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1 /* Output the generated parsing program for bison,
2 Copyright 1984, 1986, 1989, 1992, 2000, 2001 Free Software Foundation, Inc.
3
4 This file is part of Bison, the GNU Compiler Compiler.
5
6 Bison is free software; you can redistribute it and/or modify it
7 under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2, or (at your option)
9 any later version.
10
11 Bison is distributed in the hope that it will be useful, but
12 WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with Bison; see the file COPYING. If not, write to the Free
18 Software Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA
19 02111-1307, USA. */
20
21
22 /* The parser tables consist of these tables.
23 Starred ones needed only for the semantic parser.
24 Double starred are output only if switches are set.
25
26 yytranslate = vector mapping yylex's token numbers into bison's token
27 numbers.
28
29 ** yytname = vector of string-names indexed by bison token number
30
31 ** yytoknum = vector of yylex token numbers corresponding to entries
32 in yytname
33
34 yyrline = vector of line-numbers of all rules. For yydebug printouts.
35
36 yyrhs = vector of items of all rules.
37 This is exactly what ritems contains. For yydebug and for semantic
38 parser.
39
40 yyprhs[r] = index in yyrhs of first item for rule r.
41
42 yyr1[r] = symbol number of symbol that rule r derives.
43
44 yyr2[r] = number of symbols composing right hand side of rule r.
45
46 * yystos[s] = the symbol number of the symbol that leads to state s.
47
48 yydefact[s] = default rule to reduce with in state s,
49 when yytable doesn't specify something else to do.
50 Zero means the default is an error.
51
52 yydefgoto[i] = default state to go to after a reduction of a rule that
53 generates variable ntokens + i, except when yytable
54 specifies something else to do.
55
56 yypact[s] = index in yytable of the portion describing state s.
57 The lookahead token's type is used to index that portion
58 to find out what to do.
59
60 If the value in yytable is positive,
61 we shift the token and go to that state.
62
63 If the value is negative, it is minus a rule number to reduce by.
64
65 If the value is zero, the default action from yydefact[s] is used.
66
67 yypgoto[i] = the index in yytable of the portion describing
68 what to do after reducing a rule that derives variable i + ntokens.
69 This portion is indexed by the parser state number, s,
70 as of before the text for this nonterminal was read.
71 The value from yytable is the state to go to if
72 the corresponding value in yycheck is s.
73
74 yytable = a vector filled with portions for different uses,
75 found via yypact and yypgoto.
76
77 yycheck = a vector indexed in parallel with yytable.
78 It indicates, in a roundabout way, the bounds of the
79 portion you are trying to examine.
80
81 Suppose that the portion of yytable starts at index p
82 and the index to be examined within the portion is i.
83 Then if yycheck[p+i] != i, i is outside the bounds
84 of what is actually allocated, and the default
85 (from yydefact or yydefgoto) should be used.
86 Otherwise, yytable[p+i] should be used.
87
88 YYFINAL = the state number of the termination state.
89 YYFLAG = most negative short int. Used to flag ??
90 YYNTBASE = ntokens.
91 */
92
93 #include "system.h"
94 #include "obstack.h"
95 #include "quotearg.h"
96 #include "getargs.h"
97 #include "files.h"
98 #include "gram.h"
99 #include "LR0.h"
100 #include "complain.h"
101 #include "output.h"
102 #include "lalr.h"
103 #include "reader.h"
104 #include "conflicts.h"
105
106 extern void berror PARAMS((const char *));
107
108
109
110 static int nvectors;
111 static int nentries;
112 static short **froms = NULL;
113 static short **tos = NULL;
114 static short *tally = NULL;
115 static short *width = NULL;
116 static short *actrow = NULL;
117 static short *state_count = NULL;
118 static short *order = NULL;
119 static short *base = NULL;
120 static short *pos = NULL;
121 static short *table = NULL;
122 static short *check = NULL;
123 static int lowzero;
124 static int high;
125
126
127
128 static inline void
129 output_short_or_char_table (struct obstack *oout,
130 const char *comment,
131 const char *type,
132 const char *table_name,
133 short *short_table,
134 short first_value,
135 short begin, short end)
136 {
137 int i, j;
138
139 if (comment)
140 obstack_fgrow1 (oout, "/* %s. */\n", comment);
141
142 obstack_fgrow3 (oout, "static const %s %s[] =\n{\n %6d",
143 type, table_name, first_value);
144
145 j = 1;
146 for (i = begin; i < end; i++)
147 {
148 obstack_1grow (oout, ',');
149
150 if (j >= 10)
151 {
152 obstack_sgrow (oout, "\n ");
153 j = 1;
154 }
155 else
156 {
157 j++;
158 }
159
160 obstack_fgrow1 (oout, "%6d", short_table[i]);
161 }
162
163 obstack_sgrow (oout, "\n};\n");
164 }
165
166
167 static inline void
168 output_short_table (struct obstack *oout,
169 const char *comment,
170 const char *table_name,
171 short *short_table,
172 short first_value,
173 short begin, short end)
174 {
175 output_short_or_char_table (oout, comment, "short", table_name, short_table,
176 first_value, begin, end);
177 }
178
179
180 /*--------------------------------------------------------------.
