mkfs.c revision 1.80 1 1.80 dsl /* $NetBSD: mkfs.c,v 1.80 2003/09/10 17:25:14 dsl Exp $ */
2 1.71 agc
3 1.71 agc /*
4 1.71 agc * Copyright (c) 1980, 1989, 1993
5 1.71 agc * The Regents of the University of California. All rights reserved.
6 1.71 agc *
7 1.71 agc * Redistribution and use in source and binary forms, with or without
8 1.71 agc * modification, are permitted provided that the following conditions
9 1.71 agc * are met:
10 1.71 agc * 1. Redistributions of source code must retain the above copyright
11 1.71 agc * notice, this list of conditions and the following disclaimer.
12 1.71 agc * 2. Redistributions in binary form must reproduce the above copyright
13 1.71 agc * notice, this list of conditions and the following disclaimer in the
14 1.71 agc * documentation and/or other materials provided with the distribution.
15 1.71 agc * 3. Neither the name of the University nor the names of its contributors
16 1.71 agc * may be used to endorse or promote products derived from this software
17 1.71 agc * without specific prior written permission.
18 1.71 agc *
19 1.71 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 1.71 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.71 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.71 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 1.71 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.71 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.71 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.71 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.71 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.71 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.71 agc * SUCH DAMAGE.
30 1.71 agc */
31 1.19 cgd
32 1.1 cgd /*
33 1.68 fvdl * Copyright (c) 2002 Networks Associates Technology, Inc.
34 1.68 fvdl * All rights reserved.
35 1.68 fvdl *
36 1.68 fvdl * This software was developed for the FreeBSD Project by Marshall
37 1.68 fvdl * Kirk McKusick and Network Associates Laboratories, the Security
38 1.68 fvdl * Research Division of Network Associates, Inc. under DARPA/SPAWAR
39 1.68 fvdl * contract N66001-01-C-8035 ("CBOSS"), as part of the DARPA CHATS
40 1.68 fvdl * research program
41 1.68 fvdl *
42 1.1 cgd * Redistribution and use in source and binary forms, with or without
43 1.1 cgd * modification, are permitted provided that the following conditions
44 1.1 cgd * are met:
45 1.1 cgd * 1. Redistributions of source code must retain the above copyright
46 1.1 cgd * notice, this list of conditions and the following disclaimer.
47 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
48 1.1 cgd * notice, this list of conditions and the following disclaimer in the
49 1.1 cgd * documentation and/or other materials provided with the distribution.
50 1.1 cgd * 3. All advertising materials mentioning features or use of this software
51 1.1 cgd * must display the following acknowledgement:
52 1.1 cgd * This product includes software developed by the University of
53 1.1 cgd * California, Berkeley and its contributors.
54 1.1 cgd * 4. Neither the name of the University nor the names of its contributors
55 1.1 cgd * may be used to endorse or promote products derived from this software
56 1.1 cgd * without specific prior written permission.
57 1.1 cgd *
58 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
59 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
60 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
61 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
62 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
63 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
64 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
65 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
66 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
67 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
68 1.1 cgd * SUCH DAMAGE.
69 1.1 cgd */
70 1.1 cgd
71 1.26 christos #include <sys/cdefs.h>
72 1.1 cgd #ifndef lint
73 1.19 cgd #if 0
74 1.27 lukem static char sccsid[] = "@(#)mkfs.c 8.11 (Berkeley) 5/3/95";
75 1.19 cgd #else
76 1.80 dsl __RCSID("$NetBSD: mkfs.c,v 1.80 2003/09/10 17:25:14 dsl Exp $");
77 1.19 cgd #endif
78 1.1 cgd #endif /* not lint */
79 1.1 cgd
80 1.1 cgd #include <sys/param.h>
81 1.60 simonb #include <sys/mman.h>
82 1.1 cgd #include <sys/time.h>
83 1.1 cgd #include <sys/resource.h>
84 1.9 mycroft #include <ufs/ufs/dinode.h>
85 1.9 mycroft #include <ufs/ufs/dir.h>
86 1.30 bouyer #include <ufs/ufs/ufs_bswap.h>
87 1.9 mycroft #include <ufs/ffs/fs.h>
88 1.30 bouyer #include <ufs/ffs/ffs_extern.h>
89 1.1 cgd #include <sys/disklabel.h>
90 1.9 mycroft
91 1.60 simonb #include <err.h>
92 1.57 lukem #include <errno.h>
93 1.14 cgd #include <string.h>
94 1.14 cgd #include <unistd.h>
95 1.26 christos #include <stdlib.h>
96 1.80 dsl #include <stddef.h>
97 1.14 cgd
98 1.9 mycroft #ifndef STANDALONE
99 1.9 mycroft #include <stdio.h>
100 1.9 mycroft #endif
101 1.40 simonb
102 1.40 simonb #include "extern.h"
103 1.1 cgd
104 1.68 fvdl union dinode {
105 1.68 fvdl struct ufs1_dinode dp1;
106 1.68 fvdl struct ufs2_dinode dp2;
107 1.68 fvdl };
108 1.68 fvdl
109 1.70 atatat static void initcg(int, const struct timeval *);
110 1.70 atatat static int fsinit(const struct timeval *, mode_t, uid_t, gid_t);
111 1.39 simonb static int makedir(struct direct *, int);
112 1.39 simonb static daddr_t alloc(int, int);
