* run.c (usage): Fix typos.
[deliverable/binutils-gdb.git] / gdb / gdbtypes.c
1 /* Support routines for manipulating internal types for GDB.
2 Copyright 1992, 1993, 1994, 1995, 1996, 1998, 1999, 2000, 2001, 2002
3 Free Software Foundation, Inc.
4 Contributed by Cygnus Support, using pieces from other GDB modules.
5
6 This file is part of GDB.
7
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.
12
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.
17
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. */
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"
37 #include "wrapper.h"
38 #include "cp-abi.h"
39 #include "gdb_assert.h"
40
41 /* These variables point to the objects
42 representing the predefined C data types. */
43
44 struct type *builtin_type_void;
45 struct type *builtin_type_char;
46 struct type *builtin_type_true_char;
47 struct type *builtin_type_short;
48 struct type *builtin_type_int;
49 struct type *builtin_type_long;
50 struct type *builtin_type_long_long;
51 struct type *builtin_type_signed_char;
52 struct type *builtin_type_unsigned_char;
53 struct type *builtin_type_unsigned_short;
54 struct type *builtin_type_unsigned_int;
55 struct type *builtin_type_unsigned_long;
56 struct type *builtin_type_unsigned_long_long;
57 struct type *builtin_type_float;
58 struct type *builtin_type_double;
59 struct type *builtin_type_long_double;
60 struct type *builtin_type_complex;
61 struct type *builtin_type_double_complex;
62 struct type *builtin_type_string;
63 struct type *builtin_type_int8;
64 struct type *builtin_type_uint8;
65 struct type *builtin_type_int16;
66 struct type *builtin_type_uint16;
67 struct type *builtin_type_int32;
68 struct type *builtin_type_uint32;
69 struct type *builtin_type_int64;
70 struct type *builtin_type_uint64;
71 struct type *builtin_type_int128;
72 struct type *builtin_type_uint128;
73 struct type *builtin_type_bool;
74
75 /* 128 bit long vector types */
76 struct type *builtin_type_v2_double;
77 struct type *builtin_type_v4_float;
78 struct type *builtin_type_v2_int64;
79 struct type *builtin_type_v4_int32;
80 struct type *builtin_type_v8_int16;
81 struct type *builtin_type_v16_int8;
82 /* 64 bit long vector types */
83 struct type *builtin_type_v2_float;
84 struct type *builtin_type_v2_int32;
85 struct type *builtin_type_v4_int16;
86 struct type *builtin_type_v8_int8;
87
88 struct type *builtin_type_v4sf;
89 struct type *builtin_type_v4si;
90 struct type *builtin_type_v16qi;
91 struct type *builtin_type_v8qi;
92 struct type *builtin_type_v8hi;
93 struct type *builtin_type_v4hi;
94 struct type *builtin_type_v2si;
95 struct type *builtin_type_vec64;
96 struct type *builtin_type_vec64i;
97 struct type *builtin_type_vec128;
98 struct type *builtin_type_vec128i;
99 struct type *builtin_type_ieee_single_big;
100 struct type *builtin_type_ieee_single_little;
101 struct type *builtin_type_ieee_double_big;
102 struct type *builtin_type_ieee_double_little;
103 struct type *builtin_type_ieee_double_littlebyte_bigword;
104 struct type *builtin_type_i387_ext;
105 struct type *builtin_type_m68881_ext;
106 struct type *builtin_type_i960_ext;
107 struct type *builtin_type_m88110_ext;
108 struct type *builtin_type_m88110_harris_ext;
109 struct type *builtin_type_arm_ext_big;
110 struct type *builtin_type_arm_ext_littlebyte_bigword;
111 struct type *builtin_type_ia64_spill_big;
112 struct type *builtin_type_ia64_spill_little;
113 struct type *builtin_type_ia64_quad_big;
114 struct type *builtin_type_ia64_quad_little;
115 struct type *builtin_type_void_data_ptr;
116 struct type *builtin_type_void_func_ptr;
117 struct type *builtin_type_CORE_ADDR;
118 struct type *builtin_type_bfd_vma;
119
120 int opaque_type_resolution = 1;
121 int overload_debug = 0;
122
123 struct extra
124 {
125 char str[128];
126 int len;
127 }; /* maximum extension is 128! FIXME */
128
129 static void add_name (struct extra *, char *);
130 static void add_mangled_type (struct extra *, struct type *);
131 #if 0
132 static void cfront_mangle_name (struct type *, int, int);
133 #endif
134 static void print_bit_vector (B_TYPE *, int);
135 static void print_arg_types (struct field *, int, int);
136 static void dump_fn_fieldlists (struct type *, int);
137 static void print_cplus_stuff (struct type *, int);
138 static void virtual_base_list_aux (struct type *dclass);
139
140
141 /* Alloc a new type structure and fill it with some defaults. If
142 OBJFILE is non-NULL, then allocate the space for the type structure
143 in that objfile's type_obstack. Otherwise allocate the new type structure
144 by xmalloc () (for permanent types). */
145
146 struct type *
147 alloc_type (struct objfile *objfile)
148 {
149 register struct type *type;
150
151 /* Alloc the structure and start off with all fields zeroed. */
152
153 if (objfile == NULL)
154 {
155 type = xmalloc (sizeof (struct type));
156 memset (type, 0, sizeof (struct type));
157 TYPE_MAIN_TYPE (type) = xmalloc (sizeof (struct main_type));
158 }
159 else
160 {
161 type = obstack_alloc (&objfile->type_obstack,
162 sizeof (struct type));
163 memset (type, 0, sizeof (struct type));
164 TYPE_MAIN_TYPE (type) = obstack_alloc (&objfile->type_obstack,
165 sizeof (struct main_type));
166 OBJSTAT (objfile, n_types++);
167 }
168 memset (TYPE_MAIN_TYPE (type), 0, sizeof (struct main_type));
169
170 /* Initialize the fields that might not be zero. */
171
172 TYPE_CODE (type) = TYPE_CODE_UNDEF;
173 TYPE_OBJFILE (type) = objfile;
174 TYPE_VPTR_FIELDNO (type) = -1;
175 TYPE_CHAIN (type) = type; /* Chain back to itself. */
176
177 return (type);
178 }
179
180 /* Alloc a new type instance structure, fill it with some defaults,
181 and point it at OLDTYPE. Allocate the new type instance from the
182 same place as OLDTYPE. */
183
184 static struct type *
185 alloc_type_instance (struct type *oldtype)
186 {
187 struct type *type;
188
189 /* Allocate the structure. */
190
191 if (TYPE_OBJFILE (oldtype) == NULL)
192 {
193 type = xmalloc (sizeof (struct type));
194 memset (type, 0, sizeof (struct type));
195 }
196 else
197 {
198 type = obstack_alloc (&TYPE_OBJFILE (oldtype)->type_obstack,
199 sizeof (struct type));
200 memset (type, 0, sizeof (struct type));
201 }
202 TYPE_MAIN_TYPE (type) = TYPE_MAIN_TYPE (oldtype);
203
204 TYPE_CHAIN (type) = type; /* Chain back to itself for now. */
205
206 return (type);
207 }
208
209 /* Clear all remnants of the previous type at TYPE, in preparation for
210 replacing it with something else. */
211 static void
212 smash_type (struct type *type)
213 {
214 memset (TYPE_MAIN_TYPE (type), 0, sizeof (struct main_type));
215
216 /* For now, delete the rings. */
217 TYPE_CHAIN (type) = type;
218
219 /* For now, leave the pointer/reference types alone. */
220 }
221
222 /* Lookup a pointer to a type TYPE. TYPEPTR, if nonzero, points
223 to a pointer to memory where the pointer type should be stored.
224 If *TYPEPTR is zero, update it to point to the pointer type we return.
225 We allocate new memory if needed. */
226
227 struct type *
228 make_pointer_type (struct type *type, struct type **typeptr)
229 {
230 register struct type *ntype; /* New type */
231 struct objfile *objfile;
232
233 ntype = TYPE_POINTER_TYPE (type);
234
235 if (ntype)
236 {
237 if (typeptr == 0)
238 return ntype; /* Don't care about alloc, and have new type. */
239 else if (*typeptr == 0)
240 {
241 *typeptr = ntype; /* Tracking alloc, and we have new type. */
242 return ntype;
243 }
244 }
245
246 if (typeptr == 0 || *typeptr == 0) /* We'll need to allocate one. */
247 {
248 ntype = alloc_type (TYPE_OBJFILE (type));
249 if (typeptr)
250 *typeptr = ntype;
251 }
252 else
253 /* We have storage, but need to reset it. */
254 {
255 ntype = *typeptr;
256 objfile = TYPE_OBJFILE (ntype);
257 smash_type (ntype);
258 TYPE_OBJFILE (ntype) = objfile;
259 }
260
261 TYPE_TARGET_TYPE (ntype) = type;
262 TYPE_POINTER_TYPE (type) = ntype;
263
264 /* FIXME! Assume the machine has only one representation for pointers! */
265
266 TYPE_LENGTH (ntype) = TARGET_PTR_BIT / TARGET_CHAR_BIT;
267 TYPE_CODE (ntype) = TYPE_CODE_PTR;
268
269 /* Mark pointers as unsigned. The target converts between pointers
270 and addresses (CORE_ADDRs) using POINTER_TO_ADDRESS() and
271 ADDRESS_TO_POINTER(). */
272 TYPE_FLAGS (ntype) |= TYPE_FLAG_UNSIGNED;
273
274 if (!TYPE_POINTER_TYPE (type)) /* Remember it, if don't have one. */
275 TYPE_POINTER_TYPE (type) = ntype;
276
277 return ntype;
278 }
279
280 /* Given a type TYPE, return a type of pointers to that type.
281 May need to construct such a type if this is the first use. */
282
283 struct type *
284 lookup_pointer_type (struct type *type)
285 {
286 return make_pointer_type (type, (struct type **) 0);
287 }
288
289 /* Lookup a C++ `reference' to a type TYPE. TYPEPTR, if nonzero, points
290 to a pointer to memory where the reference type should be stored.
291 If *TYPEPTR is zero, update it to point to the reference type we return.
292 We allocate new memory if needed. */
293
294 struct type *
295 make_reference_type (struct type *type, struct type **typeptr)
296 {
297 register struct type *ntype; /* New type */
298 struct objfile *objfile;
299
300 ntype = TYPE_REFERENCE_TYPE (type);
301
302 if (ntype)
303 {
304 if (typeptr == 0)
305 return ntype; /* Don't care about alloc, and have new type. */
306 else if (*typeptr == 0)
307 {
308 *typeptr = ntype; /* Tracking alloc, and we have new type. */
309 return ntype;
310 }
311 }
312
313 if (typeptr == 0 || *typeptr == 0) /* We'll need to allocate one. */
314 {
315 ntype = alloc_type (TYPE_OBJFILE (type));
316 if (typeptr)
317 *typeptr = ntype;
318 }
319 else
320 /* We have storage, but need to reset it. */
321 {
322 ntype = *typeptr;
323 objfile = TYPE_OBJFILE (ntype);
324 smash_type (ntype);
325 TYPE_OBJFILE (ntype) = objfile;
326 }
327
328 TYPE_TARGET_TYPE (ntype) = type;
329 TYPE_REFERENCE_TYPE (type) = ntype;
330
331 /* FIXME! Assume the machine has only one representation for references,
332 and that it matches the (only) representation for pointers! */
333
334 TYPE_LENGTH (ntype) = TARGET_PTR_BIT / TARGET_CHAR_BIT;
335 TYPE_CODE (ntype) = TYPE_CODE_REF;
336
337 if (!TYPE_REFERENCE_TYPE (type)) /* Remember it, if don't have one. */
338 TYPE_REFERENCE_TYPE (type) = ntype;
339
340 return ntype;
341 }
342
343 /* Same as above, but caller doesn't care about memory allocation details. */
344
345 struct type *
346 lookup_reference_type (struct type *type)
347 {
348 return make_reference_type (type, (struct type **) 0);
349 }
350
351 /* Lookup a function type that returns type TYPE. TYPEPTR, if nonzero, points
352 to a pointer to memory where the function type should be stored.
353 If *TYPEPTR is zero, update it to point to the function type we return.
354 We allocate new memory if needed. */
355
356 struct type *
357 make_function_type (struct type *type, struct type **typeptr)
358 {
359 register struct type *ntype; /* New type */
360 struct objfile *objfile;
361
362 if (typeptr == 0 || *typeptr == 0) /* We'll need to allocate one. */
363 {
364 ntype = alloc_type (TYPE_OBJFILE (type));
365 if (typeptr)
366 *typeptr = ntype;
367 }
368 else
369 /* We have storage, but need to reset it. */
370 {
371 ntype = *typeptr;
372 objfile = TYPE_OBJFILE (ntype);
373 smash_type (ntype);
374 TYPE_OBJFILE (ntype) = objfile;
375 }
376
377 TYPE_TARGET_TYPE (ntype) = type;
378
379 TYPE_LENGTH (ntype) = 1;
380 TYPE_CODE (ntype) = TYPE_CODE_FUNC;
381
382 return ntype;
383 }
384
385
386 /* Given a type TYPE, return a type of functions that return that type.
387 May need to construct such a type if this is the first use. */
388
389 struct type *
390 lookup_function_type (struct type *type)
391 {
392 return make_function_type (type, (struct type **) 0);
393 }
394
395 /* Identify address space identifier by name --
396 return the integer flag defined in gdbtypes.h. */
397 extern int
398 address_space_name_to_int (char *space_identifier)
399 {
400 struct gdbarch *gdbarch = current_gdbarch;
401 int type_flags;
402 /* Check for known address space delimiters. */
403 if (!strcmp (space_identifier, "code"))
404 return TYPE_FLAG_CODE_SPACE;
405 else if (!strcmp (space_identifier, "data"))
406 return TYPE_FLAG_DATA_SPACE;
407 else if (gdbarch_address_class_name_to_type_flags_p (gdbarch)
408 && gdbarch_address_class_name_to_type_flags (gdbarch,
409 space_identifier,
410 &type_flags))
411 return type_flags;
412 else
413 error ("Unknown address space specifier: \"%s\"", space_identifier);
414 }
415
416 /* Identify address space identifier by integer flag as defined in
417 gdbtypes.h -- return the string version of the adress space name. */
418
419 const char *
420 address_space_int_to_name (int space_flag)
421 {
422 struct gdbarch *gdbarch = current_gdbarch;
423 if (space_flag & TYPE_FLAG_CODE_SPACE)
424 return "code";
425 else if (space_flag & TYPE_FLAG_DATA_SPACE)
426 return "data";
427 else if ((space_flag & TYPE_FLAG_ADDRESS_CLASS_ALL)
428 && gdbarch_address_class_type_flags_to_name_p (gdbarch))
429 return gdbarch_address_class_type_flags_to_name (gdbarch, space_flag);
430 else
431 return NULL;
432 }
433
434 /* Create a new type with instance flags NEW_FLAGS, based on TYPE.
435 If STORAGE is non-NULL, create the new type instance there. */
436
437 struct type *
438 make_qualified_type (struct type *type, int new_flags,
439 struct type *storage)
440 {
441 struct type *ntype;
442
443 ntype = type;
444 do {
445 if (TYPE_INSTANCE_FLAGS (ntype) == new_flags)
446 return ntype;
447 ntype = TYPE_CHAIN (ntype);
448 } while (ntype != type);
449
450 /* Create a new type instance. */
451 if (storage == NULL)
452 ntype = alloc_type_instance (type);
453 else
454 {
455 ntype = storage;
456 TYPE_MAIN_TYPE (ntype) = TYPE_MAIN_TYPE (type);
457 TYPE_CHAIN (ntype) = ntype;
458 }
459
460 /* Pointers or references to the original type are not relevant to
461 the new type. */
462 TYPE_POINTER_TYPE (ntype) = (struct type *) 0;
463 TYPE_REFERENCE_TYPE (ntype) = (struct type *) 0;
464
465 /* Chain the new qualified type to the old type. */
466 TYPE_CHAIN (ntype) = TYPE_CHAIN (type);
467 TYPE_CHAIN (type) = ntype;
468
469 /* Now set the instance flags and return the new type. */
470 TYPE_INSTANCE_FLAGS (ntype) = new_flags;
471
472 return ntype;
473 }
474
475 /* Make an address-space-delimited variant of a type -- a type that
476 is identical to the one supplied except that it has an address
477 space attribute attached to it (such as "code" or "data").
478
479 The space attributes "code" and "data" are for Harvard architectures.
480 The address space attributes are for architectures which have
481 alternately sized pointers or pointers with alternate representations. */
482
483 struct type *
484 make_type_with_address_space (struct type *type, int space_flag)
485 {
486 struct type *ntype;
487 int new_flags = ((TYPE_INSTANCE_FLAGS (type)
488 & ~(TYPE_FLAG_CODE_SPACE | TYPE_FLAG_DATA_SPACE
489 | TYPE_FLAG_ADDRESS_CLASS_ALL))
490 | space_flag);
491
492 return make_qualified_type (type, new_flags, NULL);
493 }
494
495 /* Make a "c-v" variant of a type -- a type that is identical to the
496 one supplied except that it may have const or volatile attributes
497 CNST is a flag for setting the const attribute
498 VOLTL is a flag for setting the volatile attribute
499 TYPE is the base type whose variant we are creating.
500 TYPEPTR, if nonzero, points
501 to a pointer to memory where the reference type should be stored.
502 If *TYPEPTR is zero, update it to point to the reference type we return.
503 We allocate new memory if needed. */
504
505 struct type *
506 make_cv_type (int cnst, int voltl, struct type *type, struct type **typeptr)
507 {
508 register struct type *ntype; /* New type */
509 register struct type *tmp_type = type; /* tmp type */
510 struct objfile *objfile;
511
512 int new_flags = (TYPE_INSTANCE_FLAGS (type)
513 & ~(TYPE_FLAG_CONST | TYPE_FLAG_VOLATILE));
514
515 if (cnst)
516 new_flags |= TYPE_FLAG_CONST;
517
518 if (voltl)
519 new_flags |= TYPE_FLAG_VOLATILE;
520
521 if (typeptr && *typeptr != NULL)
522 {
523 /* Objfile is per-core-type. This const-qualified type had best
524 belong to the same objfile as the type it is qualifying, unless
525 we are overwriting a stub type, in which case the safest thing
526 to do is to copy the core type into the new objfile. */
527
528 gdb_assert (TYPE_OBJFILE (*typeptr) == TYPE_OBJFILE (type)
529 || TYPE_STUB (*typeptr));
530 if (TYPE_OBJFILE (*typeptr) != TYPE_OBJFILE (type))
531 {
532 TYPE_MAIN_TYPE (*typeptr)
533 = TYPE_ALLOC (*typeptr, sizeof (struct main_type));
534 *TYPE_MAIN_TYPE (*typeptr)
535 = *TYPE_MAIN_TYPE (type);
536 }
537 }
538
539 ntype = make_qualified_type (type, new_flags, typeptr ? *typeptr : NULL);
540
541 if (typeptr != NULL)
542 *typeptr = ntype;
543
544 return ntype;
545 }
546
547 /* Replace the contents of ntype with the type *type. This changes the
548 contents, rather than the pointer for TYPE_MAIN_TYPE (ntype); thus
549 the changes are propogated to all types in the TYPE_CHAIN.
