gdb/remote: Use true/false instead of 1/0
[deliverable/binutils-gdb.git] / gdb / eval.c
1 /* Evaluate expressions for GDB.
2
3 Copyright (C) 1986-2021 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
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
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
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.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20 #include "defs.h"
21 #include "symtab.h"
22 #include "gdbtypes.h"
23 #include "value.h"
24 #include "expression.h"
25 #include "target.h"
26 #include "frame.h"
27 #include "gdbthread.h"
28 #include "language.h" /* For CAST_IS_CONVERSION. */
29 #include "cp-abi.h"
30 #include "infcall.h"
31 #include "objc-lang.h"
32 #include "block.h"
33 #include "parser-defs.h"
34 #include "cp-support.h"
35 #include "ui-out.h"
36 #include "regcache.h"
37 #include "user-regs.h"
38 #include "valprint.h"
39 #include "gdb_obstack.h"
40 #include "objfiles.h"
41 #include "typeprint.h"
42 #include <ctype.h>
43 #include "expop.h"
44 #include "c-exp.h"
45 #include "inferior.h"
46
47 \f
48 /* Parse the string EXP as a C expression, evaluate it,
49 and return the result as a number. */
50
51 CORE_ADDR
52 parse_and_eval_address (const char *exp)
53 {
54 expression_up expr = parse_expression (exp);
55
56 return value_as_address (evaluate_expression (expr.get ()));
57 }
58
59 /* Like parse_and_eval_address, but treats the value of the expression
60 as an integer, not an address, returns a LONGEST, not a CORE_ADDR. */
61 LONGEST
62 parse_and_eval_long (const char *exp)
63 {
64 expression_up expr = parse_expression (exp);
65
66 return value_as_long (evaluate_expression (expr.get ()));
67 }
68
69 struct value *
70 parse_and_eval (const char *exp)
71 {
72 expression_up expr = parse_expression (exp);
73
74 return evaluate_expression (expr.get ());
75 }
76
77 /* Parse up to a comma (or to a closeparen)
78 in the string EXPP as an expression, evaluate it, and return the value.
79 EXPP is advanced to point to the comma. */
80
81 struct value *
82 parse_to_comma_and_eval (const char **expp)
83 {
84 expression_up expr = parse_exp_1 (expp, 0, nullptr, 1);
85
86 return evaluate_expression (expr.get ());
87 }
88 \f
89
90 /* See expression.h. */
91
92 struct value *
93 expression::evaluate (struct type *expect_type, enum noside noside)
94 {
95 gdb::optional<enable_thread_stack_temporaries> stack_temporaries;
96 if (target_has_execution () && inferior_ptid != null_ptid
97 && language_defn->la_language == language_cplus
98 && !thread_stack_temporaries_enabled_p (inferior_thread ()))
99 stack_temporaries.emplace (inferior_thread ());
100
101 struct value *retval = op->evaluate (expect_type, this, noside);
102
103 if (stack_temporaries.has_value ()
104 && value_in_thread_stack_temporaries (retval, inferior_thread ()))
105 retval = value_non_lval (retval);
106
107 return retval;
108 }
109
110 /* See value.h. */
111
112 struct value *
113 evaluate_expression (struct expression *exp, struct type *expect_type)
114 {
115 return exp->evaluate (expect_type, EVAL_NORMAL);
116 }
117
118 /* Evaluate an expression, avoiding all memory references
119 and getting a value whose type alone is correct. */
120
121 struct value *
122 evaluate_type (struct expression *exp)
123 {
124 return exp->evaluate (nullptr, EVAL_AVOID_SIDE_EFFECTS);
125 }
126
127 /* Find the current value of a watchpoint on EXP. Return the value in
128 *VALP and *RESULTP and the chain of intermediate and final values
129 in *VAL_CHAIN. RESULTP and VAL_CHAIN may be NULL if the caller does
130 not need them.
131
132 If PRESERVE_ERRORS is true, then exceptions are passed through.
133 Otherwise, if PRESERVE_ERRORS is false, then if a memory error
134 occurs while evaluating the expression, *RESULTP will be set to
135 NULL. *RESULTP may be a lazy value, if the result could not be
136 read from memory. It is used to determine whether a value is
137 user-specified (we should watch the whole value) or intermediate
138 (we should watch only the bit used to locate the final value).
139
140 If the final value, or any intermediate value, could not be read
141 from memory, *VALP will be set to NULL. *VAL_CHAIN will still be
142 set to any referenced values. *VALP will never be a lazy value.
143 This is the value which we store in struct breakpoint.
144
145 If VAL_CHAIN is non-NULL, the values put into *VAL_CHAIN will be
146 released from the value chain. If VAL_CHAIN is NULL, all generated
147 values will be left on the value chain. */
148
149 void
150 fetch_subexp_value (struct expression *exp,
151 expr::operation *op,
152 struct value **valp, struct value **resultp,
153 std::vector<value_ref_ptr> *val_chain,
154 bool preserve_errors)
155 {
156 struct value *mark, *new_mark, *result;
157
158 *valp = NULL;
159 if (resultp)
160 *resultp = NULL;
161 if (val_chain)
162 val_chain->clear ();
163
164 /* Evaluate the expression. */
165 mark = value_mark ();
166 result = NULL;
167
168 try
169 {
170 result = op->evaluate (nullptr, exp, EVAL_NORMAL);
171 }
172 catch (const gdb_exception &ex)
173 {
174 /* Ignore memory errors if we want watchpoints pointing at
175 inaccessible memory to still be created; otherwise, throw the
176 error to some higher catcher. */
177 switch (ex.error)
178 {
179 case MEMORY_ERROR:
180 if (!preserve_errors)
181 break;
182 /* Fall through. */
183 default:
184 throw;
185 break;
186 }
187 }
188
189 new_mark = value_mark ();
190 if (mark == new_mark)
191 return;
192 if (resultp)
193 *resultp = result;
194
195 /* Make sure it's not lazy, so that after the target stops again we
196 have a non-lazy previous value to compare with. */
197 if (result != NULL)
198 {
199 if (!value_lazy (result))
200 *valp = result;
201 else
202 {
203
204 try
205 {
206 value_fetch_lazy (result);
207 *valp = result;
208 }
209 catch (const gdb_exception_error &except)
210 {
211 }
212 }
213 }
214
215 if (val_chain)
216 {
217 /* Return the chain of intermediate values. We use this to
218 decide which addresses to watch. */
219 *val_chain = value_release_to_mark (mark);
220 }
221 }
222
223 /* Promote value ARG1 as appropriate before performing a unary operation
224 on this argument.
225 If the result is not appropriate for any particular language then it
226 needs to patch this function. */
227
228 void
229 unop_promote (const struct language_defn *language, struct gdbarch *gdbarch,
230 struct value **arg1)
231 {
232 struct type *type1;
233
234 *arg1 = coerce_ref (*arg1);
235 type1 = check_typedef (value_type (*arg1));
236
237 if (is_integral_type (type1))
238 {
239 switch (language->la_language)
240 {
241 default:
242 /* Perform integral promotion for ANSI C/C++.
243 If not appropriate for any particular language
244 it needs to modify this function. */
245 {
246 struct type *builtin_int = builtin_type (gdbarch)->builtin_int;
247
248 if (TYPE_LENGTH (type1) < TYPE_LENGTH (builtin_int))
249 *arg1 = value_cast (builtin_int, *arg1);
250 }
251 break;
252 }
253 }
254 }
255
256 /* Promote values ARG1 and ARG2 as appropriate before performing a binary
257 operation on those two operands.
258 If the result is not appropriate for any particular language then it
259 needs to patch this function. */
260
261 void
262 binop_promote (const struct language_defn *language, struct gdbarch *gdbarch,
263 struct value **arg1, struct value **arg2)
264 {
265 struct type *promoted_type = NULL;
266 struct type *type1;
267 struct type *type2;
268
269 *arg1 = coerce_ref (*arg1);
270 *arg2 = coerce_ref (*arg2);
271
272 type1 = check_typedef (value_type (*arg1));
273 type2 = check_typedef (value_type (*arg2));
274
275 if ((type1->code () != TYPE_CODE_FLT
276 && type1->code () != TYPE_CODE_DECFLOAT
277 && !is_integral_type (type1))
278 || (type2->code () != TYPE_CODE_FLT
279 && type2->code () != TYPE_CODE_DECFLOAT
280 && !is_integral_type (type2)))
281 return;
282
283 if (is_fixed_point_type (type1) || is_fixed_point_type (type2))
284 return;
285
286 if (type1->code () == TYPE_CODE_DECFLOAT
287 || type2->code () == TYPE_CODE_DECFLOAT)
288 {
289 /* No promotion required. */
290 }
291 else if (type1->code () == TYPE_CODE_FLT
292 || type2->code () == TYPE_CODE_FLT)
293 {
294 switch (language->la_language)
295 {
296 case language_c:
297 case language_cplus:
298 case language_asm:
299 case language_objc:
300 case language_opencl:
301 /* No promotion required. */
302 break;
303
304 default:
305 /* For other languages the result type is unchanged from gdb
306 version 6.7 for backward compatibility.
307 If either arg was long double, make sure that value is also long
308 double. Otherwise use double. */
309 if (TYPE_LENGTH (type1) * 8 > gdbarch_double_bit (gdbarch)
310 || TYPE_LENGTH (type2) * 8 > gdbarch_double_bit (gdbarch))
311 promoted_type = builtin_type (gdbarch)->builtin_long_double;
312 else
313 promoted_type = builtin_type (gdbarch)->builtin_double;
314 break;
315 }
316 }
317 else if (type1->code () == TYPE_CODE_BOOL
318 && type2->code () == TYPE_CODE_BOOL)
319 {
320 /* No promotion required. */
321 }
322 else
323 /* Integral operations here. */
324 /* FIXME: Also mixed integral/booleans, with result an integer. */
325 {
326 const struct builtin_type *builtin = builtin_type (gdbarch);
327 unsigned int promoted_len1 = TYPE_LENGTH (type1);
328 unsigned int promoted_len2 = TYPE_LENGTH (type2);
329 int is_unsigned1 = type1->is_unsigned ();
330 int is_unsigned2 = type2->is_unsigned ();
331 unsigned int result_len;
332 int unsigned_operation;
333
334 /* Determine type length and signedness after promotion for
335 both operands. */
336 if (promoted_len1 < TYPE_LENGTH (builtin->builtin_int))
337 {
338 is_unsigned1 = 0;
339 promoted_len1 = TYPE_LENGTH (builtin->builtin_int);
340 }
341 if (promoted_len2 < TYPE_LENGTH (builtin->builtin_int))
342 {
343 is_unsigned2 = 0;
344 promoted_len2 = TYPE_LENGTH (builtin->builtin_int);
345 }
346
347 if (promoted_len1 > promoted_len2)
348 {
349 unsigned_operation = is_unsigned1;
350 result_len = promoted_len1;
351 }
352 else if (promoted_len2 > promoted_len1)
353 {
354 unsigned_operation = is_unsigned2;
355 result_len = promoted_len2;
356 }
357 else
358 {
359 unsigned_operation = is_unsigned1 || is_unsigned2;
360 result_len = promoted_len1;
361 }
362
363 switch (language->la_language)
364 {
365 case language_c:
366 case language_cplus:
367 case language_asm:
368 case language_objc:
369 if (result_len <= TYPE_LENGTH (builtin->builtin_int))
370 {
371 promoted_type = (unsigned_operation
372 ? builtin->builtin_unsigned_int
373 : builtin->builtin_int);
374 }
375 else if (result_len <= TYPE_LENGTH (builtin->builtin_long))
376 {
377 promoted_type = (unsigned_operation
378 ? builtin->builtin_unsigned_long
379 : builtin->builtin_long);
380 }
381 else
382 {
383 promoted_type = (unsigned_operation
384 ? builtin->builtin_unsigned_long_long
385 : builtin->builtin_long_long);
386 }
387 break;
388 case language_opencl:
389 if (result_len <= TYPE_LENGTH (lookup_signed_typename
390 (language, "int")))
391 {
392 promoted_type =
393 (unsigned_operation
394 ? lookup_unsigned_typename (language, "int")
395 : lookup_signed_typename (language, "int"));
396 }
397 else if (result_len <= TYPE_LENGTH (lookup_signed_typename
398 (language, "long")))
399 {
400 promoted_type =
401 (unsigned_operation
402 ? lookup_unsigned_typename (language, "long")
403 : lookup_signed_typename (language,"long"));
404 }
405 break;
406 default:
407 /* For other languages the result type is unchanged from gdb
408 version 6.7 for backward compatibility.