113 1.68 fvdl static void iput(union dinode *, ino_t);
114 1.39 simonb static void rdfs(daddr_t, int, void *);
115 1.39 simonb static void wtfs(daddr_t, int, void *);
116 1.39 simonb static int isblock(struct fs *, unsigned char *, int);
117 1.39 simonb static void clrblock(struct fs *, unsigned char *, int);
118 1.39 simonb static void setblock(struct fs *, unsigned char *, int);
119 1.68 fvdl static int ilog2(int);
120 1.80 dsl static void zap_old_sblock(int);
121 1.61 lukem #ifdef MFS
122 1.60 simonb static void calc_memfree(void);
123 1.60 simonb static void *mkfs_malloc(size_t size);
124 1.61 lukem #endif
125 1.27 lukem
126 1.72 dsl static int count_digits(uint64_t);
127 1.36 wrstuden
128 1.1 cgd /*
129 1.1 cgd * make file system for cylinder-group style file systems
130 1.1 cgd */
131 1.60 simonb #define UMASK 0755
132 1.60 simonb #define POWEROF2(num) (((num) & ((num) - 1)) == 0)
133 1.1 cgd
134 1.1 cgd union {
135 1.1 cgd struct fs fs;
136 1.68 fvdl char pad[SBLOCKSIZE];
137 1.1 cgd } fsun;
138 1.1 cgd #define sblock fsun.fs
139 1.73 dsl
140 1.73 dsl struct csum *fscs_0; /* first block of cylinder summaries */
141 1.73 dsl struct csum *fscs_next; /* place for next summary */
142 1.73 dsl struct csum *fscs_end; /* end of summary buffer */
143 1.73 dsl struct csum *fscs_reset; /* place for next summary after write */
144 1.73 dsl uint fs_csaddr; /* fragment number to write to */
145 1.1 cgd
146 1.1 cgd union {
147 1.1 cgd struct cg cg;
148 1.1 cgd char pad[MAXBSIZE];
149 1.1 cgd } cgun;
150 1.1 cgd #define acg cgun.cg
151 1.1 cgd
152 1.68 fvdl #define DIP(dp, field) \
153 1.68 fvdl ((sblock.fs_magic == FS_UFS1_MAGIC) ? \
154 1.68 fvdl (dp)->dp1.di_##field : (dp)->dp2.di_##field)
155 1.68 fvdl
156 1.68 fvdl char *iobuf;
157 1.68 fvdl int iobufsize;
158 1.1 cgd
159 1.1 cgd int fsi, fso;
160 1.1 cgd
161 1.26 christos void
162 1.60 simonb mkfs(struct partition *pp, const char *fsys, int fi, int fo,
163 1.60 simonb mode_t mfsmode, uid_t mfsuid, gid_t mfsgid)
164 1.1 cgd {
165 1.74 dsl uint fragsperinodeblk, ncg;
166 1.74 dsl uint cgzero;
167 1.74 dsl uint64_t inodeblks, cgall;
168 1.68 fvdl int32_t cylno, i, csfrags;
169 1.70 atatat struct timeval tv;
170 1.52 lukem long long sizepb;
171 1.36 wrstuden int nprintcols, printcolwidth;
172 1.1 cgd
173 1.1 cgd #ifndef STANDALONE
174 1.70 atatat gettimeofday(&tv, NULL);
175 1.1 cgd #endif
176 1.61 lukem #ifdef MFS
177 1.1 cgd if (mfs) {
178 1.60 simonb calc_memfree();
179 1.1 cgd if (fssize * sectorsize > memleft)
180 1.60 simonb fssize = memleft / sectorsize;
181 1.60 simonb if ((membase = mkfs_malloc(fssize * sectorsize)) == 0)
182 1.1 cgd exit(12);
183 1.1 cgd }
184 1.61 lukem #endif
185 1.1 cgd fsi = fi;
186 1.1 cgd fso = fo;
187 1.68 fvdl if (Oflag == 0) {
188 1.68 fvdl sblock.fs_old_inodefmt = FS_42INODEFMT;
189 1.9 mycroft sblock.fs_maxsymlinklen = 0;
190 1.68 fvdl sblock.fs_old_flags = 0;
191 1.9 mycroft } else {
192 1.68 fvdl sblock.fs_old_inodefmt = FS_44INODEFMT;
193 1.68 fvdl sblock.fs_maxsymlinklen = (Oflag == 1 ? MAXSYMLINKLEN_UFS1 :
194 1.68 fvdl MAXSYMLINKLEN_UFS2);
195 1.68 fvdl sblock.fs_old_flags = FS_FLAGS_UPDATED;
196 1.68 fvdl sblock.fs_flags = 0;
197 1.9 mycroft }
198 1.65 dbj
199 1.1 cgd /*
200 1.55 lukem * collect and verify the filesystem density info
201 1.55 lukem */
202 1.55 lukem sblock.fs_avgfilesize = avgfilesize;
203 1.55 lukem sblock.fs_avgfpdir = avgfpdir;
204 1.72 dsl if (sblock.fs_avgfilesize <= 0) {
205 1.55 lukem printf("illegal expected average file size %d\n",
206 1.72 dsl sblock.fs_avgfilesize);
207 1.72 dsl exit(14);
208 1.72 dsl }
209 1.72 dsl if (sblock.fs_avgfpdir <= 0) {
210 1.55 lukem printf("illegal expected number of files per directory %d\n",
211 1.72 dsl sblock.fs_avgfpdir);
212 1.72 dsl exit(15);
213 1.72 dsl }
214 1.1 cgd /*
215 1.1 cgd * collect and verify the block and fragment sizes
216 1.1 cgd */
217 1.1 cgd sblock.fs_bsize = bsize;
218 1.1 cgd sblock.fs_fsize = fsize;
219 1.1 cgd if (!POWEROF2(sblock.fs_bsize)) {
220 1.1 cgd printf("block size must be a power of 2, not %d\n",
221 1.1 cgd sblock.fs_bsize);
222 1.1 cgd exit(16);
223 1.1 cgd }
224 1.1 cgd if (!POWEROF2(sblock.fs_fsize)) {
225 1.1 cgd printf("fragment size must be a power of 2, not %d\n",
226 1.1 cgd sblock.fs_fsize);
227 1.1 cgd exit(17);
228 1.1 cgd }
229 1.1 cgd if (sblock.fs_fsize < sectorsize) {
230 1.1 cgd printf("fragment size %d is too small, minimum is %d\n",
231 1.1 cgd sblock.fs_fsize, sectorsize);
232 1.1 cgd exit(18);
233 1.1 cgd }
234 1.1 cgd if (sblock.fs_bsize < MINBSIZE) {
235 1.1 cgd printf("block size %d is too small, minimum is %d\n",
236 1.1 cgd sblock.fs_bsize, MINBSIZE);
237 1.58 lukem exit(19);
238 1.58 lukem }
239 1.58 lukem if (sblock.fs_bsize > MAXBSIZE) {
240 1.58 lukem printf("block size %d is too large, maximum is %d\n",
241 1.58 lukem sblock.fs_bsize, MAXBSIZE);
242 1.1 cgd exit(19);
243 1.1 cgd }
244 1.1 cgd if (sblock.fs_bsize < sblock.fs_fsize) {
245 1.1 cgd printf("block size (%d) cannot be smaller than fragment size (%d)\n",
246 1.1 cgd sblock.fs_bsize, sblock.fs_fsize);
247 1.1 cgd exit(20);
248 1.1 cgd }
249 1.68 fvdl
250 1.68 fvdl if (maxbsize < bsize || !POWEROF2(maxbsize)) {
251 1.68 fvdl sblock.fs_maxbsize = sblock.fs_bsize;
252 1.68 fvdl } else if (sblock.fs_maxbsize > FS_MAXCONTIG * sblock.fs_bsize) {
