update copyright year range in GDB files
[deliverable/binutils-gdb.git] / gdb / valops.c
CommitLineData
c906108c 1/* Perform non-arithmetic operations on values, for GDB.
990a07ab 2
61baf725 3 Copyright (C) 1986-2017 Free Software Foundation, Inc.
c906108c 4
c5aa993b 5 This file is part of GDB.
c906108c 6
c5aa993b
JM
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
a9762ec7 9 the Free Software Foundation; either version 3 of the License, or
c5aa993b 10 (at your option) any later version.
c906108c 11
c5aa993b
JM
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
c906108c 16
c5aa993b 17 You should have received a copy of the GNU General Public License
a9762ec7 18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
c906108c
SS
19
20#include "defs.h"
21#include "symtab.h"
22#include "gdbtypes.h"
23#include "value.h"
24#include "frame.h"
25#include "inferior.h"
26#include "gdbcore.h"
27#include "target.h"
28#include "demangle.h"
29#include "language.h"
30#include "gdbcmd.h"
4e052eda 31#include "regcache.h"
015a42b4 32#include "cp-abi.h"
fe898f56 33#include "block.h"
04714b91 34#include "infcall.h"
de4f826b 35#include "dictionary.h"
b6429628 36#include "cp-support.h"
4ef30785 37#include "dfp.h"
e6ca34fc 38#include "tracepoint.h"
f4c5303c 39#include "observer.h"
3e3b026f 40#include "objfiles.h"
233e8b28 41#include "extension.h"
c906108c 42
ccce17b0 43extern unsigned int overload_debug;
c906108c
SS
44/* Local functions. */
45
ad2f7632
DJ
46static int typecmp (int staticp, int varargs, int nargs,
47 struct field t1[], struct value *t2[]);
c906108c 48
714f19d5 49static struct value *search_struct_field (const char *, struct value *,
8a13d42d 50 struct type *, int);
c906108c 51
714f19d5
TT
52static struct value *search_struct_method (const char *, struct value **,
53 struct value **,
6b850546 54 LONGEST, int *, struct type *);
c906108c 55
da096638 56static int find_oload_champ_namespace (struct value **, int,
ac3eeb49
MS
57 const char *, const char *,
58 struct symbol ***,
7322dca9
SW
59 struct badness_vector **,
60 const int no_adl);
8d577d32
DC
61
62static
da096638 63int find_oload_champ_namespace_loop (struct value **, int,
ac3eeb49
MS
64 const char *, const char *,
65 int, struct symbol ***,
7322dca9
SW
66 struct badness_vector **, int *,
67 const int no_adl);
ac3eeb49 68
9cf95373 69static int find_oload_champ (struct value **, int, int,
233e8b28
SC
70 struct fn_field *, VEC (xmethod_worker_ptr) *,
71 struct symbol **, struct badness_vector **);
ac3eeb49 72
2bca57ba 73static int oload_method_static_p (struct fn_field *, int);
8d577d32
DC
74
75enum oload_classification { STANDARD, NON_STANDARD, INCOMPATIBLE };
76
77static enum
ac3eeb49
MS
78oload_classification classify_oload_match (struct badness_vector *,
79 int, int);
8d577d32 80
ac3eeb49
MS
81static struct value *value_struct_elt_for_reference (struct type *,
82 int, struct type *,
c848d642 83 const char *,
ac3eeb49
MS
84 struct type *,
85 int, enum noside);
79c2c32d 86
ac3eeb49 87static struct value *value_namespace_elt (const struct type *,
c848d642 88 const char *, int , enum noside);
79c2c32d 89
ac3eeb49 90static struct value *value_maybe_namespace_elt (const struct type *,
c848d642 91 const char *, int,
ac3eeb49 92 enum noside);
63d06c5c 93
a14ed312 94static CORE_ADDR allocate_space_in_inferior (int);
c906108c 95
f23631e4 96static struct value *cast_into_complex (struct type *, struct value *);
c906108c 97
233e8b28 98static void find_method_list (struct value **, const char *,
6b850546 99 LONGEST, struct type *, struct fn_field **, int *,
233e8b28 100 VEC (xmethod_worker_ptr) **,
6b850546 101 struct type **, LONGEST *);
7a292a7a 102
a14ed312 103void _initialize_valops (void);
c906108c 104
c906108c 105#if 0
ac3eeb49
MS
106/* Flag for whether we want to abandon failed expression evals by
107 default. */
108
c906108c
SS
109static int auto_abandon = 0;
110#endif
111
112int overload_resolution = 0;
920d2a44
AC
113static void
114show_overload_resolution (struct ui_file *file, int from_tty,
ac3eeb49
MS
115 struct cmd_list_element *c,
116 const char *value)
920d2a44 117{
3e43a32a
MS
118 fprintf_filtered (file, _("Overload resolution in evaluating "
119 "C++ functions is %s.\n"),
920d2a44
AC
120 value);
121}
242bfc55 122
3e3b026f
UW
123/* Find the address of function name NAME in the inferior. If OBJF_P
124 is non-NULL, *OBJF_P will be set to the OBJFILE where the function
125 is defined. */
c906108c 126
f23631e4 127struct value *
3e3b026f 128find_function_in_inferior (const char *name, struct objfile **objf_p)
c906108c 129{
d12307c1 130 struct block_symbol sym;
a109c7c1 131
2570f2b7 132 sym = lookup_symbol (name, 0, VAR_DOMAIN, 0);
d12307c1 133 if (sym.symbol != NULL)
c906108c 134 {
d12307c1 135 if (SYMBOL_CLASS (sym.symbol) != LOC_BLOCK)
c906108c 136 {
8a3fe4f8 137 error (_("\"%s\" exists in this program but is not a function."),
c906108c
SS
138 name);
139 }
3e3b026f
UW
140
141 if (objf_p)
d12307c1 142 *objf_p = symbol_objfile (sym.symbol);
3e3b026f 143
d12307c1 144 return value_of_variable (sym.symbol, sym.block);
c906108c
SS
145 }
146 else
147 {
7c7b6655
TT
148 struct bound_minimal_symbol msymbol =
149 lookup_bound_minimal_symbol (name);
a109c7c1 150
7c7b6655 151 if (msymbol.minsym != NULL)
c906108c 152 {
7c7b6655 153 struct objfile *objfile = msymbol.objfile;
3e3b026f
UW
154 struct gdbarch *gdbarch = get_objfile_arch (objfile);
155
c906108c 156 struct type *type;
4478b372 157 CORE_ADDR maddr;
3e3b026f 158 type = lookup_pointer_type (builtin_type (gdbarch)->builtin_char);
c906108c
SS
159 type = lookup_function_type (type);
160 type = lookup_pointer_type (type);
77e371c0 161 maddr = BMSYMBOL_VALUE_ADDRESS (msymbol);
3e3b026f
UW
162
163 if (objf_p)
164 *objf_p = objfile;
165
4478b372 166 return value_from_pointer (type, maddr);
c906108c
SS
167 }
168 else
169 {
c5aa993b 170 if (!target_has_execution)
3e43a32a
MS
171 error (_("evaluation of this expression "
172 "requires the target program to be active"));
c5aa993b 173 else
3e43a32a
MS
174 error (_("evaluation of this expression requires the "
175 "program to have a function \"%s\"."),
176 name);
c906108c
SS
177 }
178 }
179}
180
ac3eeb49
MS
181/* Allocate NBYTES of space in the inferior using the inferior's
182 malloc and return a value that is a pointer to the allocated
183 space. */
c906108c 184
f23631e4 185struct value *
fba45db2 186value_allocate_space_in_inferior (int len)
c906108c 187{
3e3b026f
UW
188 struct objfile *objf;
189 struct value *val = find_function_in_inferior ("malloc", &objf);
190 struct gdbarch *gdbarch = get_objfile_arch (objf);
f23631e4 191 struct value *blocklen;
c906108c 192
3e3b026f 193 blocklen = value_from_longest (builtin_type (gdbarch)->builtin_int, len);
c906108c
SS
194 val = call_function_by_hand (val, 1, &blocklen);
195 if (value_logical_not (val))
196 {
197 if (!target_has_execution)
3e43a32a
MS
198 error (_("No memory available to program now: "
199 "you need to start the target first"));
c5aa993b 200 else
8a3fe4f8 201 error (_("No memory available to program: call to malloc failed"));
c906108c
SS
202 }
203 return val;
204}
205
206static CORE_ADDR
fba45db2 207allocate_space_in_inferior (int len)
c906108c
SS
208{
209 return value_as_long (value_allocate_space_in_inferior (len));
210}
211
6af87b03
AR
212/* Cast struct value VAL to type TYPE and return as a value.
213 Both type and val must be of TYPE_CODE_STRUCT or TYPE_CODE_UNION
694182d2
DJ
214 for this to work. Typedef to one of the codes is permitted.
215 Returns NULL if the cast is neither an upcast nor a downcast. */
6af87b03
AR
216
217static struct value *
218value_cast_structs (struct type *type, struct value *v2)
219{
220 struct type *t1;
221 struct type *t2;
222 struct value *v;
223
224 gdb_assert (type != NULL && v2 != NULL);
225
226 t1 = check_typedef (type);
227 t2 = check_typedef (value_type (v2));
228
229 /* Check preconditions. */
230 gdb_assert ((TYPE_CODE (t1) == TYPE_CODE_STRUCT
231 || TYPE_CODE (t1) == TYPE_CODE_UNION)
232 && !!"Precondition is that type is of STRUCT or UNION kind.");
233 gdb_assert ((TYPE_CODE (t2) == TYPE_CODE_STRUCT
234 || TYPE_CODE (t2) == TYPE_CODE_UNION)
235 && !!"Precondition is that value is of STRUCT or UNION kind");
236
191ca0a1
CM
237 if (TYPE_NAME (t1) != NULL
238 && TYPE_NAME (t2) != NULL
239 && !strcmp (TYPE_NAME (t1), TYPE_NAME (t2)))
240 return NULL;
241
6af87b03
AR
242 /* Upcasting: look in the type of the source to see if it contains the
243 type of the target as a superclass. If so, we'll need to
244 offset the pointer rather than just change its type. */
245 if (TYPE_NAME (t1) != NULL)
246 {
247 v = search_struct_field (type_name_no_tag (t1),
8a13d42d 248 v2, t2, 1);
6af87b03
AR
249 if (v)
250 return v;
251 }
252
253 /* Downcasting: look in the type of the target to see if it contains the
254 type of the source as a superclass. If so, we'll need to
9c3c02fd 255 offset the pointer rather than just change its type. */
6af87b03
AR
256 if (TYPE_NAME (t2) != NULL)
257 {
9c3c02fd 258 /* Try downcasting using the run-time type of the value. */
6b850546
DT
259 int full, using_enc;
260 LONGEST top;
9c3c02fd
TT
261 struct type *real_type;
262
263 real_type = value_rtti_type (v2, &full, &top, &using_enc);
264 if (real_type)
265 {
266 v = value_full_object (v2, real_type, full, top, using_enc);
267 v = value_at_lazy (real_type, value_address (v));
9f1f738a 268 real_type = value_type (v);
9c3c02fd
TT
269
270 /* We might be trying to cast to the outermost enclosing
271 type, in which case search_struct_field won't work. */
272 if (TYPE_NAME (real_type) != NULL
273 && !strcmp (TYPE_NAME (real_type), TYPE_NAME (t1)))
274 return v;
275
8a13d42d 276 v = search_struct_field (type_name_no_tag (t2), v, real_type, 1);
9c3c02fd
TT
277 if (v)
278 return v;
279 }
280
281 /* Try downcasting using information from the destination type
282 T2. This wouldn't work properly for classes with virtual
283 bases, but those were handled above. */
6af87b03 284 v = search_struct_field (type_name_no_tag (t2),
8a13d42d 285 value_zero (t1, not_lval), t1, 1);
6af87b03
AR
286 if (v)
287 {
288 /* Downcasting is possible (t1 is superclass of v2). */
42ae5230 289 CORE_ADDR addr2 = value_address (v2);
a109c7c1 290
42ae5230 291 addr2 -= value_address (v) + value_embedded_offset (v);
6af87b03
AR
292 return value_at (type, addr2);
293 }
294 }
694182d2
DJ
295
296 return NULL;
6af87b03
AR
297}
298
fb933624
DJ
299/* Cast one pointer or reference type to another. Both TYPE and
300 the type of ARG2 should be pointer types, or else both should be
b1af9e97
TT
301 reference types. If SUBCLASS_CHECK is non-zero, this will force a
302 check to see whether TYPE is a superclass of ARG2's type. If
303 SUBCLASS_CHECK is zero, then the subclass check is done only when
304 ARG2 is itself non-zero. Returns the new pointer or reference. */
fb933624
DJ
305
306struct value *
b1af9e97
TT
307value_cast_pointers (struct type *type, struct value *arg2,
308 int subclass_check)
fb933624 309{
d160942f 310 struct type *type1 = check_typedef (type);
fb933624 311 struct type *type2 = check_typedef (value_type (arg2));
d160942f 312 struct type *t1 = check_typedef (TYPE_TARGET_TYPE (type1));
fb933624
DJ
313 struct type *t2 = check_typedef (TYPE_TARGET_TYPE (type2));
314
315 if (TYPE_CODE (t1) == TYPE_CODE_STRUCT
316 && TYPE_CODE (t2) == TYPE_CODE_STRUCT
b1af9e97 317 && (subclass_check || !value_logical_not (arg2)))
fb933624 318 {
6af87b03 319 struct value *v2;
fb933624 320
6af87b03
AR
321 if (TYPE_CODE (type2) == TYPE_CODE_REF)
322 v2 = coerce_ref (arg2);
323 else
324 v2 = value_ind (arg2);
3e43a32a
MS
325 gdb_assert (TYPE_CODE (check_typedef (value_type (v2)))
326 == TYPE_CODE_STRUCT && !!"Why did coercion fail?");
6af87b03
AR
327 v2 = value_cast_structs (t1, v2);
328 /* At this point we have what we can have, un-dereference if needed. */
329 if (v2)
fb933624 330 {
6af87b03 331 struct value *v = value_addr (v2);
a109c7c1 332
6af87b03
AR
333 deprecated_set_value_type (v, type);
334 return v;
fb933624 335 }
8301c89e 336 }
fb933624
DJ
337
338 /* No superclass found, just change the pointer type. */
0d5de010 339 arg2 = value_copy (arg2);
fb933624 340 deprecated_set_value_type (arg2, type);
4dfea560 341 set_value_enclosing_type (arg2, type);
fb933624
DJ
342 set_value_pointed_to_offset (arg2, 0); /* pai: chk_val */
343 return arg2;
344}
345
c906108c
SS
346/* Cast value ARG2 to type TYPE and return as a value.
347 More general than a C cast: accepts any two types of the same length,
348 and if ARG2 is an lvalue it can be cast into anything at all. */
349/* In C++, casts may change pointer or object representations. */
350
f23631e4
AC
351struct value *
352value_cast (struct type *type, struct value *arg2)
c906108c 353{
52f0bd74
AC
354 enum type_code code1;
355 enum type_code code2;
356 int scalar;
c906108c
SS
357 struct type *type2;
358
359 int convert_to_boolean = 0;
c5aa993b 360
df407dfe 361 if (value_type (arg2) == type)
c906108c
SS
362 return arg2;
363
6af87b03
AR
364 code1 = TYPE_CODE (check_typedef (type));
365
366 /* Check if we are casting struct reference to struct reference. */
367 if (code1 == TYPE_CODE_REF)
368 {
369 /* We dereference type; then we recurse and finally
581e13c1 370 we generate value of the given reference. Nothing wrong with
6af87b03
AR
371 that. */
372 struct type *t1 = check_typedef (type);
373 struct type *dereftype = check_typedef (TYPE_TARGET_TYPE (t1));
374 struct value *val = value_cast (dereftype, arg2);
a109c7c1 375
6af87b03
AR
376 return value_ref (val);
377 }
378
379 code2 = TYPE_CODE (check_typedef (value_type (arg2)));
380
381 if (code2 == TYPE_CODE_REF)
382 /* We deref the value and then do the cast. */
383 return value_cast (type, coerce_ref (arg2));
384
f168693b 385 type = check_typedef (type);
c906108c 386 code1 = TYPE_CODE (type);
994b9211 387 arg2 = coerce_ref (arg2);
df407dfe 388 type2 = check_typedef (value_type (arg2));
c906108c 389
fb933624
DJ
390 /* You can't cast to a reference type. See value_cast_pointers
391 instead. */
392 gdb_assert (code1 != TYPE_CODE_REF);
393
ac3eeb49
MS
394 /* A cast to an undetermined-length array_type, such as
395 (TYPE [])OBJECT, is treated like a cast to (TYPE [N])OBJECT,
396 where N is sizeof(OBJECT)/sizeof(TYPE). */
c906108c
SS
397 if (code1 == TYPE_CODE_ARRAY)
398 {
399 struct type *element_type = TYPE_TARGET_TYPE (type);
400 unsigned element_length = TYPE_LENGTH (check_typedef (element_type));
a109c7c1 401
d78df370 402 if (element_length > 0 && TYPE_ARRAY_UPPER_BOUND_IS_UNDEFINED (type))
c906108c
SS
403 {
404 struct type *range_type = TYPE_INDEX_TYPE (type);
405 int val_length = TYPE_LENGTH (type2);
406 LONGEST low_bound, high_bound, new_length;
a109c7c1 407
c906108c
SS
408 if (get_discrete_bounds (range_type, &low_bound, &high_bound) < 0)
409 low_bound = 0, high_bound = 0;
410 new_length = val_length / element_length;
411 if (val_length % element_length != 0)
3e43a32a
MS
412 warning (_("array element type size does not "
413 "divide object size in cast"));
ac3eeb49
MS
414 /* FIXME-type-allocation: need a way to free this type when
415 we are done with it. */
0c9c3474
SA
416 range_type = create_static_range_type ((struct type *) NULL,
417 TYPE_TARGET_TYPE (range_type),
418 low_bound,
419 new_length + low_bound - 1);
ac3eeb49
MS
420 deprecated_set_value_type (arg2,
421 create_array_type ((struct type *) NULL,
422 element_type,
423 range_type));
c906108c
SS
424 return arg2;
425 }
426 }
427
428 if (current_language->c_style_arrays
3bdf2bbd
KW
429 && TYPE_CODE (type2) == TYPE_CODE_ARRAY
430 && !TYPE_VECTOR (type2))
c906108c
SS
431 arg2 = value_coerce_array (arg2);
432
433 if (TYPE_CODE (type2) == TYPE_CODE_FUNC)
434 arg2 = value_coerce_function (arg2);
435
df407dfe 436 type2 = check_typedef (value_type (arg2));
c906108c
SS
437 code2 = TYPE_CODE (type2);
438
439 if (code1 == TYPE_CODE_COMPLEX)
440 return cast_into_complex (type, arg2);
441 if (code1 == TYPE_CODE_BOOL)
442 {
443 code1 = TYPE_CODE_INT;
444 convert_to_boolean = 1;
445 }
446 if (code1 == TYPE_CODE_CHAR)
447 code1 = TYPE_CODE_INT;
448 if (code2 == TYPE_CODE_BOOL || code2 == TYPE_CODE_CHAR)
449 code2 = TYPE_CODE_INT;
450
451 scalar = (code2 == TYPE_CODE_INT || code2 == TYPE_CODE_FLT
4ef30785
TJB
452 || code2 == TYPE_CODE_DECFLOAT || code2 == TYPE_CODE_ENUM
453 || code2 == TYPE_CODE_RANGE);
c906108c 454
6af87b03
AR
455 if ((code1 == TYPE_CODE_STRUCT || code1 == TYPE_CODE_UNION)
456 && (code2 == TYPE_CODE_STRUCT || code2 == TYPE_CODE_UNION)
c906108c 457 && TYPE_NAME (type) != 0)
694182d2
DJ
458 {
459 struct value *v = value_cast_structs (type, arg2);
a109c7c1 460
694182d2
DJ
461 if (v)
462 return v;
463 }
464
c906108c
SS
465 if (code1 == TYPE_CODE_FLT && scalar)
466 return value_from_double (type, value_as_double (arg2));
4ef30785
TJB
467 else if (code1 == TYPE_CODE_DECFLOAT && scalar)
468 {
e17a4113 469 enum bfd_endian byte_order = gdbarch_byte_order (get_type_arch (type));
4ef30785
TJB
470 int dec_len = TYPE_LENGTH (type);
471 gdb_byte dec[16];
472
473 if (code2 == TYPE_CODE_FLT)
e17a4113 474 decimal_from_floating (arg2, dec, dec_len, byte_order);
4ef30785
TJB
475 else if (code2 == TYPE_CODE_DECFLOAT)
476 decimal_convert (value_contents (arg2), TYPE_LENGTH (type2),
e17a4113 477 byte_order, dec, dec_len, byte_order);
4ef30785
TJB
478 else
479 /* The only option left is an integral type. */
e17a4113 480 decimal_from_integral (arg2, dec, dec_len, byte_order);
4ef30785
TJB
481
482 return value_from_decfloat (type, dec);
483 }
c906108c
SS
484 else if ((code1 == TYPE_CODE_INT || code1 == TYPE_CODE_ENUM
485 || code1 == TYPE_CODE_RANGE)
0d5de010
DJ
486 && (scalar || code2 == TYPE_CODE_PTR
487 || code2 == TYPE_CODE_MEMBERPTR))
c906108c
SS
488 {
489 LONGEST longest;
c5aa993b 490
2bf1f4a1 491 /* When we cast pointers to integers, we mustn't use
76e71323 492 gdbarch_pointer_to_address to find the address the pointer
2bf1f4a1
JB
493 represents, as value_as_long would. GDB should evaluate
494 expressions just as the compiler would --- and the compiler
495 sees a cast as a simple reinterpretation of the pointer's
496 bits. */
497 if (code2 == TYPE_CODE_PTR)
e17a4113
UW
498 longest = extract_unsigned_integer
499 (value_contents (arg2), TYPE_LENGTH (type2),
500 gdbarch_byte_order (get_type_arch (type2)));
2bf1f4a1
JB
501 else
502 longest = value_as_long (arg2);
802db21b 503 return value_from_longest (type, convert_to_boolean ?
