fat.c revision 1.12 1 1.12 is /* $NetBSD: fat.c,v 1.12 2000/10/10 20:24:52 is Exp $ */
2 1.1 ws
3 1.1 ws /*
4 1.8 ws * Copyright (C) 1995, 1996, 1997 Wolfgang Solfrank
5 1.1 ws * Copyright (c) 1995 Martin Husemann
6 1.1 ws *
7 1.1 ws * Redistribution and use in source and binary forms, with or without
8 1.1 ws * modification, are permitted provided that the following conditions
9 1.1 ws * are met:
10 1.1 ws * 1. Redistributions of source code must retain the above copyright
11 1.1 ws * notice, this list of conditions and the following disclaimer.
12 1.1 ws * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 ws * notice, this list of conditions and the following disclaimer in the
14 1.1 ws * documentation and/or other materials provided with the distribution.
15 1.1 ws * 3. All advertising materials mentioning features or use of this software
16 1.1 ws * must display the following acknowledgement:
17 1.1 ws * This product includes software developed by Martin Husemann
18 1.1 ws * and Wolfgang Solfrank.
19 1.1 ws * 4. Neither the name of the University nor the names of its contributors
20 1.1 ws * may be used to endorse or promote products derived from this software
21 1.1 ws * without specific prior written permission.
22 1.1 ws *
23 1.1 ws * THIS SOFTWARE IS PROVIDED BY THE AUTHORS ``AS IS'' AND ANY EXPRESS OR
24 1.1 ws * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 1.1 ws * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 1.1 ws * IN NO EVENT SHALL THE AUTHORS BE LIABLE FOR ANY DIRECT, INDIRECT,
27 1.1 ws * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
28 1.1 ws * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
29 1.1 ws * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
30 1.1 ws * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
31 1.1 ws * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
32 1.1 ws * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 1.1 ws */
34 1.1 ws
35 1.1 ws
36 1.7 lukem #include <sys/cdefs.h>
37 1.1 ws #ifndef lint
38 1.12 is __RCSID("$NetBSD: fat.c,v 1.12 2000/10/10 20:24:52 is Exp $");
39 1.1 ws #endif /* not lint */
40 1.1 ws
41 1.1 ws #include <stdlib.h>
42 1.1 ws #include <string.h>
43 1.1 ws #include <ctype.h>
44 1.1 ws #include <stdio.h>
45 1.1 ws #include <unistd.h>
46 1.1 ws
47 1.1 ws #include "ext.h"
48 1.4 christos #include "fsutil.h"
49 1.3 christos
50 1.3 christos static int checkclnum __P((struct bootblock *, int, cl_t, cl_t *));
51 1.3 christos static int clustdiffer __P((cl_t, cl_t *, cl_t *, int));
52 1.9 ws static int tryclear __P((struct bootblock *, struct fatEntry *, cl_t, cl_t *));
53 1.11 jdolecek static int _readfat __P((int, struct bootblock *, int, u_char **));
54 1.1 ws
55 1.1 ws /*
56 1.1 ws * Check a cluster number for valid value
57 1.1 ws */
58 1.1 ws static int
59 1.1 ws checkclnum(boot, fat, cl, next)
60 1.1 ws struct bootblock *boot;
61 1.1 ws int fat;
62 1.1 ws cl_t cl;
63 1.1 ws cl_t *next;
64 1.1 ws {
65 1.8 ws if (*next >= (CLUST_RSRVD&boot->ClustMask))
66 1.8 ws *next |= ~boot->ClustMask;
67 1.1 ws if (*next == CLUST_FREE) {
68 1.1 ws boot->NumFree++;
69 1.1 ws return FSOK;
70 1.1 ws }
71 1.5 ws if (*next == CLUST_BAD) {
72 1.5 ws boot->NumBad++;
73 1.5 ws return FSOK;
74 1.5 ws }
75 1.1 ws if (*next < CLUST_FIRST
76 1.1 ws || (*next >= boot->NumClusters && *next < CLUST_EOFS)) {
77 1.8 ws pwarn("Cluster %u in FAT %d continues with %s cluster number %u\n",
78 1.1 ws cl, fat,
79 1.1 ws *next < CLUST_RSRVD ? "out of range" : "reserved",
80 1.8 ws *next&boot->ClustMask);
81 1.1 ws if (ask(0, "Truncate")) {
82 1.1 ws *next = CLUST_EOF;
83 1.1 ws return FSFATMOD;
84 1.1 ws }
85 1.1 ws return FSERROR;
86 1.1 ws }
87 1.1 ws return FSOK;
88 1.1 ws }
89 1.1 ws
90 1.1 ws /*
91 1.10 jdolecek * Read a FAT from disk. Returns 1 if successful, 0 otherwise.
