* stack.c (print_frame_args): Fix typos in comments.
[deliverable/binutils-gdb.git] / gdb / eval.c
1 /* Evaluate expressions for GDB.
2
3 Copyright (C) 1986, 1987, 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995,
4 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2005, 2006, 2007, 2008
5 Free Software Foundation, Inc.
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 3 of the License, or
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
21
22 #include "defs.h"
23 #include "gdb_string.h"
24 #include "symtab.h"
25 #include "gdbtypes.h"
26 #include "value.h"
27 #include "expression.h"
28 #include "target.h"
29 #include "frame.h"
30 #include "language.h" /* For CAST_IS_CONVERSION */
31 #include "f-lang.h" /* for array bound stuff */
32 #include "cp-abi.h"
33 #include "infcall.h"
34 #include "objc-lang.h"
35 #include "block.h"
36 #include "parser-defs.h"
37 #include "cp-support.h"
38 #include "ui-out.h"
39 #include "exceptions.h"
40 #include "regcache.h"
41 #include "user-regs.h"
42
43 #include "gdb_assert.h"
44
45 /* This is defined in valops.c */
46 extern int overload_resolution;
47
48 /* JYG: lookup rtti type of STRUCTOP_PTR when this is set to continue
49 on with successful lookup for member/method of the rtti type. */
50 extern int objectprint;
51
52 /* Prototypes for local functions. */
53
54 static struct value *evaluate_subexp_for_sizeof (struct expression *, int *);
55
56 static struct value *evaluate_subexp_for_address (struct expression *,
57 int *, enum noside);
58
59 static struct value *evaluate_subexp (struct type *, struct expression *,
60 int *, enum noside);
61
62 static char *get_label (struct expression *, int *);
63
64 static struct value *evaluate_struct_tuple (struct value *,
65 struct expression *, int *,
66 enum noside, int);
67
68 static LONGEST init_array_element (struct value *, struct value *,
69 struct expression *, int *, enum noside,
70 LONGEST, LONGEST);
71
72 static struct value *
73 evaluate_subexp (struct type *expect_type, struct expression *exp,
74 int *pos, enum noside noside)
75 {
76 return (*exp->language_defn->la_exp_desc->evaluate_exp)
77 (expect_type, exp, pos, noside);
78 }
79 \f
80 /* Parse the string EXP as a C expression, evaluate it,
81 and return the result as a number. */
82
83 CORE_ADDR
84 parse_and_eval_address (char *exp)
85 {
86 struct expression *expr = parse_expression (exp);
87 CORE_ADDR addr;
88 struct cleanup *old_chain =
89 make_cleanup (free_current_contents, &expr);
90
91 addr = value_as_address (evaluate_expression (expr));
92 do_cleanups (old_chain);
93 return addr;
94 }
95
96 /* Like parse_and_eval_address but takes a pointer to a char * variable
97 and advanced that variable across the characters parsed. */
98
99 CORE_ADDR
100 parse_and_eval_address_1 (char **expptr)
101 {
102 struct expression *expr = parse_exp_1 (expptr, (struct block *) 0, 0);
103 CORE_ADDR addr;
104 struct cleanup *old_chain =
105 make_cleanup (free_current_contents, &expr);
106
107 addr = value_as_address (evaluate_expression (expr));
108 do_cleanups (old_chain);
109 return addr;
110 }
111
112 /* Like parse_and_eval_address, but treats the value of the expression
113 as an integer, not an address, returns a LONGEST, not a CORE_ADDR */
114 LONGEST
115 parse_and_eval_long (char *exp)
116 {
117 struct expression *expr = parse_expression (exp);
118 LONGEST retval;
119 struct cleanup *old_chain =
120 make_cleanup (free_current_contents, &expr);
121
122 retval = value_as_long (evaluate_expression (expr));
123 do_cleanups (old_chain);
124 return (retval);
125 }
126
127 struct value *
128 parse_and_eval (char *exp)
129 {
130 struct expression *expr = parse_expression (exp);
131 struct value *val;
132 struct cleanup *old_chain =
133 make_cleanup (free_current_contents, &expr);
134
135 val = evaluate_expression (expr);
136 do_cleanups (old_chain);
137 return val;
138 }
139
140 /* Parse up to a comma (or to a closeparen)
141 in the string EXPP as an expression, evaluate it, and return the value.
142 EXPP is advanced to point to the comma. */
143
144 struct value *
145 parse_to_comma_and_eval (char **expp)
146 {
147 struct expression *expr = parse_exp_1 (expp, (struct block *) 0, 1);
148 struct value *val;
149 struct cleanup *old_chain =
150 make_cleanup (free_current_contents, &expr);
151
152 val = evaluate_expression (expr);
153 do_cleanups (old_chain);
154 return val;
155 }
156 \f
157 /* Evaluate an expression in internal prefix form
158 such as is constructed by parse.y.
159
160 See expression.h for info on the format of an expression. */
161
162 struct value *
163 evaluate_expression (struct expression *exp)
164 {
165 int pc = 0;
166 return evaluate_subexp (NULL_TYPE, exp, &pc, EVAL_NORMAL);
167 }
168
169 /* Evaluate an expression, avoiding all memory references
170 and getting a value whose type alone is correct. */
171
172 struct value *
173 evaluate_type (struct expression *exp)
174 {
175 int pc = 0;
176 return evaluate_subexp (NULL_TYPE, exp, &pc, EVAL_AVOID_SIDE_EFFECTS);
177 }
178
179 /* Evaluate a subexpression, avoiding all memory references and
180 getting a value whose type alone is correct. */
181
182 struct value *
183 evaluate_subexpression_type (struct expression *exp, int subexp)
184 {
185 return evaluate_subexp (NULL_TYPE, exp, &subexp, EVAL_AVOID_SIDE_EFFECTS);
186 }
187
188 /* Extract a field operation from an expression. If the subexpression
189 of EXP starting at *SUBEXP is not a structure dereference
190 operation, return NULL. Otherwise, return the name of the
191 dereferenced field, and advance *SUBEXP to point to the
192 subexpression of the left-hand-side of the dereference. This is
193 used when completing field names. */
194
195 char *
196 extract_field_op (struct expression *exp, int *subexp)
197 {
198 int tem;
199 char *result;
200 if (exp->elts[*subexp].opcode != STRUCTOP_STRUCT
201 && exp->elts[*subexp].opcode != STRUCTOP_PTR)
202 return NULL;
203 tem = longest_to_int (exp->elts[*subexp + 1].longconst);
204 result = &exp->elts[*subexp + 2].string;
205 (*subexp) += 1 + 3 + BYTES_TO_EXP_ELEM (tem + 1);
206 return result;
207 }
208
209 /* If the next expression is an OP_LABELED, skips past it,
210 returning the label. Otherwise, does nothing and returns NULL. */
211
212 static char *
213 get_label (struct expression *exp, int *pos)
214 {
215 if (exp->elts[*pos].opcode == OP_LABELED)
216 {
217 int pc = (*pos)++;
218 char *name = &exp->elts[pc + 2].string;
219 int tem = longest_to_int (exp->elts[pc + 1].longconst);
220 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
221 return name;
222 }
223 else
224 return NULL;
225 }
226
227 /* This function evaluates tuples (in (the deleted) Chill) or
228 brace-initializers (in C/C++) for structure types. */
229
230 static struct value *
231 evaluate_struct_tuple (struct value *struct_val,
232 struct expression *exp,
233 int *pos, enum noside noside, int nargs)
234 {
235 struct type *struct_type = check_typedef (value_type (struct_val));
236 struct type *substruct_type = struct_type;
237 struct type *field_type;
238 int fieldno = -1;
239 int variantno = -1;
240 int subfieldno = -1;
241 while (--nargs >= 0)
242 {
243 int pc = *pos;
244 struct value *val = NULL;
245 int nlabels = 0;
246 int bitpos, bitsize;
247 bfd_byte *addr;
248
249 /* Skip past the labels, and count them. */
250 while (get_label (exp, pos) != NULL)
251 nlabels++;
252
253 do
254 {
255 char *label = get_label (exp, &pc);
256 if (label)
257 {
258 for (fieldno = 0; fieldno < TYPE_NFIELDS (struct_type);
259 fieldno++)
260 {
261 char *field_name = TYPE_FIELD_NAME (struct_type, fieldno);
262 if (field_name != NULL && strcmp (field_name, label) == 0)
263 {
264 variantno = -1;
265 subfieldno = fieldno;
266 substruct_type = struct_type;
267 goto found;
268 }
269 }
270 for (fieldno = 0; fieldno < TYPE_NFIELDS (struct_type);
271 fieldno++)
272 {
273 char *field_name = TYPE_FIELD_NAME (struct_type, fieldno);
274 field_type = TYPE_FIELD_TYPE (struct_type, fieldno);
275 if ((field_name == 0 || *field_name == '\0')
276 && TYPE_CODE (field_type) == TYPE_CODE_UNION)
277 {
278 variantno = 0;
279 for (; variantno < TYPE_NFIELDS (field_type);
280 variantno++)
281 {
282 substruct_type
283 = TYPE_FIELD_TYPE (field_type, variantno);
284 if (TYPE_CODE (substruct_type) == TYPE_CODE_STRUCT)
285 {
286 for (subfieldno = 0;
287 subfieldno < TYPE_NFIELDS (substruct_type);
288 subfieldno++)
289 {
290 if (strcmp(TYPE_FIELD_NAME (substruct_type,
291 subfieldno),
292 label) == 0)
293 {
294 goto found;
295 }
296 }
297 }
298 }
299 }
300 }
301 error (_("there is no field named %s"), label);
302 found:
303 ;
304 }
305 else
306 {
307 /* Unlabelled tuple element - go to next field. */
308 if (variantno >= 0)
309 {
310 subfieldno++;
311 if (subfieldno >= TYPE_NFIELDS (substruct_type))
312 {
313 variantno = -1;
314 substruct_type = struct_type;
315 }
316 }
317 if (variantno < 0)
318 {
319 fieldno++;
320 /* Skip static fields. */
321 while (fieldno < TYPE_NFIELDS (struct_type)
322 && TYPE_FIELD_STATIC_KIND (struct_type, fieldno))
323 fieldno++;
324 subfieldno = fieldno;
325 if (fieldno >= TYPE_NFIELDS (struct_type))
326 error (_("too many initializers"));
327 field_type = TYPE_FIELD_TYPE (struct_type, fieldno);
328 if (TYPE_CODE (field_type) == TYPE_CODE_UNION
329 && TYPE_FIELD_NAME (struct_type, fieldno)[0] == '0')
330 error (_("don't know which variant you want to set"));
331 }
332 }
333
334 /* Here, struct_type is the type of the inner struct,
335 while substruct_type is the type of the inner struct.
336 These are the same for normal structures, but a variant struct
337 contains anonymous union fields that contain substruct fields.
