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[deliverable/binutils-gdb.git] / gdb / gdbtypes.c
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c906108c 1/* Support routines for manipulating internal types for GDB.
b99607ea
EZ
2 Copyright 1992, 1993, 1994, 1995, 1996, 1998, 1999, 2000, 2001, 2002, 2003,
3 2004 Free Software Foundation, Inc.
c906108c
SS
4 Contributed by Cygnus Support, using pieces from other GDB modules.
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#include "defs.h"
24#include "gdb_string.h"
25#include "bfd.h"
26#include "symtab.h"
27#include "symfile.h"
28#include "objfiles.h"
29#include "gdbtypes.h"
30#include "expression.h"
31#include "language.h"
32#include "target.h"
33#include "value.h"
34#include "demangle.h"
35#include "complaints.h"
36#include "gdbcmd.h"
c91ecb25 37#include "wrapper.h"
015a42b4 38#include "cp-abi.h"
a02fd225 39#include "gdb_assert.h"
c906108c
SS
40
41/* These variables point to the objects
42 representing the predefined C data types. */
43
44struct type *builtin_type_void;
45struct type *builtin_type_char;
9e0b60a8 46struct type *builtin_type_true_char;
c906108c
SS
47struct type *builtin_type_short;
48struct type *builtin_type_int;
49struct type *builtin_type_long;
50struct type *builtin_type_long_long;
51struct type *builtin_type_signed_char;
52struct type *builtin_type_unsigned_char;
53struct type *builtin_type_unsigned_short;
54struct type *builtin_type_unsigned_int;
55struct type *builtin_type_unsigned_long;
56struct type *builtin_type_unsigned_long_long;
57struct type *builtin_type_float;
58struct type *builtin_type_double;
59struct type *builtin_type_long_double;
60struct type *builtin_type_complex;
61struct type *builtin_type_double_complex;
62struct type *builtin_type_string;
449a5da4 63struct type *builtin_type_int0;
c906108c
SS
64struct type *builtin_type_int8;
65struct type *builtin_type_uint8;
66struct type *builtin_type_int16;
67struct type *builtin_type_uint16;
68struct type *builtin_type_int32;
69struct type *builtin_type_uint32;
70struct type *builtin_type_int64;
71struct type *builtin_type_uint64;
8b982acf
EZ
72struct type *builtin_type_int128;
73struct type *builtin_type_uint128;
c906108c 74struct type *builtin_type_bool;
ac3aafc7
EZ
75
76/* 128 bit long vector types */
3139facc 77struct type *builtin_type_v2_double;
ac3aafc7 78struct type *builtin_type_v4_float;
3139facc 79struct type *builtin_type_v2_int64;
ac3aafc7
EZ
80struct type *builtin_type_v4_int32;
81struct type *builtin_type_v8_int16;
82struct type *builtin_type_v16_int8;
83/* 64 bit long vector types */
6599f021 84struct type *builtin_type_v2_float;
ac3aafc7
EZ
85struct type *builtin_type_v2_int32;
86struct type *builtin_type_v4_int16;
87struct type *builtin_type_v8_int8;
88
917317f4 89struct type *builtin_type_v4sf;
c2d11a7d 90struct type *builtin_type_v4si;
08cf96df 91struct type *builtin_type_v16qi;
c2d11a7d 92struct type *builtin_type_v8qi;
08cf96df 93struct type *builtin_type_v8hi;
c2d11a7d
JM
94struct type *builtin_type_v4hi;
95struct type *builtin_type_v2si;
b063e7a2
AC
96struct type *builtin_type_vec64;
97struct type *builtin_type_vec64i;
08cf96df 98struct type *builtin_type_vec128;
3139facc 99struct type *builtin_type_vec128i;
598f52df
AC
100struct type *builtin_type_ieee_single_big;
101struct type *builtin_type_ieee_single_little;
102struct type *builtin_type_ieee_double_big;
103struct type *builtin_type_ieee_double_little;
104struct type *builtin_type_ieee_double_littlebyte_bigword;
105struct type *builtin_type_i387_ext;
106struct type *builtin_type_m68881_ext;
107struct type *builtin_type_i960_ext;
108struct type *builtin_type_m88110_ext;
109struct type *builtin_type_m88110_harris_ext;
110struct type *builtin_type_arm_ext_big;
111struct type *builtin_type_arm_ext_littlebyte_bigword;
112struct type *builtin_type_ia64_spill_big;
113struct type *builtin_type_ia64_spill_little;
114struct type *builtin_type_ia64_quad_big;
115struct type *builtin_type_ia64_quad_little;
090a2205 116struct type *builtin_type_void_data_ptr;
ee3a7b7f 117struct type *builtin_type_void_func_ptr;
c4093a6a
JM
118struct type *builtin_type_CORE_ADDR;
119struct type *builtin_type_bfd_vma;
c906108c
SS
120
121int opaque_type_resolution = 1;
5d161b24 122int overload_debug = 0;
c906108c 123
c5aa993b
JM
124struct extra
125 {
126 char str[128];
127 int len;
8c990f3c 128 }; /* maximum extension is 128! FIXME */
c906108c 129
a14ed312 130static void print_bit_vector (B_TYPE *, int);
ad2f7632 131static void print_arg_types (struct field *, int, int);
a14ed312
KB
132static void dump_fn_fieldlists (struct type *, int);
133static void print_cplus_stuff (struct type *, int);
134static void virtual_base_list_aux (struct type *dclass);
7a292a7a 135
c906108c
SS
136
137/* Alloc a new type structure and fill it with some defaults. If
138 OBJFILE is non-NULL, then allocate the space for the type structure
b99607ea 139 in that objfile's objfile_obstack. Otherwise allocate the new type structure
2fdde8f8 140 by xmalloc () (for permanent types). */
c906108c
SS
141
142struct type *
fba45db2 143alloc_type (struct objfile *objfile)
c906108c 144{
52f0bd74 145 struct type *type;
c906108c
SS
146
147 /* Alloc the structure and start off with all fields zeroed. */
148
149 if (objfile == NULL)
150 {
2fdde8f8
DJ
151 type = xmalloc (sizeof (struct type));
152 memset (type, 0, sizeof (struct type));
153 TYPE_MAIN_TYPE (type) = xmalloc (sizeof (struct main_type));
c906108c
SS
154 }
155 else
156 {
b99607ea 157 type = obstack_alloc (&objfile->objfile_obstack,
2fdde8f8
DJ
158 sizeof (struct type));
159 memset (type, 0, sizeof (struct type));
b99607ea 160 TYPE_MAIN_TYPE (type) = obstack_alloc (&objfile->objfile_obstack,
2fdde8f8 161 sizeof (struct main_type));
c906108c
SS
162 OBJSTAT (objfile, n_types++);
163 }
2fdde8f8 164 memset (TYPE_MAIN_TYPE (type), 0, sizeof (struct main_type));
c906108c
SS
165
166 /* Initialize the fields that might not be zero. */
167
168 TYPE_CODE (type) = TYPE_CODE_UNDEF;
169 TYPE_OBJFILE (type) = objfile;
170 TYPE_VPTR_FIELDNO (type) = -1;
2fdde8f8 171 TYPE_CHAIN (type) = type; /* Chain back to itself. */
c906108c
SS
172
173 return (type);
174}
175
2fdde8f8
DJ
176/* Alloc a new type instance structure, fill it with some defaults,
177 and point it at OLDTYPE. Allocate the new type instance from the
178 same place as OLDTYPE. */
179
180static struct type *
181alloc_type_instance (struct type *oldtype)
182{
183 struct type *type;
184
185 /* Allocate the structure. */
186
187 if (TYPE_OBJFILE (oldtype) == NULL)
188 {
189 type = xmalloc (sizeof (struct type));
190 memset (type, 0, sizeof (struct type));
191 }
192 else
193 {
b99607ea 194 type = obstack_alloc (&TYPE_OBJFILE (oldtype)->objfile_obstack,
2fdde8f8
DJ
195 sizeof (struct type));
196 memset (type, 0, sizeof (struct type));
197 }
198 TYPE_MAIN_TYPE (type) = TYPE_MAIN_TYPE (oldtype);
199
200 TYPE_CHAIN (type) = type; /* Chain back to itself for now. */
201
202 return (type);
203}
204
205/* Clear all remnants of the previous type at TYPE, in preparation for
206 replacing it with something else. */
207static void
208smash_type (struct type *type)
209{
210 memset (TYPE_MAIN_TYPE (type), 0, sizeof (struct main_type));
211
212 /* For now, delete the rings. */
213 TYPE_CHAIN (type) = type;
214
215 /* For now, leave the pointer/reference types alone. */
216}
217
c906108c
SS
218/* Lookup a pointer to a type TYPE. TYPEPTR, if nonzero, points
219 to a pointer to memory where the pointer type should be stored.
220 If *TYPEPTR is zero, update it to point to the pointer type we return.
221 We allocate new memory if needed. */
222
223struct type *
fba45db2 224make_pointer_type (struct type *type, struct type **typeptr)
c906108c 225{
52f0bd74 226 struct type *ntype; /* New type */
c906108c
SS
227 struct objfile *objfile;
228
229 ntype = TYPE_POINTER_TYPE (type);
230
c5aa993b 231 if (ntype)
c906108c 232 {
c5aa993b
JM
233 if (typeptr == 0)
234 return ntype; /* Don't care about alloc, and have new type. */
c906108c 235 else if (*typeptr == 0)
c5aa993b 236 {
c906108c
SS
237 *typeptr = ntype; /* Tracking alloc, and we have new type. */
238 return ntype;
c5aa993b 239 }
c906108c
SS
240 }
241
242 if (typeptr == 0 || *typeptr == 0) /* We'll need to allocate one. */
243 {
244 ntype = alloc_type (TYPE_OBJFILE (type));
245 if (typeptr)
246 *typeptr = ntype;
247 }
c5aa993b
JM
248 else
249 /* We have storage, but need to reset it. */
c906108c
SS
250 {
251 ntype = *typeptr;
252 objfile = TYPE_OBJFILE (ntype);
2fdde8f8 253 smash_type (ntype);
c906108c
SS
254 TYPE_OBJFILE (ntype) = objfile;
255 }
256
257 TYPE_TARGET_TYPE (ntype) = type;
258 TYPE_POINTER_TYPE (type) = ntype;
259
260 /* FIXME! Assume the machine has only one representation for pointers! */
261
262 TYPE_LENGTH (ntype) = TARGET_PTR_BIT / TARGET_CHAR_BIT;
263 TYPE_CODE (ntype) = TYPE_CODE_PTR;
264
67b2adb2
AC
265 /* Mark pointers as unsigned. The target converts between pointers
266 and addresses (CORE_ADDRs) using POINTER_TO_ADDRESS() and
267 ADDRESS_TO_POINTER(). */
c906108c 268 TYPE_FLAGS (ntype) |= TYPE_FLAG_UNSIGNED;
c5aa993b 269
c906108c
SS
270 if (!TYPE_POINTER_TYPE (type)) /* Remember it, if don't have one. */
271 TYPE_POINTER_TYPE (type) = ntype;
272
273 return ntype;
274}
275
276/* Given a type TYPE, return a type of pointers to that type.
277 May need to construct such a type if this is the first use. */
278
279struct type *
fba45db2 280lookup_pointer_type (struct type *type)
c906108c 281{
c5aa993b 282 return make_pointer_type (type, (struct type **) 0);
c906108c
SS
283}
284
285/* Lookup a C++ `reference' to a type TYPE. TYPEPTR, if nonzero, points
286 to a pointer to memory where the reference type should be stored.
287 If *TYPEPTR is zero, update it to point to the reference type we return.
288 We allocate new memory if needed. */
289
290struct type *
fba45db2 291make_reference_type (struct type *type, struct type **typeptr)
c906108c 292{
52f0bd74 293 struct type *ntype; /* New type */
c906108c
SS
294 struct objfile *objfile;
295
296 ntype = TYPE_REFERENCE_TYPE (type);
297
c5aa993b 298 if (ntype)
c906108c 299 {
c5aa993b
JM
300 if (typeptr == 0)
301 return ntype; /* Don't care about alloc, and have new type. */
c906108c 302 else if (*typeptr == 0)
c5aa993b 303 {
c906108c
SS
304 *typeptr = ntype; /* Tracking alloc, and we have new type. */
305 return ntype;
c5aa993b 306 }
c906108c
SS
307 }
308
309 if (typeptr == 0 || *typeptr == 0) /* We'll need to allocate one. */
310 {
311 ntype = alloc_type (TYPE_OBJFILE (type));
312 if (typeptr)
313 *typeptr = ntype;
314 }
c5aa993b
JM
315 else
316 /* We have storage, but need to reset it. */
c906108c
SS
317 {
318 ntype = *typeptr;
319 objfile = TYPE_OBJFILE (ntype);
2fdde8f8 320 smash_type (ntype);
c906108c
SS
321 TYPE_OBJFILE (ntype) = objfile;
322 }
323
324 TYPE_TARGET_TYPE (ntype) = type;
325 TYPE_REFERENCE_TYPE (type) = ntype;
326
327 /* FIXME! Assume the machine has only one representation for references,
328 and that it matches the (only) representation for pointers! */
329
330 TYPE_LENGTH (ntype) = TARGET_PTR_BIT / TARGET_CHAR_BIT;
331 TYPE_CODE (ntype) = TYPE_CODE_REF;
c5aa993b 332
c906108c
SS
333 if (!TYPE_REFERENCE_TYPE (type)) /* Remember it, if don't have one. */
334 TYPE_REFERENCE_TYPE (type) = ntype;
335
336 return ntype;
337}
338
339/* Same as above, but caller doesn't care about memory allocation details. */
340
341struct type *
fba45db2 342lookup_reference_type (struct type *type)
c906108c 343{
c5aa993b 344 return make_reference_type (type, (struct type **) 0);
c906108c
SS
345}
346
347/* Lookup a function type that returns type TYPE. TYPEPTR, if nonzero, points
348 to a pointer to memory where the function type should be stored.
349 If *TYPEPTR is zero, update it to point to the function type we return.
350 We allocate new memory if needed. */
351
352struct type *
fba45db2 353make_function_type (struct type *type, struct type **typeptr)
c906108c 354{
52f0bd74 355 struct type *ntype; /* New type */
c906108c
SS
356 struct objfile *objfile;
357
358 if (typeptr == 0 || *typeptr == 0) /* We'll need to allocate one. */
359 {
360 ntype = alloc_type (TYPE_OBJFILE (type));
361 if (typeptr)
362 *typeptr = ntype;
363 }
c5aa993b
JM
364 else
365 /* We have storage, but need to reset it. */
c906108c
SS
366 {
367 ntype = *typeptr;
368 objfile = TYPE_OBJFILE (ntype);
2fdde8f8 369 smash_type (ntype);
c906108c
SS
370 TYPE_OBJFILE (ntype) = objfile;
371 }
372
373 TYPE_TARGET_TYPE (ntype) = type;
374
375 TYPE_LENGTH (ntype) = 1;
376 TYPE_CODE (ntype) = TYPE_CODE_FUNC;
c5aa993b 377
c906108c
SS
378 return ntype;
379}
380
381
382/* Given a type TYPE, return a type of functions that return that type.
383 May need to construct such a type if this is the first use. */
384
385struct type *
fba45db2 386lookup_function_type (struct type *type)
c906108c 387{
c5aa993b 388 return make_function_type (type, (struct type **) 0);
c906108c
SS
389}
390
47663de5
MS
391/* Identify address space identifier by name --
392 return the integer flag defined in gdbtypes.h. */
393extern int
394address_space_name_to_int (char *space_identifier)
395{
5f11f355 396 struct gdbarch *gdbarch = current_gdbarch;
8b2dbe47 397 int type_flags;
47663de5
MS
398 /* Check for known address space delimiters. */
399 if (!strcmp (space_identifier, "code"))
400 return TYPE_FLAG_CODE_SPACE;
401 else if (!strcmp (space_identifier, "data"))
402 return TYPE_FLAG_DATA_SPACE;
5f11f355
AC
403 else if (gdbarch_address_class_name_to_type_flags_p (gdbarch)
404 && gdbarch_address_class_name_to_type_flags (gdbarch,
405 space_identifier,
406 &type_flags))
8b2dbe47 407 return type_flags;
47663de5
MS
408 else
409 error ("Unknown address space specifier: \"%s\"", space_identifier);
410}
411
412/* Identify address space identifier by integer flag as defined in
413 gdbtypes.h -- return the string version of the adress space name. */
414
321432c0 415const char *
47663de5
MS
416address_space_int_to_name (int space_flag)
417{
5f11f355 418 struct gdbarch *gdbarch = current_gdbarch;
47663de5
MS
419 if (space_flag & TYPE_FLAG_CODE_SPACE)
420 return "code";
421 else if (space_flag & TYPE_FLAG_DATA_SPACE)
422 return "data";
8b2dbe47 423 else if ((space_flag & TYPE_FLAG_ADDRESS_CLASS_ALL)
5f11f355
AC
424 && gdbarch_address_class_type_flags_to_name_p (gdbarch))
425 return gdbarch_address_class_type_flags_to_name (gdbarch, space_flag);
47663de5
MS
426 else
427 return NULL;
428}
429
2fdde8f8
DJ
430/* Create a new type with instance flags NEW_FLAGS, based on TYPE.
431 If STORAGE is non-NULL, create the new type instance there. */
47663de5 432
b9362cc7 433static struct type *
2fdde8f8
DJ
434make_qualified_type (struct type *type, int new_flags,
435 struct type *storage)
47663de5
MS
436{
437 struct type *ntype;
438
439 ntype = type;
440 do {
2fdde8f8 441 if (TYPE_INSTANCE_FLAGS (ntype) == new_flags)
47663de5 442 return ntype;
2fdde8f8 443 ntype = TYPE_CHAIN (ntype);
47663de5
MS
444 } while (ntype != type);
445
2fdde8f8
DJ
446 /* Create a new type instance. */
447 if (storage == NULL)
448 ntype = alloc_type_instance (type);
449 else
450 {
451 ntype = storage;
452 TYPE_MAIN_TYPE (ntype) = TYPE_MAIN_TYPE (type);
453 TYPE_CHAIN (ntype) = ntype;
454 }
47663de5
MS
455
456 /* Pointers or references to the original type are not relevant to
2fdde8f8 457 the new type. */
47663de5
MS
458 TYPE_POINTER_TYPE (ntype) = (struct type *) 0;
459 TYPE_REFERENCE_TYPE (ntype) = (struct type *) 0;
47663de5 460
2fdde8f8
DJ
461 /* Chain the new qualified type to the old type. */
462 TYPE_CHAIN (ntype) = TYPE_CHAIN (type);
463 TYPE_CHAIN (type) = ntype;
464
465 /* Now set the instance flags and return the new type. */
466 TYPE_INSTANCE_FLAGS (ntype) = new_flags;
47663de5 467
ab5d3da6
KB
468 /* Set length of new type to that of the original type. */
469 TYPE_LENGTH (ntype) = TYPE_LENGTH (type);
470
47663de5
MS
471 return ntype;
472}
473
2fdde8f8
DJ
474/* Make an address-space-delimited variant of a type -- a type that
475 is identical to the one supplied except that it has an address
476 space attribute attached to it (such as "code" or "data").
