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1 /*
2 * Copyright © 2000 Keith Packard
3 * Copyright © 2005 Patrick Lam
4 *
5 * Permission to use, copy, modify, distribute, and sell this software and its
6 * documentation for any purpose is hereby granted without fee, provided that
7 * the above copyright notice appear in all copies and that both that
8 * copyright notice and this permission notice appear in supporting
9 * documentation, and that the name of the author(s) not be used in
10 * advertising or publicity pertaining to distribution of the software without
11 * specific, written prior permission. The authors make no
12 * representations about the suitability of this software for any purpose. It
13 * is provided "as is" without express or implied warranty.
14 *
15 * THE AUTHOR(S) DISCLAIMS ALL WARRANTIES WITH REGARD TO THIS SOFTWARE,
16 * INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS, IN NO
17 * EVENT SHALL THE AUTHOR(S) BE LIABLE FOR ANY SPECIAL, INDIRECT OR
18 * CONSEQUENTIAL DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF USE,
19 * DATA OR PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER
20 * TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
21 * PERFORMANCE OF THIS SOFTWARE.
22 */
23
24 #include "fcint.h"
25 #include "../fc-arch/fcarch.h"
26 #include <stdio.h>
27 #include <fcntl.h>
28 #include <dirent.h>
29 #include <string.h>
30 #include <sys/types.h>
31 #include <assert.h>
32 #if defined(HAVE_MMAP) || defined(__CYGWIN__)
33 # include <unistd.h>
34 # include <sys/mman.h>
35 #elif defined(_WIN32)
36 # define _WIN32_WINNT 0x0500
37 # include <windows.h>
38 #endif
39
40 #ifndef O_BINARY
41 #define O_BINARY 0
42 #endif
43
44 struct MD5Context {
45 FcChar32 buf[4];
46 FcChar32 bits[2];
47 unsigned char in[64];
48 };
49
50 static void MD5Init(struct MD5Context *ctx);
51 static void MD5Update(struct MD5Context *ctx, const unsigned char *buf, unsigned len);
52 static void MD5Final(unsigned char digest[16], struct MD5Context *ctx);
53 static void MD5Transform(FcChar32 buf[4], FcChar32 in[16]);
54
55 #define CACHEBASE_LEN (1 + 32 + 1 + sizeof (FC_ARCHITECTURE) + sizeof (FC_CACHE_SUFFIX))
56
57 #ifdef _WIN32
58
59 #include <windows.h>
60
61 #ifdef __GNUC__
62 typedef long long INT64;
63 #define EPOCH_OFFSET 11644473600ll
64 #else
65 #define EPOCH_OFFSET 11644473600i64
66 typedef __int64 INT64;
67 #endif
68
69 /* Workaround for problems in the stat() in the Microsoft C library:
70 *
71 * 1) stat() uses FindFirstFile() to get the file
72 * attributes. Unfortunately this API doesn't return correct values
73 * for modification time of a directory until some time after a file
74 * or subdirectory has been added to the directory. (This causes
75 * run-test.sh to fail, for instance.) GetFileAttributesEx() is
76 * better, it returns the updated timestamp right away.
77 *
78 * 2) stat() does some strange things related to backward
79 * compatibility with the local time timestamps on FAT volumes and
80 * daylight saving time. This causes problems after the switches
81 * to/from daylight saving time. See
82 * http://bugzilla.gnome.org/show_bug.cgi?id=154968 , especially
83 * comment #30, and http://www.codeproject.com/datetime/dstbugs.asp .
84 * We don't need any of that, FAT and Win9x are as good as dead. So
85 * just use the UTC timestamps from NTFS, converted to the Unix epoch.
86 */
87
88 int
89 FcStat (const char *file, struct stat *statb)
90 {
91 WIN32_FILE_ATTRIBUTE_DATA wfad;
92 char full_path_name[MAX_PATH];
93 char *basename;
94 DWORD rc;
95
96 if (!GetFileAttributesEx (file, GetFileExInfoStandard, &wfad))
97 return -1;
98
99 statb->st_dev = 0;
100
101 /* Calculate a pseudo inode number as a hash of the full path name.
102 * Call GetLongPathName() to get the spelling of the path name as it
103 * is on disk.
