2002-09-18 Michael Snyder <msnyder@redhat.com>
[deliverable/binutils-gdb.git] / gdb / stabsread.c
CommitLineData
c906108c 1/* Support routines for decoding "stabs" debugging information format.
b6ba6518 2 Copyright 1986, 1987, 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995,
fedbd091 3 1996, 1997, 1998, 1999, 2000, 2001, 2002
c5aa993b 4 Free Software Foundation, Inc.
c906108c 5
c5aa993b 6 This file is part of GDB.
c906108c 7
c5aa993b
JM
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2 of the License, or
11 (at your option) any later version.
c906108c 12
c5aa993b
JM
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
c906108c 17
c5aa993b
JM
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, write to the Free Software
20 Foundation, Inc., 59 Temple Place - Suite 330,
21 Boston, MA 02111-1307, USA. */
c906108c
SS
22
23/* Support routines for reading and decoding debugging information in
24 the "stabs" format. This format is used with many systems that use
25 the a.out object file format, as well as some systems that use
26 COFF or ELF where the stabs data is placed in a special section.
27 Avoid placing any object file format specific code in this file. */
28
29#include "defs.h"
30#include "gdb_string.h"
31#include "bfd.h"
04ea0df1 32#include "gdb_obstack.h"
c906108c
SS
33#include "symtab.h"
34#include "gdbtypes.h"
35#include "expression.h"
36#include "symfile.h"
37#include "objfiles.h"
38#include "aout/stab_gnu.h" /* We always use GNU stabs, not native */
39#include "libaout.h"
40#include "aout/aout64.h"
41#include "gdb-stabs.h"
42#include "buildsym.h"
43#include "complaints.h"
44#include "demangle.h"
45#include "language.h"
d16aafd8 46#include "doublest.h"
de17c821
DJ
47#include "cp-abi.h"
48#include "cp-support.h"
c906108c
SS
49
50#include <ctype.h>
51
52/* Ask stabsread.h to define the vars it normally declares `extern'. */
c5aa993b
JM
53#define EXTERN
54/**/
c906108c
SS
55#include "stabsread.h" /* Our own declarations */
56#undef EXTERN
57
a14ed312 58extern void _initialize_stabsread (void);
392a587b 59
c906108c
SS
60/* The routines that read and process a complete stabs for a C struct or
61 C++ class pass lists of data member fields and lists of member function
62 fields in an instance of a field_info structure, as defined below.
63 This is part of some reorganization of low level C++ support and is
64 expected to eventually go away... (FIXME) */
65
66struct field_info
c5aa993b
JM
67 {
68 struct nextfield
69 {
70 struct nextfield *next;
c906108c 71
c5aa993b
JM
72 /* This is the raw visibility from the stab. It is not checked
73 for being one of the visibilities we recognize, so code which
74 examines this field better be able to deal. */
75 int visibility;
c906108c 76
c5aa993b
JM
77 struct field field;
78 }
79 *list;
80 struct next_fnfieldlist
81 {
82 struct next_fnfieldlist *next;
83 struct fn_fieldlist fn_fieldlist;
84 }
85 *fnlist;
86 };
c906108c
SS
87
88static void
a14ed312
KB
89read_one_struct_field (struct field_info *, char **, char *,
90 struct type *, struct objfile *);
c906108c 91
a14ed312 92static char *get_substring (char **, int);
c906108c 93
a14ed312 94static struct type *dbx_alloc_type (int[2], struct objfile *);
c906108c 95
a14ed312 96static long read_huge_number (char **, int, int *);
c906108c 97
a14ed312 98static struct type *error_type (char **, struct objfile *);
c906108c
SS
99
100static void
a14ed312
KB
101patch_block_stabs (struct pending *, struct pending_stabs *,
102 struct objfile *);
c906108c 103
a14ed312 104static void fix_common_block (struct symbol *, int);
c906108c 105
a14ed312 106static int read_type_number (char **, int *);
c906108c 107
a14ed312 108static struct type *read_range_type (char **, int[2], struct objfile *);
c906108c 109
a14ed312 110static struct type *read_sun_builtin_type (char **, int[2], struct objfile *);
c906108c 111
a14ed312
KB
112static struct type *read_sun_floating_type (char **, int[2],
113 struct objfile *);
c906108c 114
a14ed312 115static struct type *read_enum_type (char **, struct type *, struct objfile *);
c906108c 116
a14ed312 117static struct type *rs6000_builtin_type (int);
c906108c
SS
118
119static int
a14ed312
KB
120read_member_functions (struct field_info *, char **, struct type *,
121 struct objfile *);
c906108c
SS
122
123static int
a14ed312
KB
124read_struct_fields (struct field_info *, char **, struct type *,
125 struct objfile *);
c906108c
SS
126
127static int
a14ed312
KB
128read_baseclasses (struct field_info *, char **, struct type *,
129 struct objfile *);
c906108c
SS
130
131static int
a14ed312
KB
132read_tilde_fields (struct field_info *, char **, struct type *,
133 struct objfile *);
c906108c 134
a14ed312 135static int attach_fn_fields_to_type (struct field_info *, struct type *);
c906108c
SS
136
137static int
a14ed312 138attach_fields_to_type (struct field_info *, struct type *, struct objfile *);
c906108c 139
a14ed312 140static struct type *read_struct_type (char **, struct type *,
2ae1c2d2 141 enum type_code,
a14ed312 142 struct objfile *);
c906108c 143
a14ed312
KB
144static struct type *read_array_type (char **, struct type *,
145 struct objfile *);
c906108c 146
ad2f7632 147static struct field *read_args (char **, int, struct objfile *, int *, int *);
c906108c
SS
148
149static int
a14ed312
KB
150read_cpp_abbrev (struct field_info *, char **, struct type *,
151 struct objfile *);
c906108c
SS
152
153/* new functions added for cfront support */
154
155static int
a14ed312
KB
156copy_cfront_struct_fields (struct field_info *, struct type *,
157 struct objfile *);
c906108c 158
a14ed312 159static char *get_cfront_method_physname (char *);
c906108c
SS
160
161static int
a14ed312
KB
162read_cfront_baseclasses (struct field_info *, char **,
163 struct type *, struct objfile *);
c906108c
SS
164
165static int
a14ed312
KB
166read_cfront_static_fields (struct field_info *, char **,
167 struct type *, struct objfile *);
c906108c 168static int
a14ed312
KB
169read_cfront_member_functions (struct field_info *, char **,
170 struct type *, struct objfile *);
c906108c
SS
171
172/* end new functions added for cfront support */
173
174static void
a14ed312 175add_live_range (struct objfile *, struct symbol *, CORE_ADDR, CORE_ADDR);
c906108c 176
a14ed312 177static int resolve_live_range (struct objfile *, struct symbol *, char *);
c906108c 178
a14ed312 179static int process_reference (char **string);
c906108c 180
a14ed312 181static CORE_ADDR ref_search_value (int refnum);
c906108c
SS
182
183static int
a14ed312 184resolve_symbol_reference (struct objfile *, struct symbol *, char *);
c906108c 185
a14ed312 186void stabsread_clear_cache (void);
7be570e7 187
c5aa993b
JM
188static const char vptr_name[] =
189{'_', 'v', 'p', 't', 'r', CPLUS_MARKER, '\0'};
190static const char vb_name[] =
191{'_', 'v', 'b', CPLUS_MARKER, '\0'};
c906108c
SS
192
193/* Define this as 1 if a pcc declaration of a char or short argument
194 gives the correct address. Otherwise assume pcc gives the
195 address of the corresponding int, which is not the same on a
196 big-endian machine. */
197
7a292a7a 198#if !defined (BELIEVE_PCC_PROMOTION)
c906108c
SS
199#define BELIEVE_PCC_PROMOTION 0
200#endif
7a292a7a
SS
201#if !defined (BELIEVE_PCC_PROMOTION_TYPE)
202#define BELIEVE_PCC_PROMOTION_TYPE 0
203#endif
c906108c
SS
204
205static struct complaint invalid_cpp_abbrev_complaint =
c5aa993b 206{"invalid C++ abbreviation `%s'", 0, 0};
c906108c
SS
207
208static struct complaint invalid_cpp_type_complaint =
c5aa993b 209{"C++ abbreviated type name unknown at symtab pos %d", 0, 0};
c906108c
SS
210
211static struct complaint member_fn_complaint =
c5aa993b 212{"member function type missing, got '%c'", 0, 0};
c906108c
SS
213
214static struct complaint const_vol_complaint =
c5aa993b 215{"const/volatile indicator missing, got '%c'", 0, 0};
c906108c
SS
216
217static struct complaint error_type_complaint =
0f5881fa 218{"couldn't parse type; debugger out of date?", 0, 0};
c906108c
SS
219
220static struct complaint invalid_member_complaint =
c5aa993b 221{"invalid (minimal) member type data format at symtab pos %d.", 0, 0};
c906108c
SS
222
223static struct complaint range_type_base_complaint =
c5aa993b 224{"base type %d of range type is not defined", 0, 0};
c906108c
SS
225
226static struct complaint reg_value_complaint =
c5aa993b 227{"register number %d too large (max %d) in symbol %s", 0, 0};
c906108c
SS
228
229static struct complaint vtbl_notfound_complaint =
c5aa993b 230{"virtual function table pointer not found when defining class `%s'", 0, 0};
c906108c
SS
231
232static struct complaint unrecognized_cplus_name_complaint =
c5aa993b 233{"Unknown C++ symbol name `%s'", 0, 0};
c906108c
SS
234
235static struct complaint rs6000_builtin_complaint =
c5aa993b 236{"Unknown builtin type %d", 0, 0};
c906108c
SS
237
238static struct complaint unresolved_sym_chain_complaint =
c5aa993b 239{"%s: common block `%s' from global_sym_chain unresolved", 0, 0};
c906108c
SS
240
241static struct complaint stabs_general_complaint =
c5aa993b 242{"%s", 0, 0};
c906108c
SS
243
244static struct complaint lrs_general_complaint =
c5aa993b 245{"%s", 0, 0};
c906108c
SS
246
247/* Make a list of forward references which haven't been defined. */
248
249static struct type **undef_types;
250static int undef_types_allocated;
251static int undef_types_length;
252static struct symbol *current_symbol = NULL;
253
254/* Check for and handle cretinous stabs symbol name continuation! */
255#define STABS_CONTINUE(pp,objfile) \
256 do { \
257 if (**(pp) == '\\' || (**(pp) == '?' && (*(pp))[1] == '\0')) \
258 *(pp) = next_symbol_text (objfile); \
259 } while (0)
260\f
cdecafbe
EZ
261#if 0 /* OBSOLETE OS9K */
262// OBSOLETE /* FIXME: These probably should be our own types (like rs6000_builtin_type
263// OBSOLETE has its own types) rather than builtin_type_*. */
264// OBSOLETE static struct type **os9k_type_vector[] =
265// OBSOLETE {
266// OBSOLETE 0,
267// OBSOLETE &builtin_type_int,
268// OBSOLETE &builtin_type_char,
269// OBSOLETE &builtin_type_long,
270// OBSOLETE &builtin_type_short,
271// OBSOLETE &builtin_type_unsigned_char,
272// OBSOLETE &builtin_type_unsigned_short,
273// OBSOLETE &builtin_type_unsigned_long,
274// OBSOLETE &builtin_type_unsigned_int,
275// OBSOLETE &builtin_type_float,
276// OBSOLETE &builtin_type_double,
277// OBSOLETE &builtin_type_void,
278// OBSOLETE &builtin_type_long_double
279// OBSOLETE };
280// OBSOLETE
281// OBSOLETE static void os9k_init_type_vector (struct type **);
282// OBSOLETE
283// OBSOLETE static void
284// OBSOLETE os9k_init_type_vector (struct type **tv)
285// OBSOLETE {
286// OBSOLETE unsigned int i;
287// OBSOLETE for (i = 0; i < sizeof (os9k_type_vector) / sizeof (struct type **); i++)
288// OBSOLETE tv[i] = (os9k_type_vector[i] == 0 ? 0 : *(os9k_type_vector[i]));
289// OBSOLETE }
290#endif /* OBSOLETE OS9K */
c906108c
SS
291
292/* Look up a dbx type-number pair. Return the address of the slot
293 where the type for that number-pair is stored.
294 The number-pair is in TYPENUMS.
295
296 This can be used for finding the type associated with that pair
297 or for associating a new type with the pair. */
298
299struct type **
35a2f538 300dbx_lookup_type (int typenums[2])
c906108c
SS
301{
302 register int filenum = typenums[0];
303 register int index = typenums[1];
304 unsigned old_len;
305 register int real_filenum;
306 register struct header_file *f;
307 int f_orig_length;
308
309 if (filenum == -1) /* -1,-1 is for temporary types. */
310 return 0;
311
312 if (filenum < 0 || filenum >= n_this_object_header_files)
313 {
c5aa993b
JM
314 static struct complaint msg =
315 {"\
c906108c 316Invalid symbol data: type number (%d,%d) out of range at symtab pos %d.",
c5aa993b 317 0, 0};
c906108c
SS
318 complain (&msg, filenum, index, symnum);
319 goto error_return;
320 }
321
322 if (filenum == 0)
323 {
324 if (index < 0)
325 {
326 /* Caller wants address of address of type. We think
327 that negative (rs6k builtin) types will never appear as
328 "lvalues", (nor should they), so we stuff the real type
329 pointer into a temp, and return its address. If referenced,
330 this will do the right thing. */
331 static struct type *temp_type;
332
c5aa993b 333 temp_type = rs6000_builtin_type (index);
c906108c
SS
334 return &temp_type;
335 }
336
337 /* Type is defined outside of header files.
c5aa993b 338 Find it in this object file's type vector. */
c906108c
SS
339 if (index >= type_vector_length)
340 {
341 old_len = type_vector_length;
342 if (old_len == 0)
343 {
344 type_vector_length = INITIAL_TYPE_VECTOR_LENGTH;
345 type_vector = (struct type **)
346 xmalloc (type_vector_length * sizeof (struct type *));
347 }
348 while (index >= type_vector_length)
349 {
350 type_vector_length *= 2;
351 }
352 type_vector = (struct type **)
353 xrealloc ((char *) type_vector,
354 (type_vector_length * sizeof (struct type *)));
355 memset (&type_vector[old_len], 0,
356 (type_vector_length - old_len) * sizeof (struct type *));
357
cdecafbe
EZ
358#if 0 /* OBSOLETE OS9K */
359// OBSOLETE if (os9k_stabs)
360// OBSOLETE /* Deal with OS9000 fundamental types. */
361// OBSOLETE os9k_init_type_vector (type_vector);
362#endif /* OBSOLETE OS9K */
c906108c
SS
363 }
364 return (&type_vector[index]);
365 }
366 else
367 {
368 real_filenum = this_object_header_files[filenum];
369
370 if (real_filenum >= N_HEADER_FILES (current_objfile))
371 {
372 struct type *temp_type;
373 struct type **temp_type_p;
374
375 warning ("GDB internal error: bad real_filenum");
376
377 error_return:
378 temp_type = init_type (TYPE_CODE_ERROR, 0, 0, NULL, NULL);
379 temp_type_p = (struct type **) xmalloc (sizeof (struct type *));
380 *temp_type_p = temp_type;
381 return temp_type_p;
382 }
383
384 f = HEADER_FILES (current_objfile) + real_filenum;
385
386 f_orig_length = f->length;
387 if (index >= f_orig_length)
388 {
389 while (index >= f->length)
390 {
391 f->length *= 2;
392 }
393 f->vector = (struct type **)
394 xrealloc ((char *) f->vector, f->length * sizeof (struct type *));
395 memset (&f->vector[f_orig_length], 0,
396 (f->length - f_orig_length) * sizeof (struct type *));
397 }
398 return (&f->vector[index]);
399 }
400}
401
402/* Make sure there is a type allocated for type numbers TYPENUMS
403 and return the type object.
404 This can create an empty (zeroed) type object.
405 TYPENUMS may be (-1, -1) to return a new type object that is not
406 put into the type vector, and so may not be referred to by number. */
407
408static struct type *
35a2f538 409dbx_alloc_type (int typenums[2], struct objfile *objfile)
c906108c
SS
410{
411 register struct type **type_addr;
412
413 if (typenums[0] == -1)
414 {
415 return (alloc_type (objfile));
416 }
417
418 type_addr = dbx_lookup_type (typenums);
419
420 /* If we are referring to a type not known at all yet,
421 allocate an empty type for it.
422 We will fill it in later if we find out how. */
423 if (*type_addr == 0)
424 {
425 *type_addr = alloc_type (objfile);
426 }
427
428 return (*type_addr);
429}
430
431/* for all the stabs in a given stab vector, build appropriate types
432 and fix their symbols in given symbol vector. */
433
434static void
fba45db2
KB
435patch_block_stabs (struct pending *symbols, struct pending_stabs *stabs,
436 struct objfile *objfile)
c906108c
SS
437{
438 int ii;
439 char *name;
440 char *pp;
441 struct symbol *sym;
442
443 if (stabs)
444 {
c5aa993b 445
c906108c 446 /* for all the stab entries, find their corresponding symbols and
c5aa993b
JM
447 patch their types! */
448
c906108c
SS
449 for (ii = 0; ii < stabs->count; ++ii)
450 {
451 name = stabs->stab[ii];
c5aa993b 452 pp = (char *) strchr (name, ':');
c906108c
SS
453 while (pp[1] == ':')
454 {
c5aa993b
JM
455 pp += 2;
456 pp = (char *) strchr (pp, ':');
c906108c 457 }
c5aa993b 458 sym = find_symbol_in_list (symbols, name, pp - name);
c906108c
SS
459 if (!sym)
460 {
461 /* FIXME-maybe: it would be nice if we noticed whether
c5aa993b
JM
462 the variable was defined *anywhere*, not just whether
463 it is defined in this compilation unit. But neither
464 xlc or GCC seem to need such a definition, and until
465 we do psymtabs (so that the minimal symbols from all
466 compilation units are available now), I'm not sure
467 how to get the information. */
c906108c
SS
468
469 /* On xcoff, if a global is defined and never referenced,
c5aa993b
JM
470 ld will remove it from the executable. There is then
471 a N_GSYM stab for it, but no regular (C_EXT) symbol. */
c906108c
SS
472 sym = (struct symbol *)
473 obstack_alloc (&objfile->symbol_obstack,
474 sizeof (struct symbol));
475
476 memset (sym, 0, sizeof (struct symbol));
477 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
478 SYMBOL_CLASS (sym) = LOC_OPTIMIZED_OUT;
479 SYMBOL_NAME (sym) =
480 obsavestring (name, pp - name, &objfile->symbol_obstack);
481 pp += 2;
c5aa993b 482 if (*(pp - 1) == 'F' || *(pp - 1) == 'f')
c906108c
SS
483 {
484 /* I don't think the linker does this with functions,
485 so as far as I know this is never executed.
486 But it doesn't hurt to check. */
487 SYMBOL_TYPE (sym) =
488 lookup_function_type (read_type (&pp, objfile));
489 }
490 else
491 {
492 SYMBOL_TYPE (sym) = read_type (&pp, objfile);
493 }
494 add_symbol_to_list (sym, &global_symbols);
495 }
496 else
497 {
498 pp += 2;
c5aa993b 499 if (*(pp - 1) == 'F' || *(pp - 1) == 'f')
c906108c
SS
500 {
501 SYMBOL_TYPE (sym) =
502 lookup_function_type (read_type (&pp, objfile));
503 }
504 else
505 {
506 SYMBOL_TYPE (sym) = read_type (&pp, objfile);
507 }
508 }
509 }
510 }
511}
c906108c 512\f
c5aa993b 513
c906108c
SS
514/* Read a number by which a type is referred to in dbx data,
515 or perhaps read a pair (FILENUM, TYPENUM) in parentheses.
516 Just a single number N is equivalent to (0,N).
517 Return the two numbers by storing them in the vector TYPENUMS.
518 TYPENUMS will then be used as an argument to dbx_lookup_type.
519
520 Returns 0 for success, -1 for error. */
521
522static int
fba45db2 523read_type_number (register char **pp, register int *typenums)
c906108c
SS
524{
525 int nbits;
526 if (**pp == '(')
527 {
528 (*pp)++;
529 typenums[0] = read_huge_number (pp, ',', &nbits);
c5aa993b
JM
530 if (nbits != 0)
531 return -1;
c906108c 532 typenums[1] = read_huge_number (pp, ')', &nbits);
c5aa993b
JM
533 if (nbits != 0)
534 return -1;
c906108c
SS
535 }
536 else
537 {
538 typenums[0] = 0;
539 typenums[1] = read_huge_number (pp, 0, &nbits);
c5aa993b
JM
540 if (nbits != 0)
541 return -1;
c906108c
SS
542 }
543 return 0;
544}
c906108c 545\f
c5aa993b 546
c906108c
SS
547#define VISIBILITY_PRIVATE '0' /* Stabs character for private field */
548#define VISIBILITY_PROTECTED '1' /* Stabs character for protected fld */
549#define VISIBILITY_PUBLIC '2' /* Stabs character for public field */
550#define VISIBILITY_IGNORE '9' /* Optimized out or zero length */
551
552#define CFRONT_VISIBILITY_PRIVATE '2' /* Stabs character for private field */
553#define CFRONT_VISIBILITY_PUBLIC '1' /* Stabs character for public field */
554
555/* This code added to support parsing of ARM/Cfront stabs strings */
556
557/* Get substring from string up to char c, advance string pointer past
558 suibstring. */
559
c5aa993b 560static char *
fba45db2 561get_substring (char **p, int c)
c906108c
SS
562{
563 char *str;
564 str = *p;
565 *p = strchr (*p, c);
c5aa993b 566 if (*p)
c906108c
SS
567 {
568 **p = 0;
569 (*p)++;
570 }
c5aa993b 571 else
c906108c
SS
572 str = 0;
573 return str;
574}
575
576/* Physname gets strcat'd onto sname in order to recreate the mangled
577 name (see funtion gdb_mangle_name in gdbtypes.c). For cfront, make
578 the physname look like that of g++ - take out the initial mangling
579 eg: for sname="a" and fname="foo__1aFPFs_i" return "FPFs_i" */
580
c5aa993b 581static char *
fba45db2 582get_cfront_method_physname (char *fname)
c906108c
SS
583{
584 int len = 0;
585 /* FIXME would like to make this generic for g++ too, but
586 that is already handled in read_member_funcctions */
c5aa993b 587 char *p = fname;
c906108c
SS
588
589 /* search ahead to find the start of the mangled suffix */
c5aa993b
JM
590 if (*p == '_' && *(p + 1) == '_') /* compiler generated; probably a ctor/dtor */
591 p += 2;
592 while (p && (unsigned) ((p + 1) - fname) < strlen (fname) && *(p + 1) != '_')
c906108c 593 p = strchr (p, '_');
c5aa993b
JM
594 if (!(p && *p == '_' && *(p + 1) == '_'))
595 error ("Invalid mangled function name %s", fname);
596 p += 2; /* advance past '__' */
c906108c
SS
597
598 /* struct name length and name of type should come next; advance past it */
599 while (isdigit (*p))
600 {
601 len = len * 10 + (*p - '0');
602 p++;
603 }
604 p += len;
605
606 return p;
607}
608
609/* Read base classes within cfront class definition.
610 eg: A:ZcA;1@Bpub v2@Bvirpri;__ct__1AFv func__1AFv *sfunc__1AFv ;as__1A ;;
c5aa993b 611 ^^^^^^^^^^^^^^^^^^
c906108c 612
c5aa993b
JM
613 A:ZcA;;foopri__1AFv foopro__1AFv __ct__1AFv __ct__1AFRC1A foopub__1AFv ;;;
614 ^
615 */
c906108c
SS
616
617static int
fba45db2
KB
618read_cfront_baseclasses (struct field_info *fip, char **pp, struct type *type,
619 struct objfile *objfile)
c906108c 620{
c5aa993b
JM
621 static struct complaint msg_unknown =
622 {"\
c906108c 623 Unsupported token in stabs string %s.\n",
c5aa993b
JM
624 0, 0};
625 static struct complaint msg_notfound =
626 {"\
c906108c 627 Unable to find base type for %s.\n",
c5aa993b 628 0, 0};
c906108c 629 int bnum = 0;
c5aa993b 630 char *p;
c906108c
SS
631 int i;
632 struct nextfield *new;
633
634 if (**pp == ';') /* no base classes; return */
635 {
636 ++(*pp);
637 return 1;
638 }
639
640 /* first count base classes so we can allocate space before parsing */
641 for (p = *pp; p && *p && *p != ';'; p++)
642 {
643 if (*p == ' ')
644 bnum++;
645 }
c5aa993b 646 bnum++; /* add one more for last one */
c906108c
SS
647
648 /* now parse the base classes until we get to the start of the methods
649 (code extracted and munged from read_baseclasses) */
650 ALLOCATE_CPLUS_STRUCT_TYPE (type);
c5aa993b 651 TYPE_N_BASECLASSES (type) = bnum;
c906108c
SS
652
653 /* allocate space */
654 {
655 int num_bytes = B_BYTES (TYPE_N_BASECLASSES (type));
656 char *pointer;
657
658 pointer = (char *) TYPE_ALLOC (type, num_bytes);
659 TYPE_FIELD_VIRTUAL_BITS (type) = (B_TYPE *) pointer;
660 }
661 B_CLRALL (TYPE_FIELD_VIRTUAL_BITS (type), TYPE_N_BASECLASSES (type));
662
663 for (i = 0; i < TYPE_N_BASECLASSES (type); i++)
664 {
665 new = (struct nextfield *) xmalloc (sizeof (struct nextfield));
b8c9b27d 666 make_cleanup (xfree, new);
c906108c 667 memset (new, 0, sizeof (struct nextfield));
c5aa993b
JM
668 new->next = fip->list;
669 fip->list = new;
670 FIELD_BITSIZE (new->field) = 0; /* this should be an unpacked field! */
c906108c
SS
671
672 STABS_CONTINUE (pp, objfile);
673
674 /* virtual? eg: v2@Bvir */
c5aa993b
JM
675 if (**pp == 'v')
676 {
677 SET_TYPE_FIELD_VIRTUAL (type, i);
678 ++(*pp);
c906108c
SS
679 }
680
681 /* access? eg: 2@Bvir */
c5aa993b 682 /* Note: protected inheritance not supported in cfront */
c906108c 683 switch (*(*pp)++)
c5aa993b
JM
684 {
685 case CFRONT_VISIBILITY_PRIVATE:
686 new->visibility = VISIBILITY_PRIVATE;
687 break;
688 case CFRONT_VISIBILITY_PUBLIC:
689 new->visibility = VISIBILITY_PUBLIC;
690 break;
691 default:
692 /* Bad visibility format. Complain and treat it as
693 public. */
694 {
695 static struct complaint msg =
696 {
697 "Unknown visibility `%c' for baseclass", 0, 0};
698 complain (&msg, new->visibility);
699 new->visibility = VISIBILITY_PUBLIC;
700 }
701 }
c906108c
SS
702
703 /* "@" comes next - eg: @Bvir */
c5aa993b
JM
704 if (**pp != '@')
705 {
706 complain (&msg_unknown, *pp);
707 return 1;
c906108c
SS
708 }
709 ++(*pp);
710
711
c5aa993b
JM
712 /* Set the bit offset of the portion of the object corresponding
713 to this baseclass. Always zero in the absence of
714 multiple inheritance. */
715 /* Unable to read bit position from stabs;
716 Assuming no multiple inheritance for now FIXME! */
717 /* We may have read this in the structure definition;
718 now we should fixup the members to be the actual base classes */
719 FIELD_BITPOS (new->field) = 0;
c906108c 720
c5aa993b
JM
721 /* Get the base class name and type */
722 {
723 char *bname; /* base class name */
724 struct symbol *bsym; /* base class */
725 char *p1, *p2;
726 p1 = strchr (*pp, ' ');
727 p2 = strchr (*pp, ';');
728 if (p1 < p2)
729 bname = get_substring (pp, ' ');
730 else
731 bname = get_substring (pp, ';');
732 if (!bname || !*bname)
c906108c 733 {
c5aa993b
JM
734 complain (&msg_unknown, *pp);
735 return 1;
736 }
737 /* FIXME! attach base info to type */
738 bsym = lookup_symbol (bname, 0, STRUCT_NAMESPACE, 0, 0); /*demangled_name */
739 if (bsym)
740 {
741 new->field.type = SYMBOL_TYPE (bsym);
742 new->field.name = type_name_no_tag (new->field.type);
c906108c 743 }
c5aa993b
JM
744 else
745 {
746 complain (&msg_notfound, *pp);
747 return 1;
748 }
749 }
c906108c
SS
750
751 /* If more base classes to parse, loop again.
