* gc++filt.m4: New file.
[deliverable/binutils-gdb.git] / gdb / dwarf2read.c
1 /* DWARF 2 debugging format support for GDB.
2
3 Copyright (C) 1994, 1995, 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003,
4 2004, 2005, 2006, 2007, 2008, 2009, 2010
5 Free Software Foundation, Inc.
6
7 Adapted by Gary Funck (gary@intrepid.com), Intrepid Technology,
8 Inc. with support from Florida State University (under contract
9 with the Ada Joint Program Office), and Silicon Graphics, Inc.
10 Initial contribution by Brent Benson, Harris Computer Systems, Inc.,
11 based on Fred Fish's (Cygnus Support) implementation of DWARF 1
12 support.
13
14 This file is part of GDB.
15
16 This program is free software; you can redistribute it and/or modify
17 it under the terms of the GNU General Public License as published by
18 the Free Software Foundation; either version 3 of the License, or
19 (at your option) any later version.
20
21 This program is distributed in the hope that it will be useful,
22 but WITHOUT ANY WARRANTY; without even the implied warranty of
23 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
24 GNU General Public License for more details.
25
26 You should have received a copy of the GNU General Public License
27 along with this program. If not, see <http://www.gnu.org/licenses/>. */
28
29 #include "defs.h"
30 #include "bfd.h"
31 #include "symtab.h"
32 #include "gdbtypes.h"
33 #include "objfiles.h"
34 #include "dwarf2.h"
35 #include "buildsym.h"
36 #include "demangle.h"
37 #include "expression.h"
38 #include "filenames.h" /* for DOSish file names */
39 #include "macrotab.h"
40 #include "language.h"
41 #include "complaints.h"
42 #include "bcache.h"
43 #include "dwarf2expr.h"
44 #include "dwarf2loc.h"
45 #include "cp-support.h"
46 #include "hashtab.h"
47 #include "command.h"
48 #include "gdbcmd.h"
49 #include "block.h"
50 #include "addrmap.h"
51 #include "typeprint.h"
52 #include "jv-lang.h"
53 #include "psympriv.h"
54
55 #include <fcntl.h>
56 #include "gdb_string.h"
57 #include "gdb_assert.h"
58 #include <sys/types.h>
59 #ifdef HAVE_ZLIB_H
60 #include <zlib.h>
61 #endif
62 #ifdef HAVE_MMAP
63 #include <sys/mman.h>
64 #ifndef MAP_FAILED
65 #define MAP_FAILED ((void *) -1)
66 #endif
67 #endif
68
69 #if 0
70 /* .debug_info header for a compilation unit
71 Because of alignment constraints, this structure has padding and cannot
72 be mapped directly onto the beginning of the .debug_info section. */
73 typedef struct comp_unit_header
74 {
75 unsigned int length; /* length of the .debug_info
76 contribution */
77 unsigned short version; /* version number -- 2 for DWARF
78 version 2 */
79 unsigned int abbrev_offset; /* offset into .debug_abbrev section */
80 unsigned char addr_size; /* byte size of an address -- 4 */
81 }
82 _COMP_UNIT_HEADER;
83 #define _ACTUAL_COMP_UNIT_HEADER_SIZE 11
84 #endif
85
86 /* .debug_line statement program prologue
87 Because of alignment constraints, this structure has padding and cannot
88 be mapped directly onto the beginning of the .debug_info section. */
89 typedef struct statement_prologue
90 {
91 unsigned int total_length; /* byte length of the statement
92 information */
93 unsigned short version; /* version number -- 2 for DWARF
94 version 2 */
95 unsigned int prologue_length; /* # bytes between prologue &
96 stmt program */
97 unsigned char minimum_instruction_length; /* byte size of
98 smallest instr */
99 unsigned char default_is_stmt; /* initial value of is_stmt
100 register */
101 char line_base;
102 unsigned char line_range;
103 unsigned char opcode_base; /* number assigned to first special
104 opcode */
105 unsigned char *standard_opcode_lengths;
106 }
107 _STATEMENT_PROLOGUE;
108
109 /* When non-zero, dump DIEs after they are read in. */
110 static int dwarf2_die_debug = 0;
111
112 static int pagesize;
113
114 /* When set, the file that we're processing is known to have debugging
115 info for C++ namespaces. GCC 3.3.x did not produce this information,
116 but later versions do. */
117
118 static int processing_has_namespace_info;
119
120 static const struct objfile_data *dwarf2_objfile_data_key;
121
122 struct dwarf2_section_info
123 {
124 asection *asection;
125 gdb_byte *buffer;
126 bfd_size_type size;
127 int was_mmapped;
128 /* True if we have tried to read this section. */
129 int readin;
130 };
131
132 struct dwarf2_per_objfile
133 {
134 struct dwarf2_section_info info;
135 struct dwarf2_section_info abbrev;
136 struct dwarf2_section_info line;
137 struct dwarf2_section_info loc;
138 struct dwarf2_section_info macinfo;
139 struct dwarf2_section_info str;
140 struct dwarf2_section_info ranges;
141 struct dwarf2_section_info types;
142 struct dwarf2_section_info frame;
143 struct dwarf2_section_info eh_frame;
144
145 /* Back link. */
146 struct objfile *objfile;
147
148 /* A list of all the compilation units. This is used to locate
149 the target compilation unit of a particular reference. */
150 struct dwarf2_per_cu_data **all_comp_units;
151
152 /* The number of compilation units in ALL_COMP_UNITS. */
153 int n_comp_units;
154
155 /* A chain of compilation units that are currently read in, so that
156 they can be freed later. */
157 struct dwarf2_per_cu_data *read_in_chain;
158
159 /* A table mapping .debug_types signatures to its signatured_type entry.
160 This is NULL if the .debug_types section hasn't been read in yet. */
161 htab_t signatured_types;
162
163 /* A flag indicating wether this objfile has a section loaded at a
164 VMA of 0. */
165 int has_section_at_zero;
166 };
167
168 static struct dwarf2_per_objfile *dwarf2_per_objfile;
169
170 /* names of the debugging sections */
171
172 /* Note that if the debugging section has been compressed, it might
173 have a name like .zdebug_info. */
174
175 #define INFO_SECTION "debug_info"
176 #define ABBREV_SECTION "debug_abbrev"
177 #define LINE_SECTION "debug_line"
178 #define LOC_SECTION "debug_loc"
179 #define MACINFO_SECTION "debug_macinfo"
180 #define STR_SECTION "debug_str"
181 #define RANGES_SECTION "debug_ranges"
182 #define TYPES_SECTION "debug_types"
183 #define FRAME_SECTION "debug_frame"
184 #define EH_FRAME_SECTION "eh_frame"
185
186 /* local data types */
187
188 /* We hold several abbreviation tables in memory at the same time. */
189 #ifndef ABBREV_HASH_SIZE
190 #define ABBREV_HASH_SIZE 121
191 #endif
192
193 /* The data in a compilation unit header, after target2host
194 translation, looks like this. */
195 struct comp_unit_head
196 {
197 unsigned int length;
198 short version;
199 unsigned char addr_size;
200 unsigned char signed_addr_p;
201 unsigned int abbrev_offset;
202
203 /* Size of file offsets; either 4 or 8. */
204 unsigned int offset_size;
205
206 /* Size of the length field; either 4 or 12. */
207 unsigned int initial_length_size;
208
209 /* Offset to the first byte of this compilation unit header in the
210 .debug_info section, for resolving relative reference dies. */
211 unsigned int offset;
212
213 /* Offset to first die in this cu from the start of the cu.
214 This will be the first byte following the compilation unit header. */
215 unsigned int first_die_offset;
216 };
217
218 /* Internal state when decoding a particular compilation unit. */
219 struct dwarf2_cu
220 {
221 /* The objfile containing this compilation unit. */
222 struct objfile *objfile;
223
224 /* The header of the compilation unit. */
225 struct comp_unit_head header;
226
227 /* Base address of this compilation unit. */
228 CORE_ADDR base_address;
229
230 /* Non-zero if base_address has been set. */
231 int base_known;
232
233 struct function_range *first_fn, *last_fn, *cached_fn;
234
235 /* The language we are debugging. */
236 enum language language;
237 const struct language_defn *language_defn;
238
239 const char *producer;
240
241 /* The generic symbol table building routines have separate lists for
242 file scope symbols and all all other scopes (local scopes). So
243 we need to select the right one to pass to add_symbol_to_list().
244 We do it by keeping a pointer to the correct list in list_in_scope.
245
246 FIXME: The original dwarf code just treated the file scope as the
247 first local scope, and all other local scopes as nested local
248 scopes, and worked fine. Check to see if we really need to
249 distinguish these in buildsym.c. */
250 struct pending **list_in_scope;
251
252 /* DWARF abbreviation table associated with this compilation unit. */
253 struct abbrev_info **dwarf2_abbrevs;
254
255 /* Storage for the abbrev table. */
256 struct obstack abbrev_obstack;
257
258 /* Hash table holding all the loaded partial DIEs. */
259 htab_t partial_dies;
260
261 /* Storage for things with the same lifetime as this read-in compilation
262 unit, including partial DIEs. */
263 struct obstack comp_unit_obstack;
264
265 /* When multiple dwarf2_cu structures are living in memory, this field
266 chains them all together, so that they can be released efficiently.
267 We will probably also want a generation counter so that most-recently-used
268 compilation units are cached... */
269 struct dwarf2_per_cu_data *read_in_chain;
270
271 /* Backchain to our per_cu entry if the tree has been built. */
272 struct dwarf2_per_cu_data *per_cu;
273
274 /* Pointer to the die -> type map. Although it is stored
275 permanently in per_cu, we copy it here to avoid double
276 indirection. */
277 htab_t type_hash;
278
279 /* How many compilation units ago was this CU last referenced? */
280 int last_used;
281
282 /* A hash table of die offsets for following references. */
283 htab_t die_hash;
284
285 /* Full DIEs if read in. */
286 struct die_info *dies;
287
288 /* A set of pointers to dwarf2_per_cu_data objects for compilation
289 units referenced by this one. Only set during full symbol processing;
290 partial symbol tables do not have dependencies. */
291 htab_t dependencies;
292
293 /* Header data from the line table, during full symbol processing. */
294 struct line_header *line_header;
295
296 /* Mark used when releasing cached dies. */
297 unsigned int mark : 1;
298
299 /* This flag will be set if this compilation unit might include
300 inter-compilation-unit references. */
301 unsigned int has_form_ref_addr : 1;
302
303 /* This flag will be set if this compilation unit includes any
304 DW_TAG_namespace DIEs. If we know that there are explicit
305 DIEs for namespaces, we don't need to try to infer them
306 from mangled names. */
307 unsigned int has_namespace_info : 1;
308 };
309
310 /* Persistent data held for a compilation unit, even when not
311 processing it. We put a pointer to this structure in the
312 read_symtab_private field of the psymtab. If we encounter
313 inter-compilation-unit references, we also maintain a sorted
314 list of all compilation units. */
315
316 struct dwarf2_per_cu_data
317 {
318 /* The start offset and length of this compilation unit. 2**29-1
319 bytes should suffice to store the length of any compilation unit
320 - if it doesn't, GDB will fall over anyway.
321 NOTE: Unlike comp_unit_head.length, this length includes
322 initial_length_size. */
323 unsigned int offset;
324 unsigned int length : 29;
325
326 /* Flag indicating this compilation unit will be read in before
327 any of the current compilation units are processed. */
328 unsigned int queued : 1;
329
330 /* This flag will be set if we need to load absolutely all DIEs
331 for this compilation unit, instead of just the ones we think
332 are interesting. It gets set if we look for a DIE in the
333 hash table and don't find it. */
334 unsigned int load_all_dies : 1;
335
336 /* Non-zero if this CU is from .debug_types.
337 Otherwise it's from .debug_info. */
338 unsigned int from_debug_types : 1;
339
340 /* Set to non-NULL iff this CU is currently loaded. When it gets freed out
341 of the CU cache it gets reset to NULL again. */
342 struct dwarf2_cu *cu;
343
344 /* If full symbols for this CU have been read in, then this field
345 holds a map of DIE offsets to types. It isn't always possible
346 to reconstruct this information later, so we have to preserve
347 it. */
348 htab_t type_hash;
349
350 /* The partial symbol table associated with this compilation unit,
351 or NULL for partial units (which do not have an associated
352 symtab). */
353 struct partial_symtab *psymtab;
354 };
355
356 /* Entry in the signatured_types hash table. */
357
358 struct signatured_type
359 {
360 ULONGEST signature;
361
362 /* Offset in .debug_types of the TU (type_unit) for this type. */
363 unsigned int offset;
364
365 /* Offset in .debug_types of the type defined by this TU. */
366 unsigned int type_offset;
367
368 /* The CU(/TU) of this type. */
369 struct dwarf2_per_cu_data per_cu;
370 };
371
372 /* Struct used to pass misc. parameters to read_die_and_children, et. al.
373 which are used for both .debug_info and .debug_types dies.
374 All parameters here are unchanging for the life of the call.
375 This struct exists to abstract away the constant parameters of
376 die reading. */
377
378 struct die_reader_specs
379 {
380 /* The bfd of this objfile. */
381 bfd* abfd;
382
383 /* The CU of the DIE we are parsing. */
384 struct dwarf2_cu *cu;
385
386 /* Pointer to start of section buffer.
387 This is either the start of .debug_info or .debug_types. */
388 const gdb_byte *buffer;
389 };
390
391 /* The line number information for a compilation unit (found in the
392 .debug_line section) begins with a "statement program header",
393 which contains the following information. */
394 struct line_header
395 {
396 unsigned int total_length;
397 unsigned short version;
398 unsigned int header_length;
399 unsigned char minimum_instruction_length;
400 unsigned char maximum_ops_per_instruction;
401 unsigned char default_is_stmt;
402 int line_base;
403 unsigned char line_range;
404 unsigned char opcode_base;
405
406 /* standard_opcode_lengths[i] is the number of operands for the
407 standard opcode whose value is i. This means that
408 standard_opcode_lengths[0] is unused, and the last meaningful
409 element is standard_opcode_lengths[opcode_base - 1]. */
410 unsigned char *standard_opcode_lengths;
411
412 /* The include_directories table. NOTE! These strings are not
413 allocated with xmalloc; instead, they are pointers into
414 debug_line_buffer. If you try to free them, `free' will get
415 indigestion. */
416 unsigned int num_include_dirs, include_dirs_size;
417 char **include_dirs;
418
419 /* The file_names table. NOTE! These strings are not allocated
420 with xmalloc; instead, they are pointers into debug_line_buffer.
421 Don't try to free them directly. */
422 unsigned int num_file_names, file_names_size;
423 struct file_entry
424 {
425 char *name;
426 unsigned int dir_index;
427 unsigned int mod_time;
428 unsigned int length;
429 int included_p; /* Non-zero if referenced by the Line Number Program. */
430 struct symtab *symtab; /* The associated symbol table, if any. */
431 } *file_names;
432
433 /* The start and end of the statement program following this
434 header. These point into dwarf2_per_objfile->line_buffer. */
435 gdb_byte *statement_program_start, *statement_program_end;
436 };
437
438 /* When we construct a partial symbol table entry we only
439 need this much information. */
440 struct partial_die_info
441 {
442 /* Offset of this DIE. */
443 unsigned int offset;
444
445 /* DWARF-2 tag for this DIE. */
446 ENUM_BITFIELD(dwarf_tag) tag : 16;
447
448 /* Assorted flags describing the data found in this DIE. */
449 unsigned int has_children : 1;
450 unsigned int is_external : 1;
451 unsigned int is_declaration : 1;
452 unsigned int has_type : 1;
453 unsigned int has_specification : 1;
454 unsigned int has_pc_info : 1;
455
456 /* Flag set if the SCOPE field of this structure has been
457 computed. */
458 unsigned int scope_set : 1;
459
460 /* Flag set if the DIE has a byte_size attribute. */
461 unsigned int has_byte_size : 1;
462
463 /* The name of this DIE. Normally the value of DW_AT_name, but
464 sometimes a default name for unnamed DIEs. */
465 char *name;
466
467 /* The scope to prepend to our children. This is generally
468 allocated on the comp_unit_obstack, so will disappear
469 when this compilation unit leaves the cache. */
470 char *scope;
471
472 /* The location description associated with this DIE, if any. */
473 struct dwarf_block *locdesc;
474
475 /* If HAS_PC_INFO, the PC range associated with this DIE. */
476 CORE_ADDR lowpc;
477 CORE_ADDR highpc;
478
479 /* Pointer into the info_buffer (or types_buffer) pointing at the target of
480 DW_AT_sibling, if any. */
481 gdb_byte *sibling;
482
483 /* If HAS_SPECIFICATION, the offset of the DIE referred to by
484 DW_AT_specification (or DW_AT_abstract_origin or
485 DW_AT_extension). */
486 unsigned int spec_offset;
487
488 /* Pointers to this DIE's parent, first child, and next sibling,
489 if any. */
490 struct partial_die_info *die_parent, *die_child, *die_sibling;
491 };
492
493 /* This data structure holds the information of an abbrev. */
494 struct abbrev_info
495 {
496 unsigned int number; /* number identifying abbrev */
497 enum dwarf_tag tag; /* dwarf tag */
498 unsigned short has_children; /* boolean */
499 unsigned short num_attrs; /* number of attributes */
500 struct attr_abbrev *attrs; /* an array of attribute descriptions */
501 struct abbrev_info *next; /* next in chain */
502 };
503
504 struct attr_abbrev
505 {
506 ENUM_BITFIELD(dwarf_attribute) name : 16;
507 ENUM_BITFIELD(dwarf_form) form : 16;
508 };
509
510 /* Attributes have a name and a value */
511 struct attribute
512 {
513 ENUM_BITFIELD(dwarf_attribute) name : 16;
514 ENUM_BITFIELD(dwarf_form) form : 15;
515
516 /* Has DW_STRING already been updated by dwarf2_canonicalize_name? This
517 field should be in u.str (existing only for DW_STRING) but it is kept
518 here for better struct attribute alignment. */
519 unsigned int string_is_canonical : 1;
520
521 union
522 {
523 char *str;
524 struct dwarf_block *blk;
525 ULONGEST unsnd;
526 LONGEST snd;
527 CORE_ADDR addr;
528 struct signatured_type *signatured_type;
529 }
530 u;
531 };
532
533 /* This data structure holds a complete die structure. */
534 struct die_info
535 {
536 /* DWARF-2 tag for this DIE. */
537 ENUM_BITFIELD(dwarf_tag) tag : 16;
538
539 /* Number of attributes */
540 unsigned short num_attrs;
541
542 /* Abbrev number */
543 unsigned int abbrev;
544
545 /* Offset in .debug_info or .debug_types section. */
546 unsigned int offset;
547
548 /* The dies in a compilation unit form an n-ary tree. PARENT
549 points to this die's parent; CHILD points to the first child of
550 this node; and all the children of a given node are chained
551 together via their SIBLING fields, terminated by a die whose
552 tag is zero. */
553 struct die_info *child; /* Its first child, if any. */
554 struct die_info *sibling; /* Its next sibling, if any. */
555 struct die_info *parent; /* Its parent, if any. */
556
557 /* An array of attributes, with NUM_ATTRS elements. There may be
558 zero, but it's not common and zero-sized arrays are not
559 sufficiently portable C. */
560 struct attribute attrs[1];
561 };
562
563 struct function_range
564 {
565 const char *name;
566 CORE_ADDR lowpc, highpc;
567 int seen_line;
568 struct function_range *next;
569 };
570
571 /* Get at parts of an attribute structure */
572
573 #define DW_STRING(attr) ((attr)->u.str)
574 #define DW_STRING_IS_CANONICAL(attr) ((attr)->string_is_canonical)
575 #define DW_UNSND(attr) ((attr)->u.unsnd)
576 #define DW_BLOCK(attr) ((attr)->u.blk)
577 #define DW_SND(attr) ((attr)->u.snd)
578 #define DW_ADDR(attr) ((attr)->u.addr)
579 #define DW_SIGNATURED_TYPE(attr) ((attr)->u.signatured_type)
580
581 /* Blocks are a bunch of untyped bytes. */
582 struct dwarf_block
583 {
584 unsigned int size;
585 gdb_byte *data;
586 };
587
588 #ifndef ATTR_ALLOC_CHUNK
589 #define ATTR_ALLOC_CHUNK 4
590 #endif
591
592 /* Allocate fields for structs, unions and enums in this size. */
593 #ifndef DW_FIELD_ALLOC_CHUNK
594 #define DW_FIELD_ALLOC_CHUNK 4
595 #endif
596
597 /* FIXME: We might want to set this from BFD via bfd_arch_bits_per_byte,
598 but this would require a corresponding change in unpack_field_as_long
599 and friends. */
600 static int bits_per_byte = 8;
601
602 /* The routines that read and process dies for a C struct or C++ class
603 pass lists of data member fields and lists of member function fields
604 in an instance of a field_info structure, as defined below. */
605 struct field_info
606 {
607 /* List of data member and baseclasses fields. */
608 struct nextfield
609 {
610 struct nextfield *next;
611 int accessibility;
612 int virtuality;
613 struct field field;
614 }
615 *fields, *baseclasses;
616
617 /* Number of fields (including baseclasses). */
618 int nfields;
619
620 /* Number of baseclasses. */
621 int nbaseclasses;
622
623 /* Set if the accesibility of one of the fields is not public. */
624 int non_public_fields;
625
626 /* Member function fields array, entries are allocated in the order they
627 are encountered in the object file. */
628 struct nextfnfield
629 {
630 struct nextfnfield *next;
631 struct fn_field fnfield;
632 }
633 *fnfields;
634
635 /* Member function fieldlist array, contains name of possibly overloaded
636 member function, number of overloaded member functions and a pointer
637 to the head of the member function field chain. */
638 struct fnfieldlist
639 {
640 char *name;
641 int length;
642 struct nextfnfield *head;
643 }
644 *fnfieldlists;
645
646 /* Number of entries in the fnfieldlists array. */
647 int nfnfields;
648
649 /* typedefs defined inside this class. TYPEDEF_FIELD_LIST contains head of
650 a NULL terminated list of TYPEDEF_FIELD_LIST_COUNT elements. */
651 struct typedef_field_list
652 {
653 struct typedef_field field;
654 struct typedef_field_list *next;
655 }
656 *typedef_field_list;
657 unsigned typedef_field_list_count;
658 };
659
660 /* One item on the queue of compilation units to read in full symbols
661 for. */
662 struct dwarf2_queue_item
663 {
664 struct dwarf2_per_cu_data *per_cu;
665 struct dwarf2_queue_item *next;
666 };
667
668 /* The current queue. */
669 static struct dwarf2_queue_item *dwarf2_queue, *dwarf2_queue_tail;
670
671 /* Loaded secondary compilation units are kept in memory until they
672 have not been referenced for the processing of this many
673 compilation units. Set this to zero to disable caching. Cache
674 sizes of up to at least twenty will improve startup time for
675 typical inter-CU-reference binaries, at an obvious memory cost. */
676 static int dwarf2_max_cache_age = 5;
677 static void
678 show_dwarf2_max_cache_age (struct ui_file *file, int from_tty,
679 struct cmd_list_element *c, const char *value)
680 {
681 fprintf_filtered (file, _("\
682 The upper bound on the age of cached dwarf2 compilation units is %s.\n"),
683 value);
684 }
685
686
687 /* Various complaints about symbol reading that don't abort the process */
688
689 static void
690 dwarf2_statement_list_fits_in_line_number_section_complaint (void)
691 {
692 complaint (&symfile_complaints,
693 _("statement list doesn't fit in .debug_line section"));
694 }
695
696 static void
697 dwarf2_debug_line_missing_file_complaint (void)
698 {
699 complaint (&symfile_complaints,
700 _(".debug_line section has line data without a file"));
701 }
702
703 static void
704 dwarf2_debug_line_missing_end_sequence_complaint (void)
705 {
706 complaint (&symfile_complaints,
707 _(".debug_line section has line program sequence without an end"));
708 }
709
710 static void
711 dwarf2_complex_location_expr_complaint (void)
712 {
713 complaint (&symfile_complaints, _("location expression too complex"));
714 }
715
716 static void
717 dwarf2_const_value_length_mismatch_complaint (const char *arg1, int arg2,
718 int arg3)
719 {
720 complaint (&symfile_complaints,
721 _("const value length mismatch for '%s', got %d, expected %d"), arg1,
722 arg2, arg3);
723 }
724
725 static void
726 dwarf2_macros_too_long_complaint (void)
727 {
728 complaint (&symfile_complaints,
729 _("macro info runs off end of `.debug_macinfo' section"));
730 }
731
732 static void
733 dwarf2_macro_malformed_definition_complaint (const char *arg1)
734 {
735 complaint (&symfile_complaints,
736 _("macro debug info contains a malformed macro definition:\n`%s'"),
737 arg1);
738 }
739
740 static void
741 dwarf2_invalid_attrib_class_complaint (const char *arg1, const char *arg2)
742 {
743 complaint (&symfile_complaints,
744 _("invalid attribute class or form for '%s' in '%s'"), arg1, arg2);
745 }
746
747 /* local function prototypes */
748
749 static void dwarf2_locate_sections (bfd *, asection *, void *);
750
751 static void dwarf2_create_include_psymtab (char *, struct partial_symtab *,
752 struct objfile *);
753
754 static void dwarf2_build_include_psymtabs (struct dwarf2_cu *,
755 struct die_info *,
756 struct partial_symtab *);
757
758 static void dwarf2_build_psymtabs_hard (struct objfile *);
759
760 static void scan_partial_symbols (struct partial_die_info *,
761 CORE_ADDR *, CORE_ADDR *,
762 int, struct dwarf2_cu *);
763
764 static void add_partial_symbol (struct partial_die_info *,
765 struct dwarf2_cu *);
766
767 static void add_partial_namespace (struct partial_die_info *pdi,
768 CORE_ADDR *lowpc, CORE_ADDR *highpc,
769 int need_pc, struct dwarf2_cu *cu);
770
771 static void add_partial_module (struct partial_die_info *pdi, CORE_ADDR *lowpc,
772 CORE_ADDR *highpc, int need_pc,
773 struct dwarf2_cu *cu);
774
775 static void add_partial_enumeration (struct partial_die_info *enum_pdi,
776 struct dwarf2_cu *cu);
777
778 static void add_partial_subprogram (struct partial_die_info *pdi,
779 CORE_ADDR *lowpc, CORE_ADDR *highpc,
780 int need_pc, struct dwarf2_cu *cu);
781
782 static gdb_byte *locate_pdi_sibling (struct partial_die_info *orig_pdi,
783 gdb_byte *buffer, gdb_byte *info_ptr,
784 bfd *abfd, struct dwarf2_cu *cu);
785
786 static void dwarf2_psymtab_to_symtab (struct partial_symtab *);
787
788 static void psymtab_to_symtab_1 (struct partial_symtab *);
789
790 static void dwarf2_read_abbrevs (bfd *abfd, struct dwarf2_cu *cu);
791
792 static void dwarf2_free_abbrev_table (void *);
793
794 static struct abbrev_info *peek_die_abbrev (gdb_byte *, unsigned int *,
795 struct dwarf2_cu *);
796
797 static struct abbrev_info *dwarf2_lookup_abbrev (unsigned int,
798 struct dwarf2_cu *);
799
800 static struct partial_die_info *load_partial_dies (bfd *,
801 gdb_byte *, gdb_byte *,
802 int, struct dwarf2_cu *);
803
804 static gdb_byte *read_partial_die (struct partial_die_info *,
805 struct abbrev_info *abbrev,
806 unsigned int, bfd *,
807 gdb_byte *, gdb_byte *,
808 struct dwarf2_cu *);
809
810 static struct partial_die_info *find_partial_die (unsigned int,
811 struct dwarf2_cu *);
812
813 static void fixup_partial_die (struct partial_die_info *,
814 struct dwarf2_cu *);
815
816 static gdb_byte *read_attribute (struct attribute *, struct attr_abbrev *,
817 bfd *, gdb_byte *, struct dwarf2_cu *);
818
819 static gdb_byte *read_attribute_value (struct attribute *, unsigned,
820 bfd *, gdb_byte *, struct dwarf2_cu *);
821
822 static unsigned int read_1_byte (bfd *, gdb_byte *);
823
824 static int read_1_signed_byte (bfd *, gdb_byte *);
825
826 static unsigned int read_2_bytes (bfd *, gdb_byte *);
827
828 static unsigned int read_4_bytes (bfd *, gdb_byte *);
829
830 static ULONGEST read_8_bytes (bfd *, gdb_byte *);
831
832 static CORE_ADDR read_address (bfd *, gdb_byte *ptr, struct dwarf2_cu *,
833 unsigned int *);
834
835 static LONGEST read_initial_length (bfd *, gdb_byte *, unsigned int *);
836
837 static LONGEST read_checked_initial_length_and_offset
838 (bfd *, gdb_byte *, const struct comp_unit_head *,
839 unsigned int *, unsigned int *);
840
841 static LONGEST read_offset (bfd *, gdb_byte *, const struct comp_unit_head *,
842 unsigned int *);
843
844 static LONGEST read_offset_1 (bfd *, gdb_byte *, unsigned int);
845
846 static gdb_byte *read_n_bytes (bfd *, gdb_byte *, unsigned int);
847
848 static char *read_string (bfd *, gdb_byte *, unsigned int *);
849
850 static char *read_indirect_string (bfd *, gdb_byte *,
851 const struct comp_unit_head *,
852 unsigned int *);
853
854 static unsigned long read_unsigned_leb128 (bfd *, gdb_byte *, unsigned int *);
855
856 static long read_signed_leb128 (bfd *, gdb_byte *, unsigned int *);
857
858 static gdb_byte *skip_leb128 (bfd *, gdb_byte *);
859
860 static void set_cu_language (unsigned int, struct dwarf2_cu *);
861
862 static struct attribute *dwarf2_attr (struct die_info *, unsigned int,
863 struct dwarf2_cu *);
864
865 static struct attribute *dwarf2_attr_no_follow (struct die_info *,
866 unsigned int,
867 struct dwarf2_cu *);
868
869 static int dwarf2_flag_true_p (struct die_info *die, unsigned name,
870 struct dwarf2_cu *cu);
871
872 static int die_is_declaration (struct die_info *, struct dwarf2_cu *cu);
873
874 static struct die_info *die_specification (struct die_info *die,
875 struct dwarf2_cu **);
876
877 static void free_line_header (struct line_header *lh);
878
879 static void add_file_name (struct line_header *, char *, unsigned int,
880 unsigned int, unsigned int);
881
882 static struct line_header *(dwarf_decode_line_header
883 (unsigned int offset,
884 bfd *abfd, struct dwarf2_cu *cu));
885
886 static void dwarf_decode_lines (struct line_header *, char *, bfd *,
887 struct dwarf2_cu *, struct partial_symtab *);
888
889 static void dwarf2_start_subfile (char *, char *, char *);
890
891 static struct symbol *new_symbol (struct die_info *, struct type *,
892 struct dwarf2_cu *);
893
894 static void dwarf2_const_value (struct attribute *, struct symbol *,
895 struct dwarf2_cu *);
896
897 static void dwarf2_const_value_data (struct attribute *attr,
898 struct symbol *sym,
899 int bits);
900
901 static struct type *die_type (struct die_info *, struct dwarf2_cu *);
902
903 static int need_gnat_info (struct dwarf2_cu *);
904
905 static struct type *die_descriptive_type (struct die_info *, struct dwarf2_cu *);
906
907 static void set_descriptive_type (struct type *, struct die_info *,
908 struct dwarf2_cu *);
909
910 static struct type *die_containing_type (struct die_info *,
911 struct dwarf2_cu *);
912
913 static struct type *tag_type_to_type (struct die_info *, struct dwarf2_cu *);
914
915 static struct type *read_type_die (struct die_info *, struct dwarf2_cu *);
916
917 static char *determine_prefix (struct die_info *die, struct dwarf2_cu *);
918
919 static char *typename_concat (struct obstack *obs, const char *prefix,
920 const char *suffix, int physname,
921 struct dwarf2_cu *cu);
922
923 static void read_file_scope (struct die_info *, struct dwarf2_cu *);
924
925 static void read_type_unit_scope (struct die_info *, struct dwarf2_cu *);
926
927 static void read_func_scope (struct die_info *, struct dwarf2_cu *);
928
929 static void read_lexical_block_scope (struct die_info *, struct dwarf2_cu *);
930
931 static int dwarf2_ranges_read (unsigned, CORE_ADDR *, CORE_ADDR *,
932 struct dwarf2_cu *, struct partial_symtab *);
933
934 static int dwarf2_get_pc_bounds (struct die_info *,
935 CORE_ADDR *, CORE_ADDR *, struct dwarf2_cu *,
936 struct partial_symtab *);
937
938 static void get_scope_pc_bounds (struct die_info *,
939 CORE_ADDR *, CORE_ADDR *,
940 struct dwarf2_cu *);
941
942 static void dwarf2_record_block_ranges (struct die_info *, struct block *,
943 CORE_ADDR, struct dwarf2_cu *);
944
945 static void dwarf2_add_field (struct field_info *, struct die_info *,
946 struct dwarf2_cu *);
947
948 static void dwarf2_attach_fields_to_type (struct field_info *,
949 struct type *, struct dwarf2_cu *);
950
951 static void dwarf2_add_member_fn (struct field_info *,
952 struct die_info *, struct type *,
953 struct dwarf2_cu *);
954
955 static void dwarf2_attach_fn_fields_to_type (struct field_info *,
956 struct type *, struct dwarf2_cu *);
957
958 static void process_structure_scope (struct die_info *, struct dwarf2_cu *);
959
960 static void read_common_block (struct die_info *, struct dwarf2_cu *);
961
962 static void read_namespace (struct die_info *die, struct dwarf2_cu *);
963
964 static void read_module (struct die_info *die, struct dwarf2_cu *cu);
965
966 static void read_import_statement (struct die_info *die, struct dwarf2_cu *);
967
968 static struct type *read_module_type (struct die_info *die,
969 struct dwarf2_cu *cu);
970
971 static const char *namespace_name (struct die_info *die,
972 int *is_anonymous, struct dwarf2_cu *);
973
974 static void process_enumeration_scope (struct die_info *, struct dwarf2_cu *);
975
976 static CORE_ADDR decode_locdesc (struct dwarf_block *, struct dwarf2_cu *);
977
978 static enum dwarf_array_dim_ordering read_array_order (struct die_info *,
979 struct dwarf2_cu *);
980
981 static struct die_info *read_comp_unit (gdb_byte *, struct dwarf2_cu *);
982
983 static struct die_info *read_die_and_children_1 (const struct die_reader_specs *reader,
984 gdb_byte *info_ptr,
985 gdb_byte **new_info_ptr,
986 struct die_info *parent);
987
988 static struct die_info *read_die_and_children (const struct die_reader_specs *reader,
989 gdb_byte *info_ptr,
990 gdb_byte **new_info_ptr,
991 struct die_info *parent);
992
993 static struct die_info *read_die_and_siblings (const struct die_reader_specs *reader,
994 gdb_byte *info_ptr,
995 gdb_byte **new_info_ptr,
996 struct die_info *parent);
997
998 static gdb_byte *read_full_die (const struct die_reader_specs *reader,
999 struct die_info **, gdb_byte *,
1000 int *);
1001
1002 static void process_die (struct die_info *, struct dwarf2_cu *);
1003
1004 static char *dwarf2_canonicalize_name (char *, struct dwarf2_cu *,
1005 struct obstack *);
1006
1007 static char *dwarf2_name (struct die_info *die, struct dwarf2_cu *);
1008
1009 static struct die_info *dwarf2_extension (struct die_info *die,
1010 struct dwarf2_cu **);
1011
1012 static char *dwarf_tag_name (unsigned int);
1013
1014 static char *dwarf_attr_name (unsigned int);
1015
1016 static char *dwarf_form_name (unsigned int);
1017
1018 static char *dwarf_bool_name (unsigned int);
1019
1020 static char *dwarf_type_encoding_name (unsigned int);
1021
1022 #if 0
1023 static char *dwarf_cfi_name (unsigned int);
1024 #endif
1025
1026 static struct die_info *sibling_die (struct die_info *);
1027
1028 static void dump_die_shallow (struct ui_file *, int indent, struct die_info *);
1029
1030 static void dump_die_for_error (struct die_info *);
1031
1032 static void dump_die_1 (struct ui_file *, int level, int max_level,
1033 struct die_info *);
1034
1035 /*static*/ void dump_die (struct die_info *, int max_level);
1036
1037 static void store_in_ref_table (struct die_info *,
1038 struct dwarf2_cu *);
1039
1040 static int is_ref_attr (struct attribute *);
1041
1042 static unsigned int dwarf2_get_ref_die_offset (struct attribute *);
1043
1044 static LONGEST dwarf2_get_attr_constant_value (struct attribute *, int);
1045
1046 static struct die_info *follow_die_ref_or_sig (struct die_info *,
1047 struct attribute *,
1048 struct dwarf2_cu **);
1049
1050 static struct die_info *follow_die_ref (struct die_info *,
1051 struct attribute *,
1052 struct dwarf2_cu **);
1053
1054 static struct die_info *follow_die_sig (struct die_info *,
1055 struct attribute *,
1056 struct dwarf2_cu **);
1057
1058 static void read_signatured_type_at_offset (struct objfile *objfile,
1059 unsigned int offset);
1060
1061 static void read_signatured_type (struct objfile *,
1062 struct signatured_type *type_sig);
1063
1064 /* memory allocation interface */
1065
1066 static struct dwarf_block *dwarf_alloc_block (struct dwarf2_cu *);
1067
1068 static struct abbrev_info *dwarf_alloc_abbrev (struct dwarf2_cu *);
1069
1070 static struct die_info *dwarf_alloc_die (struct dwarf2_cu *, int);
1071
1072 static void initialize_cu_func_list (struct dwarf2_cu *);
1073
1074 static void add_to_cu_func_list (const char *, CORE_ADDR, CORE_ADDR,
1075 struct dwarf2_cu *);
1076
1077 static void dwarf_decode_macros (struct line_header *, unsigned int,
1078 char *, bfd *, struct dwarf2_cu *);
1079
1080 static int attr_form_is_block (struct attribute *);
1081
1082 static int attr_form_is_section_offset (struct attribute *);
1083
1084 static int attr_form_is_constant (struct attribute *);
1085
1086 static void dwarf2_symbol_mark_computed (struct attribute *attr,
1087 struct symbol *sym,
1088 struct dwarf2_cu *cu);
1089
1090 static gdb_byte *skip_one_die (gdb_byte *buffer, gdb_byte *info_ptr,
1091 struct abbrev_info *abbrev,
1092 struct dwarf2_cu *cu);
1093
1094 static void free_stack_comp_unit (void *);
1095
1096 static hashval_t partial_die_hash (const void *item);
1097
1098 static int partial_die_eq (const void *item_lhs, const void *item_rhs);
1099
1100 static struct dwarf2_per_cu_data *dwarf2_find_containing_comp_unit
1101 (unsigned int offset, struct objfile *objfile);
1102
1103 static struct dwarf2_per_cu_data *dwarf2_find_comp_unit
1104 (unsigned int offset, struct objfile *objfile);
1105
1106 static struct dwarf2_cu *alloc_one_comp_unit (struct objfile *objfile);
1107
1108 static void free_one_comp_unit (void *);
1109
1110 static void free_cached_comp_units (void *);
1111
1112 static void age_cached_comp_units (void);
1113
1114 static void free_one_cached_comp_unit (void *);
1115
1116 static struct type *set_die_type (struct die_info *, struct type *,
1117 struct dwarf2_cu *);
1118
1119 static void create_all_comp_units (struct objfile *);
1120
1121 static void load_full_comp_unit (struct dwarf2_per_cu_data *,
1122 struct objfile *);
1123
1124 static void process_full_comp_unit (struct dwarf2_per_cu_data *);
1125
1126 static void dwarf2_add_dependence (struct dwarf2_cu *,
1127 struct dwarf2_per_cu_data *);
1128
1129 static void dwarf2_mark (struct dwarf2_cu *);
1130
1131 static void dwarf2_clear_marks (struct dwarf2_per_cu_data *);
1132
1133 static struct type *get_die_type (struct die_info *die, struct dwarf2_cu *cu);
1134
1135 /* Try to locate the sections we need for DWARF 2 debugging
1136 information and return true if we have enough to do something. */
1137
1138 int
1139 dwarf2_has_info (struct objfile *objfile)
1140 {
1141 dwarf2_per_objfile = objfile_data (objfile, dwarf2_objfile_data_key);
1142 if (!dwarf2_per_objfile)
1143 {
1144 /* Initialize per-objfile state. */
1145 struct dwarf2_per_objfile *data
1146 = obstack_alloc (&objfile->objfile_obstack, sizeof (*data));
1147
1148 memset (data, 0, sizeof (*data));
1149 set_objfile_data (objfile, dwarf2_objfile_data_key, data);
1150 dwarf2_per_objfile = data;
1151
1152 bfd_map_over_sections (objfile->obfd, dwarf2_locate_sections, NULL);
1153 dwarf2_per_objfile->objfile = objfile;
1154 }
1155 return (dwarf2_per_objfile->info.asection != NULL
1156 && dwarf2_per_objfile->abbrev.asection != NULL);
1157 }
1158
1159 /* When loading sections, we can either look for ".<name>", or for
1160 * ".z<name>", which indicates a compressed section. */
1161
1162 static int
1163 section_is_p (const char *section_name, const char *name)
1164 {
1165 return (section_name[0] == '.'
1166 && (strcmp (section_name + 1, name) == 0
1167 || (section_name[1] == 'z'
1168 && strcmp (section_name + 2, name) == 0)));
1169 }
1170
1171 /* This function is mapped across the sections and remembers the
1172 offset and size of each of the debugging sections we are interested
1173 in. */
1174
1175 static void
1176 dwarf2_locate_sections (bfd *abfd, asection *sectp, void *ignore_ptr)
1177 {
1178 if (section_is_p (sectp->name, INFO_SECTION))
1179 {
1180 dwarf2_per_objfile->info.asection = sectp;
1181 dwarf2_per_objfile->info.size = bfd_get_section_size (sectp);
1182 }
1183 else if (section_is_p (sectp->name, ABBREV_SECTION))
1184 {
1185 dwarf2_per_objfile->abbrev.asection = sectp;
1186 dwarf2_per_objfile->abbrev.size = bfd_get_section_size (sectp);
1187 }
1188 else if (section_is_p (sectp->name, LINE_SECTION))
1189 {
1190 dwarf2_per_objfile->line.asection = sectp;
1191 dwarf2_per_objfile->line.size = bfd_get_section_size (sectp);
1192 }
1193 else if (section_is_p (sectp->name, LOC_SECTION))
1194 {
1195 dwarf2_per_objfile->loc.asection = sectp;
1196 dwarf2_per_objfile->loc.size = bfd_get_section_size (sectp);
1197 }
1198 else if (section_is_p (sectp->name, MACINFO_SECTION))
1199 {
1200 dwarf2_per_objfile->macinfo.asection = sectp;
1201 dwarf2_per_objfile->macinfo.size = bfd_get_section_size (sectp);
1202 }
1203 else if (section_is_p (sectp->name, STR_SECTION))
1204 {
1205 dwarf2_per_objfile->str.asection = sectp;
1206 dwarf2_per_objfile->str.size = bfd_get_section_size (sectp);
1207 }
1208 else if (section_is_p (sectp->name, FRAME_SECTION))
1209 {
1210 dwarf2_per_objfile->frame.asection = sectp;
1211 dwarf2_per_objfile->frame.size = bfd_get_section_size (sectp);
1212 }
1213 else if (section_is_p (sectp->name, EH_FRAME_SECTION))
1214 {
1215 flagword aflag = bfd_get_section_flags (ignore_abfd, sectp);
1216
1217 if (aflag & SEC_HAS_CONTENTS)
1218 {
1219 dwarf2_per_objfile->eh_frame.asection = sectp;
1220 dwarf2_per_objfile->eh_frame.size = bfd_get_section_size (sectp);
1221 }
1222 }
1223 else if (section_is_p (sectp->name, RANGES_SECTION))
1224 {
1225 dwarf2_per_objfile->ranges.asection = sectp;
1226 dwarf2_per_objfile->ranges.size = bfd_get_section_size (sectp);
1227 }
1228 else if (section_is_p (sectp->name, TYPES_SECTION))
1229 {
1230 dwarf2_per_objfile->types.asection = sectp;
1231 dwarf2_per_objfile->types.size = bfd_get_section_size (sectp);
1232 }
1233
1234 if ((bfd_get_section_flags (abfd, sectp) & SEC_LOAD)
1235 && bfd_section_vma (abfd, sectp) == 0)
1236 dwarf2_per_objfile->has_section_at_zero = 1;
1237 }
1238
1239 /* Decompress a section that was compressed using zlib. Store the
1240 decompressed buffer, and its size, in OUTBUF and OUTSIZE. */
1241
1242 static void
1243 zlib_decompress_section (struct objfile *objfile, asection *sectp,
1244 gdb_byte **outbuf, bfd_size_type *outsize)
1245 {
1246 bfd *abfd = objfile->obfd;
1247 #ifndef HAVE_ZLIB_H
1248 error (_("Support for zlib-compressed DWARF data (from '%s') "
1249 "is disabled in this copy of GDB"),
1250 bfd_get_filename (abfd));
1251 #else
1252 bfd_size_type compressed_size = bfd_get_section_size (sectp);
1253 gdb_byte *compressed_buffer = xmalloc (compressed_size);
1254 struct cleanup *cleanup = make_cleanup (xfree, compressed_buffer);
1255 bfd_size_type uncompressed_size;
1256 gdb_byte *uncompressed_buffer;
1257 z_stream strm;
1258 int rc;
1259 int header_size = 12;
1260
1261 if (bfd_seek (abfd, sectp->filepos, SEEK_SET) != 0
1262 || bfd_bread (compressed_buffer, compressed_size, abfd) != compressed_size)
1263 error (_("Dwarf Error: Can't read DWARF data from '%s'"),
1264 bfd_get_filename (abfd));
1265
1266 /* Read the zlib header. In this case, it should be "ZLIB" followed
1267 by the uncompressed section size, 8 bytes in big-endian order. */
1268 if (compressed_size < header_size
1269 || strncmp (compressed_buffer, "ZLIB", 4) != 0)
1270 error (_("Dwarf Error: Corrupt DWARF ZLIB header from '%s'"),
1271 bfd_get_filename (abfd));
1272 uncompressed_size = compressed_buffer[4]; uncompressed_size <<= 8;
1273 uncompressed_size += compressed_buffer[5]; uncompressed_size <<= 8;
1274 uncompressed_size += compressed_buffer[6]; uncompressed_size <<= 8;
1275 uncompressed_size += compressed_buffer[7]; uncompressed_size <<= 8;
1276 uncompressed_size += compressed_buffer[8]; uncompressed_size <<= 8;
1277 uncompressed_size += compressed_buffer[9]; uncompressed_size <<= 8;
1278 uncompressed_size += compressed_buffer[10]; uncompressed_size <<= 8;
1279 uncompressed_size += compressed_buffer[11];
1280
1281 /* It is possible the section consists of several compressed
1282 buffers concatenated together, so we uncompress in a loop. */
1283 strm.zalloc = NULL;
1284 strm.zfree = NULL;
1285 strm.opaque = NULL;
1286 strm.avail_in = compressed_size - header_size;
1287 strm.next_in = (Bytef*) compressed_buffer + header_size;
1288 strm.avail_out = uncompressed_size;
1289 uncompressed_buffer = obstack_alloc (&objfile->objfile_obstack,
1290 uncompressed_size);
1291 rc = inflateInit (&strm);
1292 while (strm.avail_in > 0)
1293 {
1294 if (rc != Z_OK)
1295 error (_("Dwarf Error: setting up DWARF uncompression in '%s': %d"),
1296 bfd_get_filename (abfd), rc);
1297 strm.next_out = ((Bytef*) uncompressed_buffer
1298 + (uncompressed_size - strm.avail_out));
1299 rc = inflate (&strm, Z_FINISH);
1300 if (rc != Z_STREAM_END)
1301 error (_("Dwarf Error: zlib error uncompressing from '%s': %d"),
1302 bfd_get_filename (abfd), rc);
1303 rc = inflateReset (&strm);
1304 }
1305 rc = inflateEnd (&strm);
1306 if (rc != Z_OK
1307 || strm.avail_out != 0)
1308 error (_("Dwarf Error: concluding DWARF uncompression in '%s': %d"),
1309 bfd_get_filename (abfd), rc);
1310
1311 do_cleanups (cleanup);
1312 *outbuf = uncompressed_buffer;
1313 *outsize = uncompressed_size;
1314 #endif
1315 }
1316
1317 /* Read the contents of the section SECTP from object file specified by
1318 OBJFILE, store info about the section into INFO.
1319 If the section is compressed, uncompress it before returning. */
1320
1321 static void
1322 dwarf2_read_section (struct objfile *objfile, struct dwarf2_section_info *info)
1323 {
1324 bfd *abfd = objfile->obfd;
1325 asection *sectp = info->asection;
1326 gdb_byte *buf, *retbuf;
1327 unsigned char header[4];
1328
1329 if (info->readin)
1330 return;
1331 info->buffer = NULL;
1332 info->was_mmapped = 0;
1333 info->readin = 1;
1334
1335 if (info->asection == NULL || info->size == 0)
1336 return;
1337
1338 /* Check if the file has a 4-byte header indicating compression. */
1339 if (info->size > sizeof (header)
1340 && bfd_seek (abfd, sectp->filepos, SEEK_SET) == 0
1341 && bfd_bread (header, sizeof (header), abfd) == sizeof (header))
1342 {
1343 /* Upon decompression, update the buffer and its size. */
1344 if (strncmp (header, "ZLIB", sizeof (header)) == 0)
1345 {
1346 zlib_decompress_section (objfile, sectp, &info->buffer,
1347 &info->size);
1348 return;
1349 }
1350 }
1351
1352 #ifdef HAVE_MMAP
1353 if (pagesize == 0)
1354 pagesize = getpagesize ();
1355
1356 /* Only try to mmap sections which are large enough: we don't want to
1357 waste space due to fragmentation. Also, only try mmap for sections
1358 without relocations. */
1359
1360 if (info->size > 4 * pagesize && (sectp->flags & SEC_RELOC) == 0)
1361 {
1362 off_t pg_offset = sectp->filepos & ~(pagesize - 1);
1363 size_t map_length = info->size + sectp->filepos - pg_offset;
1364 caddr_t retbuf = bfd_mmap (abfd, 0, map_length, PROT_READ,
1365 MAP_PRIVATE, pg_offset);
1366
1367 if (retbuf != MAP_FAILED)
1368 {
1369 info->was_mmapped = 1;
1370 info->buffer = retbuf + (sectp->filepos & (pagesize - 1)) ;
1371 #if HAVE_POSIX_MADVISE
1372 posix_madvise (retbuf, map_length, POSIX_MADV_WILLNEED);
1373 #endif
1374 return;
1375 }
1376 }
1377 #endif
1378
1379 /* If we get here, we are a normal, not-compressed section. */
1380 info->buffer = buf
1381 = obstack_alloc (&objfile->objfile_obstack, info->size);
1382
1383 /* When debugging .o files, we may need to apply relocations; see
1384 http://sourceware.org/ml/gdb-patches/2002-04/msg00136.html .
1385 We never compress sections in .o files, so we only need to
1386 try this when the section is not compressed. */
1387 retbuf = symfile_relocate_debug_section (objfile, sectp, buf);
1388 if (retbuf != NULL)
1389 {
1390 info->buffer = retbuf;
1391 return;
1392 }
1393
1394 if (bfd_seek (abfd, sectp->filepos, SEEK_SET) != 0
1395 || bfd_bread (buf, info->size, abfd) != info->size)
1396 error (_("Dwarf Error: Can't read DWARF data from '%s'"),
1397 bfd_get_filename (abfd));
1398 }
1399
1400 /* Fill in SECTP, BUFP and SIZEP with section info, given OBJFILE and
1401 SECTION_NAME. */
1402
1403 void
1404 dwarf2_get_section_info (struct objfile *objfile, const char *section_name,
1405 asection **sectp, gdb_byte **bufp,
1406 bfd_size_type *sizep)
1407 {
1408 struct dwarf2_per_objfile *data
1409 = objfile_data (objfile, dwarf2_objfile_data_key);
1410 struct dwarf2_section_info *info;
1411
1412 /* We may see an objfile without any DWARF, in which case we just
1413 return nothing. */
1414 if (data == NULL)
1415 {
1416 *sectp = NULL;
1417 *bufp = NULL;
1418 *sizep = 0;
1419 return;
1420 }
1421 if (section_is_p (section_name, EH_FRAME_SECTION))
1422 info = &data->eh_frame;
1423 else if (section_is_p (section_name, FRAME_SECTION))
1424 info = &data->frame;
1425 else
1426 gdb_assert (0);
1427
1428 if (info->asection != NULL && info->size != 0 && info->buffer == NULL)
1429 /* We haven't read this section in yet. Do it now. */
1430 dwarf2_read_section (objfile, info);
1431
1432 *sectp = info->asection;
1433 *bufp = info->buffer;
1434 *sizep = info->size;
1435 }
1436
1437 /* Build a partial symbol table. */
1438
1439 void
1440 dwarf2_build_psymtabs (struct objfile *objfile)
1441 {
1442 if (objfile->global_psymbols.size == 0 && objfile->static_psymbols.size == 0)
1443 {
1444 init_psymbol_list (objfile, 1024);
1445 }
1446
1447 dwarf2_build_psymtabs_hard (objfile);
1448 }
1449
1450 /* Return TRUE if OFFSET is within CU_HEADER. */
1451
1452 static inline int
1453 offset_in_cu_p (const struct comp_unit_head *cu_header, unsigned int offset)
1454 {
1455 unsigned int bottom = cu_header->offset;
1456 unsigned int top = (cu_header->offset
1457 + cu_header->length
1458 + cu_header->initial_length_size);
1459
1460 return (offset >= bottom && offset < top);
1461 }
1462
1463 /* Read in the comp unit header information from the debug_info at info_ptr.
1464 NOTE: This leaves members offset, first_die_offset to be filled in
1465 by the caller. */
1466
1467 static gdb_byte *
1468 read_comp_unit_head (struct comp_unit_head *cu_header,
1469 gdb_byte *info_ptr, bfd *abfd)
1470 {
1471 int signed_addr;
1472 unsigned int bytes_read;
1473
1474 cu_header->length = read_initial_length (abfd, info_ptr, &bytes_read);
1475 cu_header->initial_length_size = bytes_read;
1476 cu_header->offset_size = (bytes_read == 4) ? 4 : 8;
1477 info_ptr += bytes_read;
1478 cu_header->version = read_2_bytes (abfd, info_ptr);
1479 info_ptr += 2;
1480 cu_header->abbrev_offset = read_offset (abfd, info_ptr, cu_header,
1481 &bytes_read);
1482 info_ptr += bytes_read;
1483 cu_header->addr_size = read_1_byte (abfd, info_ptr);
1484 info_ptr += 1;
1485 signed_addr = bfd_get_sign_extend_vma (abfd);
1486 if (signed_addr < 0)
1487 internal_error (__FILE__, __LINE__,
1488 _("read_comp_unit_head: dwarf from non elf file"));
1489 cu_header->signed_addr_p = signed_addr;
1490
1491 return info_ptr;
1492 }
1493
1494 static gdb_byte *
1495 partial_read_comp_unit_head (struct comp_unit_head *header, gdb_byte *info_ptr,
1496 gdb_byte *buffer, unsigned int buffer_size,
1497 bfd *abfd)
1498 {
1499 gdb_byte *beg_of_comp_unit = info_ptr;
1500
1501 info_ptr = read_comp_unit_head (header, info_ptr, abfd);
1502
1503 if (header->version != 2 && header->version != 3 && header->version != 4)
1504 error (_("Dwarf Error: wrong version in compilation unit header "
1505 "(is %d, should be 2, 3, or 4) [in module %s]"), header->version,
1506 bfd_get_filename (abfd));
1507
1508 if (header->abbrev_offset >= dwarf2_per_objfile->abbrev.size)
1509 error (_("Dwarf Error: bad offset (0x%lx) in compilation unit header "
1510 "(offset 0x%lx + 6) [in module %s]"),
1511 (long) header->abbrev_offset,
1512 (long) (beg_of_comp_unit - buffer),
1513 bfd_get_filename (abfd));
1514
1515 if (beg_of_comp_unit + header->length + header->initial_length_size
1516 > buffer + buffer_size)
1517 error (_("Dwarf Error: bad length (0x%lx) in compilation unit header "
1518 "(offset 0x%lx + 0) [in module %s]"),
1519 (long) header->length,
1520 (long) (beg_of_comp_unit - buffer),
1521 bfd_get_filename (abfd));
1522
1523 return info_ptr;
1524 }
1525
1526 /* Read in the types comp unit header information from .debug_types entry at
1527 types_ptr. The result is a pointer to one past the end of the header. */
1528
1529 static gdb_byte *
1530 read_type_comp_unit_head (struct comp_unit_head *cu_header,
1531 ULONGEST *signature,
1532 gdb_byte *types_ptr, bfd *abfd)
1533 {
1534 gdb_byte *initial_types_ptr = types_ptr;
1535
1536 dwarf2_read_section (dwarf2_per_objfile->objfile,
1537 &dwarf2_per_objfile->types);
1538 cu_header->offset = types_ptr - dwarf2_per_objfile->types.buffer;
1539
1540 types_ptr = read_comp_unit_head (cu_header, types_ptr, abfd);
1541
1542 *signature = read_8_bytes (abfd, types_ptr);
1543 types_ptr += 8;
1544 types_ptr += cu_header->offset_size;
1545 cu_header->first_die_offset = types_ptr - initial_types_ptr;
1546
1547 return types_ptr;
1548 }
1549
1550 /* Allocate a new partial symtab for file named NAME and mark this new
1551 partial symtab as being an include of PST. */
1552
1553 static void
1554 dwarf2_create_include_psymtab (char *name, struct partial_symtab *pst,
1555 struct objfile *objfile)
1556 {
1557 struct partial_symtab *subpst = allocate_psymtab (name, objfile);
1558
1559 subpst->section_offsets = pst->section_offsets;
1560 subpst->textlow = 0;
1561 subpst->texthigh = 0;
1562
1563 subpst->dependencies = (struct partial_symtab **)
1564 obstack_alloc (&objfile->objfile_obstack,
1565 sizeof (struct partial_symtab *));
1566 subpst->dependencies[0] = pst;
1567 subpst->number_of_dependencies = 1;
1568
1569 subpst->globals_offset = 0;
1570 subpst->n_global_syms = 0;
1571 subpst->statics_offset = 0;
1572 subpst->n_static_syms = 0;
1573 subpst->symtab = NULL;
1574 subpst->read_symtab = pst->read_symtab;
1575 subpst->readin = 0;
1576
1577 /* No private part is necessary for include psymtabs. This property
1578 can be used to differentiate between such include psymtabs and
1579 the regular ones. */
1580 subpst->read_symtab_private = NULL;
1581 }
1582
1583 /* Read the Line Number Program data and extract the list of files
1584 included by the source file represented by PST. Build an include
1585 partial symtab for each of these included files. */
1586
1587 static void
1588 dwarf2_build_include_psymtabs (struct dwarf2_cu *cu,
1589 struct die_info *die,
1590 struct partial_symtab *pst)
1591 {
1592 struct objfile *objfile = cu->objfile;
1593 bfd *abfd = objfile->obfd;
1594 struct line_header *lh = NULL;
1595 struct attribute *attr;
1596
1597 attr = dwarf2_attr (die, DW_AT_stmt_list, cu);
1598 if (attr)
1599 {
1600 unsigned int line_offset = DW_UNSND (attr);
1601
1602 lh = dwarf_decode_line_header (line_offset, abfd, cu);
1603 }
1604 if (lh == NULL)
1605 return; /* No linetable, so no includes. */
1606
1607 dwarf_decode_lines (lh, NULL, abfd, cu, pst);
1608
1609 free_line_header (lh);
1610 }
1611
1612 static hashval_t
1613 hash_type_signature (const void *item)
1614 {
1615 const struct signatured_type *type_sig = item;
1616
1617 /* This drops the top 32 bits of the signature, but is ok for a hash. */
1618 return type_sig->signature;
1619 }
1620
1621 static int
1622 eq_type_signature (const void *item_lhs, const void *item_rhs)
1623 {
1624 const struct signatured_type *lhs = item_lhs;
1625 const struct signatured_type *rhs = item_rhs;
1626
1627 return lhs->signature == rhs->signature;
1628 }
1629
1630 /* Create the hash table of all entries in the .debug_types section.