477
8b2dbe47
KB
478 The space attributes "code" and "data" are for Harvard architectures.
479 The address space attributes are for architectures which have
480 alternately sized pointers or pointers with alternate representations. */
2fdde8f8
DJ
481
482struct type *
483make_type_with_address_space (struct type *type, int space_flag)
484{
485 struct type *ntype;
486 int new_flags = ((TYPE_INSTANCE_FLAGS (type)
8b2dbe47
KB
487 & ~(TYPE_FLAG_CODE_SPACE | TYPE_FLAG_DATA_SPACE
488 | TYPE_FLAG_ADDRESS_CLASS_ALL))
2fdde8f8
DJ
489 | space_flag);
490
491 return make_qualified_type (type, new_flags, NULL);
492}
c906108c
SS
493
494/* Make a "c-v" variant of a type -- a type that is identical to the
495 one supplied except that it may have const or volatile attributes
496 CNST is a flag for setting the const attribute
497 VOLTL is a flag for setting the volatile attribute
498 TYPE is the base type whose variant we are creating.
499 TYPEPTR, if nonzero, points
500 to a pointer to memory where the reference type should be stored.
501 If *TYPEPTR is zero, update it to point to the reference type we return.
502 We allocate new memory if needed. */
503
504struct type *
fba45db2 505make_cv_type (int cnst, int voltl, struct type *type, struct type **typeptr)
c906108c 506{
52f0bd74
AC
507 struct type *ntype; /* New type */
508 struct type *tmp_type = type; /* tmp type */
c906108c
SS
509 struct objfile *objfile;
510
2fdde8f8
DJ
511 int new_flags = (TYPE_INSTANCE_FLAGS (type)
512 & ~(TYPE_FLAG_CONST | TYPE_FLAG_VOLATILE));
c906108c 513
c906108c 514 if (cnst)
2fdde8f8 515 new_flags |= TYPE_FLAG_CONST;
c906108c
SS
516
517 if (voltl)
2fdde8f8 518 new_flags |= TYPE_FLAG_VOLATILE;
a02fd225 519
2fdde8f8 520 if (typeptr && *typeptr != NULL)
a02fd225 521 {
2fdde8f8
DJ
522 /* Objfile is per-core-type. This const-qualified type had best
523 belong to the same objfile as the type it is qualifying, unless
524 we are overwriting a stub type, in which case the safest thing
525 to do is to copy the core type into the new objfile. */
a02fd225 526
2fdde8f8
DJ
527 gdb_assert (TYPE_OBJFILE (*typeptr) == TYPE_OBJFILE (type)
528 || TYPE_STUB (*typeptr));
529 if (TYPE_OBJFILE (*typeptr) != TYPE_OBJFILE (type))
530 {
531 TYPE_MAIN_TYPE (*typeptr)
532 = TYPE_ALLOC (*typeptr, sizeof (struct main_type));
533 *TYPE_MAIN_TYPE (*typeptr)
534 = *TYPE_MAIN_TYPE (type);
535 }
536 }
537
538 ntype = make_qualified_type (type, new_flags, typeptr ? *typeptr : NULL);
c906108c 539
2fdde8f8
DJ
540 if (typeptr != NULL)
541 *typeptr = ntype;
a02fd225 542
2fdde8f8 543 return ntype;
a02fd225 544}
c906108c 545
2fdde8f8
DJ
546/* Replace the contents of ntype with the type *type. This changes the
547 contents, rather than the pointer for TYPE_MAIN_TYPE (ntype); thus
548 the changes are propogated to all types in the TYPE_CHAIN.
dd6bda65 549
cda6c68a
JB
550 In order to build recursive types, it's inevitable that we'll need
551 to update types in place --- but this sort of indiscriminate
552 smashing is ugly, and needs to be replaced with something more
2fdde8f8
DJ
553 controlled. TYPE_MAIN_TYPE is a step in this direction; it's not
554 clear if more steps are needed. */
dd6bda65
DJ
555void
556replace_type (struct type *ntype, struct type *type)
557{
ab5d3da6 558 struct type *chain;
dd6bda65 559
2fdde8f8 560 *TYPE_MAIN_TYPE (ntype) = *TYPE_MAIN_TYPE (type);
dd6bda65 561
ab5d3da6
KB
562 /* The type length is not a part of the main type. Update it for each
563 type on the variant chain. */
564 chain = ntype;
565 do {
566 /* Assert that this element of the chain has no address-class bits
567 set in its flags. Such type variants might have type lengths
568 which are supposed to be different from the non-address-class
569 variants. This assertion shouldn't ever be triggered because
570 symbol readers which do construct address-class variants don't
571 call replace_type(). */
572 gdb_assert (TYPE_ADDRESS_CLASS_ALL (chain) == 0);
573
574 TYPE_LENGTH (ntype) = TYPE_LENGTH (type);
575 chain = TYPE_CHAIN (chain);
576 } while (ntype != chain);
577
2fdde8f8
DJ
578 /* Assert that the two types have equivalent instance qualifiers.
579 This should be true for at least all of our debug readers. */
580 gdb_assert (TYPE_INSTANCE_FLAGS (ntype) == TYPE_INSTANCE_FLAGS (type));
dd6bda65
DJ
581}
582
c906108c
SS
583/* Implement direct support for MEMBER_TYPE in GNU C++.
584 May need to construct such a type if this is the first use.
585 The TYPE is the type of the member. The DOMAIN is the type
586 of the aggregate that the member belongs to. */
587
588struct type *
fba45db2 589lookup_member_type (struct type *type, struct type *domain)
c906108c 590{
52f0bd74 591 struct type *mtype;
c906108c
SS
592
593 mtype = alloc_type (TYPE_OBJFILE (type));
594 smash_to_member_type (mtype, domain, type);
595 return (mtype);
596}
597
7b83ea04 598/* Allocate a stub method whose return type is TYPE.
c906108c
SS
599 This apparently happens for speed of symbol reading, since parsing
600 out the arguments to the method is cpu-intensive, the way we are doing
601 it. So, we will fill in arguments later.
602 This always returns a fresh type. */
603
604struct type *
fba45db2 605allocate_stub_method (struct type *type)
c906108c
SS
606{
607 struct type *mtype;
608
7e956337
FF
609 mtype = init_type (TYPE_CODE_METHOD, 1, TYPE_FLAG_STUB, NULL,
610 TYPE_OBJFILE (type));
c906108c
SS
611 TYPE_TARGET_TYPE (mtype) = type;
612 /* _DOMAIN_TYPE (mtype) = unknown yet */
c906108c
SS
613 return (mtype);
614}
615
616/* Create a range type using either a blank type supplied in RESULT_TYPE,
617 or creating a new type, inheriting the objfile from INDEX_TYPE.
618
619 Indices will be of type INDEX_TYPE, and will range from LOW_BOUND to
620 HIGH_BOUND, inclusive.
621
622 FIXME: Maybe we should check the TYPE_CODE of RESULT_TYPE to make
623 sure it is TYPE_CODE_UNDEF before we bash it into a range type? */
624
625struct type *
fba45db2
KB
626create_range_type (struct type *result_type, struct type *index_type,
627 int low_bound, int high_bound)
c906108c
SS
628{
629 if (result_type == NULL)
630 {
631 result_type = alloc_type (TYPE_OBJFILE (index_type));
632 }
633 TYPE_CODE (result_type) = TYPE_CODE_RANGE;
634 TYPE_TARGET_TYPE (result_type) = index_type;
74a9bb82 635 if (TYPE_STUB (index_type))
c906108c
SS
636 TYPE_FLAGS (result_type) |= TYPE_FLAG_TARGET_STUB;
637 else
638 TYPE_LENGTH (result_type) = TYPE_LENGTH (check_typedef (index_type));
639 TYPE_NFIELDS (result_type) = 2;
640 TYPE_FIELDS (result_type) = (struct field *)
641 TYPE_ALLOC (result_type, 2 * sizeof (struct field));
642 memset (TYPE_FIELDS (result_type), 0, 2 * sizeof (struct field));
643 TYPE_FIELD_BITPOS (result_type, 0) = low_bound;
644 TYPE_FIELD_BITPOS (result_type, 1) = high_bound;
c5aa993b
JM
645 TYPE_FIELD_TYPE (result_type, 0) = builtin_type_int; /* FIXME */
646 TYPE_FIELD_TYPE (result_type, 1) = builtin_type_int; /* FIXME */
c906108c 647
c5aa993b 648 if (low_bound >= 0)
c906108c
SS
649 TYPE_FLAGS (result_type) |= TYPE_FLAG_UNSIGNED;
650
651 return (result_type);
652}
653
654/* Set *LOWP and *HIGHP to the lower and upper bounds of discrete type TYPE.
655 Return 1 of type is a range type, 0 if it is discrete (and bounds
656 will fit in LONGEST), or -1 otherwise. */
657
658int
fba45db2 659get_discrete_bounds (struct type *type, LONGEST *lowp, LONGEST *highp)
c906108c
SS
660{
661 CHECK_TYPEDEF (type);
662 switch (TYPE_CODE (type))
663 {
664 case TYPE_CODE_RANGE:
665 *lowp = TYPE_LOW_BOUND (type);
666 *highp = TYPE_HIGH_BOUND (type);
667 return 1;
668 case TYPE_CODE_ENUM:
669 if (TYPE_NFIELDS (type) > 0)
670 {
671 /* The enums may not be sorted by value, so search all
672 entries */
673 int i;
674
675 *lowp = *highp = TYPE_FIELD_BITPOS (type, 0);
676 for (i = 0; i < TYPE_NFIELDS (type); i++)
677 {
678 if (TYPE_FIELD_BITPOS (type, i) < *lowp)
679 *lowp = TYPE_FIELD_BITPOS (type, i);
680 if (TYPE_FIELD_BITPOS (type, i) > *highp)
681 *highp = TYPE_FIELD_BITPOS (type, i);
682 }
683
684 /* Set unsigned indicator if warranted. */
c5aa993b 685 if (*lowp >= 0)
c906108c
SS
686 {
687 TYPE_FLAGS (type) |= TYPE_FLAG_UNSIGNED;
688 }
689 }
690 else
691 {
692 *lowp = 0;
693 *highp = -1;
694 }
695 return 0;
696 case TYPE_CODE_BOOL:
697 *lowp = 0;
698 *highp = 1;
699 return 0;
700 case TYPE_CODE_INT:
c5aa993b 701 if (TYPE_LENGTH (type) > sizeof (LONGEST)) /* Too big */
c906108c
SS
702 return -1;
703 if (!TYPE_UNSIGNED (type))
704 {
c5aa993b 705 *lowp = -(1 << (TYPE_LENGTH (type) * TARGET_CHAR_BIT - 1));
c906108c
SS
706 *highp = -*lowp - 1;
707 return 0;
708 }
709 /* ... fall through for unsigned ints ... */
710 case TYPE_CODE_CHAR:
711 *lowp = 0;
712 /* This round-about calculation is to avoid shifting by
7b83ea04
AC
713 TYPE_LENGTH (type) * TARGET_CHAR_BIT, which will not work
714 if TYPE_LENGTH (type) == sizeof (LONGEST). */
c906108c
SS
715 *highp = 1 << (TYPE_LENGTH (type) * TARGET_CHAR_BIT - 1);
716 *highp = (*highp - 1) | *highp;
717 return 0;
718 default:
719 return -1;
720 }
721}
722
723/* Create an array type using either a blank type supplied in RESULT_TYPE,
724 or creating a new type, inheriting the objfile from RANGE_TYPE.
725
726 Elements will be of type ELEMENT_TYPE, the indices will be of type
727 RANGE_TYPE.
728
729 FIXME: Maybe we should check the TYPE_CODE of RESULT_TYPE to make
730 sure it is TYPE_CODE_UNDEF before we bash it into an array type? */
731
732struct type *
fba45db2
KB
733create_array_type (struct type *result_type, struct type *element_type,
734 struct type *range_type)
c906108c
SS
735{
736 LONGEST low_bound, high_bound;
737
738 if (result_type == NULL)
739 {
740 result_type = alloc_type (TYPE_OBJFILE (range_type));
741 }
742 TYPE_CODE (result_type) = TYPE_CODE_ARRAY;
743 TYPE_TARGET_TYPE (result_type) = element_type;
744 if (get_discrete_bounds (range_type, &low_bound, &high_bound) < 0)
745 low_bound = high_bound = 0;
746 CHECK_TYPEDEF (element_type);
747 TYPE_LENGTH (result_type) =
748 TYPE_LENGTH (element_type) * (high_bound - low_bound + 1);
749 TYPE_NFIELDS (result_type) = 1;
750 TYPE_FIELDS (result_type) =
751 (struct field *) TYPE_ALLOC (result_type, sizeof (struct field));
752 memset (TYPE_FIELDS (result_type), 0, sizeof (struct field));
753 TYPE_FIELD_TYPE (result_type, 0) = range_type;
754 TYPE_VPTR_FIELDNO (result_type) = -1;
755
756 /* TYPE_FLAG_TARGET_STUB will take care of zero length arrays */
757 if (TYPE_LENGTH (result_type) == 0)
758 TYPE_FLAGS (result_type) |= TYPE_FLAG_TARGET_STUB;
759
760 return (result_type);
761}
762
763/* Create a string type using either a blank type supplied in RESULT_TYPE,
764 or creating a new type. String types are similar enough to array of
765 char types that we can use create_array_type to build the basic type
766 and then bash it into a string type.
767
768 For fixed length strings, the range type contains 0 as the lower
769 bound and the length of the string minus one as the upper bound.
770
771 FIXME: Maybe we should check the TYPE_CODE of RESULT_TYPE to make
772 sure it is TYPE_CODE_UNDEF before we bash it into a string type? */
773
774struct type *
fba45db2 775create_string_type (struct type *result_type, struct type *range_type)
c906108c
SS
776{
777 result_type = create_array_type (result_type,
778 *current_language->string_char_type,
779 range_type);
780 TYPE_CODE (result_type) = TYPE_CODE_STRING;
781 return (result_type);
782}
783
784struct type *
fba45db2 785create_set_type (struct type *result_type, struct type *domain_type)
c906108c
SS
786{
787 LONGEST low_bound, high_bound, bit_length;
788 if (result_type == NULL)
789 {
790 result_type = alloc_type (TYPE_OBJFILE (domain_type));
791 }
792 TYPE_CODE (result_type) = TYPE_CODE_SET;
793 TYPE_NFIELDS (result_type) = 1;
794 TYPE_FIELDS (result_type) = (struct field *)
795 TYPE_ALLOC (result_type, 1 * sizeof (struct field));
796 memset (TYPE_FIELDS (result_type), 0, sizeof (struct field));
797
74a9bb82 798 if (!TYPE_STUB (domain_type))
c906108c
SS
799 {
800 if (get_discrete_bounds (domain_type, &low_bound, &high_bound) < 0)
801 low_bound = high_bound = 0;
802 bit_length = high_bound - low_bound + 1;
803 TYPE_LENGTH (result_type)
804 = (bit_length + TARGET_CHAR_BIT - 1) / TARGET_CHAR_BIT;
805 }
806 TYPE_FIELD_TYPE (result_type, 0) = domain_type;
807
c5aa993b 808 if (low_bound >= 0)
c906108c
SS
809 TYPE_FLAGS (result_type) |= TYPE_FLAG_UNSIGNED;
810
811 return (result_type);
812}
813
917317f4
JM
814/* Construct and return a type of the form:
815 struct NAME { ELT_TYPE ELT_NAME[N]; }
816 We use these types for SIMD registers. For example, the type of
817 the SSE registers on the late x86-family processors is:
818 struct __builtin_v4sf { float f[4]; }
819 built by the function call:
820 init_simd_type ("__builtin_v4sf", builtin_type_float, "f", 4)
821 The type returned is a permanent type, allocated using malloc; it
822 doesn't live in any objfile's obstack. */
c2d11a7d 823static struct type *
917317f4
JM
824init_simd_type (char *name,
825 struct type *elt_type,
826 char *elt_name,
827 int n)
828{
73d322b1
EZ
829 struct type *simd_type;
830 struct type *array_type;
831
832 simd_type = init_composite_type (name, TYPE_CODE_STRUCT);
833 array_type = create_array_type (0, elt_type,
834 create_range_type (0, builtin_type_int,
835 0, n-1));
836 append_composite_type_field (simd_type, elt_name, array_type);
837 return simd_type;
917317f4
JM
838}
839
ac3aafc7
EZ
840static struct type *
841init_vector_type (struct type *elt_type, int n)
842{
843 struct type *array_type;
844
845 array_type = create_array_type (0, elt_type,
846 create_range_type (0, builtin_type_int,
847 0, n-1));
848 TYPE_FLAGS (array_type) |= TYPE_FLAG_VECTOR;
849 return array_type;
850}
851
b063e7a2
AC
852static struct type *
853build_builtin_type_vec64 (void)
854{
855 /* Construct a type for the 64 bit registers. The type we're
856 building is this: */
857#if 0
858 union __gdb_builtin_type_vec64
859 {
860 int64_t uint64;
861 float v2_float[2];
862 int32_t v2_int32[2];
863 int16_t v4_int16[4];
864 int8_t v8_int8[8];
865 };
866#endif
867
868 struct type *t;
869
870 t = init_composite_type ("__gdb_builtin_type_vec64", TYPE_CODE_UNION);
871 append_composite_type_field (t, "uint64", builtin_type_int64);
872 append_composite_type_field (t, "v2_float", builtin_type_v2_float);
873 append_composite_type_field (t, "v2_int32", builtin_type_v2_int32);
874 append_composite_type_field (t, "v4_int16", builtin_type_v4_int16);
875 append_composite_type_field (t, "v8_int8", builtin_type_v8_int8);
876
877 TYPE_FLAGS (t) |= TYPE_FLAG_VECTOR;
216b504f 878 TYPE_NAME (t) = "builtin_type_vec64";
b063e7a2
AC
879 return t;
880}
881
882static struct type *
883build_builtin_type_vec64i (void)
884{
885 /* Construct a type for the 64 bit registers. The type we're
886 building is this: */
887#if 0
888 union __gdb_builtin_type_vec64i
889 {
890 int64_t uint64;
891 int32_t v2_int32[2];
892 int16_t v4_int16[4];
893 int8_t v8_int8[8];
894 };
895#endif
896
897 struct type *t;
898
899 t = init_composite_type ("__gdb_builtin_type_vec64i", TYPE_CODE_UNION);
900 append_composite_type_field (t, "uint64", builtin_type_int64);
901 append_composite_type_field (t, "v2_int32", builtin_type_v2_int32);
902 append_composite_type_field (t, "v4_int16", builtin_type_v4_int16);
903 append_composite_type_field (t, "v8_int8", builtin_type_v8_int8);
904
905 TYPE_FLAGS (t) |= TYPE_FLAG_VECTOR;
216b504f 906 TYPE_NAME (t) = "builtin_type_vec64i";
b063e7a2
AC
907 return t;
908}
909
08cf96df
EZ
910static struct type *
911build_builtin_type_vec128 (void)
912{
913 /* Construct a type for the 128 bit registers. The type we're
914 building is this: */
915#if 0
ac3aafc7 916 union __gdb_builtin_type_vec128
08cf96df 917 {
ac3aafc7
EZ
918 int128_t uint128;
919 float v4_float[4];
920 int32_t v4_int32[4];
921 int16_t v8_int16[8];
922 int8_t v16_int8[16];
08cf96df
EZ
923 };
924#endif
925
926 struct type *t;
08cf96df 927
73d322b1
EZ
928 t = init_composite_type ("__gdb_builtin_type_vec128", TYPE_CODE_UNION);
929 append_composite_type_field (t, "uint128", builtin_type_int128);
ac3aafc7
EZ
930 append_composite_type_field (t, "v4_float", builtin_type_v4_float);
931 append_composite_type_field (t, "v4_int32", builtin_type_v4_int32);
932 append_composite_type_field (t, "v8_int16", builtin_type_v8_int16);
933 append_composite_type_field (t, "v16_int8", builtin_type_v16_int8);
08cf96df 934
b063e7a2 935 TYPE_FLAGS (t) |= TYPE_FLAG_VECTOR;
216b504f 936 TYPE_NAME (t) = "builtin_type_vec128";
08cf96df
EZ
937 return t;
938}
917317f4 939
3139facc
MH
940static struct type *
941build_builtin_type_vec128i (void)
942{
943 /* 128-bit Intel SIMD registers */
944 struct type *t;
945
946 t = init_composite_type ("__gdb_builtin_type_vec128i", TYPE_CODE_UNION);
947 append_composite_type_field (t, "v4_float", builtin_type_v4_float);
948 append_composite_type_field (t, "v2_double", builtin_type_v2_double);
949 append_composite_type_field (t, "v16_int8", builtin_type_v16_int8);
950 append_composite_type_field (t, "v8_int16", builtin_type_v8_int16);
951 append_composite_type_field (t, "v4_int32", builtin_type_v4_int32);
952 append_composite_type_field (t, "v2_int64", builtin_type_v2_int64);
953 append_composite_type_field (t, "uint128", builtin_type_int128);
954
b063e7a2 955 TYPE_FLAGS (t) |= TYPE_FLAG_VECTOR;
216b504f 956 TYPE_NAME (t) = "builtin_type_vec128i";
3139facc
MH
957 return t;
958}
959
7b83ea04 960/* Smash TYPE to be a type of members of DOMAIN with type TO_TYPE.
c906108c
SS
961 A MEMBER is a wierd thing -- it amounts to a typed offset into
962 a struct, e.g. "an int at offset 8". A MEMBER TYPE doesn't
963 include the offset (that's the value of the MEMBER itself), but does
964 include the structure type into which it points (for some reason).