253 1.68 fvdl sblock.fs_maxbsize = FS_MAXCONTIG * sblock.fs_bsize;
254 1.68 fvdl } else {
255 1.68 fvdl sblock.fs_maxbsize = maxbsize;
256 1.68 fvdl }
257 1.68 fvdl sblock.fs_maxcontig = maxcontig;
258 1.68 fvdl if (sblock.fs_maxcontig < sblock.fs_maxbsize / sblock.fs_bsize) {
259 1.68 fvdl sblock.fs_maxcontig = sblock.fs_maxbsize / sblock.fs_bsize;
260 1.68 fvdl printf("Maxcontig raised to %d\n", sblock.fs_maxbsize);
261 1.68 fvdl }
262 1.68 fvdl if (sblock.fs_maxcontig > 1)
263 1.68 fvdl sblock.fs_contigsumsize = MIN(sblock.fs_maxcontig,FS_MAXCONTIG);
264 1.68 fvdl
265 1.1 cgd sblock.fs_bmask = ~(sblock.fs_bsize - 1);
266 1.1 cgd sblock.fs_fmask = ~(sblock.fs_fsize - 1);
267 1.9 mycroft sblock.fs_qbmask = ~sblock.fs_bmask;
268 1.9 mycroft sblock.fs_qfmask = ~sblock.fs_fmask;
269 1.1 cgd for (sblock.fs_bshift = 0, i = sblock.fs_bsize; i > 1; i >>= 1)
270 1.1 cgd sblock.fs_bshift++;
271 1.1 cgd for (sblock.fs_fshift = 0, i = sblock.fs_fsize; i > 1; i >>= 1)
272 1.1 cgd sblock.fs_fshift++;
273 1.1 cgd sblock.fs_frag = numfrags(&sblock, sblock.fs_bsize);
274 1.1 cgd for (sblock.fs_fragshift = 0, i = sblock.fs_frag; i > 1; i >>= 1)
275 1.1 cgd sblock.fs_fragshift++;
276 1.1 cgd if (sblock.fs_frag > MAXFRAG) {
277 1.30 bouyer printf("fragment size %d is too small, "
278 1.30 bouyer "minimum with block size %d is %d\n",
279 1.1 cgd sblock.fs_fsize, sblock.fs_bsize,
280 1.1 cgd sblock.fs_bsize / MAXFRAG);
281 1.1 cgd exit(21);
282 1.1 cgd }
283 1.68 fvdl sblock.fs_fsbtodb = ilog2(sblock.fs_fsize / sectorsize);
284 1.74 dsl sblock.fs_size = dbtofsb(&sblock, fssize);
285 1.68 fvdl if (Oflag <= 1) {
286 1.72 dsl if (sblock.fs_size >= 1ull << 31) {
287 1.72 dsl printf("Too many fragments (0x%" PRIx64
288 1.72 dsl ") for a UFS1 filesystem\n", sblock.fs_size);
289 1.72 dsl exit(22);
290 1.72 dsl }
291 1.68 fvdl sblock.fs_magic = FS_UFS1_MAGIC;
292 1.68 fvdl sblock.fs_sblockloc = SBLOCK_UFS1;
293 1.68 fvdl sblock.fs_nindir = sblock.fs_bsize / sizeof(int32_t);
294 1.68 fvdl sblock.fs_inopb = sblock.fs_bsize / sizeof(struct ufs1_dinode);
295 1.68 fvdl sblock.fs_maxsymlinklen = ((NDADDR + NIADDR) *
296 1.68 fvdl sizeof (int32_t));
297 1.68 fvdl sblock.fs_old_inodefmt = FS_44INODEFMT;
298 1.68 fvdl sblock.fs_old_cgoffset = 0;
299 1.68 fvdl sblock.fs_old_cgmask = 0xffffffff;
300 1.68 fvdl sblock.fs_old_size = sblock.fs_size;
301 1.68 fvdl sblock.fs_old_rotdelay = 0;
302 1.68 fvdl sblock.fs_old_rps = 60;
303 1.68 fvdl sblock.fs_old_nspf = sblock.fs_fsize / sectorsize;
304 1.68 fvdl sblock.fs_old_cpg = 1;
305 1.68 fvdl sblock.fs_old_interleave = 1;
306 1.68 fvdl sblock.fs_old_trackskew = 0;
307 1.68 fvdl sblock.fs_old_cpc = 0;
308 1.72 dsl sblock.fs_old_postblformat = FS_DYNAMICPOSTBLFMT;
309 1.68 fvdl sblock.fs_old_nrpos = 1;
310 1.68 fvdl } else {
311 1.68 fvdl sblock.fs_magic = FS_UFS2_MAGIC;
312 1.68 fvdl sblock.fs_sblockloc = SBLOCK_UFS2;
313 1.68 fvdl sblock.fs_nindir = sblock.fs_bsize / sizeof(int64_t);
314 1.68 fvdl sblock.fs_inopb = sblock.fs_bsize / sizeof(struct ufs2_dinode);
315 1.68 fvdl sblock.fs_maxsymlinklen = ((NDADDR + NIADDR) *
316 1.68 fvdl sizeof (int64_t));
317 1.68 fvdl }
318 1.68 fvdl
319 1.1 cgd sblock.fs_sblkno =
320 1.68 fvdl roundup(howmany(sblock.fs_sblockloc + SBLOCKSIZE, sblock.fs_fsize),
321 1.68 fvdl sblock.fs_frag);
322 1.1 cgd sblock.fs_cblkno = (daddr_t)(sblock.fs_sblkno +
323 1.68 fvdl roundup(howmany(SBLOCKSIZE, sblock.fs_fsize), sblock.fs_frag));
324 1.1 cgd sblock.fs_iblkno = sblock.fs_cblkno + sblock.fs_frag;
325 1.9 mycroft sblock.fs_maxfilesize = sblock.fs_bsize * NDADDR - 1;
326 1.9 mycroft for (sizepb = sblock.fs_bsize, i = 0; i < NIADDR; i++) {
327 1.9 mycroft sizepb *= NINDIR(&sblock);
328 1.9 mycroft sblock.fs_maxfilesize += sizepb;
329 1.9 mycroft }
330 1.68 fvdl
331 1.1 cgd /*
332 1.68 fvdl * Calculate the number of blocks to put into each cylinder group.
333 1.68 fvdl *
334 1.74 dsl * The cylinder group size is limited because the data structure
335 1.74 dsl * must fit into a single block.
336 1.74 dsl * We try to have as few cylinder groups as possible, with a proviso
337 1.74 dsl * that we create at least MINCYLGRPS (==4) except for small
338 1.74 dsl * filesystems.
339 1.68 fvdl *
340 1.74 dsl * This algorithm works out how many blocks of inodes would be
341 1.74 dsl * needed to fill the entire volume at the specified density.
342 1.74 dsl * It then looks at how big the 'cylinder block' would have to
343 1.74 dsl * be and, assuming that it is linearly related to the number
344 1.74 dsl * of inodes and blocks how many cylinder groups are needed to
345 1.74 dsl * keep the cylinder block below the filesystem block size.
346 1.74 dsl *
347 1.74 dsl * The cylinder groups are then all created with the average size.
348 1.74 dsl *
349 1.74 dsl * Space taken by the red tape on cylinder groups other than the
350 1.74 dsl * first is ignored.
351 1.68 fvdl */
352 1.74 dsl
353 1.74 dsl /* There must be space for 1 inode block and 2 data blocks */
354 1.74 dsl if (sblock.fs_size < sblock.fs_iblkno + 3 * sblock.fs_frag) {
355 1.74 dsl printf("Filesystem size %lld < minimum size of %d\n",
356 1.74 dsl (long long)sblock.fs_size, sblock.fs_iblkno + 3 * sblock.fs_frag);
357 1.74 dsl exit(23);
358 1.1 cgd }
359 1.1 cgd /*
360 1.74 dsl * Calculate 'per inode block' so we can allocate less than 1 fragment
361 1.74 dsl * per inode - useful for /dev.
