* breakpoint.c:
[deliverable/binutils-gdb.git] / gdb / expprint.c
1 /* Print in infix form a struct expression.
2
3 Copyright (C) 1986, 1988, 1989, 1991, 1992, 1993, 1994, 1995, 1996, 1997,
4 1998, 1999, 2000, 2003 Free Software Foundation, Inc.
5
6 This file is part of GDB.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2 of the License, or
11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, write to the Free Software
20 Foundation, Inc., 51 Franklin Street, Fifth Floor,
21 Boston, MA 02110-1301, USA. */
22
23 #include "defs.h"
24 #include "symtab.h"
25 #include "gdbtypes.h"
26 #include "expression.h"
27 #include "value.h"
28 #include "language.h"
29 #include "parser-defs.h"
30 #include "user-regs.h" /* For user_reg_map_regnum_to_name. */
31 #include "target.h"
32 #include "gdb_string.h"
33 #include "block.h"
34
35 #ifdef HAVE_CTYPE_H
36 #include <ctype.h>
37 #endif
38
39 void
40 print_expression (struct expression *exp, struct ui_file *stream)
41 {
42 int pc = 0;
43 print_subexp (exp, &pc, stream, PREC_NULL);
44 }
45
46 /* Print the subexpression of EXP that starts in position POS, on STREAM.
47 PREC is the precedence of the surrounding operator;
48 if the precedence of the main operator of this subexpression is less,
49 parentheses are needed here. */
50
51 void
52 print_subexp (struct expression *exp, int *pos,
53 struct ui_file *stream, enum precedence prec)
54 {
55 exp->language_defn->la_exp_desc->print_subexp (exp, pos, stream, prec);
56 }
57
58 /* Standard implementation of print_subexp for use in language_defn
59 vectors. */
60 void
61 print_subexp_standard (struct expression *exp, int *pos,
62 struct ui_file *stream, enum precedence prec)
63 {
64 unsigned tem;
65 const struct op_print *op_print_tab;
66 int pc;
67 unsigned nargs;
68 char *op_str;
69 int assign_modify = 0;
70 enum exp_opcode opcode;
71 enum precedence myprec = PREC_NULL;
72 /* Set to 1 for a right-associative operator. */
73 int assoc = 0;
74 struct value *val;
75 char *tempstr = NULL;
76
77 op_print_tab = exp->language_defn->la_op_print_tab;
78 pc = (*pos)++;
79 opcode = exp->elts[pc].opcode;
80 switch (opcode)
81 {
82 /* Common ops */
83
84 case OP_SCOPE:
85 myprec = PREC_PREFIX;
86 assoc = 0;
87 fputs_filtered (type_name_no_tag (exp->elts[pc + 1].type), stream);
88 fputs_filtered ("::", stream);
89 nargs = longest_to_int (exp->elts[pc + 2].longconst);
90 (*pos) += 4 + BYTES_TO_EXP_ELEM (nargs + 1);
91 fputs_filtered (&exp->elts[pc + 3].string, stream);
92 return;
93
94 case OP_LONG:
95 (*pos) += 3;
96 value_print (value_from_longest (exp->elts[pc + 1].type,
97 exp->elts[pc + 2].longconst),
98 stream, 0, Val_no_prettyprint);
99 return;
100
101 case OP_DOUBLE:
102 (*pos) += 3;
103 value_print (value_from_double (exp->elts[pc + 1].type,
104 exp->elts[pc + 2].doubleconst),
105 stream, 0, Val_no_prettyprint);
106 return;
107
108 case OP_VAR_VALUE:
109 {
110 struct block *b;
111 (*pos) += 3;
112 b = exp->elts[pc + 1].block;
113 if (b != NULL
114 && BLOCK_FUNCTION (b) != NULL
115 && SYMBOL_PRINT_NAME (BLOCK_FUNCTION (b)) != NULL)
116 {
117 fputs_filtered (SYMBOL_PRINT_NAME (BLOCK_FUNCTION (b)), stream);
118 fputs_filtered ("::", stream);
119 }
120 fputs_filtered (SYMBOL_PRINT_NAME (exp->elts[pc + 2].symbol), stream);
121 }
122 return;
123
124 case OP_LAST:
125 (*pos) += 2;
126 fprintf_filtered (stream, "$%d",
127 longest_to_int (exp->elts[pc + 1].longconst));
128 return;
129
130 case OP_REGISTER:
131 {
132 int regnum = longest_to_int (exp->elts[pc + 1].longconst);
133 const char *name = user_reg_map_regnum_to_name (current_gdbarch,
134 regnum);
135 (*pos) += 2;
136 fprintf_filtered (stream, "$%s", name);
137 return;
138 }
139
140 case OP_BOOL:
141 (*pos) += 2;
142 fprintf_filtered (stream, "%s",
143 longest_to_int (exp->elts[pc + 1].longconst)
144 ? "TRUE" : "FALSE");
145 return;
146
147 case OP_INTERNALVAR:
148 (*pos) += 2;
149 fprintf_filtered (stream, "$%s",
150 internalvar_name (exp->elts[pc + 1].internalvar));
151 return;
152
153 case OP_FUNCALL:
154 (*pos) += 2;
155 nargs = longest_to_int (exp->elts[pc + 1].longconst);
156 print_subexp (exp, pos, stream, PREC_SUFFIX);
157 fputs_filtered (" (", stream);
158 for (tem = 0; tem < nargs; tem++)
159 {
160 if (tem != 0)
161 fputs_filtered (", ", stream);
162 print_subexp (exp, pos, stream, PREC_ABOVE_COMMA);
163 }
164 fputs_filtered (")", stream);
165 return;
166
167 case OP_NAME:
168 case OP_EXPRSTRING:
169 nargs = longest_to_int (exp->elts[pc + 1].longconst);
170 (*pos) += 3 + BYTES_TO_EXP_ELEM (nargs + 1);
171 fputs_filtered (&exp->elts[pc + 2].string, stream);
172 return;
173
174 case OP_STRING:
175 nargs = longest_to_int (exp->elts[pc + 1].longconst);
176 (*pos) += 3 + BYTES_TO_EXP_ELEM (nargs + 1);
177 /* LA_PRINT_STRING will print using the current repeat count threshold.
