pass1.c revision 1.32 1 1.32 hannken /* $NetBSD: pass1.c,v 1.32 2004/05/25 14:54:56 hannken Exp $ */
2 1.13 cgd
3 1.1 cgd /*
4 1.7 mycroft * Copyright (c) 1980, 1986, 1993
5 1.7 mycroft * The Regents of the University of California. All rights reserved.
6 1.1 cgd *
7 1.1 cgd * Redistribution and use in source and binary forms, with or without
8 1.1 cgd * modification, are permitted provided that the following conditions
9 1.1 cgd * are met:
10 1.1 cgd * 1. Redistributions of source code must retain the above copyright
11 1.1 cgd * notice, this list of conditions and the following disclaimer.
12 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 cgd * notice, this list of conditions and the following disclaimer in the
14 1.1 cgd * documentation and/or other materials provided with the distribution.
15 1.29 agc * 3. Neither the name of the University nor the names of its contributors
16 1.1 cgd * may be used to endorse or promote products derived from this software
17 1.1 cgd * without specific prior written permission.
18 1.1 cgd *
19 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.1 cgd * SUCH DAMAGE.
30 1.1 cgd */
31 1.1 cgd
32 1.17 lukem #include <sys/cdefs.h>
33 1.1 cgd #ifndef lint
34 1.13 cgd #if 0
35 1.19 lukem static char sccsid[] = "@(#)pass1.c 8.6 (Berkeley) 4/28/95";
36 1.13 cgd #else
37 1.32 hannken __RCSID("$NetBSD: pass1.c,v 1.32 2004/05/25 14:54:56 hannken Exp $");
38 1.13 cgd #endif
39 1.1 cgd #endif /* not lint */
40 1.1 cgd
41 1.1 cgd #include <sys/param.h>
42 1.32 hannken #include <sys/stat.h>
43 1.6 cgd #include <sys/time.h>
44 1.19 lukem
45 1.7 mycroft #include <ufs/ufs/dinode.h>
46 1.7 mycroft #include <ufs/ufs/dir.h>
47 1.7 mycroft #include <ufs/ffs/fs.h>
48 1.27 fvdl #include <ufs/ufs/ufs_bswap.h>
49 1.27 fvdl #include <ufs/ffs/ffs_extern.h>
50 1.12 cgd
51 1.19 lukem #include <err.h>
52 1.20 lukem #include <stdio.h>
53 1.20 lukem #include <stdlib.h>
54 1.1 cgd #include <string.h>
55 1.12 cgd
56 1.1 cgd #include "fsck.h"
57 1.12 cgd #include "extern.h"
58 1.16 christos #include "fsutil.h"
59 1.1 cgd
60 1.26 fvdl static daddr_t badblk;
61 1.26 fvdl static daddr_t dupblk;
62 1.15 christos static void checkinode __P((ino_t, struct inodesc *));
63 1.27 fvdl static ino_t lastino;
64 1.1 cgd
65 1.12 cgd void
66 1.1 cgd pass1()
67 1.1 cgd {
68 1.27 fvdl ino_t inumber, inosused;
69 1.27 fvdl int c;
70 1.27 fvdl daddr_t i, cgd;
71 1.1 cgd struct inodesc idesc;
72 1.27 fvdl struct cg *cgp = cgrp;
73 1.27 fvdl struct inostat *info;
74 1.27 fvdl uint8_t *cp;
75 1.1 cgd
76 1.1 cgd /*
77 1.1 cgd * Set file system reserved blocks in used block map.
78 1.1 cgd */
79 1.21 bouyer for (c = 0; c < sblock->fs_ncg; c++) {
80 1.21 bouyer cgd = cgdmin(sblock, c);
81 1.14 mycroft if (c == 0)
82 1.21 bouyer i = cgbase(sblock, c);
83 1.14 mycroft else
84 1.21 bouyer i = cgsblock(sblock, c);
85 1.1 cgd for (; i < cgd; i++)
86 1.1 cgd setbmap(i);
87 1.1 cgd }
88 1.21 bouyer i = sblock->fs_csaddr;
89 1.21 bouyer cgd = i + howmany(sblock->fs_cssize, sblock->fs_fsize);
90 1.14 mycroft for (; i < cgd; i++)
91 1.14 mycroft setbmap(i);
92 1.1 cgd /*
93 1.1 cgd * Find all allocated blocks.
