regcomp.c revision 1.19 1 1.19 jdolecek /* $NetBSD: regcomp.c,v 1.19 2004/09/18 11:47:37 jdolecek Exp $ */
2 1.6 cgd
3 1.5 cgd /*-
4 1.5 cgd * Copyright (c) 1992, 1993, 1994
5 1.5 cgd * The Regents of the University of California. All rights reserved.
6 1.5 cgd *
7 1.5 cgd * This code is derived from software contributed to Berkeley by
8 1.5 cgd * Henry Spencer.
9 1.5 cgd *
10 1.5 cgd * Redistribution and use in source and binary forms, with or without
11 1.5 cgd * modification, are permitted provided that the following conditions
12 1.5 cgd * are met:
13 1.5 cgd * 1. Redistributions of source code must retain the above copyright
14 1.5 cgd * notice, this list of conditions and the following disclaimer.
15 1.5 cgd * 2. Redistributions in binary form must reproduce the above copyright
16 1.5 cgd * notice, this list of conditions and the following disclaimer in the
17 1.5 cgd * documentation and/or other materials provided with the distribution.
18 1.18 agc * 3. Neither the name of the University nor the names of its contributors
19 1.18 agc * may be used to endorse or promote products derived from this software
20 1.18 agc * without specific prior written permission.
21 1.18 agc *
22 1.18 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
23 1.18 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 1.18 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 1.18 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
26 1.18 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
27 1.18 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
28 1.18 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
29 1.18 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
30 1.18 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
31 1.18 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
32 1.18 agc * SUCH DAMAGE.
33 1.18 agc *
34 1.18 agc * @(#)regcomp.c 8.5 (Berkeley) 3/20/94
35 1.18 agc */
36 1.18 agc
37 1.18 agc /*-
38 1.18 agc * Copyright (c) 1992, 1993, 1994 Henry Spencer.
39 1.18 agc *
40 1.18 agc * This code is derived from software contributed to Berkeley by
41 1.18 agc * Henry Spencer.
42 1.18 agc *
43 1.18 agc * Redistribution and use in source and binary forms, with or without
44 1.18 agc * modification, are permitted provided that the following conditions
45 1.18 agc * are met:
46 1.18 agc * 1. Redistributions of source code must retain the above copyright
47 1.18 agc * notice, this list of conditions and the following disclaimer.
48 1.18 agc * 2. Redistributions in binary form must reproduce the above copyright
49 1.18 agc * notice, this list of conditions and the following disclaimer in the
50 1.18 agc * documentation and/or other materials provided with the distribution.
51 1.5 cgd * 3. All advertising materials mentioning features or use of this software
52 1.5 cgd * must display the following acknowledgement:
53 1.5 cgd * This product includes software developed by the University of
54 1.5 cgd * California, Berkeley and its contributors.
55 1.5 cgd * 4. Neither the name of the University nor the names of its contributors
56 1.5 cgd * may be used to endorse or promote products derived from this software
57 1.5 cgd * without specific prior written permission.
58 1.5 cgd *
59 1.5 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
60 1.5 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
61 1.5 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
62 1.5 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
63 1.5 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
64 1.5 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
65 1.5 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
66 1.5 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
67 1.5 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
68 1.5 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
69 1.5 cgd * SUCH DAMAGE.
70 1.5 cgd *
71 1.5 cgd * @(#)regcomp.c 8.5 (Berkeley) 3/20/94
72 1.5 cgd */
73 1.5 cgd
74 1.7 christos #include <sys/cdefs.h>
75 1.5 cgd #if defined(LIBC_SCCS) && !defined(lint)
76 1.6 cgd #if 0
77 1.5 cgd static char sccsid[] = "@(#)regcomp.c 8.5 (Berkeley) 3/20/94";
78 1.6 cgd #else
79 1.19 jdolecek __RCSID("$NetBSD: regcomp.c,v 1.19 2004/09/18 11:47:37 jdolecek Exp $");
80 1.6 cgd #endif
81 1.5 cgd #endif /* LIBC_SCCS and not lint */
82 1.5 cgd
83 1.8 jtc #include "namespace.h"
84 1.1 jtc #include <sys/types.h>
85 1.14 lukem
86 1.14 lukem #include <assert.h>
87 1.1 jtc #include <ctype.h>
88 1.1 jtc #include <limits.h>
89 1.14 lukem #include <regex.h>
90 1.14 lukem #include <stdio.h>
91 1.1 jtc #include <stdlib.h>
92 1.14 lukem #include <string.h>
93 1.8 jtc
94 1.8 jtc #ifdef __weak_alias
95 1.16 mycroft __weak_alias(regcomp,_regcomp)
96 1.8 jtc #endif
97 1.1 jtc
98 1.1 jtc #include "utils.h"
99 1.1 jtc #include "regex2.h"
100 1.1 jtc
101 1.1 jtc #include "cclass.h"
102 1.1 jtc #include "cname.h"
103 1.1 jtc
104 1.1 jtc /*
105 1.1 jtc * parse structure, passed up and down to avoid global variables and
106 1.1 jtc * other clumsinesses
107 1.1 jtc */
108 1.1 jtc struct parse {
109 1.1 jtc char *next; /* next character in RE */
110 1.1 jtc char *end; /* end of string (-> NUL normally) */
111 1.1 jtc int error; /* has an error been seen? */
112 1.1 jtc sop *strip; /* malloced strip */
113 1.1 jtc sopno ssize; /* malloced strip size (allocated) */
114 1.1 jtc sopno slen; /* malloced strip length (used) */
115 1.1 jtc int ncsalloc; /* number of csets allocated */
116 1.1 jtc struct re_guts *g;
117 1.1 jtc # define NPAREN 10 /* we need to remember () 1-9 for back refs */
118 1.1 jtc sopno pbegin[NPAREN]; /* -> ( ([0] unused) */
119 1.1 jtc sopno pend[NPAREN]; /* -> ) ([0] unused) */
120 1.1 jtc };
121 1.1 jtc
122 1.5 cgd /* ========= begin header generated by ./mkh ========= */
123 1.5 cgd #ifdef __cplusplus
124 1.5 cgd extern "C" {
125 1.5 cgd #endif
126 1.5 cgd
127 1.5 cgd /* === regcomp.c === */
128 1.5 cgd static void p_ere __P((struct parse *p, int stop));
129 1.5 cgd static void p_ere_exp __P((struct parse *p));
130 1.5 cgd static void p_str __P((struct parse *p));
131 1.5 cgd static void p_bre __P((struct parse *p, int end1, int end2));
132 1.5 cgd static int p_simp_re __P((struct parse *p, int starordinary));
133 1.5 cgd static int p_count __P((struct parse *p));
134 1.5 cgd static void p_bracket __P((struct parse *p));
135 1.5 cgd static void p_b_term __P((struct parse *p, cset *cs));
136 1.5 cgd static void p_b_cclass __P((struct parse *p, cset *cs));
137 1.5 cgd static void p_b_eclass __P((struct parse *p, cset *cs));
138 1.5 cgd static char p_b_symbol __P((struct parse *p));
139 1.5 cgd static char p_b_coll_elem __P((struct parse *p, int endc));
140 1.19 jdolecek static int othercase __P((int ch));
141 1.5 cgd static void bothcases __P((struct parse *p, int ch));
142 1.5 cgd static void ordinary __P((struct parse *p, int ch));
143 1.5 cgd static void nonnewline __P((struct parse *p));
144 1.5 cgd static void repeat __P((struct parse *p, sopno start, int from, int to));
145 1.5 cgd static int seterr __P((struct parse *p, int e));
146 1.5 cgd static cset *allocset __P((struct parse *p));
147 1.5 cgd static void freeset __P((struct parse *p, cset *cs));
148 1.5 cgd static int freezeset __P((struct parse *p, cset *cs));
149 1.5 cgd static int firstch __P((struct parse *p, cset *cs));
150 1.5 cgd static int nch __P((struct parse *p, cset *cs));
151 1.10 mycroft static void mcadd __P((struct parse *p, cset *cs, const char *cp));
152 1.7 christos #if 0
153 1.5 cgd static void mcsub __P((cset *cs, char *cp));
154 1.5 cgd static int mcin __P((cset *cs, char *cp));
155 1.5 cgd static char *mcfind __P((cset *cs, char *cp));
156 1.7 christos #endif
157 1.5 cgd static void mcinvert __P((struct parse *p, cset *cs));
158 1.5 cgd static void mccase __P((struct parse *p, cset *cs));
159 1.5 cgd static int isinsets __P((struct re_guts *g, int c));
160 1.5 cgd static int samesets __P((struct re_guts *g, int c1, int c2));
161 1.5 cgd static void categorize __P((struct parse *p, struct re_guts *g));
162 1.5 cgd static sopno dupl __P((struct parse *p, sopno start, sopno finish));
163 1.12 drochner static void doemit __P((struct parse *p, sop op, sopno opnd));
164 1.12 drochner static void doinsert __P((struct parse *p, sop op, sopno opnd, sopno pos));
165 1.12 drochner static void dofwd __P((struct parse *p, sopno pos, sopno value));
166 1.5 cgd static void enlarge __P((struct parse *p, sopno size));
167 1.5 cgd static void stripsnug __P((struct parse *p, struct re_guts *g));
168 1.5 cgd static void findmust __P((struct parse *p, struct re_guts *g));
169 1.5 cgd static sopno pluscount __P((struct parse *p, struct re_guts *g));
170 1.5 cgd
171 1.5 cgd #ifdef __cplusplus
172 1.5 cgd }
173 1.5 cgd #endif
174 1.5 cgd /* ========= end header generated by ./mkh ========= */
175 1.1 jtc
176 1.1 jtc static char nuls[10]; /* place to point scanner in event of error */
177 1.1 jtc
178 1.1 jtc /*
179 1.1 jtc * macros for use with parse structure
180 1.1 jtc * BEWARE: these know that the parse structure is named `p' !!!
