rcorder.c revision 1.9 1 1.9 lukem /* $NetBSD: rcorder.c,v 1.9 2002/06/30 13:31:15 lukem Exp $ */
2 1.1 mrg
3 1.1 mrg /*
4 1.1 mrg * Copyright (c) 1998, 1999 Matthew R. Green
5 1.1 mrg * All rights reserved.
6 1.1 mrg * Copyright (c) 1998
7 1.1 mrg * Perry E. Metzger. All rights reserved.
8 1.1 mrg *
9 1.1 mrg * Redistribution and use in source and binary forms, with or without
10 1.1 mrg * modification, are permitted provided that the following conditions
11 1.1 mrg * are met:
12 1.1 mrg * 1. Redistributions of source code must retain the above copyright
13 1.1 mrg * notice, this list of conditions and the following disclaimer.
14 1.1 mrg * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 mrg * notice, this list of conditions and the following disclaimer in the
16 1.1 mrg * documentation and/or other materials provided with the distribution.
17 1.1 mrg * 3. All advertising materials mentioning features or use of this software
18 1.1 mrg * must display the following acknowledgement:
19 1.1 mrg * This product includes software developed for the NetBSD Project
20 1.1 mrg * by Perry E. Metzger.
21 1.1 mrg * 4. The name of the author may not be used to endorse or promote products
22 1.1 mrg * derived from this software without specific prior written permission.
23 1.1 mrg *
24 1.1 mrg * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
25 1.1 mrg * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
26 1.1 mrg * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
27 1.1 mrg * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
28 1.1 mrg * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
29 1.1 mrg * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
30 1.1 mrg * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
31 1.1 mrg * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
32 1.1 mrg * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
33 1.1 mrg * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
34 1.1 mrg */
35 1.1 mrg
36 1.1 mrg #include <sys/types.h>
37 1.3 enami #include <sys/stat.h>
38 1.1 mrg
39 1.1 mrg #include <err.h>
40 1.1 mrg #include <stdio.h>
41 1.1 mrg #include <stdlib.h>
42 1.1 mrg #include <string.h>
43 1.1 mrg #include <unistd.h>
44 1.1 mrg #include <util.h>
45 1.1 mrg
46 1.1 mrg #include "ealloc.h"
47 1.1 mrg #include "sprite.h"
48 1.1 mrg #include "hash.h"
49 1.1 mrg
50 1.1 mrg #ifdef DEBUG
51 1.1 mrg int debug = 0;
52 1.1 mrg # define DPRINTF(args) if (debug) { fflush(stdout); fprintf args; }
53 1.1 mrg #else
54 1.1 mrg # define DPRINTF(args)
55 1.1 mrg #endif
56 1.1 mrg
57 1.1 mrg #define REQUIRE_STR "# REQUIRE:"
58 1.1 mrg #define REQUIRE_LEN (sizeof(REQUIRE_STR) - 1)
59 1.1 mrg #define REQUIRES_STR "# REQUIRES:"
60 1.1 mrg #define REQUIRES_LEN (sizeof(REQUIRES_STR) - 1)
61 1.1 mrg #define PROVIDE_STR "# PROVIDE:"
62 1.1 mrg #define PROVIDE_LEN (sizeof(PROVIDE_STR) - 1)
63 1.1 mrg #define PROVIDES_STR "# PROVIDES:"
64 1.1 mrg #define PROVIDES_LEN (sizeof(PROVIDES_STR) - 1)
65 1.1 mrg #define BEFORE_STR "# BEFORE:"
66 1.1 mrg #define BEFORE_LEN (sizeof(BEFORE_STR) - 1)
67 1.5 mrg #define KEYWORD_STR "# KEYWORD:"
68 1.5 mrg #define KEYWORD_LEN (sizeof(KEYWORD_STR) - 1)
69 1.5 mrg #define KEYWORDS_STR "# KEYWORDS:"
70 1.5 mrg #define KEYWORDS_LEN (sizeof(KEYWORDS_STR) - 1)
71 1.1 mrg
72 1.1 mrg int exit_code;
73 1.1 mrg int file_count;
74 1.1 mrg char **file_list;
75 1.1 mrg
76 1.1 mrg typedef int bool;
77 1.1 mrg #define TRUE 1
78 1.1 mrg #define FALSE 0
79 1.1 mrg typedef bool flag;
80 1.1 mrg #define SET TRUE
81 1.1 mrg #define RESET FALSE
82 1.1 mrg
83 1.1 mrg Hash_Table provide_hash_s, *provide_hash;
