Update copyright year range in all GDB files
[deliverable/binutils-gdb.git] / gdb / m2-exp.y
1 /* YACC grammar for Modula-2 expressions, for GDB.
2 Copyright (C) 1986-2018 Free Software Foundation, Inc.
3 Generated from expread.y (now c-exp.y) and contributed by the Department
4 of Computer Science at the State University of New York at Buffalo, 1991.
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 3 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, see <http://www.gnu.org/licenses/>. */
20
21 /* Parse a Modula-2 expression from text in a string,
22 and return the result as a struct expression pointer.
23 That structure contains arithmetic operations in reverse polish,
24 with constants represented by operations that are followed by special data.
25 See expression.h for the details of the format.
26 What is important here is that it can be built up sequentially
27 during the process of parsing; the lower levels of the tree always
28 come first in the result.
29
30 Note that malloc's and realloc's in this file are transformed to
31 xmalloc and xrealloc respectively by the same sed command in the
32 makefile that remaps any other malloc/realloc inserted by the parser
33 generator. Doing this with #defines and trying to control the interaction
34 with include files (<malloc.h> and <stdlib.h> for example) just became
35 too messy, particularly when such includes can be inserted at random
36 times by the parser generator. */
37
38 %{
39
40 #include "defs.h"
41 #include "expression.h"
42 #include "language.h"
43 #include "value.h"
44 #include "parser-defs.h"
45 #include "m2-lang.h"
46 #include "bfd.h" /* Required by objfiles.h. */
47 #include "symfile.h" /* Required by objfiles.h. */
48 #include "objfiles.h" /* For have_full_symbols and have_partial_symbols */
49 #include "block.h"
50
51 #define parse_type(ps) builtin_type (parse_gdbarch (ps))
52 #define parse_m2_type(ps) builtin_m2_type (parse_gdbarch (ps))
53
54 /* Remap normal yacc parser interface names (yyparse, yylex, yyerror,
55 etc). */
56 #define GDB_YY_REMAP_PREFIX m2_
57 #include "yy-remap.h"
58
59 /* The state of the parser, used internally when we are parsing the
60 expression. */
61
62 static struct parser_state *pstate = NULL;
63
64 int yyparse (void);
65
66 static int yylex (void);
67
68 void yyerror (const char *);
69
70 static int parse_number (int);
71
72 /* The sign of the number being parsed. */
73 static int number_sign = 1;
74
75 %}
76
77 /* Although the yacc "value" of an expression is not used,
78 since the result is stored in the structure being created,
79 other node types do have values. */
80
81 %union
82 {
83 LONGEST lval;
84 ULONGEST ulval;
85 gdb_byte val[16];
86 struct symbol *sym;
87 struct type *tval;
88 struct stoken sval;
89 int voidval;
90 const struct block *bval;
91 enum exp_opcode opcode;
92 struct internalvar *ivar;
93
94 struct type **tvec;
95 int *ivec;
96 }
97
98 %type <voidval> exp type_exp start set
99 %type <voidval> variable
100 %type <tval> type
101 %type <bval> block
102 %type <sym> fblock
103
104 %token <lval> INT HEX ERROR
105 %token <ulval> UINT M2_TRUE M2_FALSE CHAR
106 %token <val> FLOAT
107
108 /* Both NAME and TYPENAME tokens represent symbols in the input,
109 and both convey their data as strings.
110 But a TYPENAME is a string that happens to be defined as a typedef
111 or builtin type name (such as int or char)
112 and a NAME is any other symbol.
113
114 Contexts where this distinction is not important can use the
115 nonterminal "name", which matches either NAME or TYPENAME. */
116
117 %token <sval> STRING
118 %token <sval> NAME BLOCKNAME IDENT VARNAME
119 %token <sval> TYPENAME
120
121 %token SIZE CAP ORD HIGH ABS MIN_FUNC MAX_FUNC FLOAT_FUNC VAL CHR ODD TRUNC
122 %token TSIZE
123 %token INC DEC INCL EXCL
124
125 /* The GDB scope operator */
126 %token COLONCOLON
127
128 %token <voidval> INTERNAL_VAR
129
130 /* M2 tokens */
131 %left ','
132 %left ABOVE_COMMA
133 %nonassoc ASSIGN
134 %left '<' '>' LEQ GEQ '=' NOTEQUAL '#' IN
135 %left OROR
136 %left LOGICAL_AND '&'
137 %left '@'
138 %left '+' '-'
139 %left '*' '/' DIV MOD
140 %right UNARY
141 %right '^' DOT '[' '('
142 %right NOT '~'
143 %left COLONCOLON QID
144 /* This is not an actual token ; it is used for precedence.