1631 The result is zero if there is an error (e.g. missing .debug_types section),
1632 otherwise non-zero. */
1633
1634 static int
1635 create_debug_types_hash_table (struct objfile *objfile)
1636 {
1637 gdb_byte *info_ptr;
1638 htab_t types_htab;
1639
1640 dwarf2_read_section (objfile, &dwarf2_per_objfile->types);
1641 info_ptr = dwarf2_per_objfile->types.buffer;
1642
1643 if (info_ptr == NULL)
1644 {
1645 dwarf2_per_objfile->signatured_types = NULL;
1646 return 0;
1647 }
1648
1649 types_htab = htab_create_alloc_ex (41,
1650 hash_type_signature,
1651 eq_type_signature,
1652 NULL,
1653 &objfile->objfile_obstack,
1654 hashtab_obstack_allocate,
1655 dummy_obstack_deallocate);
1656
1657 if (dwarf2_die_debug)
1658 fprintf_unfiltered (gdb_stdlog, "Signatured types:\n");
1659
1660 while (info_ptr < dwarf2_per_objfile->types.buffer + dwarf2_per_objfile->types.size)
1661 {
1662 unsigned int offset;
1663 unsigned int offset_size;
1664 unsigned int type_offset;
1665 unsigned int length, initial_length_size;
1666 unsigned short version;
1667 ULONGEST signature;
1668 struct signatured_type *type_sig;
1669 void **slot;
1670 gdb_byte *ptr = info_ptr;
1671
1672 offset = ptr - dwarf2_per_objfile->types.buffer;
1673
1674 /* We need to read the type's signature in order to build the hash
1675 table, but we don't need to read anything else just yet. */
1676
1677 /* Sanity check to ensure entire cu is present. */
1678 length = read_initial_length (objfile->obfd, ptr, &initial_length_size);
1679 if (ptr + length + initial_length_size
1680 > dwarf2_per_objfile->types.buffer + dwarf2_per_objfile->types.size)
1681 {
1682 complaint (&symfile_complaints,
1683 _("debug type entry runs off end of `.debug_types' section, ignored"));
1684 break;
1685 }
1686
1687 offset_size = initial_length_size == 4 ? 4 : 8;
1688 ptr += initial_length_size;
1689 version = bfd_get_16 (objfile->obfd, ptr);
1690 ptr += 2;
1691 ptr += offset_size; /* abbrev offset */
1692 ptr += 1; /* address size */
1693 signature = bfd_get_64 (objfile->obfd, ptr);
1694 ptr += 8;
1695 type_offset = read_offset_1 (objfile->obfd, ptr, offset_size);
1696
1697 type_sig = obstack_alloc (&objfile->objfile_obstack, sizeof (*type_sig));
1698 memset (type_sig, 0, sizeof (*type_sig));
1699 type_sig->signature = signature;
1700 type_sig->offset = offset;
1701 type_sig->type_offset = type_offset;
1702
1703 slot = htab_find_slot (types_htab, type_sig, INSERT);
1704 gdb_assert (slot != NULL);
1705 *slot = type_sig;
1706
1707 if (dwarf2_die_debug)
1708 fprintf_unfiltered (gdb_stdlog, " offset 0x%x, signature 0x%s\n",
1709 offset, phex (signature, sizeof (signature)));
1710
1711 info_ptr = info_ptr + initial_length_size + length;
1712 }
1713
1714 dwarf2_per_objfile->signatured_types = types_htab;
1715
1716 return 1;
1717 }
1718
1719 /* Lookup a signature based type.
1720 Returns NULL if SIG is not present in the table. */
1721
1722 static struct signatured_type *
1723 lookup_signatured_type (struct objfile *objfile, ULONGEST sig)
1724 {
1725 struct signatured_type find_entry, *entry;
1726
1727 if (dwarf2_per_objfile->signatured_types == NULL)
1728 {
1729 complaint (&symfile_complaints,
1730 _("missing `.debug_types' section for DW_FORM_sig8 die"));
1731 return 0;
1732 }
1733
1734 find_entry.signature = sig;
1735 entry = htab_find (dwarf2_per_objfile->signatured_types, &find_entry);
1736 return entry;
1737 }
1738
1739 /* Initialize a die_reader_specs struct from a dwarf2_cu struct. */
1740
1741 static void
1742 init_cu_die_reader (struct die_reader_specs *reader,
1743 struct dwarf2_cu *cu)
1744 {
1745 reader->abfd = cu->objfile->obfd;
1746 reader->cu = cu;
1747 if (cu->per_cu->from_debug_types)
1748 {
1749 gdb_assert (dwarf2_per_objfile->types.readin);
1750 reader->buffer = dwarf2_per_objfile->types.buffer;
1751 }
1752 else
1753 {
1754 gdb_assert (dwarf2_per_objfile->info.readin);
1755 reader->buffer = dwarf2_per_objfile->info.buffer;
1756 }
1757 }
1758
1759 /* Find the base address of the compilation unit for range lists and
1760 location lists. It will normally be specified by DW_AT_low_pc.
1761 In DWARF-3 draft 4, the base address could be overridden by
1762 DW_AT_entry_pc. It's been removed, but GCC still uses this for
1763 compilation units with discontinuous ranges. */
1764
1765 static void
1766 dwarf2_find_base_address (struct die_info *die, struct dwarf2_cu *cu)
1767 {
1768 struct attribute *attr;
1769
1770 cu->base_known = 0;
1771 cu->base_address = 0;
1772
1773 attr = dwarf2_attr (die, DW_AT_entry_pc, cu);
1774 if (attr)
1775 {
1776 cu->base_address = DW_ADDR (attr);
1777 cu->base_known = 1;
1778 }
1779 else
1780 {
1781 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
1782 if (attr)
1783 {
1784 cu->base_address = DW_ADDR (attr);
1785 cu->base_known = 1;
1786 }
1787 }
1788 }
1789
1790 /* Subroutine of process_type_comp_unit and dwarf2_build_psymtabs_hard
1791 to combine the common parts.
1792 Process a compilation unit for a psymtab.
1793 BUFFER is a pointer to the beginning of the dwarf section buffer,
1794 either .debug_info or debug_types.
1795 INFO_PTR is a pointer to the start of the CU.
1796 Returns a pointer to the next CU. */
1797
1798 static gdb_byte *
1799 process_psymtab_comp_unit (struct objfile *objfile,
1800 struct dwarf2_per_cu_data *this_cu,
1801 gdb_byte *buffer, gdb_byte *info_ptr,
1802 unsigned int buffer_size)
1803 {
1804 bfd *abfd = objfile->obfd;
1805 gdb_byte *beg_of_comp_unit = info_ptr;
1806 struct die_info *comp_unit_die;
1807 struct partial_symtab *pst;
1808 CORE_ADDR baseaddr;
1809 struct cleanup *back_to_inner;
1810 struct dwarf2_cu cu;
1811 int has_children, has_pc_info;
1812 struct attribute *attr;
1813 CORE_ADDR best_lowpc = 0, best_highpc = 0;
1814 struct die_reader_specs reader_specs;
1815
1816 memset (&cu, 0, sizeof (cu));
1817 cu.objfile = objfile;
1818 obstack_init (&cu.comp_unit_obstack);
1819
1820 back_to_inner = make_cleanup (free_stack_comp_unit, &cu);
1821
1822 info_ptr = partial_read_comp_unit_head (&cu.header, info_ptr,
1823 buffer, buffer_size,
1824 abfd);
1825
1826 /* Complete the cu_header. */
1827 cu.header.offset = beg_of_comp_unit - buffer;
1828 cu.header.first_die_offset = info_ptr - beg_of_comp_unit;
1829
1830 cu.list_in_scope = &file_symbols;
1831
1832 /* If this compilation unit was already read in, free the
1833 cached copy in order to read it in again. This is
1834 necessary because we skipped some symbols when we first
1835 read in the compilation unit (see load_partial_dies).
1836 This problem could be avoided, but the benefit is
1837 unclear. */
1838 if (this_cu->cu != NULL)
1839 free_one_cached_comp_unit (this_cu->cu);
1840
1841 /* Note that this is a pointer to our stack frame, being
1842 added to a global data structure. It will be cleaned up
1843 in free_stack_comp_unit when we finish with this
1844 compilation unit. */
1845 this_cu->cu = &cu;
1846 cu.per_cu = this_cu;
1847
1848 /* Read the abbrevs for this compilation unit into a table. */
1849 dwarf2_read_abbrevs (abfd, &cu);
1850 make_cleanup (dwarf2_free_abbrev_table, &cu);
1851
1852 /* Read the compilation unit die. */
1853 if (this_cu->from_debug_types)
1854 info_ptr += 8 /*signature*/ + cu.header.offset_size;
1855 init_cu_die_reader (&reader_specs, &cu);
1856 info_ptr = read_full_die (&reader_specs, &comp_unit_die, info_ptr,
1857 &has_children);
1858
1859 if (this_cu->from_debug_types)
1860 {
1861 /* offset,length haven't been set yet for type units. */
1862 this_cu->offset = cu.header.offset;
1863 this_cu->length = cu.header.length + cu.header.initial_length_size;
1864 }
1865 else if (comp_unit_die->tag == DW_TAG_partial_unit)
1866 {
1867 info_ptr = (beg_of_comp_unit + cu.header.length
1868 + cu.header.initial_length_size);
1869 do_cleanups (back_to_inner);
1870 return info_ptr;
1871 }
1872
1873 /* Set the language we're debugging. */
1874 attr = dwarf2_attr (comp_unit_die, DW_AT_language, &cu);
1875 if (attr)
1876 set_cu_language (DW_UNSND (attr), &cu);
1877 else
1878 set_cu_language (language_minimal, &cu);
1879
1880 /* Allocate a new partial symbol table structure. */
1881 attr = dwarf2_attr (comp_unit_die, DW_AT_name, &cu);
1882 pst = start_psymtab_common (objfile, objfile->section_offsets,
1883 (attr != NULL) ? DW_STRING (attr) : "",
1884 /* TEXTLOW and TEXTHIGH are set below. */
1885 0,
1886 objfile->global_psymbols.next,
1887 objfile->static_psymbols.next);
1888
1889 attr = dwarf2_attr (comp_unit_die, DW_AT_comp_dir, &cu);
1890 if (attr != NULL)
1891 pst->dirname = DW_STRING (attr);
1892
1893 pst->read_symtab_private = this_cu;
1894
1895 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
1896
1897 /* Store the function that reads in the rest of the symbol table */
1898 pst->read_symtab = dwarf2_psymtab_to_symtab;
1899
1900 this_cu->psymtab = pst;
1901
1902 dwarf2_find_base_address (comp_unit_die, &cu);
1903
1904 /* Possibly set the default values of LOWPC and HIGHPC from
1905 `DW_AT_ranges'. */
1906 has_pc_info = dwarf2_get_pc_bounds (comp_unit_die, &best_lowpc,
1907 &best_highpc, &cu, pst);
1908 if (has_pc_info == 1 && best_lowpc < best_highpc)
1909 /* Store the contiguous range if it is not empty; it can be empty for
1910 CUs with no code. */
1911 addrmap_set_empty (objfile->psymtabs_addrmap,
1912 best_lowpc + baseaddr,
1913 best_highpc + baseaddr - 1, pst);
1914
1915 /* Check if comp unit has_children.
1916 If so, read the rest of the partial symbols from this comp unit.
1917 If not, there's no more debug_info for this comp unit. */
1918 if (has_children)
1919 {
1920 struct partial_die_info *first_die;
1921 CORE_ADDR lowpc, highpc;
1922
1923 lowpc = ((CORE_ADDR) -1);
1924 highpc = ((CORE_ADDR) 0);
1925
1926 first_die = load_partial_dies (abfd, buffer, info_ptr, 1, &cu);
1927
1928 scan_partial_symbols (first_die, &lowpc, &highpc,
1929 ! has_pc_info, &cu);
1930
1931 /* If we didn't find a lowpc, set it to highpc to avoid
1932 complaints from `maint check'. */
1933 if (lowpc == ((CORE_ADDR) -1))
1934 lowpc = highpc;
1935
1936 /* If the compilation unit didn't have an explicit address range,
1937 then use the information extracted from its child dies. */
1938 if (! has_pc_info)
1939 {
1940 best_lowpc = lowpc;
1941 best_highpc = highpc;
1942 }
1943 }
1944 pst->textlow = best_lowpc + baseaddr;
1945 pst->texthigh = best_highpc + baseaddr;
1946
1947 pst->n_global_syms = objfile->global_psymbols.next -
1948 (objfile->global_psymbols.list + pst->globals_offset);
1949 pst->n_static_syms = objfile->static_psymbols.next -
1950 (objfile->static_psymbols.list + pst->statics_offset);
1951 sort_pst_symbols (pst);
1952
1953 info_ptr = (beg_of_comp_unit + cu.header.length
1954 + cu.header.initial_length_size);
1955
1956 if (this_cu->from_debug_types)
1957 {
1958 /* It's not clear we want to do anything with stmt lists here.
1959 Waiting to see what gcc ultimately does. */
1960 }
1961 else
1962 {
1963 /* Get the list of files included in the current compilation unit,
1964 and build a psymtab for each of them. */
1965 dwarf2_build_include_psymtabs (&cu, comp_unit_die, pst);
1966 }
1967
1968 do_cleanups (back_to_inner);
1969
1970 return info_ptr;
1971 }
1972
1973 /* Traversal function for htab_traverse_noresize.
1974 Process one .debug_types comp-unit. */
1975
1976 static int
1977 process_type_comp_unit (void **slot, void *info)
1978 {
1979 struct signatured_type *entry = (struct signatured_type *) *slot;
1980 struct objfile *objfile = (struct objfile *) info;
1981 struct dwarf2_per_cu_data *this_cu;
1982
1983 this_cu = &entry->per_cu;
1984 this_cu->from_debug_types = 1;
1985
1986 gdb_assert (dwarf2_per_objfile->types.readin);
1987 process_psymtab_comp_unit (objfile, this_cu,
1988 dwarf2_per_objfile->types.buffer,
1989 dwarf2_per_objfile->types.buffer + entry->offset,
1990 dwarf2_per_objfile->types.size);
1991
1992 return 1;
1993 }
1994
1995 /* Subroutine of dwarf2_build_psymtabs_hard to simplify it.
1996 Build partial symbol tables for the .debug_types comp-units. */
1997
1998 static void
1999 build_type_psymtabs (struct objfile *objfile)
2000 {
2001 if (! create_debug_types_hash_table (objfile))
2002 return;
2003
2004 htab_traverse_noresize (dwarf2_per_objfile->signatured_types,
2005 process_type_comp_unit, objfile);
2006 }
2007
2008 /* A cleanup function that clears objfile's psymtabs_addrmap field. */
2009
2010 static void
2011 psymtabs_addrmap_cleanup (void *o)
2012 {
2013 struct objfile *objfile = o;
2014
2015 objfile->psymtabs_addrmap = NULL;
2016 }
2017
2018 /* Build the partial symbol table by doing a quick pass through the
2019 .debug_info and .debug_abbrev sections. */
2020
2021 static void
2022 dwarf2_build_psymtabs_hard (struct objfile *objfile)
2023 {
2024 gdb_byte *info_ptr;
2025 struct cleanup *back_to, *addrmap_cleanup;
2026 struct obstack temp_obstack;
2027
2028 dwarf2_read_section (objfile, &dwarf2_per_objfile->info);
2029 info_ptr = dwarf2_per_objfile->info.buffer;
2030
2031 /* Any cached compilation units will be linked by the per-objfile
2032 read_in_chain. Make sure to free them when we're done. */
2033 back_to = make_cleanup (free_cached_comp_units, NULL);
2034
2035 build_type_psymtabs (objfile);
2036
2037 create_all_comp_units (objfile);
2038
2039 /* Create a temporary address map on a temporary obstack. We later
2040 copy this to the final obstack. */
2041 obstack_init (&temp_obstack);
2042 make_cleanup_obstack_free (&temp_obstack);
2043 objfile->psymtabs_addrmap = addrmap_create_mutable (&temp_obstack);
2044 addrmap_cleanup = make_cleanup (psymtabs_addrmap_cleanup, objfile);
2045
2046 /* Since the objects we're extracting from .debug_info vary in
2047 length, only the individual functions to extract them (like
2048 read_comp_unit_head and load_partial_die) can really know whether
2049 the buffer is large enough to hold another complete object.
2050
2051 At the moment, they don't actually check that. If .debug_info
2052 holds just one extra byte after the last compilation unit's dies,
2053 then read_comp_unit_head will happily read off the end of the
2054 buffer. read_partial_die is similarly casual. Those functions
2055 should be fixed.
2056
2057 For this loop condition, simply checking whether there's any data
2058 left at all should be sufficient. */
2059
2060 while (info_ptr < (dwarf2_per_objfile->info.buffer
2061 + dwarf2_per_objfile->info.size))
2062 {
2063 struct dwarf2_per_cu_data *this_cu;
2064
2065 this_cu = dwarf2_find_comp_unit (info_ptr - dwarf2_per_objfile->info.buffer,
2066 objfile);
2067
2068 info_ptr = process_psymtab_comp_unit (objfile, this_cu,
2069 dwarf2_per_objfile->info.buffer,
2070 info_ptr,
2071 dwarf2_per_objfile->info.size);
2072 }
2073
2074 objfile->psymtabs_addrmap = addrmap_create_fixed (objfile->psymtabs_addrmap,
2075 &objfile->objfile_obstack);
2076 discard_cleanups (addrmap_cleanup);
2077
2078 do_cleanups (back_to);
2079 }
2080
2081 /* Load the partial DIEs for a secondary CU into memory. */
2082
2083 static void
2084 load_partial_comp_unit (struct dwarf2_per_cu_data *this_cu,
2085 struct objfile *objfile)
2086 {
2087 bfd *abfd = objfile->obfd;
2088 gdb_byte *info_ptr, *beg_of_comp_unit;
2089 struct die_info *comp_unit_die;
2090 struct dwarf2_cu *cu;
2091 struct cleanup *back_to;
2092 struct attribute *attr;
2093 int has_children;
2094 struct die_reader_specs reader_specs;
2095
2096 gdb_assert (! this_cu->from_debug_types);
2097
2098 gdb_assert (dwarf2_per_objfile->info.readin);
2099 info_ptr = dwarf2_per_objfile->info.buffer + this_cu->offset;
2100 beg_of_comp_unit = info_ptr;
2101
2102 cu = alloc_one_comp_unit (objfile);
2103
2104 /* ??? Missing cleanup for CU? */
2105
2106 /* Link this compilation unit into the compilation unit tree. */
2107 this_cu->cu = cu;
2108 cu->per_cu = this_cu;
2109 cu->type_hash = this_cu->type_hash;
2110
2111 info_ptr = partial_read_comp_unit_head (&cu->header, info_ptr,
2112 dwarf2_per_objfile->info.buffer,
2113 dwarf2_per_objfile->info.size,
2114 abfd);
2115
2116 /* Complete the cu_header. */
2117 cu->header.offset = this_cu->offset;
2118 cu->header.first_die_offset = info_ptr - beg_of_comp_unit;
2119
2120 /* Read the abbrevs for this compilation unit into a table. */
2121 dwarf2_read_abbrevs (abfd, cu);
2122 back_to = make_cleanup (dwarf2_free_abbrev_table, cu);
2123
2124 /* Read the compilation unit die. */
2125 init_cu_die_reader (&reader_specs, cu);
2126 info_ptr = read_full_die (&reader_specs, &comp_unit_die, info_ptr,
2127 &has_children);
2128
2129 /* Set the language we're debugging. */
2130 attr = dwarf2_attr (comp_unit_die, DW_AT_language, cu);
2131 if (attr)
2132 set_cu_language (DW_UNSND (attr), cu);
2133 else
2134 set_cu_language (language_minimal, cu);
2135
2136 /* Check if comp unit has_children.
2137 If so, read the rest of the partial symbols from this comp unit.
2138 If not, there's no more debug_info for this comp unit. */
2139 if (has_children)
2140 load_partial_dies (abfd, dwarf2_per_objfile->info.buffer, info_ptr, 0, cu);
2141
2142 do_cleanups (back_to);
2143 }
2144
2145 /* Create a list of all compilation units in OBJFILE. We do this only
2146 if an inter-comp-unit reference is found; presumably if there is one,
2147 there will be many, and one will occur early in the .debug_info section.
2148 So there's no point in building this list incrementally. */
2149
2150 static void
2151 create_all_comp_units (struct objfile *objfile)
2152 {
2153 int n_allocated;
2154 int n_comp_units;
2155 struct dwarf2_per_cu_data **all_comp_units;
2156 gdb_byte *info_ptr;
2157
2158 dwarf2_read_section (objfile, &dwarf2_per_objfile->info);
2159 info_ptr = dwarf2_per_objfile->info.buffer;
2160
2161 n_comp_units = 0;
2162 n_allocated = 10;
2163 all_comp_units = xmalloc (n_allocated
2164 * sizeof (struct dwarf2_per_cu_data *));
2165
2166 while (info_ptr < dwarf2_per_objfile->info.buffer + dwarf2_per_objfile->info.size)
2167 {
2168 unsigned int length, initial_length_size;
2169 struct dwarf2_per_cu_data *this_cu;
2170 unsigned int offset;
2171
2172 offset = info_ptr - dwarf2_per_objfile->info.buffer;
2173
2174 /* Read just enough information to find out where the next
2175 compilation unit is. */
2176 length = read_initial_length (objfile->obfd, info_ptr,
2177 &initial_length_size);
2178
2179 /* Save the compilation unit for later lookup. */
2180 this_cu = obstack_alloc (&objfile->objfile_obstack,
2181 sizeof (struct dwarf2_per_cu_data));
2182 memset (this_cu, 0, sizeof (*this_cu));
2183 this_cu->offset = offset;
2184 this_cu->length = length + initial_length_size;
2185
2186 if (n_comp_units == n_allocated)
2187 {
2188 n_allocated *= 2;
2189 all_comp_units = xrealloc (all_comp_units,
2190 n_allocated
2191 * sizeof (struct dwarf2_per_cu_data *));
2192 }
2193 all_comp_units[n_comp_units++] = this_cu;
2194
2195 info_ptr = info_ptr + this_cu->length;
2196 }
2197
2198 dwarf2_per_objfile->all_comp_units
2199 = obstack_alloc (&objfile->objfile_obstack,
2200 n_comp_units * sizeof (struct dwarf2_per_cu_data *));
2201 memcpy (dwarf2_per_objfile->all_comp_units, all_comp_units,
2202 n_comp_units * sizeof (struct dwarf2_per_cu_data *));
2203 xfree (all_comp_units);
2204 dwarf2_per_objfile->n_comp_units = n_comp_units;
2205 }
2206
2207 /* Process all loaded DIEs for compilation unit CU, starting at
2208 FIRST_DIE. The caller should pass NEED_PC == 1 if the compilation
2209 unit DIE did not have PC info (DW_AT_low_pc and DW_AT_high_pc, or
2210 DW_AT_ranges). If NEED_PC is set, then this function will set
2211 *LOWPC and *HIGHPC to the lowest and highest PC values found in CU
2212 and record the covered ranges in the addrmap. */
2213
2214 static void
2215 scan_partial_symbols (struct partial_die_info *first_die, CORE_ADDR *lowpc,
2216 CORE_ADDR *highpc, int need_pc, struct dwarf2_cu *cu)
2217 {
2218 struct partial_die_info *pdi;
2219
2220 /* Now, march along the PDI's, descending into ones which have
2221 interesting children but skipping the children of the other ones,
2222 until we reach the end of the compilation unit. */
2223
2224 pdi = first_die;
2225
2226 while (pdi != NULL)
2227 {
2228 fixup_partial_die (pdi, cu);
2229
2230 /* Anonymous namespaces or modules have no name but have interesting
2231 children, so we need to look at them. Ditto for anonymous
2232 enums. */
2233
2234 if (pdi->name != NULL || pdi->tag == DW_TAG_namespace
2235 || pdi->tag == DW_TAG_module || pdi->tag == DW_TAG_enumeration_type)
2236 {
2237 switch (pdi->tag)
2238 {
2239 case DW_TAG_subprogram:
2240 add_partial_subprogram (pdi, lowpc, highpc, need_pc, cu);
2241 break;
2242 case DW_TAG_variable:
2243 case DW_TAG_typedef:
2244 case DW_TAG_union_type:
2245 if (!pdi->is_declaration)
2246 {
2247 add_partial_symbol (pdi, cu);
2248 }
2249 break;
2250 case DW_TAG_class_type:
2251 case DW_TAG_interface_type:
2252 case DW_TAG_structure_type:
2253 if (!pdi->is_declaration)
2254 {
2255 add_partial_symbol (pdi, cu);
2256 }
2257 break;
2258 case DW_TAG_enumeration_type:
2259 if (!pdi->is_declaration)
2260 add_partial_enumeration (pdi, cu);
2261 break;
2262 case DW_TAG_base_type:
2263 case DW_TAG_subrange_type:
2264 /* File scope base type definitions are added to the partial
2265 symbol table. */
2266 add_partial_symbol (pdi, cu);
2267 break;
2268 case DW_TAG_namespace:
2269 add_partial_namespace (pdi, lowpc, highpc, need_pc, cu);
2270 break;
2271 case DW_TAG_module:
2272 add_partial_module (pdi, lowpc, highpc, need_pc, cu);
2273 break;
2274 default:
2275 break;
2276 }
2277 }
2278
2279 /* If the die has a sibling, skip to the sibling. */
2280
2281 pdi = pdi->die_sibling;
2282 }
2283 }
2284
2285 /* Functions used to compute the fully scoped name of a partial DIE.
2286
2287 Normally, this is simple. For C++, the parent DIE's fully scoped
2288 name is concatenated with "::" and the partial DIE's name. For
2289 Java, the same thing occurs except that "." is used instead of "::".
2290 Enumerators are an exception; they use the scope of their parent
2291 enumeration type, i.e. the name of the enumeration type is not
2292 prepended to the enumerator.
2293
2294 There are two complexities. One is DW_AT_specification; in this
2295 case "parent" means the parent of the target of the specification,
2296 instead of the direct parent of the DIE. The other is compilers
2297 which do not emit DW_TAG_namespace; in this case we try to guess
2298 the fully qualified name of structure types from their members'
2299 linkage names. This must be done using the DIE's children rather
2300 than the children of any DW_AT_specification target. We only need
2301 to do this for structures at the top level, i.e. if the target of
2302 any DW_AT_specification (if any; otherwise the DIE itself) does not
2303 have a parent. */
2304
2305 /* Compute the scope prefix associated with PDI's parent, in
2306 compilation unit CU. The result will be allocated on CU's
2307 comp_unit_obstack, or a copy of the already allocated PDI->NAME
2308 field. NULL is returned if no prefix is necessary. */
2309 static char *
2310 partial_die_parent_scope (struct partial_die_info *pdi,
2311 struct dwarf2_cu *cu)
2312 {
2313 char *grandparent_scope;
2314 struct partial_die_info *parent, *real_pdi;
2315
2316 /* We need to look at our parent DIE; if we have a DW_AT_specification,
2317 then this means the parent of the specification DIE. */
2318
2319 real_pdi = pdi;
2320 while (real_pdi->has_specification)
2321 real_pdi = find_partial_die (real_pdi->spec_offset, cu);
2322
2323 parent = real_pdi->die_parent;
2324 if (parent == NULL)
2325 return NULL;
2326
2327 if (parent->scope_set)
2328 return parent->scope;
2329
2330 fixup_partial_die (parent, cu);
2331
2332 grandparent_scope = partial_die_parent_scope (parent, cu);
2333
2334 /* GCC 4.0 and 4.1 had a bug (PR c++/28460) where they generated bogus
2335 DW_TAG_namespace DIEs with a name of "::" for the global namespace.
2336 Work around this problem here. */
2337 if (cu->language == language_cplus
2338 && parent->tag == DW_TAG_namespace
2339 && strcmp (parent->name, "::") == 0
2340 && grandparent_scope == NULL)
2341 {
2342 parent->scope = NULL;
2343 parent->scope_set = 1;
2344 return NULL;
2345 }
2346
2347 if (parent->tag == DW_TAG_namespace
2348 || parent->tag == DW_TAG_module
2349 || parent->tag == DW_TAG_structure_type
2350 || parent->tag == DW_TAG_class_type
2351 || parent->tag == DW_TAG_interface_type
2352 || parent->tag == DW_TAG_union_type
2353 || parent->tag == DW_TAG_enumeration_type)
2354 {
2355 if (grandparent_scope == NULL)
2356 parent->scope = parent->name;
2357 else
2358 parent->scope = typename_concat (&cu->comp_unit_obstack, grandparent_scope,
2359 parent->name, 0, cu);
2360 }
2361 else if (parent->tag == DW_TAG_enumerator)
2362 /* Enumerators should not get the name of the enumeration as a prefix. */
2363 parent->scope = grandparent_scope;
2364 else
2365 {
2366 /* FIXME drow/2004-04-01: What should we be doing with
2367 function-local names? For partial symbols, we should probably be
2368 ignoring them. */
2369 complaint (&symfile_complaints,
2370 _("unhandled containing DIE tag %d for DIE at %d"),
2371 parent->tag, pdi->offset);
2372 parent->scope = grandparent_scope;
2373 }
2374
2375 parent->scope_set = 1;
2376 return parent->scope;
2377 }
2378
2379 /* Return the fully scoped name associated with PDI, from compilation unit
2380 CU. The result will be allocated with malloc. */
2381 static char *
2382 partial_die_full_name (struct partial_die_info *pdi,
2383 struct dwarf2_cu *cu)
2384 {
2385 char *parent_scope;
2386
2387 parent_scope = partial_die_parent_scope (pdi, cu);
2388 if (parent_scope == NULL)
2389 return NULL;
2390 else
2391 return typename_concat (NULL, parent_scope, pdi->name, 0, cu);
2392 }
2393
2394 static void
2395 add_partial_symbol (struct partial_die_info *pdi, struct dwarf2_cu *cu)
2396 {
2397 struct objfile *objfile = cu->objfile;
2398 CORE_ADDR addr = 0;
2399 char *actual_name = NULL;
2400 const struct partial_symbol *psym = NULL;
2401 CORE_ADDR baseaddr;
2402 int built_actual_name = 0;
2403
2404 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
2405
2406 actual_name = partial_die_full_name (pdi, cu);
2407 if (actual_name)
2408 built_actual_name = 1;
2409
2410 if (actual_name == NULL)
2411 actual_name = pdi->name;
2412
2413 switch (pdi->tag)
2414 {
2415 case DW_TAG_subprogram:
2416 if (pdi->is_external || cu->language == language_ada)
2417 {
2418 /* brobecker/2007-12-26: Normally, only "external" DIEs are part
2419 of the global scope. But in Ada, we want to be able to access
2420 nested procedures globally. So all Ada subprograms are stored
2421 in the global scope. */
2422 /*prim_record_minimal_symbol (actual_name, pdi->lowpc + baseaddr,
2423 mst_text, objfile); */
2424 psym = add_psymbol_to_list (actual_name, strlen (actual_name),
2425 built_actual_name,
2426 VAR_DOMAIN, LOC_BLOCK,
2427 &objfile->global_psymbols,
2428 0, pdi->lowpc + baseaddr,
2429 cu->language, objfile);
2430 }
2431 else
2432 {
2433 /*prim_record_minimal_symbol (actual_name, pdi->lowpc + baseaddr,
2434 mst_file_text, objfile); */
2435 psym = add_psymbol_to_list (actual_name, strlen (actual_name),
2436 built_actual_name,
2437 VAR_DOMAIN, LOC_BLOCK,
2438 &objfile->static_psymbols,
2439 0, pdi->lowpc + baseaddr,
2440 cu->language, objfile);
2441 }
2442 break;
2443 case DW_TAG_variable:
2444 if (pdi->is_external)
2445 {
2446 /* Global Variable.
2447 Don't enter into the minimal symbol tables as there is
2448 a minimal symbol table entry from the ELF symbols already.
2449 Enter into partial symbol table if it has a location
2450 descriptor or a type.
2451 If the location descriptor is missing, new_symbol will create
2452 a LOC_UNRESOLVED symbol, the address of the variable will then
2453 be determined from the minimal symbol table whenever the variable
2454 is referenced.
2455 The address for the partial symbol table entry is not
2456 used by GDB, but it comes in handy for debugging partial symbol
2457 table building. */
2458
2459 if (pdi->locdesc)
2460 addr = decode_locdesc (pdi->locdesc, cu);
2461 if (pdi->locdesc || pdi->has_type)
2462 psym = add_psymbol_to_list (actual_name, strlen (actual_name),
2463 built_actual_name,
2464 VAR_DOMAIN, LOC_STATIC,
2465 &objfile->global_psymbols,
2466 0, addr + baseaddr,
2467 cu->language, objfile);
2468 }
2469 else
2470 {
2471 /* Static Variable. Skip symbols without location descriptors. */
2472 if (pdi->locdesc == NULL)
2473 {
2474 if (built_actual_name)
2475 xfree (actual_name);
2476 return;
2477 }
2478 addr = decode_locdesc (pdi->locdesc, cu);
2479 /*prim_record_minimal_symbol (actual_name, addr + baseaddr,
2480 mst_file_data, objfile); */
2481 psym = add_psymbol_to_list (actual_name, strlen (actual_name),
2482 built_actual_name,
2483 VAR_DOMAIN, LOC_STATIC,
2484 &objfile->static_psymbols,
2485 0, addr + baseaddr,
2486 cu->language, objfile);
2487 }
2488 break;
2489 case DW_TAG_typedef:
2490 case DW_TAG_base_type:
2491 case DW_TAG_subrange_type:
2492 add_psymbol_to_list (actual_name, strlen (actual_name),
2493 built_actual_name,
2494 VAR_DOMAIN, LOC_TYPEDEF,
2495 &objfile->static_psymbols,
2496 0, (CORE_ADDR) 0, cu->language, objfile);
2497 break;
2498 case DW_TAG_namespace:
2499 add_psymbol_to_list (actual_name, strlen (actual_name),
2500 built_actual_name,
2501 VAR_DOMAIN, LOC_TYPEDEF,
2502 &objfile->global_psymbols,
2503 0, (CORE_ADDR) 0, cu->language, objfile);
2504 break;
2505 case DW_TAG_class_type:
2506 case DW_TAG_interface_type:
2507 case DW_TAG_structure_type:
2508 case DW_TAG_union_type:
2509 case DW_TAG_enumeration_type:
2510 /* Skip external references. The DWARF standard says in the section
2511 about "Structure, Union, and Class Type Entries": "An incomplete
2512 structure, union or class type is represented by a structure,
2513 union or class entry that does not have a byte size attribute
2514 and that has a DW_AT_declaration attribute." */
2515 if (!pdi->has_byte_size && pdi->is_declaration)
2516 {
2517 if (built_actual_name)
2518 xfree (actual_name);
2519 return;
2520 }
2521
2522 /* NOTE: carlton/2003-10-07: See comment in new_symbol about
2523 static vs. global. */
2524 add_psymbol_to_list (actual_name, strlen (actual_name),
2525 built_actual_name,
2526 STRUCT_DOMAIN, LOC_TYPEDEF,
2527 (cu->language == language_cplus
2528 || cu->language == language_java)
2529 ? &objfile->global_psymbols
2530 : &objfile->static_psymbols,
2531 0, (CORE_ADDR) 0, cu->language, objfile);
2532
2533 break;
2534 case DW_TAG_enumerator:
2535 add_psymbol_to_list (actual_name, strlen (actual_name),
2536 built_actual_name,
2537 VAR_DOMAIN, LOC_CONST,
2538 (cu->language == language_cplus
2539 || cu->language == language_java)
2540 ? &objfile->global_psymbols
2541 : &objfile->static_psymbols,
2542 0, (CORE_ADDR) 0, cu->language, objfile);
2543 break;
2544 default:
2545 break;
2546 }
2547
2548 if (built_actual_name)
2549 xfree (actual_name);
2550 }
2551
2552 /* Read a partial die corresponding to a namespace; also, add a symbol
2553 corresponding to that namespace to the symbol table. NAMESPACE is
2554 the name of the enclosing namespace. */
2555
2556 static void
2557 add_partial_namespace (struct partial_die_info *pdi,
2558 CORE_ADDR *lowpc, CORE_ADDR *highpc,
2559 int need_pc, struct dwarf2_cu *cu)
2560 {
2561 /* Add a symbol for the namespace. */
2562
2563 add_partial_symbol (pdi, cu);
2564
2565 /* Now scan partial symbols in that namespace. */
2566
2567 if (pdi->has_children)
2568 scan_partial_symbols (pdi->die_child, lowpc, highpc, need_pc, cu);
2569 }
2570
2571 /* Read a partial die corresponding to a Fortran module. */
2572
2573 static void
2574 add_partial_module (struct partial_die_info *pdi, CORE_ADDR *lowpc,
2575 CORE_ADDR *highpc, int need_pc, struct dwarf2_cu *cu)
2576 {
2577 /* Now scan partial symbols in that module. */
2578
2579 if (pdi->has_children)
2580 scan_partial_symbols (pdi->die_child, lowpc, highpc, need_pc, cu);
2581 }
2582
2583 /* Read a partial die corresponding to a subprogram and create a partial
2584 symbol for that subprogram. When the CU language allows it, this
2585 routine also defines a partial symbol for each nested subprogram
2586 that this subprogram contains.
2587
2588 DIE my also be a lexical block, in which case we simply search
2589 recursively for suprograms defined inside that lexical block.
2590 Again, this is only performed when the CU language allows this
2591 type of definitions. */
2592
2593 static void
2594 add_partial_subprogram (struct partial_die_info *pdi,
2595 CORE_ADDR *lowpc, CORE_ADDR *highpc,
2596 int need_pc, struct dwarf2_cu *cu)
2597 {
2598 if (pdi->tag == DW_TAG_subprogram)
2599 {
2600 if (pdi->has_pc_info)
2601 {
2602 if (pdi->lowpc < *lowpc)
2603 *lowpc = pdi->lowpc;
2604 if (pdi->highpc > *highpc)
2605 *highpc = pdi->highpc;
2606 if (need_pc)
2607 {
2608 CORE_ADDR baseaddr;
2609 struct objfile *objfile = cu->objfile;
2610
2611 baseaddr = ANOFFSET (objfile->section_offsets,
2612 SECT_OFF_TEXT (objfile));
2613 addrmap_set_empty (objfile->psymtabs_addrmap,
2614 pdi->lowpc + baseaddr,
2615 pdi->highpc - 1 + baseaddr,
2616 cu->per_cu->psymtab);
2617 }
2618 if (!pdi->is_declaration)
2619 /* Ignore subprogram DIEs that do not have a name, they are
2620 illegal. Do not emit a complaint at this point, we will
2621 do so when we convert this psymtab into a symtab. */
2622 if (pdi->name)
2623 add_partial_symbol (pdi, cu);
2624 }
2625 }
2626
2627 if (! pdi->has_children)
2628 return;
2629
2630 if (cu->language == language_ada)
2631 {
2632 pdi = pdi->die_child;
2633 while (pdi != NULL)
2634 {
2635 fixup_partial_die (pdi, cu);
2636 if (pdi->tag == DW_TAG_subprogram
2637 || pdi->tag == DW_TAG_lexical_block)
2638 add_partial_subprogram (pdi, lowpc, highpc, need_pc, cu);
2639 pdi = pdi->die_sibling;
2640 }
2641 }
2642 }
2643
2644 /* See if we can figure out if the class lives in a namespace. We do
2645 this by looking for a member function; its demangled name will
2646 contain namespace info, if there is any. */
2647
2648 static void
2649 guess_structure_name (struct partial_die_info *struct_pdi,
2650 struct dwarf2_cu *cu)
2651 {
2652 if ((cu->language == language_cplus
2653 || cu->language == language_java)
2654 && cu->has_namespace_info == 0
2655 && struct_pdi->has_children)
2656 {
2657 /* NOTE: carlton/2003-10-07: Getting the info this way changes
2658 what template types look like, because the demangler
2659 frequently doesn't give the same name as the debug info. We
2660 could fix this by only using the demangled name to get the
2661 prefix (but see comment in read_structure_type). */
2662
2663 struct partial_die_info *real_pdi;
2664
2665 /* If this DIE (this DIE's specification, if any) has a parent, then
2666 we should not do this. We'll prepend the parent's fully qualified
2667 name when we create the partial symbol. */
2668
2669 real_pdi = struct_pdi;
2670 while (real_pdi->has_specification)
2671 real_pdi = find_partial_die (real_pdi->spec_offset, cu);
2672
2673 if (real_pdi->die_parent != NULL)
2674 return;
2675 }
2676 }
2677
2678 /* Read a partial die corresponding to an enumeration type. */
2679
2680 static void
2681 add_partial_enumeration (struct partial_die_info *enum_pdi,
2682 struct dwarf2_cu *cu)
2683 {
2684 struct partial_die_info *pdi;
2685
2686 if (enum_pdi->name != NULL)
2687 add_partial_symbol (enum_pdi, cu);
2688
2689 pdi = enum_pdi->die_child;
2690 while (pdi)
2691 {
2692 if (pdi->tag != DW_TAG_enumerator || pdi->name == NULL)
2693 complaint (&symfile_complaints, _("malformed enumerator DIE ignored"));
2694 else
2695 add_partial_symbol (pdi, cu);
2696 pdi = pdi->die_sibling;
2697 }
2698 }
2699
2700 /* Read the initial uleb128 in the die at INFO_PTR in compilation unit CU.
2701 Return the corresponding abbrev, or NULL if the number is zero (indicating
2702 an empty DIE). In either case *BYTES_READ will be set to the length of
2703 the initial number. */
2704
2705 static struct abbrev_info *
2706 peek_die_abbrev (gdb_byte *info_ptr, unsigned int *bytes_read,
2707 struct dwarf2_cu *cu)
2708 {
2709 bfd *abfd = cu->objfile->obfd;
2710 unsigned int abbrev_number;
2711 struct abbrev_info *abbrev;
2712
2713 abbrev_number = read_unsigned_leb128 (abfd, info_ptr, bytes_read);
2714
2715 if (abbrev_number == 0)
2716 return NULL;
2717
2718 abbrev = dwarf2_lookup_abbrev (abbrev_number, cu);
2719 if (!abbrev)
2720 {
2721 error (_("Dwarf Error: Could not find abbrev number %d [in module %s]"), abbrev_number,
2722 bfd_get_filename (abfd));
2723 }
2724
2725 return abbrev;
2726 }
2727
2728 /* Scan the debug information for CU starting at INFO_PTR in buffer BUFFER.
2729 Returns a pointer to the end of a series of DIEs, terminated by an empty
2730 DIE. Any children of the skipped DIEs will also be skipped. */
2731
2732 static gdb_byte *
2733 skip_children (gdb_byte *buffer, gdb_byte *info_ptr, struct dwarf2_cu *cu)
2734 {
2735 struct abbrev_info *abbrev;
2736 unsigned int bytes_read;
2737
2738 while (1)
2739 {
2740 abbrev = peek_die_abbrev (info_ptr, &bytes_read, cu);
2741 if (abbrev == NULL)
2742 return info_ptr + bytes_read;
2743 else
2744 info_ptr = skip_one_die (buffer, info_ptr + bytes_read, abbrev, cu);
2745 }
2746 }
2747
2748 /* Scan the debug information for CU starting at INFO_PTR in buffer BUFFER.
2749 INFO_PTR should point just after the initial uleb128 of a DIE, and the
2750 abbrev corresponding to that skipped uleb128 should be passed in
2751 ABBREV. Returns a pointer to this DIE's sibling, skipping any
2752 children. */
2753
2754 static gdb_byte *
2755 skip_one_die (gdb_byte *buffer, gdb_byte *info_ptr,
2756 struct abbrev_info *abbrev, struct dwarf2_cu *cu)
2757 {
2758 unsigned int bytes_read;
2759 struct attribute attr;
2760 bfd *abfd = cu->objfile->obfd;
2761 unsigned int form, i;
2762
2763 for (i = 0; i < abbrev->num_attrs; i++)
2764 {
2765 /* The only abbrev we care about is DW_AT_sibling. */
2766 if (abbrev->attrs[i].name == DW_AT_sibling)
2767 {
2768 read_attribute (&attr, &abbrev->attrs[i],
2769 abfd, info_ptr, cu);
2770 if (attr.form == DW_FORM_ref_addr)
2771 complaint (&symfile_complaints, _("ignoring absolute DW_AT_sibling"));
2772 else
2773 return buffer + dwarf2_get_ref_die_offset (&attr);
2774 }
2775
2776 /* If it isn't DW_AT_sibling, skip this attribute. */
2777 form = abbrev->attrs[i].form;
2778 skip_attribute:
2779 switch (form)
2780 {
2781 case DW_FORM_ref_addr:
2782 /* In DWARF 2, DW_FORM_ref_addr is address sized; in DWARF 3
2783 and later it is offset sized. */
2784 if (cu->header.version == 2)
2785 info_ptr += cu->header.addr_size;
2786 else
2787 info_ptr += cu->header.offset_size;
2788 break;
2789 case DW_FORM_addr:
2790 info_ptr += cu->header.addr_size;
2791 break;
2792 case DW_FORM_data1:
2793 case DW_FORM_ref1:
2794 case DW_FORM_flag:
2795 info_ptr += 1;
2796 break;
2797 case DW_FORM_flag_present:
2798 break;
2799 case DW_FORM_data2:
2800 case DW_FORM_ref2:
2801 info_ptr += 2;
2802 break;
2803 case DW_FORM_data4:
2804 case DW_FORM_ref4:
2805 info_ptr += 4;
2806 break;
2807 case DW_FORM_data8:
2808 case DW_FORM_ref8:
2809 case DW_FORM_sig8:
2810 info_ptr += 8;
2811 break;
2812 case DW_FORM_string:
2813 read_string (abfd, info_ptr, &bytes_read);
2814 info_ptr += bytes_read;
2815 break;
2816 case DW_FORM_sec_offset:
2817 case DW_FORM_strp:
2818 info_ptr += cu->header.offset_size;
2819 break;
2820 case DW_FORM_exprloc:
2821 case DW_FORM_block:
2822 info_ptr += read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
2823 info_ptr += bytes_read;
2824 break;
2825 case DW_FORM_block1:
2826 info_ptr += 1 + read_1_byte (abfd, info_ptr);
2827 break;
2828 case DW_FORM_block2:
2829 info_ptr += 2 + read_2_bytes (abfd, info_ptr);
2830 break;
2831 case DW_FORM_block4:
2832 info_ptr += 4 + read_4_bytes (abfd, info_ptr);
2833 break;
2834 case DW_FORM_sdata:
2835 case DW_FORM_udata:
2836 case DW_FORM_ref_udata:
2837 info_ptr = skip_leb128 (abfd, info_ptr);
2838 break;
2839 case DW_FORM_indirect:
2840 form = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
2841 info_ptr += bytes_read;
2842 /* We need to continue parsing from here, so just go back to
2843 the top. */
2844 goto skip_attribute;
2845
2846 default:
2847 error (_("Dwarf Error: Cannot handle %s in DWARF reader [in module %s]"),
2848 dwarf_form_name (form),
2849 bfd_get_filename (abfd));
2850 }
2851 }
2852
2853 if (abbrev->has_children)
2854 return skip_children (buffer, info_ptr, cu);
2855 else
2856 return info_ptr;
2857 }
2858
2859 /* Locate ORIG_PDI's sibling.
2860 INFO_PTR should point to the start of the next DIE after ORIG_PDI
2861 in BUFFER. */
2862
2863 static gdb_byte *
2864 locate_pdi_sibling (struct partial_die_info *orig_pdi,
2865 gdb_byte *buffer, gdb_byte *info_ptr,
2866 bfd *abfd, struct dwarf2_cu *cu)
2867 {
2868 /* Do we know the sibling already? */
2869
2870 if (orig_pdi->sibling)
2871 return orig_pdi->sibling;
2872
2873 /* Are there any children to deal with? */
2874
2875 if (!orig_pdi->has_children)
2876 return info_ptr;
2877
2878 /* Skip the children the long way. */
2879
2880 return skip_children (buffer, info_ptr, cu);
2881 }
2882
2883 /* Expand this partial symbol table into a full symbol table. */
2884
2885 static void
2886 dwarf2_psymtab_to_symtab (struct partial_symtab *pst)
2887 {
2888 /* FIXME: This is barely more than a stub. */
2889 if (pst != NULL)
2890 {
2891 if (pst->readin)
2892 {
2893 warning (_("bug: psymtab for %s is already read in."), pst->filename);
2894 }
2895 else
2896 {
2897 if (info_verbose)
2898 {
2899 printf_filtered (_("Reading in symbols for %s..."), pst->filename);
2900 gdb_flush (gdb_stdout);
2901 }
2902
2903 /* Restore our global data. */
2904 dwarf2_per_objfile = objfile_data (pst->objfile,
2905 dwarf2_objfile_data_key);
2906
2907 /* If this psymtab is constructed from a debug-only objfile, the
2908 has_section_at_zero flag will not necessarily be correct. We
2909 can get the correct value for this flag by looking at the data
2910 associated with the (presumably stripped) associated objfile. */
2911 if (pst->objfile->separate_debug_objfile_backlink)
2912 {
2913 struct dwarf2_per_objfile *dpo_backlink
2914 = objfile_data (pst->objfile->separate_debug_objfile_backlink,
2915 dwarf2_objfile_data_key);
2916
2917 dwarf2_per_objfile->has_section_at_zero
2918 = dpo_backlink->has_section_at_zero;
2919 }
2920
2921 psymtab_to_symtab_1 (pst);
2922
2923 /* Finish up the debug error message. */
2924 if (info_verbose)
2925 printf_filtered (_("done.\n"));
2926 }
2927 }
2928 }
2929
2930 /* Add PER_CU to the queue. */
2931
2932 static void
2933 queue_comp_unit (struct dwarf2_per_cu_data *per_cu, struct objfile *objfile)
2934 {
2935 struct dwarf2_queue_item *item;
2936
2937 per_cu->queued = 1;
2938 item = xmalloc (sizeof (*item));
2939 item->per_cu = per_cu;
2940 item->next = NULL;
2941
2942 if (dwarf2_queue == NULL)
2943 dwarf2_queue = item;
2944 else
2945 dwarf2_queue_tail->next = item;
2946
2947 dwarf2_queue_tail = item;
2948 }
2949
2950 /* Process the queue. */
2951
2952 static void
2953 process_queue (struct objfile *objfile)
2954 {
2955 struct dwarf2_queue_item *item, *next_item;
2956
2957 /* The queue starts out with one item, but following a DIE reference
2958 may load a new CU, adding it to the end of the queue. */
2959 for (item = dwarf2_queue; item != NULL; dwarf2_queue = item = next_item)
2960 {
2961 if (item->per_cu->psymtab && !item->per_cu->psymtab->readin)
2962 process_full_comp_unit (item->per_cu);
2963
2964 item->per_cu->queued = 0;
2965 next_item = item->next;
2966 xfree (item);
2967 }
2968
2969 dwarf2_queue_tail = NULL;
2970 }
2971
2972 /* Free all allocated queue entries. This function only releases anything if
2973 an error was thrown; if the queue was processed then it would have been
2974 freed as we went along. */
2975
2976 static void
2977 dwarf2_release_queue (void *dummy)
2978 {
2979 struct dwarf2_queue_item *item, *last;
2980
2981 item = dwarf2_queue;
2982 while (item)
2983 {
2984 /* Anything still marked queued is likely to be in an
2985 inconsistent state, so discard it. */
2986 if (item->per_cu->queued)
2987 {
2988 if (item->per_cu->cu != NULL)
2989 free_one_cached_comp_unit (item->per_cu->cu);
2990 item->per_cu->queued = 0;
2991 }
2992
2993 last = item;
2994 item = item->next;
2995 xfree (last);
2996 }
2997
2998 dwarf2_queue = dwarf2_queue_tail = NULL;
2999 }
3000
3001 /* Read in full symbols for PST, and anything it depends on. */
3002
3003 static void
3004 psymtab_to_symtab_1 (struct partial_symtab *pst)
3005 {
3006 struct dwarf2_per_cu_data *per_cu;
3007 struct cleanup *back_to;
3008 int i;
3009
3010 for (i = 0; i < pst->number_of_dependencies; i++)
3011 if (!pst->dependencies[i]->readin)
3012 {
3013 /* Inform about additional files that need to be read in. */
3014 if (info_verbose)
3015 {
3016 /* FIXME: i18n: Need to make this a single string. */
3017 fputs_filtered (" ", gdb_stdout);
3018 wrap_here ("");
3019 fputs_filtered ("and ", gdb_stdout);
3020 wrap_here ("");
3021 printf_filtered ("%s...", pst->dependencies[i]->filename);
3022 wrap_here (""); /* Flush output */
3023 gdb_flush (gdb_stdout);
3024 }
3025 psymtab_to_symtab_1 (pst->dependencies[i]);
3026 }
3027
3028 per_cu = pst->read_symtab_private;
3029
3030 if (per_cu == NULL)
3031 {
3032 /* It's an include file, no symbols to read for it.
3033 Everything is in the parent symtab. */
3034 pst->readin = 1;
3035 return;
3036 }
3037
3038 back_to = make_cleanup (dwarf2_release_queue, NULL);
3039
3040 queue_comp_unit (per_cu, pst->objfile);
3041
3042 if (per_cu->from_debug_types)
3043 read_signatured_type_at_offset (pst->objfile, per_cu->offset);
3044 else
3045 load_full_comp_unit (per_cu, pst->objfile);
3046
3047 process_queue (pst->objfile);
3048
3049 /* Age the cache, releasing compilation units that have not
3050 been used recently. */
3051 age_cached_comp_units ();
3052
3053 do_cleanups (back_to);
3054 }
3055
3056 /* Load the DIEs associated with PER_CU into memory. */
3057
3058 static void
3059 load_full_comp_unit (struct dwarf2_per_cu_data *per_cu, struct objfile *objfile)
3060 {
3061 bfd *abfd = objfile->obfd;
3062 struct dwarf2_cu *cu;
3063 unsigned int offset;
3064 gdb_byte *info_ptr, *beg_of_comp_unit;
3065 struct cleanup *back_to, *free_cu_cleanup;
3066 struct attribute *attr;
3067
3068 gdb_assert (! per_cu->from_debug_types);
3069
3070 /* Set local variables from the partial symbol table info. */
3071 offset = per_cu->offset;
3072
3073 dwarf2_read_section (objfile, &dwarf2_per_objfile->info);
3074 info_ptr = dwarf2_per_objfile->info.buffer + offset;
3075 beg_of_comp_unit = info_ptr;
3076
3077 cu = alloc_one_comp_unit (objfile);
3078
3079 /* If an error occurs while loading, release our storage. */
3080 free_cu_cleanup = make_cleanup (free_one_comp_unit, cu);
3081
3082 /* Read in the comp_unit header. */
3083 info_ptr = read_comp_unit_head (&cu->header, info_ptr, abfd);
3084
3085 /* Complete the cu_header. */
3086 cu->header.offset = offset;
3087 cu->header.first_die_offset = info_ptr - beg_of_comp_unit;
3088
3089 /* Read the abbrevs for this compilation unit. */
3090 dwarf2_read_abbrevs (abfd, cu);
3091 back_to = make_cleanup (dwarf2_free_abbrev_table, cu);
3092
3093 /* Link this compilation unit into the compilation unit tree. */
3094 per_cu->cu = cu;
3095 cu->per_cu = per_cu;
3096 cu->type_hash = per_cu->type_hash;
3097
3098 cu->dies = read_comp_unit (info_ptr, cu);
3099
3100 /* We try not to read any attributes in this function, because not
3101 all objfiles needed for references have been loaded yet, and symbol
3102 table processing isn't initialized. But we have to set the CU language,
3103 or we won't be able to build types correctly. */
3104 attr = dwarf2_attr (cu->dies, DW_AT_language, cu);
3105 if (attr)
3106 set_cu_language (DW_UNSND (attr), cu);
3107 else
3108 set_cu_language (language_minimal, cu);
3109
3110 /* Similarly, if we do not read the producer, we can not apply
3111 producer-specific interpretation. */
3112 attr = dwarf2_attr (cu->dies, DW_AT_producer, cu);
3113 if (attr)
3114 cu->producer = DW_STRING (attr);
3115
3116 /* Link this CU into read_in_chain. */
3117 per_cu->cu->read_in_chain = dwarf2_per_objfile->read_in_chain;
3118 dwarf2_per_objfile->read_in_chain = per_cu;
3119
3120 do_cleanups (back_to);
3121
3122 /* We've successfully allocated this compilation unit. Let our caller
3123 clean it up when finished with it. */
3124 discard_cleanups (free_cu_cleanup);
3125 }
3126
3127 /* Generate full symbol information for PST and CU, whose DIEs have
3128 already been loaded into memory. */
3129
3130 static void
3131 process_full_comp_unit (struct dwarf2_per_cu_data *per_cu)
3132 {
3133 struct partial_symtab *pst = per_cu->psymtab;
3134 struct dwarf2_cu *cu = per_cu->cu;
3135 struct objfile *objfile = pst->objfile;
3136 CORE_ADDR lowpc, highpc;
3137 struct symtab *symtab;
3138 struct cleanup *back_to;
3139 CORE_ADDR baseaddr;
3140
3141 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
3142
3143 buildsym_init ();
3144 back_to = make_cleanup (really_free_pendings, NULL);
3145
3146 cu->list_in_scope = &file_symbols;
3147
3148 dwarf2_find_base_address (cu->dies, cu);
3149
3150 /* Do line number decoding in read_file_scope () */
3151 process_die (cu->dies, cu);
3152
3153 /* Some compilers don't define a DW_AT_high_pc attribute for the
3154 compilation unit. If the DW_AT_high_pc is missing, synthesize
3155 it, by scanning the DIE's below the compilation unit. */
3156 get_scope_pc_bounds (cu->dies, &lowpc, &highpc, cu);
3157
3158 symtab = end_symtab (highpc + baseaddr, objfile, SECT_OFF_TEXT (objfile));
3159
3160 /* Set symtab language to language from DW_AT_language.
