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* c-exp.y (enum token_flags): New.
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c906108c 1/* Parse expressions for GDB.
c4a172b5 2
0b302171
JB
3 Copyright (C) 1986, 1989-2001, 2004-2005, 2007-2012 Free Software
4 Foundation, Inc.
c4a172b5 5
c906108c
SS
6 Modified from expread.y by the Department of Computer Science at the
7 State University of New York at Buffalo, 1991.
8
c5aa993b 9 This file is part of GDB.
c906108c 10
c5aa993b
JM
11 This program is free software; you can redistribute it and/or modify
12 it under the terms of the GNU General Public License as published by
a9762ec7 13 the Free Software Foundation; either version 3 of the License, or
c5aa993b 14 (at your option) any later version.
c906108c 15
c5aa993b
JM
16 This program is distributed in the hope that it will be useful,
17 but WITHOUT ANY WARRANTY; without even the implied warranty of
18 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19 GNU General Public License for more details.
c906108c 20
c5aa993b 21 You should have received a copy of the GNU General Public License
a9762ec7 22 along with this program. If not, see <http://www.gnu.org/licenses/>. */
c906108c
SS
23
24/* Parse an expression from text in a string,
ae0c443d 25 and return the result as a struct expression pointer.
c906108c
SS
26 That structure contains arithmetic operations in reverse polish,
27 with constants represented by operations that are followed by special data.
28 See expression.h for the details of the format.
29 What is important here is that it can be built up sequentially
30 during the process of parsing; the lower levels of the tree always
31 come first in the result. */
c5aa993b 32
c906108c 33#include "defs.h"
12c89474 34#include <ctype.h>
e17c207e 35#include "arch-utils.h"
c906108c 36#include "gdb_string.h"
c906108c
SS
37#include "symtab.h"
38#include "gdbtypes.h"
39#include "frame.h"
40#include "expression.h"
41#include "value.h"
42#include "command.h"
43#include "language.h"
0b4e1325 44#include "f-lang.h"
c906108c
SS
45#include "parser-defs.h"
46#include "gdbcmd.h"
c5aa993b 47#include "symfile.h" /* for overlay functions */
f57d151a 48#include "inferior.h"
d16aafd8 49#include "doublest.h"
0406ec40 50#include "gdb_assert.h"
fe898f56 51#include "block.h"
59f92a09 52#include "source.h"
9e35dae4 53#include "objfiles.h"
65d12d83 54#include "exceptions.h"
029a67e4 55#include "user-regs.h"
e2305d34 56
5f9769d1
PH
57/* Standard set of definitions for printing, dumping, prefixifying,
58 * and evaluating expressions. */
59
60const struct exp_descriptor exp_descriptor_standard =
61 {
62 print_subexp_standard,
63 operator_length_standard,
c0201579 64 operator_check_standard,
5f9769d1
PH
65 op_name_standard,
66 dump_subexp_body_standard,
67 evaluate_subexp_standard
68 };
c906108c
SS
69\f
70/* Global variables declared in parser-defs.h (and commented there). */
71struct expression *expout;
72int expout_size;
73int expout_ptr;
74struct block *expression_context_block;
84f0252a 75CORE_ADDR expression_context_pc;
c906108c
SS
76struct block *innermost_block;
77int arglist_len;
1a7d0ce4 78static struct type_stack type_stack;
c906108c 79char *lexptr;
665132f9 80char *prev_lexptr;
c906108c
SS
81int paren_depth;
82int comma_terminates;
3a913e29 83
65d12d83
TT
84/* True if parsing an expression to find a field reference. This is
85 only used by completion. */
86int in_parse_field;
87
88/* The index of the last struct expression directly before a '.' or
89 '->'. This is set when parsing and is only used when completing a
90 field name. It is -1 if no dereference operation was found. */
91static int expout_last_struct = -1;
c906108c 92\f
c906108c 93static int expressiondebug = 0;
920d2a44
AC
94static void
95show_expressiondebug (struct ui_file *file, int from_tty,
96 struct cmd_list_element *c, const char *value)
97{
98 fprintf_filtered (file, _("Expression debugging is %s.\n"), value);
99}
c906108c 100
92981e24
TT
101
102/* Non-zero if an expression parser should set yydebug. */
103int parser_debug;
104
105static void
106show_parserdebug (struct ui_file *file, int from_tty,
107 struct cmd_list_element *c, const char *value)
108{
109 fprintf_filtered (file, _("Parser debugging is %s.\n"), value);
110}
111
112
74b7792f 113static void free_funcalls (void *ignore);
c906108c 114
65d12d83
TT
115static int prefixify_subexp (struct expression *, struct expression *, int,
116 int);
c906108c 117
1bb9788d
TT
118static struct expression *parse_exp_in_context (char **, CORE_ADDR,
119 struct block *, int,
65d12d83 120 int, int *);
e85c3284 121
a14ed312 122void _initialize_parse (void);
392a587b 123
c906108c
SS
124/* Data structure for saving values of arglist_len for function calls whose
125 arguments contain other function calls. */
126
127struct funcall
128 {
129 struct funcall *next;
130 int arglist_len;
131 };
132
133static struct funcall *funcall_chain;
134
c906108c
SS
135/* Begin counting arguments for a function call,
136 saving the data about any containing call. */
137
138void
fba45db2 139start_arglist (void)
c906108c 140{
f86f5ca3 141 struct funcall *new;
c906108c
SS
142
143 new = (struct funcall *) xmalloc (sizeof (struct funcall));
144 new->next = funcall_chain;
145 new->arglist_len = arglist_len;
146 arglist_len = 0;
147 funcall_chain = new;
148}
149
150/* Return the number of arguments in a function call just terminated,
151 and restore the data for the containing function call. */
152
153int
fba45db2 154end_arglist (void)
c906108c 155{
f86f5ca3
PH
156 int val = arglist_len;
157 struct funcall *call = funcall_chain;
ad3bbd48 158
c906108c
SS
159 funcall_chain = call->next;
160 arglist_len = call->arglist_len;
b8c9b27d 161 xfree (call);
c906108c
SS
162 return val;
163}
164
165/* Free everything in the funcall chain.
166 Used when there is an error inside parsing. */
167
168static void
74b7792f 169free_funcalls (void *ignore)
c906108c 170{
f86f5ca3 171 struct funcall *call, *next;
c906108c
SS
172
173 for (call = funcall_chain; call; call = next)
174 {
175 next = call->next;
b8c9b27d 176 xfree (call);
c906108c
SS
177 }
178}
179\f
ae0c443d 180/* This page contains the functions for adding data to the struct expression
c906108c
SS
181 being constructed. */
182
55aa24fb 183/* See definition in parser-defs.h. */
2dbca4d6 184
55aa24fb 185void
2dbca4d6
SDJ
186initialize_expout (int initial_size, const struct language_defn *lang,
187 struct gdbarch *gdbarch)
188{
189 expout_size = initial_size;
190 expout_ptr = 0;
191 expout = xmalloc (sizeof (struct expression)
192 + EXP_ELEM_TO_BYTES (expout_size));
193 expout->language_defn = lang;
194 expout->gdbarch = gdbarch;
195}
196
55aa24fb 197/* See definition in parser-defs.h. */
2dbca4d6 198
55aa24fb 199void
2dbca4d6
SDJ
200reallocate_expout (void)
201{
202 /* Record the actual number of expression elements, and then
203 reallocate the expression memory so that we free up any
204 excess elements. */
205
206 expout->nelts = expout_ptr;
207 expout = xrealloc ((char *) expout,
208 sizeof (struct expression)
209 + EXP_ELEM_TO_BYTES (expout_ptr));
210}
211
c906108c
SS
212/* Add one element to the end of the expression. */
213
214/* To avoid a bug in the Sun 4 compiler, we pass things that can fit into
0df8b418 215 a register through here. */
c906108c 216