409 If either arg was long long, make sure that value is also long
410 long. Otherwise use long. */
411 if (unsigned_operation)
412 {
413 if (result_len > gdbarch_long_bit (gdbarch) / HOST_CHAR_BIT)
414 promoted_type = builtin->builtin_unsigned_long_long;
415 else
416 promoted_type = builtin->builtin_unsigned_long;
417 }
418 else
419 {
420 if (result_len > gdbarch_long_bit (gdbarch) / HOST_CHAR_BIT)
421 promoted_type = builtin->builtin_long_long;
422 else
423 promoted_type = builtin->builtin_long;
424 }
425 break;
426 }
427 }
428
429 if (promoted_type)
430 {
431 /* Promote both operands to common type. */
432 *arg1 = value_cast (promoted_type, *arg1);
433 *arg2 = value_cast (promoted_type, *arg2);
434 }
435 }
436
437 static int
438 ptrmath_type_p (const struct language_defn *lang, struct type *type)
439 {
440 type = check_typedef (type);
441 if (TYPE_IS_REFERENCE (type))
442 type = TYPE_TARGET_TYPE (type);
443
444 switch (type->code ())
445 {
446 case TYPE_CODE_PTR:
447 case TYPE_CODE_FUNC:
448 return 1;
449
450 case TYPE_CODE_ARRAY:
451 return type->is_vector () ? 0 : lang->c_style_arrays_p ();
452
453 default:
454 return 0;
455 }
456 }
457
458 /* Represents a fake method with the given parameter types. This is
459 used by the parser to construct a temporary "expected" type for
460 method overload resolution. FLAGS is used as instance flags of the
461 new type, in order to be able to make the new type represent a
462 const/volatile overload. */
463
464 class fake_method
465 {
466 public:
467 fake_method (type_instance_flags flags,
468 int num_types, struct type **param_types);
469 ~fake_method ();
470
471 /* The constructed type. */
472 struct type *type () { return &m_type; }
473
474 private:
475 struct type m_type {};
476 main_type m_main_type {};
477 };
478
479 fake_method::fake_method (type_instance_flags flags,
480 int num_types, struct type **param_types)
481 {
482 struct type *type = &m_type;
483
484 TYPE_MAIN_TYPE (type) = &m_main_type;
485 TYPE_LENGTH (type) = 1;
486 type->set_code (TYPE_CODE_METHOD);
487 TYPE_CHAIN (type) = type;
488 type->set_instance_flags (flags);
489 if (num_types > 0)
490 {
491 if (param_types[num_types - 1] == NULL)
492 {
493 --num_types;
494 type->set_has_varargs (true);
495 }
496 else if (check_typedef (param_types[num_types - 1])->code ()
497 == TYPE_CODE_VOID)
498 {
499 --num_types;
500 /* Caller should have ensured this. */
501 gdb_assert (num_types == 0);
502 type->set_is_prototyped (true);
503 }
504 }
505
506 /* We don't use TYPE_ZALLOC here to allocate space as TYPE is owned by
507 neither an objfile nor a gdbarch. As a result we must manually
508 allocate memory for auxiliary fields, and free the memory ourselves
509 when we are done with it. */
510 type->set_num_fields (num_types);
511 type->set_fields
512 ((struct field *) xzalloc (sizeof (struct field) * num_types));
513
514 while (num_types-- > 0)
515 type->field (num_types).set_type (param_types[num_types]);
516 }
517
518 fake_method::~fake_method ()
519 {
520 xfree (m_type.fields ());
521 }
522
523 namespace expr
524 {
525
526 value *
527 type_instance_operation::evaluate (struct type *expect_type,
528 struct expression *exp,
529 enum noside noside)
530 {
531 type_instance_flags flags = std::get<0> (m_storage);
532 std::vector<type *> &types = std::get<1> (m_storage);
533
534 fake_method fake_expect_type (flags, types.size (), types.data ());
535 return std::get<2> (m_storage)->evaluate (fake_expect_type.type (),
536 exp, noside);
537 }
538
539 }
540
541 /* Helper for evaluating an OP_VAR_VALUE. */
542
543 value *
544 evaluate_var_value (enum noside noside, const block *blk, symbol *var)
545 {
546 /* JYG: We used to just return value_zero of the symbol type if
547 we're asked to avoid side effects. Otherwise we return
548 value_of_variable (...). However I'm not sure if
549 value_of_variable () has any side effect. We need a full value
550 object returned here for whatis_exp () to call evaluate_type ()
551 and then pass the full value to value_rtti_target_type () if we
552 are dealing with a pointer or reference to a base class and print
553 object is on. */
554
555 struct value *ret = NULL;
556
557 try
558 {
559 ret = value_of_variable (var, blk);
560 }
561
562 catch (const gdb_exception_error &except)
563 {
564 if (noside != EVAL_AVOID_SIDE_EFFECTS)
565 throw;
566
567 ret = value_zero (SYMBOL_TYPE (var), not_lval);
568 }
569
570 return ret;
571 }
572
573 namespace expr
574
575 {
576
577 value *
578 var_value_operation::evaluate (struct type *expect_type,
579 struct expression *exp,
580 enum noside noside)
581 {
582 symbol *var = std::get<0> (m_storage).symbol;
583 if (SYMBOL_TYPE (var)->code () == TYPE_CODE_ERROR)
584 error_unknown_type (var->print_name ());
585 return evaluate_var_value (noside, std::get<0> (m_storage).block, var);
586 }
587
588 } /* namespace expr */
589
590 /* Helper for evaluating an OP_VAR_MSYM_VALUE. */
591
592 value *
593 evaluate_var_msym_value (enum noside noside,
594 struct objfile *objfile, minimal_symbol *msymbol)
595 {
596 CORE_ADDR address;
597 type *the_type = find_minsym_type_and_address (msymbol, objfile, &address);
598
599 if (noside == EVAL_AVOID_SIDE_EFFECTS && !the_type->is_gnu_ifunc ())
600 return value_zero (the_type, not_lval);
601 else
602 return value_at_lazy (the_type, address);
603 }
604
605 /* See expression.h. */
606
607 value *
608 evaluate_subexp_do_call (expression *exp, enum noside noside,
609 value *callee,
610 gdb::array_view<value *> argvec,
611 const char *function_name,
612 type *default_return_type)
613 {
614 if (callee == NULL)
615 error (_("Cannot evaluate function -- may be inlined"));
616 if (noside == EVAL_AVOID_SIDE_EFFECTS)
617 {
618 /* If the return type doesn't look like a function type,
619 call an error. This can happen if somebody tries to turn
620 a variable into a function call. */
621
622 type *ftype = value_type (callee);
623
624 if (ftype->code () == TYPE_CODE_INTERNAL_FUNCTION)
625 {
626 /* We don't know anything about what the internal
627 function might return, but we have to return
628 something. */
629 return value_zero (builtin_type (exp->gdbarch)->builtin_int,
630 not_lval);
631 }
632 else if (ftype->code () == TYPE_CODE_XMETHOD)
633 {
634 type *return_type = result_type_of_xmethod (callee, argvec);
635
636 if (return_type == NULL)
637 error (_("Xmethod is missing return type."));
638 return value_zero (return_type, not_lval);
639 }
640 else if (ftype->code () == TYPE_CODE_FUNC
641 || ftype->code () == TYPE_CODE_METHOD)
642 {
643 if (ftype->is_gnu_ifunc ())
644 {
645 CORE_ADDR address = value_address (callee);
646 type *resolved_type = find_gnu_ifunc_target_type (address);
647
648 if (resolved_type != NULL)
649 ftype = resolved_type;
650 }
651
652 type *return_type = TYPE_TARGET_TYPE (ftype);
653
654 if (return_type == NULL)
655 return_type = default_return_type;
656
657 if (return_type == NULL)
658 error_call_unknown_return_type (function_name);
659
660 return allocate_value (return_type);
661 }
662 else
663 error (_("Expression of type other than "
664 "\"Function returning ...\" used as function"));
665 }
666 switch (value_type (callee)->code ())
667 {
668 case TYPE_CODE_INTERNAL_FUNCTION:
669 return call_internal_function (exp->gdbarch, exp->language_defn,
670 callee, argvec.size (), argvec.data ());
671 case TYPE_CODE_XMETHOD:
672 return call_xmethod (callee, argvec);
673 default:
674 return call_function_by_hand (callee, default_return_type, argvec);
675 }
676 }
677
678 namespace expr
679 {
680
681 value *
682 operation::evaluate_funcall (struct type *expect_type,
683 struct expression *exp,
684 enum noside noside,
685 const char *function_name,
686 const std::vector<operation_up> &args)
687 {
688 std::vector<value *> vals (args.size ());
689
690 value *callee = evaluate_with_coercion (exp, noside);
691 struct type *type = value_type (callee);
692 if (type->code () == TYPE_CODE_PTR)
693 type = TYPE_TARGET_TYPE (type);
694 for (int i = 0; i < args.size (); ++i)
695 {
696 if (i < type->num_fields ())
697 vals[i] = args[i]->evaluate (type->field (i).type (), exp, noside);
698 else
699 vals[i] = args[i]->evaluate_with_coercion (exp, noside);
700 }
701
702 return evaluate_subexp_do_call (exp, noside, callee, vals,
703 function_name, expect_type);
704 }
705
706 value *
707 var_value_operation::evaluate_funcall (struct type *expect_type,
708 struct expression *exp,
709 enum noside noside,
710 const std::vector<operation_up> &args)
711 {
712 if (!overload_resolution
713 || exp->language_defn->la_language != language_cplus)
714 return operation::evaluate_funcall (expect_type, exp, noside, args);
715
716 std::vector<value *> argvec (args.size ());
717 for (int i = 0; i < args.size (); ++i)
718 argvec[i] = args[i]->evaluate_with_coercion (exp, noside);
719
720 struct symbol *symp;
721 find_overload_match (argvec, NULL, NON_METHOD,
722 NULL, std::get<0> (m_storage).symbol,
723 NULL, &symp, NULL, 0, noside);
724
725 if (SYMBOL_TYPE (symp)->code () == TYPE_CODE_ERROR)
726 error_unknown_type (symp->print_name ());
727 value *callee = evaluate_var_value (noside, std::get<0> (m_storage).block,
728 symp);
729
730 return evaluate_subexp_do_call (exp, noside, callee, argvec,
731 nullptr, expect_type);
732 }
733
734 value *
735 scope_operation::evaluate_funcall (struct type *expect_type,
736 struct expression *exp,
737 enum noside noside,
738 const std::vector<operation_up> &args)
739 {
740 if (!overload_resolution
741 || exp->language_defn->la_language != language_cplus)
742 return operation::evaluate_funcall (expect_type, exp, noside, args);
743
744 /* Unpack it locally so we can properly handle overload
745 resolution. */
746 const std::string &name = std::get<1> (m_storage);
747 struct type *type = std::get<0> (m_storage);
748
749 symbol *function = NULL;
750 const char *function_name = NULL;
751 std::vector<value *> argvec (1 + args.size ());
752 if (type->code () == TYPE_CODE_NAMESPACE)
753 {
754 function = cp_lookup_symbol_namespace (type->name (),
755 name.c_str (),
756 get_selected_block (0),
757 VAR_DOMAIN).symbol;
758 if (function == NULL)
759 error (_("No symbol \"%s\" in namespace \"%s\"."),
760 name.c_str (), type->name ());
761 }
762 else
763 {
764 gdb_assert (type->code () == TYPE_CODE_STRUCT
765 || type->code () == TYPE_CODE_UNION);
766 function_name = name.c_str ();
767
768 /* We need a properly typed value for method lookup. */
769 argvec[0] = value_zero (type, lval_memory);
770 }
771
772 for (int i = 0; i < args.size (); ++i)
773 argvec[i + 1] = args[i]->evaluate_with_coercion (exp, noside);
774 gdb::array_view<value *> arg_view = argvec;
775
776 value *callee = nullptr;
777 if (function_name != nullptr)
778 {
779 int static_memfuncp;
780
781 find_overload_match (arg_view, function_name, METHOD,
782 &argvec[0], nullptr, &callee, nullptr,
783 &static_memfuncp, 0, noside);
784 if (!static_memfuncp)
785 {
786 /* For the time being, we don't handle this. */
787 error (_("Call to overloaded function %s requires "
788 "`this' pointer"),
789 function_name);
790 }
791
792 arg_view = arg_view.slice (1);
793 }
794 else
795 {
796 symbol *symp;
797 arg_view = arg_view.slice (1);
798 find_overload_match (arg_view, nullptr,
799 NON_METHOD, nullptr, function,
800 nullptr, &symp, nullptr, 1, noside);
801 callee = value_of_variable (symp, get_selected_block (0));
802 }
803
804 return evaluate_subexp_do_call (exp, noside, callee, arg_view,
805 nullptr, expect_type);
806 }
807
808 value *
809 structop_member_base::evaluate_funcall (struct type *expect_type,
810 struct expression *exp,
811 enum noside noside,
812 const std::vector<operation_up> &args)
813 {
814 /* First, evaluate the structure into lhs. */
815 value *lhs;
816 if (opcode () == STRUCTOP_MEMBER)
817 lhs = std::get<0> (m_storage)->evaluate_for_address (exp, noside);
818 else
819 lhs = std::get<0> (m_storage)->evaluate (nullptr, exp, noside);
820
821 std::vector<value *> vals (args.size () + 1);
822 gdb::array_view<value *> val_view = vals;
823 /* If the function is a virtual function, then the aggregate
824 value (providing the structure) plays its part by providing
825 the vtable. Otherwise, it is just along for the ride: call
826 the function directly. */
827 value *rhs = std::get<1> (m_storage)->evaluate (nullptr, exp, noside);
828 value *callee;
829
830 type *a1_type = check_typedef (value_type (rhs));
831 if (a1_type->code () == TYPE_CODE_METHODPTR)
832 {
833 if (noside == EVAL_AVOID_SIDE_EFFECTS)
834 callee = value_zero (TYPE_TARGET_TYPE (a1_type), not_lval);
835 else
836 callee = cplus_method_ptr_to_value (&lhs, rhs);
837
838 vals[0] = lhs;
839 }
840 else if (a1_type->code () == TYPE_CODE_MEMBERPTR)
841 {
842 struct type *type_ptr
843 = lookup_pointer_type (TYPE_SELF_TYPE (a1_type));
844 struct type *target_type_ptr
845 = lookup_pointer_type (TYPE_TARGET_TYPE (a1_type));
846
847 /* Now, convert this value to an address. */
848 lhs = value_cast (type_ptr, lhs);
849
850 long mem_offset = value_as_long (rhs);
851
852 callee = value_from_pointer (target_type_ptr,
853 value_as_long (lhs) + mem_offset);
854 callee = value_ind (callee);
855
856 val_view = val_view.slice (1);
857 }
858 else
859 error (_("Non-pointer-to-member value used in pointer-to-member "
860 "construct"));
861
862 for (int i = 0; i < args.size (); ++i)
863 vals[i + 1] = args[i]->evaluate_with_coercion (exp, noside);
864
865 return evaluate_subexp_do_call (exp, noside, callee, val_view,
866 nullptr, expect_type);
867
868 }
869
870 value *
871 structop_base_operation::evaluate_funcall
872 (struct type *expect_type, struct expression *exp, enum noside noside,
873 const std::vector<operation_up> &args)
874 {
875 /* Allocate space for the function call arguments, Including space for a
876 `this' pointer at the start. */
877 std::vector<value *> vals (args.size () + 1);
878 /* First, evaluate the structure into vals[0]. */
879 enum exp_opcode op = opcode ();
880 if (op == STRUCTOP_STRUCT)
881 {
882 /* If v is a variable in a register, and the user types
883 v.method (), this will produce an error, because v has no
884 address.