3161 If the compilation is from a C file generated by language preprocessors,
3162 do not set the language if it was already deduced by start_subfile. */
3163 if (symtab != NULL
3164 && !(cu->language == language_c && symtab->language != language_c))
3165 {
3166 symtab->language = cu->language;
3167 }
3168 pst->symtab = symtab;
3169 pst->readin = 1;
3170
3171 do_cleanups (back_to);
3172 }
3173
3174 /* Process a die and its children. */
3175
3176 static void
3177 process_die (struct die_info *die, struct dwarf2_cu *cu)
3178 {
3179 switch (die->tag)
3180 {
3181 case DW_TAG_padding:
3182 break;
3183 case DW_TAG_compile_unit:
3184 read_file_scope (die, cu);
3185 break;
3186 case DW_TAG_type_unit:
3187 read_type_unit_scope (die, cu);
3188 break;
3189 case DW_TAG_subprogram:
3190 case DW_TAG_inlined_subroutine:
3191 read_func_scope (die, cu);
3192 break;
3193 case DW_TAG_lexical_block:
3194 case DW_TAG_try_block:
3195 case DW_TAG_catch_block:
3196 read_lexical_block_scope (die, cu);
3197 break;
3198 case DW_TAG_class_type:
3199 case DW_TAG_interface_type:
3200 case DW_TAG_structure_type:
3201 case DW_TAG_union_type:
3202 process_structure_scope (die, cu);
3203 break;
3204 case DW_TAG_enumeration_type:
3205 process_enumeration_scope (die, cu);
3206 break;
3207
3208 /* These dies have a type, but processing them does not create
3209 a symbol or recurse to process the children. Therefore we can
3210 read them on-demand through read_type_die. */
3211 case DW_TAG_subroutine_type:
3212 case DW_TAG_set_type:
3213 case DW_TAG_array_type:
3214 case DW_TAG_pointer_type:
3215 case DW_TAG_ptr_to_member_type:
3216 case DW_TAG_reference_type:
3217 case DW_TAG_string_type:
3218 break;
3219
3220 case DW_TAG_base_type:
3221 case DW_TAG_subrange_type:
3222 case DW_TAG_typedef:
3223 case DW_TAG_const_type:
3224 case DW_TAG_volatile_type:
3225 /* Add a typedef symbol for the type definition, if it has a
3226 DW_AT_name. */
3227 new_symbol (die, read_type_die (die, cu), cu);
3228 break;
3229 case DW_TAG_common_block:
3230 read_common_block (die, cu);
3231 break;
3232 case DW_TAG_common_inclusion:
3233 break;
3234 case DW_TAG_namespace:
3235 processing_has_namespace_info = 1;
3236 read_namespace (die, cu);
3237 break;
3238 case DW_TAG_module:
3239 processing_has_namespace_info = 1;
3240 read_module (die, cu);
3241 break;
3242 case DW_TAG_imported_declaration:
3243 case DW_TAG_imported_module:
3244 processing_has_namespace_info = 1;
3245 if (die->child != NULL && (die->tag == DW_TAG_imported_declaration
3246 || cu->language != language_fortran))
3247 complaint (&symfile_complaints, _("Tag '%s' has unexpected children"),
3248 dwarf_tag_name (die->tag));
3249 read_import_statement (die, cu);
3250 break;
3251 default:
3252 new_symbol (die, NULL, cu);
3253 break;
3254 }
3255 }
3256
3257 /* A helper function for dwarf2_compute_name which determines whether DIE
3258 needs to have the name of the scope prepended to the name listed in the
3259 die. */
3260
3261 static int
3262 die_needs_namespace (struct die_info *die, struct dwarf2_cu *cu)
3263 {
3264 struct attribute *attr;
3265
3266 switch (die->tag)
3267 {
3268 case DW_TAG_namespace:
3269 case DW_TAG_typedef:
3270 case DW_TAG_class_type:
3271 case DW_TAG_interface_type:
3272 case DW_TAG_structure_type:
3273 case DW_TAG_union_type:
3274 case DW_TAG_enumeration_type:
3275 case DW_TAG_enumerator:
3276 case DW_TAG_subprogram:
3277 case DW_TAG_member:
3278 return 1;
3279
3280 case DW_TAG_variable:
3281 /* We only need to prefix "globally" visible variables. These include
3282 any variable marked with DW_AT_external or any variable that
3283 lives in a namespace. [Variables in anonymous namespaces
3284 require prefixing, but they are not DW_AT_external.] */
3285
3286 if (dwarf2_attr (die, DW_AT_specification, cu))
3287 {
3288 struct dwarf2_cu *spec_cu = cu;
3289
3290 return die_needs_namespace (die_specification (die, &spec_cu),
3291 spec_cu);
3292 }
3293
3294 attr = dwarf2_attr (die, DW_AT_external, cu);
3295 if (attr == NULL && die->parent->tag != DW_TAG_namespace
3296 && die->parent->tag != DW_TAG_module)
3297 return 0;
3298 /* A variable in a lexical block of some kind does not need a
3299 namespace, even though in C++ such variables may be external
3300 and have a mangled name. */
3301 if (die->parent->tag == DW_TAG_lexical_block
3302 || die->parent->tag == DW_TAG_try_block
3303 || die->parent->tag == DW_TAG_catch_block
3304 || die->parent->tag == DW_TAG_subprogram)
3305 return 0;
3306 return 1;
3307
3308 default:
3309 return 0;
3310 }
3311 }
3312
3313 /* Compute the fully qualified name of DIE in CU. If PHYSNAME is nonzero,
3314 compute the physname for the object, which include a method's
3315 formal parameters (C++/Java) and return type (Java).
3316
3317 For Ada, return the DIE's linkage name rather than the fully qualified
3318 name. PHYSNAME is ignored..
3319
3320 The result is allocated on the objfile_obstack and canonicalized. */
3321
3322 static const char *
3323 dwarf2_compute_name (char *name, struct die_info *die, struct dwarf2_cu *cu,
3324 int physname)
3325 {
3326 if (name == NULL)
3327 name = dwarf2_name (die, cu);
3328
3329 /* For Fortran GDB prefers DW_AT_*linkage_name if present but otherwise
3330 compute it by typename_concat inside GDB. */
3331 if (cu->language == language_ada
3332 || (cu->language == language_fortran && physname))
3333 {
3334 /* For Ada unit, we prefer the linkage name over the name, as
3335 the former contains the exported name, which the user expects
3336 to be able to reference. Ideally, we want the user to be able
3337 to reference this entity using either natural or linkage name,
3338 but we haven't started looking at this enhancement yet. */
3339 struct attribute *attr;
3340
3341 attr = dwarf2_attr (die, DW_AT_linkage_name, cu);
3342 if (attr == NULL)
3343 attr = dwarf2_attr (die, DW_AT_MIPS_linkage_name, cu);
3344 if (attr && DW_STRING (attr))
3345 return DW_STRING (attr);
3346 }
3347
3348 /* These are the only languages we know how to qualify names in. */
3349 if (name != NULL
3350 && (cu->language == language_cplus || cu->language == language_java
3351 || cu->language == language_fortran))
3352 {
3353 if (die_needs_namespace (die, cu))
3354 {
3355 long length;
3356 char *prefix;
3357 struct ui_file *buf;
3358
3359 prefix = determine_prefix (die, cu);
3360 buf = mem_fileopen ();
3361 if (*prefix != '\0')
3362 {
3363 char *prefixed_name = typename_concat (NULL, prefix, name,
3364 physname, cu);
3365
3366 fputs_unfiltered (prefixed_name, buf);
3367 xfree (prefixed_name);
3368 }
3369 else
3370 fputs_unfiltered (name ? name : "", buf);
3371
3372 /* For Java and C++ methods, append formal parameter type
3373 information, if PHYSNAME. */
3374
3375 if (physname && die->tag == DW_TAG_subprogram
3376 && (cu->language == language_cplus
3377 || cu->language == language_java))
3378 {
3379 struct type *type = read_type_die (die, cu);
3380
3381 c_type_print_args (type, buf, 0, cu->language);
3382
3383 if (cu->language == language_java)
3384 {
3385 /* For java, we must append the return type to method
3386 names. */
3387 if (die->tag == DW_TAG_subprogram)
3388 java_print_type (TYPE_TARGET_TYPE (type), "", buf,
3389 0, 0);
3390 }
3391 else if (cu->language == language_cplus)
3392 {
3393 if (TYPE_NFIELDS (type) > 0
3394 && TYPE_FIELD_ARTIFICIAL (type, 0)
3395 && TYPE_CONST (TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (type, 0))))
3396 fputs_unfiltered (" const", buf);
3397 }
3398 }
3399
3400 name = ui_file_obsavestring (buf, &cu->objfile->objfile_obstack,
3401 &length);
3402 ui_file_delete (buf);
3403
3404 if (cu->language == language_cplus)
3405 {
3406 char *cname
3407 = dwarf2_canonicalize_name (name, cu,
3408 &cu->objfile->objfile_obstack);
3409
3410 if (cname != NULL)
3411 name = cname;
3412 }
3413 }
3414 }
3415
3416 return name;
3417 }
3418
3419 /* Return the fully qualified name of DIE, based on its DW_AT_name.
3420 If scope qualifiers are appropriate they will be added. The result
3421 will be allocated on the objfile_obstack, or NULL if the DIE does
3422 not have a name. NAME may either be from a previous call to
3423 dwarf2_name or NULL.
3424
3425 The output string will be canonicalized (if C++/Java). */
3426
3427 static const char *
3428 dwarf2_full_name (char *name, struct die_info *die, struct dwarf2_cu *cu)
3429 {
3430 return dwarf2_compute_name (name, die, cu, 0);
3431 }
3432
3433 /* Construct a physname for the given DIE in CU. NAME may either be
3434 from a previous call to dwarf2_name or NULL. The result will be
3435 allocated on the objfile_objstack or NULL if the DIE does not have a
3436 name.
3437
3438 The output string will be canonicalized (if C++/Java). */
3439
3440 static const char *
3441 dwarf2_physname (char *name, struct die_info *die, struct dwarf2_cu *cu)
3442 {
3443 return dwarf2_compute_name (name, die, cu, 1);
3444 }
3445
3446 /* Read the import statement specified by the given die and record it. */
3447
3448 static void
3449 read_import_statement (struct die_info *die, struct dwarf2_cu *cu)
3450 {
3451 struct attribute *import_attr;
3452 struct die_info *imported_die;
3453 struct dwarf2_cu *imported_cu;
3454 const char *imported_name;
3455 const char *imported_name_prefix;
3456 const char *canonical_name;
3457 const char *import_alias;
3458 const char *imported_declaration = NULL;
3459 const char *import_prefix;
3460
3461 char *temp;
3462
3463 import_attr = dwarf2_attr (die, DW_AT_import, cu);
3464 if (import_attr == NULL)
3465 {
3466 complaint (&symfile_complaints, _("Tag '%s' has no DW_AT_import"),
3467 dwarf_tag_name (die->tag));
3468 return;
3469 }
3470
3471 imported_cu = cu;
3472 imported_die = follow_die_ref_or_sig (die, import_attr, &imported_cu);
3473 imported_name = dwarf2_name (imported_die, imported_cu);
3474 if (imported_name == NULL)
3475 {
3476 /* GCC bug: https://bugzilla.redhat.com/show_bug.cgi?id=506524
3477
3478 The import in the following code:
3479 namespace A
3480 {
3481 typedef int B;
3482 }
3483
3484 int main ()
3485 {
3486 using A::B;
3487 B b;
3488 return b;
3489 }
3490
3491 ...
3492 <2><51>: Abbrev Number: 3 (DW_TAG_imported_declaration)
3493 <52> DW_AT_decl_file : 1
3494 <53> DW_AT_decl_line : 6
3495 <54> DW_AT_import : <0x75>
3496 <2><58>: Abbrev Number: 4 (DW_TAG_typedef)
3497 <59> DW_AT_name : B
3498 <5b> DW_AT_decl_file : 1
3499 <5c> DW_AT_decl_line : 2
3500 <5d> DW_AT_type : <0x6e>
3501 ...
3502 <1><75>: Abbrev Number: 7 (DW_TAG_base_type)
3503 <76> DW_AT_byte_size : 4
3504 <77> DW_AT_encoding : 5 (signed)
3505
3506 imports the wrong die ( 0x75 instead of 0x58 ).
3507 This case will be ignored until the gcc bug is fixed. */
3508 return;
3509 }
3510
3511 /* Figure out the local name after import. */
3512 import_alias = dwarf2_name (die, cu);
3513
3514 /* Figure out where the statement is being imported to. */
3515 import_prefix = determine_prefix (die, cu);
3516
3517 /* Figure out what the scope of the imported die is and prepend it
3518 to the name of the imported die. */
3519 imported_name_prefix = determine_prefix (imported_die, imported_cu);
3520
3521 if (imported_die->tag != DW_TAG_namespace
3522 && imported_die->tag != DW_TAG_module)
3523 {
3524 imported_declaration = imported_name;
3525 canonical_name = imported_name_prefix;
3526 }
3527 else if (strlen (imported_name_prefix) > 0)
3528 {
3529 temp = alloca (strlen (imported_name_prefix)
3530 + 2 + strlen (imported_name) + 1);
3531 strcpy (temp, imported_name_prefix);
3532 strcat (temp, "::");
3533 strcat (temp, imported_name);
3534 canonical_name = temp;
3535 }
3536 else
3537 canonical_name = imported_name;
3538
3539 cp_add_using_directive (import_prefix,
3540 canonical_name,
3541 import_alias,
3542 imported_declaration,
3543 &cu->objfile->objfile_obstack);
3544 }
3545
3546 static void
3547 initialize_cu_func_list (struct dwarf2_cu *cu)
3548 {
3549 cu->first_fn = cu->last_fn = cu->cached_fn = NULL;
3550 }
3551
3552 static void
3553 free_cu_line_header (void *arg)
3554 {
3555 struct dwarf2_cu *cu = arg;
3556
3557 free_line_header (cu->line_header);
3558 cu->line_header = NULL;
3559 }
3560
3561 static void
3562 read_file_scope (struct die_info *die, struct dwarf2_cu *cu)
3563 {
3564 struct objfile *objfile = cu->objfile;
3565 struct cleanup *back_to = make_cleanup (null_cleanup, 0);
3566 CORE_ADDR lowpc = ((CORE_ADDR) -1);
3567 CORE_ADDR highpc = ((CORE_ADDR) 0);
3568 struct attribute *attr;
3569 char *name = NULL;
3570 char *comp_dir = NULL;
3571 struct die_info *child_die;
3572 bfd *abfd = objfile->obfd;
3573 struct line_header *line_header = 0;
3574 CORE_ADDR baseaddr;
3575
3576 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
3577
3578 get_scope_pc_bounds (die, &lowpc, &highpc, cu);
3579
3580 /* If we didn't find a lowpc, set it to highpc to avoid complaints
3581 from finish_block. */
3582 if (lowpc == ((CORE_ADDR) -1))
3583 lowpc = highpc;
3584 lowpc += baseaddr;
3585 highpc += baseaddr;
3586
3587 /* Find the filename. Do not use dwarf2_name here, since the filename
3588 is not a source language identifier. */
3589 attr = dwarf2_attr (die, DW_AT_name, cu);
3590 if (attr)
3591 {
3592 name = DW_STRING (attr);
3593 }
3594
3595 attr = dwarf2_attr (die, DW_AT_comp_dir, cu);
3596 if (attr)
3597 comp_dir = DW_STRING (attr);
3598 else if (name != NULL && IS_ABSOLUTE_PATH (name))
3599 {
3600 comp_dir = ldirname (name);
3601 if (comp_dir != NULL)
3602 make_cleanup (xfree, comp_dir);
3603 }
3604 if (comp_dir != NULL)
3605 {
3606 /* Irix 6.2 native cc prepends <machine>.: to the compilation
3607 directory, get rid of it. */
3608 char *cp = strchr (comp_dir, ':');
3609
3610 if (cp && cp != comp_dir && cp[-1] == '.' && cp[1] == '/')
3611 comp_dir = cp + 1;
3612 }
3613
3614 if (name == NULL)
3615 name = "<unknown>";
3616
3617 attr = dwarf2_attr (die, DW_AT_language, cu);
3618 if (attr)
3619 {
3620 set_cu_language (DW_UNSND (attr), cu);
3621 }
3622
3623 attr = dwarf2_attr (die, DW_AT_producer, cu);
3624 if (attr)
3625 cu->producer = DW_STRING (attr);
3626
3627 /* We assume that we're processing GCC output. */
3628 processing_gcc_compilation = 2;
3629
3630 processing_has_namespace_info = 0;
3631
3632 start_symtab (name, comp_dir, lowpc);
3633 record_debugformat ("DWARF 2");
3634 record_producer (cu->producer);
3635
3636 initialize_cu_func_list (cu);
3637
3638 /* Decode line number information if present. We do this before
3639 processing child DIEs, so that the line header table is available
3640 for DW_AT_decl_file. */
3641 attr = dwarf2_attr (die, DW_AT_stmt_list, cu);
3642 if (attr)
3643 {
3644 unsigned int line_offset = DW_UNSND (attr);
3645 line_header = dwarf_decode_line_header (line_offset, abfd, cu);
3646 if (line_header)
3647 {
3648 cu->line_header = line_header;
3649 make_cleanup (free_cu_line_header, cu);
3650 dwarf_decode_lines (line_header, comp_dir, abfd, cu, NULL);
3651 }
3652 }
3653
3654 /* Process all dies in compilation unit. */
3655 if (die->child != NULL)
3656 {
3657 child_die = die->child;
3658 while (child_die && child_die->tag)
3659 {
3660 process_die (child_die, cu);
3661 child_die = sibling_die (child_die);
3662 }
3663 }
3664
3665 /* Decode macro information, if present. Dwarf 2 macro information
3666 refers to information in the line number info statement program
3667 header, so we can only read it if we've read the header
3668 successfully. */
3669 attr = dwarf2_attr (die, DW_AT_macro_info, cu);
3670 if (attr && line_header)
3671 {
3672 unsigned int macro_offset = DW_UNSND (attr);
3673
3674 dwarf_decode_macros (line_header, macro_offset,
3675 comp_dir, abfd, cu);
3676 }
3677 do_cleanups (back_to);
3678 }
3679
3680 /* For TUs we want to skip the first top level sibling if it's not the
3681 actual type being defined by this TU. In this case the first top
3682 level sibling is there to provide context only. */
3683
3684 static void
3685 read_type_unit_scope (struct die_info *die, struct dwarf2_cu *cu)
3686 {
3687 struct objfile *objfile = cu->objfile;
3688 struct cleanup *back_to = make_cleanup (null_cleanup, 0);
3689 CORE_ADDR lowpc;
3690 struct attribute *attr;
3691 char *name = NULL;
3692 char *comp_dir = NULL;
3693 struct die_info *child_die;
3694 bfd *abfd = objfile->obfd;
3695
3696 /* start_symtab needs a low pc, but we don't really have one.
3697 Do what read_file_scope would do in the absence of such info. */
3698 lowpc = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
3699
3700 /* Find the filename. Do not use dwarf2_name here, since the filename
3701 is not a source language identifier. */
3702 attr = dwarf2_attr (die, DW_AT_name, cu);
3703 if (attr)
3704 name = DW_STRING (attr);
3705
3706 attr = dwarf2_attr (die, DW_AT_comp_dir, cu);
3707 if (attr)
3708 comp_dir = DW_STRING (attr);
3709 else if (name != NULL && IS_ABSOLUTE_PATH (name))
3710 {
3711 comp_dir = ldirname (name);
3712 if (comp_dir != NULL)
3713 make_cleanup (xfree, comp_dir);
3714 }
3715
3716 if (name == NULL)
3717 name = "<unknown>";
3718
3719 attr = dwarf2_attr (die, DW_AT_language, cu);
3720 if (attr)
3721 set_cu_language (DW_UNSND (attr), cu);
3722
3723 /* This isn't technically needed today. It is done for symmetry
3724 with read_file_scope. */
3725 attr = dwarf2_attr (die, DW_AT_producer, cu);
3726 if (attr)
3727 cu->producer = DW_STRING (attr);
3728
3729 /* We assume that we're processing GCC output. */
3730 processing_gcc_compilation = 2;
3731
3732 processing_has_namespace_info = 0;
3733
3734 start_symtab (name, comp_dir, lowpc);
3735 record_debugformat ("DWARF 2");
3736 record_producer (cu->producer);
3737
3738 /* Process the dies in the type unit. */
3739 if (die->child == NULL)
3740 {
3741 dump_die_for_error (die);
3742 error (_("Dwarf Error: Missing children for type unit [in module %s]"),
3743 bfd_get_filename (abfd));
3744 }
3745
3746 child_die = die->child;
3747
3748 while (child_die && child_die->tag)
3749 {
3750 process_die (child_die, cu);
3751
3752 child_die = sibling_die (child_die);
3753 }
3754
3755 do_cleanups (back_to);
3756 }
3757
3758 static void
3759 add_to_cu_func_list (const char *name, CORE_ADDR lowpc, CORE_ADDR highpc,
3760 struct dwarf2_cu *cu)
3761 {
3762 struct function_range *thisfn;
3763
3764 thisfn = (struct function_range *)
3765 obstack_alloc (&cu->comp_unit_obstack, sizeof (struct function_range));
3766 thisfn->name = name;
3767 thisfn->lowpc = lowpc;
3768 thisfn->highpc = highpc;
3769 thisfn->seen_line = 0;
3770 thisfn->next = NULL;
3771
3772 if (cu->last_fn == NULL)
3773 cu->first_fn = thisfn;
3774 else
3775 cu->last_fn->next = thisfn;
3776
3777 cu->last_fn = thisfn;
3778 }
3779
3780 /* qsort helper for inherit_abstract_dies. */
3781
3782 static int
3783 unsigned_int_compar (const void *ap, const void *bp)
3784 {
3785 unsigned int a = *(unsigned int *) ap;
3786 unsigned int b = *(unsigned int *) bp;
3787
3788 return (a > b) - (b > a);
3789 }
3790
3791 /* DW_AT_abstract_origin inherits whole DIEs (not just their attributes).
3792 Inherit only the children of the DW_AT_abstract_origin DIE not being already
3793 referenced by DW_AT_abstract_origin from the children of the current DIE. */
3794
3795 static void
3796 inherit_abstract_dies (struct die_info *die, struct dwarf2_cu *cu)
3797 {
3798 struct die_info *child_die;
3799 unsigned die_children_count;
3800 /* CU offsets which were referenced by children of the current DIE. */
3801 unsigned *offsets;
3802 unsigned *offsets_end, *offsetp;
3803 /* Parent of DIE - referenced by DW_AT_abstract_origin. */
3804 struct die_info *origin_die;
3805 /* Iterator of the ORIGIN_DIE children. */
3806 struct die_info *origin_child_die;
3807 struct cleanup *cleanups;
3808 struct attribute *attr;
3809
3810 attr = dwarf2_attr (die, DW_AT_abstract_origin, cu);
3811 if (!attr)
3812 return;
3813
3814 origin_die = follow_die_ref (die, attr, &cu);
3815 if (die->tag != origin_die->tag
3816 && !(die->tag == DW_TAG_inlined_subroutine
3817 && origin_die->tag == DW_TAG_subprogram))
3818 complaint (&symfile_complaints,
3819 _("DIE 0x%x and its abstract origin 0x%x have different tags"),
3820 die->offset, origin_die->offset);
3821
3822 child_die = die->child;
3823 die_children_count = 0;
3824 while (child_die && child_die->tag)
3825 {
3826 child_die = sibling_die (child_die);
3827 die_children_count++;
3828 }
3829 offsets = xmalloc (sizeof (*offsets) * die_children_count);
3830 cleanups = make_cleanup (xfree, offsets);
3831
3832 offsets_end = offsets;
3833 child_die = die->child;
3834 while (child_die && child_die->tag)
3835 {
3836 /* For each CHILD_DIE, find the corresponding child of
3837 ORIGIN_DIE. If there is more than one layer of
3838 DW_AT_abstract_origin, follow them all; there shouldn't be,
3839 but GCC versions at least through 4.4 generate this (GCC PR
3840 40573). */
3841 struct die_info *child_origin_die = child_die;
3842
3843 while (1)
3844 {
3845 attr = dwarf2_attr (child_origin_die, DW_AT_abstract_origin, cu);
3846 if (attr == NULL)
3847 break;
3848 child_origin_die = follow_die_ref (child_origin_die, attr, &cu);
3849 }
3850
3851 /* According to DWARF3 3.3.8.2 #3 new entries without their abstract
3852 counterpart may exist. */
3853 if (child_origin_die != child_die)
3854 {
3855 if (child_die->tag != child_origin_die->tag
3856 && !(child_die->tag == DW_TAG_inlined_subroutine
3857 && child_origin_die->tag == DW_TAG_subprogram))
3858 complaint (&symfile_complaints,
3859 _("Child DIE 0x%x and its abstract origin 0x%x have "
3860 "different tags"), child_die->offset,
3861 child_origin_die->offset);
3862 if (child_origin_die->parent != origin_die)
3863 complaint (&symfile_complaints,
3864 _("Child DIE 0x%x and its abstract origin 0x%x have "
3865 "different parents"), child_die->offset,
3866 child_origin_die->offset);
3867 else
3868 *offsets_end++ = child_origin_die->offset;
3869 }
3870 child_die = sibling_die (child_die);
3871 }
3872 qsort (offsets, offsets_end - offsets, sizeof (*offsets),
3873 unsigned_int_compar);
3874 for (offsetp = offsets + 1; offsetp < offsets_end; offsetp++)
3875 if (offsetp[-1] == *offsetp)
3876 complaint (&symfile_complaints, _("Multiple children of DIE 0x%x refer "
3877 "to DIE 0x%x as their abstract origin"),
3878 die->offset, *offsetp);
3879
3880 offsetp = offsets;
3881 origin_child_die = origin_die->child;
3882 while (origin_child_die && origin_child_die->tag)
3883 {
3884 /* Is ORIGIN_CHILD_DIE referenced by any of the DIE children? */
3885 while (offsetp < offsets_end && *offsetp < origin_child_die->offset)
3886 offsetp++;
3887 if (offsetp >= offsets_end || *offsetp > origin_child_die->offset)
3888 {
3889 /* Found that ORIGIN_CHILD_DIE is really not referenced. */
3890 process_die (origin_child_die, cu);
3891 }
3892 origin_child_die = sibling_die (origin_child_die);
3893 }
3894
3895 do_cleanups (cleanups);
3896 }
3897
3898 static void
3899 read_func_scope (struct die_info *die, struct dwarf2_cu *cu)
3900 {
3901 struct objfile *objfile = cu->objfile;
3902 struct context_stack *new;
3903 CORE_ADDR lowpc;
3904 CORE_ADDR highpc;
3905 struct die_info *child_die;
3906 struct attribute *attr, *call_line, *call_file;
3907 char *name;
3908 CORE_ADDR baseaddr;
3909 struct block *block;
3910 int inlined_func = (die->tag == DW_TAG_inlined_subroutine);
3911
3912 if (inlined_func)
3913 {
3914 /* If we do not have call site information, we can't show the
3915 caller of this inlined function. That's too confusing, so
3916 only use the scope for local variables. */
3917 call_line = dwarf2_attr (die, DW_AT_call_line, cu);
3918 call_file = dwarf2_attr (die, DW_AT_call_file, cu);
3919 if (call_line == NULL || call_file == NULL)
3920 {
3921 read_lexical_block_scope (die, cu);
3922 return;
3923 }
3924 }
3925
3926 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
3927
3928 name = dwarf2_name (die, cu);
3929
3930 /* Ignore functions with missing or empty names. These are actually
3931 illegal according to the DWARF standard. */
3932 if (name == NULL)
3933 {
3934 complaint (&symfile_complaints,
3935 _("missing name for subprogram DIE at %d"), die->offset);
3936 return;
3937 }
3938
3939 /* Ignore functions with missing or invalid low and high pc attributes. */
3940 if (!dwarf2_get_pc_bounds (die, &lowpc, &highpc, cu, NULL))
3941 {
3942 attr = dwarf2_attr (die, DW_AT_external, cu);
3943 if (!attr || !DW_UNSND (attr))
3944 complaint (&symfile_complaints,
3945 _("cannot get low and high bounds for subprogram DIE at %d"),
3946 die->offset);
3947 return;
3948 }
3949
3950 lowpc += baseaddr;
3951 highpc += baseaddr;
3952
3953 /* Record the function range for dwarf_decode_lines. */
3954 add_to_cu_func_list (name, lowpc, highpc, cu);
3955
3956 new = push_context (0, lowpc);
3957 new->name = new_symbol (die, read_type_die (die, cu), cu);
3958
3959 /* If there is a location expression for DW_AT_frame_base, record
3960 it. */
3961 attr = dwarf2_attr (die, DW_AT_frame_base, cu);
3962 if (attr)
3963 /* FIXME: cagney/2004-01-26: The DW_AT_frame_base's location
3964 expression is being recorded directly in the function's symbol
3965 and not in a separate frame-base object. I guess this hack is
3966 to avoid adding some sort of frame-base adjunct/annex to the
3967 function's symbol :-(. The problem with doing this is that it
3968 results in a function symbol with a location expression that
3969 has nothing to do with the location of the function, ouch! The
3970 relationship should be: a function's symbol has-a frame base; a
3971 frame-base has-a location expression. */
3972 dwarf2_symbol_mark_computed (attr, new->name, cu);
3973
3974 cu->list_in_scope = &local_symbols;
3975
3976 if (die->child != NULL)
3977 {
3978 child_die = die->child;
3979 while (child_die && child_die->tag)
3980 {
3981 process_die (child_die, cu);
3982 child_die = sibling_die (child_die);
3983 }
3984 }
3985
3986 inherit_abstract_dies (die, cu);
3987
3988 /* If we have a DW_AT_specification, we might need to import using
3989 directives from the context of the specification DIE. See the
3990 comment in determine_prefix. */
3991 if (cu->language == language_cplus
3992 && dwarf2_attr (die, DW_AT_specification, cu))
3993 {
3994 struct dwarf2_cu *spec_cu = cu;
3995 struct die_info *spec_die = die_specification (die, &spec_cu);
3996
3997 while (spec_die)
3998 {
3999 child_die = spec_die->child;
4000 while (child_die && child_die->tag)
4001 {
4002 if (child_die->tag == DW_TAG_imported_module)
4003 process_die (child_die, spec_cu);
4004 child_die = sibling_die (child_die);
4005 }
4006
4007 /* In some cases, GCC generates specification DIEs that
4008 themselves contain DW_AT_specification attributes. */
4009 spec_die = die_specification (spec_die, &spec_cu);
4010 }
4011 }
4012
4013 new = pop_context ();
4014 /* Make a block for the local symbols within. */
4015 block = finish_block (new->name, &local_symbols, new->old_blocks,
4016 lowpc, highpc, objfile);
4017
4018 /* For C++, set the block's scope. */
4019 if (cu->language == language_cplus || cu->language == language_fortran)
4020 cp_set_block_scope (new->name, block, &objfile->objfile_obstack,
4021 determine_prefix (die, cu),
4022 processing_has_namespace_info);
4023
4024 /* If we have address ranges, record them. */
4025 dwarf2_record_block_ranges (die, block, baseaddr, cu);
4026
4027 /* In C++, we can have functions nested inside functions (e.g., when
4028 a function declares a class that has methods). This means that
4029 when we finish processing a function scope, we may need to go
4030 back to building a containing block's symbol lists. */
4031 local_symbols = new->locals;
4032 param_symbols = new->params;
4033 using_directives = new->using_directives;
4034
4035 /* If we've finished processing a top-level function, subsequent
4036 symbols go in the file symbol list. */
4037 if (outermost_context_p ())
4038 cu->list_in_scope = &file_symbols;
4039 }
4040
4041 /* Process all the DIES contained within a lexical block scope. Start
4042 a new scope, process the dies, and then close the scope. */
4043
4044 static void
4045 read_lexical_block_scope (struct die_info *die, struct dwarf2_cu *cu)
4046 {
4047 struct objfile *objfile = cu->objfile;
4048 struct context_stack *new;
4049 CORE_ADDR lowpc, highpc;
4050 struct die_info *child_die;
4051 CORE_ADDR baseaddr;
4052
4053 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
4054
4055 /* Ignore blocks with missing or invalid low and high pc attributes. */
4056 /* ??? Perhaps consider discontiguous blocks defined by DW_AT_ranges
4057 as multiple lexical blocks? Handling children in a sane way would
4058 be nasty. Might be easier to properly extend generic blocks to
4059 describe ranges. */
4060 if (!dwarf2_get_pc_bounds (die, &lowpc, &highpc, cu, NULL))
4061 return;
4062 lowpc += baseaddr;
4063 highpc += baseaddr;
4064
4065 push_context (0, lowpc);
4066 if (die->child != NULL)
4067 {
4068 child_die = die->child;
4069 while (child_die && child_die->tag)
4070 {
4071 process_die (child_die, cu);
4072 child_die = sibling_die (child_die);
4073 }
4074 }
4075 new = pop_context ();
4076
4077 if (local_symbols != NULL || using_directives != NULL)
4078 {
4079 struct block *block
4080 = finish_block (0, &local_symbols, new->old_blocks, new->start_addr,
4081 highpc, objfile);
4082
4083 /* Note that recording ranges after traversing children, as we
4084 do here, means that recording a parent's ranges entails
4085 walking across all its children's ranges as they appear in
4086 the address map, which is quadratic behavior.
4087
4088 It would be nicer to record the parent's ranges before
4089 traversing its children, simply overriding whatever you find
4090 there. But since we don't even decide whether to create a
4091 block until after we've traversed its children, that's hard
4092 to do. */
4093 dwarf2_record_block_ranges (die, block, baseaddr, cu);
4094 }
4095 local_symbols = new->locals;
4096 using_directives = new->using_directives;
4097 }
4098
4099 /* Get low and high pc attributes from DW_AT_ranges attribute value OFFSET.
4100 Return 1 if the attributes are present and valid, otherwise, return 0.
4101 If RANGES_PST is not NULL we should setup `objfile->psymtabs_addrmap'. */
4102
4103 static int
4104 dwarf2_ranges_read (unsigned offset, CORE_ADDR *low_return,
4105 CORE_ADDR *high_return, struct dwarf2_cu *cu,
4106 struct partial_symtab *ranges_pst)
4107 {
4108 struct objfile *objfile = cu->objfile;
4109 struct comp_unit_head *cu_header = &cu->header;
4110 bfd *obfd = objfile->obfd;
4111 unsigned int addr_size = cu_header->addr_size;
4112 CORE_ADDR mask = ~(~(CORE_ADDR)1 << (addr_size * 8 - 1));
4113 /* Base address selection entry. */
4114 CORE_ADDR base;
4115 int found_base;
4116 unsigned int dummy;
4117 gdb_byte *buffer;
4118 CORE_ADDR marker;
4119 int low_set;
4120 CORE_ADDR low = 0;
4121 CORE_ADDR high = 0;
4122 CORE_ADDR baseaddr;
4123
4124 found_base = cu->base_known;
4125 base = cu->base_address;
4126
4127 dwarf2_read_section (objfile, &dwarf2_per_objfile->ranges);
4128 if (offset >= dwarf2_per_objfile->ranges.size)
4129 {
4130 complaint (&symfile_complaints,
4131 _("Offset %d out of bounds for DW_AT_ranges attribute"),
4132 offset);
4133 return 0;
4134 }
4135 buffer = dwarf2_per_objfile->ranges.buffer + offset;
4136
4137 /* Read in the largest possible address. */
4138 marker = read_address (obfd, buffer, cu, &dummy);
4139 if ((marker & mask) == mask)
4140 {
4141 /* If we found the largest possible address, then
4142 read the base address. */
4143 base = read_address (obfd, buffer + addr_size, cu, &dummy);
4144 buffer += 2 * addr_size;
4145 offset += 2 * addr_size;
4146 found_base = 1;
4147 }
4148
4149 low_set = 0;
4150
4151 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
4152
4153 while (1)
4154 {
4155 CORE_ADDR range_beginning, range_end;
4156
4157 range_beginning = read_address (obfd, buffer, cu, &dummy);
4158 buffer += addr_size;
4159 range_end = read_address (obfd, buffer, cu, &dummy);
4160 buffer += addr_size;
4161 offset += 2 * addr_size;
4162
4163 /* An end of list marker is a pair of zero addresses. */
4164 if (range_beginning == 0 && range_end == 0)
4165 /* Found the end of list entry. */
4166 break;
4167
4168 /* Each base address selection entry is a pair of 2 values.
4169 The first is the largest possible address, the second is
4170 the base address. Check for a base address here. */
4171 if ((range_beginning & mask) == mask)
4172 {
4173 /* If we found the largest possible address, then
4174 read the base address. */
4175 base = read_address (obfd, buffer + addr_size, cu, &dummy);
4176 found_base = 1;
4177 continue;
4178 }
4179
4180 if (!found_base)
4181 {
4182 /* We have no valid base address for the ranges
4183 data. */
4184 complaint (&symfile_complaints,
4185 _("Invalid .debug_ranges data (no base address)"));
4186 return 0;
4187 }
4188
4189 range_beginning += base;
4190 range_end += base;
4191
4192 if (ranges_pst != NULL && range_beginning < range_end)
4193 addrmap_set_empty (objfile->psymtabs_addrmap,
4194 range_beginning + baseaddr, range_end - 1 + baseaddr,
4195 ranges_pst);
4196
4197 /* FIXME: This is recording everything as a low-high
4198 segment of consecutive addresses. We should have a
4199 data structure for discontiguous block ranges
4200 instead. */
4201 if (! low_set)
4202 {
4203 low = range_beginning;
4204 high = range_end;
4205 low_set = 1;
4206 }
4207 else
4208 {
4209 if (range_beginning < low)
4210 low = range_beginning;
4211 if (range_end > high)
4212 high = range_end;
4213 }
4214 }
4215
4216 if (! low_set)
4217 /* If the first entry is an end-of-list marker, the range
4218 describes an empty scope, i.e. no instructions. */
4219 return 0;
4220
4221 if (low_return)
4222 *low_return = low;
4223 if (high_return)
4224 *high_return = high;
4225 return 1;
4226 }
4227
4228 /* Get low and high pc attributes from a die. Return 1 if the attributes
4229 are present and valid, otherwise, return 0. Return -1 if the range is
4230 discontinuous, i.e. derived from DW_AT_ranges information. */
4231 static int
4232 dwarf2_get_pc_bounds (struct die_info *die, CORE_ADDR *lowpc,
4233 CORE_ADDR *highpc, struct dwarf2_cu *cu,
4234 struct partial_symtab *pst)
4235 {
4236 struct attribute *attr;
4237 CORE_ADDR low = 0;
4238 CORE_ADDR high = 0;
4239 int ret = 0;
4240
4241 attr = dwarf2_attr (die, DW_AT_high_pc, cu);
4242 if (attr)
4243 {
4244 high = DW_ADDR (attr);
4245 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
4246 if (attr)
4247 low = DW_ADDR (attr);
4248 else
4249 /* Found high w/o low attribute. */
4250 return 0;
4251
4252 /* Found consecutive range of addresses. */
4253 ret = 1;
4254 }
4255 else
4256 {
4257 attr = dwarf2_attr (die, DW_AT_ranges, cu);
4258 if (attr != NULL)
4259 {
4260 /* Value of the DW_AT_ranges attribute is the offset in the
4261 .debug_ranges section. */
4262 if (!dwarf2_ranges_read (DW_UNSND (attr), &low, &high, cu, pst))
4263 return 0;
4264 /* Found discontinuous range of addresses. */
4265 ret = -1;
4266 }
4267 }
4268
4269 if (high < low)
4270 return 0;
4271
4272 /* When using the GNU linker, .gnu.linkonce. sections are used to
4273 eliminate duplicate copies of functions and vtables and such.
4274 The linker will arbitrarily choose one and discard the others.
4275 The AT_*_pc values for such functions refer to local labels in
4276 these sections. If the section from that file was discarded, the
4277 labels are not in the output, so the relocs get a value of 0.
4278 If this is a discarded function, mark the pc bounds as invalid,
4279 so that GDB will ignore it. */
4280 if (low == 0 && !dwarf2_per_objfile->has_section_at_zero)
4281 return 0;
4282
4283 *lowpc = low;
4284 *highpc = high;
4285 return ret;
4286 }
4287
4288 /* Assuming that DIE represents a subprogram DIE or a lexical block, get
4289 its low and high PC addresses. Do nothing if these addresses could not
4290 be determined. Otherwise, set LOWPC to the low address if it is smaller,
4291 and HIGHPC to the high address if greater than HIGHPC. */
4292
4293 static void
4294 dwarf2_get_subprogram_pc_bounds (struct die_info *die,
4295 CORE_ADDR *lowpc, CORE_ADDR *highpc,
4296 struct dwarf2_cu *cu)
4297 {
4298 CORE_ADDR low, high;
4299 struct die_info *child = die->child;
4300
4301 if (dwarf2_get_pc_bounds (die, &low, &high, cu, NULL))
4302 {
4303 *lowpc = min (*lowpc, low);
4304 *highpc = max (*highpc, high);
4305 }
4306
4307 /* If the language does not allow nested subprograms (either inside
4308 subprograms or lexical blocks), we're done. */
4309 if (cu->language != language_ada)
4310 return;
4311
4312 /* Check all the children of the given DIE. If it contains nested
4313 subprograms, then check their pc bounds. Likewise, we need to
4314 check lexical blocks as well, as they may also contain subprogram
4315 definitions. */
4316 while (child && child->tag)
4317 {
4318 if (child->tag == DW_TAG_subprogram
4319 || child->tag == DW_TAG_lexical_block)
4320 dwarf2_get_subprogram_pc_bounds (child, lowpc, highpc, cu);
4321 child = sibling_die (child);
4322 }
4323 }
4324
4325 /* Get the low and high pc's represented by the scope DIE, and store
4326 them in *LOWPC and *HIGHPC. If the correct values can't be
4327 determined, set *LOWPC to -1 and *HIGHPC to 0. */
4328
4329 static void
4330 get_scope_pc_bounds (struct die_info *die,
4331 CORE_ADDR *lowpc, CORE_ADDR *highpc,
4332 struct dwarf2_cu *cu)
4333 {
4334 CORE_ADDR best_low = (CORE_ADDR) -1;
4335 CORE_ADDR best_high = (CORE_ADDR) 0;
4336 CORE_ADDR current_low, current_high;
4337
4338 if (dwarf2_get_pc_bounds (die, &current_low, &current_high, cu, NULL))
4339 {
4340 best_low = current_low;
4341 best_high = current_high;
4342 }
4343 else
4344 {
4345 struct die_info *child = die->child;
4346
4347 while (child && child->tag)
4348 {
4349 switch (child->tag) {
4350 case DW_TAG_subprogram:
4351 dwarf2_get_subprogram_pc_bounds (child, &best_low, &best_high, cu);
4352 break;
4353 case DW_TAG_namespace:
4354 case DW_TAG_module:
4355 /* FIXME: carlton/2004-01-16: Should we do this for
4356 DW_TAG_class_type/DW_TAG_structure_type, too? I think
4357 that current GCC's always emit the DIEs corresponding
4358 to definitions of methods of classes as children of a
4359 DW_TAG_compile_unit or DW_TAG_namespace (as opposed to
4360 the DIEs giving the declarations, which could be
4361 anywhere). But I don't see any reason why the
4362 standards says that they have to be there. */
4363 get_scope_pc_bounds (child, &current_low, &current_high, cu);
4364
4365 if (current_low != ((CORE_ADDR) -1))
4366 {
4367 best_low = min (best_low, current_low);
4368 best_high = max (best_high, current_high);
4369 }
4370 break;
4371 default:
4372 /* Ignore. */
4373 break;
4374 }
4375
4376 child = sibling_die (child);
4377 }
4378 }
4379
4380 *lowpc = best_low;
4381 *highpc = best_high;
4382 }
4383
4384 /* Record the address ranges for BLOCK, offset by BASEADDR, as given
4385 in DIE. */
4386 static void
4387 dwarf2_record_block_ranges (struct die_info *die, struct block *block,
4388 CORE_ADDR baseaddr, struct dwarf2_cu *cu)
4389 {
4390 struct attribute *attr;
4391
4392 attr = dwarf2_attr (die, DW_AT_high_pc, cu);
4393 if (attr)
4394 {
4395 CORE_ADDR high = DW_ADDR (attr);
4396
4397 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
4398 if (attr)
4399 {
4400 CORE_ADDR low = DW_ADDR (attr);
4401
4402 record_block_range (block, baseaddr + low, baseaddr + high - 1);
4403 }
4404 }
4405
4406 attr = dwarf2_attr (die, DW_AT_ranges, cu);
4407 if (attr)
4408 {
4409 bfd *obfd = cu->objfile->obfd;
4410
4411 /* The value of the DW_AT_ranges attribute is the offset of the
4412 address range list in the .debug_ranges section. */
4413 unsigned long offset = DW_UNSND (attr);
4414 gdb_byte *buffer = dwarf2_per_objfile->ranges.buffer + offset;
4415
4416 /* For some target architectures, but not others, the
4417 read_address function sign-extends the addresses it returns.
4418 To recognize base address selection entries, we need a
4419 mask. */
4420 unsigned int addr_size = cu->header.addr_size;
4421 CORE_ADDR base_select_mask = ~(~(CORE_ADDR)1 << (addr_size * 8 - 1));
4422
4423 /* The base address, to which the next pair is relative. Note
4424 that this 'base' is a DWARF concept: most entries in a range
4425 list are relative, to reduce the number of relocs against the
4426 debugging information. This is separate from this function's
4427 'baseaddr' argument, which GDB uses to relocate debugging
4428 information from a shared library based on the address at
4429 which the library was loaded. */
4430 CORE_ADDR base = cu->base_address;
4431 int base_known = cu->base_known;
4432
4433 gdb_assert (dwarf2_per_objfile->ranges.readin);
4434 if (offset >= dwarf2_per_objfile->ranges.size)
4435 {
4436 complaint (&symfile_complaints,
4437 _("Offset %lu out of bounds for DW_AT_ranges attribute"),
4438 offset);
4439 return;
4440 }
4441
4442 for (;;)
4443 {
4444 unsigned int bytes_read;
4445 CORE_ADDR start, end;
4446
4447 start = read_address (obfd, buffer, cu, &bytes_read);
4448 buffer += bytes_read;
4449 end = read_address (obfd, buffer, cu, &bytes_read);
4450 buffer += bytes_read;
4451
4452 /* Did we find the end of the range list? */
4453 if (start == 0 && end == 0)
4454 break;
4455
4456 /* Did we find a base address selection entry? */
4457 else if ((start & base_select_mask) == base_select_mask)
4458 {
4459 base = end;
4460 base_known = 1;
4461 }
4462
4463 /* We found an ordinary address range. */
4464 else
4465 {
4466 if (!base_known)
4467 {
4468 complaint (&symfile_complaints,
4469 _("Invalid .debug_ranges data (no base address)"));
4470 return;
4471 }
4472
4473 record_block_range (block,
4474 baseaddr + base + start,
4475 baseaddr + base + end - 1);
4476 }
4477 }
4478 }
4479 }
4480
4481 /* Add an aggregate field to the field list. */
4482
4483 static void
4484 dwarf2_add_field (struct field_info *fip, struct die_info *die,
4485 struct dwarf2_cu *cu)
4486 {
4487 struct objfile *objfile = cu->objfile;
4488 struct gdbarch *gdbarch = get_objfile_arch (objfile);
4489 struct nextfield *new_field;
4490 struct attribute *attr;
4491 struct field *fp;
4492 char *fieldname = "";
4493
4494 /* Allocate a new field list entry and link it in. */
4495 new_field = (struct nextfield *) xmalloc (sizeof (struct nextfield));
4496 make_cleanup (xfree, new_field);
4497 memset (new_field, 0, sizeof (struct nextfield));
4498
4499 if (die->tag == DW_TAG_inheritance)
4500 {
4501 new_field->next = fip->baseclasses;
4502 fip->baseclasses = new_field;
4503 }
4504 else
4505 {
4506 new_field->next = fip->fields;
4507 fip->fields = new_field;
4508 }
4509 fip->nfields++;
4510
4511 /* Handle accessibility and virtuality of field.
4512 The default accessibility for members is public, the default
4513 accessibility for inheritance is private. */
4514 if (die->tag != DW_TAG_inheritance)
4515 new_field->accessibility = DW_ACCESS_public;
4516 else
4517 new_field->accessibility = DW_ACCESS_private;
4518 new_field->virtuality = DW_VIRTUALITY_none;
4519
4520 attr = dwarf2_attr (die, DW_AT_accessibility, cu);
4521 if (attr)
4522 new_field->accessibility = DW_UNSND (attr);
4523 if (new_field->accessibility != DW_ACCESS_public)
4524 fip->non_public_fields = 1;
4525 attr = dwarf2_attr (die, DW_AT_virtuality, cu);
4526 if (attr)
4527 new_field->virtuality = DW_UNSND (attr);
4528
4529 fp = &new_field->field;
4530
4531 if (die->tag == DW_TAG_member && ! die_is_declaration (die, cu))
4532 {
4533 /* Data member other than a C++ static data member. */
4534
4535 /* Get type of field. */
4536 fp->type = die_type (die, cu);
4537
4538 SET_FIELD_BITPOS (*fp, 0);
4539
4540 /* Get bit size of field (zero if none). */
4541 attr = dwarf2_attr (die, DW_AT_bit_size, cu);
4542 if (attr)
4543 {
4544 FIELD_BITSIZE (*fp) = DW_UNSND (attr);
4545 }
4546 else
4547 {
4548 FIELD_BITSIZE (*fp) = 0;
4549 }
4550
4551 /* Get bit offset of field. */
4552 attr = dwarf2_attr (die, DW_AT_data_member_location, cu);
4553 if (attr)
4554 {
4555 int byte_offset = 0;
4556
4557 if (attr_form_is_section_offset (attr))
4558 dwarf2_complex_location_expr_complaint ();
4559 else if (attr_form_is_constant (attr))
4560 byte_offset = dwarf2_get_attr_constant_value (attr, 0);
4561 else if (attr_form_is_block (attr))
4562 byte_offset = decode_locdesc (DW_BLOCK (attr), cu);
4563 else
4564 dwarf2_complex_location_expr_complaint ();
4565
4566 SET_FIELD_BITPOS (*fp, byte_offset * bits_per_byte);
4567 }
4568 attr = dwarf2_attr (die, DW_AT_bit_offset, cu);
4569 if (attr)
4570 {
4571 if (gdbarch_bits_big_endian (gdbarch))
4572 {
4573 /* For big endian bits, the DW_AT_bit_offset gives the
4574 additional bit offset from the MSB of the containing
4575 anonymous object to the MSB of the field. We don't
4576 have to do anything special since we don't need to
4577 know the size of the anonymous object. */
4578 FIELD_BITPOS (*fp) += DW_UNSND (attr);
4579 }
4580 else
4581 {
4582 /* For little endian bits, compute the bit offset to the
4583 MSB of the anonymous object, subtract off the number of
4584 bits from the MSB of the field to the MSB of the
4585 object, and then subtract off the number of bits of
4586 the field itself. The result is the bit offset of
4587 the LSB of the field. */
4588 int anonymous_size;
4589 int bit_offset = DW_UNSND (attr);
4590
4591 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
4592 if (attr)
4593 {
4594 /* The size of the anonymous object containing
4595 the bit field is explicit, so use the
4596 indicated size (in bytes). */
4597 anonymous_size = DW_UNSND (attr);
4598 }
4599 else
4600 {
4601 /* The size of the anonymous object containing
4602 the bit field must be inferred from the type
4603 attribute of the data member containing the
4604 bit field. */
4605 anonymous_size = TYPE_LENGTH (fp->type);
4606 }
4607 FIELD_BITPOS (*fp) += anonymous_size * bits_per_byte
4608 - bit_offset - FIELD_BITSIZE (*fp);
4609 }
4610 }
4611
4612 /* Get name of field. */
4613 fieldname = dwarf2_name (die, cu);
4614 if (fieldname == NULL)
4615 fieldname = "";
4616
4617 /* The name is already allocated along with this objfile, so we don't
4618 need to duplicate it for the type. */
4619 fp->name = fieldname;
4620
4621 /* Change accessibility for artificial fields (e.g. virtual table
4622 pointer or virtual base class pointer) to private. */
4623 if (dwarf2_attr (die, DW_AT_artificial, cu))
4624 {
4625 FIELD_ARTIFICIAL (*fp) = 1;
4626 new_field->accessibility = DW_ACCESS_private;
4627 fip->non_public_fields = 1;
4628 }
4629 }
4630 else if (die->tag == DW_TAG_member || die->tag == DW_TAG_variable)
4631 {
4632 /* C++ static member. */
4633
4634 /* NOTE: carlton/2002-11-05: It should be a DW_TAG_member that
4635 is a declaration, but all versions of G++ as of this writing
4636 (so through at least 3.2.1) incorrectly generate
4637 DW_TAG_variable tags. */
4638
4639 char *physname;
4640
4641 /* Get name of field. */
4642 fieldname = dwarf2_name (die, cu);
4643 if (fieldname == NULL)
4644 return;
4645
4646 attr = dwarf2_attr (die, DW_AT_const_value, cu);
4647 if (attr
4648 /* Only create a symbol if this is an external value.