178 If necessary, we can temporarily set it to zero, or pass it as an
179 additional parameter to LA_PRINT_STRING. -fnf */
180 LA_PRINT_STRING (stream, &exp->elts[pc + 2].string, nargs, 1, 0);
181 return;
182
183 case OP_BITSTRING:
184 nargs = longest_to_int (exp->elts[pc + 1].longconst);
185 (*pos)
186 += 3 + BYTES_TO_EXP_ELEM ((nargs + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT);
187 fprintf_unfiltered (stream, "B'<unimplemented>'");
188 return;
189
190 case OP_OBJC_NSSTRING: /* Objective-C Foundation Class NSString constant. */
191 nargs = longest_to_int (exp->elts[pc + 1].longconst);
192 (*pos) += 3 + BYTES_TO_EXP_ELEM (nargs + 1);
193 fputs_filtered ("@\"", stream);
194 LA_PRINT_STRING (stream, &exp->elts[pc + 2].string, nargs, 1, 0);
195 fputs_filtered ("\"", stream);
196 return;
197
198 case OP_OBJC_MSGCALL:
199 { /* Objective C message (method) call. */
200 char *selector;
201 (*pos) += 3;
202 nargs = longest_to_int (exp->elts[pc + 2].longconst);
203 fprintf_unfiltered (stream, "[");
204 print_subexp (exp, pos, stream, PREC_SUFFIX);
205 if (0 == target_read_string (exp->elts[pc + 1].longconst,
206 &selector, 1024, NULL))
207 {
208 error (_("bad selector"));
209 return;
210 }
211 if (nargs)
212 {
213 char *s, *nextS;
214 s = alloca (strlen (selector) + 1);
215 strcpy (s, selector);
216 for (tem = 0; tem < nargs; tem++)
217 {
218 nextS = strchr (s, ':');
219 *nextS = '\0';
220 fprintf_unfiltered (stream, " %s: ", s);
221 s = nextS + 1;
222 print_subexp (exp, pos, stream, PREC_ABOVE_COMMA);
223 }
224 }
225 else
226 {
227 fprintf_unfiltered (stream, " %s", selector);
228 }
229 fprintf_unfiltered (stream, "]");
230 /* "selector" was malloc'd by target_read_string. Free it. */
231 xfree (selector);
232 return;
233 }
234
235 case OP_ARRAY:
236 (*pos) += 3;
237 nargs = longest_to_int (exp->elts[pc + 2].longconst);
238 nargs -= longest_to_int (exp->elts[pc + 1].longconst);
239 nargs++;
240 tem = 0;
241 if (exp->elts[pc + 4].opcode == OP_LONG
242 && exp->elts[pc + 5].type == builtin_type_char
243 && exp->language_defn->la_language == language_c)
244 {
245 /* Attempt to print C character arrays using string syntax.