181 1.1 jtc */
182 1.1 jtc #define PEEK() (*p->next)
183 1.1 jtc #define PEEK2() (*(p->next+1))
184 1.1 jtc #define MORE() (p->next < p->end)
185 1.1 jtc #define MORE2() (p->next+1 < p->end)
186 1.1 jtc #define SEE(c) (MORE() && PEEK() == (c))
187 1.1 jtc #define SEETWO(a, b) (MORE() && MORE2() && PEEK() == (a) && PEEK2() == (b))
188 1.1 jtc #define EAT(c) ((SEE(c)) ? (NEXT(), 1) : 0)
189 1.1 jtc #define EATTWO(a, b) ((SEETWO(a, b)) ? (NEXT2(), 1) : 0)
190 1.1 jtc #define NEXT() (p->next++)
191 1.1 jtc #define NEXT2() (p->next += 2)
192 1.1 jtc #define NEXTn(n) (p->next += (n))
193 1.1 jtc #define GETNEXT() (*p->next++)
194 1.1 jtc #define SETERROR(e) seterr(p, (e))
195 1.7 christos #define REQUIRE(co, e) (void) ((co) || SETERROR(e))
196 1.1 jtc #define MUSTSEE(c, e) (REQUIRE(MORE() && PEEK() == (c), e))
197 1.7 christos #define MUSTEAT(c, e) (void) (REQUIRE(MORE() && GETNEXT() == (c), e))
198 1.1 jtc #define MUSTNOTSEE(c, e) (REQUIRE(!MORE() || PEEK() != (c), e))
199 1.12 drochner #define EMIT(op, sopnd) doemit(p, (sop)(op), sopnd)
200 1.12 drochner #define INSERT(op, pos) doinsert(p, (sop)(op), HERE()-(pos)+1, pos)
201 1.12 drochner #define AHEAD(pos) dofwd(p, pos, HERE()-(pos))
202 1.1 jtc #define ASTERN(sop, pos) EMIT(sop, HERE()-pos)
203 1.1 jtc #define HERE() (p->slen)
204 1.1 jtc #define THERE() (p->slen - 1)
205 1.4 jtc #define THERETHERE() (p->slen - 2)
206 1.1 jtc #define DROP(n) (p->slen -= (n))
207 1.1 jtc
208 1.1 jtc #ifndef NDEBUG
209 1.1 jtc static int never = 0; /* for use in asserts; shuts lint up */
210 1.3 jtc #else
211 1.3 jtc #define never 0 /* some <assert.h>s have bugs too */
212 1.1 jtc #endif
213 1.1 jtc
214 1.1 jtc /*
215 1.1 jtc - regcomp - interface for parser and compilation
216 1.2 jtc = extern int regcomp(regex_t *, const char *, int);
217 1.1 jtc = #define REG_BASIC 0000
218 1.1 jtc = #define REG_EXTENDED 0001
219 1.1 jtc = #define REG_ICASE 0002
220 1.1 jtc = #define REG_NOSUB 0004
221 1.1 jtc = #define REG_NEWLINE 0010
222 1.1 jtc = #define REG_NOSPEC 0020
223 1.1 jtc = #define REG_PEND 0040
224 1.1 jtc = #define REG_DUMP 0200
225 1.1 jtc */
226 1.1 jtc int /* 0 success, otherwise REG_something */
227 1.1 jtc regcomp(preg, pattern, cflags)
228 1.1 jtc regex_t *preg;
229 1.1 jtc const char *pattern;
230 1.1 jtc int cflags;
231 1.1 jtc {
232 1.1 jtc struct parse pa;
233 1.9 perry struct re_guts *g;
234 1.9 perry struct parse *p = &pa;
235 1.9 perry int i;
236 1.9 perry size_t len;
237 1.3 jtc #ifdef REDEBUG
238 1.3 jtc # define GOODFLAGS(f) (f)
239 1.3 jtc #else
240 1.3 jtc # define GOODFLAGS(f) ((f)&~REG_DUMP)
241 1.3 jtc #endif
242 1.1 jtc
243 1.14 lukem _DIAGASSERT(preg != NULL);
244 1.14 lukem _DIAGASSERT(pattern != NULL);
245 1.14 lukem
246 1.3 jtc cflags = GOODFLAGS(cflags);
247 1.1 jtc if ((cflags®_EXTENDED) && (cflags®_NOSPEC))
248 1.1 jtc return(REG_INVARG);
249 1.1 jtc
250 1.1 jtc if (cflags®_PEND) {
251 1.1 jtc if (preg->re_endp < pattern)
252 1.1 jtc return(REG_INVARG);
253 1.1 jtc len = preg->re_endp - pattern;
254 1.1 jtc } else
255 1.11 christos len = strlen(pattern);
256 1.1 jtc
257 1.1 jtc /* do the mallocs early so failure handling is easy */
258 1.1 jtc g = (struct re_guts *)malloc(sizeof(struct re_guts) +
259 1.1 jtc (NC-1)*sizeof(cat_t));
260 1.1 jtc if (g == NULL)
261 1.1 jtc return(REG_ESPACE);
262 1.1 jtc p->ssize = len/(size_t)2*(size_t)3 + (size_t)1; /* ugh */
263 1.1 jtc p->strip = (sop *)malloc(p->ssize * sizeof(sop));
264 1.1 jtc p->slen = 0;
265 1.1 jtc if (p->strip == NULL) {
266 1.11 christos free(g);
267 1.1 jtc return(REG_ESPACE);
268 1.1 jtc }
269 1.1 jtc
270 1.1 jtc /* set things up */
271 1.1 jtc p->g = g;
272 1.11 christos /* LINTED convenience; we do not modify it */
273 1.11 christos p->next = (char *)pattern;
274 1.1 jtc p->end = p->next + len;
275 1.1 jtc p->error = 0;
276 1.1 jtc p->ncsalloc = 0;
277 1.1 jtc for (i = 0; i < NPAREN; i++) {
278 1.1 jtc p->pbegin[i] = 0;
279 1.1 jtc p->pend[i] = 0;
280 1.1 jtc }
281 1.1 jtc g->csetsize = NC;
282 1.1 jtc g->sets = NULL;
283 1.1 jtc g->setbits = NULL;
284 1.1 jtc g->ncsets = 0;
285 1.1 jtc g->cflags = cflags;
286 1.1 jtc g->iflags = 0;
287 1.1 jtc g->nbol = 0;
288 1.1 jtc g->neol = 0;
289 1.1 jtc g->must = NULL;
290 1.1 jtc g->mlen = 0;
291 1.1 jtc g->nsub = 0;
292 1.1 jtc g->ncategories = 1; /* category 0 is "everything else" */
293 1.1 jtc g->categories = &g->catspace[-(CHAR_MIN)];
294 1.1 jtc (void) memset((char *)g->catspace, 0, NC*sizeof(cat_t));
295 1.1 jtc g->backrefs = 0;
296 1.1 jtc
297 1.1 jtc /* do it */
298 1.1 jtc EMIT(OEND, 0);
299 1.1 jtc g->firststate = THERE();
300 1.1 jtc if (cflags®_EXTENDED)
301 1.1 jtc p_ere(p, OUT);
302 1.1 jtc else if (cflags®_NOSPEC)
303 1.1 jtc p_str(p);
304 1.1 jtc else
305 1.1 jtc p_bre(p, OUT, OUT);
306 1.1 jtc EMIT(OEND, 0);
307 1.1 jtc g->laststate = THERE();
308 1.1 jtc
309 1.1 jtc /* tidy up loose ends and fill things in */
310 1.1 jtc categorize(p, g);
311 1.1 jtc stripsnug(p, g);
312 1.1 jtc findmust(p, g);
313 1.1 jtc g->nplus = pluscount(p, g);
314 1.1 jtc g->magic = MAGIC2;
315 1.1 jtc preg->re_nsub = g->nsub;
316 1.1 jtc preg->re_g = g;
317 1.1 jtc preg->re_magic = MAGIC1;
318 1.1 jtc #ifndef REDEBUG
319 1.1 jtc /* not debugging, so can't rely on the assert() in regexec() */
320 1.1 jtc if (g->iflags&BAD)
321 1.1 jtc SETERROR(REG_ASSERT);
322 1.1 jtc #endif
323 1.1 jtc
324 1.1 jtc /* win or lose, we're done */
325 1.1 jtc if (p->error != 0) /* lose */
326 1.1 jtc regfree(preg);
327 1.1 jtc return(p->error);
328 1.1 jtc }
329 1.1 jtc
330 1.1 jtc /*
331 1.1 jtc - p_ere - ERE parser top level, concatenation and alternation
332 1.9 perry == static void p_ere(struct parse *p, int stop);
333 1.1 jtc */
334 1.1 jtc static void
335 1.1 jtc p_ere(p, stop)
336 1.9 perry struct parse *p;
337 1.1 jtc int stop; /* character this ERE should end at */
338 1.1 jtc {
339 1.9 perry char c;
340 1.9 perry sopno prevback = 0; /* pacify gcc */
341 1.9 perry sopno prevfwd = 0; /* pacify gcc */
342 1.9 perry sopno conc;
343 1.9 perry int first = 1; /* is this the first alternative? */
344 1.1 jtc
345 1.14 lukem _DIAGASSERT(p != NULL);
346 1.14 lukem
347 1.1 jtc for (;;) {
348 1.1 jtc /* do a bunch of concatenated expressions */
349 1.1 jtc conc = HERE();
350 1.1 jtc while (MORE() && (c = PEEK()) != '|' && c != stop)
351 1.1 jtc p_ere_exp(p);
352 1.1 jtc REQUIRE(HERE() != conc, REG_EMPTY); /* require nonempty */
353 1.1 jtc
354 1.1 jtc if (!EAT('|'))
355 1.1 jtc break; /* NOTE BREAK OUT */
356 1.1 jtc
357 1.1 jtc if (first) {
358 1.1 jtc INSERT(OCH_, conc); /* offset is wrong */
359 1.1 jtc prevfwd = conc;
360 1.1 jtc prevback = conc;
361 1.1 jtc first = 0;
362 1.1 jtc }
363 1.1 jtc ASTERN(OOR1, prevback);
364 1.1 jtc prevback = THERE();
365 1.1 jtc AHEAD(prevfwd); /* fix previous offset */
366 1.1 jtc prevfwd = HERE();
367 1.1 jtc EMIT(OOR2, 0); /* offset is very wrong */
368 1.1 jtc }
369 1.1 jtc
370 1.1 jtc if (!first) { /* tail-end fixups */
371 1.1 jtc AHEAD(prevfwd);
372 1.1 jtc ASTERN(O_CH, prevback);
373 1.1 jtc }
374 1.1 jtc
375 1.1 jtc assert(!MORE() || SEE(stop));
376 1.1 jtc }
377 1.1 jtc
378 1.1 jtc /*
379 1.1 jtc - p_ere_exp - parse one subERE, an atom possibly followed by a repetition op
380 1.9 perry == static void p_ere_exp(struct parse *p);
381 1.1 jtc */
382 1.1 jtc static void
383 1.1 jtc p_ere_exp(p)
384 1.9 perry struct parse *p;
385 1.1 jtc {
386 1.9 perry char c;
387 1.9 perry sopno pos;
388 1.9 perry int count;
389 1.9 perry int count2;
390 1.9 perry sopno subno;
391 1.1 jtc int wascaret = 0;
392 1.1 jtc
393 1.14 lukem _DIAGASSERT(p != NULL);
394 1.14 lukem
395 1.1 jtc assert(MORE()); /* caller should have ensured this */
396 1.1 jtc c = GETNEXT();
397 1.1 jtc
398 1.1 jtc pos = HERE();
399 1.1 jtc switch (c) {
400 1.1 jtc case '(':
401 1.1 jtc REQUIRE(MORE(), REG_EPAREN);
402 1.1 jtc p->g->nsub++;
403 1.1 jtc subno = p->g->nsub;
404 1.1 jtc if (subno < NPAREN)
405 1.1 jtc p->pbegin[subno] = HERE();
406 1.1 jtc EMIT(OLPAREN, subno);
407 1.1 jtc if (!SEE(')'))
408 1.1 jtc p_ere(p, ')');
409 1.1 jtc if (subno < NPAREN) {
410 1.1 jtc p->pend[subno] = HERE();
411 1.1 jtc assert(p->pend[subno] != 0);
412 1.1 jtc }
413 1.1 jtc EMIT(ORPAREN, subno);
414 1.1 jtc MUSTEAT(')', REG_EPAREN);
415 1.1 jtc break;
416 1.1 jtc #ifndef POSIX_MISTAKE
417 1.1 jtc case ')': /* happens only if no current unmatched ( */
418 1.1 jtc /*
419 1.1 jtc * You may ask, why the ifndef? Because I didn't notice
420 1.1 jtc * this until slightly too late for 1003.2, and none of the
421 1.1 jtc * other 1003.2 regular-expression reviewers noticed it at
422 1.1 jtc * all. So an unmatched ) is legal POSIX, at least until
423 1.1 jtc * we can get it fixed.