181 | output_headers -- Output constant strings to the beginning of |
182 | certain files. |
183 `--------------------------------------------------------------*/
184
185 /* Don't put the `%s' insides quotes, since it quotearg puts them. */
186
187 #define GUARDSTR \
188 "\n\
189 #include %s\n\
190 extern int yyerror;\n\
191 extern int yycost;\n\
192 extern char * yymsg;\n\
193 extern YYSTYPE yyval;\n\
194 \n\
195 yyguard(n, yyvsp, yylsp)\n\
196 register int n;\n\
197 register YYSTYPE *yyvsp;\n\
198 register YYLTYPE *yylsp;\n\
199 {\n\
200 yyerror = 0;\n\
201 yycost = 0;\n\
202 yymsg = 0;\n\
203 switch (n)\n\
204 {"
205
206 #define ACTSTR \
207 "\n\
208 #include %s\n\
209 extern YYSTYPE yyval;\n\
210 extern int yychar;\n\
211 \n\
212 yyaction(n, yyvsp, yylsp)\n\
213 register int n;\n\
214 register YYSTYPE *yyvsp;\n\
215 register YYLTYPE *yylsp;\n\
216 {\n\
217 switch (n)\n\
218 {"
219
220 #define ACTSTR_SIMPLE "\n switch (yyn) {\n"
221
222 void
223 output_headers (void)
224 {
225 char *attrsfile_quoted = 0;
226
227 if (semantic_parser)
228 {
229 /* FIXME: This is *buggy*. ATTRSFILE is not computed yet, since
230 we are waiting for the full input file to have been read to
231 be sure of the output file name. So basically, here, a SEGV
232 is guaranteed. OTOH, currently semantic parsers are not
233 supported. */
234 attrsfile_quoted = quotearg_style (c_quoting_style, attrsfile);
235 obstack_fgrow1 (&guard_obstack, GUARDSTR, attrsfile_quoted);
236 }
237
238 if (no_parser_flag)
239 return;
240
241 if (semantic_parser)
242 obstack_fgrow1 (&action_obstack, ACTSTR, attrsfile_quoted);
243 else
244 obstack_sgrow (&action_obstack, ACTSTR_SIMPLE);
245
246 /* Rename certain symbols if -p was specified. */
247 if (spec_name_prefix)
248 {
249 obstack_fgrow1 (&table_obstack,
250 "#define yyparse %sparse\n", spec_name_prefix);
251 obstack_fgrow1 (&table_obstack,
252 "#define yylex %slex\n", spec_name_prefix);
253 obstack_fgrow1 (&table_obstack,
254 "#define yyerror %serror\n", spec_name_prefix);
255 obstack_fgrow1 (&table_obstack,
256 "#define yylval %slval\n", spec_name_prefix);
257 obstack_fgrow1 (&table_obstack,
258 "#define yychar %schar\n", spec_name_prefix);
259 obstack_fgrow1 (&table_obstack,
260 "#define yydebug %sdebug\n", spec_name_prefix);
261 obstack_fgrow1 (&table_obstack,
262 "#define yynerrs %snerrs\n", spec_name_prefix);
263 }
264 }
265
266
267 /*-------------------------------------------------------.
268 | Output constant strings to the ends of certain files. |
269 `-------------------------------------------------------*/
270
271 void
272 output_trailers (void)
273 {
274 if (semantic_parser)
275 obstack_sgrow (&guard_obstack, "\n }\n}\n");
276
277 obstack_1grow (&action_obstack, '\n');
278
279 if (no_parser_flag)
280 return;
281
282 if (semantic_parser)
283 obstack_sgrow (&action_obstack, " }\n");
284
285 obstack_sgrow (&action_obstack, "}\n");
286 }
287
288
289
290 static void
291 output_token_translations (void)
292 {
293 obstack_sgrow (&table_obstack, "\
294 \n\
295 /* YYTRANSLATE(YYLEX) -- Bison token number corresponding to YYLEX. */\n");
296
297 obstack_fgrow2 (&table_obstack,
298 "#define YYTRANSLATE(x) ((unsigned)(x) <= %d ? yytranslate[x] : %d)\
299 \n\
300 \n",
301 max_user_token_number, nsyms);
302
303 output_short_or_char_table (&table_obstack,
304 "YYTRANSLATE[YYLEX] -- Bison token number corresponding to YYLEX",
305 ntokens < 127 ? "char" : "short",
306 "yytranslate", token_translations,
307 0, 1, max_user_token_number + 1);
308
309 XFREE (token_translations);
310 }
311
312
313 static void
314 output_gram (void)
315 {
316 /* With the ordinary parser,
317 yyprhs and yyrhs are needed only for yydebug. */
318 /* With the no_parser option, all tables are generated */
319 if (!semantic_parser && !no_parser_flag)
320 obstack_sgrow (&table_obstack, "\n#if YYDEBUG != 0\n");
321
322 output_short_table (&table_obstack, NULL, "yyprhs", rrhs,
323 0, 1, nrules + 1);
324
325 {
326 size_t yyrhs_size = 1;
327 short *yyrhs, *sp;
328 int i;
329
330 for (sp = ritem + 1; *sp; sp++)
331 ++yyrhs_size;
332 yyrhs = XMALLOC (short, yyrhs_size);
333
334 for (sp = ritem + 1, i = 1; *sp; ++sp, ++i)