246 Walk through the args, picking up one character from each
247 of the OP_LONG expression elements. If any array element
248 does not match our expection of what we should find for
249 a simple string, revert back to array printing. Note that
250 the last expression element is an explicit null terminator
251 byte, which doesn't get printed. */
252 tempstr = alloca (nargs);
253 pc += 4;
254 while (tem < nargs)
255 {
256 if (exp->elts[pc].opcode != OP_LONG
257 || exp->elts[pc + 1].type != builtin_type_char)
258 {
259 /* Not a simple array of char, use regular array printing. */
260 tem = 0;
261 break;
262 }
263 else
264 {
265 tempstr[tem++] =
266 longest_to_int (exp->elts[pc + 2].longconst);
267 pc += 4;
268 }
269 }
270 }
271 if (tem > 0)
272 {
273 LA_PRINT_STRING (stream, tempstr, nargs - 1, 1, 0);
274 (*pos) = pc;
275 }
276 else
277 {
278 fputs_filtered (" {", stream);
279 for (tem = 0; tem < nargs; tem++)
280 {
281 if (tem != 0)
282 {
283 fputs_filtered (", ", stream);
284 }
285 print_subexp (exp, pos, stream, PREC_ABOVE_COMMA);
286 }
287 fputs_filtered ("}", stream);
288 }
289 return;
290
291 case OP_LABELED:
292 tem = longest_to_int (exp->elts[pc + 1].longconst);
293 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
294 /* Gcc support both these syntaxes. Unsure which is preferred. */
295 #if 1
296 fputs_filtered (&exp->elts[pc + 2].string, stream);
297 fputs_filtered (": ", stream);
298 #else
299 fputs_filtered (".", stream);
300 fputs_filtered (&exp->elts[pc + 2].string, stream);
301 fputs_filtered ("=", stream);
302 #endif
303 print_subexp (exp, pos, stream, PREC_SUFFIX);
304 return;
305
306 case TERNOP_COND:
307 if ((int) prec > (int) PREC_COMMA)
308 fputs_filtered ("(", stream);
309 /* Print the subexpressions, forcing parentheses
310 around any binary operations within them.
311 This is more parentheses than are strictly necessary,
312 but it looks clearer. */
313 print_subexp (exp, pos, stream, PREC_HYPER);
314 fputs_filtered (" ? ", stream);
315 print_subexp (exp, pos, stream, PREC_HYPER);
316 fputs_filtered (" : ", stream);
317 print_subexp (exp, pos, stream, PREC_HYPER);
318 if ((int) prec > (int) PREC_COMMA)
319 fputs_filtered (")", stream);
320 return;
321
322 case TERNOP_SLICE:
323 case TERNOP_SLICE_COUNT:
324 print_subexp (exp, pos, stream, PREC_SUFFIX);
325 fputs_filtered ("(", stream);
326 print_subexp (exp, pos, stream, PREC_ABOVE_COMMA);
327 fputs_filtered (opcode == TERNOP_SLICE ? " : " : " UP ", stream);
328 print_subexp (exp, pos, stream, PREC_ABOVE_COMMA);
329 fputs_filtered (")", stream);
330 return;
331
332 case STRUCTOP_STRUCT:
333 tem = longest_to_int (exp->elts[pc + 1].longconst);
334 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
335 print_subexp (exp, pos, stream, PREC_SUFFIX);
336 fputs_filtered (".", stream);
337 fputs_filtered (&exp->elts[pc + 2].string, stream);
338 return;
339
340 /* Will not occur for Modula-2 */
341 case STRUCTOP_PTR:
342 tem = longest_to_int (exp->elts[pc + 1].longconst);
343 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
344 print_subexp (exp, pos, stream, PREC_SUFFIX);
345 fputs_filtered ("->", stream);
346 fputs_filtered (&exp->elts[pc + 2].string, stream);
347 return;
348
349 case BINOP_SUBSCRIPT:
350 print_subexp (exp, pos, stream, PREC_SUFFIX);
351 fputs_filtered ("[", stream);
352 print_subexp (exp, pos, stream, PREC_ABOVE_COMMA);
353 fputs_filtered ("]", stream);
354 return;
355
356 case UNOP_POSTINCREMENT:
357 print_subexp (exp, pos, stream, PREC_SUFFIX);
358 fputs_filtered ("++", stream);
359 return;
360
361 case UNOP_POSTDECREMENT:
362 print_subexp (exp, pos, stream, PREC_SUFFIX);
363 fputs_filtered ("--", stream);
364 return;
365
366 case UNOP_CAST:
367 (*pos) += 2;
368 if ((int) prec > (int) PREC_PREFIX)
369 fputs_filtered ("(", stream);
370 fputs_filtered ("(", stream);
371 type_print (exp->elts[pc + 1].type, "", stream, 0);
372 fputs_filtered (") ", stream);
373 print_subexp (exp, pos, stream, PREC_PREFIX);
374 if ((int) prec > (int) PREC_PREFIX)
375 fputs_filtered (")", stream);
376 return;
377
378 case UNOP_MEMVAL:
379 (*pos) += 2;
380 if ((int) prec > (int) PREC_PREFIX)
381 fputs_filtered ("(", stream);
382 if (TYPE_CODE (exp->elts[pc + 1].type) == TYPE_CODE_FUNC &&
383 exp->elts[pc + 3].opcode == OP_LONG)
384 {
385 /* We have a minimal symbol fn, probably. It's encoded
386 as a UNOP_MEMVAL (function-type) of an OP_LONG (int, address).