ae0c443d
JK
217static void
218write_exp_elt (const union exp_element *expelt)
c906108c
SS
219{
220 if (expout_ptr >= expout_size)
221 {
222 expout_size *= 2;
223 expout = (struct expression *)
224 xrealloc ((char *) expout, sizeof (struct expression)
225 + EXP_ELEM_TO_BYTES (expout_size));
226 }
ae0c443d 227 expout->elts[expout_ptr++] = *expelt;
c906108c
SS
228}
229
230void
fba45db2 231write_exp_elt_opcode (enum exp_opcode expelt)
c906108c
SS
232{
233 union exp_element tmp;
234
ad3bbd48 235 memset (&tmp, 0, sizeof (union exp_element));
c906108c 236 tmp.opcode = expelt;
ae0c443d 237 write_exp_elt (&tmp);
c906108c
SS
238}
239
240void
fba45db2 241write_exp_elt_sym (struct symbol *expelt)
c906108c
SS
242{
243 union exp_element tmp;
244
ad3bbd48 245 memset (&tmp, 0, sizeof (union exp_element));
c906108c 246 tmp.symbol = expelt;
ae0c443d 247 write_exp_elt (&tmp);
c906108c
SS
248}
249
250void
fba45db2 251write_exp_elt_block (struct block *b)
c906108c
SS
252{
253 union exp_element tmp;
ad3bbd48 254
09153d55 255 memset (&tmp, 0, sizeof (union exp_element));
c906108c 256 tmp.block = b;
ae0c443d 257 write_exp_elt (&tmp);
c906108c
SS
258}
259
9e35dae4
DJ
260void
261write_exp_elt_objfile (struct objfile *objfile)
262{
263 union exp_element tmp;
ad3bbd48 264
9e35dae4
DJ
265 memset (&tmp, 0, sizeof (union exp_element));
266 tmp.objfile = objfile;
ae0c443d 267 write_exp_elt (&tmp);
9e35dae4
DJ
268}
269
c906108c 270void
fba45db2 271write_exp_elt_longcst (LONGEST expelt)
c906108c
SS
272{
273 union exp_element tmp;
274
ad3bbd48 275 memset (&tmp, 0, sizeof (union exp_element));
c906108c 276 tmp.longconst = expelt;
ae0c443d 277 write_exp_elt (&tmp);
c906108c
SS
278}
279
280void
fba45db2 281write_exp_elt_dblcst (DOUBLEST expelt)
c906108c
SS
282{
283 union exp_element tmp;
284
ad3bbd48 285 memset (&tmp, 0, sizeof (union exp_element));
c906108c 286 tmp.doubleconst = expelt;
ae0c443d 287 write_exp_elt (&tmp);
c906108c
SS
288}
289
27bc4d80
TJB
290void
291write_exp_elt_decfloatcst (gdb_byte expelt[16])
292{
293 union exp_element tmp;
294 int index;
295
296 for (index = 0; index < 16; index++)
297 tmp.decfloatconst[index] = expelt[index];
298
ae0c443d 299 write_exp_elt (&tmp);
27bc4d80
TJB
300}
301
c906108c 302void
fba45db2 303write_exp_elt_type (struct type *expelt)
c906108c
SS
304{
305 union exp_element tmp;
306
ad3bbd48 307 memset (&tmp, 0, sizeof (union exp_element));
c906108c 308 tmp.type = expelt;
ae0c443d 309 write_exp_elt (&tmp);
c906108c
SS
310}
311
312void
fba45db2 313write_exp_elt_intern (struct internalvar *expelt)
c906108c
SS
314{
315 union exp_element tmp;
316
ad3bbd48 317 memset (&tmp, 0, sizeof (union exp_element));
c906108c 318 tmp.internalvar = expelt;
ae0c443d 319 write_exp_elt (&tmp);
c906108c
SS
320}
321
322/* Add a string constant to the end of the expression.
323
324 String constants are stored by first writing an expression element
325 that contains the length of the string, then stuffing the string
326 constant itself into however many expression elements are needed
327 to hold it, and then writing another expression element that contains
0df8b418 328 the length of the string. I.e. an expression element at each end of
c906108c
SS
329 the string records the string length, so you can skip over the
330 expression elements containing the actual string bytes from either
331 end of the string. Note that this also allows gdb to handle
332 strings with embedded null bytes, as is required for some languages.
333
334 Don't be fooled by the fact that the string is null byte terminated,
bc3b79fd 335 this is strictly for the convenience of debugging gdb itself.
c906108c
SS
336 Gdb does not depend up the string being null terminated, since the
337 actual length is recorded in expression elements at each end of the
338 string. The null byte is taken into consideration when computing how
339 many expression elements are required to hold the string constant, of
0df8b418 340 course. */
c906108c
SS
341
342
343void
fba45db2 344write_exp_string (struct stoken str)
c906108c 345{
f86f5ca3
PH
346 int len = str.length;
347 int lenelt;
348 char *strdata;
c906108c
SS
349
350 /* Compute the number of expression elements required to hold the string
351 (including a null byte terminator), along with one expression element
352 at each end to record the actual string length (not including the
0df8b418 353 null byte terminator). */
c906108c
SS
354
355 lenelt = 2 + BYTES_TO_EXP_ELEM (len + 1);
356
357 /* Ensure that we have enough available expression elements to store
0df8b418 358 everything. */
c906108c
SS
359
360 if ((expout_ptr + lenelt) >= expout_size)
361 {
362 expout_size = max (expout_size * 2, expout_ptr + lenelt + 10);
363 expout = (struct expression *)
364 xrealloc ((char *) expout, (sizeof (struct expression)
365 + EXP_ELEM_TO_BYTES (expout_size)));
366 }
367
368 /* Write the leading length expression element (which advances the current
369 expression element index), then write the string constant followed by a
370 terminating null byte, and then write the trailing length expression
0df8b418 371 element. */
c906108c
SS
372
373 write_exp_elt_longcst ((LONGEST) len);
374 strdata = (char *) &expout->elts[expout_ptr];
375 memcpy (strdata, str.ptr, len);
376 *(strdata + len) = '\0';
377 expout_ptr += lenelt - 2;
378 write_exp_elt_longcst ((LONGEST) len);
379}
380
6c7a06a3
TT
381/* Add a vector of string constants to the end of the expression.
382
383 This adds an OP_STRING operation, but encodes the contents
384 differently from write_exp_string. The language is expected to
385 handle evaluation of this expression itself.
386
387 After the usual OP_STRING header, TYPE is written into the
388 expression as a long constant. The interpretation of this field is
389 up to the language evaluator.
390
391 Next, each string in VEC is written. The length is written as a
392 long constant, followed by the contents of the string. */
393
394void
395write_exp_string_vector (int type, struct stoken_vector *vec)
396{
397 int i, n_slots, len;
398
399 /* Compute the size. We compute the size in number of slots to
400 avoid issues with string padding. */
401 n_slots = 0;
402 for (i = 0; i < vec->len; ++i)
403 {
404 /* One slot for the length of this element, plus the number of
405 slots needed for this string. */
406 n_slots += 1 + BYTES_TO_EXP_ELEM (vec->tokens[i].length);
407 }
408
409 /* One more slot for the type of the string. */
410 ++n_slots;
411
412 /* Now compute a phony string length. */
413 len = EXP_ELEM_TO_BYTES (n_slots) - 1;
414
415 n_slots += 4;
416 if ((expout_ptr + n_slots) >= expout_size)
417 {
418 expout_size = max (expout_size * 2, expout_ptr + n_slots + 10);
419 expout = (struct expression *)
420 xrealloc ((char *) expout, (sizeof (struct expression)
421 + EXP_ELEM_TO_BYTES (expout_size)));
422 }
423
424 write_exp_elt_opcode (OP_STRING);
425 write_exp_elt_longcst (len);
426 write_exp_elt_longcst (type);
427
428 for (i = 0; i < vec->len; ++i)
429 {
430 write_exp_elt_longcst (vec->tokens[i].length);
431 memcpy (&expout->elts[expout_ptr], vec->tokens[i].ptr,
432 vec->tokens[i].length);
433 expout_ptr += BYTES_TO_EXP_ELEM (vec->tokens[i].length);
434 }
435
436 write_exp_elt_longcst (len);
437 write_exp_elt_opcode (OP_STRING);
438}
439
c906108c
SS
440/* Add a bitstring constant to the end of the expression.
