_indirect_string_at_offset (per_objfile, str_offset);
20636 }
20637
20638 /* See read.h. */
20639
20640 const char *
20641 dwarf2_per_objfile::read_line_string (const gdb_byte *buf,
20642 const struct comp_unit_head *cu_header,
20643 unsigned int *bytes_read_ptr)
20644 {
20645 bfd *abfd = objfile->obfd;
20646 LONGEST str_offset = cu_header->read_offset (abfd, buf, bytes_read_ptr);
20647
20648 return per_bfd->line_str.read_string (objfile, str_offset, "DW_FORM_line_strp");
20649 }
20650
20651 /* Given index ADDR_INDEX in .debug_addr, fetch the value.
20652 ADDR_BASE is the DW_AT_addr_base (DW_AT_GNU_addr_base) attribute or zero.
20653 ADDR_SIZE is the size of addresses from the CU header. */
20654
20655 static CORE_ADDR
20656 read_addr_index_1 (dwarf2_per_objfile *per_objfile, unsigned int addr_index,
20657 gdb::optional<ULONGEST> addr_base, int addr_size)
20658 {
20659 struct objfile *objfile = per_objfile->objfile;
20660 bfd *abfd = objfile->obfd;
20661 const gdb_byte *info_ptr;
20662 ULONGEST addr_base_or_zero = addr_base.has_value () ? *addr_base : 0;
20663
20664 per_objfile->per_bfd->addr.read (objfile);
20665 if (per_objfile->per_bfd->addr.buffer == NULL)
20666 error (_("DW_FORM_addr_index used without .debug_addr section [in module %s]"),
20667 objfile_name (objfile));
20668 if (addr_base_or_zero + addr_index * addr_size
20669 >= per_objfile->per_bfd->addr.size)
20670 error (_("DW_FORM_addr_index pointing outside of "
20671 ".debug_addr section [in module %s]"),
20672 objfile_name (objfile));
20673 info_ptr = (per_objfile->per_bfd->addr.buffer + addr_base_or_zero
20674 + addr_index * addr_size);
20675 if (addr_size == 4)
20676 return bfd_get_32 (abfd, info_ptr);
20677 else
20678 return bfd_get_64 (abfd, info_ptr);
20679 }
20680
20681 /* Given index ADDR_INDEX in .debug_addr, fetch the value. */
20682
20683 static CORE_ADDR
20684 read_addr_index (struct dwarf2_cu *cu, unsigned int addr_index)
20685 {
20686 return read_addr_index_1 (cu->per_objfile, addr_index,
20687 cu->addr_base, cu->header.addr_size);
20688 }
20689
20690 /* Given a pointer to an leb128 value, fetch the value from .debug_addr. */
20691
20692 static CORE_ADDR
20693 read_addr_index_from_leb128 (struct dwarf2_cu *cu, const gdb_byte *info_ptr,
20694 unsigned int *bytes_read)
20695 {
20696 bfd *abfd = cu->per_objfile->objfile->obfd;
20697 unsigned int addr_index = read_unsigned_leb128 (abfd, info_ptr, bytes_read);
20698
20699 return read_addr_index (cu, addr_index);
20700 }
20701
20702 /* See read.h. */
20703
20704 CORE_ADDR
20705 dwarf2_read_addr_index (dwarf2_per_cu_data *per_cu,
20706 dwarf2_per_objfile *per_objfile,
20707 unsigned int addr_index)
20708 {
20709 struct dwarf2_cu *cu = per_objfile->get_cu (per_cu);
20710 gdb::optional<ULONGEST> addr_base;
20711 int addr_size;
20712
20713 /* We need addr_base and addr_size.
20714 If we don't have PER_CU->cu, we have to get it.
20715 Nasty, but the alternative is storing the needed info in PER_CU,
20716 which at this point doesn't seem justified: it's not clear how frequently
20717 it would get used and it would increase the size of every PER_CU.
20718 Entry points like dwarf2_per_cu_addr_size do a similar thing
20719 so we're not in uncharted territory here.
20720 Alas we need to be a bit more complicated as addr_base is contained
20721 in the DIE.
20722
20723 We don't need to read the entire CU(/TU).
20724 We just need the header and top level die.
20725
20726 IWBN to use the aging mechanism to let us lazily later discard the CU.
20727 For now we skip this optimization. */
20728
20729 if (cu != NULL)
20730 {
20731 addr_base = cu->addr_base;
20732 addr_size = cu->header.addr_size;
20733 }
20734 else
20735 {
20736 cutu_reader reader (per_cu, per_objfile, nullptr, nullptr, false);
20737 addr_base = reader.cu->addr_base;
20738 addr_size = reader.cu->header.addr_size;
20739 }
20740
20741 return read_addr_index_1 (per_objfile, addr_index, addr_base, addr_size);
20742 }
20743
20744 /* Given a DW_FORM_GNU_str_index value STR_INDEX, fetch the string.
20745 STR_SECTION, STR_OFFSETS_SECTION can be from a Fission stub or a
20746 DWO file. */
20747
20748 static const char *
20749 read_str_index (struct dwarf2_cu *cu,
20750 struct dwarf2_section_info *str_section,
20751 struct dwarf2_section_info *str_offsets_section,
20752 ULONGEST str_offsets_base, ULONGEST str_index)
20753 {
20754 dwarf2_per_objfile *per_objfile = cu->per_objfile;
20755 struct objfile *objfile = per_objfile->objfile;
20756 const char *objf_name = objfile_name (objfile);
20757 bfd *abfd = objfile->obfd;
20758 const gdb_byte *info_ptr;
20759 ULONGEST str_offset;
20760 static const char form_name[] = "DW_FORM_GNU_str_index or DW_FORM_strx";
20761
20762 str_section->read (objfile);
20763 str_offsets_section->read (objfile);
20764 if (str_section->buffer == NULL)
20765 error (_("%s used without %s section"
20766 " in CU at offset %s [in module %s]"),
20767 form_name, str_section->get_name (),
20768 sect_offset_str (cu->header.sect_off), objf_name);
20769 if (str_offsets_section->buffer == NULL)
20770 error (_("%s used without %s section"
20771 " in CU at offset %s [in module %s]"),
20772 form_name, str_section->get_name (),
20773 sect_offset_str (cu->header.sect_off), objf_name);
20774 info_ptr = (str_offsets_section->buffer
20775 + str_offsets_base
20776 + str_index * cu->header.offset_size);
20777 if (cu->header.offset_size == 4)
20778 str_offset = bfd_get_32 (abfd, info_ptr);
20779 else
20780 str_offset = bfd_get_64 (abfd, info_ptr);
20781 if (str_offset >= str_section->size)
20782 error (_("Offset from %s pointing outside of"
20783 " .debug_str.dwo section in CU at offset %s [in module %s]"),
20784 form_name, sect_offset_str (cu->header.sect_off), objf_name);
20785 return (const char *) (str_section->buffer + str_offset);
20786 }
20787
20788 /* Given a DW_FORM_GNU_str_index from a DWO file, fetch the string. */
20789
20790 static const char *
20791 read_dwo_str_index (const struct die_reader_specs *reader, ULONGEST str_index)
20792 {
20793 ULONGEST str_offsets_base = reader->cu->header.version >= 5
20794 ? reader->cu->header.addr_size : 0;
20795 return read_str_index (reader->cu,
20796 &reader->dwo_file->sections.str,
20797 &reader->dwo_file->sections.str_offsets,
20798 str_offsets_base, str_index);
20799 }
20800
20801 /* Given a DW_FORM_GNU_str_index from a Fission stub, fetch the string. */
20802
20803 static const char *
20804 read_stub_str_index (struct dwarf2_cu *cu, ULONGEST str_index)
20805 {
20806 struct objfile *objfile = cu->per_objfile->objfile;
20807 const char *objf_name = objfile_name (objfile);
20808 static const char form_name[] = "DW_FORM_GNU_str_index";
20809 static const char str_offsets_attr_name[] = "DW_AT_str_offsets";
20810
20811 if (!cu->str_offsets_base.has_value ())
20812 error (_("%s used in Fission stub without %s"
20813 " in CU at offset 0x%lx [in module %s]"),
20814 form_name, str_offsets_attr_name,
20815 (long) cu->header.offset_size, objf_name);
20816
20817 return read_str_index (cu,
20818 &cu->per_objfile->per_bfd->str,
20819 &cu->per_objfile->per_bfd->str_offsets,
20820 *cu->str_offsets_base, str_index);
20821 }
20822
20823 /* Return the length of an LEB128 number in BUF. */
20824
20825 static int
20826 leb128_size (const gdb_byte *buf)
20827 {
20828 const gdb_byte *begin = buf;
20829 gdb_byte byte;
20830
20831 while (1)
20832 {
20833 byte = *buf++;
20834 if ((byte & 128) == 0)
20835 return buf - begin;
20836 }
20837 }
20838
20839 static void
20840 set_cu_language (unsigned int lang, struct dwarf2_cu *cu)
20841 {
20842 switch (lang)
20843 {
20844 case DW_LANG_C89:
20845 case DW_LANG_C99:
20846 case DW_LANG_C11:
20847 case DW_LANG_C:
20848 case DW_LANG_UPC:
20849 cu->language = language_c;
20850 break;
20851 case DW_LANG_Java:
20852 case DW_LANG_C_plus_plus:
20853 case DW_LANG_C_plus_plus_11:
20854 case DW_LANG_C_plus_plus_14:
20855 cu->language = language_cplus;
20856 break;
20857 case DW_LANG_D:
20858 cu->language = language_d;
20859 break;
20860 case DW_LANG_Fortran77:
20861 case DW_LANG_Fortran90:
20862 case DW_LANG_Fortran95:
20863 case DW_LANG_Fortran03:
20864 case DW_LANG_Fortran08:
20865 cu->language = language_fortran;
20866 break;
20867 case DW_LANG_Go:
20868 cu->language = language_go;
20869 break;
20870 case DW_LANG_Mips_Assembler:
20871 cu->language = language_asm;
20872 break;
20873 case DW_LANG_Ada83:
20874 case DW_LANG_Ada95:
20875 cu->language = language_ada;
20876 break;
20877 case DW_LANG_Modula2:
20878 cu->language = language_m2;
20879 break;
20880 case DW_LANG_Pascal83:
20881 cu->language = language_pascal;
20882 break;
20883 case DW_LANG_ObjC:
20884 cu->language = language_objc;
20885 break;
20886 case DW_LANG_Rust:
20887 case DW_LANG_Rust_old:
20888 cu->language = language_rust;
20889 break;
20890 case DW_LANG_Cobol74:
20891 case DW_LANG_Cobol85:
20892 default:
20893 cu->language = language_minimal;
20894 break;
20895 }
20896 cu->language_defn = language_def (cu->language);
20897 }
20898
20899 /* Return the named attribute or NULL if not there. */
20900
20901 static struct attribute *
20902 dwarf2_attr (struct die_info *die, unsigned int name, struct dwarf2_cu *cu)
20903 {
20904 for (;;)
20905 {
20906 unsigned int i;
20907 struct attribute *spec = NULL;
20908
20909 for (i = 0; i < die->num_attrs; ++i)
20910 {
20911 if (die->attrs[i].name == name)
20912 return &die->attrs[i];
20913 if (die->attrs[i].name == DW_AT_specification
20914 || die->attrs[i].name == DW_AT_abstract_origin)
20915 spec = &die->attrs[i];
20916 }
20917
20918 if (!spec)
20919 break;
20920
20921 die = follow_die_ref (die, spec, &cu);
20922 }
20923
20924 return NULL;
20925 }
20926
20927 /* Return the string associated with a string-typed attribute, or NULL if it
20928 is either not found or is of an incorrect type. */
20929
20930 static const char *
20931 dwarf2_string_attr (struct die_info *die, unsigned int name, struct dwarf2_cu *cu)
20932 {
20933 struct attribute *attr;
20934 const char *str = NULL;
20935
20936 attr = dwarf2_attr (die, name, cu);
20937
20938 if (attr != NULL)
20939 {
20940 str = attr->as_string ();
20941 if (str == nullptr)
20942 complaint (_("string type expected for attribute %s for "
20943 "DIE at %s in module %s"),
20944 dwarf_attr_name (name), sect_offset_str (die->sect_off),
20945 objfile_name (cu->per_objfile->objfile));
20946 }
20947
20948 return str;
20949 }
20950
20951 /* Return the dwo name or NULL if not present. If present, it is in either
20952 DW_AT_GNU_dwo_name or DW_AT_dwo_name attribute. */
20953 static const char *
20954 dwarf2_dwo_name (struct die_info *die, struct dwarf2_cu *cu)
20955 {
20956 const char *dwo_name = dwarf2_string_attr (die, DW_AT_GNU_dwo_name, cu);
20957 if (dwo_name == nullptr)
20958 dwo_name = dwarf2_string_attr (die, DW_AT_dwo_name, cu);
20959 return dwo_name;
20960 }
20961
20962 /* Return non-zero iff the attribute NAME is defined for the given DIE,
20963 and holds a non-zero value. This function should only be used for
20964 DW_FORM_flag or DW_FORM_flag_present attributes. */
20965
20966 static int
20967 dwarf2_flag_true_p (struct die_info *die, unsigned name, struct dwarf2_cu *cu)
20968 {
20969 struct attribute *attr = dwarf2_attr (die, name, cu);
20970
20971 return attr != nullptr && attr->as_boolean ();
20972 }
20973
20974 static int
20975 die_is_declaration (struct die_info *die, struct dwarf2_cu *cu)
20976 {
20977 /* A DIE is a declaration if it has a DW_AT_declaration attribute
20978 which value is non-zero. However, we have to be careful with
20979 DIEs having a DW_AT_specification attribute, because dwarf2_attr()
20980 (via dwarf2_flag_true_p) follows this attribute. So we may
20981 end up accidently finding a declaration attribute that belongs
20982 to a different DIE referenced by the specification attribute,
20983 even though the given DIE does not have a declaration attribute. */
20984 return (dwarf2_flag_true_p (die, DW_AT_declaration, cu)
20985 && dwarf2_attr (die, DW_AT_specification, cu) == NULL);
20986 }
20987
20988 /* Return the die giving the specification for DIE, if there is
20989 one. *SPEC_CU is the CU containing DIE on input, and the CU
20990 containing the return value on output. If there is no
20991 specification, but there is an abstract origin, that is
20992 returned. */
20993
20994 static struct die_info *
20995 die_specification (struct die_info *die, struct dwarf2_cu **spec_cu)
20996 {
20997 struct attribute *spec_attr = dwarf2_attr (die, DW_AT_specification,
20998 *spec_cu);
20999
21000 if (spec_attr == NULL)
21001 spec_attr = dwarf2_attr (die, DW_AT_abstract_origin, *spec_cu);
21002
21003 if (spec_attr == NULL)
21004 return NULL;
21005 else
21006 return follow_die_ref (die, spec_attr, spec_cu);
21007 }
21008
21009 /* Stub for free_line_header to match void * callback types. */
21010
21011 static void
21012 free_line_header_voidp (void *arg)
21013 {
21014 struct line_header *lh = (struct line_header *) arg;
21015
21016 delete lh;
21017 }
21018
21019 /* A convenience function to find the proper .debug_line section for a CU. */
21020
21021 static struct dwarf2_section_info *
21022 get_debug_line_section (struct dwarf2_cu *cu)
21023 {
21024 struct dwarf2_section_info *section;
21025 dwarf2_per_objfile *per_objfile = cu->per_objfile;
21026
21027 /* For TUs in DWO files, the DW_AT_stmt_list attribute lives in the
21028 DWO file. */
21029 if (cu->dwo_unit && cu->per_cu->is_debug_types)
21030 section = &cu->dwo_unit->dwo_file->sections.line;
21031 else if (cu->per_cu->is_dwz)
21032 {
21033 dwz_file *dwz = dwarf2_get_dwz_file (per_objfile->per_bfd);
21034
21035 section = &dwz->line;
21036 }
21037 else
21038 section = &per_objfile->per_bfd->line;
21039
21040 return section;
21041 }
21042
21043 /* Read the statement program header starting at OFFSET in
21044 .debug_line, or .debug_line.dwo. Return a pointer
21045 to a struct line_header, allocated using xmalloc.
21046 Returns NULL if there is a problem reading the header, e.g., if it
21047 has a version we don't understand.
21048
21049 NOTE: the strings in the include directory and file name tables of
21050 the returned object point into the dwarf line section buffer,
21051 and must not be freed. */
21052
21053 static line_header_up
21054 dwarf_decode_line_header (sect_offset sect_off, struct dwarf2_cu *cu)
21055 {
21056 struct dwarf2_section_info *section;
21057 dwarf2_per_objfile *per_objfile = cu->per_objfile;
21058
21059 section = get_debug_line_section (cu);
21060 section->read (per_objfile->objfile);
21061 if (section->buffer == NULL)
21062 {
21063 if (cu->dwo_unit && cu->per_cu->is_debug_types)
21064 complaint (_("missing .debug_line.dwo section"));
21065 else
21066 complaint (_("missing .debug_line section"));
21067 return 0;
21068 }
21069
21070 return dwarf_decode_line_header (sect_off, cu->per_cu->is_dwz,
21071 per_objfile, section, &cu->header);
21072 }
21073
21074 /* Subroutine of dwarf_decode_lines to simplify it.
21075 Return the file name of the psymtab for the given file_entry.
21076 COMP_DIR is the compilation directory (DW_AT_comp_dir) or NULL if unknown.
21077 If space for the result is malloc'd, *NAME_HOLDER will be set.
21078 Returns NULL if FILE_INDEX should be ignored, i.e., it is pst->filename. */
21079
21080 static const char *
21081 psymtab_include_file_name (const struct line_header *lh, const file_entry &fe,
21082 const dwarf2_psymtab *pst,
21083 const char *comp_dir,
21084 gdb::unique_xmalloc_ptr<char> *name_holder)
21085 {
21086 const char *include_name = fe.name;
21087 const char *include_name_to_compare = include_name;
21088 const char *pst_filename;
21089 int file_is_pst;
21090
21091 const char *dir_name = fe.include_dir (lh);
21092
21093 gdb::unique_xmalloc_ptr<char> hold_compare;
21094 if (!IS_ABSOLUTE_PATH (include_name)
21095 && (dir_name != NULL || comp_dir != NULL))
21096 {
21097 /* Avoid creating a duplicate psymtab for PST.
21098 We do this by comparing INCLUDE_NAME and PST_FILENAME.
21099 Before we do the comparison, however, we need to account
21100 for DIR_NAME and COMP_DIR.
21101 First prepend dir_name (if non-NULL). If we still don't
21102 have an absolute path prepend comp_dir (if non-NULL).
21103 However, the directory we record in the include-file's
21104 psymtab does not contain COMP_DIR (to match the
21105 corresponding symtab(s)).
21106
21107 Example:
21108
21109 bash$ cd /tmp
21110 bash$ gcc -g ./hello.c
21111 include_name = "hello.c"
21112 dir_name = "."
21113 DW_AT_comp_dir = comp_dir = "/tmp"
21114 DW_AT_name = "./hello.c"
21115
21116 */
21117
21118 if (dir_name != NULL)
21119 {
21120 name_holder->reset (concat (dir_name, SLASH_STRING,
21121 include_name, (char *) NULL));
21122 include_name = name_holder->get ();
21123 include_name_to_compare = include_name;
21124 }
21125 if (!IS_ABSOLUTE_PATH (include_name) && comp_dir != NULL)
21126 {
21127 hold_compare.reset (concat (comp_dir, SLASH_STRING,
21128 include_name, (char *) NULL));
21129 include_name_to_compare = hold_compare.get ();
21130 }
21131 }
21132
21133 pst_filename = pst->filename;
21134 gdb::unique_xmalloc_ptr<char> copied_name;
21135 if (!IS_ABSOLUTE_PATH (pst_filename) && pst->dirname != NULL)
21136 {
21137 copied_name.reset (concat (pst->dirname, SLASH_STRING,
21138 pst_filename, (char *) NULL));
21139 pst_filename = copied_name.get ();
21140 }
21141
21142 file_is_pst = FILENAME_CMP (include_name_to_compare, pst_filename) == 0;
21143
21144 if (file_is_pst)
21145 return NULL;
21146 return include_name;
21147 }
21148
21149 /* State machine to track the state of the line number program. */
21150
21151 class lnp_state_machine
21152 {
21153 public:
21154 /* Initialize a machine state for the start of a line number
21155 program. */
21156 lnp_state_machine (struct dwarf2_cu *cu, gdbarch *arch, line_header *lh,
21157 bool record_lines_p);
21158
21159 file_entry *current_file ()
21160 {
21161 /* lh->file_names is 0-based, but the file name numbers in the
21162 statement program are 1-based. */
21163 return m_line_header->file_name_at (m_file);
21164 }
21165
21166 /* Record the line in the state machine. END_SEQUENCE is true if
21167 we're processing the end of a sequence. */
21168 void record_line (bool end_sequence);
21169
21170 /* Check ADDRESS is -1, or zero and less than UNRELOCATED_LOWPC, and if true
21171 nop-out rest of the lines in this sequence. */
21172 void check_line_address (struct dwarf2_cu *cu,
21173 const gdb_byte *line_ptr,
21174 CORE_ADDR unrelocated_lowpc, CORE_ADDR address);
21175
21176 void handle_set_discriminator (unsigned int discriminator)
21177 {
21178 m_discriminator = discriminator;
21179 m_line_has_non_zero_discriminator |= discriminator != 0;
21180 }
21181
21182 /* Handle DW_LNE_set_address. */
21183 void handle_set_address (CORE_ADDR baseaddr, CORE_ADDR address)
21184 {
21185 m_op_index = 0;
21186 address += baseaddr;
21187 m_address = gdbarch_adjust_dwarf2_line (m_gdbarch, address, false);
21188 }
21189
21190 /* Handle DW_LNS_advance_pc. */
21191 void handle_advance_pc (CORE_ADDR adjust);
21192
21193 /* Handle a special opcode. */
21194 void handle_special_opcode (unsigned char op_code);
21195
21196 /* Handle DW_LNS_advance_line. */
21197 void handle_advance_line (int line_delta)
21198 {
21199 advance_line (line_delta);
21200 }
21201
21202 /* Handle DW_LNS_set_file. */
21203 void handle_set_file (file_name_index file);
21204
21205 /* Handle DW_LNS_negate_stmt. */
21206 void handle_negate_stmt ()
21207 {
21208 m_is_stmt = !m_is_stmt;
21209 }
21210
21211 /* Handle DW_LNS_const_add_pc. */
21212 void handle_const_add_pc ();
21213
21214 /* Handle DW_LNS_fixed_advance_pc. */
21215 void handle_fixed_advance_pc (CORE_ADDR addr_adj)
21216 {
21217 m_address += gdbarch_adjust_dwarf2_line (m_gdbarch, addr_adj, true);
21218 m_op_index = 0;
21219 }
21220
21221 /* Handle DW_LNS_copy. */
21222 void handle_copy ()
21223 {
21224 record_line (false);
21225 m_discriminator = 0;
21226 }
21227
21228 /* Handle DW_LNE_end_sequence. */
21229 void handle_end_sequence ()
21230 {
21231 m_currently_recording_lines = true;
21232 }
21233
21234 private:
21235 /* Advance the line by LINE_DELTA. */
21236 void advance_line (int line_delta)
21237 {
21238 m_line += line_delta;
21239
21240 if (line_delta != 0)
21241 m_line_has_non_zero_discriminator = m_discriminator != 0;
21242 }
21243
21244 struct dwarf2_cu *m_cu;
21245
21246 gdbarch *m_gdbarch;
21247
21248 /* True if we're recording lines.