338 The value fieldno is the index of the top-level (normal or
339 anonymous union) field in struct_field, while the value
340 subfieldno is the index of the actual real (named inner) field
341 in substruct_type. */
342
343 field_type = TYPE_FIELD_TYPE (substruct_type, subfieldno);
344 if (val == 0)
345 val = evaluate_subexp (field_type, exp, pos, noside);
346
347 /* Now actually set the field in struct_val. */
348
349 /* Assign val to field fieldno. */
350 if (value_type (val) != field_type)
351 val = value_cast (field_type, val);
352
353 bitsize = TYPE_FIELD_BITSIZE (substruct_type, subfieldno);
354 bitpos = TYPE_FIELD_BITPOS (struct_type, fieldno);
355 if (variantno >= 0)
356 bitpos += TYPE_FIELD_BITPOS (substruct_type, subfieldno);
357 addr = value_contents_writeable (struct_val) + bitpos / 8;
358 if (bitsize)
359 modify_field (addr, value_as_long (val),
360 bitpos % 8, bitsize);
361 else
362 memcpy (addr, value_contents (val),
363 TYPE_LENGTH (value_type (val)));
364 }
365 while (--nlabels > 0);
366 }
367 return struct_val;
368 }
369
370 /* Recursive helper function for setting elements of array tuples for
371 (the deleted) Chill. The target is ARRAY (which has bounds
372 LOW_BOUND to HIGH_BOUND); the element value is ELEMENT; EXP, POS
373 and NOSIDE are as usual. Evaluates index expresions and sets the
374 specified element(s) of ARRAY to ELEMENT. Returns last index
375 value. */
376
377 static LONGEST
378 init_array_element (struct value *array, struct value *element,
379 struct expression *exp, int *pos,
380 enum noside noside, LONGEST low_bound, LONGEST high_bound)
381 {
382 LONGEST index;
383 int element_size = TYPE_LENGTH (value_type (element));
384 if (exp->elts[*pos].opcode == BINOP_COMMA)
385 {
386 (*pos)++;
387 init_array_element (array, element, exp, pos, noside,
388 low_bound, high_bound);
389 return init_array_element (array, element,
390 exp, pos, noside, low_bound, high_bound);
391 }
392 else if (exp->elts[*pos].opcode == BINOP_RANGE)
393 {
394 LONGEST low, high;
395 (*pos)++;
396 low = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
397 high = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
398 if (low < low_bound || high > high_bound)
399 error (_("tuple range index out of range"));
400 for (index = low; index <= high; index++)
401 {
402 memcpy (value_contents_raw (array)
403 + (index - low_bound) * element_size,
404 value_contents (element), element_size);
405 }
406 }
407 else
408 {
409 index = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
410 if (index < low_bound || index > high_bound)
411 error (_("tuple index out of range"));
412 memcpy (value_contents_raw (array) + (index - low_bound) * element_size,
413 value_contents (element), element_size);
414 }
415 return index;
416 }
417
418 struct value *
419 value_f90_subarray (struct value *array,
420 struct expression *exp, int *pos, enum noside noside)
421 {
422 int pc = (*pos) + 1;
423 LONGEST low_bound, high_bound;
424 struct type *range = check_typedef (TYPE_INDEX_TYPE (value_type (array)));
425 enum f90_range_type range_type = longest_to_int (exp->elts[pc].longconst);
426
427 *pos += 3;
428
429 if (range_type == LOW_BOUND_DEFAULT || range_type == BOTH_BOUND_DEFAULT)
430 low_bound = TYPE_LOW_BOUND (range);
431 else
432 low_bound = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
433
434 if (range_type == HIGH_BOUND_DEFAULT || range_type == BOTH_BOUND_DEFAULT)
435 high_bound = TYPE_HIGH_BOUND (range);
436 else
437 high_bound = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
438
439 return value_slice (array, low_bound, high_bound - low_bound + 1);
440 }
441
442
443 /* Promote value ARG1 as appropriate before performing a unary operation
444 on this argument.
445 If the result is not appropriate for any particular language then it
446 needs to patch this function. */
447
448 void
449 unop_promote (const struct language_defn *language, struct gdbarch *gdbarch,
450 struct value **arg1)
451 {
452 struct type *type1;
453
454 *arg1 = coerce_ref (*arg1);
455 type1 = check_typedef (value_type (*arg1));
456
457 if (is_integral_type (type1))
458 {
459 switch (language->la_language)
460 {
461 default:
462 /* Perform integral promotion for ANSI C/C++.
463 If not appropropriate for any particular language
464 it needs to modify this function. */
465 {
466 struct type *builtin_int = builtin_type (gdbarch)->builtin_int;
467 if (TYPE_LENGTH (type1) < TYPE_LENGTH (builtin_int))
468 *arg1 = value_cast (builtin_int, *arg1);
469 }
470 break;
471 }
472 }
473 }
474
475 /* Promote values ARG1 and ARG2 as appropriate before performing a binary
476 operation on those two operands.
477 If the result is not appropriate for any particular language then it
478 needs to patch this function. */
479
480 void
481 binop_promote (const struct language_defn *language, struct gdbarch *gdbarch,
482 struct value **arg1, struct value **arg2)
483 {
484 struct type *promoted_type = NULL;
485 struct type *type1;
486 struct type *type2;
487
488 *arg1 = coerce_ref (*arg1);
489 *arg2 = coerce_ref (*arg2);
490
491 type1 = check_typedef (value_type (*arg1));
492 type2 = check_typedef (value_type (*arg2));
493
494 if ((TYPE_CODE (type1) != TYPE_CODE_FLT
495 && TYPE_CODE (type1) != TYPE_CODE_DECFLOAT
496 && !is_integral_type (type1))
497 || (TYPE_CODE (type2) != TYPE_CODE_FLT
498 && TYPE_CODE (type2) != TYPE_CODE_DECFLOAT
499 && !is_integral_type (type2)))
500 return;
501
502 if (TYPE_CODE (type1) == TYPE_CODE_DECFLOAT
503 || TYPE_CODE (type2) == TYPE_CODE_DECFLOAT)
504 {
505 /* No promotion required. */
506 }
507 else if (TYPE_CODE (type1) == TYPE_CODE_FLT
508 || TYPE_CODE (type2) == TYPE_CODE_FLT)
509 {
510 switch (language->la_language)
511 {
512 case language_c:
513 case language_cplus:
514 case language_asm:
515 case language_objc:
516 /* No promotion required. */
517 break;
518
519 default:
520 /* For other languages the result type is unchanged from gdb
521 version 6.7 for backward compatibility.
522 If either arg was long double, make sure that value is also long
523 double. Otherwise use double. */
524 if (TYPE_LENGTH (type1) * 8 > gdbarch_double_bit (gdbarch)
525 || TYPE_LENGTH (type2) * 8 > gdbarch_double_bit (gdbarch))
526 promoted_type = builtin_type (gdbarch)->builtin_long_double;
527 else
528 promoted_type = builtin_type (gdbarch)->builtin_double;
529 break;
530 }
531 }
532 else if (TYPE_CODE (type1) == TYPE_CODE_BOOL
533 && TYPE_CODE (type2) == TYPE_CODE_BOOL)
534 {
535 /* No promotion required. */
536 }
537 else
538 /* Integral operations here. */
539 /* FIXME: Also mixed integral/booleans, with result an integer. */
540 {
541 const struct builtin_type *builtin = builtin_type (gdbarch);
542 unsigned int promoted_len1 = TYPE_LENGTH (type1);
543 unsigned int promoted_len2 = TYPE_LENGTH (type2);
544 int is_unsigned1 = TYPE_UNSIGNED (type1);
545 int is_unsigned2 = TYPE_UNSIGNED (type2);
546 unsigned int result_len;
547 int unsigned_operation;
548
549 /* Determine type length and signedness after promotion for
550 both operands. */
551 if (promoted_len1 < TYPE_LENGTH (builtin->builtin_int))
552 {
553 is_unsigned1 = 0;
554 promoted_len1 = TYPE_LENGTH (builtin->builtin_int);
555 }
556 if (promoted_len2 < TYPE_LENGTH (builtin->builtin_int))
557 {
558 is_unsigned2 = 0;
559 promoted_len2 = TYPE_LENGTH (builtin->builtin_int);
560 }
561
562 if (promoted_len1 > promoted_len2)
563 {
564 unsigned_operation = is_unsigned1;
565 result_len = promoted_len1;
566 }
567 else if (promoted_len2 > promoted_len1)
568 {
569 unsigned_operation = is_unsigned2;
570 result_len = promoted_len2;
571 }
572 else
573 {
574 unsigned_operation = is_unsigned1 || is_unsigned2;
575 result_len = promoted_len1;
576 }
577
578 switch (language->la_language)
579 {
580 case language_c:
581 case language_cplus:
582 case language_asm:
583 case language_objc:
584 if (result_len <= TYPE_LENGTH (builtin->builtin_int))
585 {
586 promoted_type = (unsigned_operation
587 ? builtin->builtin_unsigned_int
588 : builtin->builtin_int);
589 }
590 else if (result_len <= TYPE_LENGTH (builtin->builtin_long))
591 {
592 promoted_type = (unsigned_operation
593 ? builtin->builtin_unsigned_long
594 : builtin->builtin_long);
595 }
596 else
597 {
598 promoted_type = (unsigned_operation
599 ? builtin->builtin_unsigned_long_long
600 : builtin->builtin_long_long);
601 }
602 break;
603
604 default:
605 /* For other languages the result type is unchanged from gdb
606 version 6.7 for backward compatibility.
607 If either arg was long long, make sure that value is also long
608 long. Otherwise use long. */
609 if (unsigned_operation)
610 {
611 if (result_len > gdbarch_long_bit (gdbarch) / HOST_CHAR_BIT)
612 promoted_type = builtin->builtin_unsigned_long_long;
613 else
614 promoted_type = builtin->builtin_unsigned_long;
615 }
616 else
617 {
618 if (result_len > gdbarch_long_bit (gdbarch) / HOST_CHAR_BIT)
619 promoted_type = builtin->builtin_long_long;
620 else
621 promoted_type = builtin->builtin_long;
622 }
623 break;
624 }
625 }
626
627 if (promoted_type)
628 {
629 /* Promote both operands to common type. */
630 *arg1 = value_cast (promoted_type, *arg1);
631 *arg2 = value_cast (promoted_type, *arg2);
632 }
633 }
634
635 static int
636 ptrmath_type_p (struct type *type)
637 {
638 type = check_typedef (type);
639 if (TYPE_CODE (type) == TYPE_CODE_REF)
640 type = TYPE_TARGET_TYPE (type);
641
642 switch (TYPE_CODE (type))
643 {
644 case TYPE_CODE_PTR:
645 case TYPE_CODE_FUNC:
646 return 1;
647
648 case TYPE_CODE_ARRAY:
649 return current_language->c_style_arrays;
650
651 default:
652 return 0;
653 }
654 }
655
656 struct value *
657 evaluate_subexp_standard (struct type *expect_type,
658 struct expression *exp, int *pos,
659 enum noside noside)
660 {
661 enum exp_opcode op;
662 int tem, tem2, tem3;
663 int pc, pc2 = 0, oldpos;
664 struct value *arg1 = NULL;
665 struct value *arg2 = NULL;
666 struct value *arg3;
667 struct type *type;
668 int nargs;
669 struct value **argvec;
670 int upper, lower, retcode;
671 int code;
672 int ix;
673 long mem_offset;
674 struct type **arg_types;
675 int save_pos1;
676
677 pc = (*pos)++;
678 op = exp->elts[pc].opcode;
679
680 switch (op)
681 {
682 case OP_SCOPE:
683 tem = longest_to_int (exp->elts[pc + 2].longconst);
684 (*pos) += 4 + BYTES_TO_EXP_ELEM (tem + 1);
685 if (noside == EVAL_SKIP)
686 goto nosideret;
687 arg1 = value_aggregate_elt (exp->elts[pc + 1].type,
688 &exp->elts[pc + 3].string,
689 0, noside);
690 if (arg1 == NULL)
691 error (_("There is no field named %s"), &exp->elts[pc + 3].string);
692 return arg1;
693
694 case OP_LONG:
695 (*pos) += 3;
696 return value_from_longest (exp->elts[pc + 1].type,
697 exp->elts[pc + 2].longconst);
698
699 case OP_DOUBLE:
700 (*pos) += 3;
701 return value_from_double (exp->elts[pc + 1].type,
702 exp->elts[pc + 2].doubleconst);
703
704 case OP_DECFLOAT:
705 (*pos) += 3;
706 return value_from_decfloat (exp->elts[pc + 1].type,
707 exp->elts[pc + 2].decfloatconst);
708
709 case OP_VAR_VALUE:
710 (*pos) += 3;
711 if (noside == EVAL_SKIP)
712 goto nosideret;
713
714 /* JYG: We used to just return value_zero of the symbol type
715 if we're asked to avoid side effects. Otherwise we return
716 value_of_variable (...). However I'm not sure if
717 value_of_variable () has any side effect.