965
966 When "smashing" the type, we preserve the objfile that the
967 old type pointed to, since we aren't changing where the type is actually
968 allocated. */
969
970void
fba45db2
KB
971smash_to_member_type (struct type *type, struct type *domain,
972 struct type *to_type)
c906108c
SS
973{
974 struct objfile *objfile;
975
976 objfile = TYPE_OBJFILE (type);
977
2fdde8f8 978 smash_type (type);
c906108c
SS
979 TYPE_OBJFILE (type) = objfile;
980 TYPE_TARGET_TYPE (type) = to_type;
981 TYPE_DOMAIN_TYPE (type) = domain;
982 TYPE_LENGTH (type) = 1; /* In practice, this is never needed. */
983 TYPE_CODE (type) = TYPE_CODE_MEMBER;
984}
985
986/* Smash TYPE to be a type of method of DOMAIN with type TO_TYPE.
987 METHOD just means `function that gets an extra "this" argument'.
988
989 When "smashing" the type, we preserve the objfile that the
990 old type pointed to, since we aren't changing where the type is actually
991 allocated. */
992
993void
fba45db2 994smash_to_method_type (struct type *type, struct type *domain,
ad2f7632
DJ
995 struct type *to_type, struct field *args,
996 int nargs, int varargs)
c906108c
SS
997{
998 struct objfile *objfile;
999
1000 objfile = TYPE_OBJFILE (type);
1001
2fdde8f8 1002 smash_type (type);
c906108c
SS
1003 TYPE_OBJFILE (type) = objfile;
1004 TYPE_TARGET_TYPE (type) = to_type;
1005 TYPE_DOMAIN_TYPE (type) = domain;
ad2f7632
DJ
1006 TYPE_FIELDS (type) = args;
1007 TYPE_NFIELDS (type) = nargs;
1008 if (varargs)
1009 TYPE_FLAGS (type) |= TYPE_FLAG_VARARGS;
c906108c
SS
1010 TYPE_LENGTH (type) = 1; /* In practice, this is never needed. */
1011 TYPE_CODE (type) = TYPE_CODE_METHOD;
1012}
1013
1014/* Return a typename for a struct/union/enum type without "struct ",
1015 "union ", or "enum ". If the type has a NULL name, return NULL. */
1016
1017char *
aa1ee363 1018type_name_no_tag (const struct type *type)
c906108c
SS
1019{
1020 if (TYPE_TAG_NAME (type) != NULL)
1021 return TYPE_TAG_NAME (type);
1022
1023 /* Is there code which expects this to return the name if there is no
1024 tag name? My guess is that this is mainly used for C++ in cases where
1025 the two will always be the same. */
1026 return TYPE_NAME (type);
1027}
1028
7b83ea04 1029/* Lookup a primitive type named NAME.
c5aa993b 1030 Return zero if NAME is not a primitive type. */
c906108c
SS
1031
1032struct type *
fba45db2 1033lookup_primitive_typename (char *name)
c906108c 1034{
c5aa993b
JM
1035 struct type **const *p;
1036
1037 for (p = current_language->la_builtin_type_vector; *p != NULL; p++)
1038 {
762f08a3 1039 if (strcmp (TYPE_NAME (**p), name) == 0)
c5aa993b
JM
1040 {
1041 return (**p);
1042 }
1043 }
1044 return (NULL);
c906108c
SS
1045}
1046
1047/* Lookup a typedef or primitive type named NAME,
1048 visible in lexical block BLOCK.
1049 If NOERR is nonzero, return zero if NAME is not suitably defined. */
1050
1051struct type *
fba45db2 1052lookup_typename (char *name, struct block *block, int noerr)
c906108c 1053{
52f0bd74
AC
1054 struct symbol *sym;
1055 struct type *tmp;
c906108c 1056
176620f1 1057 sym = lookup_symbol (name, block, VAR_DOMAIN, 0, (struct symtab **) NULL);
c906108c
SS
1058 if (sym == NULL || SYMBOL_CLASS (sym) != LOC_TYPEDEF)
1059 {
1060 tmp = lookup_primitive_typename (name);
1061 if (tmp)
1062 {
1063 return (tmp);
1064 }
1065 else if (!tmp && noerr)
1066 {
1067 return (NULL);
1068 }
1069 else
1070 {
1071 error ("No type named %s.", name);
1072 }
1073 }
1074 return (SYMBOL_TYPE (sym));
1075}
1076
1077struct type *
fba45db2 1078lookup_unsigned_typename (char *name)
c906108c
SS
1079{
1080 char *uns = alloca (strlen (name) + 10);
1081
1082 strcpy (uns, "unsigned ");
1083 strcpy (uns + 9, name);
1084 return (lookup_typename (uns, (struct block *) NULL, 0));
1085}
1086
1087struct type *
fba45db2 1088lookup_signed_typename (char *name)
c906108c
SS
1089{
1090 struct type *t;
1091 char *uns = alloca (strlen (name) + 8);
1092
1093 strcpy (uns, "signed ");
1094 strcpy (uns + 7, name);
1095 t = lookup_typename (uns, (struct block *) NULL, 1);
1096 /* If we don't find "signed FOO" just try again with plain "FOO". */
1097 if (t != NULL)
1098 return t;
1099 return lookup_typename (name, (struct block *) NULL, 0);
1100}
1101
1102/* Lookup a structure type named "struct NAME",
1103 visible in lexical block BLOCK. */
1104
1105struct type *
fba45db2 1106lookup_struct (char *name, struct block *block)
c906108c 1107{
52f0bd74 1108 struct symbol *sym;
c906108c 1109
176620f1 1110 sym = lookup_symbol (name, block, STRUCT_DOMAIN, 0,
c906108c
SS
1111 (struct symtab **) NULL);
1112
1113 if (sym == NULL)
1114 {
1115 error ("No struct type named %s.", name);
1116 }
1117 if (TYPE_CODE (SYMBOL_TYPE (sym)) != TYPE_CODE_STRUCT)
1118 {
1119 error ("This context has class, union or enum %s, not a struct.", name);
1120 }
1121 return (SYMBOL_TYPE (sym));
1122}
1123
1124/* Lookup a union type named "union NAME",
1125 visible in lexical block BLOCK. */
1126
1127struct type *
fba45db2 1128lookup_union (char *name, struct block *block)
c906108c 1129{
52f0bd74 1130 struct symbol *sym;
c5aa993b 1131 struct type *t;
c906108c 1132
176620f1 1133 sym = lookup_symbol (name, block, STRUCT_DOMAIN, 0,
c906108c
SS
1134 (struct symtab **) NULL);
1135
1136 if (sym == NULL)
1137 error ("No union type named %s.", name);
1138
c5aa993b 1139 t = SYMBOL_TYPE (sym);
c906108c
SS
1140
1141 if (TYPE_CODE (t) == TYPE_CODE_UNION)
1142 return (t);
1143
1144 /* C++ unions may come out with TYPE_CODE_CLASS, but we look at
1145 * a further "declared_type" field to discover it is really a union.
1146 */
c5aa993b
JM
1147 if (HAVE_CPLUS_STRUCT (t))
1148 if (TYPE_DECLARED_TYPE (t) == DECLARED_TYPE_UNION)
c906108c
SS
1149 return (t);
1150
1151 /* If we get here, it's not a union */
1152 error ("This context has class, struct or enum %s, not a union.", name);
1153}
1154
1155
1156/* Lookup an enum type named "enum NAME",
1157 visible in lexical block BLOCK. */
1158
1159struct type *
fba45db2 1160lookup_enum (char *name, struct block *block)
c906108c 1161{
52f0bd74 1162 struct symbol *sym;
c906108c 1163
176620f1 1164 sym = lookup_symbol (name, block, STRUCT_DOMAIN, 0,
c906108c
SS
1165 (struct symtab **) NULL);
1166 if (sym == NULL)
1167 {
1168 error ("No enum type named %s.", name);
1169 }
1170 if (TYPE_CODE (SYMBOL_TYPE (sym)) != TYPE_CODE_ENUM)
1171 {
1172 error ("This context has class, struct or union %s, not an enum.", name);
1173 }
1174 return (SYMBOL_TYPE (sym));
1175}
1176
1177/* Lookup a template type named "template NAME<TYPE>",
1178 visible in lexical block BLOCK. */
1179
1180struct type *
fba45db2 1181lookup_template_type (char *name, struct type *type, struct block *block)
c906108c
SS
1182{
1183 struct symbol *sym;
0004e5a2 1184 char *nam = (char *) alloca (strlen (name) + strlen (TYPE_NAME (type)) + 4);
c906108c
SS
1185 strcpy (nam, name);
1186 strcat (nam, "<");
0004e5a2 1187 strcat (nam, TYPE_NAME (type));
c5aa993b 1188 strcat (nam, " >"); /* FIXME, extra space still introduced in gcc? */
c906108c 1189
176620f1 1190 sym = lookup_symbol (nam, block, VAR_DOMAIN, 0, (struct symtab **) NULL);
c906108c
SS
1191
1192 if (sym == NULL)
1193 {
1194 error ("No template type named %s.", name);
1195 }
1196 if (TYPE_CODE (SYMBOL_TYPE (sym)) != TYPE_CODE_STRUCT)
1197 {
1198 error ("This context has class, union or enum %s, not a struct.", name);
1199 }
1200 return (SYMBOL_TYPE (sym));
1201}
1202
7b83ea04 1203/* Given a type TYPE, lookup the type of the component of type named NAME.
c906108c
SS
1204
1205 TYPE can be either a struct or union, or a pointer or reference to a struct or
1206 union. If it is a pointer or reference, its target type is automatically used.
1207 Thus '.' and '->' are interchangable, as specified for the definitions of the
1208 expression element types STRUCTOP_STRUCT and STRUCTOP_PTR.
1209
1210 If NOERR is nonzero, return zero if NAME is not suitably defined.
1211 If NAME is the name of a baseclass type, return that type. */
1212
1213struct type *
fba45db2 1214lookup_struct_elt_type (struct type *type, char *name, int noerr)
c906108c
SS
1215{
1216 int i;
1217
1218 for (;;)
1219 {
1220 CHECK_TYPEDEF (type);
1221 if (TYPE_CODE (type) != TYPE_CODE_PTR
1222 && TYPE_CODE (type) != TYPE_CODE_REF)
1223 break;
1224 type = TYPE_TARGET_TYPE (type);
1225 }
1226
1227 if (TYPE_CODE (type) != TYPE_CODE_STRUCT &&
1228 TYPE_CODE (type) != TYPE_CODE_UNION)
1229 {
1230 target_terminal_ours ();
1231 gdb_flush (gdb_stdout);
1232 fprintf_unfiltered (gdb_stderr, "Type ");
1233 type_print (type, "", gdb_stderr, -1);
1234 error (" is not a structure or union type.");
1235 }
1236
1237#if 0
1238 /* FIXME: This change put in by Michael seems incorrect for the case where
1239 the structure tag name is the same as the member name. I.E. when doing
1240 "ptype bell->bar" for "struct foo { int bar; int foo; } bell;"
1241 Disabled by fnf. */
1242 {
1243 char *typename;
1244
1245 typename = type_name_no_tag (type);
762f08a3 1246 if (typename != NULL && strcmp (typename, name) == 0)
c906108c
SS
1247 return type;
1248 }
1249#endif
1250
1251 for (i = TYPE_NFIELDS (type) - 1; i >= TYPE_N_BASECLASSES (type); i--)
1252 {
1253 char *t_field_name = TYPE_FIELD_NAME (type, i);
1254
db577aea 1255 if (t_field_name && (strcmp_iw (t_field_name, name) == 0))
c906108c
SS
1256 {
1257 return TYPE_FIELD_TYPE (type, i);
1258 }
1259 }
1260
1261 /* OK, it's not in this class. Recursively check the baseclasses. */
1262 for (i = TYPE_N_BASECLASSES (type) - 1; i >= 0; i--)
1263 {
1264 struct type *t;
1265
1266 t = lookup_struct_elt_type (TYPE_BASECLASS (type, i), name, noerr);
1267 if (t != NULL)
1268 {
1269 return t;
1270 }
1271 }
1272
1273 if (noerr)
1274 {
1275 return NULL;
1276 }
c5aa993b 1277
c906108c
SS
1278 target_terminal_ours ();
1279 gdb_flush (gdb_stdout);
1280 fprintf_unfiltered (gdb_stderr, "Type ");
1281 type_print (type, "", gdb_stderr, -1);
1282 fprintf_unfiltered (gdb_stderr, " has no component named ");
1283 fputs_filtered (name, gdb_stderr);
1284 error (".");
c5aa993b 1285 return (struct type *) -1; /* For lint */
c906108c
SS
1286}
1287
1288/* If possible, make the vptr_fieldno and vptr_basetype fields of TYPE
1289 valid. Callers should be aware that in some cases (for example,
1290 the type or one of its baseclasses is a stub type and we are
1291 debugging a .o file), this function will not be able to find the virtual
1292 function table pointer, and vptr_fieldno will remain -1 and vptr_basetype
1293 will remain NULL. */
1294
1295void
fba45db2 1296fill_in_vptr_fieldno (struct type *type)
c906108c
SS
1297{
1298 CHECK_TYPEDEF (type);
1299
1300 if (TYPE_VPTR_FIELDNO (type) < 0)
1301 {
1302 int i;
1303
1304 /* We must start at zero in case the first (and only) baseclass is
7b83ea04 1305 virtual (and hence we cannot share the table pointer). */
c906108c
SS
1306 for (i = 0; i < TYPE_N_BASECLASSES (type); i++)
1307 {
cef4f5dd
DJ
1308 struct type *baseclass = check_typedef (TYPE_BASECLASS (type, i));
1309 fill_in_vptr_fieldno (baseclass);
1310 if (TYPE_VPTR_FIELDNO (baseclass) >= 0)
c906108c 1311 {
cef4f5dd
DJ
1312 TYPE_VPTR_FIELDNO (type) = TYPE_VPTR_FIELDNO (baseclass);
1313 TYPE_VPTR_BASETYPE (type) = TYPE_VPTR_BASETYPE (baseclass);
c906108c
SS
1314 break;
1315 }
1316 }
1317 }
1318}
1319
1320/* Find the method and field indices for the destructor in class type T.
1321 Return 1 if the destructor was found, otherwise, return 0. */
1322
1323int
fba45db2 1324get_destructor_fn_field (struct type *t, int *method_indexp, int *field_indexp)
c906108c
SS
1325{
1326 int i;
1327
1328 for (i = 0; i < TYPE_NFN_FIELDS (t); i++)
1329 {
1330 int j;
1331 struct fn_field *f = TYPE_FN_FIELDLIST1 (t, i);
1332
1333 for (j = 0; j < TYPE_FN_FIELDLIST_LENGTH (t, i); j++)
1334 {
015a42b4 1335 if (is_destructor_name (TYPE_FN_FIELD_PHYSNAME (f, j)) != 0)
c906108c
SS
1336 {
1337 *method_indexp = i;
1338 *field_indexp = j;
1339 return 1;
1340 }
1341 }
1342 }
1343 return 0;
1344}
1345
44e1a9eb
DJ
1346static void
1347stub_noname_complaint (void)
1348{
1349 complaint (&symfile_complaints, "stub type has NULL name");
1350}
1351
c906108c
SS
1352/* Added by Bryan Boreham, Kewill, Sun Sep 17 18:07:17 1989.
1353
1354 If this is a stubbed struct (i.e. declared as struct foo *), see if
1355 we can find a full definition in some other file. If so, copy this
1356 definition, so we can use it in future. There used to be a comment (but
1357 not any code) that if we don't find a full definition, we'd set a flag
1358 so we don't spend time in the future checking the same type. That would
1359 be a mistake, though--we might load in more symbols which contain a
1360 full definition for the type.
1361
7b83ea04 1362 This used to be coded as a macro, but I don't think it is called
c906108c
SS
1363 often enough to merit such treatment. */
1364
44e1a9eb
DJ
1365/* Find the real type of TYPE. This function returns the real type, after
1366 removing all layers of typedefs and completing opaque or stub types.