362 1.74 dsl */
363 1.74 dsl fragsperinodeblk = MAX(numfrags(&sblock, density * INOPB(&sblock)), 1);
364 1.74 dsl inodeblks = (sblock.fs_size - sblock.fs_iblkno - 2 * sblock.fs_frag) /
365 1.74 dsl (sblock.fs_frag + fragsperinodeblk);
366 1.74 dsl if (inodeblks == 0)
367 1.74 dsl inodeblks = 1;
368 1.74 dsl /* Even UFS2 limits number of inodes to 2^31 (fs_ipg is int32_t) */
369 1.74 dsl if (inodeblks * INOPB(&sblock) >= 1ull << 31)
370 1.74 dsl inodeblks = ((1ull << 31) - NBBY) / INOPB(&sblock);
371 1.74 dsl /*
372 1.74 dsl * See what would happen if we tried to use 1 cylinder group.
373 1.74 dsl * Assume space linear, so work out number of cylinder groups needed.
374 1.74 dsl * Subtract one from the allowed size to compensate for rounding
375 1.74 dsl * a number of bits up to a complete byte.
376 1.68 fvdl */
377 1.74 dsl cgzero = CGSIZE_IF(&sblock, 0, 0);
378 1.74 dsl cgall = CGSIZE_IF(&sblock, inodeblks * INOPB(&sblock), sblock.fs_size);
379 1.74 dsl ncg = howmany(cgall - cgzero, sblock.fs_bsize - cgzero - 1);
380 1.74 dsl if (ncg < MINCYLGRPS) {
381 1.74 dsl /*
382 1.74 dsl * We would like to allocate MINCLYGRPS cylinder groups,
383 1.74 dsl * but for small file sytems (especially ones with a lot
384 1.74 dsl * of inodes) this is not desirable (or possible).
385 1.74 dsl */
386 1.74 dsl i = sblock.fs_size / 2 / (sblock.fs_iblkno +
387 1.74 dsl inodeblks * sblock.fs_frag);
388 1.74 dsl if (i > ncg)
389 1.74 dsl ncg = i;
390 1.74 dsl if (ncg > MINCYLGRPS)
391 1.74 dsl ncg = MINCYLGRPS;
392 1.74 dsl if (ncg > inodeblks)
393 1.74 dsl ncg = inodeblks;
394 1.68 fvdl }
395 1.68 fvdl /*
396 1.74 dsl * Put an equal number of blocks in each cylinder group.
397 1.74 dsl * Round up so we don't have more fragments in the last CG than
398 1.74 dsl * the earlier ones (does that matter?), but kill a block if the
399 1.74 dsl * CGSIZE becomes too big (only happens if there are a lot of CGs).
400 1.68 fvdl */
401 1.74 dsl sblock.fs_fpg = roundup(howmany(sblock.fs_size, ncg), sblock.fs_frag);
402 1.74 dsl i = CGSIZE_IF(&sblock, inodeblks * INOPB(&sblock) / ncg, sblock.fs_fpg);
403 1.74 dsl if (i > sblock.fs_bsize)
404 1.74 dsl sblock.fs_fpg -= (i - sblock.fs_bsize) * NBBY;
405 1.74 dsl /* ... and recalculate how many cylinder groups we now need */
406 1.74 dsl ncg = howmany(sblock.fs_size, sblock.fs_fpg);
407 1.74 dsl inodeblks /= ncg;
408 1.74 dsl if (inodeblks == 0)
409 1.74 dsl inodeblks = 1;
410 1.74 dsl sblock.fs_ipg = inodeblks * INOPB(&sblock);
411 1.74 dsl /* Sanity check on our sums... */
412 1.74 dsl if (CGSIZE(&sblock) > sblock.fs_bsize) {
413 1.74 dsl printf("CGSIZE miscalculated %d > %d\n",
414 1.74 dsl (int)CGSIZE(&sblock), sblock.fs_bsize);
415 1.74 dsl exit(24);
416 1.74 dsl }
417 1.74 dsl /* Check that the last cylinder group has enough space for the inodes */
418 1.74 dsl i = sblock.fs_size - sblock.fs_fpg * (ncg - 1ull);
419 1.74 dsl if (i < sblock.fs_iblkno + inodeblks * sblock.fs_frag) {
420 1.74 dsl /*
421 1.74 dsl * Since we make all the cylinder groups the same size, the
422 1.74 dsl * last will only be small if there are a large number of
423 1.74 dsl * cylinder groups. If we pull even a fragment from each
424 1.74 dsl * of the other groups then the last CG will be overfull.
425 1.74 dsl * So we just kill the last CG.
426 1.74 dsl */
427 1.74 dsl ncg--;
428 1.74 dsl sblock.fs_size -= i;
429 1.74 dsl }
430 1.74 dsl sblock.fs_ncg = ncg;
431 1.74 dsl
432 1.1 cgd sblock.fs_cgsize = fragroundup(&sblock, CGSIZE(&sblock));
433 1.1 cgd sblock.fs_dblkno = sblock.fs_iblkno + sblock.fs_ipg / INOPF(&sblock);
434 1.68 fvdl if (Oflag <= 1) {
435 1.68 fvdl sblock.fs_old_spc = sblock.fs_fpg * sblock.fs_old_nspf;
436 1.68 fvdl sblock.fs_old_nsect = sblock.fs_old_spc;
437 1.68 fvdl sblock.fs_old_npsect = sblock.fs_old_spc;
438 1.68 fvdl sblock.fs_old_ncyl = sblock.fs_ncg;
439 1.1 cgd }
440 1.68 fvdl
441 1.1 cgd /*
442 1.73 dsl * Cylinder group summary information for each cylinder is written
443 1.73 dsl * into the first cylinder group.
444 1.73 dsl * Write this fragment by fragment, but doing the first CG last
445 1.73 dsl * (after we've taken stuff off for the structure itself and the
446 1.73 dsl * root directory.
