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1 /*-
2  * This code is derived from OpenBSD's libc/regex, original license follows:
3  *
4  * Copyright (c) 1992, 1993, 1994 Henry Spencer.
5  * Copyright (c) 1992, 1993, 1994
6  *	The Regents of the University of California.  All rights reserved.
7  *
8  * This code is derived from software contributed to Berkeley by
9  * Henry Spencer.
10  *
11  * Redistribution and use in source and binary forms, with or without
12  * modification, are permitted provided that the following conditions
13  * are met:
14  * 1. Redistributions of source code must retain the above copyright
15  *    notice, this list of conditions and the following disclaimer.
16  * 2. Redistributions in binary form must reproduce the above copyright
17  *    notice, this list of conditions and the following disclaimer in the
18  *    documentation and/or other materials provided with the distribution.
19  * 3. Neither the name of the University nor the names of its contributors
20  *    may be used to endorse or promote products derived from this software
21  *    without specific prior written permission.
22  *
23  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
24  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
27  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33  * SUCH DAMAGE.
34  *
35  *	@(#)regcomp.c	8.5 (Berkeley) 3/20/94
36  */
37 
38 #include <sys/types.h>
39 #include <stdio.h>
40 #include <string.h>
41 #include <ctype.h>
42 #include <limits.h>
43 #include <stdlib.h>
44 #include "regex_impl.h"
45 
46 #include "regutils.h"
47 #include "regex2.h"
48 
49 #include "regcclass.h"
50 #include "regcname.h"
51 
52 /*
53  * parse structure, passed up and down to avoid global variables and
54  * other clumsinesses
55  */
56 struct parse {
57 	char *next;		/* next character in RE */
58 	char *end;		/* end of string (-> NUL normally) */
59 	int error;		/* has an error been seen? */
60 	sop *strip;		/* malloced strip */
61 	sopno ssize;		/* malloced strip size (allocated) */
62 	sopno slen;		/* malloced strip length (used) */
63 	int ncsalloc;		/* number of csets allocated */
64 	struct re_guts *g;
65 #	define	NPAREN	10	/* we need to remember () 1-9 for back refs */
66 	sopno pbegin[NPAREN];	/* -> ( ([0] unused) */
67 	sopno pend[NPAREN];	/* -> ) ([0] unused) */
68 };
69 
70 static void p_ere(struct parse *, int);
71 static void p_ere_exp(struct parse *);
72 static void p_str(struct parse *);
73 static void p_bre(struct parse *, int, int);
74 static int p_simp_re(struct parse *, int);
75 static int p_count(struct parse *);
76 static void p_bracket(struct parse *);
77 static void p_b_term(struct parse *, cset *);
78 static void p_b_cclass(struct parse *, cset *);
79 static void p_b_eclass(struct parse *, cset *);
80 static char p_b_symbol(struct parse *);
81 static char p_b_coll_elem(struct parse *, int);
82 static char othercase(int);
83 static void bothcases(struct parse *, int);
84 static void ordinary(struct parse *, int);
85 static void nonnewline(struct parse *);
86 static void repeat(struct parse *, sopno, int, int);
87 static int seterr(struct parse *, int);
88 static cset *allocset(struct parse *);
89 static void freeset(struct parse *, cset *);
90 static int freezeset(struct parse *, cset *);
91 static int firstch(struct parse *, cset *);
92 static int nch(struct parse *, cset *);
93 static void mcadd(struct parse *, cset *, const char *);
94 static void mcinvert(struct parse *, cset *);
95 static void mccase(struct parse *, cset *);
96 static int isinsets(struct re_guts *, int);
97 static int samesets(struct re_guts *, int, int);
98 static void categorize(struct parse *, struct re_guts *);
99 static sopno dupl(struct parse *, sopno, sopno);
100 static void doemit(struct parse *, sop, size_t);
101 static void doinsert(struct parse *, sop, size_t, sopno);
102 static void dofwd(struct parse *, sopno, sop);
103 static void enlarge(struct parse *, sopno);
104 static void stripsnug(struct parse *, struct re_guts *);
105 static void findmust(struct parse *, struct re_guts *);
106 static sopno pluscount(struct parse *, struct re_guts *);
107 
108 static char nuls[10];		/* place to point scanner in event of error */
109 
110 /*
111  * macros for use with parse structure
112  * BEWARE:  these know that the parse structure is named `p' !!!
113  */
114 #define	PEEK()	(*p->next)
115 #define	PEEK2()	(*(p->next+1))
116 #define	MORE()	(p->next < p->end)
117 #define	MORE2()	(p->next+1 < p->end)
118 #define	SEE(c)	(MORE() && PEEK() == (c))
119 #define	SEETWO(a, b)	(MORE() && MORE2() && PEEK() == (a) && PEEK2() == (b))
120 #define	EAT(c)	((SEE(c)) ? (NEXT(), 1) : 0)
121 #define	EATTWO(a, b)	((SEETWO(a, b)) ? (NEXT2(), 1) : 0)
122 #define	NEXT()	(p->next++)
123 #define	NEXT2()	(p->next += 2)
124 #define	NEXTn(n)	(p->next += (n))
125 #define	GETNEXT()	(*p->next++)
126 #define	SETERROR(e)	seterr(p, (e))
127 #define	REQUIRE(co, e)	(void)((co) || SETERROR(e))
128 #define	MUSTSEE(c, e)	(REQUIRE(MORE() && PEEK() == (c), e))
129 #define	MUSTEAT(c, e)	(REQUIRE(MORE() && GETNEXT() == (c), e))
130 #define	MUSTNOTSEE(c, e)	(REQUIRE(!MORE() || PEEK() != (c), e))
131 #define	EMIT(op, sopnd)	doemit(p, (sop)(op), (size_t)(sopnd))
132 #define	INSERT(op, pos)	doinsert(p, (sop)(op), HERE()-(pos)+1, pos)
133 #define	AHEAD(pos)		dofwd(p, pos, HERE()-(pos))
134 #define	ASTERN(sop, pos)	EMIT(sop, HERE()-pos)
135 #define	HERE()		(p->slen)
136 #define	THERE()		(p->slen - 1)
137 #define	THERETHERE()	(p->slen - 2)
138 #define	DROP(n)	(p->slen -= (n))
139 
140 #ifdef	_POSIX2_RE_DUP_MAX
141 #define	DUPMAX	_POSIX2_RE_DUP_MAX
142 #else
143 #define	DUPMAX	255
144 #endif
145 #define	INFINITY	(DUPMAX + 1)
146 
147 #ifndef NDEBUG
148 static int never = 0;		/* for use in asserts; shuts lint up */
149 #else
150 #define	never	0		/* some <assert.h>s have bugs too */
151 #endif
152 
153 /*
154  - llvm_regcomp - interface for parser and compilation
155  */