885
886 A possible way around this would be to allocate a copy of
887 the variable on the stack, copy in the contents, call the
888 function, and copy out the contents. I.e. convert this
889 from call by reference to call by copy-return (or
890 whatever it's called). However, this does not work
891 because it is not the same: the method being called could
892 stash a copy of the address, and then future uses through
893 that address (after the method returns) would be expected
894 to use the variable itself, not some copy of it. */
895 vals[0] = std::get<0> (m_storage)->evaluate_for_address (exp, noside);
896 }
897 else
898 {
899 vals[0] = std::get<0> (m_storage)->evaluate (nullptr, exp, noside);
900 /* Check to see if the operator '->' has been overloaded.
901 If the operator has been overloaded replace vals[0] with the
902 value returned by the custom operator and continue
903 evaluation. */
904 while (unop_user_defined_p (op, vals[0]))
905 {
906 struct value *value = nullptr;
907 try
908 {
909 value = value_x_unop (vals[0], op, noside);
910 }
911 catch (const gdb_exception_error &except)
912 {
913 if (except.error == NOT_FOUND_ERROR)
914 break;
915 else
916 throw;
917 }
918
919 vals[0] = value;
920 }
921 }
922
923 /* Evaluate the arguments. The '+ 1' here is to allow for the `this'
924 pointer we placed into vals[0]. */
925 for (int i = 0; i < args.size (); ++i)
926 vals[i + 1] = args[i]->evaluate_with_coercion (exp, noside);
927
928 /* The array view includes the `this' pointer. */
929 gdb::array_view<value *> arg_view (vals);
930
931 int static_memfuncp;
932 value *callee;
933 const char *tstr = std::get<1> (m_storage).c_str ();
934 if (overload_resolution
935 && exp->language_defn->la_language == language_cplus)
936 {
937 /* Language is C++, do some overload resolution before
938 evaluation. */
939 value *val0 = vals[0];
940 find_overload_match (arg_view, tstr, METHOD,
941 &val0, nullptr, &callee, nullptr,
942 &static_memfuncp, 0, noside);
943 vals[0] = val0;
944 }
945 else
946 /* Non-C++ case -- or no overload resolution. */
947 {
948 struct value *temp = vals[0];
949
950 callee = value_struct_elt (&temp, arg_view, tstr,
951 &static_memfuncp,
952 op == STRUCTOP_STRUCT
953 ? "structure" : "structure pointer");
954 /* value_struct_elt updates temp with the correct value of the
955 ``this'' pointer if necessary, so modify it to reflect any
956 ``this'' changes. */
957 vals[0] = value_from_longest (lookup_pointer_type (value_type (temp)),
958 value_address (temp)
959 + value_embedded_offset (temp));
960 }
961
962 /* Take out `this' if needed. */
963 if (static_memfuncp)
964 arg_view = arg_view.slice (1);
965
966 return evaluate_subexp_do_call (exp, noside, callee, arg_view,
967 nullptr, expect_type);
968 }
969
970
971 } /* namespace expr */
972
973 /* Return true if type is integral or reference to integral */
974
975 static bool
976 is_integral_or_integral_reference (struct type *type)
977 {
978 if (is_integral_type (type))
979 return true;
980
981 type = check_typedef (type);
982 return (type != nullptr
983 && TYPE_IS_REFERENCE (type)
984 && is_integral_type (TYPE_TARGET_TYPE (type)));
985 }
986
987 /* Helper function that implements the body of OP_SCOPE. */
988
989 struct value *
990 eval_op_scope (struct type *expect_type, struct expression *exp,
991 enum noside noside,
992 struct type *type, const char *string)
993 {
994 struct value *arg1 = value_aggregate_elt (type, string, expect_type,
995 0, noside);
996 if (arg1 == NULL)
997 error (_("There is no field named %s"), string);
998 return arg1;
999 }
1000
1001 /* Helper function that implements the body of OP_VAR_ENTRY_VALUE. */
1002
1003 struct value *
1004 eval_op_var_entry_value (struct type *expect_type, struct expression *exp,
1005 enum noside noside, symbol *sym)
1006 {
1007 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1008 return value_zero (SYMBOL_TYPE (sym), not_lval);
1009
1010 if (SYMBOL_COMPUTED_OPS (sym) == NULL
1011 || SYMBOL_COMPUTED_OPS (sym)->read_variable_at_entry == NULL)
1012 error (_("Symbol \"%s\" does not have any specific entry value"),
1013 sym->print_name ());
1014
1015 struct frame_info *frame = get_selected_frame (NULL);
1016 return SYMBOL_COMPUTED_OPS (sym)->read_variable_at_entry (sym, frame);
1017 }
1018
1019 /* Helper function that implements the body of OP_VAR_MSYM_VALUE. */
1020
1021 struct value *
1022 eval_op_var_msym_value (struct type *expect_type, struct expression *exp,
1023 enum noside noside, bool outermost_p,
1024 bound_minimal_symbol msymbol)
1025 {
1026 value *val = evaluate_var_msym_value (noside, msymbol.objfile,
1027 msymbol.minsym);
1028
1029 struct type *type = value_type (val);
1030 if (type->code () == TYPE_CODE_ERROR
1031 && (noside != EVAL_AVOID_SIDE_EFFECTS || !outermost_p))
1032 error_unknown_type (msymbol.minsym->print_name ());
1033 return val;
1034 }
1035
1036 /* Helper function that implements the body of OP_FUNC_STATIC_VAR. */
1037
1038 struct value *
1039 eval_op_func_static_var (struct type *expect_type, struct expression *exp,
1040 enum noside noside,
1041 value *func, const char *var)
1042 {
1043 CORE_ADDR addr = value_address (func);
1044 const block *blk = block_for_pc (addr);
1045 struct block_symbol sym = lookup_symbol (var, blk, VAR_DOMAIN, NULL);
1046 if (sym.symbol == NULL)
1047 error (_("No symbol \"%s\" in specified context."), var);
1048 return evaluate_var_value (noside, sym.block, sym.symbol);
1049 }
1050
1051 /* Helper function that implements the body of OP_REGISTER. */
1052
1053 struct value *
1054 eval_op_register (struct type *expect_type, struct expression *exp,
1055 enum noside noside, const char *name)
1056 {
1057 int regno;
1058 struct value *val;
1059
1060 regno = user_reg_map_name_to_regnum (exp->gdbarch,
1061 name, strlen (name));
1062 if (regno == -1)
1063 error (_("Register $%s not available."), name);
1064
1065 /* In EVAL_AVOID_SIDE_EFFECTS mode, we only need to return
1066 a value with the appropriate register type. Unfortunately,
1067 we don't have easy access to the type of user registers.