752 We ate the last ' ' or ';' in get_substring,
753 so on exit we will have skipped the trailing ';' */
754 /* if invalid, return 0; add code to detect - FIXME! */
755 }
756 return 1;
757}
758
759/* read cfront member functions.
760 pp points to string starting with list of functions
761 eg: A:ZcA;1@Bpub v2@Bvirpri;__ct__1AFv func__1AFv *sfunc__1AFv ;as__1A ;;
c5aa993b
JM
762 ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
763 A:ZcA;;foopri__1AFv foopro__1AFv __ct__1AFv __ct__1AFRC1A foopub__1AFv ;;;
764 ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
765 */
c906108c
SS
766
767static int
fba45db2
KB
768read_cfront_member_functions (struct field_info *fip, char **pp,
769 struct type *type, struct objfile *objfile)
c906108c
SS
770{
771 /* This code extracted from read_member_functions
772 so as to do the similar thing for our funcs */
773
774 int nfn_fields = 0;
775 int length = 0;
776 /* Total number of member functions defined in this class. If the class
777 defines two `f' functions, and one `g' function, then this will have
778 the value 3. */
779 int total_length = 0;
780 int i;
781 struct next_fnfield
782 {
783 struct next_fnfield *next;
784 struct fn_field fn_field;
c5aa993b
JM
785 }
786 *sublist;
c906108c
SS
787 struct type *look_ahead_type;
788 struct next_fnfieldlist *new_fnlist;
789 struct next_fnfield *new_sublist;
790 char *main_fn_name;
c5aa993b
JM
791 char *fname;
792 struct symbol *ref_func = 0;
793
c906108c
SS
794 /* Process each list until we find the end of the member functions.
795 eg: p = "__ct__1AFv foo__1AFv ;;;" */
796
c5aa993b 797 STABS_CONTINUE (pp, objfile); /* handle \\ */
c906108c 798
c5aa993b 799 while (**pp != ';' && (fname = get_substring (pp, ' '), fname))
c906108c
SS
800 {
801 int is_static = 0;
802 int sublist_count = 0;
c5aa993b
JM
803 char *pname;
804 if (fname[0] == '*') /* static member */
805 {
806 is_static = 1;
807 sublist_count++;
808 fname++;
809 }
810 ref_func = lookup_symbol (fname, 0, VAR_NAMESPACE, 0, 0); /* demangled name */
811 if (!ref_func)
812 {
813 static struct complaint msg =
814 {"\
c906108c 815 Unable to find function symbol for %s\n",
c5aa993b 816 0, 0};
c906108c
SS
817 complain (&msg, fname);
818 continue;
819 }
820 sublist = NULL;
821 look_ahead_type = NULL;
822 length = 0;
c5aa993b 823
c906108c 824 new_fnlist = (struct next_fnfieldlist *)
c5aa993b 825 xmalloc (sizeof (struct next_fnfieldlist));
b8c9b27d 826 make_cleanup (xfree, new_fnlist);
c906108c 827 memset (new_fnlist, 0, sizeof (struct next_fnfieldlist));
c5aa993b 828
c906108c
SS
829 /* The following is code to work around cfront generated stabs.
830 The stabs contains full mangled name for each field.
831 We try to demangle the name and extract the field name out of it. */
832 {
c5aa993b
JM
833 char *dem, *dem_p, *dem_args;
834 int dem_len;
835 dem = cplus_demangle (fname, DMGL_ANSI | DMGL_PARAMS);
836 if (dem != NULL)
837 {
838 dem_p = strrchr (dem, ':');
839 if (dem_p != 0 && *(dem_p - 1) == ':')
840 dem_p++;
c906108c 841 /* get rid of args */
c5aa993b 842 dem_args = strchr (dem_p, '(');
c906108c
SS
843 if (dem_args == NULL)
844 dem_len = strlen (dem_p);
845 else
c5aa993b
JM
846 dem_len = dem_args - dem_p;
847 main_fn_name =
848 obsavestring (dem_p, dem_len, &objfile->type_obstack);
849 }
850 else
851 {
852 main_fn_name =
853 obsavestring (fname, strlen (fname), &objfile->type_obstack);
854 }
855 } /* end of code for cfront work around */
856
857 new_fnlist->fn_fieldlist.name = main_fn_name;
858
859/*-------------------------------------------------*/
860 /* Set up the sublists
861 Sublists are stuff like args, static, visibility, etc.
862 so in ARM, we have to set that info some other way.
863 Multiple sublists happen if overloading
864 eg: foo::26=##1;:;2A.;
865 In g++, we'd loop here thru all the sublists... */
866
867 new_sublist =
868 (struct next_fnfield *) xmalloc (sizeof (struct next_fnfield));
b8c9b27d 869 make_cleanup (xfree, new_sublist);
c5aa993b
JM
870 memset (new_sublist, 0, sizeof (struct next_fnfield));
871
872 /* eat 1; from :;2A.; */
873 new_sublist->fn_field.type = SYMBOL_TYPE (ref_func); /* normally takes a read_type */
874 /* Make this type look like a method stub for gdb */
875 TYPE_FLAGS (new_sublist->fn_field.type) |= TYPE_FLAG_STUB;
876 TYPE_CODE (new_sublist->fn_field.type) = TYPE_CODE_METHOD;
877
878 /* If this is just a stub, then we don't have the real name here. */
74a9bb82 879 if (TYPE_STUB (new_sublist->fn_field.type))
c5aa993b
JM
880 {
881 if (!TYPE_DOMAIN_TYPE (new_sublist->fn_field.type))
882 TYPE_DOMAIN_TYPE (new_sublist->fn_field.type) = type;
883 new_sublist->fn_field.is_stub = 1;
884 }
c906108c 885
c5aa993b
JM
886 /* physname used later in mangling; eg PFs_i,5 for foo__1aFPFs_i
887 physname gets strcat'd in order to recreate the onto mangled name */
888 pname = get_cfront_method_physname (fname);
889 new_sublist->fn_field.physname = savestring (pname, strlen (pname));
c906108c 890
c5aa993b
JM
891
892 /* Set this member function's visibility fields.
893 Unable to distinguish access from stabs definition!
c906108c 894 Assuming public for now. FIXME!
c5aa993b
JM
895 (for private, set new_sublist->fn_field.is_private = 1,
896 for public, set new_sublist->fn_field.is_protected = 1) */
897
898 /* Unable to distinguish const/volatile from stabs definition!
899 Assuming normal for now. FIXME! */
900
901 new_sublist->fn_field.is_const = 0;
902 new_sublist->fn_field.is_volatile = 0; /* volatile not implemented in cfront */
903
904 /* Set virtual/static function info
905 How to get vtable offsets ?
906 Assuming normal for now FIXME!!
907 For vtables, figure out from whence this virtual function came.
908 It may belong to virtual function table of
909 one of its baseclasses.
910 set:
911 new_sublist -> fn_field.voffset = vtable offset,
912 new_sublist -> fn_field.fcontext = look_ahead_type;
913 where look_ahead_type is type of baseclass */
914 if (is_static)
915 new_sublist->fn_field.voffset = VOFFSET_STATIC;
916 else /* normal member function. */
917 new_sublist->fn_field.voffset = 0;
918 new_sublist->fn_field.fcontext = 0;
919
920
921 /* Prepare new sublist */
922 new_sublist->next = sublist;
923 sublist = new_sublist;
924 length++;
925
926 /* In g++, we loop thu sublists - now we set from functions. */
927 new_fnlist->fn_fieldlist.fn_fields = (struct fn_field *)
928 obstack_alloc (&objfile->type_obstack,
929 sizeof (struct fn_field) * length);
930 memset (new_fnlist->fn_fieldlist.fn_fields, 0,
931 sizeof (struct fn_field) * length);
932 for (i = length; (i--, sublist); sublist = sublist->next)
933 {
934 new_fnlist->fn_fieldlist.fn_fields[i] = sublist->fn_field;
935 }
936
937 new_fnlist->fn_fieldlist.length = length;
938 new_fnlist->next = fip->fnlist;
939 fip->fnlist = new_fnlist;
940 nfn_fields++;
941 total_length += length;
942 STABS_CONTINUE (pp, objfile); /* handle \\ */
943 } /* end of loop */
c906108c
SS
944
945 if (nfn_fields)
946 {
947 /* type should already have space */
948 TYPE_FN_FIELDLISTS (type) = (struct fn_fieldlist *)
c5aa993b 949 TYPE_ALLOC (type, sizeof (struct fn_fieldlist) * nfn_fields);
c906108c 950 memset (TYPE_FN_FIELDLISTS (type), 0,
c5aa993b 951 sizeof (struct fn_fieldlist) * nfn_fields);
c906108c
SS
952 TYPE_NFN_FIELDS (type) = nfn_fields;
953 TYPE_NFN_FIELDS_TOTAL (type) = total_length;
954 }
955
956 /* end of scope for reading member func */
957
958 /* eg: ";;" */
959
960 /* Skip trailing ';' and bump count of number of fields seen */
961 if (**pp == ';')
962 (*pp)++;
963 else
964 return 0;
965 return 1;
966}
967
968/* This routine fixes up partial cfront types that were created
969 while parsing the stabs. The main need for this function is
970 to add information such as methods to classes.
971 Examples of "p": "sA;;__ct__1AFv foo__1AFv ;;;" */
972int
fba45db2
KB
973resolve_cfront_continuation (struct objfile *objfile, struct symbol *sym,
974 char *p)
c906108c 975{
c5aa993b
JM
976 struct symbol *ref_sym = 0;
977 char *sname;
c906108c
SS
978 /* snarfed from read_struct_type */
979 struct field_info fi;
980 struct type *type;
981 struct cleanup *back_to;
982
983 /* Need to make sure that fi isn't gunna conflict with struct
984 in case struct already had some fnfs */
985 fi.list = NULL;
c5aa993b 986 fi.fnlist = NULL;
c906108c
SS
987 back_to = make_cleanup (null_cleanup, 0);
988
989 /* We only accept structs, classes and unions at the moment.
990 Other continuation types include t (typedef), r (long dbl), ...
991 We may want to add support for them as well;
992 right now they are handled by duplicating the symbol information
993 into the type information (see define_symbol) */
c5aa993b
JM
994 if (*p != 's' /* structs */
995 && *p != 'c' /* class */
996 && *p != 'u') /* union */
997 return 0; /* only handle C++ types */
998 p++;
c906108c
SS
999
1000 /* Get symbol typs name and validate
1001 eg: p = "A;;__ct__1AFv foo__1AFv ;;;" */
1002 sname = get_substring (&p, ';');
c5aa993b 1003 if (!sname || strcmp (sname, SYMBOL_NAME (sym)))
c906108c
SS
1004 error ("Internal error: base symbol type name does not match\n");
1005
1006 /* Find symbol's internal gdb reference using demangled_name.
1007 This is the real sym that we want;
1008 sym was a temp hack to make debugger happy */
c5aa993b
JM
1009 ref_sym = lookup_symbol (SYMBOL_NAME (sym), 0, STRUCT_NAMESPACE, 0, 0);
1010 type = SYMBOL_TYPE (ref_sym);
c906108c
SS
1011
1012
1013 /* Now read the baseclasses, if any, read the regular C struct or C++
1014 class member fields, attach the fields to the type, read the C++
1015 member functions, attach them to the type, and then read any tilde
1016 field (baseclass specifier for the class holding the main vtable). */
1017
1018 if (!read_cfront_baseclasses (&fi, &p, type, objfile)
c5aa993b
JM
1019 /* g++ does this next, but cfront already did this:
1020 || !read_struct_fields (&fi, &p, type, objfile) */
c906108c
SS
1021 || !copy_cfront_struct_fields (&fi, type, objfile)
1022 || !read_cfront_member_functions (&fi, &p, type, objfile)
1023 || !read_cfront_static_fields (&fi, &p, type, objfile)
1024 || !attach_fields_to_type (&fi, type, objfile)
1025 || !attach_fn_fields_to_type (&fi, type)
c5aa993b
JM
1026 /* g++ does this next, but cfront doesn't seem to have this:
1027 || !read_tilde_fields (&fi, &p, type, objfile) */
1028 )
c906108c
SS
1029 {
1030 type = error_type (&p, objfile);
1031 }
1032
1033 do_cleanups (back_to);
c5aa993b 1034 return 0;
c906108c
SS
1035}
1036/* End of code added to support parsing of ARM/Cfront stabs strings */
1037
1038
1039/* This routine fixes up symbol references/aliases to point to the original
1040 symbol definition. Returns 0 on failure, non-zero on success. */
1041
1042static int
fba45db2 1043resolve_symbol_reference (struct objfile *objfile, struct symbol *sym, char *p)
c906108c
SS
1044{
1045 int refnum;
c5aa993b 1046 struct symbol *ref_sym = 0;
c906108c
SS
1047 struct alias_list *alias;
1048
1049 /* If this is not a symbol reference return now. */
1050 if (*p != '#')
c5aa993b 1051 return 0;
c906108c
SS
1052
1053 /* Use "#<num>" as the name; we'll fix the name later.
1054 We stored the original symbol name as "#<id>=<name>"
1055 so we can now search for "#<id>" to resolving the reference.
1056 We'll fix the names later by removing the "#<id>" or "#<id>=" */
1057
c5aa993b 1058/*---------------------------------------------------------*/
c906108c
SS
1059 /* Get the reference id number, and
1060 advance p past the names so we can parse the rest.
c5aa993b
JM
1061 eg: id=2 for p : "2=", "2=z:r(0,1)" "2:r(0,1);l(#5,#6),l(#7,#4)" */
1062/*---------------------------------------------------------*/
c906108c
SS
1063
1064 /* This gets reference name from string. sym may not have a name. */
1065
1066 /* Get the reference number associated with the reference id in the
1067 gdb stab string. From that reference number, get the main/primary
1068 symbol for this alias. */
1069 refnum = process_reference (&p);
1070 ref_sym = ref_search (refnum);
1071 if (!ref_sym)
1072 {
1073 complain (&lrs_general_complaint, "symbol for reference not found");
1074 return 0;
1075 }
1076
1077 /* Parse the stab of the referencing symbol
1078 now that we have the referenced symbol.
1079 Add it as a new symbol and a link back to the referenced symbol.
1080 eg: p : "=", "=z:r(0,1)" ":r(0,1);l(#5,#6),l(#7,#4)" */
1081
1082
1083 /* If the stab symbol table and string contain:
c5aa993b
JM
1084 RSYM 0 5 00000000 868 #15=z:r(0,1)
1085 LBRAC 0 0 00000000 899 #5=
1086 SLINE 0 16 00000003 923 #6=
c906108c 1087 Then the same symbols can be later referenced by:
c5aa993b 1088 RSYM 0 5 00000000 927 #15:r(0,1);l(#5,#6)
c906108c
SS
1089 This is used in live range splitting to:
1090 1) specify that a symbol (#15) is actually just a new storage
c5aa993b 1091 class for a symbol (#15=z) which was previously defined.
c906108c 1092 2) specify that the beginning and ending ranges for a symbol
c5aa993b
JM
1093 (#15) are the values of the beginning (#5) and ending (#6)
1094 symbols. */
1095
1096 /* Read number as reference id.
1097 eg: p : "=", "=z:r(0,1)" ":r(0,1);l(#5,#6),l(#7,#4)" */
1098 /* FIXME! Might I want to use SYMBOL_CLASS (sym) = LOC_OPTIMIZED_OUT;
1099 in case of "l(0,0)"? */
1100
1101/*--------------------------------------------------*/
1102 /* Add this symbol to the reference list. */
1103/*--------------------------------------------------*/
c906108c
SS
1104
1105 alias = (struct alias_list *) obstack_alloc (&objfile->type_obstack,
1106 sizeof (struct alias_list));
1107 if (!alias)
1108 {
1109 complain (&lrs_general_complaint, "Unable to allocate alias list memory");
1110 return 0;
1111 }
1112
1113 alias->next = 0;
1114 alias->sym = sym;
1115
1116 if (!SYMBOL_ALIASES (ref_sym))
1117 {
1118 SYMBOL_ALIASES (ref_sym) = alias;
1119 }
1120 else
1121 {
1122 struct alias_list *temp;
1123
1124 /* Get to the end of the list. */
1125 for (temp = SYMBOL_ALIASES (ref_sym);
1126 temp->next;
1127 temp = temp->next)
1128 ;
1129 temp->next = alias;
1130 }
1131
c5aa993b
JM
1132 /* Want to fix up name so that other functions (eg. valops)
1133 will correctly print the name.
1134 Don't add_symbol_to_list so that lookup_symbol won't find it.
1135 nope... needed for fixups. */
1136 SYMBOL_NAME (sym) = SYMBOL_NAME (ref_sym);
c906108c
SS
1137
1138 /* Done! */
1139 return 1;
1140}
1141
1142/* Structure for storing pointers to reference definitions for fast lookup
1143 during "process_later". */
1144
1145struct ref_map
1146{
1147 char *stabs;
1148 CORE_ADDR value;
1149 struct symbol *sym;
1150};
1151
1152#define MAX_CHUNK_REFS 100
1153#define REF_CHUNK_SIZE (MAX_CHUNK_REFS * sizeof (struct ref_map))
1154#define REF_MAP_SIZE(ref_chunk) ((ref_chunk) * REF_CHUNK_SIZE)
1155
c5aa993b 1156static struct ref_map *ref_map;
c906108c
SS
1157
1158/* Ptr to free cell in chunk's linked list. */
c5aa993b 1159static int ref_count = 0;
c906108c
SS
1160
1161/* Number of chunks malloced. */
1162static int ref_chunk = 0;
1163
7be570e7
JM
1164/* This file maintains a cache of stabs aliases found in the symbol
1165 table. If the symbol table changes, this cache must be cleared
1166 or we are left holding onto data in invalid obstacks. */
1167void
fba45db2 1168stabsread_clear_cache (void)
7be570e7
JM
1169{
1170 ref_count = 0;
1171 ref_chunk = 0;
1172}
1173
c906108c
SS
1174/* Create array of pointers mapping refids to symbols and stab strings.
1175 Add pointers to reference definition symbols and/or their values as we
1176 find them, using their reference numbers as our index.
1177 These will be used later when we resolve references. */
1178void
fba45db2 1179ref_add (int refnum, struct symbol *sym, char *stabs, CORE_ADDR value)
c906108c
SS
1180{
1181 if (ref_count == 0)
1182 ref_chunk = 0;
1183 if (refnum >= ref_count)
1184 ref_count = refnum + 1;
1185 if (ref_count > ref_chunk * MAX_CHUNK_REFS)
1186 {
c5aa993b 1187 int new_slots = ref_count - ref_chunk * MAX_CHUNK_REFS;
c906108c
SS
1188 int new_chunks = new_slots / MAX_CHUNK_REFS + 1;
1189 ref_map = (struct ref_map *)
1190 xrealloc (ref_map, REF_MAP_SIZE (ref_chunk + new_chunks));
1191 memset (ref_map + ref_chunk * MAX_CHUNK_REFS, 0, new_chunks * REF_CHUNK_SIZE);
1192 ref_chunk += new_chunks;
1193 }
1194 ref_map[refnum].stabs = stabs;
1195 ref_map[refnum].sym = sym;
1196 ref_map[refnum].value = value;
1197}
1198
1199/* Return defined sym for the reference REFNUM. */
1200struct symbol *
fba45db2 1201ref_search (int refnum)
c906108c
SS
1202{
1203 if (refnum < 0 || refnum > ref_count)
1204 return 0;
1205 return ref_map[refnum].sym;
1206}
1207
1208/* Return value for the reference REFNUM. */
1209
1210static CORE_ADDR
fba45db2 1211ref_search_value (int refnum)
c906108c
SS
1212{
1213 if (refnum < 0 || refnum > ref_count)
1214 return 0;
1215 return ref_map[refnum].value;
1216}
c5aa993b 1217
c906108c
SS
1218/* Parse a reference id in STRING and return the resulting
1219 reference number. Move STRING beyond the reference id. */
1220
c5aa993b 1221static int
fba45db2 1222process_reference (char **string)
c906108c
SS
1223{
1224 char *p;
1225 int refnum = 0;
1226
c5aa993b
JM
1227 if (**string != '#')
1228 return 0;
1229
c906108c
SS
1230 /* Advance beyond the initial '#'. */
1231 p = *string + 1;
1232
1233 /* Read number as reference id. */
1234 while (*p && isdigit (*p))
1235 {
1236 refnum = refnum * 10 + *p - '0';
1237 p++;
1238 }
1239 *string = p;
1240 return refnum;
1241}
1242
1243/* If STRING defines a reference, store away a pointer to the reference
1244 definition for later use. Return the reference number. */
1245
1246int
fba45db2 1247symbol_reference_defined (char **string)
c906108c
SS
1248{
1249 char *p = *string;
1250 int refnum = 0;
1251
1252 refnum = process_reference (&p);
1253
1254 /* Defining symbols end in '=' */
c5aa993b 1255 if (*p == '=')
c906108c 1256 {
c5aa993b 1257 /* Symbol is being defined here. */
c906108c
SS
1258 *string = p + 1;
1259 return refnum;
1260 }
1261 else
1262 {
1263 /* Must be a reference. Either the symbol has already been defined,
1264 or this is a forward reference to it. */
1265 *string = p;
1266 return -1;
1267 }
1268}
1269
3b4efeaa
MS
1270static char *
1271objc_find_colon (name)
1272 char *name;
1273{
1274 char *s = name;
1275 if (s[0] == '-' || *s == '+')
1276 {
1277 if (s[1] != '[')
1278 {
1279 error ("invalid symbol name \"%s\"", name);
1280 }
1281 s = strchr (s, ']');
1282 if (s == NULL)
1283 {
1284 error ("invalid symbol name \"%s\"", name);
1285 }
1286 return strchr (s, ':');
1287 }
1288 else
1289 {
1290 return strchr (s, ':');
1291 }
1292}
1293
c906108c
SS
1294/* ARGSUSED */
1295struct symbol *
fba45db2
KB
1296define_symbol (CORE_ADDR valu, char *string, int desc, int type,
1297 struct objfile *objfile)
c906108c
SS
1298{
1299 register struct symbol *sym;
3b4efeaa 1300 char *p = (char *) objc_find_colon (string);
c906108c
SS
1301 int deftype;
1302 int synonym = 0;
1303 register int i;
1304
1305 /* We would like to eliminate nameless symbols, but keep their types.
1306 E.g. stab entry ":t10=*2" should produce a type 10, which is a pointer
1307 to type 2, but, should not create a symbol to address that type. Since
1308 the symbol will be nameless, there is no way any user can refer to it. */
1309
1310 int nameless;
1311
1312 /* Ignore syms with empty names. */
1313 if (string[0] == 0)
1314 return 0;
1315
1316 /* Ignore old-style symbols from cc -go */
1317 if (p == 0)
1318 return 0;
1319
1320 while (p[1] == ':')
1321 {
c5aa993b
JM
1322 p += 2;
1323 p = strchr (p, ':');
c906108c
SS
1324 }
1325
1326 /* If a nameless stab entry, all we need is the type, not the symbol.
1327 e.g. ":t10=*2" or a nameless enum like " :T16=ered:0,green:1,blue:2,;" */
1328 nameless = (p == string || ((string[0] == ' ') && (string[1] == ':')));
1329
c5aa993b
JM
1330 current_symbol = sym = (struct symbol *)
1331 obstack_alloc (&objfile->symbol_obstack, sizeof (struct symbol));
c906108c
SS
1332 memset (sym, 0, sizeof (struct symbol));
1333
1334 switch (type & N_TYPE)
1335 {
1336 case N_TEXT:
b8fbeb18 1337 SYMBOL_SECTION (sym) = SECT_OFF_TEXT (objfile);
c906108c
SS
1338 break;
1339 case N_DATA:
b8fbeb18 1340 SYMBOL_SECTION (sym) = SECT_OFF_DATA (objfile);
c906108c
SS
1341 break;
1342 case N_BSS:
b8fbeb18 1343 SYMBOL_SECTION (sym) = SECT_OFF_BSS (objfile);
c906108c
SS
1344 break;
1345 }
1346
1347 if (processing_gcc_compilation)
1348 {
1349 /* GCC 2.x puts the line number in desc. SunOS apparently puts in the
c5aa993b
JM
1350 number of bytes occupied by a type or object, which we ignore. */
1351 SYMBOL_LINE (sym) = desc;
c906108c
SS
1352 }
1353 else
1354 {
c5aa993b 1355 SYMBOL_LINE (sym) = 0; /* unknown */
c906108c
SS
1356 }
1357
1358 if (is_cplus_marker (string[0]))
1359 {
1360 /* Special GNU C++ names. */
1361 switch (string[1])
1362 {
c5aa993b
JM
1363 case 't':
1364 SYMBOL_NAME (sym) = obsavestring ("this", strlen ("this"),
1365 &objfile->symbol_obstack);
1366 break;
c906108c 1367
c5aa993b
JM
1368 case 'v': /* $vtbl_ptr_type */
1369 /* Was: SYMBOL_NAME (sym) = "vptr"; */
1370 goto normal;
c906108c 1371
c5aa993b
JM
1372 case 'e':
1373 SYMBOL_NAME (sym) = obsavestring ("eh_throw", strlen ("eh_throw"),
1374 &objfile->symbol_obstack);
1375 break;
c906108c 1376
c5aa993b
JM
1377 case '_':
1378 /* This was an anonymous type that was never fixed up. */
1379 goto normal;
c906108c
SS
1380
1381#ifdef STATIC_TRANSFORM_NAME
c5aa993b
JM
1382 case 'X':
1383 /* SunPRO (3.0 at least) static variable encoding. */
1384 goto normal;
c906108c
SS
1385#endif
1386
c5aa993b
JM
1387 default:
1388 complain (&unrecognized_cplus_name_complaint, string);
1389 goto normal; /* Do *something* with it */
c906108c
SS
1390 }
1391 }
1392 else if (string[0] == '#')
1393 {
1394 /* Special GNU C extension for referencing symbols. */
1395 char *s;
1396 int refnum, nlen;
1397
1398 /* If STRING defines a new reference id, then add it to the
c5aa993b
JM
1399 reference map. Else it must be referring to a previously
1400 defined symbol, so add it to the alias list of the previously
1401 defined symbol. */
c906108c
SS
1402 s = string;
1403 refnum = symbol_reference_defined (&s);
1404 if (refnum >= 0)
c5aa993b
JM
1405 ref_add (refnum, sym, string, SYMBOL_VALUE (sym));
1406 else if (!resolve_symbol_reference (objfile, sym, string))
1407 return NULL;
c906108c
SS
1408
1409 /* S..P contains the name of the symbol. We need to store
c5aa993b 1410 the correct name into SYMBOL_NAME. */
c906108c
SS
1411 nlen = p - s;
1412 if (refnum >= 0)
1413 {
1414 if (nlen > 0)
1415 {
1416 SYMBOL_NAME (sym) = (char *)
c5aa993b 1417 obstack_alloc (&objfile->symbol_obstack, nlen);
c906108c
SS
1418 strncpy (SYMBOL_NAME (sym), s, nlen);
1419 SYMBOL_NAME (sym)[nlen] = '\0';
1420 SYMBOL_INIT_DEMANGLED_NAME (sym, &objfile->symbol_obstack);
1421 }
1422 else
1423 /* FIXME! Want SYMBOL_NAME (sym) = 0;
1424 Get error if leave name 0. So give it something. */
1425 {
1426 nlen = p - string;
c5aa993b
JM
1427 SYMBOL_NAME (sym) = (char *)
1428 obstack_alloc (&objfile->symbol_obstack, nlen);
c906108c
SS
1429 strncpy (SYMBOL_NAME (sym), string, nlen);
1430 SYMBOL_NAME (sym)[nlen] = '\0';
1431 SYMBOL_INIT_DEMANGLED_NAME (sym, &objfile->symbol_obstack);
1432 }
1433 }
1434 /* Advance STRING beyond the reference id. */
1435 string = s;
1436 }
1437 else
1438 {
1439 normal:
c5aa993b
JM
1440 SYMBOL_LANGUAGE (sym) = current_subfile->language;
1441 SYMBOL_NAME (sym) = (char *)
1442 obstack_alloc (&objfile->symbol_obstack, ((p - string) + 1));
c906108c
SS
1443 /* Open-coded memcpy--saves function call time. */
1444 /* FIXME: Does it really? Try replacing with simple strcpy and
c5aa993b 1445 try it on an executable with a large symbol table. */
c906108c 1446 /* FIXME: considering that gcc can open code memcpy anyway, I
c5aa993b 1447 doubt it. xoxorich. */
c906108c
SS
1448 {
1449 register char *p1 = string;
1450 register char *p2 = SYMBOL_NAME (sym);
1451 while (p1 != p)
1452 {
1453 *p2++ = *p1++;
1454 }
1455 *p2++ = '\0';
1456 }
1457
1458 /* If this symbol is from a C++ compilation, then attempt to cache the
c5aa993b
JM
1459 demangled form for future reference. This is a typical time versus
1460 space tradeoff, that was decided in favor of time because it sped up
1461 C++ symbol lookups by a factor of about 20. */
c906108c
SS
1462
1463 SYMBOL_INIT_DEMANGLED_NAME (sym, &objfile->symbol_obstack);
1464 }
1465 p++;
1466
1467 /* Determine the type of name being defined. */
1468#if 0
1469 /* Getting GDB to correctly skip the symbol on an undefined symbol
1470 descriptor and not ever dump core is a very dodgy proposition if
1471 we do things this way. I say the acorn RISC machine can just
1472 fix their compiler. */
1473 /* The Acorn RISC machine's compiler can put out locals that don't
1474 start with "234=" or "(3,4)=", so assume anything other than the
1475 deftypes we know how to handle is a local. */
1476 if (!strchr ("cfFGpPrStTvVXCR", *p))
1477#else
1478 if (isdigit (*p) || *p == '(' || *p == '-')
1479#endif
1480 deftype = 'l';
1481 else
1482 deftype = *p++;
1483
1484 switch (deftype)
1485 {
1486 case 'c':
1487 /* c is a special case, not followed by a type-number.
c5aa993b
JM
1488 SYMBOL:c=iVALUE for an integer constant symbol.
1489 SYMBOL:c=rVALUE for a floating constant symbol.
1490 SYMBOL:c=eTYPE,INTVALUE for an enum constant symbol.
1491 e.g. "b:c=e6,0" for "const b = blob1"
1492 (where type 6 is defined by "blobs:t6=eblob1:0,blob2:1,;"). */
c906108c
SS
1493 if (*p != '=')
1494 {
1495 SYMBOL_CLASS (sym) = LOC_CONST;
1496 SYMBOL_TYPE (sym) = error_type (&p, objfile);
1497 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1498 add_symbol_to_list (sym, &file_symbols);
1499 return sym;
1500 }
1501 ++p;
1502 switch (*p++)
1503 {
1504 case 'r':
1505 {
1506 double d = atof (p);
1507 char *dbl_valu;
1508
1509 /* FIXME-if-picky-about-floating-accuracy: Should be using
1510 target arithmetic to get the value. real.c in GCC
1511 probably has the necessary code. */
1512
1513 /* FIXME: lookup_fundamental_type is a hack. We should be
1514 creating a type especially for the type of float constants.