1367 Completion changes the TYPE argument, but stripping of typedefs does
1368 not. */
c906108c
SS
1369
1370struct type *
a02fd225 1371check_typedef (struct type *type)
c906108c
SS
1372{
1373 struct type *orig_type = type;
a02fd225
DJ
1374 int is_const, is_volatile;
1375
c906108c
SS
1376 while (TYPE_CODE (type) == TYPE_CODE_TYPEDEF)
1377 {
1378 if (!TYPE_TARGET_TYPE (type))
1379 {
c5aa993b 1380 char *name;
c906108c
SS
1381 struct symbol *sym;
1382
1383 /* It is dangerous to call lookup_symbol if we are currently
1384 reading a symtab. Infinite recursion is one danger. */
1385 if (currently_reading_symtab)
1386 return type;
1387
1388 name = type_name_no_tag (type);
1389 /* FIXME: shouldn't we separately check the TYPE_NAME and the
176620f1 1390 TYPE_TAG_NAME, and look in STRUCT_DOMAIN and/or VAR_DOMAIN
c906108c
SS
1391 as appropriate? (this code was written before TYPE_NAME and
1392 TYPE_TAG_NAME were separate). */
1393 if (name == NULL)
1394 {
23136709 1395 stub_noname_complaint ();
c906108c
SS
1396 return type;
1397 }
176620f1 1398 sym = lookup_symbol (name, 0, STRUCT_DOMAIN, 0,
c906108c
SS
1399 (struct symtab **) NULL);
1400 if (sym)
1401 TYPE_TARGET_TYPE (type) = SYMBOL_TYPE (sym);
1402 else
c5aa993b 1403 TYPE_TARGET_TYPE (type) = alloc_type (NULL); /* TYPE_CODE_UNDEF */
c906108c
SS
1404 }
1405 type = TYPE_TARGET_TYPE (type);
1406 }
1407
a02fd225
DJ
1408 is_const = TYPE_CONST (type);
1409 is_volatile = TYPE_VOLATILE (type);
1410
c906108c
SS
1411 /* If this is a struct/class/union with no fields, then check whether a
1412 full definition exists somewhere else. This is for systems where a
1413 type definition with no fields is issued for such types, instead of
c5aa993b
JM
1414 identifying them as stub types in the first place */
1415
c906108c
SS
1416 if (TYPE_IS_OPAQUE (type) && opaque_type_resolution && !currently_reading_symtab)
1417 {
c5aa993b
JM
1418 char *name = type_name_no_tag (type);
1419 struct type *newtype;
c906108c
SS
1420 if (name == NULL)
1421 {
23136709 1422 stub_noname_complaint ();
c906108c
SS
1423 return type;
1424 }
1425 newtype = lookup_transparent_type (name);
1426 if (newtype)
a02fd225 1427 make_cv_type (is_const, is_volatile, newtype, &type);
c906108c
SS
1428 }
1429 /* Otherwise, rely on the stub flag being set for opaque/stubbed types */
74a9bb82 1430 else if (TYPE_STUB (type) && !currently_reading_symtab)
c906108c 1431 {
c5aa993b 1432 char *name = type_name_no_tag (type);
c906108c 1433 /* FIXME: shouldn't we separately check the TYPE_NAME and the
176620f1 1434 TYPE_TAG_NAME, and look in STRUCT_DOMAIN and/or VAR_DOMAIN
7b83ea04
AC
1435 as appropriate? (this code was written before TYPE_NAME and
1436 TYPE_TAG_NAME were separate). */
c906108c
SS
1437 struct symbol *sym;
1438 if (name == NULL)
1439 {
23136709 1440 stub_noname_complaint ();
c906108c
SS
1441 return type;
1442 }
176620f1 1443 sym = lookup_symbol (name, 0, STRUCT_DOMAIN, 0, (struct symtab **) NULL);
c906108c 1444 if (sym)
a02fd225 1445 make_cv_type (is_const, is_volatile, SYMBOL_TYPE (sym), &type);
c906108c
SS
1446 }
1447
74a9bb82 1448 if (TYPE_TARGET_STUB (type))
c906108c
SS
1449 {
1450 struct type *range_type;
1451 struct type *target_type = check_typedef (TYPE_TARGET_TYPE (type));
1452
74a9bb82 1453 if (TYPE_STUB (target_type) || TYPE_TARGET_STUB (target_type))
c5aa993b
JM
1454 {
1455 }
c906108c
SS
1456 else if (TYPE_CODE (type) == TYPE_CODE_ARRAY
1457 && TYPE_NFIELDS (type) == 1
1458 && (TYPE_CODE (range_type = TYPE_FIELD_TYPE (type, 0))
1459 == TYPE_CODE_RANGE))
1460 {
1461 /* Now recompute the length of the array type, based on its
1462 number of elements and the target type's length. */
1463 TYPE_LENGTH (type) =
1464 ((TYPE_FIELD_BITPOS (range_type, 1)
1465 - TYPE_FIELD_BITPOS (range_type, 0)
1466 + 1)
1467 * TYPE_LENGTH (target_type));
1468 TYPE_FLAGS (type) &= ~TYPE_FLAG_TARGET_STUB;
1469 }
1470 else if (TYPE_CODE (type) == TYPE_CODE_RANGE)
1471 {
1472 TYPE_LENGTH (type) = TYPE_LENGTH (target_type);
1473 TYPE_FLAGS (type) &= ~TYPE_FLAG_TARGET_STUB;
1474 }
1475 }
1476 /* Cache TYPE_LENGTH for future use. */
1477 TYPE_LENGTH (orig_type) = TYPE_LENGTH (type);
1478 return type;
1479}
1480
c91ecb25
ND
1481/* Parse a type expression in the string [P..P+LENGTH). If an error occurs,
1482 silently return builtin_type_void. */
1483
b9362cc7 1484static struct type *
c91ecb25
ND
1485safe_parse_type (char *p, int length)
1486{
1487 struct ui_file *saved_gdb_stderr;
1488 struct type *type;
1489
1490 /* Suppress error messages. */
1491 saved_gdb_stderr = gdb_stderr;
1492 gdb_stderr = ui_file_new ();
1493
1494 /* Call parse_and_eval_type() without fear of longjmp()s. */
1495 if (!gdb_parse_and_eval_type (p, length, &type))
1496 type = builtin_type_void;
1497
1498 /* Stop suppressing error messages. */
1499 ui_file_delete (gdb_stderr);
1500 gdb_stderr = saved_gdb_stderr;
1501
1502 return type;
1503}
1504
c906108c
SS
1505/* Ugly hack to convert method stubs into method types.
1506
1507 He ain't kiddin'. This demangles the name of the method into a string
1508 including argument types, parses out each argument type, generates
1509 a string casting a zero to that type, evaluates the string, and stuffs
1510 the resulting type into an argtype vector!!! Then it knows the type
1511 of the whole function (including argument types for overloading),
1512 which info used to be in the stab's but was removed to hack back
1513 the space required for them. */
1514
de17c821 1515static void
fba45db2 1516check_stub_method (struct type *type, int method_id, int signature_id)
c906108c
SS
1517{
1518 struct fn_field *f;
1519 char *mangled_name = gdb_mangle_name (type, method_id, signature_id);
1520 char *demangled_name = cplus_demangle (mangled_name,
1521 DMGL_PARAMS | DMGL_ANSI);
1522 char *argtypetext, *p;
1523 int depth = 0, argcount = 1;
ad2f7632 1524 struct field *argtypes;
c906108c
SS
1525 struct type *mtype;
1526
1527 /* Make sure we got back a function string that we can use. */
1528 if (demangled_name)
1529 p = strchr (demangled_name, '(');
502dcf4e
AC
1530 else
1531 p = NULL;
c906108c
SS
1532
1533 if (demangled_name == NULL || p == NULL)
1534 error ("Internal: Cannot demangle mangled name `%s'.", mangled_name);
1535
1536 /* Now, read in the parameters that define this type. */
1537 p += 1;
1538 argtypetext = p;
1539 while (*p)
1540 {
070ad9f0 1541 if (*p == '(' || *p == '<')
c906108c
SS
1542 {
1543 depth += 1;
1544 }
070ad9f0 1545 else if (*p == ')' || *p == '>')
c906108c
SS
1546 {
1547 depth -= 1;
1548 }
1549 else if (*p == ',' && depth == 0)
1550 {
1551 argcount += 1;
1552 }
1553
1554 p += 1;
1555 }
1556
ad2f7632
DJ
1557 /* If we read one argument and it was ``void'', don't count it. */
1558 if (strncmp (argtypetext, "(void)", 6) == 0)
1559 argcount -= 1;
c906108c 1560
ad2f7632
DJ
1561 /* We need one extra slot, for the THIS pointer. */
1562
1563 argtypes = (struct field *)
1564 TYPE_ALLOC (type, (argcount + 1) * sizeof (struct field));
c906108c 1565 p = argtypetext;
4a1970e4
DJ
1566
1567 /* Add THIS pointer for non-static methods. */
1568 f = TYPE_FN_FIELDLIST1 (type, method_id);
1569 if (TYPE_FN_FIELD_STATIC_P (f, signature_id))
1570 argcount = 0;
1571 else
1572 {
ad2f7632 1573 argtypes[0].type = lookup_pointer_type (type);
4a1970e4
DJ
1574 argcount = 1;
1575 }
c906108c 1576
c5aa993b 1577 if (*p != ')') /* () means no args, skip while */
c906108c
SS
1578 {
1579 depth = 0;
1580 while (*p)
1581 {
1582 if (depth <= 0 && (*p == ',' || *p == ')'))
1583 {
ad2f7632
DJ
1584 /* Avoid parsing of ellipsis, they will be handled below.
1585 Also avoid ``void'' as above. */
1586 if (strncmp (argtypetext, "...", p - argtypetext) != 0
1587 && strncmp (argtypetext, "void", p - argtypetext) != 0)
c906108c 1588 {
ad2f7632 1589 argtypes[argcount].type =
c91ecb25 1590 safe_parse_type (argtypetext, p - argtypetext);
c906108c
SS
1591 argcount += 1;
1592 }
1593 argtypetext = p + 1;
1594 }
1595
070ad9f0 1596 if (*p == '(' || *p == '<')
c906108c
SS
1597 {
1598 depth += 1;
1599 }
070ad9f0 1600 else if (*p == ')' || *p == '>')
c906108c
SS
1601 {
1602 depth -= 1;
1603 }
1604
1605 p += 1;
1606 }
1607 }
1608
c906108c
SS
1609 TYPE_FN_FIELD_PHYSNAME (f, signature_id) = mangled_name;
1610
1611 /* Now update the old "stub" type into a real type. */
1612 mtype = TYPE_FN_FIELD_TYPE (f, signature_id);
1613 TYPE_DOMAIN_TYPE (mtype) = type;
ad2f7632
DJ
1614 TYPE_FIELDS (mtype) = argtypes;
1615 TYPE_NFIELDS (mtype) = argcount;
c906108c
SS
1616 TYPE_FLAGS (mtype) &= ~TYPE_FLAG_STUB;
1617 TYPE_FN_FIELD_STUB (f, signature_id) = 0;
ad2f7632
DJ
1618 if (p[-2] == '.')
1619 TYPE_FLAGS (mtype) |= TYPE_FLAG_VARARGS;
1620
1621 xfree (demangled_name);
c906108c
SS
1622}
1623
de17c821
DJ
1624/* This is the external interface to check_stub_method, above. This function
1625 unstubs all of the signatures for TYPE's METHOD_ID method name. After
1626 calling this function TYPE_FN_FIELD_STUB will be cleared for each signature
1627 and TYPE_FN_FIELDLIST_NAME will be correct.
1628
1629 This function unfortunately can not die until stabs do. */
1630
1631void
1632check_stub_method_group (struct type *type, int method_id)
1633{
1634 int len = TYPE_FN_FIELDLIST_LENGTH (type, method_id);
1635 struct fn_field *f = TYPE_FN_FIELDLIST1 (type, method_id);
f710f4fc 1636 int j, found_stub = 0;
de17c821
DJ
1637
1638 for (j = 0; j < len; j++)
1639 if (TYPE_FN_FIELD_STUB (f, j))
1640 {
1641 found_stub = 1;
1642 check_stub_method (type, method_id, j);
1643 }
1644
1645 /* GNU v3 methods with incorrect names were corrected when we read in
1646 type information, because it was cheaper to do it then. The only GNU v2
1647 methods with incorrect method names are operators and destructors;
1648 destructors were also corrected when we read in type information.
1649
1650 Therefore the only thing we need to handle here are v2 operator
1651 names. */
1652 if (found_stub && strncmp (TYPE_FN_FIELD_PHYSNAME (f, 0), "_Z", 2) != 0)
1653 {
1654 int ret;
1655 char dem_opname[256];
1656
1657 ret = cplus_demangle_opname (TYPE_FN_FIELDLIST_NAME (type, method_id),
1658 dem_opname, DMGL_ANSI);
1659 if (!ret)
1660 ret = cplus_demangle_opname (TYPE_FN_FIELDLIST_NAME (type, method_id),
1661 dem_opname, 0);
1662 if (ret)
1663 TYPE_FN_FIELDLIST_NAME (type, method_id) = xstrdup (dem_opname);
1664 }
1665}
1666
c906108c
SS
1667const struct cplus_struct_type cplus_struct_default;
1668
1669void
fba45db2 1670allocate_cplus_struct_type (struct type *type)
c906108c
SS
1671{
1672 if (!HAVE_CPLUS_STRUCT (type))
1673 {
1674 TYPE_CPLUS_SPECIFIC (type) = (struct cplus_struct_type *)
1675 TYPE_ALLOC (type, sizeof (struct cplus_struct_type));
c5aa993b 1676 *(TYPE_CPLUS_SPECIFIC (type)) = cplus_struct_default;
c906108c
SS
1677 }
1678}
1679
1680/* Helper function to initialize the standard scalar types.
1681
1682 If NAME is non-NULL and OBJFILE is non-NULL, then we make a copy
b99607ea 1683 of the string pointed to by name in the objfile_obstack for that objfile,
c906108c
SS
1684 and initialize the type name to that copy. There are places (mipsread.c
1685 in particular, where init_type is called with a NULL value for NAME). */
1686
1687struct type *
fba45db2
KB
1688init_type (enum type_code code, int length, int flags, char *name,
1689 struct objfile *objfile)
c906108c 1690{
52f0bd74 1691 struct type *type;
c906108c
SS
1692
1693 type = alloc_type (objfile);
1694 TYPE_CODE (type) = code;
1695 TYPE_LENGTH (type) = length;
1696 TYPE_FLAGS (type) |= flags;
1697 if ((name != NULL) && (objfile != NULL))
1698 {
1699 TYPE_NAME (type) =
b99607ea 1700 obsavestring (name, strlen (name), &objfile->objfile_obstack);
c906108c
SS
1701 }
1702 else
1703 {
1704 TYPE_NAME (type) = name;
1705 }
1706
1707 /* C++ fancies. */
1708
973ccf8b
DJ
1709 if (name && strcmp (name, "char") == 0)
1710 TYPE_FLAGS (type) |= TYPE_FLAG_NOSIGN;
1711
5c4e30ca
DC
1712 if (code == TYPE_CODE_STRUCT || code == TYPE_CODE_UNION
1713 || code == TYPE_CODE_NAMESPACE)
c906108c
SS
1714 {
1715 INIT_CPLUS_SPECIFIC (type);
1716 }
1717 return (type);
1718}
1719
0e101458
AC
1720/* Helper function. Create an empty composite type. */
1721
1722struct type *
1723init_composite_type (char *name, enum type_code code)
1724{
1725 struct type *t;
1726 gdb_assert (code == TYPE_CODE_STRUCT
1727 || code == TYPE_CODE_UNION);
1728 t = init_type (code, 0, 0, NULL, NULL);
1729 TYPE_TAG_NAME (t) = name;
1730 return t;
1731}
1732
1733/* Helper function. Append a field to a composite type. */
1734
1735void
1736append_composite_type_field (struct type *t, char *name, struct type *field)
1737{
1738 struct field *f;
1739 TYPE_NFIELDS (t) = TYPE_NFIELDS (t) + 1;
1740 TYPE_FIELDS (t) = xrealloc (TYPE_FIELDS (t),
1741 sizeof (struct field) * TYPE_NFIELDS (t));
1742 f = &(TYPE_FIELDS (t)[TYPE_NFIELDS (t) - 1]);
1743 memset (f, 0, sizeof f[0]);
1744 FIELD_TYPE (f[0]) = field;
1745 FIELD_NAME (f[0]) = name;
1746 if (TYPE_CODE (t) == TYPE_CODE_UNION)
1747 {
73d322b1 1748 if (TYPE_LENGTH (t) < TYPE_LENGTH (field))
0e101458
AC
1749 TYPE_LENGTH (t) = TYPE_LENGTH (field);
1750 }
1751 else if (TYPE_CODE (t) == TYPE_CODE_STRUCT)
1752 {
1753 TYPE_LENGTH (t) = TYPE_LENGTH (t) + TYPE_LENGTH (field);
1754 if (TYPE_NFIELDS (t) > 1)
1755 {
1756 FIELD_BITPOS (f[0]) = (FIELD_BITPOS (f[-1])
1757 + TYPE_LENGTH (field) * TARGET_CHAR_BIT);
1758 }
1759 }
1760}
1761
c906108c
SS
1762/* Look up a fundamental type for the specified objfile.
1763 May need to construct such a type if this is the first use.
1764
1765 Some object file formats (ELF, COFF, etc) do not define fundamental
1766 types such as "int" or "double". Others (stabs for example), do
1767 define fundamental types.
1768
1769 For the formats which don't provide fundamental types, gdb can create
1770 such types, using defaults reasonable for the current language and
1771 the current target machine.
1772
1773 NOTE: This routine is obsolescent. Each debugging format reader
1774 should manage it's own fundamental types, either creating them from
1775 suitable defaults or reading them from the debugging information,
1776 whichever is appropriate. The DWARF reader has already been
1777 fixed to do this. Once the other readers are fixed, this routine
1778 will go away. Also note that fundamental types should be managed
1779 on a compilation unit basis in a multi-language environment, not
1780 on a linkage unit basis as is done here. */
1781
1782
1783struct type *
fba45db2 1784lookup_fundamental_type (struct objfile *objfile, int typeid)
c906108c 1785{
52f0bd74
AC
1786 struct type **typep;
1787 int nbytes;
c906108c
SS
1788
1789 if (typeid < 0 || typeid >= FT_NUM_MEMBERS)
1790 {
1791 error ("internal error - invalid fundamental type id %d", typeid);
1792 }
1793
1794 /* If this is the first time we need a fundamental type for this objfile
1795 then we need to initialize the vector of type pointers. */
c5aa993b
JM
1796
1797 if (objfile->fundamental_types == NULL)
c906108c
SS
1798 {
1799 nbytes = FT_NUM_MEMBERS * sizeof (struct type *);
c5aa993b 1800 objfile->fundamental_types = (struct type **)
b99607ea 1801 obstack_alloc (&objfile->objfile_obstack, nbytes);
c5aa993b 1802 memset ((char *) objfile->fundamental_types, 0, nbytes);
c906108c
SS
1803 OBJSTAT (objfile, n_types += FT_NUM_MEMBERS);
1804 }
1805
1806 /* Look for this particular type in the fundamental type vector. If one is
1807 not found, create and install one appropriate for the current language. */
1808
c5aa993b 1809 typep = objfile->fundamental_types + typeid;
c906108c
SS
1810 if (*typep == NULL)
1811 {
1812 *typep = create_fundamental_type (objfile, typeid);
1813 }
1814
1815 return (*typep);
1816}
1817
1818int
fba45db2 1819can_dereference (struct type *t)
c906108c
SS
1820{
1821 /* FIXME: Should we return true for references as well as pointers? */
1822 CHECK_TYPEDEF (t);
1823 return
1824 (t != NULL
1825 && TYPE_CODE (t) == TYPE_CODE_PTR
1826 && TYPE_CODE (TYPE_TARGET_TYPE (t)) != TYPE_CODE_VOID);
1827}
1828
adf40b2e 1829int
fba45db2 1830is_integral_type (struct type *t)
adf40b2e
JM
1831{
1832 CHECK_TYPEDEF (t);
1833 return
1834 ((t != NULL)
d4f3574e
SS
1835 && ((TYPE_CODE (t) == TYPE_CODE_INT)
1836 || (TYPE_CODE (t) == TYPE_CODE_ENUM)
1837 || (TYPE_CODE (t) == TYPE_CODE_CHAR)
1838 || (TYPE_CODE (t) == TYPE_CODE_RANGE)
1839 || (TYPE_CODE (t) == TYPE_CODE_BOOL)));
adf40b2e
JM
1840}
1841
7b83ea04 1842/* Check whether BASE is an ancestor or base class or DCLASS
c906108c
SS
1843 Return 1 if so, and 0 if not.
1844 Note: callers may want to check for identity of the types before
1845 calling this function -- identical types are considered to satisfy
1846 the ancestor relationship even if they're identical */
1847
1848int
fba45db2 1849is_ancestor (struct type *base, struct type *dclass)
c906108c
SS
1850{
1851 int i;
c5aa993b 1852
c906108c
SS
1853 CHECK_TYPEDEF (base);
1854 CHECK_TYPEDEF (dclass);
1855
1856 if (base == dclass)
1857 return 1;
6b1ba9a0
ND
1858 if (TYPE_NAME (base) && TYPE_NAME (dclass) &&
1859 !strcmp (TYPE_NAME (base), TYPE_NAME (dclass)))
1860 return 1;
c906108c
SS
1861
1862 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
1863 if (is_ancestor (base, TYPE_BASECLASS (dclass, i)))
1864 return 1;
1865
1866 return 0;
1867}
1868
1869
1870
1871/* See whether DCLASS has a virtual table. This routine is aimed at
1872 the HP/Taligent ANSI C++ runtime model, and may not work with other
1873 runtime models. Return 1 => Yes, 0 => No. */
1874
1875int
fba45db2 1876has_vtable (struct type *dclass)
c906108c
SS
1877{
1878 /* In the HP ANSI C++ runtime model, a class has a vtable only if it
1879 has virtual functions or virtual bases. */
1880
52f0bd74 1881 int i;
c906108c 1882
c5aa993b 1883 if (TYPE_CODE (dclass) != TYPE_CODE_CLASS)
c906108c 1884 return 0;
c5aa993b 1885
c906108c 1886 /* First check for the presence of virtual bases */
c5aa993b
JM
1887 if (TYPE_FIELD_VIRTUAL_BITS (dclass))
1888 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
1889 if (B_TST (TYPE_FIELD_VIRTUAL_BITS (dclass), i))
1890 return 1;
1891
c906108c 1892 /* Next check for virtual functions */
c5aa993b
JM
1893 if (TYPE_FN_FIELDLISTS (dclass))
1894 for (i = 0; i < TYPE_NFN_FIELDS (dclass); i++)
1895 if (TYPE_FN_FIELD_VIRTUAL_P (TYPE_FN_FIELDLIST1 (dclass, i), 0))
c906108c 1896 return 1;
c5aa993b
JM
1897
1898 /* Recurse on non-virtual bases to see if any of them needs a vtable */
1899 if (TYPE_FIELD_VIRTUAL_BITS (dclass))
1900 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
1901 if ((!B_TST (TYPE_FIELD_VIRTUAL_BITS (dclass), i)) &&
1902 (has_vtable (TYPE_FIELD_TYPE (dclass, i))))
1903 return 1;
1904
1905 /* Well, maybe we don't need a virtual table */
c906108c
SS
1906 return 0;
1907}
1908
1909/* Return a pointer to the "primary base class" of DCLASS.