1068 So for these registers, we fetch the register value regardless
1069 of the evaluation mode. */
1070 if (noside == EVAL_AVOID_SIDE_EFFECTS
1071 && regno < gdbarch_num_cooked_regs (exp->gdbarch))
1072 val = value_zero (register_type (exp->gdbarch, regno), not_lval);
1073 else
1074 val = value_of_register (regno, get_selected_frame (NULL));
1075 if (val == NULL)
1076 error (_("Value of register %s not available."), name);
1077 else
1078 return val;
1079 }
1080
1081 /* Helper function that implements the body of OP_STRING. */
1082
1083 struct value *
1084 eval_op_string (struct type *expect_type, struct expression *exp,
1085 enum noside noside, int len, const char *string)
1086 {
1087 struct type *type = language_string_char_type (exp->language_defn,
1088 exp->gdbarch);
1089 return value_string (string, len, type);
1090 }
1091
1092 /* Helper function that implements the body of OP_OBJC_SELECTOR. */
1093
1094 struct value *
1095 eval_op_objc_selector (struct type *expect_type, struct expression *exp,
1096 enum noside noside,
1097 const char *sel)
1098 {
1099 struct type *selector_type = builtin_type (exp->gdbarch)->builtin_data_ptr;
1100 return value_from_longest (selector_type,
1101 lookup_child_selector (exp->gdbarch, sel));
1102 }
1103
1104 /* Helper function that implements the body of BINOP_CONCAT. */
1105
1106 struct value *
1107 eval_op_concat (struct type *expect_type, struct expression *exp,
1108 enum noside noside, struct value *arg1, struct value *arg2)
1109 {
1110 if (binop_user_defined_p (BINOP_CONCAT, arg1, arg2))
1111 return value_x_binop (arg1, arg2, BINOP_CONCAT, OP_NULL, noside);
1112 else
1113 return value_concat (arg1, arg2);
1114 }
1115
1116 /* A helper function for TERNOP_SLICE. */
1117
1118 struct value *
1119 eval_op_ternop (struct type *expect_type, struct expression *exp,
1120 enum noside noside,
1121 struct value *array, struct value *low, struct value *upper)
1122 {
1123 int lowbound = value_as_long (low);
1124 int upperbound = value_as_long (upper);
1125 return value_slice (array, lowbound, upperbound - lowbound + 1);
1126 }
1127
1128 /* A helper function for STRUCTOP_STRUCT. */
1129
1130 struct value *
1131 eval_op_structop_struct (struct type *expect_type, struct expression *exp,
1132 enum noside noside,
1133 struct value *arg1, const char *string)
1134 {
1135 struct value *arg3 = value_struct_elt (&arg1, {}, string,
1136 NULL, "structure");
1137 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1138 arg3 = value_zero (value_type (arg3), VALUE_LVAL (arg3));
1139 return arg3;
1140 }
1141
1142 /* A helper function for STRUCTOP_PTR. */
1143
1144 struct value *
1145 eval_op_structop_ptr (struct type *expect_type, struct expression *exp,
1146 enum noside noside,
1147 struct value *arg1, const char *string)
1148 {
1149 /* Check to see if operator '->' has been overloaded. If so replace
1150 arg1 with the value returned by evaluating operator->(). */
1151 while (unop_user_defined_p (STRUCTOP_PTR, arg1))
1152 {
1153 struct value *value = NULL;
1154 try
1155 {
1156 value = value_x_unop (arg1, STRUCTOP_PTR, noside);
1157 }
1158
1159 catch (const gdb_exception_error &except)
1160 {
1161 if (except.error == NOT_FOUND_ERROR)
1162 break;
1163 else
1164 throw;
1165 }
1166
1167 arg1 = value;
1168 }
1169
1170 /* JYG: if print object is on we need to replace the base type
1171 with rtti type in order to continue on with successful
1172 lookup of member / method only available in the rtti type. */
1173 {
1174 struct type *arg_type = value_type (arg1);
1175 struct type *real_type;
1176 int full, using_enc;
1177 LONGEST top;
1178 struct value_print_options opts;
1179
1180 get_user_print_options (&opts);
1181 if (opts.objectprint && TYPE_TARGET_TYPE (arg_type)
1182 && (TYPE_TARGET_TYPE (arg_type)->code () == TYPE_CODE_STRUCT))
1183 {
1184 real_type = value_rtti_indirect_type (arg1, &full, &top,
1185 &using_enc);
1186 if (real_type)
1187 arg1 = value_cast (real_type, arg1);
1188 }
1189 }
1190
1191 struct value *arg3 = value_struct_elt (&arg1, {}, string,
1192 NULL, "structure pointer");
1193 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1194 arg3 = value_zero (value_type (arg3), VALUE_LVAL (arg3));
1195 return arg3;
1196 }
1197
1198 /* A helper function for STRUCTOP_MEMBER. */
1199
1200 struct value *
1201 eval_op_member (struct type *expect_type, struct expression *exp,
1202 enum noside noside,
1203 struct value *arg1, struct value *arg2)
1204 {
1205 long mem_offset;
1206
1207 struct value *arg3;
1208 struct type *type = check_typedef (value_type (arg2));
1209 switch (type->code ())
1210 {
1211 case TYPE_CODE_METHODPTR:
1212 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1213 return value_zero (TYPE_TARGET_TYPE (type), not_lval);
1214 else
1215 {
1216 arg2 = cplus_method_ptr_to_value (&arg1, arg2);
1217 gdb_assert (value_type (arg2)->code () == TYPE_CODE_PTR);
1218 return value_ind (arg2);
1219 }
1220
1221 case TYPE_CODE_MEMBERPTR:
1222 /* Now, convert these values to an address. */
1223 arg1 = value_cast_pointers (lookup_pointer_type (TYPE_SELF_TYPE (type)),
1224 arg1, 1);
1225
1226 mem_offset = value_as_long (arg2);
1227
1228 arg3 = value_from_pointer (lookup_pointer_type (TYPE_TARGET_TYPE (type)),
1229 value_as_long (arg1) + mem_offset);
1230 return value_ind (arg3);
1231
1232 default:
1233 error (_("non-pointer-to-member value used "
1234 "in pointer-to-member construct"));
1235 }
1236 }
1237
1238 /* A helper function for BINOP_ADD. */
1239
1240 struct value *
1241 eval_op_add (struct type *expect_type, struct expression *exp,
1242 enum noside noside,
1243 struct value *arg1, struct value *arg2)
1244 {
1245 if (binop_user_defined_p (BINOP_ADD, arg1, arg2))
1246 return value_x_binop (arg1, arg2, BINOP_ADD, OP_NULL, noside);
1247 else if (ptrmath_type_p (exp->language_defn, value_type (arg1))
1248 && is_integral_or_integral_reference (value_type (arg2)))
1249 return value_ptradd (arg1, value_as_long (arg2));
1250 else if (ptrmath_type_p (exp->language_defn, value_type (arg2))
1251 && is_integral_or_integral_reference (value_type (arg1)))
1252 return value_ptradd (arg2, value_as_long (arg1));
1253 else
1254 {
1255 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1256 return value_binop (arg1, arg2, BINOP_ADD);
1257 }
1258 }
1259
1260 /* A helper function for BINOP_SUB. */
1261
1262 struct value *
1263 eval_op_sub (struct type *expect_type, struct expression *exp,
1264 enum noside noside,
1265 struct value *arg1, struct value *arg2)
1266 {
1267 if (binop_user_defined_p (BINOP_SUB, arg1, arg2))
1268 return value_x_binop (arg1, arg2, BINOP_SUB, OP_NULL, noside);
1269 else if (ptrmath_type_p (exp->language_defn, value_type (arg1))
1270 && ptrmath_type_p (exp->language_defn, value_type (arg2)))
1271 {
1272 /* FIXME -- should be ptrdiff_t */
1273 struct type *type = builtin_type (exp->gdbarch)->builtin_long;
1274 return value_from_longest (type, value_ptrdiff (arg1, arg2));
1275 }
1276 else if (ptrmath_type_p (exp->language_defn, value_type (arg1))
1277 && is_integral_or_integral_reference (value_type (arg2)))
1278 return value_ptradd (arg1, - value_as_long (arg2));
1279 else
1280 {
1281 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1282 return value_binop (arg1, arg2, BINOP_SUB);
1283 }
1284 }
1285
1286 /* Helper function for several different binary operations. */
1287
1288 struct value *
1289 eval_op_binary (struct type *expect_type, struct expression *exp,
1290 enum noside noside, enum exp_opcode op,
1291 struct value *arg1, struct value *arg2)
1292 {
1293 if (binop_user_defined_p (op, arg1, arg2))
1294 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1295 else
1296 {
1297 /* If EVAL_AVOID_SIDE_EFFECTS and we're dividing by zero,
1298 fudge arg2 to avoid division-by-zero, the caller is
1299 (theoretically) only looking for the type of the result. */
1300 if (noside == EVAL_AVOID_SIDE_EFFECTS
1301 /* ??? Do we really want to test for BINOP_MOD here?
1302 The implementation of value_binop gives it a well-defined
1303 value. */
1304 && (op == BINOP_DIV
1305 || op == BINOP_INTDIV
1306 || op == BINOP_REM
1307 || op == BINOP_MOD)
1308 && value_logical_not (arg2))
1309 {
1310 struct value *v_one;
1311
1312 v_one = value_one (value_type (arg2));
1313 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &v_one);
1314 return value_binop (arg1, v_one, op);
1315 }
1316 else
1317 {
1318 /* For shift and integer exponentiation operations,
1319 only promote the first argument. */
1320 if ((op == BINOP_LSH || op == BINOP_RSH || op == BINOP_EXP)
1321 && is_integral_type (value_type (arg2)))
1322 unop_promote (exp->language_defn, exp->gdbarch, &arg1);
1323 else
1324 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1325
1326 return value_binop (arg1, arg2, op);
1327 }
1328 }
1329 }
1330
1331 /* A helper function for BINOP_SUBSCRIPT. */
1332
1333 struct value *
1334 eval_op_subscript (struct type *expect_type, struct expression *exp,
1335 enum noside noside, enum exp_opcode op,
1336 struct value *arg1, struct value *arg2)
1337 {
1338 if (binop_user_defined_p (op, arg1, arg2))
1339 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1340 else
1341 {
1342 /* If the user attempts to subscript something that is not an
1343 array or pointer type (like a plain int variable for example),
1344 then report this as an error. */
1345
1346 arg1 = coerce_ref (arg1);
1347 struct type *type = check_typedef (value_type (arg1));
1348 if (type->code () != TYPE_CODE_ARRAY
1349 && type->code () != TYPE_CODE_PTR)
1350 {
1351 if (type->name ())
1352 error (_("cannot subscript something of type `%s'"),
1353 type->name ());
1354 else
1355 error (_("cannot subscript requested type"));
1356 }
1357
1358 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1359 return value_zero (TYPE_TARGET_TYPE (type), VALUE_LVAL (arg1));
1360 else
1361 return value_subscript (arg1, value_as_long (arg2));
1362 }
1363 }
1364
1365 /* A helper function for BINOP_EQUAL. */
1366
1367 struct value *
1368 eval_op_equal (struct type *expect_type, struct expression *exp,
1369 enum noside noside, enum exp_opcode op,
1370 struct value *arg1, struct value *arg2)
1371 {
1372 if (binop_user_defined_p (op, arg1, arg2))
1373 {
1374 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1375 }
1376 else
1377 {
1378 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1379 int tem = value_equal (arg1, arg2);
1380 struct type *type = language_bool_type (exp->language_defn,
1381 exp->gdbarch);
1382 return value_from_longest (type, (LONGEST) tem);
1383 }
1384 }
1385
1386 /* A helper function for BINOP_NOTEQUAL. */
1387
1388 struct value *
1389 eval_op_notequal (struct type *expect_type, struct expression *exp,
1390 enum noside noside, enum exp_opcode op,
1391 struct value *arg1, struct value *arg2)
1392 {
1393 if (binop_user_defined_p (op, arg1, arg2))
1394 {
1395 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1396 }
1397 else
1398 {
1399 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1400 int tem = value_equal (arg1, arg2);
1401 struct type *type = language_bool_type (exp->language_defn,
1402 exp->gdbarch);
1403 return value_from_longest (type, (LONGEST) ! tem);
1404 }
1405 }
1406
1407 /* A helper function for BINOP_LESS. */
1408
1409 struct value *
1410 eval_op_less (struct type *expect_type, struct expression *exp,
1411 enum noside noside, enum exp_opcode op,
1412 struct value *arg1, struct value *arg2)
1413 {
1414 if (binop_user_defined_p (op, arg1, arg2))
1415 {
1416 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1417 }
1418 else
1419 {
1420 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1421 int tem = value_less (arg1, arg2);
1422 struct type *type = language_bool_type (exp->language_defn,
1423 exp->gdbarch);
1424 return value_from_longest (type, (LONGEST) tem);
1425 }
1426 }
1427
1428 /* A helper function for BINOP_GTR. */
1429
1430 struct value *
1431 eval_op_gtr (struct type *expect_type, struct expression *exp,
1432 enum noside noside, enum exp_opcode op,
1433 struct value *arg1, struct value *arg2)
1434 {
1435 if (binop_user_defined_p (op, arg1, arg2))
1436 {
1437 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1438 }
1439 else
1440 {
1441 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1442 int tem = value_less (arg2, arg1);
1443 struct type *type = language_bool_type (exp->language_defn,
1444 exp->gdbarch);
1445 return value_from_longest (type, (LONGEST) tem);
1446 }
1447 }
1448
1449 /* A helper function for BINOP_GEQ. */
1450
1451 struct value *
1452 eval_op_geq (struct type *expect_type, struct expression *exp,
1453 enum noside noside, enum exp_opcode op,
1454 struct value *arg1, struct value *arg2)
1455 {
1456 if (binop_user_defined_p (op, arg1, arg2))
1457 {
1458 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1459 }
1460 else
1461 {
1462 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1463 int tem = value_less (arg2, arg1) || value_equal (arg1, arg2);
1464 struct type *type = language_bool_type (exp->language_defn,
1465 exp->gdbarch);
1466 return value_from_longest (type, (LONGEST) tem);
1467 }
1468 }
1469
1470 /* A helper function for BINOP_LEQ. */
1471
1472 struct value *
1473 eval_op_leq (struct type *expect_type, struct expression *exp,
1474 enum noside noside, enum exp_opcode op,
1475 struct value *arg1, struct value *arg2)
1476 {
1477 if (binop_user_defined_p (op, arg1, arg2))
1478 {
1479 return value_x_binop (arg1, arg2, op, OP_NULL, noside);
1480 }
1481 else
1482 {
1483 binop_promote (exp->language_defn, exp->gdbarch, &arg1, &arg2);
1484 int tem = value_less (arg1, arg2) || value_equal (arg1, arg2);
1485 struct type *type = language_bool_type (exp->language_defn,
1486 exp->gdbarch);
1487 return value_from_longest (type, (LONGEST) tem);
1488 }
1489 }
1490
1491 /* A helper function for BINOP_REPEAT. */
1492
1493 struct value *
1494 eval_op_repeat (struct type *expect_type, struct expression *exp,
1495 enum noside noside, enum exp_opcode op,
1496 struct value *arg1, struct value *arg2)
1497 {
1498 struct type *type = check_typedef (value_type (arg2));
1499 if (type->code () != TYPE_CODE_INT
1500 && type->code () != TYPE_CODE_ENUM)
1501 error (_("Non-integral right operand for \"@\" operator."));
1502 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1503 {
1504 return allocate_repeat_value (value_type (arg1),
1505 longest_to_int (value_as_long (arg2)));
1506 }
1507 else
1508 return value_repeat (arg1, longest_to_int (value_as_long (arg2)));
1509 }
1510
1511 /* A helper function for UNOP_PLUS. */
1512
1513 struct value *
1514 eval_op_plus (struct type *expect_type, struct expression *exp,
1515 enum noside noside, enum exp_opcode op,
1516 struct value *arg1)
1517 {
1518 if (unop_user_defined_p (op, arg1))
1519 return value_x_unop (arg1, op, noside);
1520 else
1521 {
1522 unop_promote (exp->language_defn, exp->gdbarch, &arg1);
1523 return value_pos (arg1);
1524 }
1525 }
1526
1527 /* A helper function for UNOP_NEG. */
1528
1529 struct value *
1530 eval_op_neg (struct type *expect_type, struct expression *exp,
1531 enum noside noside, enum exp_opcode op,
1532 struct value *arg1)
1533 {
1534 if (unop_user_defined_p (op, arg1))
1535 return value_x_unop (arg1, op, noside);
1536 else
1537 {
1538 unop_promote (exp->language_defn, exp->gdbarch, &arg1);
1539 return value_neg (arg1);
1540 }
1541 }
1542
1543 /* A helper function for UNOP_COMPLEMENT. */
1544
1545 struct value *
1546 eval_op_complement (struct type *expect_type, struct expression *exp,
1547 enum noside noside, enum exp_opcode op,
1548 struct value *arg1)
1549 {
1550 if (unop_user_defined_p (UNOP_COMPLEMENT, arg1))
1551 return value_x_unop (arg1, UNOP_COMPLEMENT, noside);
1552 else
1553 {
1554 unop_promote (exp->language_defn, exp->gdbarch, &arg1);
1555 return value_complement (arg1);
1556 }
1557 }
1558
1559 /* A helper function for UNOP_LOGICAL_NOT. */
1560
1561 struct value *
1562 eval_op_lognot (struct type *expect_type, struct expression *exp,
1563 enum noside noside, enum exp_opcode op,
1564 struct value *arg1)
1565 {
1566 if (unop_user_defined_p (op, arg1))
1567 return value_x_unop (arg1, op, noside);
1568 else
1569 {
1570 struct type *type = language_bool_type (exp->language_defn,
1571 exp->gdbarch);
1572 return value_from_longest (type, (LONGEST) value_logical_not (arg1));
1573 }
1574 }
1575
1576 /* A helper function for UNOP_IND. */
1577
1578 struct value *
1579 eval_op_ind (struct type *expect_type, struct expression *exp,
1580 enum noside noside,
1581 struct value *arg1)
1582 {
1583 struct type *type = check_typedef (value_type (arg1));
1584 if (type->code () == TYPE_CODE_METHODPTR
1585 || type->code () == TYPE_CODE_MEMBERPTR)
1586 error (_("Attempt to dereference pointer "
1587 "to member without an object"));
1588 if (unop_user_defined_p (UNOP_IND, arg1))
1589 return value_x_unop (arg1, UNOP_IND, noside);
1590 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
1591 {
1592 type = check_typedef (value_type (arg1));
1593
1594 /* If the type pointed to is dynamic then in order to resolve the
1595 dynamic properties we must actually dereference the pointer.