92 1.1 ws */
93 1.11 jdolecek static int
94 1.10 jdolecek _readfat(fs, boot, no, buffer)
95 1.1 ws int fs;
96 1.1 ws struct bootblock *boot;
97 1.1 ws int no;
98 1.10 jdolecek u_char **buffer;
99 1.1 ws {
100 1.1 ws off_t off;
101 1.1 ws
102 1.10 jdolecek *buffer = malloc(boot->FATsecs * boot->BytesPerSec);
103 1.10 jdolecek if (*buffer == NULL) {
104 1.1 ws perror("No space for FAT");
105 1.10 jdolecek return 0;
106 1.1 ws }
107 1.8 ws
108 1.1 ws off = boot->ResSectors + no * boot->FATsecs;
109 1.1 ws off *= boot->BytesPerSec;
110 1.1 ws
111 1.1 ws if (lseek(fs, off, SEEK_SET) != off) {
112 1.1 ws perror("Unable to read FAT");
113 1.10 jdolecek goto err;
114 1.1 ws }
115 1.8 ws
116 1.10 jdolecek if (read(fs, *buffer, boot->FATsecs * boot->BytesPerSec)
117 1.1 ws != boot->FATsecs * boot->BytesPerSec) {
118 1.8 ws perror("Unable to read FAT");
119 1.10 jdolecek goto err;
120 1.10 jdolecek }
121 1.10 jdolecek
122 1.10 jdolecek return 1;
123 1.10 jdolecek
124 1.10 jdolecek err:
125 1.10 jdolecek free(*buffer);
126 1.10 jdolecek return 0;
127 1.10 jdolecek }
128 1.10 jdolecek
129 1.10 jdolecek /*
130 1.10 jdolecek * Read a FAT and decode it into internal format
131 1.10 jdolecek */
132 1.10 jdolecek int
133 1.10 jdolecek readfat(fs, boot, no, fp)
134 1.10 jdolecek int fs;
135 1.10 jdolecek struct bootblock *boot;
136 1.10 jdolecek int no;
137 1.10 jdolecek struct fatEntry **fp;
138 1.10 jdolecek {
139 1.10 jdolecek struct fatEntry *fat;
140 1.10 jdolecek u_char *buffer, *p;
141 1.10 jdolecek cl_t cl;
142 1.10 jdolecek int ret = FSOK;
143 1.10 jdolecek
144 1.10 jdolecek boot->NumFree = boot->NumBad = 0;
145 1.10 jdolecek
146 1.10 jdolecek if (!_readfat(fs, boot, no, &buffer))
147 1.10 jdolecek return FSFATAL;
148 1.10 jdolecek
149 1.10 jdolecek fat = calloc(boot->NumClusters, sizeof(struct fatEntry));
150 1.10 jdolecek if (fat == NULL) {
151 1.10 jdolecek perror("No space for FAT");
152 1.1 ws free(buffer);
153 1.1 ws return FSFATAL;
154 1.1 ws }
155 1.1 ws
156 1.6 ws if (buffer[0] != boot->Media
157 1.6 ws || buffer[1] != 0xff || buffer[2] != 0xff
158 1.8 ws || (boot->ClustMask == CLUST16_MASK && buffer[3] != 0xff)
159 1.8 ws || (boot->ClustMask == CLUST32_MASK
160 1.8 ws && ((buffer[3]&0x0f) != 0x0f
161 1.8 ws || buffer[4] != 0xff || buffer[5] != 0xff
162 1.8 ws || buffer[6] != 0xff || (buffer[7]&0x0f) != 0x0f))) {
163 1.10 jdolecek
164 1.10 jdolecek /* Windows 95 OSR2 (and possibly any later) changes
165 1.10 jdolecek * the FAT signature to 0xXXffff7f for FAT16 and to
166 1.10 jdolecek * 0xXXffff0fffffff07 for FAT32 upon boot, to know that the
167 1.10 jdolecek * filesystem is dirty if it doesn't reboot cleanly.