550
551 In order to build recursive types, it's inevitable that we'll need
552 to update types in place --- but this sort of indiscriminate
553 smashing is ugly, and needs to be replaced with something more
554 controlled. TYPE_MAIN_TYPE is a step in this direction; it's not
555 clear if more steps are needed. */
556 void
557 replace_type (struct type *ntype, struct type *type)
558 {
559 struct type *cv_chain, *as_chain, *ptr, *ref;
560
561 *TYPE_MAIN_TYPE (ntype) = *TYPE_MAIN_TYPE (type);
562
563 /* Assert that the two types have equivalent instance qualifiers.
564 This should be true for at least all of our debug readers. */
565 gdb_assert (TYPE_INSTANCE_FLAGS (ntype) == TYPE_INSTANCE_FLAGS (type));
566 }
567
568 /* Implement direct support for MEMBER_TYPE in GNU C++.
569 May need to construct such a type if this is the first use.
570 The TYPE is the type of the member. The DOMAIN is the type
571 of the aggregate that the member belongs to. */
572
573 struct type *
574 lookup_member_type (struct type *type, struct type *domain)
575 {
576 register struct type *mtype;
577
578 mtype = alloc_type (TYPE_OBJFILE (type));
579 smash_to_member_type (mtype, domain, type);
580 return (mtype);
581 }
582
583 /* Allocate a stub method whose return type is TYPE.
584 This apparently happens for speed of symbol reading, since parsing
585 out the arguments to the method is cpu-intensive, the way we are doing
586 it. So, we will fill in arguments later.
587 This always returns a fresh type. */
588
589 struct type *
590 allocate_stub_method (struct type *type)
591 {
592 struct type *mtype;
593
594 mtype = init_type (TYPE_CODE_METHOD, 1, TYPE_FLAG_STUB, NULL,
595 TYPE_OBJFILE (type));
596 TYPE_TARGET_TYPE (mtype) = type;
597 /* _DOMAIN_TYPE (mtype) = unknown yet */
598 return (mtype);
599 }
600
601 /* Create a range type using either a blank type supplied in RESULT_TYPE,
602 or creating a new type, inheriting the objfile from INDEX_TYPE.
603
604 Indices will be of type INDEX_TYPE, and will range from LOW_BOUND to
605 HIGH_BOUND, inclusive.
606
607 FIXME: Maybe we should check the TYPE_CODE of RESULT_TYPE to make
608 sure it is TYPE_CODE_UNDEF before we bash it into a range type? */
609
610 struct type *
611 create_range_type (struct type *result_type, struct type *index_type,
612 int low_bound, int high_bound)
613 {
614 if (result_type == NULL)
615 {
616 result_type = alloc_type (TYPE_OBJFILE (index_type));
617 }
618 TYPE_CODE (result_type) = TYPE_CODE_RANGE;
619 TYPE_TARGET_TYPE (result_type) = index_type;
620 if (TYPE_STUB (index_type))
621 TYPE_FLAGS (result_type) |= TYPE_FLAG_TARGET_STUB;
622 else
623 TYPE_LENGTH (result_type) = TYPE_LENGTH (check_typedef (index_type));
624 TYPE_NFIELDS (result_type) = 2;
625 TYPE_FIELDS (result_type) = (struct field *)
626 TYPE_ALLOC (result_type, 2 * sizeof (struct field));
627 memset (TYPE_FIELDS (result_type), 0, 2 * sizeof (struct field));
628 TYPE_FIELD_BITPOS (result_type, 0) = low_bound;
629 TYPE_FIELD_BITPOS (result_type, 1) = high_bound;
630 TYPE_FIELD_TYPE (result_type, 0) = builtin_type_int; /* FIXME */
631 TYPE_FIELD_TYPE (result_type, 1) = builtin_type_int; /* FIXME */
632
633 if (low_bound >= 0)
634 TYPE_FLAGS (result_type) |= TYPE_FLAG_UNSIGNED;
635
636 return (result_type);
637 }
638
639 /* Set *LOWP and *HIGHP to the lower and upper bounds of discrete type TYPE.
640 Return 1 of type is a range type, 0 if it is discrete (and bounds
641 will fit in LONGEST), or -1 otherwise. */
642
643 int
644 get_discrete_bounds (struct type *type, LONGEST *lowp, LONGEST *highp)
645 {
646 CHECK_TYPEDEF (type);
647 switch (TYPE_CODE (type))
648 {
649 case TYPE_CODE_RANGE:
650 *lowp = TYPE_LOW_BOUND (type);
651 *highp = TYPE_HIGH_BOUND (type);
652 return 1;
653 case TYPE_CODE_ENUM:
654 if (TYPE_NFIELDS (type) > 0)
655 {
656 /* The enums may not be sorted by value, so search all
657 entries */
658 int i;
659
660 *lowp = *highp = TYPE_FIELD_BITPOS (type, 0);
661 for (i = 0; i < TYPE_NFIELDS (type); i++)
662 {
663 if (TYPE_FIELD_BITPOS (type, i) < *lowp)
664 *lowp = TYPE_FIELD_BITPOS (type, i);
665 if (TYPE_FIELD_BITPOS (type, i) > *highp)
666 *highp = TYPE_FIELD_BITPOS (type, i);
667 }
668
669 /* Set unsigned indicator if warranted. */
670 if (*lowp >= 0)
671 {
672 TYPE_FLAGS (type) |= TYPE_FLAG_UNSIGNED;
673 }
674 }
675 else
676 {
677 *lowp = 0;
678 *highp = -1;
679 }
680 return 0;
681 case TYPE_CODE_BOOL:
682 *lowp = 0;
683 *highp = 1;
684 return 0;
685 case TYPE_CODE_INT:
686 if (TYPE_LENGTH (type) > sizeof (LONGEST)) /* Too big */
687 return -1;
688 if (!TYPE_UNSIGNED (type))
689 {
690 *lowp = -(1 << (TYPE_LENGTH (type) * TARGET_CHAR_BIT - 1));
691 *highp = -*lowp - 1;
692 return 0;
693 }
694 /* ... fall through for unsigned ints ... */
695 case TYPE_CODE_CHAR:
696 *lowp = 0;
697 /* This round-about calculation is to avoid shifting by
698 TYPE_LENGTH (type) * TARGET_CHAR_BIT, which will not work
699 if TYPE_LENGTH (type) == sizeof (LONGEST). */
700 *highp = 1 << (TYPE_LENGTH (type) * TARGET_CHAR_BIT - 1);
701 *highp = (*highp - 1) | *highp;
702 return 0;
703 default:
704 return -1;
705 }
706 }
707
708 /* Create an array type using either a blank type supplied in RESULT_TYPE,
709 or creating a new type, inheriting the objfile from RANGE_TYPE.
710
711 Elements will be of type ELEMENT_TYPE, the indices will be of type
712 RANGE_TYPE.
713
714 FIXME: Maybe we should check the TYPE_CODE of RESULT_TYPE to make
715 sure it is TYPE_CODE_UNDEF before we bash it into an array type? */
716
717 struct type *
718 create_array_type (struct type *result_type, struct type *element_type,
719 struct type *range_type)
720 {
721 LONGEST low_bound, high_bound;
722
723 if (result_type == NULL)
724 {
725 result_type = alloc_type (TYPE_OBJFILE (range_type));
726 }
727 TYPE_CODE (result_type) = TYPE_CODE_ARRAY;
728 TYPE_TARGET_TYPE (result_type) = element_type;
729 if (get_discrete_bounds (range_type, &low_bound, &high_bound) < 0)
730 low_bound = high_bound = 0;
731 CHECK_TYPEDEF (element_type);
732 TYPE_LENGTH (result_type) =
733 TYPE_LENGTH (element_type) * (high_bound - low_bound + 1);
734 TYPE_NFIELDS (result_type) = 1;
735 TYPE_FIELDS (result_type) =
736 (struct field *) TYPE_ALLOC (result_type, sizeof (struct field));
737 memset (TYPE_FIELDS (result_type), 0, sizeof (struct field));
738 TYPE_FIELD_TYPE (result_type, 0) = range_type;
739 TYPE_VPTR_FIELDNO (result_type) = -1;
740
741 /* TYPE_FLAG_TARGET_STUB will take care of zero length arrays */
742 if (TYPE_LENGTH (result_type) == 0)
743 TYPE_FLAGS (result_type) |= TYPE_FLAG_TARGET_STUB;
744
745 return (result_type);
746 }
747
748 /* Create a string type using either a blank type supplied in RESULT_TYPE,
749 or creating a new type. String types are similar enough to array of
750 char types that we can use create_array_type to build the basic type
751 and then bash it into a string type.
752
753 For fixed length strings, the range type contains 0 as the lower
754 bound and the length of the string minus one as the upper bound.
755
756 FIXME: Maybe we should check the TYPE_CODE of RESULT_TYPE to make
757 sure it is TYPE_CODE_UNDEF before we bash it into a string type? */
758
759 struct type *
760 create_string_type (struct type *result_type, struct type *range_type)
761 {
762 result_type = create_array_type (result_type,
763 *current_language->string_char_type,
764 range_type);
765 TYPE_CODE (result_type) = TYPE_CODE_STRING;
766 return (result_type);
767 }
768
769 struct type *
770 create_set_type (struct type *result_type, struct type *domain_type)
771 {
772 LONGEST low_bound, high_bound, bit_length;
773 if (result_type == NULL)
774 {
775 result_type = alloc_type (TYPE_OBJFILE (domain_type));
776 }
777 TYPE_CODE (result_type) = TYPE_CODE_SET;
778 TYPE_NFIELDS (result_type) = 1;
779 TYPE_FIELDS (result_type) = (struct field *)
780 TYPE_ALLOC (result_type, 1 * sizeof (struct field));
781 memset (TYPE_FIELDS (result_type), 0, sizeof (struct field));
782
783 if (!TYPE_STUB (domain_type))
784 {
785 if (get_discrete_bounds (domain_type, &low_bound, &high_bound) < 0)
786 low_bound = high_bound = 0;
787 bit_length = high_bound - low_bound + 1;
788 TYPE_LENGTH (result_type)
789 = (bit_length + TARGET_CHAR_BIT - 1) / TARGET_CHAR_BIT;
790 }
791 TYPE_FIELD_TYPE (result_type, 0) = domain_type;
792
793 if (low_bound >= 0)
794 TYPE_FLAGS (result_type) |= TYPE_FLAG_UNSIGNED;
795
796 return (result_type);
797 }
798
799 /* Construct and return a type of the form:
800 struct NAME { ELT_TYPE ELT_NAME[N]; }
801 We use these types for SIMD registers. For example, the type of
802 the SSE registers on the late x86-family processors is:
803 struct __builtin_v4sf { float f[4]; }
804 built by the function call:
805 init_simd_type ("__builtin_v4sf", builtin_type_float, "f", 4)
806 The type returned is a permanent type, allocated using malloc; it
807 doesn't live in any objfile's obstack. */
808 static struct type *
809 init_simd_type (char *name,
810 struct type *elt_type,
811 char *elt_name,
812 int n)
813 {
814 struct type *simd_type;
815 struct type *array_type;
816
817 simd_type = init_composite_type (name, TYPE_CODE_STRUCT);
818 array_type = create_array_type (0, elt_type,
819 create_range_type (0, builtin_type_int,
820 0, n-1));
821 append_composite_type_field (simd_type, elt_name, array_type);
822 return simd_type;
823 }
824
825 static struct type *
826 init_vector_type (struct type *elt_type, int n)
827 {
828 struct type *array_type;
829
830 array_type = create_array_type (0, elt_type,
831 create_range_type (0, builtin_type_int,
832 0, n-1));
833 TYPE_FLAGS (array_type) |= TYPE_FLAG_VECTOR;
834 return array_type;
835 }
836
837 static struct type *
838 build_builtin_type_vec64 (void)
839 {
840 /* Construct a type for the 64 bit registers. The type we're
841 building is this: */
842 #if 0
843 union __gdb_builtin_type_vec64
844 {
845 int64_t uint64;
846 float v2_float[2];
847 int32_t v2_int32[2];
848 int16_t v4_int16[4];
849 int8_t v8_int8[8];
850 };
851 #endif
852
853 struct type *t;
854
855 t = init_composite_type ("__gdb_builtin_type_vec64", TYPE_CODE_UNION);
856 append_composite_type_field (t, "uint64", builtin_type_int64);
857 append_composite_type_field (t, "v2_float", builtin_type_v2_float);
858 append_composite_type_field (t, "v2_int32", builtin_type_v2_int32);
859 append_composite_type_field (t, "v4_int16", builtin_type_v4_int16);
860 append_composite_type_field (t, "v8_int8", builtin_type_v8_int8);
861
862 TYPE_FLAGS (t) |= TYPE_FLAG_VECTOR;
863 TYPE_NAME (t) = "builtin_type_vec64";
864 return t;
865 }
866
867 static struct type *
868 build_builtin_type_vec64i (void)
869 {
870 /* Construct a type for the 64 bit registers. The type we're
871 building is this: */
872 #if 0
873 union __gdb_builtin_type_vec64i
874 {
875 int64_t uint64;
876 int32_t v2_int32[2];
877 int16_t v4_int16[4];
878 int8_t v8_int8[8];
879 };
880 #endif
881
882 struct type *t;
883
884 t = init_composite_type ("__gdb_builtin_type_vec64i", TYPE_CODE_UNION);
885 append_composite_type_field (t, "uint64", builtin_type_int64);
886 append_composite_type_field (t, "v2_int32", builtin_type_v2_int32);
887 append_composite_type_field (t, "v4_int16", builtin_type_v4_int16);
888 append_composite_type_field (t, "v8_int8", builtin_type_v8_int8);
889
890 TYPE_FLAGS (t) |= TYPE_FLAG_VECTOR;
891 TYPE_NAME (t) = "builtin_type_vec64i";
892 return t;
893 }
894
895 static struct type *
896 build_builtin_type_vec128 (void)
897 {
898 /* Construct a type for the 128 bit registers. The type we're
899 building is this: */
900 #if 0
901 union __gdb_builtin_type_vec128
902 {
903 int128_t uint128;
904 float v4_float[4];
905 int32_t v4_int32[4];
906 int16_t v8_int16[8];
907 int8_t v16_int8[16];
908 };
909 #endif
910
911 struct type *t;
912
913 t = init_composite_type ("__gdb_builtin_type_vec128", TYPE_CODE_UNION);
914 append_composite_type_field (t, "uint128", builtin_type_int128);
915 append_composite_type_field (t, "v4_float", builtin_type_v4_float);
916 append_composite_type_field (t, "v4_int32", builtin_type_v4_int32);
917 append_composite_type_field (t, "v8_int16", builtin_type_v8_int16);
918 append_composite_type_field (t, "v16_int8", builtin_type_v16_int8);
919
920 TYPE_FLAGS (t) |= TYPE_FLAG_VECTOR;
921 TYPE_NAME (t) = "builtin_type_vec128";
922 return t;
923 }
924
925 static struct type *
926 build_builtin_type_vec128i (void)
927 {
928 /* 128-bit Intel SIMD registers */
929 struct type *t;
930
931 t = init_composite_type ("__gdb_builtin_type_vec128i", TYPE_CODE_UNION);
932 append_composite_type_field (t, "v4_float", builtin_type_v4_float);
933 append_composite_type_field (t, "v2_double", builtin_type_v2_double);
934 append_composite_type_field (t, "v16_int8", builtin_type_v16_int8);
935 append_composite_type_field (t, "v8_int16", builtin_type_v8_int16);
936 append_composite_type_field (t, "v4_int32", builtin_type_v4_int32);
937 append_composite_type_field (t, "v2_int64", builtin_type_v2_int64);
938 append_composite_type_field (t, "uint128", builtin_type_int128);
939
940 TYPE_FLAGS (t) |= TYPE_FLAG_VECTOR;
941 TYPE_NAME (t) = "builtin_type_vec128i";
942 return t;
943 }
944
945 /* Smash TYPE to be a type of members of DOMAIN with type TO_TYPE.
946 A MEMBER is a wierd thing -- it amounts to a typed offset into
947 a struct, e.g. "an int at offset 8". A MEMBER TYPE doesn't
948 include the offset (that's the value of the MEMBER itself), but does
949 include the structure type into which it points (for some reason).
950
951 When "smashing" the type, we preserve the objfile that the
952 old type pointed to, since we aren't changing where the type is actually
953 allocated. */
954
955 void
956 smash_to_member_type (struct type *type, struct type *domain,
957 struct type *to_type)
958 {
959 struct objfile *objfile;
960
961 objfile = TYPE_OBJFILE (type);
962
963 smash_type (type);
964 TYPE_OBJFILE (type) = objfile;
965 TYPE_TARGET_TYPE (type) = to_type;
966 TYPE_DOMAIN_TYPE (type) = domain;
967 TYPE_LENGTH (type) = 1; /* In practice, this is never needed. */
968 TYPE_CODE (type) = TYPE_CODE_MEMBER;
969 }
970
971 /* Smash TYPE to be a type of method of DOMAIN with type TO_TYPE.