447 1.1 cgd */
448 1.1 cgd sblock.fs_csaddr = cgdmin(&sblock, 0);
449 1.1 cgd sblock.fs_cssize =
450 1.1 cgd fragroundup(&sblock, sblock.fs_ncg * sizeof(struct csum));
451 1.73 dsl if (512 % sizeof *fscs_0)
452 1.73 dsl errx(1, "cylinder group summary doesn't fit in sectors");
453 1.73 dsl fscs_0 = calloc(1, 2 * sblock.fs_fsize);
454 1.73 dsl if (fscs_0 == NULL)
455 1.44 lukem exit(39);
456 1.73 dsl fs_csaddr = sblock.fs_csaddr;
457 1.73 dsl fscs_next = fscs_0;
458 1.73 dsl fscs_end = (void *)((char *)fscs_0 + 2 * sblock.fs_fsize);
459 1.73 dsl fscs_reset = (void *)((char *)fscs_0 + sblock.fs_fsize);
460 1.73 dsl /*
461 1.73 dsl * fill in remaining fields of the super block
462 1.73 dsl */
463 1.68 fvdl sblock.fs_sbsize = fragroundup(&sblock, sizeof(struct fs));
464 1.68 fvdl if (sblock.fs_sbsize > SBLOCKSIZE)
465 1.68 fvdl sblock.fs_sbsize = SBLOCKSIZE;
466 1.1 cgd sblock.fs_minfree = minfree;
467 1.1 cgd sblock.fs_maxcontig = maxcontig;
468 1.1 cgd sblock.fs_maxbpg = maxbpg;
469 1.1 cgd sblock.fs_optim = opt;
470 1.1 cgd sblock.fs_cgrotor = 0;
471 1.68 fvdl sblock.fs_pendingblocks = 0;
472 1.68 fvdl sblock.fs_pendinginodes = 0;
473 1.1 cgd sblock.fs_cstotal.cs_ndir = 0;
474 1.1 cgd sblock.fs_cstotal.cs_nbfree = 0;
475 1.1 cgd sblock.fs_cstotal.cs_nifree = 0;
476 1.1 cgd sblock.fs_cstotal.cs_nffree = 0;
477 1.1 cgd sblock.fs_fmod = 0;
478 1.68 fvdl sblock.fs_ronly = 0;
479 1.68 fvdl sblock.fs_state = 0;
480 1.21 mycroft sblock.fs_clean = FS_ISCLEAN;
481 1.1 cgd sblock.fs_ronly = 0;
482 1.70 atatat sblock.fs_id[0] = (long)tv.tv_sec; /* XXXfvdl huh? */
483 1.78 itojun sblock.fs_id[1] = arc4random() & INT32_MAX;
484 1.68 fvdl sblock.fs_fsmnt[0] = '\0';
485 1.68 fvdl csfrags = howmany(sblock.fs_cssize, sblock.fs_fsize);
486 1.68 fvdl sblock.fs_dsize = sblock.fs_size - sblock.fs_sblkno -
487 1.68 fvdl sblock.fs_ncg * (sblock.fs_dblkno - sblock.fs_sblkno);
488 1.68 fvdl sblock.fs_cstotal.cs_nbfree =
489 1.68 fvdl fragstoblks(&sblock, sblock.fs_dsize) -
490 1.68 fvdl howmany(csfrags, sblock.fs_frag);
491 1.68 fvdl sblock.fs_cstotal.cs_nffree =
492 1.68 fvdl fragnum(&sblock, sblock.fs_size) +
493 1.68 fvdl (fragnum(&sblock, csfrags) > 0 ?
494 1.68 fvdl sblock.fs_frag - fragnum(&sblock, csfrags) : 0);
495 1.68 fvdl sblock.fs_cstotal.cs_nifree = sblock.fs_ncg * sblock.fs_ipg - ROOTINO;
496 1.68 fvdl sblock.fs_cstotal.cs_ndir = 0;
497 1.68 fvdl sblock.fs_dsize -= csfrags;
498 1.70 atatat sblock.fs_time = tv.tv_sec;
499 1.68 fvdl if (Oflag <= 1) {
500 1.70 atatat sblock.fs_old_time = tv.tv_sec;
501 1.68 fvdl sblock.fs_old_dsize = sblock.fs_dsize;
502 1.68 fvdl sblock.fs_old_csaddr = sblock.fs_csaddr;
503 1.68 fvdl sblock.fs_old_cstotal.cs_ndir = sblock.fs_cstotal.cs_ndir;
504 1.68 fvdl sblock.fs_old_cstotal.cs_nbfree = sblock.fs_cstotal.cs_nbfree;
505 1.68 fvdl sblock.fs_old_cstotal.cs_nifree = sblock.fs_cstotal.cs_nifree;
506 1.68 fvdl sblock.fs_old_cstotal.cs_nffree = sblock.fs_cstotal.cs_nffree;
507 1.68 fvdl }
508 1.1 cgd /*
509 1.1 cgd * Dump out summary information about file system.
510 1.1 cgd */
511 1.1 cgd if (!mfs) {
512 1.60 simonb #define B2MBFACTOR (1 / (1024.0 * 1024.0))
513 1.68 fvdl printf("%s: %.1fMB (%lld sectors) block size %d, "
514 1.68 fvdl "fragment size %d\n",
515 1.68 fvdl fsys, (float)sblock.fs_size * sblock.fs_fsize * B2MBFACTOR,
516 1.68 fvdl (long long)fsbtodb(&sblock, sblock.fs_size),
517 1.68 fvdl sblock.fs_bsize, sblock.fs_fsize);
518 1.68 fvdl printf("\tusing %d cylinder groups of %.2fMB, %d blks, "
519 1.68 fvdl "%d inodes.\n",
520 1.68 fvdl sblock.fs_ncg,
521 1.9 mycroft (float)sblock.fs_fpg * sblock.fs_fsize * B2MBFACTOR,
522 1.68 fvdl sblock.fs_fpg / sblock.fs_frag, sblock.fs_ipg);
523 1.9 mycroft #undef B2MBFACTOR
524 1.1 cgd }
525 1.1 cgd /*
526 1.36 wrstuden * Now determine how wide each column will be, and calculate how
527 1.72 dsl * many columns will fit in a 80 char line.
528 1.36 wrstuden */
529 1.36 wrstuden printcolwidth = count_digits(
530 1.36 wrstuden fsbtodb(&sblock, cgsblock(&sblock, sblock.fs_ncg -1)));
531 1.72 dsl nprintcols = 80 / (printcolwidth + 2);
532 1.68 fvdl
533 1.68 fvdl /*
534 1.68 fvdl * allocate space for superblock, cylinder group map, and
535 1.68 fvdl * two sets of inode blocks.
536 1.68 fvdl */
537 1.68 fvdl if (sblock.fs_bsize < SBLOCKSIZE)
538 1.68 fvdl iobufsize = SBLOCKSIZE + 3 * sblock.fs_bsize;
539 1.68 fvdl else
540 1.68 fvdl iobufsize = 4 * sblock.fs_bsize;
541 1.68 fvdl if ((iobuf = malloc(iobufsize)) == 0) {
542 1.68 fvdl printf("Cannot allocate I/O buffer\n");
543 1.68 fvdl exit(38);
544 1.68 fvdl }
545 1.68 fvdl memset(iobuf, 0, iobufsize);
546 1.80 dsl
547 1.80 dsl /*
548 1.80 dsl * We now start writing to the filesystem
549 1.80 dsl */
550 1.80 dsl
551 1.80 dsl /*
552 1.80 dsl * Validate the given file system size.
553 1.80 dsl * Verify that its last block can actually be accessed.
554 1.80 dsl * Convert to file system fragment sized units.