335 yyrhs[i] = *sp > 0 ? *sp : 0;
336
337 output_short_table (&table_obstack, NULL, "yyrhs", yyrhs,
338 ritem[0], 1, yyrhs_size);
339 XFREE (yyrhs);
340 }
341
342 if (!semantic_parser && !no_parser_flag)
343 obstack_sgrow (&table_obstack, "\n#endif\n");
344 }
345
346
347 static void
348 output_stos (void)
349 {
350 int i;
351 short *values = (short *) alloca (sizeof (short) * nstates);
352 for (i = 0; i < nstates; ++i)
353 values[i] = state_table[i].accessing_symbol;
354 output_short_table (&table_obstack,
355 "YYSTOS[STATE] -- Accessing symbol to the STATE",
356 "yystos", values,
357 0, 1, nstates);
358 }
359
360
361 static void
362 output_rule_data (void)
363 {
364 int i;
365 int j;
366 short *short_tab = NULL;
367
368 obstack_sgrow (&table_obstack, "\n\
369 #if YYDEBUG != 0\n");
370
371 output_short_table (&table_obstack,
372 "YYRLINE[YYN] -- source line where rule number YYN was defined",
373 "yyrline", rline,
374 0, 1, nrules + 1);
375
376 obstack_sgrow (&table_obstack, "#endif\n\n");
377
378 if (token_table_flag || no_parser_flag)
379 {
380 obstack_fgrow1 (&table_obstack, "#define YYNTOKENS %d\n", ntokens);
381 obstack_fgrow1 (&table_obstack, "#define YYNNTS %d\n", nvars);
382 obstack_fgrow1 (&table_obstack, "#define YYNRULES %d\n", nrules);
383 obstack_fgrow1 (&table_obstack, "#define YYNSTATES %d\n", nstates);
384 obstack_fgrow1 (&table_obstack, "#define YYMAXUTOK %d\n\n",
385 max_user_token_number);
386 }
387
388 /* Output the table of symbol names. */
389 if (!token_table_flag && !no_parser_flag)
390 obstack_sgrow (&table_obstack,
391 "\n#if YYDEBUG != 0 || defined YYERROR_VERBOSE\n\n");
392 obstack_sgrow (&table_obstack, "\
393 /* YYTNAME[TOKEN_NUM] -- String name of the token TOKEN_NUM. */\n");
394 obstack_sgrow (&table_obstack,
395 "static const char *const yytname[] =\n{\n ");
396
397 j = 0;
398 for (i = 0; i < nsyms; i++)
399 /* this used to be i<=nsyms, but that output a final "" symbol
400 almost by accident */
401 {
402 /* Width of the next token, including the two quotes, the coma
403 and the space. */
404 int strsize = 4;
405 char *p;
406
407 for (p = tags[i]; p && *p; p++)
408 if (*p == '"' || *p == '\\' || *p == '\n' || *p == '\t'
409 || *p == '\b')
410 strsize += 2;
411 else if (*p < 040 || *p >= 0177)
412 strsize += 4;
413 else
414 strsize++;
415
416 if (j + strsize > 75)
417 {
418 obstack_sgrow (&table_obstack, "\n ");
419 j = 2;
420 }
421
422 obstack_1grow (&table_obstack, '\"');
423 for (p = tags[i]; p && *p; p++)
424 {
425 if (*p == '"' || *p == '\\')
426 obstack_fgrow1 (&table_obstack, "\\%c", *p);
427 else if (*p == '\n')
428 obstack_sgrow (&table_obstack, "\\n");
429 else if (*p == '\t')
430 obstack_sgrow (&table_obstack, "\\t");
431 else if (*p == '\b')
432 obstack_sgrow (&table_obstack, "\\b");
433 else if (*p < 040 || *p >= 0177)
434 obstack_fgrow1 (&table_obstack, "\\%03o", *p);
435 else
436 obstack_1grow (&table_obstack, *p);
437 }
438
439 obstack_sgrow (&table_obstack, "\", ");
440 j += strsize;
441 }
442 /* add a NULL entry to list of tokens */
443 obstack_sgrow (&table_obstack, "NULL\n};\n");
444
445 if (!token_table_flag && !no_parser_flag)
446 obstack_sgrow (&table_obstack, "#endif\n\n");
447
448 /* Output YYTOKNUM. */
449 if (token_table_flag)
450 {
451 output_short_table (&table_obstack,
452 "YYTOKNUM[YYLEX] -- Index in YYTNAME corresponding to YYLEX",
453 "yytoknum", user_toknums,
454 0, 1, ntokens + 1);
455 }
456
457 /* Output YYR1. */
458 output_short_table (&table_obstack,
459 "YYR1[YYN] -- Symbol number of symbol that rule YYN derives",
460 "yyr1", rlhs,
461 0, 1, nrules + 1);
462 XFREE (rlhs + 1);
463
464 obstack_1grow (&table_obstack, '\n');
465
466 /* Output YYR2. */
467 short_tab = XMALLOC (short, nrules + 1);
468 for (i = 1; i < nrules; i++)
469 short_tab[i] = rrhs[i + 1] - rrhs[i] - 1;
470 short_tab[nrules] = nitems - rrhs[nrules] - 1;
471 output_short_table (&table_obstack,
472 "YYR2[YYN] -- Number of symbols composing right hand side of rule YYN",
473 "yyr2", short_tab,
474 0, 1, nrules + 1);
475 obstack_1grow (&table_obstack, '\n');
476
477 XFREE (short_tab);
478
479 XFREE (rrhs + 1);
480 }
481
482
483 static void
484 output_defines (void)