716c501e 504 (LONGEST) (longest ? 1 : 0) : longest);
c906108c 505 }
ac3eeb49
MS
506 else if (code1 == TYPE_CODE_PTR && (code2 == TYPE_CODE_INT
507 || code2 == TYPE_CODE_ENUM
508 || code2 == TYPE_CODE_RANGE))
634acd5f 509 {
4603e466
DT
510 /* TYPE_LENGTH (type) is the length of a pointer, but we really
511 want the length of an address! -- we are really dealing with
512 addresses (i.e., gdb representations) not pointers (i.e.,
513 target representations) here.
514
515 This allows things like "print *(int *)0x01000234" to work
516 without printing a misleading message -- which would
517 otherwise occur when dealing with a target having two byte
518 pointers and four byte addresses. */
519
50810684 520 int addr_bit = gdbarch_addr_bit (get_type_arch (type2));
634acd5f 521 LONGEST longest = value_as_long (arg2);
a109c7c1 522
4603e466 523 if (addr_bit < sizeof (LONGEST) * HOST_CHAR_BIT)
634acd5f 524 {
4603e466
DT
525 if (longest >= ((LONGEST) 1 << addr_bit)
526 || longest <= -((LONGEST) 1 << addr_bit))
8a3fe4f8 527 warning (_("value truncated"));
634acd5f
AC
528 }
529 return value_from_longest (type, longest);
530 }
0d5de010
DJ
531 else if (code1 == TYPE_CODE_METHODPTR && code2 == TYPE_CODE_INT
532 && value_as_long (arg2) == 0)
533 {
534 struct value *result = allocate_value (type);
a109c7c1 535
ad4820ab 536 cplus_make_method_ptr (type, value_contents_writeable (result), 0, 0);
0d5de010
DJ
537 return result;
538 }
539 else if (code1 == TYPE_CODE_MEMBERPTR && code2 == TYPE_CODE_INT
540 && value_as_long (arg2) == 0)
541 {
542 /* The Itanium C++ ABI represents NULL pointers to members as
543 minus one, instead of biasing the normal case. */
544 return value_from_longest (type, -1);
545 }
8954db33
AB
546 else if (code1 == TYPE_CODE_ARRAY && TYPE_VECTOR (type)
547 && code2 == TYPE_CODE_ARRAY && TYPE_VECTOR (type2)
548 && TYPE_LENGTH (type) != TYPE_LENGTH (type2))
549 error (_("Cannot convert between vector values of different sizes"));
550 else if (code1 == TYPE_CODE_ARRAY && TYPE_VECTOR (type) && scalar
551 && TYPE_LENGTH (type) != TYPE_LENGTH (type2))
552 error (_("can only cast scalar to vector of same size"));
0ba2eb0f
TT
553 else if (code1 == TYPE_CODE_VOID)
554 {
555 return value_zero (type, not_lval);
556 }
c906108c
SS
557 else if (TYPE_LENGTH (type) == TYPE_LENGTH (type2))
558 {
559 if (code1 == TYPE_CODE_PTR && code2 == TYPE_CODE_PTR)
b1af9e97 560 return value_cast_pointers (type, arg2, 0);
fb933624 561
0d5de010 562 arg2 = value_copy (arg2);
04624583 563 deprecated_set_value_type (arg2, type);
4dfea560 564 set_value_enclosing_type (arg2, type);
b44d461b 565 set_value_pointed_to_offset (arg2, 0); /* pai: chk_val */
c906108c
SS
566 return arg2;
567 }
c906108c 568 else if (VALUE_LVAL (arg2) == lval_memory)
42ae5230 569 return value_at_lazy (type, value_address (arg2));
c906108c
SS
570 else
571 {
8a3fe4f8 572 error (_("Invalid cast."));
c906108c
SS
573 return 0;
574 }
575}
576
4e8f195d
TT
577/* The C++ reinterpret_cast operator. */
578
579struct value *
580value_reinterpret_cast (struct type *type, struct value *arg)
581{
582 struct value *result;
583 struct type *real_type = check_typedef (type);
584 struct type *arg_type, *dest_type;
585 int is_ref = 0;
586 enum type_code dest_code, arg_code;
587
588 /* Do reference, function, and array conversion. */
589 arg = coerce_array (arg);
590
591 /* Attempt to preserve the type the user asked for. */
592 dest_type = type;
593
594 /* If we are casting to a reference type, transform
595 reinterpret_cast<T&>(V) to *reinterpret_cast<T*>(&V). */
596 if (TYPE_CODE (real_type) == TYPE_CODE_REF)
597 {
598 is_ref = 1;
599 arg = value_addr (arg);
600 dest_type = lookup_pointer_type (TYPE_TARGET_TYPE (dest_type));
601 real_type = lookup_pointer_type (real_type);
602 }
603
604 arg_type = value_type (arg);
605
606 dest_code = TYPE_CODE (real_type);
607 arg_code = TYPE_CODE (arg_type);
608
609 /* We can convert pointer types, or any pointer type to int, or int
610 type to pointer. */
611 if ((dest_code == TYPE_CODE_PTR && arg_code == TYPE_CODE_INT)
612 || (dest_code == TYPE_CODE_INT && arg_code == TYPE_CODE_PTR)
613 || (dest_code == TYPE_CODE_METHODPTR && arg_code == TYPE_CODE_INT)
614 || (dest_code == TYPE_CODE_INT && arg_code == TYPE_CODE_METHODPTR)
615 || (dest_code == TYPE_CODE_MEMBERPTR && arg_code == TYPE_CODE_INT)
616 || (dest_code == TYPE_CODE_INT && arg_code == TYPE_CODE_MEMBERPTR)
617 || (dest_code == arg_code
618 && (dest_code == TYPE_CODE_PTR
619 || dest_code == TYPE_CODE_METHODPTR
620 || dest_code == TYPE_CODE_MEMBERPTR)))
621 result = value_cast (dest_type, arg);
622 else
623 error (_("Invalid reinterpret_cast"));
624
625 if (is_ref)
626 result = value_cast (type, value_ref (value_ind (result)));
627
628 return result;
629}
630
631/* A helper for value_dynamic_cast. This implements the first of two
632 runtime checks: we iterate over all the base classes of the value's
633 class which are equal to the desired class; if only one of these
634 holds the value, then it is the answer. */
635
636static int
637dynamic_cast_check_1 (struct type *desired_type,
8af8e3bc 638 const gdb_byte *valaddr,
6b850546 639 LONGEST embedded_offset,
4e8f195d 640 CORE_ADDR address,
8af8e3bc 641 struct value *val,
4e8f195d
TT
642 struct type *search_type,
643 CORE_ADDR arg_addr,
644 struct type *arg_type,
645 struct value **result)
646{
647 int i, result_count = 0;
648
649 for (i = 0; i < TYPE_N_BASECLASSES (search_type) && result_count < 2; ++i)
650 {
6b850546
DT
651 LONGEST offset = baseclass_offset (search_type, i, valaddr,
652 embedded_offset,
653 address, val);
a109c7c1 654
4e8f195d
TT
655 if (class_types_same_p (desired_type, TYPE_BASECLASS (search_type, i)))
656 {
8af8e3bc
PA
657 if (address + embedded_offset + offset >= arg_addr
658 && address + embedded_offset + offset < arg_addr + TYPE_LENGTH (arg_type))
4e8f195d
TT
659 {
660 ++result_count;
661 if (!*result)
662 *result = value_at_lazy (TYPE_BASECLASS (search_type, i),
8af8e3bc 663 address + embedded_offset + offset);
4e8f195d
TT
664 }
665 }
666 else
667 result_count += dynamic_cast_check_1 (desired_type,
8af8e3bc
PA
668 valaddr,
669 embedded_offset + offset,
670 address, val,
4e8f195d
TT
671 TYPE_BASECLASS (search_type, i),
672 arg_addr,
673 arg_type,
674 result);
675 }
676
677 return result_count;
678}
679
680/* A helper for value_dynamic_cast. This implements the second of two
681 runtime checks: we look for a unique public sibling class of the
682 argument's declared class. */
683
684static int
685dynamic_cast_check_2 (struct type *desired_type,
8af8e3bc 686 const gdb_byte *valaddr,
6b850546 687 LONGEST embedded_offset,
4e8f195d 688 CORE_ADDR address,
8af8e3bc 689 struct value *val,
4e8f195d
TT
690 struct type *search_type,
691 struct value **result)
692{
693 int i, result_count = 0;
694
695 for (i = 0; i < TYPE_N_BASECLASSES (search_type) && result_count < 2; ++i)
696 {
6b850546 697 LONGEST offset;
4e8f195d
TT
698
699 if (! BASETYPE_VIA_PUBLIC (search_type, i))
700 continue;
701
8af8e3bc
PA
702 offset = baseclass_offset (search_type, i, valaddr, embedded_offset,
703 address, val);
4e8f195d
TT
704 if (class_types_same_p (desired_type, TYPE_BASECLASS (search_type, i)))
705 {
706 ++result_count;
707 if (*result == NULL)
708 *result = value_at_lazy (TYPE_BASECLASS (search_type, i),
8af8e3bc 709 address + embedded_offset + offset);
4e8f195d
TT
710 }
711 else
712 result_count += dynamic_cast_check_2 (desired_type,
8af8e3bc
PA
713 valaddr,
714 embedded_offset + offset,
715 address, val,
4e8f195d
TT
716 TYPE_BASECLASS (search_type, i),
717 result);
718 }
719
720 return result_count;
721}
722
723/* The C++ dynamic_cast operator. */
724
725struct value *
726value_dynamic_cast (struct type *type, struct value *arg)
727{
6b850546
DT
728 int full, using_enc;
729 LONGEST top;
4e8f195d
TT
730 struct type *resolved_type = check_typedef (type);
731 struct type *arg_type = check_typedef (value_type (arg));
732 struct type *class_type, *rtti_type;
733 struct value *result, *tem, *original_arg = arg;
734 CORE_ADDR addr;
735 int is_ref = TYPE_CODE (resolved_type) == TYPE_CODE_REF;
736
737 if (TYPE_CODE (resolved_type) != TYPE_CODE_PTR
738 && TYPE_CODE (resolved_type) != TYPE_CODE_REF)
739 error (_("Argument to dynamic_cast must be a pointer or reference type"));
740 if (TYPE_CODE (TYPE_TARGET_TYPE (resolved_type)) != TYPE_CODE_VOID
4753d33b 741 && TYPE_CODE (TYPE_TARGET_TYPE (resolved_type)) != TYPE_CODE_STRUCT)
4e8f195d
TT
742 error (_("Argument to dynamic_cast must be pointer to class or `void *'"));
743
744 class_type = check_typedef (TYPE_TARGET_TYPE (resolved_type));
745 if (TYPE_CODE (resolved_type) == TYPE_CODE_PTR)
746 {
747 if (TYPE_CODE (arg_type) != TYPE_CODE_PTR
748 && ! (TYPE_CODE (arg_type) == TYPE_CODE_INT
749 && value_as_long (arg) == 0))
750 error (_("Argument to dynamic_cast does not have pointer type"));
751 if (TYPE_CODE (arg_type) == TYPE_CODE_PTR)
752 {
753 arg_type = check_typedef (TYPE_TARGET_TYPE (arg_type));
4753d33b 754 if (TYPE_CODE (arg_type) != TYPE_CODE_STRUCT)
3e43a32a
MS
755 error (_("Argument to dynamic_cast does "
756 "not have pointer to class type"));
4e8f195d
TT
757 }
758
759 /* Handle NULL pointers. */
760 if (value_as_long (arg) == 0)
761 return value_zero (type, not_lval);
762
763 arg = value_ind (arg);
764 }
765 else
766 {
4753d33b 767 if (TYPE_CODE (arg_type) != TYPE_CODE_STRUCT)
4e8f195d
TT
768 error (_("Argument to dynamic_cast does not have class type"));
769 }
770
771 /* If the classes are the same, just return the argument. */
772 if (class_types_same_p (class_type, arg_type))
773 return value_cast (type, arg);
774
775 /* If the target type is a unique base class of the argument's
776 declared type, just cast it. */
777 if (is_ancestor (class_type, arg_type))
778 {
779 if (is_unique_ancestor (class_type, arg))
780 return value_cast (type, original_arg);
781 error (_("Ambiguous dynamic_cast"));
782 }
783
784 rtti_type = value_rtti_type (arg, &full, &top, &using_enc);
785 if (! rtti_type)
786 error (_("Couldn't determine value's most derived type for dynamic_cast"));
787
788 /* Compute the most derived object's address. */
789 addr = value_address (arg);
790 if (full)
791 {
792 /* Done. */
793 }
794 else if (using_enc)
795 addr += top;
796 else
797 addr += top + value_embedded_offset (arg);
798
799 /* dynamic_cast<void *> means to return a pointer to the
800 most-derived object. */
801 if (TYPE_CODE (resolved_type) == TYPE_CODE_PTR
802 && TYPE_CODE (TYPE_TARGET_TYPE (resolved_type)) == TYPE_CODE_VOID)
803 return value_at_lazy (type, addr);
804
805 tem = value_at (type, addr);
9f1f738a 806 type = value_type (tem);
4e8f195d
TT
807
808 /* The first dynamic check specified in 5.2.7. */
809 if (is_public_ancestor (arg_type, TYPE_TARGET_TYPE (resolved_type)))
810 {
811 if (class_types_same_p (rtti_type, TYPE_TARGET_TYPE (resolved_type)))
812 return tem;
813 result = NULL;
814 if (dynamic_cast_check_1 (TYPE_TARGET_TYPE (resolved_type),
8af8e3bc
PA
815 value_contents_for_printing (tem),
816 value_embedded_offset (tem),
817 value_address (tem), tem,
4e8f195d
TT
818 rtti_type, addr,
819 arg_type,
820 &result) == 1)
821 return value_cast (type,
822 is_ref ? value_ref (result) : value_addr (result));
823 }
824
825 /* The second dynamic check specified in 5.2.7. */
826 result = NULL;
827 if (is_public_ancestor (arg_type, rtti_type)
828 && dynamic_cast_check_2 (TYPE_TARGET_TYPE (resolved_type),
8af8e3bc
PA
829 value_contents_for_printing (tem),
830 value_embedded_offset (tem),
831 value_address (tem), tem,
4e8f195d
TT
832 rtti_type, &result) == 1)
833 return value_cast (type,
834 is_ref ? value_ref (result) : value_addr (result));
835
836 if (TYPE_CODE (resolved_type) == TYPE_CODE_PTR)
837 return value_zero (type, not_lval);
838
839 error (_("dynamic_cast failed"));
840}
841
c906108c
SS
842/* Create a value of type TYPE that is zero, and return it. */
843
f23631e4 844struct value *
fba45db2 845value_zero (struct type *type, enum lval_type lv)
c906108c 846{
f23631e4 847 struct value *val = allocate_value (type);
c906108c 848
bb7da2bf 849 VALUE_LVAL (val) = (lv == lval_computed ? not_lval : lv);
c906108c
SS
850 return val;
851}
852
18a46dbe 853/* Create a not_lval value of numeric type TYPE that is one, and return it. */
301f0ecf
DE
854
855struct value *
18a46dbe 856value_one (struct type *type)
301f0ecf
DE
857{
858 struct type *type1 = check_typedef (type);
4e608b4f 859 struct value *val;
301f0ecf
DE
860
861 if (TYPE_CODE (type1) == TYPE_CODE_DECFLOAT)
862 {
e17a4113 863 enum bfd_endian byte_order = gdbarch_byte_order (get_type_arch (type));
301f0ecf 864 gdb_byte v[16];
a109c7c1 865
e17a4113 866 decimal_from_string (v, TYPE_LENGTH (type), byte_order, "1");
301f0ecf
DE
867 val = value_from_decfloat (type, v);
868 }
869 else if (TYPE_CODE (type1) == TYPE_CODE_FLT)
870 {
871 val = value_from_double (type, (DOUBLEST) 1);
872 }
873 else if (is_integral_type (type1))
874 {
875 val = value_from_longest (type, (LONGEST) 1);
876 }
120bd360
KW
877 else if (TYPE_CODE (type1) == TYPE_CODE_ARRAY && TYPE_VECTOR (type1))
878 {
879 struct type *eltype = check_typedef (TYPE_TARGET_TYPE (type1));
cfa6f054
KW
880 int i;
881 LONGEST low_bound, high_bound;
120bd360
KW
882 struct value *tmp;
883
cfa6f054
KW
884 if (!get_array_bounds (type1, &low_bound, &high_bound))
885 error (_("Could not determine the vector bounds"));
886
120bd360 887 val = allocate_value (type);
cfa6f054 888 for (i = 0; i < high_bound - low_bound + 1; i++)
120bd360 889 {
18a46dbe 890 tmp = value_one (eltype);
120bd360
KW
891 memcpy (value_contents_writeable (val) + i * TYPE_LENGTH (eltype),
892 value_contents_all (tmp), TYPE_LENGTH (eltype));
893 }
894 }
301f0ecf
DE
895 else
896 {
897 error (_("Not a numeric type."));
898 }
899
18a46dbe
JK
900 /* value_one result is never used for assignments to. */
901 gdb_assert (VALUE_LVAL (val) == not_lval);
902
301f0ecf
DE
903 return val;
904}
905
80180f79
SA
906/* Helper function for value_at, value_at_lazy, and value_at_lazy_stack.
907 The type of the created value may differ from the passed type TYPE.
908 Make sure to retrieve the returned values's new type after this call
909 e.g. in case the type is a variable length array. */
4e5d721f
DE
910
911static struct value *
912get_value_at (struct type *type, CORE_ADDR addr, int lazy)
913{
914 struct value *val;
915
916 if (TYPE_CODE (check_typedef (type)) == TYPE_CODE_VOID)
917 error (_("Attempt to dereference a generic pointer."));
918
a3d34bf4 919 val = value_from_contents_and_address (type, NULL, addr);
4e5d721f 920
a3d34bf4
PA
921 if (!lazy)
922 value_fetch_lazy (val);
4e5d721f
DE
923
924 return val;
925}
926
070ad9f0 927/* Return a value with type TYPE located at ADDR.
c906108c
SS
928
929 Call value_at only if the data needs to be fetched immediately;
930 if we can be 'lazy' and defer the fetch, perhaps indefinately, call
931 value_at_lazy instead. value_at_lazy simply records the address of
070ad9f0 932 the data and sets the lazy-evaluation-required flag. The lazy flag
0fd88904 933 is tested in the value_contents macro, which is used if and when
80180f79
SA
934 the contents are actually required. The type of the created value
935 may differ from the passed type TYPE. Make sure to retrieve the
936 returned values's new type after this call e.g. in case the type
937 is a variable length array.
c906108c
SS
938
939 Note: value_at does *NOT* handle embedded offsets; perform such
ac3eeb49 940 adjustments before or after calling it. */
c906108c 941
f23631e4 942struct value *
00a4c844 943value_at (struct type *type, CORE_ADDR addr)
c906108c 944{
4e5d721f 945 return get_value_at (type, addr, 0);
c906108c
SS
946}
947
80180f79
SA
948/* Return a lazy value with type TYPE located at ADDR (cf. value_at).
949 The type of the created value may differ from the passed type TYPE.
950 Make sure to retrieve the returned values's new type after this call
951 e.g. in case the type is a variable length array. */
c906108c 952
f23631e4 953struct value *
00a4c844 954value_at_lazy (struct type *type, CORE_ADDR addr)
c906108c 955{
4e5d721f 956 return get_value_at (type, addr, 1);
c906108c
SS
957}
958
e6ca34fc 959void
6b850546 960read_value_memory (struct value *val, LONGEST embedded_offset,
e6ca34fc
PA
961 int stack, CORE_ADDR memaddr,
962 gdb_byte *buffer, size_t length)
963{
3ae385af
SM
964 ULONGEST xfered_total = 0;
965 struct gdbarch *arch = get_value_arch (val);
966 int unit_size = gdbarch_addressable_memory_unit_size (arch);
6d7e9d3b
YQ
967 enum target_object object;
968
969 object = stack ? TARGET_OBJECT_STACK_MEMORY : TARGET_OBJECT_MEMORY;
5a2eb0ef 970
3ae385af 971 while (xfered_total < length)
5a2eb0ef
YQ
972 {
973 enum target_xfer_status status;
3ae385af 974 ULONGEST xfered_partial;
5a2eb0ef
YQ
975
976 status = target_xfer_partial (current_target.beneath,
6d7e9d3b 977 object, NULL,
3ae385af
SM
978 buffer + xfered_total * unit_size, NULL,
979 memaddr + xfered_total,
980 length - xfered_total,
981 &xfered_partial);
5a2eb0ef
YQ
982
983 if (status == TARGET_XFER_OK)
984 /* nothing */;
bc113b4e 985 else if (status == TARGET_XFER_UNAVAILABLE)
3ae385af
SM
986 mark_value_bytes_unavailable (val, embedded_offset + xfered_total,
987 xfered_partial);
5a2eb0ef 988 else if (status == TARGET_XFER_EOF)
3ae385af 989 memory_error (TARGET_XFER_E_IO, memaddr + xfered_total);
e6ca34fc 990 else
3ae385af 991 memory_error (status, memaddr + xfered_total);
e6ca34fc 992
3ae385af 993 xfered_total += xfered_partial;
5a2eb0ef 994 QUIT;
e6ca34fc
PA
995 }
996}
c906108c
SS
997
998/* Store the contents of FROMVAL into the location of TOVAL.