441
442 Bitstring constants are stored by first writing an expression element
443 that contains the length of the bitstring (in bits), then stuffing the
444 bitstring constant itself into however many expression elements are
445 needed to hold it, and then writing another expression element that
0df8b418 446 contains the length of the bitstring. I.e. an expression element at
c906108c
SS
447 each end of the bitstring records the bitstring length, so you can skip
448 over the expression elements containing the actual bitstring bytes from
0df8b418 449 either end of the bitstring. */
c906108c
SS
450
451void
fba45db2 452write_exp_bitstring (struct stoken str)
c906108c 453{
f86f5ca3
PH
454 int bits = str.length; /* length in bits */
455 int len = (bits + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
456 int lenelt;
457 char *strdata;
c906108c
SS
458
459 /* Compute the number of expression elements required to hold the bitstring,
460 along with one expression element at each end to record the actual
0df8b418 461 bitstring length in bits. */
c906108c
SS
462
463 lenelt = 2 + BYTES_TO_EXP_ELEM (len);
464
465 /* Ensure that we have enough available expression elements to store
0df8b418 466 everything. */
c906108c
SS
467
468 if ((expout_ptr + lenelt) >= expout_size)
469 {
470 expout_size = max (expout_size * 2, expout_ptr + lenelt + 10);
471 expout = (struct expression *)
472 xrealloc ((char *) expout, (sizeof (struct expression)
473 + EXP_ELEM_TO_BYTES (expout_size)));
474 }
475
476 /* Write the leading length expression element (which advances the current
477 expression element index), then write the bitstring constant, and then
0df8b418 478 write the trailing length expression element. */
c906108c
SS
479
480 write_exp_elt_longcst ((LONGEST) bits);
481 strdata = (char *) &expout->elts[expout_ptr];
482 memcpy (strdata, str.ptr, len);
483 expout_ptr += lenelt - 2;
484 write_exp_elt_longcst ((LONGEST) bits);
485}
486
487/* Add the appropriate elements for a minimal symbol to the end of
c841afd5 488 the expression. */
c906108c 489
c906108c 490void
c841afd5 491write_exp_msymbol (struct minimal_symbol *msymbol)
c906108c 492{
bccdca4a
UW
493 struct objfile *objfile = msymbol_objfile (msymbol);
494 struct gdbarch *gdbarch = get_objfile_arch (objfile);
495
496 CORE_ADDR addr = SYMBOL_VALUE_ADDRESS (msymbol);
714835d5 497 struct obj_section *section = SYMBOL_OBJ_SECTION (msymbol);
712f90be 498 enum minimal_symbol_type type = MSYMBOL_TYPE (msymbol);
bccdca4a
UW
499 CORE_ADDR pc;
500
501 /* The minimal symbol might point to a function descriptor;
502 resolve it to the actual code address instead. */
503 pc = gdbarch_convert_from_func_ptr_addr (gdbarch, addr, &current_target);
504 if (pc != addr)
505 {
0875794a
JK
506 struct minimal_symbol *ifunc_msym = lookup_minimal_symbol_by_pc (pc);
507
bccdca4a
UW
508 /* In this case, assume we have a code symbol instead of
509 a data symbol. */
0875794a
JK
510
511 if (ifunc_msym != NULL && MSYMBOL_TYPE (ifunc_msym) == mst_text_gnu_ifunc
512 && SYMBOL_VALUE_ADDRESS (ifunc_msym) == pc)
513 {
514 /* A function descriptor has been resolved but PC is still in the
515 STT_GNU_IFUNC resolver body (such as because inferior does not
516 run to be able to call it). */
517
518 type = mst_text_gnu_ifunc;
519 }
520 else
521 type = mst_text;
714835d5 522 section = NULL;
bccdca4a
UW
523 addr = pc;
524 }
525
526 if (overlay_debugging)
714835d5 527 addr = symbol_overlayed_address (addr, section);
c906108c
SS
528
529 write_exp_elt_opcode (OP_LONG);
a858089e 530 /* Let's make the type big enough to hold a 64-bit address. */
46bf5051 531 write_exp_elt_type (objfile_type (objfile)->builtin_core_addr);
c906108c 532 write_exp_elt_longcst ((LONGEST) addr);
c906108c
SS
533 write_exp_elt_opcode (OP_LONG);
534
714835d5 535 if (section && section->the_bfd_section->flags & SEC_THREAD_LOCAL)
9e35dae4 536 {
9e35dae4 537 write_exp_elt_opcode (UNOP_MEMVAL_TLS);
bccdca4a 538 write_exp_elt_objfile (objfile);
46bf5051 539 write_exp_elt_type (objfile_type (objfile)->nodebug_tls_symbol);
9e35dae4
DJ
540 write_exp_elt_opcode (UNOP_MEMVAL_TLS);
541 return;
542 }
543
c906108c 544 write_exp_elt_opcode (UNOP_MEMVAL);
bccdca4a 545 switch (type)
c906108c
SS
546 {
547 case mst_text:
548 case mst_file_text:
549 case mst_solib_trampoline:
46bf5051 550 write_exp_elt_type (objfile_type (objfile)->nodebug_text_symbol);
c906108c
SS
551 break;
552
0875794a
JK
553 case mst_text_gnu_ifunc:
554 write_exp_elt_type (objfile_type (objfile)
555 ->nodebug_text_gnu_ifunc_symbol);
556 break;
557
c906108c
SS
558 case mst_data:
559 case mst_file_data:
560 case mst_bss:
561 case mst_file_bss:
46bf5051 562 write_exp_elt_type (objfile_type (objfile)->nodebug_data_symbol);
c906108c
SS
563 break;
564
0875794a
JK
565 case mst_slot_got_plt:
566 write_exp_elt_type (objfile_type (objfile)->nodebug_got_plt_symbol);
567 break;
568
c906108c 569 default:
46bf5051 570 write_exp_elt_type (objfile_type (objfile)->nodebug_unknown_symbol);
c906108c
SS
571 break;
572 }
573 write_exp_elt_opcode (UNOP_MEMVAL);
574}
65d12d83
TT
575
576/* Mark the current index as the starting location of a structure
577 expression. This is used when completing on field names. */
578
579void
580mark_struct_expression (void)
581{
582 expout_last_struct = expout_ptr;
583}
584
c906108c
SS
585\f
586/* Recognize tokens that start with '$'. These include:
587
c5aa993b
JM
588 $regname A native register name or a "standard
589 register name".
c906108c 590
c5aa993b
JM
591 $variable A convenience variable with a name chosen
592 by the user.
c906108c 593
c5aa993b
JM
594 $digits Value history with index <digits>, starting
595 from the first value which has index 1.
c906108c 596
c5aa993b 597 $$digits Value history with index <digits> relative
0df8b418 598 to the last value. I.e. $$0 is the last
c5aa993b
JM
599 value, $$1 is the one previous to that, $$2
600 is the one previous to $$1, etc.
c906108c 601
c5aa993b 602 $ | $0 | $$0 The last value in the value history.
c906108c 603
c5aa993b 604 $$ An abbreviation for the second to the last
0df8b418 605 value in the value history, I.e. $$1 */
c906108c
SS
606
607void
fba45db2 608write_dollar_variable (struct stoken str)
c906108c 609{
d7318818
RC
610 struct symbol *sym = NULL;
611 struct minimal_symbol *msym = NULL;
c4a3d09a 612 struct internalvar *isym = NULL;
d7318818 613
c906108c 614 /* Handle the tokens $digits; also $ (short for $0) and $$ (short for $$1)
0df8b418 615 and $$digits (equivalent to $<-digits> if you could type that). */
c906108c 616
c906108c
SS
617 int negate = 0;
618 int i = 1;
619 /* Double dollar means negate the number and add -1 as well.
620 Thus $$ alone means -1. */
621 if (str.length >= 2 && str.ptr[1] == '$')
622 {
623 negate = 1;
624 i = 2;
625 }
626 if (i == str.length)
627 {
0df8b418 628 /* Just dollars (one or two). */
c5aa993b 629 i = -negate;
c906108c
SS
630 goto handle_last;
631 }
632 /* Is the rest of the token digits? */
633 for (; i < str.length; i++)
634 if (!(str.ptr[i] >= '0' && str.ptr[i] <= '9'))
635 break;
636 if (i == str.length)
637 {
638 i = atoi (str.ptr + 1 + negate);
639 if (negate)
c5aa993b 640 i = -i;
c906108c
SS
641 goto handle_last;
642 }
c5aa993b 643
c906108c
SS
644 /* Handle tokens that refer to machine registers:
645 $ followed by a register name. */
d80b854b 646 i = user_reg_map_name_to_regnum (parse_gdbarch,
029a67e4 647 str.ptr + 1, str.length - 1);
c5aa993b 648 if (i >= 0)
c906108c
SS
649 goto handle_register;
650
c4a3d09a
MF
651 /* Any names starting with $ are probably debugger internal variables. */
652
653 isym = lookup_only_internalvar (copy_name (str) + 1);
654 if (isym)
655 {
656 write_exp_elt_opcode (OP_INTERNALVAR);
657 write_exp_elt_intern (isym);
658 write_exp_elt_opcode (OP_INTERNALVAR);
659 return;
660 }