1515 Problem is, what type should it be?
1516
1517 Also, what should the name of this type be? Should we
1518 be using 'S' constants (see stabs.texinfo) instead? */
1519
1520 SYMBOL_TYPE (sym) = lookup_fundamental_type (objfile,
1521 FT_DBL_PREC_FLOAT);
1522 dbl_valu = (char *)
c5aa993b 1523 obstack_alloc (&objfile->symbol_obstack,
c906108c 1524 TYPE_LENGTH (SYMBOL_TYPE (sym)));
96d2f608 1525 store_typed_floating (dbl_valu, SYMBOL_TYPE (sym), d);
c906108c
SS
1526 SYMBOL_VALUE_BYTES (sym) = dbl_valu;
1527 SYMBOL_CLASS (sym) = LOC_CONST_BYTES;
1528 }
1529 break;
1530 case 'i':
1531 {
1532 /* Defining integer constants this way is kind of silly,
1533 since 'e' constants allows the compiler to give not
1534 only the value, but the type as well. C has at least
1535 int, long, unsigned int, and long long as constant
1536 types; other languages probably should have at least
1537 unsigned as well as signed constants. */
1538
1539 /* We just need one int constant type for all objfiles.
1540 It doesn't depend on languages or anything (arguably its
1541 name should be a language-specific name for a type of
1542 that size, but I'm inclined to say that if the compiler
1543 wants a nice name for the type, it can use 'e'). */
1544 static struct type *int_const_type;
1545
1546 /* Yes, this is as long as a *host* int. That is because we
1547 use atoi. */
1548 if (int_const_type == NULL)
1549 int_const_type =
1550 init_type (TYPE_CODE_INT,
1551 sizeof (int) * HOST_CHAR_BIT / TARGET_CHAR_BIT, 0,
1552 "integer constant",
c5aa993b 1553 (struct objfile *) NULL);
c906108c
SS
1554 SYMBOL_TYPE (sym) = int_const_type;
1555 SYMBOL_VALUE (sym) = atoi (p);
1556 SYMBOL_CLASS (sym) = LOC_CONST;
1557 }
1558 break;
1559 case 'e':
1560 /* SYMBOL:c=eTYPE,INTVALUE for a constant symbol whose value
1561 can be represented as integral.
1562 e.g. "b:c=e6,0" for "const b = blob1"
1563 (where type 6 is defined by "blobs:t6=eblob1:0,blob2:1,;"). */
1564 {
1565 SYMBOL_CLASS (sym) = LOC_CONST;
1566 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1567
1568 if (*p != ',')
1569 {
1570 SYMBOL_TYPE (sym) = error_type (&p, objfile);
1571 break;
1572 }
1573 ++p;
1574
1575 /* If the value is too big to fit in an int (perhaps because
1576 it is unsigned), or something like that, we silently get
1577 a bogus value. The type and everything else about it is
1578 correct. Ideally, we should be using whatever we have
1579 available for parsing unsigned and long long values,
1580 however. */
1581 SYMBOL_VALUE (sym) = atoi (p);
1582 }
1583 break;
1584 default:
1585 {
1586 SYMBOL_CLASS (sym) = LOC_CONST;
1587 SYMBOL_TYPE (sym) = error_type (&p, objfile);
1588 }
1589 }
1590 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1591 add_symbol_to_list (sym, &file_symbols);
1592 return sym;
1593
1594 case 'C':
1595 /* The name of a caught exception. */
1596 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1597 SYMBOL_CLASS (sym) = LOC_LABEL;
1598 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1599 SYMBOL_VALUE_ADDRESS (sym) = valu;
1600 add_symbol_to_list (sym, &local_symbols);
1601 break;
1602
1603 case 'f':
1604 /* A static function definition. */
1605 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1606 SYMBOL_CLASS (sym) = LOC_BLOCK;
1607 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1608 add_symbol_to_list (sym, &file_symbols);
1609 /* fall into process_function_types. */
1610
1611 process_function_types:
1612 /* Function result types are described as the result type in stabs.
c5aa993b
JM
1613 We need to convert this to the function-returning-type-X type
1614 in GDB. E.g. "int" is converted to "function returning int". */
c906108c
SS
1615 if (TYPE_CODE (SYMBOL_TYPE (sym)) != TYPE_CODE_FUNC)
1616 SYMBOL_TYPE (sym) = lookup_function_type (SYMBOL_TYPE (sym));
1617
1618 /* All functions in C++ have prototypes. */
1619 if (SYMBOL_LANGUAGE (sym) == language_cplus)
1620 TYPE_FLAGS (SYMBOL_TYPE (sym)) |= TYPE_FLAG_PROTOTYPED;
1621
1622 /* fall into process_prototype_types */
1623
1624 process_prototype_types:
1625 /* Sun acc puts declared types of arguments here. */
1626 if (*p == ';')
1627 {
1628 struct type *ftype = SYMBOL_TYPE (sym);
1629 int nsemi = 0;
1630 int nparams = 0;
1631 char *p1 = p;
1632
1633 /* Obtain a worst case guess for the number of arguments
1634 by counting the semicolons. */
1635 while (*p1)
1636 {
1637 if (*p1++ == ';')
1638 nsemi++;
1639 }
1640
1641 /* Allocate parameter information fields and fill them in. */
1642 TYPE_FIELDS (ftype) = (struct field *)
1643 TYPE_ALLOC (ftype, nsemi * sizeof (struct field));
1644 while (*p++ == ';')
1645 {
1646 struct type *ptype;
1647
1648 /* A type number of zero indicates the start of varargs.
c5aa993b 1649 FIXME: GDB currently ignores vararg functions. */
c906108c
SS
1650 if (p[0] == '0' && p[1] == '\0')
1651 break;
1652 ptype = read_type (&p, objfile);
1653
1654 /* The Sun compilers mark integer arguments, which should
c5aa993b
JM
1655 be promoted to the width of the calling conventions, with
1656 a type which references itself. This type is turned into
1657 a TYPE_CODE_VOID type by read_type, and we have to turn
1658 it back into builtin_type_int here.
1659 FIXME: Do we need a new builtin_type_promoted_int_arg ? */
c906108c
SS
1660 if (TYPE_CODE (ptype) == TYPE_CODE_VOID)
1661 ptype = builtin_type_int;
8176bb6d
DJ
1662 TYPE_FIELD_TYPE (ftype, nparams) = ptype;
1663 TYPE_FIELD_ARTIFICIAL (ftype, nparams++) = 0;
c906108c
SS
1664 }
1665 TYPE_NFIELDS (ftype) = nparams;
1666 TYPE_FLAGS (ftype) |= TYPE_FLAG_PROTOTYPED;
1667 }
1668 break;
1669
1670 case 'F':
1671 /* A global function definition. */
1672 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1673 SYMBOL_CLASS (sym) = LOC_BLOCK;
1674 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1675 add_symbol_to_list (sym, &global_symbols);
1676 goto process_function_types;
1677
1678 case 'G':
1679 /* For a class G (global) symbol, it appears that the
c5aa993b
JM
1680 value is not correct. It is necessary to search for the
1681 corresponding linker definition to find the value.
1682 These definitions appear at the end of the namelist. */
c906108c
SS
1683 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1684 SYMBOL_CLASS (sym) = LOC_STATIC;
1685 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1686 /* Don't add symbol references to global_sym_chain.
c5aa993b
JM
1687 Symbol references don't have valid names and wont't match up with
1688 minimal symbols when the global_sym_chain is relocated.
1689 We'll fixup symbol references when we fixup the defining symbol. */
c906108c
SS
1690 if (SYMBOL_NAME (sym) && SYMBOL_NAME (sym)[0] != '#')
1691 {
c5aa993b
JM
1692 i = hashname (SYMBOL_NAME (sym));
1693 SYMBOL_VALUE_CHAIN (sym) = global_sym_chain[i];
1694 global_sym_chain[i] = sym;
c906108c
SS
1695 }
1696 add_symbol_to_list (sym, &global_symbols);
1697 break;
1698
1699 /* This case is faked by a conditional above,
c5aa993b
JM
1700 when there is no code letter in the dbx data.
1701 Dbx data never actually contains 'l'. */
c906108c
SS
1702 case 's':
1703 case 'l':
1704 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1705 SYMBOL_CLASS (sym) = LOC_LOCAL;
1706 SYMBOL_VALUE (sym) = valu;
1707 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1708 add_symbol_to_list (sym, &local_symbols);
1709 break;
1710
1711 case 'p':
1712 if (*p == 'F')
1713 /* pF is a two-letter code that means a function parameter in Fortran.
1714 The type-number specifies the type of the return value.
1715 Translate it into a pointer-to-function type. */
1716 {
1717 p++;
1718 SYMBOL_TYPE (sym)
1719 = lookup_pointer_type
c5aa993b 1720 (lookup_function_type (read_type (&p, objfile)));
c906108c
SS
1721 }
1722 else
1723 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1724
1725 /* Normally this is a parameter, a LOC_ARG. On the i960, it
c5aa993b 1726 can also be a LOC_LOCAL_ARG depending on symbol type. */
c906108c
SS
1727#ifndef DBX_PARM_SYMBOL_CLASS
1728#define DBX_PARM_SYMBOL_CLASS(type) LOC_ARG
1729#endif
1730
1731 SYMBOL_CLASS (sym) = DBX_PARM_SYMBOL_CLASS (type);
1732 SYMBOL_VALUE (sym) = valu;
1733 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1734 add_symbol_to_list (sym, &local_symbols);
1735
d7449b42 1736 if (TARGET_BYTE_ORDER != BFD_ENDIAN_BIG)
c906108c
SS
1737 {
1738 /* On little-endian machines, this crud is never necessary,
1739 and, if the extra bytes contain garbage, is harmful. */
1740 break;
1741 }
1742
1743 /* If it's gcc-compiled, if it says `short', believe it. */
1744 if (processing_gcc_compilation || BELIEVE_PCC_PROMOTION)
1745 break;
1746
7a292a7a
SS
1747 if (!BELIEVE_PCC_PROMOTION)
1748 {
1749 /* This is the signed type which arguments get promoted to. */
1750 static struct type *pcc_promotion_type;
1751 /* This is the unsigned type which arguments get promoted to. */
1752 static struct type *pcc_unsigned_promotion_type;
c5aa993b 1753
7a292a7a
SS
1754 /* Call it "int" because this is mainly C lossage. */
1755 if (pcc_promotion_type == NULL)
1756 pcc_promotion_type =
1757 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
1758 0, "int", NULL);
c5aa993b 1759
7a292a7a
SS
1760 if (pcc_unsigned_promotion_type == NULL)
1761 pcc_unsigned_promotion_type =
1762 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
1763 TYPE_FLAG_UNSIGNED, "unsigned int", NULL);
c5aa993b 1764
7a292a7a
SS
1765 if (BELIEVE_PCC_PROMOTION_TYPE)
1766 {
1767 /* This is defined on machines (e.g. sparc) where we
c5aa993b
JM
1768 should believe the type of a PCC 'short' argument,
1769 but shouldn't believe the address (the address is the
1770 address of the corresponding int).
1771
1772 My guess is that this correction, as opposed to
1773 changing the parameter to an 'int' (as done below,
1774 for PCC on most machines), is the right thing to do
1775 on all machines, but I don't want to risk breaking
1776 something that already works. On most PCC machines,
1777 the sparc problem doesn't come up because the calling
1778 function has to zero the top bytes (not knowing
1779 whether the called function wants an int or a short),
1780 so there is little practical difference between an
1781 int and a short (except perhaps what happens when the
1782 GDB user types "print short_arg = 0x10000;").
1783
1784 Hacked for SunOS 4.1 by gnu@cygnus.com. In 4.1, the
1785 compiler actually produces the correct address (we
1786 don't need to fix it up). I made this code adapt so
1787 that it will offset the symbol if it was pointing at
1788 an int-aligned location and not otherwise. This way
1789 you can use the same gdb for 4.0.x and 4.1 systems.
1790
1791 If the parameter is shorter than an int, and is
1792 integral (e.g. char, short, or unsigned equivalent),
1793 and is claimed to be passed on an integer boundary,
1794 don't believe it! Offset the parameter's address to
1795 the tail-end of that integer. */
1796
7a292a7a
SS
1797 if (TYPE_LENGTH (SYMBOL_TYPE (sym)) < TYPE_LENGTH (pcc_promotion_type)
1798 && TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_INT
c5aa993b 1799 && 0 == SYMBOL_VALUE (sym) % TYPE_LENGTH (pcc_promotion_type))
7a292a7a
SS
1800 {
1801 SYMBOL_VALUE (sym) += TYPE_LENGTH (pcc_promotion_type)
1802 - TYPE_LENGTH (SYMBOL_TYPE (sym));
1803 }
1804 break;
1805 }
1806 else
1807 {
1808 /* If PCC says a parameter is a short or a char,
c5aa993b 1809 it is really an int. */
7a292a7a
SS
1810 if (TYPE_LENGTH (SYMBOL_TYPE (sym)) < TYPE_LENGTH (pcc_promotion_type)
1811 && TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_INT)
1812 {
1813 SYMBOL_TYPE (sym) =
1814 TYPE_UNSIGNED (SYMBOL_TYPE (sym))
1815 ? pcc_unsigned_promotion_type
1816 : pcc_promotion_type;
1817 }
1818 break;
1819 }
1820 }
c906108c
SS
1821
1822 case 'P':
1823 /* acc seems to use P to declare the prototypes of functions that
1824 are referenced by this file. gdb is not prepared to deal
1825 with this extra information. FIXME, it ought to. */
1826 if (type == N_FUN)
1827 {
1828 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1829 goto process_prototype_types;
1830 }
c5aa993b 1831 /*FALLTHROUGH */
c906108c
SS
1832
1833 case 'R':
1834 /* Parameter which is in a register. */
1835 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1836 SYMBOL_CLASS (sym) = LOC_REGPARM;
1837 SYMBOL_VALUE (sym) = STAB_REG_TO_REGNUM (valu);
64485362 1838 if (SYMBOL_VALUE (sym) >= NUM_REGS + NUM_PSEUDO_REGS)
c906108c 1839 {
64485362
AC
1840 complain (&reg_value_complaint, SYMBOL_VALUE (sym),
1841 NUM_REGS + NUM_PSEUDO_REGS,
c906108c 1842 SYMBOL_SOURCE_NAME (sym));
c5aa993b 1843 SYMBOL_VALUE (sym) = SP_REGNUM; /* Known safe, though useless */
c906108c
SS
1844 }
1845 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1846 add_symbol_to_list (sym, &local_symbols);
1847 break;
1848
1849 case 'r':
1850 /* Register variable (either global or local). */
1851 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1852 SYMBOL_CLASS (sym) = LOC_REGISTER;
1853 SYMBOL_VALUE (sym) = STAB_REG_TO_REGNUM (valu);
64485362 1854 if (SYMBOL_VALUE (sym) >= NUM_REGS + NUM_PSEUDO_REGS)
c906108c 1855 {
64485362
AC
1856 complain (&reg_value_complaint, SYMBOL_VALUE (sym),
1857 NUM_REGS + NUM_PSEUDO_REGS,
c906108c 1858 SYMBOL_SOURCE_NAME (sym));
c5aa993b 1859 SYMBOL_VALUE (sym) = SP_REGNUM; /* Known safe, though useless */
c906108c
SS
1860 }
1861 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1862 if (within_function)
1863 {
1864 /* Sun cc uses a pair of symbols, one 'p' and one 'r' with the same
1865 name to represent an argument passed in a register.
1866 GCC uses 'P' for the same case. So if we find such a symbol pair
1867 we combine it into one 'P' symbol. For Sun cc we need to do this
1868 regardless of REG_STRUCT_HAS_ADDR, because the compiler puts out
1869 the 'p' symbol even if it never saves the argument onto the stack.
1870
1871 On most machines, we want to preserve both symbols, so that
1872 we can still get information about what is going on with the
1873 stack (VAX for computing args_printed, using stack slots instead
1874 of saved registers in backtraces, etc.).
1875
1876 Note that this code illegally combines
c5aa993b 1877 main(argc) struct foo argc; { register struct foo argc; }
c906108c
SS
1878 but this case is considered pathological and causes a warning
1879 from a decent compiler. */
1880
1881 if (local_symbols
1882 && local_symbols->nsyms > 0
1883#ifndef USE_REGISTER_NOT_ARG
d03e67c9 1884 && REG_STRUCT_HAS_ADDR_P ()
c906108c
SS
1885 && REG_STRUCT_HAS_ADDR (processing_gcc_compilation,
1886 SYMBOL_TYPE (sym))
1887 && (TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_STRUCT
1888 || TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_UNION
1889 || TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_SET
1890 || TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_BITSTRING)
1891#endif
c5aa993b 1892 )
c906108c
SS
1893 {
1894 struct symbol *prev_sym;
1895 prev_sym = local_symbols->symbol[local_symbols->nsyms - 1];
1896 if ((SYMBOL_CLASS (prev_sym) == LOC_REF_ARG
1897 || SYMBOL_CLASS (prev_sym) == LOC_ARG)
c5aa993b 1898 && STREQ (SYMBOL_NAME (prev_sym), SYMBOL_NAME (sym)))
c906108c
SS
1899 {
1900 SYMBOL_CLASS (prev_sym) = LOC_REGPARM;
1901 /* Use the type from the LOC_REGISTER; that is the type
1902 that is actually in that register. */
1903 SYMBOL_TYPE (prev_sym) = SYMBOL_TYPE (sym);
1904 SYMBOL_VALUE (prev_sym) = SYMBOL_VALUE (sym);
1905 sym = prev_sym;
1906 break;
1907 }
1908 }
c5aa993b 1909 add_symbol_to_list (sym, &local_symbols);
c906108c
SS
1910 }
1911 else
c5aa993b 1912 add_symbol_to_list (sym, &file_symbols);
c906108c
SS
1913 break;
1914
1915 case 'S':
1916 /* Static symbol at top level of file */
1917 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1918 SYMBOL_CLASS (sym) = LOC_STATIC;
1919 SYMBOL_VALUE_ADDRESS (sym) = valu;
1920#ifdef STATIC_TRANSFORM_NAME
1921 if (IS_STATIC_TRANSFORM_NAME (SYMBOL_NAME (sym)))
c5aa993b
JM
1922 {
1923 struct minimal_symbol *msym;
1924 msym = lookup_minimal_symbol (SYMBOL_NAME (sym), NULL, objfile);
1925 if (msym != NULL)
1926 {
1927 SYMBOL_NAME (sym) = STATIC_TRANSFORM_NAME (SYMBOL_NAME (sym));
1928 SYMBOL_VALUE_ADDRESS (sym) = SYMBOL_VALUE_ADDRESS (msym);
1929 }
1930 }
c906108c
SS
1931#endif
1932 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1933 add_symbol_to_list (sym, &file_symbols);
1934 break;
1935
1936 case 't':
e2cd42dd 1937 /* Typedef */
c906108c
SS
1938 SYMBOL_TYPE (sym) = read_type (&p, objfile);
1939
1940 /* For a nameless type, we don't want a create a symbol, thus we
c5aa993b
JM
1941 did not use `sym'. Return without further processing. */
1942 if (nameless)
1943 return NULL;
c906108c
SS
1944
1945 SYMBOL_CLASS (sym) = LOC_TYPEDEF;
1946 SYMBOL_VALUE (sym) = valu;
1947 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
1948 /* C++ vagaries: we may have a type which is derived from
c5aa993b
JM
1949 a base type which did not have its name defined when the
1950 derived class was output. We fill in the derived class's
1951 base part member's name here in that case. */
c906108c
SS
1952 if (TYPE_NAME (SYMBOL_TYPE (sym)) != NULL)
1953 if ((TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_STRUCT
1954 || TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_UNION)
1955 && TYPE_N_BASECLASSES (SYMBOL_TYPE (sym)))
1956 {
1957 int j;
1958 for (j = TYPE_N_BASECLASSES (SYMBOL_TYPE (sym)) - 1; j >= 0; j--)
1959 if (TYPE_BASECLASS_NAME (SYMBOL_TYPE (sym), j) == 0)
1960 TYPE_BASECLASS_NAME (SYMBOL_TYPE (sym), j) =
1961 type_name_no_tag (TYPE_BASECLASS (SYMBOL_TYPE (sym), j));
1962 }
1963
1964 if (TYPE_NAME (SYMBOL_TYPE (sym)) == NULL)
1965 {
1966 /* gcc-2.6 or later (when using -fvtable-thunks)
1967 emits a unique named type for a vtable entry.
1968 Some gdb code depends on that specific name. */
1969 extern const char vtbl_ptr_name[];
1970
1971 if ((TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_PTR
1972 && strcmp (SYMBOL_NAME (sym), vtbl_ptr_name))
1973 || TYPE_CODE (SYMBOL_TYPE (sym)) == TYPE_CODE_FUNC)
1974 {
1975 /* If we are giving a name to a type such as "pointer to
c5aa993b
JM
1976 foo" or "function returning foo", we better not set
1977 the TYPE_NAME. If the program contains "typedef char
1978 *caddr_t;", we don't want all variables of type char
1979 * to print as caddr_t. This is not just a
1980 consequence of GDB's type management; PCC and GCC (at
1981 least through version 2.4) both output variables of
1982 either type char * or caddr_t with the type number
1983 defined in the 't' symbol for caddr_t. If a future
1984 compiler cleans this up it GDB is not ready for it
1985 yet, but if it becomes ready we somehow need to
1986 disable this check (without breaking the PCC/GCC2.4
1987 case).