4649 new_symbol checks this and puts the value in the global symbol
4650 table, which we want. If it is not external, new_symbol
4651 will try to put the value in cu->list_in_scope which is wrong. */
4652 && dwarf2_flag_true_p (die, DW_AT_external, cu))
4653 {
4654 /* A static const member, not much different than an enum as far as
4655 we're concerned, except that we can support more types. */
4656 new_symbol (die, NULL, cu);
4657 }
4658
4659 /* Get physical name. */
4660 physname = (char *) dwarf2_physname (fieldname, die, cu);
4661
4662 /* The name is already allocated along with this objfile, so we don't
4663 need to duplicate it for the type. */
4664 SET_FIELD_PHYSNAME (*fp, physname ? physname : "");
4665 FIELD_TYPE (*fp) = die_type (die, cu);
4666 FIELD_NAME (*fp) = fieldname;
4667 }
4668 else if (die->tag == DW_TAG_inheritance)
4669 {
4670 /* C++ base class field. */
4671 attr = dwarf2_attr (die, DW_AT_data_member_location, cu);
4672 if (attr)
4673 {
4674 int byte_offset = 0;
4675
4676 if (attr_form_is_section_offset (attr))
4677 dwarf2_complex_location_expr_complaint ();
4678 else if (attr_form_is_constant (attr))
4679 byte_offset = dwarf2_get_attr_constant_value (attr, 0);
4680 else if (attr_form_is_block (attr))
4681 byte_offset = decode_locdesc (DW_BLOCK (attr), cu);
4682 else
4683 dwarf2_complex_location_expr_complaint ();
4684
4685 SET_FIELD_BITPOS (*fp, byte_offset * bits_per_byte);
4686 }
4687 FIELD_BITSIZE (*fp) = 0;
4688 FIELD_TYPE (*fp) = die_type (die, cu);
4689 FIELD_NAME (*fp) = type_name_no_tag (fp->type);
4690 fip->nbaseclasses++;
4691 }
4692 }
4693
4694 /* Add a typedef defined in the scope of the FIP's class. */
4695
4696 static void
4697 dwarf2_add_typedef (struct field_info *fip, struct die_info *die,
4698 struct dwarf2_cu *cu)
4699 {
4700 struct objfile *objfile = cu->objfile;
4701 struct gdbarch *gdbarch = get_objfile_arch (objfile);
4702 struct typedef_field_list *new_field;
4703 struct attribute *attr;
4704 struct typedef_field *fp;
4705 char *fieldname = "";
4706
4707 /* Allocate a new field list entry and link it in. */
4708 new_field = xzalloc (sizeof (*new_field));
4709 make_cleanup (xfree, new_field);
4710
4711 gdb_assert (die->tag == DW_TAG_typedef);
4712
4713 fp = &new_field->field;
4714
4715 /* Get name of field. */
4716 fp->name = dwarf2_name (die, cu);
4717 if (fp->name == NULL)
4718 return;
4719
4720 fp->type = read_type_die (die, cu);
4721
4722 new_field->next = fip->typedef_field_list;
4723 fip->typedef_field_list = new_field;
4724 fip->typedef_field_list_count++;
4725 }
4726
4727 /* Create the vector of fields, and attach it to the type. */
4728
4729 static void
4730 dwarf2_attach_fields_to_type (struct field_info *fip, struct type *type,
4731 struct dwarf2_cu *cu)
4732 {
4733 int nfields = fip->nfields;
4734
4735 /* Record the field count, allocate space for the array of fields,
4736 and create blank accessibility bitfields if necessary. */
4737 TYPE_NFIELDS (type) = nfields;
4738 TYPE_FIELDS (type) = (struct field *)
4739 TYPE_ALLOC (type, sizeof (struct field) * nfields);
4740 memset (TYPE_FIELDS (type), 0, sizeof (struct field) * nfields);
4741
4742 if (fip->non_public_fields && cu->language != language_ada)
4743 {
4744 ALLOCATE_CPLUS_STRUCT_TYPE (type);
4745
4746 TYPE_FIELD_PRIVATE_BITS (type) =
4747 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
4748 B_CLRALL (TYPE_FIELD_PRIVATE_BITS (type), nfields);
4749
4750 TYPE_FIELD_PROTECTED_BITS (type) =
4751 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
4752 B_CLRALL (TYPE_FIELD_PROTECTED_BITS (type), nfields);
4753
4754 TYPE_FIELD_IGNORE_BITS (type) =
4755 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
4756 B_CLRALL (TYPE_FIELD_IGNORE_BITS (type), nfields);
4757 }
4758
4759 /* If the type has baseclasses, allocate and clear a bit vector for
4760 TYPE_FIELD_VIRTUAL_BITS. */
4761 if (fip->nbaseclasses && cu->language != language_ada)
4762 {
4763 int num_bytes = B_BYTES (fip->nbaseclasses);
4764 unsigned char *pointer;
4765
4766 ALLOCATE_CPLUS_STRUCT_TYPE (type);
4767 pointer = TYPE_ALLOC (type, num_bytes);
4768 TYPE_FIELD_VIRTUAL_BITS (type) = pointer;
4769 B_CLRALL (TYPE_FIELD_VIRTUAL_BITS (type), fip->nbaseclasses);
4770 TYPE_N_BASECLASSES (type) = fip->nbaseclasses;
4771 }
4772
4773 /* Copy the saved-up fields into the field vector. Start from the head
4774 of the list, adding to the tail of the field array, so that they end
4775 up in the same order in the array in which they were added to the list. */
4776 while (nfields-- > 0)
4777 {
4778 struct nextfield *fieldp;
4779
4780 if (fip->fields)
4781 {
4782 fieldp = fip->fields;
4783 fip->fields = fieldp->next;
4784 }
4785 else
4786 {
4787 fieldp = fip->baseclasses;
4788 fip->baseclasses = fieldp->next;
4789 }
4790
4791 TYPE_FIELD (type, nfields) = fieldp->field;
4792 switch (fieldp->accessibility)
4793 {
4794 case DW_ACCESS_private:
4795 if (cu->language != language_ada)
4796 SET_TYPE_FIELD_PRIVATE (type, nfields);
4797 break;
4798
4799 case DW_ACCESS_protected:
4800 if (cu->language != language_ada)
4801 SET_TYPE_FIELD_PROTECTED (type, nfields);
4802 break;
4803
4804 case DW_ACCESS_public:
4805 break;
4806
4807 default:
4808 /* Unknown accessibility. Complain and treat it as public. */
4809 {
4810 complaint (&symfile_complaints, _("unsupported accessibility %d"),
4811 fieldp->accessibility);
4812 }
4813 break;
4814 }
4815 if (nfields < fip->nbaseclasses)
4816 {
4817 switch (fieldp->virtuality)
4818 {
4819 case DW_VIRTUALITY_virtual:
4820 case DW_VIRTUALITY_pure_virtual:
4821 if (cu->language == language_ada)
4822 error ("unexpected virtuality in component of Ada type");
4823 SET_TYPE_FIELD_VIRTUAL (type, nfields);
4824 break;
4825 }
4826 }
4827 }
4828 }
4829
4830 /* Add a member function to the proper fieldlist. */
4831
4832 static void
4833 dwarf2_add_member_fn (struct field_info *fip, struct die_info *die,
4834 struct type *type, struct dwarf2_cu *cu)
4835 {
4836 struct objfile *objfile = cu->objfile;
4837 struct attribute *attr;
4838 struct fnfieldlist *flp;
4839 int i;
4840 struct fn_field *fnp;
4841 char *fieldname;
4842 char *physname;
4843 struct nextfnfield *new_fnfield;
4844 struct type *this_type;
4845
4846 if (cu->language == language_ada)
4847 error ("unexpected member function in Ada type");
4848
4849 /* Get name of member function. */
4850 fieldname = dwarf2_name (die, cu);
4851 if (fieldname == NULL)
4852 return;
4853
4854 /* Get the mangled name. */
4855 physname = (char *) dwarf2_physname (fieldname, die, cu);
4856
4857 /* Look up member function name in fieldlist. */
4858 for (i = 0; i < fip->nfnfields; i++)
4859 {
4860 if (strcmp (fip->fnfieldlists[i].name, fieldname) == 0)
4861 break;
4862 }
4863
4864 /* Create new list element if necessary. */
4865 if (i < fip->nfnfields)
4866 flp = &fip->fnfieldlists[i];
4867 else
4868 {
4869 if ((fip->nfnfields % DW_FIELD_ALLOC_CHUNK) == 0)
4870 {
4871 fip->fnfieldlists = (struct fnfieldlist *)
4872 xrealloc (fip->fnfieldlists,
4873 (fip->nfnfields + DW_FIELD_ALLOC_CHUNK)
4874 * sizeof (struct fnfieldlist));
4875 if (fip->nfnfields == 0)
4876 make_cleanup (free_current_contents, &fip->fnfieldlists);
4877 }
4878 flp = &fip->fnfieldlists[fip->nfnfields];
4879 flp->name = fieldname;
4880 flp->length = 0;
4881 flp->head = NULL;
4882 fip->nfnfields++;
4883 }
4884
4885 /* Create a new member function field and chain it to the field list
4886 entry. */
4887 new_fnfield = (struct nextfnfield *) xmalloc (sizeof (struct nextfnfield));
4888 make_cleanup (xfree, new_fnfield);
4889 memset (new_fnfield, 0, sizeof (struct nextfnfield));
4890 new_fnfield->next = flp->head;
4891 flp->head = new_fnfield;
4892 flp->length++;
4893
4894 /* Fill in the member function field info. */
4895 fnp = &new_fnfield->fnfield;
4896 /* The name is already allocated along with this objfile, so we don't
4897 need to duplicate it for the type. */
4898 fnp->physname = physname ? physname : "";
4899 fnp->type = alloc_type (objfile);
4900 this_type = read_type_die (die, cu);
4901 if (this_type && TYPE_CODE (this_type) == TYPE_CODE_FUNC)
4902 {
4903 int nparams = TYPE_NFIELDS (this_type);
4904
4905 /* TYPE is the domain of this method, and THIS_TYPE is the type
4906 of the method itself (TYPE_CODE_METHOD). */
4907 smash_to_method_type (fnp->type, type,
4908 TYPE_TARGET_TYPE (this_type),
4909 TYPE_FIELDS (this_type),
4910 TYPE_NFIELDS (this_type),
4911 TYPE_VARARGS (this_type));
4912
4913 /* Handle static member functions.
4914 Dwarf2 has no clean way to discern C++ static and non-static
4915 member functions. G++ helps GDB by marking the first
4916 parameter for non-static member functions (which is the
4917 this pointer) as artificial. We obtain this information
4918 from read_subroutine_type via TYPE_FIELD_ARTIFICIAL. */
4919 if (nparams == 0 || TYPE_FIELD_ARTIFICIAL (this_type, 0) == 0)
4920 fnp->voffset = VOFFSET_STATIC;
4921 }
4922 else
4923 complaint (&symfile_complaints, _("member function type missing for '%s'"),
4924 physname);
4925
4926 /* Get fcontext from DW_AT_containing_type if present. */
4927 if (dwarf2_attr (die, DW_AT_containing_type, cu) != NULL)
4928 fnp->fcontext = die_containing_type (die, cu);
4929
4930 /* dwarf2 doesn't have stubbed physical names, so the setting of is_const
4931 and is_volatile is irrelevant, as it is needed by gdb_mangle_name only. */
4932
4933 /* Get accessibility. */
4934 attr = dwarf2_attr (die, DW_AT_accessibility, cu);
4935 if (attr)
4936 {
4937 switch (DW_UNSND (attr))
4938 {
4939 case DW_ACCESS_private:
4940 fnp->is_private = 1;
4941 break;
4942 case DW_ACCESS_protected:
4943 fnp->is_protected = 1;
4944 break;
4945 }
4946 }
4947
4948 /* Check for artificial methods. */
4949 attr = dwarf2_attr (die, DW_AT_artificial, cu);
4950 if (attr && DW_UNSND (attr) != 0)
4951 fnp->is_artificial = 1;
4952
4953 /* Get index in virtual function table if it is a virtual member
4954 function. For older versions of GCC, this is an offset in the
4955 appropriate virtual table, as specified by DW_AT_containing_type.
4956 For everyone else, it is an expression to be evaluated relative
4957 to the object address. */
4958
4959 attr = dwarf2_attr (die, DW_AT_vtable_elem_location, cu);
4960 if (attr)
4961 {
4962 if (attr_form_is_block (attr) && DW_BLOCK (attr)->size > 0)
4963 {
4964 if (DW_BLOCK (attr)->data[0] == DW_OP_constu)
4965 {
4966 /* Old-style GCC. */
4967 fnp->voffset = decode_locdesc (DW_BLOCK (attr), cu) + 2;
4968 }
4969 else if (DW_BLOCK (attr)->data[0] == DW_OP_deref
4970 || (DW_BLOCK (attr)->size > 1
4971 && DW_BLOCK (attr)->data[0] == DW_OP_deref_size
4972 && DW_BLOCK (attr)->data[1] == cu->header.addr_size))
4973 {
4974 struct dwarf_block blk;
4975 int offset;
4976
4977 offset = (DW_BLOCK (attr)->data[0] == DW_OP_deref
4978 ? 1 : 2);
4979 blk.size = DW_BLOCK (attr)->size - offset;
4980 blk.data = DW_BLOCK (attr)->data + offset;
4981 fnp->voffset = decode_locdesc (DW_BLOCK (attr), cu);
4982 if ((fnp->voffset % cu->header.addr_size) != 0)
4983 dwarf2_complex_location_expr_complaint ();
4984 else
4985 fnp->voffset /= cu->header.addr_size;
4986 fnp->voffset += 2;
4987 }
4988 else
4989 dwarf2_complex_location_expr_complaint ();
4990
4991 if (!fnp->fcontext)
4992 fnp->fcontext = TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (this_type, 0));
4993 }
4994 else if (attr_form_is_section_offset (attr))
4995 {
4996 dwarf2_complex_location_expr_complaint ();
4997 }
4998 else
4999 {
5000 dwarf2_invalid_attrib_class_complaint ("DW_AT_vtable_elem_location",
5001 fieldname);
5002 }
5003 }
5004 else
5005 {
5006 attr = dwarf2_attr (die, DW_AT_virtuality, cu);
5007 if (attr && DW_UNSND (attr))
5008 {
5009 /* GCC does this, as of 2008-08-25; PR debug/37237. */
5010 complaint (&symfile_complaints,
5011 _("Member function \"%s\" (offset %d) is virtual but the vtable offset is not specified"),
5012 fieldname, die->offset);
5013 ALLOCATE_CPLUS_STRUCT_TYPE (type);
5014 TYPE_CPLUS_DYNAMIC (type) = 1;
5015 }
5016 }
5017 }
5018
5019 /* Create the vector of member function fields, and attach it to the type. */
5020
5021 static void
5022 dwarf2_attach_fn_fields_to_type (struct field_info *fip, struct type *type,
5023 struct dwarf2_cu *cu)
5024 {
5025 struct fnfieldlist *flp;
5026 int total_length = 0;
5027 int i;
5028
5029 if (cu->language == language_ada)
5030 error ("unexpected member functions in Ada type");
5031
5032 ALLOCATE_CPLUS_STRUCT_TYPE (type);
5033 TYPE_FN_FIELDLISTS (type) = (struct fn_fieldlist *)
5034 TYPE_ALLOC (type, sizeof (struct fn_fieldlist) * fip->nfnfields);
5035
5036 for (i = 0, flp = fip->fnfieldlists; i < fip->nfnfields; i++, flp++)
5037 {
5038 struct nextfnfield *nfp = flp->head;
5039 struct fn_fieldlist *fn_flp = &TYPE_FN_FIELDLIST (type, i);
5040 int k;
5041
5042 TYPE_FN_FIELDLIST_NAME (type, i) = flp->name;
5043 TYPE_FN_FIELDLIST_LENGTH (type, i) = flp->length;
5044 fn_flp->fn_fields = (struct fn_field *)
5045 TYPE_ALLOC (type, sizeof (struct fn_field) * flp->length);
5046 for (k = flp->length; (k--, nfp); nfp = nfp->next)
5047 fn_flp->fn_fields[k] = nfp->fnfield;
5048
5049 total_length += flp->length;
5050 }
5051
5052 TYPE_NFN_FIELDS (type) = fip->nfnfields;
5053 TYPE_NFN_FIELDS_TOTAL (type) = total_length;
5054 }
5055
5056 /* Returns non-zero if NAME is the name of a vtable member in CU's
5057 language, zero otherwise. */
5058 static int
5059 is_vtable_name (const char *name, struct dwarf2_cu *cu)
5060 {
5061 static const char vptr[] = "_vptr";
5062 static const char vtable[] = "vtable";
5063
5064 /* Look for the C++ and Java forms of the vtable. */
5065 if ((cu->language == language_java
5066 && strncmp (name, vtable, sizeof (vtable) - 1) == 0)
5067 || (strncmp (name, vptr, sizeof (vptr) - 1) == 0
5068 && is_cplus_marker (name[sizeof (vptr) - 1])))
5069 return 1;
5070
5071 return 0;
5072 }
5073
5074 /* GCC outputs unnamed structures that are really pointers to member
5075 functions, with the ABI-specified layout. If TYPE describes
5076 such a structure, smash it into a member function type.
5077
5078 GCC shouldn't do this; it should just output pointer to member DIEs.
5079 This is GCC PR debug/28767. */
5080
5081 static void
5082 quirk_gcc_member_function_pointer (struct type *type, struct objfile *objfile)
5083 {
5084 struct type *pfn_type, *domain_type, *new_type;
5085
5086 /* Check for a structure with no name and two children. */
5087 if (TYPE_CODE (type) != TYPE_CODE_STRUCT || TYPE_NFIELDS (type) != 2)
5088 return;
5089
5090 /* Check for __pfn and __delta members. */
5091 if (TYPE_FIELD_NAME (type, 0) == NULL
5092 || strcmp (TYPE_FIELD_NAME (type, 0), "__pfn") != 0
5093 || TYPE_FIELD_NAME (type, 1) == NULL
5094 || strcmp (TYPE_FIELD_NAME (type, 1), "__delta") != 0)
5095 return;
5096
5097 /* Find the type of the method. */
5098 pfn_type = TYPE_FIELD_TYPE (type, 0);
5099 if (pfn_type == NULL
5100 || TYPE_CODE (pfn_type) != TYPE_CODE_PTR
5101 || TYPE_CODE (TYPE_TARGET_TYPE (pfn_type)) != TYPE_CODE_FUNC)
5102 return;
5103
5104 /* Look for the "this" argument. */
5105 pfn_type = TYPE_TARGET_TYPE (pfn_type);
5106 if (TYPE_NFIELDS (pfn_type) == 0
5107 /* || TYPE_FIELD_TYPE (pfn_type, 0) == NULL */
5108 || TYPE_CODE (TYPE_FIELD_TYPE (pfn_type, 0)) != TYPE_CODE_PTR)
5109 return;
5110
5111 domain_type = TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (pfn_type, 0));
5112 new_type = alloc_type (objfile);
5113 smash_to_method_type (new_type, domain_type, TYPE_TARGET_TYPE (pfn_type),
5114 TYPE_FIELDS (pfn_type), TYPE_NFIELDS (pfn_type),
5115 TYPE_VARARGS (pfn_type));
5116 smash_to_methodptr_type (type, new_type);
5117 }
5118
5119 /* Called when we find the DIE that starts a structure or union scope
5120 (definition) to process all dies that define the members of the
5121 structure or union.
5122
5123 NOTE: we need to call struct_type regardless of whether or not the
5124 DIE has an at_name attribute, since it might be an anonymous
5125 structure or union. This gets the type entered into our set of
5126 user defined types.
5127
5128 However, if the structure is incomplete (an opaque struct/union)
5129 then suppress creating a symbol table entry for it since gdb only
5130 wants to find the one with the complete definition. Note that if
5131 it is complete, we just call new_symbol, which does it's own
5132 checking about whether the struct/union is anonymous or not (and
5133 suppresses creating a symbol table entry itself). */
5134
5135 static struct type *
5136 read_structure_type (struct die_info *die, struct dwarf2_cu *cu)
5137 {
5138 struct objfile *objfile = cu->objfile;
5139 struct type *type;
5140 struct attribute *attr;
5141 char *name;
5142 struct cleanup *back_to;
5143
5144 /* If the definition of this type lives in .debug_types, read that type.
5145 Don't follow DW_AT_specification though, that will take us back up
5146 the chain and we want to go down. */
5147 attr = dwarf2_attr_no_follow (die, DW_AT_signature, cu);
5148 if (attr)
5149 {
5150 struct dwarf2_cu *type_cu = cu;
5151 struct die_info *type_die = follow_die_ref_or_sig (die, attr, &type_cu);
5152
5153 /* We could just recurse on read_structure_type, but we need to call
5154 get_die_type to ensure only one type for this DIE is created.
5155 This is important, for example, because for c++ classes we need
5156 TYPE_NAME set which is only done by new_symbol. Blech. */
5157 type = read_type_die (type_die, type_cu);
5158 return set_die_type (die, type, cu);
5159 }
5160
5161 back_to = make_cleanup (null_cleanup, 0);
5162
5163 type = alloc_type (objfile);
5164 INIT_CPLUS_SPECIFIC (type);
5165
5166 name = dwarf2_name (die, cu);
5167 if (name != NULL)
5168 {
5169 if (cu->language == language_cplus
5170 || cu->language == language_java)
5171 {
5172 TYPE_TAG_NAME (type) = (char *) dwarf2_full_name (name, die, cu);
5173 if (die->tag == DW_TAG_structure_type
5174 || die->tag == DW_TAG_class_type)
5175 TYPE_NAME (type) = TYPE_TAG_NAME (type);
5176 }
5177 else
5178 {
5179 /* The name is already allocated along with this objfile, so
5180 we don't need to duplicate it for the type. */
5181 TYPE_TAG_NAME (type) = (char *) name;
5182 if (die->tag == DW_TAG_class_type)
5183 TYPE_NAME (type) = TYPE_TAG_NAME (type);
5184 }
5185 }
5186
5187 if (die->tag == DW_TAG_structure_type)
5188 {
5189 TYPE_CODE (type) = TYPE_CODE_STRUCT;
5190 }
5191 else if (die->tag == DW_TAG_union_type)
5192 {
5193 TYPE_CODE (type) = TYPE_CODE_UNION;
5194 }
5195 else
5196 {
5197 TYPE_CODE (type) = TYPE_CODE_CLASS;
5198 }
5199
5200 if (cu->language == language_cplus && die->tag == DW_TAG_class_type)
5201 TYPE_DECLARED_CLASS (type) = 1;
5202
5203 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
5204 if (attr)
5205 {
5206 TYPE_LENGTH (type) = DW_UNSND (attr);
5207 }
5208 else
5209 {
5210 TYPE_LENGTH (type) = 0;
5211 }
5212
5213 TYPE_STUB_SUPPORTED (type) = 1;
5214 if (die_is_declaration (die, cu))
5215 TYPE_STUB (type) = 1;
5216 else if (attr == NULL && die->child == NULL
5217 && producer_is_realview (cu->producer))
5218 /* RealView does not output the required DW_AT_declaration
5219 on incomplete types. */
5220 TYPE_STUB (type) = 1;
5221
5222 /* We need to add the type field to the die immediately so we don't
5223 infinitely recurse when dealing with pointers to the structure
5224 type within the structure itself. */
5225 set_die_type (die, type, cu);
5226
5227 /* set_die_type should be already done. */
5228 set_descriptive_type (type, die, cu);
5229
5230 if (die->child != NULL && ! die_is_declaration (die, cu))
5231 {
5232 struct field_info fi;
5233 struct die_info *child_die;
5234
5235 memset (&fi, 0, sizeof (struct field_info));
5236
5237 child_die = die->child;
5238
5239 while (child_die && child_die->tag)
5240 {
5241 if (child_die->tag == DW_TAG_member
5242 || child_die->tag == DW_TAG_variable)
5243 {
5244 /* NOTE: carlton/2002-11-05: A C++ static data member
5245 should be a DW_TAG_member that is a declaration, but
5246 all versions of G++ as of this writing (so through at
5247 least 3.2.1) incorrectly generate DW_TAG_variable
5248 tags for them instead. */
5249 dwarf2_add_field (&fi, child_die, cu);
5250 }
5251 else if (child_die->tag == DW_TAG_subprogram)
5252 {
5253 /* C++ member function. */
5254 dwarf2_add_member_fn (&fi, child_die, type, cu);
5255 }
5256 else if (child_die->tag == DW_TAG_inheritance)
5257 {
5258 /* C++ base class field. */
5259 dwarf2_add_field (&fi, child_die, cu);
5260 }
5261 else if (child_die->tag == DW_TAG_typedef)
5262 dwarf2_add_typedef (&fi, child_die, cu);
5263 child_die = sibling_die (child_die);
5264 }
5265
5266 /* Attach fields and member functions to the type. */
5267 if (fi.nfields)
5268 dwarf2_attach_fields_to_type (&fi, type, cu);
5269 if (fi.nfnfields)
5270 {
5271 dwarf2_attach_fn_fields_to_type (&fi, type, cu);
5272
5273 /* Get the type which refers to the base class (possibly this
5274 class itself) which contains the vtable pointer for the current
5275 class from the DW_AT_containing_type attribute. This use of
5276 DW_AT_containing_type is a GNU extension. */
5277
5278 if (dwarf2_attr (die, DW_AT_containing_type, cu) != NULL)
5279 {
5280 struct type *t = die_containing_type (die, cu);
5281
5282 TYPE_VPTR_BASETYPE (type) = t;
5283 if (type == t)
5284 {
5285 int i;
5286
5287 /* Our own class provides vtbl ptr. */
5288 for (i = TYPE_NFIELDS (t) - 1;
5289 i >= TYPE_N_BASECLASSES (t);
5290 --i)
5291 {
5292 char *fieldname = TYPE_FIELD_NAME (t, i);
5293
5294 if (is_vtable_name (fieldname, cu))
5295 {
5296 TYPE_VPTR_FIELDNO (type) = i;
5297 break;
5298 }
5299 }
5300
5301 /* Complain if virtual function table field not found. */
5302 if (i < TYPE_N_BASECLASSES (t))
5303 complaint (&symfile_complaints,
5304 _("virtual function table pointer not found when defining class '%s'"),
5305 TYPE_TAG_NAME (type) ? TYPE_TAG_NAME (type) :
5306 "");
5307 }
5308 else
5309 {
5310 TYPE_VPTR_FIELDNO (type) = TYPE_VPTR_FIELDNO (t);
5311 }
5312 }
5313 else if (cu->producer
5314 && strncmp (cu->producer,
5315 "IBM(R) XL C/C++ Advanced Edition", 32) == 0)
5316 {
5317 /* The IBM XLC compiler does not provide direct indication
5318 of the containing type, but the vtable pointer is
5319 always named __vfp. */
5320
5321 int i;
5322
5323 for (i = TYPE_NFIELDS (type) - 1;
5324 i >= TYPE_N_BASECLASSES (type);
5325 --i)
5326 {
5327 if (strcmp (TYPE_FIELD_NAME (type, i), "__vfp") == 0)
5328 {
5329 TYPE_VPTR_FIELDNO (type) = i;
5330 TYPE_VPTR_BASETYPE (type) = type;
5331 break;
5332 }
5333 }
5334 }
5335 }
5336
5337 /* Copy fi.typedef_field_list linked list elements content into the
5338 allocated array TYPE_TYPEDEF_FIELD_ARRAY (type). */
5339 if (fi.typedef_field_list)
5340 {
5341 int i = fi.typedef_field_list_count;
5342
5343 ALLOCATE_CPLUS_STRUCT_TYPE (type);
5344 TYPE_TYPEDEF_FIELD_ARRAY (type)
5345 = TYPE_ALLOC (type, sizeof (TYPE_TYPEDEF_FIELD (type, 0)) * i);
5346 TYPE_TYPEDEF_FIELD_COUNT (type) = i;
5347
5348 /* Reverse the list order to keep the debug info elements order. */
5349 while (--i >= 0)
5350 {
5351 struct typedef_field *dest, *src;
5352
5353 dest = &TYPE_TYPEDEF_FIELD (type, i);
5354 src = &fi.typedef_field_list->field;
5355 fi.typedef_field_list = fi.typedef_field_list->next;
5356 *dest = *src;
5357 }
5358 }
5359 }
5360
5361 quirk_gcc_member_function_pointer (type, cu->objfile);
5362
5363 do_cleanups (back_to);
5364 return type;
5365 }
5366
5367 static void
5368 process_structure_scope (struct die_info *die, struct dwarf2_cu *cu)
5369 {
5370 struct die_info *child_die = die->child;
5371 struct type *this_type;
5372
5373 this_type = get_die_type (die, cu);
5374 if (this_type == NULL)
5375 this_type = read_structure_type (die, cu);
5376
5377 /* NOTE: carlton/2004-03-16: GCC 3.4 (or at least one of its
5378 snapshots) has been known to create a die giving a declaration
5379 for a class that has, as a child, a die giving a definition for a
5380 nested class. So we have to process our children even if the
5381 current die is a declaration. Normally, of course, a declaration
5382 won't have any children at all. */
5383
5384 while (child_die != NULL && child_die->tag)
5385 {
5386 if (child_die->tag == DW_TAG_member
5387 || child_die->tag == DW_TAG_variable
5388 || child_die->tag == DW_TAG_inheritance)
5389 {
5390 /* Do nothing. */
5391 }
5392 else
5393 process_die (child_die, cu);
5394
5395 child_die = sibling_die (child_die);
5396 }
5397
5398 /* Do not consider external references. According to the DWARF standard,
5399 these DIEs are identified by the fact that they have no byte_size
5400 attribute, and a declaration attribute. */
5401 if (dwarf2_attr (die, DW_AT_byte_size, cu) != NULL
5402 || !die_is_declaration (die, cu))
5403 new_symbol (die, this_type, cu);
5404 }
5405
5406 /* Given a DW_AT_enumeration_type die, set its type. We do not
5407 complete the type's fields yet, or create any symbols. */
5408
5409 static struct type *
5410 read_enumeration_type (struct die_info *die, struct dwarf2_cu *cu)
5411 {
5412 struct objfile *objfile = cu->objfile;
5413 struct type *type;
5414 struct attribute *attr;
5415 const char *name;
5416
5417 /* If the definition of this type lives in .debug_types, read that type.
5418 Don't follow DW_AT_specification though, that will take us back up
5419 the chain and we want to go down. */
5420 attr = dwarf2_attr_no_follow (die, DW_AT_signature, cu);
5421 if (attr)
5422 {
5423 struct dwarf2_cu *type_cu = cu;
5424 struct die_info *type_die = follow_die_ref_or_sig (die, attr, &type_cu);
5425
5426 type = read_type_die (type_die, type_cu);
5427 return set_die_type (die, type, cu);
5428 }
5429
5430 type = alloc_type (objfile);
5431
5432 TYPE_CODE (type) = TYPE_CODE_ENUM;
5433 name = dwarf2_full_name (NULL, die, cu);
5434 if (name != NULL)
5435 TYPE_TAG_NAME (type) = (char *) name;
5436
5437 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
5438 if (attr)
5439 {
5440 TYPE_LENGTH (type) = DW_UNSND (attr);
5441 }
5442 else
5443 {
5444 TYPE_LENGTH (type) = 0;
5445 }
5446
5447 /* The enumeration DIE can be incomplete. In Ada, any type can be
5448 declared as private in the package spec, and then defined only
5449 inside the package body. Such types are known as Taft Amendment
5450 Types. When another package uses such a type, an incomplete DIE
5451 may be generated by the compiler. */
5452 if (die_is_declaration (die, cu))
5453 TYPE_STUB (type) = 1;
5454
5455 return set_die_type (die, type, cu);
5456 }
5457
5458 /* Given a pointer to a die which begins an enumeration, process all
5459 the dies that define the members of the enumeration, and create the
5460 symbol for the enumeration type.
5461
5462 NOTE: We reverse the order of the element list. */
5463
5464 static void
5465 process_enumeration_scope (struct die_info *die, struct dwarf2_cu *cu)
5466 {
5467 struct die_info *child_die;
5468 struct field *fields;
5469 struct symbol *sym;
5470 int num_fields;
5471 int unsigned_enum = 1;
5472 char *name;
5473 struct type *this_type;
5474
5475 num_fields = 0;
5476 fields = NULL;
5477 this_type = get_die_type (die, cu);
5478 if (this_type == NULL)
5479 this_type = read_enumeration_type (die, cu);
5480 if (die->child != NULL)
5481 {
5482 child_die = die->child;
5483 while (child_die && child_die->tag)
5484 {
5485 if (child_die->tag != DW_TAG_enumerator)
5486 {
5487 process_die (child_die, cu);
5488 }
5489 else
5490 {
5491 name = dwarf2_name (child_die, cu);
5492 if (name)
5493 {
5494 sym = new_symbol (child_die, this_type, cu);
5495 if (SYMBOL_VALUE (sym) < 0)
5496 unsigned_enum = 0;
5497
5498 if ((num_fields % DW_FIELD_ALLOC_CHUNK) == 0)
5499 {
5500 fields = (struct field *)
5501 xrealloc (fields,
5502 (num_fields + DW_FIELD_ALLOC_CHUNK)
5503 * sizeof (struct field));
5504 }
5505
5506 FIELD_NAME (fields[num_fields]) = SYMBOL_LINKAGE_NAME (sym);
5507 FIELD_TYPE (fields[num_fields]) = NULL;
5508 SET_FIELD_BITPOS (fields[num_fields], SYMBOL_VALUE (sym));
5509 FIELD_BITSIZE (fields[num_fields]) = 0;
5510
5511 num_fields++;
5512 }
5513 }
5514
5515 child_die = sibling_die (child_die);
5516 }
5517
5518 if (num_fields)
5519 {
5520 TYPE_NFIELDS (this_type) = num_fields;
5521 TYPE_FIELDS (this_type) = (struct field *)
5522 TYPE_ALLOC (this_type, sizeof (struct field) * num_fields);
5523 memcpy (TYPE_FIELDS (this_type), fields,
5524 sizeof (struct field) * num_fields);
5525 xfree (fields);
5526 }
5527 if (unsigned_enum)
5528 TYPE_UNSIGNED (this_type) = 1;
5529 }
5530
5531 new_symbol (die, this_type, cu);
5532 }
5533
5534 /* Extract all information from a DW_TAG_array_type DIE and put it in
5535 the DIE's type field. For now, this only handles one dimensional
5536 arrays. */
5537
5538 static struct type *
5539 read_array_type (struct die_info *die, struct dwarf2_cu *cu)
5540 {
5541 struct objfile *objfile = cu->objfile;
5542 struct die_info *child_die;
5543 struct type *type;
5544 struct type *element_type, *range_type, *index_type;
5545 struct type **range_types = NULL;
5546 struct attribute *attr;
5547 int ndim = 0;
5548 struct cleanup *back_to;
5549 char *name;
5550
5551 element_type = die_type (die, cu);
5552
5553 /* The die_type call above may have already set the type for this DIE. */
5554 type = get_die_type (die, cu);
5555 if (type)
5556 return type;
5557
5558 /* Irix 6.2 native cc creates array types without children for
5559 arrays with unspecified length. */
5560 if (die->child == NULL)
5561 {
5562 index_type = objfile_type (objfile)->builtin_int;
5563 range_type = create_range_type (NULL, index_type, 0, -1);
5564 type = create_array_type (NULL, element_type, range_type);
5565 return set_die_type (die, type, cu);
5566 }
5567
5568 back_to = make_cleanup (null_cleanup, NULL);
5569 child_die = die->child;
5570 while (child_die && child_die->tag)
5571 {
5572 if (child_die->tag == DW_TAG_subrange_type)
5573 {
5574 struct type *child_type = read_type_die (child_die, cu);
5575
5576 if (child_type != NULL)
5577 {
5578 /* The range type was succesfully read. Save it for
5579 the array type creation. */
5580 if ((ndim % DW_FIELD_ALLOC_CHUNK) == 0)
5581 {
5582 range_types = (struct type **)
5583 xrealloc (range_types, (ndim + DW_FIELD_ALLOC_CHUNK)
5584 * sizeof (struct type *));
5585 if (ndim == 0)
5586 make_cleanup (free_current_contents, &range_types);
5587 }
5588 range_types[ndim++] = child_type;
5589 }
5590 }
5591 child_die = sibling_die (child_die);
5592 }
5593
5594 /* Dwarf2 dimensions are output from left to right, create the
5595 necessary array types in backwards order. */
5596
5597 type = element_type;
5598
5599 if (read_array_order (die, cu) == DW_ORD_col_major)
5600 {
5601 int i = 0;
5602
5603 while (i < ndim)
5604 type = create_array_type (NULL, type, range_types[i++]);
5605 }
5606 else
5607 {
5608 while (ndim-- > 0)
5609 type = create_array_type (NULL, type, range_types[ndim]);
5610 }
5611
5612 /* Understand Dwarf2 support for vector types (like they occur on
5613 the PowerPC w/ AltiVec). Gcc just adds another attribute to the
5614 array type. This is not part of the Dwarf2/3 standard yet, but a
5615 custom vendor extension. The main difference between a regular
5616 array and the vector variant is that vectors are passed by value
5617 to functions. */
5618 attr = dwarf2_attr (die, DW_AT_GNU_vector, cu);
5619 if (attr)
5620 make_vector_type (type);
5621
5622 name = dwarf2_name (die, cu);
5623 if (name)
5624 TYPE_NAME (type) = name;
5625
5626 /* Install the type in the die. */
5627 set_die_type (die, type, cu);
5628
5629 /* set_die_type should be already done. */
5630 set_descriptive_type (type, die, cu);
5631
5632 do_cleanups (back_to);
5633
5634 return type;
5635 }
5636
5637 static enum dwarf_array_dim_ordering
5638 read_array_order (struct die_info *die, struct dwarf2_cu *cu)
5639 {
5640 struct attribute *attr;
5641
5642 attr = dwarf2_attr (die, DW_AT_ordering, cu);
5643
5644 if (attr) return DW_SND (attr);
5645
5646 /*
5647 GNU F77 is a special case, as at 08/2004 array type info is the
5648 opposite order to the dwarf2 specification, but data is still
5649 laid out as per normal fortran.
5650
5651 FIXME: dsl/2004-8-20: If G77 is ever fixed, this will also need
5652 version checking.
5653 */
5654
5655 if (cu->language == language_fortran
5656 && cu->producer && strstr (cu->producer, "GNU F77"))
5657 {
5658 return DW_ORD_row_major;
5659 }
5660
5661 switch (cu->language_defn->la_array_ordering)
5662 {
5663 case array_column_major:
5664 return DW_ORD_col_major;
5665 case array_row_major:
5666 default:
5667 return DW_ORD_row_major;
5668 };
5669 }
5670
5671 /* Extract all information from a DW_TAG_set_type DIE and put it in
5672 the DIE's type field. */
5673
5674 static struct type *
5675 read_set_type (struct die_info *die, struct dwarf2_cu *cu)
5676 {
5677 struct type *domain_type, *set_type;
5678 struct attribute *attr;
5679
5680 domain_type = die_type (die, cu);
5681
5682 /* The die_type call above may have already set the type for this DIE. */
5683 set_type = get_die_type (die, cu);
5684 if (set_type)
5685 return set_type;
5686
5687 set_type = create_set_type (NULL, domain_type);
5688
5689 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
5690 if (attr)
5691 TYPE_LENGTH (set_type) = DW_UNSND (attr);
5692
5693 return set_die_type (die, set_type, cu);
5694 }
5695
5696 /* First cut: install each common block member as a global variable. */
5697
5698 static void
5699 read_common_block (struct die_info *die, struct dwarf2_cu *cu)
5700 {
5701 struct die_info *child_die;
5702 struct attribute *attr;
5703 struct symbol *sym;
5704 CORE_ADDR base = (CORE_ADDR) 0;
5705
5706 attr = dwarf2_attr (die, DW_AT_location, cu);
5707 if (attr)
5708 {
5709 /* Support the .debug_loc offsets */
5710 if (attr_form_is_block (attr))
5711 {
5712 base = decode_locdesc (DW_BLOCK (attr), cu);
5713 }
5714 else if (attr_form_is_section_offset (attr))
5715 {
5716 dwarf2_complex_location_expr_complaint ();
5717 }
5718 else
5719 {
5720 dwarf2_invalid_attrib_class_complaint ("DW_AT_location",
5721 "common block member");
5722 }
5723 }
5724 if (die->child != NULL)
5725 {
5726 child_die = die->child;
5727 while (child_die && child_die->tag)
5728 {
5729 sym = new_symbol (child_die, NULL, cu);
5730 attr = dwarf2_attr (child_die, DW_AT_data_member_location, cu);
5731 if (attr)
5732 {
5733 CORE_ADDR byte_offset = 0;
5734
5735 if (attr_form_is_section_offset (attr))
5736 dwarf2_complex_location_expr_complaint ();
5737 else if (attr_form_is_constant (attr))
5738 byte_offset = dwarf2_get_attr_constant_value (attr, 0);
5739 else if (attr_form_is_block (attr))
5740 byte_offset = decode_locdesc (DW_BLOCK (attr), cu);
5741 else
5742 dwarf2_complex_location_expr_complaint ();
5743
5744 SYMBOL_VALUE_ADDRESS (sym) = base + byte_offset;
5745 add_symbol_to_list (sym, &global_symbols);
5746 }
5747 child_die = sibling_die (child_die);
5748 }
5749 }
5750 }
5751
5752 /* Create a type for a C++ namespace. */
5753
5754 static struct type *
5755 read_namespace_type (struct die_info *die, struct dwarf2_cu *cu)
5756 {
5757 struct objfile *objfile = cu->objfile;
5758 const char *previous_prefix, *name;
5759 int is_anonymous;
5760 struct type *type;
5761
5762 /* For extensions, reuse the type of the original namespace. */
5763 if (dwarf2_attr (die, DW_AT_extension, cu) != NULL)
5764 {
5765 struct die_info *ext_die;
5766 struct dwarf2_cu *ext_cu = cu;
5767
5768 ext_die = dwarf2_extension (die, &ext_cu);
5769 type = read_type_die (ext_die, ext_cu);
5770 return set_die_type (die, type, cu);
5771 }
5772
5773 name = namespace_name (die, &is_anonymous, cu);
5774
5775 /* Now build the name of the current namespace. */
5776
5777 previous_prefix = determine_prefix (die, cu);
5778 if (previous_prefix[0] != '\0')
5779 name = typename_concat (&objfile->objfile_obstack,
5780 previous_prefix, name, 0, cu);
5781
5782 /* Create the type. */
5783 type = init_type (TYPE_CODE_NAMESPACE, 0, 0, NULL,
5784 objfile);
5785 TYPE_NAME (type) = (char *) name;
5786 TYPE_TAG_NAME (type) = TYPE_NAME (type);
5787
5788 return set_die_type (die, type, cu);
5789 }
5790
5791 /* Read a C++ namespace. */
5792
5793 static void
5794 read_namespace (struct die_info *die, struct dwarf2_cu *cu)
5795 {
5796 struct objfile *objfile = cu->objfile;
5797 const char *name;
5798 int is_anonymous;
5799
5800 /* Add a symbol associated to this if we haven't seen the namespace
5801 before. Also, add a using directive if it's an anonymous
5802 namespace. */
5803
5804 if (dwarf2_attr (die, DW_AT_extension, cu) == NULL)
5805 {
5806 struct type *type;
5807
5808 type = read_type_die (die, cu);
5809 new_symbol (die, type, cu);
5810
5811 name = namespace_name (die, &is_anonymous, cu);
5812 if (is_anonymous)
5813 {
5814 const char *previous_prefix = determine_prefix (die, cu);
5815
5816 cp_add_using_directive (previous_prefix, TYPE_NAME (type), NULL,
5817 NULL, &objfile->objfile_obstack);
5818 }
5819 }
5820
5821 if (die->child != NULL)
5822 {
5823 struct die_info *child_die = die->child;
5824
5825 while (child_die && child_die->tag)
5826 {
5827 process_die (child_die, cu);
5828 child_die = sibling_die (child_die);
5829 }
5830 }
5831 }
5832
5833 /* Read a Fortran module as type. This DIE can be only a declaration used for
5834 imported module. Still we need that type as local Fortran "use ... only"
5835 declaration imports depend on the created type in determine_prefix. */
5836
5837 static struct type *
5838 read_module_type (struct die_info *die, struct dwarf2_cu *cu)
5839 {
5840 struct objfile *objfile = cu->objfile;
5841 char *module_name;
5842 struct type *type;
5843
5844 module_name = dwarf2_name (die, cu);
5845 if (!module_name)
5846 complaint (&symfile_complaints, _("DW_TAG_module has no name, offset 0x%x"),
5847 die->offset);
5848 type = init_type (TYPE_CODE_MODULE, 0, 0, module_name, objfile);
5849
5850 /* determine_prefix uses TYPE_TAG_NAME. */
5851 TYPE_TAG_NAME (type) = TYPE_NAME (type);
5852
5853 return set_die_type (die, type, cu);
5854 }
5855
5856 /* Read a Fortran module. */
5857
5858 static void
5859 read_module (struct die_info *die, struct dwarf2_cu *cu)
5860 {
5861 struct die_info *child_die = die->child;
5862
5863 while (child_die && child_die->tag)
5864 {
5865 process_die (child_die, cu);
5866 child_die = sibling_die (child_die);
5867 }
5868 }
5869
5870 /* Return the name of the namespace represented by DIE. Set
5871 *IS_ANONYMOUS to tell whether or not the namespace is an anonymous
5872 namespace. */
5873
5874 static const char *
5875 namespace_name (struct die_info *die, int *is_anonymous, struct dwarf2_cu *cu)
5876 {
5877 struct die_info *current_die;
5878 const char *name = NULL;
5879
5880 /* Loop through the extensions until we find a name. */
5881
5882 for (current_die = die;
5883 current_die != NULL;
5884 current_die = dwarf2_extension (die, &cu))
5885 {
5886 name = dwarf2_name (current_die, cu);
5887 if (name != NULL)
5888 break;
5889 }
5890
5891 /* Is it an anonymous namespace? */
5892
5893 *is_anonymous = (name == NULL);
5894 if (*is_anonymous)
5895 name = "(anonymous namespace)";
5896
5897 return name;
5898 }
5899
5900 /* Extract all information from a DW_TAG_pointer_type DIE and add to
5901 the user defined type vector. */
5902
5903 static struct type *
5904 read_tag_pointer_type (struct die_info *die, struct dwarf2_cu *cu)
5905 {
5906 struct gdbarch *gdbarch = get_objfile_arch (cu->objfile);
5907 struct comp_unit_head *cu_header = &cu->header;
5908 struct type *type;
5909 struct attribute *attr_byte_size;
5910 struct attribute *attr_address_class;
5911 int byte_size, addr_class;
5912 struct type *target_type;
5913
5914 target_type = die_type (die, cu);
5915
5916 /* The die_type call above may have already set the type for this DIE. */
5917 type = get_die_type (die, cu);
5918 if (type)
5919 return type;
5920
5921 type = lookup_pointer_type (target_type);
5922
5923 attr_byte_size = dwarf2_attr (die, DW_AT_byte_size, cu);
5924 if (attr_byte_size)
5925 byte_size = DW_UNSND (attr_byte_size);
5926 else
5927 byte_size = cu_header->addr_size;
5928
5929 attr_address_class = dwarf2_attr (die, DW_AT_address_class, cu);
5930 if (attr_address_class)
5931 addr_class = DW_UNSND (attr_address_class);
5932 else
5933 addr_class = DW_ADDR_none;
5934
5935 /* If the pointer size or address class is different than the
5936 default, create a type variant marked as such and set the
5937 length accordingly. */
5938 if (TYPE_LENGTH (type) != byte_size || addr_class != DW_ADDR_none)
5939 {
5940 if (gdbarch_address_class_type_flags_p (gdbarch))
5941 {
5942 int type_flags;
5943
5944 type_flags = gdbarch_address_class_type_flags
5945 (gdbarch, byte_size, addr_class);
5946 gdb_assert ((type_flags & ~TYPE_INSTANCE_FLAG_ADDRESS_CLASS_ALL)
5947 == 0);
5948 type = make_type_with_address_space (type, type_flags);
5949 }
5950 else if (TYPE_LENGTH (type) != byte_size)
5951 {
5952 complaint (&symfile_complaints, _("invalid pointer size %d"), byte_size);
5953 }
5954 else
5955 {
5956 /* Should we also complain about unhandled address classes? */
5957 }
5958 }
5959
5960 TYPE_LENGTH (type) = byte_size;
5961 return set_die_type (die, type, cu);
5962 }
5963
5964 /* Extract all information from a DW_TAG_ptr_to_member_type DIE and add to
5965 the user defined type vector. */
5966
5967 static struct type *
5968 read_tag_ptr_to_member_type (struct die_info *die, struct dwarf2_cu *cu)
5969 {
5970 struct type *type;
5971 struct type *to_type;
5972 struct type *domain;
5973
5974 to_type = die_type (die, cu);
5975 domain = die_containing_type (die, cu);
5976
5977 /* The calls above may have already set the type for this DIE. */
5978 type = get_die_type (die, cu);
5979 if (type)
5980 return type;
5981
5982 if (TYPE_CODE (check_typedef (to_type)) == TYPE_CODE_METHOD)
5983 type = lookup_methodptr_type (to_type);
5984 else
5985 type = lookup_memberptr_type (to_type, domain);
5986
5987 return set_die_type (die, type, cu);
5988 }
5989
5990 /* Extract all information from a DW_TAG_reference_type DIE and add to
5991 the user defined type vector. */
5992
5993 static struct type *
5994 read_tag_reference_type (struct die_info *die, struct dwarf2_cu *cu)
5995 {
5996 struct comp_unit_head *cu_header = &cu->header;
5997 struct type *type, *target_type;
5998 struct attribute *attr;
5999
6000 target_type = die_type (die, cu);
6001
6002 /* The die_type call above may have already set the type for this DIE. */
6003 type = get_die_type (die, cu);
6004 if (type)
6005 return type;
6006
6007 type = lookup_reference_type (target_type);
6008 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
6009 if (attr)
6010 {
6011 TYPE_LENGTH (type) = DW_UNSND (attr);
6012 }
6013 else
6014 {
6015 TYPE_LENGTH (type) = cu_header->addr_size;
6016 }
6017 return set_die_type (die, type, cu);
6018 }
6019
6020 static struct type *
6021 read_tag_const_type (struct die_info *die, struct dwarf2_cu *cu)
6022 {
6023 struct type *base_type, *cv_type;
6024
6025 base_type = die_type (die, cu);
6026
6027 /* The die_type call above may have already set the type for this DIE. */
6028 cv_type = get_die_type (die, cu);
6029 if (cv_type)
6030 return cv_type;
6031
6032 cv_type = make_cv_type (1, TYPE_VOLATILE (base_type), base_type, 0);
6033 return set_die_type (die, cv_type, cu);
6034 }
6035
6036 static struct type *
6037 read_tag_volatile_type (struct die_info *die, struct dwarf2_cu *cu)
6038 {
6039 struct type *base_type, *cv_type;
6040
6041 base_type = die_type (die, cu);
6042
6043 /* The die_type call above may have already set the type for this DIE. */
6044 cv_type = get_die_type (die, cu);
6045 if (cv_type)
6046 return cv_type;
6047
6048 cv_type = make_cv_type (TYPE_CONST (base_type), 1, base_type, 0);
6049 return set_die_type (die, cv_type, cu);
6050 }
6051
6052 /* Extract all information from a DW_TAG_string_type DIE and add to
6053 the user defined type vector. It isn't really a user defined type,
6054 but it behaves like one, with other DIE's using an AT_user_def_type
6055 attribute to reference it. */
6056
6057 static struct type *
6058 read_tag_string_type (struct die_info *die, struct dwarf2_cu *cu)
6059 {
6060 struct objfile *objfile = cu->objfile;
6061 struct gdbarch *gdbarch = get_objfile_arch (objfile);
6062 struct type *type, *range_type, *index_type, *char_type;
6063 struct attribute *attr;
6064 unsigned int length;
6065
6066 attr = dwarf2_attr (die, DW_AT_string_length, cu);
6067 if (attr)
6068 {
6069 length = DW_UNSND (attr);
6070 }
6071 else
6072 {
6073 /* check for the DW_AT_byte_size attribute */
6074 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
6075 if (attr)
6076 {
6077 length = DW_UNSND (attr);
6078 }
6079 else
6080 {
6081 length = 1;
6082 }
6083 }
6084
6085 index_type = objfile_type (objfile)->builtin_int;
6086 range_type = create_range_type (NULL, index_type, 1, length);
6087 char_type = language_string_char_type (cu->language_defn, gdbarch);
6088 type = create_string_type (NULL, char_type, range_type);
6089
6090 return set_die_type (die, type, cu);
6091 }
6092
6093 /* Handle DIES due to C code like:
6094
6095 struct foo
6096 {
6097 int (*funcp)(int a, long l);
6098 int b;
6099 };
6100
6101 ('funcp' generates a DW_TAG_subroutine_type DIE)
6102 */
6103
6104 static struct type *
6105 read_subroutine_type (struct die_info *die, struct dwarf2_cu *cu)
6106 {
6107 struct type *type; /* Type that this function returns */
6108 struct type *ftype; /* Function that returns above type */
6109 struct attribute *attr;
6110
6111 type = die_type (die, cu);
6112
6113 /* The die_type call above may have already set the type for this DIE. */
6114 ftype = get_die_type (die, cu);
6115 if (ftype)
6116 return ftype;
6117
6118 ftype = lookup_function_type (type);
6119
6120 /* All functions in C++, Pascal and Java have prototypes. */
6121 attr = dwarf2_attr (die, DW_AT_prototyped, cu);
6122 if ((attr && (DW_UNSND (attr) != 0))
6123 || cu->language == language_cplus
6124 || cu->language == language_java
6125 || cu->language == language_pascal)
6126 TYPE_PROTOTYPED (ftype) = 1;
6127 else if (producer_is_realview (cu->producer))
6128 /* RealView does not emit DW_AT_prototyped. We can not
6129 distinguish prototyped and unprototyped functions; default to
6130 prototyped, since that is more common in modern code (and
6131 RealView warns about unprototyped functions). */
6132 TYPE_PROTOTYPED (ftype) = 1;
6133
6134 /* Store the calling convention in the type if it's available in
6135 the subroutine die. Otherwise set the calling convention to
6136 the default value DW_CC_normal. */
6137 attr = dwarf2_attr (die, DW_AT_calling_convention, cu);
6138 TYPE_CALLING_CONVENTION (ftype) = attr ? DW_UNSND (attr) : DW_CC_normal;
6139
6140 /* We need to add the subroutine type to the die immediately so
6141 we don't infinitely recurse when dealing with parameters
6142 declared as the same subroutine type. */
6143 set_die_type (die, ftype, cu);
6144
6145 if (die->child != NULL)
6146 {
6147 struct type *void_type = objfile_type (cu->objfile)->builtin_void;
6148 struct die_info *child_die;
6149 int nparams, iparams;
6150
6151 /* Count the number of parameters.
6152 FIXME: GDB currently ignores vararg functions, but knows about
6153 vararg member functions. */
6154 nparams = 0;
6155 child_die = die->child;
6156 while (child_die && child_die->tag)
6157 {
6158 if (child_die->tag == DW_TAG_formal_parameter)
6159 nparams++;
6160 else if (child_die->tag == DW_TAG_unspecified_parameters)
6161 TYPE_VARARGS (ftype) = 1;
6162 child_die = sibling_die (child_die);
6163 }
6164
6165 /* Allocate storage for parameters and fill them in. */
6166 TYPE_NFIELDS (ftype) = nparams;
6167 TYPE_FIELDS (ftype) = (struct field *)
6168 TYPE_ZALLOC (ftype, nparams * sizeof (struct field));
6169
6170 /* TYPE_FIELD_TYPE must never be NULL. Pre-fill the array to ensure it
6171 even if we error out during the parameters reading below. */
6172 for (iparams = 0; iparams < nparams; iparams++)
6173 TYPE_FIELD_TYPE (ftype, iparams) = void_type;
6174
6175 iparams = 0;
6176 child_die = die->child;
6177 while (child_die && child_die->tag)
6178 {
6179 if (child_die->tag == DW_TAG_formal_parameter)
6180 {
6181 /* Dwarf2 has no clean way to discern C++ static and non-static
6182 member functions. G++ helps GDB by marking the first
6183 parameter for non-static member functions (which is the
6184 this pointer) as artificial. We pass this information
6185 to dwarf2_add_member_fn via TYPE_FIELD_ARTIFICIAL. */
6186 attr = dwarf2_attr (child_die, DW_AT_artificial, cu);
6187 if (attr)
6188 TYPE_FIELD_ARTIFICIAL (ftype, iparams) = DW_UNSND (attr);
6189 else
6190 {
6191 TYPE_FIELD_ARTIFICIAL (ftype, iparams) = 0;
6192
6193 /* GCC/43521: In java, the formal parameter
6194 "this" is sometimes not marked with DW_AT_artificial. */
6195 if (cu->language == language_java)
6196 {
6197 const char *name = dwarf2_name (child_die, cu);
6198
6199 if (name && !strcmp (name, "this"))
6200 TYPE_FIELD_ARTIFICIAL (ftype, iparams) = 1;
6201 }
6202 }
6203 TYPE_FIELD_TYPE (ftype, iparams) = die_type (child_die, cu);
6204 iparams++;
6205 }
6206 child_die = sibling_die (child_die);
6207 }
6208 }
6209
6210 return ftype;
6211 }
6212
6213 static struct type *
6214 read_typedef (struct die_info *die, struct dwarf2_cu *cu)
6215 {
6216 struct objfile *objfile = cu->objfile;
6217 const char *name = NULL;
6218 struct type *this_type;
6219
6220 name = dwarf2_full_name (NULL, die, cu);
6221 this_type = init_type (TYPE_CODE_TYPEDEF, 0,
6222 TYPE_FLAG_TARGET_STUB, NULL, objfile);
6223 TYPE_NAME (this_type) = (char *) name;
6224 set_die_type (die, this_type, cu);
6225 TYPE_TARGET_TYPE (this_type) = die_type (die, cu);
6226 return this_type;
6227 }
6228
6229 /* Find a representation of a given base type and install
6230 it in the TYPE field of the die. */
6231
6232 static struct type *
6233 read_base_type (struct die_info *die, struct dwarf2_cu *cu)
6234 {
6235 struct objfile *objfile = cu->objfile;
6236 struct type *type;
6237 struct attribute *attr;
6238 int encoding = 0, size = 0;
6239 char *name;
6240 enum type_code code = TYPE_CODE_INT;
6241 int type_flags = 0;
6242 struct type *target_type = NULL;
6243
6244 attr = dwarf2_attr (die, DW_AT_encoding, cu);
6245 if (attr)
6246 {
6247 encoding = DW_UNSND (attr);
6248 }
6249 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
6250 if (attr)
6251 {
6252 size = DW_UNSND (attr);
6253 }
6254 name = dwarf2_name (die, cu);
6255 if (!name)
6256 {
6257 complaint (&symfile_complaints,
6258 _("DW_AT_name missing from DW_TAG_base_type"));
6259 }
6260
6261 switch (encoding)
6262 {
6263 case DW_ATE_address:
6264 /* Turn DW_ATE_address into a void * pointer. */
6265 code = TYPE_CODE_PTR;
6266 type_flags |= TYPE_FLAG_UNSIGNED;
6267 target_type = init_type (TYPE_CODE_VOID, 1, 0, NULL, objfile);
6268 break;
6269 case DW_ATE_boolean:
6270 code = TYPE_CODE_BOOL;
6271 type_flags |= TYPE_FLAG_UNSIGNED;
6272 break;
6273 case DW_ATE_complex_float:
6274 code = TYPE_CODE_COMPLEX;
6275 target_type = init_type (TYPE_CODE_FLT, size / 2, 0, NULL, objfile);
6276 break;
6277 case DW_ATE_decimal_float:
6278 code = TYPE_CODE_DECFLOAT;
6279 break;
6280 case DW_ATE_float:
6281 code = TYPE_CODE_FLT;
6282 break;
6283 case DW_ATE_signed:
6284 break;
6285 case DW_ATE_unsigned:
6286 type_flags |= TYPE_FLAG_UNSIGNED;
6287 break;
6288 case DW_ATE_signed_char:
6289 if (cu->language == language_ada || cu->language == language_m2
6290 || cu->language == language_pascal)
6291 code = TYPE_CODE_CHAR;
6292 break;
6293 case DW_ATE_unsigned_char:
6294 if (cu->language == language_ada || cu->language == language_m2
6295 || cu->language == language_pascal)
6296 code = TYPE_CODE_CHAR;
6297 type_flags |= TYPE_FLAG_UNSIGNED;
6298 break;
6299 case DW_ATE_UTF:
6300 /* We just treat this as an integer and then recognize the
6301 type by name elsewhere. */
6302 break;
6303
6304 default:
6305 complaint (&symfile_complaints, _("unsupported DW_AT_encoding: '%s'"),
6306 dwarf_type_encoding_name (encoding));
6307 break;
6308 }
6309
6310 type = init_type (code, size, type_flags, NULL, objfile);
6311 TYPE_NAME (type) = name;
6312 TYPE_TARGET_TYPE (type) = target_type;
6313
6314 if (name && strcmp (name, "char") == 0)
6315 TYPE_NOSIGN (type) = 1;
6316
6317 return set_die_type (die, type, cu);
6318 }
6319
6320 /* Read the given DW_AT_subrange DIE. */
6321
6322 static struct type *
6323 read_subrange_type (struct die_info *die, struct dwarf2_cu *cu)
6324 {
6325 struct gdbarch *gdbarch = get_objfile_arch (cu->objfile);
6326 struct type *base_type;
6327 struct type *range_type;
6328 struct attribute *attr;
6329 LONGEST low = 0;
6330 LONGEST high = -1;
6331 char *name;
6332 LONGEST negative_mask;
6333
6334 base_type = die_type (die, cu);
6335
6336 /* The die_type call above may have already set the type for this DIE. */
6337 range_type = get_die_type (die, cu);
6338 if (range_type)
6339 return range_type;
6340
6341 if (cu->language == language_fortran)
6342 {
6343 /* FORTRAN implies a lower bound of 1, if not given. */
6344 low = 1;
6345 }
6346
6347 /* FIXME: For variable sized arrays either of these could be
6348 a variable rather than a constant value. We'll allow it,
6349 but we don't know how to handle it. */
6350 attr = dwarf2_attr (die, DW_AT_lower_bound, cu);
6351 if (attr)
6352 low = dwarf2_get_attr_constant_value (attr, 0);
6353
6354 attr = dwarf2_attr (die, DW_AT_upper_bound, cu);
6355 if (attr)
6356 {
6357 if (attr->form == DW_FORM_block1 || is_ref_attr (attr))
6358 {
6359 /* GCC encodes arrays with unspecified or dynamic length
6360 with a DW_FORM_block1 attribute or a reference attribute.