661
d7318818 662 /* On some systems, such as HP-UX and hppa-linux, certain system routines
0df8b418 663 have names beginning with $ or $$. Check for those, first. */
d7318818
RC
664
665 sym = lookup_symbol (copy_name (str), (struct block *) NULL,
2570f2b7 666 VAR_DOMAIN, (int *) NULL);
d7318818
RC
667 if (sym)
668 {
669 write_exp_elt_opcode (OP_VAR_VALUE);
670 write_exp_elt_block (block_found); /* set by lookup_symbol */
671 write_exp_elt_sym (sym);
672 write_exp_elt_opcode (OP_VAR_VALUE);
673 return;
674 }
675 msym = lookup_minimal_symbol (copy_name (str), NULL, NULL);
676 if (msym)
c906108c 677 {
c841afd5 678 write_exp_msymbol (msym);
d7318818 679 return;
c906108c 680 }
c5aa993b 681
c4a3d09a 682 /* Any other names are assumed to be debugger internal variables. */
c906108c
SS
683
684 write_exp_elt_opcode (OP_INTERNALVAR);
c4a3d09a 685 write_exp_elt_intern (create_internalvar (copy_name (str) + 1));
c5aa993b 686 write_exp_elt_opcode (OP_INTERNALVAR);
c906108c 687 return;
c5aa993b 688handle_last:
c906108c
SS
689 write_exp_elt_opcode (OP_LAST);
690 write_exp_elt_longcst ((LONGEST) i);
691 write_exp_elt_opcode (OP_LAST);
692 return;
c5aa993b 693handle_register:
c906108c 694 write_exp_elt_opcode (OP_REGISTER);
67f3407f
DJ
695 str.length--;
696 str.ptr++;
697 write_exp_string (str);
c5aa993b 698 write_exp_elt_opcode (OP_REGISTER);
c906108c
SS
699 return;
700}
701
702
c906108c 703char *
fba45db2 704find_template_name_end (char *p)
c906108c
SS
705{
706 int depth = 1;
707 int just_seen_right = 0;
708 int just_seen_colon = 0;
709 int just_seen_space = 0;
c5aa993b 710
c906108c
SS
711 if (!p || (*p != '<'))
712 return 0;
713
714 while (*++p)
715 {
716 switch (*p)
c5aa993b
JM
717 {
718 case '\'':
719 case '\"':
720 case '{':
721 case '}':
0df8b418 722 /* In future, may want to allow these?? */
c5aa993b
JM
723 return 0;
724 case '<':
725 depth++; /* start nested template */
726 if (just_seen_colon || just_seen_right || just_seen_space)
727 return 0; /* but not after : or :: or > or space */
728 break;
729 case '>':
730 if (just_seen_colon || just_seen_right)
731 return 0; /* end a (nested?) template */
732 just_seen_right = 1; /* but not after : or :: */
733 if (--depth == 0) /* also disallow >>, insist on > > */
734 return ++p; /* if outermost ended, return */
735 break;
736 case ':':
737 if (just_seen_space || (just_seen_colon > 1))
738 return 0; /* nested class spec coming up */
739 just_seen_colon++; /* we allow :: but not :::: */
740 break;
741 case ' ':
742 break;
743 default:
744 if (!((*p >= 'a' && *p <= 'z') || /* allow token chars */
745 (*p >= 'A' && *p <= 'Z') ||
746 (*p >= '0' && *p <= '9') ||
747 (*p == '_') || (*p == ',') || /* commas for template args */
748 (*p == '&') || (*p == '*') || /* pointer and ref types */
749 (*p == '(') || (*p == ')') || /* function types */
750 (*p == '[') || (*p == ']'))) /* array types */
751 return 0;
752 }
c906108c 753 if (*p != ' ')
c5aa993b 754 just_seen_space = 0;
c906108c 755 if (*p != ':')
c5aa993b 756 just_seen_colon = 0;
c906108c 757 if (*p != '>')
c5aa993b 758 just_seen_right = 0;
c906108c
SS
759 }
760 return 0;
761}
c5aa993b 762\f
c906108c 763
1a4eeb98 764/* Return a null-terminated temporary copy of the name of a string token.
c906108c 765
1a4eeb98
DE
766 Tokens that refer to names do so with explicit pointer and length,
767 so they can share the storage that lexptr is parsing.
768 When it is necessary to pass a name to a function that expects
769 a null-terminated string, the substring is copied out
770 into a separate block of storage.
771
772 N.B. A single buffer is reused on each call. */
c906108c
SS
773
774char *
fba45db2 775copy_name (struct stoken token)
c906108c 776{
1a4eeb98
DE
777 /* A temporary buffer for identifiers, so we can null-terminate them.
778 We allocate this with xrealloc. parse_exp_1 used to allocate with
779 alloca, using the size of the whole expression as a conservative
780 estimate of the space needed. However, macro expansion can
781 introduce names longer than the original expression; there's no
782 practical way to know beforehand how large that might be. */
783 static char *namecopy;
784 static size_t namecopy_size;
785
3a913e29
JB
786 /* Make sure there's enough space for the token. */
787 if (namecopy_size < token.length + 1)
788 {
789 namecopy_size = token.length + 1;
790 namecopy = xrealloc (namecopy, token.length + 1);
791 }
792
c906108c
SS
793 memcpy (namecopy, token.ptr, token.length);
794 namecopy[token.length] = 0;
3a913e29 795
c906108c
SS
796 return namecopy;
797}
798\f
55aa24fb
SDJ
799
800/* See comments on parser-defs.h. */
801
802int
f86f5ca3 803prefixify_expression (struct expression *expr)
c906108c 804{
df2a60d0 805 int len = sizeof (struct expression) + EXP_ELEM_TO_BYTES (expr->nelts);
f86f5ca3
PH
806 struct expression *temp;
807 int inpos = expr->nelts, outpos = 0;
c906108c
SS
808
809 temp = (struct expression *) alloca (len);
810
811 /* Copy the original expression into temp. */
812 memcpy (temp, expr, len);
813
65d12d83 814 return prefixify_subexp (temp, expr, inpos, outpos);
c906108c
SS
815}
816
24daaebc
PH
817/* Return the number of exp_elements in the postfix subexpression
818 of EXPR whose operator is at index ENDPOS - 1 in EXPR. */
c906108c
SS
819
820int
f86f5ca3 821length_of_subexp (struct expression *expr, int endpos)
24daaebc 822{
6b4398f7 823 int oplen, args;
24daaebc
PH
824
825 operator_length (expr, endpos, &oplen, &args);
826
827 while (args > 0)
828 {
829 oplen += length_of_subexp (expr, endpos - oplen);
830 args--;
831 }
832
833 return oplen;
834}
835
836/* Sets *OPLENP to the length of the operator whose (last) index is
837 ENDPOS - 1 in EXPR, and sets *ARGSP to the number of arguments that
838 operator takes. */
839
840void
554794dc
SDJ
841operator_length (const struct expression *expr, int endpos, int *oplenp,
842 int *argsp)
5f9769d1
PH
843{
844 expr->language_defn->la_exp_desc->operator_length (expr, endpos,
845 oplenp, argsp);
846}
847
848/* Default value for operator_length in exp_descriptor vectors. */
849
850void
554794dc 851operator_length_standard (const struct expression *expr, int endpos,
5f9769d1 852 int *oplenp, int *argsp)
c906108c 853{
f86f5ca3
PH
854 int oplen = 1;
855 int args = 0;
0b4e1325 856 enum f90_range_type range_type;
f86f5ca3 857 int i;
c906108c
SS
858
859 if (endpos < 1)
8a3fe4f8 860 error (_("?error in operator_length_standard"));
c906108c
SS
861
862 i = (int) expr->elts[endpos - 1].opcode;
863
864 switch (i)
865 {
866 /* C++ */
867 case OP_SCOPE:
868 oplen = longest_to_int (expr->elts[endpos - 2].longconst);
869 oplen = 5 + BYTES_TO_EXP_ELEM (oplen + 1);
870 break;
871
872 case OP_LONG:
873 case OP_DOUBLE:
27bc4d80 874 case OP_DECFLOAT:
c906108c
SS
875 case OP_VAR_VALUE:
876 oplen = 4;
877 break;
878
879 case OP_TYPE:
880 case OP_BOOL:
881 case OP_LAST:
c906108c 882 case OP_INTERNALVAR:
36b11add 883 case OP_VAR_ENTRY_VALUE:
c906108c
SS
884 oplen = 3;
885 break;
886
887 case OP_COMPLEX:
c806c55a 888 oplen = 3;
c906108c 889 args = 2;
c5aa993b 890 break;
c906108c
SS
891
892 case OP_FUNCALL:
893 case OP_F77_UNDETERMINED_ARGLIST:
894 oplen = 3;
895 args = 1 + longest_to_int (expr->elts[endpos - 2].longconst);
896 break;
897
072bba3b
KS
898 case TYPE_INSTANCE:
899 oplen = 4 + longest_to_int (expr->elts[endpos - 2].longconst);
900 args = 1;
901 break;
902
0df8b418 903 case OP_OBJC_MSGCALL: /* Objective C message (method) call. */
53c551b7
AF
904 oplen = 4;
905 args = 1 + longest_to_int (expr->elts[endpos - 2].longconst);
906 break;
907
c906108c
SS
908 case UNOP_MAX:
909 case UNOP_MIN:
910 oplen = 3;
911 break;
912
9eaf6705 913 case UNOP_CAST_TYPE:
4e8f195d
TT
914 case UNOP_DYNAMIC_CAST:
915 case UNOP_REINTERPRET_CAST:
9eaf6705
TT
916 case UNOP_MEMVAL_TYPE:
917 oplen = 1;
918 args = 2;
919 break;