c5aa993b 1910
c906108c
SS
1911 A NULL return indicates that DCLASS has no primary base, or that it
1912 couldn't be found (insufficient information).
c5aa993b 1913
c906108c
SS
1914 This routine is aimed at the HP/Taligent ANSI C++ runtime model,
1915 and may not work with other runtime models. */
1916
1917struct type *
fba45db2 1918primary_base_class (struct type *dclass)
c906108c
SS
1919{
1920 /* In HP ANSI C++'s runtime model, a "primary base class" of a class
1921 is the first directly inherited, non-virtual base class that
1922 requires a virtual table */
1923
52f0bd74 1924 int i;
c906108c 1925
c5aa993b 1926 if (TYPE_CODE (dclass) != TYPE_CODE_CLASS)
c906108c
SS
1927 return NULL;
1928
c5aa993b
JM
1929 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
1930 if (!TYPE_FIELD_VIRTUAL (dclass, i) &&
1931 has_vtable (TYPE_FIELD_TYPE (dclass, i)))
1932 return TYPE_FIELD_TYPE (dclass, i);
c906108c
SS
1933
1934 return NULL;
1935}
1936
1937/* Global manipulated by virtual_base_list[_aux]() */
1938
c5aa993b 1939static struct vbase *current_vbase_list = NULL;
c906108c
SS
1940
1941/* Return a pointer to a null-terminated list of struct vbase
1942 items. The vbasetype pointer of each item in the list points to the
1943 type information for a virtual base of the argument DCLASS.
c5aa993b 1944
7b83ea04 1945 Helper function for virtual_base_list().
c906108c
SS
1946 Note: the list goes backward, right-to-left. virtual_base_list()
1947 copies the items out in reverse order. */
1948
7a292a7a 1949static void
fba45db2 1950virtual_base_list_aux (struct type *dclass)
c906108c 1951{
c5aa993b 1952 struct vbase *tmp_vbase;
52f0bd74 1953 int i;
c906108c 1954
c5aa993b 1955 if (TYPE_CODE (dclass) != TYPE_CODE_CLASS)
7a292a7a 1956 return;
c906108c
SS
1957
1958 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
1959 {
1960 /* Recurse on this ancestor, first */
c5aa993b 1961 virtual_base_list_aux (TYPE_FIELD_TYPE (dclass, i));
c906108c
SS
1962
1963 /* If this current base is itself virtual, add it to the list */
c5aa993b
JM
1964 if (BASETYPE_VIA_VIRTUAL (dclass, i))
1965 {
1966 struct type *basetype = TYPE_FIELD_TYPE (dclass, i);
1967
1968 /* Check if base already recorded */
1969 tmp_vbase = current_vbase_list;
1970 while (tmp_vbase)
1971 {
1972 if (tmp_vbase->vbasetype == basetype)
1973 break; /* found it */
1974 tmp_vbase = tmp_vbase->next;
1975 }
1976
1977 if (!tmp_vbase) /* normal exit from loop */
1978 {
1979 /* Allocate new item for this virtual base */
1980 tmp_vbase = (struct vbase *) xmalloc (sizeof (struct vbase));
1981
1982 /* Stick it on at the end of the list */
1983 tmp_vbase->vbasetype = basetype;
1984 tmp_vbase->next = current_vbase_list;
1985 current_vbase_list = tmp_vbase;
1986 }
1987 } /* if virtual */
1988 } /* for loop over bases */
c906108c
SS
1989}
1990
1991
1992/* Compute the list of virtual bases in the right order. Virtual
1993 bases are laid out in the object's memory area in order of their
1994 occurrence in a depth-first, left-to-right search through the
1995 ancestors.
c5aa993b 1996
c906108c
SS
1997 Argument DCLASS is the type whose virtual bases are required.
1998 Return value is the address of a null-terminated array of pointers
1999 to struct type items.
c5aa993b 2000
c906108c
SS
2001 This routine is aimed at the HP/Taligent ANSI C++ runtime model,
2002 and may not work with other runtime models.
c5aa993b 2003
c906108c
SS
2004 This routine merely hands off the argument to virtual_base_list_aux()
2005 and then copies the result into an array to save space. */
2006
2007struct type **
fba45db2 2008virtual_base_list (struct type *dclass)
c906108c 2009{
52f0bd74
AC
2010 struct vbase *tmp_vbase;
2011 struct vbase *tmp_vbase_2;
2012 int i;
c906108c 2013 int count;
c5aa993b 2014 struct type **vbase_array;
c906108c
SS
2015
2016 current_vbase_list = NULL;
c5aa993b 2017 virtual_base_list_aux (dclass);
c906108c 2018
c5aa993b 2019 for (i = 0, tmp_vbase = current_vbase_list; tmp_vbase != NULL; i++, tmp_vbase = tmp_vbase->next)
c906108c
SS
2020 /* no body */ ;
2021
2022 count = i;
2023
c5aa993b 2024 vbase_array = (struct type **) xmalloc ((count + 1) * sizeof (struct type *));
c906108c 2025
c5aa993b 2026 for (i = count - 1, tmp_vbase = current_vbase_list; i >= 0; i--, tmp_vbase = tmp_vbase->next)
c906108c
SS
2027 vbase_array[i] = tmp_vbase->vbasetype;
2028
2029 /* Get rid of constructed chain */
2030 tmp_vbase_2 = tmp_vbase = current_vbase_list;
2031 while (tmp_vbase)
2032 {
2033 tmp_vbase = tmp_vbase->next;
b8c9b27d 2034 xfree (tmp_vbase_2);
c906108c
SS
2035 tmp_vbase_2 = tmp_vbase;
2036 }
c5aa993b 2037
c906108c
SS
2038 vbase_array[count] = NULL;
2039 return vbase_array;
2040}
2041
2042/* Return the length of the virtual base list of the type DCLASS. */
2043
2044int
fba45db2 2045virtual_base_list_length (struct type *dclass)
c906108c 2046{
52f0bd74
AC
2047 int i;
2048 struct vbase *tmp_vbase;
c5aa993b 2049
c906108c 2050 current_vbase_list = NULL;
c5aa993b 2051 virtual_base_list_aux (dclass);
c906108c 2052
c5aa993b 2053 for (i = 0, tmp_vbase = current_vbase_list; tmp_vbase != NULL; i++, tmp_vbase = tmp_vbase->next)
c906108c
SS
2054 /* no body */ ;
2055 return i;
2056}
2057
2058/* Return the number of elements of the virtual base list of the type
2059 DCLASS, ignoring those appearing in the primary base (and its
2060 primary base, recursively). */
2061
2062int
fba45db2 2063virtual_base_list_length_skip_primaries (struct type *dclass)
c906108c 2064{
52f0bd74
AC
2065 int i;
2066 struct vbase *tmp_vbase;
c5aa993b 2067 struct type *primary;
c906108c
SS
2068
2069 primary = TYPE_RUNTIME_PTR (dclass) ? TYPE_PRIMARY_BASE (dclass) : NULL;
2070
2071 if (!primary)
2072 return virtual_base_list_length (dclass);
2073
2074 current_vbase_list = NULL;
c5aa993b 2075 virtual_base_list_aux (dclass);
c906108c 2076
c5aa993b 2077 for (i = 0, tmp_vbase = current_vbase_list; tmp_vbase != NULL; tmp_vbase = tmp_vbase->next)
c906108c
SS
2078 {
2079 if (virtual_base_index (tmp_vbase->vbasetype, primary) >= 0)
c5aa993b 2080 continue;
c906108c
SS
2081 i++;
2082 }
2083 return i;
2084}
2085
2086
2087/* Return the index (position) of type BASE, which is a virtual base
2088 class of DCLASS, in the latter's virtual base list. A return of -1
2089 indicates "not found" or a problem. */
2090
2091int
fba45db2 2092virtual_base_index (struct type *base, struct type *dclass)
c906108c 2093{
52f0bd74
AC
2094 struct type *vbase;
2095 int i;
c906108c 2096
c5aa993b
JM
2097 if ((TYPE_CODE (dclass) != TYPE_CODE_CLASS) ||
2098 (TYPE_CODE (base) != TYPE_CODE_CLASS))
c906108c
SS
2099 return -1;
2100
2101 i = 0;
015a42b4 2102 vbase = virtual_base_list (dclass)[0];
c906108c
SS
2103 while (vbase)
2104 {
2105 if (vbase == base)
c5aa993b 2106 break;
015a42b4 2107 vbase = virtual_base_list (dclass)[++i];
c906108c
SS
2108 }
2109
2110 return vbase ? i : -1;
2111}
2112
2113
2114
2115/* Return the index (position) of type BASE, which is a virtual base
2116 class of DCLASS, in the latter's virtual base list. Skip over all
2117 bases that may appear in the virtual base list of the primary base
2118 class of DCLASS (recursively). A return of -1 indicates "not
2119 found" or a problem. */
2120
2121int
fba45db2 2122virtual_base_index_skip_primaries (struct type *base, struct type *dclass)
c906108c 2123{
52f0bd74
AC
2124 struct type *vbase;
2125 int i, j;
c5aa993b 2126 struct type *primary;
c906108c 2127
c5aa993b
JM
2128 if ((TYPE_CODE (dclass) != TYPE_CODE_CLASS) ||
2129 (TYPE_CODE (base) != TYPE_CODE_CLASS))
c906108c
SS
2130 return -1;
2131
c5aa993b 2132 primary = TYPE_RUNTIME_PTR (dclass) ? TYPE_PRIMARY_BASE (dclass) : NULL;
c906108c
SS
2133
2134 j = -1;
2135 i = 0;
015a42b4 2136 vbase = virtual_base_list (dclass)[0];
c906108c
SS
2137 while (vbase)
2138 {
c5aa993b
JM
2139 if (!primary || (virtual_base_index_skip_primaries (vbase, primary) < 0))
2140 j++;
c906108c 2141 if (vbase == base)
c5aa993b 2142 break;
015a42b4 2143 vbase = virtual_base_list (dclass)[++i];
c906108c
SS
2144 }
2145
2146 return vbase ? j : -1;
2147}
2148
2149/* Return position of a derived class DCLASS in the list of
2150 * primary bases starting with the remotest ancestor.
2151 * Position returned is 0-based. */
2152
2153int
fba45db2 2154class_index_in_primary_list (struct type *dclass)
c906108c 2155{
c5aa993b 2156 struct type *pbc; /* primary base class */
c906108c 2157
c5aa993b 2158 /* Simply recurse on primary base */
c906108c
SS
2159 pbc = TYPE_PRIMARY_BASE (dclass);
2160 if (pbc)
2161 return 1 + class_index_in_primary_list (pbc);
2162 else
2163 return 0;
2164}
2165
2166/* Return a count of the number of virtual functions a type has.
2167 * This includes all the virtual functions it inherits from its
2168 * base classes too.
2169 */
2170
2171/* pai: FIXME This doesn't do the right thing: count redefined virtual
2172 * functions only once (latest redefinition)
2173 */
2174
2175int
fba45db2 2176count_virtual_fns (struct type *dclass)
c906108c 2177{
c5aa993b 2178 int fn, oi; /* function and overloaded instance indices */
c5aa993b
JM
2179 int vfuncs; /* count to return */
2180
2181 /* recurse on bases that can share virtual table */
2182 struct type *pbc = primary_base_class (dclass);
c906108c
SS
2183 if (pbc)
2184 vfuncs = count_virtual_fns (pbc);
7f7e9482
AC
2185 else
2186 vfuncs = 0;
c5aa993b 2187
c906108c
SS
2188 for (fn = 0; fn < TYPE_NFN_FIELDS (dclass); fn++)
2189 for (oi = 0; oi < TYPE_FN_FIELDLIST_LENGTH (dclass, fn); oi++)
2190 if (TYPE_FN_FIELD_VIRTUAL_P (TYPE_FN_FIELDLIST1 (dclass, fn), oi))
c5aa993b 2191 vfuncs++;
c906108c
SS
2192
2193 return vfuncs;
2194}
c906108c
SS
2195\f
2196
c5aa993b 2197
c906108c
SS
2198/* Functions for overload resolution begin here */
2199
2200/* Compare two badness vectors A and B and return the result.
2201 * 0 => A and B are identical
2202 * 1 => A and B are incomparable
2203 * 2 => A is better than B
2204 * 3 => A is worse than B */
2205
2206int
fba45db2 2207compare_badness (struct badness_vector *a, struct badness_vector *b)
c906108c
SS
2208{
2209 int i;
2210 int tmp;
c5aa993b
JM
2211 short found_pos = 0; /* any positives in c? */
2212 short found_neg = 0; /* any negatives in c? */
2213
2214 /* differing lengths => incomparable */
c906108c
SS
2215 if (a->length != b->length)
2216 return 1;
2217
c5aa993b
JM
2218 /* Subtract b from a */
2219 for (i = 0; i < a->length; i++)
c906108c
SS
2220 {
2221 tmp = a->rank[i] - b->rank[i];
2222 if (tmp > 0)
c5aa993b 2223 found_pos = 1;
c906108c 2224 else if (tmp < 0)
c5aa993b 2225 found_neg = 1;
c906108c
SS
2226 }
2227
2228 if (found_pos)
2229 {
2230 if (found_neg)
c5aa993b 2231 return 1; /* incomparable */
c906108c 2232 else
c5aa993b 2233 return 3; /* A > B */
c906108c 2234 }
c5aa993b
JM
2235 else
2236 /* no positives */
c906108c
SS
2237 {
2238 if (found_neg)
c5aa993b 2239 return 2; /* A < B */
c906108c 2240 else
c5aa993b 2241 return 0; /* A == B */
c906108c
SS
2242 }
2243}
2244
2245/* Rank a function by comparing its parameter types (PARMS, length NPARMS),
2246 * to the types of an argument list (ARGS, length NARGS).
2247 * Return a pointer to a badness vector. This has NARGS + 1 entries. */
2248
2249struct badness_vector *
fba45db2 2250rank_function (struct type **parms, int nparms, struct type **args, int nargs)
c906108c
SS
2251{
2252 int i;
c5aa993b 2253 struct badness_vector *bv;
c906108c
SS
2254 int min_len = nparms < nargs ? nparms : nargs;
2255
2256 bv = xmalloc (sizeof (struct badness_vector));
c5aa993b 2257 bv->length = nargs + 1; /* add 1 for the length-match rank */
c906108c
SS
2258 bv->rank = xmalloc ((nargs + 1) * sizeof (int));
2259
2260 /* First compare the lengths of the supplied lists.
2261 * If there is a mismatch, set it to a high value. */
c5aa993b 2262
c906108c
SS
2263 /* pai/1997-06-03 FIXME: when we have debug info about default
2264 * arguments and ellipsis parameter lists, we should consider those
2265 * and rank the length-match more finely. */
2266
2267 LENGTH_MATCH (bv) = (nargs != nparms) ? LENGTH_MISMATCH_BADNESS : 0;
2268
2269 /* Now rank all the parameters of the candidate function */
74cc24b0
DB
2270 for (i = 1; i <= min_len; i++)
2271 bv->rank[i] = rank_one_type (parms[i-1], args[i-1]);
c906108c 2272
c5aa993b
JM
2273 /* If more arguments than parameters, add dummy entries */
2274 for (i = min_len + 1; i <= nargs; i++)
c906108c
SS
2275 bv->rank[i] = TOO_FEW_PARAMS_BADNESS;
2276
2277 return bv;
2278}
2279
973ccf8b
DJ
2280/* Compare the names of two integer types, assuming that any sign
2281 qualifiers have been checked already. We do it this way because
2282 there may be an "int" in the name of one of the types. */
2283
2284static int
2285integer_types_same_name_p (const char *first, const char *second)
2286{
2287 int first_p, second_p;
2288
2289 /* If both are shorts, return 1; if neither is a short, keep checking. */
2290 first_p = (strstr (first, "short") != NULL);
2291 second_p = (strstr (second, "short") != NULL);
2292 if (first_p && second_p)
2293 return 1;
2294 if (first_p || second_p)
2295 return 0;
2296
2297 /* Likewise for long. */
2298 first_p = (strstr (first, "long") != NULL);
2299 second_p = (strstr (second, "long") != NULL);
2300 if (first_p && second_p)
2301 return 1;
2302 if (first_p || second_p)
2303 return 0;
2304
2305 /* Likewise for char. */
2306 first_p = (strstr (first, "char") != NULL);
2307 second_p = (strstr (second, "char") != NULL);
2308 if (first_p && second_p)
2309 return 1;
2310 if (first_p || second_p)
2311 return 0;
2312
2313 /* They must both be ints. */
2314 return 1;
2315}
2316
c906108c
SS
2317/* Compare one type (PARM) for compatibility with another (ARG).
2318 * PARM is intended to be the parameter type of a function; and
2319 * ARG is the supplied argument's type. This function tests if
2320 * the latter can be converted to the former.
2321 *
2322 * Return 0 if they are identical types;
2323 * Otherwise, return an integer which corresponds to how compatible
2324 * PARM is to ARG. The higher the return value, the worse the match.
