Correct semantics restrictions checking in throw-expression.
[official-gcc.git] / gcc / genoutput.c
blobdc36d465dd6d111a969726fdb808763cddaac400
1 /* Generate code from to output assembler insns as recognized from rtl.
2 Copyright (C) 1987, 1988, 1992, 1994, 1995, 1997, 1998, 1999, 2000
3 Free Software Foundation, Inc.
5 This file is part of GNU CC.
7 GNU CC is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 2, or (at your option)
10 any later version.
12 GNU CC is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with GNU CC; see the file COPYING. If not, write to
19 the Free Software Foundation, 59 Temple Place - Suite 330,
20 Boston, MA 02111-1307, USA. */
23 /* This program reads the machine description for the compiler target machine
24 and produces a file containing these things:
26 1. An array of `struct insn_data', which is indexed by insn code number,
27 which contains:
29 a. `name' is the name for that pattern. Nameless patterns are
30 given a name.
32 b. `output' hold either the output template, an array of output
33 templates, or an output function.
35 c. `genfun' is the function to generate a body for that pattern,
36 given operands as arguments.
38 d. `n_operands' is the number of distinct operands in the pattern
39 for that insn,
41 e. `n_dups' is the number of match_dup's that appear in the insn's
42 pattern. This says how many elements of `recog_data.dup_loc' are
43 significant after an insn has been recognized.
45 f. `n_alternatives' is the number of alternatives in the constraints
46 of each pattern.
48 g. `output_format' tells what type of thing `output' is.
50 h. `operand' is the base of an array of operand data for the insn.
52 2. An array of `struct insn_operand data', used by `operand' above.
54 a. `predicate', an int-valued function, is the match_operand predicate
55 for this operand.
57 b. `constraint' is the constraint for this operand. This exists
58 only if register constraints appear in match_operand rtx's.
60 c. `address_p' indicates that the operand appears within ADDRESS
61 rtx's. This exists only if there are *no* register constraints
62 in the match_operand rtx's.
64 d. `mode' is the machine mode that that operand is supposed to have.
66 e. `strict_low', is nonzero for operands contained in a STRICT_LOW_PART.
68 f. `eliminable', is nonzero for operands that are matched normally by
69 MATCH_OPERAND; it is zero for operands that should not be changed during
70 register elimination such as MATCH_OPERATORs.
72 The code number of an insn is simply its position in the machine
73 description; code numbers are assigned sequentially to entries in
74 the description, starting with code number 0.
76 Thus, the following entry in the machine description
78 (define_insn "clrdf"
79 [(set (match_operand:DF 0 "general_operand" "")
80 (const_int 0))]
82 "clrd %0")
84 assuming it is the 25th entry present, would cause
85 insn_data[24].template to be "clrd %0", and
86 insn_data[24].n_operands to be 1. */
88 #include "hconfig.h"
89 #include "system.h"
90 #include "rtl.h"
91 #include "errors.h"
92 #include "gensupport.h"
94 /* No instruction can have more operands than this. Sorry for this
95 arbitrary limit, but what machine will have an instruction with
96 this many operands? */
98 #define MAX_MAX_OPERANDS 40
100 static int n_occurrences PARAMS ((int, const char *));
101 static const char *strip_whitespace PARAMS ((const char *));
103 /* insns in the machine description are assigned sequential code numbers
104 that are used by insn-recog.c (produced by genrecog) to communicate
105 to insn-output.c (produced by this program). */
107 static int next_code_number;
109 /* This counts all definitions in the md file,
110 for the sake of error messages. */
112 static int next_index_number;