424 1.1 jtc */
425 1.1 jtc SETERROR(REG_EPAREN);
426 1.1 jtc break;
427 1.1 jtc #endif
428 1.1 jtc case '^':
429 1.1 jtc EMIT(OBOL, 0);
430 1.1 jtc p->g->iflags |= USEBOL;
431 1.1 jtc p->g->nbol++;
432 1.1 jtc wascaret = 1;
433 1.1 jtc break;
434 1.1 jtc case '$':
435 1.1 jtc EMIT(OEOL, 0);
436 1.1 jtc p->g->iflags |= USEEOL;
437 1.1 jtc p->g->neol++;
438 1.1 jtc break;
439 1.1 jtc case '|':
440 1.1 jtc SETERROR(REG_EMPTY);
441 1.1 jtc break;
442 1.1 jtc case '*':
443 1.1 jtc case '+':
444 1.1 jtc case '?':
445 1.1 jtc SETERROR(REG_BADRPT);
446 1.1 jtc break;
447 1.1 jtc case '.':
448 1.1 jtc if (p->g->cflags®_NEWLINE)
449 1.1 jtc nonnewline(p);
450 1.1 jtc else
451 1.1 jtc EMIT(OANY, 0);
452 1.1 jtc break;
453 1.1 jtc case '[':
454 1.1 jtc p_bracket(p);
455 1.1 jtc break;
456 1.1 jtc case '\\':
457 1.1 jtc REQUIRE(MORE(), REG_EESCAPE);
458 1.1 jtc c = GETNEXT();
459 1.1 jtc ordinary(p, c);
460 1.1 jtc break;
461 1.1 jtc case '{': /* okay as ordinary except if digit follows */
462 1.17 itohy REQUIRE(!MORE() || !isdigit((unsigned char)PEEK()), REG_BADRPT);
463 1.1 jtc /* FALLTHROUGH */
464 1.1 jtc default:
465 1.1 jtc ordinary(p, c);
466 1.1 jtc break;
467 1.1 jtc }
468 1.1 jtc
469 1.1 jtc if (!MORE())
470 1.1 jtc return;
471 1.1 jtc c = PEEK();
472 1.1 jtc /* we call { a repetition if followed by a digit */
473 1.1 jtc if (!( c == '*' || c == '+' || c == '?' ||
474 1.17 itohy (c == '{' && MORE2() && isdigit((unsigned char)PEEK2())) ))
475 1.1 jtc return; /* no repetition, we're done */
476 1.1 jtc NEXT();
477 1.1 jtc
478 1.1 jtc REQUIRE(!wascaret, REG_BADRPT);
479 1.1 jtc switch (c) {
480 1.1 jtc case '*': /* implemented as +? */
481 1.4 jtc /* this case does not require the (y|) trick, noKLUDGE */
482 1.1 jtc INSERT(OPLUS_, pos);
483 1.1 jtc ASTERN(O_PLUS, pos);
484 1.1 jtc INSERT(OQUEST_, pos);
485 1.1 jtc ASTERN(O_QUEST, pos);
486 1.1 jtc break;
487 1.1 jtc case '+':
488 1.1 jtc INSERT(OPLUS_, pos);
489 1.1 jtc ASTERN(O_PLUS, pos);
490 1.1 jtc break;
491 1.1 jtc case '?':
492 1.4 jtc /* KLUDGE: emit y? as (y|) until subtle bug gets fixed */
493 1.4 jtc INSERT(OCH_, pos); /* offset slightly wrong */
494 1.4 jtc ASTERN(OOR1, pos); /* this one's right */
495 1.4 jtc AHEAD(pos); /* fix the OCH_ */
496 1.4 jtc EMIT(OOR2, 0); /* offset very wrong... */
497 1.4 jtc AHEAD(THERE()); /* ...so fix it */
498 1.4 jtc ASTERN(O_CH, THERETHERE());
499 1.1 jtc break;
500 1.1 jtc case '{':
501 1.1 jtc count = p_count(p);
502 1.1 jtc if (EAT(',')) {
503 1.17 itohy if (isdigit((unsigned char)PEEK())) {
504 1.1 jtc count2 = p_count(p);
505 1.1 jtc REQUIRE(count <= count2, REG_BADBR);
506 1.1 jtc } else /* single number with comma */
507 1.1 jtc count2 = INFINITY;
508 1.1 jtc } else /* just a single number */
509 1.1 jtc count2 = count;
510 1.1 jtc repeat(p, pos, count, count2);
511 1.1 jtc if (!EAT('}')) { /* error heuristics */
512 1.1 jtc while (MORE() && PEEK() != '}')
513 1.1 jtc NEXT();
514 1.1 jtc REQUIRE(MORE(), REG_EBRACE);
515 1.1 jtc SETERROR(REG_BADBR);
516 1.1 jtc }
517 1.1 jtc break;
518 1.1 jtc }
519 1.1 jtc
520 1.1 jtc if (!MORE())
521 1.1 jtc return;
522 1.1 jtc c = PEEK();
523 1.1 jtc if (!( c == '*' || c == '+' || c == '?' ||
524 1.17 itohy (c == '{' && MORE2() && isdigit((unsigned char)PEEK2())) ) )
525 1.1 jtc return;
526 1.1 jtc SETERROR(REG_BADRPT);
527 1.1 jtc }
528 1.1 jtc
529 1.1 jtc /*
530 1.1 jtc - p_str - string (no metacharacters) "parser"
531 1.9 perry == static void p_str(struct parse *p);
532 1.1 jtc */
533 1.1 jtc static void
534 1.1 jtc p_str(p)
535 1.9 perry struct parse *p;
536 1.1 jtc {
537 1.14 lukem
538 1.14 lukem _DIAGASSERT(p != NULL);
539 1.14 lukem
540 1.1 jtc REQUIRE(MORE(), REG_EMPTY);
541 1.1 jtc while (MORE())
542 1.1 jtc ordinary(p, GETNEXT());
543 1.1 jtc }
544 1.1 jtc
545 1.1 jtc /*
546 1.1 jtc - p_bre - BRE parser top level, anchoring and concatenation
547 1.9 perry == static void p_bre(struct parse *p, int end1, \
548 1.9 perry == int end2);
549 1.1 jtc * Giving end1 as OUT essentially eliminates the end1/end2 check.
550 1.1 jtc *
551 1.1 jtc * This implementation is a bit of a kludge, in that a trailing $ is first
552 1.1 jtc * taken as an ordinary character and then revised to be an anchor. The
553 1.1 jtc * only undesirable side effect is that '$' gets included as a character
554 1.1 jtc * category in such cases. This is fairly harmless; not worth fixing.
555 1.1 jtc * The amount of lookahead needed to avoid this kludge is excessive.
556 1.1 jtc */
557 1.1 jtc static void
558 1.1 jtc p_bre(p, end1, end2)
559 1.9 perry struct parse *p;
560 1.9 perry int end1; /* first terminating character */
561 1.9 perry int end2; /* second terminating character */
562 1.9 perry {
563 1.14 lukem sopno start;
564 1.9 perry int first = 1; /* first subexpression? */
565 1.9 perry int wasdollar = 0;
566 1.1 jtc
567 1.14 lukem _DIAGASSERT(p != NULL);
568 1.14 lukem
569 1.14 lukem start = HERE();
570 1.14 lukem
571 1.1 jtc if (EAT('^')) {
572 1.1 jtc EMIT(OBOL, 0);
573 1.1 jtc p->g->iflags |= USEBOL;
574 1.1 jtc p->g->nbol++;
575 1.1 jtc }
576 1.1 jtc while (MORE() && !SEETWO(end1, end2)) {
577 1.1 jtc wasdollar = p_simp_re(p, first);
578 1.1 jtc first = 0;
579 1.1 jtc }
580 1.1 jtc if (wasdollar) { /* oops, that was a trailing anchor */
581 1.1 jtc DROP(1);
582 1.1 jtc EMIT(OEOL, 0);
583 1.1 jtc p->g->iflags |= USEEOL;
584 1.1 jtc p->g->neol++;
585 1.1 jtc }
586 1.1 jtc
587 1.1 jtc REQUIRE(HERE() != start, REG_EMPTY); /* require nonempty */
588 1.1 jtc }
589 1.1 jtc
590 1.1 jtc /*
591 1.1 jtc - p_simp_re - parse a simple RE, an atom possibly followed by a repetition
592 1.9 perry == static int p_simp_re(struct parse *p, int starordinary);
593 1.1 jtc */
594 1.1 jtc static int /* was the simple RE an unbackslashed $? */
595 1.1 jtc p_simp_re(p, starordinary)
596 1.9 perry struct parse *p;
597 1.1 jtc int starordinary; /* is a leading * an ordinary character? */
598 1.1 jtc {
599 1.9 perry int c;
600 1.9 perry int count;
601 1.9 perry int count2;
602 1.9 perry sopno pos;
603 1.9 perry int i;
604 1.9 perry sopno subno;
605 1.1 jtc # define BACKSL (1<<CHAR_BIT)
606 1.1 jtc
607 1.14 lukem _DIAGASSERT(p != NULL);
608 1.14 lukem
609 1.1 jtc pos = HERE(); /* repetion op, if any, covers from here */
610 1.1 jtc
611 1.1 jtc assert(MORE()); /* caller should have ensured this */
612 1.1 jtc c = GETNEXT();
613 1.1 jtc if (c == '\\') {
614 1.1 jtc REQUIRE(MORE(), REG_EESCAPE);
615 1.1 jtc c = BACKSL | (unsigned char)GETNEXT();
616 1.1 jtc }
617 1.1 jtc switch (c) {
618 1.1 jtc case '.':
619 1.1 jtc if (p->g->cflags®_NEWLINE)
620 1.1 jtc nonnewline(p);
621 1.1 jtc else
622 1.1 jtc EMIT(OANY, 0);
623 1.1 jtc break;
624 1.1 jtc case '[':
625 1.1 jtc p_bracket(p);
626 1.1 jtc break;
627 1.1 jtc case BACKSL|'{':
628 1.1 jtc SETERROR(REG_BADRPT);
629 1.1 jtc break;
630 1.1 jtc case BACKSL|'(':
631 1.1 jtc p->g->nsub++;
632 1.1 jtc subno = p->g->nsub;
633 1.1 jtc if (subno < NPAREN)
634 1.1 jtc p->pbegin[subno] = HERE();
635 1.1 jtc EMIT(OLPAREN, subno);
636 1.1 jtc /* the MORE here is an error heuristic */
637 1.1 jtc if (MORE() && !SEETWO('\\', ')'))
638 1.1 jtc p_bre(p, '\\', ')');
639 1.1 jtc if (subno < NPAREN) {
640 1.1 jtc p->pend[subno] = HERE();
641 1.1 jtc assert(p->pend[subno] != 0);
642 1.1 jtc }
643 1.1 jtc EMIT(ORPAREN, subno);
644 1.1 jtc REQUIRE(EATTWO('\\', ')'), REG_EPAREN);
645 1.1 jtc break;
646 1.1 jtc case BACKSL|')': /* should not get here -- must be user */
647 1.1 jtc case BACKSL|'}':
648 1.1 jtc SETERROR(REG_EPAREN);
649 1.1 jtc break;
650 1.1 jtc case BACKSL|'1':
651 1.1 jtc case BACKSL|'2':
652 1.1 jtc case BACKSL|'3':
653 1.1 jtc case BACKSL|'4':
654 1.1 jtc case BACKSL|'5':
655 1.1 jtc case BACKSL|'6':
656 1.1 jtc case BACKSL|'7':
657 1.1 jtc case BACKSL|'8':
658 1.1 jtc case BACKSL|'9':
659 1.1 jtc i = (c&~BACKSL) - '0';
660 1.1 jtc assert(i < NPAREN);
661 1.1 jtc if (p->pend[i] != 0) {
662 1.1 jtc assert(i <= p->g->nsub);
663 1.1 jtc EMIT(OBACK_, i);
664 1.1 jtc assert(p->pbegin[i] != 0);
665 1.1 jtc assert(OP(p->strip[p->pbegin[i]]) == OLPAREN);
666 1.1 jtc assert(OP(p->strip[p->pend[i]]) == ORPAREN);
667 1.1 jtc (void) dupl(p, p->pbegin[i]+1, p->pend[i]);
668 1.1 jtc EMIT(O_BACK, i);
669 1.1 jtc } else
670 1.1 jtc SETERROR(REG_ESUBREG);
671 1.1 jtc p->g->backrefs = 1;
672 1.1 jtc break;
673 1.1 jtc case '*':
674 1.1 jtc REQUIRE(starordinary, REG_BADRPT);
675 1.1 jtc /* FALLTHROUGH */
676 1.1 jtc default:
677 1.1 jtc ordinary(p, c &~ BACKSL);
678 1.1 jtc break;
679 1.1 jtc }
680 1.1 jtc
681 1.1 jtc if (EAT('*')) { /* implemented as +? */
682 1.4 jtc /* this case does not require the (y|) trick, noKLUDGE */
683 1.1 jtc INSERT(OPLUS_, pos);
684 1.1 jtc ASTERN(O_PLUS, pos);
685 1.1 jtc INSERT(OQUEST_, pos);
686 1.1 jtc ASTERN(O_QUEST, pos);
687 1.1 jtc } else if (EATTWO('\\', '{')) {
688 1.1 jtc count = p_count(p);
689 1.1 jtc if (EAT(',')) {
690 1.17 itohy if (MORE() && isdigit((unsigned char)PEEK())) {
691 1.1 jtc count2 = p_count(p);
692 1.1 jtc REQUIRE(count <= count2, REG_BADBR);
693 1.1 jtc } else /* single number with comma */
694 1.1 jtc count2 = INFINITY;
695 1.1 jtc } else /* just a single number */
696 1.1 jtc count2 = count;
697 1.1 jtc repeat(p, pos, count, count2);
698 1.1 jtc if (!EATTWO('\\', '}')) { /* error heuristics */
699 1.1 jtc while (MORE() && !SEETWO('\\', '}'))
700 1.1 jtc NEXT();
701 1.1 jtc REQUIRE(MORE(), REG_EBRACE);
702 1.1 jtc SETERROR(REG_BADBR);
703 1.1 jtc }
704 1.1 jtc } else if (c == (unsigned char)'$') /* $ (but not \$) ends it */
705 1.1 jtc return(1);
706 1.1 jtc
707 1.1 jtc return(0);
708 1.1 jtc }
709 1.1 jtc
710 1.1 jtc /*
711 1.1 jtc - p_count - parse a repetition count
712 1.9 perry == static int p_count(struct parse *p);
713 1.1 jtc */
714 1.1 jtc static int /* the value */
715 1.1 jtc p_count(p)
716 1.9 perry struct parse *p;
717 1.1 jtc {
718 1.9 perry int count = 0;
719 1.9 perry int ndigits = 0;
720 1.1 jtc
721 1.14 lukem _DIAGASSERT(p != NULL);
722 1.14 lukem
723 1.17 itohy while (MORE() && isdigit((unsigned char)PEEK()) && count <= DUPMAX) {
724 1.1 jtc count = count*10 + (GETNEXT() - '0');
725 1.1 jtc ndigits++;
726 1.1 jtc }
727 1.1 jtc
728 1.1 jtc REQUIRE(ndigits > 0 && count <= DUPMAX, REG_BADBR);
729 1.1 jtc return(count);
730 1.1 jtc }
731 1.1 jtc
732 1.1 jtc /*
733 1.1 jtc - p_bracket - parse a bracketed character list
734 1.9 perry == static void p_bracket(struct parse *p);
735 1.1 jtc *
736 1.1 jtc * Note a significant property of this code: if the allocset() did SETERROR,
737 1.1 jtc * no set operations are done.