145 %right QID
146 */
147
148 \f
149 %%
150
151 start : exp
152 | type_exp
153 ;
154
155 type_exp: type
156 { write_exp_elt_opcode (pstate, OP_TYPE);
157 write_exp_elt_type (pstate, $1);
158 write_exp_elt_opcode (pstate, OP_TYPE);
159 }
160 ;
161
162 /* Expressions */
163
164 exp : exp '^' %prec UNARY
165 { write_exp_elt_opcode (pstate, UNOP_IND); }
166 ;
167
168 exp : '-'
169 { number_sign = -1; }
170 exp %prec UNARY
171 { number_sign = 1;
172 write_exp_elt_opcode (pstate, UNOP_NEG); }
173 ;
174
175 exp : '+' exp %prec UNARY
176 { write_exp_elt_opcode (pstate, UNOP_PLUS); }
177 ;
178
179 exp : not_exp exp %prec UNARY
180 { write_exp_elt_opcode (pstate, UNOP_LOGICAL_NOT); }
181 ;
182
183 not_exp : NOT
184 | '~'
185 ;
186
187 exp : CAP '(' exp ')'
188 { write_exp_elt_opcode (pstate, UNOP_CAP); }
189 ;
190
191 exp : ORD '(' exp ')'
192 { write_exp_elt_opcode (pstate, UNOP_ORD); }
193 ;
194
195 exp : ABS '(' exp ')'
196 { write_exp_elt_opcode (pstate, UNOP_ABS); }
197 ;
198
199 exp : HIGH '(' exp ')'
200 { write_exp_elt_opcode (pstate, UNOP_HIGH); }
201 ;
202
203 exp : MIN_FUNC '(' type ')'
204 { write_exp_elt_opcode (pstate, UNOP_MIN);
205 write_exp_elt_type (pstate, $3);
206 write_exp_elt_opcode (pstate, UNOP_MIN); }
207 ;
208
209 exp : MAX_FUNC '(' type ')'
210 { write_exp_elt_opcode (pstate, UNOP_MAX);
211 write_exp_elt_type (pstate, $3);
212 write_exp_elt_opcode (pstate, UNOP_MAX); }
213 ;
214
215 exp : FLOAT_FUNC '(' exp ')'
216 { write_exp_elt_opcode (pstate, UNOP_FLOAT); }
217 ;
218
219 exp : VAL '(' type ',' exp ')'
220 { write_exp_elt_opcode (pstate, BINOP_VAL);
221 write_exp_elt_type (pstate, $3);
222 write_exp_elt_opcode (pstate, BINOP_VAL); }
223 ;
224
225 exp : CHR '(' exp ')'
226 { write_exp_elt_opcode (pstate, UNOP_CHR); }
227 ;
228
229 exp : ODD '(' exp ')'
230 { write_exp_elt_opcode (pstate, UNOP_ODD); }
231 ;
232
233 exp : TRUNC '(' exp ')'
234 { write_exp_elt_opcode (pstate, UNOP_TRUNC); }
235 ;
236
237 exp : TSIZE '(' exp ')'
238 { write_exp_elt_opcode (pstate, UNOP_SIZEOF); }
239 ;
240
241 exp : SIZE exp %prec UNARY
242 { write_exp_elt_opcode (pstate, UNOP_SIZEOF); }
243 ;
244
245
246 exp : INC '(' exp ')'
247 { write_exp_elt_opcode (pstate, UNOP_PREINCREMENT); }
248 ;
249
250 exp : INC '(' exp ',' exp ')'
251 { write_exp_elt_opcode (pstate, BINOP_ASSIGN_MODIFY);
252 write_exp_elt_opcode (pstate, BINOP_ADD);
253 write_exp_elt_opcode (pstate,
254 BINOP_ASSIGN_MODIFY); }
255 ;
256
257 exp : DEC '(' exp ')'
258 { write_exp_elt_opcode (pstate, UNOP_PREDECREMENT);}
259 ;
260
261 exp : DEC '(' exp ',' exp ')'
262 { write_exp_elt_opcode (pstate, BINOP_ASSIGN_MODIFY);
263 write_exp_elt_opcode (pstate, BINOP_SUB);
264 write_exp_elt_opcode (pstate,
265 BINOP_ASSIGN_MODIFY); }
266 ;
267
268 exp : exp DOT NAME
269 { write_exp_elt_opcode (pstate, STRUCTOP_STRUCT);
270 write_exp_string (pstate, $3);