168 1.10 jdolecek * Check this special condition before errorring out.
169 1.10 jdolecek */
170 1.10 jdolecek if (buffer[0] == boot->Media && buffer[1] == 0xff
171 1.10 jdolecek && buffer[2] == 0xff
172 1.10 jdolecek && ((boot->ClustMask == CLUST16_MASK && buffer[3] == 0x7f)
173 1.10 jdolecek || (boot->ClustMask == CLUST32_MASK
174 1.10 jdolecek && buffer[3] == 0x0f && buffer[4] == 0xff
175 1.10 jdolecek && buffer[5] == 0xff && buffer[6] == 0xff
176 1.10 jdolecek && buffer[7] == 0x07)))
177 1.10 jdolecek ret |= FSDIRTY;
178 1.10 jdolecek else {
179 1.10 jdolecek /* just some odd byte sequence in FAT */
180 1.10 jdolecek
181 1.10 jdolecek switch (boot->ClustMask) {
182 1.10 jdolecek case CLUST32_MASK:
183 1.12 is pwarn("%s (%02x%02x%02x%02x%02x%02x%02x%02x)\n",
184 1.12 is "FAT starts with odd byte sequence",
185 1.12 is buffer[0], buffer[1], buffer[2], buffer[3],
186 1.12 is buffer[4], buffer[5], buffer[6], buffer[7]);
187 1.10 jdolecek break;
188 1.10 jdolecek case CLUST16_MASK:
189 1.12 is pwarn("%s (%02x%02x%02x%02x)\n", "FAT starts with odd byte sequence",
190 1.12 is buffer[0], buffer[1], buffer[2], buffer[3]);
191 1.10 jdolecek break;
192 1.10 jdolecek default:
193 1.12 is pwarn("%s (%02x%02x%02x)\n", "FAT starts with odd byte sequence",
194 1.12 is buffer[0], buffer[1], buffer[2]);
195 1.10 jdolecek break;
196 1.10 jdolecek }
197 1.8 ws
198 1.10 jdolecek
199 1.10 jdolecek if (ask(1, "Correct"))
200 1.10 jdolecek ret |= FSFIXFAT;
201 1.8 ws }
202 1.1 ws }
203 1.8 ws switch (boot->ClustMask) {
204 1.8 ws case CLUST32_MASK:
205 1.8 ws p = buffer + 8;
206 1.8 ws break;
207 1.8 ws case CLUST16_MASK:
208 1.8 ws p = buffer + 4;
209 1.8 ws break;
210 1.8 ws default:
211 1.8 ws p = buffer + 3;
212 1.8 ws break;
213 1.8 ws }
214 1.1 ws for (cl = CLUST_FIRST; cl < boot->NumClusters;) {
215 1.8 ws switch (boot->ClustMask) {
216 1.8 ws case CLUST32_MASK:
217 1.8 ws fat[cl].next = p[0] + (p[1] << 8)
218 1.8 ws + (p[2] << 16) + (p[3] << 24);
219 1.8 ws fat[cl].next &= boot->ClustMask;
220 1.8 ws ret |= checkclnum(boot, no, cl, &fat[cl].next);
221 1.8 ws cl++;
222 1.8 ws p += 4;
223 1.8 ws break;
224 1.8 ws case CLUST16_MASK:
225 1.1 ws fat[cl].next = p[0] + (p[1] << 8);
226 1.1 ws ret |= checkclnum(boot, no, cl, &fat[cl].next);
227 1.1 ws cl++;
228 1.1 ws p += 2;
229 1.8 ws break;
230 1.8 ws default:
231 1.1 ws fat[cl].next = (p[0] + (p[1] << 8)) & 0x0fff;
232 1.1 ws ret |= checkclnum(boot, no, cl, &fat[cl].next);
233 1.1 ws cl++;
234 1.1 ws if (cl >= boot->NumClusters)
235 1.1 ws break;
236 1.1 ws fat[cl].next = ((p[1] >> 4) + (p[2] << 4)) & 0x0fff;
237 1.1 ws ret |= checkclnum(boot, no, cl, &fat[cl].next);
238 1.1 ws cl++;
239 1.1 ws p += 3;
240 1.8 ws break;
241 1.1 ws }
242 1.1 ws }
243 1.8 ws
244 1.1 ws free(buffer);
245 1.1 ws *fp = fat;
246 1.1 ws return ret;
247 1.1 ws }
248 1.1 ws
249 1.1 ws /*
250 1.1 ws * Get type of reserved cluster