718 We need a full value object returned here for whatis_exp ()
719 to call evaluate_type () and then pass the full value to
720 value_rtti_target_type () if we are dealing with a pointer
721 or reference to a base class and print object is on. */
722
723 {
724 volatile struct gdb_exception except;
725 struct value *ret = NULL;
726
727 TRY_CATCH (except, RETURN_MASK_ERROR)
728 {
729 ret = value_of_variable (exp->elts[pc + 2].symbol,
730 exp->elts[pc + 1].block);
731 }
732
733 if (except.reason < 0)
734 {
735 if (noside == EVAL_AVOID_SIDE_EFFECTS)
736 ret = value_zero (SYMBOL_TYPE (exp->elts[pc + 2].symbol), not_lval);
737 else
738 throw_exception (except);
739 }
740
741 return ret;
742 }
743
744 case OP_LAST:
745 (*pos) += 2;
746 return
747 access_value_history (longest_to_int (exp->elts[pc + 1].longconst));
748
749 case OP_REGISTER:
750 {
751 const char *name = &exp->elts[pc + 2].string;
752 int regno;
753 struct value *val;
754
755 (*pos) += 3 + BYTES_TO_EXP_ELEM (exp->elts[pc + 1].longconst + 1);
756 regno = user_reg_map_name_to_regnum (current_gdbarch,
757 name, strlen (name));
758 if (regno == -1)
759 error (_("Register $%s not available."), name);
760
761 /* In EVAL_AVOID_SIDE_EFFECTS mode, we only need to return
762 a value with the appropriate register type. Unfortunately,
763 we don't have easy access to the type of user registers.
764 So for these registers, we fetch the register value regardless
765 of the evaluation mode. */
766 if (noside == EVAL_AVOID_SIDE_EFFECTS
767 && regno < gdbarch_num_regs (current_gdbarch)
768 + gdbarch_num_pseudo_regs (current_gdbarch))
769 val = value_zero (register_type (current_gdbarch, regno), not_lval);
770 else
771 val = value_of_register (regno, get_selected_frame (NULL));
772 if (val == NULL)
773 error (_("Value of register %s not available."), name);
774 else
775 return val;
776 }
777 case OP_BOOL:
778 (*pos) += 2;
779 type = language_bool_type (exp->language_defn, exp->gdbarch);
780 return value_from_longest (type, exp->elts[pc + 1].longconst);
781
782 case OP_INTERNALVAR:
783 (*pos) += 2;
784 return value_of_internalvar (exp->elts[pc + 1].internalvar);
785
786 case OP_STRING:
787 tem = longest_to_int (exp->elts[pc + 1].longconst);
788 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
789 if (noside == EVAL_SKIP)
790 goto nosideret;
791 return value_string (&exp->elts[pc + 2].string, tem);
792
793 case OP_OBJC_NSSTRING: /* Objective C Foundation Class NSString constant. */
794 tem = longest_to_int (exp->elts[pc + 1].longconst);
795 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
796 if (noside == EVAL_SKIP)
797 {
798 goto nosideret;
799 }
800 return (struct value *) value_nsstring (&exp->elts[pc + 2].string, tem + 1);
801
802 case OP_BITSTRING:
803 tem = longest_to_int (exp->elts[pc + 1].longconst);
804 (*pos)
805 += 3 + BYTES_TO_EXP_ELEM ((tem + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT);
806 if (noside == EVAL_SKIP)
807 goto nosideret;
808 return value_bitstring (&exp->elts[pc + 2].string, tem);
809 break;
810
811 case OP_ARRAY:
812 (*pos) += 3;
813 tem2 = longest_to_int (exp->elts[pc + 1].longconst);
814 tem3 = longest_to_int (exp->elts[pc + 2].longconst);
815 nargs = tem3 - tem2 + 1;
816 type = expect_type ? check_typedef (expect_type) : NULL_TYPE;
817
818 if (expect_type != NULL_TYPE && noside != EVAL_SKIP
819 && TYPE_CODE (type) == TYPE_CODE_STRUCT)
820 {
821 struct value *rec = allocate_value (expect_type);
822 memset (value_contents_raw (rec), '\0', TYPE_LENGTH (type));
823 return evaluate_struct_tuple (rec, exp, pos, noside, nargs);
824 }
825
826 if (expect_type != NULL_TYPE && noside != EVAL_SKIP
827 && TYPE_CODE (type) == TYPE_CODE_ARRAY)
828 {
829 struct type *range_type = TYPE_FIELD_TYPE (type, 0);
830 struct type *element_type = TYPE_TARGET_TYPE (type);
831 struct value *array = allocate_value (expect_type);
832 int element_size = TYPE_LENGTH (check_typedef (element_type));
833 LONGEST low_bound, high_bound, index;
834 if (get_discrete_bounds (range_type, &low_bound, &high_bound) < 0)
835 {
836 low_bound = 0;
837 high_bound = (TYPE_LENGTH (type) / element_size) - 1;
838 }
839 index = low_bound;
840 memset (value_contents_raw (array), 0, TYPE_LENGTH (expect_type));
841 for (tem = nargs; --nargs >= 0;)
842 {
843 struct value *element;
844 int index_pc = 0;
845 if (exp->elts[*pos].opcode == BINOP_RANGE)
846 {
847 index_pc = ++(*pos);
848 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
849 }
850 element = evaluate_subexp (element_type, exp, pos, noside);
851 if (value_type (element) != element_type)
852 element = value_cast (element_type, element);
853 if (index_pc)
854 {
855 int continue_pc = *pos;
856 *pos = index_pc;
857 index = init_array_element (array, element, exp, pos, noside,
858 low_bound, high_bound);
859 *pos = continue_pc;
860 }
861 else
862 {
863 if (index > high_bound)
864 /* to avoid memory corruption */
865 error (_("Too many array elements"));
866 memcpy (value_contents_raw (array)
867 + (index - low_bound) * element_size,
868 value_contents (element),
869 element_size);
870 }
871 index++;
872 }
873 return array;
874 }
875
876 if (expect_type != NULL_TYPE && noside != EVAL_SKIP
877 && TYPE_CODE (type) == TYPE_CODE_SET)
878 {
879 struct value *set = allocate_value (expect_type);
880 gdb_byte *valaddr = value_contents_raw (set);
881 struct type *element_type = TYPE_INDEX_TYPE (type);
882 struct type *check_type = element_type;
883 LONGEST low_bound, high_bound;
884
885 /* get targettype of elementtype */
886 while (TYPE_CODE (check_type) == TYPE_CODE_RANGE ||
887 TYPE_CODE (check_type) == TYPE_CODE_TYPEDEF)
888 check_type = TYPE_TARGET_TYPE (check_type);
889
890 if (get_discrete_bounds (element_type, &low_bound, &high_bound) < 0)
891 error (_("(power)set type with unknown size"));
892 memset (valaddr, '\0', TYPE_LENGTH (type));
893 for (tem = 0; tem < nargs; tem++)
894 {
895 LONGEST range_low, range_high;
896 struct type *range_low_type, *range_high_type;
897 struct value *elem_val;
898 if (exp->elts[*pos].opcode == BINOP_RANGE)
899 {
900 (*pos)++;
901 elem_val = evaluate_subexp (element_type, exp, pos, noside);
902 range_low_type = value_type (elem_val);
903 range_low = value_as_long (elem_val);
904 elem_val = evaluate_subexp (element_type, exp, pos, noside);
905 range_high_type = value_type (elem_val);
906 range_high = value_as_long (elem_val);
907 }
908 else
909 {
910 elem_val = evaluate_subexp (element_type, exp, pos, noside);
911 range_low_type = range_high_type = value_type (elem_val);
912 range_low = range_high = value_as_long (elem_val);
913 }
914 /* check types of elements to avoid mixture of elements from
915 different types. Also check if type of element is "compatible"
916 with element type of powerset */
917 if (TYPE_CODE (range_low_type) == TYPE_CODE_RANGE)
918 range_low_type = TYPE_TARGET_TYPE (range_low_type);
919 if (TYPE_CODE (range_high_type) == TYPE_CODE_RANGE)
920 range_high_type = TYPE_TARGET_TYPE (range_high_type);
921 if ((TYPE_CODE (range_low_type) != TYPE_CODE (range_high_type)) ||
922 (TYPE_CODE (range_low_type) == TYPE_CODE_ENUM &&
923 (range_low_type != range_high_type)))
924 /* different element modes */
925 error (_("POWERSET tuple elements of different mode"));
926 if ((TYPE_CODE (check_type) != TYPE_CODE (range_low_type)) ||
927 (TYPE_CODE (check_type) == TYPE_CODE_ENUM &&
928 range_low_type != check_type))
929 error (_("incompatible POWERSET tuple elements"));
930 if (range_low > range_high)
931 {
932 warning (_("empty POWERSET tuple range"));
933 continue;
934 }
935 if (range_low < low_bound || range_high > high_bound)
936 error (_("POWERSET tuple element out of range"));
937 range_low -= low_bound;
938 range_high -= low_bound;
939 for (; range_low <= range_high; range_low++)
940 {
941 int bit_index = (unsigned) range_low % TARGET_CHAR_BIT;
942 if (gdbarch_bits_big_endian (current_gdbarch))
943 bit_index = TARGET_CHAR_BIT - 1 - bit_index;
944 valaddr[(unsigned) range_low / TARGET_CHAR_BIT]
945 |= 1 << bit_index;
946 }
947 }
948 return set;
949 }
950
951 argvec = (struct value **) alloca (sizeof (struct value *) * nargs);
952 for (tem = 0; tem < nargs; tem++)
953 {
954 /* Ensure that array expressions are coerced into pointer objects. */
955 argvec[tem] = evaluate_subexp_with_coercion (exp, pos, noside);
956 }
957 if (noside == EVAL_SKIP)
958 goto nosideret;
959 return value_array (tem2, tem3, argvec);
960
961 case TERNOP_SLICE:
962 {
963 struct value *array = evaluate_subexp (NULL_TYPE, exp, pos, noside);
964 int lowbound
965 = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
966 int upper
967 = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
968 if (noside == EVAL_SKIP)
969 goto nosideret;
970 return value_slice (array, lowbound, upper - lowbound + 1);
971 }
972
973 case TERNOP_SLICE_COUNT:
974 {
975 struct value *array = evaluate_subexp (NULL_TYPE, exp, pos, noside);
976 int lowbound
977 = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
978 int length
979 = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
980 return value_slice (array, lowbound, length);
981 }
982
983 case TERNOP_COND:
984 /* Skip third and second args to evaluate the first one. */
985 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
986 if (value_logical_not (arg1))
987 {
988 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
989 return evaluate_subexp (NULL_TYPE, exp, pos, noside);
990 }
991 else
992 {
993 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
994 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
995 return arg2;
996 }
997
998 case OP_OBJC_SELECTOR:
999 { /* Objective C @selector operator. */
1000 char *sel = &exp->elts[pc + 2].string;
1001 int len = longest_to_int (exp->elts[pc + 1].longconst);
1002 struct type *selector_type;
1003
1004 (*pos) += 3 + BYTES_TO_EXP_ELEM (len + 1);
1005 if (noside == EVAL_SKIP)
1006 goto nosideret;
1007
1008 if (sel[len] != 0)
1009 sel[len] = 0; /* Make sure it's terminated. */
1010
1011 selector_type = builtin_type (exp->gdbarch)->builtin_data_ptr;
1012 return value_from_longest (selector_type, lookup_child_selector (sel));
1013 }
1014
1015 case OP_OBJC_MSGCALL:
1016 { /* Objective C message (method) call. */
1017
1018 static CORE_ADDR responds_selector = 0;
1019 static CORE_ADDR method_selector = 0;
1020
1021 CORE_ADDR selector = 0;
1022
1023 int struct_return = 0;
1024 int sub_no_side = 0;
1025
1026 static struct value *msg_send = NULL;
1027 static struct value *msg_send_stret = NULL;
1028 static int gnu_runtime = 0;
1029
1030 struct value *target = NULL;
1031 struct value *method = NULL;
1032 struct value *called_method = NULL;