94 1.1 cgd */
95 1.10 mycroft memset(&idesc, 0, sizeof(struct inodesc));
96 1.1 cgd idesc.id_func = pass1check;
97 1.1 cgd n_files = n_blks = 0;
98 1.21 bouyer for (c = 0; c < sblock->fs_ncg; c++) {
99 1.27 fvdl inumber = c * sblock->fs_ipg;
100 1.27 fvdl setinodebuf(inumber);
101 1.27 fvdl getblk(&cgblk, cgtod(sblock, c), sblock->fs_cgsize);
102 1.27 fvdl memcpy(cgp, cgblk.b_un.b_cg, sblock->fs_cgsize);
103 1.27 fvdl if((doswap && !needswap) || (!doswap && needswap))
104 1.27 fvdl ffs_cg_swap(cgblk.b_un.b_cg, cgp, sblock);
105 1.27 fvdl if (is_ufs2)
106 1.27 fvdl inosused = cgp->cg_initediblk;
107 1.27 fvdl else
108 1.27 fvdl inosused = sblock->fs_ipg;
109 1.24 lukem if (got_siginfo) {
110 1.27 fvdl printf("%s: phase 1: cyl group %d of %d (%d%%)\n",
111 1.24 lukem cdevname(), c, sblock->fs_ncg,
112 1.24 lukem c * 100 / sblock->fs_ncg);
113 1.24 lukem got_siginfo = 0;
114 1.24 lukem }
115 1.27 fvdl /*
116 1.27 fvdl * If we are using soft updates, then we can trust the
117 1.27 fvdl * cylinder group inode allocation maps to tell us which
118 1.27 fvdl * inodes are allocated. We will scan the used inode map
119 1.27 fvdl * to find the inodes that are really in use, and then
120 1.27 fvdl * read only those inodes in from disk.
121 1.27 fvdl */
122 1.27 fvdl if (preen && usedsoftdep) {
123 1.27 fvdl if (!cg_chkmagic(cgp, 0))
124 1.27 fvdl pfatal("CG %d: BAD MAGIC NUMBER\n", c);
125 1.27 fvdl cp = &cg_inosused(cgp, 0)[(inosused - 1) / CHAR_BIT];
126 1.27 fvdl for ( ; inosused > 0; inosused -= CHAR_BIT, cp--) {
127 1.27 fvdl if (*cp == 0)
128 1.27 fvdl continue;
129 1.27 fvdl for (i = 1 << (CHAR_BIT - 1); i > 0; i >>= 1) {
130 1.27 fvdl if (*cp & i)
131 1.27 fvdl break;
132 1.27 fvdl inosused--;
133 1.27 fvdl }
134 1.27 fvdl break;
135 1.27 fvdl }
136 1.27 fvdl if (inosused < 0)
137 1.27 fvdl inosused = 0;
138 1.27 fvdl }
139 1.27 fvdl /*
140 1.27 fvdl * Allocate inoinfo structures for the allocated inodes.
141 1.27 fvdl */
142 1.27 fvdl inostathead[c].il_numalloced = inosused;
143 1.27 fvdl if (inosused == 0) {
144 1.27 fvdl inostathead[c].il_stat = 0;
145 1.27 fvdl continue;
146 1.27 fvdl }
147 1.27 fvdl info = calloc((unsigned)inosused, sizeof(struct inostat));
148 1.27 fvdl if (info == NULL) {
149 1.27 fvdl pfatal("cannot alloc %u bytes for inoinfo\n",
150 1.27 fvdl (unsigned)(sizeof(struct inostat) * inosused));
151 1.27 fvdl abort();
152 1.27 fvdl }
153 1.27 fvdl inostathead[c].il_stat = info;
154 1.27 fvdl /*
155 1.27 fvdl * Scan the allocated inodes.