251 1.1 ws */
252 1.1 ws char *
253 1.1 ws rsrvdcltype(cl)
254 1.1 ws cl_t cl;
255 1.1 ws {
256 1.9 ws if (cl == CLUST_FREE)
257 1.9 ws return "free";
258 1.1 ws if (cl < CLUST_BAD)
259 1.1 ws return "reserved";
260 1.1 ws if (cl > CLUST_BAD)
261 1.1 ws return "as EOF";
262 1.1 ws return "bad";
263 1.1 ws }
264 1.1 ws
265 1.1 ws static int
266 1.1 ws clustdiffer(cl, cp1, cp2, fatnum)
267 1.1 ws cl_t cl;
268 1.1 ws cl_t *cp1;
269 1.1 ws cl_t *cp2;
270 1.1 ws int fatnum;
271 1.1 ws {
272 1.9 ws if (*cp1 == CLUST_FREE || *cp1 >= CLUST_RSRVD) {
273 1.9 ws if (*cp2 == CLUST_FREE || *cp2 >= CLUST_RSRVD) {
274 1.9 ws if ((*cp1 != CLUST_FREE && *cp1 < CLUST_BAD
275 1.9 ws && *cp2 != CLUST_FREE && *cp2 < CLUST_BAD)
276 1.1 ws || (*cp1 > CLUST_BAD && *cp2 > CLUST_BAD)) {
277 1.8 ws pwarn("Cluster %u is marked %s with different indicators, ",
278 1.1 ws cl, rsrvdcltype(*cp1));
279 1.1 ws if (ask(1, "fix")) {
280 1.1 ws *cp2 = *cp1;
281 1.1 ws return FSFATMOD;
282 1.1 ws }
283 1.1 ws return FSFATAL;
284 1.1 ws }
285 1.8 ws pwarn("Cluster %u is marked %s in FAT 0, %s in FAT %d\n",
286 1.1 ws cl, rsrvdcltype(*cp1), rsrvdcltype(*cp2), fatnum);
287 1.8 ws if (ask(0, "use FAT 0's entry")) {
288 1.1 ws *cp2 = *cp1;
289 1.1 ws return FSFATMOD;
290 1.1 ws }
291 1.8 ws if (ask(0, "use FAT %d's entry", fatnum)) {
292 1.1 ws *cp1 = *cp2;
293 1.1 ws return FSFATMOD;
294 1.1 ws }
295 1.1 ws return FSFATAL;
296 1.1 ws }
297 1.8 ws pwarn("Cluster %u is marked %s in FAT 0, but continues with cluster %u in FAT %d\n",
298 1.1 ws cl, rsrvdcltype(*cp1), *cp2, fatnum);
299 1.1 ws if (ask(0, "Use continuation from FAT %d", fatnum)) {
300 1.1 ws *cp1 = *cp2;
301 1.1 ws return FSFATMOD;
302 1.1 ws }
303 1.8 ws if (ask(0, "Use mark from FAT 0")) {
304 1.1 ws *cp2 = *cp1;
305 1.1 ws return FSFATMOD;
306 1.1 ws }
307 1.1 ws return FSFATAL;
308 1.1 ws }
309 1.9 ws if (*cp2 == CLUST_FREE || *cp2 >= CLUST_RSRVD) {
310 1.8 ws pwarn("Cluster %u continues with cluster %u in FAT 0, but is marked %s in FAT %d\n",
311 1.1 ws cl, *cp1, rsrvdcltype(*cp2), fatnum);
312 1.8 ws if (ask(0, "Use continuation from FAT 0")) {
313 1.1 ws *cp2 = *cp1;
314 1.1 ws return FSFATMOD;
315 1.1 ws }
316 1.1 ws if (ask(0, "Use mark from FAT %d", fatnum)) {
317 1.1 ws *cp1 = *cp2;
318 1.1 ws return FSFATMOD;
319 1.1 ws }
320 1.1 ws return FSERROR;
321 1.1 ws }
322 1.8 ws pwarn("Cluster %u continues with cluster %u in FAT 0, but with cluster %u in FAT %d\n",
323 1.1 ws cl, *cp1, *cp2, fatnum);
324 1.8 ws if (ask(0, "Use continuation from FAT 0")) {
325 1.1 ws *cp2 = *cp1;
326 1.1 ws return FSFATMOD;
327 1.1 ws }
328 1.1 ws if (ask(0, "Use continuation from FAT %d", fatnum)) {
329 1.1 ws *cp1 = *cp2;
330 1.1 ws return FSFATMOD;
331 1.1 ws }
332 1.1 ws return FSERROR;
333 1.1 ws }
334 1.1 ws
335 1.1 ws /*
336 1.1 ws * Compare two FAT copies in memory. Resolve any conflicts and merge them
337 1.1 ws * into the first one.