972 METHOD just means `function that gets an extra "this" argument'.
973
974 When "smashing" the type, we preserve the objfile that the
975 old type pointed to, since we aren't changing where the type is actually
976 allocated. */
977
978 void
979 smash_to_method_type (struct type *type, struct type *domain,
980 struct type *to_type, struct field *args,
981 int nargs, int varargs)
982 {
983 struct objfile *objfile;
984
985 objfile = TYPE_OBJFILE (type);
986
987 smash_type (type);
988 TYPE_OBJFILE (type) = objfile;
989 TYPE_TARGET_TYPE (type) = to_type;
990 TYPE_DOMAIN_TYPE (type) = domain;
991 TYPE_FIELDS (type) = args;
992 TYPE_NFIELDS (type) = nargs;
993 if (varargs)
994 TYPE_FLAGS (type) |= TYPE_FLAG_VARARGS;
995 TYPE_LENGTH (type) = 1; /* In practice, this is never needed. */
996 TYPE_CODE (type) = TYPE_CODE_METHOD;
997 }
998
999 /* Return a typename for a struct/union/enum type without "struct ",
1000 "union ", or "enum ". If the type has a NULL name, return NULL. */
1001
1002 char *
1003 type_name_no_tag (register const struct type *type)
1004 {
1005 if (TYPE_TAG_NAME (type) != NULL)
1006 return TYPE_TAG_NAME (type);
1007
1008 /* Is there code which expects this to return the name if there is no
1009 tag name? My guess is that this is mainly used for C++ in cases where
1010 the two will always be the same. */
1011 return TYPE_NAME (type);
1012 }
1013
1014 /* Lookup a primitive type named NAME.
1015 Return zero if NAME is not a primitive type. */
1016
1017 struct type *
1018 lookup_primitive_typename (char *name)
1019 {
1020 struct type **const *p;
1021
1022 for (p = current_language->la_builtin_type_vector; *p != NULL; p++)
1023 {
1024 if (STREQ (TYPE_NAME (**p), name))
1025 {
1026 return (**p);
1027 }
1028 }
1029 return (NULL);
1030 }
1031
1032 /* Lookup a typedef or primitive type named NAME,
1033 visible in lexical block BLOCK.
1034 If NOERR is nonzero, return zero if NAME is not suitably defined. */
1035
1036 struct type *
1037 lookup_typename (char *name, struct block *block, int noerr)
1038 {
1039 register struct symbol *sym;
1040 register struct type *tmp;
1041
1042 sym = lookup_symbol (name, block, VAR_NAMESPACE, 0, (struct symtab **) NULL);
1043 if (sym == NULL || SYMBOL_CLASS (sym) != LOC_TYPEDEF)
1044 {
1045 tmp = lookup_primitive_typename (name);
1046 if (tmp)
1047 {
1048 return (tmp);
1049 }
1050 else if (!tmp && noerr)
1051 {
1052 return (NULL);
1053 }
1054 else
1055 {
1056 error ("No type named %s.", name);
1057 }
1058 }
1059 return (SYMBOL_TYPE (sym));
1060 }
1061
1062 struct type *
1063 lookup_unsigned_typename (char *name)
1064 {
1065 char *uns = alloca (strlen (name) + 10);
1066
1067 strcpy (uns, "unsigned ");
1068 strcpy (uns + 9, name);
1069 return (lookup_typename (uns, (struct block *) NULL, 0));
1070 }
1071
1072 struct type *
1073 lookup_signed_typename (char *name)
1074 {
1075 struct type *t;
1076 char *uns = alloca (strlen (name) + 8);
1077
1078 strcpy (uns, "signed ");
1079 strcpy (uns + 7, name);
1080 t = lookup_typename (uns, (struct block *) NULL, 1);
1081 /* If we don't find "signed FOO" just try again with plain "FOO". */
1082 if (t != NULL)
1083 return t;
1084 return lookup_typename (name, (struct block *) NULL, 0);
1085 }
1086
1087 /* Lookup a structure type named "struct NAME",
1088 visible in lexical block BLOCK. */
1089
1090 struct type *
1091 lookup_struct (char *name, struct block *block)
1092 {
1093 register struct symbol *sym;
1094
1095 sym = lookup_symbol (name, block, STRUCT_NAMESPACE, 0,
1096 (struct symtab **) NULL);
1097
1098 if (sym == NULL)
1099 {
1100 error ("No struct type named %s.", name);
1101 }
1102 if (TYPE_CODE (SYMBOL_TYPE (sym)) != TYPE_CODE_STRUCT)
1103 {
1104 error ("This context has class, union or enum %s, not a struct.", name);
1105 }
1106 return (SYMBOL_TYPE (sym));
1107 }
1108
1109 /* Lookup a union type named "union NAME",
1110 visible in lexical block BLOCK. */
1111
1112 struct type *
1113 lookup_union (char *name, struct block *block)
1114 {
1115 register struct symbol *sym;
1116 struct type *t;
1117
1118 sym = lookup_symbol (name, block, STRUCT_NAMESPACE, 0,
1119 (struct symtab **) NULL);
1120
1121 if (sym == NULL)
1122 error ("No union type named %s.", name);
1123
1124 t = SYMBOL_TYPE (sym);
1125
1126 if (TYPE_CODE (t) == TYPE_CODE_UNION)
1127 return (t);
1128
1129 /* C++ unions may come out with TYPE_CODE_CLASS, but we look at
1130 * a further "declared_type" field to discover it is really a union.
1131 */
1132 if (HAVE_CPLUS_STRUCT (t))
1133 if (TYPE_DECLARED_TYPE (t) == DECLARED_TYPE_UNION)
1134 return (t);
1135
1136 /* If we get here, it's not a union */
1137 error ("This context has class, struct or enum %s, not a union.", name);
1138 }
1139
1140
1141 /* Lookup an enum type named "enum NAME",
1142 visible in lexical block BLOCK. */
1143
1144 struct type *
1145 lookup_enum (char *name, struct block *block)
1146 {
1147 register struct symbol *sym;
1148
1149 sym = lookup_symbol (name, block, STRUCT_NAMESPACE, 0,
1150 (struct symtab **) NULL);
1151 if (sym == NULL)
1152 {
1153 error ("No enum type named %s.", name);
1154 }
1155 if (TYPE_CODE (SYMBOL_TYPE (sym)) != TYPE_CODE_ENUM)
1156 {
1157 error ("This context has class, struct or union %s, not an enum.", name);
1158 }
1159 return (SYMBOL_TYPE (sym));
1160 }
1161
1162 /* Lookup a template type named "template NAME<TYPE>",
1163 visible in lexical block BLOCK. */
1164
1165 struct type *
1166 lookup_template_type (char *name, struct type *type, struct block *block)
1167 {
1168 struct symbol *sym;
1169 char *nam = (char *) alloca (strlen (name) + strlen (TYPE_NAME (type)) + 4);
1170 strcpy (nam, name);
1171 strcat (nam, "<");
1172 strcat (nam, TYPE_NAME (type));
1173 strcat (nam, " >"); /* FIXME, extra space still introduced in gcc? */
1174
1175 sym = lookup_symbol (nam, block, VAR_NAMESPACE, 0, (struct symtab **) NULL);
1176
1177 if (sym == NULL)
1178 {
1179 error ("No template type named %s.", name);
1180 }
1181 if (TYPE_CODE (SYMBOL_TYPE (sym)) != TYPE_CODE_STRUCT)
1182 {
1183 error ("This context has class, union or enum %s, not a struct.", name);
1184 }
1185 return (SYMBOL_TYPE (sym));
1186 }
1187
1188 /* Given a type TYPE, lookup the type of the component of type named NAME.
1189
1190 TYPE can be either a struct or union, or a pointer or reference to a struct or
1191 union. If it is a pointer or reference, its target type is automatically used.
1192 Thus '.' and '->' are interchangable, as specified for the definitions of the
1193 expression element types STRUCTOP_STRUCT and STRUCTOP_PTR.
1194
1195 If NOERR is nonzero, return zero if NAME is not suitably defined.
1196 If NAME is the name of a baseclass type, return that type. */
1197
1198 struct type *
1199 lookup_struct_elt_type (struct type *type, char *name, int noerr)
1200 {
1201 int i;
1202
1203 for (;;)
1204 {
1205 CHECK_TYPEDEF (type);
1206 if (TYPE_CODE (type) != TYPE_CODE_PTR
1207 && TYPE_CODE (type) != TYPE_CODE_REF)
1208 break;
1209 type = TYPE_TARGET_TYPE (type);
1210 }
1211
1212 if (TYPE_CODE (type) != TYPE_CODE_STRUCT &&
1213 TYPE_CODE (type) != TYPE_CODE_UNION)
1214 {
1215 target_terminal_ours ();
1216 gdb_flush (gdb_stdout);
1217 fprintf_unfiltered (gdb_stderr, "Type ");
1218 type_print (type, "", gdb_stderr, -1);
1219 error (" is not a structure or union type.");
1220 }
1221
1222 #if 0
1223 /* FIXME: This change put in by Michael seems incorrect for the case where
1224 the structure tag name is the same as the member name. I.E. when doing
1225 "ptype bell->bar" for "struct foo { int bar; int foo; } bell;"
1226 Disabled by fnf. */
1227 {
1228 char *typename;
1229
1230 typename = type_name_no_tag (type);
1231 if (typename != NULL && STREQ (typename, name))
1232 return type;
1233 }
1234 #endif
1235
1236 for (i = TYPE_NFIELDS (type) - 1; i >= TYPE_N_BASECLASSES (type); i--)
1237 {
1238 char *t_field_name = TYPE_FIELD_NAME (type, i);
1239
1240 if (t_field_name && (strcmp_iw (t_field_name, name) == 0))
1241 {
1242 return TYPE_FIELD_TYPE (type, i);
1243 }
1244 }
1245
1246 /* OK, it's not in this class. Recursively check the baseclasses. */
1247 for (i = TYPE_N_BASECLASSES (type) - 1; i >= 0; i--)
1248 {
1249 struct type *t;
1250
1251 t = lookup_struct_elt_type (TYPE_BASECLASS (type, i), name, noerr);
1252 if (t != NULL)
1253 {
1254 return t;
1255 }
1256 }
1257
1258 if (noerr)
1259 {
1260 return NULL;
1261 }
1262
1263 target_terminal_ours ();
1264 gdb_flush (gdb_stdout);
1265 fprintf_unfiltered (gdb_stderr, "Type ");
1266 type_print (type, "", gdb_stderr, -1);
1267 fprintf_unfiltered (gdb_stderr, " has no component named ");
1268 fputs_filtered (name, gdb_stderr);
1269 error (".");
1270 return (struct type *) -1; /* For lint */
1271 }
1272
1273 /* If possible, make the vptr_fieldno and vptr_basetype fields of TYPE
1274 valid. Callers should be aware that in some cases (for example,
1275 the type or one of its baseclasses is a stub type and we are
1276 debugging a .o file), this function will not be able to find the virtual
1277 function table pointer, and vptr_fieldno will remain -1 and vptr_basetype
1278 will remain NULL. */
1279
1280 void
1281 fill_in_vptr_fieldno (struct type *type)
1282 {
1283 CHECK_TYPEDEF (type);
1284
1285 if (TYPE_VPTR_FIELDNO (type) < 0)
1286 {
1287 int i;
1288
1289 /* We must start at zero in case the first (and only) baseclass is
1290 virtual (and hence we cannot share the table pointer). */
1291 for (i = 0; i < TYPE_N_BASECLASSES (type); i++)
1292 {
1293 struct type *baseclass = check_typedef (TYPE_BASECLASS (type, i));
1294 fill_in_vptr_fieldno (baseclass);
1295 if (TYPE_VPTR_FIELDNO (baseclass) >= 0)
1296 {
1297 TYPE_VPTR_FIELDNO (type) = TYPE_VPTR_FIELDNO (baseclass);
1298 TYPE_VPTR_BASETYPE (type) = TYPE_VPTR_BASETYPE (baseclass);
1299 break;
1300 }
1301 }
1302 }
1303 }
1304
1305 /* Find the method and field indices for the destructor in class type T.
1306 Return 1 if the destructor was found, otherwise, return 0. */
1307
1308 int
1309 get_destructor_fn_field (struct type *t, int *method_indexp, int *field_indexp)
1310 {
1311 int i;
1312
1313 for (i = 0; i < TYPE_NFN_FIELDS (t); i++)
1314 {
1315 int j;
1316 struct fn_field *f = TYPE_FN_FIELDLIST1 (t, i);
1317
1318 for (j = 0; j < TYPE_FN_FIELDLIST_LENGTH (t, i); j++)
1319 {
1320 if (is_destructor_name (TYPE_FN_FIELD_PHYSNAME (f, j)) != 0)
1321 {
1322 *method_indexp = i;
1323 *field_indexp = j;
1324 return 1;
1325 }
1326 }
1327 }
1328 return 0;
1329 }
1330
1331 /* Added by Bryan Boreham, Kewill, Sun Sep 17 18:07:17 1989.
1332
1333 If this is a stubbed struct (i.e. declared as struct foo *), see if
1334 we can find a full definition in some other file. If so, copy this
1335 definition, so we can use it in future. There used to be a comment (but
1336 not any code) that if we don't find a full definition, we'd set a flag
1337 so we don't spend time in the future checking the same type. That would
1338 be a mistake, though--we might load in more symbols which contain a
1339 full definition for the type.
1340
1341 This used to be coded as a macro, but I don't think it is called
1342 often enough to merit such treatment. */
1343
1344 static void
1345 stub_noname_complaint (void)
1346 {
1347 complaint (&symfile_complaints, "stub type has NULL name");
1348 }
1349
1350 struct type *
1351 check_typedef (struct type *type)
1352 {
1353 struct type *orig_type = type;
1354 int is_const, is_volatile;
1355
1356 while (TYPE_CODE (type) == TYPE_CODE_TYPEDEF)
1357 {
1358 if (!TYPE_TARGET_TYPE (type))
1359 {
1360 char *name;
1361 struct symbol *sym;
1362
1363 /* It is dangerous to call lookup_symbol if we are currently
1364 reading a symtab. Infinite recursion is one danger. */
1365 if (currently_reading_symtab)
1366 return type;
1367
1368 name = type_name_no_tag (type);
1369 /* FIXME: shouldn't we separately check the TYPE_NAME and the
1370 TYPE_TAG_NAME, and look in STRUCT_NAMESPACE and/or VAR_NAMESPACE
1371 as appropriate? (this code was written before TYPE_NAME and
1372 TYPE_TAG_NAME were separate). */
1373 if (name == NULL)
1374 {
1375 stub_noname_complaint ();
1376 return type;
1377 }
1378 sym = lookup_symbol (name, 0, STRUCT_NAMESPACE, 0,
1379 (struct symtab **) NULL);
1380 if (sym)
1381 TYPE_TARGET_TYPE (type) = SYMBOL_TYPE (sym);
1382 else
1383 TYPE_TARGET_TYPE (type) = alloc_type (NULL); /* TYPE_CODE_UNDEF */
1384 }
1385 type = TYPE_TARGET_TYPE (type);
1386 }
1387
1388 is_const = TYPE_CONST (type);
1389 is_volatile = TYPE_VOLATILE (type);
1390
1391 /* If this is a struct/class/union with no fields, then check whether a
1392 full definition exists somewhere else. This is for systems where a
1393 type definition with no fields is issued for such types, instead of
1394 identifying them as stub types in the first place */
1395
1396 if (TYPE_IS_OPAQUE (type) && opaque_type_resolution && !currently_reading_symtab)
1397 {
1398 char *name = type_name_no_tag (type);
1399 struct type *newtype;
1400 if (name == NULL)
1401 {
1402 stub_noname_complaint ();
1403 return type;
1404 }
1405 newtype = lookup_transparent_type (name);
1406 if (newtype)
1407 make_cv_type (is_const, is_volatile, newtype, &type);
1408 }
1409 /* Otherwise, rely on the stub flag being set for opaque/stubbed types */
1410 else if (TYPE_STUB (type) && !currently_reading_symtab)
1411 {
1412 char *name = type_name_no_tag (type);
1413 /* FIXME: shouldn't we separately check the TYPE_NAME and the
1414 TYPE_TAG_NAME, and look in STRUCT_NAMESPACE and/or VAR_NAMESPACE
1415 as appropriate? (this code was written before TYPE_NAME and
1416 TYPE_TAG_NAME were separate). */
1417 struct symbol *sym;
1418 if (name == NULL)
1419 {
1420 stub_noname_complaint ();
1421 return type;
1422 }
1423 sym = lookup_symbol (name, 0, STRUCT_NAMESPACE, 0, (struct symtab **) NULL);
1424 if (sym)
1425 make_cv_type (is_const, is_volatile, SYMBOL_TYPE (sym), &type);
1426 }
1427
1428 if (TYPE_TARGET_STUB (type))
1429 {
1430 struct type *range_type;
1431 struct type *target_type = check_typedef (TYPE_TARGET_TYPE (type));
1432
1433 if (TYPE_STUB (target_type) || TYPE_TARGET_STUB (target_type))
1434 {
1435 }
1436 else if (TYPE_CODE (type) == TYPE_CODE_ARRAY
1437 && TYPE_NFIELDS (type) == 1
1438 && (TYPE_CODE (range_type = TYPE_FIELD_TYPE (type, 0))
1439 == TYPE_CODE_RANGE))
1440 {
1441 /* Now recompute the length of the array type, based on its