114 /* This counts all operands used in the md file. The first is null. */
116 static int next_operand_number = 1;
118 /* Record in this chain all information about the operands we will output. */
120 struct operand_data
122 struct operand_data *next;
123 int index;
124 const char *predicate;
125 const char *constraint;
126 enum machine_mode mode;
127 unsigned char n_alternatives;
128 char address_p;
129 char strict_low;
130 char eliminable;
131 char seen;
134 /* Begin with a null operand at index 0. */
136 static struct operand_data null_operand =
138 0, 0, "", "", VOIDmode, 0, 0, 0, 0, 0
141 static struct operand_data *odata = &null_operand;
142 static struct operand_data **odata_end = &null_operand.next;
144 /* Must match the constants in recog.h. */
146 #define INSN_OUTPUT_FORMAT_NONE 0 /* abort */
147 #define INSN_OUTPUT_FORMAT_SINGLE 1 /* const char * */
148 #define INSN_OUTPUT_FORMAT_MULTI 2 /* const char * const * */
149 #define INSN_OUTPUT_FORMAT_FUNCTION 3 /* const char * (*)(...) */
151 /* Record in this chain all information that we will output,
152 associated with the code number of the insn. */
154 struct data
156 struct data *next;
157 const char *name;
158 const char *template;
159 int code_number;
160 int index_number;
161 int lineno;
162 int n_operands; /* Number of operands this insn recognizes */
163 int n_dups; /* Number times match_dup appears in pattern */
164 int n_alternatives; /* Number of alternatives in each constraint */
165 int operand_number; /* Operand index in the big array. */
166 int output_format; /* INSN_OUTPUT_FORMAT_*. */
167 struct operand_data operand[MAX_MAX_OPERANDS];
170 /* This variable points to the first link in the insn chain. */
172 static struct data *idata, **idata_end = &idata;
174 static void output_prologue PARAMS ((void));
175 static void output_predicate_decls PARAMS ((void));
176 static void output_operand_data PARAMS ((void));
177 static void output_insn_data PARAMS ((void));
178 static void output_get_insn_name PARAMS ((void));
179 static void scan_operands PARAMS ((struct data *, rtx, int, int));
180 static int compare_operands PARAMS ((struct operand_data *,
181 struct operand_data *));
182 static void place_operands PARAMS ((struct data *));
183 static void process_template PARAMS ((struct data *, const char *));
184 static void validate_insn_alternatives PARAMS ((struct data *));
185 static void validate_insn_operands PARAMS ((struct data *));
186 static void gen_insn PARAMS ((rtx, int));
187 static void gen_peephole PARAMS ((rtx, int));
188 static void gen_expand PARAMS ((rtx, int));
189 static void gen_split PARAMS ((rtx, int));
191 const char *
192 get_insn_name (index)
193 int index;
195 static char buf[100];
197 struct data *i, *last_named = NULL;
198 for (i = idata; i ; i = i->next)
200 if (i->index_number == index)
201 return i->name;
202 if (i->name)
203 last_named = i;
206 if (last_named)
207 sprintf(buf, "%s+%d", last_named->name, index - last_named->index_number);
208 else
209 sprintf(buf, "insn %d", index);
211 return buf;
214 static void
215 output_prologue ()
217 printf ("/* Generated automatically by the program `genoutput'\n\
218 from the machine description file `md'. */\n\n");
220 printf ("#include \"config.h\"\n");
221 printf ("#include \"system.h\"\n");
222 printf ("#include \"flags.h\"\n");
223 printf ("#include \"ggc.h\"\n");
224 printf ("#include \"rtl.h\"\n");
225 printf ("#include \"tm_p.h\"\n");
226 printf ("#include \"function.h\"\n");
227 printf ("#include \"regs.h\"\n");
228 printf ("#include \"hard-reg-set.h\"\n");
229 printf ("#include \"real.h\"\n");
230 printf ("#include \"insn-config.h\"\n\n");
231 printf ("#include \"conditions.h\"\n");
232 printf ("#include \"insn-flags.h\"\n");
233 printf ("#include \"insn-attr.h\"\n\n");