156 1.27 fvdl */
157 1.27 fvdl for (i = 0; i < inosused; i++, inumber++) {
158 1.27 fvdl if (inumber < ROOTINO) {
159 1.27 fvdl (void)getnextinode(inumber);
160 1.1 cgd continue;
161 1.27 fvdl }
162 1.7 mycroft checkinode(inumber, &idesc);
163 1.7 mycroft }
164 1.27 fvdl lastino += 1;
165 1.27 fvdl if (inosused < sblock->fs_ipg || inumber == lastino)
166 1.27 fvdl continue;
167 1.27 fvdl /*
168 1.27 fvdl * If we were not able to determine in advance which inodes
169 1.27 fvdl * were in use, then reduce the size of the inoinfo structure
170 1.27 fvdl * to the size necessary to describe the inodes that we
171 1.27 fvdl * really found.
172 1.27 fvdl */
173 1.27 fvdl if (lastino < (c * sblock->fs_ipg))
174 1.27 fvdl inosused = 0;
175 1.27 fvdl else
176 1.27 fvdl inosused = lastino - (c * sblock->fs_ipg);
177 1.27 fvdl inostathead[c].il_numalloced = inosused;
178 1.27 fvdl if (inosused == 0) {
179 1.27 fvdl free(inostathead[c].il_stat);
180 1.27 fvdl inostathead[c].il_stat = 0;
181 1.27 fvdl continue;
182 1.27 fvdl }
183 1.27 fvdl info = calloc((unsigned)inosused, sizeof(struct inostat));
184 1.27 fvdl if (info == NULL) {
185 1.27 fvdl pfatal("cannot alloc %u bytes for inoinfo\n",
186 1.27 fvdl (unsigned)(sizeof(struct inostat) * inosused));
187 1.27 fvdl abort();
188 1.27 fvdl }
189 1.27 fvdl memmove(info, inostathead[c].il_stat, inosused * sizeof(*info));
190 1.27 fvdl free(inostathead[c].il_stat);
191 1.27 fvdl inostathead[c].il_stat = info;
192 1.7 mycroft }
193 1.7 mycroft freeinodebuf();
194 1.21 bouyer do_blkswap = 0; /* has been done */
195 1.7 mycroft }
196 1.7 mycroft
197 1.15 christos static void
198 1.7 mycroft checkinode(inumber, idesc)
199 1.7 mycroft ino_t inumber;
200 1.17 lukem struct inodesc *idesc;
201 1.7 mycroft {
202 1.27 fvdl union dinode *dp;
203 1.7 mycroft struct zlncnt *zlnp;
204 1.27 fvdl daddr_t ndb;
205 1.27 fvdl int j;
206 1.7 mycroft mode_t mode;
207 1.27 fvdl u_int64_t size, kernmaxfilesize;
208 1.27 fvdl int64_t blocks;
209 1.30 dbj char symbuf[MAXBSIZE];
210 1.27 fvdl struct inostat *info;
211 1.7 mycroft
212 1.7 mycroft dp = getnextinode(inumber);
213 1.27 fvdl info = inoinfo(inumber);
214 1.27 fvdl mode = iswap16(DIP(dp, mode)) & IFMT;
215 1.27 fvdl size = iswap64(DIP(dp, size));
216 1.7 mycroft if (mode == 0) {
217 1.27 fvdl if ((is_ufs2 &&
218 1.27 fvdl (memcmp(dp->dp2.di_db, ufs2_zino.di_db,
219 1.27 fvdl NDADDR * sizeof(int64_t)) ||
220 1.27 fvdl memcmp(dp->dp2.di_ib, ufs2_zino.di_ib,
221 1.27 fvdl NIADDR * sizeof(int64_t))))
222 1.27 fvdl ||
223 1.27 fvdl (!is_ufs2 &&
224 1.27 fvdl (memcmp(dp->dp1.di_db, ufs1_zino.di_db,
225 1.26 fvdl NDADDR * sizeof(int32_t)) ||
226 1.27 fvdl memcmp(dp->dp1.di_ib, ufs1_zino.di_ib,
227 1.27 fvdl NIADDR * sizeof(int32_t)))) ||
228 1.27 fvdl mode || size) {
229 1.15 christos pfatal("PARTIALLY ALLOCATED INODE I=%u", inumber);