1442 number of elements and the target type's length. */
1443 TYPE_LENGTH (type) =
1444 ((TYPE_FIELD_BITPOS (range_type, 1)
1445 - TYPE_FIELD_BITPOS (range_type, 0)
1446 + 1)
1447 * TYPE_LENGTH (target_type));
1448 TYPE_FLAGS (type) &= ~TYPE_FLAG_TARGET_STUB;
1449 }
1450 else if (TYPE_CODE (type) == TYPE_CODE_RANGE)
1451 {
1452 TYPE_LENGTH (type) = TYPE_LENGTH (target_type);
1453 TYPE_FLAGS (type) &= ~TYPE_FLAG_TARGET_STUB;
1454 }
1455 }
1456 /* Cache TYPE_LENGTH for future use. */
1457 TYPE_LENGTH (orig_type) = TYPE_LENGTH (type);
1458 return type;
1459 }
1460
1461 /* New code added to support parsing of Cfront stabs strings */
1462 #define INIT_EXTRA { pextras->len=0; pextras->str[0]='\0'; }
1463 #define ADD_EXTRA(c) { pextras->str[pextras->len++]=c; }
1464
1465 static void
1466 add_name (struct extra *pextras, char *n)
1467 {
1468 int nlen;
1469
1470 if ((nlen = (n ? strlen (n) : 0)) == 0)
1471 return;
1472 sprintf (pextras->str + pextras->len, "%d%s", nlen, n);
1473 pextras->len = strlen (pextras->str);
1474 }
1475
1476 static void
1477 add_mangled_type (struct extra *pextras, struct type *t)
1478 {
1479 enum type_code tcode;
1480 int tlen, tflags;
1481 char *tname;
1482
1483 tcode = TYPE_CODE (t);
1484 tlen = TYPE_LENGTH (t);
1485 tflags = TYPE_FLAGS (t);
1486 tname = TYPE_NAME (t);
1487 /* args of "..." seem to get mangled as "e" */
1488
1489 switch (tcode)
1490 {
1491 case TYPE_CODE_INT:
1492 if (tflags == 1)
1493 ADD_EXTRA ('U');
1494 switch (tlen)
1495 {
1496 case 1:
1497 ADD_EXTRA ('c');
1498 break;
1499 case 2:
1500 ADD_EXTRA ('s');
1501 break;
1502 case 4:
1503 {
1504 char *pname;
1505 if ((pname = strrchr (tname, 'l'), pname) && !strcmp (pname, "long"))
1506 {
1507 ADD_EXTRA ('l');
1508 }
1509 else
1510 {
1511 ADD_EXTRA ('i');
1512 }
1513 }
1514 break;
1515 default:
1516 {
1517 complaint (&symfile_complaints, "Bad int type code length x%x",
1518 tlen);
1519 }
1520 }
1521 break;
1522 case TYPE_CODE_FLT:
1523 switch (tlen)
1524 {
1525 case 4:
1526 ADD_EXTRA ('f');
1527 break;
1528 case 8:
1529 ADD_EXTRA ('d');
1530 break;
1531 case 16:
1532 ADD_EXTRA ('r');
1533 break;
1534 default:
1535 {
1536 complaint (&symfile_complaints, "Bad float type code length x%x",
1537 tlen);
1538 }
1539 }
1540 break;
1541 case TYPE_CODE_REF:
1542 ADD_EXTRA ('R');
1543 /* followed by what it's a ref to */
1544 break;
1545 case TYPE_CODE_PTR:
1546 ADD_EXTRA ('P');
1547 /* followed by what it's a ptr to */
1548 break;
1549 case TYPE_CODE_TYPEDEF:
1550 {
1551 complaint (&symfile_complaints,
1552 "Typedefs in overloaded functions not yet supported");
1553 }
1554 /* followed by type bytes & name */
1555 break;
1556 case TYPE_CODE_FUNC:
1557 ADD_EXTRA ('F');
1558 /* followed by func's arg '_' & ret types */
1559 break;
1560 case TYPE_CODE_VOID:
1561 ADD_EXTRA ('v');
1562 break;
1563 case TYPE_CODE_METHOD:
1564 ADD_EXTRA ('M');
1565 /* followed by name of class and func's arg '_' & ret types */
1566 add_name (pextras, tname);
1567 ADD_EXTRA ('F'); /* then mangle function */
1568 break;
1569 case TYPE_CODE_STRUCT: /* C struct */
1570 case TYPE_CODE_UNION: /* C union */
1571 case TYPE_CODE_ENUM: /* Enumeration type */
1572 /* followed by name of type */
1573 add_name (pextras, tname);
1574 break;
1575
1576 /* errors possible types/not supported */
1577 case TYPE_CODE_CHAR:
1578 case TYPE_CODE_ARRAY: /* Array type */
1579 case TYPE_CODE_MEMBER: /* Member type */
1580 case TYPE_CODE_BOOL:
1581 case TYPE_CODE_COMPLEX: /* Complex float */
1582 case TYPE_CODE_UNDEF:
1583 case TYPE_CODE_SET: /* Pascal sets */
1584 case TYPE_CODE_RANGE:
1585 case TYPE_CODE_STRING:
1586 case TYPE_CODE_BITSTRING:
1587 case TYPE_CODE_ERROR:
1588 default:
1589 {
1590 complaint (&symfile_complaints, "Unknown type code x%x", tcode);
1591 }
1592 }
1593 if (TYPE_TARGET_TYPE (t))
1594 add_mangled_type (pextras, TYPE_TARGET_TYPE (t));
1595 }
1596
1597 #if 0
1598 void
1599 cfront_mangle_name (struct type *type, int i, int j)
1600 {
1601 struct fn_field *f;
1602 char *mangled_name = gdb_mangle_name (type, i, j);
1603
1604 f = TYPE_FN_FIELDLIST1 (type, i); /* moved from below */
1605
1606 /* kludge to support cfront methods - gdb expects to find "F" for
1607 ARM_mangled names, so when we mangle, we have to add it here */
1608 if (ARM_DEMANGLING)
1609 {
1610 int k;
1611 char *arm_mangled_name;
1612 struct fn_field *method = &f[j];
1613 char *field_name = TYPE_FN_FIELDLIST_NAME (type, i);
1614 char *physname = TYPE_FN_FIELD_PHYSNAME (f, j);
1615 char *newname = type_name_no_tag (type);
1616
1617 struct type *ftype = TYPE_FN_FIELD_TYPE (f, j);
1618 int nargs = TYPE_NFIELDS (ftype); /* number of args */
1619 struct extra extras, *pextras = &extras;
1620 INIT_EXTRA
1621
1622 if (TYPE_FN_FIELD_STATIC_P (f, j)) /* j for sublist within this list */
1623 ADD_EXTRA ('S')
1624 ADD_EXTRA ('F')
1625 /* add args here! */
1626 if (nargs <= 1) /* no args besides this */
1627 ADD_EXTRA ('v')
1628 else
1629 {
1630 for (k = 1; k < nargs; k++)
1631 {
1632 struct type *t;
1633 t = TYPE_FIELD_TYPE (ftype, k);
1634 add_mangled_type (pextras, t);
1635 }
1636 }
1637 ADD_EXTRA ('\0')
1638 printf ("add_mangled_type: %s\n", extras.str); /* FIXME */
1639 xasprintf (&arm_mangled_name, "%s%s", mangled_name, extras.str);
1640 xfree (mangled_name);
1641 mangled_name = arm_mangled_name;
1642 }
1643 }
1644 #endif /* 0 */
1645
1646 #undef ADD_EXTRA
1647 /* End of new code added to support parsing of Cfront stabs strings */
1648
1649 /* Parse a type expression in the string [P..P+LENGTH). If an error occurs,
1650 silently return builtin_type_void. */
1651
1652 struct type *
1653 safe_parse_type (char *p, int length)
1654 {
1655 struct ui_file *saved_gdb_stderr;
1656 struct type *type;
1657
1658 /* Suppress error messages. */
1659 saved_gdb_stderr = gdb_stderr;
1660 gdb_stderr = ui_file_new ();
1661
1662 /* Call parse_and_eval_type() without fear of longjmp()s. */
1663 if (!gdb_parse_and_eval_type (p, length, &type))
1664 type = builtin_type_void;
1665
1666 /* Stop suppressing error messages. */
1667 ui_file_delete (gdb_stderr);
1668 gdb_stderr = saved_gdb_stderr;
1669
1670 return type;
1671 }
1672
1673 /* Ugly hack to convert method stubs into method types.
1674
1675 He ain't kiddin'. This demangles the name of the method into a string
1676 including argument types, parses out each argument type, generates
1677 a string casting a zero to that type, evaluates the string, and stuffs
1678 the resulting type into an argtype vector!!! Then it knows the type
1679 of the whole function (including argument types for overloading),
1680 which info used to be in the stab's but was removed to hack back
1681 the space required for them. */
1682
1683 static void
1684 check_stub_method (struct type *type, int method_id, int signature_id)
1685 {
1686 struct fn_field *f;
1687 char *mangled_name = gdb_mangle_name (type, method_id, signature_id);
1688 char *demangled_name = cplus_demangle (mangled_name,
1689 DMGL_PARAMS | DMGL_ANSI);
1690 char *argtypetext, *p;
1691 int depth = 0, argcount = 1;
1692 struct field *argtypes;
1693 struct type *mtype;
1694
1695 /* Make sure we got back a function string that we can use. */
1696 if (demangled_name)
1697 p = strchr (demangled_name, '(');
1698 else
1699 p = NULL;
1700
1701 if (demangled_name == NULL || p == NULL)
1702 error ("Internal: Cannot demangle mangled name `%s'.", mangled_name);
1703
1704 /* Now, read in the parameters that define this type. */
1705 p += 1;
1706 argtypetext = p;
1707 while (*p)
1708 {
1709 if (*p == '(' || *p == '<')
1710 {
1711 depth += 1;
1712 }
1713 else if (*p == ')' || *p == '>')
1714 {
1715 depth -= 1;
1716 }
1717 else if (*p == ',' && depth == 0)
1718 {
1719 argcount += 1;
1720 }
1721
1722 p += 1;
1723 }
1724
1725 /* If we read one argument and it was ``void'', don't count it. */
1726 if (strncmp (argtypetext, "(void)", 6) == 0)
1727 argcount -= 1;
1728
1729 /* We need one extra slot, for the THIS pointer. */
1730
1731 argtypes = (struct field *)
1732 TYPE_ALLOC (type, (argcount + 1) * sizeof (struct field));
1733 p = argtypetext;
1734
1735 /* Add THIS pointer for non-static methods. */
1736 f = TYPE_FN_FIELDLIST1 (type, method_id);
1737 if (TYPE_FN_FIELD_STATIC_P (f, signature_id))
1738 argcount = 0;
1739 else
1740 {
1741 argtypes[0].type = lookup_pointer_type (type);
1742 argcount = 1;
1743 }
1744
1745 if (*p != ')') /* () means no args, skip while */
1746 {
1747 depth = 0;
1748 while (*p)
1749 {
1750 if (depth <= 0 && (*p == ',' || *p == ')'))
1751 {
1752 /* Avoid parsing of ellipsis, they will be handled below.
1753 Also avoid ``void'' as above. */
1754 if (strncmp (argtypetext, "...", p - argtypetext) != 0
1755 && strncmp (argtypetext, "void", p - argtypetext) != 0)
1756 {
1757 argtypes[argcount].type =
1758 safe_parse_type (argtypetext, p - argtypetext);
1759 argcount += 1;
1760 }
1761 argtypetext = p + 1;
1762 }
1763
1764 if (*p == '(' || *p == '<')
1765 {
1766 depth += 1;
1767 }
1768 else if (*p == ')' || *p == '>')
1769 {
1770 depth -= 1;
1771 }
1772
1773 p += 1;
1774 }
1775 }
1776
1777 TYPE_FN_FIELD_PHYSNAME (f, signature_id) = mangled_name;
1778
1779 /* Now update the old "stub" type into a real type. */
1780 mtype = TYPE_FN_FIELD_TYPE (f, signature_id);
1781 TYPE_DOMAIN_TYPE (mtype) = type;
1782 TYPE_FIELDS (mtype) = argtypes;
1783 TYPE_NFIELDS (mtype) = argcount;
1784 TYPE_FLAGS (mtype) &= ~TYPE_FLAG_STUB;
1785 TYPE_FN_FIELD_STUB (f, signature_id) = 0;
1786 if (p[-2] == '.')
1787 TYPE_FLAGS (mtype) |= TYPE_FLAG_VARARGS;
1788
1789 xfree (demangled_name);
1790 }
1791
1792 /* This is the external interface to check_stub_method, above. This function
1793 unstubs all of the signatures for TYPE's METHOD_ID method name. After
1794 calling this function TYPE_FN_FIELD_STUB will be cleared for each signature
1795 and TYPE_FN_FIELDLIST_NAME will be correct.
1796
1797 This function unfortunately can not die until stabs do. */
1798
1799 void
1800 check_stub_method_group (struct type *type, int method_id)
1801 {
1802 int len = TYPE_FN_FIELDLIST_LENGTH (type, method_id);
1803 struct fn_field *f = TYPE_FN_FIELDLIST1 (type, method_id);
1804 int j, found_stub = 0;
1805
1806 for (j = 0; j < len; j++)
1807 if (TYPE_FN_FIELD_STUB (f, j))
1808 {
1809 found_stub = 1;
1810 check_stub_method (type, method_id, j);
1811 }
1812
1813 /* GNU v3 methods with incorrect names were corrected when we read in
1814 type information, because it was cheaper to do it then. The only GNU v2
1815 methods with incorrect method names are operators and destructors;
1816 destructors were also corrected when we read in type information.
1817
1818 Therefore the only thing we need to handle here are v2 operator
1819 names. */
1820 if (found_stub && strncmp (TYPE_FN_FIELD_PHYSNAME (f, 0), "_Z", 2) != 0)
1821 {
1822 int ret;
1823 char dem_opname[256];
1824
1825 ret = cplus_demangle_opname (TYPE_FN_FIELDLIST_NAME (type, method_id),
1826 dem_opname, DMGL_ANSI);
1827 if (!ret)
1828 ret = cplus_demangle_opname (TYPE_FN_FIELDLIST_NAME (type, method_id),
1829 dem_opname, 0);
1830 if (ret)
1831 TYPE_FN_FIELDLIST_NAME (type, method_id) = xstrdup (dem_opname);
1832 }
1833 }
1834
1835 const struct cplus_struct_type cplus_struct_default;
1836
1837 void
1838 allocate_cplus_struct_type (struct type *type)
1839 {
1840 if (!HAVE_CPLUS_STRUCT (type))
1841 {
1842 TYPE_CPLUS_SPECIFIC (type) = (struct cplus_struct_type *)
1843 TYPE_ALLOC (type, sizeof (struct cplus_struct_type));
1844 *(TYPE_CPLUS_SPECIFIC (type)) = cplus_struct_default;
1845 }
1846 }
1847
1848 /* Helper function to initialize the standard scalar types.
1849
1850 If NAME is non-NULL and OBJFILE is non-NULL, then we make a copy
1851 of the string pointed to by name in the type_obstack for that objfile,
1852 and initialize the type name to that copy. There are places (mipsread.c
1853 in particular, where init_type is called with a NULL value for NAME). */
1854
1855 struct type *
1856 init_type (enum type_code code, int length, int flags, char *name,
1857 struct objfile *objfile)
1858 {
1859 register struct type *type;
1860
1861 type = alloc_type (objfile);
1862 TYPE_CODE (type) = code;
1863 TYPE_LENGTH (type) = length;
1864 TYPE_FLAGS (type) |= flags;
1865 if ((name != NULL) && (objfile != NULL))
1866 {
1867 TYPE_NAME (type) =
1868 obsavestring (name, strlen (name), &objfile->type_obstack);
1869 }
1870 else
1871 {
1872 TYPE_NAME (type) = name;
1873 }
1874
1875 /* C++ fancies. */
1876
1877 if (code == TYPE_CODE_STRUCT || code == TYPE_CODE_UNION)
1878 {
1879 INIT_CPLUS_SPECIFIC (type);
1880 }
1881 return (type);
1882 }
1883
1884 /* Helper function. Create an empty composite type. */
1885
1886 struct type *
1887 init_composite_type (char *name, enum type_code code)
1888 {
1889 struct type *t;
1890 gdb_assert (code == TYPE_CODE_STRUCT
1891 || code == TYPE_CODE_UNION);
1892 t = init_type (code, 0, 0, NULL, NULL);
1893 TYPE_TAG_NAME (t) = name;
1894 return t;
1895 }
1896
1897 /* Helper function. Append a field to a composite type. */
1898
1899 void
1900 append_composite_type_field (struct type *t, char *name, struct type *field)
1901 {
1902 struct field *f;
1903 TYPE_NFIELDS (t) = TYPE_NFIELDS (t) + 1;
1904 TYPE_FIELDS (t) = xrealloc (TYPE_FIELDS (t),
1905 sizeof (struct field) * TYPE_NFIELDS (t));
1906 f = &(TYPE_FIELDS (t)[TYPE_NFIELDS (t) - 1]);
1907 memset (f, 0, sizeof f[0]);
1908 FIELD_TYPE (f[0]) = field;
1909 FIELD_NAME (f[0]) = name;
1910 if (TYPE_CODE (t) == TYPE_CODE_UNION)
1911 {
1912 if (TYPE_LENGTH (t) < TYPE_LENGTH (field))
1913 TYPE_LENGTH (t) = TYPE_LENGTH (field);
1914 }
1915 else if (TYPE_CODE (t) == TYPE_CODE_STRUCT)
1916 {
1917 TYPE_LENGTH (t) = TYPE_LENGTH (t) + TYPE_LENGTH (field);
1918 if (TYPE_NFIELDS (t) > 1)
1919 {
1920 FIELD_BITPOS (f[0]) = (FIELD_BITPOS (f[-1])
1921 + TYPE_LENGTH (field) * TARGET_CHAR_BIT);
1922 }
1923 }
1924 }
1925
1926 /* Look up a fundamental type for the specified objfile.
1927 May need to construct such a type if this is the first use.
1928
1929 Some object file formats (ELF, COFF, etc) do not define fundamental
1930 types such as "int" or "double". Others (stabs for example), do
1931 define fundamental types.
1932
1933 For the formats which don't provide fundamental types, gdb can create
1934 such types, using defaults reasonable for the current language and
1935 the current target machine.