738 1.1 jtc */
739 1.1 jtc static void
740 1.1 jtc p_bracket(p)
741 1.9 perry struct parse *p;
742 1.1 jtc {
743 1.14 lukem cset *cs;
744 1.9 perry int invert = 0;
745 1.1 jtc
746 1.14 lukem _DIAGASSERT(p != NULL);
747 1.14 lukem
748 1.14 lukem cs = allocset(p);
749 1.14 lukem
750 1.1 jtc /* Dept of Truly Sickening Special-Case Kludges */
751 1.13 drochner if (p->next + 5 < p->end && strncmp(p->next, "[:<:]]",
752 1.13 drochner (size_t)6) == 0) {
753 1.1 jtc EMIT(OBOW, 0);
754 1.1 jtc NEXTn(6);
755 1.1 jtc return;
756 1.1 jtc }
757 1.13 drochner if (p->next + 5 < p->end && strncmp(p->next, "[:>:]]",
758 1.13 drochner (size_t)6) == 0) {
759 1.1 jtc EMIT(OEOW, 0);
760 1.1 jtc NEXTn(6);
761 1.1 jtc return;
762 1.1 jtc }
763 1.1 jtc
764 1.1 jtc if (EAT('^'))
765 1.1 jtc invert++; /* make note to invert set at end */
766 1.1 jtc if (EAT(']'))
767 1.1 jtc CHadd(cs, ']');
768 1.1 jtc else if (EAT('-'))
769 1.1 jtc CHadd(cs, '-');
770 1.1 jtc while (MORE() && PEEK() != ']' && !SEETWO('-', ']'))
771 1.1 jtc p_b_term(p, cs);
772 1.1 jtc if (EAT('-'))
773 1.1 jtc CHadd(cs, '-');
774 1.1 jtc MUSTEAT(']', REG_EBRACK);
775 1.1 jtc
776 1.1 jtc if (p->error != 0) /* don't mess things up further */
777 1.1 jtc return;
778 1.1 jtc
779 1.1 jtc if (p->g->cflags®_ICASE) {
780 1.9 perry int i;
781 1.9 perry int ci;
782 1.1 jtc
783 1.1 jtc for (i = p->g->csetsize - 1; i >= 0; i--)
784 1.1 jtc if (CHIN(cs, i) && isalpha(i)) {
785 1.1 jtc ci = othercase(i);
786 1.1 jtc if (ci != i)
787 1.1 jtc CHadd(cs, ci);
788 1.1 jtc }
789 1.1 jtc if (cs->multis != NULL)
790 1.2 jtc mccase(p, cs);
791 1.1 jtc }
792 1.1 jtc if (invert) {
793 1.9 perry int i;
794 1.1 jtc
795 1.1 jtc for (i = p->g->csetsize - 1; i >= 0; i--)
796 1.1 jtc if (CHIN(cs, i))
797 1.1 jtc CHsub(cs, i);
798 1.1 jtc else
799 1.1 jtc CHadd(cs, i);
800 1.1 jtc if (p->g->cflags®_NEWLINE)
801 1.1 jtc CHsub(cs, '\n');
802 1.1 jtc if (cs->multis != NULL)
803 1.2 jtc mcinvert(p, cs);
804 1.1 jtc }
805 1.1 jtc
806 1.1 jtc assert(cs->multis == NULL); /* xxx */
807 1.1 jtc
808 1.1 jtc if (nch(p, cs) == 1) { /* optimize singleton sets */
809 1.1 jtc ordinary(p, firstch(p, cs));
810 1.1 jtc freeset(p, cs);
811 1.1 jtc } else
812 1.1 jtc EMIT(OANYOF, freezeset(p, cs));
813 1.1 jtc }
814 1.1 jtc
815 1.1 jtc /*
816 1.1 jtc - p_b_term - parse one term of a bracketed character list
817 1.9 perry == static void p_b_term(struct parse *p, cset *cs);
818 1.1 jtc */
819 1.1 jtc static void
820 1.1 jtc p_b_term(p, cs)
821 1.9 perry struct parse *p;
822 1.9 perry cset *cs;
823 1.1 jtc {
824 1.9 perry char c;
825 1.9 perry char start, finish;
826 1.9 perry int i;
827 1.1 jtc
828 1.14 lukem _DIAGASSERT(p != NULL);
829 1.14 lukem _DIAGASSERT(cs != NULL);
830 1.14 lukem
831 1.1 jtc /* classify what we've got */
832 1.1 jtc switch ((MORE()) ? PEEK() : '\0') {
833 1.1 jtc case '[':
834 1.1 jtc c = (MORE2()) ? PEEK2() : '\0';
835 1.1 jtc break;
836 1.11 christos
837 1.1 jtc case '-':
838 1.1 jtc SETERROR(REG_ERANGE);
839 1.1 jtc return; /* NOTE RETURN */
840 1.11 christos
841 1.1 jtc default:
842 1.1 jtc c = '\0';
843 1.1 jtc break;
844 1.1 jtc }
845 1.1 jtc
846 1.1 jtc switch (c) {
847 1.1 jtc case ':': /* character class */
848 1.1 jtc NEXT2();
849 1.1 jtc REQUIRE(MORE(), REG_EBRACK);
850 1.1 jtc c = PEEK();
851 1.1 jtc REQUIRE(c != '-' && c != ']', REG_ECTYPE);
852 1.1 jtc p_b_cclass(p, cs);
853 1.1 jtc REQUIRE(MORE(), REG_EBRACK);
854 1.1 jtc REQUIRE(EATTWO(':', ']'), REG_ECTYPE);
855 1.1 jtc break;
856 1.1 jtc case '=': /* equivalence class */
857 1.1 jtc NEXT2();
858 1.1 jtc REQUIRE(MORE(), REG_EBRACK);
859 1.1 jtc c = PEEK();
860 1.1 jtc REQUIRE(c != '-' && c != ']', REG_ECOLLATE);
861 1.1 jtc p_b_eclass(p, cs);
862 1.1 jtc REQUIRE(MORE(), REG_EBRACK);
863 1.1 jtc REQUIRE(EATTWO('=', ']'), REG_ECOLLATE);
864 1.1 jtc break;
865 1.1 jtc default: /* symbol, ordinary character, or range */
866 1.1 jtc /* xxx revision needed for multichar stuff */
867 1.1 jtc start = p_b_symbol(p);
868 1.1 jtc if (SEE('-') && MORE2() && PEEK2() != ']') {
869 1.1 jtc /* range */
870 1.1 jtc NEXT();
871 1.1 jtc if (EAT('-'))
872 1.1 jtc finish = '-';
873 1.1 jtc else
874 1.1 jtc finish = p_b_symbol(p);
875 1.1 jtc } else
876 1.1 jtc finish = start;
877 1.1 jtc /* xxx what about signed chars here... */
878 1.1 jtc REQUIRE(start <= finish, REG_ERANGE);
879 1.1 jtc for (i = start; i <= finish; i++)
880 1.1 jtc CHadd(cs, i);
881 1.1 jtc break;
882 1.1 jtc }
883 1.1 jtc }
884 1.1 jtc
885 1.1 jtc /*
886 1.1 jtc - p_b_cclass - parse a character-class name and deal with it
887 1.9 perry == static void p_b_cclass(struct parse *p, cset *cs);
888 1.1 jtc */
889 1.1 jtc static void
890 1.1 jtc p_b_cclass(p, cs)
891 1.9 perry struct parse *p;
892 1.9 perry cset *cs;
893 1.1 jtc {
894 1.14 lukem char *sp;
895 1.10 mycroft const struct cclass *cp;
896 1.9 perry size_t len;
897 1.10 mycroft const char *u;
898 1.9 perry char c;
899 1.1 jtc
900 1.14 lukem _DIAGASSERT(p != NULL);
901 1.14 lukem _DIAGASSERT(cs != NULL);
902 1.14 lukem
903 1.14 lukem sp = p->next;
904 1.14 lukem
905 1.17 itohy while (MORE() && isalpha((unsigned char)PEEK()))
906 1.1 jtc NEXT();
907 1.1 jtc len = p->next - sp;
908 1.1 jtc for (cp = cclasses; cp->name != NULL; cp++)
909 1.1 jtc if (strncmp(cp->name, sp, len) == 0 && cp->name[len] == '\0')
910 1.1 jtc break;
911 1.1 jtc if (cp->name == NULL) {
912 1.1 jtc /* oops, didn't find it */
913 1.1 jtc SETERROR(REG_ECTYPE);
914 1.1 jtc return;
915 1.1 jtc }
916 1.1 jtc
917 1.1 jtc u = cp->chars;
918 1.1 jtc while ((c = *u++) != '\0')
919 1.1 jtc CHadd(cs, c);
920 1.1 jtc for (u = cp->multis; *u != '\0'; u += strlen(u) + 1)
921 1.2 jtc MCadd(p, cs, u);
922 1.1 jtc }
923 1.1 jtc
924 1.1 jtc /*
925 1.1 jtc - p_b_eclass - parse an equivalence-class name and deal with it
926 1.9 perry == static void p_b_eclass(struct parse *p, cset *cs);
927 1.1 jtc *
928 1.1 jtc * This implementation is incomplete. xxx
929 1.1 jtc */
930 1.1 jtc static void
931 1.1 jtc p_b_eclass(p, cs)
932 1.9 perry struct parse *p;
933 1.9 perry cset *cs;
934 1.1 jtc {
935 1.9 perry char c;
936 1.1 jtc
937 1.14 lukem _DIAGASSERT(p != NULL);
938 1.14 lukem _DIAGASSERT(cs != NULL);
939 1.14 lukem
940 1.1 jtc c = p_b_coll_elem(p, '=');
941 1.1 jtc CHadd(cs, c);
942 1.1 jtc }
943 1.1 jtc
944 1.1 jtc /*
945 1.1 jtc - p_b_symbol - parse a character or [..]ed multicharacter collating symbol
946 1.9 perry == static char p_b_symbol(struct parse *p);
947 1.1 jtc */
948 1.1 jtc static char /* value of symbol */
949 1.1 jtc p_b_symbol(p)
950 1.9 perry struct parse *p;
951 1.1 jtc {
952 1.9 perry char value;
953 1.1 jtc
954 1.14 lukem _DIAGASSERT(p != NULL);
955 1.14 lukem
956 1.1 jtc REQUIRE(MORE(), REG_EBRACK);
957 1.1 jtc if (!EATTWO('[', '.'))