485 {
486 obstack_fgrow1 (&table_obstack, "\n\n#define\tYYFINAL\t\t%d\n", final_state);
487 obstack_fgrow1 (&table_obstack, "#define\tYYFLAG\t\t%d\n", MINSHORT);
488 obstack_fgrow1 (&table_obstack, "#define\tYYNTBASE\t%d\n", ntokens);
489 }
490
491
492 /*------------------------------------------------------------------.
493 | Decide what to do for each type of token if seen as the lookahead |
494 | token in specified state. The value returned is used as the |
495 | default action (yydefact) for the state. In addition, actrow is |
496 | filled with what to do for each kind of token, index by symbol |
497 | number, with zero meaning do the default action. The value |
498 | MINSHORT, a very negative number, means this situation is an |
499 | error. The parser recognizes this value specially. |
500 | |
501 | This is where conflicts are resolved. The loop over lookahead |
502 | rules considered lower-numbered rules last, and the last rule |
503 | considered that likes a token gets to handle it. |
504 `------------------------------------------------------------------*/
505
506 static int
507 action_row (int state)
508 {
509 int i;
510 int j;
511 int k;
512 int m = 0;
513 int n = 0;
514 int count;
515 int default_rule;
516 int nreds;
517 int max;
518 int rule;
519 int shift_state;
520 int symbol;
521 unsigned mask;
522 unsigned *wordp;
523 reductions *redp;
524 shifts *shiftp;
525 errs *errp;
526 int nodefault = 0; /* set nonzero to inhibit having any default reduction */
527
528 for (i = 0; i < ntokens; i++)
529 actrow[i] = 0;
530
531 default_rule = 0;
532 nreds = 0;
533 redp = state_table[state].reduction_table;
534
535 if (redp)
536 {
537 nreds = redp->nreds;
538
539 if (nreds >= 1)
540 {
541 /* loop over all the rules available here which require
542 lookahead */
543 m = state_table[state].lookaheads;
544 n = state_table[state + 1].lookaheads;
545
546 for (i = n - 1; i >= m; i--)
547 {
548 rule = -LAruleno[i];
549 wordp = LA + i * tokensetsize;
550 mask = 1;
551
552 /* and find each token which the rule finds acceptable
553 to come next */
554 for (j = 0; j < ntokens; j++)
555 {
556 /* and record this rule as the rule to use if that
557 token follows. */
558 if (mask & *wordp)
559 actrow[j] = rule;
560
561 mask <<= 1;
562 if (mask == 0)
563 {
564 mask = 1;
565 wordp++;
566 }
567 }
568 }
569 }
570 }
571
572 shiftp = state_table[state].shift_table;
573
574 /* Now see which tokens are allowed for shifts in this state. For
575 them, record the shift as the thing to do. So shift is preferred
576 to reduce. */
577
578 if (shiftp)
579 {
580 k = shiftp->nshifts;
581
582 for (i = 0; i < k; i++)
583 {
584 shift_state = shiftp->shifts[i];
585 if (!shift_state)
586 continue;
587
588 symbol = state_table[shift_state].accessing_symbol;
589
590 if (ISVAR (symbol))
591 break;
592
593 actrow[symbol] = shift_state;
594
595 /* Do not use any default reduction if there is a shift for
596 error */
597 if (symbol == error_token_number)
598 nodefault = 1;
599 }
600 }
601
602 errp = err_table[state];
603
604 /* See which tokens are an explicit error in this state (due to
605 %nonassoc). For them, record MINSHORT as the action. */
606
607 if (errp)
608 {
609 k = errp->nerrs;
610
611 for (i = 0; i < k; i++)
612 {
613 symbol = errp->errs[i];
614 actrow[symbol] = MINSHORT;
615 }
616 }
617
618 /* Now find the most common reduction and make it the default action
619 for this state. */
620
621 if (nreds >= 1 && !nodefault)
622 {
623 if (state_table[state].consistent)
624 default_rule = redp->rules[0];
625 else
626 {
627 max = 0;
628 for (i = m; i < n; i++)
629 {
630 count = 0;
631 rule = -LAruleno[i];
632
633 for (j = 0; j < ntokens; j++)
634 {
635 if (actrow[j] == rule)
636 count++;
637 }
638
639 if (count > max)
640 {
641 max = count;
642 default_rule = rule;
643 }
644 }
645
646 /* actions which match the default are replaced with zero,
647 which means "use the default" */
648
649 if (max > 0)
650 {
651 for (j = 0; j < ntokens; j++)
652 {
653 if (actrow[j] == default_rule)
654 actrow[j] = 0;
655 }
656
657 default_rule = -default_rule;
658 }
659 }
660 }
661
662 /* If have no default rule, the default is an error.
