* c-typeprint.c (c_print_type): Assume demangled arguments
[deliverable/binutils-gdb.git] / gdb / parse.c
CommitLineData
3d6b6a90 1/* Parse expressions for GDB.
d92f3f08 2 Copyright (C) 1986, 1989, 1990, 1991, 1994 Free Software Foundation, Inc.
3d6b6a90
JG
3 Modified from expread.y by the Department of Computer Science at the
4 State University of New York at Buffalo, 1991.
5
6This file is part of GDB.
7
8This program is free software; you can redistribute it and/or modify
9it under the terms of the GNU General Public License as published by
10the Free Software Foundation; either version 2 of the License, or
11(at your option) any later version.
12
13This program is distributed in the hope that it will be useful,
14but WITHOUT ANY WARRANTY; without even the implied warranty of
15MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16GNU General Public License for more details.
17
18You should have received a copy of the GNU General Public License
19along with this program; if not, write to the Free Software
20Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */
21
22/* Parse an expression from text in a string,
23 and return the result as a struct expression pointer.
24 That structure contains arithmetic operations in reverse polish,
25 with constants represented by operations that are followed by special data.
26 See expression.h for the details of the format.
27 What is important here is that it can be built up sequentially
28 during the process of parsing; the lower levels of the tree always
29 come first in the result. */
30
3d6b6a90 31#include "defs.h"
ba47c66a 32#include <string.h>
3d6b6a90 33#include "symtab.h"
1ab3bf1b 34#include "gdbtypes.h"
3d6b6a90
JG
35#include "frame.h"
36#include "expression.h"
37#include "value.h"
38#include "command.h"
39#include "language.h"
40#include "parser-defs.h"
79448221
JK
41\f
42/* Global variables declared in parser-defs.h (and commented there). */
43struct expression *expout;
44int expout_size;
45int expout_ptr;
46struct block *expression_context_block;
47struct block *innermost_block;
79448221
JK
48int arglist_len;
49union type_stack_elt *type_stack;
50int type_stack_depth, type_stack_size;
51char *lexptr;
52char *namecopy;
53int paren_depth;
54int comma_terminates;
55\f
9da75ad3
FF
56static void
57free_funcalls PARAMS ((void));
58
1ab3bf1b
JG
59static void
60prefixify_expression PARAMS ((struct expression *));
61
62static int
63length_of_subexp PARAMS ((struct expression *, int));
64
65static void
66prefixify_subexp PARAMS ((struct expression *, struct expression *, int, int));
67
9da75ad3
FF
68/* Data structure for saving values of arglist_len for function calls whose
69 arguments contain other function calls. */
70
71struct funcall
72 {
73 struct funcall *next;
74 int arglist_len;
75 };
76
77static struct funcall *funcall_chain;
78
3d6b6a90
JG
79/* Assign machine-independent names to certain registers
80 (unless overridden by the REGISTER_NAMES table) */
81
a332e593
SC
82#ifdef NO_STD_REGS
83unsigned num_std_regs = 0;
84struct std_regs std_regs[1];
85#else
3d6b6a90 86struct std_regs std_regs[] = {
a332e593 87
3d6b6a90
JG
88#ifdef PC_REGNUM
89 { "pc", PC_REGNUM },
90#endif
91#ifdef FP_REGNUM
92 { "fp", FP_REGNUM },
93#endif
94#ifdef SP_REGNUM
95 { "sp", SP_REGNUM },
96#endif
97#ifdef PS_REGNUM
98 { "ps", PS_REGNUM },
99#endif
a332e593 100
3d6b6a90
JG
101};
102
103unsigned num_std_regs = (sizeof std_regs / sizeof std_regs[0]);
104
a332e593
SC
105#endif
106
3d6b6a90
JG
107
108/* Begin counting arguments for a function call,
109 saving the data about any containing call. */
110
111void
112start_arglist ()
113{
9da75ad3 114 register struct funcall *new;
3d6b6a90 115
9da75ad3 116 new = (struct funcall *) xmalloc (sizeof (struct funcall));
3d6b6a90
JG
117 new->next = funcall_chain;
118 new->arglist_len = arglist_len;
119 arglist_len = 0;
120 funcall_chain = new;
121}
122
123/* Return the number of arguments in a function call just terminated,
124 and restore the data for the containing function call. */
125
126int
127end_arglist ()
128{
129 register int val = arglist_len;
130 register struct funcall *call = funcall_chain;
131 funcall_chain = call->next;
132 arglist_len = call->arglist_len;
be772100 133 free ((PTR)call);
3d6b6a90
JG
134 return val;
135}
136
137/* Free everything in the funcall chain.