555 1.80 dsl */
556 1.80 dsl if (fssize <= 0) {
557 1.80 dsl printf("preposterous size %lld\n", (long long)fssize);
558 1.80 dsl exit(13);
559 1.80 dsl }
560 1.80 dsl wtfs(fssize - 1, sectorsize, iobuf);
561 1.80 dsl
562 1.80 dsl /*
563 1.80 dsl * Ensure there is nothing that looks like a filesystem
564 1.80 dsl * superbock anywhere other than where ours will be.
565 1.80 dsl * If fsck finds the wrong one all hell breaks loose!
566 1.80 dsl */
567 1.80 dsl for (i = 0; ; i++) {
568 1.80 dsl static const int sblocklist[] = SBLOCKSEARCH;
569 1.80 dsl int sblkoff = sblocklist[i];
570 1.80 dsl int sz;
571 1.80 dsl if (sblkoff == -1)
572 1.80 dsl break;
573 1.80 dsl /* Remove main superblock */
574 1.80 dsl zap_old_sblock(sblkoff);
575 1.80 dsl /* and all possible locations for the first alternate */
576 1.80 dsl sblkoff += SBLOCKSIZE;
577 1.80 dsl for (sz = SBLOCKSIZE; sz <= 0x10000; sz <<= 1)
578 1.80 dsl zap_old_sblock(roundup(sblkoff, sz));
579 1.80 dsl }
580 1.80 dsl
581 1.80 dsl if (isappleufs) {
582 1.80 dsl struct appleufslabel appleufs;
583 1.80 dsl ffs_appleufs_set(&appleufs, appleufs_volname, tv.tv_sec);
584 1.80 dsl wtfs(APPLEUFS_LABEL_OFFSET/sectorsize, APPLEUFS_LABEL_SIZE,
585 1.80 dsl &appleufs);
586 1.80 dsl }
587 1.80 dsl
588 1.36 wrstuden /*
589 1.68 fvdl * Make a copy of the superblock into the buffer that we will be
590 1.68 fvdl * writing out in each cylinder group.
591 1.1 cgd */
592 1.76 dsl memcpy(iobuf, &sblock, sizeof sblock);
593 1.68 fvdl if (needswap)
594 1.76 dsl ffs_sb_swap(&sblock, (struct fs *)iobuf);
595 1.68 fvdl
596 1.1 cgd if (!mfs)
597 1.1 cgd printf("super-block backups (for fsck -b #) at:");
598 1.1 cgd for (cylno = 0; cylno < sblock.fs_ncg; cylno++) {
599 1.70 atatat initcg(cylno, &tv);
600 1.1 cgd if (mfs)
601 1.1 cgd continue;
602 1.36 wrstuden if (cylno % nprintcols == 0)
603 1.1 cgd printf("\n");
604 1.66 fvdl printf(" %*lld,", printcolwidth,
605 1.66 fvdl (long long)fsbtodb(&sblock, cgsblock(&sblock, cylno)));
606 1.22 jtc fflush(stdout);
607 1.1 cgd }
608 1.1 cgd if (!mfs)
609 1.1 cgd printf("\n");
610 1.1 cgd if (Nflag && !mfs)
611 1.1 cgd exit(0);
612 1.68 fvdl
613 1.1 cgd /*
614 1.1 cgd * Now construct the initial file system,
615 1.1 cgd */
616 1.70 atatat if (fsinit(&tv, mfsmode, mfsuid, mfsgid) == 0 && mfs)
617 1.60 simonb errx(1, "Error making filesystem");
618 1.70 atatat sblock.fs_time = tv.tv_sec;
619 1.68 fvdl if (Oflag <= 1) {
620 1.68 fvdl sblock.fs_old_cstotal.cs_ndir = sblock.fs_cstotal.cs_ndir;
621 1.68 fvdl sblock.fs_old_cstotal.cs_nbfree = sblock.fs_cstotal.cs_nbfree;
622 1.68 fvdl sblock.fs_old_cstotal.cs_nifree = sblock.fs_cstotal.cs_nifree;
623 1.68 fvdl sblock.fs_old_cstotal.cs_nffree = sblock.fs_cstotal.cs_nffree;
624 1.68 fvdl }
625 1.76 dsl /*
626 1.76 dsl * Write out the super-block and zeros until the first cg info
627 1.76 dsl */
628 1.76 dsl memset(iobuf, 0, iobufsize);
629 1.76 dsl memcpy(iobuf, &sblock, sizeof sblock);
630 1.30 bouyer if (needswap)
631 1.76 dsl ffs_sb_swap(&sblock, (struct fs *)iobuf);
632 1.76 dsl wtfs(sblock.fs_sblockloc / sectorsize,
633 1.76 dsl cgsblock(&sblock, 0) * sblock.fs_fsize - sblock.fs_sblockloc,
634 1.76 dsl iobuf);
635 1.34 wrstuden
636 1.73 dsl /* Write out first and last cylinder summary sectors */
637 1.73 dsl if (needswap)
638 1.73 dsl ffs_csum_swap(fscs_0, fscs_0, sblock.fs_fsize);
639 1.73 dsl wtfs(fsbtodb(&sblock, sblock.fs_csaddr), sblock.fs_fsize, fscs_0);
640 1.73 dsl
641 1.73 dsl if (fscs_next > fscs_reset) {
642 1.73 dsl if (needswap)
643 1.73 dsl ffs_csum_swap(fscs_reset, fscs_reset, sblock.fs_fsize);
644 1.73 dsl fs_csaddr++;
645 1.73 dsl wtfs(fsbtodb(&sblock, fs_csaddr), sblock.fs_fsize, fscs_reset);
646 1.73 dsl }
647 1.34 wrstuden
648 1.1 cgd /*
649 1.1 cgd * Update information about this partion in pack
650 1.1 cgd * label, to that it may be updated on disk.
651 1.1 cgd */
652 1.65 dbj if (isappleufs)
653 1.65 dbj pp->p_fstype = FS_APPLEUFS;
654 1.65 dbj else
655 1.65 dbj pp->p_fstype = FS_BSDFFS;
656 1.1 cgd pp->p_fsize = sblock.fs_fsize;
657 1.1 cgd pp->p_frag = sblock.fs_frag;
658 1.68 fvdl pp->p_cpg = sblock.fs_fpg;
659 1.1 cgd }
660 1.1 cgd
661 1.1 cgd /*
662 1.1 cgd * Initialize a cylinder group.
663 1.1 cgd */
664 1.26 christos void
665 1.70 atatat initcg(int cylno, const struct timeval *tv)
666 1.1 cgd {
667 1.68 fvdl daddr_t cbase, dmax;
668 1.68 fvdl int32_t i, j, d, dlower, dupper, blkno;
669 1.68 fvdl struct ufs1_dinode *dp1;
670 1.68 fvdl struct ufs2_dinode *dp2;
671 1.68 fvdl int start;
672 1.1 cgd
673 1.1 cgd /*
674 1.1 cgd * Determine block bounds for cylinder group.
675 1.1 cgd * Allow space for super block summary information in first
676 1.1 cgd * cylinder group.