663 So replace any action which says "error" with "use default". */
664
665 if (default_rule == 0)
666 for (j = 0; j < ntokens; j++)
667 {
668 if (actrow[j] == MINSHORT)
669 actrow[j] = 0;
670 }
671
672 return default_rule;
673 }
674
675
676 static void
677 save_row (int state)
678 {
679 int i;
680 int count;
681 short *sp;
682 short *sp1;
683 short *sp2;
684
685 count = 0;
686 for (i = 0; i < ntokens; i++)
687 {
688 if (actrow[i] != 0)
689 count++;
690 }
691
692 if (count == 0)
693 return;
694
695 froms[state] = sp1 = sp = XCALLOC (short, count);
696 tos[state] = sp2 = XCALLOC (short, count);
697
698 for (i = 0; i < ntokens; i++)
699 {
700 if (actrow[i] != 0)
701 {
702 *sp1++ = i;
703 *sp2++ = actrow[i];
704 }
705 }
706
707 tally[state] = count;
708 width[state] = sp1[-1] - sp[0] + 1;
709 }
710
711
712 /*------------------------------------------------------------------.
713 | Figure out the actions for the specified state, indexed by |
714 | lookahead token type. |
715 | |
716 | The YYDEFACT table is output now. The detailed info is saved for |
717 | putting into YYTABLE later. |
718 `------------------------------------------------------------------*/
719
720 static void
721 token_actions (void)
722 {
723 int i;
724 short *yydefact = XCALLOC (short, nstates);
725
726 actrow = XCALLOC (short, ntokens);
727 for (i = 0; i < nstates; ++i)
728 {
729 yydefact[i] = action_row (i);
730 save_row (i);
731 }
732 XFREE (actrow);
733
734 output_short_table (&table_obstack,
735 "YYDEFACT[S] -- default rule to reduce with in state S when YYTABLE\n\
736 doesn't specify something else to do. Zero means the default is an\n\
737 error",
738 "yydefact", yydefact,
739 yydefact[0], 1, nstates);
740 obstack_1grow (&table_obstack, '\n');
741 XFREE (yydefact);
742 }
743
744
745 static void
746 free_shifts (void)
747 {
748 shifts *sp, *sptmp; /* JF derefrenced freed ptr */
749
750 for (sp = first_shift; sp; sp = sptmp)
751 {
752 sptmp = sp->next;
753 XFREE (sp);
754 }
755 }
756
757
758 static void
759 free_reductions (void)
760 {
761 reductions *rp, *rptmp; /* JF fixed freed ptr */
762
763 for (rp = first_reduction; rp; rp = rptmp)
764 {
765 rptmp = rp->next;
766 XFREE (rp);
767 }
768 }
769
770
771
772 static void
773 save_column (int symbol, int default_state)
774 {
775 int i;
776 short *sp;
777 short *sp1;
778 short *sp2;
779 int count;
780 int symno;
781
782 short begin = goto_map[symbol];
783 short end = goto_map[symbol + 1];
784
785 count = 0;
786 for (i = begin; i < end; i++)
787 {
788 if (to_state[i] != default_state)
789 count++;
790 }
791
792 if (count == 0)
793 return;
794
795 symno = symbol - ntokens + nstates;
796
797 froms[symno] = sp1 = sp = XCALLOC (short, count);
798 tos[symno] = sp2 = XCALLOC (short, count);
799
800 for (i = begin; i < end; i++)
801 {
802 if (to_state[i] != default_state)
803 {
804 *sp1++ = from_state[i];
805 *sp2++ = to_state[i];
806 }
807 }
808
809 tally[symno] = count;
810 width[symno] = sp1[-1] - sp[0] + 1;
811 }
812
813 static int
814 default_goto (int symbol)
815 {
816 int i;
817 int m;
818 int n;
819 int default_state;
820 int max;
821
822 m = goto_map[symbol];
823 n = goto_map[symbol + 1];
824
825 if (m == n)
826 return -1;
827
828 for (i = 0; i < nstates; i++)
829 state_count[i] = 0;
830
831 for (i = m; i < n; i++)
832 state_count[to_state[i]]++;
833
834 max = 0;
835 default_state = -1;
836
837 for (i = 0; i < nstates; i++)
838 {
839 if (state_count[i] > max)
840 {
841 max = state_count[i];
842 default_state = i;
843 }
844 }
845
846 return default_state;
847 }
848
849
850 /*-------------------------------------------------------------------.