104 */
105 rc = GetFullPathName (file, sizeof (full_path_name), full_path_name, &basename);
106 if (rc == 0 || rc > sizeof (full_path_name))
107 return -1;
108
109 rc = GetLongPathName (full_path_name, full_path_name, sizeof (full_path_name));
110 statb->st_ino = FcStringHash (full_path_name);
111
112 statb->st_mode = _S_IREAD | _S_IWRITE;
113 statb->st_mode |= (statb->st_mode >> 3) | (statb->st_mode >> 6);
114
115 if (wfad.dwFileAttributes & FILE_ATTRIBUTE_DIRECTORY)
116 statb->st_mode |= _S_IFDIR;
117 else
118 statb->st_mode |= _S_IFREG;
119
120 statb->st_nlink = 1;
121 statb->st_uid = statb->st_gid = 0;
122 statb->st_rdev = 0;
123
124 if (wfad.nFileSizeHigh > 0)
125 return -1;
126 statb->st_size = wfad.nFileSizeLow;
127
128 statb->st_atime = (*(INT64 *)&wfad.ftLastAccessTime)/10000000 - EPOCH_OFFSET;
129 statb->st_mtime = (*(INT64 *)&wfad.ftLastWriteTime)/10000000 - EPOCH_OFFSET;
130 statb->st_ctime = statb->st_mtime;
131
132 return 0;
133 }
134 #endif
135
136 static const char bin2hex[] = { '0', '1', '2', '3',
137 '4', '5', '6', '7',
138 '8', '9', 'a', 'b',
139 'c', 'd', 'e', 'f' };
140
141 static FcChar8 *
142 FcDirCacheBasename (const FcChar8 * dir, FcChar8 cache_base[CACHEBASE_LEN])
143 {
144 unsigned char hash[16];
145 FcChar8 *hex_hash;
146 int cnt;
147 struct MD5Context ctx;
148
149 MD5Init (&ctx);
150 MD5Update (&ctx, (const unsigned char *)dir, strlen ((const char *) dir));
151
152 MD5Final (hash, &ctx);
153
154 cache_base[0] = '/';
155 hex_hash = cache_base + 1;
156 for (cnt = 0; cnt < 16; ++cnt)
157 {
158 hex_hash[2*cnt ] = bin2hex[hash[cnt] >> 4];
159 hex_hash[2*cnt+1] = bin2hex[hash[cnt] & 0xf];
160 }
161 hex_hash[2*cnt] = 0;
162 strcat ((char *) cache_base, "-" FC_ARCHITECTURE FC_CACHE_SUFFIX);
163
164 return cache_base;
165 }
166
167 FcBool
168 FcDirCacheUnlink (const FcChar8 *dir, FcConfig *config)
169 {
170 FcChar8 *cache_hashed = NULL;
171 FcChar8 cache_base[CACHEBASE_LEN];
172 FcStrList *list;
173 FcChar8 *cache_dir;
174
175 FcDirCacheBasename (dir, cache_base);
176
177 list = FcStrListCreate (config->cacheDirs);
178 if (!list)
179 return FcFalse;
180
181 while ((cache_dir = FcStrListNext (list)))
182 {
183 cache_hashed = FcStrPlus (cache_dir, cache_base);
184 if (!cache_hashed)
185 break;
186 (void) unlink ((char *) cache_hashed);
187 FcStrFree (cache_hashed);
188 }
189 FcStrListDone (list);
190 /* return FcFalse if something went wrong */
191 if (cache_dir)
192 return FcFalse;
193 return FcTrue;
194 }
195
196 static int
197 FcDirCacheOpenFile (const FcChar8 *cache_file, struct stat *file_stat)
198 {
199 int fd;
200
201 #ifdef _WIN32
202 if (FcStat (cache_file, file_stat) < 0)
203 return -1;
204 #endif
205 fd = open((char *) cache_file, O_RDONLY | O_BINARY);
206 if (fd < 0)
207 return fd;
208 #ifndef _WIN32
209 if (fstat (fd, file_stat) < 0)
210 {
211 close (fd);
212 return -1;
213 }
214 #endif
215 return fd;
216 }
217
218 /*
219 * Look for a cache file for the specified dir. Attempt
220 * to use each one we find, stopping when the callback
221 * indicates success
222 */
223 static FcBool
224 FcDirCacheProcess (FcConfig *config, const FcChar8 *dir,
225 FcBool (*callback) (int fd, struct stat *fd_stat,
226 struct stat *dir_stat, void *closure),
227 void *closure, FcChar8 **cache_file_ret)
228 {
229 int fd = -1;
230 FcChar8 cache_base[CACHEBASE_LEN];
231 FcStrList *list;
232 FcChar8 *cache_dir;
233 struct stat file_stat, dir_stat;
234 FcBool ret = FcFalse;
235
236 if (FcStat ((char *) dir, &dir_stat) < 0)
237 return FcFalse;
238
239 FcDirCacheBasename (dir, cache_base);
240
241 list = FcStrListCreate (config->cacheDirs);
242 if (!list)
243 return FcFalse;
244
245 while ((cache_dir = FcStrListNext (list)))
246 {
247 FcChar8 *cache_hashed = FcStrPlus (cache_dir, cache_base);
248 if (!cache_hashed)
249 break;
250 fd = FcDirCacheOpenFile (cache_hashed, &file_stat);
251 if (fd >= 0) {
252 ret = (*callback) (fd, &file_stat, &dir_stat, closure);
253 close (fd);
254 if (ret)
255 {
256 if (cache_file_ret)
257 *cache_file_ret = cache_hashed;
258 else
259 FcStrFree (cache_hashed);
260 break;
261 }
262 }
263 FcStrFree (cache_hashed);
264 }
265 FcStrListDone (list);
266
267 return ret;
268 }
269
270 #define FC_CACHE_MIN_MMAP 1024
271
272 /*
273 * Skip list element, make sure the 'next' pointer is the last thing
274 * in the structure, it will be allocated large enough to hold all
275 * of the necessary pointers
276 */
277
278 typedef struct _FcCacheSkip FcCacheSkip;
279
280 struct _FcCacheSkip {
281 FcCache *cache;
282 int ref;
283 intptr_t size;
284 dev_t cache_dev;
285 ino_t cache_ino;
286 time_t cache_mtime;
287 FcCacheSkip *next[1];
288 };
289
290 /*
291 * The head of the skip list; pointers for every possible level
292 * in the skip list, plus the largest level in the list
293 */
294
295 #define FC_CACHE_MAX_LEVEL 16
296
297 static FcCacheSkip *fcCacheChains[FC_CACHE_MAX_LEVEL];
298 static int fcCacheMaxLevel;
299
300 #if HAVE_RANDOM
301 # define FcRandom() random()
302 #else
303 # if HAVE_LRAND48
304 # define FcRandom() lrand48()
305 # else
306 # if HAVE_RAND
307 # define FcRandom() rand()
308 # endif
309 # endif
310 #endif
311 /*
312 * Generate a random level number, distributed
313 * so that each level is 1/4 as likely as the one before