84 1.1 mrg
85 1.1 mrg typedef struct provnode provnode;
86 1.1 mrg typedef struct filenode filenode;
87 1.1 mrg typedef struct f_provnode f_provnode;
88 1.1 mrg typedef struct f_reqnode f_reqnode;
89 1.5 mrg typedef struct strnodelist strnodelist;
90 1.1 mrg
91 1.1 mrg struct provnode {
92 1.1 mrg flag head;
93 1.1 mrg flag in_progress;
94 1.1 mrg filenode *fnode;
95 1.1 mrg provnode *next, *last;
96 1.1 mrg };
97 1.1 mrg
98 1.1 mrg struct f_provnode {
99 1.1 mrg provnode *pnode;
100 1.1 mrg f_provnode *next;
101 1.1 mrg };
102 1.1 mrg
103 1.1 mrg struct f_reqnode {
104 1.1 mrg Hash_Entry *entry;
105 1.1 mrg f_reqnode *next;
106 1.1 mrg };
107 1.1 mrg
108 1.5 mrg struct strnodelist {
109 1.5 mrg filenode *node;
110 1.5 mrg strnodelist *next;
111 1.6 enami char s[1];
112 1.5 mrg };
113 1.5 mrg
114 1.1 mrg struct filenode {
115 1.1 mrg char *filename;
116 1.1 mrg flag in_progress;
117 1.1 mrg filenode *next, *last;
118 1.1 mrg f_reqnode *req_list;
119 1.1 mrg f_provnode *prov_list;
120 1.5 mrg strnodelist *keyword_list;
121 1.1 mrg };
122 1.1 mrg
123 1.5 mrg filenode fn_head_s, *fn_head;
124 1.1 mrg
125 1.5 mrg strnodelist *bl_list;
126 1.5 mrg strnodelist *keep_list;
127 1.5 mrg strnodelist *skip_list;
128 1.1 mrg
129 1.1 mrg void do_file __P((filenode *fnode));
130 1.5 mrg void strnode_add __P((strnodelist **, char *, filenode *));
131 1.5 mrg int skip_ok __P((filenode *fnode));
132 1.5 mrg int keep_ok __P((filenode *fnode));
133 1.1 mrg void satisfy_req __P((f_reqnode *rnode, char *filename));
134 1.1 mrg void crunch_file __P((char *));
135 1.1 mrg void parse_require __P((filenode *, char *));
136 1.1 mrg void parse_provide __P((filenode *, char *));
137 1.1 mrg void parse_before __P((filenode *, char *));
138 1.5 mrg void parse_keywords __P((filenode *, char *));
139 1.1 mrg filenode *filenode_new __P((char *));
140 1.1 mrg void add_require __P((filenode *, char *));
141 1.1 mrg void add_provide __P((filenode *, char *));
142 1.1 mrg void add_before __P((filenode *, char *));
143 1.5 mrg void add_keyword __P((filenode *, char *));
144 1.1 mrg void insert_before __P((void));
145 1.1 mrg Hash_Entry *make_fake_provision __P((filenode *));
146 1.1 mrg void crunch_all_files __P((void));
147 1.1 mrg void initialize __P((void));
148 1.1 mrg void generate_ordering __P((void));
149 1.1 mrg int main __P((int, char *[]));
150 1.1 mrg
151 1.1 mrg int
152 1.1 mrg main(argc, argv)
153 1.1 mrg int argc;
154 1.1 mrg char *argv[];
155 1.1 mrg {
156 1.1 mrg int ch;
157 1.1 mrg
158 1.5 mrg while ((ch = getopt(argc, argv, "dk:s:")) != -1)
159 1.1 mrg switch (ch) {
160 1.1 mrg case 'd':
161 1.1 mrg #ifdef DEBUG
162 1.1 mrg debug = 1;
163 1.1 mrg #else
164 1.1 mrg warnx("debugging not compiled in, -d ignored");
165 1.1 mrg #endif
166 1.1 mrg break;
167 1.5 mrg case 'k':
168 1.5 mrg strnode_add(&keep_list, optarg, 0);
169 1.5 mrg break;
170 1.5 mrg case 's':
171 1.5 mrg strnode_add(&skip_list, optarg, 0);
172 1.5 mrg break;
173 1.1 mrg default:
174 1.1 mrg /* XXX should crunch it? */
175 1.1 mrg break;
176 1.1 mrg }
177 1.1 mrg argc -= optind;
178 1.1 mrg argv += optind;
179 1.1 mrg
180 1.1 mrg file_count = argc;
181 1.1 mrg file_list = argv;
182 1.1 mrg
183 1.1 mrg DPRINTF((stderr, "parse_args\n"));
184 1.1 mrg initialize();
185 1.1 mrg DPRINTF((stderr, "initialize\n"));
186 1.1 mrg crunch_all_files();
187 1.1 mrg DPRINTF((stderr, "crunch_all_files\n"));
188 1.1 mrg generate_ordering();
189 1.1 mrg DPRINTF((stderr, "generate_ordering\n"));
190 1.1 mrg
191 1.1 mrg exit(exit_code);
192 1.1 mrg }
193 1.1 mrg
194 1.1 mrg /*
195 1.1 mrg * initialise various variables.