138 Used when there is an error inside parsing. */
139
9da75ad3 140static void
3d6b6a90
JG
141free_funcalls ()
142{
143 register struct funcall *call, *next;
144
145 for (call = funcall_chain; call; call = next)
146 {
147 next = call->next;
be772100 148 free ((PTR)call);
3d6b6a90
JG
149 }
150}
151\f
152/* This page contains the functions for adding data to the struct expression
153 being constructed. */
154
155/* Add one element to the end of the expression. */
156
157/* To avoid a bug in the Sun 4 compiler, we pass things that can fit into
158 a register through here */
159
160void
161write_exp_elt (expelt)
162 union exp_element expelt;
163{
164 if (expout_ptr >= expout_size)
165 {
166 expout_size *= 2;
81028ab0
FF
167 expout = (struct expression *)
168 xrealloc ((char *) expout, sizeof (struct expression)
169 + EXP_ELEM_TO_BYTES (expout_size));
3d6b6a90
JG
170 }
171 expout->elts[expout_ptr++] = expelt;
172}
173
174void
175write_exp_elt_opcode (expelt)
176 enum exp_opcode expelt;
177{
178 union exp_element tmp;
179
180 tmp.opcode = expelt;
181
182 write_exp_elt (tmp);
183}
184
185void
186write_exp_elt_sym (expelt)
187 struct symbol *expelt;
188{
189 union exp_element tmp;
190
191 tmp.symbol = expelt;
192
193 write_exp_elt (tmp);
194}
195
479fdd26
JK
196void
197write_exp_elt_block (b)
198 struct block *b;
199{
200 union exp_element tmp;
201 tmp.block = b;
202 write_exp_elt (tmp);
203}
204
3d6b6a90
JG
205void
206write_exp_elt_longcst (expelt)
207 LONGEST expelt;
208{
209 union exp_element tmp;
210
211 tmp.longconst = expelt;
212
213 write_exp_elt (tmp);
214}
215
216void
217write_exp_elt_dblcst (expelt)
218 double expelt;
219{
220 union exp_element tmp;
221
222 tmp.doubleconst = expelt;
223
224 write_exp_elt (tmp);
225}
226
227void
228write_exp_elt_type (expelt)
229 struct type *expelt;
230{
231 union exp_element tmp;
232
233 tmp.type = expelt;
234
235 write_exp_elt (tmp);
236}
237
238void
239write_exp_elt_intern (expelt)
240 struct internalvar *expelt;
241{
242 union exp_element tmp;
243
244 tmp.internalvar = expelt;
245
246 write_exp_elt (tmp);
247}
248
249/* Add a string constant to the end of the expression.
d1065385
FF
250
251 String constants are stored by first writing an expression element
252 that contains the length of the string, then stuffing the string
253 constant itself into however many expression elements are needed
254 to hold it, and then writing another expression element that contains
255 the length of the string. I.E. an expression element at each end of
256 the string records the string length, so you can skip over the
257 expression elements containing the actual string bytes from either
258 end of the string. Note that this also allows gdb to handle
259 strings with embedded null bytes, as is required for some languages.