1988
1989 Sigh.
1990
1991 Fortunately, this check seems not to be necessary
1992 for anything except pointers or functions. */
49d97c60
EZ
1993 /* ezannoni: 2000-10-26. This seems to apply for
1994 versions of gcc older than 2.8. This was the original
1995 problem: with the following code gdb would tell that
1996 the type for name1 is caddr_t, and func is char()
1997 typedef char *caddr_t;
1998 char *name2;
1999 struct x
2000 {
2001 char *name1;
2002 } xx;
2003 char *func()
2004 {
2005 }
2006 main () {}
2007 */
2008
2009 /* Pascal accepts names for pointer types. */
2010 if (current_subfile->language == language_pascal)
2011 {
2012 TYPE_NAME (SYMBOL_TYPE (sym)) = SYMBOL_NAME (sym);
2013 }
c906108c
SS
2014 }
2015 else
2016 TYPE_NAME (SYMBOL_TYPE (sym)) = SYMBOL_NAME (sym);
2017 }
2018
2019 add_symbol_to_list (sym, &file_symbols);
2020 break;
2021
2022 case 'T':
2023 /* Struct, union, or enum tag. For GNU C++, this can be be followed
c5aa993b 2024 by 't' which means we are typedef'ing it as well. */
c906108c
SS
2025 synonym = *p == 't';
2026
2027 if (synonym)
2028 p++;
2029 /* The semantics of C++ state that "struct foo { ... }" also defines
c5aa993b
JM
2030 a typedef for "foo". Unfortunately, cfront never makes the typedef
2031 when translating C++ into C. We make the typedef here so that
2032 "ptype foo" works as expected for cfront translated code. */
3b4efeaa
MS
2033 else if ((current_subfile->language == language_cplus)
2034 || (current_subfile->language == language_objc))
c906108c
SS
2035 synonym = 1;
2036
2037 SYMBOL_TYPE (sym) = read_type (&p, objfile);
2038
2039 /* For a nameless type, we don't want a create a symbol, thus we
c5aa993b
JM
2040 did not use `sym'. Return without further processing. */
2041 if (nameless)
2042 return NULL;
c906108c
SS
2043
2044 SYMBOL_CLASS (sym) = LOC_TYPEDEF;
2045 SYMBOL_VALUE (sym) = valu;
2046 SYMBOL_NAMESPACE (sym) = STRUCT_NAMESPACE;
2047 if (TYPE_TAG_NAME (SYMBOL_TYPE (sym)) == 0)
2048 TYPE_TAG_NAME (SYMBOL_TYPE (sym))
c5aa993b 2049 = obconcat (&objfile->type_obstack, "", "", SYMBOL_NAME (sym));
c906108c
SS
2050 add_symbol_to_list (sym, &file_symbols);
2051
2052 if (synonym)
2053 {
2054 /* Clone the sym and then modify it. */
2055 register struct symbol *typedef_sym = (struct symbol *)
c5aa993b 2056 obstack_alloc (&objfile->symbol_obstack, sizeof (struct symbol));
c906108c
SS
2057 *typedef_sym = *sym;
2058 SYMBOL_CLASS (typedef_sym) = LOC_TYPEDEF;
2059 SYMBOL_VALUE (typedef_sym) = valu;
2060 SYMBOL_NAMESPACE (typedef_sym) = VAR_NAMESPACE;
2061 if (TYPE_NAME (SYMBOL_TYPE (sym)) == 0)
2062 TYPE_NAME (SYMBOL_TYPE (sym))
c5aa993b 2063 = obconcat (&objfile->type_obstack, "", "", SYMBOL_NAME (sym));
c906108c
SS
2064 add_symbol_to_list (typedef_sym, &file_symbols);
2065 }
2066 break;
2067
2068 case 'V':
2069 /* Static symbol of local scope */
2070 SYMBOL_TYPE (sym) = read_type (&p, objfile);
2071 SYMBOL_CLASS (sym) = LOC_STATIC;
2072 SYMBOL_VALUE_ADDRESS (sym) = valu;
2073#ifdef STATIC_TRANSFORM_NAME
2074 if (IS_STATIC_TRANSFORM_NAME (SYMBOL_NAME (sym)))
c5aa993b
JM
2075 {
2076 struct minimal_symbol *msym;
2077 msym = lookup_minimal_symbol (SYMBOL_NAME (sym), NULL, objfile);
2078 if (msym != NULL)
2079 {
2080 SYMBOL_NAME (sym) = STATIC_TRANSFORM_NAME (SYMBOL_NAME (sym));
2081 SYMBOL_VALUE_ADDRESS (sym) = SYMBOL_VALUE_ADDRESS (msym);
2082 }
2083 }
c906108c
SS
2084#endif
2085 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
cdecafbe
EZ
2086#if 0 /* OBSOLETE OS9K */
2087// OBSOLETE if (os9k_stabs)
2088// OBSOLETE add_symbol_to_list (sym, &global_symbols);
2089// OBSOLETE else
2090#endif /* OBSOLETE OS9K */
c906108c
SS
2091 add_symbol_to_list (sym, &local_symbols);
2092 break;
2093
2094 case 'v':
2095 /* Reference parameter */
2096 SYMBOL_TYPE (sym) = read_type (&p, objfile);
2097 SYMBOL_CLASS (sym) = LOC_REF_ARG;
2098 SYMBOL_VALUE (sym) = valu;
2099 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
2100 add_symbol_to_list (sym, &local_symbols);
2101 break;
2102
2103 case 'a':
2104 /* Reference parameter which is in a register. */
2105 SYMBOL_TYPE (sym) = read_type (&p, objfile);
2106 SYMBOL_CLASS (sym) = LOC_REGPARM_ADDR;
2107 SYMBOL_VALUE (sym) = STAB_REG_TO_REGNUM (valu);
64485362 2108 if (SYMBOL_VALUE (sym) >= NUM_REGS + NUM_PSEUDO_REGS)
c906108c 2109 {
64485362
AC
2110 complain (&reg_value_complaint, SYMBOL_VALUE (sym),
2111 NUM_REGS + NUM_PSEUDO_REGS,
c906108c 2112 SYMBOL_SOURCE_NAME (sym));
c5aa993b 2113 SYMBOL_VALUE (sym) = SP_REGNUM; /* Known safe, though useless */
c906108c
SS
2114 }
2115 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
2116 add_symbol_to_list (sym, &local_symbols);
2117 break;
2118
2119 case 'X':
2120 /* This is used by Sun FORTRAN for "function result value".
c5aa993b
JM
2121 Sun claims ("dbx and dbxtool interfaces", 2nd ed)
2122 that Pascal uses it too, but when I tried it Pascal used
2123 "x:3" (local symbol) instead. */
c906108c
SS
2124 SYMBOL_TYPE (sym) = read_type (&p, objfile);
2125 SYMBOL_CLASS (sym) = LOC_LOCAL;
2126 SYMBOL_VALUE (sym) = valu;
2127 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
2128 add_symbol_to_list (sym, &local_symbols);
2129 break;
2130
c5aa993b
JM
2131 /* New code added to support cfront stabs strings.
2132 Note: case 'P' already handled above */
c906108c
SS
2133 case 'Z':
2134 /* Cfront type continuation coming up!
c5aa993b
JM
2135 Find the original definition and add to it.
2136 We'll have to do this for the typedef too,
2137 since we cloned the symbol to define a type in read_type.
2138 Stabs info examples:
2139 __1C :Ztl
2140 foo__1CFv :ZtF (first def foo__1CFv:F(0,3);(0,24))
2141 C:ZsC;;__ct__1CFv func1__1CFv func2__1CFv ... ;;;
2142 where C is the name of the class.
2143 Unfortunately, we can't lookup the original symbol yet 'cuz
2144 we haven't finished reading all the symbols.
2145 Instead, we save it for processing later */
c906108c 2146 process_later (sym, p, resolve_cfront_continuation);
c5aa993b
JM
2147 SYMBOL_TYPE (sym) = error_type (&p, objfile); /* FIXME! change later */
2148 SYMBOL_CLASS (sym) = LOC_CONST;
2149 SYMBOL_VALUE (sym) = 0;
c906108c
SS
2150 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
2151 /* Don't add to list - we'll delete it later when
2152 we add the continuation to the real sym */
2153 return sym;
2154 /* End of new code added to support cfront stabs strings */
2155
2156 default:
2157 SYMBOL_TYPE (sym) = error_type (&p, objfile);
2158 SYMBOL_CLASS (sym) = LOC_CONST;
2159 SYMBOL_VALUE (sym) = 0;
2160 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
2161 add_symbol_to_list (sym, &file_symbols);
2162 break;
2163 }
2164
2165 /* When passing structures to a function, some systems sometimes pass
2166 the address in a register, not the structure itself. */
2167
d03e67c9
AC
2168 if (REG_STRUCT_HAS_ADDR_P ()
2169 && REG_STRUCT_HAS_ADDR (processing_gcc_compilation, SYMBOL_TYPE (sym))
2170 && (SYMBOL_CLASS (sym) == LOC_REGPARM || SYMBOL_CLASS (sym) == LOC_ARG))
c906108c
SS
2171 {
2172 struct type *symbol_type = check_typedef (SYMBOL_TYPE (sym));
2173
2174 if ((TYPE_CODE (symbol_type) == TYPE_CODE_STRUCT)
2175 || (TYPE_CODE (symbol_type) == TYPE_CODE_UNION)
2176 || (TYPE_CODE (symbol_type) == TYPE_CODE_BITSTRING)
2177 || (TYPE_CODE (symbol_type) == TYPE_CODE_SET))
2178 {
2179 /* If REG_STRUCT_HAS_ADDR yields non-zero we have to convert
2180 LOC_REGPARM to LOC_REGPARM_ADDR for structures and unions. */
2181 if (SYMBOL_CLASS (sym) == LOC_REGPARM)
2182 SYMBOL_CLASS (sym) = LOC_REGPARM_ADDR;
2183 /* Likewise for converting LOC_ARG to LOC_REF_ARG (for the 7th
2184 and subsequent arguments on the sparc, for example). */
2185 else if (SYMBOL_CLASS (sym) == LOC_ARG)
2186 SYMBOL_CLASS (sym) = LOC_REF_ARG;
2187 }
2188 }
2189
2190 /* Is there more to parse? For example LRS/alias information? */
2191 while (*p && *p == ';')
2192 {
2193 p++;
7a292a7a 2194 if (*p && p[0] == 'l' && p[1] == '(')
c5aa993b
JM
2195 {
2196 /* GNU extensions for live range splitting may be appended to
2197 the end of the stab string. eg. "l(#1,#2);l(#3,#5)" */
c906108c
SS
2198
2199 /* Resolve the live range and add it to SYM's live range list. */
2200 if (!resolve_live_range (objfile, sym, p))
2201 return NULL;
2202
2203 /* Find end of live range info. */
2204 p = strchr (p, ')');
c5aa993b 2205 if (!*p || *p != ')')
c906108c
SS
2206 {
2207 complain (&lrs_general_complaint, "live range format not recognized");
2208 return NULL;
2209 }
c5aa993b
JM
2210 p++;
2211 }
c906108c
SS
2212 }
2213 return sym;
2214}
2215
2216/* Add the live range found in P to the symbol SYM in objfile OBJFILE. Returns
2217 non-zero on success, zero otherwise. */
2218
2219static int
fba45db2 2220resolve_live_range (struct objfile *objfile, struct symbol *sym, char *p)
c906108c
SS
2221{
2222 int refnum;
2223 CORE_ADDR start, end;
2224
2225 /* Sanity check the beginning of the stabs string. */
2226 if (!*p || *p != 'l')
2227 {
2228 complain (&lrs_general_complaint, "live range string 1");
2229 return 0;
2230 }
2231 p++;
2232
2233 if (!*p || *p != '(')
2234 {
2235 complain (&lrs_general_complaint, "live range string 2");
2236 return 0;
2237 }
2238 p++;
c5aa993b 2239
c906108c
SS
2240 /* Get starting value of range and advance P past the reference id.
2241
2242 ?!? In theory, the process_reference should never fail, but we should
2243 catch that case just in case the compiler scrogged the stabs. */
2244 refnum = process_reference (&p);
2245 start = ref_search_value (refnum);
2246 if (!start)
2247 {
2248 complain (&lrs_general_complaint, "Live range symbol not found 1");
2249 return 0;
2250 }
2251
2252 if (!*p || *p != ',')
2253 {
2254 complain (&lrs_general_complaint, "live range string 3");
2255 return 0;
2256 }
2257 p++;
2258
2259 /* Get ending value of range and advance P past the reference id.
2260
2261 ?!? In theory, the process_reference should never fail, but we should
2262 catch that case just in case the compiler scrogged the stabs. */
2263 refnum = process_reference (&p);
2264 end = ref_search_value (refnum);
2265 if (!end)
2266 {
2267 complain (&lrs_general_complaint, "Live range symbol not found 2");
2268 return 0;
2269 }
2270
2271 if (!*p || *p != ')')
2272 {
2273 complain (&lrs_general_complaint, "live range string 4");
2274 return 0;
2275 }
2276
2277 /* Now that we know the bounds of the range, add it to the
2278 symbol. */
2279 add_live_range (objfile, sym, start, end);
2280
2281 return 1;
2282}
2283
2284/* Add a new live range defined by START and END to the symbol SYM
2285 in objfile OBJFILE. */
2286
2287static void
fba45db2
KB
2288add_live_range (struct objfile *objfile, struct symbol *sym, CORE_ADDR start,
2289 CORE_ADDR end)
c906108c
SS
2290{
2291 struct range_list *r, *rs;
2292
2293 if (start >= end)
2294 {
2295 complain (&lrs_general_complaint, "end of live range follows start");
2296 return;
2297 }
2298
2299 /* Alloc new live range structure. */
2300 r = (struct range_list *)
c5aa993b 2301 obstack_alloc (&objfile->type_obstack,
c906108c
SS
2302 sizeof (struct range_list));
2303 r->start = start;
2304 r->end = end;
2305 r->next = 0;
2306
2307 /* Append this range to the symbol's range list. */
2308 if (!SYMBOL_RANGES (sym))
2309 SYMBOL_RANGES (sym) = r;
2310 else
2311 {
2312 /* Get the last range for the symbol. */
2313 for (rs = SYMBOL_RANGES (sym); rs->next; rs = rs->next)
2314 ;
2315 rs->next = r;
2316 }
2317}
c906108c 2318\f
c5aa993b 2319
c906108c
SS
2320/* Skip rest of this symbol and return an error type.
2321
2322 General notes on error recovery: error_type always skips to the
2323 end of the symbol (modulo cretinous dbx symbol name continuation).
2324 Thus code like this:
2325
2326 if (*(*pp)++ != ';')
c5aa993b 2327 return error_type (pp, objfile);
c906108c
SS
2328
2329 is wrong because if *pp starts out pointing at '\0' (typically as the
2330 result of an earlier error), it will be incremented to point to the
2331 start of the next symbol, which might produce strange results, at least
2332 if you run off the end of the string table. Instead use
2333
2334 if (**pp != ';')
c5aa993b 2335 return error_type (pp, objfile);
c906108c
SS
2336 ++*pp;
2337
2338 or
2339
2340 if (**pp != ';')
c5aa993b 2341 foo = error_type (pp, objfile);
c906108c 2342 else
c5aa993b 2343 ++*pp;
c906108c
SS
2344
2345 And in case it isn't obvious, the point of all this hair is so the compiler
2346 can define new types and new syntaxes, and old versions of the
2347 debugger will be able to read the new symbol tables. */
2348
2349static struct type *
fba45db2 2350error_type (char **pp, struct objfile *objfile)
c906108c
SS
2351{
2352 complain (&error_type_complaint);
2353 while (1)
2354 {
2355 /* Skip to end of symbol. */
2356 while (**pp != '\0')
2357 {
2358 (*pp)++;
2359 }
2360
2361 /* Check for and handle cretinous dbx symbol name continuation! */
2362 if ((*pp)[-1] == '\\' || (*pp)[-1] == '?')
2363 {
2364 *pp = next_symbol_text (objfile);
2365 }
2366 else
2367 {
2368 break;
2369 }
2370 }
2371 return (builtin_type_error);
2372}
c906108c 2373\f
c5aa993b 2374
c906108c
SS
2375/* Read type information or a type definition; return the type. Even
2376 though this routine accepts either type information or a type
2377 definition, the distinction is relevant--some parts of stabsread.c
2378 assume that type information starts with a digit, '-', or '(' in
2379 deciding whether to call read_type. */
2380
2381struct type *
fba45db2 2382read_type (register char **pp, struct objfile *objfile)
c906108c
SS
2383{
2384 register struct type *type = 0;
2385 struct type *type1;
2386 int typenums[2];
2387 char type_descriptor;
2388
2389 /* Size in bits of type if specified by a type attribute, or -1 if
2390 there is no size attribute. */
2391 int type_size = -1;
2392
2393 /* Used to distinguish string and bitstring from char-array and set. */
2394 int is_string = 0;
2395
e2cd42dd
MS
2396 /* Used to distinguish vector from array. */
2397 int is_vector = 0;
2398
c906108c
SS
2399 /* Read type number if present. The type number may be omitted.
2400 for instance in a two-dimensional array declared with type
2401 "ar1;1;10;ar1;1;10;4". */
2402 if ((**pp >= '0' && **pp <= '9')
2403 || **pp == '('
2404 || **pp == '-')
2405 {
2406 if (read_type_number (pp, typenums) != 0)
2407 return error_type (pp, objfile);
c5aa993b 2408
c906108c 2409 /* Type is not being defined here. Either it already exists,
c5aa993b
JM
2410 or this is a forward reference to it. dbx_alloc_type handles
2411 both cases. */
c906108c
SS
2412 if (**pp != '=')
2413 return dbx_alloc_type (typenums, objfile);
2414
2415 /* Type is being defined here. */
2416 /* Skip the '='.
c5aa993b
JM
2417 Also skip the type descriptor - we get it below with (*pp)[-1]. */
2418 (*pp) += 2;
c906108c
SS
2419 }
2420 else
2421 {
2422 /* 'typenums=' not present, type is anonymous. Read and return
c5aa993b 2423 the definition, but don't put it in the type vector. */
c906108c
SS
2424 typenums[0] = typenums[1] = -1;
2425 (*pp)++;
2426 }
2427
c5aa993b 2428again:
c906108c
SS
2429 type_descriptor = (*pp)[-1];
2430 switch (type_descriptor)
2431 {
2432 case 'x':
2433 {
2434 enum type_code code;
2435
2436 /* Used to index through file_symbols. */
2437 struct pending *ppt;
2438 int i;
c5aa993b 2439
c906108c
SS
2440 /* Name including "struct", etc. */
2441 char *type_name;
c5aa993b 2442
c906108c
SS
2443 {
2444 char *from, *to, *p, *q1, *q2;
c5aa993b 2445
c906108c
SS
2446 /* Set the type code according to the following letter. */
2447 switch ((*pp)[0])
2448 {
2449 case 's':
2450 code = TYPE_CODE_STRUCT;
2451 break;
2452 case 'u':
2453 code = TYPE_CODE_UNION;
2454 break;
2455 case 'e':
2456 code = TYPE_CODE_ENUM;
2457 break;
2458 default:
2459 {
2460 /* Complain and keep going, so compilers can invent new
2461 cross-reference types. */
2462 static struct complaint msg =
c5aa993b 2463 {"Unrecognized cross-reference type `%c'", 0, 0};
c906108c
SS
2464 complain (&msg, (*pp)[0]);
2465 code = TYPE_CODE_STRUCT;
2466 break;
2467 }
2468 }
c5aa993b 2469
c906108c
SS
2470 q1 = strchr (*pp, '<');
2471 p = strchr (*pp, ':');
2472 if (p == NULL)
2473 return error_type (pp, objfile);
2474 if (q1 && p > q1 && p[1] == ':')
2475 {
2476 int nesting_level = 0;
2477 for (q2 = q1; *q2; q2++)
2478 {
2479 if (*q2 == '<')
2480 nesting_level++;
2481 else if (*q2 == '>')
2482 nesting_level--;
2483 else if (*q2 == ':' && nesting_level == 0)
2484 break;
2485 }
2486 p = q2;
2487 if (*p != ':')
2488 return error_type (pp, objfile);
2489 }
c5aa993b
JM
2490 to = type_name =
2491 (char *) obstack_alloc (&objfile->type_obstack, p - *pp + 1);
2492
c906108c
SS
2493 /* Copy the name. */
2494 from = *pp + 1;
c5aa993b 2495 while (from < p)
c906108c
SS
2496 *to++ = *from++;
2497 *to = '\0';
c5aa993b 2498
c906108c
SS
2499 /* Set the pointer ahead of the name which we just read, and
2500 the colon. */
2501 *pp = from + 1;
2502 }
2503
2504 /* Now check to see whether the type has already been
2505 declared. This was written for arrays of cross-referenced
2506 types before we had TYPE_CODE_TARGET_STUBBED, so I'm pretty
2507 sure it is not necessary anymore. But it might be a good
2508 idea, to save a little memory. */
2509
2510 for (ppt = file_symbols; ppt; ppt = ppt->next)
2511 for (i = 0; i < ppt->nsyms; i++)
2512 {
2513 struct symbol *sym = ppt->symbol[i];
2514
2515 if (SYMBOL_CLASS (sym) == LOC_TYPEDEF
2516 && SYMBOL_NAMESPACE (sym) == STRUCT_NAMESPACE
2517 && (TYPE_CODE (SYMBOL_TYPE (sym)) == code)
2518 && STREQ (SYMBOL_NAME (sym), type_name))
2519 {
c5aa993b 2520 obstack_free (&objfile->type_obstack, type_name);
c906108c
SS
2521 type = SYMBOL_TYPE (sym);
2522 return type;
2523 }
2524 }
2525
2526 /* Didn't find the type to which this refers, so we must
2527 be dealing with a forward reference. Allocate a type
2528 structure for it, and keep track of it so we can
2529 fill in the rest of the fields when we get the full
2530 type. */
2531 type = dbx_alloc_type (typenums, objfile);
2532 TYPE_CODE (type) = code;
2533 TYPE_TAG_NAME (type) = type_name;
c5aa993b 2534 INIT_CPLUS_SPECIFIC (type);
c906108c
SS
2535 TYPE_FLAGS (type) |= TYPE_FLAG_STUB;
2536
2537 add_undefined_type (type);
2538 return type;
2539 }
2540
c5aa993b 2541 case '-': /* RS/6000 built-in type */
c906108c
SS
2542 case '0':
2543 case '1':
2544 case '2':
2545 case '3':
2546 case '4':
2547 case '5':
2548 case '6':
2549 case '7':
2550 case '8':
2551 case '9':
2552 case '(':
2553 (*pp)--;
2554
2555 /* We deal with something like t(1,2)=(3,4)=... which
c5aa993b 2556 the Lucid compiler and recent gcc versions (post 2.7.3) use. */
c906108c
SS
2557
2558 /* Allocate and enter the typedef type first.
c5aa993b 2559 This handles recursive types. */
c906108c
SS
2560 type = dbx_alloc_type (typenums, objfile);
2561 TYPE_CODE (type) = TYPE_CODE_TYPEDEF;
c5aa993b
JM
2562 {
2563 struct type *xtype = read_type (pp, objfile);
c906108c
SS
2564 if (type == xtype)
2565 {
2566 /* It's being defined as itself. That means it is "void". */
2567 TYPE_CODE (type) = TYPE_CODE_VOID;
2568 TYPE_LENGTH (type) = 1;
2569 }
2570 else if (type_size >= 0 || is_string)
2571 {
dd6bda65
DJ
2572 /* This is the absolute wrong way to construct types. Every
2573 other debug format has found a way around this problem and
2574 the related problems with unnecessarily stubbed types;
2575 someone motivated should attempt to clean up the issue
2576 here as well. Once a type pointed to has been created it
13a393b0
JB
2577 should not be modified.
2578
2579 Well, it's not *absolutely* wrong. Constructing recursive
2580 types (trees, linked lists) necessarily entails modifying
2581 types after creating them. Constructing any loop structure
2582 entails side effects. The Dwarf 2 reader does handle this
2583 more gracefully (it never constructs more than once
2584 instance of a type object, so it doesn't have to copy type
2585 objects wholesale), but it still mutates type objects after
2586 other folks have references to them.
2587
2588 Keep in mind that this circularity/mutation issue shows up
2589 at the source language level, too: C's "incomplete types",
2590 for example. So the proper cleanup, I think, would be to
2591 limit GDB's type smashing to match exactly those required
2592 by the source language. So GDB could have a
2593 "complete_this_type" function, but never create unnecessary
2594 copies of a type otherwise. */
dd6bda65 2595 replace_type (type, xtype);
c906108c
SS
2596 TYPE_NAME (type) = NULL;
2597 TYPE_TAG_NAME (type) = NULL;
2598 }
2599 else
2600 {
2601 TYPE_FLAGS (type) |= TYPE_FLAG_TARGET_STUB;
2602 TYPE_TARGET_TYPE (type) = xtype;
2603 }
2604 }
2605 break;
2606
c5aa993b
JM
2607 /* In the following types, we must be sure to overwrite any existing
2608 type that the typenums refer to, rather than allocating a new one
2609 and making the typenums point to the new one. This is because there
2610 may already be pointers to the existing type (if it had been
2611 forward-referenced), and we must change it to a pointer, function,
2612 reference, or whatever, *in-place*. */
c906108c 2613
e2cd42dd 2614 case '*': /* Pointer to another type */
c906108c
SS
2615 type1 = read_type (pp, objfile);
2616 type = make_pointer_type (type1, dbx_lookup_type (typenums));
2617 break;
2618
c5aa993b 2619 case '&': /* Reference to another type */
c906108c
SS
2620 type1 = read_type (pp, objfile);
2621 type = make_reference_type (type1, dbx_lookup_type (typenums));
2622 break;
2623
c5aa993b 2624 case 'f': /* Function returning another type */
cdecafbe
EZ
2625#if 0 /* OBSOLETE OS9K */
2626// OBSOLETE if (os9k_stabs && **pp == '(')
2627// OBSOLETE {
2628// OBSOLETE /* Function prototype; parse it.
2629// OBSOLETE We must conditionalize this on os9k_stabs because otherwise
2630// OBSOLETE it could be confused with a Sun-style (1,3) typenumber
2631// OBSOLETE (I think). */
2632// OBSOLETE struct type *t;
2633// OBSOLETE ++*pp;
2634// OBSOLETE while (**pp != ')')
2635// OBSOLETE {
2636// OBSOLETE t = read_type (pp, objfile);
2637// OBSOLETE if (**pp == ',')
2638// OBSOLETE ++ * pp;
2639// OBSOLETE }
2640// OBSOLETE }
2641#endif /* OBSOLETE OS9K */
2642
c906108c
SS
2643 type1 = read_type (pp, objfile);
2644 type = make_function_type (type1, dbx_lookup_type (typenums));
2645 break;
2646
da966255
JB
2647 case 'g': /* Prototyped function. (Sun) */
2648 {
2649 /* Unresolved questions:
2650
2651 - According to Sun's ``STABS Interface Manual'', for 'f'
2652 and 'F' symbol descriptors, a `0' in the argument type list
2653 indicates a varargs function. But it doesn't say how 'g'
2654 type descriptors represent that info. Someone with access
2655 to Sun's toolchain should try it out.
2656
2657 - According to the comment in define_symbol (search for
2658 `process_prototype_types:'), Sun emits integer arguments as
2659 types which ref themselves --- like `void' types. Do we
2660 have to deal with that here, too? Again, someone with
2661 access to Sun's toolchain should try it out and let us
2662 know. */
2663
2664 const char *type_start = (*pp) - 1;
2665 struct type *return_type = read_type (pp, objfile);
2666 struct type *func_type
2667 = make_function_type (return_type, dbx_lookup_type (typenums));
2668 struct type_list {
2669 struct type *type;
2670 struct type_list *next;
2671 } *arg_types = 0;
2672 int num_args = 0;
2673
2674 while (**pp && **pp != '#')
2675 {
2676 struct type *arg_type = read_type (pp, objfile);
2677 struct type_list *new = alloca (sizeof (*new));
2678 new->type = arg_type;
2679 new->next = arg_types;
2680 arg_types = new;
2681 num_args++;
2682 }
2683 if (**pp == '#')
2684 ++*pp;
2685 else
2686 {
2687 static struct complaint msg = {
2688 "Prototyped function type didn't end arguments with `#':\n%s",
2689 0, 0
2690 };
2691 complain (&msg, type_start);
2692 }
2693
2694 /* If there is just one argument whose type is `void', then
2695 that's just an empty argument list. */
2696 if (arg_types
2697 && ! arg_types->next
2698 && TYPE_CODE (arg_types->type) == TYPE_CODE_VOID)
2699 num_args = 0;
2700
2701 TYPE_FIELDS (func_type)
2702 = (struct field *) TYPE_ALLOC (func_type,
2703 num_args * sizeof (struct field));
2704 memset (TYPE_FIELDS (func_type), 0, num_args * sizeof (struct field));
2705 {
2706 int i;
2707 struct type_list *t;
2708
2709 /* We stuck each argument type onto the front of the list
2710 when we read it, so the list is reversed. Build the
2711 fields array right-to-left. */
2712 for (t = arg_types, i = num_args - 1; t; t = t->next, i--)
2713 TYPE_FIELD_TYPE (func_type, i) = t->type;
2714 }
2715 TYPE_NFIELDS (func_type) = num_args;
2716 TYPE_FLAGS (func_type) |= TYPE_FLAG_PROTOTYPED;
2717
2718 type = func_type;
2719 break;
2720 }
2721
c5aa993b 2722 case 'k': /* Const qualifier on some type (Sun) */
cdecafbe
EZ
2723#if 0 /* OBSOLETE OS9K */
2724// OBSOLETE /* ezannoni 2002-07-16: This can be safely deleted, because 'c'
2725// OBSOLETE means complex type in AIX stabs, while it means const qualifier
2726// OBSOLETE in os9k stabs. Obviously we were supporting only the os9k meaning.
2727// OBSOLETE We were erroring out if we were reading AIX stabs. Right now the
2728// OBSOLETE erroring out will happen in the default clause of the switch. */
2729// OBSOLETE case 'c': /* Const qualifier on some type (OS9000) */
2730// OBSOLETE /* Because 'c' means other things to AIX and 'k' is perfectly good,
2731// OBSOLETE only accept 'c' in the os9k_stabs case. */
2732// OBSOLETE if (type_descriptor == 'c' && !os9k_stabs)
2733// OBSOLETE return error_type (pp, objfile);
2734#endif /* OBSOLETE OS9K */
c906108c 2735 type = read_type (pp, objfile);
d7242108
DJ
2736 type = make_cv_type (1, TYPE_VOLATILE (type), type,
2737 dbx_lookup_type (typenums));
c906108c
SS
2738 break;
2739
c5aa993b 2740 case 'B': /* Volatile qual on some type (Sun) */
cdecafbe
EZ
2741#if 0 /* OBSOLETE OS9K */
2742// OBSOLETE /* ezannoni 2002-07-16: This can be safely deleted, because 'i'
2743// OBSOLETE means imported type in AIX stabs, while it means volatile qualifier
2744// OBSOLETE in os9k stabs. Obviously we were supporting only the os9k meaning.