196 1.1 mrg */
197 1.1 mrg void
198 1.1 mrg initialize()
199 1.1 mrg {
200 1.1 mrg
201 1.1 mrg fn_head = &fn_head_s;
202 1.1 mrg
203 1.1 mrg provide_hash = &provide_hash_s;
204 1.1 mrg Hash_InitTable(provide_hash, file_count);
205 1.1 mrg }
206 1.1 mrg
207 1.5 mrg /* generic function to insert a new strnodelist element */
208 1.5 mrg void
209 1.5 mrg strnode_add(listp, s, fnode)
210 1.5 mrg strnodelist **listp;
211 1.5 mrg char *s;
212 1.5 mrg filenode *fnode;
213 1.5 mrg {
214 1.5 mrg strnodelist *ent;
215 1.5 mrg
216 1.6 enami ent = emalloc(sizeof *ent + strlen(s));
217 1.5 mrg ent->node = fnode;
218 1.6 enami strcpy(ent->s, s);
219 1.5 mrg ent->next = *listp;
220 1.5 mrg *listp = ent;
221 1.5 mrg }
222 1.5 mrg
223 1.1 mrg /*
224 1.1 mrg * below are the functions that deal with creating the lists
225 1.1 mrg * from the filename's given and the dependancies and provisions
226 1.1 mrg * in each of these files. no ordering or checking is done here.
227 1.1 mrg */
228 1.1 mrg
229 1.1 mrg /*
230 1.1 mrg * we have a new filename, create a new filenode structure.
231 1.1 mrg * fill in the bits, and put it in the filenode linked list
232 1.1 mrg */
233 1.1 mrg filenode *
234 1.1 mrg filenode_new(filename)
235 1.1 mrg char *filename;
236 1.1 mrg {
237 1.1 mrg filenode *temp;
238 1.1 mrg
239 1.1 mrg temp = emalloc(sizeof(*temp));
240 1.1 mrg memset(temp, 0, sizeof(*temp));
241 1.1 mrg temp->filename = estrdup(filename);
242 1.1 mrg temp->req_list = NULL;
243 1.1 mrg temp->prov_list = NULL;
244 1.5 mrg temp->keyword_list = NULL;
245 1.1 mrg temp->in_progress = RESET;
246 1.1 mrg /*
247 1.1 mrg * link the filenode into the list of filenodes.
248 1.1 mrg * note that the double linking means we can delete a
249 1.1 mrg * filenode without searching for where it belongs.
250 1.1 mrg */
251 1.1 mrg temp->next = fn_head->next;
252 1.1 mrg if (temp->next != NULL)
253 1.1 mrg temp->next->last = temp;
254 1.1 mrg temp->last = fn_head;
255 1.1 mrg fn_head->next = temp;
256 1.1 mrg return (temp);
257 1.1 mrg }
258 1.1 mrg
259 1.1 mrg /*
260 1.5 mrg * add a requirement to a filenode.
261 1.1 mrg */
262 1.1 mrg void
263 1.1 mrg add_require(fnode, s)
264 1.1 mrg filenode *fnode;
265 1.1 mrg char *s;
266 1.1 mrg {
267 1.1 mrg Hash_Entry *entry;
268 1.1 mrg f_reqnode *rnode;
269 1.1 mrg int new;
270 1.1 mrg
271 1.1 mrg entry = Hash_CreateEntry(provide_hash, s, &new);
272 1.1 mrg if (new)
273 1.1 mrg Hash_SetValue(entry, NULL);
274 1.1 mrg rnode = emalloc(sizeof(*rnode));
275 1.1 mrg rnode->entry = entry;
276 1.1 mrg rnode->next = fnode->req_list;
277 1.1 mrg fnode->req_list = rnode;
278 1.1 mrg }
279 1.1 mrg
280 1.1 mrg /*
281 1.1 mrg * add a provision to a filenode. if this provision doesn't
282 1.1 mrg * have a head node, create one here.