21249 Otherwise we're building partial symtabs and are just interested in
21250 finding include files mentioned by the line number program. */
21251 bool m_record_lines_p;
21252
21253 /* The line number header. */
21254 line_header *m_line_header;
21255
21256 /* These are part of the standard DWARF line number state machine,
21257 and initialized according to the DWARF spec. */
21258
21259 unsigned char m_op_index = 0;
21260 /* The line table index of the current file. */
21261 file_name_index m_file = 1;
21262 unsigned int m_line = 1;
21263
21264 /* These are initialized in the constructor. */
21265
21266 CORE_ADDR m_address;
21267 bool m_is_stmt;
21268 unsigned int m_discriminator;
21269
21270 /* Additional bits of state we need to track. */
21271
21272 /* The last file that we called dwarf2_start_subfile for.
21273 This is only used for TLLs. */
21274 unsigned int m_last_file = 0;
21275 /* The last file a line number was recorded for. */
21276 struct subfile *m_last_subfile = NULL;
21277
21278 /* The address of the last line entry. */
21279 CORE_ADDR m_last_address;
21280
21281 /* Set to true when a previous line at the same address (using
21282 m_last_address) had m_is_stmt true. This is reset to false when a
21283 line entry at a new address (m_address different to m_last_address) is
21284 processed. */
21285 bool m_stmt_at_address = false;
21286
21287 /* When true, record the lines we decode. */
21288 bool m_currently_recording_lines = false;
21289
21290 /* The last line number that was recorded, used to coalesce
21291 consecutive entries for the same line. This can happen, for
21292 example, when discriminators are present. PR 17276. */
21293 unsigned int m_last_line = 0;
21294 bool m_line_has_non_zero_discriminator = false;
21295 };
21296
21297 void
21298 lnp_state_machine::handle_advance_pc (CORE_ADDR adjust)
21299 {
21300 CORE_ADDR addr_adj = (((m_op_index + adjust)
21301 / m_line_header->maximum_ops_per_instruction)
21302 * m_line_header->minimum_instruction_length);
21303 m_address += gdbarch_adjust_dwarf2_line (m_gdbarch, addr_adj, true);
21304 m_op_index = ((m_op_index + adjust)
21305 % m_line_header->maximum_ops_per_instruction);
21306 }
21307
21308 void
21309 lnp_state_machine::handle_special_opcode (unsigned char op_code)
21310 {
21311 unsigned char adj_opcode = op_code - m_line_header->opcode_base;
21312 unsigned char adj_opcode_d = adj_opcode / m_line_header->line_range;
21313 unsigned char adj_opcode_r = adj_opcode % m_line_header->line_range;
21314 CORE_ADDR addr_adj = (((m_op_index + adj_opcode_d)
21315 / m_line_header->maximum_ops_per_instruction)
21316 * m_line_header->minimum_instruction_length);
21317 m_address += gdbarch_adjust_dwarf2_line (m_gdbarch, addr_adj, true);
21318 m_op_index = ((m_op_index + adj_opcode_d)
21319 % m_line_header->maximum_ops_per_instruction);
21320
21321 int line_delta = m_line_header->line_base + adj_opcode_r;
21322 advance_line (line_delta);
21323 record_line (false);
21324 m_discriminator = 0;
21325 }
21326
21327 void
21328 lnp_state_machine::handle_set_file (file_name_index file)
21329 {
21330 m_file = file;
21331
21332 const file_entry *fe = current_file ();
21333 if (fe == NULL)
21334 dwarf2_debug_line_missing_file_complaint ();
21335 else if (m_record_lines_p)
21336 {
21337 const char *dir = fe->include_dir (m_line_header);
21338
21339 m_last_subfile = m_cu->get_builder ()->get_current_subfile ();
21340 m_line_has_non_zero_discriminator = m_discriminator != 0;
21341 dwarf2_start_subfile (m_cu, fe->name, dir);
21342 }
21343 }
21344
21345 void
21346 lnp_state_machine::handle_const_add_pc ()
21347 {
21348 CORE_ADDR adjust
21349 = (255 - m_line_header->opcode_base) / m_line_header->line_range;
21350
21351 CORE_ADDR addr_adj
21352 = (((m_op_index + adjust)
21353 / m_line_header->maximum_ops_per_instruction)
21354 * m_line_header->minimum_instruction_length);
21355
21356 m_address += gdbarch_adjust_dwarf2_line (m_gdbarch, addr_adj, true);
21357 m_op_index = ((m_op_index + adjust)
21358 % m_line_header->maximum_ops_per_instruction);
21359 }
21360
21361 /* Return non-zero if we should add LINE to the line number table.
21362 LINE is the line to add, LAST_LINE is the last line that was added,
21363 LAST_SUBFILE is the subfile for LAST_LINE.
21364 LINE_HAS_NON_ZERO_DISCRIMINATOR is non-zero if LINE has ever
21365 had a non-zero discriminator.
21366
21367 We have to be careful in the presence of discriminators.
21368 E.g., for this line:
21369
21370 for (i = 0; i < 100000; i++);
21371
21372 clang can emit four line number entries for that one line,
21373 each with a different discriminator.
21374 See gdb.dwarf2/dw2-single-line-discriminators.exp for an example.
21375
21376 However, we want gdb to coalesce all four entries into one.
21377 Otherwise the user could stepi into the middle of the line and
21378 gdb would get confused about whether the pc really was in the
21379 middle of the line.
21380
21381 Things are further complicated by the fact that two consecutive
21382 line number entries for the same line is a heuristic used by gcc
21383 to denote the end of the prologue. So we can't just discard duplicate
21384 entries, we have to be selective about it. The heuristic we use is
21385 that we only collapse consecutive entries for the same line if at least
21386 one of those entries has a non-zero discriminator. PR 17276.
21387
21388 Note: Addresses in the line number state machine can never go backwards
21389 within one sequence, thus this coalescing is ok. */
21390
21391 static int
21392 dwarf_record_line_p (struct dwarf2_cu *cu,
21393 unsigned int line, unsigned int last_line,
21394 int line_has_non_zero_discriminator,
21395 struct subfile *last_subfile)
21396 {
21397 if (cu->get_builder ()->get_current_subfile () != last_subfile)
21398 return 1;
21399 if (line != last_line)
21400 return 1;
21401 /* Same line for the same file that we've seen already.
21402 As a last check, for pr 17276, only record the line if the line
21403 has never had a non-zero discriminator. */
21404 if (!line_has_non_zero_discriminator)
21405 return 1;
21406 return 0;
21407 }
21408
21409 /* Use the CU's builder to record line number LINE beginning at
21410 address ADDRESS in the line table of subfile SUBFILE. */
21411
21412 static void
21413 dwarf_record_line_1 (struct gdbarch *gdbarch, struct subfile *subfile,
21414 unsigned int line, CORE_ADDR address, bool is_stmt,
21415 struct dwarf2_cu *cu)
21416 {
21417 CORE_ADDR addr = gdbarch_addr_bits_remove (gdbarch, address);
21418
21419 if (dwarf_line_debug)
21420 {
21421 fprintf_unfiltered (gdb_stdlog,
21422 "Recording line %u, file %s, address %s\n",
21423 line, lbasename (subfile->name),
21424 paddress (gdbarch, address));
21425 }
21426
21427 if (cu != nullptr)
21428 cu->get_builder ()->record_line (subfile, line, addr, is_stmt);
21429 }
21430
21431 /* Subroutine of dwarf_decode_lines_1 to simplify it.
21432 Mark the end of a set of line number records.
21433 The arguments are the same as for dwarf_record_line_1.
21434 If SUBFILE is NULL the request is ignored. */
21435
21436 static void
21437 dwarf_finish_line (struct gdbarch *gdbarch, struct subfile *subfile,
21438 CORE_ADDR address, struct dwarf2_cu *cu)
21439 {
21440 if (subfile == NULL)
21441 return;
21442
21443 if (dwarf_line_debug)
21444 {
21445 fprintf_unfiltered (gdb_stdlog,
21446 "Finishing current line, file %s, address %s\n",
21447 lbasename (subfile->name),
21448 paddress (gdbarch, address));
21449 }
21450
21451 dwarf_record_line_1 (gdbarch, subfile, 0, address, true, cu);
21452 }
21453
21454 void
21455 lnp_state_machine::record_line (bool end_sequence)
21456 {
21457 if (dwarf_line_debug)
21458 {
21459 fprintf_unfiltered (gdb_stdlog,
21460 "Processing actual line %u: file %u,"
21461 " address %s, is_stmt %u, discrim %u%s\n",
21462 m_line, m_file,
21463 paddress (m_gdbarch, m_address),
21464 m_is_stmt, m_discriminator,
21465 (end_sequence ? "\t(end sequence)" : ""));
21466 }
21467
21468 file_entry *fe = current_file ();
21469
21470 if (fe == NULL)
21471 dwarf2_debug_line_missing_file_complaint ();
21472 /* For now we ignore lines not starting on an instruction boundary.
21473 But not when processing end_sequence for compatibility with the
21474 previous version of the code. */
21475 else if (m_op_index == 0 || end_sequence)
21476 {
21477 fe->included_p = 1;
21478 if (m_record_lines_p)
21479 {
21480 /* When we switch files we insert an end maker in the first file,
21481 switch to the second file and add a new line entry. The
21482 problem is that the end marker inserted in the first file will
21483 discard any previous line entries at the same address. If the
21484 line entries in the first file are marked as is-stmt, while
21485 the new line in the second file is non-stmt, then this means
21486 the end marker will discard is-stmt lines so we can have a
21487 non-stmt line. This means that there are less addresses at
21488 which the user can insert a breakpoint.
21489
21490 To improve this we track the last address in m_last_address,
21491 and whether we have seen an is-stmt at this address. Then
21492 when switching files, if we have seen a stmt at the current
21493 address, and we are switching to create a non-stmt line, then
21494 discard the new line. */
21495 bool file_changed
21496 = m_last_subfile != m_cu->get_builder ()->get_current_subfile ();
21497 bool ignore_this_line
21498 = ((file_changed && !end_sequence && m_last_address == m_address
21499 && !m_is_stmt && m_stmt_at_address)
21500 || (!end_sequence && m_line == 0));
21501
21502 if ((file_changed && !ignore_this_line) || end_sequence)
21503 {
21504 dwarf_finish_line (m_gdbarch, m_last_subfile, m_address,
21505 m_currently_recording_lines ? m_cu : nullptr);
21506 }
21507
21508 if (!end_sequence && !ignore_this_line)
21509 {
21510 bool is_stmt = producer_is_codewarrior (m_cu) || m_is_stmt;
21511
21512 if (dwarf_record_line_p (m_cu, m_line, m_last_line,
21513 m_line_has_non_zero_discriminator,
21514 m_last_subfile))
21515 {
21516 buildsym_compunit *builder = m_cu->get_builder ();
21517 dwarf_record_line_1 (m_gdbarch,
21518 builder->get_current_subfile (),
21519 m_line, m_address, is_stmt,
21520 m_currently_recording_lines ? m_cu : nullptr);
21521 }
21522 m_last_subfile = m_cu->get_builder ()->get_current_subfile ();
21523 m_last_line = m_line;
21524 }
21525 }
21526 }
21527
21528 /* Track whether we have seen any m_is_stmt true at m_address in case we
21529 have multiple line table entries all at m_address. */
21530 if (m_last_address != m_address)
21531 {
21532 m_stmt_at_address = false;
21533 m_last_address = m_address;
21534 }
21535 m_stmt_at_address |= m_is_stmt;
21536 }
21537
21538 lnp_state_machine::lnp_state_machine (struct dwarf2_cu *cu, gdbarch *arch,
21539 line_header *lh, bool record_lines_p)
21540 {
21541 m_cu = cu;
21542 m_gdbarch = arch;
21543 m_record_lines_p = record_lines_p;
21544 m_line_header = lh;
21545
21546 m_currently_recording_lines = true;
21547
21548 /* Call `gdbarch_adjust_dwarf2_line' on the initial 0 address as if there
21549 was a line entry for it so that the backend has a chance to adjust it
21550 and also record it in case it needs it. This is currently used by MIPS
21551 code, cf. `mips_adjust_dwarf2_line'. */
21552 m_address = gdbarch_adjust_dwarf2_line (arch, 0, 0);
21553 m_is_stmt = lh->default_is_stmt;
21554 m_discriminator = 0;
21555
21556 m_last_address = m_address;
21557 m_stmt_at_address = false;
21558 }
21559
21560 void
21561 lnp_state_machine::check_line_address (struct dwarf2_cu *cu,
21562 const gdb_byte *line_ptr,
21563 CORE_ADDR unrelocated_lowpc, CORE_ADDR address)
21564 {
21565 /* Linkers resolve a symbolic relocation referencing a GC'd function to 0 or
21566 -1. If ADDRESS is 0, ignoring the opcode will err if the text section is
21567 located at 0x0. In this case, additionally check that if
21568 ADDRESS < UNRELOCATED_LOWPC. */
21569
21570 if ((address == 0 && address < unrelocated_lowpc)
21571 || address == (CORE_ADDR) -1)
21572 {
21573 /* This line table is for a function which has been
21574 GCd by the linker. Ignore it. PR gdb/12528 */
21575
21576 struct objfile *objfile = cu->per_objfile->objfile;
21577 long line_offset = line_ptr - get_debug_line_section (cu)->buffer;
21578
21579 complaint (_(".debug_line address at offset 0x%lx is 0 [in module %s]"),
21580 line_offset, objfile_name (objfile));
21581 m_currently_recording_lines = false;
21582 /* Note: m_currently_recording_lines is left as false until we see
21583 DW_LNE_end_sequence. */
21584 }
21585 }
21586
21587 /* Subroutine of dwarf_decode_lines to simplify it.
21588 Process the line number information in LH.
21589 If DECODE_FOR_PST_P is non-zero, all we do is process the line number
21590 program in order to set included_p for every referenced header. */
21591
21592 static void
21593 dwarf_decode_lines_1 (struct line_header *lh, struct dwarf2_cu *cu,
21594 const int decode_for_pst_p, CORE_ADDR lowpc)
21595 {
21596 const gdb_byte *line_ptr, *extended_end;
21597 const gdb_byte *line_end;
21598 unsigned int bytes_read, extended_len;
21599 unsigned char op_code, extended_op;
21600 CORE_ADDR baseaddr;
21601 struct objfile *objfile = cu->per_objfile->objfile;
21602 bfd *abfd = objfile->obfd;
21603 struct gdbarch *gdbarch = objfile->arch ();
21604 /* True if we're recording line info (as opposed to building partial
21605 symtabs and just interested in finding include files mentioned by
21606 the line number program). */
21607 bool record_lines_p = !decode_for_pst_p;
21608
21609 baseaddr = objfile->text_section_offset ();
21610
21611 line_ptr = lh->statement_program_start;
21612 line_end = lh->statement_program_end;
21613
21614 /* Read the statement sequences until there's nothing left. */
21615 while (line_ptr < line_end)
21616 {
21617 /* The DWARF line number program state machine. Reset the state
21618 machine at the start of each sequence. */
21619 lnp_state_machine state_machine (cu, gdbarch, lh, record_lines_p);
21620 bool end_sequence = false;
21621
21622 if (record_lines_p)
21623 {
21624 /* Start a subfile for the current file of the state
21625 machine. */
21626 const file_entry *fe = state_machine.current_file ();
21627
21628 if (fe != NULL)
21629 dwarf2_start_subfile (cu, fe->name, fe->include_dir (lh));
21630 }
21631
21632 /* Decode the table. */
21633 while (line_ptr < line_end && !end_sequence)
21634 {
21635 op_code = read_1_byte (abfd, line_ptr);
21636 line_ptr += 1;
21637
21638 if (op_code >= lh->opcode_base)
21639 {
21640 /* Special opcode. */
21641 state_machine.handle_special_opcode (op_code);
21642 }
21643 else switch (op_code)
21644 {
21645 case DW_LNS_extended_op:
21646 extended_len = read_unsigned_leb128 (abfd, line_ptr,
21647 &bytes_read);
21648 line_ptr += bytes_read;
21649 extended_end = line_ptr + extended_len;
21650 extended_op = read_1_byte (abfd, line_ptr);
21651 line_ptr += 1;
21652 if (DW_LNE_lo_user <= extended_op
21653 && extended_op <= DW_LNE_hi_user)
21654 {
21655 /* Vendor extension, ignore. */
21656 line_ptr = extended_end;
21657 break;
21658 }
21659 switch (extended_op)
21660 {
21661 case DW_LNE_end_sequence:
21662 state_machine.handle_end_sequence ();
21663 end_sequence = true;
21664 break;
21665 case DW_LNE_set_address:
21666 {
21667 CORE_ADDR address
21668 = cu->header.read_address (abfd, line_ptr, &bytes_read);
21669 line_ptr += bytes_read;
21670
21671 state_machine.check_line_address (cu, line_ptr,
21672 lowpc - baseaddr, address);
21673 state_machine.handle_set_address (baseaddr, address);
21674 }
21675 break;
21676 case DW_LNE_define_file:
21677 {
21678 const char *cur_file;
21679 unsigned int mod_time, length;
21680 dir_index dindex;
21681
21682 cur_file = read_direct_string (abfd, line_ptr,
21683 &bytes_read);
21684 line_ptr += bytes_read;
21685 dindex = (dir_index)
21686 read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
21687 line_ptr += bytes_read;
21688 mod_time =
21689 read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
21690 line_ptr += bytes_read;
21691 length =
21692 read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
21693 line_ptr += bytes_read;
21694 lh->add_file_name (cur_file, dindex, mod_time, length);
21695 }
21696 break;
21697 case DW_LNE_set_discriminator:
21698 {
21699 /* The discriminator is not interesting to the
21700 debugger; just ignore it. We still need to
21701 check its value though:
21702 if there are consecutive entries for the same
21703 (non-prologue) line we want to coalesce them.
21704 PR 17276. */
21705 unsigned int discr
21706 = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
21707 line_ptr += bytes_read;
21708
21709 state_machine.handle_set_discriminator (discr);
21710 }
21711 break;
21712 default:
21713 complaint (_("mangled .debug_line section"));
21714 return;
21715 }
21716 /* Make sure that we parsed the extended op correctly. If e.g.
21717 we expected a different address size than the producer used,
21718 we may have read the wrong number of bytes. */
21719 if (line_ptr != extended_end)
21720 {
21721 complaint (_("mangled .debug_line section"));
21722 return;
21723 }
21724 break;
21725 case DW_LNS_copy:
21726 state_machine.handle_copy ();
21727 break;
21728 case DW_LNS_advance_pc:
21729 {
21730 CORE_ADDR adjust
21731 = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
21732 line_ptr += bytes_read;
21733
21734 state_machine.handle_advance_pc (adjust);
21735 }
21736 break;
21737 case DW_LNS_advance_line:
21738 {
21739 int line_delta
21740 = read_signed_leb128 (abfd, line_ptr, &bytes_read);
21741 line_ptr += bytes_read;
21742
21743 state_machine.handle_advance_line (line_delta);
21744 }
21745 break;
21746 case DW_LNS_set_file:
21747 {
21748 file_name_index file
21749 = (file_name_index) read_unsigned_leb128 (abfd, line_ptr,
21750 &bytes_read);
21751 line_ptr += bytes_read;
21752
21753 state_machine.handle_set_file (file);
21754 }
21755 break;
21756 case DW_LNS_set_column:
21757 (void) read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
21758 line_ptr += bytes_read;
21759 break;
21760 case DW_LNS_negate_stmt:
21761 state_machine.handle_negate_stmt ();
21762 break;
21763 case DW_LNS_set_basic_block:
21764 break;
21765 /* Add to the address register of the state machine the
21766 address increment value corresponding to special opcode
21767 255. I.e., this value is scaled by the minimum
21768 instruction length since special opcode 255 would have
21769 scaled the increment. */
21770 case DW_LNS_const_add_pc:
21771 state_machine.handle_const_add_pc ();
21772 break;
21773 case DW_LNS_fixed_advance_pc:
21774 {
21775 CORE_ADDR addr_adj = read_2_bytes (abfd, line_ptr);
21776 line_ptr += 2;
21777
21778 state_machine.handle_fixed_advance_pc (addr_adj);
21779 }
21780 break;
21781 default:
21782 {
21783 /* Unknown standard opcode, ignore it. */
21784 int i;
21785
21786 for (i = 0; i < lh->standard_opcode_lengths[op_code]; i++)
21787 {
21788 (void) read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
21789 line_ptr += bytes_read;
21790 }
21791 }
21792 }
21793 }
21794
21795 if (!end_sequence)
21796 dwarf2_debug_line_missing_end_sequence_complaint ();
21797
21798 /* We got a DW_LNE_end_sequence (or we ran off the end of the buffer,
21799 in which case we still finish recording the last line). */
21800 state_machine.record_line (true);
21801 }
21802 }
21803
21804 /* Decode the Line Number Program (LNP) for the given line_header
21805 structure and CU. The actual information extracted and the type
21806 of structures created from the LNP depends on the value of PST.
21807
21808 1. If PST is NULL, then this procedure uses the data from the program
21809 to create all necessary symbol tables, and their linetables.
21810
21811 2. If PST is not NULL, this procedure reads the program to determine
21812 the list of files included by the unit represented by PST, and
21813 builds all the associated partial symbol tables.
21814
21815 COMP_DIR is the compilation directory (DW_AT_comp_dir) or NULL if unknown.
21816 It is used for relative paths in the line table.
21817 NOTE: When processing partial symtabs (pst != NULL),
21818 comp_dir == pst->dirname.
21819
21820 NOTE: It is important that psymtabs have the same file name (via strcmp)
21821 as the corresponding symtab. Since COMP_DIR is not used in the name of the
21822 symtab we don't use it in the name of the psymtabs we create.