999 Return a new value with the location of TOVAL and contents of FROMVAL. */
1000
f23631e4
AC
1001struct value *
1002value_assign (struct value *toval, struct value *fromval)
c906108c 1003{
52f0bd74 1004 struct type *type;
f23631e4 1005 struct value *val;
cb741690 1006 struct frame_id old_frame;
c906108c 1007
88e3b34b 1008 if (!deprecated_value_modifiable (toval))
8a3fe4f8 1009 error (_("Left operand of assignment is not a modifiable lvalue."));
c906108c 1010
994b9211 1011 toval = coerce_ref (toval);
c906108c 1012
df407dfe 1013 type = value_type (toval);
c906108c 1014 if (VALUE_LVAL (toval) != lval_internalvar)
3cbaedff 1015 fromval = value_cast (type, fromval);
c906108c 1016 else
63092375
DJ
1017 {
1018 /* Coerce arrays and functions to pointers, except for arrays
1019 which only live in GDB's storage. */
1020 if (!value_must_coerce_to_target (fromval))
1021 fromval = coerce_array (fromval);
1022 }
1023
f168693b 1024 type = check_typedef (type);
c906108c 1025
ac3eeb49
MS
1026 /* Since modifying a register can trash the frame chain, and
1027 modifying memory can trash the frame cache, we save the old frame
1028 and then restore the new frame afterwards. */
206415a3 1029 old_frame = get_frame_id (deprecated_safe_get_selected_frame ());
cb741690 1030
c906108c
SS
1031 switch (VALUE_LVAL (toval))
1032 {
1033 case lval_internalvar:
1034 set_internalvar (VALUE_INTERNALVAR (toval), fromval);
4aac0db7
UW
1035 return value_of_internalvar (get_type_arch (type),
1036 VALUE_INTERNALVAR (toval));
c906108c
SS
1037
1038 case lval_internalvar_component:
d9e98382 1039 {
6b850546 1040 LONGEST offset = value_offset (toval);
d9e98382
SDJ
1041
1042 /* Are we dealing with a bitfield?
1043
1044 It is important to mention that `value_parent (toval)' is
1045 non-NULL iff `value_bitsize (toval)' is non-zero. */
1046 if (value_bitsize (toval))
1047 {
1048 /* VALUE_INTERNALVAR below refers to the parent value, while
1049 the offset is relative to this parent value. */
1050 gdb_assert (value_parent (value_parent (toval)) == NULL);
1051 offset += value_offset (value_parent (toval));
1052 }
1053
1054 set_internalvar_component (VALUE_INTERNALVAR (toval),
1055 offset,
1056 value_bitpos (toval),
1057 value_bitsize (toval),
1058 fromval);
1059 }
c906108c
SS
1060 break;
1061
1062 case lval_memory:
1063 {
fc1a4b47 1064 const gdb_byte *dest_buffer;
c5aa993b
JM
1065 CORE_ADDR changed_addr;
1066 int changed_len;
10c42a71 1067 gdb_byte buffer[sizeof (LONGEST)];
c906108c 1068
df407dfe 1069 if (value_bitsize (toval))
c5aa993b 1070 {
2d88202a 1071 struct value *parent = value_parent (toval);
2d88202a 1072
a109c7c1 1073 changed_addr = value_address (parent) + value_offset (toval);
df407dfe
AC
1074 changed_len = (value_bitpos (toval)
1075 + value_bitsize (toval)
c5aa993b
JM
1076 + HOST_CHAR_BIT - 1)
1077 / HOST_CHAR_BIT;
c906108c 1078
4ea48cc1
DJ
1079 /* If we can read-modify-write exactly the size of the
1080 containing type (e.g. short or int) then do so. This
1081 is safer for volatile bitfields mapped to hardware
1082 registers. */
1083 if (changed_len < TYPE_LENGTH (type)
1084 && TYPE_LENGTH (type) <= (int) sizeof (LONGEST)
2d88202a 1085 && ((LONGEST) changed_addr % TYPE_LENGTH (type)) == 0)
4ea48cc1
DJ
1086 changed_len = TYPE_LENGTH (type);
1087
c906108c 1088 if (changed_len > (int) sizeof (LONGEST))
3e43a32a
MS
1089 error (_("Can't handle bitfields which "
1090 "don't fit in a %d bit word."),
baa6f10b 1091 (int) sizeof (LONGEST) * HOST_CHAR_BIT);
c906108c 1092
2d88202a 1093 read_memory (changed_addr, buffer, changed_len);
50810684 1094 modify_field (type, buffer, value_as_long (fromval),
df407dfe 1095 value_bitpos (toval), value_bitsize (toval));
c906108c
SS
1096 dest_buffer = buffer;
1097 }
c906108c
SS
1098 else
1099 {
42ae5230 1100 changed_addr = value_address (toval);
3ae385af 1101 changed_len = type_length_units (type);
0fd88904 1102 dest_buffer = value_contents (fromval);
c906108c
SS
1103 }
1104
972daa01 1105 write_memory_with_notification (changed_addr, dest_buffer, changed_len);
c906108c
SS
1106 }
1107 break;
1108
492254e9 1109 case lval_register:
c906108c 1110 {
c906108c 1111 struct frame_info *frame;
d80b854b 1112 struct gdbarch *gdbarch;
ff2e87ac 1113 int value_reg;
c906108c 1114
41b56feb
KB
1115 /* Figure out which frame this is in currently.
1116
1117 We use VALUE_FRAME_ID for obtaining the value's frame id instead of
1118 VALUE_NEXT_FRAME_ID due to requiring a frame which may be passed to
1119 put_frame_register_bytes() below. That function will (eventually)
1120 perform the necessary unwind operation by first obtaining the next
1121 frame. */
0c16dd26 1122 frame = frame_find_by_id (VALUE_FRAME_ID (toval));
41b56feb 1123
0c16dd26 1124 value_reg = VALUE_REGNUM (toval);
c906108c
SS
1125
1126 if (!frame)
8a3fe4f8 1127 error (_("Value being assigned to is no longer active."));
d80b854b
UW
1128
1129 gdbarch = get_frame_arch (frame);
3e871532
LM
1130
1131 if (value_bitsize (toval))
492254e9 1132 {
3e871532 1133 struct value *parent = value_parent (toval);
6b850546 1134 LONGEST offset = value_offset (parent) + value_offset (toval);
3e871532
LM
1135 int changed_len;
1136 gdb_byte buffer[sizeof (LONGEST)];
1137 int optim, unavail;
1138
1139 changed_len = (value_bitpos (toval)
1140 + value_bitsize (toval)
1141 + HOST_CHAR_BIT - 1)
1142 / HOST_CHAR_BIT;
1143
1144 if (changed_len > (int) sizeof (LONGEST))
1145 error (_("Can't handle bitfields which "
1146 "don't fit in a %d bit word."),
1147 (int) sizeof (LONGEST) * HOST_CHAR_BIT);
1148
1149 if (!get_frame_register_bytes (frame, value_reg, offset,
1150 changed_len, buffer,
1151 &optim, &unavail))
1152 {
1153 if (optim)
1154 throw_error (OPTIMIZED_OUT_ERROR,
1155 _("value has been optimized out"));
1156 if (unavail)
1157 throw_error (NOT_AVAILABLE_ERROR,
1158 _("value is not available"));
1159 }
1160
1161 modify_field (type, buffer, value_as_long (fromval),
1162 value_bitpos (toval), value_bitsize (toval));
1163
1164 put_frame_register_bytes (frame, value_reg, offset,
1165 changed_len, buffer);
492254e9 1166 }
c906108c 1167 else
492254e9 1168 {
3e871532
LM
1169 if (gdbarch_convert_register_p (gdbarch, VALUE_REGNUM (toval),
1170 type))
00fa51f6 1171 {
3e871532
LM
1172 /* If TOVAL is a special machine register requiring
1173 conversion of program values to a special raw
1174 format. */
1175 gdbarch_value_to_register (gdbarch, frame,
1176 VALUE_REGNUM (toval), type,
1177 value_contents (fromval));
00fa51f6 1178 }
c906108c 1179 else
00fa51f6
UW
1180 {
1181 put_frame_register_bytes (frame, value_reg,
1182 value_offset (toval),
1183 TYPE_LENGTH (type),
1184 value_contents (fromval));
1185 }
ff2e87ac 1186 }
00fa51f6 1187
162078c8 1188 observer_notify_register_changed (frame, value_reg);
ff2e87ac 1189 break;
c906108c 1190 }
5f5233d4
PA
1191
1192 case lval_computed:
1193 {
c8f2448a 1194 const struct lval_funcs *funcs = value_computed_funcs (toval);
5f5233d4 1195
ac71a68c
JK
1196 if (funcs->write != NULL)
1197 {
1198 funcs->write (toval, fromval);
1199 break;
1200 }
5f5233d4 1201 }
ac71a68c 1202 /* Fall through. */
5f5233d4 1203
c906108c 1204 default:
8a3fe4f8 1205 error (_("Left operand of assignment is not an lvalue."));
c906108c
SS
1206 }
1207
cb741690
DJ
1208 /* Assigning to the stack pointer, frame pointer, and other
1209 (architecture and calling convention specific) registers may
d649a38e 1210 cause the frame cache and regcache to be out of date. Assigning to memory
cb741690
DJ
1211 also can. We just do this on all assignments to registers or
1212 memory, for simplicity's sake; I doubt the slowdown matters. */
1213 switch (VALUE_LVAL (toval))
1214 {
1215 case lval_memory:
1216 case lval_register:
0e03807e 1217 case lval_computed:
cb741690 1218
d649a38e 1219 observer_notify_target_changed (&current_target);
cb741690 1220
ac3eeb49
MS
1221 /* Having destroyed the frame cache, restore the selected
1222 frame. */
cb741690
DJ
1223
1224 /* FIXME: cagney/2002-11-02: There has to be a better way of
1225 doing this. Instead of constantly saving/restoring the
1226 frame. Why not create a get_selected_frame() function that,
1227 having saved the selected frame's ID can automatically
1228 re-find the previously selected frame automatically. */
1229
1230 {
1231 struct frame_info *fi = frame_find_by_id (old_frame);
a109c7c1 1232
cb741690
DJ
1233 if (fi != NULL)
1234 select_frame (fi);
1235 }
1236
1237 break;
1238 default:
1239 break;
1240 }
1241
ac3eeb49
MS
1242 /* If the field does not entirely fill a LONGEST, then zero the sign
1243 bits. If the field is signed, and is negative, then sign
1244 extend. */
df407dfe
AC
1245 if ((value_bitsize (toval) > 0)
1246 && (value_bitsize (toval) < 8 * (int) sizeof (LONGEST)))
c906108c
SS
1247 {
1248 LONGEST fieldval = value_as_long (fromval);
df407dfe 1249 LONGEST valmask = (((ULONGEST) 1) << value_bitsize (toval)) - 1;
c906108c
SS
1250
1251 fieldval &= valmask;
ac3eeb49
MS
1252 if (!TYPE_UNSIGNED (type)
1253 && (fieldval & (valmask ^ (valmask >> 1))))
c906108c
SS
1254 fieldval |= ~valmask;
1255
1256 fromval = value_from_longest (type, fieldval);
1257 }
1258
4aac0db7
UW
1259 /* The return value is a copy of TOVAL so it shares its location
1260 information, but its contents are updated from FROMVAL. This
1261 implies the returned value is not lazy, even if TOVAL was. */
c906108c 1262 val = value_copy (toval);
4aac0db7 1263 set_value_lazy (val, 0);
0fd88904 1264 memcpy (value_contents_raw (val), value_contents (fromval),
c906108c 1265 TYPE_LENGTH (type));
4aac0db7
UW
1266
1267 /* We copy over the enclosing type and pointed-to offset from FROMVAL
1268 in the case of pointer types. For object types, the enclosing type
1269 and embedded offset must *not* be copied: the target object refered
1270 to by TOVAL retains its original dynamic type after assignment. */
1271 if (TYPE_CODE (type) == TYPE_CODE_PTR)
1272 {
1273 set_value_enclosing_type (val, value_enclosing_type (fromval));
1274 set_value_pointed_to_offset (val, value_pointed_to_offset (fromval));
1275 }
c5aa993b 1276
c906108c
SS
1277 return val;
1278}
1279
1280/* Extend a value VAL to COUNT repetitions of its type. */
1281
f23631e4
AC
1282struct value *
1283value_repeat (struct value *arg1, int count)
c906108c 1284{
f23631e4 1285 struct value *val;
c906108c
SS
1286
1287 if (VALUE_LVAL (arg1) != lval_memory)
8a3fe4f8 1288 error (_("Only values in memory can be extended with '@'."));
c906108c 1289 if (count < 1)
8a3fe4f8 1290 error (_("Invalid number %d of repetitions."), count);
c906108c 1291
4754a64e 1292 val = allocate_repeat_value (value_enclosing_type (arg1), count);
c906108c 1293
c906108c 1294 VALUE_LVAL (val) = lval_memory;
42ae5230 1295 set_value_address (val, value_address (arg1));
c906108c 1296
24e6bcee
PA
1297 read_value_memory (val, 0, value_stack (val), value_address (val),
1298 value_contents_all_raw (val),
3ae385af 1299 type_length_units (value_enclosing_type (val)));
24e6bcee 1300
c906108c
SS
1301 return val;
1302}
1303
f23631e4 1304struct value *
9df2fbc4 1305value_of_variable (struct symbol *var, const struct block *b)
c906108c 1306{
63e43d3a 1307 struct frame_info *frame = NULL;
c906108c 1308
63e43d3a 1309 if (symbol_read_needs_frame (var))
61212c0f 1310 frame = get_selected_frame (_("No frame selected."));
c906108c 1311
63e43d3a 1312 return read_var_value (var, b, frame);
c906108c
SS
1313}
1314
61212c0f 1315struct value *
270140bd 1316address_of_variable (struct symbol *var, const struct block *b)
61212c0f
UW
1317{
1318 struct type *type = SYMBOL_TYPE (var);
1319 struct value *val;
1320
1321 /* Evaluate it first; if the result is a memory address, we're fine.
581e13c1 1322 Lazy evaluation pays off here. */
61212c0f
UW
1323
1324 val = value_of_variable (var, b);
9f1f738a 1325 type = value_type (val);
61212c0f
UW
1326
1327 if ((VALUE_LVAL (val) == lval_memory && value_lazy (val))
1328 || TYPE_CODE (type) == TYPE_CODE_FUNC)
1329 {
42ae5230 1330 CORE_ADDR addr = value_address (val);
a109c7c1 1331
61212c0f
UW
1332 return value_from_pointer (lookup_pointer_type (type), addr);
1333 }
1334
1335 /* Not a memory address; check what the problem was. */
1336 switch (VALUE_LVAL (val))
1337 {
1338 case lval_register:
1339 {
1340 struct frame_info *frame;
1341 const char *regname;
1342
41b56feb 1343 frame = frame_find_by_id (VALUE_NEXT_FRAME_ID (val));
61212c0f
UW
1344 gdb_assert (frame);
1345
1346 regname = gdbarch_register_name (get_frame_arch (frame),
1347 VALUE_REGNUM (val));
1348 gdb_assert (regname && *regname);
1349
1350 error (_("Address requested for identifier "
1351 "\"%s\" which is in register $%s"),
1352 SYMBOL_PRINT_NAME (var), regname);
1353 break;
1354 }
1355
1356 default:
1357 error (_("Can't take address of \"%s\" which isn't an lvalue."),
1358 SYMBOL_PRINT_NAME (var));
1359 break;
1360 }
1361
1362 return val;
1363}
1364
63092375
DJ
1365/* Return one if VAL does not live in target memory, but should in order
1366 to operate on it. Otherwise return zero. */
1367
1368int
1369value_must_coerce_to_target (struct value *val)
1370{
1371 struct type *valtype;
1372
1373 /* The only lval kinds which do not live in target memory. */
1374 if (VALUE_LVAL (val) != not_lval
e81e7f5e
SC
1375 && VALUE_LVAL (val) != lval_internalvar
1376 && VALUE_LVAL (val) != lval_xcallable)
63092375
DJ
1377 return 0;
1378
1379 valtype = check_typedef (value_type (val));
1380
1381 switch (TYPE_CODE (valtype))
1382 {
1383 case TYPE_CODE_ARRAY:
3cbaedff 1384 return TYPE_VECTOR (valtype) ? 0 : 1;
63092375
DJ
1385 case TYPE_CODE_STRING:
1386 return 1;
1387 default:
1388 return 0;
1389 }
1390}
1391
3e43a32a
MS
1392/* Make sure that VAL lives in target memory if it's supposed to. For
1393 instance, strings are constructed as character arrays in GDB's
1394 storage, and this function copies them to the target. */
63092375
DJ
1395
1396struct value *
1397value_coerce_to_target (struct value *val)
1398{
1399 LONGEST length;
1400 CORE_ADDR addr;
1401
1402 if (!value_must_coerce_to_target (val))
1403 return val;
1404
1405 length = TYPE_LENGTH (check_typedef (value_type (val)));
1406 addr = allocate_space_in_inferior (length);
1407 write_memory (addr, value_contents (val), length);
1408 return value_at_lazy (value_type (val), addr);
1409}
1410
ac3eeb49
MS
1411/* Given a value which is an array, return a value which is a pointer
1412 to its first element, regardless of whether or not the array has a
1413 nonzero lower bound.
c906108c 1414
ac3eeb49
MS
1415 FIXME: A previous comment here indicated that this routine should
1416 be substracting the array's lower bound. It's not clear to me that
1417 this is correct. Given an array subscripting operation, it would
1418 certainly work to do the adjustment here, essentially computing:
c906108c
SS
1419
1420 (&array[0] - (lowerbound * sizeof array[0])) + (index * sizeof array[0])
1421
ac3eeb49
MS
1422 However I believe a more appropriate and logical place to account
1423 for the lower bound is to do so in value_subscript, essentially
1424 computing:
c906108c
SS
1425
1426 (&array[0] + ((index - lowerbound) * sizeof array[0]))
1427
ac3eeb49
MS
1428 As further evidence consider what would happen with operations
1429 other than array subscripting, where the caller would get back a
1430 value that had an address somewhere before the actual first element
1431 of the array, and the information about the lower bound would be
581e13c1 1432 lost because of the coercion to pointer type. */
c906108c 1433
f23631e4
AC
1434struct value *
1435value_coerce_array (struct value *arg1)
c906108c 1436{
df407dfe 1437 struct type *type = check_typedef (value_type (arg1));
c906108c 1438
63092375
DJ
1439 /* If the user tries to do something requiring a pointer with an
1440 array that has not yet been pushed to the target, then this would
1441 be a good time to do so. */
1442 arg1 = value_coerce_to_target (arg1);
1443
c906108c 1444 if (VALUE_LVAL (arg1) != lval_memory)
8a3fe4f8 1445 error (_("Attempt to take address of value not located in memory."));
c906108c 1446
4478b372 1447 return value_from_pointer (lookup_pointer_type (TYPE_TARGET_TYPE (type)),
42ae5230 1448 value_address (arg1));
c906108c
SS
1449}
1450
1451/* Given a value which is a function, return a value which is a pointer
1452 to it. */
1453
f23631e4
AC
1454struct value *
1455value_coerce_function (struct value *arg1)
c906108c 1456{
f23631e4 1457 struct value *retval;
c906108c
SS
1458
1459 if (VALUE_LVAL (arg1) != lval_memory)
8a3fe4f8 1460 error (_("Attempt to take address of value not located in memory."));
c906108c 1461
df407dfe 1462 retval = value_from_pointer (lookup_pointer_type (value_type (arg1)),
42ae5230 1463 value_address (arg1));
c906108c 1464 return retval;
c5aa993b 1465}
c906108c 1466
ac3eeb49
MS
1467/* Return a pointer value for the object for which ARG1 is the
1468 contents. */
c906108c 1469
f23631e4
AC
1470struct value *
1471value_addr (struct value *arg1)
c906108c 1472{
f23631e4 1473 struct value *arg2;
df407dfe 1474 struct type *type = check_typedef (value_type (arg1));
a109c7c1 1475
c906108c
SS
1476 if (TYPE_CODE (type) == TYPE_CODE_REF)
1477 {
3326303b
MG
1478 if (value_bits_synthetic_pointer (arg1, value_embedded_offset (arg1),
1479 TARGET_CHAR_BIT * TYPE_LENGTH (type)))
1480 arg1 = coerce_ref (arg1);
1481 else
1482 {
1483 /* Copy the value, but change the type from (T&) to (T*). We
1484 keep the same location information, which is efficient, and
1485 allows &(&X) to get the location containing the reference.