271 write_exp_elt_opcode (pstate, STRUCTOP_STRUCT); }
272 ;
273
274 exp : set
275 ;
276
277 exp : exp IN set
278 { error (_("Sets are not implemented."));}
279 ;
280
281 exp : INCL '(' exp ',' exp ')'
282 { error (_("Sets are not implemented."));}
283 ;
284
285 exp : EXCL '(' exp ',' exp ')'
286 { error (_("Sets are not implemented."));}
287 ;
288
289 set : '{' arglist '}'
290 { error (_("Sets are not implemented."));}
291 | type '{' arglist '}'
292 { error (_("Sets are not implemented."));}
293 ;
294
295
296 /* Modula-2 array subscript notation [a,b,c...] */
297 exp : exp '['
298 /* This function just saves the number of arguments
299 that follow in the list. It is *not* specific to
300 function types */
301 { start_arglist(); }
302 non_empty_arglist ']' %prec DOT
303 { write_exp_elt_opcode (pstate, MULTI_SUBSCRIPT);
304 write_exp_elt_longcst (pstate,
305 (LONGEST) end_arglist());
306 write_exp_elt_opcode (pstate, MULTI_SUBSCRIPT); }
307 ;
308
309 exp : exp '[' exp ']'
310 { write_exp_elt_opcode (pstate, BINOP_SUBSCRIPT); }
311 ;
312
313 exp : exp '('
314 /* This is to save the value of arglist_len
315 being accumulated by an outer function call. */
316 { start_arglist (); }
317 arglist ')' %prec DOT
318 { write_exp_elt_opcode (pstate, OP_FUNCALL);
319 write_exp_elt_longcst (pstate,
320 (LONGEST) end_arglist ());
321 write_exp_elt_opcode (pstate, OP_FUNCALL); }
322 ;
323
324 arglist :
325 ;
326
327 arglist : exp
328 { arglist_len = 1; }
329 ;
330
331 arglist : arglist ',' exp %prec ABOVE_COMMA
332 { arglist_len++; }
333 ;
334
335 non_empty_arglist
336 : exp
337 { arglist_len = 1; }
338 ;
339
340 non_empty_arglist
341 : non_empty_arglist ',' exp %prec ABOVE_COMMA
342 { arglist_len++; }
343 ;
344
345 /* GDB construct */
346 exp : '{' type '}' exp %prec UNARY
347 { write_exp_elt_opcode (pstate, UNOP_MEMVAL);
348 write_exp_elt_type (pstate, $2);
349 write_exp_elt_opcode (pstate, UNOP_MEMVAL); }
350 ;
351
352 exp : type '(' exp ')' %prec UNARY
353 { write_exp_elt_opcode (pstate, UNOP_CAST);
354 write_exp_elt_type (pstate, $1);
355 write_exp_elt_opcode (pstate, UNOP_CAST); }
356 ;
357
358 exp : '(' exp ')'
359 { }
360 ;
361
362 /* Binary operators in order of decreasing precedence. Note that some
363 of these operators are overloaded! (ie. sets) */
364
365 /* GDB construct */
366 exp : exp '@' exp
367 { write_exp_elt_opcode (pstate, BINOP_REPEAT); }
368 ;
369
370 exp : exp '*' exp
371 { write_exp_elt_opcode (pstate, BINOP_MUL); }
372 ;
373
374 exp : exp '/' exp
375 { write_exp_elt_opcode (pstate, BINOP_DIV); }
376 ;
377
378 exp : exp DIV exp
379 { write_exp_elt_opcode (pstate, BINOP_INTDIV); }
380 ;
381
382 exp : exp MOD exp
383 { write_exp_elt_opcode (pstate, BINOP_REM); }
384 ;
385
386 exp : exp '+' exp
387 { write_exp_elt_opcode (pstate, BINOP_ADD); }
388 ;
389
390 exp : exp '-' exp