21823 E.g. expand_line_sal requires this when finding psymtabs to expand.
21824 A good testcase for this is mb-inline.exp.
21825
21826 LOWPC is the lowest address in CU (or 0 if not known).
21827
21828 Boolean DECODE_MAPPING specifies we need to fully decode .debug_line
21829 for its PC<->lines mapping information. Otherwise only the filename
21830 table is read in. */
21831
21832 static void
21833 dwarf_decode_lines (struct line_header *lh, const char *comp_dir,
21834 struct dwarf2_cu *cu, dwarf2_psymtab *pst,
21835 CORE_ADDR lowpc, int decode_mapping)
21836 {
21837 struct objfile *objfile = cu->per_objfile->objfile;
21838 const int decode_for_pst_p = (pst != NULL);
21839
21840 if (decode_mapping)
21841 dwarf_decode_lines_1 (lh, cu, decode_for_pst_p, lowpc);
21842
21843 if (decode_for_pst_p)
21844 {
21845 /* Now that we're done scanning the Line Header Program, we can
21846 create the psymtab of each included file. */
21847 for (auto &file_entry : lh->file_names ())
21848 if (file_entry.included_p == 1)
21849 {
21850 gdb::unique_xmalloc_ptr<char> name_holder;
21851 const char *include_name =
21852 psymtab_include_file_name (lh, file_entry, pst,
21853 comp_dir, &name_holder);
21854 if (include_name != NULL)
21855 dwarf2_create_include_psymtab (include_name, pst, objfile);
21856 }
21857 }
21858 else
21859 {
21860 /* Make sure a symtab is created for every file, even files
21861 which contain only variables (i.e. no code with associated
21862 line numbers). */
21863 buildsym_compunit *builder = cu->get_builder ();
21864 struct compunit_symtab *cust = builder->get_compunit_symtab ();
21865
21866 for (auto &fe : lh->file_names ())
21867 {
21868 dwarf2_start_subfile (cu, fe.name, fe.include_dir (lh));
21869 if (builder->get_current_subfile ()->symtab == NULL)
21870 {
21871 builder->get_current_subfile ()->symtab
21872 = allocate_symtab (cust,
21873 builder->get_current_subfile ()->name);
21874 }
21875 fe.symtab = builder->get_current_subfile ()->symtab;
21876 }
21877 }
21878 }
21879
21880 /* Start a subfile for DWARF. FILENAME is the name of the file and
21881 DIRNAME the name of the source directory which contains FILENAME
21882 or NULL if not known.
21883 This routine tries to keep line numbers from identical absolute and
21884 relative file names in a common subfile.
21885
21886 Using the `list' example from the GDB testsuite, which resides in
21887 /srcdir and compiling it with Irix6.2 cc in /compdir using a filename
21888 of /srcdir/list0.c yields the following debugging information for list0.c:
21889
21890 DW_AT_name: /srcdir/list0.c
21891 DW_AT_comp_dir: /compdir
21892 files.files[0].name: list0.h
21893 files.files[0].dir: /srcdir
21894 files.files[1].name: list0.c
21895 files.files[1].dir: /srcdir
21896
21897 The line number information for list0.c has to end up in a single
21898 subfile, so that `break /srcdir/list0.c:1' works as expected.
21899 start_subfile will ensure that this happens provided that we pass the
21900 concatenation of files.files[1].dir and files.files[1].name as the
21901 subfile's name. */
21902
21903 static void
21904 dwarf2_start_subfile (struct dwarf2_cu *cu, const char *filename,
21905 const char *dirname)
21906 {
21907 gdb::unique_xmalloc_ptr<char> copy;
21908
21909 /* In order not to lose the line information directory,
21910 we concatenate it to the filename when it makes sense.
21911 Note that the Dwarf3 standard says (speaking of filenames in line
21912 information): ``The directory index is ignored for file names
21913 that represent full path names''. Thus ignoring dirname in the
21914 `else' branch below isn't an issue. */
21915
21916 if (!IS_ABSOLUTE_PATH (filename) && dirname != NULL)
21917 {
21918 copy.reset (concat (dirname, SLASH_STRING, filename, (char *) NULL));
21919 filename = copy.get ();
21920 }
21921
21922 cu->get_builder ()->start_subfile (filename);
21923 }
21924
21925 /* Start a symtab for DWARF. NAME, COMP_DIR, LOW_PC are passed to the
21926 buildsym_compunit constructor. */
21927
21928 struct compunit_symtab *
21929 dwarf2_cu::start_symtab (const char *name, const char *comp_dir,
21930 CORE_ADDR low_pc)
21931 {
21932 gdb_assert (m_builder == nullptr);
21933
21934 m_builder.reset (new struct buildsym_compunit
21935 (this->per_objfile->objfile,
21936 name, comp_dir, language, low_pc));
21937
21938 list_in_scope = get_builder ()->get_file_symbols ();
21939
21940 get_builder ()->record_debugformat ("DWARF 2");
21941 get_builder ()->record_producer (producer);
21942
21943 processing_has_namespace_info = false;
21944
21945 return get_builder ()->get_compunit_symtab ();
21946 }
21947
21948 static void
21949 var_decode_location (struct attribute *attr, struct symbol *sym,
21950 struct dwarf2_cu *cu)
21951 {
21952 struct objfile *objfile = cu->per_objfile->objfile;
21953 struct comp_unit_head *cu_header = &cu->header;
21954
21955 /* NOTE drow/2003-01-30: There used to be a comment and some special
21956 code here to turn a symbol with DW_AT_external and a
21957 SYMBOL_VALUE_ADDRESS of 0 into a LOC_UNRESOLVED symbol. This was
21958 necessary for platforms (maybe Alpha, certainly PowerPC GNU/Linux
21959 with some versions of binutils) where shared libraries could have
21960 relocations against symbols in their debug information - the
21961 minimal symbol would have the right address, but the debug info
21962 would not. It's no longer necessary, because we will explicitly
21963 apply relocations when we read in the debug information now. */
21964
21965 /* A DW_AT_location attribute with no contents indicates that a
21966 variable has been optimized away. */
21967 if (attr->form_is_block () && attr->as_block ()->size == 0)
21968 {
21969 SYMBOL_ACLASS_INDEX (sym) = LOC_OPTIMIZED_OUT;
21970 return;
21971 }
21972
21973 /* Handle one degenerate form of location expression specially, to
21974 preserve GDB's previous behavior when section offsets are
21975 specified. If this is just a DW_OP_addr, DW_OP_addrx, or
21976 DW_OP_GNU_addr_index then mark this symbol as LOC_STATIC. */
21977
21978 if (attr->form_is_block ())
21979 {
21980 struct dwarf_block *block = attr->as_block ();
21981
21982 if ((block->data[0] == DW_OP_addr
21983 && block->size == 1 + cu_header->addr_size)
21984 || ((block->data[0] == DW_OP_GNU_addr_index
21985 || block->data[0] == DW_OP_addrx)
21986 && (block->size
21987 == 1 + leb128_size (&block->data[1]))))
21988 {
21989 unsigned int dummy;
21990
21991 if (block->data[0] == DW_OP_addr)
21992 SET_SYMBOL_VALUE_ADDRESS
21993 (sym, cu->header.read_address (objfile->obfd,
21994 block->data + 1,
21995 &dummy));
21996 else
21997 SET_SYMBOL_VALUE_ADDRESS
21998 (sym, read_addr_index_from_leb128 (cu, block->data + 1,
21999 &dummy));
22000 SYMBOL_ACLASS_INDEX (sym) = LOC_STATIC;
22001 fixup_symbol_section (sym, objfile);
22002 SET_SYMBOL_VALUE_ADDRESS
22003 (sym,
22004 SYMBOL_VALUE_ADDRESS (sym)
22005 + objfile->section_offsets[SYMBOL_SECTION (sym)]);
22006 return;
22007 }
22008 }
22009
22010 /* NOTE drow/2002-01-30: It might be worthwhile to have a static
22011 expression evaluator, and use LOC_COMPUTED only when necessary
22012 (i.e. when the value of a register or memory location is
22013 referenced, or a thread-local block, etc.). Then again, it might
22014 not be worthwhile. I'm assuming that it isn't unless performance
22015 or memory numbers show me otherwise. */
22016
22017 dwarf2_symbol_mark_computed (attr, sym, cu, 0);
22018
22019 if (SYMBOL_COMPUTED_OPS (sym)->location_has_loclist)
22020 cu->has_loclist = true;
22021 }
22022
22023 /* Given a pointer to a DWARF information entry, figure out if we need
22024 to make a symbol table entry for it, and if so, create a new entry
22025 and return a pointer to it.
22026 If TYPE is NULL, determine symbol type from the die, otherwise
22027 used the passed type.
22028 If SPACE is not NULL, use it to hold the new symbol. If it is
22029 NULL, allocate a new symbol on the objfile's obstack. */
22030
22031 static struct symbol *
22032 new_symbol (struct die_info *die, struct type *type, struct dwarf2_cu *cu,
22033 struct symbol *space)
22034 {
22035 dwarf2_per_objfile *per_objfile = cu->per_objfile;
22036 struct objfile *objfile = per_objfile->objfile;
22037 struct gdbarch *gdbarch = objfile->arch ();
22038 struct symbol *sym = NULL;
22039 const char *name;
22040 struct attribute *attr = NULL;
22041 struct attribute *attr2 = NULL;
22042 CORE_ADDR baseaddr;
22043 struct pending **list_to_add = NULL;
22044
22045 int inlined_func = (die->tag == DW_TAG_inlined_subroutine);
22046
22047 baseaddr = objfile->text_section_offset ();
22048
22049 name = dwarf2_name (die, cu);
22050 if (name)
22051 {
22052 int suppress_add = 0;
22053
22054 if (space)
22055 sym = space;
22056 else
22057 sym = new (&objfile->objfile_obstack) symbol;
22058 OBJSTAT (objfile, n_syms++);
22059
22060 /* Cache this symbol's name and the name's demangled form (if any). */
22061 sym->set_language (cu->language, &objfile->objfile_obstack);
22062 /* Fortran does not have mangling standard and the mangling does differ
22063 between gfortran, iFort etc. */
22064 const char *physname
22065 = (cu->language == language_fortran
22066 ? dwarf2_full_name (name, die, cu)
22067 : dwarf2_physname (name, die, cu));
22068 const char *linkagename = dw2_linkage_name (die, cu);
22069
22070 if (linkagename == nullptr || cu->language == language_ada)
22071 sym->set_linkage_name (physname);
22072 else
22073 {
22074 sym->set_demangled_name (physname, &objfile->objfile_obstack);
22075 sym->set_linkage_name (linkagename);
22076 }
22077
22078 /* Default assumptions.
22079 Use the passed type or decode it from the die. */
22080 SYMBOL_DOMAIN (sym) = VAR_DOMAIN;
22081 SYMBOL_ACLASS_INDEX (sym) = LOC_OPTIMIZED_OUT;
22082 if (type != NULL)
22083 SYMBOL_TYPE (sym) = type;
22084 else
22085 SYMBOL_TYPE (sym) = die_type (die, cu);
22086 attr = dwarf2_attr (die,
22087 inlined_func ? DW_AT_call_line : DW_AT_decl_line,
22088 cu);
22089 if (attr != nullptr)
22090 SYMBOL_LINE (sym) = attr->constant_value (0);
22091
22092 attr = dwarf2_attr (die,
22093 inlined_func ? DW_AT_call_file : DW_AT_decl_file,
22094 cu);
22095 if (attr != nullptr && attr->form_is_unsigned ())
22096 {
22097 file_name_index file_index
22098 = (file_name_index) attr->as_unsigned ();
22099 struct file_entry *fe;
22100
22101 if (cu->line_header != NULL)
22102 fe = cu->line_header->file_name_at (file_index);
22103 else
22104 fe = NULL;
22105
22106 if (fe == NULL)
22107 complaint (_("file index out of range"));
22108 else
22109 symbol_set_symtab (sym, fe->symtab);
22110 }
22111
22112 switch (die->tag)
22113 {
22114 case DW_TAG_label:
22115 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
22116 if (attr != nullptr)
22117 {
22118 CORE_ADDR addr;
22119
22120 addr = attr->as_address ();
22121 addr = gdbarch_adjust_dwarf2_addr (gdbarch, addr + baseaddr);
22122 SET_SYMBOL_VALUE_ADDRESS (sym, addr);
22123 SYMBOL_ACLASS_INDEX (sym) = LOC_LABEL;
22124 }
22125 else
22126 SYMBOL_ACLASS_INDEX (sym) = LOC_OPTIMIZED_OUT;
22127 SYMBOL_TYPE (sym) = objfile_type (objfile)->builtin_core_addr;
22128 SYMBOL_DOMAIN (sym) = LABEL_DOMAIN;
22129 add_symbol_to_list (sym, cu->list_in_scope);
22130 break;
22131 case DW_TAG_subprogram:
22132 /* SYMBOL_BLOCK_VALUE (sym) will be filled in later by
22133 finish_block. */
22134 SYMBOL_ACLASS_INDEX (sym) = LOC_BLOCK;
22135 attr2 = dwarf2_attr (die, DW_AT_external, cu);
22136 if ((attr2 != nullptr && attr2->as_boolean ())
22137 || cu->language == language_ada
22138 || cu->language == language_fortran)
22139 {
22140 /* Subprograms marked external are stored as a global symbol.
22141 Ada and Fortran subprograms, whether marked external or
22142 not, are always stored as a global symbol, because we want
22143 to be able to access them globally. For instance, we want
22144 to be able to break on a nested subprogram without having
22145 to specify the context. */
22146 list_to_add = cu->get_builder ()->get_global_symbols ();
22147 }
22148 else
22149 {
22150 list_to_add = cu->list_in_scope;
22151 }
22152 break;
22153 case DW_TAG_inlined_subroutine:
22154 /* SYMBOL_BLOCK_VALUE (sym) will be filled in later by
22155 finish_block. */
22156 SYMBOL_ACLASS_INDEX (sym) = LOC_BLOCK;
22157 SYMBOL_INLINED (sym) = 1;
22158 list_to_add = cu->list_in_scope;
22159 break;
22160 case DW_TAG_template_value_param:
22161 suppress_add = 1;
22162 /* Fall through. */
22163 case DW_TAG_constant:
22164 case DW_TAG_variable:
22165 case DW_TAG_member:
22166 /* Compilation with minimal debug info may result in
22167 variables with missing type entries. Change the
22168 misleading `void' type to something sensible. */
22169 if (SYMBOL_TYPE (sym)->code () == TYPE_CODE_VOID)
22170 SYMBOL_TYPE (sym) = objfile_type (objfile)->builtin_int;
22171
22172 attr = dwarf2_attr (die, DW_AT_const_value, cu);
22173 /* In the case of DW_TAG_member, we should only be called for
22174 static const members. */
22175 if (die->tag == DW_TAG_member)
22176 {
22177 /* dwarf2_add_field uses die_is_declaration,
22178 so we do the same. */
22179 gdb_assert (die_is_declaration (die, cu));
22180 gdb_assert (attr);
22181 }
22182 if (attr != nullptr)
22183 {
22184 dwarf2_const_value (attr, sym, cu);
22185 attr2 = dwarf2_attr (die, DW_AT_external, cu);
22186 if (!suppress_add)
22187 {
22188 if (attr2 != nullptr && attr2->as_boolean ())
22189 list_to_add = cu->get_builder ()->get_global_symbols ();
22190 else
22191 list_to_add = cu->list_in_scope;
22192 }
22193 break;
22194 }
22195 attr = dwarf2_attr (die, DW_AT_location, cu);
22196 if (attr != nullptr)
22197 {
22198 var_decode_location (attr, sym, cu);
22199 attr2 = dwarf2_attr (die, DW_AT_external, cu);
22200
22201 /* Fortran explicitly imports any global symbols to the local
22202 scope by DW_TAG_common_block. */
22203 if (cu->language == language_fortran && die->parent
22204 && die->parent->tag == DW_TAG_common_block)
22205 attr2 = NULL;
22206
22207 if (SYMBOL_CLASS (sym) == LOC_STATIC
22208 && SYMBOL_VALUE_ADDRESS (sym) == 0
22209 && !per_objfile->per_bfd->has_section_at_zero)
22210 {
22211 /* When a static variable is eliminated by the linker,
22212 the corresponding debug information is not stripped
22213 out, but the variable address is set to null;
22214 do not add such variables into symbol table. */
22215 }
22216 else if (attr2 != nullptr && attr2->as_boolean ())
22217 {
22218 if (SYMBOL_CLASS (sym) == LOC_STATIC
22219 && (objfile->flags & OBJF_MAINLINE) == 0
22220 && per_objfile->per_bfd->can_copy)
22221 {
22222 /* A global static variable might be subject to
22223 copy relocation. We first check for a local
22224 minsym, though, because maybe the symbol was
22225 marked hidden, in which case this would not
22226 apply. */
22227 bound_minimal_symbol found
22228 = (lookup_minimal_symbol_linkage
22229 (sym->linkage_name (), objfile));
22230 if (found.minsym != nullptr)
22231 sym->maybe_copied = 1;
22232 }
22233
22234 /* A variable with DW_AT_external is never static,
22235 but it may be block-scoped. */
22236 list_to_add
22237 = ((cu->list_in_scope
22238 == cu->get_builder ()->get_file_symbols ())
22239 ? cu->get_builder ()->get_global_symbols ()
22240 : cu->list_in_scope);
22241 }
22242 else
22243 list_to_add = cu->list_in_scope;
22244 }
22245 else
22246 {
22247 /* We do not know the address of this symbol.
22248 If it is an external symbol and we have type information
22249 for it, enter the symbol as a LOC_UNRESOLVED symbol.
22250 The address of the variable will then be determined from
22251 the minimal symbol table whenever the variable is
22252 referenced. */
22253 attr2 = dwarf2_attr (die, DW_AT_external, cu);
22254
22255 /* Fortran explicitly imports any global symbols to the local
22256 scope by DW_TAG_common_block. */
22257 if (cu->language == language_fortran && die->parent
22258 && die->parent->tag == DW_TAG_common_block)
22259 {
22260 /* SYMBOL_CLASS doesn't matter here because
22261 read_common_block is going to reset it. */
22262 if (!suppress_add)
22263 list_to_add = cu->list_in_scope;
22264 }
22265 else if (attr2 != nullptr && attr2->as_boolean ()
22266 && dwarf2_attr (die, DW_AT_type, cu) != NULL)
22267 {
22268 /* A variable with DW_AT_external is never static, but it
22269 may be block-scoped. */
22270 list_to_add
22271 = ((cu->list_in_scope
22272 == cu->get_builder ()->get_file_symbols ())
22273 ? cu->get_builder ()->get_global_symbols ()
22274 : cu->list_in_scope);
22275
22276 SYMBOL_ACLASS_INDEX (sym) = LOC_UNRESOLVED;
22277 }
22278 else if (!die_is_declaration (die, cu))
22279 {
22280 /* Use the default LOC_OPTIMIZED_OUT class. */
22281 gdb_assert (SYMBOL_CLASS (sym) == LOC_OPTIMIZED_OUT);
22282 if (!suppress_add)
22283 list_to_add = cu->list_in_scope;
22284 }
22285 }
22286 break;
22287 case DW_TAG_formal_parameter:
22288 {
22289 /* If we are inside a function, mark this as an argument. If
22290 not, we might be looking at an argument to an inlined function
22291 when we do not have enough information to show inlined frames;
22292 pretend it's a local variable in that case so that the user can
22293 still see it. */
22294 struct context_stack *curr
22295 = cu->get_builder ()->get_current_context_stack ();
22296 if (curr != nullptr && curr->name != nullptr)
22297 SYMBOL_IS_ARGUMENT (sym) = 1;
22298 attr = dwarf2_attr (die, DW_AT_location, cu);
22299 if (attr != nullptr)
22300 {
22301 var_decode_location (attr, sym, cu);
22302 }
22303 attr = dwarf2_attr (die, DW_AT_const_value, cu);
22304 if (attr != nullptr)
22305 {
22306 dwarf2_const_value (attr, sym, cu);
22307 }
22308
22309 list_to_add = cu->list_in_scope;
22310 }
22311 break;
22312 case DW_TAG_unspecified_parameters:
22313 /* From varargs functions; gdb doesn't seem to have any
22314 interest in this information, so just ignore it for now.