156 int				/* 0 success, otherwise REG_something */
llvm_regcomp(llvm_regex_t * preg,const char * pattern,int cflags)157 llvm_regcomp(llvm_regex_t *preg, const char *pattern, int cflags)
158 {
159 	struct parse pa;
160 	struct re_guts *g;
161 	struct parse *p = &pa;
162 	int i;
163 	size_t len;
164 #ifdef REDEBUG
165 #	define	GOODFLAGS(f)	(f)
166 #else
167 #	define	GOODFLAGS(f)	((f)&~REG_DUMP)
168 #endif
169 
170 	cflags = GOODFLAGS(cflags);
171 	if ((cflags&REG_EXTENDED) && (cflags&REG_NOSPEC))
172 		return(REG_INVARG);
173 
174 	if (cflags&REG_PEND) {
175 		if (preg->re_endp < pattern)
176 			return(REG_INVARG);
177 		len = preg->re_endp - pattern;
178 	} else
179 		len = strlen((const char *)pattern);
180 
181 	/* do the mallocs early so failure handling is easy */
182 	g = (struct re_guts *)malloc(sizeof(struct re_guts) +
183 							(NC-1)*sizeof(cat_t));
184 	if (g == NULL)
185 		return(REG_ESPACE);
186 	p->ssize = len/(size_t)2*(size_t)3 + (size_t)1;	/* ugh */
187 	p->strip = (sop *)calloc(p->ssize, sizeof(sop));
188 	p->slen = 0;
189 	if (p->strip == NULL) {
190 		free((char *)g);
191 		return(REG_ESPACE);
192 	}
193 
194 	/* set things up */
195 	p->g = g;
196 	p->next = (char *)pattern;	/* convenience; we do not modify it */
197 	p->end = p->next + len;
198 	p->error = 0;
199 	p->ncsalloc = 0;
200 	for (i = 0; i < NPAREN; i++) {
201 		p->pbegin[i] = 0;
202 		p->pend[i] = 0;
203 	}
204 	g->csetsize = NC;
205 	g->sets = NULL;
206 	g->setbits = NULL;
207 	g->ncsets = 0;
208 	g->cflags = cflags;
209 	g->iflags = 0;
210 	g->nbol = 0;
211 	g->neol = 0;
212 	g->must = NULL;
213 	g->mlen = 0;
214 	g->nsub = 0;
215 	g->ncategories = 1;	/* category 0 is "everything else" */
216 	g->categories = &g->catspace[-(CHAR_MIN)];
217 	(void) memset((char *)g->catspace, 0, NC*sizeof(cat_t));
218 	g->backrefs = 0;
219 
220 	/* do it */
221 	EMIT(OEND, 0);
222 	g->firststate = THERE();
223 	if (cflags&REG_EXTENDED)
224 		p_ere(p, OUT);
225 	else if (cflags&REG_NOSPEC)
226 		p_str(p);
227 	else
228 		p_bre(p, OUT, OUT);
229 	EMIT(OEND, 0);
230 	g->laststate = THERE();
231 
232 	/* tidy up loose ends and fill things in */
233 	categorize(p, g);
234 	stripsnug(p, g);
235 	findmust(p, g);
236 	g->nplus = pluscount(p, g);
237 	g->magic = MAGIC2;
238 	preg->re_nsub = g->nsub;
239 	preg->re_g = g;
240 	preg->re_magic = MAGIC1;
241 #ifndef REDEBUG
242 	/* not debugging, so can't rely on the assert() in llvm_regexec() */
243 	if (g->iflags&REGEX_BAD)
244 		SETERROR(REG_ASSERT);
245 #endif
246 
247 	/* win or lose, we're done */
248 	if (p->error != 0)	/* lose */
249 		llvm_regfree(preg);
250 	return(p->error);
251 }
252 
253 /*
254  - p_ere - ERE parser top level, concatenation and alternation
255  */
256 static void
p_ere(struct parse * p,int stop)257 p_ere(struct parse *p, int stop)	/* character this ERE should end at */
258 {
259 	char c;
260 	sopno prevback = 0;
261 	sopno prevfwd = 0;
262 	sopno conc;
263 	int first = 1;		/* is this the first alternative? */
264 
265 	for (;;) {
266 		/* do a bunch of concatenated expressions */
267 		conc = HERE();
268 		while (MORE() && (c = PEEK()) != '|' && c != stop)
269 			p_ere_exp(p);
270 		REQUIRE(HERE() != conc, REG_EMPTY);	/* require nonempty */
271 
272 		if (!EAT('|'))
273 			break;		/* NOTE BREAK OUT */
274 
275 		if (first) {
276 			INSERT(OCH_, conc);	/* offset is wrong */
277 			prevfwd = conc;
278 			prevback = conc;
279 			first = 0;
280 		}
281 		ASTERN(OOR1, prevback);
282 		prevback = THERE();
283 		AHEAD(prevfwd);			/* fix previous offset */
284 		prevfwd = HERE();
285 		EMIT(OOR2, 0);			/* offset is very wrong */
286 	}
287 
288 	if (!first) {		/* tail-end fixups */
289 		AHEAD(prevfwd);
290 		ASTERN(O_CH, prevback);
291 	}
292 
293 	assert(!MORE() || SEE(stop));
294 }
295 
296 /*
297  - p_ere_exp - parse one subERE, an atom possibly followed by a repetition op
298  */
299 static void
p_ere_exp(struct parse * p)300 p_ere_exp(struct parse *p)
301 {
302 	char c;
303 	sopno pos;
304 	int count;
305 	int count2;
306 	int backrefnum;
307 	sopno subno;
308 	int wascaret = 0;
309 
310 	assert(MORE());		/* caller should have ensured this */
311 	c = GETNEXT();
312 
313 	pos = HERE();
314 	switch (c) {
315 	case '(':
316 		REQUIRE(MORE(), REG_EPAREN);
317 		p->g->nsub++;
318 		subno = p->g->nsub;
319 		if (subno < NPAREN)
320 			p->pbegin[subno] = HERE();
321 		EMIT(OLPAREN, subno);
322 		if (!SEE(')'))
323 			p_ere(p, ')');
324 		if (subno < NPAREN) {
325 			p->pend[subno] = HERE();
326 			assert(p->pend[subno] != 0);
327 		}
328 		EMIT(ORPAREN, subno);
329 		MUSTEAT(')', REG_EPAREN);
330 		break;
331 #ifndef POSIX_MISTAKE
332 	case ')':		/* happens only if no current unmatched ( */
333 		/*
334 		 * You may ask, why the ifndef?  Because I didn't notice
335 		 * this until slightly too late for 1003.2, and none of the
336 		 * other 1003.2 regular-expression reviewers noticed it at
337 		 * all.  So an unmatched ) is legal POSIX, at least until
338 		 * we can get it fixed.
339 		 */
340 		SETERROR(REG_EPAREN);
341 		break;
342 #endif
343 	case '^':
344 		EMIT(OBOL, 0);
345 		p->g->iflags |= USEBOL;
346 		p->g->nbol++;
347 		wascaret = 1;
348 		break;
349 	case '$':
350 		EMIT(OEOL, 0);
351 		p->g->iflags |= USEEOL;
352 		p->g->neol++;
353 		break;
354 	case '|':
355 		SETERROR(REG_EMPTY);
356 		break;
357 	case '*':
358 	case '+':
359 	case '?':
360 		SETERROR(REG_BADRPT);
361 		break;
362 	case '.':
363 		if (p->g->cflags&REG_NEWLINE)
364 			nonnewline(p);
365 		else
366 			EMIT(OANY, 0);
367 		break;
368 	case '[':
369 		p_bracket(p);
370 		break;
371 	case '\\':
372 		REQUIRE(MORE(), REG_EESCAPE);
373 		c = GETNEXT();
374 		if (c >= '1' && c <= '9') {
375 			/* \[0-9] is taken to be a back-reference to a previously specified
376 			 * matching group. backrefnum will hold the number. The matching
377 			 * group must exist (i.e. if \4 is found there must have been at
378 			 * least 4 matching groups specified in the pattern previously).