958 1.1 jtc return(GETNEXT());
959 1.1 jtc
960 1.1 jtc /* collating symbol */
961 1.1 jtc value = p_b_coll_elem(p, '.');
962 1.1 jtc REQUIRE(EATTWO('.', ']'), REG_ECOLLATE);
963 1.1 jtc return(value);
964 1.1 jtc }
965 1.1 jtc
966 1.1 jtc /*
967 1.1 jtc - p_b_coll_elem - parse a collating-element name and look it up
968 1.9 perry == static char p_b_coll_elem(struct parse *p, int endc);
969 1.1 jtc */
970 1.1 jtc static char /* value of collating element */
971 1.1 jtc p_b_coll_elem(p, endc)
972 1.9 perry struct parse *p;
973 1.1 jtc int endc; /* name ended by endc,']' */
974 1.1 jtc {
975 1.14 lukem char *sp;
976 1.10 mycroft const struct cname *cp;
977 1.11 christos size_t len;
978 1.1 jtc
979 1.14 lukem _DIAGASSERT(p != NULL);
980 1.14 lukem
981 1.14 lukem sp = p->next;
982 1.14 lukem
983 1.1 jtc while (MORE() && !SEETWO(endc, ']'))
984 1.1 jtc NEXT();
985 1.1 jtc if (!MORE()) {
986 1.1 jtc SETERROR(REG_EBRACK);
987 1.1 jtc return(0);
988 1.1 jtc }
989 1.1 jtc len = p->next - sp;
990 1.1 jtc for (cp = cnames; cp->name != NULL; cp++)
991 1.1 jtc if (strncmp(cp->name, sp, len) == 0 && cp->name[len] == '\0')
992 1.1 jtc return(cp->code); /* known name */
993 1.1 jtc if (len == 1)
994 1.1 jtc return(*sp); /* single character */
995 1.1 jtc SETERROR(REG_ECOLLATE); /* neither */
996 1.1 jtc return(0);
997 1.1 jtc }
998 1.1 jtc
999 1.1 jtc /*
1000 1.1 jtc - othercase - return the case counterpart of an alphabetic
1001 1.19 jdolecek == static int othercase(int ch);
1002 1.1 jtc */
1003 1.19 jdolecek static int /* if no counterpart, return ch */
1004 1.1 jtc othercase(ch)
1005 1.1 jtc int ch;
1006 1.1 jtc {
1007 1.1 jtc assert(isalpha(ch));
1008 1.1 jtc if (isupper(ch))
1009 1.1 jtc return(tolower(ch));
1010 1.1 jtc else if (islower(ch))
1011 1.1 jtc return(toupper(ch));
1012 1.1 jtc else /* peculiar, but could happen */
1013 1.1 jtc return(ch);
1014 1.1 jtc }
1015 1.1 jtc
1016 1.1 jtc /*
1017 1.1 jtc - bothcases - emit a dualcase version of a two-case character
1018 1.9 perry == static void bothcases(struct parse *p, int ch);
1019 1.1 jtc *
1020 1.1 jtc * Boy, is this implementation ever a kludge...
1021 1.1 jtc */
1022 1.1 jtc static void
1023 1.1 jtc bothcases(p, ch)
1024 1.9 perry struct parse *p;
1025 1.1 jtc int ch;
1026 1.1 jtc {
1027 1.14 lukem char *oldnext;
1028 1.14 lukem char *oldend;
1029 1.1 jtc char bracket[3];
1030 1.1 jtc
1031 1.14 lukem _DIAGASSERT(p != NULL);
1032 1.14 lukem
1033 1.14 lukem oldnext = p->next;
1034 1.14 lukem oldend = p->end;
1035 1.14 lukem
1036 1.1 jtc assert(othercase(ch) != ch); /* p_bracket() would recurse */
1037 1.1 jtc p->next = bracket;
1038 1.1 jtc p->end = bracket+2;
1039 1.1 jtc bracket[0] = ch;
1040 1.1 jtc bracket[1] = ']';
1041 1.1 jtc bracket[2] = '\0';
1042 1.1 jtc p_bracket(p);
1043 1.1 jtc assert(p->next == bracket+2);
1044 1.1 jtc p->next = oldnext;
1045 1.1 jtc p->end = oldend;
1046 1.1 jtc }
1047 1.1 jtc
1048 1.1 jtc /*
1049 1.1 jtc - ordinary - emit an ordinary character
1050 1.9 perry == static void ordinary(struct parse *p, int ch);
1051 1.1 jtc */
1052 1.1 jtc static void
1053 1.1 jtc ordinary(p, ch)
1054 1.9 perry struct parse *p;
1055 1.9 perry int ch;
1056 1.1 jtc {
1057 1.14 lukem cat_t *cap;
1058 1.1 jtc
1059 1.14 lukem _DIAGASSERT(p != NULL);
1060 1.14 lukem
1061 1.14 lukem cap = p->g->categories;
1062 1.17 itohy if ((p->g->cflags®_ICASE) && isalpha((unsigned char) ch)
1063 1.17 itohy && othercase((unsigned char) ch) != (unsigned char) ch)
1064 1.17 itohy bothcases(p, (unsigned char) ch);
1065 1.1 jtc else {
1066 1.1 jtc EMIT(OCHAR, (unsigned char)ch);
1067 1.1 jtc if (cap[ch] == 0)
1068 1.1 jtc cap[ch] = p->g->ncategories++;
1069 1.1 jtc }
1070 1.1 jtc }
1071 1.1 jtc
1072 1.1 jtc /*
1073 1.1 jtc - nonnewline - emit REG_NEWLINE version of OANY
1074 1.9 perry == static void nonnewline(struct parse *p);
1075 1.1 jtc *
1076 1.1 jtc * Boy, is this implementation ever a kludge...
1077 1.1 jtc */
1078 1.1 jtc static void
1079 1.1 jtc nonnewline(p)
1080 1.9 perry struct parse *p;
1081 1.1 jtc {
1082 1.14 lukem char *oldnext;
1083 1.14 lukem char *oldend;
1084 1.1 jtc char bracket[4];
1085 1.1 jtc
1086 1.14 lukem _DIAGASSERT(p != NULL);
1087 1.14 lukem
1088 1.14 lukem oldnext = p->next;
1089 1.14 lukem oldend = p->end;
1090 1.14 lukem
1091 1.1 jtc p->next = bracket;
1092 1.1 jtc p->end = bracket+3;
1093 1.1 jtc bracket[0] = '^';
1094 1.1 jtc bracket[1] = '\n';
1095 1.1 jtc bracket[2] = ']';
1096 1.1 jtc bracket[3] = '\0';
1097 1.1 jtc p_bracket(p);
1098 1.1 jtc assert(p->next == bracket+3);
1099 1.1 jtc p->next = oldnext;
1100 1.1 jtc p->end = oldend;
1101 1.1 jtc }
1102 1.1 jtc
1103 1.1 jtc /*
1104 1.1 jtc - repeat - generate code for a bounded repetition, recursively if needed
1105 1.9 perry == static void repeat(struct parse *p, sopno start, int from, int to);
1106 1.1 jtc */
1107 1.1 jtc static void
1108 1.1 jtc repeat(p, start, from, to)
1109 1.9 perry struct parse *p;
1110 1.1 jtc sopno start; /* operand from here to end of strip */
1111 1.1 jtc int from; /* repeated from this number */
1112 1.1 jtc int to; /* to this number of times (maybe INFINITY) */
1113 1.1 jtc {
1114 1.14 lukem sopno finish;
1115 1.1 jtc # define N 2
1116 1.1 jtc # define INF 3
1117 1.1 jtc # define REP(f, t) ((f)*8 + (t))
1118 1.1 jtc # define MAP(n) (((n) <= 1) ? (n) : ((n) == INFINITY) ? INF : N)
1119 1.9 perry sopno copy;
1120 1.1 jtc
1121 1.14 lukem _DIAGASSERT(p != NULL);
1122 1.14 lukem
1123 1.14 lukem finish = HERE();
1124 1.14 lukem
1125 1.1 jtc if (p->error != 0) /* head off possible runaway recursion */
1126 1.1 jtc return;
1127 1.1 jtc
1128 1.1 jtc assert(from <= to);
1129 1.1 jtc
1130 1.1 jtc switch (REP(MAP(from), MAP(to))) {
1131 1.1 jtc case REP(0, 0): /* must be user doing this */
1132 1.1 jtc DROP(finish-start); /* drop the operand */
1133 1.1 jtc break;
1134 1.1 jtc case REP(0, 1): /* as x{1,1}? */
1135 1.1 jtc case REP(0, N): /* as x{1,n}? */
1136 1.1 jtc case REP(0, INF): /* as x{1,}? */
1137 1.4 jtc /* KLUDGE: emit y? as (y|) until subtle bug gets fixed */
1138 1.4 jtc INSERT(OCH_, start); /* offset is wrong... */
1139 1.1 jtc repeat(p, start+1, 1, to);
1140 1.4 jtc ASTERN(OOR1, start);
1141 1.1 jtc AHEAD(start); /* ... fix it */
1142 1.4 jtc EMIT(OOR2, 0);
1143 1.4 jtc AHEAD(THERE());
1144 1.4 jtc ASTERN(O_CH, THERETHERE());
1145 1.1 jtc break;
1146 1.1 jtc case REP(1, 1): /* trivial case */
1147 1.1 jtc /* done */
1148 1.1 jtc break;
1149 1.1 jtc case REP(1, N): /* as x?x{1,n-1} */
1150 1.4 jtc /* KLUDGE: emit y? as (y|) until subtle bug gets fixed */
1151 1.4 jtc INSERT(OCH_, start);
1152 1.4 jtc ASTERN(OOR1, start);
1153 1.4 jtc AHEAD(start);
1154 1.4 jtc EMIT(OOR2, 0); /* offset very wrong... */
1155 1.4 jtc AHEAD(THERE()); /* ...so fix it */
1156 1.4 jtc ASTERN(O_CH, THERETHERE());
1157 1.1 jtc copy = dupl(p, start+1, finish+1);
1158 1.4 jtc assert(copy == finish+4);
1159 1.1 jtc repeat(p, copy, 1, to-1);
1160 1.1 jtc break;
1161 1.1 jtc case REP(1, INF): /* as x+ */
1162 1.1 jtc INSERT(OPLUS_, start);
1163 1.1 jtc ASTERN(O_PLUS, start);
1164 1.1 jtc break;
1165 1.1 jtc case REP(N, N): /* as xx{m-1,n-1} */
1166 1.1 jtc copy = dupl(p, start, finish);
1167 1.1 jtc repeat(p, copy, from-1, to-1);
1168 1.1 jtc break;
1169 1.1 jtc case REP(N, INF): /* as xx{n-1,INF} */
1170 1.1 jtc copy = dupl(p, start, finish);
1171 1.1 jtc repeat(p, copy, from-1, to);
1172 1.1 jtc break;
1173 1.1 jtc default: /* "can't happen" */
1174 1.1 jtc SETERROR(REG_ASSERT); /* just in case */
1175 1.1 jtc break;
1176 1.1 jtc }
1177 1.1 jtc }
1178 1.1 jtc
1179 1.1 jtc /*
1180 1.1 jtc - seterr - set an error condition
1181 1.9 perry == static int seterr(struct parse *p, int e);
1182 1.1 jtc */
1183 1.1 jtc static int /* useless but makes type checking happy */
1184 1.1 jtc seterr(p, e)
1185 1.9 perry struct parse *p;
1186 1.1 jtc int e;
1187 1.1 jtc {
1188 1.14 lukem
1189 1.14 lukem _DIAGASSERT(p != NULL);
1190 1.14 lukem
1191 1.1 jtc if (p->error == 0) /* keep earliest error condition */
1192 1.1 jtc p->error = e;
1193 1.1 jtc p->next = nuls; /* try to bring things to a halt */
1194 1.1 jtc p->end = nuls;