260
261 Don't be fooled by the fact that the string is null byte terminated,
262 this is strictly for the convenience of debugging gdb itself. Gdb
263 Gdb does not depend up the string being null terminated, since the
264 actual length is recorded in expression elements at each end of the
265 string. The null byte is taken into consideration when computing how
266 many expression elements are required to hold the string constant, of
267 course. */
268
3d6b6a90
JG
269
270void
271write_exp_string (str)
272 struct stoken str;
273{
274 register int len = str.length;
d1065385
FF
275 register int lenelt;
276 register char *strdata;
3d6b6a90 277
d1065385
FF
278 /* Compute the number of expression elements required to hold the string
279 (including a null byte terminator), along with one expression element
280 at each end to record the actual string length (not including the
281 null byte terminator). */
3d6b6a90 282
81028ab0 283 lenelt = 2 + BYTES_TO_EXP_ELEM (len + 1);
d1065385
FF
284
285 /* Ensure that we have enough available expression elements to store
286 everything. */
287
288 if ((expout_ptr + lenelt) >= expout_size)
3d6b6a90 289 {
d1065385 290 expout_size = max (expout_size * 2, expout_ptr + lenelt + 10);
3d6b6a90 291 expout = (struct expression *)
1ab3bf1b 292 xrealloc ((char *) expout, (sizeof (struct expression)
81028ab0 293 + EXP_ELEM_TO_BYTES (expout_size)));
3d6b6a90 294 }
d1065385
FF
295
296 /* Write the leading length expression element (which advances the current
297 expression element index), then write the string constant followed by a
298 terminating null byte, and then write the trailing length expression
299 element. */
300
301 write_exp_elt_longcst ((LONGEST) len);
302 strdata = (char *) &expout->elts[expout_ptr];
303 memcpy (strdata, str.ptr, len);
304 *(strdata + len) = '\0';
305 expout_ptr += lenelt - 2;
3d6b6a90
JG
306 write_exp_elt_longcst ((LONGEST) len);
307}
81028ab0
FF
308
309/* Add a bitstring constant to the end of the expression.
310
311 Bitstring constants are stored by first writing an expression element
312 that contains the length of the bitstring (in bits), then stuffing the
313 bitstring constant itself into however many expression elements are
314 needed to hold it, and then writing another expression element that
315 contains the length of the bitstring. I.E. an expression element at
316 each end of the bitstring records the bitstring length, so you can skip
317 over the expression elements containing the actual bitstring bytes from
318 either end of the bitstring. */
319
320void
321write_exp_bitstring (str)
322 struct stoken str;
323{
324 register int bits = str.length; /* length in bits */
325 register int len = (bits + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
326 register int lenelt;
327 register char *strdata;
328
329 /* Compute the number of expression elements required to hold the bitstring,
330 along with one expression element at each end to record the actual
331 bitstring length in bits. */
332
333 lenelt = 2 + BYTES_TO_EXP_ELEM (len);
334
335 /* Ensure that we have enough available expression elements to store
336 everything. */
337
338 if ((expout_ptr + lenelt) >= expout_size)
339 {
340 expout_size = max (expout_size * 2, expout_ptr + lenelt + 10);