920
921 case BINOP_VAL:
922 case UNOP_CAST:
c5aa993b 923 case UNOP_MEMVAL:
c906108c
SS
924 oplen = 3;
925 args = 1;
926 break;
927
9e35dae4
DJ
928 case UNOP_MEMVAL_TLS:
929 oplen = 4;
930 args = 1;
931 break;
932
c906108c
SS
933 case UNOP_ABS:
934 case UNOP_CAP:
935 case UNOP_CHR:
936 case UNOP_FLOAT:
937 case UNOP_HIGH:
938 case UNOP_ODD:
939 case UNOP_ORD:
940 case UNOP_TRUNC:
941 oplen = 1;
942 args = 1;
943 break;
944
7322dca9
SW
945 case OP_ADL_FUNC:
946 oplen = longest_to_int (expr->elts[endpos - 2].longconst);
947 oplen = 4 + BYTES_TO_EXP_ELEM (oplen + 1);
948 oplen++;
949 oplen++;
950 break;
951
c906108c
SS
952 case OP_LABELED:
953 case STRUCTOP_STRUCT:
954 case STRUCTOP_PTR:
955 args = 1;
956 /* fall through */
67f3407f 957 case OP_REGISTER:
c906108c
SS
958 case OP_M2_STRING:
959 case OP_STRING:
3e43a32a 960 case OP_OBJC_NSSTRING: /* Objective C Foundation Class
0df8b418
MS
961 NSString constant. */
962 case OP_OBJC_SELECTOR: /* Objective C "@selector" pseudo-op. */
c906108c 963 case OP_NAME:
c906108c
SS
964 oplen = longest_to_int (expr->elts[endpos - 2].longconst);
965 oplen = 4 + BYTES_TO_EXP_ELEM (oplen + 1);
966 break;
967
968 case OP_BITSTRING:
969 oplen = longest_to_int (expr->elts[endpos - 2].longconst);
970 oplen = (oplen + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
971 oplen = 4 + BYTES_TO_EXP_ELEM (oplen);
972 break;
973
974 case OP_ARRAY:
975 oplen = 4;
976 args = longest_to_int (expr->elts[endpos - 2].longconst);
977 args -= longest_to_int (expr->elts[endpos - 3].longconst);
978 args += 1;
979 break;
980
981 case TERNOP_COND:
982 case TERNOP_SLICE:
983 case TERNOP_SLICE_COUNT:
984 args = 3;
985 break;
986
987 /* Modula-2 */
c5aa993b 988 case MULTI_SUBSCRIPT:
c906108c 989 oplen = 3;
c5aa993b 990 args = 1 + longest_to_int (expr->elts[endpos - 2].longconst);
c906108c
SS
991 break;
992
993 case BINOP_ASSIGN_MODIFY:
994 oplen = 3;
995 args = 2;
996 break;
997
998 /* C++ */
999 case OP_THIS:
1000 oplen = 2;
1001 break;
1002
0b4e1325
WZ
1003 case OP_F90_RANGE:
1004 oplen = 3;
1005
1006 range_type = longest_to_int (expr->elts[endpos - 2].longconst);
1007 switch (range_type)
1008 {
1009 case LOW_BOUND_DEFAULT:
1010 case HIGH_BOUND_DEFAULT:
1011 args = 1;
1012 break;
1013 case BOTH_BOUND_DEFAULT:
1014 args = 0;
1015 break;
1016 case NONE_BOUND_DEFAULT:
1017 args = 2;
1018 break;
1019 }
1020
1021 break;
1022
c906108c
SS
1023 default:
1024 args = 1 + (i < (int) BINOP_END);
1025 }
1026
24daaebc
PH
1027 *oplenp = oplen;
1028 *argsp = args;
c906108c
SS
1029}
1030
1031/* Copy the subexpression ending just before index INEND in INEXPR
1032 into OUTEXPR, starting at index OUTBEG.
65d12d83
TT
1033 In the process, convert it from suffix to prefix form.
1034 If EXPOUT_LAST_STRUCT is -1, then this function always returns -1.
1035 Otherwise, it returns the index of the subexpression which is the
1036 left-hand-side of the expression at EXPOUT_LAST_STRUCT. */
c906108c 1037
65d12d83 1038static int
f86f5ca3
PH
1039prefixify_subexp (struct expression *inexpr,
1040 struct expression *outexpr, int inend, int outbeg)
c906108c 1041{
24daaebc
PH
1042 int oplen;
1043 int args;
f86f5ca3 1044 int i;
c906108c 1045 int *arglens;
65d12d83 1046 int result = -1;
c906108c 1047
24daaebc 1048 operator_length (inexpr, inend, &oplen, &args);
c906108c
SS
1049
1050 /* Copy the final operator itself, from the end of the input
1051 to the beginning of the output. */
1052 inend -= oplen;
1053 memcpy (&outexpr->elts[outbeg], &inexpr->elts[inend],
1054 EXP_ELEM_TO_BYTES (oplen));
1055 outbeg += oplen;
1056
65d12d83
TT
1057 if (expout_last_struct == inend)
1058 result = outbeg - oplen;
1059
c906108c
SS
1060 /* Find the lengths of the arg subexpressions. */
1061 arglens = (int *) alloca (args * sizeof (int));
1062 for (i = args - 1; i >= 0; i--)
1063 {
1064 oplen = length_of_subexp (inexpr, inend);
1065 arglens[i] = oplen;
1066 inend -= oplen;
1067 }
1068
1069 /* Now copy each subexpression, preserving the order of
1070 the subexpressions, but prefixifying each one.
1071 In this loop, inend starts at the beginning of
1072 the expression this level is working on
1073 and marches forward over the arguments.
1074 outbeg does similarly in the output. */
1075 for (i = 0; i < args; i++)
1076 {
65d12d83 1077 int r;
ad3bbd48 1078
c906108c
SS
1079 oplen = arglens[i];
1080 inend += oplen;
65d12d83
TT
1081 r = prefixify_subexp (inexpr, outexpr, inend, outbeg);
1082 if (r != -1)
1083 {
1084 /* Return immediately. We probably have only parsed a
1085 partial expression, so we don't want to try to reverse
1086 the other operands. */
1087 return r;
1088 }
c906108c
SS
1089 outbeg += oplen;
1090 }
65d12d83
TT
1091
1092 return result;
c906108c
SS
1093}
1094\f
c906108c 1095/* Read an expression from the string *STRINGPTR points to,
ae0c443d 1096 parse it, and return a pointer to a struct expression that we malloc.
c906108c
SS
1097 Use block BLOCK as the lexical context for variable names;
1098 if BLOCK is zero, use the block of the selected stack frame.
1099 Meanwhile, advance *STRINGPTR to point after the expression,
1100 at the first nonwhite character that is not part of the expression
1101 (possibly a null character).
1102
1103 If COMMA is nonzero, stop if a comma is reached. */
1104
1105struct expression *
1bb9788d 1106parse_exp_1 (char **stringptr, CORE_ADDR pc, struct block *block, int comma)
e85c3284 1107{
1bb9788d 1108 return parse_exp_in_context (stringptr, pc, block, comma, 0, NULL);
e85c3284
PH
1109}
1110
1111/* As for parse_exp_1, except that if VOID_CONTEXT_P, then
65d12d83
TT
1112 no value is expected from the expression.
1113 OUT_SUBEXP is set when attempting to complete a field name; in this
1114 case it is set to the index of the subexpression on the
1115 left-hand-side of the struct op. If not doing such completion, it
1116 is left untouched. */
e85c3284
PH
1117
1118static struct expression *
1bb9788d
TT
1119parse_exp_in_context (char **stringptr, CORE_ADDR pc, struct block *block,
1120 int comma, int void_context_p, int *out_subexp)
c906108c 1121{
65d12d83 1122 volatile struct gdb_exception except;
c906108c 1123 struct cleanup *old_chain;
0cce5bd9 1124 const struct language_defn *lang = NULL;
65d12d83 1125 int subexp;
c906108c
SS
1126
1127 lexptr = *stringptr;
665132f9 1128 prev_lexptr = NULL;
c906108c
SS
1129
1130 paren_depth = 0;
1a7d0ce4 1131 type_stack.depth = 0;
65d12d83 1132 expout_last_struct = -1;
c906108c
SS
1133
1134 comma_terminates = comma;
1135
1136 if (lexptr == 0 || *lexptr == 0)
e2e0b3e5 1137 error_no_arg (_("expression to compute"));
c906108c 1138
74b7792f 1139 old_chain = make_cleanup (free_funcalls, 0 /*ignore*/);
c906108c
SS
1140 funcall_chain = 0;
1141
d705c43c 1142 expression_context_block = block;
59f92a09 1143
d705c43c
PA
1144 /* If no context specified, try using the current frame, if any. */
1145 if (!expression_context_block)
1146 expression_context_block = get_selected_block (&expression_context_pc);
1bb9788d 1147 else if (pc == 0)
d705c43c 1148 expression_context_pc = BLOCK_START (expression_context_block);
1bb9788d
TT
1149 else
1150 expression_context_pc = pc;
59f92a09 1151
d705c43c 1152 /* Fall back to using the current source static context, if any. */
59f92a09 1153
d705c43c 1154 if (!expression_context_block)
59f92a09
FF
1155 {
1156 struct symtab_and_line cursal = get_current_source_symtab_and_line ();
1157 if (cursal.symtab)
d705c43c
PA
1158 expression_context_block
1159 = BLOCKVECTOR_BLOCK (BLOCKVECTOR (cursal.symtab), STATIC_BLOCK);
1160 if (expression_context_block)
1161 expression_context_pc = BLOCK_START (expression_context_block);
84f0252a 1162 }
c906108c 1163
0cce5bd9
JB
1164 if (language_mode == language_mode_auto && block != NULL)
1165 {
1166 /* Find the language associated to the given context block.