1195 1.1 jtc return(0); /* make the return value well-defined */
1196 1.1 jtc }
1197 1.1 jtc
1198 1.1 jtc /*
1199 1.1 jtc - allocset - allocate a set of characters for []
1200 1.9 perry == static cset *allocset(struct parse *p);
1201 1.1 jtc */
1202 1.1 jtc static cset *
1203 1.1 jtc allocset(p)
1204 1.9 perry struct parse *p;
1205 1.1 jtc {
1206 1.14 lukem int no;
1207 1.9 perry size_t nc;
1208 1.9 perry size_t nbytes;
1209 1.9 perry cset *cs;
1210 1.14 lukem size_t css;
1211 1.9 perry int i;
1212 1.1 jtc
1213 1.14 lukem _DIAGASSERT(p != NULL);
1214 1.14 lukem
1215 1.14 lukem no = p->g->ncsets++;
1216 1.14 lukem css = (size_t)p->g->csetsize;
1217 1.1 jtc if (no >= p->ncsalloc) { /* need another column of space */
1218 1.1 jtc p->ncsalloc += CHAR_BIT;
1219 1.1 jtc nc = p->ncsalloc;
1220 1.1 jtc assert(nc % CHAR_BIT == 0);
1221 1.1 jtc nbytes = nc / CHAR_BIT * css;
1222 1.1 jtc if (p->g->sets == NULL)
1223 1.11 christos p->g->sets = malloc(nc * sizeof(cset));
1224 1.1 jtc else
1225 1.11 christos p->g->sets = realloc(p->g->sets, nc * sizeof(cset));
1226 1.1 jtc if (p->g->setbits == NULL)
1227 1.11 christos p->g->setbits = malloc(nbytes);
1228 1.2 jtc else {
1229 1.11 christos p->g->setbits = realloc(p->g->setbits, nbytes);
1230 1.2 jtc /* xxx this isn't right if setbits is now NULL */
1231 1.2 jtc for (i = 0; i < no; i++)
1232 1.2 jtc p->g->sets[i].ptr = p->g->setbits + css*(i/CHAR_BIT);
1233 1.2 jtc }
1234 1.1 jtc if (p->g->sets != NULL && p->g->setbits != NULL)
1235 1.1 jtc (void) memset((char *)p->g->setbits + (nbytes - css),
1236 1.1 jtc 0, css);
1237 1.1 jtc else {
1238 1.1 jtc no = 0;
1239 1.1 jtc SETERROR(REG_ESPACE);
1240 1.1 jtc /* caller's responsibility not to do set ops */
1241 1.1 jtc }
1242 1.1 jtc }
1243 1.1 jtc
1244 1.1 jtc assert(p->g->sets != NULL); /* xxx */
1245 1.1 jtc cs = &p->g->sets[no];
1246 1.1 jtc cs->ptr = p->g->setbits + css*((no)/CHAR_BIT);
1247 1.1 jtc cs->mask = 1 << ((no) % CHAR_BIT);
1248 1.1 jtc cs->hash = 0;
1249 1.1 jtc cs->smultis = 0;
1250 1.1 jtc cs->multis = NULL;
1251 1.1 jtc
1252 1.1 jtc return(cs);
1253 1.1 jtc }
1254 1.1 jtc
1255 1.1 jtc /*
1256 1.1 jtc - freeset - free a now-unused set
1257 1.9 perry == static void freeset(struct parse *p, cset *cs);
1258 1.1 jtc */
1259 1.1 jtc static void
1260 1.1 jtc freeset(p, cs)
1261 1.9 perry struct parse *p;
1262 1.9 perry cset *cs;
1263 1.1 jtc {
1264 1.9 perry int i;
1265 1.14 lukem cset *top;
1266 1.14 lukem size_t css;
1267 1.14 lukem
1268 1.14 lukem _DIAGASSERT(p != NULL);
1269 1.14 lukem _DIAGASSERT(cs != NULL);
1270 1.14 lukem
1271 1.14 lukem top = &p->g->sets[p->g->ncsets];
1272 1.14 lukem css = (size_t)p->g->csetsize;
1273 1.1 jtc
1274 1.1 jtc for (i = 0; i < css; i++)
1275 1.1 jtc CHsub(cs, i);
1276 1.1 jtc if (cs == top-1) /* recover only the easy case */
1277 1.1 jtc p->g->ncsets--;
1278 1.1 jtc }
1279 1.1 jtc
1280 1.1 jtc /*
1281 1.1 jtc - freezeset - final processing on a set of characters
1282 1.9 perry == static int freezeset(struct parse *p, cset *cs);
1283 1.1 jtc *
1284 1.1 jtc * The main task here is merging identical sets. This is usually a waste
1285 1.1 jtc * of time (although the hash code minimizes the overhead), but can win
1286 1.1 jtc * big if REG_ICASE is being used. REG_ICASE, by the way, is why the hash
1287 1.1 jtc * is done using addition rather than xor -- all ASCII [aA] sets xor to
1288 1.1 jtc * the same value!
1289 1.1 jtc */
1290 1.1 jtc static int /* set number */
1291 1.1 jtc freezeset(p, cs)
1292 1.9 perry struct parse *p;
1293 1.9 perry cset *cs;
1294 1.1 jtc {
1295 1.14 lukem uch h;
1296 1.9 perry int i;
1297 1.14 lukem cset *top;
1298 1.9 perry cset *cs2;
1299 1.14 lukem size_t css;
1300 1.14 lukem
1301 1.14 lukem _DIAGASSERT(p != NULL);
1302 1.14 lukem _DIAGASSERT(cs != NULL);
1303 1.14 lukem
1304 1.14 lukem h = cs->hash;
1305 1.14 lukem top = &p->g->sets[p->g->ncsets];
1306 1.14 lukem css = (size_t)p->g->csetsize;
1307 1.1 jtc
1308 1.1 jtc /* look for an earlier one which is the same */
1309 1.1 jtc for (cs2 = &p->g->sets[0]; cs2 < top; cs2++)
1310 1.1 jtc if (cs2->hash == h && cs2 != cs) {
1311 1.1 jtc /* maybe */
1312 1.1 jtc for (i = 0; i < css; i++)
1313 1.1 jtc if (!!CHIN(cs2, i) != !!CHIN(cs, i))
1314 1.1 jtc break; /* no */
1315 1.1 jtc if (i == css)
1316 1.1 jtc break; /* yes */
1317 1.1 jtc }
1318 1.1 jtc
1319 1.1 jtc if (cs2 < top) { /* found one */
1320 1.1 jtc freeset(p, cs);
1321 1.1 jtc cs = cs2;
1322 1.1 jtc }
1323 1.1 jtc
1324 1.1 jtc return((int)(cs - p->g->sets));
1325 1.1 jtc }
1326 1.1 jtc
1327 1.1 jtc /*
1328 1.1 jtc - firstch - return first character in a set (which must have at least one)
1329 1.9 perry == static int firstch(struct parse *p, cset *cs);
1330 1.1 jtc */
1331 1.1 jtc static int /* character; there is no "none" value */
1332 1.1 jtc firstch(p, cs)
1333 1.9 perry struct parse *p;
1334 1.9 perry cset *cs;
1335 1.1 jtc {
1336 1.9 perry int i;
1337 1.14 lukem size_t css;
1338 1.14 lukem
1339 1.14 lukem _DIAGASSERT(p != NULL);
1340 1.14 lukem _DIAGASSERT(cs != NULL);
1341 1.14 lukem
1342 1.14 lukem css = (size_t)p->g->csetsize;
1343 1.1 jtc
1344 1.1 jtc for (i = 0; i < css; i++)
1345 1.1 jtc if (CHIN(cs, i))
1346 1.1 jtc return((char)i);
1347 1.1 jtc assert(never);
1348 1.1 jtc return(0); /* arbitrary */
1349 1.1 jtc }
1350 1.1 jtc
1351 1.1 jtc /*
1352 1.1 jtc - nch - number of characters in a set
1353 1.9 perry == static int nch(struct parse *p, cset *cs);
1354 1.1 jtc */
1355 1.1 jtc static int
1356 1.1 jtc nch(p, cs)
1357 1.9 perry struct parse *p;
1358 1.9 perry cset *cs;
1359 1.1 jtc {
1360 1.9 perry int i;
1361 1.14 lukem size_t css;
1362 1.9 perry int n = 0;
1363 1.1 jtc
1364 1.14 lukem _DIAGASSERT(p != NULL);
1365 1.14 lukem _DIAGASSERT(cs != NULL);
1366 1.14 lukem
1367 1.14 lukem css = (size_t)p->g->csetsize;
1368 1.14 lukem
1369 1.1 jtc for (i = 0; i < css; i++)
1370 1.1 jtc if (CHIN(cs, i))
1371 1.1 jtc n++;
1372 1.1 jtc return(n);
1373 1.1 jtc }
1374 1.1 jtc
1375 1.1 jtc /*
1376 1.1 jtc - mcadd - add a collating element to a cset
1377 1.9 perry == static void mcadd(struct parse *p, cset *cs, \
1378 1.9 perry == char *cp);
1379 1.1 jtc */
1380 1.1 jtc static void
1381 1.1 jtc mcadd(p, cs, cp)
1382 1.9 perry struct parse *p;
1383 1.9 perry cset *cs;
1384 1.10 mycroft const char *cp;
1385 1.1 jtc {
1386 1.14 lukem size_t oldend;
1387 1.14 lukem
1388 1.14 lukem _DIAGASSERT(p != NULL);
1389 1.14 lukem _DIAGASSERT(cs != NULL);
1390 1.14 lukem _DIAGASSERT(cp != NULL);
1391 1.14 lukem
1392 1.14 lukem oldend = cs->smultis;
1393 1.1 jtc
1394 1.1 jtc cs->smultis += strlen(cp) + 1;
1395 1.1 jtc if (cs->multis == NULL)
1396 1.1 jtc cs->multis = malloc(cs->smultis);
1397 1.1 jtc else
1398 1.1 jtc cs->multis = realloc(cs->multis, cs->smultis);
1399 1.1 jtc if (cs->multis == NULL) {
1400 1.1 jtc SETERROR(REG_ESPACE);
1401 1.1 jtc return;
1402 1.1 jtc }
1403 1.1 jtc
1404 1.1 jtc (void) strcpy(cs->multis + oldend - 1, cp);
1405 1.1 jtc cs->multis[cs->smultis - 1] = '\0';
1406 1.1 jtc }
1407 1.1 jtc
1408 1.7 christos #if 0
1409 1.1 jtc /*
1410 1.1 jtc - mcsub - subtract a collating element from a cset
1411 1.9 perry == static void mcsub(cset *cs, char *cp);
1412 1.1 jtc */
1413 1.1 jtc static void
1414 1.1 jtc mcsub(cs, cp)
1415 1.9 perry cset *cs;
1416 1.9 perry char *cp;
1417 1.1 jtc {
1418 1.14 lukem char *fp;
1419 1.14 lukem size_t len;
1420 1.14 lukem
1421 1.14 lukem _DIAGASSERT(cs != NULL);
1422 1.14 lukem _DIAGASSERT(cp != NULL);
1423 1.14 lukem
1424 1.14 lukem fp = mcfind(cs, cp);
1425 1.14 lukem len = strlen(fp);
1426 1.1 jtc
1427 1.1 jtc assert(fp != NULL);
1428 1.1 jtc (void) memmove(fp, fp + len + 1,
1429 1.1 jtc cs->smultis - (fp + len + 1 - cs->multis));
1430 1.1 jtc cs->smultis -= len;
1431 1.1 jtc
1432 1.1 jtc if (cs->smultis == 0) {
1433 1.1 jtc free(cs->multis);
1434 1.1 jtc cs->multis = NULL;
1435 1.1 jtc return;
1436 1.1 jtc }
1437 1.1 jtc
1438 1.1 jtc cs->multis = realloc(cs->multis, cs->smultis);
1439 1.1 jtc assert(cs->multis != NULL);
1440 1.1 jtc }
1441 1.1 jtc
1442 1.1 jtc /*
1443 1.1 jtc - mcin - is a collating element in a cset?