1486 Do the same to its enclosing type for consistency. */
1487 struct type *type_ptr
1488 = lookup_pointer_type (TYPE_TARGET_TYPE (type));
1489 struct type *enclosing_type
1490 = check_typedef (value_enclosing_type (arg1));
1491 struct type *enclosing_type_ptr
1492 = lookup_pointer_type (TYPE_TARGET_TYPE (enclosing_type));
1493
1494 arg2 = value_copy (arg1);
1495 deprecated_set_value_type (arg2, type_ptr);
1496 set_value_enclosing_type (arg2, enclosing_type_ptr);
a22df60a 1497
3326303b
MG
1498 return arg2;
1499 }
c906108c
SS
1500 }
1501 if (TYPE_CODE (type) == TYPE_CODE_FUNC)
1502 return value_coerce_function (arg1);
1503
63092375
DJ
1504 /* If this is an array that has not yet been pushed to the target,
1505 then this would be a good time to force it to memory. */
1506 arg1 = value_coerce_to_target (arg1);
1507
c906108c 1508 if (VALUE_LVAL (arg1) != lval_memory)
8a3fe4f8 1509 error (_("Attempt to take address of value not located in memory."));
c906108c 1510
581e13c1 1511 /* Get target memory address. */
df407dfe 1512 arg2 = value_from_pointer (lookup_pointer_type (value_type (arg1)),
42ae5230 1513 (value_address (arg1)
13c3b5f5 1514 + value_embedded_offset (arg1)));
c906108c
SS
1515
1516 /* This may be a pointer to a base subobject; so remember the
ac3eeb49 1517 full derived object's type ... */
4dfea560
DE
1518 set_value_enclosing_type (arg2,
1519 lookup_pointer_type (value_enclosing_type (arg1)));
ac3eeb49
MS
1520 /* ... and also the relative position of the subobject in the full
1521 object. */
b44d461b 1522 set_value_pointed_to_offset (arg2, value_embedded_offset (arg1));
c906108c
SS
1523 return arg2;
1524}
1525
ac3eeb49
MS
1526/* Return a reference value for the object for which ARG1 is the
1527 contents. */
fb933624
DJ
1528
1529struct value *
1530value_ref (struct value *arg1)
1531{
1532 struct value *arg2;
fb933624 1533 struct type *type = check_typedef (value_type (arg1));
a109c7c1 1534
fb933624
DJ
1535 if (TYPE_CODE (type) == TYPE_CODE_REF)
1536 return arg1;
1537
1538 arg2 = value_addr (arg1);
1539 deprecated_set_value_type (arg2, lookup_reference_type (type));
1540 return arg2;
1541}
1542
ac3eeb49
MS
1543/* Given a value of a pointer type, apply the C unary * operator to
1544 it. */
c906108c 1545
f23631e4
AC
1546struct value *
1547value_ind (struct value *arg1)
c906108c
SS
1548{
1549 struct type *base_type;
f23631e4 1550 struct value *arg2;
c906108c 1551
994b9211 1552 arg1 = coerce_array (arg1);
c906108c 1553
df407dfe 1554 base_type = check_typedef (value_type (arg1));
c906108c 1555
8cf6f0b1
TT
1556 if (VALUE_LVAL (arg1) == lval_computed)
1557 {
c8f2448a 1558 const struct lval_funcs *funcs = value_computed_funcs (arg1);
8cf6f0b1
TT
1559
1560 if (funcs->indirect)
1561 {
1562 struct value *result = funcs->indirect (arg1);
1563
1564 if (result)
1565 return result;
1566 }
1567 }
1568
22fe0fbb 1569 if (TYPE_CODE (base_type) == TYPE_CODE_PTR)
c906108c
SS
1570 {
1571 struct type *enc_type;
a109c7c1 1572
ac3eeb49
MS
1573 /* We may be pointing to something embedded in a larger object.
1574 Get the real type of the enclosing object. */
4754a64e 1575 enc_type = check_typedef (value_enclosing_type (arg1));
c906108c 1576 enc_type = TYPE_TARGET_TYPE (enc_type);
0d5de010
DJ
1577
1578 if (TYPE_CODE (check_typedef (enc_type)) == TYPE_CODE_FUNC
1579 || TYPE_CODE (check_typedef (enc_type)) == TYPE_CODE_METHOD)
1580 /* For functions, go through find_function_addr, which knows
1581 how to handle function descriptors. */
ac3eeb49
MS
1582 arg2 = value_at_lazy (enc_type,
1583 find_function_addr (arg1, NULL));
0d5de010 1584 else
581e13c1 1585 /* Retrieve the enclosing object pointed to. */
ac3eeb49
MS
1586 arg2 = value_at_lazy (enc_type,
1587 (value_as_address (arg1)
1588 - value_pointed_to_offset (arg1)));
0d5de010 1589
9f1f738a 1590 enc_type = value_type (arg2);
dfcee124 1591 return readjust_indirect_value_type (arg2, enc_type, base_type, arg1);
c906108c
SS
1592 }
1593
8a3fe4f8 1594 error (_("Attempt to take contents of a non-pointer value."));
ac3eeb49 1595 return 0; /* For lint -- never reached. */
c906108c
SS
1596}
1597\f
39d37385
PA
1598/* Create a value for an array by allocating space in GDB, copying the
1599 data into that space, and then setting up an array value.
c906108c 1600
ac3eeb49
MS
1601 The array bounds are set from LOWBOUND and HIGHBOUND, and the array
1602 is populated from the values passed in ELEMVEC.
c906108c
SS
1603
1604 The element type of the array is inherited from the type of the
1605 first element, and all elements must have the same size (though we
ac3eeb49 1606 don't currently enforce any restriction on their types). */
c906108c 1607
f23631e4
AC
1608struct value *
1609value_array (int lowbound, int highbound, struct value **elemvec)
c906108c
SS
1610{
1611 int nelem;
1612 int idx;
6b850546 1613 ULONGEST typelength;
f23631e4 1614 struct value *val;
c906108c 1615 struct type *arraytype;
c906108c 1616
ac3eeb49
MS
1617 /* Validate that the bounds are reasonable and that each of the
1618 elements have the same size. */
c906108c
SS
1619
1620 nelem = highbound - lowbound + 1;
1621 if (nelem <= 0)
1622 {
8a3fe4f8 1623 error (_("bad array bounds (%d, %d)"), lowbound, highbound);
c906108c 1624 }
3ae385af 1625 typelength = type_length_units (value_enclosing_type (elemvec[0]));
c906108c
SS
1626 for (idx = 1; idx < nelem; idx++)
1627 {
3ae385af
SM
1628 if (type_length_units (value_enclosing_type (elemvec[idx]))
1629 != typelength)
c906108c 1630 {
8a3fe4f8 1631 error (_("array elements must all be the same size"));
c906108c
SS
1632 }
1633 }
1634
e3506a9f
UW
1635 arraytype = lookup_array_range_type (value_enclosing_type (elemvec[0]),
1636 lowbound, highbound);
c906108c
SS
1637
1638 if (!current_language->c_style_arrays)
1639 {
1640 val = allocate_value (arraytype);
1641 for (idx = 0; idx < nelem; idx++)
39d37385
PA
1642 value_contents_copy (val, idx * typelength, elemvec[idx], 0,
1643 typelength);
c906108c
SS
1644 return val;
1645 }
1646
63092375
DJ
1647 /* Allocate space to store the array, and then initialize it by
1648 copying in each element. */
c906108c 1649
63092375 1650 val = allocate_value (arraytype);
c906108c 1651 for (idx = 0; idx < nelem; idx++)
39d37385 1652 value_contents_copy (val, idx * typelength, elemvec[idx], 0, typelength);
63092375 1653 return val;
c906108c
SS
1654}
1655
6c7a06a3 1656struct value *
e3a3797e 1657value_cstring (const char *ptr, ssize_t len, struct type *char_type)
6c7a06a3
TT
1658{
1659 struct value *val;
1660 int lowbound = current_language->string_lower_bound;
63375b74 1661 ssize_t highbound = len / TYPE_LENGTH (char_type);
6c7a06a3 1662 struct type *stringtype
e3506a9f 1663 = lookup_array_range_type (char_type, lowbound, highbound + lowbound - 1);
6c7a06a3
TT
1664
1665 val = allocate_value (stringtype);
1666 memcpy (value_contents_raw (val), ptr, len);
1667 return val;
1668}
1669
ac3eeb49
MS
1670/* Create a value for a string constant by allocating space in the
1671 inferior, copying the data into that space, and returning the
1672 address with type TYPE_CODE_STRING. PTR points to the string
1673 constant data; LEN is number of characters.
1674
1675 Note that string types are like array of char types with a lower
1676 bound of zero and an upper bound of LEN - 1. Also note that the
1677 string may contain embedded null bytes. */
c906108c 1678
f23631e4 1679struct value *
7cc3f8e2 1680value_string (const char *ptr, ssize_t len, struct type *char_type)
c906108c 1681{
f23631e4 1682 struct value *val;
c906108c 1683 int lowbound = current_language->string_lower_bound;
63375b74 1684 ssize_t highbound = len / TYPE_LENGTH (char_type);
c906108c 1685 struct type *stringtype
e3506a9f 1686 = lookup_string_range_type (char_type, lowbound, highbound + lowbound - 1);
c906108c 1687
3b7538c0
UW
1688 val = allocate_value (stringtype);
1689 memcpy (value_contents_raw (val), ptr, len);
1690 return val;
c906108c
SS
1691}
1692
c906108c 1693\f
ac3eeb49
MS
1694/* See if we can pass arguments in T2 to a function which takes
1695 arguments of types T1. T1 is a list of NARGS arguments, and T2 is
1696 a NULL-terminated vector. If some arguments need coercion of some
1697 sort, then the coerced values are written into T2. Return value is
1698 0 if the arguments could be matched, or the position at which they
1699 differ if not.
c906108c 1700
ac3eeb49
MS
1701 STATICP is nonzero if the T1 argument list came from a static
1702 member function. T2 will still include the ``this'' pointer, but
1703 it will be skipped.
c906108c
SS
1704
1705 For non-static member functions, we ignore the first argument,
ac3eeb49
MS
1706 which is the type of the instance variable. This is because we
1707 want to handle calls with objects from derived classes. This is
1708 not entirely correct: we should actually check to make sure that a
c906108c
SS
1709 requested operation is type secure, shouldn't we? FIXME. */
1710
1711static int
ad2f7632
DJ
1712typecmp (int staticp, int varargs, int nargs,
1713 struct field t1[], struct value *t2[])
c906108c
SS
1714{
1715 int i;
1716
1717 if (t2 == 0)
ac3eeb49
MS
1718 internal_error (__FILE__, __LINE__,
1719 _("typecmp: no argument list"));
ad2f7632 1720
ac3eeb49
MS
1721 /* Skip ``this'' argument if applicable. T2 will always include
1722 THIS. */
4a1970e4 1723 if (staticp)
ad2f7632
DJ
1724 t2 ++;
1725
1726 for (i = 0;
1727 (i < nargs) && TYPE_CODE (t1[i].type) != TYPE_CODE_VOID;
1728 i++)
c906108c 1729 {
c5aa993b 1730 struct type *tt1, *tt2;
ad2f7632 1731
c5aa993b
JM
1732 if (!t2[i])
1733 return i + 1;
ad2f7632
DJ
1734
1735 tt1 = check_typedef (t1[i].type);
df407dfe 1736 tt2 = check_typedef (value_type (t2[i]));
ad2f7632 1737
c906108c 1738 if (TYPE_CODE (tt1) == TYPE_CODE_REF
8301c89e 1739 /* We should be doing hairy argument matching, as below. */
3e43a32a
MS
1740 && (TYPE_CODE (check_typedef (TYPE_TARGET_TYPE (tt1)))
1741 == TYPE_CODE (tt2)))
c906108c
SS
1742 {
1743 if (TYPE_CODE (tt2) == TYPE_CODE_ARRAY)
1744 t2[i] = value_coerce_array (t2[i]);
1745 else
fb933624 1746 t2[i] = value_ref (t2[i]);
c906108c
SS
1747 continue;
1748 }
1749
802db21b
DB
1750 /* djb - 20000715 - Until the new type structure is in the
1751 place, and we can attempt things like implicit conversions,
1752 we need to do this so you can take something like a map<const
1753 char *>, and properly access map["hello"], because the
1754 argument to [] will be a reference to a pointer to a char,
ac3eeb49
MS
1755 and the argument will be a pointer to a char. */
1756 while (TYPE_CODE(tt1) == TYPE_CODE_REF
1757 || TYPE_CODE (tt1) == TYPE_CODE_PTR)
802db21b
DB
1758 {
1759 tt1 = check_typedef( TYPE_TARGET_TYPE(tt1) );
1760 }
ac3eeb49
MS
1761 while (TYPE_CODE(tt2) == TYPE_CODE_ARRAY
1762 || TYPE_CODE(tt2) == TYPE_CODE_PTR
1763 || TYPE_CODE(tt2) == TYPE_CODE_REF)
c906108c 1764 {
ac3eeb49 1765 tt2 = check_typedef (TYPE_TARGET_TYPE(tt2));
c906108c 1766 }
c5aa993b
JM
1767 if (TYPE_CODE (tt1) == TYPE_CODE (tt2))
1768 continue;
ac3eeb49
MS
1769 /* Array to pointer is a `trivial conversion' according to the
1770 ARM. */
c906108c 1771
ac3eeb49
MS
1772 /* We should be doing much hairier argument matching (see
1773 section 13.2 of the ARM), but as a quick kludge, just check
1774 for the same type code. */
df407dfe 1775 if (TYPE_CODE (t1[i].type) != TYPE_CODE (value_type (t2[i])))
c5aa993b 1776 return i + 1;
c906108c 1777 }
ad2f7632 1778 if (varargs || t2[i] == NULL)
c5aa993b 1779 return 0;
ad2f7632 1780 return i + 1;
c906108c
SS
1781}
1782
b1af9e97
TT
1783/* Helper class for do_search_struct_field that updates *RESULT_PTR
1784 and *LAST_BOFFSET, and possibly throws an exception if the field
1785 search has yielded ambiguous results. */
c906108c 1786
b1af9e97
TT
1787static void
1788update_search_result (struct value **result_ptr, struct value *v,
6b850546 1789 LONGEST *last_boffset, LONGEST boffset,
b1af9e97
TT
1790 const char *name, struct type *type)
1791{
1792 if (v != NULL)
1793 {
1794 if (*result_ptr != NULL
1795 /* The result is not ambiguous if all the classes that are
1796 found occupy the same space. */
1797 && *last_boffset != boffset)
1798 error (_("base class '%s' is ambiguous in type '%s'"),
1799 name, TYPE_SAFE_NAME (type));
1800 *result_ptr = v;
1801 *last_boffset = boffset;
1802 }
1803}
c906108c 1804
b1af9e97
TT
1805/* A helper for search_struct_field. This does all the work; most
1806 arguments are as passed to search_struct_field. The result is
1807 stored in *RESULT_PTR, which must be initialized to NULL.
1808 OUTERMOST_TYPE is the type of the initial type passed to
1809 search_struct_field; this is used for error reporting when the
1810 lookup is ambiguous. */
1811
1812static void
6b850546 1813do_search_struct_field (const char *name, struct value *arg1, LONGEST offset,
b1af9e97
TT
1814 struct type *type, int looking_for_baseclass,
1815 struct value **result_ptr,
6b850546 1816 LONGEST *last_boffset,
b1af9e97 1817 struct type *outermost_type)
c906108c
SS
1818{
1819 int i;
edf3d5f3 1820 int nbases;
c906108c 1821
f168693b 1822 type = check_typedef (type);
edf3d5f3 1823 nbases = TYPE_N_BASECLASSES (type);
c906108c 1824
c5aa993b 1825 if (!looking_for_baseclass)
c906108c
SS
1826 for (i = TYPE_NFIELDS (type) - 1; i >= nbases; i--)
1827 {
0d5cff50 1828 const char *t_field_name = TYPE_FIELD_NAME (type, i);
c906108c 1829
db577aea 1830 if (t_field_name && (strcmp_iw (t_field_name, name) == 0))
c906108c 1831 {
f23631e4 1832 struct value *v;
a109c7c1 1833
d6a843b5 1834 if (field_is_static (&TYPE_FIELD (type, i)))
686d4def 1835 v = value_static_field (type, i);
c906108c 1836 else
b1af9e97
TT
1837 v = value_primitive_field (arg1, offset, i, type);
1838 *result_ptr = v;
1839 return;
c906108c
SS
1840 }
1841
1842 if (t_field_name
47c6ee49 1843 && t_field_name[0] == '\0')
c906108c
SS
1844 {
1845 struct type *field_type = TYPE_FIELD_TYPE (type, i);
a109c7c1 1846
c906108c
SS
1847 if (TYPE_CODE (field_type) == TYPE_CODE_UNION
1848 || TYPE_CODE (field_type) == TYPE_CODE_STRUCT)
1849 {
ac3eeb49
MS
1850 /* Look for a match through the fields of an anonymous
1851 union, or anonymous struct. C++ provides anonymous
1852 unions.
c906108c 1853
1b831c93
AC
1854 In the GNU Chill (now deleted from GDB)
1855 implementation of variant record types, each
1856 <alternative field> has an (anonymous) union type,
1857 each member of the union represents a <variant
1858 alternative>. Each <variant alternative> is
1859 represented as a struct, with a member for each
1860 <variant field>. */
c5aa993b 1861
b1af9e97 1862 struct value *v = NULL;
6b850546 1863 LONGEST new_offset = offset;
c906108c 1864
db034ac5
AC
1865 /* This is pretty gross. In G++, the offset in an
1866 anonymous union is relative to the beginning of the
1b831c93
AC
1867 enclosing struct. In the GNU Chill (now deleted
1868 from GDB) implementation of variant records, the
1869 bitpos is zero in an anonymous union field, so we
ac3eeb49 1870 have to add the offset of the union here. */
c906108c
SS
1871 if (TYPE_CODE (field_type) == TYPE_CODE_STRUCT
1872 || (TYPE_NFIELDS (field_type) > 0
1873 && TYPE_FIELD_BITPOS (field_type, 0) == 0))
1874 new_offset += TYPE_FIELD_BITPOS (type, i) / 8;
1875
b1af9e97
TT
1876 do_search_struct_field (name, arg1, new_offset,
1877 field_type,
1878 looking_for_baseclass, &v,
1879 last_boffset,
1880 outermost_type);
c906108c 1881 if (v)
b1af9e97
TT
1882 {
1883 *result_ptr = v;
1884 return;
1885 }
c906108c
SS
1886 }
1887 }
1888 }
1889
c5aa993b 1890 for (i = 0; i < nbases; i++)
c906108c 1891 {
b1af9e97 1892 struct value *v = NULL;
c906108c 1893 struct type *basetype = check_typedef (TYPE_BASECLASS (type, i));
ac3eeb49
MS
1894 /* If we are looking for baseclasses, this is what we get when
1895 we hit them. But it could happen that the base part's member
1896 name is not yet filled in. */
c906108c
SS
1897 int found_baseclass = (looking_for_baseclass
1898 && TYPE_BASECLASS_NAME (type, i) != NULL
ac3eeb49
MS
1899 && (strcmp_iw (name,
1900 TYPE_BASECLASS_NAME (type,
1901 i)) == 0));
6b850546 1902 LONGEST boffset = value_embedded_offset (arg1) + offset;
c906108c
SS
1903
1904 if (BASETYPE_VIA_VIRTUAL (type, i))
1905 {
3e3d7139 1906 struct value *v2;
c906108c
SS
1907
1908 boffset = baseclass_offset (type, i,
8af8e3bc
PA
1909 value_contents_for_printing (arg1),
1910 value_embedded_offset (arg1) + offset,
1911 value_address (arg1),
1912 arg1);
c906108c 1913
ac3eeb49 1914 /* The virtual base class pointer might have been clobbered
581e13c1 1915 by the user program. Make sure that it still points to a
ac3eeb49 1916 valid memory location. */
c906108c 1917
1a334831
TT
1918 boffset += value_embedded_offset (arg1) + offset;
1919 if (boffset < 0
1920 || boffset >= TYPE_LENGTH (value_enclosing_type (arg1)))
c906108c
SS
1921 {
1922 CORE_ADDR base_addr;
c5aa993b 1923
42ae5230 1924 base_addr = value_address (arg1) + boffset;
08039c9e 1925 v2 = value_at_lazy (basetype, base_addr);
ac3eeb49
MS
1926 if (target_read_memory (base_addr,
1927 value_contents_raw (v2),
acc900c2 1928 TYPE_LENGTH (value_type (v2))) != 0)
8a3fe4f8 1929 error (_("virtual baseclass botch"));
c906108c
SS
1930 }
1931 else
1932 {
1a334831
TT
1933 v2 = value_copy (arg1);
1934 deprecated_set_value_type (v2, basetype);
1935 set_value_embedded_offset (v2, boffset);
c906108c
SS
1936 }
1937
1938 if (found_baseclass)
b1af9e97
TT
1939 v = v2;
1940 else
1941 {
1942 do_search_struct_field (name, v2, 0,
1943 TYPE_BASECLASS (type, i),
1944 looking_for_baseclass,
1945 result_ptr, last_boffset,
1946 outermost_type);
1947 }
c906108c
SS
1948 }
1949 else if (found_baseclass)
1950 v = value_primitive_field (arg1, offset, i, type);
1951 else
b1af9e97
TT
1952 {
1953 do_search_struct_field (name, arg1,
1954 offset + TYPE_BASECLASS_BITPOS (type,
1955 i) / 8,
1956 basetype, looking_for_baseclass,
1957 result_ptr, last_boffset,
1958 outermost_type);
1959 }
1960
1961 update_search_result (result_ptr, v, last_boffset,
1962 boffset, name, outermost_type);
c906108c 1963 }
b1af9e97
TT
1964}
1965
1966/* Helper function used by value_struct_elt to recurse through
8a13d42d
SM
1967 baseclasses. Look for a field NAME in ARG1. Search in it assuming
1968 it has (class) type TYPE. If found, return value, else return NULL.