283 1.1 mrg */
284 1.1 mrg void
285 1.1 mrg add_provide(fnode, s)
286 1.1 mrg filenode *fnode;
287 1.1 mrg char *s;
288 1.1 mrg {
289 1.1 mrg Hash_Entry *entry;
290 1.1 mrg f_provnode *f_pnode;
291 1.1 mrg provnode *pnode, *head;
292 1.1 mrg int new;
293 1.1 mrg
294 1.1 mrg entry = Hash_CreateEntry(provide_hash, s, &new);
295 1.1 mrg head = Hash_GetValue(entry);
296 1.1 mrg
297 1.1 mrg /* create a head node if necessary. */
298 1.1 mrg if (head == NULL) {
299 1.1 mrg head = emalloc(sizeof(*head));
300 1.1 mrg head->head = SET;
301 1.1 mrg head->in_progress = RESET;
302 1.1 mrg head->fnode = NULL;
303 1.1 mrg head->last = head->next = NULL;
304 1.1 mrg Hash_SetValue(entry, head);
305 1.2 thorpej }
306 1.2 thorpej #if 0
307 1.2 thorpej /*
308 1.2 thorpej * Don't warn about this. We want to be able to support
309 1.2 thorpej * scripts that do two complex things:
310 1.2 thorpej *
311 1.2 thorpej * - Two independent scripts which both provide the
312 1.2 thorpej * same thing. Both scripts must be executed in
313 1.2 thorpej * any order to meet the barrier. An example:
314 1.2 thorpej *
315 1.2 thorpej * Script 1:
316 1.2 thorpej *
317 1.2 thorpej * PROVIDE: mail
318 1.2 thorpej * REQUIRE: LOGIN
319 1.2 thorpej *
320 1.2 thorpej * Script 2:
321 1.2 thorpej *
322 1.2 thorpej * PROVIDE: mail
323 1.2 thorpej * REQUIRE: LOGIN
324 1.2 thorpej *
325 1.2 thorpej * - Two interdependent scripts which both provide the
326 1.2 thorpej * same thing. Both scripts must be executed in
327 1.2 thorpej * graph order to meet the barrier. An example:
328 1.2 thorpej *
329 1.2 thorpej * Script 1:
330 1.2 thorpej *
331 1.2 thorpej * PROVIDE: nameservice dnscache
332 1.2 thorpej * REQUIRE: SERVERS
333 1.2 thorpej *
334 1.2 thorpej * Script 2:
335 1.2 thorpej *
336 1.2 thorpej * PROVIDE: nameservice nscd
337 1.2 thorpej * REQUIRE: dnscache
338 1.2 thorpej */
339 1.2 thorpej else if (new == 0) {
340 1.1 mrg warnx("file `%s' provides `%s'.", fnode->filename, s);
341 1.2 thorpej warnx("\tpreviously seen in `%s'.",
342 1.2 thorpej head->next->fnode->filename);
343 1.1 mrg }
344 1.2 thorpej #endif
345 1.1 mrg
346 1.1 mrg pnode = emalloc(sizeof(*pnode));
347 1.1 mrg pnode->head = RESET;
348 1.1 mrg pnode->in_progress = RESET;
349 1.1 mrg pnode->fnode = fnode;
350 1.1 mrg pnode->next = head->next;
351 1.1 mrg pnode->last = head;
352 1.1 mrg head->next = pnode;
353 1.1 mrg if (pnode->next != NULL)
354 1.1 mrg pnode->next->last = pnode;
355 1.1 mrg
356 1.1 mrg f_pnode = emalloc(sizeof(*f_pnode));
357 1.1 mrg f_pnode->pnode = pnode;
358 1.1 mrg f_pnode->next = fnode->prov_list;
359 1.1 mrg fnode->prov_list = f_pnode;
360 1.1 mrg }
361 1.1 mrg
362 1.1 mrg /*
363 1.1 mrg * put the BEFORE: lines to a list and handle them later.
364 1.1 mrg */
365 1.1 mrg void
366 1.1 mrg add_before(fnode, s)
367 1.1 mrg filenode *fnode;
368 1.1 mrg char *s;
369 1.1 mrg {
370 1.1 mrg
371 1.9 lukem strnode_add(&bl_list, s, fnode);
372 1.1 mrg }
373 1.1 mrg
374 1.1 mrg /*
375 1.5 mrg * add a key to a filenode.
376 1.5 mrg */
377 1.5 mrg void
378 1.5 mrg add_keyword(fnode, s)
379 1.5 mrg filenode *fnode;
380 1.5 mrg char *s;
381 1.5 mrg {
382 1.5 mrg
383 1.5 mrg strnode_add(&fnode->keyword_list, s, fnode);
384 1.5 mrg }
385 1.5 mrg
386 1.5 mrg /*
387 1.1 mrg * loop over the rest of a REQUIRE line, giving each word to
388 1.1 mrg * add_require() to do the real work.
389 1.1 mrg */
390 1.1 mrg void
391 1.1 mrg parse_require(node, buffer)
392 1.1 mrg filenode *node;
393 1.1 mrg char *buffer;
394 1.1 mrg {
395 1.1 mrg char *s;
396 1.1 mrg
397 1.1 mrg while ((s = strsep(&buffer, " \t\n")) != NULL)
398 1.1 mrg if (*s != '\0')
399 1.1 mrg add_require(node, s);
400 1.1 mrg }
401 1.1 mrg
402 1.1 mrg /*
403 1.1 mrg * loop over the rest of a PROVIDE line, giving each word to
404 1.1 mrg * add_provide() to do the real work.