2325 * Generally the "bad" conversions are all uniformly assigned a 100 */
2326
2327int
fba45db2 2328rank_one_type (struct type *parm, struct type *arg)
c906108c
SS
2329{
2330 /* Identical type pointers */
2331 /* However, this still doesn't catch all cases of same type for arg
2332 * and param. The reason is that builtin types are different from
2333 * the same ones constructed from the object. */
2334 if (parm == arg)
2335 return 0;
2336
2337 /* Resolve typedefs */
2338 if (TYPE_CODE (parm) == TYPE_CODE_TYPEDEF)
2339 parm = check_typedef (parm);
2340 if (TYPE_CODE (arg) == TYPE_CODE_TYPEDEF)
2341 arg = check_typedef (arg);
2342
070ad9f0
DB
2343 /*
2344 Well, damnit, if the names are exactly the same,
2345 i'll say they are exactly the same. This happens when we generate
2346 method stubs. The types won't point to the same address, but they
2347 really are the same.
2348 */
2349
6b1ba9a0
ND
2350 if (TYPE_NAME (parm) && TYPE_NAME (arg) &&
2351 !strcmp (TYPE_NAME (parm), TYPE_NAME (arg)))
070ad9f0
DB
2352 return 0;
2353
c906108c
SS
2354 /* Check if identical after resolving typedefs */
2355 if (parm == arg)
2356 return 0;
2357
db577aea
AC
2358 /* See through references, since we can almost make non-references
2359 references. */
2360 if (TYPE_CODE (arg) == TYPE_CODE_REF)
6b1ba9a0 2361 return (rank_one_type (parm, TYPE_TARGET_TYPE (arg))
db577aea
AC
2362 + REFERENCE_CONVERSION_BADNESS);
2363 if (TYPE_CODE (parm) == TYPE_CODE_REF)
6b1ba9a0 2364 return (rank_one_type (TYPE_TARGET_TYPE (parm), arg)
db577aea 2365 + REFERENCE_CONVERSION_BADNESS);
5d161b24 2366 if (overload_debug)
db577aea 2367 /* Debugging only. */
5d161b24
DB
2368 fprintf_filtered (gdb_stderr,"------ Arg is %s [%d], parm is %s [%d]\n",
2369 TYPE_NAME (arg), TYPE_CODE (arg), TYPE_NAME (parm), TYPE_CODE (parm));
c906108c
SS
2370
2371 /* x -> y means arg of type x being supplied for parameter of type y */
2372
2373 switch (TYPE_CODE (parm))
2374 {
c5aa993b
JM
2375 case TYPE_CODE_PTR:
2376 switch (TYPE_CODE (arg))
2377 {
2378 case TYPE_CODE_PTR:
2379 if (TYPE_CODE (TYPE_TARGET_TYPE (parm)) == TYPE_CODE_VOID)
2380 return VOID_PTR_CONVERSION_BADNESS;
2381 else
2382 return rank_one_type (TYPE_TARGET_TYPE (parm), TYPE_TARGET_TYPE (arg));
2383 case TYPE_CODE_ARRAY:
2384 return rank_one_type (TYPE_TARGET_TYPE (parm), TYPE_TARGET_TYPE (arg));
2385 case TYPE_CODE_FUNC:
2386 return rank_one_type (TYPE_TARGET_TYPE (parm), arg);
2387 case TYPE_CODE_INT:
2388 case TYPE_CODE_ENUM:
2389 case TYPE_CODE_CHAR:
2390 case TYPE_CODE_RANGE:
2391 case TYPE_CODE_BOOL:
2392 return POINTER_CONVERSION_BADNESS;
2393 default:
2394 return INCOMPATIBLE_TYPE_BADNESS;
2395 }
2396 case TYPE_CODE_ARRAY:
2397 switch (TYPE_CODE (arg))
2398 {
2399 case TYPE_CODE_PTR:
2400 case TYPE_CODE_ARRAY:
2401 return rank_one_type (TYPE_TARGET_TYPE (parm), TYPE_TARGET_TYPE (arg));
2402 default:
2403 return INCOMPATIBLE_TYPE_BADNESS;
2404 }
2405 case TYPE_CODE_FUNC:
2406 switch (TYPE_CODE (arg))
2407 {
2408 case TYPE_CODE_PTR: /* funcptr -> func */
2409 return rank_one_type (parm, TYPE_TARGET_TYPE (arg));
2410 default:
2411 return INCOMPATIBLE_TYPE_BADNESS;
2412 }
2413 case TYPE_CODE_INT:
2414 switch (TYPE_CODE (arg))
2415 {
2416 case TYPE_CODE_INT:
2417 if (TYPE_LENGTH (arg) == TYPE_LENGTH (parm))
2418 {
2419 /* Deal with signed, unsigned, and plain chars and
7b83ea04 2420 signed and unsigned ints */
c5aa993b
JM
2421 if (TYPE_NOSIGN (parm))
2422 {
2423 /* This case only for character types */
2424 if (TYPE_NOSIGN (arg)) /* plain char -> plain char */
2425 return 0;
2426 else
1c5cb38e 2427 return INTEGER_CONVERSION_BADNESS; /* signed/unsigned char -> plain char */
c5aa993b
JM
2428 }
2429 else if (TYPE_UNSIGNED (parm))
2430 {
2431 if (TYPE_UNSIGNED (arg))
2432 {
973ccf8b
DJ
2433 /* unsigned int -> unsigned int, or unsigned long -> unsigned long */
2434 if (integer_types_same_name_p (TYPE_NAME (parm), TYPE_NAME (arg)))
2435 return 0;
2436 else if (integer_types_same_name_p (TYPE_NAME (arg), "int")
2437 && integer_types_same_name_p (TYPE_NAME (parm), "long"))
c5aa993b
JM
2438 return INTEGER_PROMOTION_BADNESS; /* unsigned int -> unsigned long */
2439 else
1c5cb38e 2440 return INTEGER_CONVERSION_BADNESS; /* unsigned long -> unsigned int */
c5aa993b
JM
2441 }
2442 else
2443 {
973ccf8b
DJ
2444 if (integer_types_same_name_p (TYPE_NAME (arg), "long")
2445 && integer_types_same_name_p (TYPE_NAME (parm), "int"))
1c5cb38e 2446 return INTEGER_CONVERSION_BADNESS; /* signed long -> unsigned int */
c5aa993b
JM
2447 else
2448 return INTEGER_CONVERSION_BADNESS; /* signed int/long -> unsigned int/long */
2449 }
2450 }
2451 else if (!TYPE_NOSIGN (arg) && !TYPE_UNSIGNED (arg))
2452 {
973ccf8b 2453 if (integer_types_same_name_p (TYPE_NAME (parm), TYPE_NAME (arg)))
c5aa993b 2454 return 0;
973ccf8b
DJ
2455 else if (integer_types_same_name_p (TYPE_NAME (arg), "int")
2456 && integer_types_same_name_p (TYPE_NAME (parm), "long"))
c5aa993b
JM
2457 return INTEGER_PROMOTION_BADNESS;
2458 else
1c5cb38e 2459 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2460 }
2461 else
1c5cb38e 2462 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2463 }
2464 else if (TYPE_LENGTH (arg) < TYPE_LENGTH (parm))
2465 return INTEGER_PROMOTION_BADNESS;
2466 else
1c5cb38e 2467 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2468 case TYPE_CODE_ENUM:
2469 case TYPE_CODE_CHAR:
2470 case TYPE_CODE_RANGE:
2471 case TYPE_CODE_BOOL:
2472 return INTEGER_PROMOTION_BADNESS;
2473 case TYPE_CODE_FLT:
2474 return INT_FLOAT_CONVERSION_BADNESS;
2475 case TYPE_CODE_PTR:
2476 return NS_POINTER_CONVERSION_BADNESS;
2477 default:
2478 return INCOMPATIBLE_TYPE_BADNESS;
2479 }
2480 break;
2481 case TYPE_CODE_ENUM:
2482 switch (TYPE_CODE (arg))
2483 {
2484 case TYPE_CODE_INT:
2485 case TYPE_CODE_CHAR:
2486 case TYPE_CODE_RANGE:
2487 case TYPE_CODE_BOOL:
2488 case TYPE_CODE_ENUM:
1c5cb38e 2489 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2490 case TYPE_CODE_FLT:
2491 return INT_FLOAT_CONVERSION_BADNESS;
2492 default:
2493 return INCOMPATIBLE_TYPE_BADNESS;
2494 }
2495 break;
2496 case TYPE_CODE_CHAR:
2497 switch (TYPE_CODE (arg))
2498 {
2499 case TYPE_CODE_RANGE:
2500 case TYPE_CODE_BOOL:
2501 case TYPE_CODE_ENUM:
1c5cb38e 2502 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2503 case TYPE_CODE_FLT:
2504 return INT_FLOAT_CONVERSION_BADNESS;
2505 case TYPE_CODE_INT:
2506 if (TYPE_LENGTH (arg) > TYPE_LENGTH (parm))
1c5cb38e 2507 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2508 else if (TYPE_LENGTH (arg) < TYPE_LENGTH (parm))
2509 return INTEGER_PROMOTION_BADNESS;
2510 /* >>> !! else fall through !! <<< */
2511 case TYPE_CODE_CHAR:
2512 /* Deal with signed, unsigned, and plain chars for C++
2513 and with int cases falling through from previous case */
2514 if (TYPE_NOSIGN (parm))
2515 {
2516 if (TYPE_NOSIGN (arg))
2517 return 0;
2518 else
1c5cb38e 2519 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2520 }
2521 else if (TYPE_UNSIGNED (parm))
2522 {
2523 if (TYPE_UNSIGNED (arg))
2524 return 0;
2525 else
2526 return INTEGER_PROMOTION_BADNESS;
2527 }
2528 else if (!TYPE_NOSIGN (arg) && !TYPE_UNSIGNED (arg))
2529 return 0;
2530 else
1c5cb38e 2531 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2532 default:
2533 return INCOMPATIBLE_TYPE_BADNESS;
2534 }
2535 break;
2536 case TYPE_CODE_RANGE:
2537 switch (TYPE_CODE (arg))
2538 {
2539 case TYPE_CODE_INT:
2540 case TYPE_CODE_CHAR:
2541 case TYPE_CODE_RANGE:
2542 case TYPE_CODE_BOOL:
2543 case TYPE_CODE_ENUM:
1c5cb38e 2544 return INTEGER_CONVERSION_BADNESS;
c5aa993b
JM
2545 case TYPE_CODE_FLT:
2546 return INT_FLOAT_CONVERSION_BADNESS;
2547 default:
2548 return INCOMPATIBLE_TYPE_BADNESS;
2549 }
2550 break;
2551 case TYPE_CODE_BOOL:
2552 switch (TYPE_CODE (arg))
2553 {
2554 case TYPE_CODE_INT:
2555 case TYPE_CODE_CHAR:
2556 case TYPE_CODE_RANGE:
2557 case TYPE_CODE_ENUM:
2558 case TYPE_CODE_FLT:
2559 case TYPE_CODE_PTR:
2560 return BOOLEAN_CONVERSION_BADNESS;
2561 case TYPE_CODE_BOOL:
2562 return 0;
2563 default:
2564 return INCOMPATIBLE_TYPE_BADNESS;
2565 }
2566 break;
2567 case TYPE_CODE_FLT:
2568 switch (TYPE_CODE (arg))
2569 {
2570 case TYPE_CODE_FLT:
2571 if (TYPE_LENGTH (arg) < TYPE_LENGTH (parm))
2572 return FLOAT_PROMOTION_BADNESS;
2573 else if (TYPE_LENGTH (arg) == TYPE_LENGTH (parm))
2574 return 0;
2575 else
2576 return FLOAT_CONVERSION_BADNESS;
2577 case TYPE_CODE_INT:
2578 case TYPE_CODE_BOOL:
2579 case TYPE_CODE_ENUM:
2580 case TYPE_CODE_RANGE:
2581 case TYPE_CODE_CHAR:
2582 return INT_FLOAT_CONVERSION_BADNESS;
2583 default:
2584 return INCOMPATIBLE_TYPE_BADNESS;
2585 }
2586 break;
2587 case TYPE_CODE_COMPLEX:
2588 switch (TYPE_CODE (arg))
2589 { /* Strictly not needed for C++, but... */
2590 case TYPE_CODE_FLT:
2591 return FLOAT_PROMOTION_BADNESS;
2592 case TYPE_CODE_COMPLEX:
2593 return 0;
2594 default:
2595 return INCOMPATIBLE_TYPE_BADNESS;
2596 }
2597 break;
2598 case TYPE_CODE_STRUCT:
c906108c 2599 /* currently same as TYPE_CODE_CLASS */
c5aa993b
JM
2600 switch (TYPE_CODE (arg))
2601 {
2602 case TYPE_CODE_STRUCT:
2603 /* Check for derivation */
2604 if (is_ancestor (parm, arg))
2605 return BASE_CONVERSION_BADNESS;
2606 /* else fall through */
2607 default:
2608 return INCOMPATIBLE_TYPE_BADNESS;
2609 }
2610 break;
2611 case TYPE_CODE_UNION:
2612 switch (TYPE_CODE (arg))
2613 {
2614 case TYPE_CODE_UNION:
2615 default:
2616 return INCOMPATIBLE_TYPE_BADNESS;
2617 }
2618 break;
2619 case TYPE_CODE_MEMBER:
2620 switch (TYPE_CODE (arg))
2621 {
2622 default:
2623 return INCOMPATIBLE_TYPE_BADNESS;
2624 }
2625 break;
2626 case TYPE_CODE_METHOD:
2627 switch (TYPE_CODE (arg))
2628 {
2629
2630 default:
2631 return INCOMPATIBLE_TYPE_BADNESS;
2632 }
2633 break;
2634 case TYPE_CODE_REF:
2635 switch (TYPE_CODE (arg))
2636 {
2637
2638 default:
2639 return INCOMPATIBLE_TYPE_BADNESS;
2640 }
2641
2642 break;
2643 case TYPE_CODE_SET:
2644 switch (TYPE_CODE (arg))
2645 {
2646 /* Not in C++ */
2647 case TYPE_CODE_SET:
2648 return rank_one_type (TYPE_FIELD_TYPE (parm, 0), TYPE_FIELD_TYPE (arg, 0));
2649 default:
2650 return INCOMPATIBLE_TYPE_BADNESS;
2651 }
2652 break;
2653 case TYPE_CODE_VOID:
2654 default:
2655 return INCOMPATIBLE_TYPE_BADNESS;
2656 } /* switch (TYPE_CODE (arg)) */
c906108c
SS
2657}
2658
c5aa993b
JM
2659
2660/* End of functions for overload resolution */
c906108c 2661
c906108c 2662static void
fba45db2 2663print_bit_vector (B_TYPE *bits, int nbits)
c906108c
SS
2664{
2665 int bitno;
2666
2667 for (bitno = 0; bitno < nbits; bitno++)
2668 {
2669 if ((bitno % 8) == 0)
2670 {
2671 puts_filtered (" ");
2672 }
2673 if (B_TST (bits, bitno))
2674 {
2675 printf_filtered ("1");
2676 }
2677 else
2678 {
2679 printf_filtered ("0");
2680 }
2681 }
2682}
2683
ad2f7632
DJ
2684/* Note the first arg should be the "this" pointer, we may not want to
2685 include it since we may get into a infinitely recursive situation. */
c906108c
SS
2686
2687static void
ad2f7632 2688print_arg_types (struct field *args, int nargs, int spaces)
c906108c
SS
2689{
2690 if (args != NULL)
2691 {
ad2f7632
DJ
2692 int i;
2693
2694 for (i = 0; i < nargs; i++)
2695 recursive_dump_type (args[i].type, spaces + 2);
c906108c
SS
2696 }
2697}
2698
2699static void
fba45db2 2700dump_fn_fieldlists (struct type *type, int spaces)
c906108c
SS
2701{
2702 int method_idx;
2703 int overload_idx;
2704 struct fn_field *f;
2705
2706 printfi_filtered (spaces, "fn_fieldlists ");
d4f3574e 2707 gdb_print_host_address (TYPE_FN_FIELDLISTS (type), gdb_stdout);
c906108c
SS
2708 printf_filtered ("\n");
2709 for (method_idx = 0; method_idx < TYPE_NFN_FIELDS (type); method_idx++)
2710 {
2711 f = TYPE_FN_FIELDLIST1 (type, method_idx);
2712 printfi_filtered (spaces + 2, "[%d] name '%s' (",
2713 method_idx,
2714 TYPE_FN_FIELDLIST_NAME (type, method_idx));
d4f3574e
SS
2715 gdb_print_host_address (TYPE_FN_FIELDLIST_NAME (type, method_idx),
2716 gdb_stdout);
c906108c
SS
2717 printf_filtered (") length %d\n",
2718 TYPE_FN_FIELDLIST_LENGTH (type, method_idx));
2719 for (overload_idx = 0;
2720 overload_idx < TYPE_FN_FIELDLIST_LENGTH (type, method_idx);
2721 overload_idx++)
2722 {
2723 printfi_filtered (spaces + 4, "[%d] physname '%s' (",
2724 overload_idx,
2725 TYPE_FN_FIELD_PHYSNAME (f, overload_idx));
d4f3574e
SS
2726 gdb_print_host_address (TYPE_FN_FIELD_PHYSNAME (f, overload_idx),
2727 gdb_stdout);
c906108c
SS
2728 printf_filtered (")\n");
2729 printfi_filtered (spaces + 8, "type ");
d4f3574e 2730 gdb_print_host_address (TYPE_FN_FIELD_TYPE (f, overload_idx), gdb_stdout);
c906108c
SS
2731 printf_filtered ("\n");
2732
2733 recursive_dump_type (TYPE_FN_FIELD_TYPE (f, overload_idx),
2734 spaces + 8 + 2);
2735
2736 printfi_filtered (spaces + 8, "args ");
d4f3574e 2737 gdb_print_host_address (TYPE_FN_FIELD_ARGS (f, overload_idx), gdb_stdout);
c906108c
SS
2738 printf_filtered ("\n");
2739
ad2f7632
DJ
2740 print_arg_types (TYPE_FN_FIELD_ARGS (f, overload_idx),
2741 TYPE_NFIELDS (TYPE_FN_FIELD_TYPE (f, overload_idx)),
2742 spaces);
c906108c 2743 printfi_filtered (spaces + 8, "fcontext ");
d4f3574e
SS
2744 gdb_print_host_address (TYPE_FN_FIELD_FCONTEXT (f, overload_idx),
2745 gdb_stdout);
c906108c
SS
2746 printf_filtered ("\n");
2747
2748 printfi_filtered (spaces + 8, "is_const %d\n",
2749 TYPE_FN_FIELD_CONST (f, overload_idx));
2750 printfi_filtered (spaces + 8, "is_volatile %d\n",
2751 TYPE_FN_FIELD_VOLATILE (f, overload_idx));
2752 printfi_filtered (spaces + 8, "is_private %d\n",
2753 TYPE_FN_FIELD_PRIVATE (f, overload_idx));
2754 printfi_filtered (spaces + 8, "is_protected %d\n",
2755 TYPE_FN_FIELD_PROTECTED (f, overload_idx));
2756 printfi_filtered (spaces + 8, "is_stub %d\n",
2757 TYPE_FN_FIELD_STUB (f, overload_idx));
2758 printfi_filtered (spaces + 8, "voffset %u\n",
2759 TYPE_FN_FIELD_VOFFSET (f, overload_idx));
2760 }
2761 }
2762}
2763
2764static void
fba45db2 2765print_cplus_stuff (struct type *type, int spaces)
c906108c
SS
2766{
2767 printfi_filtered (spaces, "n_baseclasses %d\n",
2768 TYPE_N_BASECLASSES (type));
2769 printfi_filtered (spaces, "nfn_fields %d\n",
2770 TYPE_NFN_FIELDS (type));
2771 printfi_filtered (spaces, "nfn_fields_total %d\n",
2772 TYPE_NFN_FIELDS_TOTAL (type));
2773 if (TYPE_N_BASECLASSES (type) > 0)
2774 {
2775 printfi_filtered (spaces, "virtual_field_bits (%d bits at *",
2776 TYPE_N_BASECLASSES (type));
d4f3574e 2777 gdb_print_host_address (TYPE_FIELD_VIRTUAL_BITS (type), gdb_stdout);
c906108c
SS
2778 printf_filtered (")");
2779
2780 print_bit_vector (TYPE_FIELD_VIRTUAL_BITS (type),
2781 TYPE_N_BASECLASSES (type));
2782 puts_filtered ("\n");
2783 }
2784 if (TYPE_NFIELDS (type) > 0)
2785 {
2786 if (TYPE_FIELD_PRIVATE_BITS (type) != NULL)
2787 {
2788 printfi_filtered (spaces, "private_field_bits (%d bits at *",
2789 TYPE_NFIELDS (type));
d4f3574e 2790 gdb_print_host_address (TYPE_FIELD_PRIVATE_BITS (type), gdb_stdout);
c906108c
SS
2791 printf_filtered (")");
2792 print_bit_vector (TYPE_FIELD_PRIVATE_BITS (type),