314 *
315 * Note that level numbers run 1 <= level <= MAX_LEVEL
316 */
317 static int
318 random_level (void)
319 {
320 /* tricky bit -- each bit is '1' 75% of the time */
321 long int bits = FcRandom () | FcRandom ();
322 int level = 0;
323
324 while (++level < FC_CACHE_MAX_LEVEL)
325 {
326 if (bits & 1)
327 break;
328 bits >>= 1;
329 }
330 return level;
331 }
332
333 /*
334 * Insert cache into the list
335 */
336 static FcBool
337 FcCacheInsert (FcCache *cache, struct stat *cache_stat)
338 {
339 FcCacheSkip **update[FC_CACHE_MAX_LEVEL];
340 FcCacheSkip *s, **next;
341 int i, level;
342
343 /*
344 * Find links along each chain
345 */
346 next = fcCacheChains;
347 for (i = fcCacheMaxLevel; --i >= 0; )
348 {
349 for (; (s = next[i]); next = s->next)
350 if (s->cache > cache)
351 break;
352 update[i] = &next[i];
353 }
354
355 /*
356 * Create new list element
357 */
358 level = random_level ();
359 if (level > fcCacheMaxLevel)
360 {
361 level = fcCacheMaxLevel + 1;
362 update[fcCacheMaxLevel] = &fcCacheChains[fcCacheMaxLevel];
363 fcCacheMaxLevel = level;
364 }
365
366 s = malloc (sizeof (FcCacheSkip) + (level - 1) * sizeof (FcCacheSkip *));
367 if (!s)
368 return FcFalse;
369
370 s->cache = cache;
371 s->size = cache->size;
372 s->ref = 1;
373 if (cache_stat)
374 {
375 s->cache_dev = cache_stat->st_dev;
376 s->cache_ino = cache_stat->st_ino;
377 s->cache_mtime = cache_stat->st_mtime;
378 }
379 else
380 {
381 s->cache_dev = 0;
382 s->cache_ino = 0;
383 s->cache_mtime = 0;
384 }
385
386 /*
387 * Insert into all fcCacheChains
388 */
389 for (i = 0; i < level; i++)
390 {
391 s->next[i] = *update[i];
392 *update[i] = s;
393 }
394 return FcTrue;
395 }
396
397 static FcCacheSkip *
398 FcCacheFindByAddr (void *object)
399 {
400 int i;
401 FcCacheSkip **next = fcCacheChains;
402 FcCacheSkip *s;
403
404 /*
405 * Walk chain pointers one level at a time
406 */
407 for (i = fcCacheMaxLevel; --i >= 0;)
408 while (next[i] && (char *) object >= ((char *) next[i]->cache + next[i]->size))
409 next = next[i]->next;
410 /*
411 * Here we are
412 */
413 s = next[0];
414 if (s && (char *) object < ((char *) s->cache + s->size))
415 return s;
416 return NULL;
417 }
418
419 static void
420 FcCacheRemove (FcCache *cache)
421 {
422 FcCacheSkip **update[FC_CACHE_MAX_LEVEL];
423 FcCacheSkip *s, **next;
424 int i;
425
426 /*
427 * Find links along each chain
428 */
429 next = fcCacheChains;
430 for (i = fcCacheMaxLevel; --i >= 0; )
431 {
432 for (; (s = next[i]); next = s->next)
433 if (s->cache >= cache)
434 break;
435 update[i] = &next[i];
436 }
437 s = next[0];
438 for (i = 0; i < fcCacheMaxLevel && *update[i] == s; i++)
439 *update[i] = s->next[i];
440 while (fcCacheMaxLevel > 0 && fcCacheChains[fcCacheMaxLevel - 1] == NULL)
441 fcCacheMaxLevel--;
442 free (s);
443 }
444
445 static FcCache *
446 FcCacheFindByStat (struct stat *cache_stat)
447 {
448 FcCacheSkip *s;
449
450 for (s = fcCacheChains[0]; s; s = s->next[0])
451 if (s->cache_dev == cache_stat->st_dev &&
452 s->cache_ino == cache_stat->st_ino &&
453 s->cache_mtime == cache_stat->st_mtime)
454 {
455 s->ref++;
456 return s->cache;
457 }
458 return NULL;
459 }
460
461 static void
462 FcDirCacheDispose (FcCache *cache)
463 {
464 switch (cache->magic) {
465 case FC_CACHE_MAGIC_ALLOC:
466 free (cache);
467 break;
468 case FC_CACHE_MAGIC_MMAP:
469 #if defined(HAVE_MMAP) || defined(__CYGWIN__)
470 munmap (cache, cache->size);
471 #elif defined(_WIN32)
472 UnmapViewOfFile (cache);
473 #endif
474 break;
475 }
476 FcCacheRemove (cache);
477 }
478
479 void
480 FcCacheObjectReference (void *object)
481 {
482 FcCacheSkip *skip = FcCacheFindByAddr (object);
483
484 if (skip)
485 skip->ref++;
486 }
487
488 void
489 FcCacheObjectDereference (void *object)
490 {
491 FcCacheSkip *skip = FcCacheFindByAddr (object);
492
493 if (skip)
494 {
495 skip->ref--;
496 if (skip->ref <= 0)
497 FcDirCacheDispose (skip->cache);
498 }
499 }
500
501 void
502 FcCacheFini (void)
503 {
504 int i;
505
506 for (i = 0; i < FC_CACHE_MAX_LEVEL; i++)
507 assert (fcCacheChains[i] == NULL);
508 assert (fcCacheMaxLevel == 0);
509 }
510
511 static FcBool
512 FcCacheTimeValid (FcCache *cache, struct stat *dir_stat)
513 {
514 struct stat dir_static;
515
516 if (!dir_stat)
517 {
518 if (FcStat ((const char *) FcCacheDir (cache), &dir_static) < 0)
519 return FcFalse;
520 dir_stat = &dir_static;
521 }
522 if (FcDebug () & FC_DBG_CACHE)
523 printf ("FcCacheTimeValid dir \"%s\" cache time %d dir time %d\n",
524 FcCacheDir (cache), cache->mtime, (int) dir_stat->st_mtime);
525 return cache->mtime == (int) dir_stat->st_mtime;
526 }
527
528 /*
529 * Map a cache file into memory
530 */
531 static FcCache *
532 FcDirCacheMapFd (int fd, struct stat *fd_stat, struct stat *dir_stat)
533 {
534 FcCache *cache;
535 FcBool allocated = FcFalse;
536
537 if (fd_stat->st_size < sizeof (FcCache))
538 return NULL;
539 cache = FcCacheFindByStat (fd_stat);
540 if (cache)
541 {
542 if (FcCacheTimeValid (cache, dir_stat))
543 return cache;
544 FcDirCacheUnload (cache);
545 cache = NULL;
546 }
547
548 /*
549 * Lage cache files are mmap'ed, smaller cache files are read. This
550 * balances the system cost of mmap against per-process memory usage.