230 1.1 cgd if (reply("CLEAR") == 1) {
231 1.1 cgd dp = ginode(inumber);
232 1.1 cgd clearinode(dp);
233 1.1 cgd inodirty();
234 1.21 bouyer } else
235 1.21 bouyer markclean = 0;
236 1.1 cgd }
237 1.27 fvdl info->ino_state = USTATE;
238 1.7 mycroft return;
239 1.7 mycroft }
240 1.7 mycroft lastino = inumber;
241 1.27 fvdl /* This should match the file size limit in ffs_mountfs(). */
242 1.27 fvdl if (is_ufs2)
243 1.27 fvdl kernmaxfilesize = sblock->fs_maxfilesize;
244 1.27 fvdl else
245 1.27 fvdl kernmaxfilesize = (u_int64_t)0x80000000 * sblock->fs_bsize - 1;
246 1.27 fvdl if (size > kernmaxfilesize || size + sblock->fs_bsize - 1 < size ||
247 1.21 bouyer (mode == IFDIR && size > MAXDIRSIZE)) {
248 1.7 mycroft if (debug)
249 1.23 lukem printf("bad size %llu:",(unsigned long long)size);
250 1.7 mycroft goto unknown;
251 1.7 mycroft }
252 1.7 mycroft if (!preen && mode == IFMT && reply("HOLD BAD BLOCK") == 1) {
253 1.7 mycroft dp = ginode(inumber);
254 1.27 fvdl DIP(dp, size) = iswap64(sblock->fs_fsize);
255 1.21 bouyer size = sblock->fs_fsize;
256 1.27 fvdl DIP(dp, mode) = iswap16(IFREG|0600);
257 1.7 mycroft inodirty();
258 1.7 mycroft }
259 1.21 bouyer ndb = howmany(size, sblock->fs_bsize);
260 1.7 mycroft if (ndb < 0) {
261 1.7 mycroft if (debug)
262 1.27 fvdl printf("bad size %llu ndb %lld:",
263 1.27 fvdl (unsigned long long)size, (long long)ndb);
264 1.7 mycroft goto unknown;
265 1.7 mycroft }
266 1.7 mycroft if (mode == IFBLK || mode == IFCHR)
267 1.7 mycroft ndb++;
268 1.7 mycroft if (mode == IFLNK) {
269 1.7 mycroft /*
270 1.7 mycroft * Note that the old fastlink format always had di_blocks set
271 1.7 mycroft * to 0. Other than that we no longer use the `spare' field
272 1.7 mycroft * (which is now the extended uid) for sanity checking, the
273 1.7 mycroft * new format is the same as the old. We simply ignore the
274 1.7 mycroft * conversion altogether. - mycroft, 19MAY1994
275 1.7 mycroft */
276 1.27 fvdl if (!is_ufs2 && doinglevel2 &&
277 1.27 fvdl size > 0 && size < MAXSYMLINKLEN_UFS1 &&
278 1.27 fvdl DIP(dp, blocks) != 0) {
279 1.7 mycroft if (bread(fsreadfd, symbuf,
280 1.27 fvdl fsbtodb(sblock, iswap32(DIP(dp, db[0]))),
281 1.9 ws (long)secsize) != 0)
282 1.19 lukem errx(EEXIT, "cannot read symlink");
283 1.7 mycroft if (debug) {
284 1.21 bouyer symbuf[size] = 0;
285 1.23 lukem printf("convert symlink %u(%s) of size %lld\n",
286 1.18 mrg inumber, symbuf,
287 1.21 bouyer (unsigned long long)size);
288 1.7 mycroft }
289 1.7 mycroft dp = ginode(inumber);
290 1.27 fvdl memmove(dp->dp1.di_db, symbuf, (long)size);
291 1.27 fvdl DIP(dp, blocks) = 0;
292 1.7 mycroft inodirty();
293 1.7 mycroft }
294 1.7 mycroft /*
295 1.7 mycroft * Fake ndb value so direct/indirect block checks below
296 1.7 mycroft * will detect any garbage after symlink string.