22315 (FIXME?) */
22316 break;
22317 case DW_TAG_template_type_param:
22318 suppress_add = 1;
22319 /* Fall through. */
22320 case DW_TAG_class_type:
22321 case DW_TAG_interface_type:
22322 case DW_TAG_structure_type:
22323 case DW_TAG_union_type:
22324 case DW_TAG_set_type:
22325 case DW_TAG_enumeration_type:
22326 SYMBOL_ACLASS_INDEX (sym) = LOC_TYPEDEF;
22327 SYMBOL_DOMAIN (sym) = STRUCT_DOMAIN;
22328
22329 {
22330 /* NOTE: carlton/2003-11-10: C++ class symbols shouldn't
22331 really ever be static objects: otherwise, if you try
22332 to, say, break of a class's method and you're in a file
22333 which doesn't mention that class, it won't work unless
22334 the check for all static symbols in lookup_symbol_aux
22335 saves you. See the OtherFileClass tests in
22336 gdb.c++/namespace.exp. */
22337
22338 if (!suppress_add)
22339 {
22340 buildsym_compunit *builder = cu->get_builder ();
22341 list_to_add
22342 = (cu->list_in_scope == builder->get_file_symbols ()
22343 && cu->language == language_cplus
22344 ? builder->get_global_symbols ()
22345 : cu->list_in_scope);
22346
22347 /* The semantics of C++ state that "struct foo {
22348 ... }" also defines a typedef for "foo". */
22349 if (cu->language == language_cplus
22350 || cu->language == language_ada
22351 || cu->language == language_d
22352 || cu->language == language_rust)
22353 {
22354 /* The symbol's name is already allocated along
22355 with this objfile, so we don't need to
22356 duplicate it for the type. */
22357 if (SYMBOL_TYPE (sym)->name () == 0)
22358 SYMBOL_TYPE (sym)->set_name (sym->search_name ());
22359 }
22360 }
22361 }
22362 break;
22363 case DW_TAG_typedef:
22364 SYMBOL_ACLASS_INDEX (sym) = LOC_TYPEDEF;
22365 SYMBOL_DOMAIN (sym) = VAR_DOMAIN;
22366 list_to_add = cu->list_in_scope;
22367 break;
22368 case DW_TAG_array_type:
22369 case DW_TAG_base_type:
22370 case DW_TAG_subrange_type:
22371 SYMBOL_ACLASS_INDEX (sym) = LOC_TYPEDEF;
22372 SYMBOL_DOMAIN (sym) = VAR_DOMAIN;
22373 list_to_add = cu->list_in_scope;
22374 break;
22375 case DW_TAG_enumerator:
22376 attr = dwarf2_attr (die, DW_AT_const_value, cu);
22377 if (attr != nullptr)
22378 {
22379 dwarf2_const_value (attr, sym, cu);
22380 }
22381 {
22382 /* NOTE: carlton/2003-11-10: See comment above in the
22383 DW_TAG_class_type, etc. block. */
22384
22385 list_to_add
22386 = (cu->list_in_scope == cu->get_builder ()->get_file_symbols ()
22387 && cu->language == language_cplus
22388 ? cu->get_builder ()->get_global_symbols ()
22389 : cu->list_in_scope);
22390 }
22391 break;
22392 case DW_TAG_imported_declaration:
22393 case DW_TAG_namespace:
22394 SYMBOL_ACLASS_INDEX (sym) = LOC_TYPEDEF;
22395 list_to_add = cu->get_builder ()->get_global_symbols ();
22396 break;
22397 case DW_TAG_module:
22398 SYMBOL_ACLASS_INDEX (sym) = LOC_TYPEDEF;
22399 SYMBOL_DOMAIN (sym) = MODULE_DOMAIN;
22400 list_to_add = cu->get_builder ()->get_global_symbols ();
22401 break;
22402 case DW_TAG_common_block:
22403 SYMBOL_ACLASS_INDEX (sym) = LOC_COMMON_BLOCK;
22404 SYMBOL_DOMAIN (sym) = COMMON_BLOCK_DOMAIN;
22405 add_symbol_to_list (sym, cu->list_in_scope);
22406 break;
22407 default:
22408 /* Not a tag we recognize. Hopefully we aren't processing
22409 trash data, but since we must specifically ignore things
22410 we don't recognize, there is nothing else we should do at
22411 this point. */
22412 complaint (_("unsupported tag: '%s'"),
22413 dwarf_tag_name (die->tag));
22414 break;
22415 }
22416
22417 if (suppress_add)
22418 {
22419 sym->hash_next = objfile->template_symbols;
22420 objfile->template_symbols = sym;
22421 list_to_add = NULL;
22422 }
22423
22424 if (list_to_add != NULL)
22425 add_symbol_to_list (sym, list_to_add);
22426
22427 /* For the benefit of old versions of GCC, check for anonymous
22428 namespaces based on the demangled name. */
22429 if (!cu->processing_has_namespace_info
22430 && cu->language == language_cplus)
22431 cp_scan_for_anonymous_namespaces (cu->get_builder (), sym, objfile);
22432 }
22433 return (sym);
22434 }
22435
22436 /* Given an attr with a DW_FORM_dataN value in host byte order,
22437 zero-extend it as appropriate for the symbol's type. The DWARF
22438 standard (v4) is not entirely clear about the meaning of using
22439 DW_FORM_dataN for a constant with a signed type, where the type is
22440 wider than the data. The conclusion of a discussion on the DWARF
22441 list was that this is unspecified. We choose to always zero-extend
22442 because that is the interpretation long in use by GCC. */
22443
22444 static gdb_byte *
22445 dwarf2_const_value_data (const struct attribute *attr, struct obstack *obstack,
22446 struct dwarf2_cu *cu, LONGEST *value, int bits)
22447 {
22448 struct objfile *objfile = cu->per_objfile->objfile;
22449 enum bfd_endian byte_order = bfd_big_endian (objfile->obfd) ?
22450 BFD_ENDIAN_BIG : BFD_ENDIAN_LITTLE;
22451 LONGEST l = attr->constant_value (0);
22452
22453 if (bits < sizeof (*value) * 8)
22454 {
22455 l &= ((LONGEST) 1 << bits) - 1;
22456 *value = l;
22457 }
22458 else if (bits == sizeof (*value) * 8)
22459 *value = l;
22460 else
22461 {
22462 gdb_byte *bytes = (gdb_byte *) obstack_alloc (obstack, bits / 8);
22463 store_unsigned_integer (bytes, bits / 8, byte_order, l);
22464 return bytes;
22465 }
22466
22467 return NULL;
22468 }
22469
22470 /* Read a constant value from an attribute. Either set *VALUE, or if
22471 the value does not fit in *VALUE, set *BYTES - either already
22472 allocated on the objfile obstack, or newly allocated on OBSTACK,
22473 or, set *BATON, if we translated the constant to a location
22474 expression. */
22475
22476 static void
22477 dwarf2_const_value_attr (const struct attribute *attr, struct type *type,
22478 const char *name, struct obstack *obstack,
22479 struct dwarf2_cu *cu,
22480 LONGEST *value, const gdb_byte **bytes,
22481 struct dwarf2_locexpr_baton **baton)
22482 {
22483 dwarf2_per_objfile *per_objfile = cu->per_objfile;
22484 struct objfile *objfile = per_objfile->objfile;
22485 struct comp_unit_head *cu_header = &cu->header;
22486 struct dwarf_block *blk;
22487 enum bfd_endian byte_order = (bfd_big_endian (objfile->obfd) ?
22488 BFD_ENDIAN_BIG : BFD_ENDIAN_LITTLE);
22489
22490 *value = 0;
22491 *bytes = NULL;
22492 *baton = NULL;
22493
22494 switch (attr->form)
22495 {
22496 case DW_FORM_addr:
22497 case DW_FORM_addrx:
22498 case DW_FORM_GNU_addr_index:
22499 {
22500 gdb_byte *data;
22501
22502 if (TYPE_LENGTH (type) != cu_header->addr_size)
22503 dwarf2_const_value_length_mismatch_complaint (name,
22504 cu_header->addr_size,
22505 TYPE_LENGTH (type));
22506 /* Symbols of this form are reasonably rare, so we just
22507 piggyback on the existing location code rather than writing
22508 a new implementation of symbol_computed_ops. */
22509 *baton = XOBNEW (obstack, struct dwarf2_locexpr_baton);
22510 (*baton)->per_objfile = per_objfile;
22511 (*baton)->per_cu = cu->per_cu;
22512 gdb_assert ((*baton)->per_cu);
22513
22514 (*baton)->size = 2 + cu_header->addr_size;
22515 data = (gdb_byte *) obstack_alloc (obstack, (*baton)->size);
22516 (*baton)->data = data;
22517
22518 data[0] = DW_OP_addr;
22519 store_unsigned_integer (&data[1], cu_header->addr_size,
22520 byte_order, attr->as_address ());
22521 data[cu_header->addr_size + 1] = DW_OP_stack_value;
22522 }
22523 break;
22524 case DW_FORM_string:
22525 case DW_FORM_strp:
22526 case DW_FORM_strx:
22527 case DW_FORM_GNU_str_index:
22528 case DW_FORM_GNU_strp_alt:
22529 /* The string is already allocated on the objfile obstack, point
22530 directly to it. */
22531 *bytes = (const gdb_byte *) attr->as_string ();
22532 break;
22533 case DW_FORM_block1:
22534 case DW_FORM_block2:
22535 case DW_FORM_block4:
22536 case DW_FORM_block:
22537 case DW_FORM_exprloc:
22538 case DW_FORM_data16:
22539 blk = attr->as_block ();
22540 if (TYPE_LENGTH (type) != blk->size)
22541 dwarf2_const_value_length_mismatch_complaint (name, blk->size,
22542 TYPE_LENGTH (type));
22543 *bytes = blk->data;
22544 break;
22545
22546 /* The DW_AT_const_value attributes are supposed to carry the
22547 symbol's value "represented as it would be on the target
22548 architecture." By the time we get here, it's already been
22549 converted to host endianness, so we just need to sign- or
22550 zero-extend it as appropriate. */
22551 case DW_FORM_data1:
22552 *bytes = dwarf2_const_value_data (attr, obstack, cu, value, 8);
22553 break;
22554 case DW_FORM_data2:
22555 *bytes = dwarf2_const_value_data (attr, obstack, cu, value, 16);
22556 break;
22557 case DW_FORM_data4:
22558 *bytes = dwarf2_const_value_data (attr, obstack, cu, value, 32);
22559 break;
22560 case DW_FORM_data8:
22561 *bytes = dwarf2_const_value_data (attr, obstack, cu, value, 64);
22562 break;
22563
22564 case DW_FORM_sdata:
22565 case DW_FORM_implicit_const:
22566 *value = attr->as_signed ();
22567 break;
22568
22569 case DW_FORM_udata:
22570 *value = attr->as_unsigned ();
22571 break;
22572
22573 default:
22574 complaint (_("unsupported const value attribute form: '%s'"),
22575 dwarf_form_name (attr->form));
22576 *value = 0;
22577 break;
22578 }
22579 }
22580
22581
22582 /* Copy constant value from an attribute to a symbol. */
22583
22584 static void
22585 dwarf2_const_value (const struct attribute *attr, struct symbol *sym,
22586 struct dwarf2_cu *cu)
22587 {
22588 struct objfile *objfile = cu->per_objfile->objfile;
22589 LONGEST value;
22590 const gdb_byte *bytes;
22591 struct dwarf2_locexpr_baton *baton;
22592
22593 dwarf2_const_value_attr (attr, SYMBOL_TYPE (sym),
22594 sym->print_name (),
22595 &objfile->objfile_obstack, cu,
22596 &value, &bytes, &baton);
22597
22598 if (baton != NULL)
22599 {
22600 SYMBOL_LOCATION_BATON (sym) = baton;
22601 SYMBOL_ACLASS_INDEX (sym) = dwarf2_locexpr_index;
22602 }
22603 else if (bytes != NULL)
22604 {
22605 SYMBOL_VALUE_BYTES (sym) = bytes;
22606 SYMBOL_ACLASS_INDEX (sym) = LOC_CONST_BYTES;
22607 }
22608 else
22609 {
22610 SYMBOL_VALUE (sym) = value;
22611 SYMBOL_ACLASS_INDEX (sym) = LOC_CONST;
22612 }
22613 }
22614
22615 /* Return the type of the die in question using its DW_AT_type attribute. */
22616
22617 static struct type *
22618 die_type (struct die_info *die, struct dwarf2_cu *cu)
22619 {
22620 struct attribute *type_attr;
22621
22622 type_attr = dwarf2_attr (die, DW_AT_type, cu);
22623 if (!type_attr)
22624 {
22625 struct objfile *objfile = cu->per_objfile->objfile;
22626 /* A missing DW_AT_type represents a void type. */
22627 return objfile_type (objfile)->builtin_void;
22628 }
22629
22630 return lookup_die_type (die, type_attr, cu);
22631 }
22632
22633 /* True iff CU's producer generates GNAT Ada auxiliary information
22634 that allows to find parallel types through that information instead
22635 of having to do expensive parallel lookups by type name. */
22636
22637 static int
22638 need_gnat_info (struct dwarf2_cu *cu)
22639 {
22640 /* Assume that the Ada compiler was GNAT, which always produces
22641 the auxiliary information. */
22642 return (cu->language == language_ada);
22643 }
22644
22645 /* Return the auxiliary type of the die in question using its
22646 DW_AT_GNAT_descriptive_type attribute. Returns NULL if the
22647 attribute is not present. */
22648
22649 static struct type *
22650 die_descriptive_type (struct die_info *die, struct dwarf2_cu *cu)
22651 {
22652 struct attribute *type_attr;
22653
22654 type_attr = dwarf2_attr (die, DW_AT_GNAT_descriptive_type, cu);
22655 if (!type_attr)
22656 return NULL;
22657
22658 return lookup_die_type (die, type_attr, cu);
22659 }
22660
22661 /* If DIE has a descriptive_type attribute, then set the TYPE's
22662 descriptive type accordingly. */
22663
22664 static void
22665 set_descriptive_type (struct type *type, struct die_info *die,
22666 struct dwarf2_cu *cu)
22667 {
22668 struct type *descriptive_type = die_descriptive_type (die, cu);
22669
22670 if (descriptive_type)
22671 {
22672 ALLOCATE_GNAT_AUX_TYPE (type);
22673 TYPE_DESCRIPTIVE_TYPE (type) = descriptive_type;
22674 }
22675 }
22676
22677 /* Return the containing type of the die in question using its
22678 DW_AT_containing_type attribute. */
22679
22680 static struct type *
22681 die_containing_type (struct die_info *die, struct dwarf2_cu *cu)
22682 {
22683 struct attribute *type_attr;
22684 struct objfile *objfile = cu->per_objfile->objfile;
22685
22686 type_attr = dwarf2_attr (die, DW_AT_containing_type, cu);
22687 if (!type_attr)
22688 error (_("Dwarf Error: Problem turning containing type into gdb type "
22689 "[in module %s]"), objfile_name (objfile));
22690
22691 return lookup_die_type (die, type_attr, cu);
22692 }
22693
22694 /* Return an error marker type to use for the ill formed type in DIE/CU. */
22695
22696 static struct type *
22697 build_error_marker_type (struct dwarf2_cu *cu, struct die_info *die)
22698 {
22699 dwarf2_per_objfile *per_objfile = cu->per_objfile;
22700 struct objfile *objfile = per_objfile->objfile;
22701 char *saved;
22702
22703 std::string message
22704 = string_printf (_("<unknown type in %s, CU %s, DIE %s>"),
22705 objfile_name (objfile),
22706 sect_offset_str (cu->header.sect_off),
22707 sect_offset_str (die->sect_off));
22708 saved = obstack_strdup (&objfile->objfile_obstack, message);
22709
22710 return init_type (objfile, TYPE_CODE_ERROR, 0, saved);
22711 }
22712
22713 /* Look up the type of DIE in CU using its type attribute ATTR.
22714 ATTR must be one of: DW_AT_type, DW_AT_GNAT_descriptive_type,
22715 DW_AT_containing_type.
22716 If there is no type substitute an error marker. */
22717
22718 static struct type *
22719 lookup_die_type (struct die_info *die, const struct attribute *attr,
22720 struct dwarf2_cu *cu)
22721 {
22722 dwarf2_per_objfile *per_objfile = cu->per_objfile;
22723 struct objfile *objfile = per_objfile->objfile;
22724 struct type *this_type;
22725
22726 gdb_assert (attr->name == DW_AT_type
22727 || attr->name == DW_AT_GNAT_descriptive_type
22728 || attr->name == DW_AT_containing_type);
22729
22730 /* First see if we have it cached. */
22731
22732 if (attr->form == DW_FORM_GNU_ref_alt)
22733 {
22734 struct dwarf2_per_cu_data *per_cu;
22735 sect_offset sect_off = attr->get_ref_die_offset ();
22736
22737 per_cu = dwarf2_find_containing_comp_unit (sect_off, 1, per_objfile);
22738 this_type = get_die_type_at_offset (sect_off, per_cu, per_objfile);
22739 }
22740 else if (attr->form_is_ref ())
22741 {
22742 sect_offset sect_off = attr->get_ref_die_offset ();
22743
22744 this_type = get_die_type_at_offset (sect_off, cu->per_cu, per_objfile);
22745 }
22746 else if (attr->form == DW_FORM_ref_sig8)
22747 {
22748 ULONGEST signature = attr->as_signature ();
22749
22750 return get_signatured_type (die, signature, cu);
22751 }
22752 else
22753 {
22754 complaint (_("Dwarf Error: Bad type attribute %s in DIE"
22755 " at %s [in module %s]"),
22756 dwarf_attr_name (attr->name), sect_offset_str (die->sect_off),
22757 objfile_name (objfile));
22758 return build_error_marker_type (cu, die);
22759 }
22760
22761 /* If not cached we need to read it in. */
22762
22763 if (this_type == NULL)
22764 {
22765 struct die_info *type_die = NULL;
22766 struct dwarf2_cu *type_cu = cu;
22767
22768 if (attr->form_is_ref ())
22769 type_die = follow_die_ref (die, attr, &type_cu);
22770 if (type_die == NULL)
22771 return build_error_marker_type (cu, die);
22772 /* If we find the type now, it's probably because the type came
22773 from an inter-CU reference and the type's CU got expanded before
22774 ours. */
22775 this_type = read_type_die (type_die, type_cu);
22776 }
22777
22778 /* If we still don't have a type use an error marker. */
22779
22780 if (this_type == NULL)
22781 return build_error_marker_type (cu, die);
22782
22783 return this_type;
22784 }
22785
22786 /* Return the type in DIE, CU.
22787 Returns NULL for invalid types.
22788
22789 This first does a lookup in die_type_hash,
22790 and only reads the die in if necessary.
22791
22792 NOTE: This can be called when reading in partial or full symbols. */
22793
22794 static struct type *
22795 read_type_die (struct die_info *die, struct dwarf2_cu *cu)
22796 {
22797 struct type *this_type;
22798
22799 this_type = get_die_type (die, cu);
22800 if (this_type)
22801 return this_type;
22802
22803 return read_type_die_1 (die, cu);
22804 }
22805
22806 /* Read the type in DIE, CU.
22807 Returns NULL for invalid types. */
22808
22809 static struct type *
22810 read_type_die_1 (struct die_info *die, struct dwarf2_cu *cu)
22811 {
22812 struct type *this_type = NULL;
22813
22814 switch (die->tag)
22815 {
22816 case DW_TAG_class_type:
22817 case DW_TAG_interface_type:
22818 case DW_TAG_structure_type:
22819 case DW_TAG_union_type:
22820 this_type = read_structure_type (die, cu);
22821 break;
22822 case DW_TAG_enumeration_type:
22823 this_type = read_enumeration_type (die, cu);
22824 break;
22825 case DW_TAG_subprogram:
22826 case DW_TAG_subroutine_type:
22827 case DW_TAG_inlined_subroutine:
22828 this_type = read_subroutine_type (die, cu);
22829 break;
22830 case DW_TAG_array_type:
22831 this_type = read_array_type (die, cu);
22832 break;
22833 case DW_TAG_set_type:
22834 this_type = read_set_type (die, cu);
22835 break;
22836 case DW_TAG_pointer_type:
22837 this_type = read_tag_pointer_type (die, cu);
22838 break;
22839 case DW_TAG_ptr_to_member_type:
22840 this_type = read_tag_ptr_to_member_type (die, cu);
22841 break;
22842 case DW_TAG_reference_type:
22843 this_type = read_tag_reference_type (die, cu, TYPE_CODE_REF);
22844 break;
22845 case DW_TAG_rvalue_reference_type:
22846 this_type = read_tag_reference_type (die, cu, TYPE_CODE_RVALUE_REF);
22847 break;
22848 case DW_TAG_const_type:
22849 this_type = read_tag_const_type (die, cu);
22850 break;
22851 case DW_TAG_volatile_type:
22852 this_type = read_tag_volatile_type (die, cu);
22853 break;
22854 case DW_TAG_restrict_type:
22855 this_type = read_tag_restrict_type (die, cu);
22856 break;
22857 case DW_TAG_string_type:
22858 this_type = read_tag_string_type (die, cu);
22859 break;
22860 case DW_TAG_typedef:
22861 this_type = read_typedef (die, cu);
22862 break;
22863 case DW_TAG_subrange_type:
22864 this_type = read_subrange_type (die, cu);
22865 break;
22866 case DW_TAG_base_type:
22867 this_type = read_base_type (die, cu);
22868 break;
22869 case DW_TAG_unspecified_type:
22870 this_type = read_unspecified_type (die, cu);
22871 break;
22872 case DW_TAG_namespace:
22873 this_type = read_namespace_type (die, cu);
22874 break;
22875 case DW_TAG_module:
22876 this_type = read_module_type (die, cu);
22877 break;
22878 case DW_TAG_atomic_type:
22879 this_type = read_tag_atomic_type (die, cu);
22880 break;
22881 default:
22882 complaint (_("unexpected tag in read_type_die: '%s'"),
22883 dwarf_tag_name (die->tag));
22884 break;
22885 }
22886
22887 return this_type;
22888 }
22889
22890 /* See if we can figure out if the class lives in a namespace. We do
22891 this by looking for a member function; its demangled name will
22892 contain namespace info, if there is any.
22893 Return the computed name or NULL.
22894 Space for the result is allocated on the objfile's obstack.
22895 This is the full-die version of guess_partial_die_structure_name.
22896 In this case we know DIE has no useful parent. */
22897
22898 static const char *
22899 guess_full_die_structure_name (struct die_info *die, struct dwarf2_cu *cu)
22900 {
22901 struct die_info *spec_die;
22902 struct dwarf2_cu *spec_cu;
22903 struct die_info *child;
22904 struct objfile *objfile = cu->per_objfile->objfile;
22905
22906 spec_cu = cu;
22907 spec_die = die_specification (die, &spec_cu);
22908 if (spec_die != NULL)
22909 {
22910 die = spec_die;
22911 cu = spec_cu;
22912 }
22913
22914 for (child = die->child;
22915 child != NULL;
22916 child = child->sibling)
22917 {
22918 if (child->tag == DW_TAG_subprogram)
22919 {
22920 const char *linkage_name = dw2_linkage_name (child, cu);
22921
22922 if (linkage_name != NULL)
22923 {
22924 gdb::unique_xmalloc_ptr<char> actual_name
22925 (cu->language_defn->class_name_from_physname (linkage_name));
22926 const char *name = NULL;
22927
22928 if (actual_name != NULL)
22929 {
22930 const char *die_name = dwarf2_name (die, cu);
22931
22932 if (die_name != NULL
22933 && strcmp (die_name, actual_name.get ()) != 0)
22934 {
22935 /* Strip off the class name from the full name.
22936 We want the prefix. */
22937 int die_name_len = strlen (die_name);
22938 int actual_name_len = strlen (actual_name.get ());
22939 const char *ptr = actual_name.get ();
22940
22941 /* Test for '::' as a sanity check. */
22942 if (actual_name_len > die_name_len + 2
22943 && ptr[actual_name_len - die_name_len - 1] == ':')
22944 name = obstack_strndup (
22945 &objfile->per_bfd->storage_obstack,
22946 ptr, actual_name_len - die_name_len - 2);
22947 }
22948 }
22949 return name;
22950 }
22951 }
22952 }
22953
22954 return NULL;
22955 }
22956
22957 /* GCC might emit a nameless typedef that has a linkage name. Determine the
22958 prefix part in such case. See
22959 http://gcc.gnu.org/bugzilla/show_bug.cgi?id=47510. */
22960
22961 static const char *
22962 anonymous_struct_prefix (struct die_info *die, struct dwarf2_cu *cu)
22963 {
22964 struct attribute *attr;
22965 const char *base;
22966
22967 if (die->tag != DW_TAG_class_type && die->tag != DW_TAG_interface_type
22968 && die->tag != DW_TAG_structure_type && die->tag != DW_TAG_union_type)
22969 return NULL;
22970
22971 if (dwarf2_string_attr (die, DW_AT_name, cu) != NULL)
22972 return NULL;
22973
22974 attr = dw2_linkage_name_attr (die, cu);
22975 const char *attr_name = attr->as_string ();
22976 if (attr == NULL || attr_name == NULL)
22977 return NULL;
22978
22979 /* dwarf2_name had to be already called. */
22980 gdb_assert (attr->canonical_string_p ());
22981
22982 /* Strip the base name, keep any leading namespaces/classes. */
22983 base = strrchr (attr_name, ':');
22984 if (base == NULL || base == attr_name || base[-1] != ':')
22985 return "";
22986
22987 struct objfile *objfile = cu->per_objfile->objfile;
22988 return obstack_strndup (&objfile->per_bfd->storage_obstack,
22989 attr_name,
22990 &base[-1] - attr_name);
22991 }
22992
22993 /* Return the name of the namespace/class that DIE is defined within,
22994 or "" if we can't tell. The caller should not xfree the result.