1596 There is a risk that this dereference will have side-effects
1597 in the inferior, but being able to print accurate type
1598 information seems worth the risk. */
1599 if ((type->code () != TYPE_CODE_PTR
1600 && !TYPE_IS_REFERENCE (type))
1601 || !is_dynamic_type (TYPE_TARGET_TYPE (type)))
1602 {
1603 if (type->code () == TYPE_CODE_PTR
1604 || TYPE_IS_REFERENCE (type)
1605 /* In C you can dereference an array to get the 1st elt. */
1606 || type->code () == TYPE_CODE_ARRAY)
1607 return value_zero (TYPE_TARGET_TYPE (type),
1608 lval_memory);
1609 else if (type->code () == TYPE_CODE_INT)
1610 /* GDB allows dereferencing an int. */
1611 return value_zero (builtin_type (exp->gdbarch)->builtin_int,
1612 lval_memory);
1613 else
1614 error (_("Attempt to take contents of a non-pointer value."));
1615 }
1616 }
1617
1618 /* Allow * on an integer so we can cast it to whatever we want.
1619 This returns an int, which seems like the most C-like thing to
1620 do. "long long" variables are rare enough that
1621 BUILTIN_TYPE_LONGEST would seem to be a mistake. */
1622 if (type->code () == TYPE_CODE_INT)
1623 return value_at_lazy (builtin_type (exp->gdbarch)->builtin_int,
1624 (CORE_ADDR) value_as_address (arg1));
1625 return value_ind (arg1);
1626 }
1627
1628 /* A helper function for UNOP_ALIGNOF. */
1629
1630 struct value *
1631 eval_op_alignof (struct type *expect_type, struct expression *exp,
1632 enum noside noside,
1633 struct value *arg1)
1634 {
1635 struct type *type = value_type (arg1);
1636 /* FIXME: This should be size_t. */
1637 struct type *size_type = builtin_type (exp->gdbarch)->builtin_int;
1638 ULONGEST align = type_align (type);
1639 if (align == 0)
1640 error (_("could not determine alignment of type"));
1641 return value_from_longest (size_type, align);
1642 }
1643
1644 /* A helper function for UNOP_MEMVAL. */
1645
1646 struct value *
1647 eval_op_memval (struct type *expect_type, struct expression *exp,
1648 enum noside noside,
1649 struct value *arg1, struct type *type)
1650 {
1651 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1652 return value_zero (type, lval_memory);
1653 else
1654 return value_at_lazy (type, value_as_address (arg1));
1655 }
1656
1657 /* A helper function for UNOP_PREINCREMENT. */
1658
1659 struct value *
1660 eval_op_preinc (struct type *expect_type, struct expression *exp,
1661 enum noside noside, enum exp_opcode op,
1662 struct value *arg1)
1663 {
1664 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1665 return arg1;
1666 else if (unop_user_defined_p (op, arg1))
1667 {
1668 return value_x_unop (arg1, op, noside);
1669 }
1670 else
1671 {
1672 struct value *arg2;
1673 if (ptrmath_type_p (exp->language_defn, value_type (arg1)))
1674 arg2 = value_ptradd (arg1, 1);
1675 else
1676 {
1677 struct value *tmp = arg1;
1678
1679 arg2 = value_one (value_type (arg1));
1680 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
1681 arg2 = value_binop (tmp, arg2, BINOP_ADD);
1682 }
1683
1684 return value_assign (arg1, arg2);
1685 }
1686 }
1687
1688 /* A helper function for UNOP_PREDECREMENT. */
1689
1690 struct value *
1691 eval_op_predec (struct type *expect_type, struct expression *exp,
1692 enum noside noside, enum exp_opcode op,
1693 struct value *arg1)
1694 {
1695 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1696 return arg1;
1697 else if (unop_user_defined_p (op, arg1))
1698 {
1699 return value_x_unop (arg1, op, noside);
1700 }
1701 else
1702 {
1703 struct value *arg2;
1704 if (ptrmath_type_p (exp->language_defn, value_type (arg1)))
1705 arg2 = value_ptradd (arg1, -1);
1706 else
1707 {
1708 struct value *tmp = arg1;
1709
1710 arg2 = value_one (value_type (arg1));
1711 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
1712 arg2 = value_binop (tmp, arg2, BINOP_SUB);
1713 }
1714
1715 return value_assign (arg1, arg2);
1716 }
1717 }
1718
1719 /* A helper function for UNOP_POSTINCREMENT. */
1720
1721 struct value *
1722 eval_op_postinc (struct type *expect_type, struct expression *exp,
1723 enum noside noside, enum exp_opcode op,
1724 struct value *arg1)
1725 {
1726 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1727 return arg1;
1728 else if (unop_user_defined_p (op, arg1))
1729 {
1730 return value_x_unop (arg1, op, noside);
1731 }
1732 else
1733 {
1734 struct value *arg3 = value_non_lval (arg1);
1735 struct value *arg2;
1736
1737 if (ptrmath_type_p (exp->language_defn, value_type (arg1)))
1738 arg2 = value_ptradd (arg1, 1);
1739 else
1740 {
1741 struct value *tmp = arg1;
1742
1743 arg2 = value_one (value_type (arg1));
1744 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
1745 arg2 = value_binop (tmp, arg2, BINOP_ADD);
1746 }
1747
1748 value_assign (arg1, arg2);
1749 return arg3;
1750 }
1751 }
1752
1753 /* A helper function for UNOP_POSTDECREMENT. */
1754
1755 struct value *
1756 eval_op_postdec (struct type *expect_type, struct expression *exp,
1757 enum noside noside, enum exp_opcode op,
1758 struct value *arg1)
1759 {
1760 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1761 return arg1;
1762 else if (unop_user_defined_p (op, arg1))
1763 {
1764 return value_x_unop (arg1, op, noside);
1765 }
1766 else
1767 {
1768 struct value *arg3 = value_non_lval (arg1);
1769 struct value *arg2;
1770
1771 if (ptrmath_type_p (exp->language_defn, value_type (arg1)))
1772 arg2 = value_ptradd (arg1, -1);
1773 else
1774 {
1775 struct value *tmp = arg1;
1776
1777 arg2 = value_one (value_type (arg1));
1778 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
1779 arg2 = value_binop (tmp, arg2, BINOP_SUB);
1780 }
1781
1782 value_assign (arg1, arg2);
1783 return arg3;
1784 }
1785 }
1786
1787 /* A helper function for OP_TYPE. */
1788
1789 struct value *
1790 eval_op_type (struct type *expect_type, struct expression *exp,
1791 enum noside noside, struct type *type)
1792 {
1793 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1794 return allocate_value (type);
1795 else
1796 error (_("Attempt to use a type name as an expression"));
1797 }
1798
1799 /* A helper function for BINOP_ASSIGN_MODIFY. */
1800
1801 struct value *
1802 eval_binop_assign_modify (struct type *expect_type, struct expression *exp,
1803 enum noside noside, enum exp_opcode op,
1804 struct value *arg1, struct value *arg2)
1805 {
1806 if (noside == EVAL_AVOID_SIDE_EFFECTS)
1807 return arg1;
1808 if (binop_user_defined_p (op, arg1, arg2))
1809 return value_x_binop (arg1, arg2, BINOP_ASSIGN_MODIFY, op, noside);
1810 else if (op == BINOP_ADD && ptrmath_type_p (exp->language_defn,
1811 value_type (arg1))
1812 && is_integral_type (value_type (arg2)))
1813 arg2 = value_ptradd (arg1, value_as_long (arg2));
1814 else if (op == BINOP_SUB && ptrmath_type_p (exp->language_defn,
1815 value_type (arg1))
1816 && is_integral_type (value_type (arg2)))
1817 arg2 = value_ptradd (arg1, - value_as_long (arg2));
1818 else
1819 {
1820 struct value *tmp = arg1;
1821
1822 /* For shift and integer exponentiation operations,
1823 only promote the first argument. */
1824 if ((op == BINOP_LSH || op == BINOP_RSH || op == BINOP_EXP)
1825 && is_integral_type (value_type (arg2)))
1826 unop_promote (exp->language_defn, exp->gdbarch, &tmp);
1827 else
1828 binop_promote (exp->language_defn, exp->gdbarch, &tmp, &arg2);
1829
1830 arg2 = value_binop (tmp, arg2, op);
1831 }
1832 return value_assign (arg1, arg2);
1833 }
1834
1835 /* Note that ARGS needs 2 empty slots up front and must end with a
1836 null pointer. */
1837 static struct value *
1838 eval_op_objc_msgcall (struct type *expect_type, struct expression *exp,
1839 enum noside noside, CORE_ADDR selector,
1840 value *target, gdb::array_view<value *> args)
1841 {
1842 CORE_ADDR responds_selector = 0;
1843 CORE_ADDR method_selector = 0;
1844
1845 int struct_return = 0;
1846
1847 struct value *msg_send = NULL;
1848 struct value *msg_send_stret = NULL;
1849 int gnu_runtime = 0;
1850
1851 struct value *method = NULL;
1852 struct value *called_method = NULL;
1853
1854 struct type *selector_type = NULL;
1855 struct type *long_type;
1856 struct type *type;
1857
1858 struct value *ret = NULL;
1859 CORE_ADDR addr = 0;
1860
1861 value *argvec[5];
1862
1863 long_type = builtin_type (exp->gdbarch)->builtin_long;
1864 selector_type = builtin_type (exp->gdbarch)->builtin_data_ptr;
1865
1866 if (value_as_long (target) == 0)
1867 return value_from_longest (long_type, 0);
1868
1869 if (lookup_minimal_symbol ("objc_msg_lookup", 0, 0).minsym)
1870 gnu_runtime = 1;
1871
1872 /* Find the method dispatch (Apple runtime) or method lookup
1873 (GNU runtime) function for Objective-C. These will be used
1874 to lookup the symbol information for the method. If we
1875 can't find any symbol information, then we'll use these to
1876 call the method, otherwise we can call the method
1877 directly. The msg_send_stret function is used in the special
1878 case of a method that returns a structure (Apple runtime
1879 only). */
1880 if (gnu_runtime)
1881 {
1882 type = selector_type;
1883
1884 type = lookup_function_type (type);
1885 type = lookup_pointer_type (type);
1886 type = lookup_function_type (type);
1887 type = lookup_pointer_type (type);
1888
1889 msg_send = find_function_in_inferior ("objc_msg_lookup", NULL);
1890 msg_send_stret
1891 = find_function_in_inferior ("objc_msg_lookup", NULL);
1892
1893 msg_send = value_from_pointer (type, value_as_address (msg_send));
1894 msg_send_stret = value_from_pointer (type,
1895 value_as_address (msg_send_stret));
1896 }
1897 else
1898 {
1899 msg_send = find_function_in_inferior ("objc_msgSend", NULL);
1900 /* Special dispatcher for methods returning structs. */
1901 msg_send_stret
1902 = find_function_in_inferior ("objc_msgSend_stret", NULL);
1903 }
1904
1905 /* Verify the target object responds to this method. The
1906 standard top-level 'Object' class uses a different name for
1907 the verification method than the non-standard, but more
1908 often used, 'NSObject' class. Make sure we check for both. */
1909
1910 responds_selector
1911 = lookup_child_selector (exp->gdbarch, "respondsToSelector:");
1912 if (responds_selector == 0)