297 1.7 mycroft */
298 1.31 dbj if ((sblock->fs_maxsymlinklen < 0) ||
299 1.31 dbj (size < sblock->fs_maxsymlinklen) ||
300 1.25 dbj (isappleufs && (size < APPLEUFS_MAXSYMLINKLEN)) ||
301 1.27 fvdl (sblock->fs_maxsymlinklen == 0 && DIP(dp, blocks) == 0)) {
302 1.27 fvdl if (is_ufs2)
303 1.27 fvdl ndb = howmany(size, sizeof(int64_t));
304 1.27 fvdl else
305 1.27 fvdl ndb = howmany(size, sizeof(int32_t));
306 1.7 mycroft if (ndb > NDADDR) {
307 1.7 mycroft j = ndb - NDADDR;
308 1.7 mycroft for (ndb = 1; j > 1; j--)
309 1.21 bouyer ndb *= NINDIR(sblock);
310 1.7 mycroft ndb += NDADDR;
311 1.7 mycroft }
312 1.7 mycroft }
313 1.7 mycroft }
314 1.7 mycroft for (j = ndb; j < NDADDR; j++)
315 1.27 fvdl if (DIP(dp, db[j]) != 0) {
316 1.27 fvdl if (debug) {
317 1.27 fvdl if (!is_ufs2)
318 1.27 fvdl printf("bad direct addr ix %d: %d [ndb %lld]\n",
319 1.27 fvdl j, iswap32(dp->dp1.di_db[j]),
320 1.27 fvdl (long long)ndb);
321 1.27 fvdl else
322 1.27 fvdl printf("bad direct addr ix %d: %lld [ndb %lld]\n",
323 1.28 he j, (long long)iswap64(dp->dp2.di_db[j]),
324 1.27 fvdl (long long)ndb);
325 1.27 fvdl }
326 1.27 fvdl goto unknown;
327 1.7 mycroft }
328 1.27 fvdl
329 1.7 mycroft for (j = 0, ndb -= NDADDR; ndb > 0; j++)
330 1.21 bouyer ndb /= NINDIR(sblock);
331 1.27 fvdl
332 1.7 mycroft for (; j < NIADDR; j++)
333 1.27 fvdl if (DIP(dp, ib[j]) != 0) {
334 1.27 fvdl if (debug) {
335 1.27 fvdl if (!is_ufs2)
336 1.27 fvdl printf("bad indirect addr: %d\n",
337 1.27 fvdl iswap32(dp->dp1.di_ib[j]));
338 1.27 fvdl else
339 1.27 fvdl printf("bad indirect addr: %lld\n",
340 1.27 fvdl (long long)iswap64(dp->dp2.di_ib[j]));
341 1.27 fvdl }
342 1.27 fvdl goto unknown;
343 1.7 mycroft }
344 1.7 mycroft if (ftypeok(dp) == 0)
345 1.7 mycroft goto unknown;
346 1.7 mycroft n_files++;
347 1.27 fvdl info->ino_linkcnt = iswap16(DIP(dp, nlink));
348 1.27 fvdl if (info->ino_linkcnt <= 0) {
349 1.7 mycroft zlnp = (struct zlncnt *)malloc(sizeof *zlnp);
350 1.7 mycroft if (zlnp == NULL) {
351 1.21 bouyer markclean = 0;
352 1.7 mycroft pfatal("LINK COUNT TABLE OVERFLOW");
353 1.22 fvdl if (reply("CONTINUE") == 0) {
354 1.22 fvdl ckfini();
355 1.19 lukem exit(EEXIT);
356 1.22 fvdl }
357 1.7 mycroft } else {
358 1.7 mycroft zlnp->zlncnt = inumber;
359 1.7 mycroft zlnp->next = zlnhead;
360 1.7 mycroft zlnhead = zlnp;
361 1.7 mycroft }
362 1.7 mycroft }
363 1.7 mycroft if (mode == IFDIR) {
364 1.21 bouyer if (size == 0)
365 1.27 fvdl info->ino_state = DCLEAR;