6361 FIXME: GDB does not yet know how to handle dynamic
6362 arrays properly, treat them as arrays with unspecified
6363 length for now.
6364
6365 FIXME: jimb/2003-09-22: GDB does not really know
6366 how to handle arrays of unspecified length
6367 either; we just represent them as zero-length
6368 arrays. Choose an appropriate upper bound given
6369 the lower bound we've computed above. */
6370 high = low - 1;
6371 }
6372 else
6373 high = dwarf2_get_attr_constant_value (attr, 1);
6374 }
6375 else
6376 {
6377 attr = dwarf2_attr (die, DW_AT_count, cu);
6378 if (attr)
6379 {
6380 int count = dwarf2_get_attr_constant_value (attr, 1);
6381 high = low + count - 1;
6382 }
6383 }
6384
6385 /* Dwarf-2 specifications explicitly allows to create subrange types
6386 without specifying a base type.
6387 In that case, the base type must be set to the type of
6388 the lower bound, upper bound or count, in that order, if any of these
6389 three attributes references an object that has a type.
6390 If no base type is found, the Dwarf-2 specifications say that
6391 a signed integer type of size equal to the size of an address should
6392 be used.
6393 For the following C code: `extern char gdb_int [];'
6394 GCC produces an empty range DIE.
6395 FIXME: muller/2010-05-28: Possible references to object for low bound,
6396 high bound or count are not yet handled by this code.
6397 */
6398 if (TYPE_CODE (base_type) == TYPE_CODE_VOID)
6399 {
6400 struct objfile *objfile = cu->objfile;
6401 struct gdbarch *gdbarch = get_objfile_arch (objfile);
6402 int addr_size = gdbarch_addr_bit (gdbarch) /8;
6403 struct type *int_type = objfile_type (objfile)->builtin_int;
6404
6405 /* Test "int", "long int", and "long long int" objfile types,
6406 and select the first one having a size above or equal to the
6407 architecture address size. */
6408 if (int_type && TYPE_LENGTH (int_type) >= addr_size)
6409 base_type = int_type;
6410 else
6411 {
6412 int_type = objfile_type (objfile)->builtin_long;
6413 if (int_type && TYPE_LENGTH (int_type) >= addr_size)
6414 base_type = int_type;
6415 else
6416 {
6417 int_type = objfile_type (objfile)->builtin_long_long;
6418 if (int_type && TYPE_LENGTH (int_type) >= addr_size)
6419 base_type = int_type;
6420 }
6421 }
6422 }
6423
6424 negative_mask =
6425 (LONGEST) -1 << (TYPE_LENGTH (base_type) * TARGET_CHAR_BIT - 1);
6426 if (!TYPE_UNSIGNED (base_type) && (low & negative_mask))
6427 low |= negative_mask;
6428 if (!TYPE_UNSIGNED (base_type) && (high & negative_mask))
6429 high |= negative_mask;
6430
6431 range_type = create_range_type (NULL, base_type, low, high);
6432
6433 /* Mark arrays with dynamic length at least as an array of unspecified
6434 length. GDB could check the boundary but before it gets implemented at
6435 least allow accessing the array elements. */
6436 if (attr && attr->form == DW_FORM_block1)
6437 TYPE_HIGH_BOUND_UNDEFINED (range_type) = 1;
6438
6439 name = dwarf2_name (die, cu);
6440 if (name)
6441 TYPE_NAME (range_type) = name;
6442
6443 attr = dwarf2_attr (die, DW_AT_byte_size, cu);
6444 if (attr)
6445 TYPE_LENGTH (range_type) = DW_UNSND (attr);
6446
6447 set_die_type (die, range_type, cu);
6448
6449 /* set_die_type should be already done. */
6450 set_descriptive_type (range_type, die, cu);
6451
6452 return range_type;
6453 }
6454
6455 static struct type *
6456 read_unspecified_type (struct die_info *die, struct dwarf2_cu *cu)
6457 {
6458 struct type *type;
6459
6460 /* For now, we only support the C meaning of an unspecified type: void. */
6461
6462 type = init_type (TYPE_CODE_VOID, 0, 0, NULL, cu->objfile);
6463 TYPE_NAME (type) = dwarf2_name (die, cu);
6464
6465 return set_die_type (die, type, cu);
6466 }
6467
6468 /* Trivial hash function for die_info: the hash value of a DIE
6469 is its offset in .debug_info for this objfile. */
6470
6471 static hashval_t
6472 die_hash (const void *item)
6473 {
6474 const struct die_info *die = item;
6475
6476 return die->offset;
6477 }
6478
6479 /* Trivial comparison function for die_info structures: two DIEs
6480 are equal if they have the same offset. */
6481
6482 static int
6483 die_eq (const void *item_lhs, const void *item_rhs)
6484 {
6485 const struct die_info *die_lhs = item_lhs;
6486 const struct die_info *die_rhs = item_rhs;
6487
6488 return die_lhs->offset == die_rhs->offset;
6489 }
6490
6491 /* Read a whole compilation unit into a linked list of dies. */
6492
6493 static struct die_info *
6494 read_comp_unit (gdb_byte *info_ptr, struct dwarf2_cu *cu)
6495 {
6496 struct die_reader_specs reader_specs;
6497
6498 gdb_assert (cu->die_hash == NULL);
6499 cu->die_hash
6500 = htab_create_alloc_ex (cu->header.length / 12,
6501 die_hash,
6502 die_eq,
6503 NULL,
6504 &cu->comp_unit_obstack,
6505 hashtab_obstack_allocate,
6506 dummy_obstack_deallocate);
6507
6508 init_cu_die_reader (&reader_specs, cu);
6509
6510 return read_die_and_children (&reader_specs, info_ptr, &info_ptr, NULL);
6511 }
6512
6513 /* Main entry point for reading a DIE and all children.
6514 Read the DIE and dump it if requested. */
6515
6516 static struct die_info *
6517 read_die_and_children (const struct die_reader_specs *reader,
6518 gdb_byte *info_ptr,
6519 gdb_byte **new_info_ptr,
6520 struct die_info *parent)
6521 {
6522 struct die_info *result = read_die_and_children_1 (reader, info_ptr,
6523 new_info_ptr, parent);
6524
6525 if (dwarf2_die_debug)
6526 {
6527 fprintf_unfiltered (gdb_stdlog,
6528 "\nRead die from %s of %s:\n",
6529 reader->buffer == dwarf2_per_objfile->info.buffer
6530 ? ".debug_info"
6531 : reader->buffer == dwarf2_per_objfile->types.buffer
6532 ? ".debug_types"
6533 : "unknown section",
6534 reader->abfd->filename);
6535 dump_die (result, dwarf2_die_debug);
6536 }
6537
6538 return result;
6539 }
6540
6541 /* Read a single die and all its descendents. Set the die's sibling
6542 field to NULL; set other fields in the die correctly, and set all
6543 of the descendents' fields correctly. Set *NEW_INFO_PTR to the
6544 location of the info_ptr after reading all of those dies. PARENT
6545 is the parent of the die in question. */
6546
6547 static struct die_info *
6548 read_die_and_children_1 (const struct die_reader_specs *reader,
6549 gdb_byte *info_ptr,
6550 gdb_byte **new_info_ptr,
6551 struct die_info *parent)
6552 {
6553 struct die_info *die;
6554 gdb_byte *cur_ptr;
6555 int has_children;
6556
6557 cur_ptr = read_full_die (reader, &die, info_ptr, &has_children);
6558 if (die == NULL)
6559 {
6560 *new_info_ptr = cur_ptr;
6561 return NULL;
6562 }
6563 store_in_ref_table (die, reader->cu);
6564
6565 if (has_children)
6566 die->child = read_die_and_siblings (reader, cur_ptr, new_info_ptr, die);
6567 else
6568 {
6569 die->child = NULL;
6570 *new_info_ptr = cur_ptr;
6571 }
6572
6573 die->sibling = NULL;
6574 die->parent = parent;
6575 return die;
6576 }
6577
6578 /* Read a die, all of its descendents, and all of its siblings; set
6579 all of the fields of all of the dies correctly. Arguments are as
6580 in read_die_and_children. */
6581
6582 static struct die_info *
6583 read_die_and_siblings (const struct die_reader_specs *reader,
6584 gdb_byte *info_ptr,
6585 gdb_byte **new_info_ptr,
6586 struct die_info *parent)
6587 {
6588 struct die_info *first_die, *last_sibling;
6589 gdb_byte *cur_ptr;
6590
6591 cur_ptr = info_ptr;
6592 first_die = last_sibling = NULL;
6593
6594 while (1)
6595 {
6596 struct die_info *die
6597 = read_die_and_children_1 (reader, cur_ptr, &cur_ptr, parent);
6598
6599 if (die == NULL)
6600 {
6601 *new_info_ptr = cur_ptr;
6602 return first_die;
6603 }
6604
6605 if (!first_die)
6606 first_die = die;
6607 else
6608 last_sibling->sibling = die;
6609
6610 last_sibling = die;
6611 }
6612 }
6613
6614 /* Read the die from the .debug_info section buffer. Set DIEP to
6615 point to a newly allocated die with its information, except for its
6616 child, sibling, and parent fields. Set HAS_CHILDREN to tell
6617 whether the die has children or not. */
6618
6619 static gdb_byte *
6620 read_full_die (const struct die_reader_specs *reader,
6621 struct die_info **diep, gdb_byte *info_ptr,
6622 int *has_children)
6623 {
6624 unsigned int abbrev_number, bytes_read, i, offset;
6625 struct abbrev_info *abbrev;
6626 struct die_info *die;
6627 struct dwarf2_cu *cu = reader->cu;
6628 bfd *abfd = reader->abfd;
6629
6630 offset = info_ptr - reader->buffer;
6631 abbrev_number = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
6632 info_ptr += bytes_read;
6633 if (!abbrev_number)
6634 {
6635 *diep = NULL;
6636 *has_children = 0;
6637 return info_ptr;
6638 }
6639
6640 abbrev = dwarf2_lookup_abbrev (abbrev_number, cu);
6641 if (!abbrev)
6642 error (_("Dwarf Error: could not find abbrev number %d [in module %s]"),
6643 abbrev_number,
6644 bfd_get_filename (abfd));
6645
6646 die = dwarf_alloc_die (cu, abbrev->num_attrs);
6647 die->offset = offset;
6648 die->tag = abbrev->tag;
6649 die->abbrev = abbrev_number;
6650
6651 die->num_attrs = abbrev->num_attrs;
6652
6653 for (i = 0; i < abbrev->num_attrs; ++i)
6654 info_ptr = read_attribute (&die->attrs[i], &abbrev->attrs[i],
6655 abfd, info_ptr, cu);
6656
6657 *diep = die;
6658 *has_children = abbrev->has_children;
6659 return info_ptr;
6660 }
6661
6662 /* In DWARF version 2, the description of the debugging information is
6663 stored in a separate .debug_abbrev section. Before we read any
6664 dies from a section we read in all abbreviations and install them
6665 in a hash table. This function also sets flags in CU describing
6666 the data found in the abbrev table. */
6667
6668 static void
6669 dwarf2_read_abbrevs (bfd *abfd, struct dwarf2_cu *cu)
6670 {
6671 struct comp_unit_head *cu_header = &cu->header;
6672 gdb_byte *abbrev_ptr;
6673 struct abbrev_info *cur_abbrev;
6674 unsigned int abbrev_number, bytes_read, abbrev_name;
6675 unsigned int abbrev_form, hash_number;
6676 struct attr_abbrev *cur_attrs;
6677 unsigned int allocated_attrs;
6678
6679 /* Initialize dwarf2 abbrevs */
6680 obstack_init (&cu->abbrev_obstack);
6681 cu->dwarf2_abbrevs = obstack_alloc (&cu->abbrev_obstack,
6682 (ABBREV_HASH_SIZE
6683 * sizeof (struct abbrev_info *)));
6684 memset (cu->dwarf2_abbrevs, 0,
6685 ABBREV_HASH_SIZE * sizeof (struct abbrev_info *));
6686
6687 dwarf2_read_section (dwarf2_per_objfile->objfile,
6688 &dwarf2_per_objfile->abbrev);
6689 abbrev_ptr = dwarf2_per_objfile->abbrev.buffer + cu_header->abbrev_offset;
6690 abbrev_number = read_unsigned_leb128 (abfd, abbrev_ptr, &bytes_read);
6691 abbrev_ptr += bytes_read;
6692
6693 allocated_attrs = ATTR_ALLOC_CHUNK;
6694 cur_attrs = xmalloc (allocated_attrs * sizeof (struct attr_abbrev));
6695
6696 /* loop until we reach an abbrev number of 0 */
6697 while (abbrev_number)
6698 {
6699 cur_abbrev = dwarf_alloc_abbrev (cu);
6700
6701 /* read in abbrev header */
6702 cur_abbrev->number = abbrev_number;
6703 cur_abbrev->tag = read_unsigned_leb128 (abfd, abbrev_ptr, &bytes_read);
6704 abbrev_ptr += bytes_read;
6705 cur_abbrev->has_children = read_1_byte (abfd, abbrev_ptr);
6706 abbrev_ptr += 1;
6707
6708 if (cur_abbrev->tag == DW_TAG_namespace)
6709 cu->has_namespace_info = 1;
6710
6711 /* now read in declarations */
6712 abbrev_name = read_unsigned_leb128 (abfd, abbrev_ptr, &bytes_read);
6713 abbrev_ptr += bytes_read;
6714 abbrev_form = read_unsigned_leb128 (abfd, abbrev_ptr, &bytes_read);
6715 abbrev_ptr += bytes_read;
6716 while (abbrev_name)
6717 {
6718 if (cur_abbrev->num_attrs == allocated_attrs)
6719 {
6720 allocated_attrs += ATTR_ALLOC_CHUNK;
6721 cur_attrs
6722 = xrealloc (cur_attrs, (allocated_attrs
6723 * sizeof (struct attr_abbrev)));
6724 }
6725
6726 /* Record whether this compilation unit might have
6727 inter-compilation-unit references. If we don't know what form
6728 this attribute will have, then it might potentially be a
6729 DW_FORM_ref_addr, so we conservatively expect inter-CU
6730 references. */
6731
6732 if (abbrev_form == DW_FORM_ref_addr
6733 || abbrev_form == DW_FORM_indirect)
6734 cu->has_form_ref_addr = 1;
6735
6736 cur_attrs[cur_abbrev->num_attrs].name = abbrev_name;
6737 cur_attrs[cur_abbrev->num_attrs++].form = abbrev_form;
6738 abbrev_name = read_unsigned_leb128 (abfd, abbrev_ptr, &bytes_read);
6739 abbrev_ptr += bytes_read;
6740 abbrev_form = read_unsigned_leb128 (abfd, abbrev_ptr, &bytes_read);
6741 abbrev_ptr += bytes_read;
6742 }
6743
6744 cur_abbrev->attrs = obstack_alloc (&cu->abbrev_obstack,
6745 (cur_abbrev->num_attrs
6746 * sizeof (struct attr_abbrev)));
6747 memcpy (cur_abbrev->attrs, cur_attrs,
6748 cur_abbrev->num_attrs * sizeof (struct attr_abbrev));
6749
6750 hash_number = abbrev_number % ABBREV_HASH_SIZE;
6751 cur_abbrev->next = cu->dwarf2_abbrevs[hash_number];
6752 cu->dwarf2_abbrevs[hash_number] = cur_abbrev;
6753
6754 /* Get next abbreviation.
6755 Under Irix6 the abbreviations for a compilation unit are not
6756 always properly terminated with an abbrev number of 0.
6757 Exit loop if we encounter an abbreviation which we have
6758 already read (which means we are about to read the abbreviations
6759 for the next compile unit) or if the end of the abbreviation
6760 table is reached. */
6761 if ((unsigned int) (abbrev_ptr - dwarf2_per_objfile->abbrev.buffer)
6762 >= dwarf2_per_objfile->abbrev.size)
6763 break;
6764 abbrev_number = read_unsigned_leb128 (abfd, abbrev_ptr, &bytes_read);
6765 abbrev_ptr += bytes_read;
6766 if (dwarf2_lookup_abbrev (abbrev_number, cu) != NULL)
6767 break;
6768 }
6769
6770 xfree (cur_attrs);
6771 }
6772
6773 /* Release the memory used by the abbrev table for a compilation unit. */
6774
6775 static void
6776 dwarf2_free_abbrev_table (void *ptr_to_cu)
6777 {
6778 struct dwarf2_cu *cu = ptr_to_cu;
6779
6780 obstack_free (&cu->abbrev_obstack, NULL);
6781 cu->dwarf2_abbrevs = NULL;
6782 }
6783
6784 /* Lookup an abbrev_info structure in the abbrev hash table. */
6785
6786 static struct abbrev_info *
6787 dwarf2_lookup_abbrev (unsigned int number, struct dwarf2_cu *cu)
6788 {
6789 unsigned int hash_number;
6790 struct abbrev_info *abbrev;
6791
6792 hash_number = number % ABBREV_HASH_SIZE;
6793 abbrev = cu->dwarf2_abbrevs[hash_number];
6794
6795 while (abbrev)
6796 {
6797 if (abbrev->number == number)
6798 return abbrev;
6799 else
6800 abbrev = abbrev->next;
6801 }
6802 return NULL;
6803 }
6804
6805 /* Returns nonzero if TAG represents a type that we might generate a partial
6806 symbol for. */
6807
6808 static int
6809 is_type_tag_for_partial (int tag)
6810 {
6811 switch (tag)
6812 {
6813 #if 0
6814 /* Some types that would be reasonable to generate partial symbols for,
6815 that we don't at present. */
6816 case DW_TAG_array_type:
6817 case DW_TAG_file_type:
6818 case DW_TAG_ptr_to_member_type:
6819 case DW_TAG_set_type:
6820 case DW_TAG_string_type:
6821 case DW_TAG_subroutine_type:
6822 #endif
6823 case DW_TAG_base_type:
6824 case DW_TAG_class_type:
6825 case DW_TAG_interface_type:
6826 case DW_TAG_enumeration_type:
6827 case DW_TAG_structure_type:
6828 case DW_TAG_subrange_type:
6829 case DW_TAG_typedef:
6830 case DW_TAG_union_type:
6831 return 1;
6832 default:
6833 return 0;
6834 }
6835 }
6836
6837 /* Load all DIEs that are interesting for partial symbols into memory. */
6838
6839 static struct partial_die_info *
6840 load_partial_dies (bfd *abfd, gdb_byte *buffer, gdb_byte *info_ptr,
6841 int building_psymtab, struct dwarf2_cu *cu)
6842 {
6843 struct partial_die_info *part_die;
6844 struct partial_die_info *parent_die, *last_die, *first_die = NULL;
6845 struct abbrev_info *abbrev;
6846 unsigned int bytes_read;
6847 unsigned int load_all = 0;
6848
6849 int nesting_level = 1;
6850
6851 parent_die = NULL;
6852 last_die = NULL;
6853
6854 if (cu->per_cu && cu->per_cu->load_all_dies)
6855 load_all = 1;
6856
6857 cu->partial_dies
6858 = htab_create_alloc_ex (cu->header.length / 12,
6859 partial_die_hash,
6860 partial_die_eq,
6861 NULL,
6862 &cu->comp_unit_obstack,
6863 hashtab_obstack_allocate,
6864 dummy_obstack_deallocate);
6865
6866 part_die = obstack_alloc (&cu->comp_unit_obstack,
6867 sizeof (struct partial_die_info));
6868
6869 while (1)
6870 {
6871 abbrev = peek_die_abbrev (info_ptr, &bytes_read, cu);
6872
6873 /* A NULL abbrev means the end of a series of children. */
6874 if (abbrev == NULL)
6875 {
6876 if (--nesting_level == 0)
6877 {
6878 /* PART_DIE was probably the last thing allocated on the
6879 comp_unit_obstack, so we could call obstack_free
6880 here. We don't do that because the waste is small,
6881 and will be cleaned up when we're done with this
6882 compilation unit. This way, we're also more robust
6883 against other users of the comp_unit_obstack. */
6884 return first_die;
6885 }
6886 info_ptr += bytes_read;
6887 last_die = parent_die;
6888 parent_die = parent_die->die_parent;
6889 continue;
6890 }
6891
6892 /* Check whether this DIE is interesting enough to save. Normally
6893 we would not be interested in members here, but there may be
6894 later variables referencing them via DW_AT_specification (for
6895 static members). */
6896 if (!load_all
6897 && !is_type_tag_for_partial (abbrev->tag)
6898 && abbrev->tag != DW_TAG_enumerator
6899 && abbrev->tag != DW_TAG_subprogram
6900 && abbrev->tag != DW_TAG_lexical_block
6901 && abbrev->tag != DW_TAG_variable
6902 && abbrev->tag != DW_TAG_namespace
6903 && abbrev->tag != DW_TAG_module
6904 && abbrev->tag != DW_TAG_member)
6905 {
6906 /* Otherwise we skip to the next sibling, if any. */
6907 info_ptr = skip_one_die (buffer, info_ptr + bytes_read, abbrev, cu);
6908 continue;
6909 }
6910
6911 info_ptr = read_partial_die (part_die, abbrev, bytes_read, abfd,
6912 buffer, info_ptr, cu);
6913
6914 /* This two-pass algorithm for processing partial symbols has a
6915 high cost in cache pressure. Thus, handle some simple cases
6916 here which cover the majority of C partial symbols. DIEs
6917 which neither have specification tags in them, nor could have
6918 specification tags elsewhere pointing at them, can simply be
6919 processed and discarded.
6920
6921 This segment is also optional; scan_partial_symbols and
6922 add_partial_symbol will handle these DIEs if we chain
6923 them in normally. When compilers which do not emit large
6924 quantities of duplicate debug information are more common,
6925 this code can probably be removed. */
6926
6927 /* Any complete simple types at the top level (pretty much all
6928 of them, for a language without namespaces), can be processed
6929 directly. */
6930 if (parent_die == NULL
6931 && part_die->has_specification == 0
6932 && part_die->is_declaration == 0
6933 && (part_die->tag == DW_TAG_typedef
6934 || part_die->tag == DW_TAG_base_type
6935 || part_die->tag == DW_TAG_subrange_type))
6936 {
6937 if (building_psymtab && part_die->name != NULL)
6938 add_psymbol_to_list (part_die->name, strlen (part_die->name), 0,
6939 VAR_DOMAIN, LOC_TYPEDEF,
6940 &cu->objfile->static_psymbols,
6941 0, (CORE_ADDR) 0, cu->language, cu->objfile);
6942 info_ptr = locate_pdi_sibling (part_die, buffer, info_ptr, abfd, cu);
6943 continue;
6944 }
6945
6946 /* If we're at the second level, and we're an enumerator, and
6947 our parent has no specification (meaning possibly lives in a
6948 namespace elsewhere), then we can add the partial symbol now
6949 instead of queueing it. */
6950 if (part_die->tag == DW_TAG_enumerator
6951 && parent_die != NULL
6952 && parent_die->die_parent == NULL
6953 && parent_die->tag == DW_TAG_enumeration_type
6954 && parent_die->has_specification == 0)
6955 {
6956 if (part_die->name == NULL)
6957 complaint (&symfile_complaints, _("malformed enumerator DIE ignored"));
6958 else if (building_psymtab)
6959 add_psymbol_to_list (part_die->name, strlen (part_die->name), 0,
6960 VAR_DOMAIN, LOC_CONST,
6961 (cu->language == language_cplus
6962 || cu->language == language_java)
6963 ? &cu->objfile->global_psymbols
6964 : &cu->objfile->static_psymbols,
6965 0, (CORE_ADDR) 0, cu->language, cu->objfile);
6966
6967 info_ptr = locate_pdi_sibling (part_die, buffer, info_ptr, abfd, cu);
6968 continue;
6969 }
6970
6971 /* We'll save this DIE so link it in. */
6972 part_die->die_parent = parent_die;
6973 part_die->die_sibling = NULL;
6974 part_die->die_child = NULL;
6975
6976 if (last_die && last_die == parent_die)
6977 last_die->die_child = part_die;
6978 else if (last_die)
6979 last_die->die_sibling = part_die;
6980
6981 last_die = part_die;
6982
6983 if (first_die == NULL)
6984 first_die = part_die;
6985
6986 /* Maybe add the DIE to the hash table. Not all DIEs that we
6987 find interesting need to be in the hash table, because we
6988 also have the parent/sibling/child chains; only those that we
6989 might refer to by offset later during partial symbol reading.
6990
6991 For now this means things that might have be the target of a
6992 DW_AT_specification, DW_AT_abstract_origin, or
6993 DW_AT_extension. DW_AT_extension will refer only to
6994 namespaces; DW_AT_abstract_origin refers to functions (and
6995 many things under the function DIE, but we do not recurse
6996 into function DIEs during partial symbol reading) and
6997 possibly variables as well; DW_AT_specification refers to
6998 declarations. Declarations ought to have the DW_AT_declaration
6999 flag. It happens that GCC forgets to put it in sometimes, but
7000 only for functions, not for types.
7001
7002 Adding more things than necessary to the hash table is harmless
7003 except for the performance cost. Adding too few will result in
7004 wasted time in find_partial_die, when we reread the compilation
7005 unit with load_all_dies set. */
7006
7007 if (load_all
7008 || abbrev->tag == DW_TAG_subprogram
7009 || abbrev->tag == DW_TAG_variable
7010 || abbrev->tag == DW_TAG_namespace
7011 || part_die->is_declaration)
7012 {
7013 void **slot;
7014
7015 slot = htab_find_slot_with_hash (cu->partial_dies, part_die,
7016 part_die->offset, INSERT);
7017 *slot = part_die;
7018 }
7019
7020 part_die = obstack_alloc (&cu->comp_unit_obstack,
7021 sizeof (struct partial_die_info));
7022
7023 /* For some DIEs we want to follow their children (if any). For C
7024 we have no reason to follow the children of structures; for other
7025 languages we have to, both so that we can get at method physnames
7026 to infer fully qualified class names, and for DW_AT_specification.
7027
7028 For Ada, we need to scan the children of subprograms and lexical
7029 blocks as well because Ada allows the definition of nested
7030 entities that could be interesting for the debugger, such as
7031 nested subprograms for instance. */
7032 if (last_die->has_children
7033 && (load_all
7034 || last_die->tag == DW_TAG_namespace
7035 || last_die->tag == DW_TAG_module
7036 || last_die->tag == DW_TAG_enumeration_type
7037 || (cu->language != language_c
7038 && (last_die->tag == DW_TAG_class_type
7039 || last_die->tag == DW_TAG_interface_type
7040 || last_die->tag == DW_TAG_structure_type
7041 || last_die->tag == DW_TAG_union_type))
7042 || (cu->language == language_ada
7043 && (last_die->tag == DW_TAG_subprogram
7044 || last_die->tag == DW_TAG_lexical_block))))
7045 {
7046 nesting_level++;
7047 parent_die = last_die;
7048 continue;
7049 }
7050
7051 /* Otherwise we skip to the next sibling, if any. */
7052 info_ptr = locate_pdi_sibling (last_die, buffer, info_ptr, abfd, cu);
7053
7054 /* Back to the top, do it again. */
7055 }
7056 }
7057
7058 /* Read a minimal amount of information into the minimal die structure. */
7059
7060 static gdb_byte *
7061 read_partial_die (struct partial_die_info *part_die,
7062 struct abbrev_info *abbrev,
7063 unsigned int abbrev_len, bfd *abfd,
7064 gdb_byte *buffer, gdb_byte *info_ptr,
7065 struct dwarf2_cu *cu)
7066 {
7067 unsigned int i;
7068 struct attribute attr;
7069 int has_low_pc_attr = 0;
7070 int has_high_pc_attr = 0;
7071
7072 memset (part_die, 0, sizeof (struct partial_die_info));
7073
7074 part_die->offset = info_ptr - buffer;
7075
7076 info_ptr += abbrev_len;
7077
7078 if (abbrev == NULL)
7079 return info_ptr;
7080
7081 part_die->tag = abbrev->tag;
7082 part_die->has_children = abbrev->has_children;
7083
7084 for (i = 0; i < abbrev->num_attrs; ++i)
7085 {
7086 info_ptr = read_attribute (&attr, &abbrev->attrs[i], abfd, info_ptr, cu);
7087
7088 /* Store the data if it is of an attribute we want to keep in a
7089 partial symbol table. */
7090 switch (attr.name)
7091 {
7092 case DW_AT_name:
7093 switch (part_die->tag)
7094 {
7095 case DW_TAG_compile_unit:
7096 case DW_TAG_type_unit:
7097 /* Compilation units have a DW_AT_name that is a filename, not
7098 a source language identifier. */
7099 case DW_TAG_enumeration_type:
7100 case DW_TAG_enumerator:
7101 /* These tags always have simple identifiers already; no need
7102 to canonicalize them. */
7103 part_die->name = DW_STRING (&attr);
7104 break;
7105 default:
7106 part_die->name
7107 = dwarf2_canonicalize_name (DW_STRING (&attr), cu,
7108 &cu->objfile->objfile_obstack);
7109 break;
7110 }
7111 break;
7112 case DW_AT_linkage_name:
7113 case DW_AT_MIPS_linkage_name:
7114 /* Note that both forms of linkage name might appear. We
7115 assume they will be the same, and we only store the last
7116 one we see. */
7117 if (cu->language == language_ada)
7118 part_die->name = DW_STRING (&attr);
7119 break;
7120 case DW_AT_low_pc:
7121 has_low_pc_attr = 1;
7122 part_die->lowpc = DW_ADDR (&attr);
7123 break;
7124 case DW_AT_high_pc:
7125 has_high_pc_attr = 1;
7126 part_die->highpc = DW_ADDR (&attr);
7127 break;
7128 case DW_AT_location:
7129 /* Support the .debug_loc offsets */
7130 if (attr_form_is_block (&attr))
7131 {
7132 part_die->locdesc = DW_BLOCK (&attr);
7133 }
7134 else if (attr_form_is_section_offset (&attr))
7135 {
7136 dwarf2_complex_location_expr_complaint ();
7137 }
7138 else
7139 {
7140 dwarf2_invalid_attrib_class_complaint ("DW_AT_location",
7141 "partial symbol information");
7142 }
7143 break;
7144 case DW_AT_external:
7145 part_die->is_external = DW_UNSND (&attr);
7146 break;
7147 case DW_AT_declaration:
7148 part_die->is_declaration = DW_UNSND (&attr);
7149 break;
7150 case DW_AT_type:
7151 part_die->has_type = 1;
7152 break;
7153 case DW_AT_abstract_origin:
7154 case DW_AT_specification:
7155 case DW_AT_extension:
7156 part_die->has_specification = 1;
7157 part_die->spec_offset = dwarf2_get_ref_die_offset (&attr);
7158 break;
7159 case DW_AT_sibling:
7160 /* Ignore absolute siblings, they might point outside of
7161 the current compile unit. */
7162 if (attr.form == DW_FORM_ref_addr)
7163 complaint (&symfile_complaints, _("ignoring absolute DW_AT_sibling"));
7164 else
7165 part_die->sibling = buffer + dwarf2_get_ref_die_offset (&attr);
7166 break;
7167 case DW_AT_byte_size:
7168 part_die->has_byte_size = 1;
7169 break;
7170 case DW_AT_calling_convention:
7171 /* DWARF doesn't provide a way to identify a program's source-level
7172 entry point. DW_AT_calling_convention attributes are only meant
7173 to describe functions' calling conventions.
7174
7175 However, because it's a necessary piece of information in
7176 Fortran, and because DW_CC_program is the only piece of debugging
7177 information whose definition refers to a 'main program' at all,
7178 several compilers have begun marking Fortran main programs with
7179 DW_CC_program --- even when those functions use the standard
7180 calling conventions.
7181
7182 So until DWARF specifies a way to provide this information and
7183 compilers pick up the new representation, we'll support this
7184 practice. */
7185 if (DW_UNSND (&attr) == DW_CC_program
7186 && cu->language == language_fortran)
7187 set_main_name (part_die->name);
7188 break;
7189 default:
7190 break;
7191 }
7192 }
7193
7194 /* When using the GNU linker, .gnu.linkonce. sections are used to
7195 eliminate duplicate copies of functions and vtables and such.
7196 The linker will arbitrarily choose one and discard the others.
7197 The AT_*_pc values for such functions refer to local labels in
7198 these sections. If the section from that file was discarded, the
7199 labels are not in the output, so the relocs get a value of 0.
7200 If this is a discarded function, mark the pc bounds as invalid,
7201 so that GDB will ignore it. */
7202 if (has_low_pc_attr && has_high_pc_attr
7203 && part_die->lowpc < part_die->highpc
7204 && (part_die->lowpc != 0
7205 || dwarf2_per_objfile->has_section_at_zero))
7206 part_die->has_pc_info = 1;
7207
7208 return info_ptr;
7209 }
7210
7211 /* Find a cached partial DIE at OFFSET in CU. */
7212
7213 static struct partial_die_info *
7214 find_partial_die_in_comp_unit (unsigned int offset, struct dwarf2_cu *cu)
7215 {
7216 struct partial_die_info *lookup_die = NULL;
7217 struct partial_die_info part_die;
7218
7219 part_die.offset = offset;
7220 lookup_die = htab_find_with_hash (cu->partial_dies, &part_die, offset);
7221
7222 return lookup_die;
7223 }
7224
7225 /* Find a partial DIE at OFFSET, which may or may not be in CU,
7226 except in the case of .debug_types DIEs which do not reference
7227 outside their CU (they do however referencing other types via
7228 DW_FORM_sig8). */
7229
7230 static struct partial_die_info *
7231 find_partial_die (unsigned int offset, struct dwarf2_cu *cu)
7232 {
7233 struct dwarf2_per_cu_data *per_cu = NULL;
7234 struct partial_die_info *pd = NULL;
7235
7236 if (cu->per_cu->from_debug_types)
7237 {
7238 pd = find_partial_die_in_comp_unit (offset, cu);
7239 if (pd != NULL)
7240 return pd;
7241 goto not_found;
7242 }
7243
7244 if (offset_in_cu_p (&cu->header, offset))
7245 {
7246 pd = find_partial_die_in_comp_unit (offset, cu);
7247 if (pd != NULL)
7248 return pd;
7249 }
7250
7251 per_cu = dwarf2_find_containing_comp_unit (offset, cu->objfile);
7252
7253 if (per_cu->cu == NULL)
7254 {
7255 load_partial_comp_unit (per_cu, cu->objfile);
7256 per_cu->cu->read_in_chain = dwarf2_per_objfile->read_in_chain;
7257 dwarf2_per_objfile->read_in_chain = per_cu;
7258 }
7259
7260 per_cu->cu->last_used = 0;
7261 pd = find_partial_die_in_comp_unit (offset, per_cu->cu);
7262
7263 if (pd == NULL && per_cu->load_all_dies == 0)
7264 {
7265 struct cleanup *back_to;
7266 struct partial_die_info comp_unit_die;
7267 struct abbrev_info *abbrev;
7268 unsigned int bytes_read;
7269 char *info_ptr;
7270
7271 per_cu->load_all_dies = 1;
7272
7273 /* Re-read the DIEs. */
7274 back_to = make_cleanup (null_cleanup, 0);
7275 if (per_cu->cu->dwarf2_abbrevs == NULL)
7276 {
7277 dwarf2_read_abbrevs (per_cu->cu->objfile->obfd, per_cu->cu);
7278 make_cleanup (dwarf2_free_abbrev_table, per_cu->cu);
7279 }
7280 info_ptr = (dwarf2_per_objfile->info.buffer
7281 + per_cu->cu->header.offset
7282 + per_cu->cu->header.first_die_offset);
7283 abbrev = peek_die_abbrev (info_ptr, &bytes_read, per_cu->cu);
7284 info_ptr = read_partial_die (&comp_unit_die, abbrev, bytes_read,
7285 per_cu->cu->objfile->obfd,
7286 dwarf2_per_objfile->info.buffer, info_ptr,
7287 per_cu->cu);
7288 if (comp_unit_die.has_children)
7289 load_partial_dies (per_cu->cu->objfile->obfd,
7290 dwarf2_per_objfile->info.buffer, info_ptr,
7291 0, per_cu->cu);
7292 do_cleanups (back_to);
7293
7294 pd = find_partial_die_in_comp_unit (offset, per_cu->cu);
7295 }
7296
7297 not_found:
7298
7299 if (pd == NULL)
7300 internal_error (__FILE__, __LINE__,
7301 _("could not find partial DIE 0x%x in cache [from module %s]\n"),
7302 offset, bfd_get_filename (cu->objfile->obfd));
7303 return pd;
7304 }
7305
7306 /* Adjust PART_DIE before generating a symbol for it. This function
7307 may set the is_external flag or change the DIE's name. */
7308
7309 static void
7310 fixup_partial_die (struct partial_die_info *part_die,
7311 struct dwarf2_cu *cu)
7312 {
7313 /* If we found a reference attribute and the DIE has no name, try
7314 to find a name in the referred to DIE. */
7315
7316 if (part_die->name == NULL && part_die->has_specification)
7317 {
7318 struct partial_die_info *spec_die;
7319
7320 spec_die = find_partial_die (part_die->spec_offset, cu);
7321
7322 fixup_partial_die (spec_die, cu);
7323
7324 if (spec_die->name)
7325 {
7326 part_die->name = spec_die->name;
7327
7328 /* Copy DW_AT_external attribute if it is set. */
7329 if (spec_die->is_external)
7330 part_die->is_external = spec_die->is_external;
7331 }
7332 }
7333
7334 /* Set default names for some unnamed DIEs. */
7335 if (part_die->name == NULL && (part_die->tag == DW_TAG_structure_type
7336 || part_die->tag == DW_TAG_class_type))
7337 part_die->name = "(anonymous class)";
7338
7339 if (part_die->name == NULL && part_die->tag == DW_TAG_namespace)
7340 part_die->name = "(anonymous namespace)";
7341
7342 if (part_die->tag == DW_TAG_structure_type
7343 || part_die->tag == DW_TAG_class_type
7344 || part_die->tag == DW_TAG_union_type)
7345 guess_structure_name (part_die, cu);
7346 }
7347
7348 /* Read an attribute value described by an attribute form. */
7349
7350 static gdb_byte *
7351 read_attribute_value (struct attribute *attr, unsigned form,
7352 bfd *abfd, gdb_byte *info_ptr,
7353 struct dwarf2_cu *cu)
7354 {
7355 struct comp_unit_head *cu_header = &cu->header;
7356 unsigned int bytes_read;
7357 struct dwarf_block *blk;
7358
7359 attr->form = form;
7360 switch (form)
7361 {
7362 case DW_FORM_ref_addr:
7363 if (cu->header.version == 2)
7364 DW_ADDR (attr) = read_address (abfd, info_ptr, cu, &bytes_read);
7365 else
7366 DW_ADDR (attr) = read_offset (abfd, info_ptr, &cu->header, &bytes_read);
7367 info_ptr += bytes_read;
7368 break;
7369 case DW_FORM_addr:
7370 DW_ADDR (attr) = read_address (abfd, info_ptr, cu, &bytes_read);
7371 info_ptr += bytes_read;
7372 break;
7373 case DW_FORM_block2:
7374 blk = dwarf_alloc_block (cu);
7375 blk->size = read_2_bytes (abfd, info_ptr);
7376 info_ptr += 2;
7377 blk->data = read_n_bytes (abfd, info_ptr, blk->size);
7378 info_ptr += blk->size;
7379 DW_BLOCK (attr) = blk;
7380 break;
7381 case DW_FORM_block4:
7382 blk = dwarf_alloc_block (cu);
7383 blk->size = read_4_bytes (abfd, info_ptr);
7384 info_ptr += 4;
7385 blk->data = read_n_bytes (abfd, info_ptr, blk->size);
7386 info_ptr += blk->size;
7387 DW_BLOCK (attr) = blk;
7388 break;
7389 case DW_FORM_data2:
7390 DW_UNSND (attr) = read_2_bytes (abfd, info_ptr);
7391 info_ptr += 2;
7392 break;
7393 case DW_FORM_data4:
7394 DW_UNSND (attr) = read_4_bytes (abfd, info_ptr);
7395 info_ptr += 4;
7396 break;
7397 case DW_FORM_data8:
7398 DW_UNSND (attr) = read_8_bytes (abfd, info_ptr);
7399 info_ptr += 8;
7400 break;
7401 case DW_FORM_sec_offset:
7402 DW_UNSND (attr) = read_offset (abfd, info_ptr, &cu->header, &bytes_read);
7403 info_ptr += bytes_read;
7404 break;
7405 case DW_FORM_string:
7406 DW_STRING (attr) = read_string (abfd, info_ptr, &bytes_read);
7407 DW_STRING_IS_CANONICAL (attr) = 0;
7408 info_ptr += bytes_read;
7409 break;
7410 case DW_FORM_strp:
7411 DW_STRING (attr) = read_indirect_string (abfd, info_ptr, cu_header,
7412 &bytes_read);
7413 DW_STRING_IS_CANONICAL (attr) = 0;
7414 info_ptr += bytes_read;
7415 break;
7416 case DW_FORM_exprloc:
7417 case DW_FORM_block:
7418 blk = dwarf_alloc_block (cu);
7419 blk->size = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
7420 info_ptr += bytes_read;
7421 blk->data = read_n_bytes (abfd, info_ptr, blk->size);
7422 info_ptr += blk->size;
7423 DW_BLOCK (attr) = blk;
7424 break;
7425 case DW_FORM_block1:
7426 blk = dwarf_alloc_block (cu);
7427 blk->size = read_1_byte (abfd, info_ptr);
7428 info_ptr += 1;
7429 blk->data = read_n_bytes (abfd, info_ptr, blk->size);
7430 info_ptr += blk->size;
7431 DW_BLOCK (attr) = blk;
7432 break;
7433 case DW_FORM_data1:
7434 DW_UNSND (attr) = read_1_byte (abfd, info_ptr);
7435 info_ptr += 1;
7436 break;
7437 case DW_FORM_flag:
7438 DW_UNSND (attr) = read_1_byte (abfd, info_ptr);
7439 info_ptr += 1;
7440 break;
7441 case DW_FORM_flag_present:
7442 DW_UNSND (attr) = 1;
7443 break;
7444 case DW_FORM_sdata:
7445 DW_SND (attr) = read_signed_leb128 (abfd, info_ptr, &bytes_read);
7446 info_ptr += bytes_read;
7447 break;
7448 case DW_FORM_udata:
7449 DW_UNSND (attr) = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
7450 info_ptr += bytes_read;
7451 break;
7452 case DW_FORM_ref1:
7453 DW_ADDR (attr) = cu->header.offset + read_1_byte (abfd, info_ptr);
7454 info_ptr += 1;
7455 break;
7456 case DW_FORM_ref2:
7457 DW_ADDR (attr) = cu->header.offset + read_2_bytes (abfd, info_ptr);
7458 info_ptr += 2;
7459 break;
7460 case DW_FORM_ref4:
7461 DW_ADDR (attr) = cu->header.offset + read_4_bytes (abfd, info_ptr);
7462 info_ptr += 4;
7463 break;
7464 case DW_FORM_ref8:
7465 DW_ADDR (attr) = cu->header.offset + read_8_bytes (abfd, info_ptr);
7466 info_ptr += 8;
7467 break;
7468 case DW_FORM_sig8:
7469 /* Convert the signature to something we can record in DW_UNSND
7470 for later lookup.
7471 NOTE: This is NULL if the type wasn't found. */
7472 DW_SIGNATURED_TYPE (attr) =
7473 lookup_signatured_type (cu->objfile, read_8_bytes (abfd, info_ptr));
7474 info_ptr += 8;
7475 break;
7476 case DW_FORM_ref_udata:
7477 DW_ADDR (attr) = (cu->header.offset
7478 + read_unsigned_leb128 (abfd, info_ptr, &bytes_read));
7479 info_ptr += bytes_read;
7480 break;
7481 case DW_FORM_indirect:
7482 form = read_unsigned_leb128 (abfd, info_ptr, &bytes_read);
7483 info_ptr += bytes_read;
7484 info_ptr = read_attribute_value (attr, form, abfd, info_ptr, cu);
7485 break;
7486 default:
7487 error (_("Dwarf Error: Cannot handle %s in DWARF reader [in module %s]"),
7488 dwarf_form_name (form),
7489 bfd_get_filename (abfd));
7490 }
7491
7492 /* We have seen instances where the compiler tried to emit a byte
7493 size attribute of -1 which ended up being encoded as an unsigned
7494 0xffffffff. Although 0xffffffff is technically a valid size value,
7495 an object of this size seems pretty unlikely so we can relatively
7496 safely treat these cases as if the size attribute was invalid and
7497 treat them as zero by default. */
7498 if (attr->name == DW_AT_byte_size
7499 && form == DW_FORM_data4
7500 && DW_UNSND (attr) >= 0xffffffff)
7501 {
7502 complaint
7503 (&symfile_complaints,
7504 _("Suspicious DW_AT_byte_size value treated as zero instead of %s"),
7505 hex_string (DW_UNSND (attr)));
7506 DW_UNSND (attr) = 0;
7507 }
7508
7509 return info_ptr;
7510 }
7511
7512 /* Read an attribute described by an abbreviated attribute. */
7513
7514 static gdb_byte *
7515 read_attribute (struct attribute *attr, struct attr_abbrev *abbrev,
7516 bfd *abfd, gdb_byte *info_ptr, struct dwarf2_cu *cu)
7517 {
7518 attr->name = abbrev->name;
7519 return read_attribute_value (attr, abbrev->form, abfd, info_ptr, cu);
7520 }
7521
7522 /* read dwarf information from a buffer */
7523
7524 static unsigned int
7525 read_1_byte (bfd *abfd, gdb_byte *buf)
7526 {
7527 return bfd_get_8 (abfd, buf);
7528 }
7529
7530 static int
7531 read_1_signed_byte (bfd *abfd, gdb_byte *buf)
7532 {
7533 return bfd_get_signed_8 (abfd, buf);
7534 }
7535
7536 static unsigned int
7537 read_2_bytes (bfd *abfd, gdb_byte *buf)
7538 {
7539 return bfd_get_16 (abfd, buf);
7540 }
7541
7542 static int
7543 read_2_signed_bytes (bfd *abfd, gdb_byte *buf)
7544 {
7545 return bfd_get_signed_16 (abfd, buf);
7546 }
7547
7548 static unsigned int
7549 read_4_bytes (bfd *abfd, gdb_byte *buf)
7550 {
7551 return bfd_get_32 (abfd, buf);
7552 }
7553
7554 static int
7555 read_4_signed_bytes (bfd *abfd, gdb_byte *buf)
7556 {
7557 return bfd_get_signed_32 (abfd, buf);
7558 }
7559
7560 static ULONGEST
7561 read_8_bytes (bfd *abfd, gdb_byte *buf)
7562 {
7563 return bfd_get_64 (abfd, buf);
7564 }
7565
7566 static CORE_ADDR
7567 read_address (bfd *abfd, gdb_byte *buf, struct dwarf2_cu *cu,
7568 unsigned int *bytes_read)
7569 {
7570 struct comp_unit_head *cu_header = &cu->header;
7571 CORE_ADDR retval = 0;
7572
7573 if (cu_header->signed_addr_p)
7574 {
7575 switch (cu_header->addr_size)
7576 {
7577 case 2:
7578 retval = bfd_get_signed_16 (abfd, buf);
7579 break;
7580 case 4:
7581 retval = bfd_get_signed_32 (abfd, buf);
7582 break;
7583 case 8:
7584 retval = bfd_get_signed_64 (abfd, buf);
7585 break;
7586 default:
7587 internal_error (__FILE__, __LINE__,
7588 _("read_address: bad switch, signed [in module %s]"),
7589 bfd_get_filename (abfd));
7590 }
7591 }
7592 else
7593 {
7594 switch (cu_header->addr_size)
7595 {
7596 case 2:
7597 retval = bfd_get_16 (abfd, buf);
7598 break;
7599 case 4:
7600 retval = bfd_get_32 (abfd, buf);
7601 break;
7602 case 8:
7603 retval = bfd_get_64 (abfd, buf);
7604 break;
7605 default:
7606 internal_error (__FILE__, __LINE__,
7607 _("read_address: bad switch, unsigned [in module %s]"),
7608 bfd_get_filename (abfd));
7609 }
7610 }
7611
7612 *bytes_read = cu_header->addr_size;
7613 return retval;
7614 }
7615
7616 /* Read the initial length from a section. The (draft) DWARF 3
7617 specification allows the initial length to take up either 4 bytes
7618 or 12 bytes. If the first 4 bytes are 0xffffffff, then the next 8
7619 bytes describe the length and all offsets will be 8 bytes in length
7620 instead of 4.
7621
7622 An older, non-standard 64-bit format is also handled by this
7623 function. The older format in question stores the initial length
7624 as an 8-byte quantity without an escape value. Lengths greater
7625 than 2^32 aren't very common which means that the initial 4 bytes
7626 is almost always zero. Since a length value of zero doesn't make
7627 sense for the 32-bit format, this initial zero can be considered to
7628 be an escape value which indicates the presence of the older 64-bit
7629 format. As written, the code can't detect (old format) lengths
7630 greater than 4GB. If it becomes necessary to handle lengths
7631 somewhat larger than 4GB, we could allow other small values (such
7632 as the non-sensical values of 1, 2, and 3) to also be used as
7633 escape values indicating the presence of the old format.
7634
7635 The value returned via bytes_read should be used to increment the
7636 relevant pointer after calling read_initial_length().
7637
7638 [ Note: read_initial_length() and read_offset() are based on the
7639 document entitled "DWARF Debugging Information Format", revision
7640 3, draft 8, dated November 19, 2001. This document was obtained
7641 from:
7642
7643 http://reality.sgiweb.org/davea/dwarf3-draft8-011125.pdf
7644
7645 This document is only a draft and is subject to change. (So beware.)
7646
7647 Details regarding the older, non-standard 64-bit format were
7648 determined empirically by examining 64-bit ELF files produced by
7649 the SGI toolchain on an IRIX 6.5 machine.
7650
7651 - Kevin, July 16, 2002
7652 ] */
7653
7654 static LONGEST
7655 read_initial_length (bfd *abfd, gdb_byte *buf, unsigned int *bytes_read)
7656 {
7657 LONGEST length = bfd_get_32 (abfd, buf);
7658
7659 if (length == 0xffffffff)
7660 {
7661 length = bfd_get_64 (abfd, buf + 4);
7662 *bytes_read = 12;
7663 }
7664 else if (length == 0)
7665 {
7666 /* Handle the (non-standard) 64-bit DWARF2 format used by IRIX. */
7667 length = bfd_get_64 (abfd, buf);
7668 *bytes_read = 8;
7669 }
7670 else
7671 {
7672 *bytes_read = 4;
7673 }
7674
7675 return length;
7676 }
7677
7678 /* Cover function for read_initial_length.
7679 Returns the length of the object at BUF, and stores the size of the
7680 initial length in *BYTES_READ and stores the size that offsets will be in
7681 *OFFSET_SIZE.
7682 If the initial length size is not equivalent to that specified in
7683 CU_HEADER then issue a complaint.
7684 This is useful when reading non-comp-unit headers. */
7685
7686 static LONGEST
7687 read_checked_initial_length_and_offset (bfd *abfd, gdb_byte *buf,
7688 const struct comp_unit_head *cu_header,
7689 unsigned int *bytes_read,
7690 unsigned int *offset_size)
7691 {
7692 LONGEST length = read_initial_length (abfd, buf, bytes_read);
7693
7694 gdb_assert (cu_header->initial_length_size == 4
7695 || cu_header->initial_length_size == 8
7696 || cu_header->initial_length_size == 12);
7697
7698 if (cu_header->initial_length_size != *bytes_read)
7699 complaint (&symfile_complaints,
7700 _("intermixed 32-bit and 64-bit DWARF sections"));
7701
7702 *offset_size = (*bytes_read == 4) ? 4 : 8;
7703 return length;
7704 }
7705
7706 /* Read an offset from the data stream. The size of the offset is
7707 given by cu_header->offset_size. */
7708
7709 static LONGEST
7710 read_offset (bfd *abfd, gdb_byte *buf, const struct comp_unit_head *cu_header,
7711 unsigned int *bytes_read)
7712 {
7713 LONGEST offset = read_offset_1 (abfd, buf, cu_header->offset_size);
7714
7715 *bytes_read = cu_header->offset_size;
7716 return offset;
7717 }
7718
7719 /* Read an offset from the data stream. */
7720
7721 static LONGEST
7722 read_offset_1 (bfd *abfd, gdb_byte *buf, unsigned int offset_size)
7723 {
7724 LONGEST retval = 0;
7725
7726 switch (offset_size)
7727 {
7728 case 4:
7729 retval = bfd_get_32 (abfd, buf);
7730 break;
7731 case 8:
7732 retval = bfd_get_64 (abfd, buf);
7733 break;
7734 default:
7735 internal_error (__FILE__, __LINE__,
7736 _("read_offset_1: bad switch [in module %s]"),
7737 bfd_get_filename (abfd));
7738 }
7739
7740 return retval;
7741 }
7742
7743 static gdb_byte *
7744 read_n_bytes (bfd *abfd, gdb_byte *buf, unsigned int size)
7745 {
7746 /* If the size of a host char is 8 bits, we can return a pointer
7747 to the buffer, otherwise we have to copy the data to a buffer
7748 allocated on the temporary obstack. */
7749 gdb_assert (HOST_CHAR_BIT == 8);
7750 return buf;
7751 }
7752
7753 static char *
7754 read_string (bfd *abfd, gdb_byte *buf, unsigned int *bytes_read_ptr)
7755 {
7756 /* If the size of a host char is 8 bits, we can return a pointer
7757 to the string, otherwise we have to copy the string to a buffer
7758 allocated on the temporary obstack. */
7759 gdb_assert (HOST_CHAR_BIT == 8);
7760 if (*buf == '\0')
7761 {
7762 *bytes_read_ptr = 1;
7763 return NULL;
7764 }
7765 *bytes_read_ptr = strlen ((char *) buf) + 1;
7766 return (char *) buf;
7767 }
7768
7769 static char *
7770 read_indirect_string (bfd *abfd, gdb_byte *buf,
7771 const struct comp_unit_head *cu_header,
7772 unsigned int *bytes_read_ptr)
7773 {
7774 LONGEST str_offset = read_offset (abfd, buf, cu_header, bytes_read_ptr);
7775
7776 dwarf2_read_section (dwarf2_per_objfile->objfile, &dwarf2_per_objfile->str);
7777 if (dwarf2_per_objfile->str.buffer == NULL)
7778 {
7779 error (_("DW_FORM_strp used without .debug_str section [in module %s]"),
7780 bfd_get_filename (abfd));
7781 return NULL;
7782 }
7783 if (str_offset >= dwarf2_per_objfile->str.size)
7784 {
7785 error (_("DW_FORM_strp pointing outside of .debug_str section [in module %s]"),
7786 bfd_get_filename (abfd));
7787 return NULL;
7788 }
7789 gdb_assert (HOST_CHAR_BIT == 8);
7790 if (dwarf2_per_objfile->str.buffer[str_offset] == '\0')
7791 return NULL;
7792 return (char *) (dwarf2_per_objfile->str.buffer + str_offset);
7793 }
7794
7795 static unsigned long
7796 read_unsigned_leb128 (bfd *abfd, gdb_byte *buf, unsigned int *bytes_read_ptr)
7797 {
7798 unsigned long result;
7799 unsigned int num_read;
7800 int i, shift;
7801 unsigned char byte;
7802
7803 result = 0;
7804 shift = 0;
7805 num_read = 0;
7806 i = 0;
7807 while (1)
7808 {
7809 byte = bfd_get_8 (abfd, buf);
7810 buf++;
7811 num_read++;
7812 result |= ((unsigned long)(byte & 127) << shift);
7813 if ((byte & 128) == 0)
7814 {
7815 break;
7816 }
7817 shift += 7;
7818 }
7819 *bytes_read_ptr = num_read;
7820 return result;
7821 }
7822
7823 static long
7824 read_signed_leb128 (bfd *abfd, gdb_byte *buf, unsigned int *bytes_read_ptr)
7825 {
7826 long result;
7827 int i, shift, num_read;
7828 unsigned char byte;
7829
7830 result = 0;
7831 shift = 0;
7832 num_read = 0;
7833 i = 0;
7834 while (1)
7835 {
7836 byte = bfd_get_8 (abfd, buf);
7837 buf++;
7838 num_read++;
7839 result |= ((long)(byte & 127) << shift);
7840 shift += 7;
7841 if ((byte & 128) == 0)
7842 {
7843 break;
7844 }
7845 }
7846 if ((shift < 8 * sizeof (result)) && (byte & 0x40))
7847 result |= -(((long)1) << shift);
7848 *bytes_read_ptr = num_read;
7849 return result;
7850 }
7851
7852 /* Return a pointer to just past the end of an LEB128 number in BUF. */
7853
7854 static gdb_byte *
7855 skip_leb128 (bfd *abfd, gdb_byte *buf)
7856 {
7857 int byte;
7858
7859 while (1)
7860 {
7861 byte = bfd_get_8 (abfd, buf);
7862 buf++;
7863 if ((byte & 128) == 0)
7864 return buf;
7865 }
7866 }
7867
7868 static void
7869 set_cu_language (unsigned int lang, struct dwarf2_cu *cu)
7870 {
7871 switch (lang)
7872 {
7873 case DW_LANG_C89:
7874 case DW_LANG_C99:
7875 case DW_LANG_C:
7876 cu->language = language_c;
7877 break;
7878 case DW_LANG_C_plus_plus:
7879 cu->language = language_cplus;
7880 break;
7881 case DW_LANG_D:
7882 cu->language = language_d;
7883 break;
7884 case DW_LANG_Fortran77:
7885 case DW_LANG_Fortran90:
7886 case DW_LANG_Fortran95:
7887 cu->language = language_fortran;
7888 break;
7889 case DW_LANG_Mips_Assembler:
7890 cu->language = language_asm;
7891 break;
7892 case DW_LANG_Java:
7893 cu->language = language_java;
7894 break;
7895 case DW_LANG_Ada83:
7896 case DW_LANG_Ada95:
7897 cu->language = language_ada;
7898 break;
7899 case DW_LANG_Modula2:
7900 cu->language = language_m2;
7901 break;
7902 case DW_LANG_Pascal83:
7903 cu->language = language_pascal;
7904 break;
7905 case DW_LANG_ObjC:
7906 cu->language = language_objc;
7907 break;
7908 case DW_LANG_Cobol74:
7909 case DW_LANG_Cobol85:
7910 default:
7911 cu->language = language_minimal;
7912 break;
7913 }
7914 cu->language_defn = language_def (cu->language);
7915 }
7916
7917 /* Return the named attribute or NULL if not there. */
7918
7919 static struct attribute *
7920 dwarf2_attr (struct die_info *die, unsigned int name, struct dwarf2_cu *cu)
7921 {
7922 unsigned int i;
7923 struct attribute *spec = NULL;
7924
7925 for (i = 0; i < die->num_attrs; ++i)
7926 {
7927 if (die->attrs[i].name == name)
7928 return &die->attrs[i];
7929 if (die->attrs[i].name == DW_AT_specification
7930 || die->attrs[i].name == DW_AT_abstract_origin)
7931 spec = &die->attrs[i];
7932 }
7933
7934 if (spec)
7935 {
7936 die = follow_die_ref (die, spec, &cu);
7937 return dwarf2_attr (die, name, cu);
7938 }
7939
7940 return NULL;
7941 }
7942
7943 /* Return the named attribute or NULL if not there,
7944 but do not follow DW_AT_specification, etc.