379 			 */
380 			backrefnum = c - '0';
381 			if (p->pend[backrefnum] == 0) {
382 				SETERROR(REG_ESUBREG);
383 				break;
384 			}
385 
386 			/* Make sure everything checks out and emit the sequence
387 			 * that marks a back-reference to the parse structure.
388 			 */
389 			assert(backrefnum <= p->g->nsub);
390 			EMIT(OBACK_, backrefnum);
391 			assert(p->pbegin[backrefnum] != 0);
392 			assert(OP(p->strip[p->pbegin[backrefnum]]) != OLPAREN);
393 			assert(OP(p->strip[p->pend[backrefnum]]) != ORPAREN);
394 			(void) dupl(p, p->pbegin[backrefnum]+1, p->pend[backrefnum]);
395 			EMIT(O_BACK, backrefnum);
396 			p->g->backrefs = 1;
397 		} else {
398 			/* Other chars are simply themselves when escaped with a backslash.
399 			 */
400 			ordinary(p, c);
401 		}
402 		break;
403 	case '{':		/* okay as ordinary except if digit follows */
404 		REQUIRE(!MORE() || !isdigit((uch)PEEK()), REG_BADRPT);
405 		/* FALLTHROUGH */
406 	default:
407 		ordinary(p, c);
408 		break;
409 	}
410 
411 	if (!MORE())
412 		return;
413 	c = PEEK();
414 	/* we call { a repetition if followed by a digit */
415 	if (!( c == '*' || c == '+' || c == '?' ||
416 				(c == '{' && MORE2() && isdigit((uch)PEEK2())) ))
417 		return;		/* no repetition, we're done */
418 	NEXT();
419 
420 	REQUIRE(!wascaret, REG_BADRPT);
421 	switch (c) {
422 	case '*':	/* implemented as +? */
423 		/* this case does not require the (y|) trick, noKLUDGE */
424 		INSERT(OPLUS_, pos);
425 		ASTERN(O_PLUS, pos);
426 		INSERT(OQUEST_, pos);
427 		ASTERN(O_QUEST, pos);
428 		break;
429 	case '+':
430 		INSERT(OPLUS_, pos);
431 		ASTERN(O_PLUS, pos);
432 		break;
433 	case '?':
434 		/* KLUDGE: emit y? as (y|) until subtle bug gets fixed */
435 		INSERT(OCH_, pos);		/* offset slightly wrong */
436 		ASTERN(OOR1, pos);		/* this one's right */
437 		AHEAD(pos);			/* fix the OCH_ */
438 		EMIT(OOR2, 0);			/* offset very wrong... */
439 		AHEAD(THERE());			/* ...so fix it */
440 		ASTERN(O_CH, THERETHERE());
441 		break;
442 	case '{':
443 		count = p_count(p);
444 		if (EAT(',')) {
445 			if (isdigit((uch)PEEK())) {
446 				count2 = p_count(p);
447 				REQUIRE(count <= count2, REG_BADBR);
448 			} else		/* single number with comma */
449 				count2 = INFINITY;
450 		} else		/* just a single number */
451 			count2 = count;
452 		repeat(p, pos, count, count2);
453 		if (!EAT('}')) {	/* error heuristics */
454 			while (MORE() && PEEK() != '}')
455 				NEXT();
456 			REQUIRE(MORE(), REG_EBRACE);
457 			SETERROR(REG_BADBR);
458 		}
459 		break;
460 	}
461 
462 	if (!MORE())
463 		return;
464 	c = PEEK();
465 	if (!( c == '*' || c == '+' || c == '?' ||
466 				(c == '{' && MORE2() && isdigit((uch)PEEK2())) ) )
467 		return;
468 	SETERROR(REG_BADRPT);
469 }
470 
471 /*
472  - p_str - string (no metacharacters) "parser"
473  */
474 static void
p_str(struct parse * p)475 p_str(struct parse *p)
476 {
477 	REQUIRE(MORE(), REG_EMPTY);
478 	while (MORE())
479 		ordinary(p, GETNEXT());
480 }
481 
482 /*
483  - p_bre - BRE parser top level, anchoring and concatenation
484  * Giving end1 as OUT essentially eliminates the end1/end2 check.
485  *
486  * This implementation is a bit of a kludge, in that a trailing $ is first
487  * taken as an ordinary character and then revised to be an anchor.  The
488  * only undesirable side effect is that '$' gets included as a character
489  * category in such cases.  This is fairly harmless; not worth fixing.
490  * The amount of lookahead needed to avoid this kludge is excessive.