551 */
552 if (fd_stat->st_size >= FC_CACHE_MIN_MMAP)
553 {
554 #if defined(HAVE_MMAP) || defined(__CYGWIN__)
555 cache = mmap (0, fd_stat->st_size, PROT_READ, MAP_SHARED, fd, 0);
556 if (cache == MAP_FAILED)
557 cache = NULL;
558 #elif defined(_WIN32)
559 {
560 HANDLE hFileMap;
561
562 cache = NULL;
563 hFileMap = CreateFileMapping((HANDLE) _get_osfhandle(fd), NULL,
564 PAGE_READONLY, 0, 0, NULL);
565 if (hFileMap != NULL)
566 {
567 cache = MapViewOfFile (hFileMap, FILE_MAP_READ, 0, 0,
568 fd_stat->st_size);
569 CloseHandle (hFileMap);
570 }
571 }
572 #endif
573 }
574 if (!cache)
575 {
576 cache = malloc (fd_stat->st_size);
577 if (!cache)
578 return NULL;
579
580 if (read (fd, cache, fd_stat->st_size) != fd_stat->st_size)
581 {
582 free (cache);
583 return NULL;
584 }
585 allocated = FcTrue;
586 }
587 if (cache->magic != FC_CACHE_MAGIC_MMAP ||
588 cache->version < FC_CACHE_CONTENT_VERSION ||
589 cache->size != fd_stat->st_size ||
590 !FcCacheTimeValid (cache, dir_stat) ||
591 !FcCacheInsert (cache, fd_stat))
592 {
593 if (allocated)
594 free (cache);
595 else
596 {
597 #if defined(HAVE_MMAP) || defined(__CYGWIN__)
598 munmap (cache, fd_stat->st_size);
599 #elif defined(_WIN32)
600 UnmapViewOfFile (cache);
601 #endif
602 }
603 return NULL;
604 }
605
606 /* Mark allocated caches so they're freed rather than unmapped */
607 if (allocated)
608 cache->magic = FC_CACHE_MAGIC_ALLOC;
609
610 return cache;
611 }
612
613 void
614 FcDirCacheReference (FcCache *cache, int nref)
615 {
616 FcCacheSkip *skip = FcCacheFindByAddr (cache);
617
618 if (skip)
619 skip->ref += nref;
620 }
621
622 void
623 FcDirCacheUnload (FcCache *cache)
624 {
625 FcCacheObjectDereference (cache);
626 }
627
628 static FcBool
629 FcDirCacheMapHelper (int fd, struct stat *fd_stat, struct stat *dir_stat, void *closure)
630 {
631 FcCache *cache = FcDirCacheMapFd (fd, fd_stat, dir_stat);
632
633 if (!cache)
634 return FcFalse;
635 *((FcCache **) closure) = cache;
636 return FcTrue;
637 }
638
639 FcCache *
640 FcDirCacheLoad (const FcChar8 *dir, FcConfig *config, FcChar8 **cache_file)
641 {
642 FcCache *cache = NULL;
643
644 if (!FcDirCacheProcess (config, dir,
645 FcDirCacheMapHelper,
646 &cache, cache_file))
647 return NULL;
648 return cache;
649 }
650
651 FcCache *
652 FcDirCacheLoadFile (const FcChar8 *cache_file, struct stat *file_stat)
653 {
654 int fd;
655 FcCache *cache;
656 struct stat my_file_stat;
657
658 if (!file_stat)
659 file_stat = &my_file_stat;
660 fd = FcDirCacheOpenFile (cache_file, file_stat);
661 if (fd < 0)
662 return NULL;
663 cache = FcDirCacheMapFd (fd, file_stat, NULL);
664 close (fd);
665 return cache;
666 }
667
668 /*
669 * Validate a cache file by reading the header and checking
670 * the magic number and the size field
671 */
672 static FcBool
673 FcDirCacheValidateHelper (int fd, struct stat *fd_stat, struct stat *dir_stat, void *closure)
674 {
675 FcBool ret = FcTrue;
676 FcCache c;
677
678 if (read (fd, &c, sizeof (FcCache)) != sizeof (FcCache))
679 ret = FcFalse;
680 else if (c.magic != FC_CACHE_MAGIC_MMAP)
681 ret = FcFalse;
682 else if (c.version < FC_CACHE_CONTENT_VERSION)
683 ret = FcFalse;
684 else if (fd_stat->st_size != c.size)
685 ret = FcFalse;
686 else if (c.mtime != (int) dir_stat->st_mtime)
687 ret = FcFalse;
688 return ret;
689 }
690
691 static FcBool
692 FcDirCacheValidConfig (const FcChar8 *dir, FcConfig *config)
693 {
694 return FcDirCacheProcess (config, dir,
695 FcDirCacheValidateHelper,
696 NULL, NULL);
697 }
698
699 FcBool
700 FcDirCacheValid (const FcChar8 *dir)
701 {
702 FcConfig *config;
703
704 config = FcConfigGetCurrent ();
705 if (!config)
706 return FcFalse;
707
708 return FcDirCacheValidConfig (dir, config);
709 }
710
711 /*
712 * Build a cache structure from the given contents
713 */
714 FcCache *
715 FcDirCacheBuild (FcFontSet *set, const FcChar8 *dir, struct stat *dir_stat, FcStrSet *dirs)
716 {
717 FcSerialize *serialize = FcSerializeCreate ();
718 FcCache *cache;
719 int i;
720 intptr_t cache_offset;
721 intptr_t dirs_offset;
722 FcChar8 *dir_serialize;
723 intptr_t *dirs_serialize;