2745// OBSOLETE We were erroring out if we were reading AIX stabs. Right now the
2746// OBSOLETE erroring out will happen in the default clause of the switch. */
2747// OBSOLETE case 'i': /* Volatile qual on some type (OS9000) */
2748// OBSOLETE /* Because 'i' means other things to AIX and 'B' is perfectly good,
2749// OBSOLETE only accept 'i' in the os9k_stabs case. */
2750// OBSOLETE if (type_descriptor == 'i' && !os9k_stabs)
2751// OBSOLETE return error_type (pp, objfile);
2752#endif /* OBSOLETE OS9K */
c906108c 2753 type = read_type (pp, objfile);
d7242108
DJ
2754 type = make_cv_type (TYPE_CONST (type), 1, type,
2755 dbx_lookup_type (typenums));
c906108c
SS
2756 break;
2757
2758 case '@':
c5aa993b
JM
2759 if (isdigit (**pp) || **pp == '(' || **pp == '-')
2760 { /* Member (class & variable) type */
c906108c
SS
2761 /* FIXME -- we should be doing smash_to_XXX types here. */
2762
2763 struct type *domain = read_type (pp, objfile);
2764 struct type *memtype;
2765
2766 if (**pp != ',')
2767 /* Invalid member type data format. */
2768 return error_type (pp, objfile);
2769 ++*pp;
2770
2771 memtype = read_type (pp, objfile);
2772 type = dbx_alloc_type (typenums, objfile);
2773 smash_to_member_type (type, domain, memtype);
2774 }
c5aa993b
JM
2775 else
2776 /* type attribute */
c906108c
SS
2777 {
2778 char *attr = *pp;
2779 /* Skip to the semicolon. */
2780 while (**pp != ';' && **pp != '\0')
2781 ++(*pp);
2782 if (**pp == '\0')
2783 return error_type (pp, objfile);
2784 else
c5aa993b 2785 ++ * pp; /* Skip the semicolon. */
c906108c
SS
2786
2787 switch (*attr)
2788 {
e2cd42dd 2789 case 's': /* Size attribute */
c906108c
SS
2790 type_size = atoi (attr + 1);
2791 if (type_size <= 0)
2792 type_size = -1;
2793 break;
2794
e2cd42dd
MS
2795 case 'S': /* String attribute */
2796 /* FIXME: check to see if following type is array? */
c906108c
SS
2797 is_string = 1;
2798 break;
2799
e2cd42dd
MS
2800 case 'V': /* Vector attribute */
2801 /* FIXME: check to see if following type is array? */
2802 is_vector = 1;
2803 break;
2804
c906108c
SS
2805 default:
2806 /* Ignore unrecognized type attributes, so future compilers
c5aa993b 2807 can invent new ones. */
c906108c
SS
2808 break;
2809 }
2810 ++*pp;
2811 goto again;
2812 }
2813 break;
2814
c5aa993b 2815 case '#': /* Method (class & fn) type */
c906108c
SS
2816 if ((*pp)[0] == '#')
2817 {
2818 /* We'll get the parameter types from the name. */
2819 struct type *return_type;
2820
2821 (*pp)++;
2822 return_type = read_type (pp, objfile);
2823 if (*(*pp)++ != ';')
2824 complain (&invalid_member_complaint, symnum);
2825 type = allocate_stub_method (return_type);
2826 if (typenums[0] != -1)
2827 *dbx_lookup_type (typenums) = type;
2828 }
2829 else
2830 {
2831 struct type *domain = read_type (pp, objfile);
2832 struct type *return_type;
ad2f7632
DJ
2833 struct field *args;
2834 int nargs, varargs;
c906108c
SS
2835
2836 if (**pp != ',')
2837 /* Invalid member type data format. */
2838 return error_type (pp, objfile);
2839 else
2840 ++(*pp);
2841
2842 return_type = read_type (pp, objfile);
ad2f7632 2843 args = read_args (pp, ';', objfile, &nargs, &varargs);
c906108c 2844 type = dbx_alloc_type (typenums, objfile);
ad2f7632
DJ
2845 smash_to_method_type (type, domain, return_type, args,
2846 nargs, varargs);
c906108c
SS
2847 }
2848 break;
2849
c5aa993b 2850 case 'r': /* Range type */
c906108c
SS
2851 type = read_range_type (pp, typenums, objfile);
2852 if (typenums[0] != -1)
2853 *dbx_lookup_type (typenums) = type;
2854 break;
2855
2856 case 'b':
cdecafbe
EZ
2857#if 0 /* OBSOLETE OS9K */
2858// OBSOLETE if (os9k_stabs)
2859// OBSOLETE /* Const and volatile qualified type. */
2860// OBSOLETE type = read_type (pp, objfile);
2861// OBSOLETE else
2862#endif /* OBSOLETE OS9K */
c906108c
SS
2863 {
2864 /* Sun ACC builtin int type */
2865 type = read_sun_builtin_type (pp, typenums, objfile);
2866 if (typenums[0] != -1)
2867 *dbx_lookup_type (typenums) = type;
2868 }
2869 break;
2870
c5aa993b 2871 case 'R': /* Sun ACC builtin float type */
c906108c
SS
2872 type = read_sun_floating_type (pp, typenums, objfile);
2873 if (typenums[0] != -1)
2874 *dbx_lookup_type (typenums) = type;
2875 break;
c5aa993b
JM
2876
2877 case 'e': /* Enumeration type */
c906108c
SS
2878 type = dbx_alloc_type (typenums, objfile);
2879 type = read_enum_type (pp, type, objfile);
2880 if (typenums[0] != -1)
2881 *dbx_lookup_type (typenums) = type;
2882 break;
2883
c5aa993b
JM
2884 case 's': /* Struct type */
2885 case 'u': /* Union type */
2ae1c2d2
JB
2886 {
2887 enum type_code type_code = TYPE_CODE_UNDEF;
2888 type = dbx_alloc_type (typenums, objfile);
2889 switch (type_descriptor)
2890 {
2891 case 's':
2892 type_code = TYPE_CODE_STRUCT;
2893 break;
2894 case 'u':
2895 type_code = TYPE_CODE_UNION;
2896 break;
2897 }
2898 type = read_struct_type (pp, type, type_code, objfile);
2899 break;
2900 }
c906108c 2901
c5aa993b 2902 case 'a': /* Array type */
c906108c
SS
2903 if (**pp != 'r')
2904 return error_type (pp, objfile);
2905 ++*pp;
c5aa993b 2906
c906108c
SS
2907 type = dbx_alloc_type (typenums, objfile);
2908 type = read_array_type (pp, type, objfile);
2909 if (is_string)
2910 TYPE_CODE (type) = TYPE_CODE_STRING;
e2cd42dd
MS
2911 if (is_vector)
2912 TYPE_FLAGS (type) |= TYPE_FLAG_VECTOR;
c906108c
SS
2913 break;
2914
e2cd42dd 2915 case 'S': /* Set or bitstring type */
c906108c 2916 type1 = read_type (pp, objfile);
c5aa993b 2917 type = create_set_type ((struct type *) NULL, type1);
c906108c
SS
2918 if (is_string)
2919 TYPE_CODE (type) = TYPE_CODE_BITSTRING;
2920 if (typenums[0] != -1)
2921 *dbx_lookup_type (typenums) = type;
2922 break;
2923
2924 default:
2925 --*pp; /* Go back to the symbol in error */
c5aa993b 2926 /* Particularly important if it was \0! */
c906108c
SS
2927 return error_type (pp, objfile);
2928 }
2929
2930 if (type == 0)
2931 {
2932 warning ("GDB internal error, type is NULL in stabsread.c\n");
2933 return error_type (pp, objfile);
2934 }
2935
2936 /* Size specified in a type attribute overrides any other size. */
2937 if (type_size != -1)
2938 TYPE_LENGTH (type) = (type_size + TARGET_CHAR_BIT - 1) / TARGET_CHAR_BIT;
2939
2940 return type;
2941}
2942\f
2943/* RS/6000 xlc/dbx combination uses a set of builtin types, starting from -1.
2944 Return the proper type node for a given builtin type number. */
2945
2946static struct type *
fba45db2 2947rs6000_builtin_type (int typenum)
c906108c
SS
2948{
2949 /* We recognize types numbered from -NUMBER_RECOGNIZED to -1. */
2950#define NUMBER_RECOGNIZED 34
2951 /* This includes an empty slot for type number -0. */
2952 static struct type *negative_types[NUMBER_RECOGNIZED + 1];
2953 struct type *rettype = NULL;
2954
2955 if (typenum >= 0 || typenum < -NUMBER_RECOGNIZED)
2956 {
2957 complain (&rs6000_builtin_complaint, typenum);
2958 return builtin_type_error;
2959 }
2960 if (negative_types[-typenum] != NULL)
2961 return negative_types[-typenum];
2962
2963#if TARGET_CHAR_BIT != 8
c5aa993b 2964#error This code wrong for TARGET_CHAR_BIT not 8
c906108c
SS
2965 /* These definitions all assume that TARGET_CHAR_BIT is 8. I think
2966 that if that ever becomes not true, the correct fix will be to
2967 make the size in the struct type to be in bits, not in units of
2968 TARGET_CHAR_BIT. */
2969#endif
2970
2971 switch (-typenum)
2972 {
2973 case 1:
2974 /* The size of this and all the other types are fixed, defined
c5aa993b
JM
2975 by the debugging format. If there is a type called "int" which
2976 is other than 32 bits, then it should use a new negative type
2977 number (or avoid negative type numbers for that case).
2978 See stabs.texinfo. */
c906108c
SS
2979 rettype = init_type (TYPE_CODE_INT, 4, 0, "int", NULL);
2980 break;
2981 case 2:
2982 rettype = init_type (TYPE_CODE_INT, 1, 0, "char", NULL);
2983 break;
2984 case 3:
2985 rettype = init_type (TYPE_CODE_INT, 2, 0, "short", NULL);
2986 break;
2987 case 4:
2988 rettype = init_type (TYPE_CODE_INT, 4, 0, "long", NULL);
2989 break;
2990 case 5:
2991 rettype = init_type (TYPE_CODE_INT, 1, TYPE_FLAG_UNSIGNED,
2992 "unsigned char", NULL);
2993 break;
2994 case 6:
2995 rettype = init_type (TYPE_CODE_INT, 1, 0, "signed char", NULL);
2996 break;
2997 case 7:
2998 rettype = init_type (TYPE_CODE_INT, 2, TYPE_FLAG_UNSIGNED,
2999 "unsigned short", NULL);
3000 break;
3001 case 8:
3002 rettype = init_type (TYPE_CODE_INT, 4, TYPE_FLAG_UNSIGNED,
3003 "unsigned int", NULL);
3004 break;
3005 case 9:
3006 rettype = init_type (TYPE_CODE_INT, 4, TYPE_FLAG_UNSIGNED,
3007 "unsigned", NULL);
3008 case 10:
3009 rettype = init_type (TYPE_CODE_INT, 4, TYPE_FLAG_UNSIGNED,
3010 "unsigned long", NULL);
3011 break;
3012 case 11:
3013 rettype = init_type (TYPE_CODE_VOID, 1, 0, "void", NULL);
3014 break;
3015 case 12:
3016 /* IEEE single precision (32 bit). */
3017 rettype = init_type (TYPE_CODE_FLT, 4, 0, "float", NULL);
3018 break;
3019 case 13:
3020 /* IEEE double precision (64 bit). */
3021 rettype = init_type (TYPE_CODE_FLT, 8, 0, "double", NULL);
3022 break;
3023 case 14:
3024 /* This is an IEEE double on the RS/6000, and different machines with
c5aa993b
JM
3025 different sizes for "long double" should use different negative
3026 type numbers. See stabs.texinfo. */
c906108c
SS
3027 rettype = init_type (TYPE_CODE_FLT, 8, 0, "long double", NULL);
3028 break;
3029 case 15:
3030 rettype = init_type (TYPE_CODE_INT, 4, 0, "integer", NULL);
3031 break;
3032 case 16:
3033 rettype = init_type (TYPE_CODE_BOOL, 4, TYPE_FLAG_UNSIGNED,
3034 "boolean", NULL);
3035 break;
3036 case 17:
3037 rettype = init_type (TYPE_CODE_FLT, 4, 0, "short real", NULL);
3038 break;
3039 case 18:
3040 rettype = init_type (TYPE_CODE_FLT, 8, 0, "real", NULL);
3041 break;
3042 case 19:
3043 rettype = init_type (TYPE_CODE_ERROR, 0, 0, "stringptr", NULL);
3044 break;
3045 case 20:
3046 rettype = init_type (TYPE_CODE_CHAR, 1, TYPE_FLAG_UNSIGNED,
3047 "character", NULL);
3048 break;
3049 case 21:
3050 rettype = init_type (TYPE_CODE_BOOL, 1, TYPE_FLAG_UNSIGNED,
3051 "logical*1", NULL);
3052 break;
3053 case 22:
3054 rettype = init_type (TYPE_CODE_BOOL, 2, TYPE_FLAG_UNSIGNED,
3055 "logical*2", NULL);
3056 break;
3057 case 23:
3058 rettype = init_type (TYPE_CODE_BOOL, 4, TYPE_FLAG_UNSIGNED,
3059 "logical*4", NULL);
3060 break;
3061 case 24:
3062 rettype = init_type (TYPE_CODE_BOOL, 4, TYPE_FLAG_UNSIGNED,
3063 "logical", NULL);
3064 break;
3065 case 25:
3066 /* Complex type consisting of two IEEE single precision values. */
3067 rettype = init_type (TYPE_CODE_COMPLEX, 8, 0, "complex", NULL);
f65ca430
DJ
3068 TYPE_TARGET_TYPE (rettype) = init_type (TYPE_CODE_FLT, 4, 0, "float",
3069 NULL);
c906108c
SS
3070 break;
3071 case 26:
3072 /* Complex type consisting of two IEEE double precision values. */
3073 rettype = init_type (TYPE_CODE_COMPLEX, 16, 0, "double complex", NULL);
f65ca430
DJ
3074 TYPE_TARGET_TYPE (rettype) = init_type (TYPE_CODE_FLT, 8, 0, "double",
3075 NULL);
c906108c
SS
3076 break;
3077 case 27:
3078 rettype = init_type (TYPE_CODE_INT, 1, 0, "integer*1", NULL);
3079 break;
3080 case 28:
3081 rettype = init_type (TYPE_CODE_INT, 2, 0, "integer*2", NULL);
3082 break;
3083 case 29:
3084 rettype = init_type (TYPE_CODE_INT, 4, 0, "integer*4", NULL);
3085 break;
3086 case 30:
3087 rettype = init_type (TYPE_CODE_CHAR, 2, 0, "wchar", NULL);
3088 break;
3089 case 31:
3090 rettype = init_type (TYPE_CODE_INT, 8, 0, "long long", NULL);
3091 break;
3092 case 32:
3093 rettype = init_type (TYPE_CODE_INT, 8, TYPE_FLAG_UNSIGNED,
3094 "unsigned long long", NULL);
3095 break;
3096 case 33:
3097 rettype = init_type (TYPE_CODE_INT, 8, TYPE_FLAG_UNSIGNED,
3098 "logical*8", NULL);
3099 break;
3100 case 34:
3101 rettype = init_type (TYPE_CODE_INT, 8, 0, "integer*8", NULL);
3102 break;
3103 }
3104 negative_types[-typenum] = rettype;
3105 return rettype;
3106}
3107\f
3108/* This page contains subroutines of read_type. */
3109
de17c821
DJ
3110/* Replace *OLD_NAME with the method name portion of PHYSNAME. */
3111
3112static void
3113update_method_name_from_physname (char **old_name, char *physname)
3114{
3115 char *method_name;
3116
3117 method_name = method_name_from_physname (physname);
3118
3119 if (method_name == NULL)
3120 error ("bad physname %s\n", physname);
3121
3122 if (strcmp (*old_name, method_name) != 0)
3123 {
3124 xfree (*old_name);
3125 *old_name = method_name;
3126 }
3127 else
3128 xfree (method_name);
3129}
3130
c906108c
SS
3131/* Read member function stabs info for C++ classes. The form of each member
3132 function data is:
3133
c5aa993b 3134 NAME :: TYPENUM[=type definition] ARGS : PHYSNAME ;
c906108c
SS
3135
3136 An example with two member functions is:
3137
c5aa993b 3138 afunc1::20=##15;:i;2A.;afunc2::20:i;2A.;
c906108c
SS
3139
3140 For the case of overloaded operators, the format is op$::*.funcs, where
3141 $ is the CPLUS_MARKER (usually '$'), `*' holds the place for an operator
3142 name (such as `+=') and `.' marks the end of the operator name.
3143
3144 Returns 1 for success, 0 for failure. */
3145
3146static int
fba45db2
KB
3147read_member_functions (struct field_info *fip, char **pp, struct type *type,
3148 struct objfile *objfile)
c906108c
SS
3149{
3150 int nfn_fields = 0;
3151 int length = 0;
3152 /* Total number of member functions defined in this class. If the class
3153 defines two `f' functions, and one `g' function, then this will have
3154 the value 3. */
3155 int total_length = 0;
3156 int i;
3157 struct next_fnfield
3158 {
3159 struct next_fnfield *next;
3160 struct fn_field fn_field;
c5aa993b
JM
3161 }
3162 *sublist;
c906108c
SS
3163 struct type *look_ahead_type;
3164 struct next_fnfieldlist *new_fnlist;
3165 struct next_fnfield *new_sublist;
3166 char *main_fn_name;
3167 register char *p;
c5aa993b 3168
c906108c
SS
3169 /* Process each list until we find something that is not a member function
3170 or find the end of the functions. */
3171
3172 while (**pp != ';')
3173 {
3174 /* We should be positioned at the start of the function name.
c5aa993b
JM
3175 Scan forward to find the first ':' and if it is not the
3176 first of a "::" delimiter, then this is not a member function. */
c906108c
SS
3177 p = *pp;
3178 while (*p != ':')
3179 {
3180 p++;
3181 }
3182 if (p[1] != ':')
3183 {
3184 break;
3185 }
3186
3187 sublist = NULL;
3188 look_ahead_type = NULL;
3189 length = 0;
c5aa993b 3190
c906108c
SS
3191 new_fnlist = (struct next_fnfieldlist *)
3192 xmalloc (sizeof (struct next_fnfieldlist));
b8c9b27d 3193 make_cleanup (xfree, new_fnlist);
c906108c 3194 memset (new_fnlist, 0, sizeof (struct next_fnfieldlist));
c5aa993b 3195
c906108c
SS
3196 if ((*pp)[0] == 'o' && (*pp)[1] == 'p' && is_cplus_marker ((*pp)[2]))
3197 {
3198 /* This is a completely wierd case. In order to stuff in the
3199 names that might contain colons (the usual name delimiter),
3200 Mike Tiemann defined a different name format which is
3201 signalled if the identifier is "op$". In that case, the
3202 format is "op$::XXXX." where XXXX is the name. This is
3203 used for names like "+" or "=". YUUUUUUUK! FIXME! */
3204 /* This lets the user type "break operator+".
3205 We could just put in "+" as the name, but that wouldn't
3206 work for "*". */
c5aa993b
JM
3207 static char opname[32] =
3208 {'o', 'p', CPLUS_MARKER};
c906108c 3209 char *o = opname + 3;
c5aa993b 3210
c906108c
SS
3211 /* Skip past '::'. */
3212 *pp = p + 2;
3213
3214 STABS_CONTINUE (pp, objfile);
3215 p = *pp;
3216 while (*p != '.')
3217 {
3218 *o++ = *p++;
3219 }
3220 main_fn_name = savestring (opname, o - opname);
3221 /* Skip past '.' */
3222 *pp = p + 1;
3223 }
3224 else
3225 {
3226 main_fn_name = savestring (*pp, p - *pp);
3227 /* Skip past '::'. */
3228 *pp = p + 2;
3229 }
c5aa993b
JM
3230 new_fnlist->fn_fieldlist.name = main_fn_name;
3231
c906108c
SS
3232 do
3233 {
3234 new_sublist =
3235 (struct next_fnfield *) xmalloc (sizeof (struct next_fnfield));
b8c9b27d 3236 make_cleanup (xfree, new_sublist);
c906108c 3237 memset (new_sublist, 0, sizeof (struct next_fnfield));
c5aa993b 3238
c906108c
SS
3239 /* Check for and handle cretinous dbx symbol name continuation! */
3240 if (look_ahead_type == NULL)
3241 {
3242 /* Normal case. */
3243 STABS_CONTINUE (pp, objfile);
c5aa993b
JM
3244
3245 new_sublist->fn_field.type = read_type (pp, objfile);
c906108c
SS
3246 if (**pp != ':')
3247 {
3248 /* Invalid symtab info for member function. */
3249 return 0;
3250 }
3251 }
3252 else
3253 {
3254 /* g++ version 1 kludge */
c5aa993b 3255 new_sublist->fn_field.type = look_ahead_type;
c906108c
SS
3256 look_ahead_type = NULL;
3257 }
c5aa993b 3258
c906108c
SS
3259 (*pp)++;
3260 p = *pp;
3261 while (*p != ';')
3262 {
3263 p++;
3264 }
c5aa993b 3265
c906108c
SS
3266 /* If this is just a stub, then we don't have the real name here. */
3267
74a9bb82 3268 if (TYPE_STUB (new_sublist->fn_field.type))
c906108c 3269 {
c5aa993b
JM
3270 if (!TYPE_DOMAIN_TYPE (new_sublist->fn_field.type))
3271 TYPE_DOMAIN_TYPE (new_sublist->fn_field.type) = type;
3272 new_sublist->fn_field.is_stub = 1;
c906108c 3273 }
c5aa993b 3274 new_sublist->fn_field.physname = savestring (*pp, p - *pp);
c906108c 3275 *pp = p + 1;
c5aa993b 3276
c906108c
SS
3277 /* Set this member function's visibility fields. */
3278 switch (*(*pp)++)
3279 {
c5aa993b
JM
3280 case VISIBILITY_PRIVATE:
3281 new_sublist->fn_field.is_private = 1;
3282 break;
3283 case VISIBILITY_PROTECTED:
3284 new_sublist->fn_field.is_protected = 1;
3285 break;
c906108c 3286 }
c5aa993b 3287
c906108c
SS
3288 STABS_CONTINUE (pp, objfile);
3289 switch (**pp)
3290 {
c5aa993b
JM
3291 case 'A': /* Normal functions. */
3292 new_sublist->fn_field.is_const = 0;
3293 new_sublist->fn_field.is_volatile = 0;
3294 (*pp)++;
3295 break;
3296 case 'B': /* `const' member functions. */
3297 new_sublist->fn_field.is_const = 1;
3298 new_sublist->fn_field.is_volatile = 0;
3299 (*pp)++;
3300 break;
3301 case 'C': /* `volatile' member function. */
3302 new_sublist->fn_field.is_const = 0;
3303 new_sublist->fn_field.is_volatile = 1;
3304 (*pp)++;
3305 break;
3306 case 'D': /* `const volatile' member function. */
3307 new_sublist->fn_field.is_const = 1;
3308 new_sublist->fn_field.is_volatile = 1;
3309 (*pp)++;
3310 break;
3311 case '*': /* File compiled with g++ version 1 -- no info */
3312 case '?':
3313 case '.':
3314 break;
3315 default:
3316 complain (&const_vol_complaint, **pp);
3317 break;
c906108c 3318 }
c5aa993b 3319
c906108c
SS
3320 switch (*(*pp)++)
3321 {
c5aa993b 3322 case '*':
c906108c
SS
3323 {
3324 int nbits;
c5aa993b 3325 /* virtual member function, followed by index.
c906108c
SS
3326 The sign bit is set to distinguish pointers-to-methods
3327 from virtual function indicies. Since the array is
3328 in words, the quantity must be shifted left by 1
3329 on 16 bit machine, and by 2 on 32 bit machine, forcing
3330 the sign bit out, and usable as a valid index into
3331 the array. Remove the sign bit here. */
c5aa993b 3332 new_sublist->fn_field.voffset =
c906108c
SS
3333 (0x7fffffff & read_huge_number (pp, ';', &nbits)) + 2;
3334 if (nbits != 0)
3335 return 0;
c5aa993b 3336
c906108c
SS
3337 STABS_CONTINUE (pp, objfile);
3338 if (**pp == ';' || **pp == '\0')
3339 {
3340 /* Must be g++ version 1. */
c5aa993b 3341 new_sublist->fn_field.fcontext = 0;
c906108c
SS
3342 }
3343 else
3344 {
3345 /* Figure out from whence this virtual function came.
3346 It may belong to virtual function table of
3347 one of its baseclasses. */
3348 look_ahead_type = read_type (pp, objfile);
3349 if (**pp == ':')
3350 {
3351 /* g++ version 1 overloaded methods. */
3352 }
3353 else
3354 {
c5aa993b 3355 new_sublist->fn_field.fcontext = look_ahead_type;
c906108c
SS
3356 if (**pp != ';')
3357 {
3358 return 0;
3359 }
3360 else
3361 {
3362 ++*pp;
3363 }
3364 look_ahead_type = NULL;
3365 }
3366 }
3367 break;
3368 }
c5aa993b
JM
3369 case '?':
3370 /* static member function. */
4ea09c10
PS
3371 {
3372 int slen = strlen (main_fn_name);
3373
3374 new_sublist->fn_field.voffset = VOFFSET_STATIC;
3375
3376 /* For static member functions, we can't tell if they
3377 are stubbed, as they are put out as functions, and not as
3378 methods.
3379 GCC v2 emits the fully mangled name if
3380 dbxout.c:flag_minimal_debug is not set, so we have to
3381 detect a fully mangled physname here and set is_stub
3382 accordingly. Fully mangled physnames in v2 start with
3383 the member function name, followed by two underscores.
3384 GCC v3 currently always emits stubbed member functions,
3385 but with fully mangled physnames, which start with _Z. */
3386 if (!(strncmp (new_sublist->fn_field.physname,
3387 main_fn_name, slen) == 0
3388 && new_sublist->fn_field.physname[slen] == '_'
3389 && new_sublist->fn_field.physname[slen + 1] == '_'))
3390 {
3391 new_sublist->fn_field.is_stub = 1;
3392 }
3393 break;
3394 }
c5aa993b
JM
3395
3396 default:
3397 /* error */
3398 complain (&member_fn_complaint, (*pp)[-1]);
3399 /* Fall through into normal member function. */
3400
3401 case '.':
3402 /* normal member function. */
3403 new_sublist->fn_field.voffset = 0;
3404 new_sublist->fn_field.fcontext = 0;
3405 break;
c906108c 3406 }
c5aa993b
JM
3407
3408 new_sublist->next = sublist;
c906108c
SS
3409 sublist = new_sublist;
3410 length++;
3411 STABS_CONTINUE (pp, objfile);
3412 }
3413 while (**pp != ';' && **pp != '\0');
c5aa993b 3414
c906108c 3415 (*pp)++;
0c867556 3416 STABS_CONTINUE (pp, objfile);
c5aa993b 3417
0c867556
PS
3418 /* Skip GCC 3.X member functions which are duplicates of the callable
3419 constructor/destructor. */
3420 if (strcmp (main_fn_name, "__base_ctor") == 0
3421 || strcmp (main_fn_name, "__base_dtor") == 0
3422 || strcmp (main_fn_name, "__deleting_dtor") == 0)
c906108c 3423 {
0c867556 3424 xfree (main_fn_name);
c906108c 3425 }
0c867556
PS
3426 else
3427 {
de17c821
DJ
3428 int has_stub = 0;
3429 int has_destructor = 0, has_other = 0;
3430 int is_v3 = 0;
3431 struct next_fnfield *tmp_sublist;
3432
3433 /* Various versions of GCC emit various mostly-useless
3434 strings in the name field for special member functions.
3435
3436 For stub methods, we need to defer correcting the name
3437 until we are ready to unstub the method, because the current
3438 name string is used by gdb_mangle_name. The only stub methods
3439 of concern here are GNU v2 operators; other methods have their
3440 names correct (see caveat below).
3441
3442 For non-stub methods, in GNU v3, we have a complete physname.
3443 Therefore we can safely correct the name now. This primarily
3444 affects constructors and destructors, whose name will be
3445 __comp_ctor or __comp_dtor instead of Foo or ~Foo. Cast
3446 operators will also have incorrect names; for instance,
3447 "operator int" will be named "operator i" (i.e. the type is
3448 mangled).
3449
3450 For non-stub methods in GNU v2, we have no easy way to
3451 know if we have a complete physname or not. For most
3452 methods the result depends on the platform (if CPLUS_MARKER
3453 can be `$' or `.', it will use minimal debug information, or
3454 otherwise the full physname will be included).