1033
1034 struct type *selector_type = NULL;
1035 struct type *long_type;
1036
1037 struct value *ret = NULL;
1038 CORE_ADDR addr = 0;
1039
1040 selector = exp->elts[pc + 1].longconst;
1041 nargs = exp->elts[pc + 2].longconst;
1042 argvec = (struct value **) alloca (sizeof (struct value *)
1043 * (nargs + 5));
1044
1045 (*pos) += 3;
1046
1047 long_type = builtin_type (exp->gdbarch)->builtin_long;
1048 selector_type = builtin_type (exp->gdbarch)->builtin_data_ptr;
1049
1050 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1051 sub_no_side = EVAL_NORMAL;
1052 else
1053 sub_no_side = noside;
1054
1055 target = evaluate_subexp (selector_type, exp, pos, sub_no_side);
1056
1057 if (value_as_long (target) == 0)
1058 return value_from_longest (long_type, 0);
1059
1060 if (lookup_minimal_symbol ("objc_msg_lookup", 0, 0))
1061 gnu_runtime = 1;
1062
1063 /* Find the method dispatch (Apple runtime) or method lookup
1064 (GNU runtime) function for Objective-C. These will be used
1065 to lookup the symbol information for the method. If we
1066 can't find any symbol information, then we'll use these to
1067 call the method, otherwise we can call the method
1068 directly. The msg_send_stret function is used in the special
1069 case of a method that returns a structure (Apple runtime
1070 only). */
1071 if (gnu_runtime)
1072 {
1073 struct type *type = selector_type;
1074 type = lookup_function_type (type);
1075 type = lookup_pointer_type (type);
1076 type = lookup_function_type (type);
1077 type = lookup_pointer_type (type);
1078
1079 msg_send = find_function_in_inferior ("objc_msg_lookup", NULL);
1080 msg_send_stret
1081 = find_function_in_inferior ("objc_msg_lookup", NULL);
1082
1083 msg_send = value_from_pointer (type, value_as_address (msg_send));
1084 msg_send_stret = value_from_pointer (type,
1085 value_as_address (msg_send_stret));
1086 }
1087 else
1088 {
1089 msg_send = find_function_in_inferior ("objc_msgSend", NULL);
1090 /* Special dispatcher for methods returning structs */
1091 msg_send_stret
1092 = find_function_in_inferior ("objc_msgSend_stret", NULL);
1093 }
1094
1095 /* Verify the target object responds to this method. The
1096 standard top-level 'Object' class uses a different name for
1097 the verification method than the non-standard, but more
1098 often used, 'NSObject' class. Make sure we check for both. */
1099
1100 responds_selector = lookup_child_selector ("respondsToSelector:");
1101 if (responds_selector == 0)
1102 responds_selector = lookup_child_selector ("respondsTo:");
1103
1104 if (responds_selector == 0)
1105 error (_("no 'respondsTo:' or 'respondsToSelector:' method"));
1106
1107 method_selector = lookup_child_selector ("methodForSelector:");
1108 if (method_selector == 0)
1109 method_selector = lookup_child_selector ("methodFor:");
1110
1111 if (method_selector == 0)
1112 error (_("no 'methodFor:' or 'methodForSelector:' method"));
1113
1114 /* Call the verification method, to make sure that the target
1115 class implements the desired method. */
1116
1117 argvec[0] = msg_send;
1118 argvec[1] = target;
1119 argvec[2] = value_from_longest (long_type, responds_selector);
1120 argvec[3] = value_from_longest (long_type, selector);
1121 argvec[4] = 0;
1122
1123 ret = call_function_by_hand (argvec[0], 3, argvec + 1);
1124 if (gnu_runtime)
1125 {
1126 /* Function objc_msg_lookup returns a pointer. */
1127 argvec[0] = ret;
1128 ret = call_function_by_hand (argvec[0], 3, argvec + 1);
1129 }
1130 if (value_as_long (ret) == 0)
1131 error (_("Target does not respond to this message selector."));
1132
1133 /* Call "methodForSelector:" method, to get the address of a
1134 function method that implements this selector for this
1135 class. If we can find a symbol at that address, then we
1136 know the return type, parameter types etc. (that's a good
1137 thing). */
1138
1139 argvec[0] = msg_send;
1140 argvec[1] = target;
1141 argvec[2] = value_from_longest (long_type, method_selector);
1142 argvec[3] = value_from_longest (long_type, selector);
1143 argvec[4] = 0;
1144
1145 ret = call_function_by_hand (argvec[0], 3, argvec + 1);
1146 if (gnu_runtime)
1147 {
1148 argvec[0] = ret;
1149 ret = call_function_by_hand (argvec[0], 3, argvec + 1);
1150 }
1151
1152 /* ret should now be the selector. */
1153
1154 addr = value_as_long (ret);
1155 if (addr)
1156 {
1157 struct symbol *sym = NULL;
1158 /* Is it a high_level symbol? */
1159
1160 sym = find_pc_function (addr);
1161 if (sym != NULL)
1162 method = value_of_variable (sym, 0);
1163 }
1164
1165 /* If we found a method with symbol information, check to see
1166 if it returns a struct. Otherwise assume it doesn't. */
1167
1168 if (method)
1169 {
1170 struct block *b;
1171 CORE_ADDR funaddr;
1172 struct type *val_type;
1173
1174 funaddr = find_function_addr (method, &val_type);
1175
1176 b = block_for_pc (funaddr);
1177
1178 CHECK_TYPEDEF (val_type);
1179
1180 if ((val_type == NULL)
1181 || (TYPE_CODE(val_type) == TYPE_CODE_ERROR))
1182 {
1183 if (expect_type != NULL)
1184 val_type = expect_type;
1185 }
1186
1187 struct_return = using_struct_return (value_type (method), val_type);
1188 }
1189 else if (expect_type != NULL)
1190 {
1191 struct_return = using_struct_return (NULL,
1192 check_typedef (expect_type));
1193 }
1194
1195 /* Found a function symbol. Now we will substitute its
1196 value in place of the message dispatcher (obj_msgSend),
1197 so that we call the method directly instead of thru
1198 the dispatcher. The main reason for doing this is that
1199 we can now evaluate the return value and parameter values
1200 according to their known data types, in case we need to
1201 do things like promotion, dereferencing, special handling
1202 of structs and doubles, etc.
1203
1204 We want to use the type signature of 'method', but still
1205 jump to objc_msgSend() or objc_msgSend_stret() to better
1206 mimic the behavior of the runtime. */
1207
1208 if (method)
1209 {
1210 if (TYPE_CODE (value_type (method)) != TYPE_CODE_FUNC)
1211 error (_("method address has symbol information with non-function type; skipping"));
1212 if (struct_return)
1213 VALUE_ADDRESS (method) = value_as_address (msg_send_stret);
1214 else
1215 VALUE_ADDRESS (method) = value_as_address (msg_send);
1216 called_method = method;
1217 }
1218 else
1219 {
1220 if (struct_return)
1221 called_method = msg_send_stret;
1222 else
1223 called_method = msg_send;
1224 }
1225
1226 if (noside == EVAL_SKIP)
1227 goto nosideret;
1228
1229 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1230 {
1231 /* If the return type doesn't look like a function type,
1232 call an error. This can happen if somebody tries to
1233 turn a variable into a function call. This is here
1234 because people often want to call, eg, strcmp, which
1235 gdb doesn't know is a function. If gdb isn't asked for
1236 it's opinion (ie. through "whatis"), it won't offer
1237 it. */
1238
1239 struct type *type = value_type (called_method);
1240 if (type && TYPE_CODE (type) == TYPE_CODE_PTR)
1241 type = TYPE_TARGET_TYPE (type);
1242 type = TYPE_TARGET_TYPE (type);
1243
1244 if (type)
1245 {
1246 if ((TYPE_CODE (type) == TYPE_CODE_ERROR) && expect_type)
1247 return allocate_value (expect_type);
1248 else
1249 return allocate_value (type);
1250 }
1251 else
1252 error (_("Expression of type other than \"method returning ...\" used as a method"));
1253 }
1254
1255 /* Now depending on whether we found a symbol for the method,
1256 we will either call the runtime dispatcher or the method
1257 directly. */
1258
1259 argvec[0] = called_method;
1260 argvec[1] = target;
1261 argvec[2] = value_from_longest (long_type, selector);
1262 /* User-supplied arguments. */
1263 for (tem = 0; tem < nargs; tem++)
1264 argvec[tem + 3] = evaluate_subexp_with_coercion (exp, pos, noside);
1265 argvec[tem + 3] = 0;
1266
1267 if (gnu_runtime && (method != NULL))
1268 {
1269 /* Function objc_msg_lookup returns a pointer. */
1270 deprecated_set_value_type (argvec[0],
1271 lookup_function_type (lookup_pointer_type (value_type (argvec[0]))));
1272 argvec[0] = call_function_by_hand (argvec[0], nargs + 2, argvec + 1);
1273 }
1274
1275 ret = call_function_by_hand (argvec[0], nargs + 2, argvec + 1);
1276 return ret;
1277 }
1278 break;
1279
1280 case OP_FUNCALL:
1281 (*pos) += 2;
1282 op = exp->elts[*pos].opcode;
1283 nargs = longest_to_int (exp->elts[pc + 1].longconst);
1284 /* Allocate arg vector, including space for the function to be
1285 called in argvec[0] and a terminating NULL */
1286 argvec = (struct value **) alloca (sizeof (struct value *) * (nargs + 3));
1287 if (op == STRUCTOP_MEMBER || op == STRUCTOP_MPTR)
1288 {
1289 nargs++;
1290 /* First, evaluate the structure into arg2 */
1291 pc2 = (*pos)++;
1292
1293 if (noside == EVAL_SKIP)
1294 goto nosideret;
1295
1296 if (op == STRUCTOP_MEMBER)
1297 {
1298 arg2 = evaluate_subexp_for_address (exp, pos, noside);
1299 }
1300 else
1301 {
1302 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1303 }
1304
1305 /* If the function is a virtual function, then the
1306 aggregate value (providing the structure) plays
1307 its part by providing the vtable. Otherwise,
1308 it is just along for the ride: call the function
1309 directly. */
1310
1311 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1312
1313 if (TYPE_CODE (check_typedef (value_type (arg1)))
1314 != TYPE_CODE_METHODPTR)
1315 error (_("Non-pointer-to-member value used in pointer-to-member "
1316 "construct"));
1317
1318 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1319 {
1320 struct type *method_type = check_typedef (value_type (arg1));
1321 arg1 = value_zero (method_type, not_lval);
1322 }
1323 else
1324 arg1 = cplus_method_ptr_to_value (&arg2, arg1);
1325
1326 /* Now, say which argument to start evaluating from */
1327 tem = 2;
1328 }
1329 else if (op == STRUCTOP_STRUCT || op == STRUCTOP_PTR)
1330 {
1331 /* Hair for method invocations */
1332 int tem2;
1333
1334 nargs++;
1335 /* First, evaluate the structure into arg2 */
1336 pc2 = (*pos)++;
1337 tem2 = longest_to_int (exp->elts[pc2 + 1].longconst);
1338 *pos += 3 + BYTES_TO_EXP_ELEM (tem2 + 1);
1339 if (noside == EVAL_SKIP)
1340 goto nosideret;
1341
1342 if (op == STRUCTOP_STRUCT)
1343 {
1344 /* If v is a variable in a register, and the user types
1345 v.method (), this will produce an error, because v has
1346 no address.
1347
1348 A possible way around this would be to allocate a
1349 copy of the variable on the stack, copy in the
1350 contents, call the function, and copy out the
1351 contents. I.e. convert this from call by reference
1352 to call by copy-return (or whatever it's called).