405 1.1 mrg */
406 1.1 mrg void
407 1.1 mrg parse_provide(node, buffer)
408 1.1 mrg filenode *node;
409 1.1 mrg char *buffer;
410 1.1 mrg {
411 1.1 mrg char *s;
412 1.1 mrg
413 1.1 mrg while ((s = strsep(&buffer, " \t\n")) != NULL)
414 1.1 mrg if (*s != '\0')
415 1.1 mrg add_provide(node, s);
416 1.1 mrg }
417 1.1 mrg
418 1.1 mrg /*
419 1.1 mrg * loop over the rest of a BEFORE line, giving each word to
420 1.1 mrg * add_before() to do the real work.
421 1.1 mrg */
422 1.1 mrg void
423 1.1 mrg parse_before(node, buffer)
424 1.1 mrg filenode *node;
425 1.1 mrg char *buffer;
426 1.1 mrg {
427 1.1 mrg char *s;
428 1.1 mrg
429 1.1 mrg while ((s = strsep(&buffer, " \t\n")) != NULL)
430 1.1 mrg if (*s != '\0')
431 1.1 mrg add_before(node, s);
432 1.1 mrg }
433 1.1 mrg
434 1.1 mrg /*
435 1.5 mrg * loop over the rest of a KEYWORD line, giving each word to
436 1.5 mrg * add_keyword() to do the real work.
437 1.5 mrg */
438 1.5 mrg void
439 1.5 mrg parse_keywords(node, buffer)
440 1.5 mrg filenode *node;
441 1.5 mrg char *buffer;
442 1.5 mrg {
443 1.5 mrg char *s;
444 1.5 mrg
445 1.5 mrg while ((s = strsep(&buffer, " \t\n")) != NULL)
446 1.5 mrg if (*s != '\0')
447 1.5 mrg add_keyword(node, s);
448 1.5 mrg }
449 1.5 mrg
450 1.5 mrg /*
451 1.1 mrg * given a file name, create a filenode for it, read in lines looking
452 1.1 mrg * for provision and requirement lines, building the graphs as needed.
453 1.1 mrg */
454 1.1 mrg void
455 1.1 mrg crunch_file(filename)
456 1.1 mrg char *filename;
457 1.1 mrg {
458 1.1 mrg FILE *fp;
459 1.1 mrg char *buf;
460 1.6 enami int require_flag, provide_flag, before_flag, keywords_flag;
461 1.7 enami enum { BEFORE_PARSING, PARSING, PARSING_DONE } state;
462 1.1 mrg filenode *node;
463 1.1 mrg char delims[3] = { '\\', '\\', '\0' };
464 1.3 enami struct stat st;
465 1.1 mrg
466 1.1 mrg if ((fp = fopen(filename, "r")) == NULL) {
467 1.1 mrg warn("could not open %s", filename);
468 1.3 enami return;
469 1.3 enami }
470 1.3 enami
471 1.3 enami if (fstat(fileno(fp), &st) == -1) {
472 1.3 enami warn("could not stat %s", filename);
473 1.4 enami fclose(fp);
474 1.3 enami return;
475 1.3 enami }
476 1.3 enami
477 1.3 enami if (!S_ISREG(st.st_mode)) {
478 1.8 christos #if 0
479 1.3 enami warnx("%s is not a file", filename);
480 1.8 christos #endif
481 1.4 enami fclose(fp);
482 1.1 mrg return;
483 1.1 mrg }
484 1.1 mrg
485 1.1 mrg node = filenode_new(filename);
486 1.1 mrg
487 1.1 mrg /*
488 1.1 mrg * we don't care about length, line number, don't want # for comments,
489 1.1 mrg * and have no flags.
490 1.1 mrg */
491 1.7 enami for (state = BEFORE_PARSING; state != PARSING_DONE &&
492 1.7 enami (buf = fparseln(fp, NULL, NULL, delims, 0)) != NULL; free(buf)) {
493 1.5 mrg require_flag = provide_flag = before_flag = keywords_flag = 0;
494 1.1 mrg if (strncmp(REQUIRE_STR, buf, REQUIRE_LEN) == 0)
495 1.1 mrg require_flag = REQUIRE_LEN;
496 1.1 mrg else if (strncmp(REQUIRES_STR, buf, REQUIRES_LEN) == 0)
497 1.1 mrg require_flag = REQUIRES_LEN;
498 1.1 mrg else if (strncmp(PROVIDE_STR, buf, PROVIDE_LEN) == 0)
499 1.1 mrg provide_flag = PROVIDE_LEN;
500 1.1 mrg else if (strncmp(PROVIDES_STR, buf, PROVIDES_LEN) == 0)
501 1.1 mrg provide_flag = PROVIDES_LEN;
502 1.1 mrg else if (strncmp(BEFORE_STR, buf, BEFORE_LEN) == 0)
503 1.1 mrg before_flag = BEFORE_LEN;
504 1.5 mrg else if (strncmp(KEYWORD_STR, buf, KEYWORD_LEN) == 0)
505 1.5 mrg keywords_flag = KEYWORD_LEN;
506 1.5 mrg else if (strncmp(KEYWORDS_STR, buf, KEYWORDS_LEN) == 0)
507 1.5 mrg keywords_flag = KEYWORDS_LEN;