234 printf ("#include \"insn-codes.h\"\n\n");
235 printf ("#include \"recog.h\"\n\n");
236 printf ("#include \"toplev.h\"\n");
237 printf ("#include \"output.h\"\n");
241 /* We need to define all predicates used. Keep a list of those we
242 have defined so far. There normally aren't very many predicates
243 used, so a linked list should be fast enough. */
245 static void
246 output_predicate_decls ()
248 struct predicate { const char *name; struct predicate *next; } *predicates = 0;
249 register struct operand_data *d;
250 struct predicate *p;
252 for (d = odata; d; d = d->next)
253 if (d->predicate && d->predicate[0])
255 for (p = predicates; p; p = p->next)
256 if (strcmp (p->name, d->predicate) == 0)
257 break;
259 if (p == 0)
261 printf ("extern int %s PARAMS ((rtx, enum machine_mode));\n",
262 d->predicate);
263 p = (struct predicate *) alloca (sizeof (struct predicate));
264 p->name = d->predicate;
265 p->next = predicates;
266 predicates = p;
270 printf ("\n\n");
273 static void
274 output_operand_data ()
276 register struct operand_data *d;
278 printf ("\nstatic const struct insn_operand_data operand_data[] = \n{\n");
280 for (d = odata; d; d = d->next)
282 printf (" {\n");
284 printf (" %s,\n",
285 d->predicate && d->predicate[0] ? d->predicate : "0");
287 printf (" \"%s\",\n", d->constraint ? d->constraint : "");
289 printf (" %smode,\n", GET_MODE_NAME (d->mode));
291 printf (" %d,\n", d->strict_low);
293 printf (" %d\n", d->eliminable);
295 printf(" },\n");
297 printf("};\n\n\n");
300 static void
301 output_insn_data ()
303 register struct data *d;
304 int name_offset = 0;
305 int next_name_offset;
306 const char * last_name = 0;
307 const char * next_name = 0;
308 register struct data *n;
310 for (n = idata, next_name_offset = 1; n; n = n->next, next_name_offset++)
311 if (n->name)
313 next_name = n->name;
314 break;
317 printf ("\nconst struct insn_data insn_data[] = \n{\n");
319 for (d = idata; d; d = d->next)
321 printf (" {\n");
323 if (d->name)
325 printf (" \"%s\",\n", d->name);
326 name_offset = 0;
327 last_name = d->name;
328 next_name = 0;
329 for (n = d->next, next_name_offset = 1; n;
330 n = n->next, next_name_offset++)
332 if (n->name)
334 next_name = n->name;
335 break;
339 else
341 name_offset++;
342 if (next_name && (last_name == 0
343 || name_offset > next_name_offset / 2))
344 printf (" \"%s-%d\",\n", next_name,
345 next_name_offset - name_offset);
346 else
347 printf (" \"%s+%d\",\n", last_name, name_offset);
350 switch (d->output_format)
352 case INSN_OUTPUT_FORMAT_NONE:
353 printf (" 0,\n");
354 break;
355 case INSN_OUTPUT_FORMAT_SINGLE:
357 const char *p = d->template;
358 char prev = 0;
360 printf (" \"");
361 while (*p)
363 if (*p == '\n' && prev != '\\')
364 printf ("\\n\\\n");
365 else
366 putchar (*p);
367 prev = *p;
368 ++p;
370 printf ("\",\n");
372 break;
373 case INSN_OUTPUT_FORMAT_MULTI:
374 case INSN_OUTPUT_FORMAT_FUNCTION:
375 printf (" (const PTR) output_%d,\n", d->code_number);
376 break;
377 default:
378 abort ();
381 if (d->name && d->name[0] != '*')
382 printf (" (insn_gen_fn) gen_%s,\n", d->name);
383 else
384 printf (" 0,\n");
386 printf (" &operand_data[%d],\n", d->operand_number);
387 printf (" %d,\n", d->n_operands);
388 printf (" %d,\n", d->n_dups);
389 printf (" %d,\n", d->n_alternatives);
390 printf (" %d\n", d->output_format);
392 printf(" },\n");
394 printf ("};\n\n\n");
397 static void
398 output_get_insn_name ()
400 printf ("const char *\n");
401 printf ("get_insn_name (code)\n");
402 printf (" int code;\n");
403 printf ("{\n");
404 printf (" return insn_data[code].name;\n");
405 printf ("}\n");
409 /* Stores in max_opno the largest operand number present in `part', if
410 that is larger than the previous value of max_opno, and the rest of
411 the operand data into `d->operand[i]'.