1353 However, this does not work because it is not the
1354 same: the method being called could stash a copy of
1355 the address, and then future uses through that address
1356 (after the method returns) would be expected to
1357 use the variable itself, not some copy of it. */
1358 arg2 = evaluate_subexp_for_address (exp, pos, noside);
1359 }
1360 else
1361 {
1362 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1363 }
1364 /* Now, say which argument to start evaluating from */
1365 tem = 2;
1366 }
1367 else
1368 {
1369 /* Non-method function call */
1370 save_pos1 = *pos;
1371 argvec[0] = evaluate_subexp_with_coercion (exp, pos, noside);
1372 tem = 1;
1373 type = value_type (argvec[0]);
1374 if (type && TYPE_CODE (type) == TYPE_CODE_PTR)
1375 type = TYPE_TARGET_TYPE (type);
1376 if (type && TYPE_CODE (type) == TYPE_CODE_FUNC)
1377 {
1378 for (; tem <= nargs && tem <= TYPE_NFIELDS (type); tem++)
1379 {
1380 /* pai: FIXME This seems to be coercing arguments before
1381 * overload resolution has been done! */
1382 argvec[tem] = evaluate_subexp (TYPE_FIELD_TYPE (type, tem - 1),
1383 exp, pos, noside);
1384 }
1385 }
1386 }
1387
1388 /* Evaluate arguments */
1389 for (; tem <= nargs; tem++)
1390 {
1391 /* Ensure that array expressions are coerced into pointer objects. */
1392 argvec[tem] = evaluate_subexp_with_coercion (exp, pos, noside);
1393 }
1394
1395 /* signal end of arglist */
1396 argvec[tem] = 0;
1397
1398 if (op == STRUCTOP_STRUCT || op == STRUCTOP_PTR)
1399 {
1400 int static_memfuncp;
1401 char tstr[256];
1402
1403 /* Method invocation : stuff "this" as first parameter */
1404 argvec[1] = arg2;
1405 /* Name of method from expression */
1406 strcpy (tstr, &exp->elts[pc2 + 2].string);
1407
1408 if (overload_resolution && (exp->language_defn->la_language == language_cplus))
1409 {
1410 /* Language is C++, do some overload resolution before evaluation */
1411 struct value *valp = NULL;
1412
1413 /* Prepare list of argument types for overload resolution */
1414 arg_types = (struct type **) alloca (nargs * (sizeof (struct type *)));
1415 for (ix = 1; ix <= nargs; ix++)
1416 arg_types[ix - 1] = value_type (argvec[ix]);
1417
1418 (void) find_overload_match (arg_types, nargs, tstr,
1419 1 /* method */ , 0 /* strict match */ ,
1420 &arg2 /* the object */ , NULL,
1421 &valp, NULL, &static_memfuncp);
1422
1423
1424 argvec[1] = arg2; /* the ``this'' pointer */
1425 argvec[0] = valp; /* use the method found after overload resolution */
1426 }
1427 else
1428 /* Non-C++ case -- or no overload resolution */
1429 {
1430 struct value *temp = arg2;
1431 argvec[0] = value_struct_elt (&temp, argvec + 1, tstr,
1432 &static_memfuncp,
1433 op == STRUCTOP_STRUCT
1434 ? "structure" : "structure pointer");
1435 /* value_struct_elt updates temp with the correct value
1436 of the ``this'' pointer if necessary, so modify argvec[1] to
1437 reflect any ``this'' changes. */
1438 arg2 = value_from_longest (lookup_pointer_type(value_type (temp)),
1439 VALUE_ADDRESS (temp) + value_offset (temp)
1440 + value_embedded_offset (temp));
1441 argvec[1] = arg2; /* the ``this'' pointer */
1442 }
1443
1444 if (static_memfuncp)
1445 {
1446 argvec[1] = argvec[0];
1447 nargs--;
1448 argvec++;
1449 }
1450 }
1451 else if (op == STRUCTOP_MEMBER || op == STRUCTOP_MPTR)
1452 {
1453 argvec[1] = arg2;
1454 argvec[0] = arg1;
1455 }
1456 else if (op == OP_VAR_VALUE)
1457 {
1458 /* Non-member function being called */
1459 /* fn: This can only be done for C++ functions. A C-style function
1460 in a C++ program, for instance, does not have the fields that
1461 are expected here */
1462
1463 if (overload_resolution && (exp->language_defn->la_language == language_cplus))
1464 {
1465 /* Language is C++, do some overload resolution before evaluation */
1466 struct symbol *symp;
1467
1468 /* Prepare list of argument types for overload resolution */
1469 arg_types = (struct type **) alloca (nargs * (sizeof (struct type *)));
1470 for (ix = 1; ix <= nargs; ix++)
1471 arg_types[ix - 1] = value_type (argvec[ix]);
1472
1473 (void) find_overload_match (arg_types, nargs, NULL /* no need for name */ ,
1474 0 /* not method */ , 0 /* strict match */ ,
1475 NULL, exp->elts[save_pos1+2].symbol /* the function */ ,
1476 NULL, &symp, NULL);
1477
1478 /* Now fix the expression being evaluated */
1479 exp->elts[save_pos1+2].symbol = symp;
1480 argvec[0] = evaluate_subexp_with_coercion (exp, &save_pos1, noside);
1481 }
1482 else
1483 {
1484 /* Not C++, or no overload resolution allowed */
1485 /* nothing to be done; argvec already correctly set up */
1486 }
1487 }
1488 else
1489 {
1490 /* It is probably a C-style function */
1491 /* nothing to be done; argvec already correctly set up */
1492 }
1493
1494 do_call_it:
1495
1496 if (noside == EVAL_SKIP)
1497 goto nosideret;
1498 if (argvec[0] == NULL)
1499 error (_("Cannot evaluate function -- may be inlined"));
1500 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1501 {
1502 /* If the return type doesn't look like a function type, call an
1503 error. This can happen if somebody tries to turn a variable into
1504 a function call. This is here because people often want to
1505 call, eg, strcmp, which gdb doesn't know is a function. If
1506 gdb isn't asked for it's opinion (ie. through "whatis"),
1507 it won't offer it. */
1508
1509 struct type *ftype =
1510 TYPE_TARGET_TYPE (value_type (argvec[0]));
1511
1512 if (ftype)
1513 return allocate_value (TYPE_TARGET_TYPE (value_type (argvec[0])));
1514 else
1515 error (_("Expression of type other than \"Function returning ...\" used as function"));
1516 }
1517 return call_function_by_hand (argvec[0], nargs, argvec + 1);
1518 /* pai: FIXME save value from call_function_by_hand, then adjust pc by adjust_fn_pc if +ve */
1519
1520 case OP_F77_UNDETERMINED_ARGLIST:
1521
1522 /* Remember that in F77, functions, substring ops and
1523 array subscript operations cannot be disambiguated
1524 at parse time. We have made all array subscript operations,
1525 substring operations as well as function calls come here
1526 and we now have to discover what the heck this thing actually was.
1527 If it is a function, we process just as if we got an OP_FUNCALL. */
1528
1529 nargs = longest_to_int (exp->elts[pc + 1].longconst);
1530 (*pos) += 2;
1531
1532 /* First determine the type code we are dealing with. */
1533 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1534 type = check_typedef (value_type (arg1));
1535 code = TYPE_CODE (type);
1536
1537 if (code == TYPE_CODE_PTR)
1538 {
1539 /* Fortran always passes variable to subroutines as pointer.
1540 So we need to look into its target type to see if it is
1541 array, string or function. If it is, we need to switch
1542 to the target value the original one points to. */
1543 struct type *target_type = check_typedef (TYPE_TARGET_TYPE (type));
1544
1545 if (TYPE_CODE (target_type) == TYPE_CODE_ARRAY
1546 || TYPE_CODE (target_type) == TYPE_CODE_STRING
1547 || TYPE_CODE (target_type) == TYPE_CODE_FUNC)
1548 {
1549 arg1 = value_ind (arg1);
1550 type = check_typedef (value_type (arg1));
1551 code = TYPE_CODE (type);
1552 }
1553 }
1554
1555 switch (code)
1556 {
1557 case TYPE_CODE_ARRAY:
1558 if (exp->elts[*pos].opcode == OP_F90_RANGE)
1559 return value_f90_subarray (arg1, exp, pos, noside);
1560 else
1561 goto multi_f77_subscript;
1562
1563 case TYPE_CODE_STRING:
1564 if (exp->elts[*pos].opcode == OP_F90_RANGE)
1565 return value_f90_subarray (arg1, exp, pos, noside);
1566 else
1567 {
1568 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
1569 return value_subscript (arg1, arg2);
1570 }
1571
1572 case TYPE_CODE_PTR:
1573 case TYPE_CODE_FUNC:
1574 /* It's a function call. */
1575 /* Allocate arg vector, including space for the function to be
1576 called in argvec[0] and a terminating NULL */
1577 argvec = (struct value **) alloca (sizeof (struct value *) * (nargs + 2));
1578 argvec[0] = arg1;
1579 tem = 1;
1580 for (; tem <= nargs; tem++)
1581 argvec[tem] = evaluate_subexp_with_coercion (exp, pos, noside);
1582 argvec[tem] = 0; /* signal end of arglist */
1583 goto do_call_it;
1584
1585 default:
1586 error (_("Cannot perform substring on this type"));
1587 }
1588
1589 case OP_COMPLEX:
1590 /* We have a complex number, There should be 2 floating
1591 point numbers that compose it */
1592 (*pos) += 2;
1593 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1594 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1595
1596 return value_literal_complex (arg1, arg2, exp->elts[pc + 1].type);
1597
1598 case STRUCTOP_STRUCT:
1599 tem = longest_to_int (exp->elts[pc + 1].longconst);
1600 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
1601 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1602 if (noside == EVAL_SKIP)
1603 goto nosideret;
1604 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1605 return value_zero (lookup_struct_elt_type (value_type (arg1),
1606 &exp->elts[pc + 2].string,
1607 0),
1608 lval_memory);
1609 else
1610 {
1611 struct value *temp = arg1;
1612 return value_struct_elt (&temp, NULL, &exp->elts[pc + 2].string,
1613 NULL, "structure");
1614 }
1615
1616 case STRUCTOP_PTR:
1617 tem = longest_to_int (exp->elts[pc + 1].longconst);
1618 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
1619 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1620 if (noside == EVAL_SKIP)
1621 goto nosideret;
1622
1623 /* JYG: if print object is on we need to replace the base type
1624 with rtti type in order to continue on with successful
1625 lookup of member / method only available in the rtti type. */
1626 {
1627 struct type *type = value_type (arg1);
1628 struct type *real_type;
1629 int full, top, using_enc;
1630
1631 if (objectprint && TYPE_TARGET_TYPE(type) &&
1632 (TYPE_CODE (TYPE_TARGET_TYPE (type)) == TYPE_CODE_CLASS))
1633 {
1634 real_type = value_rtti_target_type (arg1, &full, &top, &using_enc);
1635 if (real_type)
1636 {
1637 if (TYPE_CODE (type) == TYPE_CODE_PTR)
1638 real_type = lookup_pointer_type (real_type);
1639 else
1640 real_type = lookup_reference_type (real_type);
1641
1642 arg1 = value_cast (real_type, arg1);
1643 }
1644 }
1645 }
1646
1647 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1648 return value_zero (lookup_struct_elt_type (value_type (arg1),
1649 &exp->elts[pc + 2].string,
1650 0),
1651 lval_memory);
1652 else
1653 {
1654 struct value *temp = arg1;
1655 return value_struct_elt (&temp, NULL, &exp->elts[pc + 2].string,
1656 NULL, "structure pointer");
1657 }
1658
1659 case STRUCTOP_MEMBER:
1660 case STRUCTOP_MPTR:
1661 if (op == STRUCTOP_MEMBER)
1662 arg1 = evaluate_subexp_for_address (exp, pos, noside);
1663 else
1664 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1665
1666 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1667
1668 if (noside == EVAL_SKIP)
1669 goto nosideret;
1670
1671 type = check_typedef (value_type (arg2));
1672 switch (TYPE_CODE (type))
1673 {
1674 case TYPE_CODE_METHODPTR:
1675 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1676 return value_zero (TYPE_TARGET_TYPE (type), not_lval);
1677 else
1678 {
1679 arg2 = cplus_method_ptr_to_value (&arg1, arg2);
1680 gdb_assert (TYPE_CODE (value_type (arg2)) == TYPE_CODE_PTR);
1681 return value_ind (arg2);
1682 }
1683
1684 case TYPE_CODE_MEMBERPTR:
1685 /* Now, convert these values to an address. */
1686 arg1 = value_cast (lookup_pointer_type (TYPE_DOMAIN_TYPE (type)),
1687 arg1);
1688
1689 mem_offset = value_as_long (arg2);
1690
1691 arg3 = value_from_pointer (lookup_pointer_type (TYPE_TARGET_TYPE (type)),
1692 value_as_long (arg1) + mem_offset);
1693 return value_ind (arg3);
1694
1695 default:
1696 error (_("non-pointer-to-member value used in pointer-to-member construct"));
1697 }
1698
1699 case BINOP_CONCAT:
1700 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
1701 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
1702 if (noside == EVAL_SKIP)
1703 goto nosideret;
1704 if (binop_user_defined_p (op, arg1, arg2))
1705 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1706 else
1707 return value_concat (arg1, arg2);
1708
1709 case BINOP_ASSIGN:
1710 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1711 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
1712
1713 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
1714 return arg1;
1715 if (binop_user_defined_p (op, arg1, arg2))
1716 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1717 else
1718 return value_assign (arg1, arg2);