508 1.7 enami else {
509 1.7 enami if (state == PARSING)
510 1.7 enami state = PARSING_DONE;
511 1.7 enami continue;
512 1.7 enami }
513 1.1 mrg
514 1.7 enami state = PARSING;
515 1.1 mrg if (require_flag)
516 1.1 mrg parse_require(node, buf + require_flag);
517 1.6 enami else if (provide_flag)
518 1.1 mrg parse_provide(node, buf + provide_flag);
519 1.6 enami else if (before_flag)
520 1.1 mrg parse_before(node, buf + before_flag);
521 1.6 enami else if (keywords_flag)
522 1.5 mrg parse_keywords(node, buf + keywords_flag);
523 1.1 mrg }
524 1.1 mrg fclose(fp);
525 1.1 mrg }
526 1.1 mrg
527 1.1 mrg Hash_Entry *
528 1.1 mrg make_fake_provision(node)
529 1.1 mrg filenode *node;
530 1.1 mrg {
531 1.1 mrg Hash_Entry *entry;
532 1.1 mrg f_provnode *f_pnode;
533 1.1 mrg provnode *head, *pnode;
534 1.1 mrg static int i = 0;
535 1.1 mrg int new;
536 1.1 mrg char buffer[30];
537 1.1 mrg
538 1.1 mrg do {
539 1.1 mrg snprintf(buffer, sizeof buffer, "fake_prov_%08d", i++);
540 1.1 mrg entry = Hash_CreateEntry(provide_hash, buffer, &new);
541 1.1 mrg } while (new == 0);
542 1.1 mrg head = emalloc(sizeof(*head));
543 1.1 mrg head->head = SET;
544 1.1 mrg head->in_progress = RESET;
545 1.1 mrg head->fnode = NULL;
546 1.1 mrg head->last = head->next = NULL;
547 1.1 mrg Hash_SetValue(entry, head);
548 1.1 mrg
549 1.1 mrg pnode = emalloc(sizeof(*pnode));
550 1.1 mrg pnode->head = RESET;
551 1.1 mrg pnode->in_progress = RESET;
552 1.1 mrg pnode->fnode = node;
553 1.1 mrg pnode->next = head->next;
554 1.1 mrg pnode->last = head;
555 1.1 mrg head->next = pnode;
556 1.1 mrg if (pnode->next != NULL)
557 1.1 mrg pnode->next->last = pnode;
558 1.1 mrg
559 1.1 mrg f_pnode = emalloc(sizeof(*f_pnode));
560 1.1 mrg f_pnode->pnode = pnode;
561 1.1 mrg f_pnode->next = node->prov_list;
562 1.1 mrg node->prov_list = f_pnode;
563 1.1 mrg
564 1.1 mrg return (entry);
565 1.1 mrg }
566 1.1 mrg
567 1.1 mrg /*
568 1.1 mrg * go through the BEFORE list, inserting requirements into the graph(s)
569 1.1 mrg * as required. in the before list, for each entry B, we have a file F
570 1.1 mrg * and a string S. we create a "fake" provision (P) that F provides.
571 1.1 mrg * for each entry in the provision list for S, add a requirement to
572 1.1 mrg * that provisions filenode for P.
573 1.1 mrg */
574 1.1 mrg void
575 1.1 mrg insert_before()
576 1.1 mrg {
577 1.1 mrg Hash_Entry *entry, *fake_prov_entry;
578 1.1 mrg provnode *pnode;
579 1.1 mrg f_reqnode *rnode;
580 1.5 mrg strnodelist *bl;
581 1.1 mrg int new;
582 1.1 mrg
583 1.1 mrg while (bl_list != NULL) {
584 1.1 mrg bl = bl_list->next;
585 1.1 mrg
586 1.1 mrg fake_prov_entry = make_fake_provision(bl_list->node);
587 1.1 mrg
588 1.1 mrg entry = Hash_CreateEntry(provide_hash, bl_list->s, &new);
589 1.1 mrg if (new == 1)
590 1.1 mrg warnx("file `%s' is before unknown provision `%s'", bl_list->node->filename, bl_list->s);
591 1.1 mrg
592 1.1 mrg for (pnode = Hash_GetValue(entry); pnode; pnode = pnode->next) {
593 1.1 mrg if (pnode->head)
594 1.1 mrg continue;
595 1.1 mrg
596 1.1 mrg rnode = emalloc(sizeof(*rnode));
597 1.1 mrg rnode->entry = fake_prov_entry;
598 1.1 mrg rnode->next = pnode->fnode->req_list;
599 1.1 mrg pnode->fnode->req_list = rnode;
600 1.1 mrg }
601 1.1 mrg
602 1.1 mrg free(bl_list);
603 1.1 mrg bl_list = bl;
604 1.1 mrg }
605 1.1 mrg }
606 1.1 mrg
607 1.1 mrg /*
608 1.1 mrg * loop over all the files calling crunch_file() on them to do the
609 1.1 mrg * real work. after we have built all the nodes, insert the BEFORE:
610 1.1 mrg * lines into graph(s).