387 Swallow the OP_LONG (including both its opcodes); ignore
388 its type; print the value in the type of the MEMVAL. */
389 (*pos) += 4;
390 val = value_at_lazy (exp->elts[pc + 1].type,
391 (CORE_ADDR) exp->elts[pc + 5].longconst);
392 value_print (val, stream, 0, Val_no_prettyprint);
393 }
394 else
395 {
396 fputs_filtered ("{", stream);
397 type_print (exp->elts[pc + 1].type, "", stream, 0);
398 fputs_filtered ("} ", stream);
399 print_subexp (exp, pos, stream, PREC_PREFIX);
400 }
401 if ((int) prec > (int) PREC_PREFIX)
402 fputs_filtered (")", stream);
403 return;
404
405 case BINOP_ASSIGN_MODIFY:
406 opcode = exp->elts[pc + 1].opcode;
407 (*pos) += 2;
408 myprec = PREC_ASSIGN;
409 assoc = 1;
410 assign_modify = 1;
411 op_str = "???";
412 for (tem = 0; op_print_tab[tem].opcode != OP_NULL; tem++)
413 if (op_print_tab[tem].opcode == opcode)
414 {
415 op_str = op_print_tab[tem].string;
416 break;
417 }
418 if (op_print_tab[tem].opcode != opcode)
419 /* Not found; don't try to keep going because we don't know how
420 to interpret further elements. */
421 error (_("Invalid expression"));
422 break;
423
424 /* C++ ops */
425
426 case OP_THIS:
427 ++(*pos);
428 fputs_filtered ("this", stream);
429 return;
430
431 /* Objective-C ops */
432
433 case OP_OBJC_SELF:
434 ++(*pos);
435 fputs_filtered ("self", stream); /* The ObjC equivalent of "this". */
436 return;
437
438 /* Modula-2 ops */
439
440 case MULTI_SUBSCRIPT:
441 (*pos) += 2;
442 nargs = longest_to_int (exp->elts[pc + 1].longconst);
443 print_subexp (exp, pos, stream, PREC_SUFFIX);
444 fprintf_unfiltered (stream, " [");
445 for (tem = 0; tem < nargs; tem++)
446 {
447 if (tem != 0)
448 fprintf_unfiltered (stream, ", ");
449 print_subexp (exp, pos, stream, PREC_ABOVE_COMMA);
450 }
451 fprintf_unfiltered (stream, "]");
452 return;
453
454 case BINOP_VAL:
455 (*pos) += 2;
456 fprintf_unfiltered (stream, "VAL(");
457 type_print (exp->elts[pc + 1].type, "", stream, 0);
458 fprintf_unfiltered (stream, ",");
459 print_subexp (exp, pos, stream, PREC_PREFIX);
460 fprintf_unfiltered (stream, ")");
461 return;
462
463 case BINOP_INCL:
464 case BINOP_EXCL:
465 error (_("print_subexp: Not implemented."));
466
467 /* Default ops */
468
469 default:
470 op_str = "???";
471 for (tem = 0; op_print_tab[tem].opcode != OP_NULL; tem++)
472 if (op_print_tab[tem].opcode == opcode)
473 {
474 op_str = op_print_tab[tem].string;
475 myprec = op_print_tab[tem].precedence;
476 assoc = op_print_tab[tem].right_assoc;
477 break;
478 }
479 if (op_print_tab[tem].opcode != opcode)
480 /* Not found; don't try to keep going because we don't know how
481 to interpret further elements. For example, this happens
482 if opcode is OP_TYPE. */
483 error (_("Invalid expression"));
484 }
485
486 /* Note that PREC_BUILTIN will always emit parentheses. */
487 if ((int) myprec < (int) prec)
488 fputs_filtered ("(", stream);
489 if ((int) opcode > (int) BINOP_END)
490 {
491 if (assoc)
492 {
493 /* Unary postfix operator. */
494 print_subexp (exp, pos, stream, PREC_SUFFIX);
495 fputs_filtered (op_str, stream);
496 }
497 else
498 {
499 /* Unary prefix operator. */
500 fputs_filtered (op_str, stream);
501 if (myprec == PREC_BUILTIN_FUNCTION)
502 fputs_filtered ("(", stream);
503 print_subexp (exp, pos, stream, PREC_PREFIX);
504 if (myprec == PREC_BUILTIN_FUNCTION)
505 fputs_filtered (")", stream);
506 }
507 }
508 else
509 {
510 /* Binary operator. */
511 /* Print left operand.
512 If operator is right-associative,
513 increment precedence for this operand. */
514 print_subexp (exp, pos, stream,
515 (enum precedence) ((int) myprec + assoc));
516 /* Print the operator itself. */
517 if (assign_modify)
518 fprintf_filtered (stream, " %s= ", op_str);
519 else if (op_str[0] == ',')
520 fprintf_filtered (stream, "%s ", op_str);
521 else
522 fprintf_filtered (stream, " %s ", op_str);
523 /* Print right operand.