338 1.1 ws */
339 1.1 ws int
340 1.1 ws comparefat(boot, first, second, fatnum)
341 1.1 ws struct bootblock *boot;
342 1.1 ws struct fatEntry *first;
343 1.1 ws struct fatEntry *second;
344 1.1 ws int fatnum;
345 1.1 ws {
346 1.1 ws cl_t cl;
347 1.1 ws int ret = FSOK;
348 1.1 ws
349 1.1 ws for (cl = CLUST_FIRST; cl < boot->NumClusters; cl++)
350 1.1 ws if (first[cl].next != second[cl].next)
351 1.1 ws ret |= clustdiffer(cl, &first[cl].next, &second[cl].next, fatnum);
352 1.1 ws return ret;
353 1.1 ws }
354 1.1 ws
355 1.1 ws void
356 1.1 ws clearchain(boot, fat, head)
357 1.1 ws struct bootblock *boot;
358 1.1 ws struct fatEntry *fat;
359 1.1 ws cl_t head;
360 1.1 ws {
361 1.1 ws cl_t p, q;
362 1.1 ws
363 1.1 ws for (p = head; p >= CLUST_FIRST && p < boot->NumClusters; p = q) {
364 1.1 ws if (fat[p].head != head)
365 1.1 ws break;
366 1.1 ws q = fat[p].next;
367 1.1 ws fat[p].next = fat[p].head = CLUST_FREE;
368 1.1 ws fat[p].length = 0;
369 1.1 ws }
370 1.1 ws }
371 1.1 ws
372 1.9 ws int
373 1.9 ws tryclear(boot, fat, head, trunc)
374 1.9 ws struct bootblock *boot;
375 1.9 ws struct fatEntry *fat;
376 1.9 ws cl_t head;
377 1.9 ws cl_t *trunc;
378 1.9 ws {
379 1.9 ws if (ask(0, "Clear chain starting at %u", head)) {
380 1.9 ws clearchain(boot, fat, head);
381 1.9 ws return FSFATMOD;
382 1.9 ws } else if (ask(0, "Truncate")) {
383 1.9 ws *trunc = CLUST_EOF;
384 1.9 ws return FSFATMOD;
385 1.9 ws } else
386 1.9 ws return FSERROR;
387 1.9 ws }
388 1.9 ws
389 1.1 ws /*
390 1.1 ws * Check a complete FAT in-memory for crosslinks
391 1.1 ws */
392 1.1 ws int
393 1.1 ws checkfat(boot, fat)
394 1.1 ws struct bootblock *boot;
395 1.1 ws struct fatEntry *fat;
396 1.1 ws {
397 1.9 ws cl_t head, p, h, n;
398 1.1 ws u_int len;
399 1.1 ws int ret = 0;
400 1.1 ws int conf;
401 1.8 ws
402 1.1 ws /*
403 1.1 ws * pass 1: figure out the cluster chains.