391 { write_exp_elt_opcode (pstate, BINOP_SUB); }
392 ;
393
394 exp : exp '=' exp
395 { write_exp_elt_opcode (pstate, BINOP_EQUAL); }
396 ;
397
398 exp : exp NOTEQUAL exp
399 { write_exp_elt_opcode (pstate, BINOP_NOTEQUAL); }
400 | exp '#' exp
401 { write_exp_elt_opcode (pstate, BINOP_NOTEQUAL); }
402 ;
403
404 exp : exp LEQ exp
405 { write_exp_elt_opcode (pstate, BINOP_LEQ); }
406 ;
407
408 exp : exp GEQ exp
409 { write_exp_elt_opcode (pstate, BINOP_GEQ); }
410 ;
411
412 exp : exp '<' exp
413 { write_exp_elt_opcode (pstate, BINOP_LESS); }
414 ;
415
416 exp : exp '>' exp
417 { write_exp_elt_opcode (pstate, BINOP_GTR); }
418 ;
419
420 exp : exp LOGICAL_AND exp
421 { write_exp_elt_opcode (pstate, BINOP_LOGICAL_AND); }
422 ;
423
424 exp : exp OROR exp
425 { write_exp_elt_opcode (pstate, BINOP_LOGICAL_OR); }
426 ;
427
428 exp : exp ASSIGN exp
429 { write_exp_elt_opcode (pstate, BINOP_ASSIGN); }
430 ;
431
432
433 /* Constants */
434
435 exp : M2_TRUE
436 { write_exp_elt_opcode (pstate, OP_BOOL);
437 write_exp_elt_longcst (pstate, (LONGEST) $1);
438 write_exp_elt_opcode (pstate, OP_BOOL); }
439 ;
440
441 exp : M2_FALSE
442 { write_exp_elt_opcode (pstate, OP_BOOL);
443 write_exp_elt_longcst (pstate, (LONGEST) $1);
444 write_exp_elt_opcode (pstate, OP_BOOL); }
445 ;
446
447 exp : INT
448 { write_exp_elt_opcode (pstate, OP_LONG);
449 write_exp_elt_type (pstate,
450 parse_m2_type (pstate)->builtin_int);
451 write_exp_elt_longcst (pstate, (LONGEST) $1);
452 write_exp_elt_opcode (pstate, OP_LONG); }
453 ;
454
455 exp : UINT
456 {
457 write_exp_elt_opcode (pstate, OP_LONG);
458 write_exp_elt_type (pstate,
459 parse_m2_type (pstate)
460 ->builtin_card);
461 write_exp_elt_longcst (pstate, (LONGEST) $1);
462 write_exp_elt_opcode (pstate, OP_LONG);
463 }
464 ;
465
466 exp : CHAR
467 { write_exp_elt_opcode (pstate, OP_LONG);
468 write_exp_elt_type (pstate,
469 parse_m2_type (pstate)
470 ->builtin_char);
471 write_exp_elt_longcst (pstate, (LONGEST) $1);
472 write_exp_elt_opcode (pstate, OP_LONG); }
473 ;
474
475
476 exp : FLOAT
477 { write_exp_elt_opcode (pstate, OP_FLOAT);
478 write_exp_elt_type (pstate,
479 parse_m2_type (pstate)
480 ->builtin_real);
481 write_exp_elt_floatcst (pstate, $1);
482 write_exp_elt_opcode (pstate, OP_FLOAT); }
483 ;
484
485 exp : variable
486 ;
487
488 exp : SIZE '(' type ')' %prec UNARY
489 { write_exp_elt_opcode (pstate, OP_LONG);
490 write_exp_elt_type (pstate,
491 parse_type (pstate)->builtin_int);
492 write_exp_elt_longcst (pstate,
493 (LONGEST) TYPE_LENGTH ($3));
494 write_exp_elt_opcode (pstate, OP_LONG); }
495 ;
496
497 exp : STRING
498 { write_exp_elt_opcode (pstate, OP_M2_STRING);
499 write_exp_string (pstate, $1);
500 write_exp_elt_opcode (pstate, OP_M2_STRING); }
501 ;
502
503 /* This will be used for extensions later. Like adding modules. */
504 block : fblock
505 { $$ = SYMBOL_BLOCK_VALUE($1); }
506 ;