524 If operator is left-associative,
525 increment precedence for this operand. */
526 print_subexp (exp, pos, stream,
527 (enum precedence) ((int) myprec + !assoc));
528 }
529
530 if ((int) myprec < (int) prec)
531 fputs_filtered (")", stream);
532 }
533
534 /* Return the operator corresponding to opcode OP as
535 a string. NULL indicates that the opcode was not found in the
536 current language table. */
537 char *
538 op_string (enum exp_opcode op)
539 {
540 int tem;
541 const struct op_print *op_print_tab;
542
543 op_print_tab = current_language->la_op_print_tab;
544 for (tem = 0; op_print_tab[tem].opcode != OP_NULL; tem++)
545 if (op_print_tab[tem].opcode == op)
546 return op_print_tab[tem].string;
547 return NULL;
548 }
549
550 /* Support for dumping the raw data from expressions in a human readable
551 form. */
552
553 static char *op_name (struct expression *, enum exp_opcode);
554 static int dump_subexp_body (struct expression *exp, struct ui_file *, int);
555
556 /* Name for OPCODE, when it appears in expression EXP. */
557
558 static char *
559 op_name (struct expression *exp, enum exp_opcode opcode)
560 {
561 return exp->language_defn->la_exp_desc->op_name (opcode);
562 }
563
564 /* Default name for the standard operator OPCODE (i.e., one defined in
565 the definition of enum exp_opcode). */
566
567 char *
568 op_name_standard (enum exp_opcode opcode)
569 {
570 switch (opcode)
571 {
572 default:
573 {
574 static char buf[30];
575
576 sprintf (buf, "<unknown %d>", opcode);
577 return buf;
578 }
579 case OP_NULL:
580 return "OP_NULL";
581 case BINOP_ADD:
582 return "BINOP_ADD";
583 case BINOP_SUB:
584 return "BINOP_SUB";
585 case BINOP_MUL:
586 return "BINOP_MUL";
587 case BINOP_DIV:
588 return "BINOP_DIV";
589 case BINOP_REM:
590 return "BINOP_REM";
591 case BINOP_MOD:
592 return "BINOP_MOD";
593 case BINOP_LSH:
594 return "BINOP_LSH";
595 case BINOP_RSH:
596 return "BINOP_RSH";
597 case BINOP_LOGICAL_AND:
598 return "BINOP_LOGICAL_AND";
599 case BINOP_LOGICAL_OR:
600 return "BINOP_LOGICAL_OR";
601 case BINOP_BITWISE_AND:
602 return "BINOP_BITWISE_AND";
603 case BINOP_BITWISE_IOR:
604 return "BINOP_BITWISE_IOR";
605 case BINOP_BITWISE_XOR:
606 return "BINOP_BITWISE_XOR";
607 case BINOP_EQUAL:
608 return "BINOP_EQUAL";
609 case BINOP_NOTEQUAL:
610 return "BINOP_NOTEQUAL";
611 case BINOP_LESS:
612 return "BINOP_LESS";
613 case BINOP_GTR:
614 return "BINOP_GTR";
615 case BINOP_LEQ:
616 return "BINOP_LEQ";
617 case BINOP_GEQ:
618 return "BINOP_GEQ";
619 case BINOP_REPEAT:
620 return "BINOP_REPEAT";
621 case BINOP_ASSIGN:
622 return "BINOP_ASSIGN";
623 case BINOP_COMMA:
624 return "BINOP_COMMA";
625 case BINOP_SUBSCRIPT:
626 return "BINOP_SUBSCRIPT";
627 case MULTI_SUBSCRIPT:
628 return "MULTI_SUBSCRIPT";
629 case BINOP_EXP:
630 return "BINOP_EXP";
631 case BINOP_MIN:
632 return "BINOP_MIN";
633 case BINOP_MAX:
634 return "BINOP_MAX";
635 case STRUCTOP_MEMBER:
636 return "STRUCTOP_MEMBER";
637 case STRUCTOP_MPTR:
638 return "STRUCTOP_MPTR";
639 case BINOP_INTDIV:
640 return "BINOP_INTDIV";
641 case BINOP_ASSIGN_MODIFY:
642 return "BINOP_ASSIGN_MODIFY";
643 case BINOP_VAL:
644 return "BINOP_VAL";
645 case BINOP_INCL:
646 return "BINOP_INCL";
647 case BINOP_EXCL:
648 return "BINOP_EXCL";
649 case BINOP_CONCAT:
650 return "BINOP_CONCAT";
651 case BINOP_RANGE:
652 return "BINOP_RANGE";
653 case BINOP_END:
654 return "BINOP_END";
655 case TERNOP_COND:
656 return "TERNOP_COND";
657 case TERNOP_SLICE:
658 return "TERNOP_SLICE";
659 case TERNOP_SLICE_COUNT:
660 return "TERNOP_SLICE_COUNT";
661 case OP_LONG:
662 return "OP_LONG";
663 case OP_DOUBLE:
664 return "OP_DOUBLE";
665 case OP_VAR_VALUE:
666 return "OP_VAR_VALUE";
667 case OP_LAST:
668 return "OP_LAST";
669 case OP_REGISTER:
670 return "OP_REGISTER";
671 case OP_INTERNALVAR:
672 return "OP_INTERNALVAR";
673 case OP_FUNCALL:
674 return "OP_FUNCALL";
675 case OP_STRING:
676 return "OP_STRING";
677 case OP_BITSTRING:
678 return "OP_BITSTRING";
679 case OP_ARRAY:
680 return "OP_ARRAY";
681 case UNOP_CAST:
682 return "UNOP_CAST";
683 case UNOP_MEMVAL:
684 return "UNOP_MEMVAL";
685 case UNOP_NEG:
686 return "UNOP_NEG";
687 case UNOP_LOGICAL_NOT:
688 return "UNOP_LOGICAL_NOT";
689 case UNOP_COMPLEMENT:
690 return "UNOP_COMPLEMENT";
691 case UNOP_IND:
692 return "UNOP_IND";
693 case UNOP_ADDR:
694 return "UNOP_ADDR";
695 case UNOP_PREINCREMENT:
696 return "UNOP_PREINCREMENT";
697 case UNOP_POSTINCREMENT:
698 return "UNOP_POSTINCREMENT";
699 case UNOP_PREDECREMENT:
700 return "UNOP_PREDECREMENT";
701 case UNOP_POSTDECREMENT:
702 return "UNOP_POSTDECREMENT";
703 case UNOP_SIZEOF:
704 return "UNOP_SIZEOF";
705 case UNOP_LOWER:
706 return "UNOP_LOWER";
707 case UNOP_UPPER:
708 return "UNOP_UPPER";
709 case UNOP_LENGTH:
710 return "UNOP_LENGTH";
711 case UNOP_PLUS:
712 return "UNOP_PLUS";
713 case UNOP_CAP:
714 return "UNOP_CAP";
715 case UNOP_CHR:
716 return "UNOP_CHR";
717 case UNOP_ORD:
718 return "UNOP_ORD";
719 case UNOP_ABS:
720 return "UNOP_ABS";
721 case UNOP_FLOAT:
722 return "UNOP_FLOAT";
723 case UNOP_HIGH:
724 return "UNOP_HIGH";
725 case UNOP_MAX:
726 return "UNOP_MAX";
727 case UNOP_MIN:
728 return "UNOP_MIN";
729 case UNOP_ODD:
730 return "UNOP_ODD";
731 case UNOP_TRUNC:
732 return "UNOP_TRUNC";
733 case OP_BOOL:
734 return "OP_BOOL";
735 case OP_M2_STRING:
736 return "OP_M2_STRING";
737 case STRUCTOP_STRUCT:
738 return "STRUCTOP_STRUCT";
739 case STRUCTOP_PTR:
740 return "STRUCTOP_PTR";
741 case OP_THIS:
742 return "OP_THIS";
743 case OP_OBJC_SELF:
744 return "OP_OBJC_SELF";
745 case OP_SCOPE:
746 return "OP_SCOPE";
747 case OP_TYPE:
748 return "OP_TYPE";
749 case OP_LABELED:
750 return "OP_LABELED";
751 }
752 }
753
754 void
755 dump_raw_expression (struct expression *exp, struct ui_file *stream,
756 char *note)
757 {
758 int elt;
759 char *opcode_name;
760 char *eltscan;
761 int eltsize;
762
763 fprintf_filtered (stream, "Dump of expression @ ");
764 gdb_print_host_address (exp, stream);
765 fprintf_filtered (stream, "'\n\tLanguage %s, %d elements, %ld bytes each.\n",
766 exp->language_defn->la_name, exp->nelts,
767 (long) sizeof (union exp_element));
768 fprintf_filtered (stream, "\t%5s %20s %16s %s\n", "Index", "Opcode",
769 "Hex Value", "String Value");
770 for (elt = 0; elt < exp->nelts; elt++)
771 {
772 fprintf_filtered (stream, "\t%5d ", elt);
773 opcode_name = op_name (exp, exp->elts[elt].opcode);
774
775 fprintf_filtered (stream, "%20s ", opcode_name);
776 print_longest (stream, 'd', 0, exp->elts[elt].longconst);
777 fprintf_filtered (stream, " ");
778
779 for (eltscan = (char *) &exp->elts[elt],
780 eltsize = sizeof (union exp_element);
781 eltsize-- > 0;
782 eltscan++)
783 {
784 fprintf_filtered (stream, "%c",
785 isprint (*eltscan) ? (*eltscan & 0xFF) : '.');
786 }
787 fprintf_filtered (stream, "\n");
788 }
789 }
790
791 /* Dump the subexpression of prefix expression EXP whose operator is at
792 position ELT onto STREAM. Returns the position of the next
793 subexpression in EXP. */
794
795 int
796 dump_subexp (struct expression *exp, struct ui_file *stream, int elt)
797 {
798 static int indent = 0;
799 int i;
800
801 fprintf_filtered (stream, "\n");
802 fprintf_filtered (stream, "\t%5d ", elt);
803
804 for (i = 1; i <= indent; i++)
805 fprintf_filtered (stream, " ");
806 indent += 2;
807