7945 This is for use in contexts where we're reading .debug_types dies.
7946 Following DW_AT_specification, DW_AT_abstract_origin will take us
7947 back up the chain, and we want to go down. */
7948
7949 static struct attribute *
7950 dwarf2_attr_no_follow (struct die_info *die, unsigned int name,
7951 struct dwarf2_cu *cu)
7952 {
7953 unsigned int i;
7954
7955 for (i = 0; i < die->num_attrs; ++i)
7956 if (die->attrs[i].name == name)
7957 return &die->attrs[i];
7958
7959 return NULL;
7960 }
7961
7962 /* Return non-zero iff the attribute NAME is defined for the given DIE,
7963 and holds a non-zero value. This function should only be used for
7964 DW_FORM_flag or DW_FORM_flag_present attributes. */
7965
7966 static int
7967 dwarf2_flag_true_p (struct die_info *die, unsigned name, struct dwarf2_cu *cu)
7968 {
7969 struct attribute *attr = dwarf2_attr (die, name, cu);
7970
7971 return (attr && DW_UNSND (attr));
7972 }
7973
7974 static int
7975 die_is_declaration (struct die_info *die, struct dwarf2_cu *cu)
7976 {
7977 /* A DIE is a declaration if it has a DW_AT_declaration attribute
7978 which value is non-zero. However, we have to be careful with
7979 DIEs having a DW_AT_specification attribute, because dwarf2_attr()
7980 (via dwarf2_flag_true_p) follows this attribute. So we may
7981 end up accidently finding a declaration attribute that belongs
7982 to a different DIE referenced by the specification attribute,
7983 even though the given DIE does not have a declaration attribute. */
7984 return (dwarf2_flag_true_p (die, DW_AT_declaration, cu)
7985 && dwarf2_attr (die, DW_AT_specification, cu) == NULL);
7986 }
7987
7988 /* Return the die giving the specification for DIE, if there is
7989 one. *SPEC_CU is the CU containing DIE on input, and the CU
7990 containing the return value on output. If there is no
7991 specification, but there is an abstract origin, that is
7992 returned. */
7993
7994 static struct die_info *
7995 die_specification (struct die_info *die, struct dwarf2_cu **spec_cu)
7996 {
7997 struct attribute *spec_attr = dwarf2_attr (die, DW_AT_specification,
7998 *spec_cu);
7999
8000 if (spec_attr == NULL)
8001 spec_attr = dwarf2_attr (die, DW_AT_abstract_origin, *spec_cu);
8002
8003 if (spec_attr == NULL)
8004 return NULL;
8005 else
8006 return follow_die_ref (die, spec_attr, spec_cu);
8007 }
8008
8009 /* Free the line_header structure *LH, and any arrays and strings it
8010 refers to. */
8011 static void
8012 free_line_header (struct line_header *lh)
8013 {
8014 if (lh->standard_opcode_lengths)
8015 xfree (lh->standard_opcode_lengths);
8016
8017 /* Remember that all the lh->file_names[i].name pointers are
8018 pointers into debug_line_buffer, and don't need to be freed. */
8019 if (lh->file_names)
8020 xfree (lh->file_names);
8021
8022 /* Similarly for the include directory names. */
8023 if (lh->include_dirs)
8024 xfree (lh->include_dirs);
8025
8026 xfree (lh);
8027 }
8028
8029
8030 /* Add an entry to LH's include directory table. */
8031 static void
8032 add_include_dir (struct line_header *lh, char *include_dir)
8033 {
8034 /* Grow the array if necessary. */
8035 if (lh->include_dirs_size == 0)
8036 {
8037 lh->include_dirs_size = 1; /* for testing */
8038 lh->include_dirs = xmalloc (lh->include_dirs_size
8039 * sizeof (*lh->include_dirs));
8040 }
8041 else if (lh->num_include_dirs >= lh->include_dirs_size)
8042 {
8043 lh->include_dirs_size *= 2;
8044 lh->include_dirs = xrealloc (lh->include_dirs,
8045 (lh->include_dirs_size
8046 * sizeof (*lh->include_dirs)));
8047 }
8048
8049 lh->include_dirs[lh->num_include_dirs++] = include_dir;
8050 }
8051
8052
8053 /* Add an entry to LH's file name table. */
8054 static void
8055 add_file_name (struct line_header *lh,
8056 char *name,
8057 unsigned int dir_index,
8058 unsigned int mod_time,
8059 unsigned int length)
8060 {
8061 struct file_entry *fe;
8062
8063 /* Grow the array if necessary. */
8064 if (lh->file_names_size == 0)
8065 {
8066 lh->file_names_size = 1; /* for testing */
8067 lh->file_names = xmalloc (lh->file_names_size
8068 * sizeof (*lh->file_names));
8069 }
8070 else if (lh->num_file_names >= lh->file_names_size)
8071 {
8072 lh->file_names_size *= 2;
8073 lh->file_names = xrealloc (lh->file_names,
8074 (lh->file_names_size
8075 * sizeof (*lh->file_names)));
8076 }
8077
8078 fe = &lh->file_names[lh->num_file_names++];
8079 fe->name = name;
8080 fe->dir_index = dir_index;
8081 fe->mod_time = mod_time;
8082 fe->length = length;
8083 fe->included_p = 0;
8084 fe->symtab = NULL;
8085 }
8086
8087
8088 /* Read the statement program header starting at OFFSET in
8089 .debug_line, according to the endianness of ABFD. Return a pointer
8090 to a struct line_header, allocated using xmalloc.
8091
8092 NOTE: the strings in the include directory and file name tables of
8093 the returned object point into debug_line_buffer, and must not be
8094 freed. */
8095 static struct line_header *
8096 dwarf_decode_line_header (unsigned int offset, bfd *abfd,
8097 struct dwarf2_cu *cu)
8098 {
8099 struct cleanup *back_to;
8100 struct line_header *lh;
8101 gdb_byte *line_ptr;
8102 unsigned int bytes_read, offset_size;
8103 int i;
8104 char *cur_dir, *cur_file;
8105
8106 dwarf2_read_section (dwarf2_per_objfile->objfile, &dwarf2_per_objfile->line);
8107 if (dwarf2_per_objfile->line.buffer == NULL)
8108 {
8109 complaint (&symfile_complaints, _("missing .debug_line section"));
8110 return 0;
8111 }
8112
8113 /* Make sure that at least there's room for the total_length field.
8114 That could be 12 bytes long, but we're just going to fudge that. */
8115 if (offset + 4 >= dwarf2_per_objfile->line.size)
8116 {
8117 dwarf2_statement_list_fits_in_line_number_section_complaint ();
8118 return 0;
8119 }
8120
8121 lh = xmalloc (sizeof (*lh));
8122 memset (lh, 0, sizeof (*lh));
8123 back_to = make_cleanup ((make_cleanup_ftype *) free_line_header,
8124 (void *) lh);
8125
8126 line_ptr = dwarf2_per_objfile->line.buffer + offset;
8127
8128 /* Read in the header. */
8129 lh->total_length =
8130 read_checked_initial_length_and_offset (abfd, line_ptr, &cu->header,
8131 &bytes_read, &offset_size);
8132 line_ptr += bytes_read;
8133 if (line_ptr + lh->total_length > (dwarf2_per_objfile->line.buffer
8134 + dwarf2_per_objfile->line.size))
8135 {
8136 dwarf2_statement_list_fits_in_line_number_section_complaint ();
8137 return 0;
8138 }
8139 lh->statement_program_end = line_ptr + lh->total_length;
8140 lh->version = read_2_bytes (abfd, line_ptr);
8141 line_ptr += 2;
8142 lh->header_length = read_offset_1 (abfd, line_ptr, offset_size);
8143 line_ptr += offset_size;
8144 lh->minimum_instruction_length = read_1_byte (abfd, line_ptr);
8145 line_ptr += 1;
8146 if (lh->version >= 4)
8147 {
8148 lh->maximum_ops_per_instruction = read_1_byte (abfd, line_ptr);
8149 line_ptr += 1;
8150 }
8151 else
8152 lh->maximum_ops_per_instruction = 1;
8153
8154 if (lh->maximum_ops_per_instruction == 0)
8155 {
8156 lh->maximum_ops_per_instruction = 1;
8157 complaint (&symfile_complaints,
8158 _("invalid maximum_ops_per_instruction in `.debug_line' section"));
8159 }
8160
8161 lh->default_is_stmt = read_1_byte (abfd, line_ptr);
8162 line_ptr += 1;
8163 lh->line_base = read_1_signed_byte (abfd, line_ptr);
8164 line_ptr += 1;
8165 lh->line_range = read_1_byte (abfd, line_ptr);
8166 line_ptr += 1;
8167 lh->opcode_base = read_1_byte (abfd, line_ptr);
8168 line_ptr += 1;
8169 lh->standard_opcode_lengths
8170 = xmalloc (lh->opcode_base * sizeof (lh->standard_opcode_lengths[0]));
8171
8172 lh->standard_opcode_lengths[0] = 1; /* This should never be used anyway. */
8173 for (i = 1; i < lh->opcode_base; ++i)
8174 {
8175 lh->standard_opcode_lengths[i] = read_1_byte (abfd, line_ptr);
8176 line_ptr += 1;
8177 }
8178
8179 /* Read directory table. */
8180 while ((cur_dir = read_string (abfd, line_ptr, &bytes_read)) != NULL)
8181 {
8182 line_ptr += bytes_read;
8183 add_include_dir (lh, cur_dir);
8184 }
8185 line_ptr += bytes_read;
8186
8187 /* Read file name table. */
8188 while ((cur_file = read_string (abfd, line_ptr, &bytes_read)) != NULL)
8189 {
8190 unsigned int dir_index, mod_time, length;
8191
8192 line_ptr += bytes_read;
8193 dir_index = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8194 line_ptr += bytes_read;
8195 mod_time = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8196 line_ptr += bytes_read;
8197 length = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8198 line_ptr += bytes_read;
8199
8200 add_file_name (lh, cur_file, dir_index, mod_time, length);
8201 }
8202 line_ptr += bytes_read;
8203 lh->statement_program_start = line_ptr;
8204
8205 if (line_ptr > (dwarf2_per_objfile->line.buffer
8206 + dwarf2_per_objfile->line.size))
8207 complaint (&symfile_complaints,
8208 _("line number info header doesn't fit in `.debug_line' section"));
8209
8210 discard_cleanups (back_to);
8211 return lh;
8212 }
8213
8214 /* This function exists to work around a bug in certain compilers
8215 (particularly GCC 2.95), in which the first line number marker of a
8216 function does not show up until after the prologue, right before
8217 the second line number marker. This function shifts ADDRESS down
8218 to the beginning of the function if necessary, and is called on
8219 addresses passed to record_line. */
8220
8221 static CORE_ADDR
8222 check_cu_functions (CORE_ADDR address, struct dwarf2_cu *cu)
8223 {
8224 struct function_range *fn;
8225
8226 /* Find the function_range containing address. */
8227 if (!cu->first_fn)
8228 return address;
8229
8230 if (!cu->cached_fn)
8231 cu->cached_fn = cu->first_fn;
8232
8233 fn = cu->cached_fn;
8234 while (fn)
8235 if (fn->lowpc <= address && fn->highpc > address)
8236 goto found;
8237 else
8238 fn = fn->next;
8239
8240 fn = cu->first_fn;
8241 while (fn && fn != cu->cached_fn)
8242 if (fn->lowpc <= address && fn->highpc > address)
8243 goto found;
8244 else
8245 fn = fn->next;
8246
8247 return address;
8248
8249 found:
8250 if (fn->seen_line)
8251 return address;
8252 if (address != fn->lowpc)
8253 complaint (&symfile_complaints,
8254 _("misplaced first line number at 0x%lx for '%s'"),
8255 (unsigned long) address, fn->name);
8256 fn->seen_line = 1;
8257 return fn->lowpc;
8258 }
8259
8260 /* Decode the Line Number Program (LNP) for the given line_header
8261 structure and CU. The actual information extracted and the type
8262 of structures created from the LNP depends on the value of PST.
8263
8264 1. If PST is NULL, then this procedure uses the data from the program
8265 to create all necessary symbol tables, and their linetables.
8266 The compilation directory of the file is passed in COMP_DIR,
8267 and must not be NULL.
8268
8269 2. If PST is not NULL, this procedure reads the program to determine
8270 the list of files included by the unit represented by PST, and
8271 builds all the associated partial symbol tables. In this case,
8272 the value of COMP_DIR is ignored, and can thus be NULL (the COMP_DIR
8273 is not used to compute the full name of the symtab, and therefore
8274 omitting it when building the partial symtab does not introduce
8275 the potential for inconsistency - a partial symtab and its associated
8276 symbtab having a different fullname -). */
8277
8278 static void
8279 dwarf_decode_lines (struct line_header *lh, char *comp_dir, bfd *abfd,
8280 struct dwarf2_cu *cu, struct partial_symtab *pst)
8281 {
8282 gdb_byte *line_ptr, *extended_end;
8283 gdb_byte *line_end;
8284 unsigned int bytes_read, extended_len;
8285 unsigned char op_code, extended_op, adj_opcode;
8286 CORE_ADDR baseaddr;
8287 struct objfile *objfile = cu->objfile;
8288 struct gdbarch *gdbarch = get_objfile_arch (objfile);
8289 const int decode_for_pst_p = (pst != NULL);
8290 struct subfile *last_subfile = NULL, *first_subfile = current_subfile;
8291
8292 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
8293
8294 line_ptr = lh->statement_program_start;
8295 line_end = lh->statement_program_end;
8296
8297 /* Read the statement sequences until there's nothing left. */
8298 while (line_ptr < line_end)
8299 {
8300 /* state machine registers */
8301 CORE_ADDR address = 0;
8302 unsigned int file = 1;
8303 unsigned int line = 1;
8304 unsigned int column = 0;
8305 int is_stmt = lh->default_is_stmt;
8306 int basic_block = 0;
8307 int end_sequence = 0;
8308 CORE_ADDR addr;
8309 unsigned char op_index = 0;
8310
8311 if (!decode_for_pst_p && lh->num_file_names >= file)
8312 {
8313 /* Start a subfile for the current file of the state machine. */
8314 /* lh->include_dirs and lh->file_names are 0-based, but the
8315 directory and file name numbers in the statement program
8316 are 1-based. */
8317 struct file_entry *fe = &lh->file_names[file - 1];
8318 char *dir = NULL;
8319
8320 if (fe->dir_index)
8321 dir = lh->include_dirs[fe->dir_index - 1];
8322
8323 dwarf2_start_subfile (fe->name, dir, comp_dir);
8324 }
8325
8326 /* Decode the table. */
8327 while (!end_sequence)
8328 {
8329 op_code = read_1_byte (abfd, line_ptr);
8330 line_ptr += 1;
8331 if (line_ptr > line_end)
8332 {
8333 dwarf2_debug_line_missing_end_sequence_complaint ();
8334 break;
8335 }
8336
8337 if (op_code >= lh->opcode_base)
8338 {
8339 /* Special operand. */
8340 adj_opcode = op_code - lh->opcode_base;
8341 address += (((op_index + (adj_opcode / lh->line_range))
8342 / lh->maximum_ops_per_instruction)
8343 * lh->minimum_instruction_length);
8344 op_index = ((op_index + (adj_opcode / lh->line_range))
8345 % lh->maximum_ops_per_instruction);
8346 line += lh->line_base + (adj_opcode % lh->line_range);
8347 if (lh->num_file_names < file || file == 0)
8348 dwarf2_debug_line_missing_file_complaint ();
8349 /* For now we ignore lines not starting on an
8350 instruction boundary. */
8351 else if (op_index == 0)
8352 {
8353 lh->file_names[file - 1].included_p = 1;
8354 if (!decode_for_pst_p && is_stmt)
8355 {
8356 if (last_subfile != current_subfile)
8357 {
8358 addr = gdbarch_addr_bits_remove (gdbarch, address);
8359 if (last_subfile)
8360 record_line (last_subfile, 0, addr);
8361 last_subfile = current_subfile;
8362 }
8363 /* Append row to matrix using current values. */
8364 addr = check_cu_functions (address, cu);
8365 addr = gdbarch_addr_bits_remove (gdbarch, addr);
8366 record_line (current_subfile, line, addr);
8367 }
8368 }
8369 basic_block = 0;
8370 }
8371 else switch (op_code)
8372 {
8373 case DW_LNS_extended_op:
8374 extended_len = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8375 line_ptr += bytes_read;
8376 extended_end = line_ptr + extended_len;
8377 extended_op = read_1_byte (abfd, line_ptr);
8378 line_ptr += 1;
8379 switch (extended_op)
8380 {
8381 case DW_LNE_end_sequence:
8382 end_sequence = 1;
8383 break;
8384 case DW_LNE_set_address:
8385 address = read_address (abfd, line_ptr, cu, &bytes_read);
8386 op_index = 0;
8387 line_ptr += bytes_read;
8388 address += baseaddr;
8389 break;
8390 case DW_LNE_define_file:
8391 {
8392 char *cur_file;
8393 unsigned int dir_index, mod_time, length;
8394
8395 cur_file = read_string (abfd, line_ptr, &bytes_read);
8396 line_ptr += bytes_read;
8397 dir_index =
8398 read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8399 line_ptr += bytes_read;
8400 mod_time =
8401 read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8402 line_ptr += bytes_read;
8403 length =
8404 read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8405 line_ptr += bytes_read;
8406 add_file_name (lh, cur_file, dir_index, mod_time, length);
8407 }
8408 break;
8409 case DW_LNE_set_discriminator:
8410 /* The discriminator is not interesting to the debugger;
8411 just ignore it. */
8412 line_ptr = extended_end;
8413 break;
8414 default:
8415 complaint (&symfile_complaints,
8416 _("mangled .debug_line section"));
8417 return;
8418 }
8419 /* Make sure that we parsed the extended op correctly. If e.g.
8420 we expected a different address size than the producer used,
8421 we may have read the wrong number of bytes. */
8422 if (line_ptr != extended_end)
8423 {
8424 complaint (&symfile_complaints,
8425 _("mangled .debug_line section"));
8426 return;
8427 }
8428 break;
8429 case DW_LNS_copy:
8430 if (lh->num_file_names < file || file == 0)
8431 dwarf2_debug_line_missing_file_complaint ();
8432 else
8433 {
8434 lh->file_names[file - 1].included_p = 1;
8435 if (!decode_for_pst_p && is_stmt)
8436 {
8437 if (last_subfile != current_subfile)
8438 {
8439 addr = gdbarch_addr_bits_remove (gdbarch, address);
8440 if (last_subfile)
8441 record_line (last_subfile, 0, addr);
8442 last_subfile = current_subfile;
8443 }
8444 addr = check_cu_functions (address, cu);
8445 addr = gdbarch_addr_bits_remove (gdbarch, addr);
8446 record_line (current_subfile, line, addr);
8447 }
8448 }
8449 basic_block = 0;
8450 break;
8451 case DW_LNS_advance_pc:
8452 {
8453 CORE_ADDR adjust
8454 = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8455
8456 address += (((op_index + adjust)
8457 / lh->maximum_ops_per_instruction)
8458 * lh->minimum_instruction_length);
8459 op_index = ((op_index + adjust)
8460 % lh->maximum_ops_per_instruction);
8461 line_ptr += bytes_read;
8462 }
8463 break;
8464 case DW_LNS_advance_line:
8465 line += read_signed_leb128 (abfd, line_ptr, &bytes_read);
8466 line_ptr += bytes_read;
8467 break;
8468 case DW_LNS_set_file:
8469 {
8470 /* The arrays lh->include_dirs and lh->file_names are
8471 0-based, but the directory and file name numbers in
8472 the statement program are 1-based. */
8473 struct file_entry *fe;
8474 char *dir = NULL;
8475
8476 file = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8477 line_ptr += bytes_read;
8478 if (lh->num_file_names < file || file == 0)
8479 dwarf2_debug_line_missing_file_complaint ();
8480 else
8481 {
8482 fe = &lh->file_names[file - 1];
8483 if (fe->dir_index)
8484 dir = lh->include_dirs[fe->dir_index - 1];
8485 if (!decode_for_pst_p)
8486 {
8487 last_subfile = current_subfile;
8488 dwarf2_start_subfile (fe->name, dir, comp_dir);
8489 }
8490 }
8491 }
8492 break;
8493 case DW_LNS_set_column:
8494 column = read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8495 line_ptr += bytes_read;
8496 break;
8497 case DW_LNS_negate_stmt:
8498 is_stmt = (!is_stmt);
8499 break;
8500 case DW_LNS_set_basic_block:
8501 basic_block = 1;
8502 break;
8503 /* Add to the address register of the state machine the
8504 address increment value corresponding to special opcode
8505 255. I.e., this value is scaled by the minimum
8506 instruction length since special opcode 255 would have
8507 scaled the the increment. */
8508 case DW_LNS_const_add_pc:
8509 {
8510 CORE_ADDR adjust = (255 - lh->opcode_base) / lh->line_range;
8511
8512 address += (((op_index + adjust)
8513 / lh->maximum_ops_per_instruction)
8514 * lh->minimum_instruction_length);
8515 op_index = ((op_index + adjust)
8516 % lh->maximum_ops_per_instruction);
8517 }
8518 break;
8519 case DW_LNS_fixed_advance_pc:
8520 address += read_2_bytes (abfd, line_ptr);
8521 op_index = 0;
8522 line_ptr += 2;
8523 break;
8524 default:
8525 {
8526 /* Unknown standard opcode, ignore it. */
8527 int i;
8528
8529 for (i = 0; i < lh->standard_opcode_lengths[op_code]; i++)
8530 {
8531 (void) read_unsigned_leb128 (abfd, line_ptr, &bytes_read);
8532 line_ptr += bytes_read;
8533 }
8534 }
8535 }
8536 }
8537 if (lh->num_file_names < file || file == 0)
8538 dwarf2_debug_line_missing_file_complaint ();
8539 else
8540 {
8541 lh->file_names[file - 1].included_p = 1;
8542 if (!decode_for_pst_p)
8543 {
8544 addr = gdbarch_addr_bits_remove (gdbarch, address);
8545 record_line (current_subfile, 0, addr);
8546 }
8547 }
8548 }
8549
8550 if (decode_for_pst_p)
8551 {
8552 int file_index;
8553
8554 /* Now that we're done scanning the Line Header Program, we can
8555 create the psymtab of each included file. */
8556 for (file_index = 0; file_index < lh->num_file_names; file_index++)
8557 if (lh->file_names[file_index].included_p == 1)
8558 {
8559 const struct file_entry fe = lh->file_names [file_index];
8560 char *include_name = fe.name;
8561 char *dir_name = NULL;
8562 char *pst_filename = pst->filename;
8563
8564 if (fe.dir_index)
8565 dir_name = lh->include_dirs[fe.dir_index - 1];
8566
8567 if (!IS_ABSOLUTE_PATH (include_name) && dir_name != NULL)
8568 {
8569 include_name = concat (dir_name, SLASH_STRING,
8570 include_name, (char *)NULL);
8571 make_cleanup (xfree, include_name);
8572 }
8573
8574 if (!IS_ABSOLUTE_PATH (pst_filename) && pst->dirname != NULL)
8575 {
8576 pst_filename = concat (pst->dirname, SLASH_STRING,
8577 pst_filename, (char *)NULL);
8578 make_cleanup (xfree, pst_filename);
8579 }
8580
8581 if (strcmp (include_name, pst_filename) != 0)
8582 dwarf2_create_include_psymtab (include_name, pst, objfile);
8583 }
8584 }
8585 else
8586 {
8587 /* Make sure a symtab is created for every file, even files
8588 which contain only variables (i.e. no code with associated
8589 line numbers). */
8590
8591 int i;
8592 struct file_entry *fe;
8593
8594 for (i = 0; i < lh->num_file_names; i++)
8595 {
8596 char *dir = NULL;
8597
8598 fe = &lh->file_names[i];
8599 if (fe->dir_index)
8600 dir = lh->include_dirs[fe->dir_index - 1];
8601 dwarf2_start_subfile (fe->name, dir, comp_dir);
8602
8603 /* Skip the main file; we don't need it, and it must be
8604 allocated last, so that it will show up before the
8605 non-primary symtabs in the objfile's symtab list. */
8606 if (current_subfile == first_subfile)
8607 continue;
8608
8609 if (current_subfile->symtab == NULL)
8610 current_subfile->symtab = allocate_symtab (current_subfile->name,
8611 cu->objfile);
8612 fe->symtab = current_subfile->symtab;
8613 }
8614 }
8615 }
8616
8617 /* Start a subfile for DWARF. FILENAME is the name of the file and
8618 DIRNAME the name of the source directory which contains FILENAME
8619 or NULL if not known. COMP_DIR is the compilation directory for the
8620 linetable's compilation unit or NULL if not known.
8621 This routine tries to keep line numbers from identical absolute and
8622 relative file names in a common subfile.
8623
8624 Using the `list' example from the GDB testsuite, which resides in
8625 /srcdir and compiling it with Irix6.2 cc in /compdir using a filename
8626 of /srcdir/list0.c yields the following debugging information for list0.c:
8627
8628 DW_AT_name: /srcdir/list0.c
8629 DW_AT_comp_dir: /compdir
8630 files.files[0].name: list0.h
8631 files.files[0].dir: /srcdir
8632 files.files[1].name: list0.c
8633 files.files[1].dir: /srcdir
8634
8635 The line number information for list0.c has to end up in a single
8636 subfile, so that `break /srcdir/list0.c:1' works as expected.
8637 start_subfile will ensure that this happens provided that we pass the
8638 concatenation of files.files[1].dir and files.files[1].name as the
8639 subfile's name. */
8640
8641 static void
8642 dwarf2_start_subfile (char *filename, char *dirname, char *comp_dir)
8643 {
8644 char *fullname;
8645
8646 /* While reading the DIEs, we call start_symtab(DW_AT_name, DW_AT_comp_dir).
8647 `start_symtab' will always pass the contents of DW_AT_comp_dir as
8648 second argument to start_subfile. To be consistent, we do the
8649 same here. In order not to lose the line information directory,
8650 we concatenate it to the filename when it makes sense.
8651 Note that the Dwarf3 standard says (speaking of filenames in line
8652 information): ``The directory index is ignored for file names
8653 that represent full path names''. Thus ignoring dirname in the
8654 `else' branch below isn't an issue. */
8655
8656 if (!IS_ABSOLUTE_PATH (filename) && dirname != NULL)
8657 fullname = concat (dirname, SLASH_STRING, filename, (char *)NULL);
8658 else
8659 fullname = filename;
8660
8661 start_subfile (fullname, comp_dir);
8662
8663 if (fullname != filename)
8664 xfree (fullname);
8665 }
8666
8667 static void
8668 var_decode_location (struct attribute *attr, struct symbol *sym,
8669 struct dwarf2_cu *cu)
8670 {
8671 struct objfile *objfile = cu->objfile;
8672 struct comp_unit_head *cu_header = &cu->header;
8673
8674 /* NOTE drow/2003-01-30: There used to be a comment and some special
8675 code here to turn a symbol with DW_AT_external and a
8676 SYMBOL_VALUE_ADDRESS of 0 into a LOC_UNRESOLVED symbol. This was
8677 necessary for platforms (maybe Alpha, certainly PowerPC GNU/Linux
8678 with some versions of binutils) where shared libraries could have
8679 relocations against symbols in their debug information - the
8680 minimal symbol would have the right address, but the debug info
8681 would not. It's no longer necessary, because we will explicitly
8682 apply relocations when we read in the debug information now. */
8683
8684 /* A DW_AT_location attribute with no contents indicates that a
8685 variable has been optimized away. */
8686 if (attr_form_is_block (attr) && DW_BLOCK (attr)->size == 0)
8687 {
8688 SYMBOL_CLASS (sym) = LOC_OPTIMIZED_OUT;
8689 return;
8690 }
8691
8692 /* Handle one degenerate form of location expression specially, to
8693 preserve GDB's previous behavior when section offsets are
8694 specified. If this is just a DW_OP_addr then mark this symbol
8695 as LOC_STATIC. */
8696
8697 if (attr_form_is_block (attr)
8698 && DW_BLOCK (attr)->size == 1 + cu_header->addr_size
8699 && DW_BLOCK (attr)->data[0] == DW_OP_addr)
8700 {
8701 unsigned int dummy;
8702
8703 SYMBOL_VALUE_ADDRESS (sym) =
8704 read_address (objfile->obfd, DW_BLOCK (attr)->data + 1, cu, &dummy);
8705 SYMBOL_CLASS (sym) = LOC_STATIC;
8706 fixup_symbol_section (sym, objfile);
8707 SYMBOL_VALUE_ADDRESS (sym) += ANOFFSET (objfile->section_offsets,
8708 SYMBOL_SECTION (sym));
8709 return;
8710 }
8711
8712 /* NOTE drow/2002-01-30: It might be worthwhile to have a static
8713 expression evaluator, and use LOC_COMPUTED only when necessary
8714 (i.e. when the value of a register or memory location is
8715 referenced, or a thread-local block, etc.). Then again, it might
8716 not be worthwhile. I'm assuming that it isn't unless performance
8717 or memory numbers show me otherwise. */
8718
8719 dwarf2_symbol_mark_computed (attr, sym, cu);
8720 SYMBOL_CLASS (sym) = LOC_COMPUTED;
8721 }
8722
8723 /* Given a pointer to a DWARF information entry, figure out if we need
8724 to make a symbol table entry for it, and if so, create a new entry
8725 and return a pointer to it.
8726 If TYPE is NULL, determine symbol type from the die, otherwise
8727 used the passed type. */
8728
8729 static struct symbol *
8730 new_symbol (struct die_info *die, struct type *type, struct dwarf2_cu *cu)
8731 {
8732 struct objfile *objfile = cu->objfile;
8733 struct symbol *sym = NULL;
8734 char *name;
8735 struct attribute *attr = NULL;
8736 struct attribute *attr2 = NULL;
8737 CORE_ADDR baseaddr;
8738 int inlined_func = (die->tag == DW_TAG_inlined_subroutine);
8739
8740 baseaddr = ANOFFSET (objfile->section_offsets, SECT_OFF_TEXT (objfile));
8741
8742 name = dwarf2_name (die, cu);
8743 if (name)
8744 {
8745 const char *linkagename;
8746
8747 sym = (struct symbol *) obstack_alloc (&objfile->objfile_obstack,
8748 sizeof (struct symbol));
8749 OBJSTAT (objfile, n_syms++);
8750 memset (sym, 0, sizeof (struct symbol));
8751
8752 /* Cache this symbol's name and the name's demangled form (if any). */
8753 SYMBOL_LANGUAGE (sym) = cu->language;
8754 linkagename = dwarf2_physname (name, die, cu);
8755 SYMBOL_SET_NAMES (sym, linkagename, strlen (linkagename), 0, objfile);
8756
8757 /* Fortran does not have mangling standard and the mangling does differ
8758 between gfortran, iFort etc. */
8759 if (cu->language == language_fortran
8760 && sym->ginfo.language_specific.cplus_specific.demangled_name == NULL)
8761 sym->ginfo.language_specific.cplus_specific.demangled_name
8762 = (char *) dwarf2_full_name (name, die, cu);
8763
8764 /* Default assumptions.
8765 Use the passed type or decode it from the die. */
8766 SYMBOL_DOMAIN (sym) = VAR_DOMAIN;
8767 SYMBOL_CLASS (sym) = LOC_OPTIMIZED_OUT;
8768 if (type != NULL)
8769 SYMBOL_TYPE (sym) = type;
8770 else
8771 SYMBOL_TYPE (sym) = die_type (die, cu);
8772 attr = dwarf2_attr (die,
8773 inlined_func ? DW_AT_call_line : DW_AT_decl_line,
8774 cu);
8775 if (attr)
8776 {
8777 SYMBOL_LINE (sym) = DW_UNSND (attr);
8778 }
8779
8780 attr = dwarf2_attr (die,
8781 inlined_func ? DW_AT_call_file : DW_AT_decl_file,
8782 cu);
8783 if (attr)
8784 {
8785 int file_index = DW_UNSND (attr);
8786
8787 if (cu->line_header == NULL
8788 || file_index > cu->line_header->num_file_names)
8789 complaint (&symfile_complaints,
8790 _("file index out of range"));
8791 else if (file_index > 0)
8792 {
8793 struct file_entry *fe;
8794
8795 fe = &cu->line_header->file_names[file_index - 1];
8796 SYMBOL_SYMTAB (sym) = fe->symtab;
8797 }
8798 }
8799
8800 switch (die->tag)
8801 {
8802 case DW_TAG_label:
8803 attr = dwarf2_attr (die, DW_AT_low_pc, cu);
8804 if (attr)
8805 {
8806 SYMBOL_VALUE_ADDRESS (sym) = DW_ADDR (attr) + baseaddr;
8807 }
8808 SYMBOL_CLASS (sym) = LOC_LABEL;
8809 break;
8810 case DW_TAG_subprogram:
8811 /* SYMBOL_BLOCK_VALUE (sym) will be filled in later by
8812 finish_block. */
8813 SYMBOL_CLASS (sym) = LOC_BLOCK;
8814 attr2 = dwarf2_attr (die, DW_AT_external, cu);
8815 if ((attr2 && (DW_UNSND (attr2) != 0))
8816 || cu->language == language_ada)
8817 {
8818 /* Subprograms marked external are stored as a global symbol.
8819 Ada subprograms, whether marked external or not, are always
8820 stored as a global symbol, because we want to be able to
8821 access them globally. For instance, we want to be able
8822 to break on a nested subprogram without having to
8823 specify the context. */
8824 add_symbol_to_list (sym, &global_symbols);
8825 }
8826 else
8827 {
8828 add_symbol_to_list (sym, cu->list_in_scope);
8829 }
8830 break;
8831 case DW_TAG_inlined_subroutine:
8832 /* SYMBOL_BLOCK_VALUE (sym) will be filled in later by
8833 finish_block. */
8834 SYMBOL_CLASS (sym) = LOC_BLOCK;
8835 SYMBOL_INLINED (sym) = 1;
8836 /* Do not add the symbol to any lists. It will be found via
8837 BLOCK_FUNCTION from the blockvector. */
8838 break;
8839 case DW_TAG_variable:
8840 case DW_TAG_member:
8841 /* Compilation with minimal debug info may result in variables
8842 with missing type entries. Change the misleading `void' type
8843 to something sensible. */
8844 if (TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_VOID)
8845 SYMBOL_TYPE (sym)
8846 = objfile_type (objfile)->nodebug_data_symbol;
8847
8848 attr = dwarf2_attr (die, DW_AT_const_value, cu);
8849 /* In the case of DW_TAG_member, we should only be called for
8850 static const members. */
8851 if (die->tag == DW_TAG_member)
8852 {
8853 /* dwarf2_add_field uses die_is_declaration,
8854 so we do the same. */
8855 gdb_assert (die_is_declaration (die, cu));
8856 gdb_assert (attr);
8857 }
8858 if (attr)
8859 {
8860 dwarf2_const_value (attr, sym, cu);
8861 attr2 = dwarf2_attr (die, DW_AT_external, cu);
8862 if (attr2 && (DW_UNSND (attr2) != 0))
8863 add_symbol_to_list (sym, &global_symbols);
8864 else
8865 add_symbol_to_list (sym, cu->list_in_scope);
8866 break;
8867 }
8868 attr = dwarf2_attr (die, DW_AT_location, cu);
8869 if (attr)
8870 {
8871 var_decode_location (attr, sym, cu);
8872 attr2 = dwarf2_attr (die, DW_AT_external, cu);
8873 if (attr2 && (DW_UNSND (attr2) != 0))
8874 {
8875 struct pending **list_to_add;
8876
8877 /* Workaround gfortran PR debug/40040 - it uses
8878 DW_AT_location for variables in -fPIC libraries which may
8879 get overriden by other libraries/executable and get
8880 a different address. Resolve it by the minimal symbol
8881 which may come from inferior's executable using copy
8882 relocation. Make this workaround only for gfortran as for
8883 other compilers GDB cannot guess the minimal symbol
8884 Fortran mangling kind. */
8885 if (cu->language == language_fortran && die->parent
8886 && die->parent->tag == DW_TAG_module
8887 && cu->producer
8888 && strncmp (cu->producer, "GNU Fortran ", 12) == 0)
8889 SYMBOL_CLASS (sym) = LOC_UNRESOLVED;
8890
8891 /* A variable with DW_AT_external is never static,
8892 but it may be block-scoped. */
8893 list_to_add = (cu->list_in_scope == &file_symbols
8894 ? &global_symbols : cu->list_in_scope);
8895 add_symbol_to_list (sym, list_to_add);
8896 }
8897 else
8898 add_symbol_to_list (sym, cu->list_in_scope);
8899 }
8900 else
8901 {
8902 /* We do not know the address of this symbol.
8903 If it is an external symbol and we have type information
8904 for it, enter the symbol as a LOC_UNRESOLVED symbol.
8905 The address of the variable will then be determined from
8906 the minimal symbol table whenever the variable is
8907 referenced. */
8908 attr2 = dwarf2_attr (die, DW_AT_external, cu);
8909 if (attr2 && (DW_UNSND (attr2) != 0)
8910 && dwarf2_attr (die, DW_AT_type, cu) != NULL)
8911 {
8912 struct pending **list_to_add;
8913
8914 /* A variable with DW_AT_external is never static, but it
8915 may be block-scoped. */
8916 list_to_add = (cu->list_in_scope == &file_symbols
8917 ? &global_symbols : cu->list_in_scope);
8918
8919 SYMBOL_CLASS (sym) = LOC_UNRESOLVED;
8920 add_symbol_to_list (sym, list_to_add);
8921 }
8922 else if (!die_is_declaration (die, cu))
8923 {
8924 /* Use the default LOC_OPTIMIZED_OUT class. */
8925 gdb_assert (SYMBOL_CLASS (sym) == LOC_OPTIMIZED_OUT);
8926 add_symbol_to_list (sym, cu->list_in_scope);
8927 }
8928 }
8929 break;
8930 case DW_TAG_formal_parameter:
8931 /* If we are inside a function, mark this as an argument. If
8932 not, we might be looking at an argument to an inlined function
8933 when we do not have enough information to show inlined frames;
8934 pretend it's a local variable in that case so that the user can
8935 still see it. */
8936 if (context_stack_depth > 0
8937 && context_stack[context_stack_depth - 1].name != NULL)
8938 SYMBOL_IS_ARGUMENT (sym) = 1;
8939 attr = dwarf2_attr (die, DW_AT_location, cu);
8940 if (attr)
8941 {
8942 var_decode_location (attr, sym, cu);
8943 }
8944 attr = dwarf2_attr (die, DW_AT_const_value, cu);
8945 if (attr)
8946 {
8947 dwarf2_const_value (attr, sym, cu);
8948 }
8949 attr = dwarf2_attr (die, DW_AT_variable_parameter, cu);
8950 if (attr && DW_UNSND (attr))
8951 {
8952 struct type *ref_type;
8953
8954 ref_type = lookup_reference_type (SYMBOL_TYPE (sym));
8955 SYMBOL_TYPE (sym) = ref_type;
8956 }
8957
8958 add_symbol_to_list (sym, cu->list_in_scope);
8959 break;
8960 case DW_TAG_unspecified_parameters:
8961 /* From varargs functions; gdb doesn't seem to have any
8962 interest in this information, so just ignore it for now.
8963 (FIXME?) */
8964 break;
8965 case DW_TAG_class_type:
8966 case DW_TAG_interface_type:
8967 case DW_TAG_structure_type:
8968 case DW_TAG_union_type:
8969 case DW_TAG_set_type:
8970 case DW_TAG_enumeration_type:
8971 SYMBOL_CLASS (sym) = LOC_TYPEDEF;
8972 SYMBOL_DOMAIN (sym) = STRUCT_DOMAIN;
8973
8974 {
8975 /* NOTE: carlton/2003-11-10: C++ and Java class symbols shouldn't
8976 really ever be static objects: otherwise, if you try
8977 to, say, break of a class's method and you're in a file
8978 which doesn't mention that class, it won't work unless
8979 the check for all static symbols in lookup_symbol_aux
8980 saves you. See the OtherFileClass tests in
8981 gdb.c++/namespace.exp. */
8982
8983 struct pending **list_to_add;
8984
8985 list_to_add = (cu->list_in_scope == &file_symbols
8986 && (cu->language == language_cplus
8987 || cu->language == language_java)
8988 ? &global_symbols : cu->list_in_scope);
8989
8990 add_symbol_to_list (sym, list_to_add);
8991
8992 /* The semantics of C++ state that "struct foo { ... }" also
8993 defines a typedef for "foo". A Java class declaration also
8994 defines a typedef for the class. */
8995 if (cu->language == language_cplus
8996 || cu->language == language_java
8997 || cu->language == language_ada)
8998 {
8999 /* The symbol's name is already allocated along with
9000 this objfile, so we don't need to duplicate it for
9001 the type. */
9002 if (TYPE_NAME (SYMBOL_TYPE (sym)) == 0)
9003 TYPE_NAME (SYMBOL_TYPE (sym)) = SYMBOL_SEARCH_NAME (sym);
9004 }
9005 }
9006 break;
9007 case DW_TAG_typedef:
9008 SYMBOL_CLASS (sym) = LOC_TYPEDEF;
9009 SYMBOL_DOMAIN (sym) = VAR_DOMAIN;
9010 add_symbol_to_list (sym, cu->list_in_scope);
9011 break;
9012 case DW_TAG_base_type:
9013 case DW_TAG_subrange_type:
9014 case DW_TAG_const_type:
9015 case DW_TAG_volatile_type:
9016 SYMBOL_CLASS (sym) = LOC_TYPEDEF;
9017 SYMBOL_DOMAIN (sym) = VAR_DOMAIN;
9018 add_symbol_to_list (sym, cu->list_in_scope);
9019 break;
9020 case DW_TAG_enumerator:
9021 attr = dwarf2_attr (die, DW_AT_const_value, cu);
9022 if (attr)
9023 {
9024 dwarf2_const_value (attr, sym, cu);
9025 }
9026 {
9027 /* NOTE: carlton/2003-11-10: See comment above in the
9028 DW_TAG_class_type, etc. block. */
9029
9030 struct pending **list_to_add;
9031
9032 list_to_add = (cu->list_in_scope == &file_symbols
9033 && (cu->language == language_cplus
9034 || cu->language == language_java)
9035 ? &global_symbols : cu->list_in_scope);
9036
9037 add_symbol_to_list (sym, list_to_add);
9038 }
9039 break;
9040 case DW_TAG_namespace:
9041 SYMBOL_CLASS (sym) = LOC_TYPEDEF;
9042 add_symbol_to_list (sym, &global_symbols);
9043 break;
9044 default:
9045 /* Not a tag we recognize. Hopefully we aren't processing
9046 trash data, but since we must specifically ignore things
9047 we don't recognize, there is nothing else we should do at
9048 this point. */
9049 complaint (&symfile_complaints, _("unsupported tag: '%s'"),
9050 dwarf_tag_name (die->tag));
9051 break;
9052 }
9053
9054 /* For the benefit of old versions of GCC, check for anonymous
9055 namespaces based on the demangled name. */
9056 if (!processing_has_namespace_info
9057 && cu->language == language_cplus)
9058 cp_scan_for_anonymous_namespaces (sym);
9059 }
9060 return (sym);
9061 }
9062
9063 /* Copy constant value from an attribute to a symbol. */
9064
9065 static void
9066 dwarf2_const_value (struct attribute *attr, struct symbol *sym,
9067 struct dwarf2_cu *cu)
9068 {
9069 struct objfile *objfile = cu->objfile;
9070 struct comp_unit_head *cu_header = &cu->header;
9071 enum bfd_endian byte_order = bfd_big_endian (objfile->obfd) ?
9072 BFD_ENDIAN_BIG : BFD_ENDIAN_LITTLE;
9073 struct dwarf_block *blk;
9074
9075 switch (attr->form)
9076 {
9077 case DW_FORM_addr:
9078 if (TYPE_LENGTH (SYMBOL_TYPE (sym)) != cu_header->addr_size)
9079 dwarf2_const_value_length_mismatch_complaint (SYMBOL_PRINT_NAME (sym),
9080 cu_header->addr_size,
9081 TYPE_LENGTH (SYMBOL_TYPE
9082 (sym)));
9083 SYMBOL_VALUE_BYTES (sym) =
9084 obstack_alloc (&objfile->objfile_obstack, cu_header->addr_size);
9085 /* NOTE: cagney/2003-05-09: In-lined store_address call with
9086 it's body - store_unsigned_integer. */
9087 store_unsigned_integer (SYMBOL_VALUE_BYTES (sym), cu_header->addr_size,
9088 byte_order, DW_ADDR (attr));
9089 SYMBOL_CLASS (sym) = LOC_CONST_BYTES;
9090 break;
9091 case DW_FORM_string:
9092 case DW_FORM_strp:
9093 /* DW_STRING is already allocated on the obstack, point directly
9094 to it. */
9095 SYMBOL_VALUE_BYTES (sym) = (gdb_byte *) DW_STRING (attr);
9096 SYMBOL_CLASS (sym) = LOC_CONST_BYTES;
9097 break;
9098 case DW_FORM_block1:
9099 case DW_FORM_block2:
9100 case DW_FORM_block4:
9101 case DW_FORM_block:
9102 case DW_FORM_exprloc:
9103 blk = DW_BLOCK (attr);
9104 if (TYPE_LENGTH (SYMBOL_TYPE (sym)) != blk->size)
9105 dwarf2_const_value_length_mismatch_complaint (SYMBOL_PRINT_NAME (sym),
9106 blk->size,
9107 TYPE_LENGTH (SYMBOL_TYPE
9108 (sym)));
9109 SYMBOL_VALUE_BYTES (sym) =
9110 obstack_alloc (&objfile->objfile_obstack, blk->size);
9111 memcpy (SYMBOL_VALUE_BYTES (sym), blk->data, blk->size);
9112 SYMBOL_CLASS (sym) = LOC_CONST_BYTES;
9113 break;
9114
9115 /* The DW_AT_const_value attributes are supposed to carry the
9116 symbol's value "represented as it would be on the target
9117 architecture." By the time we get here, it's already been
9118 converted to host endianness, so we just need to sign- or
9119 zero-extend it as appropriate. */
9120 case DW_FORM_data1:
9121 dwarf2_const_value_data (attr, sym, 8);
9122 break;
9123 case DW_FORM_data2:
9124 dwarf2_const_value_data (attr, sym, 16);
9125 break;
9126 case DW_FORM_data4:
9127 dwarf2_const_value_data (attr, sym, 32);
9128 break;
9129 case DW_FORM_data8:
9130 dwarf2_const_value_data (attr, sym, 64);
9131 break;
9132
9133 case DW_FORM_sdata:
9134 SYMBOL_VALUE (sym) = DW_SND (attr);
9135 SYMBOL_CLASS (sym) = LOC_CONST;
9136 break;
9137
9138 case DW_FORM_udata:
9139 SYMBOL_VALUE (sym) = DW_UNSND (attr);
9140 SYMBOL_CLASS (sym) = LOC_CONST;
9141 break;
9142
9143 default:
9144 complaint (&symfile_complaints,
9145 _("unsupported const value attribute form: '%s'"),
9146 dwarf_form_name (attr->form));
9147 SYMBOL_VALUE (sym) = 0;
9148 SYMBOL_CLASS (sym) = LOC_CONST;
9149 break;
9150 }
9151 }
9152
9153
9154 /* Given an attr with a DW_FORM_dataN value in host byte order, sign-
9155 or zero-extend it as appropriate for the symbol's type. */
9156 static void
9157 dwarf2_const_value_data (struct attribute *attr,
9158 struct symbol *sym,
9159 int bits)
9160 {
9161 LONGEST l = DW_UNSND (attr);
9162
9163 if (bits < sizeof (l) * 8)
9164 {
9165 if (TYPE_UNSIGNED (SYMBOL_TYPE (sym)))
9166 l &= ((LONGEST) 1 << bits) - 1;
9167 else
9168 l = (l << (sizeof (l) * 8 - bits)) >> (sizeof (l) * 8 - bits);
9169 }
9170
9171 SYMBOL_VALUE (sym) = l;
9172 SYMBOL_CLASS (sym) = LOC_CONST;
9173 }
9174
9175
9176 /* Return the type of the die in question using its DW_AT_type attribute. */
9177
9178 static struct type *
9179 die_type (struct die_info *die, struct dwarf2_cu *cu)
9180 {
9181 struct attribute *type_attr;
9182 struct die_info *type_die;
9183
9184 type_attr = dwarf2_attr (die, DW_AT_type, cu);
9185 if (!type_attr)
9186 {
9187 /* A missing DW_AT_type represents a void type. */
9188 return objfile_type (cu->objfile)->builtin_void;
9189 }
9190
9191 type_die = follow_die_ref_or_sig (die, type_attr, &cu);
9192
9193 return tag_type_to_type (type_die, cu);
9194 }
9195
9196 /* True iff CU's producer generates GNAT Ada auxiliary information
9197 that allows to find parallel types through that information instead
9198 of having to do expensive parallel lookups by type name. */
9199
9200 static int
9201 need_gnat_info (struct dwarf2_cu *cu)
9202 {
9203 /* FIXME: brobecker/2010-10-12: As of now, only the AdaCore version
9204 of GNAT produces this auxiliary information, without any indication
9205 that it is produced. Part of enhancing the FSF version of GNAT
9206 to produce that information will be to put in place an indicator
9207 that we can use in order to determine whether the descriptive type
9208 info is available or not. One suggestion that has been made is
9209 to use a new attribute, attached to the CU die. For now, assume
9210 that the descriptive type info is not available. */
9211 return 0;
9212 }
9213
9214
9215 /* Return the auxiliary type of the die in question using its
9216 DW_AT_GNAT_descriptive_type attribute. Returns NULL if the
9217 attribute is not present. */
9218
9219 static struct type *
9220 die_descriptive_type (struct die_info *die, struct dwarf2_cu *cu)
9221 {
9222 struct attribute *type_attr;
9223 struct die_info *type_die;
9224
9225 type_attr = dwarf2_attr (die, DW_AT_GNAT_descriptive_type, cu);
9226 if (!type_attr)
9227 return NULL;
9228
9229 type_die = follow_die_ref (die, type_attr, &cu);
9230 return tag_type_to_type (type_die, cu);
9231 }
9232
9233 /* If DIE has a descriptive_type attribute, then set the TYPE's
9234 descriptive type accordingly. */
9235
9236 static void
9237 set_descriptive_type (struct type *type, struct die_info *die,
9238 struct dwarf2_cu *cu)
9239 {
9240 struct type *descriptive_type = die_descriptive_type (die, cu);
9241
9242 if (descriptive_type)
9243 {
9244 ALLOCATE_GNAT_AUX_TYPE (type);
9245 TYPE_DESCRIPTIVE_TYPE (type) = descriptive_type;
9246 }
9247 }
9248
9249 /* Return the containing type of the die in question using its
9250 DW_AT_containing_type attribute. */
9251
9252 static struct type *
9253 die_containing_type (struct die_info *die, struct dwarf2_cu *cu)
9254 {
9255 struct attribute *type_attr;
9256 struct die_info *type_die;
9257
9258 type_attr = dwarf2_attr (die, DW_AT_containing_type, cu);
9259 if (!type_attr)
9260 error (_("Dwarf Error: Problem turning containing type into gdb type "
9261 "[in module %s]"), cu->objfile->name);
9262
9263 type_die = follow_die_ref_or_sig (die, type_attr, &cu);
9264 return tag_type_to_type (type_die, cu);
9265 }
9266
9267 static struct type *
9268 tag_type_to_type (struct die_info *die, struct dwarf2_cu *cu)
9269 {
9270 struct type *this_type;
9271
9272 this_type = read_type_die (die, cu);
9273 if (!this_type)
9274 {
9275 char *message, *saved;
9276
9277 /* read_type_die already issued a complaint. */
9278 message = xstrprintf (_("<unknown type in %s, CU 0x%x, DIE 0x%x>"),
9279 cu->objfile->name,
9280 cu->header.offset,
9281 die->offset);
9282 saved = obstack_copy0 (&cu->objfile->objfile_obstack,
9283 message, strlen (message));
9284 xfree (message);
9285
9286 this_type = init_type (TYPE_CODE_ERROR, 0, 0, saved, cu->objfile);
9287 }
9288 return this_type;
9289 }
9290
9291 static struct type *
9292 read_type_die (struct die_info *die, struct dwarf2_cu *cu)
9293 {
9294 struct type *this_type;
9295
9296 this_type = get_die_type (die, cu);
9297 if (this_type)
9298 return this_type;
9299
9300 switch (die->tag)
9301 {
9302 case DW_TAG_class_type:
9303 case DW_TAG_interface_type:
9304 case DW_TAG_structure_type:
9305 case DW_TAG_union_type:
9306 this_type = read_structure_type (die, cu);
9307 break;
9308 case DW_TAG_enumeration_type:
9309 this_type = read_enumeration_type (die, cu);
9310 break;
9311 case DW_TAG_subprogram:
9312 case DW_TAG_subroutine_type:
9313 case DW_TAG_inlined_subroutine:
9314 this_type = read_subroutine_type (die, cu);
9315 break;
9316 case DW_TAG_array_type:
9317 this_type = read_array_type (die, cu);
9318 break;
9319 case DW_TAG_set_type:
9320 this_type = read_set_type (die, cu);
9321 break;
9322 case DW_TAG_pointer_type:
9323 this_type = read_tag_pointer_type (die, cu);
9324 break;
9325 case DW_TAG_ptr_to_member_type:
9326 this_type = read_tag_ptr_to_member_type (die, cu);
9327 break;
9328 case DW_TAG_reference_type:
9329 this_type = read_tag_reference_type (die, cu);
9330 break;
9331 case DW_TAG_const_type:
9332 this_type = read_tag_const_type (die, cu);
9333 break;
9334 case DW_TAG_volatile_type:
9335 this_type = read_tag_volatile_type (die, cu);
9336 break;
9337 case DW_TAG_string_type:
9338 this_type = read_tag_string_type (die, cu);
9339 break;
9340 case DW_TAG_typedef:
9341 this_type = read_typedef (die, cu);
9342 break;
9343 case DW_TAG_subrange_type:
9344 this_type = read_subrange_type (die, cu);
9345 break;
9346 case DW_TAG_base_type:
9347 this_type = read_base_type (die, cu);
9348 break;
9349 case DW_TAG_unspecified_type:
9350 this_type = read_unspecified_type (die, cu);
9351 break;
9352 case DW_TAG_namespace:
9353 this_type = read_namespace_type (die, cu);
9354 break;
9355 case DW_TAG_module:
9356 this_type = read_module_type (die, cu);
9357 break;
9358 default:
9359 complaint (&symfile_complaints, _("unexpected tag in read_type_die: '%s'"),
9360 dwarf_tag_name (die->tag));
9361 break;
9362 }
9363
9364 return this_type;
9365 }
9366
9367 /* Return the name of the namespace/class that DIE is defined within,
9368 or "" if we can't tell. The caller should not xfree the result.
9369
9370 For example, if we're within the method foo() in the following
9371 code:
9372
9373 namespace N {
9374 class C {
9375 void foo () {
9376 }
9377 };
9378 }
9379
9380 then determine_prefix on foo's die will return "N::C". */
9381
9382 static char *
9383 determine_prefix (struct die_info *die, struct dwarf2_cu *cu)
9384 {
9385 struct die_info *parent, *spec_die;
9386 struct dwarf2_cu *spec_cu;
9387 struct type *parent_type;
9388
9389 if (cu->language != language_cplus && cu->language != language_java
9390 && cu->language != language_fortran)
9391 return "";
9392
9393 /* We have to be careful in the presence of DW_AT_specification.
9394 For example, with GCC 3.4, given the code
9395
9396 namespace N {
9397 void foo() {
9398 // Definition of N::foo.
9399 }
9400 }
9401
9402 then we'll have a tree of DIEs like this:
9403
9404 1: DW_TAG_compile_unit
9405 2: DW_TAG_namespace // N
9406 3: DW_TAG_subprogram // declaration of N::foo
9407 4: DW_TAG_subprogram // definition of N::foo
9408 DW_AT_specification // refers to die #3
9409
9410 Thus, when processing die #4, we have to pretend that we're in
9411 the context of its DW_AT_specification, namely the contex of die
9412 #3. */
9413 spec_cu = cu;
9414 spec_die = die_specification (die, &spec_cu);
9415 if (spec_die == NULL)
9416 parent = die->parent;
9417 else
9418 {
9419 parent = spec_die->parent;
9420 cu = spec_cu;
9421 }
9422
9423 if (parent == NULL)
9424 return "";
9425 else
9426 switch (parent->tag)
9427 {
9428 case DW_TAG_namespace:
9429 parent_type = read_type_die (parent, cu);
9430 /* GCC 4.0 and 4.1 had a bug (PR c++/28460) where they generated bogus
9431 DW_TAG_namespace DIEs with a name of "::" for the global namespace.
9432 Work around this problem here. */
9433 if (cu->language == language_cplus
9434 && strcmp (TYPE_TAG_NAME (parent_type), "::") == 0)
9435 return "";
9436 /* We give a name to even anonymous namespaces. */
9437 return TYPE_TAG_NAME (parent_type);
9438 case DW_TAG_class_type:
9439 case DW_TAG_interface_type:
9440 case DW_TAG_structure_type:
9441 case DW_TAG_union_type:
9442 case DW_TAG_module:
9443 parent_type = read_type_die (parent, cu);
9444 if (TYPE_TAG_NAME (parent_type) != NULL)
9445 return TYPE_TAG_NAME (parent_type);
9446 else
9447 /* An anonymous structure is only allowed non-static data
9448 members; no typedefs, no member functions, et cetera.