507
508 fblock : BLOCKNAME
509 { struct symbol *sym
510 = lookup_symbol (copy_name ($1),
511 expression_context_block,
512 VAR_DOMAIN, 0).symbol;
513 $$ = sym;}
514 ;
515
516
517 /* GDB scope operator */
518 fblock : block COLONCOLON BLOCKNAME
519 { struct symbol *tem
520 = lookup_symbol (copy_name ($3), $1,
521 VAR_DOMAIN, 0).symbol;
522 if (!tem || SYMBOL_CLASS (tem) != LOC_BLOCK)
523 error (_("No function \"%s\" in specified context."),
524 copy_name ($3));
525 $$ = tem;
526 }
527 ;
528
529 /* Useful for assigning to PROCEDURE variables */
530 variable: fblock
531 { write_exp_elt_opcode (pstate, OP_VAR_VALUE);
532 write_exp_elt_block (pstate, NULL);
533 write_exp_elt_sym (pstate, $1);
534 write_exp_elt_opcode (pstate, OP_VAR_VALUE); }
535 ;
536
537 /* GDB internal ($foo) variable */
538 variable: INTERNAL_VAR
539 ;
540
541 /* GDB scope operator */
542 variable: block COLONCOLON NAME
543 { struct block_symbol sym
544 = lookup_symbol (copy_name ($3), $1,
545 VAR_DOMAIN, 0);
546
547 if (sym.symbol == 0)
548 error (_("No symbol \"%s\" in specified context."),
549 copy_name ($3));
550 if (symbol_read_needs_frame (sym.symbol))
551 {
552 if (innermost_block == 0
553 || contained_in (sym.block,
554 innermost_block))
555 innermost_block = sym.block;
556 }
557
558 write_exp_elt_opcode (pstate, OP_VAR_VALUE);
559 write_exp_elt_block (pstate, sym.block);
560 write_exp_elt_sym (pstate, sym.symbol);
561 write_exp_elt_opcode (pstate, OP_VAR_VALUE); }
562 ;
563
564 /* Base case for variables. */
565 variable: NAME
566 { struct block_symbol sym;
567 struct field_of_this_result is_a_field_of_this;
568
569 sym = lookup_symbol (copy_name ($1),
570 expression_context_block,
571 VAR_DOMAIN,
572 &is_a_field_of_this);
573
574 if (sym.symbol)
575 {
576 if (symbol_read_needs_frame (sym.symbol))
577 {
578 if (innermost_block == 0 ||
579 contained_in (sym.block,
580 innermost_block))
581 innermost_block = sym.block;
582 }
583
584 write_exp_elt_opcode (pstate, OP_VAR_VALUE);
585 write_exp_elt_block (pstate, sym.block);
586 write_exp_elt_sym (pstate, sym.symbol);
587 write_exp_elt_opcode (pstate, OP_VAR_VALUE);
588 }
589 else
590 {
591 struct bound_minimal_symbol msymbol;
592 char *arg = copy_name ($1);
593
594 msymbol =
595 lookup_bound_minimal_symbol (arg);
596 if (msymbol.minsym != NULL)
597 write_exp_msymbol (pstate, msymbol);
598 else if (!have_full_symbols () && !have_partial_symbols ())
599 error (_("No symbol table is loaded. Use the \"symbol-file\" command."));
600 else
601 error (_("No symbol \"%s\" in current context."),
602 copy_name ($1));
603 }
604 }
605 ;
606
607 type
608 : TYPENAME
609 { $$ = lookup_typename (parse_language (pstate),
610 parse_gdbarch (pstate),
611 copy_name ($1),
612 expression_context_block, 0); }
613
614 ;
615
616 %%
617
618 /* Take care of parsing a number (anything that starts with a digit).