1167 Default to the current language if it can not be determined.
1168
1169 Note that using the language corresponding to the current frame
1170 can sometimes give unexpected results. For instance, this
1171 routine is often called several times during the inferior
1172 startup phase to re-parse breakpoint expressions after
1173 a new shared library has been loaded. The language associated
1174 to the current frame at this moment is not relevant for
0df8b418 1175 the breakpoint. Using it would therefore be silly, so it seems
0cce5bd9 1176 better to rely on the current language rather than relying on
0df8b418 1177 the current frame language to parse the expression. That's why
0cce5bd9
JB
1178 we do the following language detection only if the context block
1179 has been specifically provided. */
1180 struct symbol *func = block_linkage_function (block);
1181
1182 if (func != NULL)
1183 lang = language_def (SYMBOL_LANGUAGE (func));
1184 if (lang == NULL || lang->la_language == language_unknown)
1185 lang = current_language;
1186 }
1187 else
1188 lang = current_language;
1189
2dbca4d6 1190 initialize_expout (10, lang, get_current_arch ());
c906108c 1191
65d12d83
TT
1192 TRY_CATCH (except, RETURN_MASK_ALL)
1193 {
0cce5bd9
JB
1194 if (lang->la_parser ())
1195 lang->la_error (NULL);
65d12d83
TT
1196 }
1197 if (except.reason < 0)
1198 {
1199 if (! in_parse_field)
1200 {
1201 xfree (expout);
1202 throw_exception (except);
1203 }
1204 }
c906108c
SS
1205
1206 discard_cleanups (old_chain);
1207
2dbca4d6 1208 reallocate_expout ();
c906108c
SS
1209
1210 /* Convert expression from postfix form as generated by yacc
0df8b418 1211 parser, to a prefix form. */
c906108c 1212
c906108c 1213 if (expressiondebug)
24daaebc
PH
1214 dump_raw_expression (expout, gdb_stdlog,
1215 "before conversion to prefix form");
c906108c 1216
65d12d83
TT
1217 subexp = prefixify_expression (expout);
1218 if (out_subexp)
1219 *out_subexp = subexp;
c906108c 1220
0cce5bd9 1221 lang->la_post_parser (&expout, void_context_p);
e85c3284 1222
c906108c 1223 if (expressiondebug)
24daaebc 1224 dump_prefix_expression (expout, gdb_stdlog);
c906108c
SS
1225
1226 *stringptr = lexptr;
1227 return expout;
1228}
1229
1230/* Parse STRING as an expression, and complain if this fails
1231 to use up all of the contents of STRING. */
1232
1233struct expression *
fba45db2 1234parse_expression (char *string)
c906108c 1235{
f86f5ca3 1236 struct expression *exp;
ad3bbd48 1237
1bb9788d 1238 exp = parse_exp_1 (&string, 0, 0, 0);
c906108c 1239 if (*string)
8a3fe4f8 1240 error (_("Junk after end of expression."));
c906108c
SS
1241 return exp;
1242}
e85c3284 1243
65d12d83
TT
1244/* Parse STRING as an expression. If parsing ends in the middle of a
1245 field reference, return the type of the left-hand-side of the
1246 reference; furthermore, if the parsing ends in the field name,
c92817ce
TT
1247 return the field name in *NAME. If the parsing ends in the middle
1248 of a field reference, but the reference is somehow invalid, throw
1249 an exception. In all other cases, return NULL. Returned non-NULL
1250 *NAME must be freed by the caller. */
65d12d83
TT
1251
1252struct type *
1253parse_field_expression (char *string, char **name)
1254{
1255 struct expression *exp = NULL;
1256 struct value *val;
1257 int subexp;
1258 volatile struct gdb_exception except;
1259
c92817ce 1260 TRY_CATCH (except, RETURN_MASK_ERROR)
65d12d83
TT
1261 {
1262 in_parse_field = 1;
1bb9788d 1263 exp = parse_exp_in_context (&string, 0, 0, 0, 0, &subexp);
65d12d83
TT
1264 }
1265 in_parse_field = 0;
1266 if (except.reason < 0 || ! exp)
1267 return NULL;
1268 if (expout_last_struct == -1)
1269 {
1270 xfree (exp);
1271 return NULL;
1272 }
1273
1274 *name = extract_field_op (exp, &subexp);
1275 if (!*name)
1276 {
1277 xfree (exp);
1278 return NULL;
1279 }
a0b7aece 1280
c92817ce
TT
1281 /* This might throw an exception. If so, we want to let it
1282 propagate. */
65d12d83 1283 val = evaluate_subexpression_type (exp, subexp);
c92817ce
TT
1284 /* (*NAME) is a part of the EXP memory block freed below. */
1285 *name = xstrdup (*name);
65d12d83
TT
1286 xfree (exp);
1287
1288 return value_type (val);
1289}
1290
0df8b418 1291/* A post-parser that does nothing. */
e85c3284 1292
e85c3284
PH
1293void
1294null_post_parser (struct expression **exp, int void_context_p)
1295{
1296}
d30f5e1f
DE
1297
1298/* Parse floating point value P of length LEN.
1299 Return 0 (false) if invalid, 1 (true) if valid.
1300 The successfully parsed number is stored in D.
1301 *SUFFIX points to the suffix of the number in P.
1302
1303 NOTE: This accepts the floating point syntax that sscanf accepts. */
1304
1305int
1306parse_float (const char *p, int len, DOUBLEST *d, const char **suffix)
1307{
1308 char *copy;
d30f5e1f
DE
1309 int n, num;
1310
1311 copy = xmalloc (len + 1);
1312 memcpy (copy, p, len);
1313 copy[len] = 0;
1314
1315 num = sscanf (copy, "%" DOUBLEST_SCAN_FORMAT "%n", d, &n);
1316 xfree (copy);
1317
1318 /* The sscanf man page suggests not making any assumptions on the effect
1319 of %n on the result, so we don't.
1320 That is why we simply test num == 0. */
1321 if (num == 0)
1322 return 0;
1323
1324 *suffix = p + n;
1325 return 1;
1326}
1327
1328/* Parse floating point value P of length LEN, using the C syntax for floats.
1329 Return 0 (false) if invalid, 1 (true) if valid.
1330 The successfully parsed number is stored in *D.
1331 Its type is taken from builtin_type (gdbarch) and is stored in *T. */
1332
1333int
1334parse_c_float (struct gdbarch *gdbarch, const char *p, int len,
1335 DOUBLEST *d, struct type **t)
1336{
1337 const char *suffix;
1338 int suffix_len;
1339 const struct builtin_type *builtin_types = builtin_type (gdbarch);
1340
1341 if (! parse_float (p, len, d, &suffix))
1342 return 0;
1343
1344 suffix_len = p + len - suffix;
1345
1346 if (suffix_len == 0)
1347 *t = builtin_types->builtin_double;
1348 else if (suffix_len == 1)
1349 {
1350 /* Handle suffixes: 'f' for float, 'l' for long double. */
1351 if (tolower (*suffix) == 'f')
1352 *t = builtin_types->builtin_float;
1353 else if (tolower (*suffix) == 'l')
1354 *t = builtin_types->builtin_long_double;
1355 else
1356 return 0;
1357 }
1358 else
1359 return 0;
1360
1361 return 1;
1362}
c906108c
SS
1363\f
1364/* Stuff for maintaining a stack of types. Currently just used by C, but
1365 probably useful for any language which declares its types "backwards". */
1366
fcde5961
TT
1367/* Ensure that there are HOWMUCH open slots on the type stack STACK. */
1368
47663de5 1369static void
fcde5961 1370type_stack_reserve (struct type_stack *stack, int howmuch)
c906108c 1371{
fcde5961 1372 if (stack->depth + howmuch >= stack->size)
c906108c 1373 {
fcde5961
TT
1374 stack->size *= 2;
1375 if (stack->size < howmuch)
1376 stack->size = howmuch;
1377 stack->elements = xrealloc (stack->elements,
1378 stack->size * sizeof (union type_stack_elt));
c906108c 1379 }
47663de5
MS
1380}
1381
fcde5961
TT
1382/* Ensure that there is a single open slot in the global type stack. */
1383
1384static void
1385check_type_stack_depth (void)
1386{
1387 type_stack_reserve (&type_stack, 1);
1388}
1389
95c391b6
TT
1390/* A helper function for insert_type and insert_type_address_space.