1444 1.9 perry == static int mcin(cset *cs, char *cp);
1445 1.1 jtc */
1446 1.1 jtc static int
1447 1.1 jtc mcin(cs, cp)
1448 1.9 perry cset *cs;
1449 1.9 perry char *cp;
1450 1.1 jtc {
1451 1.14 lukem
1452 1.14 lukem _DIAGASSERT(cs != NULL);
1453 1.14 lukem _DIAGASSERT(cp != NULL);
1454 1.14 lukem
1455 1.1 jtc return(mcfind(cs, cp) != NULL);
1456 1.1 jtc }
1457 1.1 jtc
1458 1.1 jtc /*
1459 1.1 jtc - mcfind - find a collating element in a cset
1460 1.9 perry == static char *mcfind(cset *cs, char *cp);
1461 1.1 jtc */
1462 1.1 jtc static char *
1463 1.1 jtc mcfind(cs, cp)
1464 1.9 perry cset *cs;
1465 1.9 perry char *cp;
1466 1.1 jtc {
1467 1.9 perry char *p;
1468 1.1 jtc
1469 1.14 lukem _DIAGASSERT(cs != NULL);
1470 1.14 lukem _DIAGASSERT(cp != NULL);
1471 1.14 lukem
1472 1.1 jtc if (cs->multis == NULL)
1473 1.1 jtc return(NULL);
1474 1.1 jtc for (p = cs->multis; *p != '\0'; p += strlen(p) + 1)
1475 1.1 jtc if (strcmp(cp, p) == 0)
1476 1.1 jtc return(p);
1477 1.1 jtc return(NULL);
1478 1.1 jtc }
1479 1.7 christos #endif
1480 1.1 jtc
1481 1.1 jtc /*
1482 1.1 jtc - mcinvert - invert the list of collating elements in a cset
1483 1.9 perry == static void mcinvert(struct parse *p, cset *cs);
1484 1.1 jtc *
1485 1.1 jtc * This would have to know the set of possibilities. Implementation
1486 1.1 jtc * is deferred.
1487 1.1 jtc */
1488 1.11 christos /* ARGSUSED */
1489 1.1 jtc static void
1490 1.2 jtc mcinvert(p, cs)
1491 1.9 perry struct parse *p;
1492 1.9 perry cset *cs;
1493 1.1 jtc {
1494 1.14 lukem
1495 1.14 lukem _DIAGASSERT(p != NULL);
1496 1.14 lukem _DIAGASSERT(cs != NULL);
1497 1.14 lukem
1498 1.1 jtc assert(cs->multis == NULL); /* xxx */
1499 1.1 jtc }
1500 1.1 jtc
1501 1.1 jtc /*
1502 1.1 jtc - mccase - add case counterparts of the list of collating elements in a cset
1503 1.9 perry == static void mccase(struct parse *p, cset *cs);
1504 1.1 jtc *
1505 1.1 jtc * This would have to know the set of possibilities. Implementation
1506 1.1 jtc * is deferred.
1507 1.1 jtc */
1508 1.11 christos /* ARGSUSED */
1509 1.1 jtc static void
1510 1.2 jtc mccase(p, cs)
1511 1.9 perry struct parse *p;
1512 1.9 perry cset *cs;
1513 1.1 jtc {
1514 1.14 lukem
1515 1.14 lukem _DIAGASSERT(p != NULL);
1516 1.14 lukem _DIAGASSERT(cs != NULL);
1517 1.14 lukem
1518 1.1 jtc assert(cs->multis == NULL); /* xxx */
1519 1.1 jtc }
1520 1.1 jtc
1521 1.1 jtc /*
1522 1.1 jtc - isinsets - is this character in any sets?
1523 1.9 perry == static int isinsets(struct re_guts *g, int c);
1524 1.1 jtc */
1525 1.1 jtc static int /* predicate */
1526 1.1 jtc isinsets(g, c)
1527 1.9 perry struct re_guts *g;
1528 1.1 jtc int c;
1529 1.1 jtc {
1530 1.9 perry uch *col;
1531 1.9 perry int i;
1532 1.14 lukem int ncols;
1533 1.9 perry unsigned uc = (unsigned char)c;
1534 1.1 jtc
1535 1.14 lukem _DIAGASSERT(g != NULL);
1536 1.14 lukem
1537 1.14 lukem ncols = (g->ncsets+(CHAR_BIT-1)) / CHAR_BIT;
1538 1.14 lukem
1539 1.1 jtc for (i = 0, col = g->setbits; i < ncols; i++, col += g->csetsize)
1540 1.1 jtc if (col[uc] != 0)
1541 1.1 jtc return(1);
1542 1.1 jtc return(0);
1543 1.1 jtc }
1544 1.1 jtc
1545 1.1 jtc /*
1546 1.1 jtc - samesets - are these two characters in exactly the same sets?
1547 1.9 perry == static int samesets(struct re_guts *g, int c1, int c2);
1548 1.1 jtc */
1549 1.1 jtc static int /* predicate */
1550 1.1 jtc samesets(g, c1, c2)
1551 1.9 perry struct re_guts *g;
1552 1.1 jtc int c1;
1553 1.1 jtc int c2;
1554 1.1 jtc {
1555 1.9 perry uch *col;
1556 1.9 perry int i;
1557 1.14 lukem int ncols;
1558 1.9 perry unsigned uc1 = (unsigned char)c1;
1559 1.9 perry unsigned uc2 = (unsigned char)c2;
1560 1.1 jtc
1561 1.14 lukem _DIAGASSERT(g != NULL);
1562 1.14 lukem
1563 1.14 lukem ncols = (g->ncsets+(CHAR_BIT-1)) / CHAR_BIT;
1564 1.14 lukem
1565 1.1 jtc for (i = 0, col = g->setbits; i < ncols; i++, col += g->csetsize)
1566 1.1 jtc if (col[uc1] != col[uc2])
1567 1.1 jtc return(0);
1568 1.1 jtc return(1);
1569 1.1 jtc }
1570 1.1 jtc
1571 1.1 jtc /*
1572 1.1 jtc - categorize - sort out character categories
1573 1.9 perry == static void categorize(struct parse *p, struct re_guts *g);
1574 1.1 jtc */
1575 1.1 jtc static void
1576 1.1 jtc categorize(p, g)
1577 1.1 jtc struct parse *p;
1578 1.9 perry struct re_guts *g;
1579 1.1 jtc {
1580 1.14 lukem cat_t *cats;
1581 1.9 perry int c;
1582 1.9 perry int c2;
1583 1.9 perry cat_t cat;
1584 1.1 jtc
1585 1.14 lukem _DIAGASSERT(p != NULL);
1586 1.14 lukem _DIAGASSERT(g != NULL);
1587 1.14 lukem
1588 1.14 lukem cats = g->categories;
1589 1.14 lukem
1590 1.1 jtc /* avoid making error situations worse */
1591 1.1 jtc if (p->error != 0)
1592 1.1 jtc return;
1593 1.1 jtc
1594 1.1 jtc for (c = CHAR_MIN; c <= CHAR_MAX; c++)
1595 1.1 jtc if (cats[c] == 0 && isinsets(g, c)) {
1596 1.1 jtc cat = g->ncategories++;
1597 1.1 jtc cats[c] = cat;
1598 1.1 jtc for (c2 = c+1; c2 <= CHAR_MAX; c2++)
1599 1.1 jtc if (cats[c2] == 0 && samesets(g, c, c2))
1600 1.1 jtc cats[c2] = cat;
1601 1.1 jtc }
1602 1.1 jtc }
1603 1.1 jtc
1604 1.1 jtc /*
1605 1.1 jtc - dupl - emit a duplicate of a bunch of sops
1606 1.9 perry == static sopno dupl(struct parse *p, sopno start, sopno finish);
1607 1.1 jtc */
1608 1.1 jtc static sopno /* start of duplicate */
1609 1.1 jtc dupl(p, start, finish)
1610 1.9 perry struct parse *p;
1611 1.1 jtc sopno start; /* from here */
1612 1.1 jtc sopno finish; /* to this less one */
1613 1.1 jtc {
1614 1.14 lukem sopno ret;
1615 1.9 perry sopno len = finish - start;
1616 1.1 jtc
1617 1.14 lukem _DIAGASSERT(p != NULL);
1618 1.14 lukem
1619 1.14 lukem ret = HERE();
1620 1.14 lukem
1621 1.1 jtc assert(finish >= start);
1622 1.1 jtc if (len == 0)
1623 1.1 jtc return(ret);
1624 1.1 jtc enlarge(p, p->ssize + len); /* this many unexpected additions */
1625 1.1 jtc assert(p->ssize >= p->slen + len);
1626 1.12 drochner (void)memcpy(p->strip + p->slen, p->strip + start,
1627 1.11 christos (size_t)len * sizeof(sop));
1628 1.1 jtc p->slen += len;
1629 1.1 jtc return(ret);
1630 1.1 jtc }
1631 1.1 jtc
1632 1.1 jtc /*
1633 1.1 jtc - doemit - emit a strip operator
1634 1.9 perry == static void doemit(struct parse *p, sop op, size_t opnd);
1635 1.1 jtc *
1636 1.1 jtc * It might seem better to implement this as a macro with a function as
1637 1.1 jtc * hard-case backup, but it's just too big and messy unless there are
1638 1.1 jtc * some changes to the data structures. Maybe later.