491  */
492 static void
p_bre(struct parse * p,int end1,int end2)493 p_bre(struct parse *p,
494     int end1,		/* first terminating character */
495     int end2)		/* second terminating character */
496 {
497 	sopno start = HERE();
498 	int first = 1;			/* first subexpression? */
499 	int wasdollar = 0;
500 
501 	if (EAT('^')) {
502 		EMIT(OBOL, 0);
503 		p->g->iflags |= USEBOL;
504 		p->g->nbol++;
505 	}
506 	while (MORE() && !SEETWO(end1, end2)) {
507 		wasdollar = p_simp_re(p, first);
508 		first = 0;
509 	}
510 	if (wasdollar) {	/* oops, that was a trailing anchor */
511 		DROP(1);
512 		EMIT(OEOL, 0);
513 		p->g->iflags |= USEEOL;
514 		p->g->neol++;
515 	}
516 
517 	REQUIRE(HERE() != start, REG_EMPTY);	/* require nonempty */
518 }
519 
520 /*
521  - p_simp_re - parse a simple RE, an atom possibly followed by a repetition
522  */
523 static int			/* was the simple RE an unbackslashed $? */
p_simp_re(struct parse * p,int starordinary)524 p_simp_re(struct parse *p,
525     int starordinary)		/* is a leading * an ordinary character? */
526 {
527 	int c;
528 	int count;
529 	int count2;
530 	sopno pos;
531 	int i;
532 	sopno subno;
533 #	define	BACKSL	(1<<CHAR_BIT)
534 
535         pos = HERE(); /* repetition op, if any, covers from here */
536 
537         assert(MORE()); /* caller should have ensured this */
538         c = GETNEXT();
539 	if (c == '\\') {
540 		REQUIRE(MORE(), REG_EESCAPE);
541 		c = BACKSL | GETNEXT();
542 	}
543 	switch (c) {
544 	case '.':
545 		if (p->g->cflags&REG_NEWLINE)
546 			nonnewline(p);
547 		else
548 			EMIT(OANY, 0);
549 		break;
550 	case '[':
551 		p_bracket(p);
552 		break;
553 	case BACKSL|'{':
554 		SETERROR(REG_BADRPT);
555 		break;
556 	case BACKSL|'(':
557 		p->g->nsub++;
558 		subno = p->g->nsub;
559 		if (subno < NPAREN)
560 			p->pbegin[subno] = HERE();
561 		EMIT(OLPAREN, subno);
562 		/* the MORE here is an error heuristic */
563 		if (MORE() && !SEETWO('\\', ')'))
564 			p_bre(p, '\\', ')');
565 		if (subno < NPAREN) {
566 			p->pend[subno] = HERE();
567 			assert(p->pend[subno] != 0);
568 		}
569 		EMIT(ORPAREN, subno);
570 		REQUIRE(EATTWO('\\', ')'), REG_EPAREN);
571 		break;
572 	case BACKSL|')':	/* should not get here -- must be user */
573 	case BACKSL|'}':
574 		SETERROR(REG_EPAREN);
575 		break;
576 	case BACKSL|'1':
577 	case BACKSL|'2':
578 	case BACKSL|'3':
579 	case BACKSL|'4':
580 	case BACKSL|'5':
581 	case BACKSL|'6':
582 	case BACKSL|'7':
583 	case BACKSL|'8':
584 	case BACKSL|'9':
585 		i = (c&~BACKSL) - '0';
586 		assert(i < NPAREN);
587 		if (p->pend[i] != 0) {
588 			assert(i <= p->g->nsub);
589 			EMIT(OBACK_, i);
590 			assert(p->pbegin[i] != 0);
591 			assert(OP(p->strip[p->pbegin[i]]) == OLPAREN);
592 			assert(OP(p->strip[p->pend[i]]) == ORPAREN);
593 			(void) dupl(p, p->pbegin[i]+1, p->pend[i]);
594 			EMIT(O_BACK, i);
595 		} else
596 			SETERROR(REG_ESUBREG);
597 		p->g->backrefs = 1;
598 		break;
599 	case '*':
600 		REQUIRE(starordinary, REG_BADRPT);
601 		/* FALLTHROUGH */
602 	default:
603 		ordinary(p, (char)c);
604 		break;
605 	}
606 
607 	if (EAT('*')) {		/* implemented as +? */
608 		/* this case does not require the (y|) trick, noKLUDGE */
609 		INSERT(OPLUS_, pos);
610 		ASTERN(O_PLUS, pos);
611 		INSERT(OQUEST_, pos);
612 		ASTERN(O_QUEST, pos);
613 	} else if (EATTWO('\\', '{')) {
614 		count = p_count(p);
615 		if (EAT(',')) {
616 			if (MORE() && isdigit((uch)PEEK())) {
617 				count2 = p_count(p);
618 				REQUIRE(count <= count2, REG_BADBR);
619 			} else		/* single number with comma */
620 				count2 = INFINITY;
621 		} else		/* just a single number */
622 			count2 = count;
623 		repeat(p, pos, count, count2);
624 		if (!EATTWO('\\', '}')) {	/* error heuristics */
625 			while (MORE() && !SEETWO('\\', '}'))
626 				NEXT();
627 			REQUIRE(MORE(), REG_EBRACE);
628 			SETERROR(REG_BADBR);
629 		}
630 	} else if (c == '$')	/* $ (but not \$) ends it */
631 		return(1);
632 
633 	return(0);
634 }
635 
636 /*
637  - p_count - parse a repetition count
638  */
639 static int			/* the value */
p_count(struct parse * p)640 p_count(struct parse *p)
641 {
642 	int count = 0;
643 	int ndigits = 0;
644 
645 	while (MORE() && isdigit((uch)PEEK()) && count <= DUPMAX) {
646 		count = count*10 + (GETNEXT() - '0');
647 		ndigits++;
648 	}
649 
650 	REQUIRE(ndigits > 0 && count <= DUPMAX, REG_BADBR);
651 	return(count);
652 }
653 
654 /*
655  - p_bracket - parse a bracketed character list
656  *
657  * Note a significant property of this code:  if the allocset() did SETERROR,
658  * no set operations are done.
659  */
660 static void
p_bracket(struct parse * p)661 p_bracket(struct parse *p)
662 {
663 	cset *cs;
664 	int invert = 0;
665 
666 	/* Dept of Truly Sickening Special-Case Kludges */
667 	if (p->next + 5 < p->end && strncmp(p->next, "[:<:]]", 6) == 0) {
668 		EMIT(OBOW, 0);
669 		NEXTn(6);
670 		return;
671 	}
672 	if (p->next + 5 < p->end && strncmp(p->next, "[:>:]]", 6) == 0) {
673 		EMIT(OEOW, 0);
674 		NEXTn(6);
675 		return;
676 	}
677 
678 	if ((cs = allocset(p)) == NULL) {
679 		/* allocset did set error status in p */
680 		return;
681 	}
682 
683 	if (EAT('^'))
684 		invert++;	/* make note to invert set at end */
685 	if (EAT(']'))
686 		CHadd(cs, ']');
687 	else if (EAT('-'))
688 		CHadd(cs, '-');
689 	while (MORE() && PEEK() != ']' && !SEETWO('-', ']'))
690 		p_b_term(p, cs);
691 	if (EAT('-'))
692 		CHadd(cs, '-');
693 	MUSTEAT(']', REG_EBRACK);
694 
695 	if (p->error != 0) {	/* don't mess things up further */
696 		freeset(p, cs);
697 		return;
698 	}
699 
700 	if (p->g->cflags&REG_ICASE) {
701 		int i;
702 		int ci;
703 
704 		for (i = p->g->csetsize - 1; i >= 0; i--)
705 			if (CHIN(cs, i) && isalpha(i)) {
706 				ci = othercase(i);
707 				if (ci != i)
708 					CHadd(cs, ci);
709 			}
710 		if (cs->multis != NULL)
711 			mccase(p, cs);
712 	}
713 	if (invert) {
714 		int i;
715 
716 		for (i = p->g->csetsize - 1; i >= 0; i--)