808 fprintf_filtered (stream, "%-20s ", op_name (exp, exp->elts[elt].opcode));
809
810 elt = dump_subexp_body (exp, stream, elt);
811
812 indent -= 2;
813
814 return elt;
815 }
816
817 /* Dump the operands of prefix expression EXP whose opcode is at
818 position ELT onto STREAM. Returns the position of the next
819 subexpression in EXP. */
820
821 static int
822 dump_subexp_body (struct expression *exp, struct ui_file *stream, int elt)
823 {
824 return exp->language_defn->la_exp_desc->dump_subexp_body (exp, stream, elt);
825 }
826
827 /* Default value for subexp_body in exp_descriptor vector. */
828
829 int
830 dump_subexp_body_standard (struct expression *exp,
831 struct ui_file *stream, int elt)
832 {
833 int opcode = exp->elts[elt++].opcode;
834
835 switch (opcode)
836 {
837 case TERNOP_COND:
838 case TERNOP_SLICE:
839 case TERNOP_SLICE_COUNT:
840 elt = dump_subexp (exp, stream, elt);
841 case BINOP_ADD:
842 case BINOP_SUB:
843 case BINOP_MUL:
844 case BINOP_DIV:
845 case BINOP_REM:
846 case BINOP_MOD:
847 case BINOP_LSH:
848 case BINOP_RSH:
849 case BINOP_LOGICAL_AND:
850 case BINOP_LOGICAL_OR:
851 case BINOP_BITWISE_AND:
852 case BINOP_BITWISE_IOR:
853 case BINOP_BITWISE_XOR:
854 case BINOP_EQUAL:
855 case BINOP_NOTEQUAL:
856 case BINOP_LESS:
857 case BINOP_GTR:
858 case BINOP_LEQ:
859 case BINOP_GEQ:
860 case BINOP_REPEAT:
861 case BINOP_ASSIGN:
862 case BINOP_COMMA:
863 case BINOP_SUBSCRIPT:
864 case BINOP_EXP:
865 case BINOP_MIN:
866 case BINOP_MAX:
867 case BINOP_INTDIV:
868 case BINOP_ASSIGN_MODIFY:
869 case BINOP_VAL:
870 case BINOP_INCL:
871 case BINOP_EXCL:
872 case BINOP_CONCAT:
873 case BINOP_IN:
874 case BINOP_RANGE:
875 case BINOP_END:
876 elt = dump_subexp (exp, stream, elt);
877 case UNOP_NEG:
878 case UNOP_LOGICAL_NOT:
879 case UNOP_COMPLEMENT:
880 case UNOP_IND:
881 case UNOP_ADDR:
882 case UNOP_PREINCREMENT:
883 case UNOP_POSTINCREMENT:
884 case UNOP_PREDECREMENT:
885 case UNOP_POSTDECREMENT:
886 case UNOP_SIZEOF:
887 case UNOP_PLUS:
888 case UNOP_CAP:
889 case UNOP_CHR:
890 case UNOP_ORD:
891 case UNOP_ABS:
892 case UNOP_FLOAT:
893 case UNOP_HIGH:
894 case UNOP_MAX:
895 case UNOP_MIN:
896 case UNOP_ODD:
897 case UNOP_TRUNC:
898 case UNOP_LOWER:
899 case UNOP_UPPER:
900 case UNOP_LENGTH:
901 case UNOP_CARD:
902 case UNOP_CHMAX:
903 case UNOP_CHMIN:
904 elt = dump_subexp (exp, stream, elt);
905 break;
906 case OP_LONG:
907 fprintf_filtered (stream, "Type @");
908 gdb_print_host_address (exp->elts[elt].type, stream);
909 fprintf_filtered (stream, " (");
910 type_print (exp->elts[elt].type, NULL, stream, 0);
911 fprintf_filtered (stream, "), value %ld (0x%lx)",
912 (long) exp->elts[elt + 1].longconst,
913 (long) exp->elts[elt + 1].longconst);
914 elt += 3;
915 break;
916 case OP_DOUBLE:
917 fprintf_filtered (stream, "Type @");
918 gdb_print_host_address (exp->elts[elt].type, stream);
919 fprintf_filtered (stream, " (");
920 type_print (exp->elts[elt].type, NULL, stream, 0);
921 fprintf_filtered (stream, "), value %g",
922 (double) exp->elts[elt + 1].doubleconst);
923 elt += 3;
924 break;
925 case OP_VAR_VALUE:
926 fprintf_filtered (stream, "Block @");
927 gdb_print_host_address (exp->elts[elt].block, stream);
928 fprintf_filtered (stream, ", symbol @");
929 gdb_print_host_address (exp->elts[elt + 1].symbol, stream);
930 fprintf_filtered (stream, " (%s)",
931 DEPRECATED_SYMBOL_NAME (exp->elts[elt + 1].symbol));
932 elt += 3;
933 break;
934 case OP_LAST:
935 fprintf_filtered (stream, "History element %ld",
936 (long) exp->elts[elt].longconst);
937 elt += 2;
938 break;
939 case OP_REGISTER:
940 fprintf_filtered (stream, "Register %ld",
941 (long) exp->elts[elt].longconst);
942 elt += 2;
943 break;
944 case OP_INTERNALVAR:
945 fprintf_filtered (stream, "Internal var @");
946 gdb_print_host_address (exp->elts[elt].internalvar, stream);
947 fprintf_filtered (stream, " (%s)",
948 exp->elts[elt].internalvar->name);
949 elt += 2;
950 break;
951 case OP_FUNCALL:
952 {
953 int i, nargs;
954
955 nargs = longest_to_int (exp->elts[elt].longconst);
956
957 fprintf_filtered (stream, "Number of args: %d", nargs);
958 elt += 2;
959
960 for (i = 1; i <= nargs + 1; i++)
961 elt = dump_subexp (exp, stream, elt);
962 }
963 break;
964 case OP_ARRAY:
965 {
966 int lower, upper;
967 int i;
968
969 lower = longest_to_int (exp->elts[elt].longconst);
970 upper = longest_to_int (exp->elts[elt + 1].longconst);
971
972 fprintf_filtered (stream, "Bounds [%d:%d]", lower, upper);
973 elt += 3;
974
975 for (i = 1; i <= upper - lower + 1; i++)
976 elt = dump_subexp (exp, stream, elt);
977 }
978 break;
979 case UNOP_MEMVAL:
980 case UNOP_CAST:
981 fprintf_filtered (stream, "Type @");
982 gdb_print_host_address (exp->elts[elt].type, stream);
983 fprintf_filtered (stream, " (");
984 type_print (exp->elts[elt].type, NULL, stream, 0);
985 fprintf_filtered (stream, ")");
986 elt = dump_subexp (exp, stream, elt + 2);
987 break;
988 case OP_TYPE:
989 fprintf_filtered (stream, "Type @");
990 gdb_print_host_address (exp->elts[elt].type, stream);
991 fprintf_filtered (stream, " (");
992 type_print (exp->elts[elt].type, NULL, stream, 0);
993 fprintf_filtered (stream, ")");
994 elt += 2;
995 break;
996 case STRUCTOP_STRUCT:
997 case STRUCTOP_PTR:
998 {
999 char *elem_name;
1000 int len;
1001
1002 len = longest_to_int (exp->elts[elt].longconst);
1003 elem_name = &exp->elts[elt + 1].string;
1004
1005 fprintf_filtered (stream, "Element name: `%.*s'", len, elem_name);
1006 elt = dump_subexp (exp, stream, elt + 3 + BYTES_TO_EXP_ELEM (len + 1));
1007 }
1008 break;
1009 case OP_SCOPE:
1010 {
1011 char *elem_name;
1012 int len;
1013
1014 fprintf_filtered (stream, "Type @");
1015 gdb_print_host_address (exp->elts[elt].type, stream);
1016 fprintf_filtered (stream, " (");
1017 type_print (exp->elts[elt].type, NULL, stream, 0);
1018 fprintf_filtered (stream, ") ");
1019
1020 len = longest_to_int (exp->elts[elt + 1].longconst);
1021 elem_name = &exp->elts[elt + 2].string;
1022
1023 fprintf_filtered (stream, "Field name: `%.*s'", len, elem_name);
1024 elt += 4 + BYTES_TO_EXP_ELEM (len + 1);
1025 }
1026 break;
1027 default:
1028 case OP_NULL:
1029 case STRUCTOP_MEMBER:
1030 case STRUCTOP_MPTR:
1031 case MULTI_SUBSCRIPT:
1032 case OP_F77_UNDETERMINED_ARGLIST:
1033 case OP_COMPLEX:
1034 case OP_STRING:
1035 case OP_BITSTRING:
1036 case OP_BOOL:
1037 case OP_M2_STRING:
1038 case OP_THIS:
1039 case OP_LABELED:
1040 case OP_NAME:
1041 case OP_EXPRSTRING:
1042 fprintf_filtered (stream, "Unknown format");
1043 }
1044
1045 return elt;
1046 }
1047
1048 void
1049 dump_prefix_expression (struct expression *exp, struct ui_file *stream)
1050 {
1051 int elt;
1052
1053 fprintf_filtered (stream, "Dump of expression @ ");
1054 gdb_print_host_address (exp, stream);
1055 fputs_filtered (", after conversion to prefix form:\nExpression: `", stream);
1056 if (exp->elts[0].opcode != OP_TYPE)
1057 print_expression (exp, stream);
1058 else
1059 fputs_filtered ("Type printing not yet supported....", stream);
1060 fprintf_filtered (stream, "'\n\tLanguage %s, %d elements, %ld bytes each.\n",
1061 exp->language_defn->la_name, exp->nelts,
1062 (long) sizeof (union exp_element));
1063 fputs_filtered ("\n", stream);
1064
1065 for (elt = 0; elt < exp->nelts;)
1066 elt = dump_subexp (exp, stream, elt);
1067 fputs_filtered ("\n", stream);
1068 }
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