1913 responds_selector
1914 = lookup_child_selector (exp->gdbarch, "respondsTo:");
1915
1916 if (responds_selector == 0)
1917 error (_("no 'respondsTo:' or 'respondsToSelector:' method"));
1918
1919 method_selector
1920 = lookup_child_selector (exp->gdbarch, "methodForSelector:");
1921 if (method_selector == 0)
1922 method_selector
1923 = lookup_child_selector (exp->gdbarch, "methodFor:");
1924
1925 if (method_selector == 0)
1926 error (_("no 'methodFor:' or 'methodForSelector:' method"));
1927
1928 /* Call the verification method, to make sure that the target
1929 class implements the desired method. */
1930
1931 argvec[0] = msg_send;
1932 argvec[1] = target;
1933 argvec[2] = value_from_longest (long_type, responds_selector);
1934 argvec[3] = value_from_longest (long_type, selector);
1935 argvec[4] = 0;
1936
1937 ret = call_function_by_hand (argvec[0], NULL, {argvec + 1, 3});
1938 if (gnu_runtime)
1939 {
1940 /* Function objc_msg_lookup returns a pointer. */
1941 argvec[0] = ret;
1942 ret = call_function_by_hand (argvec[0], NULL, {argvec + 1, 3});
1943 }
1944 if (value_as_long (ret) == 0)
1945 error (_("Target does not respond to this message selector."));
1946
1947 /* Call "methodForSelector:" method, to get the address of a
1948 function method that implements this selector for this
1949 class. If we can find a symbol at that address, then we
1950 know the return type, parameter types etc. (that's a good
1951 thing). */
1952
1953 argvec[0] = msg_send;
1954 argvec[1] = target;
1955 argvec[2] = value_from_longest (long_type, method_selector);
1956 argvec[3] = value_from_longest (long_type, selector);
1957 argvec[4] = 0;
1958
1959 ret = call_function_by_hand (argvec[0], NULL, {argvec + 1, 3});
1960 if (gnu_runtime)
1961 {
1962 argvec[0] = ret;
1963 ret = call_function_by_hand (argvec[0], NULL, {argvec + 1, 3});
1964 }
1965
1966 /* ret should now be the selector. */
1967
1968 addr = value_as_long (ret);
1969 if (addr)
1970 {
1971 struct symbol *sym = NULL;
1972
1973 /* The address might point to a function descriptor;
1974 resolve it to the actual code address instead. */
1975 addr = gdbarch_convert_from_func_ptr_addr
1976 (exp->gdbarch, addr, current_inferior ()->top_target ());
1977
1978 /* Is it a high_level symbol? */
1979 sym = find_pc_function (addr);
1980 if (sym != NULL)
1981 method = value_of_variable (sym, 0);
1982 }
1983
1984 /* If we found a method with symbol information, check to see
1985 if it returns a struct. Otherwise assume it doesn't. */
1986
1987 if (method)
1988 {
1989 CORE_ADDR funaddr;
1990 struct type *val_type;
1991
1992 funaddr = find_function_addr (method, &val_type);
1993
1994 block_for_pc (funaddr);
1995
1996 val_type = check_typedef (val_type);
1997
1998 if ((val_type == NULL)
1999 || (val_type->code () == TYPE_CODE_ERROR))
2000 {
2001 if (expect_type != NULL)
2002 val_type = expect_type;
2003 }
2004
2005 struct_return = using_struct_return (exp->gdbarch, method,
2006 val_type);
2007 }
2008 else if (expect_type != NULL)
2009 {
2010 struct_return = using_struct_return (exp->gdbarch, NULL,
2011 check_typedef (expect_type));
2012 }
2013
2014 /* Found a function symbol. Now we will substitute its
2015 value in place of the message dispatcher (obj_msgSend),
2016 so that we call the method directly instead of thru
2017 the dispatcher. The main reason for doing this is that
2018 we can now evaluate the return value and parameter values
2019 according to their known data types, in case we need to
2020 do things like promotion, dereferencing, special handling
2021 of structs and doubles, etc.
2022
2023 We want to use the type signature of 'method', but still
2024 jump to objc_msgSend() or objc_msgSend_stret() to better
2025 mimic the behavior of the runtime. */
2026
2027 if (method)
2028 {
2029 if (value_type (method)->code () != TYPE_CODE_FUNC)
2030 error (_("method address has symbol information "
2031 "with non-function type; skipping"));
2032
2033 /* Create a function pointer of the appropriate type, and
2034 replace its value with the value of msg_send or
2035 msg_send_stret. We must use a pointer here, as
2036 msg_send and msg_send_stret are of pointer type, and
2037 the representation may be different on systems that use
2038 function descriptors. */
2039 if (struct_return)
2040 called_method
2041 = value_from_pointer (lookup_pointer_type (value_type (method)),
2042 value_as_address (msg_send_stret));
2043 else
2044 called_method
2045 = value_from_pointer (lookup_pointer_type (value_type (method)),
2046 value_as_address (msg_send));
2047 }
2048 else
2049 {
2050 if (struct_return)
2051 called_method = msg_send_stret;
2052 else
2053 called_method = msg_send;
2054 }
2055
2056
2057 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2058 {
2059 /* If the return type doesn't look like a function type,
2060 call an error. This can happen if somebody tries to
2061 turn a variable into a function call. This is here
2062 because people often want to call, eg, strcmp, which
2063 gdb doesn't know is a function. If gdb isn't asked for
2064 it's opinion (ie. through "whatis"), it won't offer
2065 it. */
2066
2067 struct type *callee_type = value_type (called_method);
2068
2069 if (callee_type && callee_type->code () == TYPE_CODE_PTR)
2070 callee_type = TYPE_TARGET_TYPE (callee_type);
2071 callee_type = TYPE_TARGET_TYPE (callee_type);
2072
2073 if (callee_type)
2074 {
2075 if ((callee_type->code () == TYPE_CODE_ERROR) && expect_type)
2076 return allocate_value (expect_type);
2077 else
2078 return allocate_value (callee_type);
2079 }
2080 else
2081 error (_("Expression of type other than "
2082 "\"method returning ...\" used as a method"));
2083 }
2084
2085 /* Now depending on whether we found a symbol for the method,
2086 we will either call the runtime dispatcher or the method
2087 directly. */
2088
2089 args[0] = target;
2090 args[1] = value_from_longest (long_type, selector);
2091
2092 if (gnu_runtime && (method != NULL))
2093 {
2094 /* Function objc_msg_lookup returns a pointer. */
2095 struct type *tem_type = value_type (called_method);
2096 tem_type = lookup_pointer_type (lookup_function_type (tem_type));
2097 deprecated_set_value_type (called_method, tem_type);
2098 called_method = call_function_by_hand (called_method, NULL, args);
2099 }
2100
2101 return call_function_by_hand (called_method, NULL, args);
2102 }
2103
2104 /* Helper function for MULTI_SUBSCRIPT. */
2105
2106 static struct value *
2107 eval_multi_subscript (struct type *expect_type, struct expression *exp,
2108 enum noside noside, value *arg1,
2109 gdb::array_view<value *> args)
2110 {
2111 for (value *arg2 : args)
2112 {
2113 if (binop_user_defined_p (MULTI_SUBSCRIPT, arg1, arg2))
2114 {
2115 arg1 = value_x_binop (arg1, arg2, MULTI_SUBSCRIPT, OP_NULL, noside);
2116 }
2117 else
2118 {
2119 arg1 = coerce_ref (arg1);
2120 struct type *type = check_typedef (value_type (arg1));
2121
2122 switch (type->code ())
2123 {
2124 case TYPE_CODE_PTR:
2125 case TYPE_CODE_ARRAY:
2126 case TYPE_CODE_STRING:
2127 arg1 = value_subscript (arg1, value_as_long (arg2));
2128 break;
2129
2130 default:
2131 if (type->name ())
2132 error (_("cannot subscript something of type `%s'"),
2133 type->name ());
2134 else
2135 error (_("cannot subscript requested type"));
2136 }
2137 }
2138 }
2139 return (arg1);
2140 }
2141
2142 namespace expr
2143 {
2144
2145 value *
2146 objc_msgcall_operation::evaluate (struct type *expect_type,
2147 struct expression *exp,
2148 enum noside noside)
2149 {
2150 enum noside sub_no_side = EVAL_NORMAL;
2151 struct type *selector_type = builtin_type (exp->gdbarch)->builtin_data_ptr;
2152
2153 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2154 sub_no_side = EVAL_NORMAL;
2155 else
2156 sub_no_side = noside;
2157 value *target
2158 = std::get<1> (m_storage)->evaluate (selector_type, exp, sub_no_side);
2159
2160 if (value_as_long (target) == 0)
2161 sub_no_side = EVAL_AVOID_SIDE_EFFECTS;
2162 else
2163 sub_no_side = noside;
2164 std::vector<operation_up> &args = std::get<2> (m_storage);
2165 value **argvec = XALLOCAVEC (struct value *, args.size () + 3);
2166 argvec[0] = nullptr;
2167 argvec[1] = nullptr;
2168 for (int i = 0; i < args.size (); ++i)
2169 argvec[i + 2] = args[i]->evaluate_with_coercion (exp, sub_no_side);
2170 argvec[args.size () + 2] = nullptr;
2171
2172 return eval_op_objc_msgcall (expect_type, exp, noside, std::
2173 get<0> (m_storage), target,
2174 gdb::make_array_view (argvec,
2175 args.size () + 3));
2176 }
2177
2178 value *
2179 multi_subscript_operation::evaluate (struct type *expect_type,
2180 struct expression *exp,
2181 enum noside noside)
2182 {
2183 value *arg1 = std::get<0> (m_storage)->evaluate_with_coercion (exp, noside);
2184 std::vector<operation_up> &values = std::get<1> (m_storage);
2185 value **argvec = XALLOCAVEC (struct value *, values.size ());
2186 for (int ix = 0; ix < values.size (); ++ix)
2187 argvec[ix] = values[ix]->evaluate_with_coercion (exp, noside);
2188 return eval_multi_subscript (expect_type, exp, noside, arg1,
2189 gdb::make_array_view (argvec, values.size ()));
2190 }
2191
2192 value *
2193 logical_and_operation::evaluate (struct type *expect_type,
2194 struct expression *exp,
2195 enum noside noside)
2196 {
2197 value *arg1 = std::get<0> (m_storage)->evaluate (nullptr, exp, noside);
2198
2199 value *arg2 = std::get<1> (m_storage)->evaluate (nullptr, exp,
2200 EVAL_AVOID_SIDE_EFFECTS);
2201
2202 if (binop_user_defined_p (BINOP_LOGICAL_AND, arg1, arg2))
2203 {
2204 arg2 = std::get<1> (m_storage)->evaluate (nullptr, exp, noside);
2205 return value_x_binop (arg1, arg2, BINOP_LOGICAL_AND, OP_NULL, noside);
2206 }
2207 else
2208 {
2209 int tem = value_logical_not (arg1);
2210 if (!tem)
2211 {
2212 arg2 = std::get<1> (m_storage)->evaluate (nullptr, exp, noside);
2213 tem = value_logical_not (arg2);
2214 }
2215 struct type *type = language_bool_type (exp->language_defn,
2216 exp->gdbarch);
2217 return value_from_longest (type, !tem);
2218 }
2219 }
2220
2221 value *
2222 logical_or_operation::evaluate (struct type *expect_type,