1391 This does work of expanding the type stack and inserting the new
1392 element, ELEMENT, into the stack at location SLOT. */
1393
1394static void
1395insert_into_type_stack (int slot, union type_stack_elt element)
1396{
1397 check_type_stack_depth ();
1398
1a7d0ce4
TT
1399 if (slot < type_stack.depth)
1400 memmove (&type_stack.elements[slot + 1], &type_stack.elements[slot],
1401 (type_stack.depth - slot) * sizeof (union type_stack_elt));
1402 type_stack.elements[slot] = element;
1403 ++type_stack.depth;
95c391b6
TT
1404}
1405
1406/* Insert a new type, TP, at the bottom of the type stack. If TP is
1407 tp_pointer or tp_reference, it is inserted at the bottom. If TP is
1408 a qualifier, it is inserted at slot 1 (just above a previous
1409 tp_pointer) if there is anything on the stack, or simply pushed if
1410 the stack is empty. Other values for TP are invalid. */
1411
1412void
1413insert_type (enum type_pieces tp)
1414{
1415 union type_stack_elt element;
1416 int slot;
1417
1418 gdb_assert (tp == tp_pointer || tp == tp_reference
1419 || tp == tp_const || tp == tp_volatile);
1420
1421 /* If there is anything on the stack (we know it will be a
1422 tp_pointer), insert the qualifier above it. Otherwise, simply
1423 push this on the top of the stack. */
1a7d0ce4 1424 if (type_stack.depth && (tp == tp_const || tp == tp_volatile))
95c391b6
TT
1425 slot = 1;
1426 else
1427 slot = 0;
1428
1429 element.piece = tp;
1430 insert_into_type_stack (slot, element);
1431}
1432
47663de5
MS
1433void
1434push_type (enum type_pieces tp)
1435{
1436 check_type_stack_depth ();
1a7d0ce4 1437 type_stack.elements[type_stack.depth++].piece = tp;
c906108c
SS
1438}
1439
1440void
fba45db2 1441push_type_int (int n)
c906108c 1442{
47663de5 1443 check_type_stack_depth ();
1a7d0ce4 1444 type_stack.elements[type_stack.depth++].int_val = n;
c906108c
SS
1445}
1446
95c391b6
TT
1447/* Insert a tp_space_identifier and the corresponding address space
1448 value into the stack. STRING is the name of an address space, as
1449 recognized by address_space_name_to_int. If the stack is empty,
1450 the new elements are simply pushed. If the stack is not empty,
1451 this function assumes that the first item on the stack is a
1452 tp_pointer, and the new values are inserted above the first
1453 item. */
1454
47663de5 1455void
95c391b6 1456insert_type_address_space (char *string)
47663de5 1457{
95c391b6
TT
1458 union type_stack_elt element;
1459 int slot;
1460
1461 /* If there is anything on the stack (we know it will be a
1462 tp_pointer), insert the address space qualifier above it.
1463 Otherwise, simply push this on the top of the stack. */
1a7d0ce4 1464 if (type_stack.depth)
95c391b6
TT
1465 slot = 1;
1466 else
1467 slot = 0;
1468
1469 element.piece = tp_space_identifier;
1470 insert_into_type_stack (slot, element);
1471 element.int_val = address_space_name_to_int (parse_gdbarch, string);
1472 insert_into_type_stack (slot, element);
47663de5
MS
1473}
1474
c5aa993b 1475enum type_pieces
fba45db2 1476pop_type (void)
c906108c 1477{
1a7d0ce4
TT
1478 if (type_stack.depth)
1479 return type_stack.elements[--type_stack.depth].piece;
c906108c
SS
1480 return tp_end;
1481}
1482
1483int
fba45db2 1484pop_type_int (void)
c906108c 1485{
1a7d0ce4
TT
1486 if (type_stack.depth)
1487 return type_stack.elements[--type_stack.depth].int_val;
c906108c
SS
1488 /* "Can't happen". */
1489 return 0;
1490}
1491
71918a86
TT
1492/* Pop a type list element from the global type stack. */
1493
1494static VEC (type_ptr) *
1495pop_typelist (void)
1496{
1497 gdb_assert (type_stack.depth);
1498 return type_stack.elements[--type_stack.depth].typelist_val;
1499}
1500
fcde5961
TT
1501/* Pop a type_stack element from the global type stack. */
1502
1503static struct type_stack *
1504pop_type_stack (void)
1505{
1506 gdb_assert (type_stack.depth);
1507 return type_stack.elements[--type_stack.depth].stack_val;
1508}
1509
1510/* Append the elements of the type stack FROM to the type stack TO.
1511 Always returns TO. */
1512
1513struct type_stack *
1514append_type_stack (struct type_stack *to, struct type_stack *from)
1515{
1516 type_stack_reserve (to, from->depth);
1517
1518 memcpy (&to->elements[to->depth], &from->elements[0],
1519 from->depth * sizeof (union type_stack_elt));
1520 to->depth += from->depth;
1521
1522 return to;
1523}
1524
1525/* Push the type stack STACK as an element on the global type stack. */
1526
1527void
1528push_type_stack (struct type_stack *stack)
1529{
1530 check_type_stack_depth ();
1531 type_stack.elements[type_stack.depth++].stack_val = stack;
1532 push_type (tp_type_stack);
1533}
1534
1535/* Copy the global type stack into a newly allocated type stack and
1536 return it. The global stack is cleared. The returned type stack
1537 must be freed with type_stack_cleanup. */
1538
1539struct type_stack *
1540get_type_stack (void)
1541{
1542 struct type_stack *result = XNEW (struct type_stack);
1543
1544 *result = type_stack;
1545 type_stack.depth = 0;
1546 type_stack.size = 0;
1547 type_stack.elements = NULL;
1548
1549 return result;
1550}
1551
1552/* A cleanup function that destroys a single type stack. */
1553
1554void
1555type_stack_cleanup (void *arg)
1556{
1557 struct type_stack *stack = arg;
1558
1559 xfree (stack->elements);
1560 xfree (stack);
1561}
1562
71918a86 1563/* Push a function type with arguments onto the global type stack.
a6fb9c08
TT
1564 LIST holds the argument types. If the final item in LIST is NULL,
1565 then the function will be varargs. */
71918a86
TT
1566
1567void
1568push_typelist (VEC (type_ptr) *list)
1569{
1570 check_type_stack_depth ();
1571 type_stack.elements[type_stack.depth++].typelist_val = list;
1572 push_type (tp_function_with_arguments);
1573}
1574
c906108c
SS
1575/* Pop the type stack and return the type which corresponds to FOLLOW_TYPE
1576 as modified by all the stuff on the stack. */
1577struct type *
fba45db2 1578follow_types (struct type *follow_type)
c906108c
SS
1579{
1580 int done = 0;
2e2394a0
MS
1581 int make_const = 0;
1582 int make_volatile = 0;
47663de5 1583 int make_addr_space = 0;
c906108c 1584 int array_size;
c906108c
SS
1585
1586 while (!done)
1587 switch (pop_type ())
1588 {
1589 case tp_end:
1590 done = 1;
2e2394a0
MS
1591 if (make_const)
1592 follow_type = make_cv_type (make_const,
1593 TYPE_VOLATILE (follow_type),
1594 follow_type, 0);
1595 if (make_volatile)
1596 follow_type = make_cv_type (TYPE_CONST (follow_type),
1597 make_volatile,
1598 follow_type, 0);
47663de5
MS
1599 if (make_addr_space)
1600 follow_type = make_type_with_address_space (follow_type,
1601 make_addr_space);
1602 make_const = make_volatile = 0;
1603 make_addr_space = 0;
2e2394a0
MS
1604 break;
1605 case tp_const:
1606 make_const = 1;
1607 break;
1608 case tp_volatile:
1609 make_volatile = 1;
c906108c 1610 break;
47663de5
MS
1611 case tp_space_identifier:
1612 make_addr_space = pop_type_int ();
1613 break;
c906108c
SS
1614 case tp_pointer:
1615 follow_type = lookup_pointer_type (follow_type);
2e2394a0
MS
1616 if (make_const)
1617 follow_type = make_cv_type (make_const,
1618 TYPE_VOLATILE (follow_type),
1619 follow_type, 0);
1620 if (make_volatile)
1621 follow_type = make_cv_type (TYPE_CONST (follow_type),
1622 make_volatile,
1623 follow_type, 0);
47663de5
MS
1624 if (make_addr_space)
1625 follow_type = make_type_with_address_space (follow_type,
1626 make_addr_space);
2e2394a0 1627 make_const = make_volatile = 0;
47663de5 1628 make_addr_space = 0;
c906108c
SS
1629 break;
1630 case tp_reference:
1631 follow_type = lookup_reference_type (follow_type);
2e2394a0 1632 if (make_const)
47663de5
MS
1633 follow_type = make_cv_type (make_const,
1634 TYPE_VOLATILE (follow_type),
1635 follow_type, 0);
2e2394a0 1636 if (make_volatile)
47663de5
MS
1637 follow_type = make_cv_type (TYPE_CONST (follow_type),
1638 make_volatile,
1639 follow_type, 0);
1640 if (make_addr_space)
1641 follow_type = make_type_with_address_space (follow_type,
1642 make_addr_space);
2e2394a0 1643 make_const = make_volatile = 0;
47663de5 1644 make_addr_space = 0;
c906108c
SS
1645 break;
1646 case tp_array:
1647 array_size = pop_type_int ();
1648 /* FIXME-type-allocation: need a way to free this type when we are
1649 done with it. */
c906108c 1650 follow_type =
e3506a9f
UW
1651 lookup_array_range_type (follow_type,
1652 0, array_size >= 0 ? array_size - 1 : 0);
c906108c 1653 if (array_size < 0)
d78df370 1654 TYPE_ARRAY_UPPER_BOUND_IS_UNDEFINED (follow_type) = 1;
c906108c
SS
1655 break;
1656 case tp_function:
1657 /* FIXME-type-allocation: need a way to free this type when we are
1658 done with it. */
1659 follow_type = lookup_function_type (follow_type);
1660 break;
fcde5961 1661
71918a86
TT
1662 case tp_function_with_arguments:
1663 {
1664 VEC (type_ptr) *args = pop_typelist ();
1665
1666 follow_type
1667 = lookup_function_type_with_arguments (follow_type,
1668 VEC_length (type_ptr, args),
1669 VEC_address (type_ptr,
1670 args));
1671 VEC_free (type_ptr, args);
1672 }
1673 break;
1674
fcde5961
TT
1675 case tp_type_stack:
1676 {
1677 struct type_stack *stack = pop_type_stack ();
1678 /* Sort of ugly, but not really much worse than the
1679 alternatives. */
1680 struct type_stack save = type_stack;
1681
1682 type_stack = *stack;
1683 follow_type = follow_types (follow_type);
1684 gdb_assert (type_stack.depth == 0);
1685
1686 type_stack = save;
1687 }
1688 break;
1689 default:
1690 gdb_assert_not_reached ("unrecognized tp_ value in follow_types");
c906108c
SS
1691 }
1692 return follow_type;
1693}
1694\f
f461f5cf
PM
1695/* This function avoids direct calls to fprintf
1696 in the parser generated debug code. */
1697void
1698parser_fprintf (FILE *x, const char *y, ...)