3455
3456 Rather than dealing with this, we take a different approach.
3457 For v3 mangled names, we can use the full physname; for v2,
3458 we use cplus_demangle_opname (which is actually v2 specific),
3459 because the only interesting names are all operators - once again
3460 barring the caveat below. Skip this process if any method in the
3461 group is a stub, to prevent our fouling up the workings of
3462 gdb_mangle_name.
3463
3464 The caveat: GCC 2.95.x (and earlier?) put constructors and
3465 destructors in the same method group. We need to split this
3466 into two groups, because they should have different names.
3467 So for each method group we check whether it contains both
3468 routines whose physname appears to be a destructor (the physnames
3469 for and destructors are always provided, due to quirks in v2
3470 mangling) and routines whose physname does not appear to be a
3471 destructor. If so then we break up the list into two halves.
3472 Even if the constructors and destructors aren't in the same group
3473 the destructor will still lack the leading tilde, so that also
3474 needs to be fixed.
3475
3476 So, to summarize what we expect and handle here:
3477
3478 Given Given Real Real Action
3479 method name physname physname method name
3480
3481 __opi [none] __opi__3Foo operator int opname
3482 [now or later]
3483 Foo _._3Foo _._3Foo ~Foo separate and
3484 rename
3485 operator i _ZN3FoocviEv _ZN3FoocviEv operator int demangle
3486 __comp_ctor _ZN3FooC1ERKS_ _ZN3FooC1ERKS_ Foo demangle
3487 */
3488
3489 tmp_sublist = sublist;
3490 while (tmp_sublist != NULL)
3491 {
3492 if (tmp_sublist->fn_field.is_stub)
3493 has_stub = 1;
3494 if (tmp_sublist->fn_field.physname[0] == '_'
3495 && tmp_sublist->fn_field.physname[1] == 'Z')
3496 is_v3 = 1;
3497
3498 if (is_destructor_name (tmp_sublist->fn_field.physname))
3499 has_destructor++;
3500 else
3501 has_other++;
3502
3503 tmp_sublist = tmp_sublist->next;
3504 }
3505
3506 if (has_destructor && has_other)
3507 {
3508 struct next_fnfieldlist *destr_fnlist;
3509 struct next_fnfield *last_sublist;
3510
3511 /* Create a new fn_fieldlist for the destructors. */
3512
3513 destr_fnlist = (struct next_fnfieldlist *)
3514 xmalloc (sizeof (struct next_fnfieldlist));
3515 make_cleanup (xfree, destr_fnlist);
3516 memset (destr_fnlist, 0, sizeof (struct next_fnfieldlist));
3517 destr_fnlist->fn_fieldlist.name
3518 = obconcat (&objfile->type_obstack, "", "~",
3519 new_fnlist->fn_fieldlist.name);
3520
3521 destr_fnlist->fn_fieldlist.fn_fields = (struct fn_field *)
3522 obstack_alloc (&objfile->type_obstack,
3523 sizeof (struct fn_field) * has_destructor);
3524 memset (destr_fnlist->fn_fieldlist.fn_fields, 0,
3525 sizeof (struct fn_field) * has_destructor);
3526 tmp_sublist = sublist;
3527 last_sublist = NULL;
3528 i = 0;
3529 while (tmp_sublist != NULL)
3530 {
3531 if (!is_destructor_name (tmp_sublist->fn_field.physname))
3532 {
3533 tmp_sublist = tmp_sublist->next;
3534 continue;
3535 }
3536
3537 destr_fnlist->fn_fieldlist.fn_fields[i++]
3538 = tmp_sublist->fn_field;
3539 if (last_sublist)
3540 last_sublist->next = tmp_sublist->next;
3541 else
3542 sublist = tmp_sublist->next;
3543 last_sublist = tmp_sublist;
3544 tmp_sublist = tmp_sublist->next;
3545 }
3546
3547 destr_fnlist->fn_fieldlist.length = has_destructor;
3548 destr_fnlist->next = fip->fnlist;
3549 fip->fnlist = destr_fnlist;
3550 nfn_fields++;
3551 total_length += has_destructor;
3552 length -= has_destructor;
3553 }
3554 else if (is_v3)
3555 {
3556 /* v3 mangling prevents the use of abbreviated physnames,
3557 so we can do this here. There are stubbed methods in v3
3558 only:
3559 - in -gstabs instead of -gstabs+
3560 - or for static methods, which are output as a function type
3561 instead of a method type. */
3562
3563 update_method_name_from_physname (&new_fnlist->fn_fieldlist.name,
3564 sublist->fn_field.physname);
3565 }
3566 else if (has_destructor && new_fnlist->fn_fieldlist.name[0] != '~')
3567 {
3568 new_fnlist->fn_fieldlist.name = concat ("~", main_fn_name, NULL);
3569 xfree (main_fn_name);
3570 }
3571 else if (!has_stub)
3572 {
3573 char dem_opname[256];
3574 int ret;
3575 ret = cplus_demangle_opname (new_fnlist->fn_fieldlist.name,
3576 dem_opname, DMGL_ANSI);
3577 if (!ret)
3578 ret = cplus_demangle_opname (new_fnlist->fn_fieldlist.name,
3579 dem_opname, 0);
3580 if (ret)
3581 new_fnlist->fn_fieldlist.name
3582 = obsavestring (dem_opname, strlen (dem_opname),
3583 &objfile->type_obstack);
3584 }
3585
0c867556
PS
3586 new_fnlist->fn_fieldlist.fn_fields = (struct fn_field *)
3587 obstack_alloc (&objfile->type_obstack,
3588 sizeof (struct fn_field) * length);
3589 memset (new_fnlist->fn_fieldlist.fn_fields, 0,
3590 sizeof (struct fn_field) * length);
3591 for (i = length; (i--, sublist); sublist = sublist->next)
3592 {
3593 new_fnlist->fn_fieldlist.fn_fields[i] = sublist->fn_field;
3594 }
c5aa993b 3595
0c867556
PS
3596 new_fnlist->fn_fieldlist.length = length;
3597 new_fnlist->next = fip->fnlist;
3598 fip->fnlist = new_fnlist;
3599 nfn_fields++;
3600 total_length += length;
3601 }
c906108c
SS
3602 }
3603
3604 if (nfn_fields)
3605 {
3606 ALLOCATE_CPLUS_STRUCT_TYPE (type);
3607 TYPE_FN_FIELDLISTS (type) = (struct fn_fieldlist *)
3608 TYPE_ALLOC (type, sizeof (struct fn_fieldlist) * nfn_fields);
3609 memset (TYPE_FN_FIELDLISTS (type), 0,
3610 sizeof (struct fn_fieldlist) * nfn_fields);
3611 TYPE_NFN_FIELDS (type) = nfn_fields;
3612 TYPE_NFN_FIELDS_TOTAL (type) = total_length;
3613 }
3614
3615 return 1;
3616}
3617
3618/* Special GNU C++ name.
3619
3620 Returns 1 for success, 0 for failure. "failure" means that we can't
3621 keep parsing and it's time for error_type(). */
3622
3623static int
fba45db2
KB
3624read_cpp_abbrev (struct field_info *fip, char **pp, struct type *type,
3625 struct objfile *objfile)
c906108c
SS
3626{
3627 register char *p;
3628 char *name;
3629 char cpp_abbrev;
3630 struct type *context;
3631
3632 p = *pp;
3633 if (*++p == 'v')
3634 {
3635 name = NULL;
3636 cpp_abbrev = *++p;
3637
3638 *pp = p + 1;
3639
3640 /* At this point, *pp points to something like "22:23=*22...",
c5aa993b
JM
3641 where the type number before the ':' is the "context" and
3642 everything after is a regular type definition. Lookup the
3643 type, find it's name, and construct the field name. */
c906108c
SS
3644
3645 context = read_type (pp, objfile);
3646
3647 switch (cpp_abbrev)
3648 {
c5aa993b 3649 case 'f': /* $vf -- a virtual function table pointer */
c2bd2ed9
JB
3650 name = type_name_no_tag (context);
3651 if (name == NULL)
3652 {
3653 name = "";
3654 }
c5aa993b 3655 fip->list->field.name =
c2bd2ed9 3656 obconcat (&objfile->type_obstack, vptr_name, name, "");
c5aa993b 3657 break;
c906108c 3658
c5aa993b
JM
3659 case 'b': /* $vb -- a virtual bsomethingorother */
3660 name = type_name_no_tag (context);
3661 if (name == NULL)
3662 {
3663 complain (&invalid_cpp_type_complaint, symnum);
3664 name = "FOO";
3665 }
3666 fip->list->field.name =
3667 obconcat (&objfile->type_obstack, vb_name, name, "");
3668 break;
c906108c 3669
c5aa993b
JM
3670 default:
3671 complain (&invalid_cpp_abbrev_complaint, *pp);
3672 fip->list->field.name =
3673 obconcat (&objfile->type_obstack,
3674 "INVALID_CPLUSPLUS_ABBREV", "", "");
3675 break;
c906108c
SS
3676 }
3677
3678 /* At this point, *pp points to the ':'. Skip it and read the
c5aa993b 3679 field type. */
c906108c
SS
3680
3681 p = ++(*pp);
3682 if (p[-1] != ':')
3683 {
3684 complain (&invalid_cpp_abbrev_complaint, *pp);
3685 return 0;
3686 }
3687 fip->list->field.type = read_type (pp, objfile);
3688 if (**pp == ',')
c5aa993b 3689 (*pp)++; /* Skip the comma. */
c906108c
SS
3690 else
3691 return 0;
3692
3693 {
3694 int nbits;
3695 FIELD_BITPOS (fip->list->field) = read_huge_number (pp, ';', &nbits);
3696 if (nbits != 0)
3697 return 0;
3698 }
3699 /* This field is unpacked. */
3700 FIELD_BITSIZE (fip->list->field) = 0;
3701 fip->list->visibility = VISIBILITY_PRIVATE;
3702 }
3703 else
3704 {
3705 complain (&invalid_cpp_abbrev_complaint, *pp);
3706 /* We have no idea what syntax an unrecognized abbrev would have, so
c5aa993b
JM
3707 better return 0. If we returned 1, we would need to at least advance
3708 *pp to avoid an infinite loop. */
c906108c
SS
3709 return 0;
3710 }
3711 return 1;
3712}
3713
3714static void
fba45db2
KB
3715read_one_struct_field (struct field_info *fip, char **pp, char *p,
3716 struct type *type, struct objfile *objfile)
c906108c
SS
3717{
3718 /* The following is code to work around cfront generated stabs.
3719 The stabs contains full mangled name for each field.
3720 We try to demangle the name and extract the field name out of it.
c5aa993b 3721 */
c906108c
SS
3722 if (ARM_DEMANGLING && current_subfile->language == language_cplus)
3723 {
3724 char save_p;
3725 char *dem, *dem_p;
3726 save_p = *p;
3727 *p = '\0';
3728 dem = cplus_demangle (*pp, DMGL_ANSI | DMGL_PARAMS);
3729 if (dem != NULL)
c5aa993b
JM
3730 {
3731 dem_p = strrchr (dem, ':');
3732 if (dem_p != 0 && *(dem_p - 1) == ':')
3733 dem_p++;
3734 FIELD_NAME (fip->list->field) =
3735 obsavestring (dem_p, strlen (dem_p), &objfile->type_obstack);
3736 }
c906108c 3737 else
c5aa993b
JM
3738 {
3739 FIELD_NAME (fip->list->field) =
3740 obsavestring (*pp, p - *pp, &objfile->type_obstack);
3741 }
c906108c
SS
3742 *p = save_p;
3743 }
3744 /* end of code for cfront work around */
3745
3746 else
c5aa993b
JM
3747 fip->list->field.name =
3748 obsavestring (*pp, p - *pp, &objfile->type_obstack);
c906108c
SS
3749 *pp = p + 1;
3750
3751 /* This means we have a visibility for a field coming. */
3752 if (**pp == '/')
3753 {
3754 (*pp)++;
c5aa993b 3755 fip->list->visibility = *(*pp)++;
c906108c
SS
3756 }
3757 else
3758 {
3759 /* normal dbx-style format, no explicit visibility */
c5aa993b 3760 fip->list->visibility = VISIBILITY_PUBLIC;
c906108c
SS
3761 }
3762
c5aa993b 3763 fip->list->field.type = read_type (pp, objfile);
c906108c
SS
3764 if (**pp == ':')
3765 {
3766 p = ++(*pp);
3767#if 0
3768 /* Possible future hook for nested types. */
3769 if (**pp == '!')
3770 {
c5aa993b 3771 fip->list->field.bitpos = (long) -2; /* nested type */
c906108c
SS
3772 p = ++(*pp);
3773 }
c5aa993b
JM
3774 else
3775 ...;
c906108c 3776#endif
c5aa993b 3777 while (*p != ';')
c906108c
SS
3778 {
3779 p++;
3780 }
3781 /* Static class member. */
3782 SET_FIELD_PHYSNAME (fip->list->field, savestring (*pp, p - *pp));
3783 *pp = p + 1;
3784 return;
3785 }
3786 else if (**pp != ',')
3787 {
3788 /* Bad structure-type format. */
3789 complain (&stabs_general_complaint, "bad structure-type format");
3790 return;
3791 }
3792
3793 (*pp)++; /* Skip the comma. */
3794
3795 {
3796 int nbits;
3797 FIELD_BITPOS (fip->list->field) = read_huge_number (pp, ',', &nbits);
3798 if (nbits != 0)
3799 {
3800 complain (&stabs_general_complaint, "bad structure-type format");
3801 return;
3802 }
3803 FIELD_BITSIZE (fip->list->field) = read_huge_number (pp, ';', &nbits);
3804 if (nbits != 0)
3805 {
3806 complain (&stabs_general_complaint, "bad structure-type format");
3807 return;
3808 }
3809 }
3810
3811 if (FIELD_BITPOS (fip->list->field) == 0
3812 && FIELD_BITSIZE (fip->list->field) == 0)
3813 {
3814 /* This can happen in two cases: (1) at least for gcc 2.4.5 or so,
c5aa993b
JM
3815 it is a field which has been optimized out. The correct stab for
3816 this case is to use VISIBILITY_IGNORE, but that is a recent
3817 invention. (2) It is a 0-size array. For example
3818 union { int num; char str[0]; } foo. Printing "<no value>" for
3819 str in "p foo" is OK, since foo.str (and thus foo.str[3])
3820 will continue to work, and a 0-size array as a whole doesn't
3821 have any contents to print.
3822
3823 I suspect this probably could also happen with gcc -gstabs (not
3824 -gstabs+) for static fields, and perhaps other C++ extensions.
3825 Hopefully few people use -gstabs with gdb, since it is intended
3826 for dbx compatibility. */
c906108c
SS
3827
3828 /* Ignore this field. */
c5aa993b 3829 fip->list->visibility = VISIBILITY_IGNORE;
c906108c
SS
3830 }
3831 else
3832 {
3833 /* Detect an unpacked field and mark it as such.
c5aa993b
JM
3834 dbx gives a bit size for all fields.
3835 Note that forward refs cannot be packed,
3836 and treat enums as if they had the width of ints. */
c906108c
SS
3837
3838 struct type *field_type = check_typedef (FIELD_TYPE (fip->list->field));
3839
3840 if (TYPE_CODE (field_type) != TYPE_CODE_INT
3841 && TYPE_CODE (field_type) != TYPE_CODE_RANGE
3842 && TYPE_CODE (field_type) != TYPE_CODE_BOOL
3843 && TYPE_CODE (field_type) != TYPE_CODE_ENUM)
3844 {
3845 FIELD_BITSIZE (fip->list->field) = 0;
3846 }
c5aa993b 3847 if ((FIELD_BITSIZE (fip->list->field)
c906108c
SS
3848 == TARGET_CHAR_BIT * TYPE_LENGTH (field_type)
3849 || (TYPE_CODE (field_type) == TYPE_CODE_ENUM
c5aa993b
JM
3850 && FIELD_BITSIZE (fip->list->field) == TARGET_INT_BIT)
3851 )
c906108c
SS
3852 &&
3853 FIELD_BITPOS (fip->list->field) % 8 == 0)
3854 {
3855 FIELD_BITSIZE (fip->list->field) = 0;
3856 }
3857 }
3858}
3859
3860
3861/* Read struct or class data fields. They have the form:
3862
c5aa993b 3863 NAME : [VISIBILITY] TYPENUM , BITPOS , BITSIZE ;
c906108c
SS
3864
3865 At the end, we see a semicolon instead of a field.
3866
3867 In C++, this may wind up being NAME:?TYPENUM:PHYSNAME; for
3868 a static field.
3869
3870 The optional VISIBILITY is one of:
3871
c5aa993b
JM
3872 '/0' (VISIBILITY_PRIVATE)
3873 '/1' (VISIBILITY_PROTECTED)
3874 '/2' (VISIBILITY_PUBLIC)
3875 '/9' (VISIBILITY_IGNORE)
c906108c
SS
3876
3877 or nothing, for C style fields with public visibility.
3878
3879 Returns 1 for success, 0 for failure. */
3880
3881static int
fba45db2
KB
3882read_struct_fields (struct field_info *fip, char **pp, struct type *type,
3883 struct objfile *objfile)
c906108c
SS
3884{
3885 register char *p;
3886 struct nextfield *new;
3887
3888 /* We better set p right now, in case there are no fields at all... */
3889
3890 p = *pp;
3891
3892 /* Read each data member type until we find the terminating ';' at the end of
3893 the data member list, or break for some other reason such as finding the
3894 start of the member function list. */
fedbd091
EZ
3895 /* Stab string for structure/union does not end with two ';' in
3896 SUN C compiler 5.3 i.e. F6U2, hence check for end of string. */
c906108c 3897
fedbd091 3898 while (**pp != ';' && **pp != '\0')
c906108c 3899 {
cdecafbe
EZ
3900#if 0 /* OBSOLETE OS9K */
3901// OBSOLETE if (os9k_stabs && **pp == ',')
3902// OBSOLETE break;
3903#endif /* OBSOLETE OS9K */
c906108c
SS
3904 STABS_CONTINUE (pp, objfile);
3905 /* Get space to record the next field's data. */
3906 new = (struct nextfield *) xmalloc (sizeof (struct nextfield));
b8c9b27d 3907 make_cleanup (xfree, new);
c906108c 3908 memset (new, 0, sizeof (struct nextfield));
c5aa993b
JM
3909 new->next = fip->list;
3910 fip->list = new;
c906108c
SS
3911
3912 /* Get the field name. */
3913 p = *pp;
3914
3915 /* If is starts with CPLUS_MARKER it is a special abbreviation,
c5aa993b
JM
3916 unless the CPLUS_MARKER is followed by an underscore, in
3917 which case it is just the name of an anonymous type, which we
3918 should handle like any other type name. */
c906108c
SS
3919
3920 if (is_cplus_marker (p[0]) && p[1] != '_')
3921 {
3922 if (!read_cpp_abbrev (fip, pp, type, objfile))
3923 return 0;
3924 continue;
3925 }
3926
3927 /* Look for the ':' that separates the field name from the field
c5aa993b
JM
3928 values. Data members are delimited by a single ':', while member
3929 functions are delimited by a pair of ':'s. When we hit the member
3930 functions (if any), terminate scan loop and return. */
c906108c 3931
c5aa993b 3932 while (*p != ':' && *p != '\0')
c906108c
SS
3933 {
3934 p++;
3935 }
3936 if (*p == '\0')
3937 return 0;
3938
3939 /* Check to see if we have hit the member functions yet. */
3940 if (p[1] == ':')
3941 {
3942 break;
3943 }
3944 read_one_struct_field (fip, pp, p, type, objfile);
3945 }
3946 if (p[0] == ':' && p[1] == ':')
3947 {
db034ac5
AC
3948 /* (OBSOLETE) chill (OBSOLETE) the list of fields: the last
3949 entry (at the head) is a partially constructed entry which we
3950 now scrub. */
c5aa993b 3951 fip->list = fip->list->next;
c906108c
SS
3952 }
3953 return 1;
3954}
9846de1b 3955/* *INDENT-OFF* */
c906108c
SS
3956/* The stabs for C++ derived classes contain baseclass information which
3957 is marked by a '!' character after the total size. This function is
3958 called when we encounter the baseclass marker, and slurps up all the
3959 baseclass information.
3960
3961 Immediately following the '!' marker is the number of base classes that
3962 the class is derived from, followed by information for each base class.
3963 For each base class, there are two visibility specifiers, a bit offset
3964 to the base class information within the derived class, a reference to
3965 the type for the base class, and a terminating semicolon.
3966
3967 A typical example, with two base classes, would be "!2,020,19;0264,21;".
3968 ^^ ^ ^ ^ ^ ^ ^
3969 Baseclass information marker __________________|| | | | | | |
3970 Number of baseclasses __________________________| | | | | | |
3971 Visibility specifiers (2) ________________________| | | | | |
3972 Offset in bits from start of class _________________| | | | |
3973 Type number for base class ___________________________| | | |
3974 Visibility specifiers (2) _______________________________| | |
3975 Offset in bits from start of class ________________________| |
3976 Type number of base class ____________________________________|
3977
3978 Return 1 for success, 0 for (error-type-inducing) failure. */
9846de1b 3979/* *INDENT-ON* */
c906108c 3980
c5aa993b
JM
3981
3982
c906108c 3983static int
fba45db2
KB
3984read_baseclasses (struct field_info *fip, char **pp, struct type *type,
3985 struct objfile *objfile)
c906108c
SS
3986{
3987 int i;
3988 struct nextfield *new;
3989
3990 if (**pp != '!')
3991 {
3992 return 1;
3993 }
3994 else
3995 {
3996 /* Skip the '!' baseclass information marker. */
3997 (*pp)++;
3998 }
3999
4000 ALLOCATE_CPLUS_STRUCT_TYPE (type);
4001 {
4002 int nbits;
4003 TYPE_N_BASECLASSES (type) = read_huge_number (pp, ',', &nbits);
4004 if (nbits != 0)
4005 return 0;
4006 }
4007
4008#if 0
4009 /* Some stupid compilers have trouble with the following, so break
4010 it up into simpler expressions. */
4011 TYPE_FIELD_VIRTUAL_BITS (type) = (B_TYPE *)
4012 TYPE_ALLOC (type, B_BYTES (TYPE_N_BASECLASSES (type)));
4013#else
4014 {
4015 int num_bytes = B_BYTES (TYPE_N_BASECLASSES (type));
4016 char *pointer;
4017
4018 pointer = (char *) TYPE_ALLOC (type, num_bytes);
4019 TYPE_FIELD_VIRTUAL_BITS (type) = (B_TYPE *) pointer;
4020 }
4021#endif /* 0 */
4022
4023 B_CLRALL (TYPE_FIELD_VIRTUAL_BITS (type), TYPE_N_BASECLASSES (type));
4024
4025 for (i = 0; i < TYPE_N_BASECLASSES (type); i++)
4026 {
4027 new = (struct nextfield *) xmalloc (sizeof (struct nextfield));
b8c9b27d 4028 make_cleanup (xfree, new);
c906108c 4029 memset (new, 0, sizeof (struct nextfield));
c5aa993b
JM
4030 new->next = fip->list;
4031 fip->list = new;
c906108c
SS
4032 FIELD_BITSIZE (new->field) = 0; /* this should be an unpacked field! */
4033
4034 STABS_CONTINUE (pp, objfile);
4035 switch (**pp)
4036 {
c5aa993b
JM
4037 case '0':
4038 /* Nothing to do. */
4039 break;
4040 case '1':
4041 SET_TYPE_FIELD_VIRTUAL (type, i);
4042 break;
4043 default:
4044 /* Unknown character. Complain and treat it as non-virtual. */
4045 {
4046 static struct complaint msg =
c906108c 4047 {
c5aa993b
JM
4048 "Unknown virtual character `%c' for baseclass", 0, 0};
4049 complain (&msg, **pp);
4050 }
c906108c
SS
4051 }
4052 ++(*pp);
4053
c5aa993b
JM
4054 new->visibility = *(*pp)++;
4055 switch (new->visibility)
c906108c 4056 {
c5aa993b
JM
4057 case VISIBILITY_PRIVATE:
4058 case VISIBILITY_PROTECTED:
4059 case VISIBILITY_PUBLIC:
4060 break;
4061 default:
4062 /* Bad visibility format. Complain and treat it as
4063 public. */
4064 {
4065 static struct complaint msg =
c906108c 4066 {
53a5351d
JM
4067 "Unknown visibility `%c' for baseclass", 0, 0
4068 };
c5aa993b
JM
4069 complain (&msg, new->visibility);
4070 new->visibility = VISIBILITY_PUBLIC;
4071 }
c906108c
SS
4072 }
4073
4074 {
4075 int nbits;
c5aa993b 4076
c906108c
SS
4077 /* The remaining value is the bit offset of the portion of the object
4078 corresponding to this baseclass. Always zero in the absence of
4079 multiple inheritance. */
4080
4081 FIELD_BITPOS (new->field) = read_huge_number (pp, ',', &nbits);
4082 if (nbits != 0)
4083 return 0;
4084 }
4085
4086 /* The last piece of baseclass information is the type of the
c5aa993b
JM
4087 base class. Read it, and remember it's type name as this
4088 field's name. */
c906108c 4089
c5aa993b
JM
4090 new->field.type = read_type (pp, objfile);
4091 new->field.name = type_name_no_tag (new->field.type);
c906108c
SS
4092
4093 /* skip trailing ';' and bump count of number of fields seen */
4094 if (**pp == ';')
4095 (*pp)++;
4096 else
4097 return 0;
4098 }
4099 return 1;
4100}
4101
4102/* The tail end of stabs for C++ classes that contain a virtual function
4103 pointer contains a tilde, a %, and a type number.
4104 The type number refers to the base class (possibly this class itself) which
4105 contains the vtable pointer for the current class.
4106
4107 This function is called when we have parsed all the method declarations,
4108 so we can look for the vptr base class info. */
4109
4110static int
fba45db2
KB
4111read_tilde_fields (struct field_info *fip, char **pp, struct type *type,
4112 struct objfile *objfile)
c906108c
SS
4113{
4114 register char *p;
4115
4116 STABS_CONTINUE (pp, objfile);
4117
4118 /* If we are positioned at a ';', then skip it. */
4119 if (**pp == ';')
4120 {
4121 (*pp)++;
4122 }
4123
4124 if (**pp == '~')
4125 {
4126 (*pp)++;
4127
4128 if (**pp == '=' || **pp == '+' || **pp == '-')
4129 {
4130 /* Obsolete flags that used to indicate the presence
4131 of constructors and/or destructors. */
4132 (*pp)++;
4133 }
4134
4135 /* Read either a '%' or the final ';'. */
4136 if (*(*pp)++ == '%')
4137 {
4138 /* The next number is the type number of the base class
4139 (possibly our own class) which supplies the vtable for
4140 this class. Parse it out, and search that class to find
4141 its vtable pointer, and install those into TYPE_VPTR_BASETYPE
4142 and TYPE_VPTR_FIELDNO. */
4143
4144 struct type *t;
4145 int i;
4146
4147 t = read_type (pp, objfile);
4148 p = (*pp)++;
4149 while (*p != '\0' && *p != ';')
4150 {
4151 p++;
4152 }
4153 if (*p == '\0')
4154 {
4155 /* Premature end of symbol. */
4156 return 0;
4157 }
c5aa993b 4158
c906108c 4159 TYPE_VPTR_BASETYPE (type) = t;
c5aa993b 4160 if (type == t) /* Our own class provides vtbl ptr */
c906108c
SS
4161 {
4162 for (i = TYPE_NFIELDS (t) - 1;
4163 i >= TYPE_N_BASECLASSES (t);
4164 --i)
4165 {
c5aa993b
JM
4166 if (!strncmp (TYPE_FIELD_NAME (t, i), vptr_name,
4167 sizeof (vptr_name) - 1))
c906108c
SS
4168 {
4169 TYPE_VPTR_FIELDNO (type) = i;
4170 goto gotit;
4171 }
4172 }
4173 /* Virtual function table field not found. */
4174 complain (&vtbl_notfound_complaint, TYPE_NAME (type));
4175 return 0;
4176 }
4177 else
4178 {
4179 TYPE_VPTR_FIELDNO (type) = TYPE_VPTR_FIELDNO (t);
4180 }
4181
c5aa993b 4182 gotit:
c906108c
SS
4183 *pp = p + 1;
4184 }
4185 }
4186 return 1;
4187}
4188
4189static int
fba45db2 4190attach_fn_fields_to_type (struct field_info *fip, register struct type *type)
c906108c
SS
4191{
4192 register int n;
4193
4194 for (n = TYPE_NFN_FIELDS (type);
c5aa993b
JM
4195 fip->fnlist != NULL;
4196 fip->fnlist = fip->fnlist->next)
c906108c 4197 {
c5aa993b
JM
4198 --n; /* Circumvent Sun3 compiler bug */
4199 TYPE_FN_FIELDLISTS (type)[n] = fip->fnlist->fn_fieldlist;
c906108c
SS
4200 }
4201 return 1;
4202}
4203
4204/* read cfront class static data.