1639 1.1 jtc */
1640 1.1 jtc static void
1641 1.1 jtc doemit(p, op, opnd)
1642 1.9 perry struct parse *p;
1643 1.1 jtc sop op;
1644 1.12 drochner sopno opnd;
1645 1.1 jtc {
1646 1.14 lukem
1647 1.14 lukem _DIAGASSERT(p != NULL);
1648 1.14 lukem
1649 1.1 jtc /* avoid making error situations worse */
1650 1.1 jtc if (p->error != 0)
1651 1.1 jtc return;
1652 1.1 jtc
1653 1.1 jtc /* deal with oversize operands ("can't happen", more or less) */
1654 1.1 jtc assert(opnd < 1<<OPSHIFT);
1655 1.1 jtc
1656 1.1 jtc /* deal with undersized strip */
1657 1.1 jtc if (p->slen >= p->ssize)
1658 1.1 jtc enlarge(p, (p->ssize+1) / 2 * 3); /* +50% */
1659 1.1 jtc assert(p->slen < p->ssize);
1660 1.1 jtc
1661 1.1 jtc /* finally, it's all reduced to the easy case */
1662 1.1 jtc p->strip[p->slen++] = SOP(op, opnd);
1663 1.1 jtc }
1664 1.1 jtc
1665 1.1 jtc /*
1666 1.1 jtc - doinsert - insert a sop into the strip
1667 1.9 perry == static void doinsert(struct parse *p, sop op, size_t opnd, sopno pos);
1668 1.1 jtc */
1669 1.1 jtc static void
1670 1.1 jtc doinsert(p, op, opnd, pos)
1671 1.9 perry struct parse *p;
1672 1.1 jtc sop op;
1673 1.12 drochner sopno opnd;
1674 1.1 jtc sopno pos;
1675 1.1 jtc {
1676 1.9 perry sopno sn;
1677 1.9 perry sop s;
1678 1.9 perry int i;
1679 1.1 jtc
1680 1.14 lukem _DIAGASSERT(p != NULL);
1681 1.14 lukem
1682 1.1 jtc /* avoid making error situations worse */
1683 1.1 jtc if (p->error != 0)
1684 1.1 jtc return;
1685 1.1 jtc
1686 1.1 jtc sn = HERE();
1687 1.1 jtc EMIT(op, opnd); /* do checks, ensure space */
1688 1.1 jtc assert(HERE() == sn+1);
1689 1.1 jtc s = p->strip[sn];
1690 1.1 jtc
1691 1.1 jtc /* adjust paren pointers */
1692 1.1 jtc assert(pos > 0);
1693 1.1 jtc for (i = 1; i < NPAREN; i++) {
1694 1.1 jtc if (p->pbegin[i] >= pos) {
1695 1.1 jtc p->pbegin[i]++;
1696 1.1 jtc }
1697 1.1 jtc if (p->pend[i] >= pos) {
1698 1.1 jtc p->pend[i]++;
1699 1.1 jtc }
1700 1.1 jtc }
1701 1.1 jtc
1702 1.11 christos memmove(&p->strip[pos+1], &p->strip[pos], (HERE()-pos-1)*sizeof(sop));
1703 1.1 jtc p->strip[pos] = s;
1704 1.1 jtc }
1705 1.1 jtc
1706 1.1 jtc /*
1707 1.1 jtc - dofwd - complete a forward reference
1708 1.9 perry == static void dofwd(struct parse *p, sopno pos, sop value);
1709 1.1 jtc */
1710 1.1 jtc static void
1711 1.1 jtc dofwd(p, pos, value)
1712 1.9 perry struct parse *p;
1713 1.9 perry sopno pos;
1714 1.12 drochner sopno value;
1715 1.1 jtc {
1716 1.14 lukem
1717 1.14 lukem _DIAGASSERT(p != NULL);
1718 1.14 lukem
1719 1.1 jtc /* avoid making error situations worse */
1720 1.1 jtc if (p->error != 0)
1721 1.1 jtc return;
1722 1.1 jtc
1723 1.1 jtc assert(value < 1<<OPSHIFT);
1724 1.1 jtc p->strip[pos] = OP(p->strip[pos]) | value;
1725 1.1 jtc }
1726 1.1 jtc
1727 1.1 jtc /*
1728 1.1 jtc - enlarge - enlarge the strip
1729 1.9 perry == static void enlarge(struct parse *p, sopno size);
1730 1.1 jtc */
1731 1.1 jtc static void
1732 1.1 jtc enlarge(p, size)
1733 1.9 perry struct parse *p;
1734 1.9 perry sopno size;
1735 1.1 jtc {
1736 1.9 perry sop *sp;
1737 1.1 jtc
1738 1.14 lukem _DIAGASSERT(p != NULL);
1739 1.14 lukem
1740 1.1 jtc if (p->ssize >= size)
1741 1.1 jtc return;
1742 1.1 jtc
1743 1.1 jtc sp = (sop *)realloc(p->strip, size*sizeof(sop));
1744 1.1 jtc if (sp == NULL) {
1745 1.1 jtc SETERROR(REG_ESPACE);
1746 1.1 jtc return;
1747 1.1 jtc }
1748 1.1 jtc p->strip = sp;
1749 1.1 jtc p->ssize = size;
1750 1.1 jtc }
1751 1.1 jtc
1752 1.1 jtc /*
1753 1.1 jtc - stripsnug - compact the strip
1754 1.9 perry == static void stripsnug(struct parse *p, struct re_guts *g);
1755 1.1 jtc */
1756 1.1 jtc static void
1757 1.1 jtc stripsnug(p, g)
1758 1.9 perry struct parse *p;
1759 1.9 perry struct re_guts *g;
1760 1.1 jtc {
1761 1.14 lukem
1762 1.14 lukem _DIAGASSERT(p != NULL);
1763 1.14 lukem _DIAGASSERT(g != NULL);
1764 1.14 lukem
1765 1.1 jtc g->nstates = p->slen;
1766 1.11 christos g->strip = realloc(p->strip, p->slen * sizeof(sop));
1767 1.1 jtc if (g->strip == NULL) {
1768 1.1 jtc SETERROR(REG_ESPACE);
1769 1.1 jtc g->strip = p->strip;
1770 1.1 jtc }
1771 1.1 jtc }
1772 1.1 jtc
1773 1.1 jtc /*
1774 1.1 jtc - findmust - fill in must and mlen with longest mandatory literal string
1775 1.9 perry == static void findmust(struct parse *p, struct re_guts *g);
1776 1.1 jtc *
1777 1.1 jtc * This algorithm could do fancy things like analyzing the operands of |
1778 1.1 jtc * for common subsequences. Someday. This code is simple and finds most
1779 1.1 jtc * of the interesting cases.
1780 1.1 jtc *
1781 1.1 jtc * Note that must and mlen got initialized during setup.
1782 1.1 jtc */
1783 1.1 jtc static void
1784 1.1 jtc findmust(p, g)
1785 1.1 jtc struct parse *p;
1786 1.9 perry struct re_guts *g;
1787 1.1 jtc {
1788 1.9 perry sop *scan;
1789 1.7 christos sop *start = NULL;
1790 1.9 perry sop *newstart = NULL;
1791 1.9 perry sopno newlen;
1792 1.9 perry sop s;
1793 1.9 perry char *cp;
1794 1.9 perry sopno i;
1795 1.1 jtc
1796 1.14 lukem _DIAGASSERT(p != NULL);
1797 1.14 lukem _DIAGASSERT(g != NULL);
1798 1.14 lukem
1799 1.1 jtc /* avoid making error situations worse */
1800 1.1 jtc if (p->error != 0)
1801 1.1 jtc return;
1802 1.1 jtc
1803 1.1 jtc /* find the longest OCHAR sequence in strip */
1804 1.1 jtc newlen = 0;
1805 1.1 jtc scan = g->strip + 1;
1806 1.1 jtc do {
1807 1.1 jtc s = *scan++;
1808 1.1 jtc switch (OP(s)) {
1809 1.1 jtc case OCHAR: /* sequence member */
1810 1.1 jtc if (newlen == 0) /* new sequence */
1811 1.1 jtc newstart = scan - 1;
1812 1.1 jtc newlen++;
1813 1.1 jtc break;
1814 1.1 jtc case OPLUS_: /* things that don't break one */
1815 1.1 jtc case OLPAREN:
1816 1.1 jtc case ORPAREN:
1817 1.1 jtc break;
1818 1.1 jtc case OQUEST_: /* things that must be skipped */
1819 1.1 jtc case OCH_:
1820 1.1 jtc scan--;
1821 1.1 jtc do {
1822 1.1 jtc scan += OPND(s);
1823 1.1 jtc s = *scan;
1824 1.1 jtc /* assert() interferes w debug printouts */
1825 1.1 jtc if (OP(s) != O_QUEST && OP(s) != O_CH &&
1826 1.1 jtc OP(s) != OOR2) {
1827 1.1 jtc g->iflags |= BAD;
1828 1.1 jtc return;
1829 1.1 jtc }
1830 1.1 jtc } while (OP(s) != O_QUEST && OP(s) != O_CH);
1831 1.11 christos /* FALLTHROUGH */
1832 1.1 jtc default: /* things that break a sequence */
1833 1.1 jtc if (newlen > g->mlen) { /* ends one */
1834 1.1 jtc start = newstart;
1835 1.1 jtc g->mlen = newlen;
1836 1.1 jtc }
1837 1.1 jtc newlen = 0;
1838 1.1 jtc break;
1839 1.1 jtc }
1840 1.1 jtc } while (OP(s) != OEND);
1841 1.1 jtc
1842 1.1 jtc if (g->mlen == 0) /* there isn't one */
1843 1.1 jtc return;
1844 1.1 jtc
1845 1.1 jtc /* turn it into a character string */
1846 1.1 jtc g->must = malloc((size_t)g->mlen + 1);
1847 1.1 jtc if (g->must == NULL) { /* argh; just forget it */
1848 1.1 jtc g->mlen = 0;
1849 1.1 jtc return;
1850 1.1 jtc }
1851 1.1 jtc cp = g->must;
1852 1.1 jtc scan = start;
1853 1.1 jtc for (i = g->mlen; i > 0; i--) {
1854 1.1 jtc while (OP(s = *scan++) != OCHAR)
1855 1.1 jtc continue;
1856 1.2 jtc assert(cp < g->must + g->mlen);
1857 1.1 jtc *cp++ = (char)OPND(s);
1858 1.1 jtc }
1859 1.2 jtc assert(cp == g->must + g->mlen);
1860 1.1 jtc *cp++ = '\0'; /* just on general principles */
1861 1.1 jtc }
1862 1.1 jtc
1863 1.1 jtc /*
1864 1.1 jtc - pluscount - count + nesting
1865 1.9 perry == static sopno pluscount(struct parse *p, struct re_guts *g);
1866 1.1 jtc */
1867 1.1 jtc static sopno /* nesting depth */
1868 1.1 jtc pluscount(p, g)
1869 1.1 jtc struct parse *p;
1870 1.9 perry struct re_guts *g;
1871 1.1 jtc {
1872 1.9 perry sop *scan;
1873 1.9 perry sop s;
1874 1.9 perry sopno plusnest = 0;
1875 1.9 perry sopno maxnest = 0;
1876 1.14 lukem
1877 1.14 lukem _DIAGASSERT(p != NULL);
1878 1.14 lukem _DIAGASSERT(g != NULL);
1879 1.1 jtc
1880 1.1 jtc if (p->error != 0)
1881 1.1 jtc return(0); /* there may not be an OEND */
1882 1.1 jtc
1883 1.1 jtc scan = g->strip + 1;
1884 1.1 jtc do {
1885 1.1 jtc s = *scan++;
1886 1.1 jtc switch (OP(s)) {
1887 1.1 jtc case OPLUS_:
1888 1.1 jtc plusnest++;
1889 1.1 jtc break;
1890 1.1 jtc case O_PLUS:
1891 1.1 jtc if (plusnest > maxnest)
1892 1.1 jtc maxnest = plusnest;
1893 1.1 jtc plusnest--;
1894 1.1 jtc break;
1895 1.1 jtc }
1896 1.1 jtc } while (OP(s) != OEND);
1897 1.1 jtc if (plusnest != 0)
1898 1.1 jtc g->iflags |= BAD;
1899 1.1 jtc return(maxnest);
1900 1.1 jtc }
1901