619 Set yylval and return the token type; update lexptr.
620 LEN is the number of characters in it. */
621
622 /*** Needs some error checking for the float case ***/
623
624 static int
625 parse_number (int olen)
626 {
627 const char *p = lexptr;
628 LONGEST n = 0;
629 LONGEST prevn = 0;
630 int c,i,ischar=0;
631 int base = input_radix;
632 int len = olen;
633 int unsigned_p = number_sign == 1 ? 1 : 0;
634
635 if(p[len-1] == 'H')
636 {
637 base = 16;
638 len--;
639 }
640 else if(p[len-1] == 'C' || p[len-1] == 'B')
641 {
642 base = 8;
643 ischar = p[len-1] == 'C';
644 len--;
645 }
646
647 /* Scan the number */
648 for (c = 0; c < len; c++)
649 {
650 if (p[c] == '.' && base == 10)
651 {
652 /* It's a float since it contains a point. */
653 if (!parse_float (p, len,
654 parse_m2_type (pstate)->builtin_real,
655 yylval.val))
656 return ERROR;
657
658 lexptr += len;
659 return FLOAT;
660 }
661 if (p[c] == '.' && base != 10)
662 error (_("Floating point numbers must be base 10."));
663 if (base == 10 && (p[c] < '0' || p[c] > '9'))
664 error (_("Invalid digit \'%c\' in number."),p[c]);
665 }
666
667 while (len-- > 0)
668 {
669 c = *p++;
670 n *= base;
671 if( base == 8 && (c == '8' || c == '9'))
672 error (_("Invalid digit \'%c\' in octal number."),c);
673 if (c >= '0' && c <= '9')
674 i = c - '0';
675 else
676 {
677 if (base == 16 && c >= 'A' && c <= 'F')
678 i = c - 'A' + 10;
679 else
680 return ERROR;
681 }
682 n+=i;
683 if(i >= base)
684 return ERROR;
685 if(!unsigned_p && number_sign == 1 && (prevn >= n))
686 unsigned_p=1; /* Try something unsigned */
687 /* Don't do the range check if n==i and i==0, since that special
688 case will give an overflow error. */
689 if(RANGE_CHECK && n!=i && i)
690 {
691 if((unsigned_p && (unsigned)prevn >= (unsigned)n) ||
692 ((!unsigned_p && number_sign==-1) && -prevn <= -n))
693 range_error (_("Overflow on numeric constant."));
694 }
695 prevn=n;
696 }
697
698 lexptr = p;
699 if(*p == 'B' || *p == 'C' || *p == 'H')
700 lexptr++; /* Advance past B,C or H */
701
702 if (ischar)
703 {
704 yylval.ulval = n;
705 return CHAR;
706 }
707 else if ( unsigned_p && number_sign == 1)
708 {
709 yylval.ulval = n;
710 return UINT;
711 }
712 else if((unsigned_p && (n<0))) {
713 range_error (_("Overflow on numeric constant -- number too large."));
714 /* But, this can return if range_check == range_warn. */
715 }
716 yylval.lval = n;
717 return INT;
718 }
719
720
721 /* Some tokens */
722
723 static struct
724 {
725 char name[2];
726 int token;
727 } tokentab2[] =
728 {
729 { {'<', '>'}, NOTEQUAL },
730 { {':', '='}, ASSIGN },
731 { {'<', '='}, LEQ },
732 { {'>', '='}, GEQ },
733 { {':', ':'}, COLONCOLON },
734
735 };
736
737 /* Some specific keywords */
738
739 struct keyword {
740 char keyw[10];
741 int token;
742 };
743
744 static struct keyword keytab[] =
745 {
746 {"OR" , OROR },
747 {"IN", IN },/* Note space after IN */
748 {"AND", LOGICAL_AND},
749 {"ABS", ABS },
750 {"CHR", CHR },
751 {"DEC", DEC },