413 THIS_ADDRESS_P is nonzero if the containing rtx was an ADDRESS.
414 THIS_STRICT_LOW is nonzero if the containing rtx was a STRICT_LOW_PART. */
416 static int max_opno;
417 static int num_dups;
419 static void
420 scan_operands (d, part, this_address_p, this_strict_low)
421 struct data *d;
422 rtx part;
423 int this_address_p;
424 int this_strict_low;
426 register int i, j;
427 register const char *format_ptr;
428 int opno;
430 if (part == 0)
431 return;
433 switch (GET_CODE (part))
435 case MATCH_OPERAND:
436 opno = XINT (part, 0);
437 if (opno > max_opno)
438 max_opno = opno;
439 if (max_opno >= MAX_MAX_OPERANDS)
441 message_with_line (d->lineno,
442 "maximum number of operands exceeded");
443 have_error = 1;
444 return;
446 if (d->operand[opno].seen)
448 message_with_line (d->lineno,
449 "repeated operand number %d\n", opno);
450 have_error = 1;
453 d->operand[opno].seen = 1;
454 d->operand[opno].mode = GET_MODE (part);
455 d->operand[opno].strict_low = this_strict_low;
456 d->operand[opno].predicate = XSTR (part, 1);
457 d->operand[opno].constraint = strip_whitespace (XSTR (part, 2));
458 d->operand[opno].n_alternatives
459 = n_occurrences (',', d->operand[opno].constraint) + 1;
460 d->operand[opno].address_p = this_address_p;
461 d->operand[opno].eliminable = 1;
462 return;
464 case MATCH_SCRATCH:
465 opno = XINT (part, 0);
466 if (opno > max_opno)
467 max_opno = opno;
468 if (max_opno >= MAX_MAX_OPERANDS)
470 message_with_line (d->lineno,
471 "maximum number of operands exceeded");
472 have_error = 1;
473 return;
475 if (d->operand[opno].seen)
477 message_with_line (d->lineno,
478 "repeated operand number %d\n", opno);
479 have_error = 1;
482 d->operand[opno].seen = 1;
483 d->operand[opno].mode = GET_MODE (part);
484 d->operand[opno].strict_low = 0;
485 d->operand[opno].predicate = "scratch_operand";
486 d->operand[opno].constraint = strip_whitespace (XSTR (part, 1));
487 d->operand[opno].n_alternatives
488 = n_occurrences (',', d->operand[opno].constraint) + 1;
489 d->operand[opno].address_p = 0;
490 d->operand[opno].eliminable = 0;
491 return;
493 case MATCH_OPERATOR:
494 case MATCH_PARALLEL:
495 opno = XINT (part, 0);
496 if (opno > max_opno)
497 max_opno = opno;
498 if (max_opno >= MAX_MAX_OPERANDS)
500 message_with_line (d->lineno,
501 "maximum number of operands exceeded");
502 have_error = 1;
503 return;
505 if (d->operand[opno].seen)
507 message_with_line (d->lineno,
508 "repeated operand number %d\n", opno);
509 have_error = 1;
512 d->operand[opno].seen = 1;
513 d->operand[opno].mode = GET_MODE (part);
514 d->operand[opno].strict_low = 0;
515 d->operand[opno].predicate = XSTR (part, 1);
516 d->operand[opno].constraint = 0;
517 d->operand[opno].address_p = 0;
518 d->operand[opno].eliminable = 0;
519 for (i = 0; i < XVECLEN (part, 2); i++)
520 scan_operands (d, XVECEXP (part, 2, i), 0, 0);
521 return;
523 case MATCH_DUP:
524 case MATCH_OP_DUP:
525 case MATCH_PAR_DUP:
526 ++num_dups;
527 return;
529 case ADDRESS:
530 scan_operands (d, XEXP (part, 0), 1, 0);
531 return;
533 case STRICT_LOW_PART:
534 scan_operands (d, XEXP (part, 0), 0, 1);
535 return;
537 default:
538 break;
541 format_ptr = GET_RTX_FORMAT (GET_CODE (part));
543 for (i = 0; i < GET_RTX_LENGTH (GET_CODE (part)); i++)
544 switch (*format_ptr++)
546 case 'e':
547 case 'u':
548 scan_operands (d, XEXP (part, i), 0, 0);
549 break;
550 case 'E':
551 if (XVEC (part, i) != NULL)
552 for (j = 0; j < XVECLEN (part, i); j++)
553 scan_operands (d, XVECEXP (part, i, j), 0, 0);
554 break;
558 /* Compare two operands for content equality. */
560 static int