724 FcFontSet *set_serialize;
725
726 if (!serialize)
727 return NULL;
728 /*
729 * Space for cache structure
730 */
731 cache_offset = FcSerializeReserve (serialize, sizeof (FcCache));
732 /*
733 * Directory name
734 */
735 if (!FcStrSerializeAlloc (serialize, dir))
736 goto bail1;
737 /*
738 * Subdirs
739 */
740 dirs_offset = FcSerializeAlloc (serialize, dirs, dirs->num * sizeof (FcChar8 *));
741 for (i = 0; i < dirs->num; i++)
742 if (!FcStrSerializeAlloc (serialize, dirs->strs[i]))
743 goto bail1;
744
745 /*
746 * Patterns
747 */
748 if (!FcFontSetSerializeAlloc (serialize, set))
749 goto bail1;
750
751 /* Serialize layout complete. Now allocate space and fill it */
752 cache = malloc (serialize->size);
753 if (!cache)
754 goto bail1;
755 /* shut up valgrind */
756 memset (cache, 0, serialize->size);
757
758 serialize->linear = cache;
759
760 cache->magic = FC_CACHE_MAGIC_ALLOC;
761 cache->version = FC_CACHE_CONTENT_VERSION;
762 cache->size = serialize->size;
763 cache->mtime = (int) dir_stat->st_mtime;
764
765 /*
766 * Serialize directory name
767 */
768 dir_serialize = FcStrSerialize (serialize, dir);
769 if (!dir_serialize)
770 goto bail2;
771 cache->dir = FcPtrToOffset (cache, dir_serialize);
772
773 /*
774 * Serialize sub dirs
775 */
776 dirs_serialize = FcSerializePtr (serialize, dirs);
777 if (!dirs_serialize)
778 goto bail2;
779 cache->dirs = FcPtrToOffset (cache, dirs_serialize);
780 cache->dirs_count = dirs->num;
781 for (i = 0; i < dirs->num; i++)
782 {
783 FcChar8 *d_serialize = FcStrSerialize (serialize, dirs->strs[i]);
784 if (!d_serialize)
785 goto bail2;
786 dirs_serialize[i] = FcPtrToOffset (dirs_serialize, d_serialize);
787 }
788
789 /*
790 * Serialize font set
791 */
792 set_serialize = FcFontSetSerialize (serialize, set);
793 if (!set_serialize)
794 goto bail2;
795 cache->set = FcPtrToOffset (cache, set_serialize);
796
797 FcSerializeDestroy (serialize);
798
799 FcCacheInsert (cache, NULL);
800
801 return cache;
802
803 bail2:
804 free (cache);
805 bail1:
806 FcSerializeDestroy (serialize);
807 return NULL;
808 }
809
810
811 #ifdef _WIN32
812 #define mkdir(path,mode) _mkdir(path)
813 #endif
814
815 static FcBool
816 FcMakeDirectory (const FcChar8 *dir)
817 {
818 FcChar8 *parent;
819 FcBool ret;
820
821 if (strlen ((char *) dir) == 0)
822 return FcFalse;
823
824 parent = FcStrDirname (dir);
825 if (!parent)
826 return FcFalse;
827 if (access ((char *) parent, F_OK) == 0)
828 ret = mkdir ((char *) dir, 0755) == 0 && chmod ((char *) dir, 0755) == 0;
829 else if (access ((char *) parent, F_OK) == -1)
830 ret = FcMakeDirectory (parent) && (mkdir ((char *) dir, 0755) == 0) && chmod ((char *) dir, 0755) == 0;
831 else
832 ret = FcFalse;
833 FcStrFree (parent);
834 return ret;
835 }
836
837 /* write serialized state to the cache file */
838 FcBool
839 FcDirCacheWrite (FcCache *cache, FcConfig *config)
840 {
841 FcChar8 *dir = FcCacheDir (cache);
842 FcChar8 cache_base[CACHEBASE_LEN];
843 FcChar8 *cache_hashed;
844 int fd;
845 FcAtomic *atomic;
846 FcStrList *list;
847 FcChar8 *cache_dir = NULL;
848 FcChar8 *test_dir;
849 FcCacheSkip *skip;
850 struct stat cache_stat;
851 int magic;
852 int written;
853
854 /*
855 * Write it to the first directory in the list which is writable
856 */
857
858 list = FcStrListCreate (config->cacheDirs);
859 if (!list)
860 return FcFalse;
861 while ((test_dir = FcStrListNext (list))) {
862 if (access ((char *) test_dir, W_OK|X_OK) == 0)
863 {
864 cache_dir = test_dir;
865 break;
866 }
867 else
868 {
869 /*
870 * If the directory doesn't exist, try to create it
871 */
872 if (access ((char *) test_dir, F_OK) == -1) {
873 if (FcMakeDirectory (test_dir))
874 {
875 cache_dir = test_dir;
876 break;
877 }
878 }
879 /*
880 * Otherwise, try making it writable
881 */
882 else if (chmod ((char *) test_dir, 0755) == 0)
883 {
884 cache_dir = test_dir;
885 break;
886 }
887 }
888 }
889 FcStrListDone (list);
890 if (!cache_dir)
891 return FcFalse;
892
893 FcDirCacheBasename (dir, cache_base);
894 cache_hashed = FcStrPlus (cache_dir, cache_base);
895 if (!cache_hashed)
896 return FcFalse;
897