677 1.1 cgd */
678 1.1 cgd cbase = cgbase(&sblock, cylno);
679 1.1 cgd dmax = cbase + sblock.fs_fpg;
680 1.1 cgd if (dmax > sblock.fs_size)
681 1.1 cgd dmax = sblock.fs_size;
682 1.1 cgd dlower = cgsblock(&sblock, cylno) - cbase;
683 1.1 cgd dupper = cgdmin(&sblock, cylno) - cbase;
684 1.72 dsl if (cylno == 0) {
685 1.1 cgd dupper += howmany(sblock.fs_cssize, sblock.fs_fsize);
686 1.72 dsl if (dupper >= cgstart(&sblock, cylno + 1)) {
687 1.72 dsl printf("\rToo many cylinder groups to fit summary "
688 1.72 dsl "information into first cylinder group\n");
689 1.72 dsl exit(40);
690 1.72 dsl }
691 1.72 dsl }
692 1.12 mycroft memset(&acg, 0, sblock.fs_cgsize);
693 1.1 cgd acg.cg_magic = CG_MAGIC;
694 1.1 cgd acg.cg_cgx = cylno;
695 1.1 cgd acg.cg_ndblk = dmax - cbase;
696 1.9 mycroft if (sblock.fs_contigsumsize > 0)
697 1.62 mycroft acg.cg_nclusterblks = acg.cg_ndblk >> sblock.fs_fragshift;
698 1.68 fvdl start = &acg.cg_space[0] - (u_char *)(&acg.cg_firstfield);
699 1.68 fvdl if (Oflag == 2) {
700 1.75 dsl acg.cg_time = tv->tv_sec;
701 1.75 dsl acg.cg_niblk = sblock.fs_ipg;
702 1.75 dsl acg.cg_initediblk = sblock.fs_ipg < 2 * INOPB(&sblock) ?
703 1.75 dsl sblock.fs_ipg : 2 * INOPB(&sblock);
704 1.68 fvdl acg.cg_iusedoff = start;
705 1.68 fvdl } else {
706 1.68 fvdl acg.cg_old_ncyl = sblock.fs_old_cpg;
707 1.75 dsl acg.cg_old_time = tv->tv_sec;
708 1.75 dsl acg.cg_old_niblk = sblock.fs_ipg;
709 1.68 fvdl acg.cg_old_btotoff = start;
710 1.68 fvdl acg.cg_old_boff = acg.cg_old_btotoff +
711 1.68 fvdl sblock.fs_old_cpg * sizeof(int32_t);
712 1.68 fvdl acg.cg_iusedoff = acg.cg_old_boff +
713 1.68 fvdl sblock.fs_old_cpg * sizeof(u_int16_t);
714 1.68 fvdl }
715 1.68 fvdl acg.cg_freeoff = acg.cg_iusedoff + howmany(sblock.fs_ipg, CHAR_BIT);
716 1.9 mycroft if (sblock.fs_contigsumsize <= 0) {
717 1.9 mycroft acg.cg_nextfreeoff = acg.cg_freeoff +
718 1.68 fvdl howmany(sblock.fs_fpg, CHAR_BIT);
719 1.9 mycroft } else {
720 1.62 mycroft acg.cg_clustersumoff = acg.cg_freeoff +
721 1.68 fvdl howmany(sblock.fs_fpg, CHAR_BIT) - sizeof(int32_t);
722 1.65 dbj if (isappleufs) {
723 1.65 dbj /* Apple PR2216969 gives rationale for this change.
724 1.65 dbj * I believe they were mistaken, but we need to
725 1.67 grant * duplicate it for compatibility. -- dbj (at) NetBSD.org
726 1.65 dbj */
727 1.65 dbj acg.cg_clustersumoff += sizeof(int32_t);
728 1.65 dbj }
729 1.9 mycroft acg.cg_clustersumoff =
730 1.14 cgd roundup(acg.cg_clustersumoff, sizeof(int32_t));
731 1.9 mycroft acg.cg_clusteroff = acg.cg_clustersumoff +
732 1.14 cgd (sblock.fs_contigsumsize + 1) * sizeof(int32_t);
733 1.62 mycroft acg.cg_nextfreeoff = acg.cg_clusteroff +
734 1.68 fvdl howmany(fragstoblks(&sblock, sblock.fs_fpg), CHAR_BIT);
735 1.9 mycroft }
736 1.41 scw if (acg.cg_nextfreeoff > sblock.fs_cgsize) {
737 1.9 mycroft printf("Panic: cylinder group too big\n");
738 1.9 mycroft exit(37);
739 1.1 cgd }
740 1.1 cgd acg.cg_cs.cs_nifree += sblock.fs_ipg;
741 1.1 cgd if (cylno == 0)
742 1.1 cgd for (i = 0; i < ROOTINO; i++) {
743 1.30 bouyer setbit(cg_inosused(&acg, 0), i);
744 1.1 cgd acg.cg_cs.cs_nifree--;
745 1.1 cgd }
746 1.1 cgd if (cylno > 0) {
747 1.1 cgd /*
748 1.1 cgd * In cylno 0, beginning space is reserved
749 1.1 cgd * for boot and super blocks.