22995
22996 For example, if we're within the method foo() in the following
22997 code:
22998
22999 namespace N {
23000 class C {
23001 void foo () {
23002 }
23003 };
23004 }
23005
23006 then determine_prefix on foo's die will return "N::C". */
23007
23008 static const char *
23009 determine_prefix (struct die_info *die, struct dwarf2_cu *cu)
23010 {
23011 dwarf2_per_objfile *per_objfile = cu->per_objfile;
23012 struct die_info *parent, *spec_die;
23013 struct dwarf2_cu *spec_cu;
23014 struct type *parent_type;
23015 const char *retval;
23016
23017 if (cu->language != language_cplus
23018 && cu->language != language_fortran && cu->language != language_d
23019 && cu->language != language_rust)
23020 return "";
23021
23022 retval = anonymous_struct_prefix (die, cu);
23023 if (retval)
23024 return retval;
23025
23026 /* We have to be careful in the presence of DW_AT_specification.
23027 For example, with GCC 3.4, given the code
23028
23029 namespace N {
23030 void foo() {
23031 // Definition of N::foo.
23032 }
23033 }
23034
23035 then we'll have a tree of DIEs like this:
23036
23037 1: DW_TAG_compile_unit
23038 2: DW_TAG_namespace // N
23039 3: DW_TAG_subprogram // declaration of N::foo
23040 4: DW_TAG_subprogram // definition of N::foo
23041 DW_AT_specification // refers to die #3
23042
23043 Thus, when processing die #4, we have to pretend that we're in
23044 the context of its DW_AT_specification, namely the contex of die
23045 #3. */
23046 spec_cu = cu;
23047 spec_die = die_specification (die, &spec_cu);
23048 if (spec_die == NULL)
23049 parent = die->parent;
23050 else
23051 {
23052 parent = spec_die->parent;
23053 cu = spec_cu;
23054 }
23055
23056 if (parent == NULL)
23057 return "";
23058 else if (parent->building_fullname)
23059 {
23060 const char *name;
23061 const char *parent_name;
23062
23063 /* It has been seen on RealView 2.2 built binaries,
23064 DW_TAG_template_type_param types actually _defined_ as
23065 children of the parent class:
23066
23067 enum E {};
23068 template class <class Enum> Class{};
23069 Class<enum E> class_e;
23070
23071 1: DW_TAG_class_type (Class)
23072 2: DW_TAG_enumeration_type (E)
23073 3: DW_TAG_enumerator (enum1:0)
23074 3: DW_TAG_enumerator (enum2:1)
23075 ...
23076 2: DW_TAG_template_type_param
23077 DW_AT_type DW_FORM_ref_udata (E)
23078
23079 Besides being broken debug info, it can put GDB into an
23080 infinite loop. Consider:
23081
23082 When we're building the full name for Class<E>, we'll start
23083 at Class, and go look over its template type parameters,
23084 finding E. We'll then try to build the full name of E, and
23085 reach here. We're now trying to build the full name of E,
23086 and look over the parent DIE for containing scope. In the
23087 broken case, if we followed the parent DIE of E, we'd again
23088 find Class, and once again go look at its template type
23089 arguments, etc., etc. Simply don't consider such parent die
23090 as source-level parent of this die (it can't be, the language
23091 doesn't allow it), and break the loop here. */
23092 name = dwarf2_name (die, cu);
23093 parent_name = dwarf2_name (parent, cu);
23094 complaint (_("template param type '%s' defined within parent '%s'"),
23095 name ? name : "<unknown>",
23096 parent_name ? parent_name : "<unknown>");
23097 return "";
23098 }
23099 else
23100 switch (parent->tag)
23101 {
23102 case DW_TAG_namespace:
23103 parent_type = read_type_die (parent, cu);
23104 /* GCC 4.0 and 4.1 had a bug (PR c++/28460) where they generated bogus
23105 DW_TAG_namespace DIEs with a name of "::" for the global namespace.
23106 Work around this problem here. */
23107 if (cu->language == language_cplus
23108 && strcmp (parent_type->name (), "::") == 0)
23109 return "";
23110 /* We give a name to even anonymous namespaces. */
23111 return parent_type->name ();
23112 case DW_TAG_class_type:
23113 case DW_TAG_interface_type:
23114 case DW_TAG_structure_type:
23115 case DW_TAG_union_type:
23116 case DW_TAG_module:
23117 parent_type = read_type_die (parent, cu);
23118 if (parent_type->name () != NULL)
23119 return parent_type->name ();
23120 else
23121 /* An anonymous structure is only allowed non-static data
23122 members; no typedefs, no member functions, et cetera.
23123 So it does not need a prefix. */
23124 return "";
23125 case DW_TAG_compile_unit:
23126 case DW_TAG_partial_unit:
23127 /* gcc-4.5 -gdwarf-4 can drop the enclosing namespace. Cope. */
23128 if (cu->language == language_cplus
23129 && !per_objfile->per_bfd->types.empty ()
23130 && die->child != NULL
23131 && (die->tag == DW_TAG_class_type
23132 || die->tag == DW_TAG_structure_type
23133 || die->tag == DW_TAG_union_type))
23134 {
23135 const char *name = guess_full_die_structure_name (die, cu);
23136 if (name != NULL)
23137 return name;
23138 }
23139 return "";
23140 case DW_TAG_subprogram:
23141 /* Nested subroutines in Fortran get a prefix with the name
23142 of the parent's subroutine. */
23143 if (cu->language == language_fortran)
23144 {
23145 if ((die->tag == DW_TAG_subprogram)
23146 && (dwarf2_name (parent, cu) != NULL))
23147 return dwarf2_name (parent, cu);
23148 }
23149 return determine_prefix (parent, cu);
23150 case DW_TAG_enumeration_type:
23151 parent_type = read_type_die (parent, cu);
23152 if (TYPE_DECLARED_CLASS (parent_type))
23153 {
23154 if (parent_type->name () != NULL)
23155 return parent_type->name ();
23156 return "";
23157 }
23158 /* Fall through. */
23159 default:
23160 return determine_prefix (parent, cu);
23161 }
23162 }
23163
23164 /* Return a newly-allocated string formed by concatenating PREFIX and SUFFIX
23165 with appropriate separator. If PREFIX or SUFFIX is NULL or empty, then
23166 simply copy the SUFFIX or PREFIX, respectively. If OBS is non-null, perform
23167 an obconcat, otherwise allocate storage for the result. The CU argument is
23168 used to determine the language and hence, the appropriate separator. */
23169
23170 #define MAX_SEP_LEN 7 /* strlen ("__") + strlen ("_MOD_") */
23171
23172 static char *
23173 typename_concat (struct obstack *obs, const char *prefix, const char *suffix,
23174 int physname, struct dwarf2_cu *cu)
23175 {
23176 const char *lead = "";
23177 const char *sep;
23178
23179 if (suffix == NULL || suffix[0] == '\0'
23180 || prefix == NULL || prefix[0] == '\0')
23181 sep = "";
23182 else if (cu->language == language_d)
23183 {
23184 /* For D, the 'main' function could be defined in any module, but it
23185 should never be prefixed. */
23186 if (strcmp (suffix, "D main") == 0)
23187 {
23188 prefix = "";
23189 sep = "";
23190 }
23191 else
23192 sep = ".";
23193 }
23194 else if (cu->language == language_fortran && physname)
23195 {
23196 /* This is gfortran specific mangling. Normally DW_AT_linkage_name or
23197 DW_AT_MIPS_linkage_name is preferred and used instead. */
23198
23199 lead = "__";
23200 sep = "_MOD_";
23201 }
23202 else
23203 sep = "::";
23204
23205 if (prefix == NULL)
23206 prefix = "";
23207 if (suffix == NULL)
23208 suffix = "";
23209
23210 if (obs == NULL)
23211 {
23212 char *retval
23213 = ((char *)
23214 xmalloc (strlen (prefix) + MAX_SEP_LEN + strlen (suffix) + 1));
23215
23216 strcpy (retval, lead);
23217 strcat (retval, prefix);
23218 strcat (retval, sep);
23219 strcat (retval, suffix);
23220 return retval;
23221 }
23222 else
23223 {
23224 /* We have an obstack. */
23225 return obconcat (obs, lead, prefix, sep, suffix, (char *) NULL);
23226 }
23227 }
23228
23229 /* Get name of a die, return NULL if not found. */
23230
23231 static const char *
23232 dwarf2_canonicalize_name (const char *name, struct dwarf2_cu *cu,
23233 struct objfile *objfile)
23234 {
23235 if (name && cu->language == language_cplus)
23236 {
23237 gdb::unique_xmalloc_ptr<char> canon_name
23238 = cp_canonicalize_string (name);
23239
23240 if (canon_name != nullptr)
23241 name = objfile->intern (canon_name.get ());
23242 }
23243
23244 return name;
23245 }
23246
23247 /* Get name of a die, return NULL if not found.
23248 Anonymous namespaces are converted to their magic string. */
23249
23250 static const char *
23251 dwarf2_name (struct die_info *die, struct dwarf2_cu *cu)
23252 {
23253 struct attribute *attr;
23254 struct objfile *objfile = cu->per_objfile->objfile;
23255
23256 attr = dwarf2_attr (die, DW_AT_name, cu);
23257 const char *attr_name = attr == nullptr ? nullptr : attr->as_string ();
23258 if (attr_name == nullptr
23259 && die->tag != DW_TAG_namespace
23260 && die->tag != DW_TAG_class_type
23261 && die->tag != DW_TAG_interface_type
23262 && die->tag != DW_TAG_structure_type
23263 && die->tag != DW_TAG_union_type)
23264 return NULL;
23265
23266 switch (die->tag)
23267 {
23268 case DW_TAG_compile_unit:
23269 case DW_TAG_partial_unit:
23270 /* Compilation units have a DW_AT_name that is a filename, not
23271 a source language identifier. */
23272 case DW_TAG_enumeration_type:
23273 case DW_TAG_enumerator:
23274 /* These tags always have simple identifiers already; no need
23275 to canonicalize them. */
23276 return attr_name;
23277
23278 case DW_TAG_namespace:
23279 if (attr_name != nullptr)
23280 return attr_name;
23281 return CP_ANONYMOUS_NAMESPACE_STR;
23282
23283 case DW_TAG_class_type:
23284 case DW_TAG_interface_type:
23285 case DW_TAG_structure_type:
23286 case DW_TAG_union_type:
23287 /* Some GCC versions emit spurious DW_AT_name attributes for unnamed
23288 structures or unions. These were of the form "._%d" in GCC 4.1,
23289 or simply "<anonymous struct>" or "<anonymous union>" in GCC 4.3
23290 and GCC 4.4. We work around this problem by ignoring these. */
23291 if (attr_name != nullptr
23292 && (startswith (attr_name, "._")
23293 || startswith (attr_name, "<anonymous")))
23294 return NULL;
23295
23296 /* GCC might emit a nameless typedef that has a linkage name. See
23297 http://gcc.gnu.org/bugzilla/show_bug.cgi?id=47510. */
23298 if (!attr || attr_name == NULL)
23299 {
23300 attr = dw2_linkage_name_attr (die, cu);
23301 attr_name = attr == nullptr ? nullptr : attr->as_string ();
23302 if (attr == NULL || attr_name == NULL)
23303 return NULL;
23304
23305 /* Avoid demangling attr_name the second time on a second
23306 call for the same DIE. */
23307 if (!attr->canonical_string_p ())
23308 {
23309 gdb::unique_xmalloc_ptr<char> demangled
23310 (gdb_demangle (attr_name, DMGL_TYPES));
23311 if (demangled == nullptr)
23312 return nullptr;
23313
23314 attr->set_string_canonical (objfile->intern (demangled.get ()));
23315 attr_name = attr->as_string ();
23316 }
23317
23318 /* Strip any leading namespaces/classes, keep only the
23319 base name. DW_AT_name for named DIEs does not
23320 contain the prefixes. */
23321 const char *base = strrchr (attr_name, ':');
23322 if (base && base > attr_name && base[-1] == ':')
23323 return &base[1];
23324 else
23325 return attr_name;
23326 }
23327 break;
23328
23329 default:
23330 break;
23331 }
23332
23333 if (!attr->canonical_string_p ())
23334 attr->set_string_canonical (dwarf2_canonicalize_name (attr_name, cu,
23335 objfile));
23336 return attr->as_string ();
23337 }
23338
23339 /* Return the die that this die in an extension of, or NULL if there
23340 is none. *EXT_CU is the CU containing DIE on input, and the CU
23341 containing the return value on output. */
23342
23343 static struct die_info *
23344 dwarf2_extension (struct die_info *die, struct dwarf2_cu **ext_cu)
23345 {
23346 struct attribute *attr;
23347
23348 attr = dwarf2_attr (die, DW_AT_extension, *ext_cu);
23349 if (attr == NULL)
23350 return NULL;
23351
23352 return follow_die_ref (die, attr, ext_cu);
23353 }
23354
23355 static void
23356 dump_die_shallow (struct ui_file *f, int indent, struct die_info *die)
23357 {
23358 unsigned int i;
23359
23360 print_spaces (indent, f);
23361 fprintf_unfiltered (f, "Die: %s (abbrev %d, offset %s)\n",
23362 dwarf_tag_name (die->tag), die->abbrev,
23363 sect_offset_str (die->sect_off));
23364
23365 if (die->parent != NULL)
23366 {
23367 print_spaces (indent, f);
23368 fprintf_unfiltered (f, " parent at offset: %s\n",
23369 sect_offset_str (die->parent->sect_off));
23370 }
23371
23372 print_spaces (indent, f);
23373 fprintf_unfiltered (f, " has children: %s\n",
23374 dwarf_bool_name (die->child != NULL));
23375
23376 print_spaces (indent, f);
23377 fprintf_unfiltered (f, " attributes:\n");
23378
23379 for (i = 0; i < die->num_attrs; ++i)
23380 {
23381 print_spaces (indent, f);
23382 fprintf_unfiltered (f, " %s (%s) ",
23383 dwarf_attr_name (die->attrs[i].name),
23384 dwarf_form_name (die->attrs[i].form));
23385
23386 switch (die->attrs[i].form)
23387 {
23388 case DW_FORM_addr:
23389 case DW_FORM_addrx:
23390 case DW_FORM_GNU_addr_index:
23391 fprintf_unfiltered (f, "address: ");
23392 fputs_filtered (hex_string (die->attrs[i].as_address ()), f);
23393 break;
23394 case DW_FORM_block2:
23395 case DW_FORM_block4:
23396 case DW_FORM_block:
23397 case DW_FORM_block1:
23398 fprintf_unfiltered (f, "block: size %s",
23399 pulongest (die->attrs[i].as_block ()->size));
23400 break;
23401 case DW_FORM_exprloc:
23402 fprintf_unfiltered (f, "expression: size %s",
23403 pulongest (die->attrs[i].as_block ()->size));
23404 break;
23405 case DW_FORM_data16:
23406 fprintf_unfiltered (f, "constant of 16 bytes");
23407 break;
23408 case DW_FORM_ref_addr:
23409 fprintf_unfiltered (f, "ref address: ");
23410 fputs_filtered (hex_string (die->attrs[i].as_unsigned ()), f);
23411 break;
23412 case DW_FORM_GNU_ref_alt:
23413 fprintf_unfiltered (f, "alt ref address: ");
23414 fputs_filtered (hex_string (die->attrs[i].as_unsigned ()), f);
23415 break;
23416 case DW_FORM_ref1:
23417 case DW_FORM_ref2:
23418 case DW_FORM_ref4:
23419 case DW_FORM_ref8:
23420 case DW_FORM_ref_udata:
23421 fprintf_unfiltered (f, "constant ref: 0x%lx (adjusted)",
23422 (long) (die->attrs[i].as_unsigned ()));
23423 break;
23424 case DW_FORM_data1:
23425 case DW_FORM_data2:
23426 case DW_FORM_data4:
23427 case DW_FORM_data8:
23428 case DW_FORM_udata:
23429 fprintf_unfiltered (f, "constant: %s",
23430 pulongest (die->attrs[i].as_unsigned ()));
23431 break;
23432 case DW_FORM_sec_offset:
23433 fprintf_unfiltered (f, "section offset: %s",
23434 pulongest (die->attrs[i].as_unsigned ()));
23435 break;
23436 case DW_FORM_ref_sig8:
23437 fprintf_unfiltered (f, "signature: %s",
23438 hex_string (die->attrs[i].as_signature ()));
23439 break;
23440 case DW_FORM_string:
23441 case DW_FORM_strp:
23442 case DW_FORM_line_strp:
23443 case DW_FORM_strx:
23444 case DW_FORM_GNU_str_index:
23445 case DW_FORM_GNU_strp_alt:
23446 fprintf_unfiltered (f, "string: \"%s\" (%s canonicalized)",
23447 die->attrs[i].as_string ()
23448 ? die->attrs[i].as_string () : "",
23449 die->attrs[i].canonical_string_p () ? "is" : "not");
23450 break;
23451 case DW_FORM_flag:
23452 if (die->attrs[i].as_boolean ())
23453 fprintf_unfiltered (f, "flag: TRUE");
23454 else
23455 fprintf_unfiltered (f, "flag: FALSE");
23456 break;
23457 case DW_FORM_flag_present:
23458 fprintf_unfiltered (f, "flag: TRUE");
23459 break;
23460 case DW_FORM_indirect:
23461 /* The reader will have reduced the indirect form to
23462 the "base form" so this form should not occur. */
23463 fprintf_unfiltered (f,
23464 "unexpected attribute form: DW_FORM_indirect");
23465 break;
23466 case DW_FORM_sdata:
23467 case DW_FORM_implicit_const:
23468 fprintf_unfiltered (f, "constant: %s",
23469 plongest (die->attrs[i].as_signed ()));
23470 break;
23471 default:
23472 fprintf_unfiltered (f, "unsupported attribute form: %d.",
23473 die->attrs[i].form);
23474 break;
23475 }
23476 fprintf_unfiltered (f, "\n");
23477 }
23478 }
23479
23480 static void
23481 dump_die_for_error (struct die_info *die)
23482 {
23483 dump_die_shallow (gdb_stderr, 0, die);
23484 }
23485
23486 static void
23487 dump_die_1 (struct ui_file *f, int level, int max_level, struct die_info *die)
23488 {
23489 int indent = level * 4;
23490
23491 gdb_assert (die != NULL);
23492
23493 if (level >= max_level)
23494 return;
23495
23496 dump_die_shallow (f, indent, die);
23497
23498 if (die->child != NULL)
23499 {
23500 print_spaces (indent, f);
23501 fprintf_unfiltered (f, " Children:");
23502 if (level + 1 < max_level)
23503 {
23504 fprintf_unfiltered (f, "\n");
23505 dump_die_1 (f, level + 1, max_level, die->child);
23506 }
23507 else
23508 {
23509 fprintf_unfiltered (f,
23510 " [not printed, max nesting level reached]\n");
23511 }
23512 }
23513
23514 if (die->sibling != NULL && level > 0)
23515 {
23516 dump_die_1 (f, level, max_level, die->sibling);
23517 }
23518 }
23519
23520 /* This is called from the pdie macro in gdbinit.in.
23521 It's not static so gcc will keep a copy callable from gdb. */
23522
23523 void
23524 dump_die (struct die_info *die, int max_level)
23525 {
23526 dump_die_1 (gdb_stdlog, 0, max_level, die);
23527 }
23528
23529 static void
23530 store_in_ref_table (struct die_info *die, struct dwarf2_cu *cu)
23531 {
23532 void **slot;
23533
23534 slot = htab_find_slot_with_hash (cu->die_hash, die,
23535 to_underlying (die->sect_off),
23536 INSERT);
23537
23538 *slot = die;
23539 }
23540
23541 /* Follow reference or signature attribute ATTR of SRC_DIE.
23542 On entry *REF_CU is the CU of SRC_DIE.
23543 On exit *REF_CU is the CU of the result. */
23544
23545 static struct die_info *
23546 follow_die_ref_or_sig (struct die_info *src_die, const struct attribute *attr,
23547 struct dwarf2_cu **ref_cu)
23548 {
23549 struct die_info *die;
23550
23551 if (attr->form_is_ref ())
23552 die = follow_die_ref (src_die, attr, ref_cu);
23553 else if (attr->form == DW_FORM_ref_sig8)
23554 die = follow_die_sig (src_die, attr, ref_cu);
23555 else
23556 {
23557 dump_die_for_error (src_die);
23558 error (_("Dwarf Error: Expected reference attribute [in module %s]"),
23559 objfile_name ((*ref_cu)->per_objfile->objfile));
23560 }
23561
23562 return die;
23563 }
23564
23565 /* Follow reference OFFSET.
23566 On entry *REF_CU is the CU of the source die referencing OFFSET.
23567 On exit *REF_CU is the CU of the result.
23568 Returns NULL if OFFSET is invalid. */
23569
23570 static struct die_info *
23571 follow_die_offset (sect_offset sect_off, int offset_in_dwz,
23572 struct dwarf2_cu **ref_cu)
23573 {
23574 struct die_info temp_die;
23575 struct dwarf2_cu *target_cu, *cu = *ref_cu;
23576 dwarf2_per_objfile *per_objfile = cu->per_objfile;
23577
23578 gdb_assert (cu->per_cu != NULL);
23579
23580 target_cu = cu;
23581
23582 dwarf_read_debug_printf_v ("source CU offset: %s, target offset: %s, "
23583 "source CU contains target offset: %d",
23584 sect_offset_str (cu->per_cu->sect_off),
23585 sect_offset_str (sect_off),
23586 cu->header.offset_in_cu_p (sect_off));
23587
23588 if (cu->per_cu->is_debug_types)
23589 {
23590 /* .debug_types CUs cannot reference anything outside their CU.