2793 TYPE_NFIELDS (type));
2794 puts_filtered ("\n");
2795 }
2796 if (TYPE_FIELD_PROTECTED_BITS (type) != NULL)
2797 {
2798 printfi_filtered (spaces, "protected_field_bits (%d bits at *",
2799 TYPE_NFIELDS (type));
d4f3574e 2800 gdb_print_host_address (TYPE_FIELD_PROTECTED_BITS (type), gdb_stdout);
c906108c
SS
2801 printf_filtered (")");
2802 print_bit_vector (TYPE_FIELD_PROTECTED_BITS (type),
2803 TYPE_NFIELDS (type));
2804 puts_filtered ("\n");
2805 }
2806 }
2807 if (TYPE_NFN_FIELDS (type) > 0)
2808 {
2809 dump_fn_fieldlists (type, spaces);
2810 }
2811}
2812
e9e79dd9
FF
2813static void
2814print_bound_type (int bt)
2815{
2816 switch (bt)
2817 {
2818 case BOUND_CANNOT_BE_DETERMINED:
2819 printf_filtered ("(BOUND_CANNOT_BE_DETERMINED)");
2820 break;
2821 case BOUND_BY_REF_ON_STACK:
2822 printf_filtered ("(BOUND_BY_REF_ON_STACK)");
2823 break;
2824 case BOUND_BY_VALUE_ON_STACK:
2825 printf_filtered ("(BOUND_BY_VALUE_ON_STACK)");
2826 break;
2827 case BOUND_BY_REF_IN_REG:
2828 printf_filtered ("(BOUND_BY_REF_IN_REG)");
2829 break;
2830 case BOUND_BY_VALUE_IN_REG:
2831 printf_filtered ("(BOUND_BY_VALUE_IN_REG)");
2832 break;
2833 case BOUND_SIMPLE:
2834 printf_filtered ("(BOUND_SIMPLE)");
2835 break;
2836 default:
2837 printf_filtered ("(unknown bound type)");
2838 break;
2839 }
2840}
2841
c906108c
SS
2842static struct obstack dont_print_type_obstack;
2843
2844void
fba45db2 2845recursive_dump_type (struct type *type, int spaces)
c906108c
SS
2846{
2847 int idx;
2848
2849 if (spaces == 0)
2850 obstack_begin (&dont_print_type_obstack, 0);
2851
2852 if (TYPE_NFIELDS (type) > 0
2853 || (TYPE_CPLUS_SPECIFIC (type) && TYPE_NFN_FIELDS (type) > 0))
2854 {
2855 struct type **first_dont_print
c5aa993b 2856 = (struct type **) obstack_base (&dont_print_type_obstack);
c906108c 2857
c5aa993b
JM
2858 int i = (struct type **) obstack_next_free (&dont_print_type_obstack)
2859 - first_dont_print;
c906108c
SS
2860
2861 while (--i >= 0)
2862 {
2863 if (type == first_dont_print[i])
2864 {
2865 printfi_filtered (spaces, "type node ");
d4f3574e 2866 gdb_print_host_address (type, gdb_stdout);
c906108c
SS
2867 printf_filtered (" <same as already seen type>\n");
2868 return;
2869 }
2870 }
2871
2872 obstack_ptr_grow (&dont_print_type_obstack, type);
2873 }
2874
2875 printfi_filtered (spaces, "type node ");
d4f3574e 2876 gdb_print_host_address (type, gdb_stdout);
c906108c
SS
2877 printf_filtered ("\n");
2878 printfi_filtered (spaces, "name '%s' (",
2879 TYPE_NAME (type) ? TYPE_NAME (type) : "<NULL>");
d4f3574e 2880 gdb_print_host_address (TYPE_NAME (type), gdb_stdout);
c906108c 2881 printf_filtered (")\n");
e9e79dd9
FF
2882 printfi_filtered (spaces, "tagname '%s' (",
2883 TYPE_TAG_NAME (type) ? TYPE_TAG_NAME (type) : "<NULL>");
2884 gdb_print_host_address (TYPE_TAG_NAME (type), gdb_stdout);
2885 printf_filtered (")\n");
c906108c
SS
2886 printfi_filtered (spaces, "code 0x%x ", TYPE_CODE (type));
2887 switch (TYPE_CODE (type))
2888 {
c5aa993b
JM
2889 case TYPE_CODE_UNDEF:
2890 printf_filtered ("(TYPE_CODE_UNDEF)");
2891 break;
2892 case TYPE_CODE_PTR:
2893 printf_filtered ("(TYPE_CODE_PTR)");
2894 break;
2895 case TYPE_CODE_ARRAY:
2896 printf_filtered ("(TYPE_CODE_ARRAY)");
2897 break;
2898 case TYPE_CODE_STRUCT:
2899 printf_filtered ("(TYPE_CODE_STRUCT)");
2900 break;
2901 case TYPE_CODE_UNION:
2902 printf_filtered ("(TYPE_CODE_UNION)");
2903 break;
2904 case TYPE_CODE_ENUM:
2905 printf_filtered ("(TYPE_CODE_ENUM)");
2906 break;
2907 case TYPE_CODE_FUNC:
2908 printf_filtered ("(TYPE_CODE_FUNC)");
2909 break;
2910 case TYPE_CODE_INT:
2911 printf_filtered ("(TYPE_CODE_INT)");
2912 break;
2913 case TYPE_CODE_FLT:
2914 printf_filtered ("(TYPE_CODE_FLT)");
2915 break;
2916 case TYPE_CODE_VOID:
2917 printf_filtered ("(TYPE_CODE_VOID)");
2918 break;
2919 case TYPE_CODE_SET:
2920 printf_filtered ("(TYPE_CODE_SET)");
2921 break;
2922 case TYPE_CODE_RANGE:
2923 printf_filtered ("(TYPE_CODE_RANGE)");
2924 break;
2925 case TYPE_CODE_STRING:
2926 printf_filtered ("(TYPE_CODE_STRING)");
2927 break;
e9e79dd9
FF
2928 case TYPE_CODE_BITSTRING:
2929 printf_filtered ("(TYPE_CODE_BITSTRING)");
2930 break;
c5aa993b
JM
2931 case TYPE_CODE_ERROR:
2932 printf_filtered ("(TYPE_CODE_ERROR)");
2933 break;
2934 case TYPE_CODE_MEMBER:
2935 printf_filtered ("(TYPE_CODE_MEMBER)");
2936 break;
2937 case TYPE_CODE_METHOD:
2938 printf_filtered ("(TYPE_CODE_METHOD)");
2939 break;
2940 case TYPE_CODE_REF:
2941 printf_filtered ("(TYPE_CODE_REF)");
2942 break;
2943 case TYPE_CODE_CHAR:
2944 printf_filtered ("(TYPE_CODE_CHAR)");
2945 break;
2946 case TYPE_CODE_BOOL:
2947 printf_filtered ("(TYPE_CODE_BOOL)");
2948 break;
e9e79dd9
FF
2949 case TYPE_CODE_COMPLEX:
2950 printf_filtered ("(TYPE_CODE_COMPLEX)");
2951 break;
c5aa993b
JM
2952 case TYPE_CODE_TYPEDEF:
2953 printf_filtered ("(TYPE_CODE_TYPEDEF)");
2954 break;
e9e79dd9
FF
2955 case TYPE_CODE_TEMPLATE:
2956 printf_filtered ("(TYPE_CODE_TEMPLATE)");
2957 break;
2958 case TYPE_CODE_TEMPLATE_ARG:
2959 printf_filtered ("(TYPE_CODE_TEMPLATE_ARG)");
2960 break;
5c4e30ca
DC
2961 case TYPE_CODE_NAMESPACE:
2962 printf_filtered ("(TYPE_CODE_NAMESPACE)");
2963 break;
c5aa993b
JM
2964 default:
2965 printf_filtered ("(UNKNOWN TYPE CODE)");
2966 break;
c906108c
SS
2967 }
2968 puts_filtered ("\n");
2969 printfi_filtered (spaces, "length %d\n", TYPE_LENGTH (type));
e9e79dd9
FF
2970 printfi_filtered (spaces, "upper_bound_type 0x%x ",
2971 TYPE_ARRAY_UPPER_BOUND_TYPE (type));
2972 print_bound_type (TYPE_ARRAY_UPPER_BOUND_TYPE (type));
2973 puts_filtered ("\n");
2974 printfi_filtered (spaces, "lower_bound_type 0x%x ",
2975 TYPE_ARRAY_LOWER_BOUND_TYPE (type));
2976 print_bound_type (TYPE_ARRAY_LOWER_BOUND_TYPE (type));
2977 puts_filtered ("\n");
c906108c 2978 printfi_filtered (spaces, "objfile ");
d4f3574e 2979 gdb_print_host_address (TYPE_OBJFILE (type), gdb_stdout);
c906108c
SS
2980 printf_filtered ("\n");
2981 printfi_filtered (spaces, "target_type ");
d4f3574e 2982 gdb_print_host_address (TYPE_TARGET_TYPE (type), gdb_stdout);
c906108c
SS
2983 printf_filtered ("\n");
2984 if (TYPE_TARGET_TYPE (type) != NULL)
2985 {
2986 recursive_dump_type (TYPE_TARGET_TYPE (type), spaces + 2);
2987 }
2988 printfi_filtered (spaces, "pointer_type ");
d4f3574e 2989 gdb_print_host_address (TYPE_POINTER_TYPE (type), gdb_stdout);
c906108c
SS
2990 printf_filtered ("\n");
2991 printfi_filtered (spaces, "reference_type ");
d4f3574e 2992 gdb_print_host_address (TYPE_REFERENCE_TYPE (type), gdb_stdout);
c906108c 2993 printf_filtered ("\n");
2fdde8f8
DJ
2994 printfi_filtered (spaces, "type_chain ");
2995 gdb_print_host_address (TYPE_CHAIN (type), gdb_stdout);
e9e79dd9 2996 printf_filtered ("\n");
2fdde8f8
DJ
2997 printfi_filtered (spaces, "instance_flags 0x%x", TYPE_INSTANCE_FLAGS (type));
2998 if (TYPE_CONST (type))
2999 {
3000 puts_filtered (" TYPE_FLAG_CONST");
3001 }
3002 if (TYPE_VOLATILE (type))
3003 {
3004 puts_filtered (" TYPE_FLAG_VOLATILE");
3005 }
3006 if (TYPE_CODE_SPACE (type))
3007 {
3008 puts_filtered (" TYPE_FLAG_CODE_SPACE");
3009 }
3010 if (TYPE_DATA_SPACE (type))
3011 {
3012 puts_filtered (" TYPE_FLAG_DATA_SPACE");
3013 }
8b2dbe47
KB
3014 if (TYPE_ADDRESS_CLASS_1 (type))
3015 {
3016 puts_filtered (" TYPE_FLAG_ADDRESS_CLASS_1");
3017 }
3018 if (TYPE_ADDRESS_CLASS_2 (type))
3019 {
3020 puts_filtered (" TYPE_FLAG_ADDRESS_CLASS_2");
3021 }
2fdde8f8 3022 puts_filtered ("\n");
c906108c 3023 printfi_filtered (spaces, "flags 0x%x", TYPE_FLAGS (type));
762a036f 3024 if (TYPE_UNSIGNED (type))
c906108c
SS
3025 {
3026 puts_filtered (" TYPE_FLAG_UNSIGNED");
3027 }
762a036f
FF
3028 if (TYPE_NOSIGN (type))
3029 {
3030 puts_filtered (" TYPE_FLAG_NOSIGN");
3031 }
3032 if (TYPE_STUB (type))
c906108c
SS
3033 {
3034 puts_filtered (" TYPE_FLAG_STUB");
3035 }
762a036f
FF
3036 if (TYPE_TARGET_STUB (type))
3037 {
3038 puts_filtered (" TYPE_FLAG_TARGET_STUB");
3039 }
3040 if (TYPE_STATIC (type))
3041 {
3042 puts_filtered (" TYPE_FLAG_STATIC");
3043 }
762a036f
FF
3044 if (TYPE_PROTOTYPED (type))
3045 {
3046 puts_filtered (" TYPE_FLAG_PROTOTYPED");
3047 }
3048 if (TYPE_INCOMPLETE (type))
3049 {
3050 puts_filtered (" TYPE_FLAG_INCOMPLETE");
3051 }
762a036f
FF
3052 if (TYPE_VARARGS (type))
3053 {
3054 puts_filtered (" TYPE_FLAG_VARARGS");
3055 }
f5f8a009
EZ
3056 /* This is used for things like AltiVec registers on ppc. Gcc emits
3057 an attribute for the array type, which tells whether or not we
3058 have a vector, instead of a regular array. */
3059 if (TYPE_VECTOR (type))
3060 {
3061 puts_filtered (" TYPE_FLAG_VECTOR");
3062 }
c906108c
SS
3063 puts_filtered ("\n");
3064 printfi_filtered (spaces, "nfields %d ", TYPE_NFIELDS (type));
d4f3574e 3065 gdb_print_host_address (TYPE_FIELDS (type), gdb_stdout);
c906108c
SS
3066 puts_filtered ("\n");
3067 for (idx = 0; idx < TYPE_NFIELDS (type); idx++)
3068 {
3069 printfi_filtered (spaces + 2,
3070 "[%d] bitpos %d bitsize %d type ",
3071 idx, TYPE_FIELD_BITPOS (type, idx),
3072 TYPE_FIELD_BITSIZE (type, idx));
d4f3574e 3073 gdb_print_host_address (TYPE_FIELD_TYPE (type, idx), gdb_stdout);
c906108c
SS
3074 printf_filtered (" name '%s' (",
3075 TYPE_FIELD_NAME (type, idx) != NULL
3076 ? TYPE_FIELD_NAME (type, idx)
3077 : "<NULL>");
d4f3574e 3078 gdb_print_host_address (TYPE_FIELD_NAME (type, idx), gdb_stdout);
c906108c
SS
3079 printf_filtered (")\n");
3080 if (TYPE_FIELD_TYPE (type, idx) != NULL)
3081 {
3082 recursive_dump_type (TYPE_FIELD_TYPE (type, idx), spaces + 4);
3083 }
3084 }
3085 printfi_filtered (spaces, "vptr_basetype ");
d4f3574e 3086 gdb_print_host_address (TYPE_VPTR_BASETYPE (type), gdb_stdout);
c906108c
SS
3087 puts_filtered ("\n");
3088 if (TYPE_VPTR_BASETYPE (type) != NULL)
3089 {
3090 recursive_dump_type (TYPE_VPTR_BASETYPE (type), spaces + 2);
3091 }
3092 printfi_filtered (spaces, "vptr_fieldno %d\n", TYPE_VPTR_FIELDNO (type));
3093 switch (TYPE_CODE (type))
3094 {
c5aa993b
JM
3095 case TYPE_CODE_STRUCT:
3096 printfi_filtered (spaces, "cplus_stuff ");
d4f3574e 3097 gdb_print_host_address (TYPE_CPLUS_SPECIFIC (type), gdb_stdout);
c5aa993b
JM
3098 puts_filtered ("\n");
3099 print_cplus_stuff (type, spaces);
3100 break;
c906108c 3101
701c159d
AC
3102 case TYPE_CODE_FLT:
3103 printfi_filtered (spaces, "floatformat ");
3104 if (TYPE_FLOATFORMAT (type) == NULL
3105 || TYPE_FLOATFORMAT (type)->name == NULL)
3106 puts_filtered ("(null)");
3107 else
3108 puts_filtered (TYPE_FLOATFORMAT (type)->name);
3109 puts_filtered ("\n");
3110 break;
3111
c5aa993b
JM
3112 default:
3113 /* We have to pick one of the union types to be able print and test
7b83ea04
AC
3114 the value. Pick cplus_struct_type, even though we know it isn't
3115 any particular one. */
c5aa993b 3116 printfi_filtered (spaces, "type_specific ");
d4f3574e 3117 gdb_print_host_address (TYPE_CPLUS_SPECIFIC (type), gdb_stdout);
c5aa993b
JM
3118 if (TYPE_CPLUS_SPECIFIC (type) != NULL)
3119 {
3120 printf_filtered (" (unknown data form)");
3121 }
3122 printf_filtered ("\n");
3123 break;
c906108c
SS
3124
3125 }
3126 if (spaces == 0)
3127 obstack_free (&dont_print_type_obstack, NULL);
3128}
3129
a14ed312 3130static void build_gdbtypes (void);
c906108c 3131static void
fba45db2 3132build_gdbtypes (void)
c906108c
SS
3133{
3134 builtin_type_void =
3135 init_type (TYPE_CODE_VOID, 1,
3136 0,
3137 "void", (struct objfile *) NULL);
3138 builtin_type_char =
3139 init_type (TYPE_CODE_INT, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
4e409299
JB
3140 (TYPE_FLAG_NOSIGN
3141 | (TARGET_CHAR_SIGNED ? 0 : TYPE_FLAG_UNSIGNED)),
c906108c 3142 "char", (struct objfile *) NULL);
c5aa993b 3143 builtin_type_true_char =
9e0b60a8
JM
3144 init_type (TYPE_CODE_CHAR, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3145 0,
3146 "true character", (struct objfile *) NULL);
c906108c
SS
3147 builtin_type_signed_char =
3148 init_type (TYPE_CODE_INT, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3149 0,
3150 "signed char", (struct objfile *) NULL);
3151 builtin_type_unsigned_char =
3152 init_type (TYPE_CODE_INT, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3153 TYPE_FLAG_UNSIGNED,
3154 "unsigned char", (struct objfile *) NULL);
3155 builtin_type_short =
3156 init_type (TYPE_CODE_INT, TARGET_SHORT_BIT / TARGET_CHAR_BIT,
3157 0,
3158 "short", (struct objfile *) NULL);
3159 builtin_type_unsigned_short =
3160 init_type (TYPE_CODE_INT, TARGET_SHORT_BIT / TARGET_CHAR_BIT,
3161 TYPE_FLAG_UNSIGNED,
3162 "unsigned short", (struct objfile *) NULL);
3163 builtin_type_int =
3164 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
3165 0,
3166 "int", (struct objfile *) NULL);
3167 builtin_type_unsigned_int =
3168 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
3169 TYPE_FLAG_UNSIGNED,
3170 "unsigned int", (struct objfile *) NULL);
3171 builtin_type_long =
3172 init_type (TYPE_CODE_INT, TARGET_LONG_BIT / TARGET_CHAR_BIT,
3173 0,
3174 "long", (struct objfile *) NULL);
3175 builtin_type_unsigned_long =
3176 init_type (TYPE_CODE_INT, TARGET_LONG_BIT / TARGET_CHAR_BIT,
3177 TYPE_FLAG_UNSIGNED,
3178 "unsigned long", (struct objfile *) NULL);
3179 builtin_type_long_long =
3180 init_type (TYPE_CODE_INT, TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
3181 0,
3182 "long long", (struct objfile *) NULL);
c5aa993b 3183 builtin_type_unsigned_long_long =
c906108c
SS
3184 init_type (TYPE_CODE_INT, TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
3185 TYPE_FLAG_UNSIGNED,
3186 "unsigned long long", (struct objfile *) NULL);
3187 builtin_type_float =
3188 init_type (TYPE_CODE_FLT, TARGET_FLOAT_BIT / TARGET_CHAR_BIT,
3189 0,
3190 "float", (struct objfile *) NULL);
9c9532c9
CV
3191/* vinschen@redhat.com 2002-02-08:
3192 The below lines are disabled since they are doing the wrong
3193 thing for non-multiarch targets. They are setting the correct
3194 type of floats for the target but while on multiarch targets
3195 this is done everytime the architecture changes, it's done on
3196 non-multiarch targets only on startup, leaving the wrong values
3197 in even if the architecture changes (eg. from big-endian to
3198 little-endian). */
3199#if 0
701c159d 3200 TYPE_FLOATFORMAT (builtin_type_float) = TARGET_FLOAT_FORMAT;
9c9532c9 3201#endif
c906108c
SS
3202 builtin_type_double =
3203 init_type (TYPE_CODE_FLT, TARGET_DOUBLE_BIT / TARGET_CHAR_BIT,
3204 0,
3205 "double", (struct objfile *) NULL);
9c9532c9 3206#if 0
701c159d 3207 TYPE_FLOATFORMAT (builtin_type_double) = TARGET_DOUBLE_FORMAT;
9c9532c9 3208#endif
c906108c
SS
3209 builtin_type_long_double =
3210 init_type (TYPE_CODE_FLT, TARGET_LONG_DOUBLE_BIT / TARGET_CHAR_BIT,
3211 0,
3212 "long double", (struct objfile *) NULL);
9c9532c9 3213#if 0
701c159d 3214 TYPE_FLOATFORMAT (builtin_type_long_double) = TARGET_LONG_DOUBLE_FORMAT;
9c9532c9 3215#endif
c906108c
SS
3216 builtin_type_complex =
3217 init_type (TYPE_CODE_COMPLEX, 2 * TARGET_FLOAT_BIT / TARGET_CHAR_BIT,
3218 0,
3219 "complex", (struct objfile *) NULL);