b1af9e97
TT
1969
1970 If LOOKING_FOR_BASECLASS, then instead of looking for struct
1971 fields, look for a baseclass named NAME. */
1972
1973static struct value *
8a13d42d 1974search_struct_field (const char *name, struct value *arg1,
b1af9e97
TT
1975 struct type *type, int looking_for_baseclass)
1976{
1977 struct value *result = NULL;
6b850546 1978 LONGEST boffset = 0;
b1af9e97 1979
8a13d42d 1980 do_search_struct_field (name, arg1, 0, type, looking_for_baseclass,
b1af9e97
TT
1981 &result, &boffset, type);
1982 return result;
c906108c
SS
1983}
1984
ac3eeb49 1985/* Helper function used by value_struct_elt to recurse through
581e13c1 1986 baseclasses. Look for a field NAME in ARG1. Adjust the address of
ac3eeb49
MS
1987 ARG1 by OFFSET bytes, and search in it assuming it has (class) type
1988 TYPE.
1989
1990 If found, return value, else if name matched and args not return
1991 (value) -1, else return NULL. */
c906108c 1992
f23631e4 1993static struct value *
714f19d5 1994search_struct_method (const char *name, struct value **arg1p,
6b850546 1995 struct value **args, LONGEST offset,
aa1ee363 1996 int *static_memfuncp, struct type *type)
c906108c
SS
1997{
1998 int i;
f23631e4 1999 struct value *v;
c906108c
SS
2000 int name_matched = 0;
2001 char dem_opname[64];
2002
f168693b 2003 type = check_typedef (type);
c906108c
SS
2004 for (i = TYPE_NFN_FIELDS (type) - 1; i >= 0; i--)
2005 {
0d5cff50 2006 const char *t_field_name = TYPE_FN_FIELDLIST_NAME (type, i);
a109c7c1 2007
581e13c1 2008 /* FIXME! May need to check for ARM demangling here. */
61012eef
GB
2009 if (startswith (t_field_name, "__") ||
2010 startswith (t_field_name, "op") ||
2011 startswith (t_field_name, "type"))
c906108c 2012 {
c5aa993b
JM
2013 if (cplus_demangle_opname (t_field_name, dem_opname, DMGL_ANSI))
2014 t_field_name = dem_opname;
2015 else if (cplus_demangle_opname (t_field_name, dem_opname, 0))
c906108c 2016 t_field_name = dem_opname;
c906108c 2017 }
db577aea 2018 if (t_field_name && (strcmp_iw (t_field_name, name) == 0))
c906108c
SS
2019 {
2020 int j = TYPE_FN_FIELDLIST_LENGTH (type, i) - 1;
2021 struct fn_field *f = TYPE_FN_FIELDLIST1 (type, i);
c906108c 2022
a109c7c1 2023 name_matched = 1;
de17c821 2024 check_stub_method_group (type, i);
c906108c 2025 if (j > 0 && args == 0)
3e43a32a
MS
2026 error (_("cannot resolve overloaded method "
2027 "`%s': no arguments supplied"), name);
acf5ed49 2028 else if (j == 0 && args == 0)
c906108c 2029 {
acf5ed49
DJ
2030 v = value_fn_field (arg1p, f, j, type, offset);
2031 if (v != NULL)
2032 return v;
c906108c 2033 }
acf5ed49
DJ
2034 else
2035 while (j >= 0)
2036 {
acf5ed49 2037 if (!typecmp (TYPE_FN_FIELD_STATIC_P (f, j),
ad2f7632
DJ
2038 TYPE_VARARGS (TYPE_FN_FIELD_TYPE (f, j)),
2039 TYPE_NFIELDS (TYPE_FN_FIELD_TYPE (f, j)),
acf5ed49
DJ
2040 TYPE_FN_FIELD_ARGS (f, j), args))
2041 {
2042 if (TYPE_FN_FIELD_VIRTUAL_P (f, j))
ac3eeb49
MS
2043 return value_virtual_fn_field (arg1p, f, j,
2044 type, offset);
2045 if (TYPE_FN_FIELD_STATIC_P (f, j)
2046 && static_memfuncp)
acf5ed49
DJ
2047 *static_memfuncp = 1;
2048 v = value_fn_field (arg1p, f, j, type, offset);
2049 if (v != NULL)
2050 return v;
2051 }
2052 j--;
2053 }
c906108c
SS
2054 }
2055 }
2056
2057 for (i = TYPE_N_BASECLASSES (type) - 1; i >= 0; i--)
2058 {
6b850546
DT
2059 LONGEST base_offset;
2060 LONGEST this_offset;
c906108c
SS
2061
2062 if (BASETYPE_VIA_VIRTUAL (type, i))
2063 {
086280be 2064 struct type *baseclass = check_typedef (TYPE_BASECLASS (type, i));
8af8e3bc 2065 struct value *base_val;
086280be
UW
2066 const gdb_byte *base_valaddr;
2067
2068 /* The virtual base class pointer might have been
581e13c1 2069 clobbered by the user program. Make sure that it
8301c89e 2070 still points to a valid memory location. */
086280be
UW
2071
2072 if (offset < 0 || offset >= TYPE_LENGTH (type))
c5aa993b 2073 {
6c18f3e0
SP
2074 gdb_byte *tmp;
2075 struct cleanup *back_to;
2076 CORE_ADDR address;
2077
224c3ddb 2078 tmp = (gdb_byte *) xmalloc (TYPE_LENGTH (baseclass));
6c18f3e0
SP
2079 back_to = make_cleanup (xfree, tmp);
2080 address = value_address (*arg1p);
a109c7c1 2081
8af8e3bc 2082 if (target_read_memory (address + offset,
086280be
UW
2083 tmp, TYPE_LENGTH (baseclass)) != 0)
2084 error (_("virtual baseclass botch"));
8af8e3bc
PA
2085
2086 base_val = value_from_contents_and_address (baseclass,
2087 tmp,
2088 address + offset);
2089 base_valaddr = value_contents_for_printing (base_val);
2090 this_offset = 0;
6c18f3e0 2091 do_cleanups (back_to);
c5aa993b
JM
2092 }
2093 else
8af8e3bc
PA
2094 {
2095 base_val = *arg1p;
2096 base_valaddr = value_contents_for_printing (*arg1p);
2097 this_offset = offset;
2098 }
c5aa993b 2099
086280be 2100 base_offset = baseclass_offset (type, i, base_valaddr,
8af8e3bc
PA
2101 this_offset, value_address (base_val),
2102 base_val);
c5aa993b 2103 }
c906108c
SS
2104 else
2105 {
2106 base_offset = TYPE_BASECLASS_BITPOS (type, i) / 8;
c5aa993b 2107 }
c906108c
SS
2108 v = search_struct_method (name, arg1p, args, base_offset + offset,
2109 static_memfuncp, TYPE_BASECLASS (type, i));
f23631e4 2110 if (v == (struct value *) - 1)
c906108c
SS
2111 {
2112 name_matched = 1;
2113 }
2114 else if (v)
2115 {
ac3eeb49
MS
2116 /* FIXME-bothner: Why is this commented out? Why is it here? */
2117 /* *arg1p = arg1_tmp; */
c906108c 2118 return v;
c5aa993b 2119 }
c906108c 2120 }
c5aa993b 2121 if (name_matched)
f23631e4 2122 return (struct value *) - 1;
c5aa993b
JM
2123 else
2124 return NULL;
c906108c
SS
2125}
2126
2127/* Given *ARGP, a value of type (pointer to a)* structure/union,
ac3eeb49
MS
2128 extract the component named NAME from the ultimate target
2129 structure/union and return it as a value with its appropriate type.
c906108c
SS
2130 ERR is used in the error message if *ARGP's type is wrong.
2131
2132 C++: ARGS is a list of argument types to aid in the selection of
581e13c1 2133 an appropriate method. Also, handle derived types.
c906108c
SS
2134
2135 STATIC_MEMFUNCP, if non-NULL, points to a caller-supplied location
2136 where the truthvalue of whether the function that was resolved was
2137 a static member function or not is stored.
2138
ac3eeb49
MS
2139 ERR is an error message to be printed in case the field is not
2140 found. */
c906108c 2141
f23631e4
AC
2142struct value *
2143value_struct_elt (struct value **argp, struct value **args,
714f19d5 2144 const char *name, int *static_memfuncp, const char *err)
c906108c 2145{
52f0bd74 2146 struct type *t;
f23631e4 2147 struct value *v;
c906108c 2148
994b9211 2149 *argp = coerce_array (*argp);
c906108c 2150
df407dfe 2151 t = check_typedef (value_type (*argp));
c906108c
SS
2152
2153 /* Follow pointers until we get to a non-pointer. */
2154
2155 while (TYPE_CODE (t) == TYPE_CODE_PTR || TYPE_CODE (t) == TYPE_CODE_REF)
2156 {
2157 *argp = value_ind (*argp);
2158 /* Don't coerce fn pointer to fn and then back again! */
b846d303 2159 if (TYPE_CODE (check_typedef (value_type (*argp))) != TYPE_CODE_FUNC)
994b9211 2160 *argp = coerce_array (*argp);
df407dfe 2161 t = check_typedef (value_type (*argp));
c906108c
SS
2162 }
2163
c5aa993b 2164 if (TYPE_CODE (t) != TYPE_CODE_STRUCT
c906108c 2165 && TYPE_CODE (t) != TYPE_CODE_UNION)
3e43a32a
MS
2166 error (_("Attempt to extract a component of a value that is not a %s."),
2167 err);
c906108c
SS
2168
2169 /* Assume it's not, unless we see that it is. */
2170 if (static_memfuncp)
c5aa993b 2171 *static_memfuncp = 0;
c906108c
SS
2172
2173 if (!args)
2174 {
2175 /* if there are no arguments ...do this... */
2176
ac3eeb49
MS
2177 /* Try as a field first, because if we succeed, there is less
2178 work to be done. */
8a13d42d 2179 v = search_struct_field (name, *argp, t, 0);
c906108c
SS
2180 if (v)
2181 return v;
2182
2183 /* C++: If it was not found as a data field, then try to
7b83ea04 2184 return it as a pointer to a method. */
ac3eeb49
MS
2185 v = search_struct_method (name, argp, args, 0,
2186 static_memfuncp, t);
c906108c 2187
f23631e4 2188 if (v == (struct value *) - 1)
55b39184 2189 error (_("Cannot take address of method %s."), name);
c906108c
SS
2190 else if (v == 0)
2191 {
2192 if (TYPE_NFN_FIELDS (t))
8a3fe4f8 2193 error (_("There is no member or method named %s."), name);
c906108c 2194 else
8a3fe4f8 2195 error (_("There is no member named %s."), name);
c906108c
SS
2196 }
2197 return v;
2198 }
2199
8301c89e
DE
2200 v = search_struct_method (name, argp, args, 0,
2201 static_memfuncp, t);
7168a814 2202
f23631e4 2203 if (v == (struct value *) - 1)
c906108c 2204 {
3e43a32a
MS
2205 error (_("One of the arguments you tried to pass to %s could not "
2206 "be converted to what the function wants."), name);
c906108c
SS
2207 }
2208 else if (v == 0)
2209 {
ac3eeb49
MS
2210 /* See if user tried to invoke data as function. If so, hand it
2211 back. If it's not callable (i.e., a pointer to function),
7b83ea04 2212 gdb should give an error. */
8a13d42d 2213 v = search_struct_field (name, *argp, t, 0);
fa8de41e
TT
2214 /* If we found an ordinary field, then it is not a method call.
2215 So, treat it as if it were a static member function. */
2216 if (v && static_memfuncp)
2217 *static_memfuncp = 1;
c906108c
SS
2218 }
2219
2220 if (!v)
79afc5ef
SW
2221 throw_error (NOT_FOUND_ERROR,
2222 _("Structure has no component named %s."), name);
c906108c
SS
2223 return v;
2224}
2225
b5b08fb4
SC
2226/* Given *ARGP, a value of type structure or union, or a pointer/reference
2227 to a structure or union, extract and return its component (field) of
2228 type FTYPE at the specified BITPOS.
2229 Throw an exception on error. */
2230
2231struct value *
2232value_struct_elt_bitpos (struct value **argp, int bitpos, struct type *ftype,
2233 const char *err)
2234{
2235 struct type *t;
b5b08fb4 2236 int i;
b5b08fb4
SC
2237
2238 *argp = coerce_array (*argp);
2239
2240 t = check_typedef (value_type (*argp));
2241
2242 while (TYPE_CODE (t) == TYPE_CODE_PTR || TYPE_CODE (t) == TYPE_CODE_REF)
2243 {
2244 *argp = value_ind (*argp);
2245 if (TYPE_CODE (check_typedef (value_type (*argp))) != TYPE_CODE_FUNC)
2246 *argp = coerce_array (*argp);
2247 t = check_typedef (value_type (*argp));
2248 }
2249
2250 if (TYPE_CODE (t) != TYPE_CODE_STRUCT
2251 && TYPE_CODE (t) != TYPE_CODE_UNION)
2252 error (_("Attempt to extract a component of a value that is not a %s."),
2253 err);
2254
2255 for (i = TYPE_N_BASECLASSES (t); i < TYPE_NFIELDS (t); i++)
2256 {
2257 if (!field_is_static (&TYPE_FIELD (t, i))
2258 && bitpos == TYPE_FIELD_BITPOS (t, i)
2259 && types_equal (ftype, TYPE_FIELD_TYPE (t, i)))
2260 return value_primitive_field (*argp, 0, i, t);
2261 }
2262
2263 error (_("No field with matching bitpos and type."));
2264
2265 /* Never hit. */
2266 return NULL;
2267}
2268
ac3eeb49 2269/* Search through the methods of an object (and its bases) to find a
233e8b28
SC
2270 specified method. Return the pointer to the fn_field list FN_LIST of
2271 overloaded instances defined in the source language. If available
2272 and matching, a vector of matching xmethods defined in extension
2273 languages are also returned in XM_WORKER_VEC
ac3eeb49
MS
2274
2275 Helper function for value_find_oload_list.
2276 ARGP is a pointer to a pointer to a value (the object).
2277 METHOD is a string containing the method name.
2278 OFFSET is the offset within the value.
2279 TYPE is the assumed type of the object.
233e8b28
SC
2280 FN_LIST is the pointer to matching overloaded instances defined in
2281 source language. Since this is a recursive function, *FN_LIST
2282 should be set to NULL when calling this function.
2283 NUM_FNS is the number of overloaded instances. *NUM_FNS should be set to
2284 0 when calling this function.
2285 XM_WORKER_VEC is the vector of matching xmethod workers. *XM_WORKER_VEC
2286 should also be set to NULL when calling this function.
ac3eeb49
MS
2287 BASETYPE is set to the actual type of the subobject where the
2288 method is found.
581e13c1 2289 BOFFSET is the offset of the base subobject where the method is found. */
c906108c 2290
233e8b28 2291static void
714f19d5 2292find_method_list (struct value **argp, const char *method,
6b850546 2293 LONGEST offset, struct type *type,
233e8b28
SC
2294 struct fn_field **fn_list, int *num_fns,
2295 VEC (xmethod_worker_ptr) **xm_worker_vec,
6b850546 2296 struct type **basetype, LONGEST *boffset)
c906108c
SS
2297{
2298 int i;
233e8b28
SC
2299 struct fn_field *f = NULL;
2300 VEC (xmethod_worker_ptr) *worker_vec = NULL, *new_vec = NULL;
c906108c 2301
233e8b28 2302 gdb_assert (fn_list != NULL && xm_worker_vec != NULL);
f168693b 2303 type = check_typedef (type);
c906108c 2304
233e8b28
SC
2305 /* First check in object itself.
2306 This function is called recursively to search through base classes.
2307 If there is a source method match found at some stage, then we need not
2308 look for source methods in consequent recursive calls. */
2309 if ((*fn_list) == NULL)
c906108c 2310 {
233e8b28 2311 for (i = TYPE_NFN_FIELDS (type) - 1; i >= 0; i--)
c5aa993b 2312 {
233e8b28
SC
2313 /* pai: FIXME What about operators and type conversions? */
2314 const char *fn_field_name = TYPE_FN_FIELDLIST_NAME (type, i);
2315
2316 if (fn_field_name && (strcmp_iw (fn_field_name, method) == 0))
2317 {
2318 int len = TYPE_FN_FIELDLIST_LENGTH (type, i);
2319 f = TYPE_FN_FIELDLIST1 (type, i);
2320 *fn_list = f;
4a1970e4 2321
233e8b28
SC
2322 *num_fns = len;
2323 *basetype = type;
2324 *boffset = offset;
4a1970e4 2325
233e8b28
SC
2326 /* Resolve any stub methods. */
2327 check_stub_method_group (type, i);
4a1970e4 2328
233e8b28
SC
2329 break;
2330 }
c5aa993b
JM
2331 }
2332 }
2333
233e8b28
SC
2334 /* Unlike source methods, xmethods can be accumulated over successive
2335 recursive calls. In other words, an xmethod named 'm' in a class
2336 will not hide an xmethod named 'm' in its base class(es). We want
2337 it to be this way because xmethods are after all convenience functions
2338 and hence there is no point restricting them with something like method
2339 hiding. Moreover, if hiding is done for xmethods as well, then we will
2340 have to provide a mechanism to un-hide (like the 'using' construct). */
2341 worker_vec = get_matching_xmethod_workers (type, method);
2342 new_vec = VEC_merge (xmethod_worker_ptr, *xm_worker_vec, worker_vec);
2343
2344 VEC_free (xmethod_worker_ptr, *xm_worker_vec);
2345 VEC_free (xmethod_worker_ptr, worker_vec);
2346 *xm_worker_vec = new_vec;
2347
2348 /* If source methods are not found in current class, look for them in the
2349 base classes. We also have to go through the base classes to gather
2350 extension methods. */
c906108c
SS
2351 for (i = TYPE_N_BASECLASSES (type) - 1; i >= 0; i--)
2352 {
6b850546 2353 LONGEST base_offset;
a109c7c1 2354
c906108c
SS
2355 if (BASETYPE_VIA_VIRTUAL (type, i))
2356 {
086280be 2357 base_offset = baseclass_offset (type, i,
8af8e3bc
PA
2358 value_contents_for_printing (*argp),
2359 value_offset (*argp) + offset,
2360 value_address (*argp), *argp);
c5aa993b 2361 }
ac3eeb49
MS
2362 else /* Non-virtual base, simply use bit position from debug
2363 info. */
c906108c
SS
2364 {
2365 base_offset = TYPE_BASECLASS_BITPOS (type, i) / 8;
c5aa993b 2366 }
233e8b28
SC
2367
2368 find_method_list (argp, method, base_offset + offset,
2369 TYPE_BASECLASS (type, i), fn_list, num_fns,
2370 xm_worker_vec, basetype, boffset);
c906108c 2371 }
c906108c
SS
2372}
2373
233e8b28
SC
2374/* Return the list of overloaded methods of a specified name. The methods
2375 could be those GDB finds in the binary, or xmethod. Methods found in
2376 the binary are returned in FN_LIST, and xmethods are returned in
2377 XM_WORKER_VEC.
ac3eeb49
MS
2378
2379 ARGP is a pointer to a pointer to a value (the object).
2380 METHOD is the method name.
2381 OFFSET is the offset within the value contents.
233e8b28
SC
2382 FN_LIST is the pointer to matching overloaded instances defined in
2383 source language.
ac3eeb49 2384 NUM_FNS is the number of overloaded instances.
233e8b28
SC
2385 XM_WORKER_VEC is the vector of matching xmethod workers defined in
2386 extension languages.
ac3eeb49
MS
2387 BASETYPE is set to the type of the base subobject that defines the
2388 method.
581e13c1 2389 BOFFSET is the offset of the base subobject which defines the method. */
c906108c 2390
233e8b28 2391static void
714f19d5 2392value_find_oload_method_list (struct value **argp, const char *method,
6b850546 2393 LONGEST offset, struct fn_field **fn_list,
233e8b28
SC
2394 int *num_fns,
2395 VEC (xmethod_worker_ptr) **xm_worker_vec,
6b850546 2396 struct type **basetype, LONGEST *boffset)
c906108c 2397{
c5aa993b 2398 struct type *t;
c906108c 2399
df407dfe 2400 t = check_typedef (value_type (*argp));
c906108c 2401
ac3eeb49 2402 /* Code snarfed from value_struct_elt. */
c906108c
SS
2403 while (TYPE_CODE (t) == TYPE_CODE_PTR || TYPE_CODE (t) == TYPE_CODE_REF)
2404 {
2405 *argp = value_ind (*argp);
2406 /* Don't coerce fn pointer to fn and then back again! */
b846d303 2407 if (TYPE_CODE (check_typedef (value_type (*argp))) != TYPE_CODE_FUNC)
994b9211 2408 *argp = coerce_array (*argp);
df407dfe 2409 t = check_typedef (value_type (*argp));
c906108c 2410 }
c5aa993b 2411
c5aa993b
JM
2412 if (TYPE_CODE (t) != TYPE_CODE_STRUCT
2413 && TYPE_CODE (t) != TYPE_CODE_UNION)
3e43a32a
MS
2414 error (_("Attempt to extract a component of a "
2415 "value that is not a struct or union"));
c5aa993b 2416
233e8b28
SC
2417 gdb_assert (fn_list != NULL && xm_worker_vec != NULL);
2418
2419 /* Clear the lists. */
2420 *fn_list = NULL;
2421 *num_fns = 0;
2422 *xm_worker_vec = NULL;
2423
2424 find_method_list (argp, method, 0, t, fn_list, num_fns, xm_worker_vec,
2425 basetype, boffset);
c906108c
SS
2426}
2427
da096638 2428/* Given an array of arguments (ARGS) (which includes an
c906108c 2429 entry for "this" in the case of C++ methods), the number of
28c64fc2
SCR
2430 arguments NARGS, the NAME of a function, and whether it's a method or
2431 not (METHOD), find the best function that matches on the argument types
2432 according to the overload resolution rules.
c906108c 2433
4c3376c8
SW
2434 METHOD can be one of three values:
2435 NON_METHOD for non-member functions.
2436 METHOD: for member functions.
2437 BOTH: used for overload resolution of operators where the
2438 candidates are expected to be either member or non member
581e13c1 2439 functions. In this case the first argument ARGTYPES
4c3376c8
SW
2440 (representing 'this') is expected to be a reference to the
2441 target object, and will be dereferenced when attempting the
2442 non-member search.
2443
c906108c
SS
2444 In the case of class methods, the parameter OBJ is an object value
2445 in which to search for overloaded methods.