898 if (FcDebug () & FC_DBG_CACHE)
899 printf ("FcDirCacheWriteDir dir \"%s\" file \"%s\"\n",
900 dir, cache_hashed);
901
902 atomic = FcAtomicCreate ((FcChar8 *)cache_hashed);
903 if (!atomic)
904 goto bail1;
905
906 if (!FcAtomicLock (atomic))
907 goto bail3;
908
909 fd = open((char *)FcAtomicNewFile (atomic), O_RDWR | O_CREAT | O_BINARY, 0666);
910 if (fd == -1)
911 goto bail4;
912
913 /* Temporarily switch magic to MMAP while writing to file */
914 magic = cache->magic;
915 if (magic != FC_CACHE_MAGIC_MMAP)
916 cache->magic = FC_CACHE_MAGIC_MMAP;
917
918 /*
919 * Write cache contents to file
920 */
921 written = write (fd, cache, cache->size);
922
923 /* Switch magic back */
924 if (magic != FC_CACHE_MAGIC_MMAP)
925 cache->magic = magic;
926
927 if (written != cache->size)
928 {
929 perror ("write cache");
930 goto bail5;
931 }
932
933 close(fd);
934 if (!FcAtomicReplaceOrig(atomic))
935 goto bail4;
936
937 /* If the file is small, update the cache chain entry such that the
938 * new cache file is not read again. If it's large, we don't do that
939 * such that we reload it, using mmap, which is shared across processes.
940 */
941 if (cache->size < FC_CACHE_MIN_MMAP &&
942 (skip = FcCacheFindByAddr (cache)) &&
943 FcStat (cache_hashed, &cache_stat))
944 {
945 skip->cache_dev = cache_stat.st_dev;
946 skip->cache_ino = cache_stat.st_ino;
947 skip->cache_mtime = cache_stat.st_mtime;
948 }
949
950 FcStrFree (cache_hashed);
951 FcAtomicUnlock (atomic);
952 FcAtomicDestroy (atomic);
953 return FcTrue;
954
955 bail5:
956 close (fd);
957 bail4:
958 FcAtomicUnlock (atomic);
959 bail3:
960 FcAtomicDestroy (atomic);
961 bail1:
962 FcStrFree (cache_hashed);
963 return FcFalse;
964 }
965
966 /*
967 * Hokey little macro trick to permit the definitions of C functions
968 * with the same name as CPP macros
969 */
970 #define args1(x) (x)
971 #define args2(x,y) (x,y)
972
973 const FcChar8 *
974 FcCacheDir args1(const FcCache *c)
975 {
976 return FcCacheDir (c);
977 }
978
979 FcFontSet *
980 FcCacheCopySet args1(const FcCache *c)
981 {
982 FcFontSet *old = FcCacheSet (c);
983 FcFontSet *new = FcFontSetCreate ();
984 int i;
985
986 if (!new)
987 return NULL;
988 for (i = 0; i < old->nfont; i++)
989 {
990 FcPattern *font = FcFontSetFont (old, i);
991
992 FcPatternReference (font);
993 if (!FcFontSetAdd (new, font))
994 {
995 FcFontSetDestroy (new);
996 return NULL;
997 }
998 }
999 return new;
1000 }
1001
1002 const FcChar8 *
1003 FcCacheSubdir args2(const FcCache *c, int i)
1004 {
1005 return FcCacheSubdir (c, i);
1006 }
1007
1008 int
1009 FcCacheNumSubdir args1(const FcCache *c)
1010 {
1011 return c->dirs_count;
1012 }
1013
1014 int
1015 FcCacheNumFont args1(const FcCache *c)
1016 {
1017 return FcCacheSet(c)->nfont;
1018 }
1019
1020 /*
1021 * This code implements the MD5 message-digest algorithm.
1022 * The algorithm is due to Ron Rivest. This code was
1023 * written by Colin Plumb in 1993, no copyright is claimed.
1024 * This code is in the public domain; do with it what you wish.
1025 *
1026 * Equivalent code is available from RSA Data Security, Inc.
1027 * This code has been tested against that, and is equivalent,
1028 * except that you don't need to include two pages of legalese
1029 * with every copy.
1030 *
1031 * To compute the message digest of a chunk of bytes, declare an
1032 * MD5Context structure, pass it to MD5Init, call MD5Update as
1033 * needed on buffers full of bytes, and then call MD5Final, which
1034 * will fill a supplied 16-byte array with the digest.
1035 */
1036
1037 #ifndef HIGHFIRST
1038 #define byteReverse(buf, len) /* Nothing */
1039 #else
1040 /*
1041 * Note: this code is harmless on little-endian machines.
1042 */
1043 void byteReverse(unsigned char *buf, unsigned longs)
1044 {
1045 FcChar32 t;
1046 do {
1047 t = (FcChar32) ((unsigned) buf[3] << 8 | buf[2]) << 16 |
1048 ((unsigned) buf[1] << 8 | buf[0]);
1049 *(FcChar32 *) buf = t;
1050 buf += 4;
1051 } while (--longs);
1052 }
1053 #endif
1054
1055 /*
1056 * Start MD5 accumulation. Set bit count to 0 and buffer to mysterious
1057 * initialization constants.