2223 struct expression *exp,
2224 enum noside noside)
2225 {
2226 value *arg1 = std::get<0> (m_storage)->evaluate (nullptr, exp, noside);
2227
2228 value *arg2 = std::get<1> (m_storage)->evaluate (nullptr, exp,
2229 EVAL_AVOID_SIDE_EFFECTS);
2230
2231 if (binop_user_defined_p (BINOP_LOGICAL_OR, arg1, arg2))
2232 {
2233 arg2 = std::get<1> (m_storage)->evaluate (nullptr, exp, noside);
2234 return value_x_binop (arg1, arg2, BINOP_LOGICAL_OR, OP_NULL, noside);
2235 }
2236 else
2237 {
2238 int tem = value_logical_not (arg1);
2239 if (tem)
2240 {
2241 arg2 = std::get<1> (m_storage)->evaluate (nullptr, exp, noside);
2242 tem = value_logical_not (arg2);
2243 }
2244
2245 struct type *type = language_bool_type (exp->language_defn,
2246 exp->gdbarch);
2247 return value_from_longest (type, !tem);
2248 }
2249 }
2250
2251 value *
2252 adl_func_operation::evaluate (struct type *expect_type,
2253 struct expression *exp,
2254 enum noside noside)
2255 {
2256 std::vector<operation_up> &arg_ops = std::get<2> (m_storage);
2257 std::vector<value *> args (arg_ops.size ());
2258 for (int i = 0; i < arg_ops.size (); ++i)
2259 args[i] = arg_ops[i]->evaluate_with_coercion (exp, noside);
2260
2261 struct symbol *symp;
2262 find_overload_match (args, std::get<0> (m_storage).c_str (),
2263 NON_METHOD,
2264 nullptr, nullptr,
2265 nullptr, &symp, nullptr, 0, noside);
2266 if (SYMBOL_TYPE (symp)->code () == TYPE_CODE_ERROR)
2267 error_unknown_type (symp->print_name ());
2268 value *callee = evaluate_var_value (noside, std::get<1> (m_storage), symp);
2269 return evaluate_subexp_do_call (exp, noside, callee, args,
2270 nullptr, expect_type);
2271
2272 }
2273
2274 /* This function evaluates brace-initializers (in C/C++) for
2275 structure types. */
2276
2277 struct value *
2278 array_operation::evaluate_struct_tuple (struct value *struct_val,
2279 struct expression *exp,
2280 enum noside noside, int nargs)
2281 {
2282 const std::vector<operation_up> &in_args = std::get<2> (m_storage);
2283 struct type *struct_type = check_typedef (value_type (struct_val));
2284 struct type *field_type;
2285 int fieldno = -1;
2286
2287 int idx = 0;
2288 while (--nargs >= 0)
2289 {
2290 struct value *val = NULL;
2291 int bitpos, bitsize;
2292 bfd_byte *addr;
2293
2294 fieldno++;
2295 /* Skip static fields. */
2296 while (fieldno < struct_type->num_fields ()
2297 && field_is_static (&struct_type->field (fieldno)))
2298 fieldno++;
2299 if (fieldno >= struct_type->num_fields ())
2300 error (_("too many initializers"));
2301 field_type = struct_type->field (fieldno).type ();
2302 if (field_type->code () == TYPE_CODE_UNION
2303 && TYPE_FIELD_NAME (struct_type, fieldno)[0] == '0')
2304 error (_("don't know which variant you want to set"));
2305
2306 /* Here, struct_type is the type of the inner struct,
2307 while substruct_type is the type of the inner struct.
2308 These are the same for normal structures, but a variant struct
2309 contains anonymous union fields that contain substruct fields.
2310 The value fieldno is the index of the top-level (normal or
2311 anonymous union) field in struct_field, while the value
2312 subfieldno is the index of the actual real (named inner) field
2313 in substruct_type. */
2314
2315 field_type = struct_type->field (fieldno).type ();
2316 if (val == 0)
2317 val = in_args[idx++]->evaluate (field_type, exp, noside);
2318
2319 /* Now actually set the field in struct_val. */
2320
2321 /* Assign val to field fieldno. */
2322 if (value_type (val) != field_type)
2323 val = value_cast (field_type, val);
2324
2325 bitsize = TYPE_FIELD_BITSIZE (struct_type, fieldno);
2326 bitpos = TYPE_FIELD_BITPOS (struct_type, fieldno);
2327 addr = value_contents_writeable (struct_val) + bitpos / 8;
2328 if (bitsize)
2329 modify_field (struct_type, addr,
2330 value_as_long (val), bitpos % 8, bitsize);
2331 else
2332 memcpy (addr, value_contents (val),
2333 TYPE_LENGTH (value_type (val)));
2334
2335 }
2336 return struct_val;
2337 }
2338
2339 value *
2340 array_operation::evaluate (struct type *expect_type,
2341 struct expression *exp,
2342 enum noside noside)
2343 {
2344 int tem;
2345 int tem2 = std::get<0> (m_storage);
2346 int tem3 = std::get<1> (m_storage);
2347 const std::vector<operation_up> &in_args = std::get<2> (m_storage);
2348 int nargs = tem3 - tem2 + 1;
2349 struct type *type = expect_type ? check_typedef (expect_type) : nullptr;
2350
2351 if (expect_type != nullptr
2352 && type->code () == TYPE_CODE_STRUCT)
2353 {
2354 struct value *rec = allocate_value (expect_type);
2355
2356 memset (value_contents_raw (rec), '\0', TYPE_LENGTH (type));
2357 return evaluate_struct_tuple (rec, exp, noside, nargs);
2358 }
2359
2360 if (expect_type != nullptr
2361 && type->code () == TYPE_CODE_ARRAY)
2362 {
2363 struct type *range_type = type->index_type ();
2364 struct type *element_type = TYPE_TARGET_TYPE (type);
2365 struct value *array = allocate_value (expect_type);
2366 int element_size = TYPE_LENGTH (check_typedef (element_type));
2367 LONGEST low_bound, high_bound, index;
2368
2369 if (!get_discrete_bounds (range_type, &low_bound, &high_bound))
2370 {
2371 low_bound = 0;
2372 high_bound = (TYPE_LENGTH (type) / element_size) - 1;
2373 }
2374 index = low_bound;
2375 memset (value_contents_raw (array), 0, TYPE_LENGTH (expect_type));
2376 for (tem = nargs; --nargs >= 0;)
2377 {
2378 struct value *element;
2379
2380 element = in_args[index - low_bound]->evaluate (element_type,
2381 exp, noside);
2382 if (value_type (element) != element_type)
2383 element = value_cast (element_type, element);
2384 if (index > high_bound)
2385 /* To avoid memory corruption. */
2386 error (_("Too many array elements"));
2387 memcpy (value_contents_raw (array)
2388 + (index - low_bound) * element_size,
2389 value_contents (element),
2390 element_size);
2391 index++;
2392 }
2393 return array;
2394 }
2395
2396 if (expect_type != nullptr
2397 && type->code () == TYPE_CODE_SET)
2398 {
2399 struct value *set = allocate_value (expect_type);
2400 gdb_byte *valaddr = value_contents_raw (set);
2401 struct type *element_type = type->index_type ();
2402 struct type *check_type = element_type;
2403 LONGEST low_bound, high_bound;
2404
2405 /* Get targettype of elementtype. */
2406 while (check_type->code () == TYPE_CODE_RANGE
2407 || check_type->code () == TYPE_CODE_TYPEDEF)
2408 check_type = TYPE_TARGET_TYPE (check_type);
2409
2410 if (!get_discrete_bounds (element_type, &low_bound, &high_bound))
2411 error (_("(power)set type with unknown size"));
2412 memset (valaddr, '\0', TYPE_LENGTH (type));
2413 int idx = 0;
2414 for (tem = 0; tem < nargs; tem++)
2415 {
2416 LONGEST range_low, range_high;
2417 struct type *range_low_type, *range_high_type;
2418 struct value *elem_val;
2419
2420 elem_val = in_args[idx++]->evaluate (element_type, exp, noside);
2421 range_low_type = range_high_type = value_type (elem_val);
2422 range_low = range_high = value_as_long (elem_val);
2423
2424 /* Check types of elements to avoid mixture of elements from
2425 different types. Also check if type of element is "compatible"
2426 with element type of powerset. */
2427 if (range_low_type->code () == TYPE_CODE_RANGE)
2428 range_low_type = TYPE_TARGET_TYPE (range_low_type);
2429 if (range_high_type->code () == TYPE_CODE_RANGE)
2430 range_high_type = TYPE_TARGET_TYPE (range_high_type);
2431 if ((range_low_type->code () != range_high_type->code ())
2432 || (range_low_type->code () == TYPE_CODE_ENUM
2433 && (range_low_type != range_high_type)))
2434 /* different element modes. */
2435 error (_("POWERSET tuple elements of different mode"));
2436 if ((check_type->code () != range_low_type->code ())
2437 || (check_type->code () == TYPE_CODE_ENUM
2438 && range_low_type != check_type))
2439 error (_("incompatible POWERSET tuple elements"));
2440 if (range_low > range_high)
2441 {
2442 warning (_("empty POWERSET tuple range"));
2443 continue;
2444 }
2445 if (range_low < low_bound || range_high > high_bound)
2446 error (_("POWERSET tuple element out of range"));
2447 range_low -= low_bound;
2448 range_high -= low_bound;
2449 for (; range_low <= range_high; range_low++)
2450 {
2451 int bit_index = (unsigned) range_low % TARGET_CHAR_BIT;
2452
2453 if (gdbarch_byte_order (exp->gdbarch) == BFD_ENDIAN_BIG)
2454 bit_index = TARGET_CHAR_BIT - 1 - bit_index;
2455 valaddr[(unsigned) range_low / TARGET_CHAR_BIT]
2456 |= 1 << bit_index;
2457 }
2458 }
2459 return set;
2460 }
2461
2462 value **argvec = XALLOCAVEC (struct value *, nargs);
2463 for (tem = 0; tem < nargs; tem++)
2464 {
2465 /* Ensure that array expressions are coerced into pointer
2466 objects. */
2467 argvec[tem] = in_args[tem]->evaluate_with_coercion (exp, noside);
2468 }
2469 return value_array (tem2, tem3, argvec);
2470 }
2471
2472 }
2473
2474 \f
2475 /* Helper for evaluate_subexp_for_address. */
2476
2477 static value *
2478 evaluate_subexp_for_address_base (struct expression *exp, enum noside noside,
2479 value *x)
2480 {
2481 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2482 {
2483 struct type *type = check_typedef (value_type (x));
2484
2485 if (TYPE_IS_REFERENCE (type))
2486 return value_zero (lookup_pointer_type (TYPE_TARGET_TYPE (type)),
2487 not_lval);
2488 else if (VALUE_LVAL (x) == lval_memory || value_must_coerce_to_target (x))
2489 return value_zero (lookup_pointer_type (value_type (x)),
2490 not_lval);
2491 else
2492 error (_("Attempt to take address of "
2493 "value not located in memory."));
2494 }
2495 return value_addr (x);
2496 }
2497
2498 namespace expr
2499 {
2500
2501 value *
2502 operation::evaluate_for_cast (struct type *expect_type,
2503 struct expression *exp,
2504 enum noside noside)
2505 {
2506 value *val = evaluate (expect_type, exp, noside);
2507 return value_cast (expect_type, val);
2508 }
2509
2510 value *
2511 operation::evaluate_for_address (struct expression *exp, enum noside noside)
2512 {
2513 value *val = evaluate (nullptr, exp, noside);
2514 return evaluate_subexp_for_address_base (exp, noside, val);
2515 }
2516
2517 value *
2518 scope_operation::evaluate_for_address (struct expression *exp,
2519 enum noside noside)