1719
1720 case BINOP_ASSIGN_MODIFY:
1721 (*pos) += 2;
1722 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1723 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
1724 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
1725 return arg1;
1726 op = exp->elts[pc + 1].opcode;
1727 if (binop_user_defined_p (op, arg1, arg2))
1728 return value_x_binop (arg1, arg2, BINOP_ASSIGN_MODIFY, op, noside);
1729 else if (op == BINOP_ADD && ptrmath_type_p (value_type (arg1)))
1730 arg2 = value_ptradd (arg1, arg2);
1731 else if (op == BINOP_SUB && ptrmath_type_p (value_type (arg1)))
1732 arg2 = value_ptrsub (arg1, arg2);
1733 else
1734 {
1735 struct value *tmp = arg1;
1736
1737 /* For shift and integer exponentiation operations,
1738 only promote the first argument. */
1739 if ((op == BINOP_LSH || op == BINOP_RSH || op == BINOP_EXP)
1740 && is_integral_type (value_type (arg2)))
1741 unop_promote (exp->language_defn, exp->gdbarch, &tmp);
1742 else
1743 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
1744
1745 arg2 = value_binop (tmp, arg2, op);
1746 }
1747 return value_assign (arg1, arg2);
1748
1749 case BINOP_ADD:
1750 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
1751 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
1752 if (noside == EVAL_SKIP)
1753 goto nosideret;
1754 if (binop_user_defined_p (op, arg1, arg2))
1755 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1756 else if (ptrmath_type_p (value_type (arg1)))
1757 return value_ptradd (arg1, arg2);
1758 else if (ptrmath_type_p (value_type (arg2)))
1759 return value_ptradd (arg2, arg1);
1760 else
1761 {
1762 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1763 return value_binop (arg1, arg2, BINOP_ADD);
1764 }
1765
1766 case BINOP_SUB:
1767 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
1768 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
1769 if (noside == EVAL_SKIP)
1770 goto nosideret;
1771 if (binop_user_defined_p (op, arg1, arg2))
1772 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1773 else if (ptrmath_type_p (value_type (arg1)))
1774 {
1775 if (ptrmath_type_p (value_type (arg2)))
1776 {
1777 /* FIXME -- should be ptrdiff_t */
1778 type = builtin_type (exp->gdbarch)->builtin_long;
1779 return value_from_longest (type, value_ptrdiff (arg1, arg2));
1780 }
1781 else
1782 return value_ptrsub (arg1, arg2);
1783 }
1784 else
1785 {
1786 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1787 return value_binop (arg1, arg2, BINOP_SUB);
1788 }
1789
1790 case BINOP_EXP:
1791 case BINOP_MUL:
1792 case BINOP_DIV:
1793 case BINOP_INTDIV:
1794 case BINOP_REM:
1795 case BINOP_MOD:
1796 case BINOP_LSH:
1797 case BINOP_RSH:
1798 case BINOP_BITWISE_AND:
1799 case BINOP_BITWISE_IOR:
1800 case BINOP_BITWISE_XOR:
1801 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1802 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1803 if (noside == EVAL_SKIP)
1804 goto nosideret;
1805 if (binop_user_defined_p (op, arg1, arg2))
1806 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1807 else
1808 {
1809 /* If EVAL_AVOID_SIDE_EFFECTS and we're dividing by zero,
1810 fudge arg2 to avoid division-by-zero, the caller is
1811 (theoretically) only looking for the type of the result. */
1812 if (noside == EVAL_AVOID_SIDE_EFFECTS
1813 /* ??? Do we really want to test for BINOP_MOD here?
1814 The implementation of value_binop gives it a well-defined
1815 value. */
1816 && (op == BINOP_DIV
1817 || op == BINOP_INTDIV
1818 || op == BINOP_REM
1819 || op == BINOP_MOD)
1820 && value_logical_not (arg2))
1821 {
1822 struct value *v_one, *retval;
1823
1824 v_one = value_one (value_type (arg2), not_lval);
1825 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &v_one);
1826 retval = value_binop (arg1, v_one, op);
1827 return retval;
1828 }
1829 else
1830 {
1831 /* For shift and integer exponentiation operations,
1832 only promote the first argument. */
1833 if ((op == BINOP_LSH || op == BINOP_RSH || op == BINOP_EXP)
1834 && is_integral_type (value_type (arg2)))
1835 unop_promote (exp->language_defn, exp->gdbarch, &arg1);
1836 else
1837 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1838
1839 return value_binop (arg1, arg2, op);
1840 }
1841 }
1842
1843 case BINOP_RANGE:
1844 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1845 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
1846 if (noside == EVAL_SKIP)
1847 goto nosideret;
1848 error (_("':' operator used in invalid context"));
1849
1850 case BINOP_SUBSCRIPT:
1851 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
1852 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
1853 if (noside == EVAL_SKIP)
1854 goto nosideret;
1855 if (binop_user_defined_p (op, arg1, arg2))
1856 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1857 else
1858 {
1859 /* If the user attempts to subscript something that is not an
1860 array or pointer type (like a plain int variable for example),
1861 then report this as an error. */
1862
1863 arg1 = coerce_ref (arg1);
1864 type = check_typedef (value_type (arg1));
1865 if (TYPE_CODE (type) != TYPE_CODE_ARRAY
1866 && TYPE_CODE (type) != TYPE_CODE_PTR)
1867 {
1868 if (TYPE_NAME (type))
1869 error (_("cannot subscript something of type `%s'"),
1870 TYPE_NAME (type));
1871 else
1872 error (_("cannot subscript requested type"));
1873 }
1874
1875 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1876 return value_zero (TYPE_TARGET_TYPE (type), VALUE_LVAL (arg1));
1877 else
1878 return value_subscript (arg1, arg2);
1879 }
1880
1881 case BINOP_IN:
1882 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
1883 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
1884 if (noside == EVAL_SKIP)
1885 goto nosideret;
1886 type = language_bool_type (exp->language_defn, exp->gdbarch);
1887 return value_from_longest (type, (LONGEST) value_in (arg1, arg2));
1888
1889 case MULTI_SUBSCRIPT:
1890 (*pos) += 2;
1891 nargs = longest_to_int (exp->elts[pc + 1].longconst);
1892 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
1893 while (nargs-- > 0)
1894 {
1895 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
1896 /* FIXME: EVAL_SKIP handling may not be correct. */
1897 if (noside == EVAL_SKIP)
1898 {
1899 if (nargs > 0)
1900 {
1901 continue;
1902 }
1903 else
1904 {
1905 goto nosideret;
1906 }
1907 }
1908 /* FIXME: EVAL_AVOID_SIDE_EFFECTS handling may not be correct. */
1909 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1910 {
1911 /* If the user attempts to subscript something that has no target
1912 type (like a plain int variable for example), then report this
1913 as an error. */
1914
1915 type = TYPE_TARGET_TYPE (check_typedef (value_type (arg1)));
1916 if (type != NULL)
1917 {
1918 arg1 = value_zero (type, VALUE_LVAL (arg1));
1919 noside = EVAL_SKIP;
1920 continue;
1921 }
1922 else
1923 {
1924 error (_("cannot subscript something of type `%s'"),
1925 TYPE_NAME (value_type (arg1)));
1926 }
1927 }
1928
1929 if (binop_user_defined_p (op, arg1, arg2))
1930 {
1931 arg1 = value_x_binop (arg1, arg2, op, OP_NULL, noside);
1932 }
1933 else
1934 {
1935 arg1 = coerce_ref (arg1);
1936 type = check_typedef (value_type (arg1));
1937
1938 switch (TYPE_CODE (type))
1939 {
1940 case TYPE_CODE_PTR:
1941 case TYPE_CODE_ARRAY:
1942 case TYPE_CODE_STRING:
1943 arg1 = value_subscript (arg1, arg2);
1944 break;
1945
1946 case TYPE_CODE_BITSTRING:
1947 type = language_bool_type (exp->language_defn, exp->gdbarch);
1948 arg1 = value_bitstring_subscript (type, arg1, arg2);
1949 break;
1950
1951 default:
1952 if (TYPE_NAME (type))
1953 error (_("cannot subscript something of type `%s'"),
1954 TYPE_NAME (type));
1955 else
1956 error (_("cannot subscript requested type"));
1957 }
1958 }
1959 }
1960 return (arg1);
1961
1962 multi_f77_subscript:
1963 {
1964 int subscript_array[MAX_FORTRAN_DIMS];
1965 int array_size_array[MAX_FORTRAN_DIMS];
1966 int ndimensions = 1, i;
1967 struct type *tmp_type;
1968 int offset_item; /* The array offset where the item lives */
1969
1970 if (nargs > MAX_FORTRAN_DIMS)
1971 error (_("Too many subscripts for F77 (%d Max)"), MAX_FORTRAN_DIMS);
1972
1973 tmp_type = check_typedef (value_type (arg1));
1974 ndimensions = calc_f77_array_dims (type);
1975
1976 if (nargs != ndimensions)
1977 error (_("Wrong number of subscripts"));
1978
1979 /* Now that we know we have a legal array subscript expression
1980 let us actually find out where this element exists in the array. */
1981
1982 offset_item = 0;
1983 /* Take array indices left to right */
1984 for (i = 0; i < nargs; i++)
1985 {
1986 /* Evaluate each subscript, It must be a legal integer in F77 */
1987 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
1988
1989 /* Fill in the subscript and array size arrays */
1990
1991 subscript_array[i] = value_as_long (arg2);
1992 }
1993
1994 /* Internal type of array is arranged right to left */
1995 for (i = 0; i < nargs; i++)
1996 {
1997 retcode = f77_get_dynamic_upperbound (tmp_type, &upper);
1998 if (retcode == BOUND_FETCH_ERROR)
1999 error (_("Cannot obtain dynamic upper bound"));
2000
2001 retcode = f77_get_dynamic_lowerbound (tmp_type, &lower);
2002 if (retcode == BOUND_FETCH_ERROR)
2003 error (_("Cannot obtain dynamic lower bound"));
2004
2005 array_size_array[nargs - i - 1] = upper - lower + 1;
2006
2007 /* Zero-normalize subscripts so that offsetting will work. */
2008
2009 subscript_array[nargs - i - 1] -= lower;
2010
2011 /* If we are at the bottom of a multidimensional
2012 array type then keep a ptr to the last ARRAY
2013 type around for use when calling value_subscript()
2014 below. This is done because we pretend to value_subscript
2015 that we actually have a one-dimensional array
2016 of base element type that we apply a simple
2017 offset to. */
2018
2019 if (i < nargs - 1)
2020 tmp_type = check_typedef (TYPE_TARGET_TYPE (tmp_type));
2021 }
2022
2023 /* Now let us calculate the offset for this item */
2024
2025 offset_item = subscript_array[ndimensions - 1];
2026
2027 for (i = ndimensions - 1; i > 0; --i)
2028 offset_item =
2029 array_size_array[i - 1] * offset_item + subscript_array[i - 1];
2030
2031 /* Construct a value node with the value of the offset */
2032
2033 arg2 = value_from_longest (builtin_type_int32, offset_item);
2034
2035 /* Let us now play a dirty trick: we will take arg1
2036 which is a value node pointing to the topmost level
2037 of the multidimensional array-set and pretend
2038 that it is actually a array of the final element
2039 type, this will ensure that value_subscript()
2040 returns the correct type value */
2041
2042 deprecated_set_value_type (arg1, tmp_type);
2043 return value_subscripted_rvalue (arg1, arg2, 0);
2044 }
2045
2046 case BINOP_LOGICAL_AND:
2047 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2048 if (noside == EVAL_SKIP)
2049 {
2050 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2051 goto nosideret;
2052 }
2053
2054 oldpos = *pos;
2055 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, EVAL_AVOID_SIDE_EFFECTS);
2056 *pos = oldpos;
2057
2058 if (binop_user_defined_p (op, arg1, arg2))
2059 {
2060 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2061 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
2062 }
2063 else
2064 {
2065 tem = value_logical_not (arg1);
2066 arg2 = evaluate_subexp (NULL_TYPE, exp, pos,
2067 (tem ? EVAL_SKIP : noside));
2068 type = language_bool_type (exp->language_defn, exp->gdbarch);
2069 return value_from_longest (type,
2070 (LONGEST) (!tem && !value_logical_not (arg2)));
2071 }
2072
2073 case BINOP_LOGICAL_OR:
2074 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2075 if (noside == EVAL_SKIP)
2076 {
2077 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2078 goto nosideret;
2079 }
2080
2081 oldpos = *pos;
2082 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, EVAL_AVOID_SIDE_EFFECTS);
2083 *pos = oldpos;
2084
2085 if (binop_user_defined_p (op, arg1, arg2))
2086 {
2087 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2088 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
2089 }
2090 else
2091 {
2092 tem = value_logical_not (arg1);
2093 arg2 = evaluate_subexp (NULL_TYPE, exp, pos,
2094 (!tem ? EVAL_SKIP : noside));
2095 type = language_bool_type (exp->language_defn, exp->gdbarch);
2096 return value_from_longest (type,
2097 (LONGEST) (!tem || !value_logical_not (arg2)));
2098 }
2099
2100 case BINOP_EQUAL:
2101 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2102 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