2446
2447 In the case of non-method functions, the parameter FSYM is a symbol
2448 corresponding to one of the overloaded functions.
2449
2450 Return value is an integer: 0 -> good match, 10 -> debugger applied
2451 non-standard coercions, 100 -> incompatible.
2452
2453 If a method is being searched for, VALP will hold the value.
ac3eeb49
MS
2454 If a non-method is being searched for, SYMP will hold the symbol
2455 for it.
c906108c
SS
2456
2457 If a method is being searched for, and it is a static method,
2458 then STATICP will point to a non-zero value.
2459
7322dca9
SW
2460 If NO_ADL argument dependent lookup is disabled. This is used to prevent
2461 ADL overload candidates when performing overload resolution for a fully
2462 qualified name.
2463
e66d4446
SC
2464 If NOSIDE is EVAL_AVOID_SIDE_EFFECTS, then OBJP's memory cannot be
2465 read while picking the best overload match (it may be all zeroes and thus
2466 not have a vtable pointer), in which case skip virtual function lookup.
2467 This is ok as typically EVAL_AVOID_SIDE_EFFECTS is only used to determine
2468 the result type.
2469
c906108c
SS
2470 Note: This function does *not* check the value of
2471 overload_resolution. Caller must check it to see whether overload
581e13c1 2472 resolution is permitted. */
c906108c
SS
2473
2474int
da096638 2475find_overload_match (struct value **args, int nargs,
4c3376c8 2476 const char *name, enum oload_search_type method,
28c64fc2 2477 struct value **objp, struct symbol *fsym,
ac3eeb49 2478 struct value **valp, struct symbol **symp,
e66d4446
SC
2479 int *staticp, const int no_adl,
2480 const enum noside noside)
c906108c 2481{
7f8c9282 2482 struct value *obj = (objp ? *objp : NULL);
da096638 2483 struct type *obj_type = obj ? value_type (obj) : NULL;
ac3eeb49 2484 /* Index of best overloaded function. */
4c3376c8
SW
2485 int func_oload_champ = -1;
2486 int method_oload_champ = -1;
233e8b28
SC
2487 int src_method_oload_champ = -1;
2488 int ext_method_oload_champ = -1;
4c3376c8 2489
ac3eeb49 2490 /* The measure for the current best match. */
4c3376c8
SW
2491 struct badness_vector *method_badness = NULL;
2492 struct badness_vector *func_badness = NULL;
233e8b28
SC
2493 struct badness_vector *ext_method_badness = NULL;
2494 struct badness_vector *src_method_badness = NULL;
4c3376c8 2495
f23631e4 2496 struct value *temp = obj;
ac3eeb49
MS
2497 /* For methods, the list of overloaded methods. */
2498 struct fn_field *fns_ptr = NULL;
2499 /* For non-methods, the list of overloaded function symbols. */
2500 struct symbol **oload_syms = NULL;
233e8b28
SC
2501 /* For xmethods, the VEC of xmethod workers. */
2502 VEC (xmethod_worker_ptr) *xm_worker_vec = NULL;
ac3eeb49
MS
2503 /* Number of overloaded instances being considered. */
2504 int num_fns = 0;
c5aa993b 2505 struct type *basetype = NULL;
6b850546 2506 LONGEST boffset;
7322dca9
SW
2507
2508 struct cleanup *all_cleanups = make_cleanup (null_cleanup, NULL);
c906108c 2509
8d577d32 2510 const char *obj_type_name = NULL;
7322dca9 2511 const char *func_name = NULL;
8d577d32 2512 enum oload_classification match_quality;
4c3376c8 2513 enum oload_classification method_match_quality = INCOMPATIBLE;
233e8b28
SC
2514 enum oload_classification src_method_match_quality = INCOMPATIBLE;
2515 enum oload_classification ext_method_match_quality = INCOMPATIBLE;
4c3376c8 2516 enum oload_classification func_match_quality = INCOMPATIBLE;
c906108c 2517
ac3eeb49 2518 /* Get the list of overloaded methods or functions. */
4c3376c8 2519 if (method == METHOD || method == BOTH)
c906108c 2520 {
a2ca50ae 2521 gdb_assert (obj);
94af9270
KS
2522
2523 /* OBJ may be a pointer value rather than the object itself. */
2524 obj = coerce_ref (obj);
2525 while (TYPE_CODE (check_typedef (value_type (obj))) == TYPE_CODE_PTR)
2526 obj = coerce_ref (value_ind (obj));
df407dfe 2527 obj_type_name = TYPE_NAME (value_type (obj));
94af9270
KS
2528
2529 /* First check whether this is a data member, e.g. a pointer to
2530 a function. */
2531 if (TYPE_CODE (check_typedef (value_type (obj))) == TYPE_CODE_STRUCT)
2532 {
8a13d42d 2533 *valp = search_struct_field (name, obj,
94af9270
KS
2534 check_typedef (value_type (obj)), 0);
2535 if (*valp)
2536 {
2537 *staticp = 1;
f748fb40 2538 do_cleanups (all_cleanups);
94af9270
KS
2539 return 0;
2540 }
2541 }
c906108c 2542
4c3376c8 2543 /* Retrieve the list of methods with the name NAME. */
233e8b28
SC
2544 value_find_oload_method_list (&temp, name, 0, &fns_ptr, &num_fns,
2545 &xm_worker_vec, &basetype, &boffset);
4c3376c8
SW
2546 /* If this is a method only search, and no methods were found
2547 the search has faild. */
233e8b28 2548 if (method == METHOD && (!fns_ptr || !num_fns) && !xm_worker_vec)
8a3fe4f8 2549 error (_("Couldn't find method %s%s%s"),
c5aa993b
JM
2550 obj_type_name,
2551 (obj_type_name && *obj_type_name) ? "::" : "",
2552 name);
4a1970e4 2553 /* If we are dealing with stub method types, they should have
ac3eeb49
MS
2554 been resolved by find_method_list via
2555 value_find_oload_method_list above. */
4c3376c8
SW
2556 if (fns_ptr)
2557 {
4bfb94b8 2558 gdb_assert (TYPE_SELF_TYPE (fns_ptr[0].type) != NULL);
4c3376c8 2559
233e8b28
SC
2560 src_method_oload_champ = find_oload_champ (args, nargs,
2561 num_fns, fns_ptr, NULL,
2562 NULL, &src_method_badness);
2563
2564 src_method_match_quality = classify_oload_match
2565 (src_method_badness, nargs,
2566 oload_method_static_p (fns_ptr, src_method_oload_champ));
2567
2568 make_cleanup (xfree, src_method_badness);
2569 }
4c3376c8 2570
233e8b28
SC
2571 if (VEC_length (xmethod_worker_ptr, xm_worker_vec) > 0)
2572 {
2573 ext_method_oload_champ = find_oload_champ (args, nargs,
2574 0, NULL, xm_worker_vec,
2575 NULL, &ext_method_badness);
2576 ext_method_match_quality = classify_oload_match (ext_method_badness,
2577 nargs, 0);
2578 make_cleanup (xfree, ext_method_badness);
2579 make_cleanup (free_xmethod_worker_vec, xm_worker_vec);
4c3376c8
SW
2580 }
2581
233e8b28
SC
2582 if (src_method_oload_champ >= 0 && ext_method_oload_champ >= 0)
2583 {
2584 switch (compare_badness (ext_method_badness, src_method_badness))
2585 {
2586 case 0: /* Src method and xmethod are equally good. */
233e8b28
SC
2587 /* If src method and xmethod are equally good, then
2588 xmethod should be the winner. Hence, fall through to the
2589 case where a xmethod is better than the source
2590 method, except when the xmethod match quality is
2591 non-standard. */
2592 /* FALLTHROUGH */
2593 case 1: /* Src method and ext method are incompatible. */
2594 /* If ext method match is not standard, then let source method
2595 win. Otherwise, fallthrough to let xmethod win. */
2596 if (ext_method_match_quality != STANDARD)
2597 {
2598 method_oload_champ = src_method_oload_champ;
2599 method_badness = src_method_badness;
2600 ext_method_oload_champ = -1;
2601 method_match_quality = src_method_match_quality;
2602 break;
2603 }
2604 /* FALLTHROUGH */
2605 case 2: /* Ext method is champion. */
2606 method_oload_champ = ext_method_oload_champ;
2607 method_badness = ext_method_badness;
2608 src_method_oload_champ = -1;
2609 method_match_quality = ext_method_match_quality;
2610 break;
2611 case 3: /* Src method is champion. */
2612 method_oload_champ = src_method_oload_champ;
2613 method_badness = src_method_badness;
2614 ext_method_oload_champ = -1;
2615 method_match_quality = src_method_match_quality;
2616 break;
2617 default:
2618 gdb_assert_not_reached ("Unexpected overload comparison "
2619 "result");
2620 break;
2621 }
2622 }
2623 else if (src_method_oload_champ >= 0)
2624 {
2625 method_oload_champ = src_method_oload_champ;
2626 method_badness = src_method_badness;
2627 method_match_quality = src_method_match_quality;
2628 }
2629 else if (ext_method_oload_champ >= 0)
2630 {
2631 method_oload_champ = ext_method_oload_champ;
2632 method_badness = ext_method_badness;
2633 method_match_quality = ext_method_match_quality;
2634 }
c906108c 2635 }
4c3376c8
SW
2636
2637 if (method == NON_METHOD || method == BOTH)
c906108c 2638 {
7322dca9 2639 const char *qualified_name = NULL;
c906108c 2640
b021a221
MS
2641 /* If the overload match is being search for both as a method
2642 and non member function, the first argument must now be
2643 dereferenced. */
4c3376c8 2644 if (method == BOTH)
2b214ea6 2645 args[0] = value_ind (args[0]);
4c3376c8 2646
7322dca9
SW
2647 if (fsym)
2648 {
2649 qualified_name = SYMBOL_NATURAL_NAME (fsym);
2650
2651 /* If we have a function with a C++ name, try to extract just
2652 the function part. Do not try this for non-functions (e.g.
2653 function pointers). */
2654 if (qualified_name
3e43a32a
MS
2655 && TYPE_CODE (check_typedef (SYMBOL_TYPE (fsym)))
2656 == TYPE_CODE_FUNC)
7322dca9
SW
2657 {
2658 char *temp;
2659
2660 temp = cp_func_name (qualified_name);
2661
2662 /* If cp_func_name did not remove anything, the name of the
2663 symbol did not include scope or argument types - it was
2664 probably a C-style function. */
2665 if (temp)
2666 {
2667 make_cleanup (xfree, temp);
2668 if (strcmp (temp, qualified_name) == 0)
2669 func_name = NULL;
2670 else
2671 func_name = temp;
2672 }
2673 }
2674 }
2675 else
94af9270 2676 {
7322dca9
SW
2677 func_name = name;
2678 qualified_name = name;
94af9270 2679 }
d9639e13 2680
94af9270
KS
2681 /* If there was no C++ name, this must be a C-style function or
2682 not a function at all. Just return the same symbol. Do the
2683 same if cp_func_name fails for some reason. */
8d577d32 2684 if (func_name == NULL)
7b83ea04 2685 {
917317f4 2686 *symp = fsym;
5fe41fbf 2687 do_cleanups (all_cleanups);
7b83ea04
AC
2688 return 0;
2689 }
917317f4 2690
da096638 2691 func_oload_champ = find_oload_champ_namespace (args, nargs,
4c3376c8
SW
2692 func_name,
2693 qualified_name,
2694 &oload_syms,
2695 &func_badness,
2696 no_adl);
8d577d32 2697
4c3376c8
SW
2698 if (func_oload_champ >= 0)
2699 func_match_quality = classify_oload_match (func_badness, nargs, 0);
2700
2701 make_cleanup (xfree, oload_syms);
2702 make_cleanup (xfree, func_badness);
8d577d32
DC
2703 }
2704
7322dca9 2705 /* Did we find a match ? */
4c3376c8 2706 if (method_oload_champ == -1 && func_oload_champ == -1)
79afc5ef
SW
2707 throw_error (NOT_FOUND_ERROR,
2708 _("No symbol \"%s\" in current context."),
2709 name);
8d577d32 2710
4c3376c8
SW
2711 /* If we have found both a method match and a function
2712 match, find out which one is better, and calculate match
2713 quality. */
2714 if (method_oload_champ >= 0 && func_oload_champ >= 0)
2715 {
2716 switch (compare_badness (func_badness, method_badness))
2717 {
2718 case 0: /* Top two contenders are equally good. */
b021a221
MS
2719 /* FIXME: GDB does not support the general ambiguous case.
2720 All candidates should be collected and presented the
2721 user. */
4c3376c8
SW
2722 error (_("Ambiguous overload resolution"));
2723 break;
2724 case 1: /* Incomparable top contenders. */
2725 /* This is an error incompatible candidates
2726 should not have been proposed. */
3e43a32a
MS
2727 error (_("Internal error: incompatible "
2728 "overload candidates proposed"));
4c3376c8
SW
2729 break;
2730 case 2: /* Function champion. */
2731 method_oload_champ = -1;
2732 match_quality = func_match_quality;
2733 break;
2734 case 3: /* Method champion. */
2735 func_oload_champ = -1;
2736 match_quality = method_match_quality;
2737 break;
2738 default:
2739 error (_("Internal error: unexpected overload comparison result"));
2740 break;
2741 }
2742 }
2743 else
2744 {
2745 /* We have either a method match or a function match. */
2746 if (method_oload_champ >= 0)
2747 match_quality = method_match_quality;
2748 else
2749 match_quality = func_match_quality;
2750 }
8d577d32
DC
2751
2752 if (match_quality == INCOMPATIBLE)
2753 {
4c3376c8 2754 if (method == METHOD)
8a3fe4f8 2755 error (_("Cannot resolve method %s%s%s to any overloaded instance"),
8d577d32
DC
2756 obj_type_name,
2757 (obj_type_name && *obj_type_name) ? "::" : "",
2758 name);
2759 else
8a3fe4f8 2760 error (_("Cannot resolve function %s to any overloaded instance"),
8d577d32
DC
2761 func_name);
2762 }
2763 else if (match_quality == NON_STANDARD)
2764 {
4c3376c8 2765 if (method == METHOD)
3e43a32a
MS
2766 warning (_("Using non-standard conversion to match "
2767 "method %s%s%s to supplied arguments"),
8d577d32
DC
2768 obj_type_name,
2769 (obj_type_name && *obj_type_name) ? "::" : "",
2770 name);
2771 else
3e43a32a
MS
2772 warning (_("Using non-standard conversion to match "
2773 "function %s to supplied arguments"),
8d577d32
DC
2774 func_name);
2775 }
2776
4c3376c8 2777 if (staticp != NULL)
2bca57ba 2778 *staticp = oload_method_static_p (fns_ptr, method_oload_champ);
4c3376c8
SW
2779
2780 if (method_oload_champ >= 0)
8d577d32 2781 {
233e8b28
SC
2782 if (src_method_oload_champ >= 0)
2783 {
e66d4446
SC
2784 if (TYPE_FN_FIELD_VIRTUAL_P (fns_ptr, method_oload_champ)
2785 && noside != EVAL_AVOID_SIDE_EFFECTS)
2786 {
2787 *valp = value_virtual_fn_field (&temp, fns_ptr,
2788 method_oload_champ, basetype,
2789 boffset);
2790 }
233e8b28
SC
2791 else
2792 *valp = value_fn_field (&temp, fns_ptr, method_oload_champ,
2793 basetype, boffset);
2794 }
8d577d32 2795 else
233e8b28
SC
2796 {
2797 *valp = value_of_xmethod (clone_xmethod_worker
2798 (VEC_index (xmethod_worker_ptr, xm_worker_vec,
2799 ext_method_oload_champ)));
2800 }
8d577d32
DC
2801 }
2802 else
4c3376c8 2803 *symp = oload_syms[func_oload_champ];
8d577d32
DC
2804
2805 if (objp)
2806 {
a4295225 2807 struct type *temp_type = check_typedef (value_type (temp));
da096638 2808 struct type *objtype = check_typedef (obj_type);
a109c7c1 2809
a4295225 2810 if (TYPE_CODE (temp_type) != TYPE_CODE_PTR
da096638
KS
2811 && (TYPE_CODE (objtype) == TYPE_CODE_PTR
2812 || TYPE_CODE (objtype) == TYPE_CODE_REF))
8d577d32
DC
2813 {
2814 temp = value_addr (temp);
2815 }
2816 *objp = temp;
2817 }
7322dca9
SW
2818
2819 do_cleanups (all_cleanups);
8d577d32
DC
2820
2821 switch (match_quality)
2822 {
2823 case INCOMPATIBLE:
2824 return 100;
2825 case NON_STANDARD:
2826 return 10;
2827 default: /* STANDARD */
2828 return 0;
2829 }
2830}
2831
2832/* Find the best overload match, searching for FUNC_NAME in namespaces
2833 contained in QUALIFIED_NAME until it either finds a good match or
2834 runs out of namespaces. It stores the overloaded functions in
2835 *OLOAD_SYMS, and the badness vector in *OLOAD_CHAMP_BV. The
2836 calling function is responsible for freeing *OLOAD_SYMS and
7322dca9
SW
2837 *OLOAD_CHAMP_BV. If NO_ADL, argument dependent lookup is not
2838 performned. */
8d577d32
DC
2839
2840static int
da096638 2841find_oload_champ_namespace (struct value **args, int nargs,
8d577d32
DC
2842 const char *func_name,
2843 const char *qualified_name,
2844 struct symbol ***oload_syms,
7322dca9
SW
2845 struct badness_vector **oload_champ_bv,
2846 const int no_adl)
8d577d32
DC
2847{
2848 int oload_champ;
2849
da096638 2850 find_oload_champ_namespace_loop (args, nargs,
8d577d32
DC
2851 func_name,
2852 qualified_name, 0,
2853 oload_syms, oload_champ_bv,
7322dca9
SW
2854 &oload_champ,
2855 no_adl);
8d577d32
DC
2856
2857 return oload_champ;
2858}
2859
2860/* Helper function for find_oload_champ_namespace; NAMESPACE_LEN is
2861 how deep we've looked for namespaces, and the champ is stored in
2862 OLOAD_CHAMP. The return value is 1 if the champ is a good one, 0
7322dca9
SW
2863 if it isn't. Other arguments are the same as in
2864 find_oload_champ_namespace
8d577d32
DC
2865
2866 It is the caller's responsibility to free *OLOAD_SYMS and
2867 *OLOAD_CHAMP_BV. */
2868
2869static int
da096638 2870find_oload_champ_namespace_loop (struct value **args, int nargs,
8d577d32
DC
2871 const char *func_name,
2872 const char *qualified_name,
2873 int namespace_len,
2874 struct symbol ***oload_syms,
2875 struct badness_vector **oload_champ_bv,
7322dca9
SW
2876 int *oload_champ,
2877 const int no_adl)
8d577d32
DC
2878{
2879 int next_namespace_len = namespace_len;
2880 int searched_deeper = 0;
2881 int num_fns = 0;
2882 struct cleanup *old_cleanups;
2883 int new_oload_champ;
2884 struct symbol **new_oload_syms;
2885 struct badness_vector *new_oload_champ_bv;
2886 char *new_namespace;
2887
2888 if (next_namespace_len != 0)
2889 {
2890 gdb_assert (qualified_name[next_namespace_len] == ':');
2891 next_namespace_len += 2;
c906108c 2892 }
ac3eeb49
MS
2893 next_namespace_len +=
2894 cp_find_first_component (qualified_name + next_namespace_len);
8d577d32
DC
2895
2896 /* Initialize these to values that can safely be xfree'd. */
2897 *oload_syms = NULL;
2898 *oload_champ_bv = NULL;
c5aa993b 2899
581e13c1 2900 /* First, see if we have a deeper namespace we can search in.
ac3eeb49 2901 If we get a good match there, use it. */
8d577d32
DC
2902
2903 if (qualified_name[next_namespace_len] == ':')
2904 {
2905 searched_deeper = 1;
2906
da096638 2907 if (find_oload_champ_namespace_loop (args, nargs,
8d577d32
DC
2908 func_name, qualified_name,
2909 next_namespace_len,
2910 oload_syms, oload_champ_bv,
7322dca9 2911 oload_champ, no_adl))
8d577d32
DC
2912 {
2913 return 1;
2914 }
2915 };
2916
2917 /* If we reach here, either we're in the deepest namespace or we
2918 didn't find a good match in a deeper namespace. But, in the
2919 latter case, we still have a bad match in a deeper namespace;
2920 note that we might not find any match at all in the current
2921 namespace. (There's always a match in the deepest namespace,
2922 because this overload mechanism only gets called if there's a
2923 function symbol to start off with.) */
2924
2925 old_cleanups = make_cleanup (xfree, *oload_syms);
ec322823 2926 make_cleanup (xfree, *oload_champ_bv);
224c3ddb 2927 new_namespace = (char *) alloca (namespace_len + 1);
8d577d32
DC
2928 strncpy (new_namespace, qualified_name, namespace_len);
2929 new_namespace[namespace_len] = '\0';
2930 new_oload_syms = make_symbol_overload_list (func_name,
2931 new_namespace);
7322dca9
SW
2932
2933 /* If we have reached the deepest level perform argument
2934 determined lookup. */
2935 if (!searched_deeper && !no_adl)
da096638
KS
2936 {
2937 int ix;
2938 struct type **arg_types;
2939
2940 /* Prepare list of argument types for overload resolution. */
2941 arg_types = (struct type **)
2942 alloca (nargs * (sizeof (struct type *)));
2943 for (ix = 0; ix < nargs; ix++)
2944 arg_types[ix] = value_type (args[ix]);
2945 make_symbol_overload_list_adl (arg_types, nargs, func_name);
2946 }
7322dca9 2947
8d577d32
DC
2948 while (new_oload_syms[num_fns])
2949 ++num_fns;
2950
9cf95373 2951 new_oload_champ = find_oload_champ (args, nargs, num_fns,
233e8b28 2952 NULL, NULL, new_oload_syms,
8d577d32
DC
2953 &new_oload_champ_bv);
2954
2955 /* Case 1: We found a good match. Free earlier matches (if any),
2956 and return it. Case 2: We didn't find a good match, but we're
2957 not the deepest function. Then go with the bad match that the
2958 deeper function found. Case 3: We found a bad match, and we're
2959 the deepest function. Then return what we found, even though
2960 it's a bad match. */
2961
2962 if (new_oload_champ != -1
2963 && classify_oload_match (new_oload_champ_bv, nargs, 0) == STANDARD)
2964 {
2965 *oload_syms = new_oload_syms;
2966 *oload_champ = new_oload_champ;
2967 *oload_champ_bv = new_oload_champ_bv;
2968 do_cleanups (old_cleanups);
2969 return 1;
2970 }
2971 else if (searched_deeper)
2972 {
2973 xfree (new_oload_syms);
2974 xfree (new_oload_champ_bv);
2975 discard_cleanups (old_cleanups);
2976 return 0;
2977 }
2978 else
2979 {
8d577d32
DC
2980 *oload_syms = new_oload_syms;
2981 *oload_champ = new_oload_champ;
2982 *oload_champ_bv = new_oload_champ_bv;
2a7d6a25 2983 do_cleanups (old_cleanups);
8d577d32
DC
2984 return 0;
2985 }
2986}
2987
da096638 2988/* Look for a function to take NARGS args of ARGS. Find
8d577d32 2989 the best match from among the overloaded methods or functions
233e8b28
SC
2990 given by FNS_PTR or OLOAD_SYMS or XM_WORKER_VEC, respectively.