9449 So it does not need a prefix. */
9450 return "";
9451 default:
9452 return determine_prefix (parent, cu);
9453 }
9454 }
9455
9456 /* Return a newly-allocated string formed by concatenating PREFIX and
9457 SUFFIX with appropriate separator. If PREFIX or SUFFIX is NULL or empty, then
9458 simply copy the SUFFIX or PREFIX, respectively. If OBS is non-null,
9459 perform an obconcat, otherwise allocate storage for the result. The CU argument
9460 is used to determine the language and hence, the appropriate separator. */
9461
9462 #define MAX_SEP_LEN 7 /* strlen ("__") + strlen ("_MOD_") */
9463
9464 static char *
9465 typename_concat (struct obstack *obs, const char *prefix, const char *suffix,
9466 int physname, struct dwarf2_cu *cu)
9467 {
9468 const char *lead = "";
9469 const char *sep;
9470
9471 if (suffix == NULL || suffix[0] == '\0' || prefix == NULL || prefix[0] == '\0')
9472 sep = "";
9473 else if (cu->language == language_java)
9474 sep = ".";
9475 else if (cu->language == language_fortran && physname)
9476 {
9477 /* This is gfortran specific mangling. Normally DW_AT_linkage_name or
9478 DW_AT_MIPS_linkage_name is preferred and used instead. */
9479
9480 lead = "__";
9481 sep = "_MOD_";
9482 }
9483 else
9484 sep = "::";
9485
9486 if (prefix == NULL)
9487 prefix = "";
9488 if (suffix == NULL)
9489 suffix = "";
9490
9491 if (obs == NULL)
9492 {
9493 char *retval = xmalloc (strlen (prefix) + MAX_SEP_LEN + strlen (suffix) + 1);
9494
9495 strcpy (retval, lead);
9496 strcat (retval, prefix);
9497 strcat (retval, sep);
9498 strcat (retval, suffix);
9499 return retval;
9500 }
9501 else
9502 {
9503 /* We have an obstack. */
9504 return obconcat (obs, lead, prefix, sep, suffix, (char *) NULL);
9505 }
9506 }
9507
9508 /* Return sibling of die, NULL if no sibling. */
9509
9510 static struct die_info *
9511 sibling_die (struct die_info *die)
9512 {
9513 return die->sibling;
9514 }
9515
9516 /* Get name of a die, return NULL if not found. */
9517
9518 static char *
9519 dwarf2_canonicalize_name (char *name, struct dwarf2_cu *cu,
9520 struct obstack *obstack)
9521 {
9522 if (name && cu->language == language_cplus)
9523 {
9524 char *canon_name = cp_canonicalize_string (name);
9525
9526 if (canon_name != NULL)
9527 {
9528 if (strcmp (canon_name, name) != 0)
9529 name = obsavestring (canon_name, strlen (canon_name),
9530 obstack);
9531 xfree (canon_name);
9532 }
9533 }
9534
9535 return name;
9536 }
9537
9538 /* Get name of a die, return NULL if not found. */
9539
9540 static char *
9541 dwarf2_name (struct die_info *die, struct dwarf2_cu *cu)
9542 {
9543 struct attribute *attr;
9544
9545 attr = dwarf2_attr (die, DW_AT_name, cu);
9546 if (!attr || !DW_STRING (attr))
9547 return NULL;
9548
9549 switch (die->tag)
9550 {
9551 case DW_TAG_compile_unit:
9552 /* Compilation units have a DW_AT_name that is a filename, not
9553 a source language identifier. */
9554 case DW_TAG_enumeration_type:
9555 case DW_TAG_enumerator:
9556 /* These tags always have simple identifiers already; no need
9557 to canonicalize them. */
9558 return DW_STRING (attr);
9559
9560 case DW_TAG_subprogram:
9561 /* Java constructors will all be named "<init>", so return
9562 the class name when we see this special case. */
9563 if (cu->language == language_java
9564 && DW_STRING (attr) != NULL
9565 && strcmp (DW_STRING (attr), "<init>") == 0)
9566 {
9567 struct dwarf2_cu *spec_cu = cu;
9568 struct die_info *spec_die;
9569
9570 /* GCJ will output '<init>' for Java constructor names.
9571 For this special case, return the name of the parent class. */
9572
9573 /* GCJ may output suprogram DIEs with AT_specification set.
9574 If so, use the name of the specified DIE. */
9575 spec_die = die_specification (die, &spec_cu);
9576 if (spec_die != NULL)
9577 return dwarf2_name (spec_die, spec_cu);
9578
9579 do
9580 {
9581 die = die->parent;
9582 if (die->tag == DW_TAG_class_type)
9583 return dwarf2_name (die, cu);
9584 }
9585 while (die->tag != DW_TAG_compile_unit);
9586 }
9587 break;
9588
9589 case DW_TAG_class_type:
9590 case DW_TAG_interface_type:
9591 case DW_TAG_structure_type:
9592 case DW_TAG_union_type:
9593 /* Some GCC versions emit spurious DW_AT_name attributes for unnamed
9594 structures or unions. These were of the form "._%d" in GCC 4.1,
9595 or simply "<anonymous struct>" or "<anonymous union>" in GCC 4.3
9596 and GCC 4.4. We work around this problem by ignoring these. */
9597 if (strncmp (DW_STRING (attr), "._", 2) == 0
9598 || strncmp (DW_STRING (attr), "<anonymous", 10) == 0)
9599 return NULL;
9600 break;
9601
9602 default:
9603 break;
9604 }
9605
9606 if (!DW_STRING_IS_CANONICAL (attr))
9607 {
9608 DW_STRING (attr)
9609 = dwarf2_canonicalize_name (DW_STRING (attr), cu,
9610 &cu->objfile->objfile_obstack);
9611 DW_STRING_IS_CANONICAL (attr) = 1;
9612 }
9613 return DW_STRING (attr);
9614 }
9615
9616 /* Return the die that this die in an extension of, or NULL if there
9617 is none. *EXT_CU is the CU containing DIE on input, and the CU
9618 containing the return value on output. */
9619
9620 static struct die_info *
9621 dwarf2_extension (struct die_info *die, struct dwarf2_cu **ext_cu)
9622 {
9623 struct attribute *attr;
9624
9625 attr = dwarf2_attr (die, DW_AT_extension, *ext_cu);
9626 if (attr == NULL)
9627 return NULL;
9628
9629 return follow_die_ref (die, attr, ext_cu);
9630 }
9631
9632 /* Convert a DIE tag into its string name. */
9633
9634 static char *
9635 dwarf_tag_name (unsigned tag)
9636 {
9637 switch (tag)
9638 {
9639 case DW_TAG_padding:
9640 return "DW_TAG_padding";
9641 case DW_TAG_array_type:
9642 return "DW_TAG_array_type";
9643 case DW_TAG_class_type:
9644 return "DW_TAG_class_type";
9645 case DW_TAG_entry_point:
9646 return "DW_TAG_entry_point";
9647 case DW_TAG_enumeration_type:
9648 return "DW_TAG_enumeration_type";
9649 case DW_TAG_formal_parameter:
9650 return "DW_TAG_formal_parameter";
9651 case DW_TAG_imported_declaration:
9652 return "DW_TAG_imported_declaration";
9653 case DW_TAG_label:
9654 return "DW_TAG_label";
9655 case DW_TAG_lexical_block:
9656 return "DW_TAG_lexical_block";
9657 case DW_TAG_member:
9658 return "DW_TAG_member";
9659 case DW_TAG_pointer_type:
9660 return "DW_TAG_pointer_type";
9661 case DW_TAG_reference_type:
9662 return "DW_TAG_reference_type";
9663 case DW_TAG_compile_unit:
9664 return "DW_TAG_compile_unit";
9665 case DW_TAG_string_type:
9666 return "DW_TAG_string_type";
9667 case DW_TAG_structure_type:
9668 return "DW_TAG_structure_type";
9669 case DW_TAG_subroutine_type:
9670 return "DW_TAG_subroutine_type";
9671 case DW_TAG_typedef:
9672 return "DW_TAG_typedef";
9673 case DW_TAG_union_type:
9674 return "DW_TAG_union_type";
9675 case DW_TAG_unspecified_parameters:
9676 return "DW_TAG_unspecified_parameters";
9677 case DW_TAG_variant:
9678 return "DW_TAG_variant";
9679 case DW_TAG_common_block:
9680 return "DW_TAG_common_block";
9681 case DW_TAG_common_inclusion:
9682 return "DW_TAG_common_inclusion";
9683 case DW_TAG_inheritance:
9684 return "DW_TAG_inheritance";
9685 case DW_TAG_inlined_subroutine:
9686 return "DW_TAG_inlined_subroutine";
9687 case DW_TAG_module:
9688 return "DW_TAG_module";
9689 case DW_TAG_ptr_to_member_type:
9690 return "DW_TAG_ptr_to_member_type";
9691 case DW_TAG_set_type:
9692 return "DW_TAG_set_type";
9693 case DW_TAG_subrange_type:
9694 return "DW_TAG_subrange_type";
9695 case DW_TAG_with_stmt:
9696 return "DW_TAG_with_stmt";
9697 case DW_TAG_access_declaration:
9698 return "DW_TAG_access_declaration";
9699 case DW_TAG_base_type:
9700 return "DW_TAG_base_type";
9701 case DW_TAG_catch_block:
9702 return "DW_TAG_catch_block";
9703 case DW_TAG_const_type:
9704 return "DW_TAG_const_type";
9705 case DW_TAG_constant:
9706 return "DW_TAG_constant";
9707 case DW_TAG_enumerator:
9708 return "DW_TAG_enumerator";
9709 case DW_TAG_file_type:
9710 return "DW_TAG_file_type";
9711 case DW_TAG_friend:
9712 return "DW_TAG_friend";
9713 case DW_TAG_namelist:
9714 return "DW_TAG_namelist";
9715 case DW_TAG_namelist_item:
9716 return "DW_TAG_namelist_item";
9717 case DW_TAG_packed_type:
9718 return "DW_TAG_packed_type";
9719 case DW_TAG_subprogram:
9720 return "DW_TAG_subprogram";
9721 case DW_TAG_template_type_param:
9722 return "DW_TAG_template_type_param";
9723 case DW_TAG_template_value_param:
9724 return "DW_TAG_template_value_param";
9725 case DW_TAG_thrown_type:
9726 return "DW_TAG_thrown_type";
9727 case DW_TAG_try_block:
9728 return "DW_TAG_try_block";
9729 case DW_TAG_variant_part:
9730 return "DW_TAG_variant_part";
9731 case DW_TAG_variable:
9732 return "DW_TAG_variable";
9733 case DW_TAG_volatile_type:
9734 return "DW_TAG_volatile_type";
9735 case DW_TAG_dwarf_procedure:
9736 return "DW_TAG_dwarf_procedure";
9737 case DW_TAG_restrict_type:
9738 return "DW_TAG_restrict_type";
9739 case DW_TAG_interface_type:
9740 return "DW_TAG_interface_type";
9741 case DW_TAG_namespace:
9742 return "DW_TAG_namespace";
9743 case DW_TAG_imported_module:
9744 return "DW_TAG_imported_module";
9745 case DW_TAG_unspecified_type:
9746 return "DW_TAG_unspecified_type";
9747 case DW_TAG_partial_unit:
9748 return "DW_TAG_partial_unit";
9749 case DW_TAG_imported_unit:
9750 return "DW_TAG_imported_unit";
9751 case DW_TAG_condition:
9752 return "DW_TAG_condition";
9753 case DW_TAG_shared_type:
9754 return "DW_TAG_shared_type";
9755 case DW_TAG_type_unit:
9756 return "DW_TAG_type_unit";
9757 case DW_TAG_MIPS_loop:
9758 return "DW_TAG_MIPS_loop";
9759 case DW_TAG_HP_array_descriptor:
9760 return "DW_TAG_HP_array_descriptor";
9761 case DW_TAG_format_label:
9762 return "DW_TAG_format_label";
9763 case DW_TAG_function_template:
9764 return "DW_TAG_function_template";
9765 case DW_TAG_class_template:
9766 return "DW_TAG_class_template";
9767 case DW_TAG_GNU_BINCL:
9768 return "DW_TAG_GNU_BINCL";
9769 case DW_TAG_GNU_EINCL:
9770 return "DW_TAG_GNU_EINCL";
9771 case DW_TAG_upc_shared_type:
9772 return "DW_TAG_upc_shared_type";
9773 case DW_TAG_upc_strict_type:
9774 return "DW_TAG_upc_strict_type";
9775 case DW_TAG_upc_relaxed_type:
9776 return "DW_TAG_upc_relaxed_type";
9777 case DW_TAG_PGI_kanji_type:
9778 return "DW_TAG_PGI_kanji_type";
9779 case DW_TAG_PGI_interface_block:
9780 return "DW_TAG_PGI_interface_block";
9781 default:
9782 return "DW_TAG_<unknown>";
9783 }
9784 }
9785
9786 /* Convert a DWARF attribute code into its string name. */
9787
9788 static char *
9789 dwarf_attr_name (unsigned attr)
9790 {
9791 switch (attr)
9792 {
9793 case DW_AT_sibling:
9794 return "DW_AT_sibling";
9795 case DW_AT_location:
9796 return "DW_AT_location";
9797 case DW_AT_name:
9798 return "DW_AT_name";
9799 case DW_AT_ordering:
9800 return "DW_AT_ordering";
9801 case DW_AT_subscr_data:
9802 return "DW_AT_subscr_data";
9803 case DW_AT_byte_size:
9804 return "DW_AT_byte_size";
9805 case DW_AT_bit_offset:
9806 return "DW_AT_bit_offset";
9807 case DW_AT_bit_size:
9808 return "DW_AT_bit_size";
9809 case DW_AT_element_list:
9810 return "DW_AT_element_list";
9811 case DW_AT_stmt_list:
9812 return "DW_AT_stmt_list";
9813 case DW_AT_low_pc:
9814 return "DW_AT_low_pc";
9815 case DW_AT_high_pc:
9816 return "DW_AT_high_pc";
9817 case DW_AT_language:
9818 return "DW_AT_language";
9819 case DW_AT_member:
9820 return "DW_AT_member";
9821 case DW_AT_discr:
9822 return "DW_AT_discr";
9823 case DW_AT_discr_value:
9824 return "DW_AT_discr_value";
9825 case DW_AT_visibility:
9826 return "DW_AT_visibility";
9827 case DW_AT_import:
9828 return "DW_AT_import";
9829 case DW_AT_string_length:
9830 return "DW_AT_string_length";
9831 case DW_AT_common_reference:
9832 return "DW_AT_common_reference";
9833 case DW_AT_comp_dir:
9834 return "DW_AT_comp_dir";
9835 case DW_AT_const_value:
9836 return "DW_AT_const_value";
9837 case DW_AT_containing_type:
9838 return "DW_AT_containing_type";
9839 case DW_AT_default_value:
9840 return "DW_AT_default_value";
9841 case DW_AT_inline:
9842 return "DW_AT_inline";
9843 case DW_AT_is_optional:
9844 return "DW_AT_is_optional";
9845 case DW_AT_lower_bound:
9846 return "DW_AT_lower_bound";
9847 case DW_AT_producer:
9848 return "DW_AT_producer";
9849 case DW_AT_prototyped:
9850 return "DW_AT_prototyped";
9851 case DW_AT_return_addr:
9852 return "DW_AT_return_addr";
9853 case DW_AT_start_scope:
9854 return "DW_AT_start_scope";
9855 case DW_AT_bit_stride:
9856 return "DW_AT_bit_stride";
9857 case DW_AT_upper_bound:
9858 return "DW_AT_upper_bound";
9859 case DW_AT_abstract_origin:
9860 return "DW_AT_abstract_origin";
9861 case DW_AT_accessibility:
9862 return "DW_AT_accessibility";
9863 case DW_AT_address_class:
9864 return "DW_AT_address_class";
9865 case DW_AT_artificial:
9866 return "DW_AT_artificial";
9867 case DW_AT_base_types:
9868 return "DW_AT_base_types";
9869 case DW_AT_calling_convention:
9870 return "DW_AT_calling_convention";
9871 case DW_AT_count:
9872 return "DW_AT_count";
9873 case DW_AT_data_member_location:
9874 return "DW_AT_data_member_location";
9875 case DW_AT_decl_column:
9876 return "DW_AT_decl_column";
9877 case DW_AT_decl_file:
9878 return "DW_AT_decl_file";
9879 case DW_AT_decl_line:
9880 return "DW_AT_decl_line";
9881 case DW_AT_declaration:
9882 return "DW_AT_declaration";
9883 case DW_AT_discr_list:
9884 return "DW_AT_discr_list";
9885 case DW_AT_encoding:
9886 return "DW_AT_encoding";
9887 case DW_AT_external:
9888 return "DW_AT_external";
9889 case DW_AT_frame_base:
9890 return "DW_AT_frame_base";
9891 case DW_AT_friend:
9892 return "DW_AT_friend";
9893 case DW_AT_identifier_case:
9894 return "DW_AT_identifier_case";
9895 case DW_AT_macro_info:
9896 return "DW_AT_macro_info";
9897 case DW_AT_namelist_items:
9898 return "DW_AT_namelist_items";
9899 case DW_AT_priority:
9900 return "DW_AT_priority";
9901 case DW_AT_segment:
9902 return "DW_AT_segment";
9903 case DW_AT_specification:
9904 return "DW_AT_specification";
9905 case DW_AT_static_link:
9906 return "DW_AT_static_link";
9907 case DW_AT_type:
9908 return "DW_AT_type";
9909 case DW_AT_use_location:
9910 return "DW_AT_use_location";
9911 case DW_AT_variable_parameter:
9912 return "DW_AT_variable_parameter";
9913 case DW_AT_virtuality:
9914 return "DW_AT_virtuality";
9915 case DW_AT_vtable_elem_location:
9916 return "DW_AT_vtable_elem_location";
9917 /* DWARF 3 values. */
9918 case DW_AT_allocated:
9919 return "DW_AT_allocated";
9920 case DW_AT_associated:
9921 return "DW_AT_associated";
9922 case DW_AT_data_location:
9923 return "DW_AT_data_location";
9924 case DW_AT_byte_stride:
9925 return "DW_AT_byte_stride";
9926 case DW_AT_entry_pc:
9927 return "DW_AT_entry_pc";
9928 case DW_AT_use_UTF8:
9929 return "DW_AT_use_UTF8";
9930 case DW_AT_extension:
9931 return "DW_AT_extension";
9932 case DW_AT_ranges:
9933 return "DW_AT_ranges";
9934 case DW_AT_trampoline:
9935 return "DW_AT_trampoline";
9936 case DW_AT_call_column:
9937 return "DW_AT_call_column";
9938 case DW_AT_call_file:
9939 return "DW_AT_call_file";
9940 case DW_AT_call_line:
9941 return "DW_AT_call_line";
9942 case DW_AT_description:
9943 return "DW_AT_description";
9944 case DW_AT_binary_scale:
9945 return "DW_AT_binary_scale";
9946 case DW_AT_decimal_scale:
9947 return "DW_AT_decimal_scale";
9948 case DW_AT_small:
9949 return "DW_AT_small";
9950 case DW_AT_decimal_sign:
9951 return "DW_AT_decimal_sign";
9952 case DW_AT_digit_count:
9953 return "DW_AT_digit_count";
9954 case DW_AT_picture_string:
9955 return "DW_AT_picture_string";
9956 case DW_AT_mutable:
9957 return "DW_AT_mutable";
9958 case DW_AT_threads_scaled:
9959 return "DW_AT_threads_scaled";
9960 case DW_AT_explicit:
9961 return "DW_AT_explicit";
9962 case DW_AT_object_pointer:
9963 return "DW_AT_object_pointer";
9964 case DW_AT_endianity:
9965 return "DW_AT_endianity";
9966 case DW_AT_elemental:
9967 return "DW_AT_elemental";
9968 case DW_AT_pure:
9969 return "DW_AT_pure";
9970 case DW_AT_recursive:
9971 return "DW_AT_recursive";
9972 /* DWARF 4 values. */
9973 case DW_AT_signature:
9974 return "DW_AT_signature";
9975 case DW_AT_linkage_name:
9976 return "DW_AT_linkage_name";
9977 /* SGI/MIPS extensions. */
9978 #ifdef MIPS /* collides with DW_AT_HP_block_index */
9979 case DW_AT_MIPS_fde:
9980 return "DW_AT_MIPS_fde";
9981 #endif
9982 case DW_AT_MIPS_loop_begin:
9983 return "DW_AT_MIPS_loop_begin";
9984 case DW_AT_MIPS_tail_loop_begin:
9985 return "DW_AT_MIPS_tail_loop_begin";
9986 case DW_AT_MIPS_epilog_begin:
9987 return "DW_AT_MIPS_epilog_begin";
9988 case DW_AT_MIPS_loop_unroll_factor:
9989 return "DW_AT_MIPS_loop_unroll_factor";
9990 case DW_AT_MIPS_software_pipeline_depth:
9991 return "DW_AT_MIPS_software_pipeline_depth";
9992 case DW_AT_MIPS_linkage_name:
9993 return "DW_AT_MIPS_linkage_name";
9994 case DW_AT_MIPS_stride:
9995 return "DW_AT_MIPS_stride";
9996 case DW_AT_MIPS_abstract_name:
9997 return "DW_AT_MIPS_abstract_name";
9998 case DW_AT_MIPS_clone_origin:
9999 return "DW_AT_MIPS_clone_origin";
10000 case DW_AT_MIPS_has_inlines:
10001 return "DW_AT_MIPS_has_inlines";
10002 /* HP extensions. */
10003 #ifndef MIPS /* collides with DW_AT_MIPS_fde */
10004 case DW_AT_HP_block_index:
10005 return "DW_AT_HP_block_index";
10006 #endif
10007 case DW_AT_HP_unmodifiable:
10008 return "DW_AT_HP_unmodifiable";
10009 case DW_AT_HP_actuals_stmt_list:
10010 return "DW_AT_HP_actuals_stmt_list";
10011 case DW_AT_HP_proc_per_section:
10012 return "DW_AT_HP_proc_per_section";
10013 case DW_AT_HP_raw_data_ptr:
10014 return "DW_AT_HP_raw_data_ptr";
10015 case DW_AT_HP_pass_by_reference:
10016 return "DW_AT_HP_pass_by_reference";
10017 case DW_AT_HP_opt_level:
10018 return "DW_AT_HP_opt_level";
10019 case DW_AT_HP_prof_version_id:
10020 return "DW_AT_HP_prof_version_id";
10021 case DW_AT_HP_opt_flags:
10022 return "DW_AT_HP_opt_flags";
10023 case DW_AT_HP_cold_region_low_pc:
10024 return "DW_AT_HP_cold_region_low_pc";
10025 case DW_AT_HP_cold_region_high_pc:
10026 return "DW_AT_HP_cold_region_high_pc";
10027 case DW_AT_HP_all_variables_modifiable:
10028 return "DW_AT_HP_all_variables_modifiable";
10029 case DW_AT_HP_linkage_name:
10030 return "DW_AT_HP_linkage_name";
10031 case DW_AT_HP_prof_flags:
10032 return "DW_AT_HP_prof_flags";
10033 /* GNU extensions. */
10034 case DW_AT_sf_names:
10035 return "DW_AT_sf_names";
10036 case DW_AT_src_info:
10037 return "DW_AT_src_info";
10038 case DW_AT_mac_info:
10039 return "DW_AT_mac_info";
10040 case DW_AT_src_coords:
10041 return "DW_AT_src_coords";
10042 case DW_AT_body_begin:
10043 return "DW_AT_body_begin";
10044 case DW_AT_body_end:
10045 return "DW_AT_body_end";
10046 case DW_AT_GNU_vector:
10047 return "DW_AT_GNU_vector";
10048 /* VMS extensions. */
10049 case DW_AT_VMS_rtnbeg_pd_address:
10050 return "DW_AT_VMS_rtnbeg_pd_address";
10051 /* UPC extension. */
10052 case DW_AT_upc_threads_scaled:
10053 return "DW_AT_upc_threads_scaled";
10054 /* PGI (STMicroelectronics) extensions. */
10055 case DW_AT_PGI_lbase:
10056 return "DW_AT_PGI_lbase";
10057 case DW_AT_PGI_soffset:
10058 return "DW_AT_PGI_soffset";
10059 case DW_AT_PGI_lstride:
10060 return "DW_AT_PGI_lstride";
10061 default:
10062 return "DW_AT_<unknown>";
10063 }
10064 }
10065
10066 /* Convert a DWARF value form code into its string name. */
10067
10068 static char *
10069 dwarf_form_name (unsigned form)
10070 {
10071 switch (form)
10072 {
10073 case DW_FORM_addr:
10074 return "DW_FORM_addr";
10075 case DW_FORM_block2:
10076 return "DW_FORM_block2";
10077 case DW_FORM_block4:
10078 return "DW_FORM_block4";
10079 case DW_FORM_data2:
10080 return "DW_FORM_data2";
10081 case DW_FORM_data4:
10082 return "DW_FORM_data4";
10083 case DW_FORM_data8:
10084 return "DW_FORM_data8";
10085 case DW_FORM_string:
10086 return "DW_FORM_string";
10087 case DW_FORM_block:
10088 return "DW_FORM_block";
10089 case DW_FORM_block1:
10090 return "DW_FORM_block1";
10091 case DW_FORM_data1:
10092 return "DW_FORM_data1";
10093 case DW_FORM_flag:
10094 return "DW_FORM_flag";
10095 case DW_FORM_sdata:
10096 return "DW_FORM_sdata";
10097 case DW_FORM_strp:
10098 return "DW_FORM_strp";
10099 case DW_FORM_udata:
10100 return "DW_FORM_udata";
10101 case DW_FORM_ref_addr:
10102 return "DW_FORM_ref_addr";
10103 case DW_FORM_ref1:
10104 return "DW_FORM_ref1";
10105 case DW_FORM_ref2:
10106 return "DW_FORM_ref2";
10107 case DW_FORM_ref4:
10108 return "DW_FORM_ref4";
10109 case DW_FORM_ref8:
10110 return "DW_FORM_ref8";
10111 case DW_FORM_ref_udata:
10112 return "DW_FORM_ref_udata";
10113 case DW_FORM_indirect:
10114 return "DW_FORM_indirect";
10115 case DW_FORM_sec_offset:
10116 return "DW_FORM_sec_offset";
10117 case DW_FORM_exprloc:
10118 return "DW_FORM_exprloc";
10119 case DW_FORM_flag_present:
10120 return "DW_FORM_flag_present";
10121 case DW_FORM_sig8:
10122 return "DW_FORM_sig8";
10123 default:
10124 return "DW_FORM_<unknown>";
10125 }
10126 }
10127
10128 /* Convert a DWARF stack opcode into its string name. */
10129
10130 const char *
10131 dwarf_stack_op_name (unsigned op, int def)
10132 {
10133 switch (op)
10134 {
10135 case DW_OP_addr:
10136 return "DW_OP_addr";
10137 case DW_OP_deref:
10138 return "DW_OP_deref";
10139 case DW_OP_const1u:
10140 return "DW_OP_const1u";
10141 case DW_OP_const1s:
10142 return "DW_OP_const1s";
10143 case DW_OP_const2u:
10144 return "DW_OP_const2u";
10145 case DW_OP_const2s:
10146 return "DW_OP_const2s";
10147 case DW_OP_const4u:
10148 return "DW_OP_const4u";
10149 case DW_OP_const4s:
10150 return "DW_OP_const4s";
10151 case DW_OP_const8u:
10152 return "DW_OP_const8u";
10153 case DW_OP_const8s:
10154 return "DW_OP_const8s";
10155 case DW_OP_constu:
10156 return "DW_OP_constu";
10157 case DW_OP_consts:
10158 return "DW_OP_consts";
10159 case DW_OP_dup:
10160 return "DW_OP_dup";
10161 case DW_OP_drop:
10162 return "DW_OP_drop";
10163 case DW_OP_over:
10164 return "DW_OP_over";
10165 case DW_OP_pick:
10166 return "DW_OP_pick";
10167 case DW_OP_swap:
10168 return "DW_OP_swap";
10169 case DW_OP_rot:
10170 return "DW_OP_rot";
10171 case DW_OP_xderef:
10172 return "DW_OP_xderef";
10173 case DW_OP_abs:
10174 return "DW_OP_abs";
10175 case DW_OP_and:
10176 return "DW_OP_and";
10177 case DW_OP_div:
10178 return "DW_OP_div";
10179 case DW_OP_minus:
10180 return "DW_OP_minus";
10181 case DW_OP_mod:
10182 return "DW_OP_mod";
10183 case DW_OP_mul:
10184 return "DW_OP_mul";
10185 case DW_OP_neg:
10186 return "DW_OP_neg";
10187 case DW_OP_not:
10188 return "DW_OP_not";
10189 case DW_OP_or:
10190 return "DW_OP_or";
10191 case DW_OP_plus:
10192 return "DW_OP_plus";
10193 case DW_OP_plus_uconst:
10194 return "DW_OP_plus_uconst";
10195 case DW_OP_shl:
10196 return "DW_OP_shl";
10197 case DW_OP_shr:
10198 return "DW_OP_shr";
10199 case DW_OP_shra:
10200 return "DW_OP_shra";
10201 case DW_OP_xor:
10202 return "DW_OP_xor";
10203 case DW_OP_bra:
10204 return "DW_OP_bra";
10205 case DW_OP_eq:
10206 return "DW_OP_eq";
10207 case DW_OP_ge:
10208 return "DW_OP_ge";
10209 case DW_OP_gt:
10210 return "DW_OP_gt";
10211 case DW_OP_le:
10212 return "DW_OP_le";
10213 case DW_OP_lt:
10214 return "DW_OP_lt";
10215 case DW_OP_ne:
10216 return "DW_OP_ne";
10217 case DW_OP_skip:
10218 return "DW_OP_skip";
10219 case DW_OP_lit0:
10220 return "DW_OP_lit0";
10221 case DW_OP_lit1:
10222 return "DW_OP_lit1";
10223 case DW_OP_lit2:
10224 return "DW_OP_lit2";
10225 case DW_OP_lit3:
10226 return "DW_OP_lit3";
10227 case DW_OP_lit4:
10228 return "DW_OP_lit4";
10229 case DW_OP_lit5:
10230 return "DW_OP_lit5";
10231 case DW_OP_lit6:
10232 return "DW_OP_lit6";
10233 case DW_OP_lit7:
10234 return "DW_OP_lit7";
10235 case DW_OP_lit8:
10236 return "DW_OP_lit8";
10237 case DW_OP_lit9:
10238 return "DW_OP_lit9";
10239 case DW_OP_lit10:
10240 return "DW_OP_lit10";
10241 case DW_OP_lit11:
10242 return "DW_OP_lit11";
10243 case DW_OP_lit12:
10244 return "DW_OP_lit12";
10245 case DW_OP_lit13:
10246 return "DW_OP_lit13";
10247 case DW_OP_lit14:
10248 return "DW_OP_lit14";
10249 case DW_OP_lit15:
10250 return "DW_OP_lit15";
10251 case DW_OP_lit16:
10252 return "DW_OP_lit16";
10253 case DW_OP_lit17:
10254 return "DW_OP_lit17";
10255 case DW_OP_lit18:
10256 return "DW_OP_lit18";
10257 case DW_OP_lit19:
10258 return "DW_OP_lit19";
10259 case DW_OP_lit20:
10260 return "DW_OP_lit20";
10261 case DW_OP_lit21:
10262 return "DW_OP_lit21";
10263 case DW_OP_lit22:
10264 return "DW_OP_lit22";
10265 case DW_OP_lit23:
10266 return "DW_OP_lit23";
10267 case DW_OP_lit24:
10268 return "DW_OP_lit24";
10269 case DW_OP_lit25:
10270 return "DW_OP_lit25";
10271 case DW_OP_lit26:
10272 return "DW_OP_lit26";
10273 case DW_OP_lit27:
10274 return "DW_OP_lit27";
10275 case DW_OP_lit28:
10276 return "DW_OP_lit28";
10277 case DW_OP_lit29:
10278 return "DW_OP_lit29";
10279 case DW_OP_lit30:
10280 return "DW_OP_lit30";
10281 case DW_OP_lit31:
10282 return "DW_OP_lit31";
10283 case DW_OP_reg0:
10284 return "DW_OP_reg0";
10285 case DW_OP_reg1:
10286 return "DW_OP_reg1";
10287 case DW_OP_reg2:
10288 return "DW_OP_reg2";
10289 case DW_OP_reg3:
10290 return "DW_OP_reg3";
10291 case DW_OP_reg4:
10292 return "DW_OP_reg4";
10293 case DW_OP_reg5:
10294 return "DW_OP_reg5";
10295 case DW_OP_reg6:
10296 return "DW_OP_reg6";
10297 case DW_OP_reg7:
10298 return "DW_OP_reg7";
10299 case DW_OP_reg8:
10300 return "DW_OP_reg8";
10301 case DW_OP_reg9:
10302 return "DW_OP_reg9";
10303 case DW_OP_reg10:
10304 return "DW_OP_reg10";
10305 case DW_OP_reg11:
10306 return "DW_OP_reg11";
10307 case DW_OP_reg12:
10308 return "DW_OP_reg12";
10309 case DW_OP_reg13:
10310 return "DW_OP_reg13";
10311 case DW_OP_reg14:
10312 return "DW_OP_reg14";
10313 case DW_OP_reg15:
10314 return "DW_OP_reg15";
10315 case DW_OP_reg16:
10316 return "DW_OP_reg16";
10317 case DW_OP_reg17:
10318 return "DW_OP_reg17";
10319 case DW_OP_reg18:
10320 return "DW_OP_reg18";
10321 case DW_OP_reg19:
10322 return "DW_OP_reg19";
10323 case DW_OP_reg20:
10324 return "DW_OP_reg20";
10325 case DW_OP_reg21:
10326 return "DW_OP_reg21";
10327 case DW_OP_reg22:
10328 return "DW_OP_reg22";
10329 case DW_OP_reg23:
10330 return "DW_OP_reg23";
10331 case DW_OP_reg24:
10332 return "DW_OP_reg24";
10333 case DW_OP_reg25:
10334 return "DW_OP_reg25";
10335 case DW_OP_reg26:
10336 return "DW_OP_reg26";
10337 case DW_OP_reg27:
10338 return "DW_OP_reg27";
10339 case DW_OP_reg28:
10340 return "DW_OP_reg28";
10341 case DW_OP_reg29:
10342 return "DW_OP_reg29";
10343 case DW_OP_reg30:
10344 return "DW_OP_reg30";
10345 case DW_OP_reg31:
10346 return "DW_OP_reg31";
10347 case DW_OP_breg0:
10348 return "DW_OP_breg0";
10349 case DW_OP_breg1:
10350 return "DW_OP_breg1";
10351 case DW_OP_breg2:
10352 return "DW_OP_breg2";
10353 case DW_OP_breg3:
10354 return "DW_OP_breg3";
10355 case DW_OP_breg4:
10356 return "DW_OP_breg4";
10357 case DW_OP_breg5:
10358 return "DW_OP_breg5";
10359 case DW_OP_breg6:
10360 return "DW_OP_breg6";
10361 case DW_OP_breg7:
10362 return "DW_OP_breg7";
10363 case DW_OP_breg8:
10364 return "DW_OP_breg8";
10365 case DW_OP_breg9:
10366 return "DW_OP_breg9";
10367 case DW_OP_breg10:
10368 return "DW_OP_breg10";
10369 case DW_OP_breg11:
10370 return "DW_OP_breg11";
10371 case DW_OP_breg12:
10372 return "DW_OP_breg12";
10373 case DW_OP_breg13:
10374 return "DW_OP_breg13";
10375 case DW_OP_breg14:
10376 return "DW_OP_breg14";
10377 case DW_OP_breg15:
10378 return "DW_OP_breg15";
10379 case DW_OP_breg16:
10380 return "DW_OP_breg16";
10381 case DW_OP_breg17:
10382 return "DW_OP_breg17";
10383 case DW_OP_breg18:
10384 return "DW_OP_breg18";
10385 case DW_OP_breg19:
10386 return "DW_OP_breg19";
10387 case DW_OP_breg20:
10388 return "DW_OP_breg20";
10389 case DW_OP_breg21:
10390 return "DW_OP_breg21";
10391 case DW_OP_breg22:
10392 return "DW_OP_breg22";
10393 case DW_OP_breg23:
10394 return "DW_OP_breg23";
10395 case DW_OP_breg24:
10396 return "DW_OP_breg24";
10397 case DW_OP_breg25:
10398 return "DW_OP_breg25";
10399 case DW_OP_breg26:
10400 return "DW_OP_breg26";
10401 case DW_OP_breg27:
10402 return "DW_OP_breg27";
10403 case DW_OP_breg28:
10404 return "DW_OP_breg28";
10405 case DW_OP_breg29:
10406 return "DW_OP_breg29";
10407 case DW_OP_breg30:
10408 return "DW_OP_breg30";
10409 case DW_OP_breg31:
10410 return "DW_OP_breg31";
10411 case DW_OP_regx:
10412 return "DW_OP_regx";
10413 case DW_OP_fbreg:
10414 return "DW_OP_fbreg";
10415 case DW_OP_bregx:
10416 return "DW_OP_bregx";
10417 case DW_OP_piece:
10418 return "DW_OP_piece";
10419 case DW_OP_deref_size:
10420 return "DW_OP_deref_size";
10421 case DW_OP_xderef_size:
10422 return "DW_OP_xderef_size";
10423 case DW_OP_nop:
10424 return "DW_OP_nop";
10425 /* DWARF 3 extensions. */
10426 case DW_OP_push_object_address:
10427 return "DW_OP_push_object_address";
10428 case DW_OP_call2:
10429 return "DW_OP_call2";
10430 case DW_OP_call4:
10431 return "DW_OP_call4";
10432 case DW_OP_call_ref:
10433 return "DW_OP_call_ref";
10434 case DW_OP_form_tls_address:
10435 return "DW_OP_form_tls_address";
10436 case DW_OP_call_frame_cfa:
10437 return "DW_OP_call_frame_cfa";
10438 case DW_OP_bit_piece:
10439 return "DW_OP_bit_piece";
10440 /* DWARF 4 extensions. */
10441 case DW_OP_implicit_value:
10442 return "DW_OP_implicit_value";
10443 case DW_OP_stack_value:
10444 return "DW_OP_stack_value";
10445 /* GNU extensions. */
10446 case DW_OP_GNU_push_tls_address:
10447 return "DW_OP_GNU_push_tls_address";
10448 case DW_OP_GNU_uninit:
10449 return "DW_OP_GNU_uninit";
10450 default:
10451 return def ? "OP_<unknown>" : NULL;
10452 }
10453 }
10454
10455 static char *
10456 dwarf_bool_name (unsigned mybool)
10457 {
10458 if (mybool)
10459 return "TRUE";
10460 else
10461 return "FALSE";
10462 }
10463
10464 /* Convert a DWARF type code into its string name. */
10465
10466 static char *
10467 dwarf_type_encoding_name (unsigned enc)
10468 {
10469 switch (enc)
10470 {
10471 case DW_ATE_void:
10472 return "DW_ATE_void";
10473 case DW_ATE_address:
10474 return "DW_ATE_address";
10475 case DW_ATE_boolean:
10476 return "DW_ATE_boolean";
10477 case DW_ATE_complex_float:
10478 return "DW_ATE_complex_float";
10479 case DW_ATE_float:
10480 return "DW_ATE_float";
10481 case DW_ATE_signed:
10482 return "DW_ATE_signed";
10483 case DW_ATE_signed_char:
10484 return "DW_ATE_signed_char";
10485 case DW_ATE_unsigned:
10486 return "DW_ATE_unsigned";
10487 case DW_ATE_unsigned_char:
10488 return "DW_ATE_unsigned_char";
10489 /* DWARF 3. */
10490 case DW_ATE_imaginary_float:
10491 return "DW_ATE_imaginary_float";
10492 case DW_ATE_packed_decimal:
10493 return "DW_ATE_packed_decimal";
10494 case DW_ATE_numeric_string:
10495 return "DW_ATE_numeric_string";
10496 case DW_ATE_edited:
10497 return "DW_ATE_edited";
10498 case DW_ATE_signed_fixed:
10499 return "DW_ATE_signed_fixed";
10500 case DW_ATE_unsigned_fixed:
10501 return "DW_ATE_unsigned_fixed";
10502 case DW_ATE_decimal_float:
10503 return "DW_ATE_decimal_float";
10504 /* DWARF 4. */
10505 case DW_ATE_UTF:
10506 return "DW_ATE_UTF";
10507 /* HP extensions. */
10508 case DW_ATE_HP_float80:
10509 return "DW_ATE_HP_float80";
10510 case DW_ATE_HP_complex_float80:
10511 return "DW_ATE_HP_complex_float80";
10512 case DW_ATE_HP_float128:
10513 return "DW_ATE_HP_float128";
10514 case DW_ATE_HP_complex_float128:
10515 return "DW_ATE_HP_complex_float128";
10516 case DW_ATE_HP_floathpintel:
10517 return "DW_ATE_HP_floathpintel";
10518 case DW_ATE_HP_imaginary_float80:
10519 return "DW_ATE_HP_imaginary_float80";
10520 case DW_ATE_HP_imaginary_float128:
10521 return "DW_ATE_HP_imaginary_float128";
10522 default:
10523 return "DW_ATE_<unknown>";
10524 }
10525 }
10526
10527 /* Convert a DWARF call frame info operation to its string name. */
10528
10529 #if 0
10530 static char *
10531 dwarf_cfi_name (unsigned cfi_opc)
10532 {
10533 switch (cfi_opc)
10534 {
10535 case DW_CFA_advance_loc:
10536 return "DW_CFA_advance_loc";
10537 case DW_CFA_offset:
10538 return "DW_CFA_offset";
10539 case DW_CFA_restore:
10540 return "DW_CFA_restore";
10541 case DW_CFA_nop:
10542 return "DW_CFA_nop";
10543 case DW_CFA_set_loc:
10544 return "DW_CFA_set_loc";
10545 case DW_CFA_advance_loc1:
10546 return "DW_CFA_advance_loc1";
10547 case DW_CFA_advance_loc2:
10548 return "DW_CFA_advance_loc2";
10549 case DW_CFA_advance_loc4:
10550 return "DW_CFA_advance_loc4";
10551 case DW_CFA_offset_extended:
10552 return "DW_CFA_offset_extended";
10553 case DW_CFA_restore_extended:
10554 return "DW_CFA_restore_extended";
10555 case DW_CFA_undefined:
10556 return "DW_CFA_undefined";
10557 case DW_CFA_same_value:
10558 return "DW_CFA_same_value";
10559 case DW_CFA_register:
10560 return "DW_CFA_register";
10561 case DW_CFA_remember_state:
10562 return "DW_CFA_remember_state";
10563 case DW_CFA_restore_state:
10564 return "DW_CFA_restore_state";
10565 case DW_CFA_def_cfa:
10566 return "DW_CFA_def_cfa";
10567 case DW_CFA_def_cfa_register:
10568 return "DW_CFA_def_cfa_register";
10569 case DW_CFA_def_cfa_offset:
10570 return "DW_CFA_def_cfa_offset";
10571 /* DWARF 3. */
10572 case DW_CFA_def_cfa_expression:
10573 return "DW_CFA_def_cfa_expression";
10574 case DW_CFA_expression:
10575 return "DW_CFA_expression";
10576 case DW_CFA_offset_extended_sf:
10577 return "DW_CFA_offset_extended_sf";
10578 case DW_CFA_def_cfa_sf:
10579 return "DW_CFA_def_cfa_sf";
10580 case DW_CFA_def_cfa_offset_sf:
10581 return "DW_CFA_def_cfa_offset_sf";
10582 case DW_CFA_val_offset:
10583 return "DW_CFA_val_offset";
10584 case DW_CFA_val_offset_sf:
10585 return "DW_CFA_val_offset_sf";
10586 case DW_CFA_val_expression:
10587 return "DW_CFA_val_expression";
10588 /* SGI/MIPS specific. */
10589 case DW_CFA_MIPS_advance_loc8:
10590 return "DW_CFA_MIPS_advance_loc8";
10591 /* GNU extensions. */
10592 case DW_CFA_GNU_window_save:
10593 return "DW_CFA_GNU_window_save";
10594 case DW_CFA_GNU_args_size:
10595 return "DW_CFA_GNU_args_size";
10596 case DW_CFA_GNU_negative_offset_extended:
10597 return "DW_CFA_GNU_negative_offset_extended";
10598 default:
10599 return "DW_CFA_<unknown>";
10600 }
10601 }
10602 #endif
10603
10604 static void
10605 dump_die_shallow (struct ui_file *f, int indent, struct die_info *die)
10606 {
10607 unsigned int i;
10608
10609 print_spaces (indent, f);
10610 fprintf_unfiltered (f, "Die: %s (abbrev %d, offset 0x%x)\n",
10611 dwarf_tag_name (die->tag), die->abbrev, die->offset);
10612
10613 if (die->parent != NULL)
10614 {
10615 print_spaces (indent, f);
10616 fprintf_unfiltered (f, " parent at offset: 0x%x\n",
10617 die->parent->offset);
10618 }
10619
10620 print_spaces (indent, f);
10621 fprintf_unfiltered (f, " has children: %s\n",
10622 dwarf_bool_name (die->child != NULL));
10623
10624 print_spaces (indent, f);
10625 fprintf_unfiltered (f, " attributes:\n");
10626
10627 for (i = 0; i < die->num_attrs; ++i)
10628 {
10629 print_spaces (indent, f);
10630 fprintf_unfiltered (f, " %s (%s) ",
10631 dwarf_attr_name (die->attrs[i].name),
10632 dwarf_form_name (die->attrs[i].form));
10633
10634 switch (die->attrs[i].form)
10635 {
10636 case DW_FORM_ref_addr:
10637 case DW_FORM_addr:
10638 fprintf_unfiltered (f, "address: ");
10639 fputs_filtered (hex_string (DW_ADDR (&die->attrs[i])), f);
10640 break;
10641 case DW_FORM_block2:
10642 case DW_FORM_block4:
10643 case DW_FORM_block:
10644 case DW_FORM_block1:
10645 fprintf_unfiltered (f, "block: size %d", DW_BLOCK (&die->attrs[i])->size);
10646 break;
10647 case DW_FORM_exprloc:
10648 fprintf_unfiltered (f, "expression: size %u",
10649 DW_BLOCK (&die->attrs[i])->size);
10650 break;
10651 case DW_FORM_ref1:
10652 case DW_FORM_ref2:
10653 case DW_FORM_ref4:
10654 fprintf_unfiltered (f, "constant ref: 0x%lx (adjusted)",
10655 (long) (DW_ADDR (&die->attrs[i])));
10656 break;
10657 case DW_FORM_data1:
10658 case DW_FORM_data2:
10659 case DW_FORM_data4:
10660 case DW_FORM_data8:
10661 case DW_FORM_udata:
10662 case DW_FORM_sdata:
10663 fprintf_unfiltered (f, "constant: %s",
10664 pulongest (DW_UNSND (&die->attrs[i])));
10665 break;
10666 case DW_FORM_sec_offset:
10667 fprintf_unfiltered (f, "section offset: %s",
10668 pulongest (DW_UNSND (&die->attrs[i])));
10669 break;
10670 case DW_FORM_sig8:
10671 if (DW_SIGNATURED_TYPE (&die->attrs[i]) != NULL)
10672 fprintf_unfiltered (f, "signatured type, offset: 0x%x",
10673 DW_SIGNATURED_TYPE (&die->attrs[i])->offset);
10674 else
10675 fprintf_unfiltered (f, "signatured type, offset: unknown");
10676 break;
10677 case DW_FORM_string:
10678 case DW_FORM_strp:
10679 fprintf_unfiltered (f, "string: \"%s\" (%s canonicalized)",
10680 DW_STRING (&die->attrs[i])
10681 ? DW_STRING (&die->attrs[i]) : "",
10682 DW_STRING_IS_CANONICAL (&die->attrs[i]) ? "is" : "not");
10683 break;
10684 case DW_FORM_flag:
10685 if (DW_UNSND (&die->attrs[i]))
10686 fprintf_unfiltered (f, "flag: TRUE");
10687 else
10688 fprintf_unfiltered (f, "flag: FALSE");
10689 break;
10690 case DW_FORM_flag_present:
10691 fprintf_unfiltered (f, "flag: TRUE");
10692 break;
10693 case DW_FORM_indirect:
10694 /* the reader will have reduced the indirect form to
10695 the "base form" so this form should not occur */
10696 fprintf_unfiltered (f, "unexpected attribute form: DW_FORM_indirect");
10697 break;
10698 default:
10699 fprintf_unfiltered (f, "unsupported attribute form: %d.",
10700 die->attrs[i].form);
10701 break;
10702 }
10703 fprintf_unfiltered (f, "\n");
10704 }
10705 }
10706
10707 static void
10708 dump_die_for_error (struct die_info *die)
10709 {
10710 dump_die_shallow (gdb_stderr, 0, die);
10711 }
10712
10713 static void
10714 dump_die_1 (struct ui_file *f, int level, int max_level, struct die_info *die)
10715 {
10716 int indent = level * 4;
10717
10718 gdb_assert (die != NULL);
10719
10720 if (level >= max_level)
10721 return;
10722
10723 dump_die_shallow (f, indent, die);
10724
10725 if (die->child != NULL)
10726 {
10727 print_spaces (indent, f);
10728 fprintf_unfiltered (f, " Children:");
10729 if (level + 1 < max_level)
10730 {
10731 fprintf_unfiltered (f, "\n");
10732 dump_die_1 (f, level + 1, max_level, die->child);
10733 }
10734 else
10735 {
10736 fprintf_unfiltered (f, " [not printed, max nesting level reached]\n");
10737 }
10738 }
10739
10740 if (die->sibling != NULL && level > 0)
10741 {
10742 dump_die_1 (f, level, max_level, die->sibling);
10743 }
10744 }
10745
10746 /* This is called from the pdie macro in gdbinit.in.
10747 It's not static so gcc will keep a copy callable from gdb. */
10748
10749 void
10750 dump_die (struct die_info *die, int max_level)
10751 {
10752 dump_die_1 (gdb_stdlog, 0, max_level, die);
10753 }
10754
10755 static void
10756 store_in_ref_table (struct die_info *die, struct dwarf2_cu *cu)
10757 {
10758 void **slot;
10759
10760 slot = htab_find_slot_with_hash (cu->die_hash, die, die->offset, INSERT);
10761
10762 *slot = die;
10763 }
10764
10765 static int
10766 is_ref_attr (struct attribute *attr)
10767 {
10768 switch (attr->form)
10769 {
10770 case DW_FORM_ref_addr:
10771 case DW_FORM_ref1:
10772 case DW_FORM_ref2:
10773 case DW_FORM_ref4:
10774 case DW_FORM_ref8:
10775 case DW_FORM_ref_udata:
10776 return 1;
10777 default:
10778 return 0;
10779 }
10780 }
10781
10782 static unsigned int
10783 dwarf2_get_ref_die_offset (struct attribute *attr)
10784 {
10785 if (is_ref_attr (attr))
10786 return DW_ADDR (attr);
10787
10788 complaint (&symfile_complaints,
10789 _("unsupported die ref attribute form: '%s'"),
10790 dwarf_form_name (attr->form));
10791 return 0;
10792 }
10793
10794 /* Return the constant value held by ATTR. Return DEFAULT_VALUE if
10795 * the value held by the attribute is not constant. */
10796
10797 static LONGEST
10798 dwarf2_get_attr_constant_value (struct attribute *attr, int default_value)
10799 {
10800 if (attr->form == DW_FORM_sdata)
10801 return DW_SND (attr);
10802 else if (attr->form == DW_FORM_udata
10803 || attr->form == DW_FORM_data1
10804 || attr->form == DW_FORM_data2
10805 || attr->form == DW_FORM_data4
10806 || attr->form == DW_FORM_data8)
10807 return DW_UNSND (attr);
10808 else
10809 {
10810 complaint (&symfile_complaints, _("Attribute value is not a constant (%s)"),
10811 dwarf_form_name (attr->form));
10812 return default_value;
10813 }
10814 }
10815
10816 /* THIS_CU has a reference to PER_CU. If necessary, load the new compilation
10817 unit and add it to our queue.
10818 The result is non-zero if PER_CU was queued, otherwise the result is zero
10819 meaning either PER_CU is already queued or it is already loaded. */
10820
10821 static int
10822 maybe_queue_comp_unit (struct dwarf2_cu *this_cu,
10823 struct dwarf2_per_cu_data *per_cu)
10824 {
10825 /* Mark the dependence relation so that we don't flush PER_CU
10826 too early. */
10827 dwarf2_add_dependence (this_cu, per_cu);
10828
10829 /* If it's already on the queue, we have nothing to do. */
10830 if (per_cu->queued)
10831 return 0;
10832
10833 /* If the compilation unit is already loaded, just mark it as
10834 used. */
10835 if (per_cu->cu != NULL)
10836 {
10837 per_cu->cu->last_used = 0;
10838 return 0;
10839 }
10840
10841 /* Add it to the queue. */
10842 queue_comp_unit (per_cu, this_cu->objfile);
10843
10844 return 1;
10845 }
10846
10847 /* Follow reference or signature attribute ATTR of SRC_DIE.
10848 On entry *REF_CU is the CU of SRC_DIE.
10849 On exit *REF_CU is the CU of the result. */
10850
10851 static struct die_info *
10852 follow_die_ref_or_sig (struct die_info *src_die, struct attribute *attr,
10853 struct dwarf2_cu **ref_cu)
10854 {
10855 struct die_info *die;
10856
10857 if (is_ref_attr (attr))
10858 die = follow_die_ref (src_die, attr, ref_cu);
10859 else if (attr->form == DW_FORM_sig8)
10860 die = follow_die_sig (src_die, attr, ref_cu);
10861 else
10862 {
10863 dump_die_for_error (src_die);
10864 error (_("Dwarf Error: Expected reference attribute [in module %s]"),
10865 (*ref_cu)->objfile->name);
10866 }
10867
10868 return die;
10869 }
10870
10871 /* Follow reference OFFSET.
10872 On entry *REF_CU is the CU of source DIE referencing OFFSET.
10873 On exit *REF_CU is the CU of the result. */
10874
10875 static struct die_info *
10876 follow_die_offset (unsigned int offset, struct dwarf2_cu **ref_cu)
10877 {
10878 struct die_info temp_die;
10879 struct dwarf2_cu *target_cu, *cu = *ref_cu;
10880
10881 gdb_assert (cu->per_cu != NULL);
10882
10883 if (cu->per_cu->from_debug_types)
10884 {
10885 /* .debug_types CUs cannot reference anything outside their CU.
10886 If they need to, they have to reference a signatured type via
10887 DW_FORM_sig8. */
10888 if (! offset_in_cu_p (&cu->header, offset))
10889 return NULL;
10890 target_cu = cu;
10891 }
10892 else if (! offset_in_cu_p (&cu->header, offset))
10893 {
10894 struct dwarf2_per_cu_data *per_cu;
10895
10896 per_cu = dwarf2_find_containing_comp_unit (offset, cu->objfile);
10897
10898 /* If necessary, add it to the queue and load its DIEs. */
10899 if (maybe_queue_comp_unit (cu, per_cu))
10900 load_full_comp_unit (per_cu, cu->objfile);
10901
10902 target_cu = per_cu->cu;
10903 }
10904 else
10905 target_cu = cu;
10906
10907 *ref_cu = target_cu;
10908 temp_die.offset = offset;
10909 return htab_find_with_hash (target_cu->die_hash, &temp_die, offset);
10910 }
10911
10912 /* Follow reference attribute ATTR of SRC_DIE.
10913 On entry *REF_CU is the CU of SRC_DIE.
10914 On exit *REF_CU is the CU of the result. */
10915
10916 static struct die_info *
10917 follow_die_ref (struct die_info *src_die, struct attribute *attr,
10918 struct dwarf2_cu **ref_cu)
10919 {
10920 unsigned int offset = dwarf2_get_ref_die_offset (attr);
10921 struct dwarf2_cu *cu = *ref_cu;
10922 struct die_info *die;
10923
10924 die = follow_die_offset (offset, ref_cu);
10925 if (!die)
10926 error (_("Dwarf Error: Cannot find DIE at 0x%x referenced from DIE "
10927 "at 0x%x [in module %s]"),
10928 offset, src_die->offset, cu->objfile->name);
10929
10930 return die;
10931 }
10932
10933 /* Return DWARF block and its CU referenced by OFFSET at PER_CU. Returned
10934 value is intended for DW_OP_call*. */
10935
10936 struct dwarf2_locexpr_baton
10937 dwarf2_fetch_die_location_block (unsigned int offset,
10938 struct dwarf2_per_cu_data *per_cu)
10939 {
10940 struct dwarf2_cu *cu = per_cu->cu;
10941 struct die_info *die;
10942 struct attribute *attr;
10943 struct dwarf2_locexpr_baton retval;
10944
10945 die = follow_die_offset (offset, &cu);
10946 if (!die)
10947 error (_("Dwarf Error: Cannot find DIE at 0x%x referenced in module %s"),
10948 offset, per_cu->cu->objfile->name);
10949
10950 attr = dwarf2_attr (die, DW_AT_location, cu);
10951 if (!attr)
10952 {
10953 /* DWARF: "If there is no such attribute, then there is no effect.". */
10954
10955 retval.data = NULL;
10956 retval.size = 0;
10957 }
10958 else
10959 {
10960 if (!attr_form_is_block (attr))
10961 error (_("Dwarf Error: DIE at 0x%x referenced in module %s "
10962 "is neither DW_FORM_block* nor DW_FORM_exprloc"),
10963 offset, per_cu->cu->objfile->name);
10964
10965 retval.data = DW_BLOCK (attr)->data;
10966 retval.size = DW_BLOCK (attr)->size;
10967 }
10968 retval.per_cu = cu->per_cu;
10969 return retval;
10970 }
10971
10972 /* Follow the signature attribute ATTR in SRC_DIE.