851 | Figure out what to do after reducing with each rule, depending on |
852 | the saved state from before the beginning of parsing the data that |
853 | matched this rule. |
854 | |
855 | The YYDEFGOTO table is output now. The detailed info is saved for |
856 | putting into YYTABLE later. |
857 `-------------------------------------------------------------------*/
858
859 static void
860 goto_actions (void)
861 {
862 int i;
863
864 short *yydefgoto = XMALLOC (short, nsyms - ntokens);
865 state_count = XCALLOC (short, nstates);
866
867 for (i = ntokens; i < nsyms; ++i)
868 {
869 int default_state = default_goto (i);
870 save_column (i, default_state);
871 yydefgoto[i - ntokens] = default_state;
872 }
873
874 output_short_table (&table_obstack, NULL, "yydefgoto", yydefgoto,
875 yydefgoto[0], 1, nsyms - ntokens);
876
877 XFREE (state_count);
878 XFREE (yydefgoto);
879 }
880
881
882 /* The next few functions decide how to pack the actions and gotos
883 information into yytable. */
884
885 static void
886 sort_actions (void)
887 {
888 int i;
889 int j;
890 int k;
891 int t;
892 int w;
893
894 order = XCALLOC (short, nvectors);
895 nentries = 0;
896
897 for (i = 0; i < nvectors; i++)
898 {
899 if (tally[i] > 0)
900 {
901 t = tally[i];
902 w = width[i];
903 j = nentries - 1;
904
905 while (j >= 0 && (width[order[j]] < w))
906 j--;
907
908 while (j >= 0 && (width[order[j]] == w) && (tally[order[j]] < t))
909 j--;
910
911 for (k = nentries - 1; k > j; k--)
912 order[k + 1] = order[k];
913
914 order[j + 1] = i;
915 nentries++;
916 }
917 }
918 }
919
920
921 static int
922 matching_state (int vector)
923 {
924 int i;
925 int j;
926 int k;
927 int t;
928 int w;
929 int match;
930 int prev;
931
932 i = order[vector];
933 if (i >= nstates)
934 return -1;
935
936 t = tally[i];
937 w = width[i];
938
939 for (prev = vector - 1; prev >= 0; prev--)
940 {
941 j = order[prev];
942 if (width[j] != w || tally[j] != t)
943 return -1;
944
945 match = 1;
946 for (k = 0; match && k < t; k++)
947 {
948 if (tos[j][k] != tos[i][k] || froms[j][k] != froms[i][k])
949 match = 0;
950 }
951
952 if (match)
953 return j;
954 }
955
956 return -1;
957 }
958
959
960 static int
961 pack_vector (int vector)
962 {
963 int i;
964 int j;
965 int k;
966 int t;
967 int loc = 0;
968 int ok;
969 short *from;
970 short *to;
971
972 i = order[vector];
973 t = tally[i];
974
975 assert (t);
976
977 from = froms[i];
978 to = tos[i];
979
980 for (j = lowzero - from[0]; j < MAXTABLE; j++)
981 {
982 ok = 1;
983
984 for (k = 0; ok && k < t; k++)
985 {
986 loc = j + from[k];
987 if (loc > MAXTABLE)
988 fatal (_("maximum table size (%d) exceeded"), MAXTABLE);
989
990 if (table[loc] != 0)
991 ok = 0;
992 }
993
994 for (k = 0; ok && k < vector; k++)
995 {
996 if (pos[k] == j)
997 ok = 0;
998 }
999
1000 if (ok)
1001 {
1002 for (k = 0; k < t; k++)
1003 {
1004 loc = j + from[k];
1005 table[loc] = to[k];
1006 check[loc] = from[k];
1007 }
1008
1009 while (table[lowzero] != 0)
1010 lowzero++;
1011
1012 if (loc > high)
1013 high = loc;
1014
1015 return j;
1016 }
1017 }
1018
1019 berror ("pack_vector");
1020 return 0; /* JF keep lint happy */
1021 }
1022
1023
1024 static void
1025 pack_table (void)
1026 {
1027 int i;
1028 int place;
1029 int state;
1030
1031 base = XCALLOC (short, nvectors);
1032 pos = XCALLOC (short, nentries);
1033 table = XCALLOC (short, MAXTABLE);
1034 check = XCALLOC (short, MAXTABLE);
1035
1036 lowzero = 0;
1037 high = 0;
1038
1039 for (i = 0; i < nvectors; i++)
1040 base[i] = MINSHORT;
1041
1042 for (i = 0; i < MAXTABLE; i++)
1043 check[i] = -1;
1044
1045 for (i = 0; i < nentries; i++)
1046 {
1047 state = matching_state (i);
1048
1049 if (state < 0)
1050 place = pack_vector (i);
1051 else
1052 place = base[state];