1058 */
1059 static void MD5Init(struct MD5Context *ctx)
1060 {
1061 ctx->buf[0] = 0x67452301;
1062 ctx->buf[1] = 0xefcdab89;
1063 ctx->buf[2] = 0x98badcfe;
1064 ctx->buf[3] = 0x10325476;
1065
1066 ctx->bits[0] = 0;
1067 ctx->bits[1] = 0;
1068 }
1069
1070 /*
1071 * Update context to reflect the concatenation of another buffer full
1072 * of bytes.
1073 */
1074 static void MD5Update(struct MD5Context *ctx, const unsigned char *buf, unsigned len)
1075 {
1076 FcChar32 t;
1077
1078 /* Update bitcount */
1079
1080 t = ctx->bits[0];
1081 if ((ctx->bits[0] = t + ((FcChar32) len << 3)) < t)
1082 ctx->bits[1]++; /* Carry from low to high */
1083 ctx->bits[1] += len >> 29;
1084
1085 t = (t >> 3) & 0x3f; /* Bytes already in shsInfo->data */
1086
1087 /* Handle any leading odd-sized chunks */
1088
1089 if (t) {
1090 unsigned char *p = (unsigned char *) ctx->in + t;
1091
1092 t = 64 - t;
1093 if (len < t) {
1094 memcpy(p, buf, len);
1095 return;
1096 }
1097 memcpy(p, buf, t);
1098 byteReverse(ctx->in, 16);
1099 MD5Transform(ctx->buf, (FcChar32 *) ctx->in);
1100 buf += t;
1101 len -= t;
1102 }
1103 /* Process data in 64-byte chunks */
1104
1105 while (len >= 64) {
1106 memcpy(ctx->in, buf, 64);
1107 byteReverse(ctx->in, 16);
1108 MD5Transform(ctx->buf, (FcChar32 *) ctx->in);
1109 buf += 64;
1110 len -= 64;
1111 }
1112
1113 /* Handle any remaining bytes of data. */
1114
1115 memcpy(ctx->in, buf, len);
1116 }
1117
1118 /*
1119 * Final wrapup - pad to 64-byte boundary with the bit pattern
1120 * 1 0* (64-bit count of bits processed, MSB-first)
1121 */
1122 static void MD5Final(unsigned char digest[16], struct MD5Context *ctx)
1123 {
1124 unsigned count;
1125 unsigned char *p;
1126
1127 /* Compute number of bytes mod 64 */
1128 count = (ctx->bits[0] >> 3) & 0x3F;
1129
1130 /* Set the first char of padding to 0x80. This is safe since there is
1131 always at least one byte free */
1132 p = ctx->in + count;
1133 *p++ = 0x80;
1134
1135 /* Bytes of padding needed to make 64 bytes */
1136 count = 64 - 1 - count;
1137
1138 /* Pad out to 56 mod 64 */
1139 if (count < 8) {
1140 /* Two lots of padding: Pad the first block to 64 bytes */
1141 memset(p, 0, count);
1142 byteReverse(ctx->in, 16);
1143 MD5Transform(ctx->buf, (FcChar32 *) ctx->in);
1144
1145 /* Now fill the next block with 56 bytes */
1146 memset(ctx->in, 0, 56);
1147 } else {
1148 /* Pad block to 56 bytes */
1149 memset(p, 0, count - 8);
1150 }
1151 byteReverse(ctx->in, 14);
1152
1153 /* Append length in bits and transform */
1154 ((FcChar32 *) ctx->in)[14] = ctx->bits[0];
1155 ((FcChar32 *) ctx->in)[15] = ctx->bits[1];
1156
1157 MD5Transform(ctx->buf, (FcChar32 *) ctx->in);
1158 byteReverse((unsigned char *) ctx->buf, 4);
1159 memcpy(digest, ctx->buf, 16);
1160 memset(ctx, 0, sizeof(ctx)); /* In case it's sensitive */
1161 }
1162
1163
1164 /* The four core functions - F1 is optimized somewhat */
1165
1166 /* #define F1(x, y, z) (x & y | ~x & z) */
1167 #define F1(x, y, z) (z ^ (x & (y ^ z)))
1168 #define F2(x, y, z) F1(z, x, y)
1169 #define F3(x, y, z) (x ^ y ^ z)
1170 #define F4(x, y, z) (y ^ (x | ~z))
1171
1172 /* This is the central step in the MD5 algorithm. */
1173 #define MD5STEP(f, w, x, y, z, data, s) \
1174 ( w += f(x, y, z) + data, w = w<<s | w>>(32-s), w += x )
1175
1176 /*
1177 * The core of the MD5 algorithm, this alters an existing MD5 hash to
1178 * reflect the addition of 16 longwords of new data. MD5Update blocks
1179 * the data and converts bytes into longwords for this routine.