1936
1937 NOTE: This routine is obsolescent. Each debugging format reader
1938 should manage it's own fundamental types, either creating them from
1939 suitable defaults or reading them from the debugging information,
1940 whichever is appropriate. The DWARF reader has already been
1941 fixed to do this. Once the other readers are fixed, this routine
1942 will go away. Also note that fundamental types should be managed
1943 on a compilation unit basis in a multi-language environment, not
1944 on a linkage unit basis as is done here. */
1945
1946
1947 struct type *
1948 lookup_fundamental_type (struct objfile *objfile, int typeid)
1949 {
1950 register struct type **typep;
1951 register int nbytes;
1952
1953 if (typeid < 0 || typeid >= FT_NUM_MEMBERS)
1954 {
1955 error ("internal error - invalid fundamental type id %d", typeid);
1956 }
1957
1958 /* If this is the first time we need a fundamental type for this objfile
1959 then we need to initialize the vector of type pointers. */
1960
1961 if (objfile->fundamental_types == NULL)
1962 {
1963 nbytes = FT_NUM_MEMBERS * sizeof (struct type *);
1964 objfile->fundamental_types = (struct type **)
1965 obstack_alloc (&objfile->type_obstack, nbytes);
1966 memset ((char *) objfile->fundamental_types, 0, nbytes);
1967 OBJSTAT (objfile, n_types += FT_NUM_MEMBERS);
1968 }
1969
1970 /* Look for this particular type in the fundamental type vector. If one is
1971 not found, create and install one appropriate for the current language. */
1972
1973 typep = objfile->fundamental_types + typeid;
1974 if (*typep == NULL)
1975 {
1976 *typep = create_fundamental_type (objfile, typeid);
1977 }
1978
1979 return (*typep);
1980 }
1981
1982 int
1983 can_dereference (struct type *t)
1984 {
1985 /* FIXME: Should we return true for references as well as pointers? */
1986 CHECK_TYPEDEF (t);
1987 return
1988 (t != NULL
1989 && TYPE_CODE (t) == TYPE_CODE_PTR
1990 && TYPE_CODE (TYPE_TARGET_TYPE (t)) != TYPE_CODE_VOID);
1991 }
1992
1993 int
1994 is_integral_type (struct type *t)
1995 {
1996 CHECK_TYPEDEF (t);
1997 return
1998 ((t != NULL)
1999 && ((TYPE_CODE (t) == TYPE_CODE_INT)
2000 || (TYPE_CODE (t) == TYPE_CODE_ENUM)
2001 || (TYPE_CODE (t) == TYPE_CODE_CHAR)
2002 || (TYPE_CODE (t) == TYPE_CODE_RANGE)
2003 || (TYPE_CODE (t) == TYPE_CODE_BOOL)));
2004 }
2005
2006 /* Check whether BASE is an ancestor or base class or DCLASS
2007 Return 1 if so, and 0 if not.
2008 Note: callers may want to check for identity of the types before
2009 calling this function -- identical types are considered to satisfy
2010 the ancestor relationship even if they're identical */
2011
2012 int
2013 is_ancestor (struct type *base, struct type *dclass)
2014 {
2015 int i;
2016
2017 CHECK_TYPEDEF (base);
2018 CHECK_TYPEDEF (dclass);
2019
2020 if (base == dclass)
2021 return 1;
2022 if (TYPE_NAME (base) && TYPE_NAME (dclass) &&
2023 !strcmp (TYPE_NAME (base), TYPE_NAME (dclass)))
2024 return 1;
2025
2026 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
2027 if (is_ancestor (base, TYPE_BASECLASS (dclass, i)))
2028 return 1;
2029
2030 return 0;
2031 }
2032
2033
2034
2035 /* See whether DCLASS has a virtual table. This routine is aimed at
2036 the HP/Taligent ANSI C++ runtime model, and may not work with other
2037 runtime models. Return 1 => Yes, 0 => No. */
2038
2039 int
2040 has_vtable (struct type *dclass)
2041 {
2042 /* In the HP ANSI C++ runtime model, a class has a vtable only if it
2043 has virtual functions or virtual bases. */
2044
2045 register int i;
2046
2047 if (TYPE_CODE (dclass) != TYPE_CODE_CLASS)
2048 return 0;
2049
2050 /* First check for the presence of virtual bases */
2051 if (TYPE_FIELD_VIRTUAL_BITS (dclass))
2052 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
2053 if (B_TST (TYPE_FIELD_VIRTUAL_BITS (dclass), i))
2054 return 1;
2055
2056 /* Next check for virtual functions */
2057 if (TYPE_FN_FIELDLISTS (dclass))
2058 for (i = 0; i < TYPE_NFN_FIELDS (dclass); i++)
2059 if (TYPE_FN_FIELD_VIRTUAL_P (TYPE_FN_FIELDLIST1 (dclass, i), 0))
2060 return 1;
2061
2062 /* Recurse on non-virtual bases to see if any of them needs a vtable */
2063 if (TYPE_FIELD_VIRTUAL_BITS (dclass))
2064 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
2065 if ((!B_TST (TYPE_FIELD_VIRTUAL_BITS (dclass), i)) &&
2066 (has_vtable (TYPE_FIELD_TYPE (dclass, i))))
2067 return 1;
2068
2069 /* Well, maybe we don't need a virtual table */
2070 return 0;
2071 }
2072
2073 /* Return a pointer to the "primary base class" of DCLASS.
2074
2075 A NULL return indicates that DCLASS has no primary base, or that it
2076 couldn't be found (insufficient information).
2077
2078 This routine is aimed at the HP/Taligent ANSI C++ runtime model,
2079 and may not work with other runtime models. */
2080
2081 struct type *
2082 primary_base_class (struct type *dclass)
2083 {
2084 /* In HP ANSI C++'s runtime model, a "primary base class" of a class
2085 is the first directly inherited, non-virtual base class that
2086 requires a virtual table */
2087
2088 register int i;
2089
2090 if (TYPE_CODE (dclass) != TYPE_CODE_CLASS)
2091 return NULL;
2092
2093 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
2094 if (!TYPE_FIELD_VIRTUAL (dclass, i) &&
2095 has_vtable (TYPE_FIELD_TYPE (dclass, i)))
2096 return TYPE_FIELD_TYPE (dclass, i);
2097
2098 return NULL;
2099 }
2100
2101 /* Global manipulated by virtual_base_list[_aux]() */
2102
2103 static struct vbase *current_vbase_list = NULL;
2104
2105 /* Return a pointer to a null-terminated list of struct vbase
2106 items. The vbasetype pointer of each item in the list points to the
2107 type information for a virtual base of the argument DCLASS.
2108
2109 Helper function for virtual_base_list().
2110 Note: the list goes backward, right-to-left. virtual_base_list()
2111 copies the items out in reverse order. */
2112
2113 static void
2114 virtual_base_list_aux (struct type *dclass)
2115 {
2116 struct vbase *tmp_vbase;
2117 register int i;
2118
2119 if (TYPE_CODE (dclass) != TYPE_CODE_CLASS)
2120 return;
2121
2122 for (i = 0; i < TYPE_N_BASECLASSES (dclass); i++)
2123 {
2124 /* Recurse on this ancestor, first */
2125 virtual_base_list_aux (TYPE_FIELD_TYPE (dclass, i));
2126
2127 /* If this current base is itself virtual, add it to the list */
2128 if (BASETYPE_VIA_VIRTUAL (dclass, i))
2129 {
2130 struct type *basetype = TYPE_FIELD_TYPE (dclass, i);
2131
2132 /* Check if base already recorded */
2133 tmp_vbase = current_vbase_list;
2134 while (tmp_vbase)
2135 {
2136 if (tmp_vbase->vbasetype == basetype)
2137 break; /* found it */
2138 tmp_vbase = tmp_vbase->next;
2139 }
2140
2141 if (!tmp_vbase) /* normal exit from loop */
2142 {
2143 /* Allocate new item for this virtual base */
2144 tmp_vbase = (struct vbase *) xmalloc (sizeof (struct vbase));
2145
2146 /* Stick it on at the end of the list */
2147 tmp_vbase->vbasetype = basetype;
2148 tmp_vbase->next = current_vbase_list;
2149 current_vbase_list = tmp_vbase;
2150 }
2151 } /* if virtual */
2152 } /* for loop over bases */
2153 }
2154
2155
2156 /* Compute the list of virtual bases in the right order. Virtual
2157 bases are laid out in the object's memory area in order of their
2158 occurrence in a depth-first, left-to-right search through the
2159 ancestors.
2160
2161 Argument DCLASS is the type whose virtual bases are required.
2162 Return value is the address of a null-terminated array of pointers
2163 to struct type items.
2164
2165 This routine is aimed at the HP/Taligent ANSI C++ runtime model,
2166 and may not work with other runtime models.
2167
2168 This routine merely hands off the argument to virtual_base_list_aux()
2169 and then copies the result into an array to save space. */
2170
2171 struct type **
2172 virtual_base_list (struct type *dclass)
2173 {
2174 register struct vbase *tmp_vbase;
2175 register struct vbase *tmp_vbase_2;
2176 register int i;
2177 int count;
2178 struct type **vbase_array;
2179
2180 current_vbase_list = NULL;
2181 virtual_base_list_aux (dclass);
2182
2183 for (i = 0, tmp_vbase = current_vbase_list; tmp_vbase != NULL; i++, tmp_vbase = tmp_vbase->next)
2184 /* no body */ ;
2185
2186 count = i;
2187
2188 vbase_array = (struct type **) xmalloc ((count + 1) * sizeof (struct type *));
2189
2190 for (i = count - 1, tmp_vbase = current_vbase_list; i >= 0; i--, tmp_vbase = tmp_vbase->next)
2191 vbase_array[i] = tmp_vbase->vbasetype;
2192
2193 /* Get rid of constructed chain */
2194 tmp_vbase_2 = tmp_vbase = current_vbase_list;
2195 while (tmp_vbase)
2196 {
2197 tmp_vbase = tmp_vbase->next;
2198 xfree (tmp_vbase_2);
2199 tmp_vbase_2 = tmp_vbase;
2200 }
2201
2202 vbase_array[count] = NULL;
2203 return vbase_array;
2204 }
2205
2206 /* Return the length of the virtual base list of the type DCLASS. */
2207
2208 int
2209 virtual_base_list_length (struct type *dclass)
2210 {
2211 register int i;
2212 register struct vbase *tmp_vbase;
2213
2214 current_vbase_list = NULL;
2215 virtual_base_list_aux (dclass);
2216
2217 for (i = 0, tmp_vbase = current_vbase_list; tmp_vbase != NULL; i++, tmp_vbase = tmp_vbase->next)
2218 /* no body */ ;
2219 return i;
2220 }
2221
2222 /* Return the number of elements of the virtual base list of the type
2223 DCLASS, ignoring those appearing in the primary base (and its
2224 primary base, recursively). */
2225
2226 int
2227 virtual_base_list_length_skip_primaries (struct type *dclass)
2228 {
2229 register int i;
2230 register struct vbase *tmp_vbase;
2231 struct type *primary;
2232
2233 primary = TYPE_RUNTIME_PTR (dclass) ? TYPE_PRIMARY_BASE (dclass) : NULL;
2234
2235 if (!primary)
2236 return virtual_base_list_length (dclass);
2237
2238 current_vbase_list = NULL;
2239 virtual_base_list_aux (dclass);
2240
2241 for (i = 0, tmp_vbase = current_vbase_list; tmp_vbase != NULL; tmp_vbase = tmp_vbase->next)
2242 {
2243 if (virtual_base_index (tmp_vbase->vbasetype, primary) >= 0)
2244 continue;
2245 i++;
2246 }
2247 return i;
2248 }
2249
2250
2251 /* Return the index (position) of type BASE, which is a virtual base
2252 class of DCLASS, in the latter's virtual base list. A return of -1
2253 indicates "not found" or a problem. */
2254
2255 int
2256 virtual_base_index (struct type *base, struct type *dclass)
2257 {
2258 register struct type *vbase;
2259 register int i;
2260
2261 if ((TYPE_CODE (dclass) != TYPE_CODE_CLASS) ||
2262 (TYPE_CODE (base) != TYPE_CODE_CLASS))
2263 return -1;
2264
2265 i = 0;
2266 vbase = virtual_base_list (dclass)[0];
2267 while (vbase)
2268 {
2269 if (vbase == base)
2270 break;
2271 vbase = virtual_base_list (dclass)[++i];
2272 }
2273
2274 return vbase ? i : -1;
2275 }
2276
2277
2278
2279 /* Return the index (position) of type BASE, which is a virtual base
2280 class of DCLASS, in the latter's virtual base list. Skip over all
2281 bases that may appear in the virtual base list of the primary base
2282 class of DCLASS (recursively). A return of -1 indicates "not
2283 found" or a problem. */
2284
2285 int
2286 virtual_base_index_skip_primaries (struct type *base, struct type *dclass)
2287 {
2288 register struct type *vbase;
2289 register int i, j;
2290 struct type *primary;
2291
2292 if ((TYPE_CODE (dclass) != TYPE_CODE_CLASS) ||
2293 (TYPE_CODE (base) != TYPE_CODE_CLASS))
2294 return -1;
2295
2296 primary = TYPE_RUNTIME_PTR (dclass) ? TYPE_PRIMARY_BASE (dclass) : NULL;
2297
2298 j = -1;
2299 i = 0;
2300 vbase = virtual_base_list (dclass)[0];
2301 while (vbase)
2302 {
2303 if (!primary || (virtual_base_index_skip_primaries (vbase, primary) < 0))
2304 j++;
2305 if (vbase == base)
2306 break;
2307 vbase = virtual_base_list (dclass)[++i];
2308 }
2309
2310 return vbase ? j : -1;
2311 }
2312
2313 /* Return position of a derived class DCLASS in the list of
2314 * primary bases starting with the remotest ancestor.
2315 * Position returned is 0-based. */
2316
2317 int
2318 class_index_in_primary_list (struct type *dclass)
2319 {
2320 struct type *pbc; /* primary base class */
2321
2322 /* Simply recurse on primary base */
2323 pbc = TYPE_PRIMARY_BASE (dclass);
2324 if (pbc)
2325 return 1 + class_index_in_primary_list (pbc);
2326 else
2327 return 0;
2328 }
2329
2330 /* Return a count of the number of virtual functions a type has.
2331 * This includes all the virtual functions it inherits from its
2332 * base classes too.
2333 */
2334
2335 /* pai: FIXME This doesn't do the right thing: count redefined virtual
2336 * functions only once (latest redefinition)
2337 */
2338
2339 int
2340 count_virtual_fns (struct type *dclass)
2341 {
2342 int fn, oi; /* function and overloaded instance indices */
2343 int vfuncs; /* count to return */
2344
2345 /* recurse on bases that can share virtual table */
2346 struct type *pbc = primary_base_class (dclass);
2347 if (pbc)
2348 vfuncs = count_virtual_fns (pbc);
2349 else
2350 vfuncs = 0;
2351
2352 for (fn = 0; fn < TYPE_NFN_FIELDS (dclass); fn++)
2353 for (oi = 0; oi < TYPE_FN_FIELDLIST_LENGTH (dclass, fn); oi++)
2354 if (TYPE_FN_FIELD_VIRTUAL_P (TYPE_FN_FIELDLIST1 (dclass, fn), oi))
2355 vfuncs++;
2356
2357 return vfuncs;
2358 }
2359 \f
2360
2361
2362 /* Functions for overload resolution begin here */
2363
2364 /* Compare two badness vectors A and B and return the result.
2365 * 0 => A and B are identical
2366 * 1 => A and B are incomparable
2367 * 2 => A is better than B
2368 * 3 => A is worse than B */
2369
2370 int
2371 compare_badness (struct badness_vector *a, struct badness_vector *b)
2372 {
2373 int i;
2374 int tmp;
2375 short found_pos = 0; /* any positives in c? */
2376 short found_neg = 0; /* any negatives in c? */
2377
2378 /* differing lengths => incomparable */
2379 if (a->length != b->length)
2380 return 1;
2381
2382 /* Subtract b from a */
2383 for (i = 0; i < a->length; i++)
2384 {
2385 tmp = a->rank[i] - b->rank[i];
2386 if (tmp > 0)
2387 found_pos = 1;
2388 else if (tmp < 0)
2389 found_neg = 1;
2390 }
2391
2392 if (found_pos)
2393 {
2394 if (found_neg)
2395 return 1; /* incomparable */
2396 else
2397 return 3; /* A > B */
2398 }
2399 else
2400 /* no positives */
2401 {
2402 if (found_neg)
2403 return 2; /* A < B */
2404 else
2405 return 0; /* A == B */
2406 }
2407 }
2408
2409 /* Rank a function by comparing its parameter types (PARMS, length NPARMS),
2410 * to the types of an argument list (ARGS, length NARGS).
2411 * Return a pointer to a badness vector. This has NARGS + 1 entries. */
2412
2413 struct badness_vector *
2414 rank_function (struct type **parms, int nparms, struct type **args, int nargs)
2415 {
2416 int i;
2417 struct badness_vector *bv;
2418 int min_len = nparms < nargs ? nparms : nargs;
2419
2420 bv = xmalloc (sizeof (struct badness_vector));
2421 bv->length = nargs + 1; /* add 1 for the length-match rank */
2422 bv->rank = xmalloc ((nargs + 1) * sizeof (int));
2423
2424 /* First compare the lengths of the supplied lists.
2425 * If there is a mismatch, set it to a high value. */
2426
2427 /* pai/1997-06-03 FIXME: when we have debug info about default
2428 * arguments and ellipsis parameter lists, we should consider those
2429 * and rank the length-match more finely. */
2430
2431 LENGTH_MATCH (bv) = (nargs != nparms) ? LENGTH_MISMATCH_BADNESS : 0;
2432
2433 /* Now rank all the parameters of the candidate function */
2434 for (i = 1; i <= min_len; i++)
2435 bv->rank[i] = rank_one_type (parms[i-1], args[i-1]);
2436
2437 /* If more arguments than parameters, add dummy entries */
2438 for (i = min_len + 1; i <= nargs; i++)
2439 bv->rank[i] = TOO_FEW_PARAMS_BADNESS;
2440
2441 return bv;
2442 }
2443
2444 /* Compare one type (PARM) for compatibility with another (ARG).
2445 * PARM is intended to be the parameter type of a function; and
2446 * ARG is the supplied argument's type. This function tests if
2447 * the latter can be converted to the former.
2448 *
2449 * Return 0 if they are identical types;
2450 * Otherwise, return an integer which corresponds to how compatible
2451 * PARM is to ARG. The higher the return value, the worse the match.
2452 * Generally the "bad" conversions are all uniformly assigned a 100 */
2453
2454 int
2455 rank_one_type (struct type *parm, struct type *arg)
2456 {
2457 /* Identical type pointers */
2458 /* However, this still doesn't catch all cases of same type for arg
2459 * and param. The reason is that builtin types are different from
2460 * the same ones constructed from the object. */
2461 if (parm == arg)
2462 return 0;
2463
2464 /* Resolve typedefs */
2465 if (TYPE_CODE (parm) == TYPE_CODE_TYPEDEF)
2466 parm = check_typedef (parm);
2467 if (TYPE_CODE (arg) == TYPE_CODE_TYPEDEF)
2468 arg = check_typedef (arg);
2469
2470 /*
2471 Well, damnit, if the names are exactly the same,
2472 i'll say they are exactly the same. This happens when we generate
2473 method stubs. The types won't point to the same address, but they
2474 really are the same.