561 compare_operands (d0, d1)
562 struct operand_data *d0, *d1;
564 const char *p0, *p1;
566 p0 = d0->predicate;
567 if (!p0)
568 p0 = "";
569 p1 = d1->predicate;
570 if (!p1)
571 p1 = "";
572 if (strcmp (p0, p1) != 0)
573 return 0;
575 p0 = d0->constraint;
576 if (!p0)
577 p0 = "";
578 p1 = d1->constraint;
579 if (!p1)
580 p1 = "";
581 if (strcmp (p0, p1) != 0)
582 return 0;
584 if (d0->mode != d1->mode)
585 return 0;
587 if (d0->strict_low != d1->strict_low)
588 return 0;
590 if (d0->eliminable != d1->eliminable)
591 return 0;
593 return 1;
596 /* Scan the list of operands we've already committed to output and either
597 find a subsequence that is the same, or allocate a new one at the end. */
599 static void
600 place_operands (d)
601 struct data *d;
603 struct operand_data *od, *od2;
604 int i;
606 if (d->n_operands == 0)
608 d->operand_number = 0;
609 return;
612 /* Brute force substring search. */
613 for (od = odata, i = 0; od; od = od->next, i = 0)
614 if (compare_operands (od, &d->operand[0]))
616 od2 = od->next;
617 i = 1;
618 while (1)
620 if (i == d->n_operands)
621 goto full_match;
622 if (od2 == NULL)
623 goto partial_match;
624 if (! compare_operands (od2, &d->operand[i]))
625 break;
626 ++i, od2 = od2->next;
630 /* Either partial match at the end of the list, or no match. In either
631 case, we tack on what operands are remaining to the end of the list. */
632 partial_match:
633 d->operand_number = next_operand_number - i;
634 for (; i < d->n_operands; ++i)
636 od2 = &d->operand[i];
637 *odata_end = od2;
638 odata_end = &od2->next;
639 od2->index = next_operand_number++;
641 *odata_end = NULL;
642 return;
644 full_match:
645 d->operand_number = od->index;
646 return;
650 /* Process an assembler template from a define_insn or a define_peephole.
651 It is either the assembler code template, a list of assembler code
652 templates, or C code to generate the assembler code template. */
654 static void
655 process_template (d, template)
656 struct data *d;
657 const char *template;
659 register const char *cp;
660 register int i;
662 /* Templates starting with * contain straight code to be run. */
663 if (template[0] == '*')
665 d->template = 0;
666 d->output_format = INSN_OUTPUT_FORMAT_FUNCTION;
668 printf ("\nstatic const char *output_%d PARAMS ((rtx *, rtx));\n",
669 d->code_number);
670 puts ("\nstatic const char *");
671 printf ("output_%d (operands, insn)\n", d->code_number);
672 puts (" rtx *operands ATTRIBUTE_UNUSED;");
673 puts (" rtx insn ATTRIBUTE_UNUSED;");
674 puts ("{");
676 puts (template + 1);
677 puts ("}");
680 /* If the assembler code template starts with a @ it is a newline-separated
681 list of assembler code templates, one for each alternative. */
682 else if (template[0] == '@')
684 d->template = 0;
685 d->output_format = INSN_OUTPUT_FORMAT_MULTI;
687 printf ("\nstatic const char * const output_%d[] = {\n", d->code_number);
689 for (i = 0, cp = &template[1]; *cp; )
691 while (*cp == '\n' || *cp == ' ' || *cp== '\t')
692 cp++;
694 printf (" \"");
695 while (*cp != '\n' && *cp != '\0')
697 putchar (*cp);
698 cp++;
701 printf ("\",\n");
702 i++;
704 if (i == 1)
705 message_with_line (d->lineno,
706 "'@' is redundant for output template with single alternative");
707 if (i != d->n_alternatives)
709 message_with_line (d->lineno,
710 "Wrong number of alternatives in the output template");
711 have_error = 1;
714 printf ("};\n");
716 else
718 d->template = template;
719 d->output_format = INSN_OUTPUT_FORMAT_SINGLE;
723 /* Check insn D for consistency in number of constraint alternatives. */
725 static void