717 			if (CHIN(cs, i))
718 				CHsub(cs, i);
719 			else
720 				CHadd(cs, i);
721 		if (p->g->cflags&REG_NEWLINE)
722 			CHsub(cs, '\n');
723 		if (cs->multis != NULL)
724 			mcinvert(p, cs);
725 	}
726 
727 	assert(cs->multis == NULL);		/* xxx */
728 
729 	if (nch(p, cs) == 1) {		/* optimize singleton sets */
730 		ordinary(p, firstch(p, cs));
731 		freeset(p, cs);
732 	} else
733 		EMIT(OANYOF, freezeset(p, cs));
734 }
735 
736 /*
737  - p_b_term - parse one term of a bracketed character list
738  */
739 static void
p_b_term(struct parse * p,cset * cs)740 p_b_term(struct parse *p, cset *cs)
741 {
742 	char c;
743 	char start, finish;
744 	int i;
745 
746 	/* classify what we've got */
747 	switch ((MORE()) ? PEEK() : '\0') {
748 	case '[':
749 		c = (MORE2()) ? PEEK2() : '\0';
750 		break;
751 	case '-':
752 		SETERROR(REG_ERANGE);
753 		return;			/* NOTE RETURN */
754 		break;
755 	default:
756 		c = '\0';
757 		break;
758 	}
759 
760 	switch (c) {
761 	case ':':		/* character class */
762 		NEXT2();
763 		REQUIRE(MORE(), REG_EBRACK);
764 		c = PEEK();
765 		REQUIRE(c != '-' && c != ']', REG_ECTYPE);
766 		p_b_cclass(p, cs);
767 		REQUIRE(MORE(), REG_EBRACK);
768 		REQUIRE(EATTWO(':', ']'), REG_ECTYPE);
769 		break;
770 	case '=':		/* equivalence class */
771 		NEXT2();
772 		REQUIRE(MORE(), REG_EBRACK);
773 		c = PEEK();
774 		REQUIRE(c != '-' && c != ']', REG_ECOLLATE);
775 		p_b_eclass(p, cs);
776 		REQUIRE(MORE(), REG_EBRACK);
777 		REQUIRE(EATTWO('=', ']'), REG_ECOLLATE);
778 		break;
779 	default:		/* symbol, ordinary character, or range */
780 /* xxx revision needed for multichar stuff */
781 		start = p_b_symbol(p);
782 		if (SEE('-') && MORE2() && PEEK2() != ']') {
783 			/* range */
784 			NEXT();
785 			if (EAT('-'))
786 				finish = '-';
787 			else
788 				finish = p_b_symbol(p);
789 		} else
790 			finish = start;
791 /* xxx what about signed chars here... */
792 		REQUIRE(start <= finish, REG_ERANGE);
793 		for (i = start; i <= finish; i++)
794 			CHadd(cs, i);
795 		break;
796 	}
797 }
798 
799 /*
800  - p_b_cclass - parse a character-class name and deal with it
801  */
802 static void
p_b_cclass(struct parse * p,cset * cs)803 p_b_cclass(struct parse *p, cset *cs)
804 {
805 	char *sp = p->next;
806 	struct cclass *cp;
807 	size_t len;
808 	const char *u;
809 	char c;
810 
811 	while (MORE() && isalpha((uch)PEEK()))
812 		NEXT();
813 	len = p->next - sp;
814 	for (cp = cclasses; cp->name != NULL; cp++)
815 		if (strncmp(cp->name, sp, len) == 0 && cp->name[len] == '\0')
816 			break;
817 	if (cp->name == NULL) {
818 		/* oops, didn't find it */
819 		SETERROR(REG_ECTYPE);
820 		return;
821 	}
822 
823 	u = cp->chars;
824 	while ((c = *u++) != '\0')
825 		CHadd(cs, c);
826 	for (u = cp->multis; *u != '\0'; u += strlen(u) + 1)
827 		MCadd(p, cs, u);
828 }
829 
830 /*
831  - p_b_eclass - parse an equivalence-class name and deal with it
832  *
833  * This implementation is incomplete. xxx
834  */
835 static void
p_b_eclass(struct parse * p,cset * cs)836 p_b_eclass(struct parse *p, cset *cs)
837 {
838 	char c;
839 
840 	c = p_b_coll_elem(p, '=');
841 	CHadd(cs, c);
842 }
843 
844 /*
845  - p_b_symbol - parse a character or [..]ed multicharacter collating symbol
846  */
847 static char			/* value of symbol */
p_b_symbol(struct parse * p)848 p_b_symbol(struct parse *p)
849 {
850 	char value;
851 
852 	REQUIRE(MORE(), REG_EBRACK);
853 	if (!EATTWO('[', '.'))
854 		return(GETNEXT());
855 
856 	/* collating symbol */
857 	value = p_b_coll_elem(p, '.');
858 	REQUIRE(EATTWO('.', ']'), REG_ECOLLATE);
859 	return(value);
860 }
861 
862 /*
863  - p_b_coll_elem - parse a collating-element name and look it up
864  */
865 static char			/* value of collating element */
p_b_coll_elem(struct parse * p,int endc)866 p_b_coll_elem(struct parse *p,
867     int endc)			/* name ended by endc,']' */
868 {
869 	char *sp = p->next;
870 	struct cname *cp;
871 	int len;
872 
873 	while (MORE() && !SEETWO(endc, ']'))
874 		NEXT();
875 	if (!MORE()) {
876 		SETERROR(REG_EBRACK);
877 		return(0);
878 	}
879 	len = p->next - sp;
880 	for (cp = cnames; cp->name != NULL; cp++)
881 		if (strncmp(cp->name, sp, len) == 0 && cp->name[len] == '\0')
882 			return(cp->code);	/* known name */
883 	if (len == 1)
884 		return(*sp);	/* single character */
885 	SETERROR(REG_ECOLLATE);			/* neither */
886 	return(0);
887 }
888 
889 /*
890  - othercase - return the case counterpart of an alphabetic
891  */
892 static char			/* if no counterpart, return ch */
othercase(int ch)893 othercase(int ch)
894 {
895 	ch = (uch)ch;
896 	assert(isalpha(ch));
897 	if (isupper(ch))
898 		return ((uch)tolower(ch));
899 	else if (islower(ch))
900 		return ((uch)toupper(ch));
901 	else			/* peculiar, but could happen */
902 		return(ch);
903 }
904 
905 /*
906  - bothcases - emit a dualcase version of a two-case character
907  *
908  * Boy, is this implementation ever a kludge...
909  */
910 static void
bothcases(struct parse * p,int ch)911 bothcases(struct parse *p, int ch)
912 {
913 	char *oldnext = p->next;
914 	char *oldend = p->end;
915 	char bracket[3];
916 
917 	ch = (uch)ch;
918 	assert(othercase(ch) != ch);	/* p_bracket() would recurse */
919 	p->next = bracket;
920 	p->end = bracket+2;
921 	bracket[0] = ch;
922 	bracket[1] = ']';
923 	bracket[2] = '\0';
924 	p_bracket(p);
925 	assert(p->next == bracket+2);
926 	p->next = oldnext;
927 	p->end = oldend;
928 }
929 
930 /*
931  - ordinary - emit an ordinary character
932  */
933 static void
ordinary(struct parse * p,int ch)934 ordinary(struct parse *p, int ch)
935 {
936 	cat_t *cap = p->g->categories;
937 
938 	if ((p->g->cflags&REG_ICASE) && isalpha((uch)ch) && othercase(ch) != ch)
939 		bothcases(p, ch);
940 	else {
941 		EMIT(OCHAR, (uch)ch);
942 		if (cap[ch] == 0)
943 			cap[ch] = p->g->ncategories++;
944 	}
945 }
946 
947 /*
948  - nonnewline - emit REG_NEWLINE version of OANY
949  *
950  * Boy, is this implementation ever a kludge...