366 1.7 mycroft else
367 1.27 fvdl info->ino_state = DSTATE;
368 1.7 mycroft cacheino(dp, inumber);
369 1.27 fvdl countdirs++;
370 1.7 mycroft } else
371 1.27 fvdl info->ino_state = FSTATE;
372 1.27 fvdl info->ino_type = IFTODT(mode);
373 1.27 fvdl if (!is_ufs2 && doinglevel2 &&
374 1.27 fvdl (iswap16(dp->dp1.di_ouid) != (u_short)-1 ||
375 1.27 fvdl iswap16(dp->dp1.di_ogid) != (u_short)-1)) {
376 1.7 mycroft dp = ginode(inumber);
377 1.27 fvdl dp->dp1.di_uid = iswap32(iswap16(dp->dp1.di_ouid));
378 1.27 fvdl dp->dp1.di_ouid = iswap16(-1);
379 1.27 fvdl dp->dp1.di_gid = iswap32(iswap16(dp->dp1.di_ogid));
380 1.27 fvdl dp->dp1.di_ogid = iswap16(-1);
381 1.7 mycroft inodirty();
382 1.7 mycroft }
383 1.7 mycroft badblk = dupblk = 0;
384 1.7 mycroft idesc->id_number = inumber;
385 1.32 hannken if (iswap32(DIP(dp, flags)) & SF_SNAPSHOT)
386 1.32 hannken idesc->id_type = SNAP;
387 1.32 hannken else
388 1.32 hannken idesc->id_type = ADDR;
389 1.7 mycroft (void)ckinode(dp, idesc);
390 1.21 bouyer idesc->id_entryno *= btodb(sblock->fs_fsize);
391 1.27 fvdl if (is_ufs2)
392 1.27 fvdl blocks = iswap64(dp->dp2.di_blocks);
393 1.27 fvdl else
394 1.27 fvdl blocks = iswap32(dp->dp1.di_blocks);
395 1.27 fvdl if (blocks != idesc->id_entryno) {
396 1.27 fvdl pwarn("INCORRECT BLOCK COUNT I=%u (%lld should be %lld)",
397 1.27 fvdl inumber, (long long)blocks, (long long)idesc->id_entryno);
398 1.7 mycroft if (preen)
399 1.7 mycroft printf(" (CORRECTED)\n");
400 1.21 bouyer else if (reply("CORRECT") == 0) {
401 1.21 bouyer markclean = 0;
402 1.7 mycroft return;
403 1.21 bouyer }
404 1.7 mycroft dp = ginode(inumber);
405 1.27 fvdl if (is_ufs2)
406 1.27 fvdl dp->dp2.di_blocks = iswap64(idesc->id_entryno);
407 1.27 fvdl else
408 1.27 fvdl dp->dp1.di_blocks = iswap32((int32_t)idesc->id_entryno);
409 1.7 mycroft inodirty();
410 1.7 mycroft }
411 1.7 mycroft return;
412 1.7 mycroft unknown:
413 1.15 christos pfatal("UNKNOWN FILE TYPE I=%u", inumber);
414 1.27 fvdl info->ino_state = FCLEAR;
415 1.7 mycroft if (reply("CLEAR") == 1) {
416 1.27 fvdl info->ino_state = USTATE;
417 1.7 mycroft dp = ginode(inumber);
418 1.7 mycroft clearinode(dp);
419 1.7 mycroft inodirty();
420 1.21 bouyer } else
421 1.21 bouyer markclean = 0;
422 1.1 cgd }
423 1.1 cgd
424 1.12 cgd int
425 1.1 cgd pass1check(idesc)
426 1.17 lukem struct inodesc *idesc;
427 1.1 cgd {
428 1.1 cgd int res = KEEPON;
429 1.1 cgd int anyout, nfrags;