752 {"NOT", NOT },
753 {"DIV", DIV },
754 {"INC", INC },
755 {"MAX", MAX_FUNC },
756 {"MIN", MIN_FUNC },
757 {"MOD", MOD },
758 {"ODD", ODD },
759 {"CAP", CAP },
760 {"ORD", ORD },
761 {"VAL", VAL },
762 {"EXCL", EXCL },
763 {"HIGH", HIGH },
764 {"INCL", INCL },
765 {"SIZE", SIZE },
766 {"FLOAT", FLOAT_FUNC },
767 {"TRUNC", TRUNC },
768 {"TSIZE", SIZE },
769 };
770
771
772 /* Read one token, getting characters through lexptr. */
773
774 /* This is where we will check to make sure that the language and the
775 operators used are compatible */
776
777 static int
778 yylex (void)
779 {
780 int c;
781 int namelen;
782 int i;
783 const char *tokstart;
784 char quote;
785
786 retry:
787
788 prev_lexptr = lexptr;
789
790 tokstart = lexptr;
791
792
793 /* See if it is a special token of length 2 */
794 for( i = 0 ; i < (int) (sizeof tokentab2 / sizeof tokentab2[0]) ; i++)
795 if (strncmp (tokentab2[i].name, tokstart, 2) == 0)
796 {
797 lexptr += 2;
798 return tokentab2[i].token;
799 }
800
801 switch (c = *tokstart)
802 {
803 case 0:
804 return 0;
805
806 case ' ':
807 case '\t':
808 case '\n':
809 lexptr++;
810 goto retry;
811
812 case '(':
813 paren_depth++;
814 lexptr++;
815 return c;
816
817 case ')':
818 if (paren_depth == 0)
819 return 0;
820 paren_depth--;
821 lexptr++;
822 return c;
823
824 case ',':
825 if (comma_terminates && paren_depth == 0)
826 return 0;
827 lexptr++;
828 return c;
829
830 case '.':
831 /* Might be a floating point number. */
832 if (lexptr[1] >= '0' && lexptr[1] <= '9')
833 break; /* Falls into number code. */
834 else
835 {
836 lexptr++;
837 return DOT;
838 }
839
840 /* These are character tokens that appear as-is in the YACC grammar */
841 case '+':
842 case '-':
843 case '*':
844 case '/':
845 case '^':
846 case '<':
847 case '>':
848 case '[':
849 case ']':
850 case '=':
851 case '{':
852 case '}':
853 case '#':
854 case '@':
855 case '~':
856 case '&':
857 lexptr++;
858 return c;
859
860 case '\'' :
861 case '"':
862 quote = c;
863 for (namelen = 1; (c = tokstart[namelen]) != quote && c != '\0'; namelen++)
864 if (c == '\\')
865 {
866 c = tokstart[++namelen];
867 if (c >= '0' && c <= '9')
868 {
869 c = tokstart[++namelen];
870 if (c >= '0' && c <= '9')
871 c = tokstart[++namelen];
872 }
873 }
874 if(c != quote)
875 error (_("Unterminated string or character constant."));
876 yylval.sval.ptr = tokstart + 1;
877 yylval.sval.length = namelen - 1;
878 lexptr += namelen + 1;
879
880 if(namelen == 2) /* Single character */
881 {
882 yylval.ulval = tokstart[1];
883 return CHAR;
884 }
885 else
886 return STRING;
887 }
888
889 /* Is it a number? */
890 /* Note: We have already dealt with the case of the token '.'.
891 See case '.' above. */
892 if ((c >= '0' && c <= '9'))
893 {
894 /* It's a number. */
895 int got_dot = 0, got_e = 0;
896 const char *p = tokstart;
897 int toktype;
898
899 for (++p ;; ++p)
900 {
901 if (!got_e && (*p == 'e' || *p == 'E'))
902 got_dot = got_e = 1;
903 else if (!got_dot && *p == '.')