2475 */
2476
2477 if (TYPE_NAME (parm) && TYPE_NAME (arg) &&
2478 !strcmp (TYPE_NAME (parm), TYPE_NAME (arg)))
2479 return 0;
2480
2481 /* Check if identical after resolving typedefs */
2482 if (parm == arg)
2483 return 0;
2484
2485 /* See through references, since we can almost make non-references
2486 references. */
2487 if (TYPE_CODE (arg) == TYPE_CODE_REF)
2488 return (rank_one_type (parm, TYPE_TARGET_TYPE (arg))
2489 + REFERENCE_CONVERSION_BADNESS);
2490 if (TYPE_CODE (parm) == TYPE_CODE_REF)
2491 return (rank_one_type (TYPE_TARGET_TYPE (parm), arg)
2492 + REFERENCE_CONVERSION_BADNESS);
2493 if (overload_debug)
2494 /* Debugging only. */
2495 fprintf_filtered (gdb_stderr,"------ Arg is %s [%d], parm is %s [%d]\n",
2496 TYPE_NAME (arg), TYPE_CODE (arg), TYPE_NAME (parm), TYPE_CODE (parm));
2497
2498 /* x -> y means arg of type x being supplied for parameter of type y */
2499
2500 switch (TYPE_CODE (parm))
2501 {
2502 case TYPE_CODE_PTR:
2503 switch (TYPE_CODE (arg))
2504 {
2505 case TYPE_CODE_PTR:
2506 if (TYPE_CODE (TYPE_TARGET_TYPE (parm)) == TYPE_CODE_VOID)
2507 return VOID_PTR_CONVERSION_BADNESS;
2508 else
2509 return rank_one_type (TYPE_TARGET_TYPE (parm), TYPE_TARGET_TYPE (arg));
2510 case TYPE_CODE_ARRAY:
2511 return rank_one_type (TYPE_TARGET_TYPE (parm), TYPE_TARGET_TYPE (arg));
2512 case TYPE_CODE_FUNC:
2513 return rank_one_type (TYPE_TARGET_TYPE (parm), arg);
2514 case TYPE_CODE_INT:
2515 case TYPE_CODE_ENUM:
2516 case TYPE_CODE_CHAR:
2517 case TYPE_CODE_RANGE:
2518 case TYPE_CODE_BOOL:
2519 return POINTER_CONVERSION_BADNESS;
2520 default:
2521 return INCOMPATIBLE_TYPE_BADNESS;
2522 }
2523 case TYPE_CODE_ARRAY:
2524 switch (TYPE_CODE (arg))
2525 {
2526 case TYPE_CODE_PTR:
2527 case TYPE_CODE_ARRAY:
2528 return rank_one_type (TYPE_TARGET_TYPE (parm), TYPE_TARGET_TYPE (arg));
2529 default:
2530 return INCOMPATIBLE_TYPE_BADNESS;
2531 }
2532 case TYPE_CODE_FUNC:
2533 switch (TYPE_CODE (arg))
2534 {
2535 case TYPE_CODE_PTR: /* funcptr -> func */
2536 return rank_one_type (parm, TYPE_TARGET_TYPE (arg));
2537 default:
2538 return INCOMPATIBLE_TYPE_BADNESS;
2539 }
2540 case TYPE_CODE_INT:
2541 switch (TYPE_CODE (arg))
2542 {
2543 case TYPE_CODE_INT:
2544 if (TYPE_LENGTH (arg) == TYPE_LENGTH (parm))
2545 {
2546 /* Deal with signed, unsigned, and plain chars and
2547 signed and unsigned ints */
2548 if (TYPE_NOSIGN (parm))
2549 {
2550 /* This case only for character types */
2551 if (TYPE_NOSIGN (arg)) /* plain char -> plain char */
2552 return 0;
2553 else
2554 return INTEGER_COERCION_BADNESS; /* signed/unsigned char -> plain char */
2555 }
2556 else if (TYPE_UNSIGNED (parm))
2557 {
2558 if (TYPE_UNSIGNED (arg))
2559 {
2560 if (!strcmp_iw (TYPE_NAME (parm), TYPE_NAME (arg)))
2561 return 0; /* unsigned int -> unsigned int, or unsigned long -> unsigned long */
2562 else if (!strcmp_iw (TYPE_NAME (arg), "int") && !strcmp_iw (TYPE_NAME (parm), "long"))
2563 return INTEGER_PROMOTION_BADNESS; /* unsigned int -> unsigned long */
2564 else
2565 return INTEGER_COERCION_BADNESS; /* unsigned long -> unsigned int */
2566 }
2567 else
2568 {
2569 if (!strcmp_iw (TYPE_NAME (arg), "long") && !strcmp_iw (TYPE_NAME (parm), "int"))
2570 return INTEGER_COERCION_BADNESS; /* signed long -> unsigned int */
2571 else
2572 return INTEGER_CONVERSION_BADNESS; /* signed int/long -> unsigned int/long */
2573 }
2574 }
2575 else if (!TYPE_NOSIGN (arg) && !TYPE_UNSIGNED (arg))
2576 {
2577 if (!strcmp_iw (TYPE_NAME (parm), TYPE_NAME (arg)))
2578 return 0;
2579 else if (!strcmp_iw (TYPE_NAME (arg), "int") && !strcmp_iw (TYPE_NAME (parm), "long"))
2580 return INTEGER_PROMOTION_BADNESS;
2581 else
2582 return INTEGER_COERCION_BADNESS;
2583 }
2584 else
2585 return INTEGER_COERCION_BADNESS;
2586 }
2587 else if (TYPE_LENGTH (arg) < TYPE_LENGTH (parm))
2588 return INTEGER_PROMOTION_BADNESS;
2589 else
2590 return INTEGER_COERCION_BADNESS;
2591 case TYPE_CODE_ENUM:
2592 case TYPE_CODE_CHAR:
2593 case TYPE_CODE_RANGE:
2594 case TYPE_CODE_BOOL:
2595 return INTEGER_PROMOTION_BADNESS;
2596 case TYPE_CODE_FLT:
2597 return INT_FLOAT_CONVERSION_BADNESS;
2598 case TYPE_CODE_PTR:
2599 return NS_POINTER_CONVERSION_BADNESS;
2600 default:
2601 return INCOMPATIBLE_TYPE_BADNESS;
2602 }
2603 break;
2604 case TYPE_CODE_ENUM:
2605 switch (TYPE_CODE (arg))
2606 {
2607 case TYPE_CODE_INT:
2608 case TYPE_CODE_CHAR:
2609 case TYPE_CODE_RANGE:
2610 case TYPE_CODE_BOOL:
2611 case TYPE_CODE_ENUM:
2612 return INTEGER_COERCION_BADNESS;
2613 case TYPE_CODE_FLT:
2614 return INT_FLOAT_CONVERSION_BADNESS;
2615 default:
2616 return INCOMPATIBLE_TYPE_BADNESS;
2617 }
2618 break;
2619 case TYPE_CODE_CHAR:
2620 switch (TYPE_CODE (arg))
2621 {
2622 case TYPE_CODE_RANGE:
2623 case TYPE_CODE_BOOL:
2624 case TYPE_CODE_ENUM:
2625 return INTEGER_COERCION_BADNESS;
2626 case TYPE_CODE_FLT:
2627 return INT_FLOAT_CONVERSION_BADNESS;
2628 case TYPE_CODE_INT:
2629 if (TYPE_LENGTH (arg) > TYPE_LENGTH (parm))
2630 return INTEGER_COERCION_BADNESS;
2631 else if (TYPE_LENGTH (arg) < TYPE_LENGTH (parm))
2632 return INTEGER_PROMOTION_BADNESS;
2633 /* >>> !! else fall through !! <<< */
2634 case TYPE_CODE_CHAR:
2635 /* Deal with signed, unsigned, and plain chars for C++
2636 and with int cases falling through from previous case */
2637 if (TYPE_NOSIGN (parm))
2638 {
2639 if (TYPE_NOSIGN (arg))
2640 return 0;
2641 else
2642 return INTEGER_COERCION_BADNESS;
2643 }
2644 else if (TYPE_UNSIGNED (parm))
2645 {
2646 if (TYPE_UNSIGNED (arg))
2647 return 0;
2648 else
2649 return INTEGER_PROMOTION_BADNESS;
2650 }
2651 else if (!TYPE_NOSIGN (arg) && !TYPE_UNSIGNED (arg))
2652 return 0;
2653 else
2654 return INTEGER_COERCION_BADNESS;
2655 default:
2656 return INCOMPATIBLE_TYPE_BADNESS;
2657 }
2658 break;
2659 case TYPE_CODE_RANGE:
2660 switch (TYPE_CODE (arg))
2661 {
2662 case TYPE_CODE_INT:
2663 case TYPE_CODE_CHAR:
2664 case TYPE_CODE_RANGE:
2665 case TYPE_CODE_BOOL:
2666 case TYPE_CODE_ENUM:
2667 return INTEGER_COERCION_BADNESS;
2668 case TYPE_CODE_FLT:
2669 return INT_FLOAT_CONVERSION_BADNESS;
2670 default:
2671 return INCOMPATIBLE_TYPE_BADNESS;
2672 }
2673 break;
2674 case TYPE_CODE_BOOL:
2675 switch (TYPE_CODE (arg))
2676 {
2677 case TYPE_CODE_INT:
2678 case TYPE_CODE_CHAR:
2679 case TYPE_CODE_RANGE:
2680 case TYPE_CODE_ENUM:
2681 case TYPE_CODE_FLT:
2682 case TYPE_CODE_PTR:
2683 return BOOLEAN_CONVERSION_BADNESS;
2684 case TYPE_CODE_BOOL:
2685 return 0;
2686 default:
2687 return INCOMPATIBLE_TYPE_BADNESS;
2688 }
2689 break;
2690 case TYPE_CODE_FLT:
2691 switch (TYPE_CODE (arg))
2692 {
2693 case TYPE_CODE_FLT:
2694 if (TYPE_LENGTH (arg) < TYPE_LENGTH (parm))
2695 return FLOAT_PROMOTION_BADNESS;
2696 else if (TYPE_LENGTH (arg) == TYPE_LENGTH (parm))
2697 return 0;
2698 else
2699 return FLOAT_CONVERSION_BADNESS;
2700 case TYPE_CODE_INT:
2701 case TYPE_CODE_BOOL:
2702 case TYPE_CODE_ENUM:
2703 case TYPE_CODE_RANGE:
2704 case TYPE_CODE_CHAR:
2705 return INT_FLOAT_CONVERSION_BADNESS;
2706 default:
2707 return INCOMPATIBLE_TYPE_BADNESS;
2708 }
2709 break;
2710 case TYPE_CODE_COMPLEX:
2711 switch (TYPE_CODE (arg))
2712 { /* Strictly not needed for C++, but... */
2713 case TYPE_CODE_FLT:
2714 return FLOAT_PROMOTION_BADNESS;
2715 case TYPE_CODE_COMPLEX:
2716 return 0;
2717 default:
2718 return INCOMPATIBLE_TYPE_BADNESS;
2719 }
2720 break;
2721 case TYPE_CODE_STRUCT:
2722 /* currently same as TYPE_CODE_CLASS */
2723 switch (TYPE_CODE (arg))
2724 {
2725 case TYPE_CODE_STRUCT:
2726 /* Check for derivation */
2727 if (is_ancestor (parm, arg))
2728 return BASE_CONVERSION_BADNESS;
2729 /* else fall through */
2730 default:
2731 return INCOMPATIBLE_TYPE_BADNESS;
2732 }
2733 break;
2734 case TYPE_CODE_UNION:
2735 switch (TYPE_CODE (arg))
2736 {
2737 case TYPE_CODE_UNION:
2738 default:
2739 return INCOMPATIBLE_TYPE_BADNESS;
2740 }
2741 break;
2742 case TYPE_CODE_MEMBER:
2743 switch (TYPE_CODE (arg))
2744 {
2745 default:
2746 return INCOMPATIBLE_TYPE_BADNESS;
2747 }
2748 break;
2749 case TYPE_CODE_METHOD:
2750 switch (TYPE_CODE (arg))
2751 {
2752
2753 default:
2754 return INCOMPATIBLE_TYPE_BADNESS;
2755 }
2756 break;
2757 case TYPE_CODE_REF:
2758 switch (TYPE_CODE (arg))
2759 {
2760
2761 default:
2762 return INCOMPATIBLE_TYPE_BADNESS;
2763 }
2764
2765 break;
2766 case TYPE_CODE_SET:
2767 switch (TYPE_CODE (arg))
2768 {
2769 /* Not in C++ */
2770 case TYPE_CODE_SET:
2771 return rank_one_type (TYPE_FIELD_TYPE (parm, 0), TYPE_FIELD_TYPE (arg, 0));
2772 default:
2773 return INCOMPATIBLE_TYPE_BADNESS;
2774 }
2775 break;
2776 case TYPE_CODE_VOID:
2777 default:
2778 return INCOMPATIBLE_TYPE_BADNESS;
2779 } /* switch (TYPE_CODE (arg)) */
2780 }
2781
2782
2783 /* End of functions for overload resolution */
2784
2785 static void
2786 print_bit_vector (B_TYPE *bits, int nbits)
2787 {
2788 int bitno;
2789
2790 for (bitno = 0; bitno < nbits; bitno++)
2791 {
2792 if ((bitno % 8) == 0)
2793 {
2794 puts_filtered (" ");
2795 }
2796 if (B_TST (bits, bitno))
2797 {
2798 printf_filtered ("1");
2799 }
2800 else
2801 {
2802 printf_filtered ("0");
2803 }
2804 }
2805 }
2806
2807 /* Note the first arg should be the "this" pointer, we may not want to
2808 include it since we may get into a infinitely recursive situation. */
2809
2810 static void
2811 print_arg_types (struct field *args, int nargs, int spaces)
2812 {
2813 if (args != NULL)
2814 {
2815 int i;
2816
2817 for (i = 0; i < nargs; i++)
2818 recursive_dump_type (args[i].type, spaces + 2);
2819 }
2820 }
2821
2822 static void
2823 dump_fn_fieldlists (struct type *type, int spaces)
2824 {
2825 int method_idx;
2826 int overload_idx;
2827 struct fn_field *f;
2828
2829 printfi_filtered (spaces, "fn_fieldlists ");
2830 gdb_print_host_address (TYPE_FN_FIELDLISTS (type), gdb_stdout);
2831 printf_filtered ("\n");
2832 for (method_idx = 0; method_idx < TYPE_NFN_FIELDS (type); method_idx++)
2833 {
2834 f = TYPE_FN_FIELDLIST1 (type, method_idx);
2835 printfi_filtered (spaces + 2, "[%d] name '%s' (",
2836 method_idx,
2837 TYPE_FN_FIELDLIST_NAME (type, method_idx));
2838 gdb_print_host_address (TYPE_FN_FIELDLIST_NAME (type, method_idx),
2839 gdb_stdout);
2840 printf_filtered (") length %d\n",
2841 TYPE_FN_FIELDLIST_LENGTH (type, method_idx));
2842 for (overload_idx = 0;
2843 overload_idx < TYPE_FN_FIELDLIST_LENGTH (type, method_idx);
2844 overload_idx++)
2845 {
2846 printfi_filtered (spaces + 4, "[%d] physname '%s' (",
2847 overload_idx,
2848 TYPE_FN_FIELD_PHYSNAME (f, overload_idx));
2849 gdb_print_host_address (TYPE_FN_FIELD_PHYSNAME (f, overload_idx),
2850 gdb_stdout);
2851 printf_filtered (")\n");
2852 printfi_filtered (spaces + 8, "type ");
2853 gdb_print_host_address (TYPE_FN_FIELD_TYPE (f, overload_idx), gdb_stdout);
2854 printf_filtered ("\n");
2855
2856 recursive_dump_type (TYPE_FN_FIELD_TYPE (f, overload_idx),
2857 spaces + 8 + 2);
2858
2859 printfi_filtered (spaces + 8, "args ");
2860 gdb_print_host_address (TYPE_FN_FIELD_ARGS (f, overload_idx), gdb_stdout);
2861 printf_filtered ("\n");
2862
2863 print_arg_types (TYPE_FN_FIELD_ARGS (f, overload_idx),
2864 TYPE_NFIELDS (TYPE_FN_FIELD_TYPE (f, overload_idx)),
2865 spaces);
2866 printfi_filtered (spaces + 8, "fcontext ");
2867 gdb_print_host_address (TYPE_FN_FIELD_FCONTEXT (f, overload_idx),
2868 gdb_stdout);
2869 printf_filtered ("\n");
2870
2871 printfi_filtered (spaces + 8, "is_const %d\n",
2872 TYPE_FN_FIELD_CONST (f, overload_idx));
2873 printfi_filtered (spaces + 8, "is_volatile %d\n",
2874 TYPE_FN_FIELD_VOLATILE (f, overload_idx));
2875 printfi_filtered (spaces + 8, "is_private %d\n",
2876 TYPE_FN_FIELD_PRIVATE (f, overload_idx));
2877 printfi_filtered (spaces + 8, "is_protected %d\n",
2878 TYPE_FN_FIELD_PROTECTED (f, overload_idx));
2879 printfi_filtered (spaces + 8, "is_stub %d\n",
2880 TYPE_FN_FIELD_STUB (f, overload_idx));
2881 printfi_filtered (spaces + 8, "voffset %u\n",
2882 TYPE_FN_FIELD_VOFFSET (f, overload_idx));
2883 }
2884 }
2885 }
2886
2887 static void
2888 print_cplus_stuff (struct type *type, int spaces)
2889 {
2890 printfi_filtered (spaces, "n_baseclasses %d\n",
2891 TYPE_N_BASECLASSES (type));
2892 printfi_filtered (spaces, "nfn_fields %d\n",
2893 TYPE_NFN_FIELDS (type));
2894 printfi_filtered (spaces, "nfn_fields_total %d\n",
2895 TYPE_NFN_FIELDS_TOTAL (type));
2896 if (TYPE_N_BASECLASSES (type) > 0)
2897 {
2898 printfi_filtered (spaces, "virtual_field_bits (%d bits at *",
2899 TYPE_N_BASECLASSES (type));
2900 gdb_print_host_address (TYPE_FIELD_VIRTUAL_BITS (type), gdb_stdout);
2901 printf_filtered (")");
2902
2903 print_bit_vector (TYPE_FIELD_VIRTUAL_BITS (type),
2904 TYPE_N_BASECLASSES (type));
2905 puts_filtered ("\n");
2906 }
2907 if (TYPE_NFIELDS (type) > 0)
2908 {
2909 if (TYPE_FIELD_PRIVATE_BITS (type) != NULL)
2910 {
2911 printfi_filtered (spaces, "private_field_bits (%d bits at *",
2912 TYPE_NFIELDS (type));
2913 gdb_print_host_address (TYPE_FIELD_PRIVATE_BITS (type), gdb_stdout);
2914 printf_filtered (")");
2915 print_bit_vector (TYPE_FIELD_PRIVATE_BITS (type),
2916 TYPE_NFIELDS (type));
2917 puts_filtered ("\n");
2918 }
2919 if (TYPE_FIELD_PROTECTED_BITS (type) != NULL)
2920 {
2921 printfi_filtered (spaces, "protected_field_bits (%d bits at *",
2922 TYPE_NFIELDS (type));
2923 gdb_print_host_address (TYPE_FIELD_PROTECTED_BITS (type), gdb_stdout);
2924 printf_filtered (")");
2925 print_bit_vector (TYPE_FIELD_PROTECTED_BITS (type),
2926 TYPE_NFIELDS (type));
2927 puts_filtered ("\n");
2928 }
2929 }
2930 if (TYPE_NFN_FIELDS (type) > 0)
2931 {
2932 dump_fn_fieldlists (type, spaces);
2933 }
2934 }
2935
2936 static void
2937 print_bound_type (int bt)
2938 {
2939 switch (bt)
2940 {
2941 case BOUND_CANNOT_BE_DETERMINED:
2942 printf_filtered ("(BOUND_CANNOT_BE_DETERMINED)");
2943 break;
2944 case BOUND_BY_REF_ON_STACK:
2945 printf_filtered ("(BOUND_BY_REF_ON_STACK)");
2946 break;