404 1.1 ws */
405 1.1 ws for (head = CLUST_FIRST; head < boot->NumClusters; head++) {
406 1.8 ws /* find next untravelled chain */
407 1.6 ws if (fat[head].head != 0 /* cluster already belongs to some chain */
408 1.5 ws || fat[head].next == CLUST_FREE
409 1.5 ws || fat[head].next == CLUST_BAD)
410 1.1 ws continue; /* skip it. */
411 1.1 ws
412 1.1 ws /* follow the chain and mark all clusters on the way */
413 1.1 ws for (len = 0, p = head;
414 1.1 ws p >= CLUST_FIRST && p < boot->NumClusters;
415 1.1 ws p = fat[p].next) {
416 1.1 ws fat[p].head = head;
417 1.1 ws len++;
418 1.1 ws }
419 1.1 ws
420 1.1 ws /* the head record gets the length */
421 1.8 ws fat[head].length = fat[head].next == CLUST_FREE ? 0 : len;
422 1.1 ws }
423 1.8 ws
424 1.1 ws /*
425 1.1 ws * pass 2: check for crosslinked chains (we couldn't do this in pass 1 because
426 1.1 ws * we didn't know the real start of the chain then - would have treated partial
427 1.1 ws * chains as interlinked with their main chain)
428 1.1 ws */
429 1.1 ws for (head = CLUST_FIRST; head < boot->NumClusters; head++) {
430 1.8 ws /* find next untravelled chain */
431 1.1 ws if (fat[head].head != head)
432 1.1 ws continue;
433 1.1 ws
434 1.1 ws /* follow the chain to its end (hopefully) */
435 1.1 ws for (p = head;
436 1.9 ws (n = fat[p].next) >= CLUST_FIRST && n < boot->NumClusters;
437 1.9 ws p = n)
438 1.9 ws if (fat[n].head != head)
439 1.1 ws break;
440 1.9 ws if (n >= CLUST_EOFS)
441 1.1 ws continue;
442 1.8 ws
443 1.9 ws if (n == CLUST_FREE || n >= CLUST_RSRVD) {
444 1.8 ws pwarn("Cluster chain starting at %u ends with cluster marked %s\n",
445 1.9 ws head, rsrvdcltype(n));
446 1.9 ws ret |= tryclear(boot, fat, head, &fat[p].next);
447 1.1 ws continue;
448 1.1 ws }
449 1.9 ws if (n < CLUST_FIRST || n >= boot->NumClusters) {
450 1.8 ws pwarn("Cluster chain starting at %u ends with cluster out of range (%u)\n",
451 1.9 ws head, n);
452 1.9 ws ret |= tryclear(boot, fat, head, &fat[p].next);
453 1.9 ws continue;
454 1.1 ws }
455 1.8 ws pwarn("Cluster chains starting at %u and %u are linked at cluster %u\n",
456 1.9 ws head, fat[n].head, n);
457 1.9 ws conf = tryclear(boot, fat, head, &fat[p].next);
458 1.9 ws if (ask(0, "Clear chain starting at %u", h = fat[n].head)) {
459 1.1 ws if (conf == FSERROR) {
460 1.1 ws /*
461 1.1 ws * Transfer the common chain to the one not cleared above.
462 1.1 ws */
463 1.9 ws for (p = n;
464 1.9 ws p >= CLUST_FIRST && p < boot->NumClusters;
465 1.1 ws p = fat[p].next) {
466 1.1 ws if (h != fat[p].head) {
467 1.1 ws /*
468 1.1 ws * Have to reexamine this chain.