2103 if (noside == EVAL_SKIP)
2104 goto nosideret;
2105 if (binop_user_defined_p (op, arg1, arg2))
2106 {
2107 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
2108 }
2109 else
2110 {
2111 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
2112 tem = value_equal (arg1, arg2);
2113 type = language_bool_type (exp->language_defn, exp->gdbarch);
2114 return value_from_longest (type, (LONGEST) tem);
2115 }
2116
2117 case BINOP_NOTEQUAL:
2118 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2119 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
2120 if (noside == EVAL_SKIP)
2121 goto nosideret;
2122 if (binop_user_defined_p (op, arg1, arg2))
2123 {
2124 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
2125 }
2126 else
2127 {
2128 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
2129 tem = value_equal (arg1, arg2);
2130 type = language_bool_type (exp->language_defn, exp->gdbarch);
2131 return value_from_longest (type, (LONGEST) ! tem);
2132 }
2133
2134 case BINOP_LESS:
2135 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2136 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
2137 if (noside == EVAL_SKIP)
2138 goto nosideret;
2139 if (binop_user_defined_p (op, arg1, arg2))
2140 {
2141 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
2142 }
2143 else
2144 {
2145 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
2146 tem = value_less (arg1, arg2);
2147 type = language_bool_type (exp->language_defn, exp->gdbarch);
2148 return value_from_longest (type, (LONGEST) tem);
2149 }
2150
2151 case BINOP_GTR:
2152 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2153 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
2154 if (noside == EVAL_SKIP)
2155 goto nosideret;
2156 if (binop_user_defined_p (op, arg1, arg2))
2157 {
2158 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
2159 }
2160 else
2161 {
2162 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
2163 tem = value_less (arg2, arg1);
2164 type = language_bool_type (exp->language_defn, exp->gdbarch);
2165 return value_from_longest (type, (LONGEST) tem);
2166 }
2167
2168 case BINOP_GEQ:
2169 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2170 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
2171 if (noside == EVAL_SKIP)
2172 goto nosideret;
2173 if (binop_user_defined_p (op, arg1, arg2))
2174 {
2175 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
2176 }
2177 else
2178 {
2179 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
2180 tem = value_less (arg2, arg1) || value_equal (arg1, arg2);
2181 type = language_bool_type (exp->language_defn, exp->gdbarch);
2182 return value_from_longest (type, (LONGEST) tem);
2183 }
2184
2185 case BINOP_LEQ:
2186 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2187 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
2188 if (noside == EVAL_SKIP)
2189 goto nosideret;
2190 if (binop_user_defined_p (op, arg1, arg2))
2191 {
2192 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
2193 }
2194 else
2195 {
2196 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
2197 tem = value_less (arg1, arg2) || value_equal (arg1, arg2);
2198 type = language_bool_type (exp->language_defn, exp->gdbarch);
2199 return value_from_longest (type, (LONGEST) tem);
2200 }
2201
2202 case BINOP_REPEAT:
2203 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2204 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2205 if (noside == EVAL_SKIP)
2206 goto nosideret;
2207 type = check_typedef (value_type (arg2));
2208 if (TYPE_CODE (type) != TYPE_CODE_INT)
2209 error (_("Non-integral right operand for \"@\" operator."));
2210 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2211 {
2212 return allocate_repeat_value (value_type (arg1),
2213 longest_to_int (value_as_long (arg2)));
2214 }
2215 else
2216 return value_repeat (arg1, longest_to_int (value_as_long (arg2)));
2217
2218 case BINOP_COMMA:
2219 evaluate_subexp (NULL_TYPE, exp, pos, noside);
2220 return evaluate_subexp (NULL_TYPE, exp, pos, noside);
2221
2222 case UNOP_PLUS:
2223 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2224 if (noside == EVAL_SKIP)
2225 goto nosideret;
2226 if (unop_user_defined_p (op, arg1))
2227 return value_x_unop (arg1, op, noside);
2228 else
2229 {
2230 unop_promote (exp->language_defn, exp->gdbarch, &arg1);
2231 return value_pos (arg1);
2232 }
2233
2234 case UNOP_NEG:
2235 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2236 if (noside == EVAL_SKIP)
2237 goto nosideret;
2238 if (unop_user_defined_p (op, arg1))
2239 return value_x_unop (arg1, op, noside);
2240 else
2241 {
2242 unop_promote (exp->language_defn, exp->gdbarch, &arg1);
2243 return value_neg (arg1);
2244 }
2245
2246 case UNOP_COMPLEMENT:
2247 /* C++: check for and handle destructor names. */
2248 op = exp->elts[*pos].opcode;
2249
2250 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2251 if (noside == EVAL_SKIP)
2252 goto nosideret;
2253 if (unop_user_defined_p (UNOP_COMPLEMENT, arg1))
2254 return value_x_unop (arg1, UNOP_COMPLEMENT, noside);
2255 else
2256 {
2257 unop_promote (exp->language_defn, exp->gdbarch, &arg1);
2258 return value_complement (arg1);
2259 }
2260
2261 case UNOP_LOGICAL_NOT:
2262 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2263 if (noside == EVAL_SKIP)
2264 goto nosideret;
2265 if (unop_user_defined_p (op, arg1))
2266 return value_x_unop (arg1, op, noside);
2267 else
2268 {
2269 type = language_bool_type (exp->language_defn, exp->gdbarch);
2270 return value_from_longest (type, (LONGEST) value_logical_not (arg1));
2271 }
2272
2273 case UNOP_IND:
2274 if (expect_type && TYPE_CODE (expect_type) == TYPE_CODE_PTR)
2275 expect_type = TYPE_TARGET_TYPE (check_typedef (expect_type));
2276 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
2277 type = check_typedef (value_type (arg1));
2278 if (TYPE_CODE (type) == TYPE_CODE_METHODPTR
2279 || TYPE_CODE (type) == TYPE_CODE_MEMBERPTR)
2280 error (_("Attempt to dereference pointer to member without an object"));
2281 if (noside == EVAL_SKIP)
2282 goto nosideret;
2283 if (unop_user_defined_p (op, arg1))
2284 return value_x_unop (arg1, op, noside);
2285 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
2286 {
2287 type = check_typedef (value_type (arg1));
2288 if (TYPE_CODE (type) == TYPE_CODE_PTR
2289 || TYPE_CODE (type) == TYPE_CODE_REF
2290 /* In C you can dereference an array to get the 1st elt. */
2291 || TYPE_CODE (type) == TYPE_CODE_ARRAY
2292 )
2293 return value_zero (TYPE_TARGET_TYPE (type),
2294 lval_memory);
2295 else if (TYPE_CODE (type) == TYPE_CODE_INT)
2296 /* GDB allows dereferencing an int. */
2297 return value_zero (builtin_type (exp->gdbarch)->builtin_int,
2298 lval_memory);
2299 else
2300 error (_("Attempt to take contents of a non-pointer value."));
2301 }
2302
2303 /* Allow * on an integer so we can cast it to whatever we want.
2304 This returns an int, which seems like the most C-like thing to
2305 do. "long long" variables are rare enough that
2306 BUILTIN_TYPE_LONGEST would seem to be a mistake. */
2307 if (TYPE_CODE (type) == TYPE_CODE_INT)
2308 return value_at_lazy (builtin_type (exp->gdbarch)->builtin_int,
2309 (CORE_ADDR) value_as_address (arg1));
2310 return value_ind (arg1);
2311
2312 case UNOP_ADDR:
2313 /* C++: check for and handle pointer to members. */
2314
2315 op = exp->elts[*pos].opcode;
2316
2317 if (noside == EVAL_SKIP)
2318 {
2319 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
2320 goto nosideret;
2321 }
2322 else
2323 {
2324 struct value *retvalp = evaluate_subexp_for_address (exp, pos, noside);
2325 return retvalp;
2326 }
2327
2328 case UNOP_SIZEOF:
2329 if (noside == EVAL_SKIP)
2330 {
2331 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
2332 goto nosideret;
2333 }
2334 return evaluate_subexp_for_sizeof (exp, pos);
2335
2336 case UNOP_CAST:
2337 (*pos) += 2;
2338 type = exp->elts[pc + 1].type;
2339 arg1 = evaluate_subexp (type, exp, pos, noside);
2340 if (noside == EVAL_SKIP)
2341 goto nosideret;
2342 if (type != value_type (arg1))
2343 arg1 = value_cast (type, arg1);
2344 return arg1;
2345
2346 case UNOP_MEMVAL:
2347 (*pos) += 2;
2348 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
2349 if (noside == EVAL_SKIP)
2350 goto nosideret;
2351 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2352 return value_zero (exp->elts[pc + 1].type, lval_memory);
2353 else
2354 return value_at_lazy (exp->elts[pc + 1].type,
2355 value_as_address (arg1));
2356
2357 case UNOP_MEMVAL_TLS:
2358 (*pos) += 3;
2359 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
2360 if (noside == EVAL_SKIP)
2361 goto nosideret;
2362 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2363 return value_zero (exp->elts[pc + 2].type, lval_memory);
2364 else
2365 {
2366 CORE_ADDR tls_addr;
2367 tls_addr = target_translate_tls_address (exp->elts[pc + 1].objfile,
2368 value_as_address (arg1));
2369 return value_at_lazy (exp->elts[pc + 2].type, tls_addr);
2370 }
2371
2372 case UNOP_PREINCREMENT:
2373 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
2374 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
2375 return arg1;
2376 else if (unop_user_defined_p (op, arg1))
2377 {
2378 return value_x_unop (arg1, op, noside);
2379 }
2380 else
2381 {
2382 arg2 = value_from_longest (builtin_type_uint8, (LONGEST) 1);
2383 if (ptrmath_type_p (value_type (arg1)))
2384 arg2 = value_ptradd (arg1, arg2);
2385 else
2386 {
2387 struct value *tmp = arg1;
2388 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
2389 arg2 = value_binop (tmp, arg2, BINOP_ADD);
2390 }
2391
2392 return value_assign (arg1, arg2);
2393 }
2394
2395 case UNOP_PREDECREMENT:
2396 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
2397 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
2398 return arg1;
2399 else if (unop_user_defined_p (op, arg1))
2400 {
2401 return value_x_unop (arg1, op, noside);
2402 }
2403 else
2404 {
2405 arg2 = value_from_longest (builtin_type_uint8, (LONGEST) 1);
2406 if (ptrmath_type_p (value_type (arg1)))
2407 arg2 = value_ptrsub (arg1, arg2);
2408 else
2409 {
2410 struct value *tmp = arg1;
2411 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
2412 arg2 = value_binop (tmp, arg2, BINOP_SUB);
2413 }
2414
2415 return value_assign (arg1, arg2);
2416 }
2417
2418 case UNOP_POSTINCREMENT:
2419 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
2420 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
2421 return arg1;
2422 else if (unop_user_defined_p (op, arg1))
2423 {
2424 return value_x_unop (arg1, op, noside);
2425 }
2426 else
2427 {
2428 arg2 = value_from_longest (builtin_type_uint8, (LONGEST) 1);
2429 if (ptrmath_type_p (value_type (arg1)))
2430 arg2 = value_ptradd (arg1, arg2);
2431 else
2432 {
2433 struct value *tmp = arg1;
2434 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
2435 arg2 = value_binop (tmp, arg2, BINOP_ADD);
2436 }
2437
2438 value_assign (arg1, arg2);
2439 return arg1;
2440 }
2441
2442 case UNOP_POSTDECREMENT:
2443 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
2444 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
2445 return arg1;
2446 else if (unop_user_defined_p (op, arg1))
2447 {
2448 return value_x_unop (arg1, op, noside);
2449 }
2450 else
2451 {
2452 arg2 = value_from_longest (builtin_type_uint8, (LONGEST) 1);
2453 if (ptrmath_type_p (value_type (arg1)))
2454 arg2 = value_ptrsub (arg1, arg2);
2455 else
2456 {
2457 struct value *tmp = arg1;
2458 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
2459 arg2 = value_binop (tmp, arg2, BINOP_SUB);
2460 }
2461
2462 value_assign (arg1, arg2);
2463 return arg1;
2464 }
2465
2466 case OP_THIS:
2467 (*pos) += 1;
2468 return value_of_this (1);
2469
2470 case OP_OBJC_SELF:
2471 (*pos) += 1;
2472 return value_of_local ("self", 1);
2473
2474 case OP_TYPE:
2475 /* The value is not supposed to be used. This is here to make it
2476 easier to accommodate expressions that contain types. */
2477 (*pos) += 2;
2478 if (noside == EVAL_SKIP)
2479 goto nosideret;
2480 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
2481 return allocate_value (exp->elts[pc + 1].type);
2482 else
2483 error (_("Attempt to use a type name as an expression"));
2484
2485 default:
2486 /* Removing this case and compiling with gcc -Wall reveals that
2487 a lot of cases are hitting this case. Some of these should
2488 probably be removed from expression.h; others are legitimate
2489 expressions which are (apparently) not fully implemented.