611 1.1 mrg */
612 1.1 mrg void
613 1.1 mrg crunch_all_files()
614 1.1 mrg {
615 1.1 mrg int i;
616 1.1 mrg
617 1.1 mrg for (i = 0; i < file_count; i++)
618 1.1 mrg crunch_file(file_list[i]);
619 1.1 mrg insert_before();
620 1.1 mrg }
621 1.1 mrg
622 1.1 mrg /*
623 1.1 mrg * below are the functions that traverse the graphs we have built
624 1.1 mrg * finding out the desired ordering, printing each file in turn.
625 1.1 mrg * if missing requirements, or cyclic graphs are detected, a
626 1.1 mrg * warning will be issued, and we will continue on..
627 1.1 mrg */
628 1.1 mrg
629 1.1 mrg /*
630 1.1 mrg * given a requirement node (in a filename) we attempt to satisfy it.
631 1.1 mrg * we do some sanity checking first, to ensure that we have providers,
632 1.1 mrg * aren't already satisfied and aren't already being satisfied (ie,
633 1.1 mrg * cyclic). if we pass all this, we loop over the provision list
634 1.1 mrg * calling do_file() (enter recursion) for each filenode in this
635 1.1 mrg * provision.
636 1.1 mrg */
637 1.1 mrg void
638 1.1 mrg satisfy_req(rnode, filename)
639 1.1 mrg f_reqnode *rnode;
640 1.1 mrg char *filename;
641 1.1 mrg {
642 1.1 mrg Hash_Entry *entry;
643 1.1 mrg provnode *head;
644 1.1 mrg
645 1.1 mrg entry = rnode->entry;
646 1.1 mrg head = Hash_GetValue(entry);
647 1.1 mrg
648 1.1 mrg if (head == NULL) {
649 1.1 mrg warnx("requirement `%s' in file `%s' has no providers.",
650 1.1 mrg Hash_GetKey(entry), filename);
651 1.1 mrg exit_code = 1;
652 1.1 mrg return;
653 1.1 mrg }
654 1.1 mrg
655 1.1 mrg /* return if the requirement is already satisfied. */
656 1.1 mrg if (head->next == NULL)
657 1.1 mrg return;
658 1.1 mrg
659 1.1 mrg /*
660 1.1 mrg * if list is marked as in progress,
661 1.1 mrg * print that there is a circular dependency on it and abort
662 1.1 mrg */
663 1.1 mrg if (head->in_progress == SET) {
664 1.1 mrg warnx("Circular dependency on provision `%s' in file `%s'.",
665 1.1 mrg Hash_GetKey(entry), filename);
666 1.1 mrg exit_code = 1;
667 1.1 mrg return;
668 1.1 mrg }
669 1.1 mrg
670 1.1 mrg head->in_progress = SET;
671 1.1 mrg
672 1.1 mrg /*
673 1.1 mrg * while provision_list is not empty
674 1.1 mrg * do_file(first_member_of(provision_list));
675 1.1 mrg */
676 1.1 mrg while (head->next != NULL)
677 1.1 mrg do_file(head->next->fnode);
678 1.1 mrg }
679 1.1 mrg
680 1.5 mrg int
681 1.5 mrg skip_ok(fnode)
682 1.5 mrg filenode *fnode;
683 1.5 mrg {
684 1.5 mrg strnodelist *s;
685 1.5 mrg strnodelist *k;
686 1.5 mrg
687 1.5 mrg for (s = skip_list; s; s = s->next)
688 1.5 mrg for (k = fnode->keyword_list; k; k = k->next)
689 1.5 mrg if (strcmp(k->s, s->s) == 0)
690 1.5 mrg return (0);
691 1.5 mrg
692 1.5 mrg return (1);
693 1.5 mrg }
694 1.5 mrg
695 1.5 mrg int
696 1.5 mrg keep_ok(fnode)
697 1.5 mrg filenode *fnode;
698 1.5 mrg {
699 1.5 mrg strnodelist *s;
700 1.5 mrg strnodelist *k;
701 1.5 mrg
702 1.5 mrg for (s = keep_list; s; s = s->next)
703 1.5 mrg for (k = fnode->keyword_list; k; k = k->next)
704 1.5 mrg if (strcmp(k->s, s->s) == 0)
705 1.5 mrg return (1);
706 1.5 mrg
707 1.5 mrg /* an empty keep_list means every one */
708 1.5 mrg return (!keep_list);
709 1.5 mrg }
710 1.5 mrg
711 1.1 mrg /*
712 1.1 mrg * given a filenode, we ensure we are not a cyclic graph. if this
713 1.1 mrg * is ok, we loop over the filenodes requirements, calling satisfy_req()
714 1.1 mrg * for each of them.. once we have done this, remove this filenode
715 1.1 mrg * from each provision table, as we are now done.