23591 If they need to, they have to reference a signatured type via
23592 DW_FORM_ref_sig8. */
23593 if (!cu->header.offset_in_cu_p (sect_off))
23594 return NULL;
23595 }
23596 else if (offset_in_dwz != cu->per_cu->is_dwz
23597 || !cu->header.offset_in_cu_p (sect_off))
23598 {
23599 struct dwarf2_per_cu_data *per_cu;
23600
23601 per_cu = dwarf2_find_containing_comp_unit (sect_off, offset_in_dwz,
23602 per_objfile);
23603
23604 dwarf_read_debug_printf_v ("target CU offset: %s, "
23605 "target CU DIEs loaded: %d",
23606 sect_offset_str (per_cu->sect_off),
23607 per_objfile->get_cu (per_cu) != nullptr);
23608
23609 /* If necessary, add it to the queue and load its DIEs. */
23610 if (maybe_queue_comp_unit (cu, per_cu, per_objfile, cu->language))
23611 load_full_comp_unit (per_cu, per_objfile, per_objfile->get_cu (per_cu),
23612 false, cu->language);
23613
23614 target_cu = per_objfile->get_cu (per_cu);
23615 }
23616 else if (cu->dies == NULL)
23617 {
23618 /* We're loading full DIEs during partial symbol reading. */
23619 gdb_assert (per_objfile->per_bfd->reading_partial_symbols);
23620 load_full_comp_unit (cu->per_cu, per_objfile, cu, false,
23621 language_minimal);
23622 }
23623
23624 *ref_cu = target_cu;
23625 temp_die.sect_off = sect_off;
23626
23627 if (target_cu != cu)
23628 target_cu->ancestor = cu;
23629
23630 return (struct die_info *) htab_find_with_hash (target_cu->die_hash,
23631 &temp_die,
23632 to_underlying (sect_off));
23633 }
23634
23635 /* Follow reference attribute ATTR of SRC_DIE.
23636 On entry *REF_CU is the CU of SRC_DIE.
23637 On exit *REF_CU is the CU of the result. */
23638
23639 static struct die_info *
23640 follow_die_ref (struct die_info *src_die, const struct attribute *attr,
23641 struct dwarf2_cu **ref_cu)
23642 {
23643 sect_offset sect_off = attr->get_ref_die_offset ();
23644 struct dwarf2_cu *cu = *ref_cu;
23645 struct die_info *die;
23646
23647 die = follow_die_offset (sect_off,
23648 (attr->form == DW_FORM_GNU_ref_alt
23649 || cu->per_cu->is_dwz),
23650 ref_cu);
23651 if (!die)
23652 error (_("Dwarf Error: Cannot find DIE at %s referenced from DIE "
23653 "at %s [in module %s]"),
23654 sect_offset_str (sect_off), sect_offset_str (src_die->sect_off),
23655 objfile_name (cu->per_objfile->objfile));
23656
23657 return die;
23658 }
23659
23660 /* See read.h. */
23661
23662 struct dwarf2_locexpr_baton
23663 dwarf2_fetch_die_loc_sect_off (sect_offset sect_off,
23664 dwarf2_per_cu_data *per_cu,
23665 dwarf2_per_objfile *per_objfile,
23666 gdb::function_view<CORE_ADDR ()> get_frame_pc,
23667 bool resolve_abstract_p)
23668 {
23669 struct die_info *die;
23670 struct attribute *attr;
23671 struct dwarf2_locexpr_baton retval;
23672 struct objfile *objfile = per_objfile->objfile;
23673
23674 dwarf2_cu *cu = per_objfile->get_cu (per_cu);
23675 if (cu == nullptr)
23676 cu = load_cu (per_cu, per_objfile, false);
23677
23678 if (cu == nullptr)
23679 {
23680 /* We shouldn't get here for a dummy CU, but don't crash on the user.
23681 Instead just throw an error, not much else we can do. */
23682 error (_("Dwarf Error: Dummy CU at %s referenced in module %s"),
23683 sect_offset_str (sect_off), objfile_name (objfile));
23684 }
23685
23686 die = follow_die_offset (sect_off, per_cu->is_dwz, &cu);
23687 if (!die)
23688 error (_("Dwarf Error: Cannot find DIE at %s referenced in module %s"),
23689 sect_offset_str (sect_off), objfile_name (objfile));
23690
23691 attr = dwarf2_attr (die, DW_AT_location, cu);
23692 if (!attr && resolve_abstract_p
23693 && (per_objfile->per_bfd->abstract_to_concrete.find (die->sect_off)
23694 != per_objfile->per_bfd->abstract_to_concrete.end ()))
23695 {
23696 CORE_ADDR pc = get_frame_pc ();
23697 CORE_ADDR baseaddr = objfile->text_section_offset ();
23698 struct gdbarch *gdbarch = objfile->arch ();
23699
23700 for (const auto &cand_off
23701 : per_objfile->per_bfd->abstract_to_concrete[die->sect_off])
23702 {
23703 struct dwarf2_cu *cand_cu = cu;
23704 struct die_info *cand
23705 = follow_die_offset (cand_off, per_cu->is_dwz, &cand_cu);
23706 if (!cand
23707 || !cand->parent
23708 || cand->parent->tag != DW_TAG_subprogram)
23709 continue;
23710
23711 CORE_ADDR pc_low, pc_high;
23712 get_scope_pc_bounds (cand->parent, &pc_low, &pc_high, cu);
23713 if (pc_low == ((CORE_ADDR) -1))
23714 continue;
23715 pc_low = gdbarch_adjust_dwarf2_addr (gdbarch, pc_low + baseaddr);
23716 pc_high = gdbarch_adjust_dwarf2_addr (gdbarch, pc_high + baseaddr);
23717 if (!(pc_low <= pc && pc < pc_high))
23718 continue;
23719
23720 die = cand;
23721 attr = dwarf2_attr (die, DW_AT_location, cu);
23722 break;
23723 }
23724 }
23725
23726 if (!attr)
23727 {
23728 /* DWARF: "If there is no such attribute, then there is no effect.".
23729 DATA is ignored if SIZE is 0. */
23730
23731 retval.data = NULL;
23732 retval.size = 0;
23733 }
23734 else if (attr->form_is_section_offset ())
23735 {
23736 struct dwarf2_loclist_baton loclist_baton;
23737 CORE_ADDR pc = get_frame_pc ();
23738 size_t size;
23739
23740 fill_in_loclist_baton (cu, &loclist_baton, attr);
23741
23742 retval.data = dwarf2_find_location_expression (&loclist_baton,
23743 &size, pc);
23744 retval.size = size;
23745 }
23746 else
23747 {
23748 if (!attr->form_is_block ())
23749 error (_("Dwarf Error: DIE at %s referenced in module %s "
23750 "is neither DW_FORM_block* nor DW_FORM_exprloc"),
23751 sect_offset_str (sect_off), objfile_name (objfile));
23752
23753 struct dwarf_block *block = attr->as_block ();
23754 retval.data = block->data;
23755 retval.size = block->size;
23756 }
23757 retval.per_objfile = per_objfile;
23758 retval.per_cu = cu->per_cu;
23759
23760 per_objfile->age_comp_units ();
23761
23762 return retval;
23763 }
23764
23765 /* See read.h. */
23766
23767 struct dwarf2_locexpr_baton
23768 dwarf2_fetch_die_loc_cu_off (cu_offset offset_in_cu,
23769 dwarf2_per_cu_data *per_cu,
23770 dwarf2_per_objfile *per_objfile,
23771 gdb::function_view<CORE_ADDR ()> get_frame_pc)
23772 {
23773 sect_offset sect_off = per_cu->sect_off + to_underlying (offset_in_cu);
23774
23775 return dwarf2_fetch_die_loc_sect_off (sect_off, per_cu, per_objfile,
23776 get_frame_pc);
23777 }
23778
23779 /* Write a constant of a given type as target-ordered bytes into
23780 OBSTACK. */
23781
23782 static const gdb_byte *
23783 write_constant_as_bytes (struct obstack *obstack,
23784 enum bfd_endian byte_order,
23785 struct type *type,
23786 ULONGEST value,
23787 LONGEST *len)
23788 {
23789 gdb_byte *result;
23790
23791 *len = TYPE_LENGTH (type);
23792 result = (gdb_byte *) obstack_alloc (obstack, *len);
23793 store_unsigned_integer (result, *len, byte_order, value);
23794
23795 return result;
23796 }
23797
23798 /* See read.h. */
23799
23800 const gdb_byte *
23801 dwarf2_fetch_constant_bytes (sect_offset sect_off,
23802 dwarf2_per_cu_data *per_cu,
23803 dwarf2_per_objfile *per_objfile,
23804 obstack *obstack,
23805 LONGEST *len)
23806 {
23807 struct die_info *die;
23808 struct attribute *attr;
23809 const gdb_byte *result = NULL;
23810 struct type *type;
23811 LONGEST value;
23812 enum bfd_endian byte_order;
23813 struct objfile *objfile = per_objfile->objfile;
23814
23815 dwarf2_cu *cu = per_objfile->get_cu (per_cu);
23816 if (cu == nullptr)
23817 cu = load_cu (per_cu, per_objfile, false);
23818
23819 if (cu == nullptr)
23820 {
23821 /* We shouldn't get here for a dummy CU, but don't crash on the user.
23822 Instead just throw an error, not much else we can do. */
23823 error (_("Dwarf Error: Dummy CU at %s referenced in module %s"),
23824 sect_offset_str (sect_off), objfile_name (objfile));
23825 }
23826
23827 die = follow_die_offset (sect_off, per_cu->is_dwz, &cu);
23828 if (!die)
23829 error (_("Dwarf Error: Cannot find DIE at %s referenced in module %s"),
23830 sect_offset_str (sect_off), objfile_name (objfile));
23831
23832 attr = dwarf2_attr (die, DW_AT_const_value, cu);
23833 if (attr == NULL)
23834 return NULL;
23835
23836 byte_order = (bfd_big_endian (objfile->obfd)
23837 ? BFD_ENDIAN_BIG : BFD_ENDIAN_LITTLE);
23838
23839 switch (attr->form)
23840 {
23841 case DW_FORM_addr:
23842 case DW_FORM_addrx:
23843 case DW_FORM_GNU_addr_index:
23844 {
23845 gdb_byte *tem;
23846
23847 *len = cu->header.addr_size;
23848 tem = (gdb_byte *) obstack_alloc (obstack, *len);
23849 store_unsigned_integer (tem, *len, byte_order, attr->as_address ());
23850 result = tem;
23851 }
23852 break;
23853 case DW_FORM_string:
23854 case DW_FORM_strp:
23855 case DW_FORM_strx:
23856 case DW_FORM_GNU_str_index:
23857 case DW_FORM_GNU_strp_alt:
23858 /* The string is already allocated on the objfile obstack, point
23859 directly to it. */
23860 {
23861 const char *attr_name = attr->as_string ();
23862 result = (const gdb_byte *) attr_name;
23863 *len = strlen (attr_name);
23864 }
23865 break;
23866 case DW_FORM_block1:
23867 case DW_FORM_block2:
23868 case DW_FORM_block4:
23869 case DW_FORM_block:
23870 case DW_FORM_exprloc:
23871 case DW_FORM_data16:
23872 {
23873 struct dwarf_block *block = attr->as_block ();
23874 result = block->data;
23875 *len = block->size;
23876 }
23877 break;
23878
23879 /* The DW_AT_const_value attributes are supposed to carry the
23880 symbol's value "represented as it would be on the target
23881 architecture." By the time we get here, it's already been
23882 converted to host endianness, so we just need to sign- or
23883 zero-extend it as appropriate. */
23884 case DW_FORM_data1:
23885 type = die_type (die, cu);
23886 result = dwarf2_const_value_data (attr, obstack, cu, &value, 8);
23887 if (result == NULL)
23888 result = write_constant_as_bytes (obstack, byte_order,
23889 type, value, len);
23890 break;
23891 case DW_FORM_data2:
23892 type = die_type (die, cu);
23893 result = dwarf2_const_value_data (attr, obstack, cu, &value, 16);
23894 if (result == NULL)
23895 result = write_constant_as_bytes (obstack, byte_order,
23896 type, value, len);
23897 break;
23898 case DW_FORM_data4:
23899 type = die_type (die, cu);
23900 result = dwarf2_const_value_data (attr, obstack, cu, &value, 32);
23901 if (result == NULL)
23902 result = write_constant_as_bytes (obstack, byte_order,
23903 type, value, len);
23904 break;
23905 case DW_FORM_data8:
23906 type = die_type (die, cu);
23907 result = dwarf2_const_value_data (attr, obstack, cu, &value, 64);
23908 if (result == NULL)
23909 result = write_constant_as_bytes (obstack, byte_order,
23910 type, value, len);
23911 break;
23912
23913 case DW_FORM_sdata:
23914 case DW_FORM_implicit_const:
23915 type = die_type (die, cu);
23916 result = write_constant_as_bytes (obstack, byte_order,
23917 type, attr->as_signed (), len);
23918 break;
23919
23920 case DW_FORM_udata:
23921 type = die_type (die, cu);
23922 result = write_constant_as_bytes (obstack, byte_order,
23923 type, attr->as_unsigned (), len);
23924 break;
23925
23926 default:
23927 complaint (_("unsupported const value attribute form: '%s'"),
23928 dwarf_form_name (attr->form));
23929 break;
23930 }
23931
23932 return result;
23933 }
23934
23935 /* See read.h. */
23936
23937 struct type *
23938 dwarf2_fetch_die_type_sect_off (sect_offset sect_off,
23939 dwarf2_per_cu_data *per_cu,
23940 dwarf2_per_objfile *per_objfile)
23941 {
23942 struct die_info *die;
23943
23944 dwarf2_cu *cu = per_objfile->get_cu (per_cu);
23945 if (cu == nullptr)
23946 cu = load_cu (per_cu, per_objfile, false);
23947
23948 if (cu == nullptr)
23949 return nullptr;
23950
23951 die = follow_die_offset (sect_off, per_cu->is_dwz, &cu);
23952 if (!die)
23953 return NULL;
23954
23955 return die_type (die, cu);
23956 }
23957
23958 /* See read.h. */
23959
23960 struct type *
23961 dwarf2_get_die_type (cu_offset die_offset,
23962 dwarf2_per_cu_data *per_cu,
23963 dwarf2_per_objfile *per_objfile)
23964 {
23965 sect_offset die_offset_sect = per_cu->sect_off + to_underlying (die_offset);
23966 return get_die_type_at_offset (die_offset_sect, per_cu, per_objfile);
23967 }
23968
23969 /* Follow type unit SIG_TYPE referenced by SRC_DIE.
23970 On entry *REF_CU is the CU of SRC_DIE.
23971 On exit *REF_CU is the CU of the result.
23972 Returns NULL if the referenced DIE isn't found. */
23973
23974 static struct die_info *
23975 follow_die_sig_1 (struct die_info *src_die, struct signatured_type *sig_type,
23976 struct dwarf2_cu **ref_cu)
23977 {
23978 struct die_info temp_die;
23979 struct dwarf2_cu *sig_cu, *cu = *ref_cu;
23980 struct die_info *die;
23981 dwarf2_per_objfile *per_objfile = (*ref_cu)->per_objfile;
23982
23983
23984 /* While it might be nice to assert sig_type->type == NULL here,
23985 we can get here for DW_AT_imported_declaration where we need
23986 the DIE not the type. */
23987
23988 /* If necessary, add it to the queue and load its DIEs. */
23989
23990 if (maybe_queue_comp_unit (*ref_cu, &sig_type->per_cu, per_objfile,
23991 language_minimal))
23992 read_signatured_type (sig_type, per_objfile);
23993
23994 sig_cu = per_objfile->get_cu (&sig_type->per_cu);
23995 gdb_assert (sig_cu != NULL);
23996 gdb_assert (to_underlying (sig_type->type_offset_in_section) != 0);
23997 temp_die.sect_off = sig_type->type_offset_in_section;
23998 die = (struct die_info *) htab_find_with_hash (sig_cu->die_hash, &temp_die,
23999 to_underlying (temp_die.sect_off));
24000 if (die)
24001 {
24002 /* For .gdb_index version 7 keep track of included TUs.
24003 http://sourceware.org/bugzilla/show_bug.cgi?id=15021. */
24004 if (per_objfile->per_bfd->index_table != NULL
24005 && per_objfile->per_bfd->index_table->version <= 7)
24006 {
24007 (*ref_cu)->per_cu->imported_symtabs_push (sig_cu->per_cu);
24008 }
24009
24010 *ref_cu = sig_cu;
24011 if (sig_cu != cu)
24012 sig_cu->ancestor = cu;
24013
24014 return die;
24015 }
24016
24017 return NULL;
24018 }
24019
24020 /* Follow signatured type referenced by ATTR in SRC_DIE.
24021 On entry *REF_CU is the CU of SRC_DIE.
24022 On exit *REF_CU is the CU of the result.
24023 The result is the DIE of the type.
24024 If the referenced type cannot be found an error is thrown. */
24025
24026 static struct die_info *
24027 follow_die_sig (struct die_info *src_die, const struct attribute *attr,
24028 struct dwarf2_cu **ref_cu)
24029 {
24030 ULONGEST signature = attr->as_signature ();
24031 struct signatured_type *sig_type;
24032 struct die_info *die;
24033
24034 gdb_assert (attr->form == DW_FORM_ref_sig8);
24035
24036 sig_type = lookup_signatured_type (*ref_cu, signature);
24037 /* sig_type will be NULL if the signatured type is missing from
24038 the debug info. */
24039 if (sig_type == NULL)
24040 {
24041 error (_("Dwarf Error: Cannot find signatured DIE %s referenced"
24042 " from DIE at %s [in module %s]"),
24043 hex_string (signature), sect_offset_str (src_die->sect_off),
24044 objfile_name ((*ref_cu)->per_objfile->objfile));
24045 }
24046
24047 die = follow_die_sig_1 (src_die, sig_type, ref_cu);
24048 if (die == NULL)
24049 {
24050 dump_die_for_error (src_die);
24051 error (_("Dwarf Error: Problem reading signatured DIE %s referenced"
24052 " from DIE at %s [in module %s]"),
24053 hex_string (signature), sect_offset_str (src_die->sect_off),
24054 objfile_name ((*ref_cu)->per_objfile->objfile));
24055 }
24056
24057 return die;
24058 }
24059
24060 /* Get the type specified by SIGNATURE referenced in DIE/CU,
24061 reading in and processing the type unit if necessary. */
24062
24063 static struct type *
24064 get_signatured_type (struct die_info *die, ULONGEST signature,
24065 struct dwarf2_cu *cu)
24066 {
24067 dwarf2_per_objfile *per_objfile = cu->per_objfile;
24068 struct signatured_type *sig_type;
24069 struct dwarf2_cu *type_cu;
24070 struct die_info *type_die;
24071 struct type *type;
24072
24073 sig_type = lookup_signatured_type (cu, signature);
24074 /* sig_type will be NULL if the signatured type is missing from
24075 the debug info. */
24076 if (sig_type == NULL)
24077 {
24078 complaint (_("Dwarf Error: Cannot find signatured DIE %s referenced"
24079 " from DIE at %s [in module %s]"),
24080 hex_string (signature), sect_offset_str (die->sect_off),
24081 objfile_name (per_objfile->objfile));
24082 return build_error_marker_type (cu, die);
24083 }
24084
24085 /* If we already know the type we're done. */
24086 type = per_objfile->get_type_for_signatured_type (sig_type);
24087 if (type != nullptr)
24088 return type;
24089
24090 type_cu = cu;
24091 type_die = follow_die_sig_1 (die, sig_type, &type_cu);
24092 if (type_die != NULL)
24093 {
24094 /* N.B. We need to call get_die_type to ensure only one type for this DIE
24095 is created. This is important, for example, because for c++ classes
24096 we need TYPE_NAME set which is only done by new_symbol. Blech. */
24097 type = read_type_die (type_die, type_cu);
24098 if (type == NULL)
24099 {
24100 complaint (_("Dwarf Error: Cannot build signatured type %s"
24101 " referenced from DIE at %s [in module %s]"),
24102 hex_string (signature), sect_offset_str (die->sect_off),
24103 objfile_name (per_objfile->objfile));
24104 type = build_error_marker_type (cu, die);
24105 }
24106 }
24107 else
24108 {
24109 complaint (_("Dwarf Error: Problem reading signatured DIE %s referenced"
24110 " from DIE at %s [in module %s]"),
24111 hex_string (signature), sect_offset_str (die->sect_off),
24112 objfile_name (per_objfile->objfile));
24113 type = build_error_marker_type (cu, die);
24114 }
24115
24116 per_objfile->set_type_for_signatured_type (sig_type, type);
24117
24118 return type;
24119 }
24120
24121 /* Get the type specified by the DW_AT_signature ATTR in DIE/CU,
24122 reading in and processing the type unit if necessary. */
24123
24124 static struct type *
24125 get_DW_AT_signature_type (struct die_info *die, const struct attribute *attr,
24126 struct dwarf2_cu *cu) /* ARI: editCase function */
24127 {
24128 /* Yes, DW_AT_signature can use a non-ref_sig8 reference. */
24129 if (attr->form_is_ref ())
24130 {
24131 struct dwarf2_cu *type_cu = cu;
24132 struct die_info *type_die = follow_die_ref (die, attr, &type_cu);
24133
24134 return read_type_die (type_die, type_cu);
24135 }
24136 else if (attr->form == DW_FORM_ref_sig8)
24137 {
24138 return get_signatured_type (die, attr->as_signature (), cu);
24139 }
24140 else
24141 {
24142 dwarf2_per_objfile *per_objfile = cu->per_objfile;
24143
24144 complaint (_("Dwarf Error: DW_AT_signature has bad form %s in DIE"
24145 " at %s [in module %s]"),
24146 dwarf_form_name (attr->form), sect_offset_str (die->sect_off),
24147 objfile_name (per_objfile->objfile));
24148 return build_error_marker_type (cu, die);
24149 }
24150 }
24151
24152 /* Load the DIEs associated with type unit PER_CU into memory. */
24153
24154 static void
24155 load_full_type_unit (dwarf2_per_cu_data *per_cu,
24156 dwarf2_per_objfile *per_objfile)
24157 {
24158 struct signatured_type *sig_type;
24159
24160 /* Caller is responsible for ensuring type_unit_groups don't get here. */
24161 gdb_assert (! per_cu->type_unit_group_p ());
24162
24163 /* We have the per_cu, but we need the signatured_type.
24164 Fortunately this is an easy translation. */
24165 gdb_assert (per_cu->is_debug_types);
24166 sig_type = (struct signatured_type *) per_cu;
24167
24168 gdb_assert (per_objfile->get_cu (per_cu) == nullptr);
24169
24170 read_signatured_type (sig_type, per_objfile);
24171
24172 gdb_assert (per_objfile->get_cu (per_cu) != nullptr);
24173 }
24174
24175 /* Read in a signatured type and build its CU and DIEs.