726 validate_insn_alternatives (d)
727 struct data *d;
729 register int n = 0, start;
731 /* Make sure all the operands have the same number of alternatives
732 in their constraints. Let N be that number. */
733 for (start = 0; start < d->n_operands; start++)
734 if (d->operand[start].n_alternatives > 0)
736 if (n == 0)
737 n = d->operand[start].n_alternatives;
738 else if (n != d->operand[start].n_alternatives)
740 message_with_line (d->lineno,
741 "wrong number of alternatives in operand %d",
742 start);
743 have_error = 1;
747 /* Record the insn's overall number of alternatives. */
748 d->n_alternatives = n;
751 /* Verify that there are no gaps in operand numbers for INSNs. */
753 static void
754 validate_insn_operands (d)
755 struct data *d;
757 int i;
759 for (i = 0; i < d->n_operands; ++i)
760 if (d->operand[i].seen == 0)
762 message_with_line (d->lineno, "missing operand %d", i);
763 have_error = 1;
767 /* Look at a define_insn just read. Assign its code number. Record
768 on idata the template and the number of arguments. If the insn has
769 a hairy output action, output a function for now. */
771 static void
772 gen_insn (insn, lineno)
773 rtx insn;
774 int lineno;
776 register struct data *d = (struct data *) xmalloc (sizeof (struct data));
777 register int i;
779 d->code_number = next_code_number;
780 d->index_number = next_index_number;
781 d->lineno = lineno;
782 if (XSTR (insn, 0)[0])
783 d->name = XSTR (insn, 0);
784 else
785 d->name = 0;
787 /* Build up the list in the same order as the insns are seen
788 in the machine description. */
789 d->next = 0;
790 *idata_end = d;
791 idata_end = &d->next;
793 max_opno = -1;
794 num_dups = 0;
795 memset (d->operand, 0, sizeof (d->operand));
797 for (i = 0; i < XVECLEN (insn, 1); i++)
798 scan_operands (d, XVECEXP (insn, 1, i), 0, 0);
800 d->n_operands = max_opno + 1;
801 d->n_dups = num_dups;
803 validate_insn_operands (d);
804 validate_insn_alternatives (d);
805 place_operands (d);
806 process_template (d, XSTR (insn, 3));
809 /* Look at a define_peephole just read. Assign its code number.
810 Record on idata the template and the number of arguments.
811 If the insn has a hairy output action, output it now. */
813 static void
814 gen_peephole (peep, lineno)
815 rtx peep;
816 int lineno;
818 register struct data *d = (struct data *) xmalloc (sizeof (struct data));
819 register int i;
821 d->code_number = next_code_number;
822 d->index_number = next_index_number;
823 d->lineno = lineno;
824 d->name = 0;
826 /* Build up the list in the same order as the insns are seen
827 in the machine description. */
828 d->next = 0;
829 *idata_end = d;
830 idata_end = &d->next;
832 max_opno = -1;
833 num_dups = 0;
834 memset (d->operand, 0, sizeof (d->operand));
836 /* Get the number of operands by scanning all the patterns of the
837 peephole optimizer. But ignore all the rest of the information
838 thus obtained. */
839 for (i = 0; i < XVECLEN (peep, 0); i++)
840 scan_operands (d, XVECEXP (peep, 0, i), 0, 0);
842 d->n_operands = max_opno + 1;
843 d->n_dups = 0;
845 validate_insn_alternatives (d);
846 place_operands (d);
847 process_template (d, XSTR (peep, 2));
850 /* Process a define_expand just read. Assign its code number,
851 only for the purposes of `insn_gen_function'. */
853 static void
854 gen_expand (insn, lineno)
855 rtx insn;
856 int lineno;
858 register struct data *d = (struct data *) xmalloc (sizeof (struct data));
859 register int i;
861 d->code_number = next_code_number;
862 d->index_number = next_index_number;
863 d->lineno = lineno;
864 if (XSTR (insn, 0)[0])
865 d->name = XSTR (insn, 0);