2520 {
2521 value *x = value_aggregate_elt (std::get<0> (m_storage),
2522 std::get<1> (m_storage).c_str (),
2523 NULL, 1, noside);
2524 if (x == NULL)
2525 error (_("There is no field named %s"), std::get<1> (m_storage).c_str ());
2526 return x;
2527 }
2528
2529 value *
2530 unop_ind_base_operation::evaluate_for_address (struct expression *exp,
2531 enum noside noside)
2532 {
2533 value *x = std::get<0> (m_storage)->evaluate (nullptr, exp, noside);
2534
2535 /* We can't optimize out "&*" if there's a user-defined operator*. */
2536 if (unop_user_defined_p (UNOP_IND, x))
2537 {
2538 x = value_x_unop (x, UNOP_IND, noside);
2539 return evaluate_subexp_for_address_base (exp, noside, x);
2540 }
2541
2542 return coerce_array (x);
2543 }
2544
2545 value *
2546 var_msym_value_operation::evaluate_for_address (struct expression *exp,
2547 enum noside noside)
2548 {
2549 const bound_minimal_symbol &b = std::get<0> (m_storage);
2550 value *val = evaluate_var_msym_value (noside, b.objfile, b.minsym);
2551 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2552 {
2553 struct type *type = lookup_pointer_type (value_type (val));
2554 return value_zero (type, not_lval);
2555 }
2556 else
2557 return value_addr (val);
2558 }
2559
2560 value *
2561 unop_memval_operation::evaluate_for_address (struct expression *exp,
2562 enum noside noside)
2563 {
2564 return value_cast (lookup_pointer_type (std::get<1> (m_storage)),
2565 std::get<0> (m_storage)->evaluate (nullptr, exp, noside));
2566 }
2567
2568 value *
2569 unop_memval_type_operation::evaluate_for_address (struct expression *exp,
2570 enum noside noside)
2571 {
2572 value *typeval = std::get<0> (m_storage)->evaluate (nullptr, exp,
2573 EVAL_AVOID_SIDE_EFFECTS);
2574 struct type *type = value_type (typeval);
2575 return value_cast (lookup_pointer_type (type),
2576 std::get<1> (m_storage)->evaluate (nullptr, exp, noside));
2577 }
2578
2579 value *
2580 var_value_operation::evaluate_for_address (struct expression *exp,
2581 enum noside noside)
2582 {
2583 symbol *var = std::get<0> (m_storage).symbol;
2584
2585 /* C++: The "address" of a reference should yield the address
2586 * of the object pointed to. Let value_addr() deal with it. */
2587 if (TYPE_IS_REFERENCE (SYMBOL_TYPE (var)))
2588 return operation::evaluate_for_address (exp, noside);
2589
2590 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2591 {
2592 struct type *type = lookup_pointer_type (SYMBOL_TYPE (var));
2593 enum address_class sym_class = SYMBOL_CLASS (var);
2594
2595 if (sym_class == LOC_CONST
2596 || sym_class == LOC_CONST_BYTES
2597 || sym_class == LOC_REGISTER)
2598 error (_("Attempt to take address of register or constant."));
2599
2600 return value_zero (type, not_lval);
2601 }
2602 else
2603 return address_of_variable (var, std::get<0> (m_storage).block);
2604 }
2605
2606 value *
2607 var_value_operation::evaluate_with_coercion (struct expression *exp,
2608 enum noside noside)
2609 {
2610 struct symbol *var = std::get<0> (m_storage).symbol;
2611 struct type *type = check_typedef (SYMBOL_TYPE (var));
2612 if (type->code () == TYPE_CODE_ARRAY
2613 && !type->is_vector ()
2614 && CAST_IS_CONVERSION (exp->language_defn))
2615 {
2616 struct value *val = address_of_variable (var,
2617 std::get<0> (m_storage).block);
2618 return value_cast (lookup_pointer_type (TYPE_TARGET_TYPE (type)), val);
2619 }
2620 return evaluate (nullptr, exp, noside);
2621 }
2622
2623 }
2624
2625 /* Helper function for evaluating the size of a type. */
2626
2627 static value *
2628 evaluate_subexp_for_sizeof_base (struct expression *exp, struct type *type)
2629 {
2630 /* FIXME: This should be size_t. */
2631 struct type *size_type = builtin_type (exp->gdbarch)->builtin_int;
2632 /* $5.3.3/2 of the C++ Standard (n3290 draft) says of sizeof:
2633 "When applied to a reference or a reference type, the result is
2634 the size of the referenced type." */
2635 type = check_typedef (type);
2636 if (exp->language_defn->la_language == language_cplus
2637 && (TYPE_IS_REFERENCE (type)))
2638 type = check_typedef (TYPE_TARGET_TYPE (type));
2639 return value_from_longest (size_type, (LONGEST) TYPE_LENGTH (type));
2640 }
2641
2642 namespace expr
2643 {
2644
2645 value *
2646 operation::evaluate_for_sizeof (struct expression *exp, enum noside noside)
2647 {
2648 value *val = evaluate (nullptr, exp, EVAL_AVOID_SIDE_EFFECTS);
2649 return evaluate_subexp_for_sizeof_base (exp, value_type (val));
2650 }
2651
2652 value *
2653 var_msym_value_operation::evaluate_for_sizeof (struct expression *exp,
2654 enum noside noside)
2655
2656 {
2657 const bound_minimal_symbol &b = std::get<0> (m_storage);
2658 value *mval = evaluate_var_msym_value (noside, b.objfile, b.minsym);
2659
2660 struct type *type = value_type (mval);
2661 if (type->code () == TYPE_CODE_ERROR)
2662 error_unknown_type (b.minsym->print_name ());
2663
2664 /* FIXME: This should be size_t. */
2665 struct type *size_type = builtin_type (exp->gdbarch)->builtin_int;
2666 return value_from_longest (size_type, TYPE_LENGTH (type));
2667 }
2668
2669 value *
2670 subscript_operation::evaluate_for_sizeof (struct expression *exp,
2671 enum noside noside)
2672 {
2673 if (noside == EVAL_NORMAL)
2674 {
2675 value *val = std::get<0> (m_storage)->evaluate (nullptr, exp,
2676 EVAL_AVOID_SIDE_EFFECTS);
2677 struct type *type = check_typedef (value_type (val));
2678 if (type->code () == TYPE_CODE_ARRAY)
2679 {
2680 type = check_typedef (TYPE_TARGET_TYPE (type));
2681 if (type->code () == TYPE_CODE_ARRAY)
2682 {
2683 type = type->index_type ();
2684 /* Only re-evaluate the right hand side if the resulting type
2685 is a variable length type. */
2686 if (type->bounds ()->flag_bound_evaluated)
2687 {
2688 val = evaluate (nullptr, exp, EVAL_NORMAL);
2689 /* FIXME: This should be size_t. */
2690 struct type *size_type
2691 = builtin_type (exp->gdbarch)->builtin_int;
2692 return value_from_longest
2693 (size_type, (LONGEST) TYPE_LENGTH (value_type (val)));
2694 }
2695 }
2696 }
2697 }
2698
2699 return operation::evaluate_for_sizeof (exp, noside);
2700 }
2701
2702 value *
2703 unop_ind_base_operation::evaluate_for_sizeof (struct expression *exp,
2704 enum noside noside)
2705 {
2706 value *val = std::get<0> (m_storage)->evaluate (nullptr, exp,
2707 EVAL_AVOID_SIDE_EFFECTS);
2708 struct type *type = check_typedef (value_type (val));
2709 if (type->code () != TYPE_CODE_PTR
2710 && !TYPE_IS_REFERENCE (type)
2711 && type->code () != TYPE_CODE_ARRAY)
2712 error (_("Attempt to take contents of a non-pointer value."));
2713 type = TYPE_TARGET_TYPE (type);
2714 if (is_dynamic_type (type))
2715 type = value_type (value_ind (val));
2716 /* FIXME: This should be size_t. */
2717 struct type *size_type = builtin_type (exp->gdbarch)->builtin_int;
2718 return value_from_longest (size_type, (LONGEST) TYPE_LENGTH (type));
2719 }
2720
2721 value *
2722 unop_memval_operation::evaluate_for_sizeof (struct expression *exp,
2723 enum noside noside)
2724 {
2725 return evaluate_subexp_for_sizeof_base (exp, std::get<1> (m_storage));
2726 }
2727
2728 value *
2729 unop_memval_type_operation::evaluate_for_sizeof (struct expression *exp,
2730 enum noside noside)
2731 {
2732 value *typeval = std::get<0> (m_storage)->evaluate (nullptr, exp,
2733 EVAL_AVOID_SIDE_EFFECTS);
2734 return evaluate_subexp_for_sizeof_base (exp, value_type (typeval));
2735 }
2736
2737 value *
2738 var_value_operation::evaluate_for_sizeof (struct expression *exp,
2739 enum noside noside)
2740 {
2741 struct type *type = SYMBOL_TYPE (std::get<0> (m_storage).symbol);
2742 if (is_dynamic_type (type))
2743 {
2744 value *val = evaluate (nullptr, exp, EVAL_NORMAL);
2745 type = value_type (val);
2746 if (type->code () == TYPE_CODE_ARRAY)
2747 {
2748 /* FIXME: This should be size_t. */
2749 struct type *size_type = builtin_type (exp->gdbarch)->builtin_int;
2750 if (type_not_allocated (type) || type_not_associated (type))
2751 return value_zero (size_type, not_lval);
2752 else if (is_dynamic_type (type->index_type ())
2753 && type->bounds ()->high.kind () == PROP_UNDEFINED)
2754 return allocate_optimized_out_value (size_type);
2755 }
2756 }
2757 return evaluate_subexp_for_sizeof_base (exp, type);
2758 }
2759
2760 value *
2761 var_msym_value_operation::evaluate_for_cast (struct type *to_type,
2762 struct expression *exp,
2763 enum noside noside)
2764 {
2765 if (noside == EVAL_AVOID_SIDE_EFFECTS)
2766 return value_zero (to_type, not_lval);
2767
2768 const bound_minimal_symbol &b = std::get<0> (m_storage);
2769 value *val = evaluate_var_msym_value (noside, b.objfile, b.minsym);
2770
2771 val = value_cast (to_type, val);
2772
2773 /* Don't allow e.g. '&(int)var_with_no_debug_info'. */
2774 if (VALUE_LVAL (val) == lval_memory)
2775 {
2776 if (value_lazy (val))
2777 value_fetch_lazy (val);
2778 VALUE_LVAL (val) = not_lval;
2779 }
2780 return val;
2781 }
2782
2783 value *
2784 var_value_operation::evaluate_for_cast (struct type *to_type,
2785 struct expression *exp,
2786 enum noside noside)
2787 {
2788 value *val = evaluate_var_value (noside,
2789 std::get<0> (m_storage).block,
2790 std::get<0> (m_storage).symbol);
2791
2792 val = value_cast (to_type, val);
2793
2794 /* Don't allow e.g. '&(int)var_with_no_debug_info'. */
2795 if (VALUE_LVAL (val) == lval_memory)
2796 {
2797 if (value_lazy (val))
2798 value_fetch_lazy (val);
2799 VALUE_LVAL (val) = not_lval;
2800 }
2801 return val;
2802 }
2803
2804 }
2805
2806 /* Parse a type expression in the string [P..P+LENGTH). */
2807
2808 struct type *
2809 parse_and_eval_type (const char *p, int length)
2810 {
2811 char *tmp = (char *) alloca (length + 4);
2812
2813 tmp[0] = '(';
2814 memcpy (tmp + 1, p, length);
2815 tmp[length + 1] = ')';
2816 tmp[length + 2] = '0';
2817 tmp[length + 3] = '\0';
2818 expression_up expr = parse_expression (tmp);
2819 expr::unop_cast_operation *op
2820 = dynamic_cast<expr::unop_cast_operation *> (expr->op.get ());
2821 if (op == nullptr)
2822 error (_("Internal error in eval_type."));
2823 return op->get_type ();
2824 }
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