430 1.26 fvdl daddr_t blkno = idesc->id_blkno;
431 1.17 lukem struct dups *dlp;
432 1.1 cgd struct dups *new;
433 1.1 cgd
434 1.32 hannken if (idesc->id_type == SNAP) {
435 1.32 hannken if (blkno == BLK_NOCOPY || blkno == BLK_SNAP)
436 1.32 hannken return (KEEPON);
437 1.32 hannken }
438 1.1 cgd if ((anyout = chkrange(blkno, idesc->id_numfrags)) != 0) {
439 1.1 cgd blkerror(idesc->id_number, "BAD", blkno);
440 1.1 cgd if (badblk++ >= MAXBAD) {
441 1.15 christos pwarn("EXCESSIVE BAD BLKS I=%u",
442 1.1 cgd idesc->id_number);
443 1.1 cgd if (preen)
444 1.1 cgd printf(" (SKIPPING)\n");
445 1.22 fvdl else if (reply("CONTINUE") == 0) {
446 1.22 fvdl markclean = 0;
447 1.22 fvdl ckfini();
448 1.19 lukem exit(EEXIT);
449 1.22 fvdl }
450 1.1 cgd return (STOP);
451 1.1 cgd }
452 1.1 cgd }
453 1.1 cgd for (nfrags = idesc->id_numfrags; nfrags > 0; blkno++, nfrags--) {
454 1.1 cgd if (anyout && chkrange(blkno, 1)) {
455 1.1 cgd res = SKIP;
456 1.1 cgd } else if (!testbmap(blkno)) {
457 1.1 cgd n_blks++;
458 1.1 cgd setbmap(blkno);
459 1.1 cgd } else {
460 1.1 cgd blkerror(idesc->id_number, "DUP", blkno);
461 1.1 cgd if (dupblk++ >= MAXDUP) {
462 1.15 christos pwarn("EXCESSIVE DUP BLKS I=%u",
463 1.1 cgd idesc->id_number);
464 1.1 cgd if (preen)
465 1.1 cgd printf(" (SKIPPING)\n");
466 1.22 fvdl else if (reply("CONTINUE") == 0) {
467 1.22 fvdl markclean = 0;
468 1.22 fvdl ckfini();
469 1.19 lukem exit(EEXIT);
470 1.22 fvdl }
471 1.1 cgd return (STOP);
472 1.1 cgd }
473 1.1 cgd new = (struct dups *)malloc(sizeof(struct dups));
474 1.1 cgd if (new == NULL) {
475 1.21 bouyer markclean = 0;
476 1.1 cgd pfatal("DUP TABLE OVERFLOW.");
477 1.22 fvdl if (reply("CONTINUE") == 0) {
478 1.22 fvdl markclean = 0;
479 1.22 fvdl ckfini();
480 1.19 lukem exit(EEXIT);
481 1.22 fvdl }
482 1.1 cgd return (STOP);
483 1.1 cgd }
484 1.1 cgd new->dup = blkno;
485 1.1 cgd if (muldup == 0) {
486 1.1 cgd duplist = muldup = new;
487 1.1 cgd new->next = 0;
488 1.1 cgd } else {
489 1.1 cgd new->next = muldup->next;
490 1.1 cgd muldup->next = new;
491 1.1 cgd }
492 1.1 cgd for (dlp = duplist; dlp != muldup; dlp = dlp->next)
493 1.1 cgd if (dlp->dup == blkno)
494 1.1 cgd break;
495 1.1 cgd if (dlp == muldup && dlp->dup != blkno)
496 1.1 cgd muldup = new;
497 1.1 cgd }
498 1.1 cgd /*
499 1.1 cgd * count the number of blocks found in id_entryno
500 1.1 cgd */
501 1.1 cgd idesc->id_entryno++;
502 1.1 cgd }
503 1.1 cgd return (res);
504 1.1 cgd }
505