1053
1054 pos[i] = place;
1055 base[order[i]] = place;
1056 }
1057
1058 for (i = 0; i < nvectors; i++)
1059 {
1060 if (froms[i])
1061 XFREE (froms[i]);
1062 if (tos[i])
1063 XFREE (tos[i]);
1064 }
1065
1066 XFREE (froms);
1067 XFREE (tos);
1068 XFREE (pos);
1069 }
1070
1071 /* the following functions output yytable, yycheck
1072 and the vectors whose elements index the portion starts */
1073
1074 static void
1075 output_base (void)
1076 {
1077 output_short_table (&table_obstack, NULL, "yypact", base,
1078 base[0], 1, nstates);
1079
1080 obstack_1grow (&table_obstack, '\n');
1081
1082 output_short_table (&table_obstack, NULL, "yypgoto", base,
1083 base[nstates], nstates + 1, nvectors);
1084
1085 XFREE (base);
1086 }
1087
1088
1089 static void
1090 output_table (void)
1091 {
1092 obstack_fgrow1 (&table_obstack, "\n\n#define\tYYLAST\t\t%d\n\n\n", high);
1093 output_short_table (&table_obstack, NULL, "yytable", table,
1094 table[0], 1, high + 1);
1095 XFREE (table);
1096 }
1097
1098
1099 static void
1100 output_check (void)
1101 {
1102 output_short_table (&table_obstack, NULL, "yycheck", check,
1103 check[0], 1, high + 1);
1104 XFREE (check);
1105 }
1106
1107 /* compute and output yydefact, yydefgoto, yypact, yypgoto, yytable
1108 and yycheck. */
1109
1110 static void
1111 output_actions (void)
1112 {
1113 nvectors = nstates + nvars;
1114
1115 froms = XCALLOC (short *, nvectors);
1116 tos = XCALLOC (short *, nvectors);
1117 tally = XCALLOC (short, nvectors);
1118 width = XCALLOC (short, nvectors);
1119
1120 token_actions ();
1121 free_shifts ();
1122 free_reductions ();
1123 XFREE (LA);
1124 XFREE (LAruleno);
1125
1126 goto_actions ();
1127 XFREE (goto_map + ntokens);
1128 XFREE (from_state);
1129 XFREE (to_state);
1130
1131 sort_actions ();
1132 pack_table ();
1133 obstack_1grow (&table_obstack, '\n');
1134 output_base ();
1135 output_table ();
1136 obstack_1grow (&table_obstack, '\n');
1137 output_check ();
1138 }
1139
1140 /*------------------------------------------.
1141 | Copy the parser code into TABLE_OBSTACK. |
1142 `------------------------------------------*/
1143
1144 static void
1145 output_parser (void)
1146 {
1147 int c;
1148 FILE *fskel;
1149 size_t line;
1150 int actions_dumped = 0;
1151
1152 if (pure_parser)
1153 obstack_sgrow (&table_obstack, "#define YYPURE 1\n\n");
1154
1155 /* Loop over lines in the standard parser file. */
1156 if (!skeleton)
1157 {
1158 if (semantic_parser)
1159 skeleton = skeleton_find ("BISON_HAIRY", BISON_HAIRY);
1160 else
1161 skeleton = skeleton_find ("BISON_SIMPLE", BISON_SIMPLE);
1162 }
1163 assert (skeleton);
1164 fskel = xfopen (skeleton, "r");
1165
1166 /* Set LINE to 2, not 1: `#line LINENUM' -- Here LINENUM is a
1167 decimal integer constant. This specifies that the line number of
1168 the *following* line of input, in its original source file, was
1169 LINENUM. */
1170 line = 2;
1171
1172 while (1)
1173 {
1174 enum line_type_e
1175 {
1176 regular_line,
1177 sync_line, /* #line. */
1178 actions_line /* %% actions. */
1179 };
1180 enum line_type_e line_type = regular_line;
1181
1182 c = getc (fskel);
1183
1184 /* Is this line special? */
1185 if (c == '#')
1186 {
1187 /* See if it's a `#line' line. */
1188 if ((c = getc (fskel)) == 'l')
1189 if ((c = getc (fskel)) == 'i')
1190 if ((c = getc (fskel)) == 'n')
1191 if ((c = getc (fskel)) == 'e')
1192 line_type = sync_line;
1193 else
1194 obstack_sgrow (&table_obstack, "#lin");
1195 else
1196 obstack_sgrow (&table_obstack, "#li");
1197 else
1198 obstack_sgrow (&table_obstack, "#l");
1199 else
1200 obstack_sgrow (&table_obstack, "#");
1201 }
1202 else if (c == '%')
1203 {
1204 /* See if it's a `%% actions' line. */
1205 if ((c = getc (fskel)) == '%')