341 expout = (struct expression *)
342 xrealloc ((char *) expout, (sizeof (struct expression)
343 + EXP_ELEM_TO_BYTES (expout_size)));
344 }
345
346 /* Write the leading length expression element (which advances the current
347 expression element index), then write the bitstring constant, and then
348 write the trailing length expression element. */
349
350 write_exp_elt_longcst ((LONGEST) bits);
351 strdata = (char *) &expout->elts[expout_ptr];
352 memcpy (strdata, str.ptr, len);
353 expout_ptr += lenelt - 2;
354 write_exp_elt_longcst ((LONGEST) bits);
355}
abe28b92 356
d92f3f08
JK
357/* Type that corresponds to the address given in a minimal symbol. */
358
359static struct type *msymbol_addr_type;
360
abe28b92
JK
361/* Add the appropriate elements for a minimal symbol to the end of
362 the expression. */
363
364void
365write_exp_msymbol (msymbol, text_symbol_type, data_symbol_type)
366 struct minimal_symbol *msymbol;
367 struct type *text_symbol_type;
368 struct type *data_symbol_type;
369{
370 write_exp_elt_opcode (OP_LONG);
d92f3f08 371 write_exp_elt_type (msymbol_addr_type);
abe28b92
JK
372 write_exp_elt_longcst ((LONGEST) SYMBOL_VALUE_ADDRESS (msymbol));
373 write_exp_elt_opcode (OP_LONG);
374
375 write_exp_elt_opcode (UNOP_MEMVAL);
376 switch (msymbol -> type)
377 {
378 case mst_text:
379 case mst_file_text:
ae6d035d 380 case mst_solib_trampoline:
abe28b92
JK
381 write_exp_elt_type (text_symbol_type);
382 break;
383
384 case mst_data:
385 case mst_file_data:
386 case mst_bss:
387 case mst_file_bss:
388 write_exp_elt_type (data_symbol_type);
389 break;
390
391 default:
392 write_exp_elt_type (builtin_type_char);
393 break;
394 }
395 write_exp_elt_opcode (UNOP_MEMVAL);
396}
3d6b6a90
JG
397\f
398/* Return a null-terminated temporary copy of the name
399 of a string token. */
400
401char *
402copy_name (token)
403 struct stoken token;
404{
4ed3a9ea 405 memcpy (namecopy, token.ptr, token.length);
3d6b6a90
JG
406 namecopy[token.length] = 0;
407 return namecopy;
408}
409\f
410/* Reverse an expression from suffix form (in which it is constructed)
411 to prefix form (in which we can conveniently print or execute it). */
412
1ab3bf1b 413static void
3d6b6a90
JG
414prefixify_expression (expr)
415 register struct expression *expr;
416{
81028ab0
FF
417 register int len =
418 sizeof (struct expression) + EXP_ELEM_TO_BYTES (expr->nelts);
3d6b6a90
JG
419 register struct expression *temp;
420 register int inpos = expr->nelts, outpos = 0;
421
422 temp = (struct expression *) alloca (len);
423
424 /* Copy the original expression into temp. */
4ed3a9ea 425 memcpy (temp, expr, len);
3d6b6a90
JG
426
427 prefixify_subexp (temp, expr, inpos, outpos);
428}
429
430/* Return the number of exp_elements in the subexpression of EXPR
431 whose last exp_element is at index ENDPOS - 1 in EXPR. */
432
1ab3bf1b 433static int
3d6b6a90
JG
434length_of_subexp (expr, endpos)
435 register struct expression *expr;
436 register int endpos;
437{
438 register int oplen = 1;
439 register int args = 0;
440 register int i;
441
d1065385 442 if (endpos < 1)
3d6b6a90
JG
443 error ("?error in length_of_subexp");
444
445 i = (int) expr->elts[endpos - 1].opcode;
446
447 switch (i)
448 {
449 /* C++ */
450 case OP_SCOPE:
81028ab0
FF