10973 On entry *REF_CU is the CU of SRC_DIE.
10974 On exit *REF_CU is the CU of the result. */
10975
10976 static struct die_info *
10977 follow_die_sig (struct die_info *src_die, struct attribute *attr,
10978 struct dwarf2_cu **ref_cu)
10979 {
10980 struct objfile *objfile = (*ref_cu)->objfile;
10981 struct die_info temp_die;
10982 struct signatured_type *sig_type = DW_SIGNATURED_TYPE (attr);
10983 struct dwarf2_cu *sig_cu;
10984 struct die_info *die;
10985
10986 /* sig_type will be NULL if the signatured type is missing from
10987 the debug info. */
10988 if (sig_type == NULL)
10989 error (_("Dwarf Error: Cannot find signatured DIE referenced from DIE "
10990 "at 0x%x [in module %s]"),
10991 src_die->offset, objfile->name);
10992
10993 /* If necessary, add it to the queue and load its DIEs. */
10994
10995 if (maybe_queue_comp_unit (*ref_cu, &sig_type->per_cu))
10996 read_signatured_type (objfile, sig_type);
10997
10998 gdb_assert (sig_type->per_cu.cu != NULL);
10999
11000 sig_cu = sig_type->per_cu.cu;
11001 temp_die.offset = sig_cu->header.offset + sig_type->type_offset;
11002 die = htab_find_with_hash (sig_cu->die_hash, &temp_die, temp_die.offset);
11003 if (die)
11004 {
11005 *ref_cu = sig_cu;
11006 return die;
11007 }
11008
11009 error (_("Dwarf Error: Cannot find signatured DIE at 0x%x referenced from DIE "
11010 "at 0x%x [in module %s]"),
11011 sig_type->type_offset, src_die->offset, objfile->name);
11012 }
11013
11014 /* Given an offset of a signatured type, return its signatured_type. */
11015
11016 static struct signatured_type *
11017 lookup_signatured_type_at_offset (struct objfile *objfile, unsigned int offset)
11018 {
11019 gdb_byte *info_ptr = dwarf2_per_objfile->types.buffer + offset;
11020 unsigned int length, initial_length_size;
11021 unsigned int sig_offset;
11022 struct signatured_type find_entry, *type_sig;
11023
11024 length = read_initial_length (objfile->obfd, info_ptr, &initial_length_size);
11025 sig_offset = (initial_length_size
11026 + 2 /*version*/
11027 + (initial_length_size == 4 ? 4 : 8) /*debug_abbrev_offset*/
11028 + 1 /*address_size*/);
11029 find_entry.signature = bfd_get_64 (objfile->obfd, info_ptr + sig_offset);
11030 type_sig = htab_find (dwarf2_per_objfile->signatured_types, &find_entry);
11031
11032 /* This is only used to lookup previously recorded types.
11033 If we didn't find it, it's our bug. */
11034 gdb_assert (type_sig != NULL);
11035 gdb_assert (offset == type_sig->offset);
11036
11037 return type_sig;
11038 }
11039
11040 /* Read in signatured type at OFFSET and build its CU and die(s). */
11041
11042 static void
11043 read_signatured_type_at_offset (struct objfile *objfile,
11044 unsigned int offset)
11045 {
11046 struct signatured_type *type_sig;
11047
11048 dwarf2_read_section (objfile, &dwarf2_per_objfile->types);
11049
11050 /* We have the section offset, but we need the signature to do the
11051 hash table lookup. */
11052 type_sig = lookup_signatured_type_at_offset (objfile, offset);
11053
11054 gdb_assert (type_sig->per_cu.cu == NULL);
11055
11056 read_signatured_type (objfile, type_sig);
11057
11058 gdb_assert (type_sig->per_cu.cu != NULL);
11059 }
11060
11061 /* Read in a signatured type and build its CU and DIEs. */
11062
11063 static void
11064 read_signatured_type (struct objfile *objfile,
11065 struct signatured_type *type_sig)
11066 {
11067 gdb_byte *types_ptr = dwarf2_per_objfile->types.buffer + type_sig->offset;
11068 struct die_reader_specs reader_specs;
11069 struct dwarf2_cu *cu;
11070 ULONGEST signature;
11071 struct cleanup *back_to, *free_cu_cleanup;
11072 struct attribute *attr;
11073
11074 gdb_assert (type_sig->per_cu.cu == NULL);
11075
11076 cu = xmalloc (sizeof (struct dwarf2_cu));
11077 memset (cu, 0, sizeof (struct dwarf2_cu));
11078 obstack_init (&cu->comp_unit_obstack);
11079 cu->objfile = objfile;
11080 type_sig->per_cu.cu = cu;
11081 cu->per_cu = &type_sig->per_cu;
11082
11083 /* If an error occurs while loading, release our storage. */
11084 free_cu_cleanup = make_cleanup (free_one_comp_unit, cu);
11085
11086 types_ptr = read_type_comp_unit_head (&cu->header, &signature,
11087 types_ptr, objfile->obfd);
11088 gdb_assert (signature == type_sig->signature);
11089
11090 cu->die_hash
11091 = htab_create_alloc_ex (cu->header.length / 12,
11092 die_hash,
11093 die_eq,
11094 NULL,
11095 &cu->comp_unit_obstack,
11096 hashtab_obstack_allocate,
11097 dummy_obstack_deallocate);
11098
11099 dwarf2_read_abbrevs (cu->objfile->obfd, cu);
11100 back_to = make_cleanup (dwarf2_free_abbrev_table, cu);
11101
11102 init_cu_die_reader (&reader_specs, cu);
11103
11104 cu->dies = read_die_and_children (&reader_specs, types_ptr, &types_ptr,
11105 NULL /*parent*/);
11106
11107 /* We try not to read any attributes in this function, because not
11108 all objfiles needed for references have been loaded yet, and symbol
11109 table processing isn't initialized. But we have to set the CU language,
11110 or we won't be able to build types correctly. */
11111 attr = dwarf2_attr (cu->dies, DW_AT_language, cu);
11112 if (attr)
11113 set_cu_language (DW_UNSND (attr), cu);
11114 else
11115 set_cu_language (language_minimal, cu);
11116
11117 do_cleanups (back_to);
11118
11119 /* We've successfully allocated this compilation unit. Let our caller
11120 clean it up when finished with it. */
11121 discard_cleanups (free_cu_cleanup);
11122
11123 type_sig->per_cu.cu->read_in_chain = dwarf2_per_objfile->read_in_chain;
11124 dwarf2_per_objfile->read_in_chain = &type_sig->per_cu;
11125 }
11126
11127 /* Decode simple location descriptions.
11128 Given a pointer to a dwarf block that defines a location, compute
11129 the location and return the value.
11130
11131 NOTE drow/2003-11-18: This function is called in two situations
11132 now: for the address of static or global variables (partial symbols
11133 only) and for offsets into structures which are expected to be
11134 (more or less) constant. The partial symbol case should go away,
11135 and only the constant case should remain. That will let this
11136 function complain more accurately. A few special modes are allowed
11137 without complaint for global variables (for instance, global
11138 register values and thread-local values).
11139
11140 A location description containing no operations indicates that the
11141 object is optimized out. The return value is 0 for that case.
11142 FIXME drow/2003-11-16: No callers check for this case any more; soon all
11143 callers will only want a very basic result and this can become a
11144 complaint.
11145
11146 Note that stack[0] is unused except as a default error return.
11147 Note that stack overflow is not yet handled. */
11148
11149 static CORE_ADDR
11150 decode_locdesc (struct dwarf_block *blk, struct dwarf2_cu *cu)
11151 {
11152 struct objfile *objfile = cu->objfile;
11153 int i;
11154 int size = blk->size;
11155 gdb_byte *data = blk->data;
11156 CORE_ADDR stack[64];
11157 int stacki;
11158 unsigned int bytes_read, unsnd;
11159 gdb_byte op;
11160
11161 i = 0;
11162 stacki = 0;
11163 stack[stacki] = 0;
11164
11165 while (i < size)
11166 {
11167 op = data[i++];
11168 switch (op)
11169 {
11170 case DW_OP_lit0:
11171 case DW_OP_lit1:
11172 case DW_OP_lit2:
11173 case DW_OP_lit3:
11174 case DW_OP_lit4:
11175 case DW_OP_lit5:
11176 case DW_OP_lit6:
11177 case DW_OP_lit7:
11178 case DW_OP_lit8:
11179 case DW_OP_lit9:
11180 case DW_OP_lit10:
11181 case DW_OP_lit11:
11182 case DW_OP_lit12:
11183 case DW_OP_lit13:
11184 case DW_OP_lit14:
11185 case DW_OP_lit15:
11186 case DW_OP_lit16:
11187 case DW_OP_lit17:
11188 case DW_OP_lit18:
11189 case DW_OP_lit19:
11190 case DW_OP_lit20:
11191 case DW_OP_lit21:
11192 case DW_OP_lit22:
11193 case DW_OP_lit23:
11194 case DW_OP_lit24:
11195 case DW_OP_lit25:
11196 case DW_OP_lit26:
11197 case DW_OP_lit27:
11198 case DW_OP_lit28:
11199 case DW_OP_lit29:
11200 case DW_OP_lit30:
11201 case DW_OP_lit31:
11202 stack[++stacki] = op - DW_OP_lit0;
11203 break;
11204
11205 case DW_OP_reg0:
11206 case DW_OP_reg1:
11207 case DW_OP_reg2:
11208 case DW_OP_reg3:
11209 case DW_OP_reg4:
11210 case DW_OP_reg5:
11211 case DW_OP_reg6:
11212 case DW_OP_reg7:
11213 case DW_OP_reg8:
11214 case DW_OP_reg9:
11215 case DW_OP_reg10:
11216 case DW_OP_reg11:
11217 case DW_OP_reg12:
11218 case DW_OP_reg13:
11219 case DW_OP_reg14:
11220 case DW_OP_reg15:
11221 case DW_OP_reg16:
11222 case DW_OP_reg17:
11223 case DW_OP_reg18:
11224 case DW_OP_reg19:
11225 case DW_OP_reg20:
11226 case DW_OP_reg21:
11227 case DW_OP_reg22:
11228 case DW_OP_reg23:
11229 case DW_OP_reg24:
11230 case DW_OP_reg25:
11231 case DW_OP_reg26:
11232 case DW_OP_reg27:
11233 case DW_OP_reg28:
11234 case DW_OP_reg29:
11235 case DW_OP_reg30:
11236 case DW_OP_reg31:
11237 stack[++stacki] = op - DW_OP_reg0;
11238 if (i < size)
11239 dwarf2_complex_location_expr_complaint ();
11240 break;
11241
11242 case DW_OP_regx:
11243 unsnd = read_unsigned_leb128 (NULL, (data + i), &bytes_read);
11244 i += bytes_read;
11245 stack[++stacki] = unsnd;
11246 if (i < size)
11247 dwarf2_complex_location_expr_complaint ();
11248 break;
11249
11250 case DW_OP_addr:
11251 stack[++stacki] = read_address (objfile->obfd, &data[i],
11252 cu, &bytes_read);
11253 i += bytes_read;
11254 break;
11255
11256 case DW_OP_const1u:
11257 stack[++stacki] = read_1_byte (objfile->obfd, &data[i]);
11258 i += 1;
11259 break;
11260
11261 case DW_OP_const1s:
11262 stack[++stacki] = read_1_signed_byte (objfile->obfd, &data[i]);
11263 i += 1;
11264 break;
11265
11266 case DW_OP_const2u:
11267 stack[++stacki] = read_2_bytes (objfile->obfd, &data[i]);
11268 i += 2;
11269 break;
11270
11271 case DW_OP_const2s:
11272 stack[++stacki] = read_2_signed_bytes (objfile->obfd, &data[i]);
11273 i += 2;
11274 break;
11275
11276 case DW_OP_const4u:
11277 stack[++stacki] = read_4_bytes (objfile->obfd, &data[i]);
11278 i += 4;
11279 break;
11280
11281 case DW_OP_const4s:
11282 stack[++stacki] = read_4_signed_bytes (objfile->obfd, &data[i]);
11283 i += 4;
11284 break;
11285
11286 case DW_OP_constu:
11287 stack[++stacki] = read_unsigned_leb128 (NULL, (data + i),
11288 &bytes_read);
11289 i += bytes_read;
11290 break;
11291
11292 case DW_OP_consts:
11293 stack[++stacki] = read_signed_leb128 (NULL, (data + i), &bytes_read);
11294 i += bytes_read;
11295 break;
11296
11297 case DW_OP_dup:
11298 stack[stacki + 1] = stack[stacki];
11299 stacki++;
11300 break;
11301
11302 case DW_OP_plus:
11303 stack[stacki - 1] += stack[stacki];
11304 stacki--;
11305 break;
11306
11307 case DW_OP_plus_uconst:
11308 stack[stacki] += read_unsigned_leb128 (NULL, (data + i), &bytes_read);
11309 i += bytes_read;
11310 break;
11311
11312 case DW_OP_minus:
11313 stack[stacki - 1] -= stack[stacki];
11314 stacki--;
11315 break;
11316
11317 case DW_OP_deref:
11318 /* If we're not the last op, then we definitely can't encode
11319 this using GDB's address_class enum. This is valid for partial
11320 global symbols, although the variable's address will be bogus
11321 in the psymtab. */
11322 if (i < size)
11323 dwarf2_complex_location_expr_complaint ();
11324 break;
11325
11326 case DW_OP_GNU_push_tls_address:
11327 /* The top of the stack has the offset from the beginning
11328 of the thread control block at which the variable is located. */
11329 /* Nothing should follow this operator, so the top of stack would
11330 be returned. */
11331 /* This is valid for partial global symbols, but the variable's
11332 address will be bogus in the psymtab. */
11333 if (i < size)
11334 dwarf2_complex_location_expr_complaint ();
11335 break;
11336
11337 case DW_OP_GNU_uninit:
11338 break;
11339
11340 default:
11341 complaint (&symfile_complaints, _("unsupported stack op: '%s'"),
11342 dwarf_stack_op_name (op, 1));
11343 return (stack[stacki]);
11344 }
11345 }
11346 return (stack[stacki]);
11347 }
11348
11349 /* memory allocation interface */
11350
11351 static struct dwarf_block *
11352 dwarf_alloc_block (struct dwarf2_cu *cu)
11353 {
11354 struct dwarf_block *blk;
11355
11356 blk = (struct dwarf_block *)
11357 obstack_alloc (&cu->comp_unit_obstack, sizeof (struct dwarf_block));
11358 return (blk);
11359 }
11360
11361 static struct abbrev_info *
11362 dwarf_alloc_abbrev (struct dwarf2_cu *cu)
11363 {
11364 struct abbrev_info *abbrev;
11365
11366 abbrev = (struct abbrev_info *)
11367 obstack_alloc (&cu->abbrev_obstack, sizeof (struct abbrev_info));
11368 memset (abbrev, 0, sizeof (struct abbrev_info));
11369 return (abbrev);
11370 }
11371
11372 static struct die_info *
11373 dwarf_alloc_die (struct dwarf2_cu *cu, int num_attrs)
11374 {
11375 struct die_info *die;
11376 size_t size = sizeof (struct die_info);
11377
11378 if (num_attrs > 1)
11379 size += (num_attrs - 1) * sizeof (struct attribute);
11380
11381 die = (struct die_info *) obstack_alloc (&cu->comp_unit_obstack, size);
11382 memset (die, 0, sizeof (struct die_info));
11383 return (die);
11384 }
11385
11386 \f
11387 /* Macro support. */
11388
11389
11390 /* Return the full name of file number I in *LH's file name table.
11391 Use COMP_DIR as the name of the current directory of the
11392 compilation. The result is allocated using xmalloc; the caller is
11393 responsible for freeing it. */
11394 static char *
11395 file_full_name (int file, struct line_header *lh, const char *comp_dir)
11396 {
11397 /* Is the file number a valid index into the line header's file name
11398 table? Remember that file numbers start with one, not zero. */
11399 if (1 <= file && file <= lh->num_file_names)
11400 {
11401 struct file_entry *fe = &lh->file_names[file - 1];
11402
11403 if (IS_ABSOLUTE_PATH (fe->name))
11404 return xstrdup (fe->name);
11405 else
11406 {
11407 const char *dir;
11408 int dir_len;
11409 char *full_name;
11410
11411 if (fe->dir_index)
11412 dir = lh->include_dirs[fe->dir_index - 1];
11413 else
11414 dir = comp_dir;
11415
11416 if (dir)
11417 {
11418 dir_len = strlen (dir);
11419 full_name = xmalloc (dir_len + 1 + strlen (fe->name) + 1);
11420 strcpy (full_name, dir);
11421 full_name[dir_len] = '/';
11422 strcpy (full_name + dir_len + 1, fe->name);
11423 return full_name;
11424 }
11425 else
11426 return xstrdup (fe->name);
11427 }
11428 }
11429 else
11430 {
11431 /* The compiler produced a bogus file number. We can at least
11432 record the macro definitions made in the file, even if we
11433 won't be able to find the file by name. */
11434 char fake_name[80];
11435
11436 sprintf (fake_name, "<bad macro file number %d>", file);
11437
11438 complaint (&symfile_complaints,
11439 _("bad file number in macro information (%d)"),
11440 file);
11441
11442 return xstrdup (fake_name);
11443 }
11444 }
11445
11446
11447 static struct macro_source_file *
11448 macro_start_file (int file, int line,
11449 struct macro_source_file *current_file,
11450 const char *comp_dir,
11451 struct line_header *lh, struct objfile *objfile)
11452 {
11453 /* The full name of this source file. */
11454 char *full_name = file_full_name (file, lh, comp_dir);
11455
11456 /* We don't create a macro table for this compilation unit
11457 at all until we actually get a filename. */
11458 if (! pending_macros)
11459 pending_macros = new_macro_table (&objfile->objfile_obstack,
11460 objfile->macro_cache);
11461
11462 if (! current_file)
11463 /* If we have no current file, then this must be the start_file
11464 directive for the compilation unit's main source file. */
11465 current_file = macro_set_main (pending_macros, full_name);
11466 else
11467 current_file = macro_include (current_file, line, full_name);
11468
11469 xfree (full_name);
11470
11471 return current_file;
11472 }
11473
11474
11475 /* Copy the LEN characters at BUF to a xmalloc'ed block of memory,
11476 followed by a null byte. */
11477 static char *
11478 copy_string (const char *buf, int len)
11479 {
11480 char *s = xmalloc (len + 1);
11481
11482 memcpy (s, buf, len);
11483 s[len] = '\0';
11484 return s;
11485 }
11486
11487
11488 static const char *
11489 consume_improper_spaces (const char *p, const char *body)
11490 {
11491 if (*p == ' ')
11492 {
11493 complaint (&symfile_complaints,
11494 _("macro definition contains spaces in formal argument list:\n`%s'"),
11495 body);
11496
11497 while (*p == ' ')
11498 p++;
11499 }
11500
11501 return p;
11502 }
11503
11504
11505 static void
11506 parse_macro_definition (struct macro_source_file *file, int line,
11507 const char *body)
11508 {
11509 const char *p;
11510
11511 /* The body string takes one of two forms. For object-like macro
11512 definitions, it should be:
11513
11514 <macro name> " " <definition>
11515
11516 For function-like macro definitions, it should be:
11517
11518 <macro name> "() " <definition>
11519 or
11520 <macro name> "(" <arg name> ( "," <arg name> ) * ") " <definition>
11521
11522 Spaces may appear only where explicitly indicated, and in the
11523 <definition>.
11524
11525 The Dwarf 2 spec says that an object-like macro's name is always
11526 followed by a space, but versions of GCC around March 2002 omit
11527 the space when the macro's definition is the empty string.
11528
11529 The Dwarf 2 spec says that there should be no spaces between the
11530 formal arguments in a function-like macro's formal argument list,
11531 but versions of GCC around March 2002 include spaces after the
11532 commas. */
11533
11534
11535 /* Find the extent of the macro name. The macro name is terminated
11536 by either a space or null character (for an object-like macro) or
11537 an opening paren (for a function-like macro). */
11538 for (p = body; *p; p++)
11539 if (*p == ' ' || *p == '(')
11540 break;
11541
11542 if (*p == ' ' || *p == '\0')
11543 {
11544 /* It's an object-like macro. */
11545 int name_len = p - body;
11546 char *name = copy_string (body, name_len);
11547 const char *replacement;
11548
11549 if (*p == ' ')
11550 replacement = body + name_len + 1;
11551 else
11552 {
11553 dwarf2_macro_malformed_definition_complaint (body);
11554 replacement = body + name_len;
11555 }
11556
11557 macro_define_object (file, line, name, replacement);
11558
11559 xfree (name);
11560 }
11561 else if (*p == '(')
11562 {
11563 /* It's a function-like macro. */
11564 char *name = copy_string (body, p - body);
11565 int argc = 0;
11566 int argv_size = 1;
11567 char **argv = xmalloc (argv_size * sizeof (*argv));
11568
11569 p++;
11570
11571 p = consume_improper_spaces (p, body);
11572
11573 /* Parse the formal argument list. */
11574 while (*p && *p != ')')
11575 {
11576 /* Find the extent of the current argument name. */
11577 const char *arg_start = p;
11578
11579 while (*p && *p != ',' && *p != ')' && *p != ' ')
11580 p++;
11581
11582 if (! *p || p == arg_start)
11583 dwarf2_macro_malformed_definition_complaint (body);
11584 else
11585 {
11586 /* Make sure argv has room for the new argument. */
11587 if (argc >= argv_size)
11588 {
11589 argv_size *= 2;
11590 argv = xrealloc (argv, argv_size * sizeof (*argv));
11591 }
11592
11593 argv[argc++] = copy_string (arg_start, p - arg_start);
11594 }
11595
11596 p = consume_improper_spaces (p, body);
11597
11598 /* Consume the comma, if present. */
11599 if (*p == ',')
11600 {
11601 p++;
11602
11603 p = consume_improper_spaces (p, body);
11604 }
11605 }
11606
11607 if (*p == ')')
11608 {
11609 p++;
11610
11611 if (*p == ' ')
11612 /* Perfectly formed definition, no complaints. */
11613 macro_define_function (file, line, name,
11614 argc, (const char **) argv,
11615 p + 1);
11616 else if (*p == '\0')
11617 {
11618 /* Complain, but do define it. */
11619 dwarf2_macro_malformed_definition_complaint (body);
11620 macro_define_function (file, line, name,
11621 argc, (const char **) argv,
11622 p);
11623 }
11624 else
11625 /* Just complain. */
11626 dwarf2_macro_malformed_definition_complaint (body);
11627 }
11628 else
11629 /* Just complain. */
11630 dwarf2_macro_malformed_definition_complaint (body);
11631
11632 xfree (name);
11633 {
11634 int i;
11635
11636 for (i = 0; i < argc; i++)
11637 xfree (argv[i]);
11638 }
11639 xfree (argv);
11640 }
11641 else
11642 dwarf2_macro_malformed_definition_complaint (body);
11643 }
11644
11645
11646 static void
11647 dwarf_decode_macros (struct line_header *lh, unsigned int offset,
11648 char *comp_dir, bfd *abfd,
11649 struct dwarf2_cu *cu)
11650 {
11651 gdb_byte *mac_ptr, *mac_end;
11652 struct macro_source_file *current_file = 0;
11653 enum dwarf_macinfo_record_type macinfo_type;
11654 int at_commandline;
11655
11656 dwarf2_read_section (dwarf2_per_objfile->objfile,
11657 &dwarf2_per_objfile->macinfo);
11658 if (dwarf2_per_objfile->macinfo.buffer == NULL)
11659 {
11660 complaint (&symfile_complaints, _("missing .debug_macinfo section"));
11661 return;
11662 }
11663
11664 /* First pass: Find the name of the base filename.
11665 This filename is needed in order to process all macros whose definition
11666 (or undefinition) comes from the command line. These macros are defined
11667 before the first DW_MACINFO_start_file entry, and yet still need to be
11668 associated to the base file.
11669
11670 To determine the base file name, we scan the macro definitions until we
11671 reach the first DW_MACINFO_start_file entry. We then initialize
11672 CURRENT_FILE accordingly so that any macro definition found before the
11673 first DW_MACINFO_start_file can still be associated to the base file. */
11674
11675 mac_ptr = dwarf2_per_objfile->macinfo.buffer + offset;
11676 mac_end = dwarf2_per_objfile->macinfo.buffer
11677 + dwarf2_per_objfile->macinfo.size;
11678
11679 do
11680 {
11681 /* Do we at least have room for a macinfo type byte? */
11682 if (mac_ptr >= mac_end)
11683 {
11684 /* Complaint is printed during the second pass as GDB will probably
11685 stop the first pass earlier upon finding DW_MACINFO_start_file. */
11686 break;
11687 }
11688
11689 macinfo_type = read_1_byte (abfd, mac_ptr);
11690 mac_ptr++;
11691
11692 switch (macinfo_type)
11693 {
11694 /* A zero macinfo type indicates the end of the macro
11695 information. */
11696 case 0:
11697 break;
11698
11699 case DW_MACINFO_define:
11700 case DW_MACINFO_undef:
11701 /* Only skip the data by MAC_PTR. */
11702 {
11703 unsigned int bytes_read;
11704
11705 read_unsigned_leb128 (abfd, mac_ptr, &bytes_read);
11706 mac_ptr += bytes_read;
11707 read_string (abfd, mac_ptr, &bytes_read);
11708 mac_ptr += bytes_read;
11709 }
11710 break;
11711
11712 case DW_MACINFO_start_file:
11713 {
11714 unsigned int bytes_read;
11715 int line, file;
11716
11717 line = read_unsigned_leb128 (abfd, mac_ptr, &bytes_read);
11718 mac_ptr += bytes_read;
11719 file = read_unsigned_leb128 (abfd, mac_ptr, &bytes_read);
11720 mac_ptr += bytes_read;
11721
11722 current_file = macro_start_file (file, line, current_file, comp_dir,
11723 lh, cu->objfile);
11724 }
11725 break;
11726
11727 case DW_MACINFO_end_file:
11728 /* No data to skip by MAC_PTR. */
11729 break;
11730
11731 case DW_MACINFO_vendor_ext:
11732 /* Only skip the data by MAC_PTR. */
11733 {
11734 unsigned int bytes_read;
11735
11736 read_unsigned_leb128 (abfd, mac_ptr, &bytes_read);
11737 mac_ptr += bytes_read;
11738 read_string (abfd, mac_ptr, &bytes_read);
11739 mac_ptr += bytes_read;
11740 }
11741 break;
11742
11743 default:
11744 break;
11745 }
11746 } while (macinfo_type != 0 && current_file == NULL);
11747
11748 /* Second pass: Process all entries.
11749
11750 Use the AT_COMMAND_LINE flag to determine whether we are still processing
11751 command-line macro definitions/undefinitions. This flag is unset when we
11752 reach the first DW_MACINFO_start_file entry. */
11753
11754 mac_ptr = dwarf2_per_objfile->macinfo.buffer + offset;
11755
11756 /* Determines if GDB is still before first DW_MACINFO_start_file. If true
11757 GDB is still reading the definitions from command line. First
11758 DW_MACINFO_start_file will need to be ignored as it was already executed
11759 to create CURRENT_FILE for the main source holding also the command line
11760 definitions. On first met DW_MACINFO_start_file this flag is reset to
11761 normally execute all the remaining DW_MACINFO_start_file macinfos. */
11762
11763 at_commandline = 1;
11764
11765 do
11766 {
11767 /* Do we at least have room for a macinfo type byte? */
11768 if (mac_ptr >= mac_end)
11769 {
11770 dwarf2_macros_too_long_complaint ();
11771 break;
11772 }
11773
11774 macinfo_type = read_1_byte (abfd, mac_ptr);
11775 mac_ptr++;
11776
11777 switch (macinfo_type)
11778 {
11779 /* A zero macinfo type indicates the end of the macro
11780 information. */
11781 case 0:
11782 break;
11783
11784 case DW_MACINFO_define:
11785 case DW_MACINFO_undef:
11786 {
11787 unsigned int bytes_read;
11788 int line;
11789 char *body;
11790
11791 line = read_unsigned_leb128 (abfd, mac_ptr, &bytes_read);
11792 mac_ptr += bytes_read;
11793 body = read_string (abfd, mac_ptr, &bytes_read);
11794 mac_ptr += bytes_read;
11795
11796 if (! current_file)
11797 {
11798 /* DWARF violation as no main source is present. */
11799 complaint (&symfile_complaints,
11800 _("debug info with no main source gives macro %s "
11801 "on line %d: %s"),
11802 macinfo_type == DW_MACINFO_define ?
11803 _("definition") :
11804 macinfo_type == DW_MACINFO_undef ?
11805 _("undefinition") :
11806 _("something-or-other"), line, body);
11807 break;
11808 }
11809 if ((line == 0 && !at_commandline) || (line != 0 && at_commandline))
11810 complaint (&symfile_complaints,
11811 _("debug info gives %s macro %s with %s line %d: %s"),
11812 at_commandline ? _("command-line") : _("in-file"),
11813 macinfo_type == DW_MACINFO_define ?
11814 _("definition") :
11815 macinfo_type == DW_MACINFO_undef ?
11816 _("undefinition") :
11817 _("something-or-other"),
11818 line == 0 ? _("zero") : _("non-zero"), line, body);
11819
11820 if (macinfo_type == DW_MACINFO_define)
11821 parse_macro_definition (current_file, line, body);
11822 else if (macinfo_type == DW_MACINFO_undef)
11823 macro_undef (current_file, line, body);
11824 }
11825 break;
11826
11827 case DW_MACINFO_start_file:
11828 {
11829 unsigned int bytes_read;
11830 int line, file;
11831
11832 line = read_unsigned_leb128 (abfd, mac_ptr, &bytes_read);
11833 mac_ptr += bytes_read;
11834 file = read_unsigned_leb128 (abfd, mac_ptr, &bytes_read);
11835 mac_ptr += bytes_read;
11836
11837 if ((line == 0 && !at_commandline) || (line != 0 && at_commandline))
11838 complaint (&symfile_complaints,
11839 _("debug info gives source %d included "
11840 "from %s at %s line %d"),
11841 file, at_commandline ? _("command-line") : _("file"),
11842 line == 0 ? _("zero") : _("non-zero"), line);
11843
11844 if (at_commandline)
11845 {
11846 /* This DW_MACINFO_start_file was executed in the pass one. */
11847 at_commandline = 0;
11848 }
11849 else
11850 current_file = macro_start_file (file, line,
11851 current_file, comp_dir,
11852 lh, cu->objfile);
11853 }
11854 break;
11855
11856 case DW_MACINFO_end_file:
11857 if (! current_file)
11858 complaint (&symfile_complaints,
11859 _("macro debug info has an unmatched `close_file' directive"));
11860 else
11861 {
11862 current_file = current_file->included_by;
11863 if (! current_file)
11864 {
11865 enum dwarf_macinfo_record_type next_type;
11866
11867 /* GCC circa March 2002 doesn't produce the zero
11868 type byte marking the end of the compilation
11869 unit. Complain if it's not there, but exit no
11870 matter what. */
11871
11872 /* Do we at least have room for a macinfo type byte? */
11873 if (mac_ptr >= mac_end)
11874 {
11875 dwarf2_macros_too_long_complaint ();
11876 return;
11877 }
11878
11879 /* We don't increment mac_ptr here, so this is just
11880 a look-ahead. */
11881 next_type = read_1_byte (abfd, mac_ptr);
11882 if (next_type != 0)
11883 complaint (&symfile_complaints,
11884 _("no terminating 0-type entry for macros in `.debug_macinfo' section"));
11885
11886 return;
11887 }
11888 }
11889 break;
11890
11891 case DW_MACINFO_vendor_ext:
11892 {
11893 unsigned int bytes_read;
11894 int constant;
11895 char *string;
11896
11897 constant = read_unsigned_leb128 (abfd, mac_ptr, &bytes_read);
11898 mac_ptr += bytes_read;
11899 string = read_string (abfd, mac_ptr, &bytes_read);
11900 mac_ptr += bytes_read;
11901
11902 /* We don't recognize any vendor extensions. */
11903 }
11904 break;
11905 }
11906 } while (macinfo_type != 0);
11907 }
11908
11909 /* Check if the attribute's form is a DW_FORM_block*
11910 if so return true else false. */
11911 static int
11912 attr_form_is_block (struct attribute *attr)
11913 {
11914 return (attr == NULL ? 0 :
11915 attr->form == DW_FORM_block1
11916 || attr->form == DW_FORM_block2
11917 || attr->form == DW_FORM_block4
11918 || attr->form == DW_FORM_block
11919 || attr->form == DW_FORM_exprloc);
11920 }
11921
11922 /* Return non-zero if ATTR's value is a section offset --- classes
11923 lineptr, loclistptr, macptr or rangelistptr --- or zero, otherwise.
11924 You may use DW_UNSND (attr) to retrieve such offsets.
11925
11926 Section 7.5.4, "Attribute Encodings", explains that no attribute
11927 may have a value that belongs to more than one of these classes; it
11928 would be ambiguous if we did, because we use the same forms for all
11929 of them. */
11930 static int
11931 attr_form_is_section_offset (struct attribute *attr)
11932 {
11933 return (attr->form == DW_FORM_data4
11934 || attr->form == DW_FORM_data8
11935 || attr->form == DW_FORM_sec_offset);
11936 }
11937
11938
11939 /* Return non-zero if ATTR's value falls in the 'constant' class, or
11940 zero otherwise. When this function returns true, you can apply
11941 dwarf2_get_attr_constant_value to it.
11942
11943 However, note that for some attributes you must check
11944 attr_form_is_section_offset before using this test. DW_FORM_data4
11945 and DW_FORM_data8 are members of both the constant class, and of
11946 the classes that contain offsets into other debug sections
11947 (lineptr, loclistptr, macptr or rangelistptr). The DWARF spec says
11948 that, if an attribute's can be either a constant or one of the
11949 section offset classes, DW_FORM_data4 and DW_FORM_data8 should be
11950 taken as section offsets, not constants. */
11951 static int
11952 attr_form_is_constant (struct attribute *attr)
11953 {
11954 switch (attr->form)
11955 {
11956 case DW_FORM_sdata:
11957 case DW_FORM_udata:
11958 case DW_FORM_data1:
11959 case DW_FORM_data2:
11960 case DW_FORM_data4:
11961 case DW_FORM_data8:
11962 return 1;
11963 default:
11964 return 0;
11965 }
11966 }
11967
11968 static void
11969 dwarf2_symbol_mark_computed (struct attribute *attr, struct symbol *sym,
11970 struct dwarf2_cu *cu)
11971 {
11972 if (attr_form_is_section_offset (attr)
11973 /* ".debug_loc" may not exist at all, or the offset may be outside
11974 the section. If so, fall through to the complaint in the
11975 other branch. */
11976 && DW_UNSND (attr) < dwarf2_per_objfile->loc.size)
11977 {
11978 struct dwarf2_loclist_baton *baton;
11979
11980 baton = obstack_alloc (&cu->objfile->objfile_obstack,
11981 sizeof (struct dwarf2_loclist_baton));
11982 baton->per_cu = cu->per_cu;
11983 gdb_assert (baton->per_cu);
11984
11985 dwarf2_read_section (dwarf2_per_objfile->objfile,
11986 &dwarf2_per_objfile->loc);
11987
11988 /* We don't know how long the location list is, but make sure we
11989 don't run off the edge of the section. */
11990 baton->size = dwarf2_per_objfile->loc.size - DW_UNSND (attr);
11991 baton->data = dwarf2_per_objfile->loc.buffer + DW_UNSND (attr);
11992 baton->base_address = cu->base_address;
11993 if (cu->base_known == 0)
11994 complaint (&symfile_complaints,
11995 _("Location list used without specifying the CU base address."));
11996
11997 SYMBOL_COMPUTED_OPS (sym) = &dwarf2_loclist_funcs;
11998 SYMBOL_LOCATION_BATON (sym) = baton;
11999 }
12000 else
12001 {
12002 struct dwarf2_locexpr_baton *baton;
12003
12004 baton = obstack_alloc (&cu->objfile->objfile_obstack,
12005 sizeof (struct dwarf2_locexpr_baton));
12006 baton->per_cu = cu->per_cu;
12007 gdb_assert (baton->per_cu);
12008
12009 if (attr_form_is_block (attr))
12010 {
12011 /* Note that we're just copying the block's data pointer
12012 here, not the actual data. We're still pointing into the
12013 info_buffer for SYM's objfile; right now we never release
12014 that buffer, but when we do clean up properly this may
12015 need to change. */
12016 baton->size = DW_BLOCK (attr)->size;
12017 baton->data = DW_BLOCK (attr)->data;
12018 }
12019 else
12020 {
12021 dwarf2_invalid_attrib_class_complaint ("location description",
12022 SYMBOL_NATURAL_NAME (sym));
12023 baton->size = 0;
12024 baton->data = NULL;
12025 }
12026
12027 SYMBOL_COMPUTED_OPS (sym) = &dwarf2_locexpr_funcs;
12028 SYMBOL_LOCATION_BATON (sym) = baton;
12029 }
12030 }
12031
12032 /* Return the OBJFILE associated with the compilation unit CU. */
12033
12034 struct objfile *
12035 dwarf2_per_cu_objfile (struct dwarf2_per_cu_data *per_cu)
12036 {
12037 struct objfile *objfile = per_cu->psymtab->objfile;
12038
12039 /* Return the master objfile, so that we can report and look up the
12040 correct file containing this variable. */
12041 if (objfile->separate_debug_objfile_backlink)
12042 objfile = objfile->separate_debug_objfile_backlink;
12043
12044 return objfile;
12045 }
12046
12047 /* Return the address size given in the compilation unit header for CU. */
12048
12049 CORE_ADDR
12050 dwarf2_per_cu_addr_size (struct dwarf2_per_cu_data *per_cu)
12051 {
12052 if (per_cu->cu)
12053 return per_cu->cu->header.addr_size;
12054 else
12055 {
12056 /* If the CU is not currently read in, we re-read its header. */
12057 struct objfile *objfile = per_cu->psymtab->objfile;
12058 struct dwarf2_per_objfile *per_objfile
12059 = objfile_data (objfile, dwarf2_objfile_data_key);
12060 gdb_byte *info_ptr = per_objfile->info.buffer + per_cu->offset;
12061 struct comp_unit_head cu_header;
12062
12063 memset (&cu_header, 0, sizeof cu_header);
12064 read_comp_unit_head (&cu_header, info_ptr, objfile->obfd);
12065 return cu_header.addr_size;
12066 }
12067 }
12068
12069 /* Return the offset size given in the compilation unit header for CU. */
12070
12071 int
12072 dwarf2_per_cu_offset_size (struct dwarf2_per_cu_data *per_cu)
12073 {
12074 if (per_cu->cu)
12075 return per_cu->cu->header.offset_size;
12076 else
12077 {
12078 /* If the CU is not currently read in, we re-read its header. */
12079 struct objfile *objfile = per_cu->psymtab->objfile;
12080 struct dwarf2_per_objfile *per_objfile
12081 = objfile_data (objfile, dwarf2_objfile_data_key);
12082 gdb_byte *info_ptr = per_objfile->info.buffer + per_cu->offset;
12083 struct comp_unit_head cu_header;
12084
12085 memset (&cu_header, 0, sizeof cu_header);
12086 read_comp_unit_head (&cu_header, info_ptr, objfile->obfd);
12087 return cu_header.offset_size;
12088 }
12089 }
12090
12091 /* Locate the .debug_info compilation unit from CU's objfile which contains
12092 the DIE at OFFSET. Raises an error on failure. */
12093
12094 static struct dwarf2_per_cu_data *
12095 dwarf2_find_containing_comp_unit (unsigned int offset,
12096 struct objfile *objfile)
12097 {
12098 struct dwarf2_per_cu_data *this_cu;
12099 int low, high;
12100
12101 low = 0;
12102 high = dwarf2_per_objfile->n_comp_units - 1;
12103 while (high > low)
12104 {
12105 int mid = low + (high - low) / 2;
12106
12107 if (dwarf2_per_objfile->all_comp_units[mid]->offset >= offset)
12108 high = mid;
12109 else
12110 low = mid + 1;
12111 }
12112 gdb_assert (low == high);
12113 if (dwarf2_per_objfile->all_comp_units[low]->offset > offset)
12114 {
12115 if (low == 0)
12116 error (_("Dwarf Error: could not find partial DIE containing "
12117 "offset 0x%lx [in module %s]"),
12118 (long) offset, bfd_get_filename (objfile->obfd));
12119
12120 gdb_assert (dwarf2_per_objfile->all_comp_units[low-1]->offset <= offset);
12121 return dwarf2_per_objfile->all_comp_units[low-1];
12122 }
12123 else
12124 {
12125 this_cu = dwarf2_per_objfile->all_comp_units[low];
12126 if (low == dwarf2_per_objfile->n_comp_units - 1
12127 && offset >= this_cu->offset + this_cu->length)
12128 error (_("invalid dwarf2 offset %u"), offset);
12129 gdb_assert (offset < this_cu->offset + this_cu->length);
12130 return this_cu;
12131 }
12132 }
12133
12134 /* Locate the compilation unit from OBJFILE which is located at exactly
12135 OFFSET. Raises an error on failure. */
12136
12137 static struct dwarf2_per_cu_data *
12138 dwarf2_find_comp_unit (unsigned int offset, struct objfile *objfile)
12139 {
12140 struct dwarf2_per_cu_data *this_cu;
12141
12142 this_cu = dwarf2_find_containing_comp_unit (offset, objfile);
12143 if (this_cu->offset != offset)
12144 error (_("no compilation unit with offset %u."), offset);
12145 return this_cu;
12146 }
12147
12148 /* Malloc space for a dwarf2_cu for OBJFILE and initialize it. */
12149
12150 static struct dwarf2_cu *
12151 alloc_one_comp_unit (struct objfile *objfile)
12152 {
12153 struct dwarf2_cu *cu = xcalloc (1, sizeof (struct dwarf2_cu));
12154 cu->objfile = objfile;
12155 obstack_init (&cu->comp_unit_obstack);
12156 return cu;
12157 }
12158
12159 /* Release one cached compilation unit, CU. We unlink it from the tree
12160 of compilation units, but we don't remove it from the read_in_chain;
12161 the caller is responsible for that.
12162 NOTE: DATA is a void * because this function is also used as a
12163 cleanup routine. */
12164
12165 static void
12166 free_one_comp_unit (void *data)
12167 {
12168 struct dwarf2_cu *cu = data;
12169
12170 if (cu->per_cu != NULL)
12171 cu->per_cu->cu = NULL;
12172 cu->per_cu = NULL;
12173
12174 obstack_free (&cu->comp_unit_obstack, NULL);
12175
12176 xfree (cu);
12177 }
12178
12179 /* This cleanup function is passed the address of a dwarf2_cu on the stack
12180 when we're finished with it. We can't free the pointer itself, but be
12181 sure to unlink it from the cache. Also release any associated storage
12182 and perform cache maintenance.
12183
12184 Only used during partial symbol parsing. */
12185
12186 static void
12187 free_stack_comp_unit (void *data)
12188 {
12189 struct dwarf2_cu *cu = data;
12190
12191 obstack_free (&cu->comp_unit_obstack, NULL);
12192 cu->partial_dies = NULL;
12193
12194 if (cu->per_cu != NULL)
12195 {
12196 /* This compilation unit is on the stack in our caller, so we
12197 should not xfree it. Just unlink it. */
12198 cu->per_cu->cu = NULL;
12199 cu->per_cu = NULL;
12200
12201 /* If we had a per-cu pointer, then we may have other compilation
12202 units loaded, so age them now. */
12203 age_cached_comp_units ();
12204 }
12205 }
12206
12207 /* Free all cached compilation units. */
12208
12209 static void
12210 free_cached_comp_units (void *data)
12211 {
12212 struct dwarf2_per_cu_data *per_cu, **last_chain;
12213
12214 per_cu = dwarf2_per_objfile->read_in_chain;
12215 last_chain = &dwarf2_per_objfile->read_in_chain;
12216 while (per_cu != NULL)
12217 {
12218 struct dwarf2_per_cu_data *next_cu;
12219
12220 next_cu = per_cu->cu->read_in_chain;
12221
12222 free_one_comp_unit (per_cu->cu);
12223 *last_chain = next_cu;
12224
12225 per_cu = next_cu;
12226 }
12227 }
12228
12229 /* Increase the age counter on each cached compilation unit, and free
12230 any that are too old. */
12231
12232 static void
12233 age_cached_comp_units (void)
12234 {
12235 struct dwarf2_per_cu_data *per_cu, **last_chain;
12236
12237 dwarf2_clear_marks (dwarf2_per_objfile->read_in_chain);
12238 per_cu = dwarf2_per_objfile->read_in_chain;
12239 while (per_cu != NULL)
12240 {
12241 per_cu->cu->last_used ++;
12242 if (per_cu->cu->last_used <= dwarf2_max_cache_age)
12243 dwarf2_mark (per_cu->cu);
12244 per_cu = per_cu->cu->read_in_chain;
12245 }
12246
12247 per_cu = dwarf2_per_objfile->read_in_chain;
12248 last_chain = &dwarf2_per_objfile->read_in_chain;
12249 while (per_cu != NULL)
12250 {
12251 struct dwarf2_per_cu_data *next_cu;
12252
12253 next_cu = per_cu->cu->read_in_chain;
12254
12255 if (!per_cu->cu->mark)
12256 {
12257 free_one_comp_unit (per_cu->cu);
12258 *last_chain = next_cu;
12259 }
12260 else
12261 last_chain = &per_cu->cu->read_in_chain;
12262
12263 per_cu = next_cu;
12264 }
12265 }
12266
12267 /* Remove a single compilation unit from the cache. */
12268
12269 static void
12270 free_one_cached_comp_unit (void *target_cu)
12271 {
12272 struct dwarf2_per_cu_data *per_cu, **last_chain;
12273
12274 per_cu = dwarf2_per_objfile->read_in_chain;
12275 last_chain = &dwarf2_per_objfile->read_in_chain;
12276 while (per_cu != NULL)
12277 {
12278 struct dwarf2_per_cu_data *next_cu;
12279
12280 next_cu = per_cu->cu->read_in_chain;
12281
12282 if (per_cu->cu == target_cu)
12283 {
12284 free_one_comp_unit (per_cu->cu);
12285 *last_chain = next_cu;
12286 break;
12287 }
12288 else
12289 last_chain = &per_cu->cu->read_in_chain;
12290
12291 per_cu = next_cu;
12292 }
12293 }
12294
12295 /* Release all extra memory associated with OBJFILE. */
12296
12297 void
12298 dwarf2_free_objfile (struct objfile *objfile)
12299 {
12300 dwarf2_per_objfile = objfile_data (objfile, dwarf2_objfile_data_key);
12301
12302 if (dwarf2_per_objfile == NULL)
12303 return;
12304
12305 /* Cached DIE trees use xmalloc and the comp_unit_obstack. */
12306 free_cached_comp_units (NULL);
12307
12308 /* Everything else should be on the objfile obstack. */
12309 }
12310
12311 /* A pair of DIE offset and GDB type pointer. We store these
12312 in a hash table separate from the DIEs, and preserve them
12313 when the DIEs are flushed out of cache. */
12314
12315 struct dwarf2_offset_and_type
12316 {
12317 unsigned int offset;
12318 struct type *type;
12319 };
12320
12321 /* Hash function for a dwarf2_offset_and_type. */
12322
12323 static hashval_t
12324 offset_and_type_hash (const void *item)
12325 {
12326 const struct dwarf2_offset_and_type *ofs = item;
12327
12328 return ofs->offset;
12329 }
12330
12331 /* Equality function for a dwarf2_offset_and_type. */
12332
12333 static int
12334 offset_and_type_eq (const void *item_lhs, const void *item_rhs)
12335 {
12336 const struct dwarf2_offset_and_type *ofs_lhs = item_lhs;
12337 const struct dwarf2_offset_and_type *ofs_rhs = item_rhs;
12338
12339 return ofs_lhs->offset == ofs_rhs->offset;
12340 }
12341
12342 /* Set the type associated with DIE to TYPE. Save it in CU's hash
12343 table if necessary. For convenience, return TYPE.
12344
12345 The DIEs reading must have careful ordering to:
12346 * Not cause infite loops trying to read in DIEs as a prerequisite for
12347 reading current DIE.
12348 * Not trying to dereference contents of still incompletely read in types
12349 while reading in other DIEs.
12350 * Enable referencing still incompletely read in types just by a pointer to
12351 the type without accessing its fields.
12352
12353 Therefore caller should follow these rules:
12354 * Try to fetch any prerequisite types we may need to build this DIE type
12355 before building the type and calling set_die_type.
12356 * After building typer call set_die_type for current DIE as soon as
12357 possible before fetching more types to complete the current type.
12358 * Make the type as complete as possible before fetching more types. */
12359
12360 static struct type *
12361 set_die_type (struct die_info *die, struct type *type, struct dwarf2_cu *cu)
12362 {
12363 struct dwarf2_offset_and_type **slot, ofs;
12364
12365 /* For Ada types, make sure that the gnat-specific data is always
12366 initialized (if not already set). There are a few types where
12367 we should not be doing so, because the type-specific area is
12368 already used to hold some other piece of info (eg: TYPE_CODE_FLT
12369 where the type-specific area is used to store the floatformat).
12370 But this is not a problem, because the gnat-specific information
12371 is actually not needed for these types. */
12372 if (need_gnat_info (cu)
12373 && TYPE_CODE (type) != TYPE_CODE_FUNC
12374 && TYPE_CODE (type) != TYPE_CODE_FLT
12375 && !HAVE_GNAT_AUX_INFO (type))
12376 INIT_GNAT_SPECIFIC (type);
12377
12378 if (cu->type_hash == NULL)
12379 {
12380 gdb_assert (cu->per_cu != NULL);
12381 cu->per_cu->type_hash
12382 = htab_create_alloc_ex (cu->header.length / 24,
12383 offset_and_type_hash,
12384 offset_and_type_eq,
12385 NULL,
12386 &cu->objfile->objfile_obstack,
12387 hashtab_obstack_allocate,
12388 dummy_obstack_deallocate);
12389 cu->type_hash = cu->per_cu->type_hash;
12390 }
12391
12392 ofs.offset = die->offset;
12393 ofs.type = type;
12394 slot = (struct dwarf2_offset_and_type **)
12395 htab_find_slot_with_hash (cu->type_hash, &ofs, ofs.offset, INSERT);
12396 if (*slot)
12397 complaint (&symfile_complaints,
12398 _("A problem internal to GDB: DIE 0x%x has type already set"),
12399 die->offset);
12400 *slot = obstack_alloc (&cu->objfile->objfile_obstack, sizeof (**slot));
12401 **slot = ofs;
12402 return type;
12403 }
12404
12405 /* Find the type for DIE in CU's type_hash, or return NULL if DIE does
12406 not have a saved type. */
12407
12408 static struct type *
12409 get_die_type (struct die_info *die, struct dwarf2_cu *cu)
12410 {
12411 struct dwarf2_offset_and_type *slot, ofs;
12412 htab_t type_hash = cu->type_hash;
12413
12414 if (type_hash == NULL)
12415 return NULL;
12416
12417 ofs.offset = die->offset;
12418 slot = htab_find_with_hash (type_hash, &ofs, ofs.offset);
12419 if (slot)
12420 return slot->type;
12421 else
12422 return NULL;
12423 }
12424
12425 /* Add a dependence relationship from CU to REF_PER_CU. */
12426
12427 static void
12428 dwarf2_add_dependence (struct dwarf2_cu *cu,
12429 struct dwarf2_per_cu_data *ref_per_cu)
12430 {
12431 void **slot;
12432
12433 if (cu->dependencies == NULL)
12434 cu->dependencies
12435 = htab_create_alloc_ex (5, htab_hash_pointer, htab_eq_pointer,
12436 NULL, &cu->comp_unit_obstack,
12437 hashtab_obstack_allocate,
12438 dummy_obstack_deallocate);
12439
12440 slot = htab_find_slot (cu->dependencies, ref_per_cu, INSERT);
12441 if (*slot == NULL)
12442 *slot = ref_per_cu;
12443 }
12444
12445 /* Subroutine of dwarf2_mark to pass to htab_traverse.
12446 Set the mark field in every compilation unit in the
12447 cache that we must keep because we are keeping CU. */
12448
12449 static int
12450 dwarf2_mark_helper (void **slot, void *data)
12451 {
12452 struct dwarf2_per_cu_data *per_cu;
12453
12454 per_cu = (struct dwarf2_per_cu_data *) *slot;
12455 if (per_cu->cu->mark)
12456 return 1;
12457 per_cu->cu->mark = 1;
12458
12459 if (per_cu->cu->dependencies != NULL)
12460 htab_traverse (per_cu->cu->dependencies, dwarf2_mark_helper, NULL);
12461
12462 return 1;
12463 }
12464
12465 /* Set the mark field in CU and in every other compilation unit in the
12466 cache that we must keep because we are keeping CU. */
12467
12468 static void
12469 dwarf2_mark (struct dwarf2_cu *cu)
12470 {
12471 if (cu->mark)
12472 return;
12473 cu->mark = 1;
12474 if (cu->dependencies != NULL)
12475 htab_traverse (cu->dependencies, dwarf2_mark_helper, NULL);
12476 }
12477
12478 static void
12479 dwarf2_clear_marks (struct dwarf2_per_cu_data *per_cu)
12480 {
12481 while (per_cu)
12482 {
12483 per_cu->cu->mark = 0;
12484 per_cu = per_cu->cu->read_in_chain;
12485 }
12486 }
12487
12488 /* Trivial hash function for partial_die_info: the hash value of a DIE
12489 is its offset in .debug_info for this objfile. */
12490
12491 static hashval_t
12492 partial_die_hash (const void *item)
12493 {
12494 const struct partial_die_info *part_die = item;
12495
12496 return part_die->offset;
12497 }
12498
12499 /* Trivial comparison function for partial_die_info structures: two DIEs
12500 are equal if they have the same offset. */
12501
12502 static int
12503 partial_die_eq (const void *item_lhs, const void *item_rhs)
12504 {
12505 const struct partial_die_info *part_die_lhs = item_lhs;
12506 const struct partial_die_info *part_die_rhs = item_rhs;
12507
12508 return part_die_lhs->offset == part_die_rhs->offset;
12509 }
12510
12511 static struct cmd_list_element *set_dwarf2_cmdlist;
12512 static struct cmd_list_element *show_dwarf2_cmdlist;
12513
12514 static void
12515 set_dwarf2_cmd (char *args, int from_tty)
12516 {
12517 help_list (set_dwarf2_cmdlist, "maintenance set dwarf2 ", -1, gdb_stdout);
12518 }
12519
12520 static void
12521 show_dwarf2_cmd (char *args, int from_tty)
12522 {
12523 cmd_show_list (show_dwarf2_cmdlist, from_tty, "");
12524 }
12525
12526 /* If section described by INFO was mmapped, munmap it now. */
12527
12528 static void
12529 munmap_section_buffer (struct dwarf2_section_info *info)
12530 {
12531 if (info->was_mmapped)
12532 {
12533 #ifdef HAVE_MMAP
12534 intptr_t begin = (intptr_t) info->buffer;
12535 intptr_t map_begin = begin & ~(pagesize - 1);
12536 size_t map_length = info->size + begin - map_begin;
12537
12538 gdb_assert (munmap ((void *) map_begin, map_length) == 0);
12539 #else
12540 /* Without HAVE_MMAP, we should never be here to begin with. */
12541 gdb_assert (0);
12542 #endif
12543 }
12544 }
12545
12546 /* munmap debug sections for OBJFILE, if necessary. */
12547
12548 static void
12549 dwarf2_per_objfile_free (struct objfile *objfile, void *d)
12550 {
12551 struct dwarf2_per_objfile *data = d;
12552
12553 munmap_section_buffer (&data->info);
12554 munmap_section_buffer (&data->abbrev);
12555 munmap_section_buffer (&data->line);
12556 munmap_section_buffer (&data->str);
12557 munmap_section_buffer (&data->macinfo);
12558 munmap_section_buffer (&data->ranges);
12559 munmap_section_buffer (&data->loc);
12560 munmap_section_buffer (&data->frame);
12561 munmap_section_buffer (&data->eh_frame);
12562 }
12563
12564 int dwarf2_always_disassemble;
12565
12566 static void
12567 show_dwarf2_always_disassemble (struct ui_file *file, int from_tty,
12568 struct cmd_list_element *c, const char *value)
12569 {
12570 fprintf_filtered (file, _("\
12571 Whether to always disassemble DWARF expressions is %s.\n"),
12572 value);
12573 }
12574
12575 void _initialize_dwarf2_read (void);
12576
12577 void
12578 _initialize_dwarf2_read (void)
12579 {
12580 dwarf2_objfile_data_key
12581 = register_objfile_data_with_cleanup (NULL, dwarf2_per_objfile_free);
12582
12583 add_prefix_cmd ("dwarf2", class_maintenance, set_dwarf2_cmd, _("\
12584 Set DWARF 2 specific variables.\n\
12585 Configure DWARF 2 variables such as the cache size"),
12586 &set_dwarf2_cmdlist, "maintenance set dwarf2 ",
12587 0/*allow-unknown*/, &maintenance_set_cmdlist);
12588
12589 add_prefix_cmd ("dwarf2", class_maintenance, show_dwarf2_cmd, _("\
12590 Show DWARF 2 specific variables\n\
12591 Show DWARF 2 variables such as the cache size"),
12592 &show_dwarf2_cmdlist, "maintenance show dwarf2 ",
12593 0/*allow-unknown*/, &maintenance_show_cmdlist);
12594
12595 add_setshow_zinteger_cmd ("max-cache-age", class_obscure,
12596 &dwarf2_max_cache_age, _("\
12597 Set the upper bound on the age of cached dwarf2 compilation units."), _("\
12598 Show the upper bound on the age of cached dwarf2 compilation units."), _("\
12599 A higher limit means that cached compilation units will be stored\n\
12600 in memory longer, and more total memory will be used. Zero disables\n\
12601 caching, which can slow down startup."),
12602 NULL,
12603 show_dwarf2_max_cache_age,
12604 &set_dwarf2_cmdlist,
12605 &show_dwarf2_cmdlist);
12606
12607 add_setshow_boolean_cmd ("always-disassemble", class_obscure,
12608 &dwarf2_always_disassemble, _("\
12609 Set whether `info address' always disassembles DWARF expressions."), _("\
12610 Show whether `info address' always disassembles DWARF expressions."), _("\
12611 When enabled, DWARF expressions are always printed in an assembly-like\n\
12612 syntax. When disabled, expressions will be printed in a more\n\
12613 conversational style, when possible."),
12614 NULL,
12615 show_dwarf2_always_disassemble,
12616 &set_dwarf2_cmdlist,
12617 &show_dwarf2_cmdlist);
12618
12619 add_setshow_zinteger_cmd ("dwarf2-die", no_class, &dwarf2_die_debug, _("\
12620 Set debugging of the dwarf2 DIE reader."), _("\
12621 Show debugging of the dwarf2 DIE reader."), _("\
12622 When enabled (non-zero), DIEs are dumped after they are read in.\n\
12623 The value is the maximum depth to print."),
12624 NULL,
12625 NULL,
12626 &setdebuglist, &showdebuglist);
12627 }
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