469 1.1 ws */
470 1.1 ws head--;
471 1.1 ws break;
472 1.1 ws }
473 1.1 ws fat[p].head = head;
474 1.1 ws }
475 1.1 ws }
476 1.1 ws clearchain(boot, fat, h);
477 1.1 ws conf |= FSFATMOD;
478 1.1 ws }
479 1.1 ws ret |= conf;
480 1.1 ws }
481 1.1 ws
482 1.1 ws return ret;
483 1.1 ws }
484 1.1 ws
485 1.1 ws /*
486 1.1 ws * Write out FATs encoding them from the internal format
487 1.1 ws */
488 1.1 ws int
489 1.10 jdolecek writefat(fs, boot, fat, correct_fat)
490 1.1 ws int fs;
491 1.1 ws struct bootblock *boot;
492 1.1 ws struct fatEntry *fat;
493 1.10 jdolecek int correct_fat;
494 1.1 ws {
495 1.1 ws u_char *buffer, *p;
496 1.1 ws cl_t cl;
497 1.1 ws int i;
498 1.1 ws u_int32_t fatsz;
499 1.1 ws off_t off;
500 1.1 ws int ret = FSOK;
501 1.8 ws
502 1.1 ws buffer = malloc(fatsz = boot->FATsecs * boot->BytesPerSec);
503 1.1 ws if (buffer == NULL) {
504 1.1 ws perror("No space for FAT");
505 1.1 ws return FSFATAL;
506 1.1 ws }
507 1.1 ws memset(buffer, 0, fatsz);
508 1.1 ws boot->NumFree = 0;
509 1.6 ws p = buffer;
510 1.10 jdolecek if (correct_fat) {
511 1.10 jdolecek *p++ = (u_char)boot->Media;
512 1.8 ws *p++ = 0xff;
513 1.8 ws *p++ = 0xff;
514 1.10 jdolecek switch (boot->ClustMask) {
515 1.10 jdolecek case CLUST16_MASK:
516 1.10 jdolecek *p++ = 0xff;
517 1.10 jdolecek break;
518 1.10 jdolecek case CLUST32_MASK:
519 1.10 jdolecek *p++ = 0x0f;
520 1.10 jdolecek *p++ = 0xff;
521 1.10 jdolecek *p++ = 0xff;
522 1.10 jdolecek *p++ = 0xff;
523 1.10 jdolecek *p++ = 0x0f;
524 1.10 jdolecek break;
525 1.10 jdolecek }
526 1.10 jdolecek } else {
527 1.10 jdolecek /* use same FAT signature as the old FAT has */
528 1.10 jdolecek int count;
529 1.10 jdolecek u_char *old_fat;
530 1.10 jdolecek
531 1.10 jdolecek switch (boot->ClustMask) {
532 1.10 jdolecek case CLUST32_MASK:
533 1.10 jdolecek count = 8;
534 1.10 jdolecek break;
535 1.10 jdolecek case CLUST16_MASK:
536 1.10 jdolecek count = 4;
537 1.10 jdolecek break;
538 1.10 jdolecek default:
539 1.10 jdolecek count = 3;
540 1.10 jdolecek break;
541 1.10 jdolecek }
542 1.10 jdolecek
543 1.10 jdolecek if (!_readfat(fs, boot, boot->ValidFat >= 0 ? boot->ValidFat :0,
544 1.10 jdolecek &old_fat)) {
545 1.10 jdolecek free(buffer);
546 1.10 jdolecek return FSFATAL;
547 1.10 jdolecek }
548 1.10 jdolecek
549 1.10 jdolecek memcpy(p, old_fat, count);
550 1.10 jdolecek free(old_fat);
551 1.10 jdolecek p += count;
552 1.8 ws }
553 1.10 jdolecek
554 1.6 ws for (cl = CLUST_FIRST; cl < boot->NumClusters; cl++) {
555 1.8 ws switch (boot->ClustMask) {
556 1.8 ws case CLUST32_MASK:
557 1.8 ws if (fat[cl].next == CLUST_FREE)
558 1.8 ws boot->NumFree++;
559 1.8 ws *p++ = (u_char)fat[cl].next;
560 1.8 ws *p++ = (u_char)(fat[cl].next >> 8);
561 1.8 ws *p++ = (u_char)(fat[cl].next >> 16);
562 1.8 ws *p &= 0xf0;
563 1.8 ws *p++ |= (fat[cl].next >> 24)&0x0f;
564 1.8 ws break;
565 1.8 ws case CLUST16_MASK:
566 1.1 ws if (fat[cl].next == CLUST_FREE)
567 1.1 ws boot->NumFree++;