451 oplen = longest_to_int (expr->elts[endpos - 2].longconst);
452 oplen = 5 + BYTES_TO_EXP_ELEM (oplen + 1);
3d6b6a90
JG
453 break;
454
455 case OP_LONG:
456 case OP_DOUBLE:
479fdd26 457 case OP_VAR_VALUE:
3d6b6a90
JG
458 oplen = 4;
459 break;
460
461 case OP_TYPE:
462 case OP_BOOL:
3d6b6a90
JG
463 case OP_LAST:
464 case OP_REGISTER:
465 case OP_INTERNALVAR:
466 oplen = 3;
467 break;
468
469 case OP_FUNCALL:
470 oplen = 3;
d1065385 471 args = 1 + longest_to_int (expr->elts[endpos - 2].longconst);
3d6b6a90
JG
472 break;
473
474 case UNOP_MAX:
475 case UNOP_MIN:
476 oplen = 3;
3d6b6a90
JG
477 break;
478
479 case BINOP_VAL:
480 case UNOP_CAST:
481 case UNOP_MEMVAL:
482 oplen = 3;
483 args = 1;
484 break;
485
486 case UNOP_ABS:
487 case UNOP_CAP:
488 case UNOP_CHR:
489 case UNOP_FLOAT:
490 case UNOP_HIGH:
491 case UNOP_ODD:
492 case UNOP_ORD:
493 case UNOP_TRUNC:
494 oplen = 1;
495 args = 1;
496 break;
497
2640f7e1
JG
498 case STRUCTOP_STRUCT:
499 case STRUCTOP_PTR:
500 args = 1;
d1065385 501 /* fall through */
3d6b6a90
JG
502 case OP_M2_STRING:
503 case OP_STRING:
81028ab0
FF
504 oplen = longest_to_int (expr->elts[endpos - 2].longconst);
505 oplen = 4 + BYTES_TO_EXP_ELEM (oplen + 1);
506 break;
507
508 case OP_BITSTRING:
509 oplen = longest_to_int (expr->elts[endpos - 2].longconst);
510 oplen = (oplen + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
511 oplen = 4 + BYTES_TO_EXP_ELEM (oplen);
3d6b6a90
JG
512 break;
513
c4413e2c
FF
514 case OP_ARRAY:
515 oplen = 4;
516 args = longest_to_int (expr->elts[endpos - 2].longconst);
517 args -= longest_to_int (expr->elts[endpos - 3].longconst);
518 args += 1;
519 break;
520
3d6b6a90
JG
521 case TERNOP_COND:
522 args = 3;
523 break;
524
525 /* Modula-2 */
54bbbfb4 526 case MULTI_SUBSCRIPT:
3d6b6a90 527 oplen=3;
d1065385 528 args = 1 + longest_to_int (expr->elts[endpos- 2].longconst);
3d6b6a90
JG
529 break;
530
531 case BINOP_ASSIGN_MODIFY:
532 oplen = 3;
533 args = 2;
534 break;
535
536 /* C++ */
537 case OP_THIS:
538 oplen = 2;
539 break;
540
541 default:
542 args = 1 + (i < (int) BINOP_END);
543 }
544
545 while (args > 0)
546 {
547 oplen += length_of_subexp (expr, endpos - oplen);
548 args--;
549 }
550
551 return oplen;
552}
553
554/* Copy the subexpression ending just before index INEND in INEXPR
555 into OUTEXPR, starting at index OUTBEG.
556 In the process, convert it from suffix to prefix form. */
557
558static void
559prefixify_subexp (inexpr, outexpr, inend, outbeg)
560 register struct expression *inexpr;
561 struct expression *outexpr;
562 register int inend;
563 int outbeg;
564{
565 register int oplen = 1;
566 register int args = 0;
567 register int i;
568 int *arglens;
569 enum exp_opcode opcode;
570
571 /* Compute how long the last operation is (in OPLEN),
572 and also how many preceding subexpressions serve as
573 arguments for it (in ARGS). */
574
575 opcode = inexpr->elts[inend - 1].opcode;
576 switch (opcode)
577 {
578 /* C++ */
579 case OP_SCOPE:
81028ab0
FF
580 oplen = longest_to_int (inexpr->elts[inend - 2].longconst);
581 oplen = 5 + BYTES_TO_EXP_ELEM (oplen + 1);
3d6b6a90
JG
582 break;
583
584 case OP_LONG:
585 case OP_DOUBLE:
479fdd26 586 case OP_VAR_VALUE:
3d6b6a90
JG
587 oplen = 4;
588 break;
589
590 case OP_TYPE:
591 case OP_BOOL:
3d6b6a90
JG
592 case OP_LAST:
593 case OP_REGISTER:
594 case OP_INTERNALVAR:
595 oplen = 3;
596 break;
597
598 case OP_FUNCALL:
599 oplen = 3;
d1065385 600 args = 1 + longest_to_int (inexpr->elts[inend - 2].longconst);
3d6b6a90
JG
601 break;
602
603 case UNOP_MIN:
604 case UNOP_MAX:
605 oplen = 3;
3d6b6a90
JG
606 break;
607
608 case UNOP_CAST:
609 case UNOP_MEMVAL:
610 oplen = 3;
611 args = 1;
612 break;
613
614 case UNOP_ABS:
615 case UNOP_CAP:
616 case UNOP_CHR:
617 case UNOP_FLOAT:
618 case UNOP_HIGH:
619 case UNOP_ODD:
620 case UNOP_ORD:
621 case UNOP_TRUNC:
622 oplen=1;
623 args=1;
624 break;
625
61c1724b 626 case STRUCTOP_STRUCT:
2640f7e1
JG
627 case STRUCTOP_PTR:
628 args = 1;
d1065385 629 /* fall through */
3d6b6a90
JG
630 case OP_M2_STRING:
631 case OP_STRING:
81028ab0
FF
632 oplen = longest_to_int (inexpr->elts[inend - 2].longconst);
633 oplen = 4 + BYTES_TO_EXP_ELEM (oplen + 1);
634 break;
635
636 case OP_BITSTRING:
637 oplen = longest_to_int (inexpr->elts[inend - 2].longconst);
638 oplen = (oplen + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
639 oplen = 4 + BYTES_TO_EXP_ELEM (oplen);
3d6b6a90
JG
640 break;
641
c4413e2c
FF
642 case OP_ARRAY:
643 oplen = 4;
644 args = longest_to_int (inexpr->elts[inend - 2].longconst);
645 args -= longest_to_int (inexpr->elts[inend - 3].longconst);
646 args += 1;
647 break;
648
3d6b6a90
JG
649 case TERNOP_COND:
650 args = 3;
651 break;
652
653 case BINOP_ASSIGN_MODIFY:
654 oplen = 3;
655 args = 2;
656 break;
657
658 /* Modula-2 */
54bbbfb4 659 case MULTI_SUBSCRIPT:
3d6b6a90 660 oplen=3;
d1065385 661 args = 1 + longest_to_int (inexpr->elts[inend - 2].longconst);
3d6b6a90
JG
662 break;
663
664 /* C++ */
665 case OP_THIS:
666 oplen = 2;
667 break;
668
669 default:
670 args = 1 + ((int) opcode < (int) BINOP_END);
671 }
672
673 /* Copy the final operator itself, from the end of the input
674 to the beginning of the output. */
675 inend -= oplen;
4ed3a9ea 676 memcpy (&outexpr->elts[outbeg], &inexpr->elts[inend],
81028ab0 677 EXP_ELEM_TO_BYTES (oplen));
3d6b6a90
JG
678 outbeg += oplen;
679
680 /* Find the lengths of the arg subexpressions. */
681 arglens = (int *) alloca (args * sizeof (int));
682 for (i = args - 1; i >= 0; i--)
683 {
684 oplen = length_of_subexp (inexpr, inend);
685 arglens[i] = oplen;
686 inend -= oplen;
687 }
688
689 /* Now copy each subexpression, preserving the order of
690 the subexpressions, but prefixifying each one.
691 In this loop, inend starts at the beginning of
692 the expression this level is working on
693 and marches forward over the arguments.
694 outbeg does similarly in the output. */
695 for (i = 0; i < args; i++)
696 {
697 oplen = arglens[i];
698 inend += oplen;
699 prefixify_subexp (inexpr, outexpr, inend, outbeg);
700 outbeg += oplen;
701 }
702}
703\f
704/* This page contains the two entry points to this file. */
705
706/* Read an expression from the string *STRINGPTR points to,
707 parse it, and return a pointer to a struct expression that we malloc.
708 Use block BLOCK as the lexical context for variable names;
709 if BLOCK is zero, use the block of the selected stack frame.
710 Meanwhile, advance *STRINGPTR to point after the expression,
711 at the first nonwhite character that is not part of the expression
712 (possibly a null character).