1206 if ((c = getc (fskel)) == ' ')
1207 if ((c = getc (fskel)) == 'a')
1208 if ((c = getc (fskel)) == 'c')
1209 if ((c = getc (fskel)) == 't')
1210 if ((c = getc (fskel)) == 'i')
1211 if ((c = getc (fskel)) == 'o')
1212 if ((c = getc (fskel)) == 'n')
1213 if ((c = getc (fskel)) == 's')
1214 line_type = actions_line;
1215 else
1216 obstack_sgrow (&table_obstack, "%% action");
1217 else
1218 obstack_sgrow (&table_obstack, "%% actio");
1219 else
1220 obstack_sgrow (&table_obstack, "%% acti");
1221 else
1222 obstack_sgrow (&table_obstack, "%% act");
1223 else
1224 obstack_sgrow (&table_obstack, "%% ac");
1225 else
1226 obstack_sgrow (&table_obstack, "%% a");
1227 else
1228 obstack_sgrow (&table_obstack, "%% ");
1229 else
1230 obstack_sgrow (&table_obstack, "%%");
1231 else
1232 obstack_sgrow (&table_obstack, "%");
1233 }
1234
1235 switch (line_type)
1236 {
1237 case sync_line:
1238 if (!no_lines_flag)
1239 obstack_fgrow2 (&table_obstack, "#line %d %s\n",
1240 line, quotearg_style (c_quoting_style, skeleton));
1241
1242 /* Skip the end of line. */
1243 for (; c != '\n' && c != EOF; c = getc (fskel))
1244 /* nothing */;
1245 break;
1246
1247 case actions_line:
1248 {
1249 size_t size = obstack_object_size (&action_obstack);
1250
1251 actions_dumped++;
1252 assert (actions_dumped == 1);
1253 obstack_grow (&table_obstack,
1254 obstack_finish (&action_obstack),
1255 size);
1256 }
1257
1258 /* Skip the end of line. */
1259 for (; c != '\n' && c != EOF; c = getc (fskel))
1260 /* nothing */;
1261 break;
1262
1263 case regular_line:
1264 for (; c != '\n' && c != EOF; c = getc (fskel))
1265 obstack_1grow (&table_obstack, c);
1266 }
1267
1268 if (c == EOF)
1269 break;
1270 obstack_1grow (&table_obstack, c);
1271 line++;
1272 }
1273 assert (actions_dumped == 1);
1274 xfclose (fskel);
1275 }
1276
1277 static void
1278 output_program (void)
1279 {
1280 int c;
1281
1282 if (!no_lines_flag)
1283 obstack_fgrow2 (&table_obstack, "#line %d %s\n",
1284 lineno, quotearg_style (c_quoting_style, infile));
1285
1286 while ((c = getc (finput)) != EOF)
1287 obstack_1grow (&table_obstack, c);
1288 }
1289
1290
1291 static void
1292 free_itemsets (void)
1293 {
1294 core *cp, *cptmp;
1295 for (cp = first_state; cp; cp = cptmp)
1296 {
1297 cptmp = cp->next;
1298 XFREE (cp);
1299 }
1300 }
1301
1302
1303 /*----------------------------------------------------------.
1304 | Output the parsing tables and the parser code to ftable. |
1305 `----------------------------------------------------------*/
1306
1307 void
1308 output (void)
1309 {
1310 /* output_token_defines(ftable); / * JF put out token defines FIRST */
1311
1312 /* If using a simple parser the definition of YYSTYPE are put into
1313 TABLE_OBSTACK. */
1314 if (!semantic_parser)
1315 {
1316 size_t size = obstack_object_size (&attrs_obstack);
1317 obstack_grow (&table_obstack, obstack_finish (&attrs_obstack), size);
1318 }
1319 reader_output_yylsp (&table_obstack);
1320 if (debug_flag)
1321 obstack_sgrow (&table_obstack, "\
1322 #ifndef YYDEBUG\n\
1323 # define YYDEBUG 1\n\
1324 #endif\n\
1325 \n");
1326
1327 if (semantic_parser)
1328 obstack_fgrow1 (&table_obstack, "#include %s\n",
1329 quotearg_style (c_quoting_style, attrsfile));
1330
1331 if (!no_parser_flag)
1332 obstack_sgrow (&table_obstack, "#include <stdio.h>\n\n");
1333
1334 free_itemsets ();
1335 output_defines ();
1336 output_token_translations ();
1337 /* if (semantic_parser) */
1338 /* This is now unconditional because debugging printouts can use it. */
1339 output_gram ();
1340 XFREE (ritem);
1341 if (semantic_parser)
1342 output_stos ();
1343 output_rule_data ();
1344 output_actions ();
1345 XFREE (state_table);
1346
1347 if (!no_parser_flag)
1348 output_parser ();
1349 output_program ();
1350 }