1699{
1700 va_list args;
ad3bbd48 1701
f461f5cf
PM
1702 va_start (args, y);
1703 if (x == stderr)
1704 vfprintf_unfiltered (gdb_stderr, y, args);
1705 else
1706 {
1707 fprintf_unfiltered (gdb_stderr, " Unknown FILE used.\n");
1708 vfprintf_unfiltered (gdb_stderr, y, args);
1709 }
1710 va_end (args);
1711}
1712
c0201579
JK
1713/* Implementation of the exp_descriptor method operator_check. */
1714
1715int
1716operator_check_standard (struct expression *exp, int pos,
1717 int (*objfile_func) (struct objfile *objfile,
1718 void *data),
1719 void *data)
1720{
1721 const union exp_element *const elts = exp->elts;
1722 struct type *type = NULL;
1723 struct objfile *objfile = NULL;
1724
1725 /* Extended operators should have been already handled by exp_descriptor
1726 iterate method of its specific language. */
1727 gdb_assert (elts[pos].opcode < OP_EXTENDED0);
1728
1729 /* Track the callers of write_exp_elt_type for this table. */
1730
1731 switch (elts[pos].opcode)
1732 {
1733 case BINOP_VAL:
1734 case OP_COMPLEX:
1735 case OP_DECFLOAT:
1736 case OP_DOUBLE:
1737 case OP_LONG:
1738 case OP_SCOPE:
1739 case OP_TYPE:
1740 case UNOP_CAST:
c0201579
JK
1741 case UNOP_MAX:
1742 case UNOP_MEMVAL:
1743 case UNOP_MIN:
1744 type = elts[pos + 1].type;
1745 break;
1746
1747 case TYPE_INSTANCE:
1748 {
1749 LONGEST arg, nargs = elts[pos + 1].longconst;
1750
1751 for (arg = 0; arg < nargs; arg++)
1752 {
1753 struct type *type = elts[pos + 2 + arg].type;
1754 struct objfile *objfile = TYPE_OBJFILE (type);
1755
1756 if (objfile && (*objfile_func) (objfile, data))
1757 return 1;
1758 }
1759 }
1760 break;
1761
1762 case UNOP_MEMVAL_TLS:
1763 objfile = elts[pos + 1].objfile;
1764 type = elts[pos + 2].type;
1765 break;
1766
1767 case OP_VAR_VALUE:
1768 {
1769 const struct block *const block = elts[pos + 1].block;
1770 const struct symbol *const symbol = elts[pos + 2].symbol;
1771
1772 /* Check objfile where the variable itself is placed.
1773 SYMBOL_OBJ_SECTION (symbol) may be NULL. */
1774 if ((*objfile_func) (SYMBOL_SYMTAB (symbol)->objfile, data))
1775 return 1;
1776
1777 /* Check objfile where is placed the code touching the variable. */
1778 objfile = lookup_objfile_from_block (block);
1779
1780 type = SYMBOL_TYPE (symbol);
1781 }
1782 break;
1783 }
1784
1785 /* Invoke callbacks for TYPE and OBJFILE if they were set as non-NULL. */
1786
1787 if (type && TYPE_OBJFILE (type)
1788 && (*objfile_func) (TYPE_OBJFILE (type), data))
1789 return 1;
1790 if (objfile && (*objfile_func) (objfile, data))
1791 return 1;
1792
1793 return 0;
1794}
1795
1796/* Call OBJFILE_FUNC for any TYPE and OBJFILE found being referenced by EXP.
1797 The functions are never called with NULL OBJFILE. Functions get passed an
1798 arbitrary caller supplied DATA pointer. If any of the functions returns
1799 non-zero value then (any other) non-zero value is immediately returned to
1800 the caller. Otherwise zero is returned after iterating through whole EXP.
1801 */
1802
1803static int
1804exp_iterate (struct expression *exp,
1805 int (*objfile_func) (struct objfile *objfile, void *data),
1806 void *data)
1807{
1808 int endpos;
c0201579
JK
1809
1810 for (endpos = exp->nelts; endpos > 0; )
1811 {
1812 int pos, args, oplen = 0;
1813
dc21167c 1814 operator_length (exp, endpos, &oplen, &args);
c0201579
JK
1815 gdb_assert (oplen > 0);
1816
1817 pos = endpos - oplen;
1818 if (exp->language_defn->la_exp_desc->operator_check (exp, pos,
1819 objfile_func, data))
1820 return 1;
1821
1822 endpos = pos;
1823 }
1824
1825 return 0;
1826}
1827
1828/* Helper for exp_uses_objfile. */
1829
1830static int
1831exp_uses_objfile_iter (struct objfile *exp_objfile, void *objfile_voidp)
1832{
1833 struct objfile *objfile = objfile_voidp;
1834
1835 if (exp_objfile->separate_debug_objfile_backlink)
1836 exp_objfile = exp_objfile->separate_debug_objfile_backlink;
1837
1838 return exp_objfile == objfile;
1839}
1840
1841/* Return 1 if EXP uses OBJFILE (and will become dangling when OBJFILE
1842 is unloaded), otherwise return 0. OBJFILE must not be a separate debug info
1843 file. */
1844
1845int
1846exp_uses_objfile (struct expression *exp, struct objfile *objfile)
1847{
1848 gdb_assert (objfile->separate_debug_objfile_backlink == NULL);
1849
1850 return exp_iterate (exp, exp_uses_objfile_iter, objfile);
1851}
1852
ac9a91a7 1853void
fba45db2 1854_initialize_parse (void)
ac9a91a7 1855{
fcde5961 1856 type_stack.size = 0;
1a7d0ce4 1857 type_stack.depth = 0;
fcde5961 1858 type_stack.elements = NULL;
ac9a91a7 1859
85c07804 1860 add_setshow_zinteger_cmd ("expression", class_maintenance,
3e43a32a
MS
1861 &expressiondebug,
1862 _("Set expression debugging."),
1863 _("Show expression debugging."),
1864 _("When non-zero, the internal representation "
1865 "of expressions will be printed."),
85c07804 1866 NULL,
920d2a44 1867 show_expressiondebug,
85c07804 1868 &setdebuglist, &showdebuglist);
92981e24 1869 add_setshow_boolean_cmd ("parser", class_maintenance,
3e43a32a
MS
1870 &parser_debug,
1871 _("Set parser debugging."),
1872 _("Show parser debugging."),
1873 _("When non-zero, expression parser "
1874 "tracing will be enabled."),
92981e24
TT
1875 NULL,
1876 show_parserdebug,
1877 &setdebuglist, &showdebuglist);
c906108c 1878}