713
714 If COMMA is nonzero, stop if a comma is reached. */
715
716struct expression *
717parse_exp_1 (stringptr, block, comma)
718 char **stringptr;
719 struct block *block;
720 int comma;
721{
722 struct cleanup *old_chain;
723
724 lexptr = *stringptr;
725
726 paren_depth = 0;
727 type_stack_depth = 0;
728
729 comma_terminates = comma;
730
731 if (lexptr == 0 || *lexptr == 0)
732 error_no_arg ("expression to compute");
733
734 old_chain = make_cleanup (free_funcalls, 0);
735 funcall_chain = 0;
736
737 expression_context_block = block ? block : get_selected_block ();
738
739 namecopy = (char *) alloca (strlen (lexptr) + 1);
740 expout_size = 10;
741 expout_ptr = 0;
742 expout = (struct expression *)
81028ab0 743 xmalloc (sizeof (struct expression) + EXP_ELEM_TO_BYTES (expout_size));
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744 expout->language_defn = current_language;
745 make_cleanup (free_current_contents, &expout);
746
747 if (current_language->la_parser ())
748 current_language->la_error (NULL);
749
750 discard_cleanups (old_chain);
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751
752 /* Record the actual number of expression elements, and then
753 reallocate the expression memory so that we free up any
754 excess elements. */
755
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756 expout->nelts = expout_ptr;
757 expout = (struct expression *)
1ab3bf1b 758 xrealloc ((char *) expout,
81028ab0 759 sizeof (struct expression) + EXP_ELEM_TO_BYTES (expout_ptr));;
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760
761 /* Convert expression from postfix form as generated by yacc
762 parser, to a prefix form. */
763
199b2450 764 DUMP_EXPRESSION (expout, gdb_stdout, "before conversion to prefix form");
3d6b6a90 765 prefixify_expression (expout);
199b2450 766 DUMP_EXPRESSION (expout, gdb_stdout, "after conversion to prefix form");
54bbbfb4 767
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768 *stringptr = lexptr;
769 return expout;
770}
771
772/* Parse STRING as an expression, and complain if this fails
773 to use up all of the contents of STRING. */
774
775struct expression *
776parse_expression (string)
777 char *string;
778{
779 register struct expression *exp;
780 exp = parse_exp_1 (&string, 0, 0);
781 if (*string)
782 error ("Junk after end of expression.");
783 return exp;
784}
f843c95f
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785\f
786/* Stuff for maintaining a stack of types. Currently just used by C, but
787 probably useful for any language which declares its types "backwards". */
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788
789void
790push_type (tp)
791 enum type_pieces tp;
792{
793 if (type_stack_depth == type_stack_size)
794 {
795 type_stack_size *= 2;
796 type_stack = (union type_stack_elt *)
1ab3bf1b 797 xrealloc ((char *) type_stack, type_stack_size * sizeof (*type_stack));
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798 }
799 type_stack[type_stack_depth++].piece = tp;
800}
801
802void
803push_type_int (n)
804 int n;
805{
806 if (type_stack_depth == type_stack_size)
807 {
808 type_stack_size *= 2;
809 type_stack = (union type_stack_elt *)
1ab3bf1b 810 xrealloc ((char *) type_stack, type_stack_size * sizeof (*type_stack));
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811 }
812 type_stack[type_stack_depth++].int_val = n;
813}
814
815enum type_pieces
816pop_type ()
817{
818 if (type_stack_depth)
819 return type_stack[--type_stack_depth].piece;
820 return tp_end;
821}
822
823int
824pop_type_int ()
825{
826 if (type_stack_depth)
827 return type_stack[--type_stack_depth].int_val;
828 /* "Can't happen". */
829 return 0;
830}
831
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832/* Pop the type stack and return the type which corresponds to FOLLOW_TYPE
833 as modified by all the stuff on the stack. */
834struct type *
835follow_types (follow_type)
836 struct type *follow_type;
837{
838 int done = 0;
839 int array_size;
840 struct type *range_type;
841
842 while (!done)
843 switch (pop_type ())
844 {
845 case tp_end:
846 done = 1;
847 break;
848 case tp_pointer:
849 follow_type = lookup_pointer_type (follow_type);
850 break;
851 case tp_reference:
852 follow_type = lookup_reference_type (follow_type);
853 break;
854 case tp_array:
855 array_size = pop_type_int ();
856 if (array_size != -1)
857 {
858 range_type =
859 create_range_type ((struct type *) NULL,
860 builtin_type_int, 0,
861 array_size - 1);
862 follow_type =
863 create_array_type ((struct type *) NULL,
864 follow_type, range_type);
865 }
866 else
867 follow_type = lookup_pointer_type (follow_type);
868 break;
869 case tp_function:
870 follow_type = lookup_function_type (follow_type);
871 break;
872 }
873 return follow_type;
874}
875\f
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876void
877_initialize_parse ()
878{
879 type_stack_size = 80;
880 type_stack_depth = 0;
881 type_stack = (union type_stack_elt *)
882 xmalloc (type_stack_size * sizeof (*type_stack));
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883
884 /* We don't worry too much about what the name of this type is
885 because the name should rarely appear in output to the user. */
886
887 msymbol_addr_type =
888 init_type (TYPE_CODE_PTR, TARGET_PTR_BIT / HOST_CHAR_BIT, 0,
889 "void *", NULL);
3d6b6a90 890}
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