24176 If the type is a stub for the real type in a DWO file,
24177 read in the real type from the DWO file as well. */
24178
24179 static void
24180 read_signatured_type (signatured_type *sig_type,
24181 dwarf2_per_objfile *per_objfile)
24182 {
24183 struct dwarf2_per_cu_data *per_cu = &sig_type->per_cu;
24184
24185 gdb_assert (per_cu->is_debug_types);
24186 gdb_assert (per_objfile->get_cu (per_cu) == nullptr);
24187
24188 cutu_reader reader (per_cu, per_objfile, nullptr, nullptr, false);
24189
24190 if (!reader.dummy_p)
24191 {
24192 struct dwarf2_cu *cu = reader.cu;
24193 const gdb_byte *info_ptr = reader.info_ptr;
24194
24195 gdb_assert (cu->die_hash == NULL);
24196 cu->die_hash =
24197 htab_create_alloc_ex (cu->header.length / 12,
24198 die_hash,
24199 die_eq,
24200 NULL,
24201 &cu->comp_unit_obstack,
24202 hashtab_obstack_allocate,
24203 dummy_obstack_deallocate);
24204
24205 if (reader.comp_unit_die->has_children)
24206 reader.comp_unit_die->child
24207 = read_die_and_siblings (&reader, info_ptr, &info_ptr,
24208 reader.comp_unit_die);
24209 cu->dies = reader.comp_unit_die;
24210 /* comp_unit_die is not stored in die_hash, no need. */
24211
24212 /* We try not to read any attributes in this function, because
24213 not all CUs needed for references have been loaded yet, and
24214 symbol table processing isn't initialized. But we have to
24215 set the CU language, or we won't be able to build types
24216 correctly. Similarly, if we do not read the producer, we can
24217 not apply producer-specific interpretation. */
24218 prepare_one_comp_unit (cu, cu->dies, language_minimal);
24219
24220 reader.keep ();
24221 }
24222
24223 sig_type->per_cu.tu_read = 1;
24224 }
24225
24226 /* Decode simple location descriptions.
24227 Given a pointer to a dwarf block that defines a location, compute
24228 the location and return the value. If COMPUTED is non-null, it is
24229 set to true to indicate that decoding was successful, and false
24230 otherwise. If COMPUTED is null, then this function may emit a
24231 complaint. */
24232
24233 static CORE_ADDR
24234 decode_locdesc (struct dwarf_block *blk, struct dwarf2_cu *cu, bool *computed)
24235 {
24236 struct objfile *objfile = cu->per_objfile->objfile;
24237 size_t i;
24238 size_t size = blk->size;
24239 const gdb_byte *data = blk->data;
24240 CORE_ADDR stack[64];
24241 int stacki;
24242 unsigned int bytes_read, unsnd;
24243 gdb_byte op;
24244
24245 if (computed != nullptr)
24246 *computed = false;
24247
24248 i = 0;
24249 stacki = 0;
24250 stack[stacki] = 0;
24251 stack[++stacki] = 0;
24252
24253 while (i < size)
24254 {
24255 op = data[i++];
24256 switch (op)
24257 {
24258 case DW_OP_lit0:
24259 case DW_OP_lit1:
24260 case DW_OP_lit2:
24261 case DW_OP_lit3:
24262 case DW_OP_lit4:
24263 case DW_OP_lit5:
24264 case DW_OP_lit6:
24265 case DW_OP_lit7:
24266 case DW_OP_lit8:
24267 case DW_OP_lit9:
24268 case DW_OP_lit10:
24269 case DW_OP_lit11:
24270 case DW_OP_lit12:
24271 case DW_OP_lit13:
24272 case DW_OP_lit14:
24273 case DW_OP_lit15:
24274 case DW_OP_lit16:
24275 case DW_OP_lit17:
24276 case DW_OP_lit18:
24277 case DW_OP_lit19:
24278 case DW_OP_lit20:
24279 case DW_OP_lit21:
24280 case DW_OP_lit22:
24281 case DW_OP_lit23:
24282 case DW_OP_lit24:
24283 case DW_OP_lit25:
24284 case DW_OP_lit26:
24285 case DW_OP_lit27:
24286 case DW_OP_lit28:
24287 case DW_OP_lit29:
24288 case DW_OP_lit30:
24289 case DW_OP_lit31:
24290 stack[++stacki] = op - DW_OP_lit0;
24291 break;
24292
24293 case DW_OP_reg0:
24294 case DW_OP_reg1:
24295 case DW_OP_reg2:
24296 case DW_OP_reg3:
24297 case DW_OP_reg4:
24298 case DW_OP_reg5:
24299 case DW_OP_reg6:
24300 case DW_OP_reg7:
24301 case DW_OP_reg8:
24302 case DW_OP_reg9:
24303 case DW_OP_reg10:
24304 case DW_OP_reg11:
24305 case DW_OP_reg12:
24306 case DW_OP_reg13:
24307 case DW_OP_reg14:
24308 case DW_OP_reg15:
24309 case DW_OP_reg16:
24310 case DW_OP_reg17:
24311 case DW_OP_reg18:
24312 case DW_OP_reg19:
24313 case DW_OP_reg20:
24314 case DW_OP_reg21:
24315 case DW_OP_reg22:
24316 case DW_OP_reg23:
24317 case DW_OP_reg24:
24318 case DW_OP_reg25:
24319 case DW_OP_reg26:
24320 case DW_OP_reg27:
24321 case DW_OP_reg28:
24322 case DW_OP_reg29:
24323 case DW_OP_reg30:
24324 case DW_OP_reg31:
24325 stack[++stacki] = op - DW_OP_reg0;
24326 if (i < size)
24327 {
24328 if (computed == nullptr)
24329 dwarf2_complex_location_expr_complaint ();
24330 else
24331 return 0;
24332 }
24333 break;
24334
24335 case DW_OP_regx:
24336 unsnd = read_unsigned_leb128 (NULL, (data + i), &bytes_read);
24337 i += bytes_read;
24338 stack[++stacki] = unsnd;
24339 if (i < size)
24340 {
24341 if (computed == nullptr)
24342 dwarf2_complex_location_expr_complaint ();
24343 else
24344 return 0;
24345 }
24346 break;
24347
24348 case DW_OP_addr:
24349 stack[++stacki] = cu->header.read_address (objfile->obfd, &data[i],
24350 &bytes_read);
24351 i += bytes_read;
24352 break;
24353
24354 case DW_OP_const1u:
24355 stack[++stacki] = read_1_byte (objfile->obfd, &data[i]);
24356 i += 1;
24357 break;
24358
24359 case DW_OP_const1s:
24360 stack[++stacki] = read_1_signed_byte (objfile->obfd, &data[i]);
24361 i += 1;
24362 break;
24363
24364 case DW_OP_const2u:
24365 stack[++stacki] = read_2_bytes (objfile->obfd, &data[i]);
24366 i += 2;
24367 break;
24368
24369 case DW_OP_const2s:
24370 stack[++stacki] = read_2_signed_bytes (objfile->obfd, &data[i]);
24371 i += 2;
24372 break;
24373
24374 case DW_OP_const4u:
24375 stack[++stacki] = read_4_bytes (objfile->obfd, &data[i]);
24376 i += 4;
24377 break;
24378
24379 case DW_OP_const4s:
24380 stack[++stacki] = read_4_signed_bytes (objfile->obfd, &data[i]);
24381 i += 4;
24382 break;
24383
24384 case DW_OP_const8u:
24385 stack[++stacki] = read_8_bytes (objfile->obfd, &data[i]);
24386 i += 8;
24387 break;
24388
24389 case DW_OP_constu:
24390 stack[++stacki] = read_unsigned_leb128 (NULL, (data + i),
24391 &bytes_read);
24392 i += bytes_read;
24393 break;
24394
24395 case DW_OP_consts:
24396 stack[++stacki] = read_signed_leb128 (NULL, (data + i), &bytes_read);
24397 i += bytes_read;
24398 break;
24399
24400 case DW_OP_dup:
24401 stack[stacki + 1] = stack[stacki];
24402 stacki++;
24403 break;
24404
24405 case DW_OP_plus:
24406 stack[stacki - 1] += stack[stacki];
24407 stacki--;
24408 break;
24409
24410 case DW_OP_plus_uconst:
24411 stack[stacki] += read_unsigned_leb128 (NULL, (data + i),
24412 &bytes_read);
24413 i += bytes_read;
24414 break;
24415
24416 case DW_OP_minus:
24417 stack[stacki - 1] -= stack[stacki];
24418 stacki--;
24419 break;
24420
24421 case DW_OP_deref:
24422 /* If we're not the last op, then we definitely can't encode
24423 this using GDB's address_class enum. This is valid for partial
24424 global symbols, although the variable's address will be bogus
24425 in the psymtab. */
24426 if (i < size)
24427 {
24428 if (computed == nullptr)
24429 dwarf2_complex_location_expr_complaint ();
24430 else
24431 return 0;
24432 }
24433 break;
24434
24435 case DW_OP_GNU_push_tls_address:
24436 case DW_OP_form_tls_address:
24437 /* The top of the stack has the offset from the beginning
24438 of the thread control block at which the variable is located. */
24439 /* Nothing should follow this operator, so the top of stack would
24440 be returned. */
24441 /* This is valid for partial global symbols, but the variable's
24442 address will be bogus in the psymtab. Make it always at least
24443 non-zero to not look as a variable garbage collected by linker
24444 which have DW_OP_addr 0. */
24445 if (i < size)
24446 {
24447 if (computed == nullptr)
24448 dwarf2_complex_location_expr_complaint ();
24449 else
24450 return 0;
24451 }
24452 stack[stacki]++;
24453 break;
24454
24455 case DW_OP_GNU_uninit:
24456 if (computed != nullptr)
24457 return 0;
24458 break;
24459
24460 case DW_OP_addrx:
24461 case DW_OP_GNU_addr_index:
24462 case DW_OP_GNU_const_index:
24463 stack[++stacki] = read_addr_index_from_leb128 (cu, &data[i],
24464 &bytes_read);
24465 i += bytes_read;
24466 break;
24467
24468 default:
24469 if (computed == nullptr)
24470 {
24471 const char *name = get_DW_OP_name (op);
24472
24473 if (name)
24474 complaint (_("unsupported stack op: '%s'"),
24475 name);
24476 else
24477 complaint (_("unsupported stack op: '%02x'"),
24478 op);
24479 }
24480
24481 return (stack[stacki]);
24482 }
24483
24484 /* Enforce maximum stack depth of SIZE-1 to avoid writing
24485 outside of the allocated space. Also enforce minimum>0. */
24486 if (stacki >= ARRAY_SIZE (stack) - 1)
24487 {
24488 if (computed == nullptr)
24489 complaint (_("location description stack overflow"));
24490 return 0;
24491 }
24492
24493 if (stacki <= 0)
24494 {
24495 if (computed == nullptr)
24496 complaint (_("location description stack underflow"));
24497 return 0;
24498 }
24499 }
24500
24501 if (computed != nullptr)
24502 *computed = true;
24503 return (stack[stacki]);
24504 }
24505
24506 /* memory allocation interface */
24507
24508 static struct dwarf_block *
24509 dwarf_alloc_block (struct dwarf2_cu *cu)
24510 {
24511 return XOBNEW (&cu->comp_unit_obstack, struct dwarf_block);
24512 }
24513
24514 static struct die_info *
24515 dwarf_alloc_die (struct dwarf2_cu *cu, int num_attrs)
24516 {
24517 struct die_info *die;
24518 size_t size = sizeof (struct die_info);
24519
24520 if (num_attrs > 1)
24521 size += (num_attrs - 1) * sizeof (struct attribute);
24522
24523 die = (struct die_info *) obstack_alloc (&cu->comp_unit_obstack, size);
24524 memset (die, 0, sizeof (struct die_info));
24525 return (die);
24526 }
24527
24528 \f
24529
24530 /* Macro support. */
24531
24532 /* An overload of dwarf_decode_macros that finds the correct section
24533 and ensures it is read in before calling the other overload. */
24534
24535 static void
24536 dwarf_decode_macros (struct dwarf2_cu *cu, unsigned int offset,
24537 int section_is_gnu)
24538 {
24539 dwarf2_per_objfile *per_objfile = cu->per_objfile;
24540 struct objfile *objfile = per_objfile->objfile;
24541 const struct line_header *lh = cu->line_header;
24542 unsigned int offset_size = cu->header.offset_size;
24543 struct dwarf2_section_info *section;
24544 const char *section_name;
24545
24546 if (cu->dwo_unit != nullptr)
24547 {
24548 if (section_is_gnu)
24549 {
24550 section = &cu->dwo_unit->dwo_file->sections.macro;
24551 section_name = ".debug_macro.dwo";
24552 }
24553 else
24554 {
24555 section = &cu->dwo_unit->dwo_file->sections.macinfo;
24556 section_name = ".debug_macinfo.dwo";
24557 }
24558 }
24559 else
24560 {
24561 if (section_is_gnu)
24562 {
24563 section = &per_objfile->per_bfd->macro;
24564 section_name = ".debug_macro";
24565 }
24566 else
24567 {
24568 section = &per_objfile->per_bfd->macinfo;
24569 section_name = ".debug_macinfo";
24570 }
24571 }
24572
24573 section->read (objfile);
24574 if (section->buffer == nullptr)
24575 {
24576 complaint (_("missing %s section"), section_name);
24577 return;
24578 }
24579
24580 buildsym_compunit *builder = cu->get_builder ();
24581
24582 struct dwarf2_section_info *str_offsets_section;
24583 struct dwarf2_section_info *str_section;
24584 ULONGEST str_offsets_base;
24585
24586 if (cu->dwo_unit != nullptr)
24587 {
24588 str_offsets_section = &cu->dwo_unit->dwo_file
24589 ->sections.str_offsets;
24590 str_section = &cu->dwo_unit->dwo_file->sections.str;
24591 str_offsets_base = cu->header.addr_size;
24592 }
24593 else
24594 {
24595 str_offsets_section = &per_objfile->per_bfd->str_offsets;
24596 str_section = &per_objfile->per_bfd->str;
24597 str_offsets_base = *cu->str_offsets_base;
24598 }
24599
24600 dwarf_decode_macros (per_objfile, builder, section, lh,
24601 offset_size, offset, str_section, str_offsets_section,
24602 str_offsets_base, section_is_gnu);
24603 }
24604
24605 /* Return the .debug_loc section to use for CU.
24606 For DWO files use .debug_loc.dwo. */
24607
24608 static struct dwarf2_section_info *
24609 cu_debug_loc_section (struct dwarf2_cu *cu)
24610 {
24611 dwarf2_per_objfile *per_objfile = cu->per_objfile;
24612
24613 if (cu->dwo_unit)
24614 {
24615 struct dwo_sections *sections = &cu->dwo_unit->dwo_file->sections;
24616
24617 return cu->header.version >= 5 ? &sections->loclists : &sections->loc;
24618 }
24619 return (cu->header.version >= 5 ? &per_objfile->per_bfd->loclists
24620 : &per_objfile->per_bfd->loc);
24621 }
24622
24623 /* Return the .debug_rnglists section to use for CU. */
24624 static struct dwarf2_section_info *
24625 cu_debug_rnglists_section (struct dwarf2_cu *cu, dwarf_tag tag)
24626 {
24627 if (cu->header.version < 5)
24628 error (_(".debug_rnglists section cannot be used in DWARF %d"),
24629 cu->header.version);
24630 struct dwarf2_per_objfile *dwarf2_per_objfile = cu->per_objfile;
24631
24632 /* Make sure we read the .debug_rnglists section from the file that
24633 contains the DW_AT_ranges attribute we are reading. Normally that
24634 would be the .dwo file, if there is one. However for DW_TAG_compile_unit
24635 or DW_TAG_skeleton unit, we always want to read from objfile/linked
24636 program. */
24637 if (cu->dwo_unit != nullptr
24638 && tag != DW_TAG_compile_unit
24639 && tag != DW_TAG_skeleton_unit)
24640 {
24641 struct dwo_sections *sections = &cu->dwo_unit->dwo_file->sections;
24642
24643 if (sections->rnglists.size > 0)
24644 return &sections->rnglists;
24645 else
24646 error (_(".debug_rnglists section is missing from .dwo file."));
24647 }
24648 return &dwarf2_per_objfile->per_bfd->rnglists;
24649 }
24650
24651 /* A helper function that fills in a dwarf2_loclist_baton. */
24652
24653 static void
24654 fill_in_loclist_baton (struct dwarf2_cu *cu,
24655 struct dwarf2_loclist_baton *baton,
24656 const struct attribute *attr)
24657 {
24658 dwarf2_per_objfile *per_objfile = cu->per_objfile;
24659 struct dwarf2_section_info *section = cu_debug_loc_section (cu);
24660
24661 section->read (per_objfile->objfile);
24662
24663 baton->per_objfile = per_objfile;
24664 baton->per_cu = cu->per_cu;
24665 gdb_assert (baton->per_cu);
24666 /* We don't know how long the location list is, but make sure we
24667 don't run off the edge of the section. */
24668 baton->size = section->size - attr->as_unsigned ();
24669 baton->data = section->buffer + attr->as_unsigned ();
24670 if (cu->base_address.has_value ())
24671 baton->base_address = *cu->base_address;
24672 else
24673 baton->base_address = 0;
24674 baton->from_dwo = cu->dwo_unit != NULL;
24675 }
24676
24677 static void
24678 dwarf2_symbol_mark_computed (const struct attribute *attr, struct symbol *sym,
24679 struct dwarf2_cu *cu, int is_block)
24680 {
24681 dwarf2_per_objfile *per_objfile = cu->per_objfile;
24682 struct objfile *objfile = per_objfile->objfile;
24683 struct dwarf2_section_info *section = cu_debug_loc_section (cu);
24684
24685 if (attr->form_is_section_offset ()
24686 /* .debug_loc{,.dwo} may not exist at all, or the offset may be outside
24687 the section. If so, fall through to the complaint in the
24688 other branch. */
24689 && attr->as_unsigned () < section->get_size (objfile))
24690 {
24691 struct dwarf2_loclist_baton *baton;
24692
24693 baton = XOBNEW (&objfile->objfile_obstack, struct dwarf2_loclist_baton);
24694
24695 fill_in_loclist_baton (cu, baton, attr);
24696
24697 if (!cu->base_address.has_value ())
24698 complaint (_("Location list used without "
24699 "specifying the CU base address."));
24700
24701 SYMBOL_ACLASS_INDEX (sym) = (is_block
24702 ? dwarf2_loclist_block_index
24703 : dwarf2_loclist_index);
24704 SYMBOL_LOCATION_BATON (sym) = baton;
24705 }
24706 else
24707 {
24708 struct dwarf2_locexpr_baton *baton;
24709
24710 baton = XOBNEW (&objfile->objfile_obstack, struct dwarf2_locexpr_baton);
24711 baton->per_objfile = per_objfile;
24712 baton->per_cu = cu->per_cu;
24713 gdb_assert (baton->per_cu);
24714
24715 if (attr->form_is_block ())
24716 {
24717 /* Note that we're just copying the block's data pointer
24718 here, not the actual data. We're still pointing into the
24719 info_buffer for SYM's objfile; right now we never release
24720 that buffer, but when we do clean up properly this may
24721 need to change. */
24722 struct dwarf_block *block = attr->as_block ();
24723 baton->size = block->size;
24724 baton->data = block->data;
24725 }
24726 else
24727 {
24728 dwarf2_invalid_attrib_class_complaint ("location description",
24729 sym->natural_name ());
24730 baton->size = 0;
24731 }
24732
24733 SYMBOL_ACLASS_INDEX (sym) = (is_block
24734 ? dwarf2_locexpr_block_index
24735 : dwarf2_locexpr_index);
24736 SYMBOL_LOCATION_BATON (sym) = baton;
24737 }
24738 }
24739
24740 /* See read.h. */
24741
24742 const comp_unit_head *
24743 dwarf2_per_cu_data::get_header () const
24744 {
24745 if (!m_header_read_in)
24746 {
24747 const gdb_byte *info_ptr
24748 = this->section->buffer + to_underlying (this->sect_off);
24749
24750 memset (&m_header, 0, sizeof (m_header));
24751
24752 read_comp_unit_head (&m_header, info_ptr, this->section,
24753 rcuh_kind::COMPILE);
24754 }
24755
24756 return &m_header;
24757 }
24758
24759 /* See read.h. */
24760
24761 int
24762 dwarf2_per_cu_data::addr_size () const
24763 {
24764 return this->get_header ()->addr_size;
24765 }
24766
24767 /* See read.h. */
24768
24769 int
24770 dwarf2_per_cu_data::offset_size () const
24771 {
24772 return this->get_header ()->offset_size;
24773 }
24774
24775 /* See read.h. */
24776
24777 int
24778 dwarf2_per_cu_data::ref_addr_size () const
24779 {
24780 const comp_unit_head *header = this->get_header ();
24781
24782 if (header->version == 2)
24783 return header->addr_size;
24784 else
24785 return header->offset_size;
24786 }
24787
24788 /* See read.h. */
24789
24790 struct type *
24791 dwarf2_cu::addr_type () const
24792 {
24793 struct objfile *objfile = this->per_objfile->objfile;
24794 struct type *void_type = objfile_type (objfile)->builtin_void;
24795 struct type *addr_type = lookup_pointer_type (void_type);
24796 int addr_size = this->per_cu->addr_size ();
24797
24798 if (TYPE_LENGTH (addr_type) == addr_size)
24799 return addr_type;
24800
24801 addr_type = addr_sized_int_type (addr_type->is_unsigned ());
24802 return addr_type;
24803 }
24804
24805 /* A helper function for dwarf2_find_containing_comp_unit that returns
24806 the index of the result, and that searches a vector. It will
24807 return a result even if the offset in question does not actually
24808 occur in any CU. This is separate so that it can be unit
24809 tested. */
24810
24811 static int
24812 dwarf2_find_containing_comp_unit
24813 (sect_offset sect_off,
24814 unsigned int offset_in_dwz,
24815 const std::vector<dwarf2_per_cu_data *> &all_comp_units)
24816 {
24817 int low, high;
24818
24819 low = 0;
24820 high = all_comp_units.size () - 1;
24821 while (high > low)
24822 {
24823 struct dwarf2_per_cu_data *mid_cu;
24824 int mid = low + (high - low) / 2;
24825
24826 mid_cu = all_comp_units[mid];
24827 if (mid_cu->is_dwz > offset_in_dwz
24828 || (mid_cu->is_dwz == offset_in_dwz
24829 && mid_cu->sect_off + mid_cu->length > sect_off))
24830 high = mid;
24831 else
24832 low = mid + 1;
24833 }
24834 gdb_assert (low == high);
24835 return low;
24836 }
24837
24838 /* Locate the .debug_info compilation unit from CU's objfile which contains
24839 the DIE at OFFSET. Raises an error on failure. */
24840
24841 static struct dwarf2_per_cu_data *
24842 dwarf2_find_containing_comp_unit (sect_offset sect_off,
24843 unsigned int offset_in_dwz,
24844 dwarf2_per_objfile *per_objfile)
24845 {
24846 int low = dwarf2_find_containing_comp_unit
24847 (sect_off, offset_in_dwz, per_objfile->per_bfd->all_comp_units);
24848 dwarf2_per_cu_data *this_cu = per_objfile->per_bfd->all_comp_units[low];
24849
24850 if (this_cu->is_dwz != offset_in_dwz || this_cu->sect_off > sect_off)
24851 {
24852 if (low == 0 || this_cu->is_dwz != offset_in_dwz)
24853 error (_("Dwarf Error: could not find partial DIE containing "
24854 "offset %s [in module %s]"),
24855 sect_offset_str (sect_off),
24856 bfd_get_filename (per_objfile->objfile->obfd));
24857
24858 gdb_assert (per_objfile->per_bfd->all_comp_units[low-1]->sect_off
24859 <= sect_off);
24860 return per_objfile->per_bfd->all_comp_units[low-1];
24861 }
24862 else
24863 {
24864 if (low == per_objfile->per_bfd->all_comp_units.size () - 1
24865 && sect_off >= this_cu->sect_off + this_cu->length)
24866 error (_("invalid dwarf2 offset %s"), sect_offset_str (sect_off));
24867 gdb_assert (sect_off < this_cu->sect_off + this_cu->length);
24868 return this_cu;
24869 }
24870 }
24871
24872 #if GDB_SELF_TEST
24873
24874 namespace selftests {
24875 namespace find_containing_comp_unit {
24876
24877 static void
24878 run_test ()
24879 {
24880 struct dwarf2_per_cu_data one {};
24881 struct dwarf2_per_cu_data two {};
24882 struct dwarf2_per_cu_data three {};
24883 struct dwarf2_per_cu_data four {};
24884
24885 one.length = 5;
24886 two.sect_off = sect_offset (one.length);
24887 two.length = 7;
24888
24889 three.length = 5;
24890 three.is_dwz = 1;
24891 four.sect_off = sect_offset (three.length);
24892 four.length = 7;
24893 four.is_dwz = 1;
24894
24895 std::vector<dwarf2_per_cu_data *> units;
24896 units.push_back (&one);
24897 units.push_back (&two);
24898 units.push_back (&three);
24899 units.push_back (&four);
24900
24901 int result;
24902
24903 result = dwarf2_find_containing_comp_unit (sect_offset (0), 0, units);
24904 SELF_CHECK (units[result] == &one);
24905 result = dwarf2_find_containing_comp_unit (sect_offset (3), 0, units);
24906 SELF_CHECK (units[result] == &one);
24907 result = dwarf2_find_containing_comp_unit (sect_offset (5), 0, units);
24908 SELF_CHECK (units[result] == &two);
24909
24910 result = dwarf2_find_containing_comp_unit (sect_offset (0), 1, units);
24911 SELF_CHECK (units[result] == &three);
24912 result = dwarf2_find_containing_comp_unit (sect_offset (3), 1, units);
24913 SELF_CHECK (units[result] == &three);
24914 result = dwarf2_find_containing_comp_unit (sect_offset (5), 1, units);
24915 SELF_CHECK (units[result] == &four);
24916 }
24917
24918 }
24919 }
24920
24921 #endif /* GDB_SELF_TEST */
24922
24923 /* Initialize dwarf2_cu to read PER_CU, in the context of PER_OBJFILE. */
24924
24925 dwarf2_cu::dwarf2_cu (dwarf2_per_cu_data *per_cu,
24926 dwarf2_per_objfile *per_objfile)
24927 : per_cu (per_cu),
24928 per_objfile (per_objfile),
24929 mark (false),
24930 has_loclist (false),
24931 checked_producer (false),
24932 producer_is_gxx_lt_4_6 (false),
24933 producer_is_gcc_lt_4_3 (false),
24934 producer_is_icc (false),
24935 producer_is_icc_lt_14 (false),
24936 producer_is_codewarrior (false),
24937 processing_has_namespace_info (false)
24938 {
24939 }
24940
24941 /* Initialize basic fields of dwarf_cu CU according to DIE COMP_UNIT_DIE. */
24942
24943 static void
24944 prepare_one_comp_unit (struct dwarf2_cu *cu, struct die_info *comp_unit_die,
24945 enum language pretend_language)
24946 {
24947 struct attribute *attr;
24948
24949 /* Set the language we're debugging. */
24950 attr = dwarf2_attr (comp_unit_die, DW_AT_language, cu);
24951 if (attr != nullptr)
24952 set_cu_language (attr->constant_value (0), cu);
24953 else
24954 {
24955 cu->language = pretend_language;
24956 cu->language_defn = language_def (cu->language);
24957 }
24958
24959 cu->producer = dwarf2_string_attr (comp_unit_die, DW_AT_producer, cu);
24960 }
24961
24962 /* See read.h. */
24963
24964 dwarf2_cu *
24965 dwarf2_per_objfile::get_cu (dwarf2_per_cu_data *per_cu)
24966 {
24967 auto it = m_dwarf2_cus.find (per_cu);
24968 if (it == m_dwarf2_cus.end ())
24969 return nullptr;
24970
24971 return it->second;
24972 }
24973
24974 /* See read.h. */
24975
24976 void
24977 dwarf2_per_objfile::set_cu (dwarf2_per_cu_data *per_cu, dwarf2_cu *cu)
24978 {
24979 gdb_assert (this->get_cu (per_cu) == nullptr);
24980
24981 m_dwarf2_cus[per_cu] = cu;
24982 }
24983
24984 /* See read.h. */
24985
24986 void
24987 dwarf2_per_objfile::age_comp_units ()
24988 {
24989 dwarf_read_debug_printf_v ("running");
24990
24991 /* Start by clearing all marks. */
24992 for (auto pair : m_dwarf2_cus)
24993 pair.second->mark = false;
24994
24995 /* Traverse all CUs, mark them and their dependencies if used recently
24996 enough. */
24997 for (auto pair : m_dwarf2_cus)
24998 {
24999 dwarf2_cu *cu = pair.second;
25000
25001 cu->last_used++;
25002 if (cu->last_used <= dwarf_max_cache_age)
25003 dwarf2_mark (cu);
25004 }
25005
25006 /* Delete all CUs still not marked. */
25007 for (auto it = m_dwarf2_cus.begin (); it != m_dwarf2_cus.end ();)
25008 {
25009 dwarf2_cu *cu = it->second;
25010
25011 if (!cu->mark)
25012 {
25013 dwarf_read_debug_printf_v ("deleting old CU %s",
25014 sect_offset_str (cu->per_cu->sect_off));
25015 delete cu;
25016 it = m_dwarf2_cus.erase (it);
25017 }
25018 else
25019 it++;
25020 }
25021 }
25022
25023 /* See read.h. */
25024
25025 void
25026 dwarf2_per_objfile::remove_cu (dwarf2_per_cu_data *per_cu)
25027 {
25028 auto it = m_dwarf2_cus.find (per_cu);
25029 if (it == m_dwarf2_cus.end ())
25030 return;
25031
25032 delete it->second;
25033
25034 m_dwarf2_cus.erase (it);
25035 }
25036
25037 dwarf2_per_objfile::~dwarf2_per_objfile ()
25038 {
25039 remove_all_cus ();
25040 }
25041
25042 /* A set of CU "per_cu" pointer, DIE offset, and GDB type pointer.