4205 pp points to string starting with the list of static data
4206 eg: A:ZcA;1@Bpub v2@Bvirpri;__ct__1AFv func__1AFv *sfunc__1AFv ;as__1A ;;
c5aa993b 4207 ^^^^^^^^
c906108c 4208
c5aa993b
JM
4209 A:ZcA;;foopri__1AFv foopro__1AFv __ct__1AFv __ct__1AFRC1A foopub__1AFv ;;;
4210 ^
4211 */
c906108c
SS
4212
4213static int
fba45db2
KB
4214read_cfront_static_fields (struct field_info *fip, char **pp, struct type *type,
4215 struct objfile *objfile)
c906108c 4216{
c5aa993b 4217 struct nextfield *new;
c906108c 4218 struct type *stype;
c5aa993b
JM
4219 char *sname;
4220 struct symbol *ref_static = 0;
4221
4222 if (**pp == ';') /* no static data; return */
c906108c
SS
4223 {
4224 ++(*pp);
4225 return 1;
4226 }
4227
4228 /* Process each field in the list until we find the terminating ";" */
4229
4230 /* eg: p = "as__1A ;;;" */
c5aa993b
JM
4231 STABS_CONTINUE (pp, objfile); /* handle \\ */
4232 while (**pp != ';' && (sname = get_substring (pp, ' '), sname))
c906108c 4233 {
c5aa993b
JM
4234 ref_static = lookup_symbol (sname, 0, VAR_NAMESPACE, 0, 0); /*demangled_name */
4235 if (!ref_static)
4236 {
4237 static struct complaint msg =
4238 {"\
c906108c 4239 Unable to find symbol for static data field %s\n",
c5aa993b 4240 0, 0};
c906108c
SS
4241 complain (&msg, sname);
4242 continue;
4243 }
c5aa993b 4244 stype = SYMBOL_TYPE (ref_static);
c906108c
SS
4245
4246 /* allocate a new fip */
4247 new = (struct nextfield *) xmalloc (sizeof (struct nextfield));
b8c9b27d 4248 make_cleanup (xfree, new);
c906108c 4249 memset (new, 0, sizeof (struct nextfield));
c5aa993b
JM
4250 new->next = fip->list;
4251 fip->list = new;
c906108c
SS
4252
4253 /* set visibility */
4254 /* FIXME! no way to tell visibility from stabs??? */
c5aa993b 4255 new->visibility = VISIBILITY_PUBLIC;
c906108c
SS
4256
4257 /* set field info into fip */
c5aa993b 4258 fip->list->field.type = stype;
c906108c
SS
4259
4260 /* set bitpos & bitsize */
4261 SET_FIELD_PHYSNAME (fip->list->field, savestring (sname, strlen (sname)));
4262
4263 /* set name field */
4264 /* The following is code to work around cfront generated stabs.
4265 The stabs contains full mangled name for each field.
4266 We try to demangle the name and extract the field name out of it.
c5aa993b 4267 */
c906108c 4268 if (ARM_DEMANGLING)
c5aa993b
JM
4269 {
4270 char *dem, *dem_p;
4271 dem = cplus_demangle (sname, DMGL_ANSI | DMGL_PARAMS);
4272 if (dem != NULL)
4273 {
4274 dem_p = strrchr (dem, ':');
4275 if (dem_p != 0 && *(dem_p - 1) == ':')
4276 dem_p++;
4277 fip->list->field.name =
4278 obsavestring (dem_p, strlen (dem_p), &objfile->type_obstack);
c906108c 4279 }
c5aa993b
JM
4280 else
4281 {
4282 fip->list->field.name =
4283 obsavestring (sname, strlen (sname), &objfile->type_obstack);
4284 }
4285 } /* end of code for cfront work around */
4286 } /* loop again for next static field */
c906108c
SS
4287 return 1;
4288}
4289
4290/* Copy structure fields to fip so attach_fields_to_type will work.
4291 type has already been created with the initial instance data fields.
4292 Now we want to be able to add the other members to the class,
4293 so we want to add them back to the fip and reattach them again
4294 once we have collected all the class members. */
4295
4296static int
fba45db2
KB
4297copy_cfront_struct_fields (struct field_info *fip, struct type *type,
4298 struct objfile *objfile)
c906108c 4299{
c5aa993b 4300 int nfields = TYPE_NFIELDS (type);
c906108c 4301 int i;
c5aa993b 4302 struct nextfield *new;
c906108c
SS
4303
4304 /* Copy the fields into the list of fips and reset the types
4305 to remove the old fields */
4306
c5aa993b 4307 for (i = 0; i < nfields; i++)
c906108c
SS
4308 {
4309 /* allocate a new fip */
4310 new = (struct nextfield *) xmalloc (sizeof (struct nextfield));
b8c9b27d 4311 make_cleanup (xfree, new);
c906108c 4312 memset (new, 0, sizeof (struct nextfield));
c5aa993b
JM
4313 new->next = fip->list;
4314 fip->list = new;
c906108c
SS
4315
4316 /* copy field info into fip */
c5aa993b 4317 new->field = TYPE_FIELD (type, i);
c906108c
SS
4318 /* set visibility */
4319 if (TYPE_FIELD_PROTECTED (type, i))
c5aa993b 4320 new->visibility = VISIBILITY_PROTECTED;
c906108c 4321 else if (TYPE_FIELD_PRIVATE (type, i))
c5aa993b 4322 new->visibility = VISIBILITY_PRIVATE;
c906108c 4323 else
c5aa993b 4324 new->visibility = VISIBILITY_PUBLIC;
c906108c
SS
4325 }
4326 /* Now delete the fields from the type since we will be
4327 allocing new space once we get the rest of the fields
4328 in attach_fields_to_type.
4329 The pointer TYPE_FIELDS(type) is left dangling but should
4330 be freed later by objstack_free */
c5aa993b 4331 TYPE_FIELDS (type) = 0;
c906108c
SS
4332 TYPE_NFIELDS (type) = 0;
4333
4334 return 1;
4335}
4336
4337/* Create the vector of fields, and record how big it is.
4338 We need this info to record proper virtual function table information
4339 for this class's virtual functions. */
4340
4341static int
fba45db2
KB
4342attach_fields_to_type (struct field_info *fip, register struct type *type,
4343 struct objfile *objfile)
c906108c
SS
4344{
4345 register int nfields = 0;
4346 register int non_public_fields = 0;
4347 register struct nextfield *scan;
4348
4349 /* Count up the number of fields that we have, as well as taking note of
4350 whether or not there are any non-public fields, which requires us to
4351 allocate and build the private_field_bits and protected_field_bits
4352 bitfields. */
4353
c5aa993b 4354 for (scan = fip->list; scan != NULL; scan = scan->next)
c906108c
SS
4355 {
4356 nfields++;
c5aa993b 4357 if (scan->visibility != VISIBILITY_PUBLIC)
c906108c
SS
4358 {
4359 non_public_fields++;
4360 }
4361 }
4362
4363 /* Now we know how many fields there are, and whether or not there are any
4364 non-public fields. Record the field count, allocate space for the
4365 array of fields, and create blank visibility bitfields if necessary. */
4366
4367 TYPE_NFIELDS (type) = nfields;
4368 TYPE_FIELDS (type) = (struct field *)
4369 TYPE_ALLOC (type, sizeof (struct field) * nfields);
4370 memset (TYPE_FIELDS (type), 0, sizeof (struct field) * nfields);
4371
4372 if (non_public_fields)
4373 {
4374 ALLOCATE_CPLUS_STRUCT_TYPE (type);
4375
4376 TYPE_FIELD_PRIVATE_BITS (type) =
4377 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
4378 B_CLRALL (TYPE_FIELD_PRIVATE_BITS (type), nfields);
4379
4380 TYPE_FIELD_PROTECTED_BITS (type) =
4381 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
4382 B_CLRALL (TYPE_FIELD_PROTECTED_BITS (type), nfields);
4383
4384 TYPE_FIELD_IGNORE_BITS (type) =
4385 (B_TYPE *) TYPE_ALLOC (type, B_BYTES (nfields));
4386 B_CLRALL (TYPE_FIELD_IGNORE_BITS (type), nfields);
4387 }
4388
4389 /* Copy the saved-up fields into the field vector. Start from the head
4390 of the list, adding to the tail of the field array, so that they end
4391 up in the same order in the array in which they were added to the list. */
4392
4393 while (nfields-- > 0)
4394 {
c5aa993b
JM
4395 TYPE_FIELD (type, nfields) = fip->list->field;
4396 switch (fip->list->visibility)
c906108c 4397 {
c5aa993b
JM
4398 case VISIBILITY_PRIVATE:
4399 SET_TYPE_FIELD_PRIVATE (type, nfields);
4400 break;
c906108c 4401
c5aa993b
JM
4402 case VISIBILITY_PROTECTED:
4403 SET_TYPE_FIELD_PROTECTED (type, nfields);
4404 break;
c906108c 4405
c5aa993b
JM
4406 case VISIBILITY_IGNORE:
4407 SET_TYPE_FIELD_IGNORE (type, nfields);
4408 break;
c906108c 4409
c5aa993b
JM
4410 case VISIBILITY_PUBLIC:
4411 break;
c906108c 4412
c5aa993b
JM
4413 default:
4414 /* Unknown visibility. Complain and treat it as public. */
4415 {
4416 static struct complaint msg =
c906108c 4417 {
c5aa993b
JM
4418 "Unknown visibility `%c' for field", 0, 0};
4419 complain (&msg, fip->list->visibility);
4420 }
4421 break;
c906108c 4422 }
c5aa993b 4423 fip->list = fip->list->next;
c906108c
SS
4424 }
4425 return 1;
4426}
4427
2ae1c2d2
JB
4428
4429static struct complaint multiply_defined_struct =
4430{"struct/union type gets multiply defined: %s%s", 0, 0};
4431
4432
4433/* Complain that the compiler has emitted more than one definition for the
4434 structure type TYPE. */
4435static void
4436complain_about_struct_wipeout (struct type *type)
4437{
4438 char *name = "";
4439 char *kind = "";
4440
4441 if (TYPE_TAG_NAME (type))
4442 {
4443 name = TYPE_TAG_NAME (type);
4444 switch (TYPE_CODE (type))
4445 {
4446 case TYPE_CODE_STRUCT: kind = "struct "; break;
4447 case TYPE_CODE_UNION: kind = "union "; break;
4448 case TYPE_CODE_ENUM: kind = "enum "; break;
4449 default: kind = "";
4450 }
4451 }
4452 else if (TYPE_NAME (type))
4453 {
4454 name = TYPE_NAME (type);
4455 kind = "";
4456 }
4457 else
4458 {
4459 name = "<unknown>";
4460 kind = "";
4461 }
4462
4463 complain (&multiply_defined_struct, kind, name);
4464}
4465
4466
c906108c
SS
4467/* Read the description of a structure (or union type) and return an object
4468 describing the type.
4469
4470 PP points to a character pointer that points to the next unconsumed token
4471 in the the stabs string. For example, given stabs "A:T4=s4a:1,0,32;;",
4472 *PP will point to "4a:1,0,32;;".
4473
4474 TYPE points to an incomplete type that needs to be filled in.
4475
4476 OBJFILE points to the current objfile from which the stabs information is
4477 being read. (Note that it is redundant in that TYPE also contains a pointer
4478 to this same objfile, so it might be a good idea to eliminate it. FIXME).
c5aa993b 4479 */
c906108c
SS
4480
4481static struct type *
2ae1c2d2
JB
4482read_struct_type (char **pp, struct type *type, enum type_code type_code,
4483 struct objfile *objfile)
c906108c
SS
4484{
4485 struct cleanup *back_to;
4486 struct field_info fi;
4487
4488 fi.list = NULL;
4489 fi.fnlist = NULL;
4490
2ae1c2d2
JB
4491 /* When describing struct/union/class types in stabs, G++ always drops
4492 all qualifications from the name. So if you've got:
4493 struct A { ... struct B { ... }; ... };
4494 then G++ will emit stabs for `struct A::B' that call it simply
4495 `struct B'. Obviously, if you've got a real top-level definition for
4496 `struct B', or other nested definitions, this is going to cause
4497 problems.
4498
4499 Obviously, GDB can't fix this by itself, but it can at least avoid
4500 scribbling on existing structure type objects when new definitions
4501 appear. */
4502 if (! (TYPE_CODE (type) == TYPE_CODE_UNDEF
4503 || TYPE_STUB (type)))
4504 {
4505 complain_about_struct_wipeout (type);
4506
4507 /* It's probably best to return the type unchanged. */
4508 return type;
4509 }
4510
c906108c
SS
4511 back_to = make_cleanup (null_cleanup, 0);
4512
4513 INIT_CPLUS_SPECIFIC (type);
2ae1c2d2 4514 TYPE_CODE (type) = type_code;
c906108c
SS
4515 TYPE_FLAGS (type) &= ~TYPE_FLAG_STUB;
4516
4517 /* First comes the total size in bytes. */
4518
4519 {
4520 int nbits;
4521 TYPE_LENGTH (type) = read_huge_number (pp, 0, &nbits);
4522 if (nbits != 0)
4523 return error_type (pp, objfile);
4524 }
4525
4526 /* Now read the baseclasses, if any, read the regular C struct or C++
4527 class member fields, attach the fields to the type, read the C++
4528 member functions, attach them to the type, and then read any tilde
4529 field (baseclass specifier for the class holding the main vtable). */
4530
4531 if (!read_baseclasses (&fi, pp, type, objfile)
4532 || !read_struct_fields (&fi, pp, type, objfile)
4533 || !attach_fields_to_type (&fi, type, objfile)
4534 || !read_member_functions (&fi, pp, type, objfile)
4535 || !attach_fn_fields_to_type (&fi, type)
4536 || !read_tilde_fields (&fi, pp, type, objfile))
4537 {
4538 type = error_type (pp, objfile);
4539 }
4540
4541 do_cleanups (back_to);
4542 return (type);
4543}
4544
4545/* Read a definition of an array type,
4546 and create and return a suitable type object.
4547 Also creates a range type which represents the bounds of that
4548 array. */
4549
4550static struct type *
fba45db2
KB
4551read_array_type (register char **pp, register struct type *type,
4552 struct objfile *objfile)
c906108c
SS
4553{
4554 struct type *index_type, *element_type, *range_type;
4555 int lower, upper;
4556 int adjustable = 0;
4557 int nbits;
4558
4559 /* Format of an array type:
4560 "ar<index type>;lower;upper;<array_contents_type>".
4561 OS9000: "arlower,upper;<array_contents_type>".
4562
4563 Fortran adjustable arrays use Adigits or Tdigits for lower or upper;
4564 for these, produce a type like float[][]. */
4565
cdecafbe
EZ
4566#if 0 /* OBSOLETE OS9K */
4567// OBSOLETE if (os9k_stabs)
4568// OBSOLETE index_type = builtin_type_int;
4569// OBSOLETE else
4570#endif /* OBSOLETE OS9K */
c906108c
SS
4571 {
4572 index_type = read_type (pp, objfile);
4573 if (**pp != ';')
4574 /* Improper format of array type decl. */
4575 return error_type (pp, objfile);
4576 ++*pp;
4577 }
4578
4579 if (!(**pp >= '0' && **pp <= '9') && **pp != '-')
4580 {
4581 (*pp)++;
4582 adjustable = 1;
4583 }
cdecafbe
EZ
4584#if 0 /* OBSOLETE OS9K */
4585// OBSOLETE lower = read_huge_number (pp, os9k_stabs ? ',' : ';', &nbits);
4586#else /* OBSOLETE OS9K */
4587 lower = read_huge_number (pp, ';', &nbits);
4588#endif /* OBSOLETE OS9K */
4589
c906108c
SS
4590 if (nbits != 0)
4591 return error_type (pp, objfile);
4592
4593 if (!(**pp >= '0' && **pp <= '9') && **pp != '-')
4594 {
4595 (*pp)++;
4596 adjustable = 1;
4597 }
4598 upper = read_huge_number (pp, ';', &nbits);
4599 if (nbits != 0)
4600 return error_type (pp, objfile);
c5aa993b 4601
c906108c
SS
4602 element_type = read_type (pp, objfile);
4603
4604 if (adjustable)
4605 {
4606 lower = 0;
4607 upper = -1;
4608 }
4609
4610 range_type =
4611 create_range_type ((struct type *) NULL, index_type, lower, upper);
4612 type = create_array_type (type, element_type, range_type);
4613
4614 return type;
4615}
4616
4617
4618/* Read a definition of an enumeration type,
4619 and create and return a suitable type object.
4620 Also defines the symbols that represent the values of the type. */
4621
4622static struct type *
fba45db2
KB
4623read_enum_type (register char **pp, register struct type *type,
4624 struct objfile *objfile)
c906108c
SS
4625{
4626 register char *p;
4627 char *name;
4628 register long n;
4629 register struct symbol *sym;
4630 int nsyms = 0;
4631 struct pending **symlist;
4632 struct pending *osyms, *syms;
4633 int o_nsyms;
4634 int nbits;
4635 int unsigned_enum = 1;
4636
4637#if 0
4638 /* FIXME! The stabs produced by Sun CC merrily define things that ought
4639 to be file-scope, between N_FN entries, using N_LSYM. What's a mother
4640 to do? For now, force all enum values to file scope. */
4641 if (within_function)
4642 symlist = &local_symbols;
4643 else
4644#endif
4645 symlist = &file_symbols;
4646 osyms = *symlist;
4647 o_nsyms = osyms ? osyms->nsyms : 0;
4648
cdecafbe
EZ
4649#if 0 /* OBSOLETE OS9K */
4650// OBSOLETE if (os9k_stabs)
4651// OBSOLETE {
4652// OBSOLETE /* Size. Perhaps this does not have to be conditionalized on
4653// OBSOLETE os9k_stabs (assuming the name of an enum constant can't start
4654// OBSOLETE with a digit). */
4655// OBSOLETE read_huge_number (pp, 0, &nbits);
4656// OBSOLETE if (nbits != 0)
4657// OBSOLETE return error_type (pp, objfile);
4658// OBSOLETE }
4659#endif /* OBSOLETE OS9K */
c906108c
SS
4660
4661 /* The aix4 compiler emits an extra field before the enum members;
4662 my guess is it's a type of some sort. Just ignore it. */
4663 if (**pp == '-')
4664 {
4665 /* Skip over the type. */
4666 while (**pp != ':')
c5aa993b 4667 (*pp)++;
c906108c
SS
4668
4669 /* Skip over the colon. */
4670 (*pp)++;
4671 }
4672
4673 /* Read the value-names and their values.
4674 The input syntax is NAME:VALUE,NAME:VALUE, and so on.
4675 A semicolon or comma instead of a NAME means the end. */
4676 while (**pp && **pp != ';' && **pp != ',')
4677 {
4678 STABS_CONTINUE (pp, objfile);
4679 p = *pp;
c5aa993b
JM
4680 while (*p != ':')
4681 p++;
4682 name = obsavestring (*pp, p - *pp, &objfile->symbol_obstack);
c906108c
SS
4683 *pp = p + 1;
4684 n = read_huge_number (pp, ',', &nbits);
4685 if (nbits != 0)
4686 return error_type (pp, objfile);
4687
4688 sym = (struct symbol *)
c5aa993b 4689 obstack_alloc (&objfile->symbol_obstack, sizeof (struct symbol));
c906108c
SS
4690 memset (sym, 0, sizeof (struct symbol));
4691 SYMBOL_NAME (sym) = name;
c5aa993b 4692 SYMBOL_LANGUAGE (sym) = current_subfile->language;
c906108c
SS
4693 SYMBOL_CLASS (sym) = LOC_CONST;
4694 SYMBOL_NAMESPACE (sym) = VAR_NAMESPACE;
4695 SYMBOL_VALUE (sym) = n;
4696 if (n < 0)
4697 unsigned_enum = 0;
4698 add_symbol_to_list (sym, symlist);
4699 nsyms++;
4700 }
4701
4702 if (**pp == ';')
4703 (*pp)++; /* Skip the semicolon. */
4704
4705 /* Now fill in the fields of the type-structure. */
4706
4707 TYPE_LENGTH (type) = TARGET_INT_BIT / HOST_CHAR_BIT;
4708 TYPE_CODE (type) = TYPE_CODE_ENUM;
4709 TYPE_FLAGS (type) &= ~TYPE_FLAG_STUB;
4710 if (unsigned_enum)
4711 TYPE_FLAGS (type) |= TYPE_FLAG_UNSIGNED;
4712 TYPE_NFIELDS (type) = nsyms;
4713 TYPE_FIELDS (type) = (struct field *)
4714 TYPE_ALLOC (type, sizeof (struct field) * nsyms);
4715 memset (TYPE_FIELDS (type), 0, sizeof (struct field) * nsyms);
4716
4717 /* Find the symbols for the values and put them into the type.
4718 The symbols can be found in the symlist that we put them on
4719 to cause them to be defined. osyms contains the old value
4720 of that symlist; everything up to there was defined by us. */
4721 /* Note that we preserve the order of the enum constants, so
4722 that in something like "enum {FOO, LAST_THING=FOO}" we print
4723 FOO, not LAST_THING. */
4724
4725 for (syms = *symlist, n = nsyms - 1; syms; syms = syms->next)
4726 {
4727 int last = syms == osyms ? o_nsyms : 0;
4728 int j = syms->nsyms;
4729 for (; --j >= last; --n)
4730 {
4731 struct symbol *xsym = syms->symbol[j];
4732 SYMBOL_TYPE (xsym) = type;
4733 TYPE_FIELD_NAME (type, n) = SYMBOL_NAME (xsym);
4734 TYPE_FIELD_BITPOS (type, n) = SYMBOL_VALUE (xsym);
4735 TYPE_FIELD_BITSIZE (type, n) = 0;
4736 }
4737 if (syms == osyms)
4738 break;
4739 }
4740
4741 return type;
4742}
4743
4744/* Sun's ACC uses a somewhat saner method for specifying the builtin
4745 typedefs in every file (for int, long, etc):
4746
c5aa993b
JM
4747 type = b <signed> <width> <format type>; <offset>; <nbits>
4748 signed = u or s.
4749 optional format type = c or b for char or boolean.
4750 offset = offset from high order bit to start bit of type.
4751 width is # bytes in object of this type, nbits is # bits in type.
c906108c
SS
4752
4753 The width/offset stuff appears to be for small objects stored in
4754 larger ones (e.g. `shorts' in `int' registers). We ignore it for now,
4755 FIXME. */
4756
4757static struct type *
35a2f538 4758read_sun_builtin_type (char **pp, int typenums[2], struct objfile *objfile)
c906108c
SS
4759{
4760 int type_bits;
4761 int nbits;
4762 int signed_type;
4763 enum type_code code = TYPE_CODE_INT;
4764
4765 switch (**pp)
4766 {
c5aa993b
JM
4767 case 's':
4768 signed_type = 1;
4769 break;
4770 case 'u':
4771 signed_type = 0;
4772 break;
4773 default:
4774 return error_type (pp, objfile);
c906108c
SS
4775 }
4776 (*pp)++;
4777
4778 /* For some odd reason, all forms of char put a c here. This is strange
4779 because no other type has this honor. We can safely ignore this because
4780 we actually determine 'char'acterness by the number of bits specified in
4781 the descriptor.
4782 Boolean forms, e.g Fortran logical*X, put a b here. */
4783
4784 if (**pp == 'c')
4785 (*pp)++;
4786 else if (**pp == 'b')
4787 {
4788 code = TYPE_CODE_BOOL;
4789 (*pp)++;
4790 }
4791
4792 /* The first number appears to be the number of bytes occupied
4793 by this type, except that unsigned short is 4 instead of 2.
4794 Since this information is redundant with the third number,
4795 we will ignore it. */
4796 read_huge_number (pp, ';', &nbits);
4797 if (nbits != 0)
4798 return error_type (pp, objfile);
4799
4800 /* The second number is always 0, so ignore it too. */
4801 read_huge_number (pp, ';', &nbits);
4802 if (nbits != 0)
4803 return error_type (pp, objfile);
4804
4805 /* The third number is the number of bits for this type. */
4806 type_bits = read_huge_number (pp, 0, &nbits);
4807 if (nbits != 0)
4808 return error_type (pp, objfile);
4809 /* The type *should* end with a semicolon. If it are embedded
4810 in a larger type the semicolon may be the only way to know where
4811 the type ends. If this type is at the end of the stabstring we
4812 can deal with the omitted semicolon (but we don't have to like
4813 it). Don't bother to complain(), Sun's compiler omits the semicolon
4814 for "void". */
4815 if (**pp == ';')
4816 ++(*pp);
4817
4818 if (type_bits == 0)
4819 return init_type (TYPE_CODE_VOID, 1,
c5aa993b 4820 signed_type ? 0 : TYPE_FLAG_UNSIGNED, (char *) NULL,
c906108c
SS
4821 objfile);
4822 else
4823 return init_type (code,
4824 type_bits / TARGET_CHAR_BIT,
c5aa993b 4825 signed_type ? 0 : TYPE_FLAG_UNSIGNED, (char *) NULL,
c906108c
SS
4826 objfile);
4827}
4828
4829static struct type *
35a2f538 4830read_sun_floating_type (char **pp, int typenums[2], struct objfile *objfile)
c906108c
SS
4831{
4832 int nbits;
4833 int details;
4834 int nbytes;
f65ca430 4835 struct type *rettype;
c906108c
SS
4836
4837 /* The first number has more details about the type, for example
4838 FN_COMPLEX. */
4839 details = read_huge_number (pp, ';', &nbits);
4840 if (nbits != 0)
4841 return error_type (pp, objfile);
4842
4843 /* The second number is the number of bytes occupied by this type */
4844 nbytes = read_huge_number (pp, ';', &nbits);
4845 if (nbits != 0)
4846 return error_type (pp, objfile);
4847
4848 if (details == NF_COMPLEX || details == NF_COMPLEX16
4849 || details == NF_COMPLEX32)
f65ca430
DJ
4850 {
4851 rettype = init_type (TYPE_CODE_COMPLEX, nbytes, 0, NULL, objfile);
4852 TYPE_TARGET_TYPE (rettype)
4853 = init_type (TYPE_CODE_FLT, nbytes / 2, 0, NULL, objfile);
4854 return rettype;
4855 }
c906108c
SS
4856
4857 return init_type (TYPE_CODE_FLT, nbytes, 0, NULL, objfile);
4858}
4859
4860/* Read a number from the string pointed to by *PP.
4861 The value of *PP is advanced over the number.
4862 If END is nonzero, the character that ends the
4863 number must match END, or an error happens;
4864 and that character is skipped if it does match.