951  */
952 static void
nonnewline(struct parse * p)953 nonnewline(struct parse *p)
954 {
955 	char *oldnext = p->next;
956 	char *oldend = p->end;
957 	char bracket[4];
958 
959 	p->next = bracket;
960 	p->end = bracket+3;
961 	bracket[0] = '^';
962 	bracket[1] = '\n';
963 	bracket[2] = ']';
964 	bracket[3] = '\0';
965 	p_bracket(p);
966 	assert(p->next == bracket+3);
967 	p->next = oldnext;
968 	p->end = oldend;
969 }
970 
971 /*
972  - repeat - generate code for a bounded repetition, recursively if needed
973  */
974 static void
repeat(struct parse * p,sopno start,int from,int to)975 repeat(struct parse *p,
976     sopno start,		/* operand from here to end of strip */
977     int from,			/* repeated from this number */
978     int to)			/* to this number of times (maybe INFINITY) */
979 {
980 	sopno finish = HERE();
981 #	define	N	2
982 #	define	INF	3
983 #	define	REP(f, t)	((f)*8 + (t))
984 #	define	MAP(n)	(((n) <= 1) ? (n) : ((n) == INFINITY) ? INF : N)
985 	sopno copy;
986 
987 	if (p->error != 0)	/* head off possible runaway recursion */
988 		return;
989 
990 	assert(from <= to);
991 
992 	switch (REP(MAP(from), MAP(to))) {
993 	case REP(0, 0):			/* must be user doing this */
994 		DROP(finish-start);	/* drop the operand */
995 		break;
996 	case REP(0, 1):			/* as x{1,1}? */
997 	case REP(0, N):			/* as x{1,n}? */
998 	case REP(0, INF):		/* as x{1,}? */
999 		/* KLUDGE: emit y? as (y|) until subtle bug gets fixed */
1000 		INSERT(OCH_, start);		/* offset is wrong... */
1001 		repeat(p, start+1, 1, to);
1002 		ASTERN(OOR1, start);
1003 		AHEAD(start);			/* ... fix it */
1004 		EMIT(OOR2, 0);
1005 		AHEAD(THERE());
1006 		ASTERN(O_CH, THERETHERE());
1007 		break;
1008 	case REP(1, 1):			/* trivial case */
1009 		/* done */
1010 		break;
1011 	case REP(1, N):			/* as x?x{1,n-1} */
1012 		/* KLUDGE: emit y? as (y|) until subtle bug gets fixed */
1013 		INSERT(OCH_, start);
1014 		ASTERN(OOR1, start);
1015 		AHEAD(start);
1016 		EMIT(OOR2, 0);			/* offset very wrong... */
1017 		AHEAD(THERE());			/* ...so fix it */
1018 		ASTERN(O_CH, THERETHERE());
1019 		copy = dupl(p, start+1, finish+1);
1020 		assert(copy == finish+4);
1021 		repeat(p, copy, 1, to-1);
1022 		break;
1023 	case REP(1, INF):		/* as x+ */
1024 		INSERT(OPLUS_, start);
1025 		ASTERN(O_PLUS, start);
1026 		break;
1027 	case REP(N, N):			/* as xx{m-1,n-1} */
1028 		copy = dupl(p, start, finish);
1029 		repeat(p, copy, from-1, to-1);
1030 		break;
1031 	case REP(N, INF):		/* as xx{n-1,INF} */
1032 		copy = dupl(p, start, finish);
1033 		repeat(p, copy, from-1, to);
1034 		break;
1035 	default:			/* "can't happen" */
1036 		SETERROR(REG_ASSERT);	/* just in case */
1037 		break;
1038 	}
1039 }
1040 
1041 /*
1042  - seterr - set an error condition
1043  */
1044 static int			/* useless but makes type checking happy */
seterr(struct parse * p,int e)1045 seterr(struct parse *p, int e)
1046 {
1047 	if (p->error == 0)	/* keep earliest error condition */
1048 		p->error = e;
1049 	p->next = nuls;		/* try to bring things to a halt */
1050 	p->end = nuls;
1051 	return(0);		/* make the return value well-defined */
1052 }
1053 
1054 /*
1055  - allocset - allocate a set of characters for []
1056  */
1057 static cset *
allocset(struct parse * p)1058 allocset(struct parse *p)
1059 {
1060 	int no = p->g->ncsets++;
1061 	size_t nc;
1062 	size_t nbytes;
1063 	cset *cs;
1064 	size_t css = (size_t)p->g->csetsize;
1065 	int i;
1066 
1067 	if (no >= p->ncsalloc) {	/* need another column of space */
1068 		void *ptr;
1069 
1070 		p->ncsalloc += CHAR_BIT;
1071 		nc = p->ncsalloc;
1072 		assert(nc % CHAR_BIT == 0);
1073 		nbytes = nc / CHAR_BIT * css;
1074 
1075 		ptr = (cset *)realloc((char *)p->g->sets, nc * sizeof(cset));
1076 		if (ptr == NULL)
1077 			goto nomem;
1078 		p->g->sets = ptr;
1079 
1080 		ptr = (uch *)realloc((char *)p->g->setbits, nbytes);
1081 		if (ptr == NULL)
1082 			goto nomem;
1083 		p->g->setbits = ptr;
1084 
1085 		for (i = 0; i < no; i++)
1086 			p->g->sets[i].ptr = p->g->setbits + css*(i/CHAR_BIT);
1087 
1088 		(void) memset((char *)p->g->setbits + (nbytes - css), 0, css);
1089 	}
1090 	/* XXX should not happen */
1091 	if (p->g->sets == NULL || p->g->setbits == NULL)
1092 		goto nomem;
1093 
1094 	cs = &p->g->sets[no];
1095 	cs->ptr = p->g->setbits + css*((no)/CHAR_BIT);
1096 	cs->mask = 1 << ((no) % CHAR_BIT);
1097 	cs->hash = 0;
1098 	cs->smultis = 0;
1099 	cs->multis = NULL;
1100 
1101 	return(cs);
1102 nomem:
1103 	free(p->g->sets);
1104 	p->g->sets = NULL;
1105 	free(p->g->setbits);
1106 	p->g->setbits = NULL;
1107 
1108 	SETERROR(REG_ESPACE);
1109 	/* caller's responsibility not to do set ops */
1110 	return(NULL);
1111 }
1112 
1113 /*
1114  - freeset - free a now-unused set
1115  */
1116 static void
freeset(struct parse * p,cset * cs)1117 freeset(struct parse *p, cset *cs)
1118 {
1119 	size_t i;
1120 	cset *top = &p->g->sets[p->g->ncsets];
1121 	size_t css = (size_t)p->g->csetsize;
1122 
1123 	for (i = 0; i < css; i++)
1124 		CHsub(cs, i);
1125 	if (cs == top-1)	/* recover only the easy case */
1126 		p->g->ncsets--;
1127 }
1128 
1129 /*
1130  - freezeset - final processing on a set of characters
1131  *
1132  * The main task here is merging identical sets.  This is usually a waste
1133  * of time (although the hash code minimizes the overhead), but can win
1134  * big if REG_ICASE is being used.  REG_ICASE, by the way, is why the hash
1135  * is done using addition rather than xor -- all ASCII [aA] sets xor to
1136  * the same value!