904 got_dot = 1;
905 else if (got_e && (p[-1] == 'e' || p[-1] == 'E')
906 && (*p == '-' || *p == '+'))
907 /* This is the sign of the exponent, not the end of the
908 number. */
909 continue;
910 else if ((*p < '0' || *p > '9') &&
911 (*p < 'A' || *p > 'F') &&
912 (*p != 'H')) /* Modula-2 hexadecimal number */
913 break;
914 }
915 toktype = parse_number (p - tokstart);
916 if (toktype == ERROR)
917 {
918 char *err_copy = (char *) alloca (p - tokstart + 1);
919
920 memcpy (err_copy, tokstart, p - tokstart);
921 err_copy[p - tokstart] = 0;
922 error (_("Invalid number \"%s\"."), err_copy);
923 }
924 lexptr = p;
925 return toktype;
926 }
927
928 if (!(c == '_' || c == '$'
929 || (c >= 'a' && c <= 'z') || (c >= 'A' && c <= 'Z')))
930 /* We must have come across a bad character (e.g. ';'). */
931 error (_("Invalid character '%c' in expression."), c);
932
933 /* It's a name. See how long it is. */
934 namelen = 0;
935 for (c = tokstart[namelen];
936 (c == '_' || c == '$' || (c >= '0' && c <= '9')
937 || (c >= 'a' && c <= 'z') || (c >= 'A' && c <= 'Z'));
938 c = tokstart[++namelen])
939 ;
940
941 /* The token "if" terminates the expression and is NOT
942 removed from the input stream. */
943 if (namelen == 2 && tokstart[0] == 'i' && tokstart[1] == 'f')
944 {
945 return 0;
946 }
947
948 lexptr += namelen;
949
950 /* Lookup special keywords */
951 for(i = 0 ; i < (int) (sizeof(keytab) / sizeof(keytab[0])) ; i++)
952 if (namelen == strlen (keytab[i].keyw)
953 && strncmp (tokstart, keytab[i].keyw, namelen) == 0)
954 return keytab[i].token;
955
956 yylval.sval.ptr = tokstart;
957 yylval.sval.length = namelen;
958
959 if (*tokstart == '$')
960 {
961 write_dollar_variable (pstate, yylval.sval);
962 return INTERNAL_VAR;
963 }
964
965 /* Use token-type BLOCKNAME for symbols that happen to be defined as
966 functions. If this is not so, then ...
967 Use token-type TYPENAME for symbols that happen to be defined
968 currently as names of types; NAME for other symbols.
969 The caller is not constrained to care about the distinction. */
970 {
971
972
973 char *tmp = copy_name (yylval.sval);
974 struct symbol *sym;
975
976 if (lookup_symtab (tmp))
977 return BLOCKNAME;
978 sym = lookup_symbol (tmp, expression_context_block, VAR_DOMAIN, 0).symbol;
979 if (sym && SYMBOL_CLASS (sym) == LOC_BLOCK)
980 return BLOCKNAME;
981 if (lookup_typename (parse_language (pstate), parse_gdbarch (pstate),
982 copy_name (yylval.sval),
983 expression_context_block, 1))
984 return TYPENAME;
985
986 if(sym)
987 {
988 switch(SYMBOL_CLASS (sym))
989 {
990 case LOC_STATIC:
991 case LOC_REGISTER:
992 case LOC_ARG:
993 case LOC_REF_ARG:
994 case LOC_REGPARM_ADDR:
995 case LOC_LOCAL:
996 case LOC_CONST:
997 case LOC_CONST_BYTES:
998 case LOC_OPTIMIZED_OUT:
999 case LOC_COMPUTED:
1000 return NAME;
1001
1002 case LOC_TYPEDEF:
1003 return TYPENAME;
1004
1005 case LOC_BLOCK:
1006 return BLOCKNAME;
1007
1008 case LOC_UNDEF:
1009 error (_("internal: Undefined class in m2lex()"));
1010
1011 case LOC_LABEL:
1012 case LOC_UNRESOLVED:
1013 error (_("internal: Unforseen case in m2lex()"));
1014
1015 default:
1016 error (_("unhandled token in m2lex()"));
1017 break;
1018 }
1019 }
1020 else
1021 {
1022 /* Built-in BOOLEAN type. This is sort of a hack. */
1023 if (strncmp (tokstart, "TRUE", 4) == 0)
1024 {
1025 yylval.ulval = 1;
1026 return M2_TRUE;
1027 }
1028 else if (strncmp (tokstart, "FALSE", 5) == 0)
1029 {
1030 yylval.ulval = 0;
1031 return M2_FALSE;
1032 }
1033 }
1034
1035 /* Must be another type of name... */
1036 return NAME;
1037 }
1038 }
1039
1040 int
1041 m2_parse (struct parser_state *par_state)
1042 {
1043 /* Setting up the parser state. */
1044 scoped_restore pstate_restore = make_scoped_restore (&pstate);
1045 gdb_assert (par_state != NULL);
1046 pstate = par_state;
1047
1048 return yyparse ();
1049 }
1050
1051 void
1052 yyerror (const char *msg)
1053 {
1054 if (prev_lexptr)
1055 lexptr = prev_lexptr;
1056
1057 error (_("A %s in expression, near `%s'."), (msg ? msg : "error"), lexptr);
1058 }
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