25043 We store these in a hash table separate from the DIEs, and preserve them
25044 when the DIEs are flushed out of cache.
25045
25046 The CU "per_cu" pointer is needed because offset alone is not enough to
25047 uniquely identify the type. A file may have multiple .debug_types sections,
25048 or the type may come from a DWO file. Furthermore, while it's more logical
25049 to use per_cu->section+offset, with Fission the section with the data is in
25050 the DWO file but we don't know that section at the point we need it.
25051 We have to use something in dwarf2_per_cu_data (or the pointer to it)
25052 because we can enter the lookup routine, get_die_type_at_offset, from
25053 outside this file, and thus won't necessarily have PER_CU->cu.
25054 Fortunately, PER_CU is stable for the life of the objfile. */
25055
25056 struct dwarf2_per_cu_offset_and_type
25057 {
25058 const struct dwarf2_per_cu_data *per_cu;
25059 sect_offset sect_off;
25060 struct type *type;
25061 };
25062
25063 /* Hash function for a dwarf2_per_cu_offset_and_type. */
25064
25065 static hashval_t
25066 per_cu_offset_and_type_hash (const void *item)
25067 {
25068 const struct dwarf2_per_cu_offset_and_type *ofs
25069 = (const struct dwarf2_per_cu_offset_and_type *) item;
25070
25071 return (uintptr_t) ofs->per_cu + to_underlying (ofs->sect_off);
25072 }
25073
25074 /* Equality function for a dwarf2_per_cu_offset_and_type. */
25075
25076 static int
25077 per_cu_offset_and_type_eq (const void *item_lhs, const void *item_rhs)
25078 {
25079 const struct dwarf2_per_cu_offset_and_type *ofs_lhs
25080 = (const struct dwarf2_per_cu_offset_and_type *) item_lhs;
25081 const struct dwarf2_per_cu_offset_and_type *ofs_rhs
25082 = (const struct dwarf2_per_cu_offset_and_type *) item_rhs;
25083
25084 return (ofs_lhs->per_cu == ofs_rhs->per_cu
25085 && ofs_lhs->sect_off == ofs_rhs->sect_off);
25086 }
25087
25088 /* Set the type associated with DIE to TYPE. Save it in CU's hash
25089 table if necessary. For convenience, return TYPE.
25090
25091 The DIEs reading must have careful ordering to:
25092 * Not cause infinite loops trying to read in DIEs as a prerequisite for
25093 reading current DIE.
25094 * Not trying to dereference contents of still incompletely read in types
25095 while reading in other DIEs.
25096 * Enable referencing still incompletely read in types just by a pointer to
25097 the type without accessing its fields.
25098
25099 Therefore caller should follow these rules:
25100 * Try to fetch any prerequisite types we may need to build this DIE type
25101 before building the type and calling set_die_type.
25102 * After building type call set_die_type for current DIE as soon as
25103 possible before fetching more types to complete the current type.
25104 * Make the type as complete as possible before fetching more types. */
25105
25106 static struct type *
25107 set_die_type (struct die_info *die, struct type *type, struct dwarf2_cu *cu,
25108 bool skip_data_location)
25109 {
25110 dwarf2_per_objfile *per_objfile = cu->per_objfile;
25111 struct dwarf2_per_cu_offset_and_type **slot, ofs;
25112 struct objfile *objfile = per_objfile->objfile;
25113 struct attribute *attr;
25114 struct dynamic_prop prop;
25115
25116 /* For Ada types, make sure that the gnat-specific data is always
25117 initialized (if not already set). There are a few types where
25118 we should not be doing so, because the type-specific area is
25119 already used to hold some other piece of info (eg: TYPE_CODE_FLT
25120 where the type-specific area is used to store the floatformat).
25121 But this is not a problem, because the gnat-specific information
25122 is actually not needed for these types. */
25123 if (need_gnat_info (cu)
25124 && type->code () != TYPE_CODE_FUNC
25125 && type->code () != TYPE_CODE_FLT
25126 && type->code () != TYPE_CODE_METHODPTR
25127 && type->code () != TYPE_CODE_MEMBERPTR
25128 && type->code () != TYPE_CODE_METHOD
25129 && type->code () != TYPE_CODE_FIXED_POINT
25130 && !HAVE_GNAT_AUX_INFO (type))
25131 INIT_GNAT_SPECIFIC (type);
25132
25133 /* Read DW_AT_allocated and set in type. */
25134 attr = dwarf2_attr (die, DW_AT_allocated, cu);
25135 if (attr != NULL)
25136 {
25137 struct type *prop_type = cu->addr_sized_int_type (false);
25138 if (attr_to_dynamic_prop (attr, die, cu, &prop, prop_type))
25139 type->add_dyn_prop (DYN_PROP_ALLOCATED, prop);
25140 }
25141
25142 /* Read DW_AT_associated and set in type. */
25143 attr = dwarf2_attr (die, DW_AT_associated, cu);
25144 if (attr != NULL)
25145 {
25146 struct type *prop_type = cu->addr_sized_int_type (false);
25147 if (attr_to_dynamic_prop (attr, die, cu, &prop, prop_type))
25148 type->add_dyn_prop (DYN_PROP_ASSOCIATED, prop);
25149 }
25150
25151 /* Read DW_AT_data_location and set in type. */
25152 if (!skip_data_location)
25153 {
25154 attr = dwarf2_attr (die, DW_AT_data_location, cu);
25155 if (attr_to_dynamic_prop (attr, die, cu, &prop, cu->addr_type ()))
25156 type->add_dyn_prop (DYN_PROP_DATA_LOCATION, prop);
25157 }
25158
25159 if (per_objfile->die_type_hash == NULL)
25160 per_objfile->die_type_hash
25161 = htab_up (htab_create_alloc (127,
25162 per_cu_offset_and_type_hash,
25163 per_cu_offset_and_type_eq,
25164 NULL, xcalloc, xfree));
25165
25166 ofs.per_cu = cu->per_cu;
25167 ofs.sect_off = die->sect_off;
25168 ofs.type = type;
25169 slot = (struct dwarf2_per_cu_offset_and_type **)
25170 htab_find_slot (per_objfile->die_type_hash.get (), &ofs, INSERT);
25171 if (*slot)
25172 complaint (_("A problem internal to GDB: DIE %s has type already set"),
25173 sect_offset_str (die->sect_off));
25174 *slot = XOBNEW (&objfile->objfile_obstack,
25175 struct dwarf2_per_cu_offset_and_type);
25176 **slot = ofs;
25177 return type;
25178 }
25179
25180 /* Look up the type for the die at SECT_OFF in PER_CU in die_type_hash,
25181 or return NULL if the die does not have a saved type. */
25182
25183 static struct type *
25184 get_die_type_at_offset (sect_offset sect_off,
25185 dwarf2_per_cu_data *per_cu,
25186 dwarf2_per_objfile *per_objfile)
25187 {
25188 struct dwarf2_per_cu_offset_and_type *slot, ofs;
25189
25190 if (per_objfile->die_type_hash == NULL)
25191 return NULL;
25192
25193 ofs.per_cu = per_cu;
25194 ofs.sect_off = sect_off;
25195 slot = ((struct dwarf2_per_cu_offset_and_type *)
25196 htab_find (per_objfile->die_type_hash.get (), &ofs));
25197 if (slot)
25198 return slot->type;
25199 else
25200 return NULL;
25201 }
25202
25203 /* Look up the type for DIE in CU in die_type_hash,
25204 or return NULL if DIE does not have a saved type. */
25205
25206 static struct type *
25207 get_die_type (struct die_info *die, struct dwarf2_cu *cu)
25208 {
25209 return get_die_type_at_offset (die->sect_off, cu->per_cu, cu->per_objfile);
25210 }
25211
25212 /* Add a dependence relationship from CU to REF_PER_CU. */
25213
25214 static void
25215 dwarf2_add_dependence (struct dwarf2_cu *cu,
25216 struct dwarf2_per_cu_data *ref_per_cu)
25217 {
25218 void **slot;
25219
25220 if (cu->dependencies == NULL)
25221 cu->dependencies
25222 = htab_create_alloc_ex (5, htab_hash_pointer, htab_eq_pointer,
25223 NULL, &cu->comp_unit_obstack,
25224 hashtab_obstack_allocate,
25225 dummy_obstack_deallocate);
25226
25227 slot = htab_find_slot (cu->dependencies, ref_per_cu, INSERT);
25228 if (*slot == NULL)
25229 *slot = ref_per_cu;
25230 }
25231
25232 /* Subroutine of dwarf2_mark to pass to htab_traverse.
25233 Set the mark field in every compilation unit in the
25234 cache that we must keep because we are keeping CU.
25235
25236 DATA is the dwarf2_per_objfile object in which to look up CUs. */
25237
25238 static int
25239 dwarf2_mark_helper (void **slot, void *data)
25240 {
25241 dwarf2_per_cu_data *per_cu = (dwarf2_per_cu_data *) *slot;
25242 dwarf2_per_objfile *per_objfile = (dwarf2_per_objfile *) data;
25243 dwarf2_cu *cu = per_objfile->get_cu (per_cu);
25244
25245 /* cu->dependencies references may not yet have been ever read if QUIT aborts
25246 reading of the chain. As such dependencies remain valid it is not much
25247 useful to track and undo them during QUIT cleanups. */
25248 if (cu == nullptr)
25249 return 1;
25250
25251 if (cu->mark)
25252 return 1;
25253
25254 cu->mark = true;
25255
25256 if (cu->dependencies != nullptr)
25257 htab_traverse (cu->dependencies, dwarf2_mark_helper, per_objfile);
25258
25259 return 1;
25260 }
25261
25262 /* Set the mark field in CU and in every other compilation unit in the
25263 cache that we must keep because we are keeping CU. */
25264
25265 static void
25266 dwarf2_mark (struct dwarf2_cu *cu)
25267 {
25268 if (cu->mark)
25269 return;
25270
25271 cu->mark = true;
25272
25273 if (cu->dependencies != nullptr)
25274 htab_traverse (cu->dependencies, dwarf2_mark_helper, cu->per_objfile);
25275 }
25276
25277 /* Trivial hash function for partial_die_info: the hash value of a DIE
25278 is its offset in .debug_info for this objfile. */
25279
25280 static hashval_t
25281 partial_die_hash (const void *item)
25282 {
25283 const struct partial_die_info *part_die
25284 = (const struct partial_die_info *) item;
25285
25286 return to_underlying (part_die->sect_off);
25287 }
25288
25289 /* Trivial comparison function for partial_die_info structures: two DIEs
25290 are equal if they have the same offset. */
25291
25292 static int
25293 partial_die_eq (const void *item_lhs, const void *item_rhs)
25294 {
25295 const struct partial_die_info *part_die_lhs
25296 = (const struct partial_die_info *) item_lhs;
25297 const struct partial_die_info *part_die_rhs
25298 = (const struct partial_die_info *) item_rhs;
25299
25300 return part_die_lhs->sect_off == part_die_rhs->sect_off;
25301 }
25302
25303 struct cmd_list_element *set_dwarf_cmdlist;
25304 struct cmd_list_element *show_dwarf_cmdlist;
25305
25306 static void
25307 show_check_physname (struct ui_file *file, int from_tty,
25308 struct cmd_list_element *c, const char *value)
25309 {
25310 fprintf_filtered (file,
25311 _("Whether to check \"physname\" is %s.\n"),
25312 value);
25313 }
25314
25315 void _initialize_dwarf2_read ();
25316 void
25317 _initialize_dwarf2_read ()
25318 {
25319 add_basic_prefix_cmd ("dwarf", class_maintenance, _("\
25320 Set DWARF specific variables.\n\
25321 Configure DWARF variables such as the cache size."),
25322 &set_dwarf_cmdlist, "maintenance set dwarf ",
25323 0/*allow-unknown*/, &maintenance_set_cmdlist);
25324
25325 add_show_prefix_cmd ("dwarf", class_maintenance, _("\
25326 Show DWARF specific variables.\n\
25327 Show DWARF variables such as the cache size."),
25328 &show_dwarf_cmdlist, "maintenance show dwarf ",
25329 0/*allow-unknown*/, &maintenance_show_cmdlist);
25330
25331 add_setshow_zinteger_cmd ("max-cache-age", class_obscure,
25332 &dwarf_max_cache_age, _("\
25333 Set the upper bound on the age of cached DWARF compilation units."), _("\
25334 Show the upper bound on the age of cached DWARF compilation units."), _("\
25335 A higher limit means that cached compilation units will be stored\n\
25336 in memory longer, and more total memory will be used. Zero disables\n\
25337 caching, which can slow down startup."),
25338 NULL,
25339 show_dwarf_max_cache_age,
25340 &set_dwarf_cmdlist,
25341 &show_dwarf_cmdlist);
25342
25343 add_setshow_zuinteger_cmd ("dwarf-read", no_class, &dwarf_read_debug, _("\
25344 Set debugging of the DWARF reader."), _("\
25345 Show debugging of the DWARF reader."), _("\
25346 When enabled (non-zero), debugging messages are printed during DWARF\n\
25347 reading and symtab expansion. A value of 1 (one) provides basic\n\
25348 information. A value greater than 1 provides more verbose information."),
25349 NULL,
25350 NULL,
25351 &setdebuglist, &showdebuglist);
25352
25353 add_setshow_zuinteger_cmd ("dwarf-die", no_class, &dwarf_die_debug, _("\
25354 Set debugging of the DWARF DIE reader."), _("\
25355 Show debugging of the DWARF DIE reader."), _("\
25356 When enabled (non-zero), DIEs are dumped after they are read in.\n\
25357 The value is the maximum depth to print."),
25358 NULL,
25359 NULL,
25360 &setdebuglist, &showdebuglist);
25361
25362 add_setshow_zuinteger_cmd ("dwarf-line", no_class, &dwarf_line_debug, _("\
25363 Set debugging of the dwarf line reader."), _("\
25364 Show debugging of the dwarf line reader."), _("\
25365 When enabled (non-zero), line number entries are dumped as they are read in.\n\
25366 A value of 1 (one) provides basic information.\n\
25367 A value greater than 1 provides more verbose information."),
25368 NULL,
25369 NULL,
25370 &setdebuglist, &showdebuglist);
25371
25372 add_setshow_boolean_cmd ("check-physname", no_class, &check_physname, _("\
25373 Set cross-checking of \"physname\" code against demangler."), _("\
25374 Show cross-checking of \"physname\" code against demangler."), _("\
25375 When enabled, GDB's internal \"physname\" code is checked against\n\
25376 the demangler."),
25377 NULL, show_check_physname,
25378 &setdebuglist, &showdebuglist);
25379
25380 add_setshow_boolean_cmd ("use-deprecated-index-sections",
25381 no_class, &use_deprecated_index_sections, _("\
25382 Set whether to use deprecated gdb_index sections."), _("\
25383 Show whether to use deprecated gdb_index sections."), _("\
25384 When enabled, deprecated .gdb_index sections are used anyway.\n\
25385 Normally they are ignored either because of a missing feature or\n\
25386 performance issue.\n\
25387 Warning: This option must be enabled before gdb reads the file."),
25388 NULL,
25389 NULL,
25390 &setlist, &showlist);
25391
25392 dwarf2_locexpr_index = register_symbol_computed_impl (LOC_COMPUTED,
25393 &dwarf2_locexpr_funcs);
25394 dwarf2_loclist_index = register_symbol_computed_impl (LOC_COMPUTED,
25395 &dwarf2_loclist_funcs);
25396
25397 dwarf2_locexpr_block_index = register_symbol_block_impl (LOC_BLOCK,
25398 &dwarf2_block_frame_base_locexpr_funcs);
25399 dwarf2_loclist_block_index = register_symbol_block_impl (LOC_BLOCK,
25400 &dwarf2_block_frame_base_loclist_funcs);
25401
25402 #if GDB_SELF_TEST
25403 selftests::register_test ("dw2_expand_symtabs_matching",
25404 selftests::dw2_expand_symtabs_matching::run_test);
25405 selftests::register_test ("dwarf2_find_containing_comp_unit",
25406 selftests::find_containing_comp_unit::run_test);
25407 #endif
25408 }