4865 If END is zero, *PP is left pointing to that character.
4866
4867 If the number fits in a long, set *BITS to 0 and return the value.
4868 If not, set *BITS to be the number of bits in the number and return 0.
4869
4870 If encounter garbage, set *BITS to -1 and return 0. */
4871
c2d11a7d 4872static long
fba45db2 4873read_huge_number (char **pp, int end, int *bits)
c906108c
SS
4874{
4875 char *p = *pp;
4876 int sign = 1;
c2d11a7d 4877 long n = 0;
c906108c
SS
4878 int radix = 10;
4879 char overflow = 0;
4880 int nbits = 0;
4881 int c;
c2d11a7d 4882 long upper_limit;
c5aa993b 4883
c906108c
SS
4884 if (*p == '-')
4885 {
4886 sign = -1;
4887 p++;
4888 }
4889
4890 /* Leading zero means octal. GCC uses this to output values larger
4891 than an int (because that would be hard in decimal). */
4892 if (*p == '0')
4893 {
4894 radix = 8;
4895 p++;
4896 }
4897
cdecafbe
EZ
4898#if 0 /* OBSOLETE OS9K */
4899// OBSOLETE if (os9k_stabs)
4900// OBSOLETE upper_limit = ULONG_MAX / radix;
4901// OBSOLETE else
4902#endif /* OBSOLETE OS9K */
c2d11a7d 4903 upper_limit = LONG_MAX / radix;
c906108c
SS
4904
4905 while ((c = *p++) >= '0' && c < ('0' + radix))
4906 {
4907 if (n <= upper_limit)
4908 {
4909 n *= radix;
4910 n += c - '0'; /* FIXME this overflows anyway */
4911 }
4912 else
4913 overflow = 1;
c5aa993b 4914
c906108c 4915 /* This depends on large values being output in octal, which is
c5aa993b 4916 what GCC does. */
c906108c
SS
4917 if (radix == 8)
4918 {
4919 if (nbits == 0)
4920 {
4921 if (c == '0')
4922 /* Ignore leading zeroes. */
4923 ;
4924 else if (c == '1')
4925 nbits = 1;
4926 else if (c == '2' || c == '3')
4927 nbits = 2;
4928 else
4929 nbits = 3;
4930 }
4931 else
4932 nbits += 3;
4933 }
4934 }
4935 if (end)
4936 {
4937 if (c && c != end)
4938 {
4939 if (bits != NULL)
4940 *bits = -1;
4941 return 0;
4942 }
4943 }
4944 else
4945 --p;
4946
4947 *pp = p;
4948 if (overflow)
4949 {
4950 if (nbits == 0)
4951 {
4952 /* Large decimal constants are an error (because it is hard to
4953 count how many bits are in them). */
4954 if (bits != NULL)
4955 *bits = -1;
4956 return 0;
4957 }
c5aa993b 4958
c906108c 4959 /* -0x7f is the same as 0x80. So deal with it by adding one to
c5aa993b 4960 the number of bits. */
c906108c
SS
4961 if (sign == -1)
4962 ++nbits;
4963 if (bits)
4964 *bits = nbits;
4965 }
4966 else
4967 {
4968 if (bits)
4969 *bits = 0;
4970 return n * sign;
4971 }
4972 /* It's *BITS which has the interesting information. */
4973 return 0;
4974}
4975
4976static struct type *
35a2f538 4977read_range_type (char **pp, int typenums[2], struct objfile *objfile)
c906108c
SS
4978{
4979 char *orig_pp = *pp;
4980 int rangenums[2];
c2d11a7d 4981 long n2, n3;
c906108c
SS
4982 int n2bits, n3bits;
4983 int self_subrange;
4984 struct type *result_type;
4985 struct type *index_type = NULL;
4986
4987 /* First comes a type we are a subrange of.
4988 In C it is usually 0, 1 or the type being defined. */
4989 if (read_type_number (pp, rangenums) != 0)
4990 return error_type (pp, objfile);
4991 self_subrange = (rangenums[0] == typenums[0] &&
4992 rangenums[1] == typenums[1]);
4993
4994 if (**pp == '=')
4995 {
4996 *pp = orig_pp;
4997 index_type = read_type (pp, objfile);
4998 }
4999
5000 /* A semicolon should now follow; skip it. */
5001 if (**pp == ';')
5002 (*pp)++;
5003
5004 /* The remaining two operands are usually lower and upper bounds
5005 of the range. But in some special cases they mean something else. */
5006 n2 = read_huge_number (pp, ';', &n2bits);
5007 n3 = read_huge_number (pp, ';', &n3bits);
5008
5009 if (n2bits == -1 || n3bits == -1)
5010 return error_type (pp, objfile);
5011
5012 if (index_type)
5013 goto handle_true_range;
5014
5015 /* If limits are huge, must be large integral type. */
5016 if (n2bits != 0 || n3bits != 0)
5017 {
5018 char got_signed = 0;
5019 char got_unsigned = 0;
5020 /* Number of bits in the type. */
5021 int nbits = 0;
5022
5023 /* Range from 0 to <large number> is an unsigned large integral type. */
5024 if ((n2bits == 0 && n2 == 0) && n3bits != 0)
5025 {
5026 got_unsigned = 1;
5027 nbits = n3bits;
5028 }
5029 /* Range from <large number> to <large number>-1 is a large signed
c5aa993b
JM
5030 integral type. Take care of the case where <large number> doesn't
5031 fit in a long but <large number>-1 does. */
c906108c
SS
5032 else if ((n2bits != 0 && n3bits != 0 && n2bits == n3bits + 1)
5033 || (n2bits != 0 && n3bits == 0
c2d11a7d
JM
5034 && (n2bits == sizeof (long) * HOST_CHAR_BIT)
5035 && n3 == LONG_MAX))
c906108c
SS
5036 {
5037 got_signed = 1;
5038 nbits = n2bits;
5039 }
5040
5041 if (got_signed || got_unsigned)
5042 {
5043 return init_type (TYPE_CODE_INT, nbits / TARGET_CHAR_BIT,
5044 got_unsigned ? TYPE_FLAG_UNSIGNED : 0, NULL,
5045 objfile);
5046 }
5047 else
5048 return error_type (pp, objfile);
5049 }
5050
5051 /* A type defined as a subrange of itself, with bounds both 0, is void. */
5052 if (self_subrange && n2 == 0 && n3 == 0)
5053 return init_type (TYPE_CODE_VOID, 1, 0, NULL, objfile);
5054
5055 /* If n3 is zero and n2 is positive, we want a floating type, and n2
5056 is the width in bytes.
5057
5058 Fortran programs appear to use this for complex types also. To
5059 distinguish between floats and complex, g77 (and others?) seem
5060 to use self-subranges for the complexes, and subranges of int for
5061 the floats.
5062
5063 Also note that for complexes, g77 sets n2 to the size of one of
5064 the member floats, not the whole complex beast. My guess is that
5065 this was to work well with pre-COMPLEX versions of gdb. */
5066
5067 if (n3 == 0 && n2 > 0)
5068 {
1300f5dd
JB
5069 struct type *float_type
5070 = init_type (TYPE_CODE_FLT, n2, 0, NULL, objfile);
5071
c906108c
SS
5072 if (self_subrange)
5073 {
1300f5dd
JB
5074 struct type *complex_type =
5075 init_type (TYPE_CODE_COMPLEX, 2 * n2, 0, NULL, objfile);
5076 TYPE_TARGET_TYPE (complex_type) = float_type;
5077 return complex_type;
c906108c
SS
5078 }
5079 else
1300f5dd 5080 return float_type;
c906108c
SS
5081 }
5082
5083 /* If the upper bound is -1, it must really be an unsigned int. */
5084
5085 else if (n2 == 0 && n3 == -1)
5086 {
5087 /* It is unsigned int or unsigned long. */
5088 /* GCC 2.3.3 uses this for long long too, but that is just a GDB 3.5
c5aa993b 5089 compatibility hack. */
c906108c
SS
5090 return init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
5091 TYPE_FLAG_UNSIGNED, NULL, objfile);
5092 }
5093
5094 /* Special case: char is defined (Who knows why) as a subrange of
5095 itself with range 0-127. */
5096 else if (self_subrange && n2 == 0 && n3 == 127)
5097 return init_type (TYPE_CODE_INT, 1, 0, NULL, objfile);
5098
db034ac5
AC
5099#if 0
5100 /* OBSOLETE else if (current_symbol && SYMBOL_LANGUAGE (current_symbol) == language_chill */
5101 /* OBSOLETE && !self_subrange) */
5102 /* OBSOLETE goto handle_true_range; */
5103#endif
c906108c
SS
5104
5105 /* We used to do this only for subrange of self or subrange of int. */
5106 else if (n2 == 0)
5107 {
a0b3c4fd
JM
5108 /* -1 is used for the upper bound of (4 byte) "unsigned int" and
5109 "unsigned long", and we already checked for that,
5110 so don't need to test for it here. */
5111
c906108c
SS
5112 if (n3 < 0)
5113 /* n3 actually gives the size. */
c5aa993b 5114 return init_type (TYPE_CODE_INT, -n3, TYPE_FLAG_UNSIGNED,
c906108c 5115 NULL, objfile);
c906108c 5116
7be570e7 5117 /* Is n3 == 2**(8n)-1 for some integer n? Then it's an
a0b3c4fd
JM
5118 unsigned n-byte integer. But do require n to be a power of
5119 two; we don't want 3- and 5-byte integers flying around. */
5120 {
5121 int bytes;
5122 unsigned long bits;
5123
5124 bits = n3;
5125 for (bytes = 0; (bits & 0xff) == 0xff; bytes++)
5126 bits >>= 8;
5127 if (bits == 0
5128 && ((bytes - 1) & bytes) == 0) /* "bytes is a power of two" */
5129 return init_type (TYPE_CODE_INT, bytes, TYPE_FLAG_UNSIGNED, NULL,
5130 objfile);
5131 }
c906108c
SS
5132 }
5133 /* I think this is for Convex "long long". Since I don't know whether
5134 Convex sets self_subrange, I also accept that particular size regardless
5135 of self_subrange. */
5136 else if (n3 == 0 && n2 < 0
5137 && (self_subrange
c5aa993b
JM
5138 || n2 == -TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT))
5139 return init_type (TYPE_CODE_INT, -n2, 0, NULL, objfile);
5140 else if (n2 == -n3 - 1)
c906108c
SS
5141 {
5142 if (n3 == 0x7f)
5143 return init_type (TYPE_CODE_INT, 1, 0, NULL, objfile);
5144 if (n3 == 0x7fff)
5145 return init_type (TYPE_CODE_INT, 2, 0, NULL, objfile);
5146 if (n3 == 0x7fffffff)
5147 return init_type (TYPE_CODE_INT, 4, 0, NULL, objfile);
5148 }
5149
5150 /* We have a real range type on our hands. Allocate space and
5151 return a real pointer. */
c5aa993b 5152handle_true_range:
c906108c
SS
5153
5154 if (self_subrange)
5155 index_type = builtin_type_int;
5156 else
5157 index_type = *dbx_lookup_type (rangenums);
5158 if (index_type == NULL)
5159 {
5160 /* Does this actually ever happen? Is that why we are worrying
5161 about dealing with it rather than just calling error_type? */
5162
5163 static struct type *range_type_index;
5164
5165 complain (&range_type_base_complaint, rangenums[1]);
5166 if (range_type_index == NULL)
5167 range_type_index =
5168 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
5169 0, "range type index type", NULL);
5170 index_type = range_type_index;
5171 }
5172
5173 result_type = create_range_type ((struct type *) NULL, index_type, n2, n3);
5174 return (result_type);
5175}
5176
5177/* Read in an argument list. This is a list of types, separated by commas
5178 and terminated with END. Return the list of types read in, or (struct type
5179 **)-1 if there is an error. */
5180
ad2f7632
DJ
5181static struct field *
5182read_args (char **pp, int end, struct objfile *objfile, int *nargsp,
5183 int *varargsp)
c906108c
SS
5184{
5185 /* FIXME! Remove this arbitrary limit! */
ad2f7632
DJ
5186 struct type *types[1024]; /* allow for fns of 1023 parameters */
5187 int n = 0, i;
5188 struct field *rval;
c906108c
SS
5189
5190 while (**pp != end)
5191 {
5192 if (**pp != ',')
5193 /* Invalid argument list: no ','. */
ad2f7632 5194 return (struct field *) -1;
c906108c
SS
5195 (*pp)++;
5196 STABS_CONTINUE (pp, objfile);
5197 types[n++] = read_type (pp, objfile);
5198 }
5199 (*pp)++; /* get past `end' (the ':' character) */
5200
ad2f7632
DJ
5201 if (TYPE_CODE (types[n - 1]) != TYPE_CODE_VOID)
5202 *varargsp = 1;
c906108c
SS
5203 else
5204 {
ad2f7632
DJ
5205 n--;
5206 *varargsp = 0;
c906108c 5207 }
ad2f7632
DJ
5208
5209 rval = (struct field *) xmalloc (n * sizeof (struct field));
5210 memset (rval, 0, n * sizeof (struct field));
5211 for (i = 0; i < n; i++)
5212 rval[i].type = types[i];
5213 *nargsp = n;
c906108c
SS
5214 return rval;
5215}
5216\f
5217/* Common block handling. */
5218
5219/* List of symbols declared since the last BCOMM. This list is a tail
5220 of local_symbols. When ECOMM is seen, the symbols on the list
5221 are noted so their proper addresses can be filled in later,
5222 using the common block base address gotten from the assembler
5223 stabs. */
5224
5225static struct pending *common_block;
5226static int common_block_i;
5227
5228/* Name of the current common block. We get it from the BCOMM instead of the
5229 ECOMM to match IBM documentation (even though IBM puts the name both places
5230 like everyone else). */
5231static char *common_block_name;
5232
5233/* Process a N_BCOMM symbol. The storage for NAME is not guaranteed
5234 to remain after this function returns. */
5235
5236void
fba45db2 5237common_block_start (char *name, struct objfile *objfile)
c906108c
SS
5238{
5239 if (common_block_name != NULL)
5240 {
c5aa993b
JM
5241 static struct complaint msg =
5242 {
c906108c
SS
5243 "Invalid symbol data: common block within common block",
5244 0, 0};
5245 complain (&msg);
5246 }
5247 common_block = local_symbols;
5248 common_block_i = local_symbols ? local_symbols->nsyms : 0;
5249 common_block_name = obsavestring (name, strlen (name),
c5aa993b 5250 &objfile->symbol_obstack);
c906108c
SS
5251}
5252
5253/* Process a N_ECOMM symbol. */
5254
5255void
fba45db2 5256common_block_end (struct objfile *objfile)
c906108c
SS
5257{
5258 /* Symbols declared since the BCOMM are to have the common block
5259 start address added in when we know it. common_block and
5260 common_block_i point to the first symbol after the BCOMM in
5261 the local_symbols list; copy the list and hang it off the
5262 symbol for the common block name for later fixup. */
5263 int i;
5264 struct symbol *sym;
5265 struct pending *new = 0;
5266 struct pending *next;
5267 int j;
5268
5269 if (common_block_name == NULL)
5270 {
c5aa993b
JM
5271 static struct complaint msg =
5272 {"ECOMM symbol unmatched by BCOMM", 0, 0};
c906108c
SS
5273 complain (&msg);
5274 return;
5275 }
5276
c5aa993b
JM
5277 sym = (struct symbol *)
5278 obstack_alloc (&objfile->symbol_obstack, sizeof (struct symbol));
c906108c
SS
5279 memset (sym, 0, sizeof (struct symbol));
5280 /* Note: common_block_name already saved on symbol_obstack */
5281 SYMBOL_NAME (sym) = common_block_name;
5282 SYMBOL_CLASS (sym) = LOC_BLOCK;
5283
5284 /* Now we copy all the symbols which have been defined since the BCOMM. */
5285
5286 /* Copy all the struct pendings before common_block. */
5287 for (next = local_symbols;
5288 next != NULL && next != common_block;
5289 next = next->next)
5290 {
5291 for (j = 0; j < next->nsyms; j++)
5292 add_symbol_to_list (next->symbol[j], &new);
5293 }
5294
5295 /* Copy however much of COMMON_BLOCK we need. If COMMON_BLOCK is
5296 NULL, it means copy all the local symbols (which we already did
5297 above). */
5298
5299 if (common_block != NULL)
5300 for (j = common_block_i; j < common_block->nsyms; j++)
5301 add_symbol_to_list (common_block->symbol[j], &new);
5302
5303 SYMBOL_TYPE (sym) = (struct type *) new;
5304
5305 /* Should we be putting local_symbols back to what it was?
5306 Does it matter? */
5307
5308 i = hashname (SYMBOL_NAME (sym));
5309 SYMBOL_VALUE_CHAIN (sym) = global_sym_chain[i];
5310 global_sym_chain[i] = sym;
5311 common_block_name = NULL;
5312}
5313
5314/* Add a common block's start address to the offset of each symbol
5315 declared to be in it (by being between a BCOMM/ECOMM pair that uses
5316 the common block name). */
5317
5318static void
fba45db2 5319fix_common_block (struct symbol *sym, int valu)
c906108c
SS
5320{
5321 struct pending *next = (struct pending *) SYMBOL_TYPE (sym);
c5aa993b 5322 for (; next; next = next->next)
c906108c
SS
5323 {
5324 register int j;
5325 for (j = next->nsyms - 1; j >= 0; j--)
5326 SYMBOL_VALUE_ADDRESS (next->symbol[j]) += valu;
5327 }
5328}
c5aa993b 5329\f
c906108c
SS
5330
5331
c906108c
SS
5332/* What about types defined as forward references inside of a small lexical
5333 scope? */
5334/* Add a type to the list of undefined types to be checked through
5335 once this file has been read in. */
5336
5337void
fba45db2 5338add_undefined_type (struct type *type)
c906108c
SS
5339{
5340 if (undef_types_length == undef_types_allocated)
5341 {
5342 undef_types_allocated *= 2;
5343 undef_types = (struct type **)
5344 xrealloc ((char *) undef_types,
5345 undef_types_allocated * sizeof (struct type *));
5346 }
5347 undef_types[undef_types_length++] = type;
5348}
5349
5350/* Go through each undefined type, see if it's still undefined, and fix it
5351 up if possible. We have two kinds of undefined types:
5352
5353 TYPE_CODE_ARRAY: Array whose target type wasn't defined yet.
c5aa993b
JM
5354 Fix: update array length using the element bounds
5355 and the target type's length.
c906108c 5356 TYPE_CODE_STRUCT, TYPE_CODE_UNION: Structure whose fields were not
c5aa993b
JM
5357 yet defined at the time a pointer to it was made.
5358 Fix: Do a full lookup on the struct/union tag. */
c906108c 5359void
fba45db2 5360cleanup_undefined_types (void)
c906108c
SS
5361{
5362 struct type **type;
5363
5364 for (type = undef_types; type < undef_types + undef_types_length; type++)
5365 {
5366 switch (TYPE_CODE (*type))
5367 {
5368
c5aa993b
JM
5369 case TYPE_CODE_STRUCT:
5370 case TYPE_CODE_UNION:
5371 case TYPE_CODE_ENUM:
c906108c
SS
5372 {
5373 /* Check if it has been defined since. Need to do this here
5374 as well as in check_typedef to deal with the (legitimate in
5375 C though not C++) case of several types with the same name
5376 in different source files. */
74a9bb82 5377 if (TYPE_STUB (*type))
c906108c
SS
5378 {
5379 struct pending *ppt;
5380 int i;
5381 /* Name of the type, without "struct" or "union" */
5382 char *typename = TYPE_TAG_NAME (*type);
5383
5384 if (typename == NULL)
5385 {
c5aa993b
JM
5386 static struct complaint msg =
5387 {"need a type name", 0, 0};
c906108c
SS
5388 complain (&msg);
5389 break;
5390 }
5391 for (ppt = file_symbols; ppt; ppt = ppt->next)
5392 {
5393 for (i = 0; i < ppt->nsyms; i++)
5394 {
5395 struct symbol *sym = ppt->symbol[i];
c5aa993b 5396
c906108c
SS
5397 if (SYMBOL_CLASS (sym) == LOC_TYPEDEF
5398 && SYMBOL_NAMESPACE (sym) == STRUCT_NAMESPACE
5399 && (TYPE_CODE (SYMBOL_TYPE (sym)) ==
5400 TYPE_CODE (*type))
5401 && STREQ (SYMBOL_NAME (sym), typename))
13a393b0 5402 replace_type (*type, SYMBOL_TYPE (sym));
c906108c
SS
5403 }
5404 }
5405 }
5406 }
5407 break;
5408
5409 default:
5410 {
c5aa993b
JM
5411 static struct complaint msg =
5412 {"\
c906108c
SS
5413GDB internal error. cleanup_undefined_types with bad type %d.", 0, 0};
5414 complain (&msg, TYPE_CODE (*type));
5415 }
5416 break;
5417 }
5418 }
5419
5420 undef_types_length = 0;
5421}
5422
5423/* Scan through all of the global symbols defined in the object file,
5424 assigning values to the debugging symbols that need to be assigned
5425 to. Get these symbols from the minimal symbol table. */
5426
5427void
fba45db2 5428scan_file_globals (struct objfile *objfile)
c906108c
SS
5429{
5430 int hash;
5431 struct minimal_symbol *msymbol;
5432 struct symbol *sym, *prev, *rsym;
5433 struct objfile *resolve_objfile;
5434
5435 /* SVR4 based linkers copy referenced global symbols from shared
5436 libraries to the main executable.
5437 If we are scanning the symbols for a shared library, try to resolve
5438 them from the minimal symbols of the main executable first. */
5439
5440 if (symfile_objfile && objfile != symfile_objfile)
5441 resolve_objfile = symfile_objfile;
5442 else
5443 resolve_objfile = objfile;
5444
5445 while (1)
5446 {
5447 /* Avoid expensive loop through all minimal symbols if there are
c5aa993b 5448 no unresolved symbols. */
c906108c
SS
5449 for (hash = 0; hash < HASHSIZE; hash++)
5450 {
5451 if (global_sym_chain[hash])
5452 break;
5453 }
5454 if (hash >= HASHSIZE)
5455 return;
5456
c5aa993b 5457 for (msymbol = resolve_objfile->msymbols;
c906108c
SS
5458 msymbol && SYMBOL_NAME (msymbol) != NULL;
5459 msymbol++)
5460 {
5461 QUIT;
5462
5463 /* Skip static symbols. */
5464 switch (MSYMBOL_TYPE (msymbol))
5465 {
5466 case mst_file_text:
5467 case mst_file_data:
5468 case mst_file_bss:
5469 continue;
5470 default:
5471 break;
5472 }
5473
5474 prev = NULL;
5475
5476 /* Get the hash index and check all the symbols
5477 under that hash index. */
5478
5479 hash = hashname (SYMBOL_NAME (msymbol));
5480
5481 for (sym = global_sym_chain[hash]; sym;)
5482 {
5483 if (SYMBOL_NAME (msymbol)[0] == SYMBOL_NAME (sym)[0] &&
c5aa993b 5484 STREQ (SYMBOL_NAME (msymbol) + 1, SYMBOL_NAME (sym) + 1))
c906108c
SS
5485 {
5486
5487 struct alias_list *aliases;
5488
5489 /* Splice this symbol out of the hash chain and
5490 assign the value we have to it. */
5491 if (prev)
5492 {
5493 SYMBOL_VALUE_CHAIN (prev) = SYMBOL_VALUE_CHAIN (sym);
5494 }
5495 else
5496 {
5497 global_sym_chain[hash] = SYMBOL_VALUE_CHAIN (sym);
5498 }
c5aa993b 5499
c906108c
SS
5500 /* Check to see whether we need to fix up a common block. */
5501 /* Note: this code might be executed several times for
5502 the same symbol if there are multiple references. */
5503
5504 /* If symbol has aliases, do minimal symbol fixups for each.
5505 These live aliases/references weren't added to
5506 global_sym_chain hash but may also need to be fixed up. */
c5aa993b 5507 /* FIXME: Maybe should have added aliases to the global chain, resolved symbol name, then treated aliases as normal
c906108c
SS
5508 symbols? Still, we wouldn't want to add_to_list. */
5509 /* Now do the same for each alias of this symbol */
5510 rsym = sym;
5511 aliases = SYMBOL_ALIASES (sym);
5512 while (rsym)
5513 {
5514 if (SYMBOL_CLASS (rsym) == LOC_BLOCK)
5515 {
5516 fix_common_block (rsym,
5517 SYMBOL_VALUE_ADDRESS (msymbol));
5518 }
5519 else
5520 {
5521 SYMBOL_VALUE_ADDRESS (rsym)
5522 = SYMBOL_VALUE_ADDRESS (msymbol);
5523 }
5524 SYMBOL_SECTION (rsym) = SYMBOL_SECTION (msymbol);
5525 if (aliases)
5526 {
5527 rsym = aliases->sym;
5528 aliases = aliases->next;
5529 }
5530 else
5531 rsym = NULL;
5532 }
5533
c5aa993b 5534
c906108c
SS
5535 if (prev)
5536 {
5537 sym = SYMBOL_VALUE_CHAIN (prev);
5538 }
5539 else
5540 {
5541 sym = global_sym_chain[hash];
5542 }
5543 }
5544 else
5545 {
5546 prev = sym;
5547 sym = SYMBOL_VALUE_CHAIN (sym);
5548 }
5549 }
5550 }
5551 if (resolve_objfile == objfile)
5552 break;
5553 resolve_objfile = objfile;
5554 }
5555
5556 /* Change the storage class of any remaining unresolved globals to
5557 LOC_UNRESOLVED and remove them from the chain. */
5558 for (hash = 0; hash < HASHSIZE; hash++)
5559 {
5560 sym = global_sym_chain[hash];
5561 while (sym)
5562 {
5563 prev = sym;
5564 sym = SYMBOL_VALUE_CHAIN (sym);
5565
5566 /* Change the symbol address from the misleading chain value
5567 to address zero. */
5568 SYMBOL_VALUE_ADDRESS (prev) = 0;
5569
5570 /* Complain about unresolved common block symbols. */
5571 if (SYMBOL_CLASS (prev) == LOC_STATIC)
5572 SYMBOL_CLASS (prev) = LOC_UNRESOLVED;
5573 else
5574 complain (&unresolved_sym_chain_complaint,
c5aa993b 5575 objfile->name, SYMBOL_NAME (prev));
c906108c
SS
5576 }
5577 }
5578 memset (global_sym_chain, 0, sizeof (global_sym_chain));
5579}
5580
5581/* Initialize anything that needs initializing when starting to read
5582 a fresh piece of a symbol file, e.g. reading in the stuff corresponding
5583 to a psymtab. */
5584
5585void
fba45db2 5586stabsread_init (void)
c906108c
SS
5587{
5588}
5589
5590/* Initialize anything that needs initializing when a completely new
5591 symbol file is specified (not just adding some symbols from another
5592 file, e.g. a shared library). */
5593
5594void
fba45db2 5595stabsread_new_init (void)
c906108c
SS
5596{
5597 /* Empty the hash table of global syms looking for values. */
5598 memset (global_sym_chain, 0, sizeof (global_sym_chain));
5599}
5600
5601/* Initialize anything that needs initializing at the same time as
5602 start_symtab() is called. */
5603
c5aa993b 5604void
fba45db2 5605start_stabs (void)
c906108c
SS
5606{
5607 global_stabs = NULL; /* AIX COFF */
5608 /* Leave FILENUM of 0 free for builtin types and this file's types. */
5609 n_this_object_header_files = 1;
5610 type_vector_length = 0;
5611 type_vector = (struct type **) 0;
5612
5613 /* FIXME: If common_block_name is not already NULL, we should complain(). */
5614 common_block_name = NULL;
5615
cdecafbe
EZ
5616#if 0 /* OBSOLETE OS9K */
5617// OBSOLETE os9k_stabs = 0;
5618#endif /* OBSOLETE OS9K */
c906108c
SS
5619}
5620
5621/* Call after end_symtab() */
5622
c5aa993b 5623void
fba45db2 5624end_stabs (void)
c906108c
SS
5625{
5626 if (type_vector)
5627 {
b8c9b27d 5628 xfree (type_vector);
c906108c
SS
5629 }
5630 type_vector = 0;
5631 type_vector_length = 0;
5632 previous_stab_code = 0;
5633}
5634
5635void
fba45db2 5636finish_global_stabs (struct objfile *objfile)
c906108c
SS
5637{
5638 if (global_stabs)
5639 {
5640 patch_block_stabs (global_symbols, global_stabs, objfile);
b8c9b27d 5641 xfree (global_stabs);
c906108c
SS
5642 global_stabs = NULL;
5643 }
5644}
5645
5646/* Initializer for this module */
5647
5648void
fba45db2 5649_initialize_stabsread (void)
c906108c
SS
5650{
5651 undef_types_allocated = 20;
5652 undef_types_length = 0;
5653 undef_types = (struct type **)
5654 xmalloc (undef_types_allocated * sizeof (struct type *));
5655}
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