2947 case BOUND_BY_VALUE_ON_STACK:
2948 printf_filtered ("(BOUND_BY_VALUE_ON_STACK)");
2949 break;
2950 case BOUND_BY_REF_IN_REG:
2951 printf_filtered ("(BOUND_BY_REF_IN_REG)");
2952 break;
2953 case BOUND_BY_VALUE_IN_REG:
2954 printf_filtered ("(BOUND_BY_VALUE_IN_REG)");
2955 break;
2956 case BOUND_SIMPLE:
2957 printf_filtered ("(BOUND_SIMPLE)");
2958 break;
2959 default:
2960 printf_filtered ("(unknown bound type)");
2961 break;
2962 }
2963 }
2964
2965 static struct obstack dont_print_type_obstack;
2966
2967 void
2968 recursive_dump_type (struct type *type, int spaces)
2969 {
2970 int idx;
2971
2972 if (spaces == 0)
2973 obstack_begin (&dont_print_type_obstack, 0);
2974
2975 if (TYPE_NFIELDS (type) > 0
2976 || (TYPE_CPLUS_SPECIFIC (type) && TYPE_NFN_FIELDS (type) > 0))
2977 {
2978 struct type **first_dont_print
2979 = (struct type **) obstack_base (&dont_print_type_obstack);
2980
2981 int i = (struct type **) obstack_next_free (&dont_print_type_obstack)
2982 - first_dont_print;
2983
2984 while (--i >= 0)
2985 {
2986 if (type == first_dont_print[i])
2987 {
2988 printfi_filtered (spaces, "type node ");
2989 gdb_print_host_address (type, gdb_stdout);
2990 printf_filtered (" <same as already seen type>\n");
2991 return;
2992 }
2993 }
2994
2995 obstack_ptr_grow (&dont_print_type_obstack, type);
2996 }
2997
2998 printfi_filtered (spaces, "type node ");
2999 gdb_print_host_address (type, gdb_stdout);
3000 printf_filtered ("\n");
3001 printfi_filtered (spaces, "name '%s' (",
3002 TYPE_NAME (type) ? TYPE_NAME (type) : "<NULL>");
3003 gdb_print_host_address (TYPE_NAME (type), gdb_stdout);
3004 printf_filtered (")\n");
3005 printfi_filtered (spaces, "tagname '%s' (",
3006 TYPE_TAG_NAME (type) ? TYPE_TAG_NAME (type) : "<NULL>");
3007 gdb_print_host_address (TYPE_TAG_NAME (type), gdb_stdout);
3008 printf_filtered (")\n");
3009 printfi_filtered (spaces, "code 0x%x ", TYPE_CODE (type));
3010 switch (TYPE_CODE (type))
3011 {
3012 case TYPE_CODE_UNDEF:
3013 printf_filtered ("(TYPE_CODE_UNDEF)");
3014 break;
3015 case TYPE_CODE_PTR:
3016 printf_filtered ("(TYPE_CODE_PTR)");
3017 break;
3018 case TYPE_CODE_ARRAY:
3019 printf_filtered ("(TYPE_CODE_ARRAY)");
3020 break;
3021 case TYPE_CODE_STRUCT:
3022 printf_filtered ("(TYPE_CODE_STRUCT)");
3023 break;
3024 case TYPE_CODE_UNION:
3025 printf_filtered ("(TYPE_CODE_UNION)");
3026 break;
3027 case TYPE_CODE_ENUM:
3028 printf_filtered ("(TYPE_CODE_ENUM)");
3029 break;
3030 case TYPE_CODE_FUNC:
3031 printf_filtered ("(TYPE_CODE_FUNC)");
3032 break;
3033 case TYPE_CODE_INT:
3034 printf_filtered ("(TYPE_CODE_INT)");
3035 break;
3036 case TYPE_CODE_FLT:
3037 printf_filtered ("(TYPE_CODE_FLT)");
3038 break;
3039 case TYPE_CODE_VOID:
3040 printf_filtered ("(TYPE_CODE_VOID)");
3041 break;
3042 case TYPE_CODE_SET:
3043 printf_filtered ("(TYPE_CODE_SET)");
3044 break;
3045 case TYPE_CODE_RANGE:
3046 printf_filtered ("(TYPE_CODE_RANGE)");
3047 break;
3048 case TYPE_CODE_STRING:
3049 printf_filtered ("(TYPE_CODE_STRING)");
3050 break;
3051 case TYPE_CODE_BITSTRING:
3052 printf_filtered ("(TYPE_CODE_BITSTRING)");
3053 break;
3054 case TYPE_CODE_ERROR:
3055 printf_filtered ("(TYPE_CODE_ERROR)");
3056 break;
3057 case TYPE_CODE_MEMBER:
3058 printf_filtered ("(TYPE_CODE_MEMBER)");
3059 break;
3060 case TYPE_CODE_METHOD:
3061 printf_filtered ("(TYPE_CODE_METHOD)");
3062 break;
3063 case TYPE_CODE_REF:
3064 printf_filtered ("(TYPE_CODE_REF)");
3065 break;
3066 case TYPE_CODE_CHAR:
3067 printf_filtered ("(TYPE_CODE_CHAR)");
3068 break;
3069 case TYPE_CODE_BOOL:
3070 printf_filtered ("(TYPE_CODE_BOOL)");
3071 break;
3072 case TYPE_CODE_COMPLEX:
3073 printf_filtered ("(TYPE_CODE_COMPLEX)");
3074 break;
3075 case TYPE_CODE_TYPEDEF:
3076 printf_filtered ("(TYPE_CODE_TYPEDEF)");
3077 break;
3078 case TYPE_CODE_TEMPLATE:
3079 printf_filtered ("(TYPE_CODE_TEMPLATE)");
3080 break;
3081 case TYPE_CODE_TEMPLATE_ARG:
3082 printf_filtered ("(TYPE_CODE_TEMPLATE_ARG)");
3083 break;
3084 default:
3085 printf_filtered ("(UNKNOWN TYPE CODE)");
3086 break;
3087 }
3088 puts_filtered ("\n");
3089 printfi_filtered (spaces, "length %d\n", TYPE_LENGTH (type));
3090 printfi_filtered (spaces, "upper_bound_type 0x%x ",
3091 TYPE_ARRAY_UPPER_BOUND_TYPE (type));
3092 print_bound_type (TYPE_ARRAY_UPPER_BOUND_TYPE (type));
3093 puts_filtered ("\n");
3094 printfi_filtered (spaces, "lower_bound_type 0x%x ",
3095 TYPE_ARRAY_LOWER_BOUND_TYPE (type));
3096 print_bound_type (TYPE_ARRAY_LOWER_BOUND_TYPE (type));
3097 puts_filtered ("\n");
3098 printfi_filtered (spaces, "objfile ");
3099 gdb_print_host_address (TYPE_OBJFILE (type), gdb_stdout);
3100 printf_filtered ("\n");
3101 printfi_filtered (spaces, "target_type ");
3102 gdb_print_host_address (TYPE_TARGET_TYPE (type), gdb_stdout);
3103 printf_filtered ("\n");
3104 if (TYPE_TARGET_TYPE (type) != NULL)
3105 {
3106 recursive_dump_type (TYPE_TARGET_TYPE (type), spaces + 2);
3107 }
3108 printfi_filtered (spaces, "pointer_type ");
3109 gdb_print_host_address (TYPE_POINTER_TYPE (type), gdb_stdout);
3110 printf_filtered ("\n");
3111 printfi_filtered (spaces, "reference_type ");
3112 gdb_print_host_address (TYPE_REFERENCE_TYPE (type), gdb_stdout);
3113 printf_filtered ("\n");
3114 printfi_filtered (spaces, "type_chain ");
3115 gdb_print_host_address (TYPE_CHAIN (type), gdb_stdout);
3116 printf_filtered ("\n");
3117 printfi_filtered (spaces, "instance_flags 0x%x", TYPE_INSTANCE_FLAGS (type));
3118 if (TYPE_CONST (type))
3119 {
3120 puts_filtered (" TYPE_FLAG_CONST");
3121 }
3122 if (TYPE_VOLATILE (type))
3123 {
3124 puts_filtered (" TYPE_FLAG_VOLATILE");
3125 }
3126 if (TYPE_CODE_SPACE (type))
3127 {
3128 puts_filtered (" TYPE_FLAG_CODE_SPACE");
3129 }
3130 if (TYPE_DATA_SPACE (type))
3131 {
3132 puts_filtered (" TYPE_FLAG_DATA_SPACE");
3133 }
3134 if (TYPE_ADDRESS_CLASS_1 (type))
3135 {
3136 puts_filtered (" TYPE_FLAG_ADDRESS_CLASS_1");
3137 }
3138 if (TYPE_ADDRESS_CLASS_2 (type))
3139 {
3140 puts_filtered (" TYPE_FLAG_ADDRESS_CLASS_2");
3141 }
3142 puts_filtered ("\n");
3143 printfi_filtered (spaces, "flags 0x%x", TYPE_FLAGS (type));
3144 if (TYPE_UNSIGNED (type))
3145 {
3146 puts_filtered (" TYPE_FLAG_UNSIGNED");
3147 }
3148 if (TYPE_NOSIGN (type))
3149 {
3150 puts_filtered (" TYPE_FLAG_NOSIGN");
3151 }
3152 if (TYPE_STUB (type))
3153 {
3154 puts_filtered (" TYPE_FLAG_STUB");
3155 }
3156 if (TYPE_TARGET_STUB (type))
3157 {
3158 puts_filtered (" TYPE_FLAG_TARGET_STUB");
3159 }
3160 if (TYPE_STATIC (type))
3161 {
3162 puts_filtered (" TYPE_FLAG_STATIC");
3163 }
3164 if (TYPE_PROTOTYPED (type))
3165 {
3166 puts_filtered (" TYPE_FLAG_PROTOTYPED");
3167 }
3168 if (TYPE_INCOMPLETE (type))
3169 {
3170 puts_filtered (" TYPE_FLAG_INCOMPLETE");
3171 }
3172 if (TYPE_VARARGS (type))
3173 {
3174 puts_filtered (" TYPE_FLAG_VARARGS");
3175 }
3176 /* This is used for things like AltiVec registers on ppc. Gcc emits
3177 an attribute for the array type, which tells whether or not we
3178 have a vector, instead of a regular array. */
3179 if (TYPE_VECTOR (type))
3180 {
3181 puts_filtered (" TYPE_FLAG_VECTOR");
3182 }
3183 puts_filtered ("\n");
3184 printfi_filtered (spaces, "nfields %d ", TYPE_NFIELDS (type));
3185 gdb_print_host_address (TYPE_FIELDS (type), gdb_stdout);
3186 puts_filtered ("\n");
3187 for (idx = 0; idx < TYPE_NFIELDS (type); idx++)
3188 {
3189 printfi_filtered (spaces + 2,
3190 "[%d] bitpos %d bitsize %d type ",
3191 idx, TYPE_FIELD_BITPOS (type, idx),
3192 TYPE_FIELD_BITSIZE (type, idx));
3193 gdb_print_host_address (TYPE_FIELD_TYPE (type, idx), gdb_stdout);
3194 printf_filtered (" name '%s' (",
3195 TYPE_FIELD_NAME (type, idx) != NULL
3196 ? TYPE_FIELD_NAME (type, idx)
3197 : "<NULL>");
3198 gdb_print_host_address (TYPE_FIELD_NAME (type, idx), gdb_stdout);
3199 printf_filtered (")\n");
3200 if (TYPE_FIELD_TYPE (type, idx) != NULL)
3201 {
3202 recursive_dump_type (TYPE_FIELD_TYPE (type, idx), spaces + 4);
3203 }
3204 }
3205 printfi_filtered (spaces, "vptr_basetype ");
3206 gdb_print_host_address (TYPE_VPTR_BASETYPE (type), gdb_stdout);
3207 puts_filtered ("\n");
3208 if (TYPE_VPTR_BASETYPE (type) != NULL)
3209 {
3210 recursive_dump_type (TYPE_VPTR_BASETYPE (type), spaces + 2);
3211 }
3212 printfi_filtered (spaces, "vptr_fieldno %d\n", TYPE_VPTR_FIELDNO (type));
3213 switch (TYPE_CODE (type))
3214 {
3215 case TYPE_CODE_STRUCT:
3216 printfi_filtered (spaces, "cplus_stuff ");
3217 gdb_print_host_address (TYPE_CPLUS_SPECIFIC (type), gdb_stdout);
3218 puts_filtered ("\n");
3219 print_cplus_stuff (type, spaces);
3220 break;
3221
3222 case TYPE_CODE_FLT:
3223 printfi_filtered (spaces, "floatformat ");
3224 if (TYPE_FLOATFORMAT (type) == NULL
3225 || TYPE_FLOATFORMAT (type)->name == NULL)
3226 puts_filtered ("(null)");
3227 else
3228 puts_filtered (TYPE_FLOATFORMAT (type)->name);
3229 puts_filtered ("\n");
3230 break;
3231
3232 default:
3233 /* We have to pick one of the union types to be able print and test
3234 the value. Pick cplus_struct_type, even though we know it isn't
3235 any particular one. */
3236 printfi_filtered (spaces, "type_specific ");
3237 gdb_print_host_address (TYPE_CPLUS_SPECIFIC (type), gdb_stdout);
3238 if (TYPE_CPLUS_SPECIFIC (type) != NULL)
3239 {
3240 printf_filtered (" (unknown data form)");
3241 }
3242 printf_filtered ("\n");
3243 break;
3244
3245 }
3246 if (spaces == 0)
3247 obstack_free (&dont_print_type_obstack, NULL);
3248 }
3249
3250 static void build_gdbtypes (void);
3251 static void
3252 build_gdbtypes (void)
3253 {
3254 builtin_type_void =
3255 init_type (TYPE_CODE_VOID, 1,
3256 0,
3257 "void", (struct objfile *) NULL);
3258 builtin_type_char =
3259 init_type (TYPE_CODE_INT, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3260 (TYPE_FLAG_NOSIGN
3261 | (TARGET_CHAR_SIGNED ? 0 : TYPE_FLAG_UNSIGNED)),
3262 "char", (struct objfile *) NULL);
3263 builtin_type_true_char =
3264 init_type (TYPE_CODE_CHAR, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3265 0,
3266 "true character", (struct objfile *) NULL);
3267 builtin_type_signed_char =
3268 init_type (TYPE_CODE_INT, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3269 0,
3270 "signed char", (struct objfile *) NULL);
3271 builtin_type_unsigned_char =
3272 init_type (TYPE_CODE_INT, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3273 TYPE_FLAG_UNSIGNED,
3274 "unsigned char", (struct objfile *) NULL);
3275 builtin_type_short =
3276 init_type (TYPE_CODE_INT, TARGET_SHORT_BIT / TARGET_CHAR_BIT,
3277 0,
3278 "short", (struct objfile *) NULL);
3279 builtin_type_unsigned_short =
3280 init_type (TYPE_CODE_INT, TARGET_SHORT_BIT / TARGET_CHAR_BIT,
3281 TYPE_FLAG_UNSIGNED,
3282 "unsigned short", (struct objfile *) NULL);
3283 builtin_type_int =
3284 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
3285 0,
3286 "int", (struct objfile *) NULL);
3287 builtin_type_unsigned_int =
3288 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
3289 TYPE_FLAG_UNSIGNED,
3290 "unsigned int", (struct objfile *) NULL);
3291 builtin_type_long =
3292 init_type (TYPE_CODE_INT, TARGET_LONG_BIT / TARGET_CHAR_BIT,
3293 0,
3294 "long", (struct objfile *) NULL);
3295 builtin_type_unsigned_long =
3296 init_type (TYPE_CODE_INT, TARGET_LONG_BIT / TARGET_CHAR_BIT,
3297 TYPE_FLAG_UNSIGNED,
3298 "unsigned long", (struct objfile *) NULL);
3299 builtin_type_long_long =
3300 init_type (TYPE_CODE_INT, TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
3301 0,
3302 "long long", (struct objfile *) NULL);
3303 builtin_type_unsigned_long_long =
3304 init_type (TYPE_CODE_INT, TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
3305 TYPE_FLAG_UNSIGNED,
3306 "unsigned long long", (struct objfile *) NULL);
3307 builtin_type_float =
3308 init_type (TYPE_CODE_FLT, TARGET_FLOAT_BIT / TARGET_CHAR_BIT,
3309 0,
3310 "float", (struct objfile *) NULL);
3311 /* vinschen@redhat.com 2002-02-08:
3312 The below lines are disabled since they are doing the wrong
3313 thing for non-multiarch targets. They are setting the correct
3314 type of floats for the target but while on multiarch targets
3315 this is done everytime the architecture changes, it's done on
3316 non-multiarch targets only on startup, leaving the wrong values
3317 in even if the architecture changes (eg. from big-endian to
3318 little-endian). */
3319 #if 0
3320 TYPE_FLOATFORMAT (builtin_type_float) = TARGET_FLOAT_FORMAT;
3321 #endif
3322 builtin_type_double =
3323 init_type (TYPE_CODE_FLT, TARGET_DOUBLE_BIT / TARGET_CHAR_BIT,
3324 0,
3325 "double", (struct objfile *) NULL);
3326 #if 0
3327 TYPE_FLOATFORMAT (builtin_type_double) = TARGET_DOUBLE_FORMAT;
3328 #endif
3329 builtin_type_long_double =
3330 init_type (TYPE_CODE_FLT, TARGET_LONG_DOUBLE_BIT / TARGET_CHAR_BIT,
3331 0,
3332 "long double", (struct objfile *) NULL);
3333 #if 0
3334 TYPE_FLOATFORMAT (builtin_type_long_double) = TARGET_LONG_DOUBLE_FORMAT;
3335 #endif
3336 builtin_type_complex =
3337 init_type (TYPE_CODE_COMPLEX, 2 * TARGET_FLOAT_BIT / TARGET_CHAR_BIT,
3338 0,
3339 "complex", (struct objfile *) NULL);
3340 TYPE_TARGET_TYPE (builtin_type_complex) = builtin_type_float;
3341 builtin_type_double_complex =
3342 init_type (TYPE_CODE_COMPLEX, 2 * TARGET_DOUBLE_BIT / TARGET_CHAR_BIT,
3343 0,
3344 "double complex", (struct objfile *) NULL);
3345 TYPE_TARGET_TYPE (builtin_type_double_complex) = builtin_type_double;
3346 builtin_type_string =
3347 init_type (TYPE_CODE_STRING, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3348 0,
3349 "string", (struct objfile *) NULL);
3350 builtin_type_int8 =
3351 init_type (TYPE_CODE_INT, 8 / 8,
3352 0,
3353 "int8_t", (struct objfile *) NULL);
3354 builtin_type_uint8 =
3355 init_type (TYPE_CODE_INT, 8 / 8,
3356 TYPE_FLAG_UNSIGNED,
3357 "uint8_t", (struct objfile *) NULL);
3358 builtin_type_int16 =
3359 init_type (TYPE_CODE_INT, 16 / 8,
3360 0,