2490
2491 If there are any cases landing here which mean a user error,
2492 then they should be separate cases, with more descriptive
2493 error messages. */
2494
2495 error (_("\
2496 GDB does not (yet) know how to evaluate that kind of expression"));
2497 }
2498
2499 nosideret:
2500 return value_from_longest (builtin_type_int8, (LONGEST) 1);
2501 }
2502 \f
2503 /* Evaluate a subexpression of EXP, at index *POS,
2504 and return the address of that subexpression.
2505 Advance *POS over the subexpression.
2506 If the subexpression isn't an lvalue, get an error.
2507 NOSIDE may be EVAL_AVOID_SIDE_EFFECTS;
2508 then only the type of the result need be correct. */
2509
2510 static struct value *
2511 evaluate_subexp_for_address (struct expression *exp, int *pos,
2512 enum noside noside)
2513 {
2514 enum exp_opcode op;
2515 int pc;
2516 struct symbol *var;
2517 struct value *x;
2518 int tem;
2519
2520 pc = (*pos);
2521 op = exp->elts[pc].opcode;
2522
2523 switch (op)
2524 {
2525 case UNOP_IND:
2526 (*pos)++;
2527 x = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2528
2529 /* We can't optimize out "&*" if there's a user-defined operator*. */
2530 if (unop_user_defined_p (op, x))
2531 {
2532 x = value_x_unop (x, op, noside);
2533 goto default_case_after_eval;
2534 }
2535
2536 return x;
2537
2538 case UNOP_MEMVAL:
2539 (*pos) += 3;
2540 return value_cast (lookup_pointer_type (exp->elts[pc + 1].type),
2541 evaluate_subexp (NULL_TYPE, exp, pos, noside));
2542
2543 case OP_VAR_VALUE:
2544 var = exp->elts[pc + 2].symbol;
2545
2546 /* C++: The "address" of a reference should yield the address
2547 * of the object pointed to. Let value_addr() deal with it. */
2548 if (TYPE_CODE (SYMBOL_TYPE (var)) == TYPE_CODE_REF)
2549 goto default_case;
2550
2551 (*pos) += 4;
2552 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2553 {
2554 struct type *type =
2555 lookup_pointer_type (SYMBOL_TYPE (var));
2556 enum address_class sym_class = SYMBOL_CLASS (var);
2557
2558 if (sym_class == LOC_CONST
2559 || sym_class == LOC_CONST_BYTES
2560 || sym_class == LOC_REGISTER)
2561 error (_("Attempt to take address of register or constant."));
2562
2563 return
2564 value_zero (type, not_lval);
2565 }
2566 else if (symbol_read_needs_frame (var))
2567 return
2568 locate_var_value
2569 (var,
2570 block_innermost_frame (exp->elts[pc + 1].block));
2571 else
2572 return locate_var_value (var, NULL);
2573
2574 case OP_SCOPE:
2575 tem = longest_to_int (exp->elts[pc + 2].longconst);
2576 (*pos) += 5 + BYTES_TO_EXP_ELEM (tem + 1);
2577 x = value_aggregate_elt (exp->elts[pc + 1].type,
2578 &exp->elts[pc + 3].string,
2579 1, noside);
2580 if (x == NULL)
2581 error (_("There is no field named %s"), &exp->elts[pc + 3].string);
2582 return x;
2583
2584 default:
2585 default_case:
2586 x = evaluate_subexp (NULL_TYPE, exp, pos, noside);
2587 default_case_after_eval:
2588 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2589 {
2590 struct type *type = check_typedef (value_type (x));
2591
2592 if (VALUE_LVAL (x) == lval_memory || value_must_coerce_to_target (x))
2593 return value_zero (lookup_pointer_type (value_type (x)),
2594 not_lval);
2595 else if (TYPE_CODE (type) == TYPE_CODE_REF)
2596 return value_zero (lookup_pointer_type (TYPE_TARGET_TYPE (type)),
2597 not_lval);
2598 else
2599 error (_("Attempt to take address of value not located in memory."));
2600 }
2601 return value_addr (x);
2602 }
2603 }
2604
2605 /* Evaluate like `evaluate_subexp' except coercing arrays to pointers.
2606 When used in contexts where arrays will be coerced anyway, this is
2607 equivalent to `evaluate_subexp' but much faster because it avoids
2608 actually fetching array contents (perhaps obsolete now that we have
2609 value_lazy()).
2610
2611 Note that we currently only do the coercion for C expressions, where
2612 arrays are zero based and the coercion is correct. For other languages,
2613 with nonzero based arrays, coercion loses. Use CAST_IS_CONVERSION
2614 to decide if coercion is appropriate.
2615
2616 */
2617
2618 struct value *
2619 evaluate_subexp_with_coercion (struct expression *exp,
2620 int *pos, enum noside noside)
2621 {
2622 enum exp_opcode op;
2623 int pc;
2624 struct value *val;
2625 struct symbol *var;
2626
2627 pc = (*pos);
2628 op = exp->elts[pc].opcode;
2629
2630 switch (op)
2631 {
2632 case OP_VAR_VALUE:
2633 var = exp->elts[pc + 2].symbol;
2634 if (TYPE_CODE (check_typedef (SYMBOL_TYPE (var))) == TYPE_CODE_ARRAY
2635 && CAST_IS_CONVERSION)
2636 {
2637 (*pos) += 4;
2638 val =
2639 locate_var_value
2640 (var, block_innermost_frame (exp->elts[pc + 1].block));
2641 return value_cast (lookup_pointer_type (TYPE_TARGET_TYPE (check_typedef (SYMBOL_TYPE (var)))),
2642 val);
2643 }
2644 /* FALLTHROUGH */
2645
2646 default:
2647 return evaluate_subexp (NULL_TYPE, exp, pos, noside);
2648 }
2649 }
2650
2651 /* Evaluate a subexpression of EXP, at index *POS,
2652 and return a value for the size of that subexpression.
2653 Advance *POS over the subexpression. */
2654
2655 static struct value *
2656 evaluate_subexp_for_sizeof (struct expression *exp, int *pos)
2657 {
2658 /* FIXME: This should be size_t. */
2659 struct type *size_type = builtin_type (exp->gdbarch)->builtin_int;
2660 enum exp_opcode op;
2661 int pc;
2662 struct type *type;
2663 struct value *val;
2664
2665 pc = (*pos);
2666 op = exp->elts[pc].opcode;
2667
2668 switch (op)
2669 {
2670 /* This case is handled specially
2671 so that we avoid creating a value for the result type.
2672 If the result type is very big, it's desirable not to
2673 create a value unnecessarily. */
2674 case UNOP_IND:
2675 (*pos)++;
2676 val = evaluate_subexp (NULL_TYPE, exp, pos, EVAL_AVOID_SIDE_EFFECTS);
2677 type = check_typedef (value_type (val));
2678 if (TYPE_CODE (type) != TYPE_CODE_PTR
2679 && TYPE_CODE (type) != TYPE_CODE_REF
2680 && TYPE_CODE (type) != TYPE_CODE_ARRAY)
2681 error (_("Attempt to take contents of a non-pointer value."));
2682 type = check_typedef (TYPE_TARGET_TYPE (type));
2683 return value_from_longest (size_type, (LONGEST) TYPE_LENGTH (type));
2684
2685 case UNOP_MEMVAL:
2686 (*pos) += 3;
2687 type = check_typedef (exp->elts[pc + 1].type);
2688 return value_from_longest (size_type, (LONGEST) TYPE_LENGTH (type));
2689
2690 case OP_VAR_VALUE:
2691 (*pos) += 4;
2692 type = check_typedef (SYMBOL_TYPE (exp->elts[pc + 2].symbol));
2693 return
2694 value_from_longest (size_type, (LONGEST) TYPE_LENGTH (type));
2695
2696 default:
2697 val = evaluate_subexp (NULL_TYPE, exp, pos, EVAL_AVOID_SIDE_EFFECTS);
2698 return value_from_longest (size_type,
2699 (LONGEST) TYPE_LENGTH (value_type (val)));
2700 }
2701 }
2702
2703 /* Parse a type expression in the string [P..P+LENGTH). */
2704
2705 struct type *
2706 parse_and_eval_type (char *p, int length)
2707 {
2708 char *tmp = (char *) alloca (length + 4);
2709 struct expression *expr;
2710 tmp[0] = '(';
2711 memcpy (tmp + 1, p, length);
2712 tmp[length + 1] = ')';
2713 tmp[length + 2] = '0';
2714 tmp[length + 3] = '\0';
2715 expr = parse_expression (tmp);
2716 if (expr->elts[0].opcode != UNOP_CAST)
2717 error (_("Internal error in eval_type."));
2718 return expr->elts[1].type;
2719 }
2720
2721 int
2722 calc_f77_array_dims (struct type *array_type)
2723 {
2724 int ndimen = 1;
2725 struct type *tmp_type;
2726
2727 if ((TYPE_CODE (array_type) != TYPE_CODE_ARRAY))
2728 error (_("Can't get dimensions for a non-array type"));
2729
2730 tmp_type = array_type;
2731
2732 while ((tmp_type = TYPE_TARGET_TYPE (tmp_type)))
2733 {
2734 if (TYPE_CODE (tmp_type) == TYPE_CODE_ARRAY)
2735 ++ndimen;
2736 }
2737 return ndimen;
2738 }
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