568 1.8 ws *p++ = (u_char)fat[cl].next;
569 1.8 ws *p++ = (u_char)(fat[cl].next >> 8);
570 1.8 ws break;
571 1.8 ws default:
572 1.1 ws if (fat[cl].next == CLUST_FREE)
573 1.1 ws boot->NumFree++;
574 1.1 ws if (cl + 1 < boot->NumClusters
575 1.1 ws && fat[cl + 1].next == CLUST_FREE)
576 1.1 ws boot->NumFree++;
577 1.8 ws *p++ = (u_char)fat[cl].next;
578 1.8 ws *p++ = (u_char)((fat[cl].next >> 8) & 0xf)
579 1.8 ws |(u_char)(fat[cl+1].next << 4);
580 1.8 ws *p++ = (u_char)(fat[++cl].next >> 4);
581 1.8 ws break;
582 1.1 ws }
583 1.1 ws }
584 1.1 ws for (i = 0; i < boot->FATs; i++) {
585 1.1 ws off = boot->ResSectors + i * boot->FATsecs;
586 1.1 ws off *= boot->BytesPerSec;
587 1.1 ws if (lseek(fs, off, SEEK_SET) != off
588 1.1 ws || write(fs, buffer, fatsz) != fatsz) {
589 1.1 ws perror("Unable to write FAT");
590 1.1 ws ret = FSFATAL; /* Return immediately? XXX */
591 1.1 ws }
592 1.1 ws }
593 1.1 ws free(buffer);
594 1.1 ws return ret;
595 1.1 ws }
596 1.1 ws
597 1.1 ws /*
598 1.1 ws * Check a complete in-memory FAT for lost cluster chains
599 1.1 ws */
600 1.1 ws int
601 1.2 ws checklost(dosfs, boot, fat)
602 1.1 ws int dosfs;
603 1.1 ws struct bootblock *boot;
604 1.1 ws struct fatEntry *fat;
605 1.1 ws {
606 1.1 ws cl_t head;
607 1.1 ws int mod = FSOK;
608 1.8 ws int ret;
609 1.1 ws
610 1.1 ws for (head = CLUST_FIRST; head < boot->NumClusters; head++) {
611 1.8 ws /* find next untravelled chain */
612 1.1 ws if (fat[head].head != head
613 1.1 ws || fat[head].next == CLUST_FREE
614 1.1 ws || (fat[head].next >= CLUST_RSRVD
615 1.2 ws && fat[head].next < CLUST_EOFS)
616 1.2 ws || (fat[head].flags & FAT_USED))
617 1.1 ws continue;
618 1.1 ws
619 1.8 ws pwarn("Lost cluster chain at cluster %u\n%d Cluster(s) lost\n",
620 1.2 ws head, fat[head].length);
621 1.8 ws mod |= ret = reconnect(dosfs, boot, fat, head);
622 1.2 ws if (mod & FSFATAL)
623 1.2 ws break;
624 1.8 ws if (ret == FSERROR && ask(0, "Clear")) {
625 1.8 ws clearchain(boot, fat, head);
626 1.8 ws mod |= FSFATMOD;
627 1.8 ws }
628 1.1 ws }
629 1.1 ws finishlf();
630 1.8 ws
631 1.8 ws if (boot->FSInfo) {
632 1.8 ws ret = 0;
633 1.8 ws if (boot->FSFree != boot->NumFree) {
634 1.8 ws pwarn("Free space in FSInfo block (%d) not correct (%d)\n",
635 1.8 ws boot->FSFree, boot->NumFree);
636 1.8 ws if (ask(1, "fix")) {
637 1.8 ws boot->FSFree = boot->NumFree;
638 1.8 ws ret = 1;
639 1.8 ws }
640 1.8 ws }
641 1.8 ws if (boot->NumFree && fat[boot->FSNext].next != CLUST_FREE) {
642 1.8 ws pwarn("Next free cluster in FSInfo block (%u) not free\n",
643 1.8 ws boot->FSNext);
644 1.8 ws if (ask(1, "fix"))
645 1.8 ws for (head = CLUST_FIRST; head < boot->NumClusters; head++)
646 1.8 ws if (fat[head].next == CLUST_FREE) {
647 1.8 ws boot->FSNext = head;
648 1.8 ws ret = 1;
649 1.8 ws break;
650 1.8 ws }
651 1.8 ws }
652 1.8 ws if (ret)
653 1.8 ws mod |= writefsinfo(dosfs, boot);
654 1.8 ws }
655 1.8 ws
656 1.1 ws return mod;
657 1.1 ws }
658