3220 TYPE_TARGET_TYPE (builtin_type_complex) = builtin_type_float;
3221 builtin_type_double_complex =
3222 init_type (TYPE_CODE_COMPLEX, 2 * TARGET_DOUBLE_BIT / TARGET_CHAR_BIT,
3223 0,
3224 "double complex", (struct objfile *) NULL);
3225 TYPE_TARGET_TYPE (builtin_type_double_complex) = builtin_type_double;
3226 builtin_type_string =
3227 init_type (TYPE_CODE_STRING, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3228 0,
3229 "string", (struct objfile *) NULL);
449a5da4
AC
3230 builtin_type_int0 =
3231 init_type (TYPE_CODE_INT, 0 / 8,
3232 0,
3233 "int0_t", (struct objfile *) NULL);
c906108c
SS
3234 builtin_type_int8 =
3235 init_type (TYPE_CODE_INT, 8 / 8,
3236 0,
3237 "int8_t", (struct objfile *) NULL);
3238 builtin_type_uint8 =
3239 init_type (TYPE_CODE_INT, 8 / 8,
3240 TYPE_FLAG_UNSIGNED,
3241 "uint8_t", (struct objfile *) NULL);
3242 builtin_type_int16 =
3243 init_type (TYPE_CODE_INT, 16 / 8,
3244 0,
3245 "int16_t", (struct objfile *) NULL);
3246 builtin_type_uint16 =
3247 init_type (TYPE_CODE_INT, 16 / 8,
3248 TYPE_FLAG_UNSIGNED,
3249 "uint16_t", (struct objfile *) NULL);
3250 builtin_type_int32 =
3251 init_type (TYPE_CODE_INT, 32 / 8,
3252 0,
3253 "int32_t", (struct objfile *) NULL);
3254 builtin_type_uint32 =
3255 init_type (TYPE_CODE_INT, 32 / 8,
3256 TYPE_FLAG_UNSIGNED,
3257 "uint32_t", (struct objfile *) NULL);
3258 builtin_type_int64 =
3259 init_type (TYPE_CODE_INT, 64 / 8,
3260 0,
3261 "int64_t", (struct objfile *) NULL);
3262 builtin_type_uint64 =
3263 init_type (TYPE_CODE_INT, 64 / 8,
3264 TYPE_FLAG_UNSIGNED,
3265 "uint64_t", (struct objfile *) NULL);
8b982acf
EZ
3266 builtin_type_int128 =
3267 init_type (TYPE_CODE_INT, 128 / 8,
3268 0,
3269 "int128_t", (struct objfile *) NULL);
3270 builtin_type_uint128 =
3271 init_type (TYPE_CODE_INT, 128 / 8,
3272 TYPE_FLAG_UNSIGNED,
3273 "uint128_t", (struct objfile *) NULL);
c906108c
SS
3274 builtin_type_bool =
3275 init_type (TYPE_CODE_BOOL, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3276 0,
3277 "bool", (struct objfile *) NULL);
3278
c5aa993b 3279 /* Add user knob for controlling resolution of opaque types */
cb1a6d5f 3280 deprecated_add_show_from_set
c5aa993b 3281 (add_set_cmd ("opaque-type-resolution", class_support, var_boolean, (char *) &opaque_type_resolution,
c906108c
SS
3282 "Set resolution of opaque struct/class/union types (if set before loading symbols).",
3283 &setlist),
3284 &showlist);
3285 opaque_type_resolution = 1;
3286
917317f4
JM
3287 /* Build SIMD types. */
3288 builtin_type_v4sf
3289 = init_simd_type ("__builtin_v4sf", builtin_type_float, "f", 4);
c2d11a7d
JM
3290 builtin_type_v4si
3291 = init_simd_type ("__builtin_v4si", builtin_type_int32, "f", 4);
08cf96df
EZ
3292 builtin_type_v16qi
3293 = init_simd_type ("__builtin_v16qi", builtin_type_int8, "f", 16);
c2d11a7d
JM
3294 builtin_type_v8qi
3295 = init_simd_type ("__builtin_v8qi", builtin_type_int8, "f", 8);
08cf96df
EZ
3296 builtin_type_v8hi
3297 = init_simd_type ("__builtin_v8hi", builtin_type_int16, "f", 8);
c2d11a7d
JM
3298 builtin_type_v4hi
3299 = init_simd_type ("__builtin_v4hi", builtin_type_int16, "f", 4);
3300 builtin_type_v2si
3301 = init_simd_type ("__builtin_v2si", builtin_type_int32, "f", 2);
c4093a6a 3302
ac3aafc7 3303 /* 128 bit vectors. */
3139facc 3304 builtin_type_v2_double = init_vector_type (builtin_type_double, 2);
ac3aafc7 3305 builtin_type_v4_float = init_vector_type (builtin_type_float, 4);
3139facc 3306 builtin_type_v2_int64 = init_vector_type (builtin_type_int64, 2);
ac3aafc7
EZ
3307 builtin_type_v4_int32 = init_vector_type (builtin_type_int32, 4);
3308 builtin_type_v8_int16 = init_vector_type (builtin_type_int16, 8);
3309 builtin_type_v16_int8 = init_vector_type (builtin_type_int8, 16);
3310 /* 64 bit vectors. */
6599f021 3311 builtin_type_v2_float = init_vector_type (builtin_type_float, 2);
ac3aafc7
EZ
3312 builtin_type_v2_int32 = init_vector_type (builtin_type_int32, 2);
3313 builtin_type_v4_int16 = init_vector_type (builtin_type_int16, 4);
3314 builtin_type_v8_int8 = init_vector_type (builtin_type_int8, 8);
3315
b063e7a2
AC
3316 /* Vector types. */
3317 builtin_type_vec64 = build_builtin_type_vec64 ();
3318 builtin_type_vec64i = build_builtin_type_vec64i ();
ac3aafc7 3319 builtin_type_vec128 = build_builtin_type_vec128 ();
3139facc 3320 builtin_type_vec128i = build_builtin_type_vec128i ();
08cf96df 3321
c4093a6a 3322 /* Pointer/Address types. */
ee3a7b7f
JB
3323
3324 /* NOTE: on some targets, addresses and pointers are not necessarily
3325 the same --- for example, on the D10V, pointers are 16 bits long,
3326 but addresses are 32 bits long. See doc/gdbint.texinfo,
3327 ``Pointers Are Not Always Addresses''.
3328
3329 The upshot is:
3330 - gdb's `struct type' always describes the target's
3331 representation.
3332 - gdb's `struct value' objects should always hold values in
3333 target form.
3334 - gdb's CORE_ADDR values are addresses in the unified virtual
3335 address space that the assembler and linker work with. Thus,
3336 since target_read_memory takes a CORE_ADDR as an argument, it
3337 can access any memory on the target, even if the processor has
3338 separate code and data address spaces.
3339
3340 So, for example:
3341 - If v is a value holding a D10V code pointer, its contents are
3342 in target form: a big-endian address left-shifted two bits.
3343 - If p is a D10V pointer type, TYPE_LENGTH (p) == 2, just as
3344 sizeof (void *) == 2 on the target.
3345
3346 In this context, builtin_type_CORE_ADDR is a bit odd: it's a
3347 target type for a value the target will never see. It's only
3348 used to hold the values of (typeless) linker symbols, which are
3349 indeed in the unified virtual address space. */
090a2205 3350 builtin_type_void_data_ptr = make_pointer_type (builtin_type_void, NULL);
ee3a7b7f
JB
3351 builtin_type_void_func_ptr
3352 = lookup_pointer_type (lookup_function_type (builtin_type_void));
c4093a6a 3353 builtin_type_CORE_ADDR =
52204a0b 3354 init_type (TYPE_CODE_INT, TARGET_ADDR_BIT / 8,
c4093a6a
JM
3355 TYPE_FLAG_UNSIGNED,
3356 "__CORE_ADDR", (struct objfile *) NULL);
3357 builtin_type_bfd_vma =
3358 init_type (TYPE_CODE_INT, TARGET_BFD_VMA_BIT / 8,
3359 TYPE_FLAG_UNSIGNED,
3360 "__bfd_vma", (struct objfile *) NULL);
c906108c
SS
3361}
3362
a14ed312 3363extern void _initialize_gdbtypes (void);
c906108c 3364void
fba45db2 3365_initialize_gdbtypes (void)
c906108c 3366{
5d161b24 3367 struct cmd_list_element *c;
c906108c 3368 build_gdbtypes ();
0f71a2f6
JM
3369
3370 /* FIXME - For the moment, handle types by swapping them in and out.
3371 Should be using the per-architecture data-pointer and a large
3372 struct. */
046a4708
AC
3373 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_void);
3374 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_char);
3375 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_short);
3376 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_int);
3377 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_long);
3378 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_long_long);
3379 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_signed_char);
3380 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_unsigned_char);
3381 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_unsigned_short);
3382 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_unsigned_int);
3383 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_unsigned_long);
3384 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_unsigned_long_long);
3385 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_float);
3386 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_double);
3387 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_long_double);
3388 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_complex);
3389 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_double_complex);
3390 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_string);
3391 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_int8);
3392 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_uint8);
3393 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_int16);
3394 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_uint16);
3395 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_int32);
3396 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_uint32);
3397 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_int64);
3398 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_uint64);
3399 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_int128);
3400 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_uint128);
3401 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v4sf);
3402 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v4si);
3403 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v16qi);
3404 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v8qi);
3405 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v8hi);
3406 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v4hi);
3407 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v2si);
3408 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v2_double);
3409 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v4_float);
3410 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v2_int64);
3411 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v4_int32);
3412 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v8_int16);
3413 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v16_int8);
3414 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v2_float);
3415 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v2_int32);
3416 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v8_int8);
3417 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_v4_int16);
3418 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_vec128);
3419 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_vec128i);
3420 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_void_data_ptr);
3421 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_void_func_ptr);
3422 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_CORE_ADDR);
3423 DEPRECATED_REGISTER_GDBARCH_SWAP (builtin_type_bfd_vma);
3424 deprecated_register_gdbarch_swap (NULL, 0, build_gdbtypes);
5d161b24 3425
598f52df
AC
3426 /* Note: These types do not need to be swapped - they are target
3427 neutral. */
3428 builtin_type_ieee_single_big =
3429 init_type (TYPE_CODE_FLT, floatformat_ieee_single_big.totalsize / 8,
3430 0, "builtin_type_ieee_single_big", NULL);
3431 TYPE_FLOATFORMAT (builtin_type_ieee_single_big) = &floatformat_ieee_single_big;
3432 builtin_type_ieee_single_little =
3433 init_type (TYPE_CODE_FLT, floatformat_ieee_single_little.totalsize / 8,
3434 0, "builtin_type_ieee_single_little", NULL);
069e84fd 3435 TYPE_FLOATFORMAT (builtin_type_ieee_single_little) = &floatformat_ieee_single_little;
598f52df
AC
3436 builtin_type_ieee_double_big =
3437 init_type (TYPE_CODE_FLT, floatformat_ieee_double_big.totalsize / 8,
3438 0, "builtin_type_ieee_double_big", NULL);
069e84fd 3439 TYPE_FLOATFORMAT (builtin_type_ieee_double_big) = &floatformat_ieee_double_big;
598f52df
AC
3440 builtin_type_ieee_double_little =
3441 init_type (TYPE_CODE_FLT, floatformat_ieee_double_little.totalsize / 8,
3442 0, "builtin_type_ieee_double_little", NULL);
069e84fd 3443 TYPE_FLOATFORMAT (builtin_type_ieee_double_little) = &floatformat_ieee_double_little;
598f52df
AC
3444 builtin_type_ieee_double_littlebyte_bigword =
3445 init_type (TYPE_CODE_FLT, floatformat_ieee_double_littlebyte_bigword.totalsize / 8,
3446 0, "builtin_type_ieee_double_littlebyte_bigword", NULL);
069e84fd 3447 TYPE_FLOATFORMAT (builtin_type_ieee_double_littlebyte_bigword) = &floatformat_ieee_double_littlebyte_bigword;
598f52df
AC
3448 builtin_type_i387_ext =
3449 init_type (TYPE_CODE_FLT, floatformat_i387_ext.totalsize / 8,
3450 0, "builtin_type_i387_ext", NULL);
e371b258 3451 TYPE_FLOATFORMAT (builtin_type_i387_ext) = &floatformat_i387_ext;
598f52df
AC
3452 builtin_type_m68881_ext =
3453 init_type (TYPE_CODE_FLT, floatformat_m68881_ext.totalsize / 8,
3454 0, "builtin_type_m68881_ext", NULL);
069e84fd 3455 TYPE_FLOATFORMAT (builtin_type_m68881_ext) = &floatformat_m68881_ext;
598f52df
AC
3456 builtin_type_i960_ext =
3457 init_type (TYPE_CODE_FLT, floatformat_i960_ext.totalsize / 8,
3458 0, "builtin_type_i960_ext", NULL);
069e84fd 3459 TYPE_FLOATFORMAT (builtin_type_i960_ext) = &floatformat_i960_ext;
598f52df
AC
3460 builtin_type_m88110_ext =
3461 init_type (TYPE_CODE_FLT, floatformat_m88110_ext.totalsize / 8,
3462 0, "builtin_type_m88110_ext", NULL);
069e84fd 3463 TYPE_FLOATFORMAT (builtin_type_m88110_ext) = &floatformat_m88110_ext;
598f52df
AC
3464 builtin_type_m88110_harris_ext =
3465 init_type (TYPE_CODE_FLT, floatformat_m88110_harris_ext.totalsize / 8,
3466 0, "builtin_type_m88110_harris_ext", NULL);
069e84fd 3467 TYPE_FLOATFORMAT (builtin_type_m88110_harris_ext) = &floatformat_m88110_harris_ext;
598f52df
AC
3468 builtin_type_arm_ext_big =
3469 init_type (TYPE_CODE_FLT, floatformat_arm_ext_big.totalsize / 8,
3470 0, "builtin_type_arm_ext_big", NULL);
069e84fd 3471 TYPE_FLOATFORMAT (builtin_type_arm_ext_big) = &floatformat_arm_ext_big;
598f52df
AC
3472 builtin_type_arm_ext_littlebyte_bigword =
3473 init_type (TYPE_CODE_FLT, floatformat_arm_ext_littlebyte_bigword.totalsize / 8,
3474 0, "builtin_type_arm_ext_littlebyte_bigword", NULL);
069e84fd 3475 TYPE_FLOATFORMAT (builtin_type_arm_ext_littlebyte_bigword) = &floatformat_arm_ext_littlebyte_bigword;
598f52df
AC
3476 builtin_type_ia64_spill_big =
3477 init_type (TYPE_CODE_FLT, floatformat_ia64_spill_big.totalsize / 8,
3478 0, "builtin_type_ia64_spill_big", NULL);
069e84fd 3479 TYPE_FLOATFORMAT (builtin_type_ia64_spill_big) = &floatformat_ia64_spill_big;
598f52df
AC
3480 builtin_type_ia64_spill_little =
3481 init_type (TYPE_CODE_FLT, floatformat_ia64_spill_little.totalsize / 8,
3482 0, "builtin_type_ia64_spill_little", NULL);
069e84fd 3483 TYPE_FLOATFORMAT (builtin_type_ia64_spill_little) = &floatformat_ia64_spill_little;
598f52df
AC
3484 builtin_type_ia64_quad_big =
3485 init_type (TYPE_CODE_FLT, floatformat_ia64_quad_big.totalsize / 8,
3486 0, "builtin_type_ia64_quad_big", NULL);
069e84fd 3487 TYPE_FLOATFORMAT (builtin_type_ia64_quad_big) = &floatformat_ia64_quad_big;
598f52df
AC
3488 builtin_type_ia64_quad_little =
3489 init_type (TYPE_CODE_FLT, floatformat_ia64_quad_little.totalsize / 8,
3490 0, "builtin_type_ia64_quad_little", NULL);
069e84fd 3491 TYPE_FLOATFORMAT (builtin_type_ia64_quad_little) = &floatformat_ia64_quad_little;
598f52df 3492
cb1a6d5f
AC
3493 deprecated_add_show_from_set
3494 (add_set_cmd ("overload", no_class, var_zinteger, (char *) &overload_debug,
3495 "Set debugging of C++ overloading.\n\
3496When enabled, ranking of the functions is displayed.", &setdebuglist),
3497 &showdebuglist);
c906108c 3498}
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