866 else
867 d->name = 0;
869 /* Build up the list in the same order as the insns are seen
870 in the machine description. */
871 d->next = 0;
872 *idata_end = d;
873 idata_end = &d->next;
875 max_opno = -1;
876 num_dups = 0;
877 memset (d->operand, 0, sizeof (d->operand));
879 /* Scan the operands to get the specified predicates and modes,
880 since expand_binop needs to know them. */
882 if (XVEC (insn, 1))
883 for (i = 0; i < XVECLEN (insn, 1); i++)
884 scan_operands (d, XVECEXP (insn, 1, i), 0, 0);
886 d->n_operands = max_opno + 1;
887 d->n_dups = num_dups;
888 d->template = 0;
889 d->output_format = INSN_OUTPUT_FORMAT_NONE;
891 validate_insn_alternatives (d);
892 place_operands (d);
895 /* Process a define_split just read. Assign its code number,
896 only for reasons of consistency and to simplify genrecog. */
898 static void
899 gen_split (split, lineno)
900 rtx split;
901 int lineno;
903 register struct data *d = (struct data *) xmalloc (sizeof (struct data));
904 register int i;
906 d->code_number = next_code_number;
907 d->index_number = next_index_number;
908 d->lineno = lineno;
909 d->name = 0;
911 /* Build up the list in the same order as the insns are seen
912 in the machine description. */
913 d->next = 0;
914 *idata_end = d;
915 idata_end = &d->next;
917 max_opno = -1;
918 num_dups = 0;
919 memset (d->operand, 0, sizeof (d->operand));
921 /* Get the number of operands by scanning all the patterns of the
922 split patterns. But ignore all the rest of the information thus
923 obtained. */
924 for (i = 0; i < XVECLEN (split, 0); i++)
925 scan_operands (d, XVECEXP (split, 0, i), 0, 0);
927 d->n_operands = max_opno + 1;
928 d->n_dups = 0;
929 d->n_alternatives = 0;
930 d->template = 0;
931 d->output_format = INSN_OUTPUT_FORMAT_NONE;
933 place_operands (d);
936 extern int main PARAMS ((int, char **));
939 main (argc, argv)
940 int argc;
941 char **argv;
943 rtx desc;
945 progname = "genoutput";
947 if (argc <= 1)
948 fatal ("No input file name.");
950 if (init_md_reader (argv[1]) != SUCCESS_EXIT_CODE)
951 return (FATAL_EXIT_CODE);
953 output_prologue ();
954 next_code_number = 0;
955 next_index_number = 0;
957 /* Read the machine description. */
959 while (1)
961 int line_no;
963 desc = read_md_rtx (&line_no, &next_code_number);
964 if (desc == NULL)
965 break;
967 if (GET_CODE (desc) == DEFINE_INSN)
968 gen_insn (desc, line_no);
969 if (GET_CODE (desc) == DEFINE_PEEPHOLE)
970 gen_peephole (desc, line_no);
971 if (GET_CODE (desc) == DEFINE_EXPAND)
972 gen_expand (desc, line_no);
973 if (GET_CODE (desc) == DEFINE_SPLIT
974 || GET_CODE (desc) == DEFINE_PEEPHOLE2)
975 gen_split (desc, line_no);
976 next_index_number++;
979 printf("\n\n");
980 output_predicate_decls ();
981 output_operand_data ();
982 output_insn_data ();
983 output_get_insn_name ();
985 fflush (stdout);
986 return (ferror (stdout) != 0 || have_error
987 ? FATAL_EXIT_CODE : SUCCESS_EXIT_CODE);
990 /* Return the number of occurrences of character C in string S or
991 -1 if S is the null string. */
993 static int
994 n_occurrences (c, s)
995 int c;
996 const char *s;
998 int n = 0;
1000 if (s == 0 || *s == '\0')
1001 return -1;
1003 while (*s)
1004 n += (*s++ == c);
1006 return n;
1009 /* Remove whitespace in `s' by moving up characters until the end.
1010 Return a new string. */
1012 static const char *
1013 strip_whitespace (s)
1014 const char *s;
1016 char *p, *q;
1017 char ch;
1019 if (s == 0)
1020 return 0;
1022 p = q = xmalloc (strlen (s) + 1);
1023 while ((ch = *s++) != '\0')
1024 if (! ISSPACE (ch))
1025 *p++ = ch;
1027 *p = '\0';
1028 return q;