1137  */
1138 static int			/* set number */
freezeset(struct parse * p,cset * cs)1139 freezeset(struct parse *p, cset *cs)
1140 {
1141 	uch h = cs->hash;
1142 	size_t i;
1143 	cset *top = &p->g->sets[p->g->ncsets];
1144 	cset *cs2;
1145 	size_t css = (size_t)p->g->csetsize;
1146 
1147 	/* look for an earlier one which is the same */
1148 	for (cs2 = &p->g->sets[0]; cs2 < top; cs2++)
1149 		if (cs2->hash == h && cs2 != cs) {
1150 			/* maybe */
1151 			for (i = 0; i < css; i++)
1152 				if (!!CHIN(cs2, i) != !!CHIN(cs, i))
1153 					break;		/* no */
1154 			if (i == css)
1155 				break;			/* yes */
1156 		}
1157 
1158 	if (cs2 < top) {	/* found one */
1159 		freeset(p, cs);
1160 		cs = cs2;
1161 	}
1162 
1163 	return((int)(cs - p->g->sets));
1164 }
1165 
1166 /*
1167  - firstch - return first character in a set (which must have at least one)
1168  */
1169 static int			/* character; there is no "none" value */
firstch(struct parse * p,cset * cs)1170 firstch(struct parse *p, cset *cs)
1171 {
1172 	size_t i;
1173 	size_t css = (size_t)p->g->csetsize;
1174 
1175 	for (i = 0; i < css; i++)
1176 		if (CHIN(cs, i))
1177 			return((char)i);
1178 	assert(never);
1179 	return(0);		/* arbitrary */
1180 }
1181 
1182 /*
1183  - nch - number of characters in a set
1184  */
1185 static int
nch(struct parse * p,cset * cs)1186 nch(struct parse *p, cset *cs)
1187 {
1188 	size_t i;
1189 	size_t css = (size_t)p->g->csetsize;
1190 	int n = 0;
1191 
1192 	for (i = 0; i < css; i++)
1193 		if (CHIN(cs, i))
1194 			n++;
1195 	return(n);
1196 }
1197 
1198 /*
1199  - mcadd - add a collating element to a cset
1200  */
1201 static void
mcadd(struct parse * p,cset * cs,const char * cp)1202 mcadd( struct parse *p, cset *cs, const char *cp)
1203 {
1204 	size_t oldend = cs->smultis;
1205 	void *np;
1206 
1207 	cs->smultis += strlen(cp) + 1;
1208 	np = realloc(cs->multis, cs->smultis);
1209 	if (np == NULL) {
1210 		if (cs->multis)
1211 			free(cs->multis);
1212 		cs->multis = NULL;
1213 		SETERROR(REG_ESPACE);
1214 		return;
1215 	}
1216 	cs->multis = np;
1217 
1218 	llvm_strlcpy(cs->multis + oldend - 1, cp, cs->smultis - oldend + 1);
1219 }
1220 
1221 /*
1222  - mcinvert - invert the list of collating elements in a cset
1223  *
1224  * This would have to know the set of possibilities.  Implementation
1225  * is deferred.
1226  */
1227 /* ARGSUSED */
1228 static void
mcinvert(struct parse * p,cset * cs)1229 mcinvert(struct parse *p, cset *cs)
1230 {
1231 	assert(cs->multis == NULL);	/* xxx */
1232 }
1233 
1234 /*
1235  - mccase - add case counterparts of the list of collating elements in a cset
1236  *
1237  * This would have to know the set of possibilities.  Implementation
1238  * is deferred.
1239  */
1240 /* ARGSUSED */
1241 static void
mccase(struct parse * p,cset * cs)1242 mccase(struct parse *p, cset *cs)
1243 {
1244 	assert(cs->multis == NULL);	/* xxx */
1245 }
1246 
1247 /*
1248  - isinsets - is this character in any sets?
1249  */
1250 static int			/* predicate */
isinsets(struct re_guts * g,int c)1251 isinsets(struct re_guts *g, int c)
1252 {
1253 	uch *col;
1254 	int i;
1255 	int ncols = (g->ncsets+(CHAR_BIT-1)) / CHAR_BIT;
1256 	unsigned uc = (uch)c;
1257 
1258 	for (i = 0, col = g->setbits; i < ncols; i++, col += g->csetsize)
1259 		if (col[uc] != 0)
1260 			return(1);
1261 	return(0);
1262 }
1263 
1264 /*
1265  - samesets - are these two characters in exactly the same sets?
1266  */
1267 static int			/* predicate */
samesets(struct re_guts * g,int c1,int c2)1268 samesets(struct re_guts *g, int c1, int c2)
1269 {
1270 	uch *col;
1271 	int i;
1272 	int ncols = (g->ncsets+(CHAR_BIT-1)) / CHAR_BIT;
1273 	unsigned uc1 = (uch)c1;
1274 	unsigned uc2 = (uch)c2;
1275 
1276 	for (i = 0, col = g->setbits; i < ncols; i++, col += g->csetsize)
1277 		if (col[uc1] != col[uc2])
1278 			return(0);
1279 	return(1);
1280 }
1281 
1282 /*
1283  - categorize - sort out character categories
1284  */
1285 static void
categorize(struct parse * p,struct re_guts * g)1286 categorize(struct parse *p, struct re_guts *g)
1287 {
1288 	cat_t *cats = g->categories;
1289 	int c;
1290 	int c2;
1291 	cat_t cat;
1292 
1293 	/* avoid making error situations worse */
1294 	if (p->error != 0)
1295 		return;
1296 
1297 	for (c = CHAR_MIN; c <= CHAR_MAX; c++)
1298 		if (cats[c] == 0 && isinsets(g, c)) {
1299 			cat = g->ncategories++;
1300 			cats[c] = cat;
1301 			for (c2 = c+1; c2 <= CHAR_MAX; c2++)
1302 				if (cats[c2] == 0 && samesets(g, c, c2))
1303 					cats[c2] = cat;
1304 		}
1305 }
1306 
1307 /*
1308  - dupl - emit a duplicate of a bunch of sops
1309  */
1310 static sopno			/* start of duplicate */
dupl(struct parse * p,sopno start,sopno finish)1311 dupl(struct parse *p,
1312     sopno start,		/* from here */
1313     sopno finish)		/* to this less one */
1314 {
1315 	sopno ret = HERE();
1316 	sopno len = finish - start;
1317 
1318 	assert(finish >= start);
1319 	if (len == 0)
1320 		return(ret);
1321 	enlarge(p, p->ssize + len);	/* this many unexpected additions */
1322 	assert(p->ssize >= p->slen + len);
1323 	(void) memmove((char *)(p->strip + p->slen),
1324 		(char *)(p->strip + start), (size_t)len*sizeof(sop));
1325 	p->slen += len;
1326 	return(ret);
1327 }
1328 
1329 /*
1330  - doemit - emit a strip operator
1331  *
1332  * It might seem better to implement this as a macro with a function as
1333  * hard-case backup, but it's just too big and messy unless there are
1334  * some changes to the data structures.  Maybe later.