716 1.1 mrg */
717 1.1 mrg void
718 1.1 mrg do_file(fnode)
719 1.1 mrg filenode *fnode;
720 1.1 mrg {
721 1.1 mrg f_reqnode *r, *r_tmp;
722 1.1 mrg f_provnode *p, *p_tmp;
723 1.1 mrg provnode *pnode;
724 1.1 mrg int was_set;
725 1.1 mrg
726 1.1 mrg DPRINTF((stderr, "do_file on %s.\n", fnode->filename));
727 1.1 mrg
728 1.1 mrg /*
729 1.1 mrg * if fnode is marked as in progress,
730 1.1 mrg * print that fnode; is circularly depended upon and abort.
731 1.1 mrg */
732 1.1 mrg if (fnode->in_progress == SET) {
733 1.1 mrg warnx("Circular dependency on file `%s'.",
734 1.1 mrg fnode->filename);
735 1.1 mrg was_set = exit_code = 1;
736 1.1 mrg } else
737 1.1 mrg was_set = 0;
738 1.1 mrg
739 1.1 mrg /* mark fnode */
740 1.1 mrg fnode->in_progress = SET;
741 1.1 mrg
742 1.1 mrg /*
743 1.1 mrg * for each requirement of fnode -> r
744 1.1 mrg * satisfy_req(r, filename)
745 1.1 mrg */
746 1.1 mrg r = fnode->req_list;
747 1.1 mrg while (r != NULL) {
748 1.1 mrg r_tmp = r;
749 1.1 mrg satisfy_req(r, fnode->filename);
750 1.1 mrg r = r->next;
751 1.1 mrg free(r_tmp);
752 1.1 mrg }
753 1.1 mrg fnode->req_list = NULL;
754 1.1 mrg
755 1.1 mrg /*
756 1.1 mrg * for each provision of fnode -> p
757 1.1 mrg * remove fnode from provision list for p in hash table
758 1.1 mrg */
759 1.1 mrg p = fnode->prov_list;
760 1.1 mrg while (p != NULL) {
761 1.1 mrg p_tmp = p;
762 1.1 mrg pnode = p->pnode;
763 1.1 mrg if (pnode->next != NULL) {
764 1.1 mrg pnode->next->last = pnode->last;
765 1.1 mrg }
766 1.1 mrg if (pnode->last != NULL) {
767 1.1 mrg pnode->last->next = pnode->next;
768 1.1 mrg }
769 1.1 mrg free(pnode);
770 1.1 mrg p = p->next;
771 1.1 mrg free(p_tmp);
772 1.1 mrg }
773 1.1 mrg fnode->prov_list = NULL;
774 1.1 mrg
775 1.1 mrg /* do_it(fnode) */
776 1.1 mrg DPRINTF((stderr, "next do: "));
777 1.1 mrg
778 1.1 mrg /* if we were already in progress, don't print again */
779 1.5 mrg if (was_set == 0 && skip_ok(fnode) && keep_ok(fnode))
780 1.1 mrg printf("%s\n", fnode->filename);
781 1.1 mrg
782 1.1 mrg if (fnode->next != NULL) {
783 1.1 mrg fnode->next->last = fnode->last;
784 1.1 mrg }
785 1.1 mrg if (fnode->last != NULL) {
786 1.1 mrg fnode->last->next = fnode->next;
787 1.1 mrg }
788 1.1 mrg
789 1.1 mrg DPRINTF((stderr, "nuking %s\n", fnode->filename));
790 1.1 mrg free(fnode->filename);
791 1.1 mrg free(fnode);
792 1.1 mrg }
793 1.1 mrg
794 1.1 mrg void
795 1.1 mrg generate_ordering()
796 1.1 mrg {
797 1.1 mrg
798 1.1 mrg /*
799 1.1 mrg * while there remain undone files{f},
800 1.1 mrg * pick an arbitrary f, and do_file(f)
801 1.1 mrg * Note that the first file in the file list is perfectly
802 1.1 mrg * arbitrary, and easy to find, so we use that.
803 1.1 mrg */
804 1.1 mrg
805 1.1 mrg /*
806 1.1 mrg * N.B.: the file nodes "self delete" after they execute, so
807 1.1 mrg * after each iteration of the loop, the head will be pointing
808 1.1 mrg * to something totally different. The loop ends up being
809 1.1 mrg * executed only once for every strongly connected set of
810 1.1 mrg * nodes.
811 1.1 mrg */
812 1.1 mrg while (fn_head->next != NULL) {
813 1.1 mrg DPRINTF((stderr, "generate on %s\n", fn_head->next->filename));
814 1.1 mrg do_file(fn_head->next);
815 1.1 mrg }
816 1.1 mrg }
817