3361 "int16_t", (struct objfile *) NULL);
3362 builtin_type_uint16 =
3363 init_type (TYPE_CODE_INT, 16 / 8,
3364 TYPE_FLAG_UNSIGNED,
3365 "uint16_t", (struct objfile *) NULL);
3366 builtin_type_int32 =
3367 init_type (TYPE_CODE_INT, 32 / 8,
3368 0,
3369 "int32_t", (struct objfile *) NULL);
3370 builtin_type_uint32 =
3371 init_type (TYPE_CODE_INT, 32 / 8,
3372 TYPE_FLAG_UNSIGNED,
3373 "uint32_t", (struct objfile *) NULL);
3374 builtin_type_int64 =
3375 init_type (TYPE_CODE_INT, 64 / 8,
3376 0,
3377 "int64_t", (struct objfile *) NULL);
3378 builtin_type_uint64 =
3379 init_type (TYPE_CODE_INT, 64 / 8,
3380 TYPE_FLAG_UNSIGNED,
3381 "uint64_t", (struct objfile *) NULL);
3382 builtin_type_int128 =
3383 init_type (TYPE_CODE_INT, 128 / 8,
3384 0,
3385 "int128_t", (struct objfile *) NULL);
3386 builtin_type_uint128 =
3387 init_type (TYPE_CODE_INT, 128 / 8,
3388 TYPE_FLAG_UNSIGNED,
3389 "uint128_t", (struct objfile *) NULL);
3390 builtin_type_bool =
3391 init_type (TYPE_CODE_BOOL, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
3392 0,
3393 "bool", (struct objfile *) NULL);
3394
3395 /* Add user knob for controlling resolution of opaque types */
3396 add_show_from_set
3397 (add_set_cmd ("opaque-type-resolution", class_support, var_boolean, (char *) &opaque_type_resolution,
3398 "Set resolution of opaque struct/class/union types (if set before loading symbols).",
3399 &setlist),
3400 &showlist);
3401 opaque_type_resolution = 1;
3402
3403 /* Build SIMD types. */
3404 builtin_type_v4sf
3405 = init_simd_type ("__builtin_v4sf", builtin_type_float, "f", 4);
3406 builtin_type_v4si
3407 = init_simd_type ("__builtin_v4si", builtin_type_int32, "f", 4);
3408 builtin_type_v16qi
3409 = init_simd_type ("__builtin_v16qi", builtin_type_int8, "f", 16);
3410 builtin_type_v8qi
3411 = init_simd_type ("__builtin_v8qi", builtin_type_int8, "f", 8);
3412 builtin_type_v8hi
3413 = init_simd_type ("__builtin_v8hi", builtin_type_int16, "f", 8);
3414 builtin_type_v4hi
3415 = init_simd_type ("__builtin_v4hi", builtin_type_int16, "f", 4);
3416 builtin_type_v2si
3417 = init_simd_type ("__builtin_v2si", builtin_type_int32, "f", 2);
3418
3419 /* 128 bit vectors. */
3420 builtin_type_v2_double = init_vector_type (builtin_type_double, 2);
3421 builtin_type_v4_float = init_vector_type (builtin_type_float, 4);
3422 builtin_type_v2_int64 = init_vector_type (builtin_type_int64, 2);
3423 builtin_type_v4_int32 = init_vector_type (builtin_type_int32, 4);
3424 builtin_type_v8_int16 = init_vector_type (builtin_type_int16, 8);
3425 builtin_type_v16_int8 = init_vector_type (builtin_type_int8, 16);
3426 /* 64 bit vectors. */
3427 builtin_type_v2_float = init_vector_type (builtin_type_float, 2);
3428 builtin_type_v2_int32 = init_vector_type (builtin_type_int32, 2);
3429 builtin_type_v4_int16 = init_vector_type (builtin_type_int16, 4);
3430 builtin_type_v8_int8 = init_vector_type (builtin_type_int8, 8);
3431
3432 /* Vector types. */
3433 builtin_type_vec64 = build_builtin_type_vec64 ();
3434 builtin_type_vec64i = build_builtin_type_vec64i ();
3435 builtin_type_vec128 = build_builtin_type_vec128 ();
3436 builtin_type_vec128i = build_builtin_type_vec128i ();
3437
3438 /* Pointer/Address types. */
3439
3440 /* NOTE: on some targets, addresses and pointers are not necessarily
3441 the same --- for example, on the D10V, pointers are 16 bits long,
3442 but addresses are 32 bits long. See doc/gdbint.texinfo,
3443 ``Pointers Are Not Always Addresses''.
3444
3445 The upshot is:
3446 - gdb's `struct type' always describes the target's
3447 representation.
3448 - gdb's `struct value' objects should always hold values in
3449 target form.
3450 - gdb's CORE_ADDR values are addresses in the unified virtual
3451 address space that the assembler and linker work with. Thus,
3452 since target_read_memory takes a CORE_ADDR as an argument, it
3453 can access any memory on the target, even if the processor has
3454 separate code and data address spaces.
3455
3456 So, for example:
3457 - If v is a value holding a D10V code pointer, its contents are
3458 in target form: a big-endian address left-shifted two bits.
3459 - If p is a D10V pointer type, TYPE_LENGTH (p) == 2, just as
3460 sizeof (void *) == 2 on the target.
3461
3462 In this context, builtin_type_CORE_ADDR is a bit odd: it's a
3463 target type for a value the target will never see. It's only
3464 used to hold the values of (typeless) linker symbols, which are
3465 indeed in the unified virtual address space. */
3466 builtin_type_void_data_ptr = make_pointer_type (builtin_type_void, NULL);
3467 builtin_type_void_func_ptr
3468 = lookup_pointer_type (lookup_function_type (builtin_type_void));
3469 builtin_type_CORE_ADDR =
3470 init_type (TYPE_CODE_INT, TARGET_ADDR_BIT / 8,
3471 TYPE_FLAG_UNSIGNED,
3472 "__CORE_ADDR", (struct objfile *) NULL);
3473 builtin_type_bfd_vma =
3474 init_type (TYPE_CODE_INT, TARGET_BFD_VMA_BIT / 8,
3475 TYPE_FLAG_UNSIGNED,
3476 "__bfd_vma", (struct objfile *) NULL);
3477 }
3478
3479 extern void _initialize_gdbtypes (void);
3480 void
3481 _initialize_gdbtypes (void)
3482 {
3483 struct cmd_list_element *c;
3484 build_gdbtypes ();
3485
3486 /* FIXME - For the moment, handle types by swapping them in and out.
3487 Should be using the per-architecture data-pointer and a large
3488 struct. */
3489 register_gdbarch_swap (&builtin_type_void, sizeof (struct type *), NULL);
3490 register_gdbarch_swap (&builtin_type_char, sizeof (struct type *), NULL);
3491 register_gdbarch_swap (&builtin_type_short, sizeof (struct type *), NULL);
3492 register_gdbarch_swap (&builtin_type_int, sizeof (struct type *), NULL);
3493 register_gdbarch_swap (&builtin_type_long, sizeof (struct type *), NULL);
3494 register_gdbarch_swap (&builtin_type_long_long, sizeof (struct type *), NULL);
3495 register_gdbarch_swap (&builtin_type_signed_char, sizeof (struct type *), NULL);
3496 register_gdbarch_swap (&builtin_type_unsigned_char, sizeof (struct type *), NULL);
3497 register_gdbarch_swap (&builtin_type_unsigned_short, sizeof (struct type *), NULL);
3498 register_gdbarch_swap (&builtin_type_unsigned_int, sizeof (struct type *), NULL);
3499 register_gdbarch_swap (&builtin_type_unsigned_long, sizeof (struct type *), NULL);
3500 register_gdbarch_swap (&builtin_type_unsigned_long_long, sizeof (struct type *), NULL);
3501 register_gdbarch_swap (&builtin_type_float, sizeof (struct type *), NULL);
3502 register_gdbarch_swap (&builtin_type_double, sizeof (struct type *), NULL);
3503 register_gdbarch_swap (&builtin_type_long_double, sizeof (struct type *), NULL);
3504 register_gdbarch_swap (&builtin_type_complex, sizeof (struct type *), NULL);
3505 register_gdbarch_swap (&builtin_type_double_complex, sizeof (struct type *), NULL);
3506 register_gdbarch_swap (&builtin_type_string, sizeof (struct type *), NULL);
3507 register_gdbarch_swap (&builtin_type_int8, sizeof (struct type *), NULL);
3508 register_gdbarch_swap (&builtin_type_uint8, sizeof (struct type *), NULL);
3509 register_gdbarch_swap (&builtin_type_int16, sizeof (struct type *), NULL);
3510 register_gdbarch_swap (&builtin_type_uint16, sizeof (struct type *), NULL);
3511 register_gdbarch_swap (&builtin_type_int32, sizeof (struct type *), NULL);
3512 register_gdbarch_swap (&builtin_type_uint32, sizeof (struct type *), NULL);
3513 register_gdbarch_swap (&builtin_type_int64, sizeof (struct type *), NULL);
3514 register_gdbarch_swap (&builtin_type_uint64, sizeof (struct type *), NULL);
3515 register_gdbarch_swap (&builtin_type_int128, sizeof (struct type *), NULL);
3516 register_gdbarch_swap (&builtin_type_uint128, sizeof (struct type *), NULL);
3517 register_gdbarch_swap (&builtin_type_v4sf, sizeof (struct type *), NULL);
3518 register_gdbarch_swap (&builtin_type_v4si, sizeof (struct type *), NULL);
3519 register_gdbarch_swap (&builtin_type_v16qi, sizeof (struct type *), NULL);
3520 register_gdbarch_swap (&builtin_type_v8qi, sizeof (struct type *), NULL);
3521 register_gdbarch_swap (&builtin_type_v8hi, sizeof (struct type *), NULL);
3522 register_gdbarch_swap (&builtin_type_v4hi, sizeof (struct type *), NULL);
3523 register_gdbarch_swap (&builtin_type_v2si, sizeof (struct type *), NULL);
3524 register_gdbarch_swap (&builtin_type_v2_double, sizeof (struct type *), NULL);
3525 register_gdbarch_swap (&builtin_type_v4_float, sizeof (struct type *), NULL);
3526 register_gdbarch_swap (&builtin_type_v2_int64, sizeof (struct type *), NULL);
3527 register_gdbarch_swap (&builtin_type_v4_int32, sizeof (struct type *), NULL);
3528 register_gdbarch_swap (&builtin_type_v8_int16, sizeof (struct type *), NULL);
3529 register_gdbarch_swap (&builtin_type_v16_int8, sizeof (struct type *), NULL);
3530 register_gdbarch_swap (&builtin_type_v2_float, sizeof (struct type *), NULL);
3531 register_gdbarch_swap (&builtin_type_v2_int32, sizeof (struct type *), NULL);
3532 register_gdbarch_swap (&builtin_type_v8_int8, sizeof (struct type *), NULL);
3533 register_gdbarch_swap (&builtin_type_v4_int16, sizeof (struct type *), NULL);
3534 register_gdbarch_swap (&builtin_type_vec128, sizeof (struct type *), NULL);
3535 register_gdbarch_swap (&builtin_type_vec128i, sizeof (struct type *), NULL);
3536 REGISTER_GDBARCH_SWAP (builtin_type_void_data_ptr);
3537 REGISTER_GDBARCH_SWAP (builtin_type_void_func_ptr);
3538 REGISTER_GDBARCH_SWAP (builtin_type_CORE_ADDR);
3539 REGISTER_GDBARCH_SWAP (builtin_type_bfd_vma);
3540 register_gdbarch_swap (NULL, 0, build_gdbtypes);
3541
3542 /* Note: These types do not need to be swapped - they are target
3543 neutral. */
3544 builtin_type_ieee_single_big =
3545 init_type (TYPE_CODE_FLT, floatformat_ieee_single_big.totalsize / 8,
3546 0, "builtin_type_ieee_single_big", NULL);
3547 TYPE_FLOATFORMAT (builtin_type_ieee_single_big) = &floatformat_ieee_single_big;
3548 builtin_type_ieee_single_little =
3549 init_type (TYPE_CODE_FLT, floatformat_ieee_single_little.totalsize / 8,
3550 0, "builtin_type_ieee_single_little", NULL);
3551 TYPE_FLOATFORMAT (builtin_type_ieee_single_little) = &floatformat_ieee_single_little;
3552 builtin_type_ieee_double_big =
3553 init_type (TYPE_CODE_FLT, floatformat_ieee_double_big.totalsize / 8,
3554 0, "builtin_type_ieee_double_big", NULL);
3555 TYPE_FLOATFORMAT (builtin_type_ieee_double_big) = &floatformat_ieee_double_big;
3556 builtin_type_ieee_double_little =
3557 init_type (TYPE_CODE_FLT, floatformat_ieee_double_little.totalsize / 8,
3558 0, "builtin_type_ieee_double_little", NULL);
3559 TYPE_FLOATFORMAT (builtin_type_ieee_double_little) = &floatformat_ieee_double_little;
3560 builtin_type_ieee_double_littlebyte_bigword =
3561 init_type (TYPE_CODE_FLT, floatformat_ieee_double_littlebyte_bigword.totalsize / 8,
3562 0, "builtin_type_ieee_double_littlebyte_bigword", NULL);
3563 TYPE_FLOATFORMAT (builtin_type_ieee_double_littlebyte_bigword) = &floatformat_ieee_double_littlebyte_bigword;
3564 builtin_type_i387_ext =
3565 init_type (TYPE_CODE_FLT, floatformat_i387_ext.totalsize / 8,
3566 0, "builtin_type_i387_ext", NULL);
3567 TYPE_FLOATFORMAT (builtin_type_i387_ext) = &floatformat_i387_ext;
3568 builtin_type_m68881_ext =
3569 init_type (TYPE_CODE_FLT, floatformat_m68881_ext.totalsize / 8,
3570 0, "builtin_type_m68881_ext", NULL);
3571 TYPE_FLOATFORMAT (builtin_type_m68881_ext) = &floatformat_m68881_ext;
3572 builtin_type_i960_ext =
3573 init_type (TYPE_CODE_FLT, floatformat_i960_ext.totalsize / 8,
3574 0, "builtin_type_i960_ext", NULL);
3575 TYPE_FLOATFORMAT (builtin_type_i960_ext) = &floatformat_i960_ext;
3576 builtin_type_m88110_ext =
3577 init_type (TYPE_CODE_FLT, floatformat_m88110_ext.totalsize / 8,
3578 0, "builtin_type_m88110_ext", NULL);
3579 TYPE_FLOATFORMAT (builtin_type_m88110_ext) = &floatformat_m88110_ext;
3580 builtin_type_m88110_harris_ext =
3581 init_type (TYPE_CODE_FLT, floatformat_m88110_harris_ext.totalsize / 8,
3582 0, "builtin_type_m88110_harris_ext", NULL);
3583 TYPE_FLOATFORMAT (builtin_type_m88110_harris_ext) = &floatformat_m88110_harris_ext;
3584 builtin_type_arm_ext_big =
3585 init_type (TYPE_CODE_FLT, floatformat_arm_ext_big.totalsize / 8,
3586 0, "builtin_type_arm_ext_big", NULL);
3587 TYPE_FLOATFORMAT (builtin_type_arm_ext_big) = &floatformat_arm_ext_big;
3588 builtin_type_arm_ext_littlebyte_bigword =
3589 init_type (TYPE_CODE_FLT, floatformat_arm_ext_littlebyte_bigword.totalsize / 8,
3590 0, "builtin_type_arm_ext_littlebyte_bigword", NULL);
3591 TYPE_FLOATFORMAT (builtin_type_arm_ext_littlebyte_bigword) = &floatformat_arm_ext_littlebyte_bigword;
3592 builtin_type_ia64_spill_big =
3593 init_type (TYPE_CODE_FLT, floatformat_ia64_spill_big.totalsize / 8,
3594 0, "builtin_type_ia64_spill_big", NULL);
3595 TYPE_FLOATFORMAT (builtin_type_ia64_spill_big) = &floatformat_ia64_spill_big;
3596 builtin_type_ia64_spill_little =
3597 init_type (TYPE_CODE_FLT, floatformat_ia64_spill_little.totalsize / 8,
3598 0, "builtin_type_ia64_spill_little", NULL);
3599 TYPE_FLOATFORMAT (builtin_type_ia64_spill_little) = &floatformat_ia64_spill_little;
3600 builtin_type_ia64_quad_big =
3601 init_type (TYPE_CODE_FLT, floatformat_ia64_quad_big.totalsize / 8,
3602 0, "builtin_type_ia64_quad_big", NULL);
3603 TYPE_FLOATFORMAT (builtin_type_ia64_quad_big) = &floatformat_ia64_quad_big;
3604 builtin_type_ia64_quad_little =
3605 init_type (TYPE_CODE_FLT, floatformat_ia64_quad_little.totalsize / 8,
3606 0, "builtin_type_ia64_quad_little", NULL);
3607 TYPE_FLOATFORMAT (builtin_type_ia64_quad_little) = &floatformat_ia64_quad_little;
3608
3609 add_show_from_set (
3610 add_set_cmd ("overload", no_class, var_zinteger, (char *) &overload_debug,
3611 "Set debugging of C++ overloading.\n\
3612 When enabled, ranking of the functions\n\
3613 is displayed.", &setdebuglist),
3614 &showdebuglist);
3615 }
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