2991 One, and only one of FNS_PTR, OLOAD_SYMS and XM_WORKER_VEC can be
2992 non-NULL.
2993
2994 If XM_WORKER_VEC is NULL, then the length of the arrays FNS_PTR
2995 or OLOAD_SYMS (whichever is non-NULL) is specified in NUM_FNS.
2996
8d577d32
DC
2997 Return the index of the best match; store an indication of the
2998 quality of the match in OLOAD_CHAMP_BV.
2999
3000 It is the caller's responsibility to free *OLOAD_CHAMP_BV. */
3001
3002static int
9cf95373 3003find_oload_champ (struct value **args, int nargs,
8d577d32 3004 int num_fns, struct fn_field *fns_ptr,
233e8b28 3005 VEC (xmethod_worker_ptr) *xm_worker_vec,
8d577d32
DC
3006 struct symbol **oload_syms,
3007 struct badness_vector **oload_champ_bv)
3008{
3009 int ix;
233e8b28 3010 int fn_count;
ac3eeb49
MS
3011 /* A measure of how good an overloaded instance is. */
3012 struct badness_vector *bv;
3013 /* Index of best overloaded function. */
3014 int oload_champ = -1;
3015 /* Current ambiguity state for overload resolution. */
3016 int oload_ambiguous = 0;
3017 /* 0 => no ambiguity, 1 => two good funcs, 2 => incomparable funcs. */
8d577d32 3018
9cf95373 3019 /* A champion can be found among methods alone, or among functions
233e8b28
SC
3020 alone, or in xmethods alone, but not in more than one of these
3021 groups. */
3022 gdb_assert ((fns_ptr != NULL) + (oload_syms != NULL) + (xm_worker_vec != NULL)
3023 == 1);
9cf95373 3024
8d577d32 3025 *oload_champ_bv = NULL;
c906108c 3026
233e8b28
SC
3027 fn_count = (xm_worker_vec != NULL
3028 ? VEC_length (xmethod_worker_ptr, xm_worker_vec)
3029 : num_fns);
ac3eeb49 3030 /* Consider each candidate in turn. */
233e8b28 3031 for (ix = 0; ix < fn_count; ix++)
c906108c 3032 {
8d577d32 3033 int jj;
233e8b28 3034 int static_offset = 0;
8d577d32
DC
3035 int nparms;
3036 struct type **parm_types;
233e8b28 3037 struct xmethod_worker *worker = NULL;
8d577d32 3038
233e8b28 3039 if (xm_worker_vec != NULL)
db577aea 3040 {
233e8b28
SC
3041 worker = VEC_index (xmethod_worker_ptr, xm_worker_vec, ix);
3042 parm_types = get_xmethod_arg_types (worker, &nparms);
db577aea
AC
3043 }
3044 else
3045 {
233e8b28
SC
3046 if (fns_ptr != NULL)
3047 {
3048 nparms = TYPE_NFIELDS (TYPE_FN_FIELD_TYPE (fns_ptr, ix));
3049 static_offset = oload_method_static_p (fns_ptr, ix);
3050 }
3051 else
3052 nparms = TYPE_NFIELDS (SYMBOL_TYPE (oload_syms[ix]));
3053
8d749320 3054 parm_types = XNEWVEC (struct type *, nparms);
233e8b28
SC
3055 for (jj = 0; jj < nparms; jj++)
3056 parm_types[jj] = (fns_ptr != NULL
3057 ? (TYPE_FN_FIELD_ARGS (fns_ptr, ix)[jj].type)
3058 : TYPE_FIELD_TYPE (SYMBOL_TYPE (oload_syms[ix]),
8301c89e 3059 jj));
db577aea 3060 }
c906108c 3061
ac3eeb49
MS
3062 /* Compare parameter types to supplied argument types. Skip
3063 THIS for static methods. */
3064 bv = rank_function (parm_types, nparms,
da096638 3065 args + static_offset,
4a1970e4 3066 nargs - static_offset);
c5aa993b 3067
8d577d32 3068 if (!*oload_champ_bv)
c5aa993b 3069 {
8d577d32 3070 *oload_champ_bv = bv;
c5aa993b 3071 oload_champ = 0;
c5aa993b 3072 }
ac3eeb49
MS
3073 else /* See whether current candidate is better or worse than
3074 previous best. */
8d577d32 3075 switch (compare_badness (bv, *oload_champ_bv))
c5aa993b 3076 {
ac3eeb49
MS
3077 case 0: /* Top two contenders are equally good. */
3078 oload_ambiguous = 1;
c5aa993b 3079 break;
ac3eeb49
MS
3080 case 1: /* Incomparable top contenders. */
3081 oload_ambiguous = 2;
c5aa993b 3082 break;
ac3eeb49
MS
3083 case 2: /* New champion, record details. */
3084 *oload_champ_bv = bv;
c5aa993b
JM
3085 oload_ambiguous = 0;
3086 oload_champ = ix;
c5aa993b
JM
3087 break;
3088 case 3:
3089 default:
3090 break;
3091 }
b8c9b27d 3092 xfree (parm_types);
6b1ba9a0
ND
3093 if (overload_debug)
3094 {
233e8b28 3095 if (fns_ptr != NULL)
ac3eeb49 3096 fprintf_filtered (gdb_stderr,
3e43a32a 3097 "Overloaded method instance %s, # of parms %d\n",
ac3eeb49 3098 fns_ptr[ix].physname, nparms);
233e8b28
SC
3099 else if (xm_worker_vec != NULL)
3100 fprintf_filtered (gdb_stderr,
3101 "Xmethod worker, # of parms %d\n",
3102 nparms);
6b1ba9a0 3103 else
ac3eeb49 3104 fprintf_filtered (gdb_stderr,
3e43a32a
MS
3105 "Overloaded function instance "
3106 "%s # of parms %d\n",
ac3eeb49
MS
3107 SYMBOL_DEMANGLED_NAME (oload_syms[ix]),
3108 nparms);
4a1970e4 3109 for (jj = 0; jj < nargs - static_offset; jj++)
ac3eeb49
MS
3110 fprintf_filtered (gdb_stderr,
3111 "...Badness @ %d : %d\n",
6403aeea 3112 jj, bv->rank[jj].rank);
3e43a32a
MS
3113 fprintf_filtered (gdb_stderr, "Overload resolution "
3114 "champion is %d, ambiguous? %d\n",
ac3eeb49 3115 oload_champ, oload_ambiguous);
6b1ba9a0 3116 }
c906108c
SS
3117 }
3118
8d577d32
DC
3119 return oload_champ;
3120}
6b1ba9a0 3121
8d577d32
DC
3122/* Return 1 if we're looking at a static method, 0 if we're looking at
3123 a non-static method or a function that isn't a method. */
c906108c 3124
8d577d32 3125static int
2bca57ba 3126oload_method_static_p (struct fn_field *fns_ptr, int index)
8d577d32 3127{
2bca57ba 3128 if (fns_ptr && index >= 0 && TYPE_FN_FIELD_STATIC_P (fns_ptr, index))
8d577d32 3129 return 1;
c906108c 3130 else
8d577d32
DC
3131 return 0;
3132}
c906108c 3133
8d577d32
DC
3134/* Check how good an overload match OLOAD_CHAMP_BV represents. */
3135
3136static enum oload_classification
3137classify_oload_match (struct badness_vector *oload_champ_bv,
3138 int nargs,
3139 int static_offset)
3140{
3141 int ix;
da096638 3142 enum oload_classification worst = STANDARD;
8d577d32
DC
3143
3144 for (ix = 1; ix <= nargs - static_offset; ix++)
7f8c9282 3145 {
6403aeea
SW
3146 /* If this conversion is as bad as INCOMPATIBLE_TYPE_BADNESS
3147 or worse return INCOMPATIBLE. */
3148 if (compare_ranks (oload_champ_bv->rank[ix],
3149 INCOMPATIBLE_TYPE_BADNESS) <= 0)
ac3eeb49 3150 return INCOMPATIBLE; /* Truly mismatched types. */
6403aeea
SW
3151 /* Otherwise If this conversion is as bad as
3152 NS_POINTER_CONVERSION_BADNESS or worse return NON_STANDARD. */
3153 else if (compare_ranks (oload_champ_bv->rank[ix],
3154 NS_POINTER_CONVERSION_BADNESS) <= 0)
da096638 3155 worst = NON_STANDARD; /* Non-standard type conversions
ac3eeb49 3156 needed. */
7f8c9282 3157 }
02f0d45d 3158
da096638
KS
3159 /* If no INCOMPATIBLE classification was found, return the worst one
3160 that was found (if any). */
3161 return worst;
c906108c
SS
3162}
3163
ac3eeb49
MS
3164/* C++: return 1 is NAME is a legitimate name for the destructor of
3165 type TYPE. If TYPE does not have a destructor, or if NAME is
d8228535
JK
3166 inappropriate for TYPE, an error is signaled. Parameter TYPE should not yet
3167 have CHECK_TYPEDEF applied, this function will apply it itself. */
3168
c906108c 3169int
d8228535 3170destructor_name_p (const char *name, struct type *type)
c906108c 3171{
c906108c
SS
3172 if (name[0] == '~')
3173 {
d8228535
JK
3174 const char *dname = type_name_no_tag_or_error (type);
3175 const char *cp = strchr (dname, '<');
c906108c
SS
3176 unsigned int len;
3177
3178 /* Do not compare the template part for template classes. */
3179 if (cp == NULL)
3180 len = strlen (dname);
3181 else
3182 len = cp - dname;
bf896cb0 3183 if (strlen (name + 1) != len || strncmp (dname, name + 1, len) != 0)
8a3fe4f8 3184 error (_("name of destructor must equal name of class"));
c906108c
SS
3185 else
3186 return 1;
3187 }
3188 return 0;
3189}
3190
3d567982
TT
3191/* Find an enum constant named NAME in TYPE. TYPE must be an "enum
3192 class". If the name is found, return a value representing it;
3193 otherwise throw an exception. */
3194
3195static struct value *
3196enum_constant_from_type (struct type *type, const char *name)
3197{
3198 int i;
3199 int name_len = strlen (name);
3200
3201 gdb_assert (TYPE_CODE (type) == TYPE_CODE_ENUM
3202 && TYPE_DECLARED_CLASS (type));
3203
3204 for (i = TYPE_N_BASECLASSES (type); i < TYPE_NFIELDS (type); ++i)
3205 {
3206 const char *fname = TYPE_FIELD_NAME (type, i);
3207 int len;
3208
3209 if (TYPE_FIELD_LOC_KIND (type, i) != FIELD_LOC_KIND_ENUMVAL
3210 || fname == NULL)
3211 continue;
3212
3213 /* Look for the trailing "::NAME", since enum class constant
3214 names are qualified here. */
3215 len = strlen (fname);
3216 if (len + 2 >= name_len
3217 && fname[len - name_len - 2] == ':'
3218 && fname[len - name_len - 1] == ':'
3219 && strcmp (&fname[len - name_len], name) == 0)
3220 return value_from_longest (type, TYPE_FIELD_ENUMVAL (type, i));
3221 }
3222
3223 error (_("no constant named \"%s\" in enum \"%s\""),
3224 name, TYPE_TAG_NAME (type));
3225}
3226
79c2c32d 3227/* C++: Given an aggregate type CURTYPE, and a member name NAME,
0d5de010
DJ
3228 return the appropriate member (or the address of the member, if
3229 WANT_ADDRESS). This function is used to resolve user expressions
3230 of the form "DOMAIN::NAME". For more details on what happens, see
3231 the comment before value_struct_elt_for_reference. */
79c2c32d
DC
3232
3233struct value *
c848d642 3234value_aggregate_elt (struct type *curtype, const char *name,
072bba3b 3235 struct type *expect_type, int want_address,
79c2c32d
DC
3236 enum noside noside)
3237{
3238 switch (TYPE_CODE (curtype))
3239 {
3240 case TYPE_CODE_STRUCT:
3241 case TYPE_CODE_UNION:
ac3eeb49 3242 return value_struct_elt_for_reference (curtype, 0, curtype,
072bba3b 3243 name, expect_type,
0d5de010 3244 want_address, noside);
79c2c32d 3245 case TYPE_CODE_NAMESPACE:
ac3eeb49
MS
3246 return value_namespace_elt (curtype, name,
3247 want_address, noside);
3d567982
TT
3248
3249 case TYPE_CODE_ENUM:
3250 return enum_constant_from_type (curtype, name);
3251
79c2c32d
DC
3252 default:
3253 internal_error (__FILE__, __LINE__,
e2e0b3e5 3254 _("non-aggregate type in value_aggregate_elt"));
79c2c32d
DC
3255 }
3256}
3257
072bba3b 3258/* Compares the two method/function types T1 and T2 for "equality"
b021a221 3259 with respect to the methods' parameters. If the types of the
072bba3b
KS
3260 two parameter lists are the same, returns 1; 0 otherwise. This
3261 comparison may ignore any artificial parameters in T1 if
3262 SKIP_ARTIFICIAL is non-zero. This function will ALWAYS skip
3263 the first artificial parameter in T1, assumed to be a 'this' pointer.
3264
3265 The type T2 is expected to have come from make_params (in eval.c). */
3266
3267static int
3268compare_parameters (struct type *t1, struct type *t2, int skip_artificial)
3269{
3270 int start = 0;
3271
80b23b6a 3272 if (TYPE_NFIELDS (t1) > 0 && TYPE_FIELD_ARTIFICIAL (t1, 0))
072bba3b
KS
3273 ++start;
3274
3275 /* If skipping artificial fields, find the first real field
581e13c1 3276 in T1. */
072bba3b
KS
3277 if (skip_artificial)
3278 {
3279 while (start < TYPE_NFIELDS (t1)
3280 && TYPE_FIELD_ARTIFICIAL (t1, start))
3281 ++start;
3282 }
3283
581e13c1 3284 /* Now compare parameters. */
072bba3b
KS
3285
3286 /* Special case: a method taking void. T1 will contain no
3287 non-artificial fields, and T2 will contain TYPE_CODE_VOID. */
3288 if ((TYPE_NFIELDS (t1) - start) == 0 && TYPE_NFIELDS (t2) == 1
3289 && TYPE_CODE (TYPE_FIELD_TYPE (t2, 0)) == TYPE_CODE_VOID)
3290 return 1;
3291
3292 if ((TYPE_NFIELDS (t1) - start) == TYPE_NFIELDS (t2))
3293 {
3294 int i;
a109c7c1 3295
072bba3b
KS
3296 for (i = 0; i < TYPE_NFIELDS (t2); ++i)
3297 {
6403aeea 3298 if (compare_ranks (rank_one_type (TYPE_FIELD_TYPE (t1, start + i),
da096638 3299 TYPE_FIELD_TYPE (t2, i), NULL),
6403aeea 3300 EXACT_MATCH_BADNESS) != 0)
072bba3b
KS
3301 return 0;
3302 }
3303
3304 return 1;
3305 }
3306
3307 return 0;
3308}
3309
c906108c 3310/* C++: Given an aggregate type CURTYPE, and a member name NAME,
ac3eeb49
MS
3311 return the address of this member as a "pointer to member" type.
3312 If INTYPE is non-null, then it will be the type of the member we
3313 are looking for. This will help us resolve "pointers to member
3314 functions". This function is used to resolve user expressions of
3315 the form "DOMAIN::NAME". */
c906108c 3316
63d06c5c 3317static struct value *
fba45db2 3318value_struct_elt_for_reference (struct type *domain, int offset,
c848d642 3319 struct type *curtype, const char *name,
ac3eeb49
MS
3320 struct type *intype,
3321 int want_address,
63d06c5c 3322 enum noside noside)
c906108c 3323{
52f0bd74
AC
3324 struct type *t = curtype;
3325 int i;
0d5de010 3326 struct value *v, *result;
c906108c 3327
c5aa993b 3328 if (TYPE_CODE (t) != TYPE_CODE_STRUCT
c906108c 3329 && TYPE_CODE (t) != TYPE_CODE_UNION)
3e43a32a
MS
3330 error (_("Internal error: non-aggregate type "
3331 "to value_struct_elt_for_reference"));
c906108c
SS
3332
3333 for (i = TYPE_NFIELDS (t) - 1; i >= TYPE_N_BASECLASSES (t); i--)
3334 {
0d5cff50 3335 const char *t_field_name = TYPE_FIELD_NAME (t, i);
c5aa993b 3336
6314a349 3337 if (t_field_name && strcmp (t_field_name, name) == 0)
c906108c 3338 {
d6a843b5 3339 if (field_is_static (&TYPE_FIELD (t, i)))
c906108c
SS
3340 {
3341 v = value_static_field (t, i);
0d5de010
DJ
3342 if (want_address)
3343 v = value_addr (v);
c906108c
SS
3344 return v;
3345 }
3346 if (TYPE_FIELD_PACKED (t, i))
8a3fe4f8 3347 error (_("pointers to bitfield members not allowed"));
c5aa993b 3348
0d5de010
DJ
3349 if (want_address)
3350 return value_from_longest
3351 (lookup_memberptr_type (TYPE_FIELD_TYPE (t, i), domain),
3352 offset + (LONGEST) (TYPE_FIELD_BITPOS (t, i) >> 3));
f7e3ecae 3353 else if (noside != EVAL_NORMAL)
0d5de010
DJ
3354 return allocate_value (TYPE_FIELD_TYPE (t, i));
3355 else
f7e3ecae
KS
3356 {
3357 /* Try to evaluate NAME as a qualified name with implicit
3358 this pointer. In this case, attempt to return the
3359 equivalent to `this->*(&TYPE::NAME)'. */
3360 v = value_of_this_silent (current_language);
3361 if (v != NULL)
3362 {
3363 struct value *ptr;
3364 long mem_offset;
3365 struct type *type, *tmp;
3366
3367 ptr = value_aggregate_elt (domain, name, NULL, 1, noside);
3368 type = check_typedef (value_type (ptr));
3369 gdb_assert (type != NULL
3370 && TYPE_CODE (type) == TYPE_CODE_MEMBERPTR);
4bfb94b8 3371 tmp = lookup_pointer_type (TYPE_SELF_TYPE (type));
f7e3ecae
KS
3372 v = value_cast_pointers (tmp, v, 1);
3373 mem_offset = value_as_long (ptr);
3374 tmp = lookup_pointer_type (TYPE_TARGET_TYPE (type));
3375 result = value_from_pointer (tmp,
3376 value_as_long (v) + mem_offset);
3377 return value_ind (result);
3378 }
3379
3380 error (_("Cannot reference non-static field \"%s\""), name);
3381 }
c906108c
SS
3382 }
3383 }
3384
ac3eeb49
MS
3385 /* C++: If it was not found as a data field, then try to return it
3386 as a pointer to a method. */
c906108c 3387
c906108c
SS
3388 /* Perform all necessary dereferencing. */
3389 while (intype && TYPE_CODE (intype) == TYPE_CODE_PTR)
3390 intype = TYPE_TARGET_TYPE (intype);
3391
3392 for (i = TYPE_NFN_FIELDS (t) - 1; i >= 0; --i)
3393 {
0d5cff50 3394 const char *t_field_name = TYPE_FN_FIELDLIST_NAME (t, i);
c906108c
SS
3395 char dem_opname[64];
3396
61012eef
GB
3397 if (startswith (t_field_name, "__")
3398 || startswith (t_field_name, "op")
3399 || startswith (t_field_name, "type"))
c906108c 3400 {
ac3eeb49
MS
3401 if (cplus_demangle_opname (t_field_name,
3402 dem_opname, DMGL_ANSI))
c5aa993b 3403 t_field_name = dem_opname;
ac3eeb49
MS
3404 else if (cplus_demangle_opname (t_field_name,
3405 dem_opname, 0))
c906108c 3406 t_field_name = dem_opname;
c906108c 3407 }
6314a349 3408 if (t_field_name && strcmp (t_field_name, name) == 0)
c906108c 3409 {
072bba3b
KS
3410 int j;
3411 int len = TYPE_FN_FIELDLIST_LENGTH (t, i);
c906108c 3412 struct fn_field *f = TYPE_FN_FIELDLIST1 (t, i);
c5aa993b 3413
de17c821
DJ
3414 check_stub_method_group (t, i);
3415
c906108c
SS
3416 if (intype)
3417 {
072bba3b
KS
3418 for (j = 0; j < len; ++j)
3419 {
3420 if (compare_parameters (TYPE_FN_FIELD_TYPE (f, j), intype, 0)
3e43a32a
MS
3421 || compare_parameters (TYPE_FN_FIELD_TYPE (f, j),
3422 intype, 1))
072bba3b
KS
3423 break;
3424 }
3425
3426 if (j == len)
3e43a32a
MS
3427 error (_("no member function matches "
3428 "that type instantiation"));
7f79b1c5 3429 }
c906108c 3430 else
072bba3b
KS
3431 {
3432 int ii;
7f79b1c5
DJ
3433
3434 j = -1;
53832f31 3435 for (ii = 0; ii < len; ++ii)
072bba3b 3436 {
7f79b1c5
DJ
3437 /* Skip artificial methods. This is necessary if,
3438 for example, the user wants to "print
3439 subclass::subclass" with only one user-defined
53832f31
TT
3440 constructor. There is no ambiguity in this case.