1335  */
1336 static void
doemit(struct parse * p,sop op,size_t opnd)1337 doemit(struct parse *p, sop op, size_t opnd)
1338 {
1339 	/* avoid making error situations worse */
1340 	if (p->error != 0)
1341 		return;
1342 
1343 	/* deal with oversize operands ("can't happen", more or less) */
1344 	assert(opnd < 1<<OPSHIFT);
1345 
1346 	/* deal with undersized strip */
1347 	if (p->slen >= p->ssize)
1348 		enlarge(p, (p->ssize+1) / 2 * 3);	/* +50% */
1349 	assert(p->slen < p->ssize);
1350 
1351 	/* finally, it's all reduced to the easy case */
1352 	p->strip[p->slen++] = SOP(op, opnd);
1353 }
1354 
1355 /*
1356  - doinsert - insert a sop into the strip
1357  */
1358 static void
doinsert(struct parse * p,sop op,size_t opnd,sopno pos)1359 doinsert(struct parse *p, sop op, size_t opnd, sopno pos)
1360 {
1361 	sopno sn;
1362 	sop s;
1363 	int i;
1364 
1365 	/* avoid making error situations worse */
1366 	if (p->error != 0)
1367 		return;
1368 
1369 	sn = HERE();
1370 	EMIT(op, opnd);		/* do checks, ensure space */
1371 	assert(HERE() == sn+1);
1372 	s = p->strip[sn];
1373 
1374 	/* adjust paren pointers */
1375 	assert(pos > 0);
1376 	for (i = 1; i < NPAREN; i++) {
1377 		if (p->pbegin[i] >= pos) {
1378 			p->pbegin[i]++;
1379 		}
1380 		if (p->pend[i] >= pos) {
1381 			p->pend[i]++;
1382 		}
1383 	}
1384 
1385 	memmove((char *)&p->strip[pos+1], (char *)&p->strip[pos],
1386 						(HERE()-pos-1)*sizeof(sop));
1387 	p->strip[pos] = s;
1388 }
1389 
1390 /*
1391  - dofwd - complete a forward reference
1392  */
1393 static void
dofwd(struct parse * p,sopno pos,sop value)1394 dofwd(struct parse *p, sopno pos, sop value)
1395 {
1396 	/* avoid making error situations worse */
1397 	if (p->error != 0)
1398 		return;
1399 
1400 	assert(value < 1<<OPSHIFT);
1401 	p->strip[pos] = OP(p->strip[pos]) | value;
1402 }
1403 
1404 /*
1405  - enlarge - enlarge the strip
1406  */
1407 static void
enlarge(struct parse * p,sopno size)1408 enlarge(struct parse *p, sopno size)
1409 {
1410 	sop *sp;
1411 
1412 	if (p->ssize >= size)
1413 		return;
1414 
1415 	sp = (sop *)realloc(p->strip, size*sizeof(sop));
1416 	if (sp == NULL) {
1417 		SETERROR(REG_ESPACE);
1418 		return;
1419 	}
1420 	p->strip = sp;
1421 	p->ssize = size;
1422 }
1423 
1424 /*
1425  - stripsnug - compact the strip
1426  */
1427 static void
stripsnug(struct parse * p,struct re_guts * g)1428 stripsnug(struct parse *p, struct re_guts *g)
1429 {
1430 	g->nstates = p->slen;
1431 	g->strip = (sop *)realloc((char *)p->strip, p->slen * sizeof(sop));
1432 	if (g->strip == NULL) {
1433 		SETERROR(REG_ESPACE);
1434 		g->strip = p->strip;
1435 	}
1436 }
1437 
1438 /*
1439  - findmust - fill in must and mlen with longest mandatory literal string
1440  *
1441  * This algorithm could do fancy things like analyzing the operands of |
1442  * for common subsequences.  Someday.  This code is simple and finds most
1443  * of the interesting cases.
1444  *
1445  * Note that must and mlen got initialized during setup.
1446  */
1447 static void
findmust(struct parse * p,struct re_guts * g)1448 findmust(struct parse *p, struct re_guts *g)
1449 {
1450 	sop *scan;
1451 	sop *start = 0; /* start initialized in the default case, after that */
1452 	sop *newstart = 0; /* newstart was initialized in the OCHAR case */
1453 	sopno newlen;
1454 	sop s;
1455 	char *cp;
1456 	sopno i;
1457 
1458 	/* avoid making error situations worse */
1459 	if (p->error != 0)
1460 		return;
1461 
1462 	/* find the longest OCHAR sequence in strip */
1463 	newlen = 0;
1464 	scan = g->strip + 1;
1465 	do {
1466 		s = *scan++;
1467 		switch (OP(s)) {
1468 		case OCHAR:		/* sequence member */
1469 			if (newlen == 0)		/* new sequence */
1470 				newstart = scan - 1;
1471 			newlen++;
1472 			break;
1473 		case OPLUS_:		/* things that don't break one */
1474 		case OLPAREN:
1475 		case ORPAREN:
1476 			break;
1477 		case OQUEST_:		/* things that must be skipped */
1478 		case OCH_:
1479 			scan--;
1480 			do {
1481 				scan += OPND(s);
1482 				s = *scan;
1483 				/* assert() interferes w debug printouts */
1484 				if (OP(s) != O_QUEST && OP(s) != O_CH &&
1485 							OP(s) != OOR2) {
1486 					g->iflags |= REGEX_BAD;
1487 					return;
1488 				}
1489 			} while (OP(s) != O_QUEST && OP(s) != O_CH);
1490 			/* fallthrough */
1491 		default:		/* things that break a sequence */
1492 			if (newlen > g->mlen) {		/* ends one */
1493 				start = newstart;
1494 				g->mlen = newlen;
1495 			}
1496 			newlen = 0;
1497 			break;
1498 		}
1499 	} while (OP(s) != OEND);
1500 
1501 	if (g->mlen == 0)		/* there isn't one */
1502 		return;
1503 
1504 	/* turn it into a character string */
1505 	g->must = malloc((size_t)g->mlen + 1);
1506 	if (g->must == NULL) {		/* argh; just forget it */
1507 		g->mlen = 0;
1508 		return;
1509 	}
1510 	cp = g->must;
1511 	scan = start;
1512 	for (i = g->mlen; i > 0; i--) {
1513 		while (OP(s = *scan++) != OCHAR)
1514 			continue;
1515 		assert(cp < g->must + g->mlen);
1516 		*cp++ = (char)OPND(s);
1517 	}
1518 	assert(cp == g->must + g->mlen);
1519 	*cp++ = '\0';		/* just on general principles */
1520 }
1521 
1522 /*
1523  - pluscount - count + nesting
1524  */
1525 static sopno			/* nesting depth */
pluscount(struct parse * p,struct re_guts * g)1526 pluscount(struct parse *p, struct re_guts *g)
1527 {
1528 	sop *scan;
1529 	sop s;
1530 	sopno plusnest = 0;
1531 	sopno maxnest = 0;
1532 
1533 	if (p->error != 0)
1534 		return(0);	/* there may not be an OEND */
1535 
1536 	scan = g->strip + 1;
1537 	do {
1538 		s = *scan++;
1539 		switch (OP(s)) {
1540 		case OPLUS_:
1541 			plusnest++;
1542 			break;
1543 		case O_PLUS:
1544 			if (plusnest > maxnest)
1545 				maxnest = plusnest;
1546 			plusnest--;
1547 			break;
1548 		}
1549 	} while (OP(s) != OEND);
1550 	if (plusnest != 0)
1551 		g->iflags |= REGEX_BAD;
1552 	return(maxnest);
1553 }
1554