1180 */
1181 static void MD5Transform(FcChar32 buf[4], FcChar32 in[16])
1182 {
1183 register FcChar32 a, b, c, d;
1184
1185 a = buf[0];
1186 b = buf[1];
1187 c = buf[2];
1188 d = buf[3];
1189
1190 MD5STEP(F1, a, b, c, d, in[0] + 0xd76aa478, 7);
1191 MD5STEP(F1, d, a, b, c, in[1] + 0xe8c7b756, 12);
1192 MD5STEP(F1, c, d, a, b, in[2] + 0x242070db, 17);
1193 MD5STEP(F1, b, c, d, a, in[3] + 0xc1bdceee, 22);
1194 MD5STEP(F1, a, b, c, d, in[4] + 0xf57c0faf, 7);
1195 MD5STEP(F1, d, a, b, c, in[5] + 0x4787c62a, 12);
1196 MD5STEP(F1, c, d, a, b, in[6] + 0xa8304613, 17);
1197 MD5STEP(F1, b, c, d, a, in[7] + 0xfd469501, 22);
1198 MD5STEP(F1, a, b, c, d, in[8] + 0x698098d8, 7);
1199 MD5STEP(F1, d, a, b, c, in[9] + 0x8b44f7af, 12);
1200 MD5STEP(F1, c, d, a, b, in[10] + 0xffff5bb1, 17);
1201 MD5STEP(F1, b, c, d, a, in[11] + 0x895cd7be, 22);
1202 MD5STEP(F1, a, b, c, d, in[12] + 0x6b901122, 7);
1203 MD5STEP(F1, d, a, b, c, in[13] + 0xfd987193, 12);
1204 MD5STEP(F1, c, d, a, b, in[14] + 0xa679438e, 17);
1205 MD5STEP(F1, b, c, d, a, in[15] + 0x49b40821, 22);
1206
1207 MD5STEP(F2, a, b, c, d, in[1] + 0xf61e2562, 5);
1208 MD5STEP(F2, d, a, b, c, in[6] + 0xc040b340, 9);
1209 MD5STEP(F2, c, d, a, b, in[11] + 0x265e5a51, 14);
1210 MD5STEP(F2, b, c, d, a, in[0] + 0xe9b6c7aa, 20);
1211 MD5STEP(F2, a, b, c, d, in[5] + 0xd62f105d, 5);
1212 MD5STEP(F2, d, a, b, c, in[10] + 0x02441453, 9);
1213 MD5STEP(F2, c, d, a, b, in[15] + 0xd8a1e681, 14);
1214 MD5STEP(F2, b, c, d, a, in[4] + 0xe7d3fbc8, 20);
1215 MD5STEP(F2, a, b, c, d, in[9] + 0x21e1cde6, 5);
1216 MD5STEP(F2, d, a, b, c, in[14] + 0xc33707d6, 9);
1217 MD5STEP(F2, c, d, a, b, in[3] + 0xf4d50d87, 14);
1218 MD5STEP(F2, b, c, d, a, in[8] + 0x455a14ed, 20);
1219 MD5STEP(F2, a, b, c, d, in[13] + 0xa9e3e905, 5);
1220 MD5STEP(F2, d, a, b, c, in[2] + 0xfcefa3f8, 9);
1221 MD5STEP(F2, c, d, a, b, in[7] + 0x676f02d9, 14);
1222 MD5STEP(F2, b, c, d, a, in[12] + 0x8d2a4c8a, 20);
1223
1224 MD5STEP(F3, a, b, c, d, in[5] + 0xfffa3942, 4);
1225 MD5STEP(F3, d, a, b, c, in[8] + 0x8771f681, 11);
1226 MD5STEP(F3, c, d, a, b, in[11] + 0x6d9d6122, 16);
1227 MD5STEP(F3, b, c, d, a, in[14] + 0xfde5380c, 23);
1228 MD5STEP(F3, a, b, c, d, in[1] + 0xa4beea44, 4);
1229 MD5STEP(F3, d, a, b, c, in[4] + 0x4bdecfa9, 11);
1230 MD5STEP(F3, c, d, a, b, in[7] + 0xf6bb4b60, 16);
1231 MD5STEP(F3, b, c, d, a, in[10] + 0xbebfbc70, 23);
1232 MD5STEP(F3, a, b, c, d, in[13] + 0x289b7ec6, 4);
1233 MD5STEP(F3, d, a, b, c, in[0] + 0xeaa127fa, 11);
1234 MD5STEP(F3, c, d, a, b, in[3] + 0xd4ef3085, 16);
1235 MD5STEP(F3, b, c, d, a, in[6] + 0x04881d05, 23);
1236 MD5STEP(F3, a, b, c, d, in[9] + 0xd9d4d039, 4);
1237 MD5STEP(F3, d, a, b, c, in[12] + 0xe6db99e5, 11);
1238 MD5STEP(F3, c, d, a, b, in[15] + 0x1fa27cf8, 16);
1239 MD5STEP(F3, b, c, d, a, in[2] + 0xc4ac5665, 23);
1240
1241 MD5STEP(F4, a, b, c, d, in[0] + 0xf4292244, 6);
1242 MD5STEP(F4, d, a, b, c, in[7] + 0x432aff97, 10);
1243 MD5STEP(F4, c, d, a, b, in[14] + 0xab9423a7, 15);
1244 MD5STEP(F4, b, c, d, a, in[5] + 0xfc93a039, 21);
1245 MD5STEP(F4, a, b, c, d, in[12] + 0x655b59c3, 6);
1246 MD5STEP(F4, d, a, b, c, in[3] + 0x8f0ccc92, 10);
1247 MD5STEP(F4, c, d, a, b, in[10] + 0xffeff47d, 15);
1248 MD5STEP(F4, b, c, d, a, in[1] + 0x85845dd1, 21);
1249 MD5STEP(F4, a, b, c, d, in[8] + 0x6fa87e4f, 6);
1250 MD5STEP(F4, d, a, b, c, in[15] + 0xfe2ce6e0, 10);
1251 MD5STEP(F4, c, d, a, b, in[6] + 0xa3014314, 15);
1252 MD5STEP(F4, b, c, d, a, in[13] + 0x4e0811a1, 21);
1253 MD5STEP(F4, a, b, c, d, in[4] + 0xf7537e82, 6);
1254 MD5STEP(F4, d, a, b, c, in[11] + 0xbd3af235, 10);
1255 MD5STEP(F4, c, d, a, b, in[2] + 0x2ad7d2bb, 15);
1256 MD5STEP(F4, b, c, d, a, in[9] + 0xeb86d391, 21);
1257
1258 buf[0] += a;
1259 buf[1] += b;
1260 buf[2] += c;
1261 buf[3] += d;
1262 }
1263 #define __fccache__
1264 #include "fcaliastail.h"
1265 #undef __fccache__