3441 We are careful here to allow artificial methods
3442 if they are the unique result. */
072bba3b 3443 if (TYPE_FN_FIELD_ARTIFICIAL (f, ii))
53832f31
TT
3444 {
3445 if (j == -1)
3446 j = ii;
3447 continue;
3448 }
072bba3b 3449
7f79b1c5
DJ
3450 /* Desired method is ambiguous if more than one
3451 method is defined. */
53832f31 3452 if (j != -1 && !TYPE_FN_FIELD_ARTIFICIAL (f, j))
3e43a32a
MS
3453 error (_("non-unique member `%s' requires "
3454 "type instantiation"), name);
072bba3b 3455
7f79b1c5
DJ
3456 j = ii;
3457 }
53832f31
TT
3458
3459 if (j == -1)
3460 error (_("no matching member function"));
072bba3b 3461 }
c5aa993b 3462
0d5de010
DJ
3463 if (TYPE_FN_FIELD_STATIC_P (f, j))
3464 {
ac3eeb49
MS
3465 struct symbol *s =
3466 lookup_symbol (TYPE_FN_FIELD_PHYSNAME (f, j),
d12307c1 3467 0, VAR_DOMAIN, 0).symbol;
a109c7c1 3468
0d5de010
DJ
3469 if (s == NULL)
3470 return NULL;
3471
3472 if (want_address)
63e43d3a 3473 return value_addr (read_var_value (s, 0, 0));
0d5de010 3474 else
63e43d3a 3475 return read_var_value (s, 0, 0);
0d5de010
DJ
3476 }
3477
c906108c
SS
3478 if (TYPE_FN_FIELD_VIRTUAL_P (f, j))
3479 {
0d5de010
DJ
3480 if (want_address)
3481 {
3482 result = allocate_value
3483 (lookup_methodptr_type (TYPE_FN_FIELD_TYPE (f, j)));
ad4820ab
UW
3484 cplus_make_method_ptr (value_type (result),
3485 value_contents_writeable (result),
0d5de010
DJ
3486 TYPE_FN_FIELD_VOFFSET (f, j), 1);
3487 }
3488 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
3489 return allocate_value (TYPE_FN_FIELD_TYPE (f, j));
3490 else
3491 error (_("Cannot reference virtual member function \"%s\""),
3492 name);
c906108c
SS
3493 }
3494 else
3495 {
ac3eeb49
MS
3496 struct symbol *s =
3497 lookup_symbol (TYPE_FN_FIELD_PHYSNAME (f, j),
d12307c1 3498 0, VAR_DOMAIN, 0).symbol;
a109c7c1 3499
c906108c 3500 if (s == NULL)
0d5de010
DJ
3501 return NULL;
3502
63e43d3a 3503 v = read_var_value (s, 0, 0);
0d5de010
DJ
3504 if (!want_address)
3505 result = v;
c906108c
SS
3506 else
3507 {
0d5de010 3508 result = allocate_value (lookup_methodptr_type (TYPE_FN_FIELD_TYPE (f, j)));
ad4820ab
UW
3509 cplus_make_method_ptr (value_type (result),
3510 value_contents_writeable (result),
42ae5230 3511 value_address (v), 0);
c906108c 3512 }
c906108c 3513 }
0d5de010 3514 return result;
c906108c
SS
3515 }
3516 }
3517 for (i = TYPE_N_BASECLASSES (t) - 1; i >= 0; i--)
3518 {
f23631e4 3519 struct value *v;
c906108c
SS
3520 int base_offset;
3521
3522 if (BASETYPE_VIA_VIRTUAL (t, i))
3523 base_offset = 0;
3524 else
3525 base_offset = TYPE_BASECLASS_BITPOS (t, i) / 8;
3526 v = value_struct_elt_for_reference (domain,
3527 offset + base_offset,
3528 TYPE_BASECLASS (t, i),
ac3eeb49
MS
3529 name, intype,
3530 want_address, noside);
c906108c
SS
3531 if (v)
3532 return v;
3533 }
63d06c5c
DC
3534
3535 /* As a last chance, pretend that CURTYPE is a namespace, and look
3536 it up that way; this (frequently) works for types nested inside
3537 classes. */
3538
ac3eeb49
MS
3539 return value_maybe_namespace_elt (curtype, name,
3540 want_address, noside);
c906108c
SS
3541}
3542
79c2c32d
DC
3543/* C++: Return the member NAME of the namespace given by the type
3544 CURTYPE. */
3545
3546static struct value *
3547value_namespace_elt (const struct type *curtype,
c848d642 3548 const char *name, int want_address,
79c2c32d 3549 enum noside noside)
63d06c5c
DC
3550{
3551 struct value *retval = value_maybe_namespace_elt (curtype, name,
ac3eeb49
MS
3552 want_address,
3553 noside);
63d06c5c
DC
3554
3555 if (retval == NULL)
ac3eeb49
MS
3556 error (_("No symbol \"%s\" in namespace \"%s\"."),
3557 name, TYPE_TAG_NAME (curtype));
63d06c5c
DC
3558
3559 return retval;
3560}
3561
3562/* A helper function used by value_namespace_elt and
3563 value_struct_elt_for_reference. It looks up NAME inside the
3564 context CURTYPE; this works if CURTYPE is a namespace or if CURTYPE
3565 is a class and NAME refers to a type in CURTYPE itself (as opposed
3566 to, say, some base class of CURTYPE). */
3567
3568static struct value *
3569value_maybe_namespace_elt (const struct type *curtype,
c848d642 3570 const char *name, int want_address,
63d06c5c 3571 enum noside noside)
79c2c32d
DC
3572{
3573 const char *namespace_name = TYPE_TAG_NAME (curtype);
d12307c1 3574 struct block_symbol sym;
0d5de010 3575 struct value *result;
79c2c32d 3576
13387711 3577 sym = cp_lookup_symbol_namespace (namespace_name, name,
41f62f39
JK
3578 get_selected_block (0), VAR_DOMAIN);
3579
d12307c1 3580 if (sym.symbol == NULL)
63d06c5c 3581 return NULL;
79c2c32d 3582 else if ((noside == EVAL_AVOID_SIDE_EFFECTS)
d12307c1
PMR
3583 && (SYMBOL_CLASS (sym.symbol) == LOC_TYPEDEF))
3584 result = allocate_value (SYMBOL_TYPE (sym.symbol));
79c2c32d 3585 else
d12307c1 3586 result = value_of_variable (sym.symbol, sym.block);
0d5de010 3587
ae6a105d 3588 if (want_address)
0d5de010
DJ
3589 result = value_addr (result);
3590
3591 return result;
79c2c32d
DC
3592}
3593
dfcee124 3594/* Given a pointer or a reference value V, find its real (RTTI) type.
ac3eeb49 3595
c906108c 3596 Other parameters FULL, TOP, USING_ENC as with value_rtti_type()
ac3eeb49 3597 and refer to the values computed for the object pointed to. */
c906108c
SS
3598
3599struct type *
dfcee124 3600value_rtti_indirect_type (struct value *v, int *full,
6b850546 3601 LONGEST *top, int *using_enc)
c906108c 3602{
f7e5394d 3603 struct value *target = NULL;
dfcee124
AG
3604 struct type *type, *real_type, *target_type;
3605
3606 type = value_type (v);
3607 type = check_typedef (type);
3608 if (TYPE_CODE (type) == TYPE_CODE_REF)
3609 target = coerce_ref (v);
3610 else if (TYPE_CODE (type) == TYPE_CODE_PTR)
f7e5394d 3611 {
f7e5394d 3612
492d29ea 3613 TRY
f7e5394d
SM
3614 {
3615 target = value_ind (v);
3616 }
492d29ea 3617 CATCH (except, RETURN_MASK_ERROR)
f7e5394d
SM
3618 {
3619 if (except.error == MEMORY_ERROR)
3620 {
3621 /* value_ind threw a memory error. The pointer is NULL or
3622 contains an uninitialized value: we can't determine any
3623 type. */
3624 return NULL;
3625 }
3626 throw_exception (except);
3627 }
492d29ea 3628 END_CATCH
f7e5394d 3629 }
dfcee124
AG
3630 else
3631 return NULL;
c906108c 3632
dfcee124
AG
3633 real_type = value_rtti_type (target, full, top, using_enc);
3634
3635 if (real_type)
3636 {
3637 /* Copy qualifiers to the referenced object. */
3638 target_type = value_type (target);
3639 real_type = make_cv_type (TYPE_CONST (target_type),
3640 TYPE_VOLATILE (target_type), real_type, NULL);
3641 if (TYPE_CODE (type) == TYPE_CODE_REF)
3642 real_type = lookup_reference_type (real_type);
3643 else if (TYPE_CODE (type) == TYPE_CODE_PTR)
3644 real_type = lookup_pointer_type (real_type);
3645 else
3646 internal_error (__FILE__, __LINE__, _("Unexpected value type."));
3647
3648 /* Copy qualifiers to the pointer/reference. */
3649 real_type = make_cv_type (TYPE_CONST (type), TYPE_VOLATILE (type),
3650 real_type, NULL);
3651 }
c906108c 3652
dfcee124 3653 return real_type;
c906108c
SS
3654}
3655
3656/* Given a value pointed to by ARGP, check its real run-time type, and
3657 if that is different from the enclosing type, create a new value
3658 using the real run-time type as the enclosing type (and of the same
3659 type as ARGP) and return it, with the embedded offset adjusted to
ac3eeb49
MS
3660 be the correct offset to the enclosed object. RTYPE is the type,
3661 and XFULL, XTOP, and XUSING_ENC are the other parameters, computed
3662 by value_rtti_type(). If these are available, they can be supplied
3663 and a second call to value_rtti_type() is avoided. (Pass RTYPE ==
3664 NULL if they're not available. */
c906108c 3665
f23631e4 3666struct value *
ac3eeb49
MS
3667value_full_object (struct value *argp,
3668 struct type *rtype,
3669 int xfull, int xtop,
fba45db2 3670 int xusing_enc)
c906108c 3671{
c5aa993b 3672 struct type *real_type;
c906108c 3673 int full = 0;
6b850546 3674 LONGEST top = -1;
c906108c 3675 int using_enc = 0;
f23631e4 3676 struct value *new_val;
c906108c
SS
3677
3678 if (rtype)
3679 {
3680 real_type = rtype;
3681 full = xfull;
3682 top = xtop;
3683 using_enc = xusing_enc;
3684 }
3685 else
3686 real_type = value_rtti_type (argp, &full, &top, &using_enc);
3687
ac3eeb49 3688 /* If no RTTI data, or if object is already complete, do nothing. */
4754a64e 3689 if (!real_type || real_type == value_enclosing_type (argp))
c906108c
SS
3690 return argp;
3691
a7860e76
TT
3692 /* In a destructor we might see a real type that is a superclass of
3693 the object's type. In this case it is better to leave the object
3694 as-is. */
3695 if (full
3696 && TYPE_LENGTH (real_type) < TYPE_LENGTH (value_enclosing_type (argp)))
3697 return argp;
3698
c906108c 3699 /* If we have the full object, but for some reason the enclosing
ac3eeb49
MS
3700 type is wrong, set it. */
3701 /* pai: FIXME -- sounds iffy */
c906108c
SS
3702 if (full)
3703 {
4dfea560
DE
3704 argp = value_copy (argp);
3705 set_value_enclosing_type (argp, real_type);
c906108c
SS
3706 return argp;
3707 }
3708
581e13c1 3709 /* Check if object is in memory. */
c906108c
SS
3710 if (VALUE_LVAL (argp) != lval_memory)
3711 {
3e43a32a
MS
3712 warning (_("Couldn't retrieve complete object of RTTI "
3713 "type %s; object may be in register(s)."),
ac3eeb49 3714 TYPE_NAME (real_type));
c5aa993b 3715
c906108c
SS
3716 return argp;
3717 }
c5aa993b 3718
ac3eeb49
MS
3719 /* All other cases -- retrieve the complete object. */
3720 /* Go back by the computed top_offset from the beginning of the
3721 object, adjusting for the embedded offset of argp if that's what
3722 value_rtti_type used for its computation. */
42ae5230 3723 new_val = value_at_lazy (real_type, value_address (argp) - top +
13c3b5f5 3724 (using_enc ? 0 : value_embedded_offset (argp)));
04624583 3725 deprecated_set_value_type (new_val, value_type (argp));
13c3b5f5
AC
3726 set_value_embedded_offset (new_val, (using_enc
3727 ? top + value_embedded_offset (argp)
3728 : top));
c906108c
SS
3729 return new_val;
3730}
3731
389e51db 3732
85bc8cb7
JK
3733/* Return the value of the local variable, if one exists. Throw error
3734 otherwise, such as if the request is made in an inappropriate context. */
c906108c 3735
f23631e4 3736struct value *
85bc8cb7 3737value_of_this (const struct language_defn *lang)
c906108c 3738{
63e43d3a 3739 struct block_symbol sym;
3977b71f 3740 const struct block *b;
206415a3 3741 struct frame_info *frame;
c906108c 3742
66a17cb6 3743 if (!lang->la_name_of_this)
85bc8cb7 3744 error (_("no `this' in current language"));
aee28ec6 3745
85bc8cb7 3746 frame = get_selected_frame (_("no frame selected"));
c906108c 3747
66a17cb6 3748 b = get_frame_block (frame, NULL);
c906108c 3749
63e43d3a
PMR
3750 sym = lookup_language_this (lang, b);
3751 if (sym.symbol == NULL)
85bc8cb7
JK
3752 error (_("current stack frame does not contain a variable named `%s'"),
3753 lang->la_name_of_this);
3754
63e43d3a 3755 return read_var_value (sym.symbol, sym.block, frame);
85bc8cb7
JK
3756}
3757
3758/* Return the value of the local variable, if one exists. Return NULL
3759 otherwise. Never throw error. */
3760
3761struct value *
3762value_of_this_silent (const struct language_defn *lang)
3763{
3764 struct value *ret = NULL;
85bc8cb7 3765
492d29ea 3766 TRY
c906108c 3767 {
85bc8cb7 3768 ret = value_of_this (lang);
c906108c 3769 }
492d29ea
PA
3770 CATCH (except, RETURN_MASK_ERROR)
3771 {
3772 }
3773 END_CATCH
c906108c 3774
d069f99d
AF
3775 return ret;
3776}
3777
ac3eeb49
MS
3778/* Create a slice (sub-string, sub-array) of ARRAY, that is LENGTH
3779 elements long, starting at LOWBOUND. The result has the same lower
3780 bound as the original ARRAY. */
c906108c 3781
f23631e4
AC
3782struct value *
3783value_slice (struct value *array, int lowbound, int length)
c906108c
SS
3784{
3785 struct type *slice_range_type, *slice_type, *range_type;
7a67d0fe 3786 LONGEST lowerbound, upperbound;
f23631e4 3787 struct value *slice;
c906108c 3788 struct type *array_type;
ac3eeb49 3789
df407dfe 3790 array_type = check_typedef (value_type (array));
c906108c 3791 if (TYPE_CODE (array_type) != TYPE_CODE_ARRAY
6b1755ce 3792 && TYPE_CODE (array_type) != TYPE_CODE_STRING)
8a3fe4f8 3793 error (_("cannot take slice of non-array"));
ac3eeb49 3794
c906108c
SS
3795 range_type = TYPE_INDEX_TYPE (array_type);
3796 if (get_discrete_bounds (range_type, &lowerbound, &upperbound) < 0)
8a3fe4f8 3797 error (_("slice from bad array or bitstring"));
ac3eeb49 3798
c906108c 3799 if (lowbound < lowerbound || length < 0
db034ac5 3800 || lowbound + length - 1 > upperbound)
8a3fe4f8 3801 error (_("slice out of range"));
ac3eeb49 3802
c906108c
SS
3803 /* FIXME-type-allocation: need a way to free this type when we are
3804 done with it. */
0c9c3474
SA
3805 slice_range_type = create_static_range_type ((struct type *) NULL,
3806 TYPE_TARGET_TYPE (range_type),
3807 lowbound,
3808 lowbound + length - 1);
ac3eeb49 3809
a7c88acd
JB
3810 {
3811 struct type *element_type = TYPE_TARGET_TYPE (array_type);
3812 LONGEST offset
3813 = (lowbound - lowerbound) * TYPE_LENGTH (check_typedef (element_type));
ac3eeb49 3814
a7c88acd
JB
3815 slice_type = create_array_type ((struct type *) NULL,
3816 element_type,
3817 slice_range_type);
3818 TYPE_CODE (slice_type) = TYPE_CODE (array_type);
ac3eeb49 3819
a7c88acd
JB
3820 if (VALUE_LVAL (array) == lval_memory && value_lazy (array))
3821 slice = allocate_value_lazy (slice_type);
3822 else
3823 {
3824 slice = allocate_value (slice_type);
3825 value_contents_copy (slice, 0, array, offset,
3ae385af 3826 type_length_units (slice_type));
a7c88acd
JB
3827 }
3828
3829 set_value_component_location (slice, array);
a7c88acd
JB
3830 set_value_offset (slice, value_offset (array) + offset);
3831 }
ac3eeb49 3832
c906108c
SS
3833 return slice;
3834}
3835
ac3eeb49
MS
3836/* Create a value for a FORTRAN complex number. Currently most of the
3837 time values are coerced to COMPLEX*16 (i.e. a complex number
070ad9f0
DB
3838 composed of 2 doubles. This really should be a smarter routine
3839 that figures out precision inteligently as opposed to assuming
ac3eeb49 3840 doubles. FIXME: fmb */
c906108c 3841
f23631e4 3842struct value *
ac3eeb49
MS
3843value_literal_complex (struct value *arg1,
3844 struct value *arg2,
3845 struct type *type)
c906108c 3846{
f23631e4 3847 struct value *val;
c906108c
SS
3848 struct type *real_type = TYPE_TARGET_TYPE (type);
3849
3850 val = allocate_value (type);
3851 arg1 = value_cast (real_type, arg1);
3852 arg2 = value_cast (real_type, arg2);
3853
990a07ab 3854 memcpy (value_contents_raw (val),
0fd88904 3855 value_contents (arg1), TYPE_LENGTH (real_type));
990a07ab 3856 memcpy (value_contents_raw (val) + TYPE_LENGTH (real_type),
0fd88904 3857 value_contents (arg2), TYPE_LENGTH (real_type));
c906108c
SS
3858 return val;
3859}
3860
ac3eeb49 3861/* Cast a value into the appropriate complex data type. */
c906108c 3862
f23631e4
AC
3863static struct value *
3864cast_into_complex (struct type *type, struct value *val)
c906108c
SS
3865{
3866 struct type *real_type = TYPE_TARGET_TYPE (type);
ac3eeb49 3867
df407dfe 3868 if (TYPE_CODE (value_type (val)) == TYPE_CODE_COMPLEX)
c906108c 3869 {
df407dfe 3870 struct type *val_real_type = TYPE_TARGET_TYPE (value_type (val));
f23631e4
AC
3871 struct value *re_val = allocate_value (val_real_type);
3872 struct value *im_val = allocate_value (val_real_type);
c906108c 3873
990a07ab 3874 memcpy (value_contents_raw (re_val),
0fd88904 3875 value_contents (val), TYPE_LENGTH (val_real_type));
990a07ab 3876 memcpy (value_contents_raw (im_val),
0fd88904 3877 value_contents (val) + TYPE_LENGTH (val_real_type),
c5aa993b 3878 TYPE_LENGTH (val_real_type));
c906108c
SS
3879
3880 return value_literal_complex (re_val, im_val, type);
3881 }
df407dfe
AC
3882 else if (TYPE_CODE (value_type (val)) == TYPE_CODE_FLT
3883 || TYPE_CODE (value_type (val)) == TYPE_CODE_INT)
ac3eeb49
MS
3884 return value_literal_complex (val,
3885 value_zero (real_type, not_lval),
3886 type);
c906108c 3887 else
8a3fe4f8 3888 error (_("cannot cast non-number to complex"));
c906108c
SS
3889}
3890
3891void
fba45db2 3892_initialize_valops (void)
c906108c 3893{
5bf193a2
AC
3894 add_setshow_boolean_cmd ("overload-resolution", class_support,
3895 &overload_resolution, _("\
3896Set overload resolution in evaluating C++ functions."), _("\
ac3eeb49
MS
3897Show overload resolution in evaluating C++ functions."),
3898 NULL, NULL,
920d2a44 3899 show_overload_resolution,
5bf193a2 3900 &setlist, &showlist);
c906108c 3901 overload_resolution = 1;
c906108c 3902}
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