750 1.1 cgd */
751 1.68 fvdl for (d = 0, blkno = 0; d < dlower;) {
752 1.30 bouyer setblock(&sblock, cg_blksfree(&acg, 0), blkno);
753 1.9 mycroft if (sblock.fs_contigsumsize > 0)
754 1.30 bouyer setbit(cg_clustersfree(&acg, 0), blkno);
755 1.1 cgd acg.cg_cs.cs_nbfree++;
756 1.64 mycroft d += sblock.fs_frag;
757 1.64 mycroft blkno++;
758 1.1 cgd }
759 1.1 cgd }
760 1.62 mycroft if ((i = (dupper & (sblock.fs_frag - 1))) != 0) {
761 1.1 cgd acg.cg_frsum[sblock.fs_frag - i]++;
762 1.1 cgd for (d = dupper + sblock.fs_frag - i; dupper < d; dupper++) {
763 1.30 bouyer setbit(cg_blksfree(&acg, 0), dupper);
764 1.1 cgd acg.cg_cs.cs_nffree++;
765 1.1 cgd }
766 1.1 cgd }
767 1.64 mycroft for (d = dupper, blkno = dupper >> sblock.fs_fragshift;
768 1.68 fvdl d + sblock.fs_frag <= acg.cg_ndblk; ) {
769 1.30 bouyer setblock(&sblock, cg_blksfree(&acg, 0), blkno);
770 1.9 mycroft if (sblock.fs_contigsumsize > 0)
771 1.30 bouyer setbit(cg_clustersfree(&acg, 0), blkno);
772 1.1 cgd acg.cg_cs.cs_nbfree++;
773 1.1 cgd d += sblock.fs_frag;
774 1.64 mycroft blkno++;
775 1.1 cgd }
776 1.68 fvdl if (d < acg.cg_ndblk) {
777 1.68 fvdl acg.cg_frsum[acg.cg_ndblk - d]++;
778 1.68 fvdl for (; d < acg.cg_ndblk; d++) {
779 1.30 bouyer setbit(cg_blksfree(&acg, 0), d);
780 1.1 cgd acg.cg_cs.cs_nffree++;
781 1.1 cgd }
782 1.1 cgd }
783 1.9 mycroft if (sblock.fs_contigsumsize > 0) {
784 1.30 bouyer int32_t *sump = cg_clustersum(&acg, 0);
785 1.30 bouyer u_char *mapp = cg_clustersfree(&acg, 0);
786 1.9 mycroft int map = *mapp++;
787 1.9 mycroft int bit = 1;
788 1.9 mycroft int run = 0;
789 1.9 mycroft
790 1.9 mycroft for (i = 0; i < acg.cg_nclusterblks; i++) {
791 1.9 mycroft if ((map & bit) != 0) {
792 1.9 mycroft run++;
793 1.9 mycroft } else if (run != 0) {
794 1.9 mycroft if (run > sblock.fs_contigsumsize)
795 1.9 mycroft run = sblock.fs_contigsumsize;
796 1.9 mycroft sump[run]++;
797 1.9 mycroft run = 0;
798 1.9 mycroft }
799 1.68 fvdl if ((i & (CHAR_BIT - 1)) != (CHAR_BIT - 1)) {
800 1.9 mycroft bit <<= 1;
801 1.9 mycroft } else {
802 1.9 mycroft map = *mapp++;
803 1.9 mycroft bit = 1;
804 1.9 mycroft }
805 1.9 mycroft }
806 1.9 mycroft if (run != 0) {
807 1.9 mycroft if (run > sblock.fs_contigsumsize)
808 1.9 mycroft run = sblock.fs_contigsumsize;
809 1.9 mycroft sump[run]++;
810 1.9 mycroft }
811 1.9 mycroft }
812 1.73 dsl *fscs_next++ = acg.cg_cs;
813 1.73 dsl if (fscs_next == fscs_end) {
814 1.73 dsl if (needswap)
815 1.73 dsl ffs_csum_swap(fscs_reset, fscs_reset, sblock.fs_fsize);
816 1.73 dsl fs_csaddr++;
817 1.73 dsl wtfs(fsbtodb(&sblock, fs_csaddr), sblock.fs_fsize, fscs_reset);
818 1.73 dsl fscs_next = fscs_reset;
819 1.73 dsl memset(fscs_next, 0, sblock.fs_fsize);
820 1.73 dsl }
821 1.68 fvdl /*
822 1.68 fvdl * Write out the duplicate super block, the cylinder group map
823 1.68 fvdl * and two blocks worth of inodes in a single write.
824 1.68 fvdl */
825 1.68 fvdl start = sblock.fs_bsize > SBLOCKSIZE ? sblock.fs_bsize : SBLOCKSIZE;
826 1.68 fvdl memcpy(&iobuf[start], &acg, sblock.fs_cgsize);
827 1.30 bouyer if (needswap)
828 1.68 fvdl ffs_cg_swap(&acg, (struct cg*)&iobuf[start], &sblock);
829 1.68 fvdl start += sblock.fs_bsize;
830 1.68 fvdl dp1 = (struct ufs1_dinode *)(&iobuf[start]);
831 1.68 fvdl dp2 = (struct ufs2_dinode *)(&iobuf[start]);
832 1.75 dsl for (i = MIN(sblock.fs_ipg, 2) * INOPB(&sblock); i != 0; i--) {
833 1.68 fvdl if (sblock.fs_magic == FS_UFS1_MAGIC) {
834 1.68 fvdl /* No need to swap, it'll stay random */
835 1.78 itojun dp1->di_gen = arc4random() & INT32_MAX;
836 1.68 fvdl dp1++;
837 1.68 fvdl } else {
838 1.78 itojun dp2->di_gen = arc4random() & INT32_MAX;
839 1.68 fvdl dp2++;
840 1.68 fvdl }
841 1.68 fvdl }
842 1.68 fvdl wtfs(fsbtodb(&sblock, cgsblock(&sblock, cylno)), iobufsize, iobuf);
843 1.68 fvdl /*
844 1.68 fvdl * For the old file system, we have to initialize all the inodes.
845 1.68 fvdl */
846 1.68 fvdl if (Oflag <= 1) {
847 1.68 fvdl for (i = 2 * sblock.fs_frag;
848 1.68 fvdl i < sblock.fs_ipg / INOPF(&sblock);
849 1.68 fvdl i += sblock.fs_frag) {
850 1.68 fvdl dp1 = (struct ufs1_dinode *)(&iobuf[start]);
851 1.68 fvdl for (j = 0; j < INOPB(&sblock); j++) {
852 1.78 itojun dp1->di_gen = arc4random() & INT32_MAX;
853 1.68 fvdl dp1++;
854 1.68 fvdl }
855 1.68 fvdl wtfs(fsbtodb(&sblock, cgimin(&sblock, cylno) + i),
856 1.68 fvdl sblock.fs_bsize, &iobuf[start]);
857 1.68 fvdl }
858 1.68 fvdl }
859 1.1 cgd }
860 1.1 cgd
861 1.1 cgd /*
862 1.1 cgd * initialize the file system
863 1.1 cgd */
864 1.1 cgd
865 1.1 cgd #ifdef LOSTDIR
866 1.60 simonb #define PREDEFDIR 3
867 1.1 cgd #else
868 1.60 simonb #define PREDEFDIR 2
869 1.1 cgd #endif
870 1.1 cgd
871 1.1 cgd struct direct root_dir[] = {
872 1.9 mycroft { ROOTINO, sizeof(struct direct), DT_DIR, 1, "." },
873 1.9 mycroft { ROOTINO, sizeof(struct direct), DT_DIR, 2, ".." },
874 1.9 mycroft #ifdef LOSTDIR
875 1.9 mycroft { LOSTFOUNDINO, sizeof(struct direct), DT_DIR, 10, "lost+found" },
876 1.9 mycroft #endif
877 1.9 mycroft };
878 1.9 mycroft struct odirect {
879 1.14 cgd u_int32_t d_ino;
880 1.14 cgd u_int16_t d_reclen;
881 1.14 cgd u_int16_t d_namlen;
882 1.9 mycroft u_char d_name[MAXNAMLEN + 1];
883 1.9 mycroft } oroot_dir[] = {
884 1.1 cgd { ROOTINO, sizeof(struct direct), 1, "." },
885 1.1 cgd { ROOTINO, sizeof(struct direct), 2, ".." },
886 1.1 cgd #ifdef LOSTDIR
887 1.1 cgd { LOSTFOUNDINO, sizeof(struct direct), 10, "lost+found" },
888 1.1 cgd #endif
889 1.1 cgd };
890 1.1 cgd #ifdef LOSTDIR
891 1.1 cgd struct direct lost_found_dir[] = {
892 1.9 mycroft { LOSTFOUNDINO, sizeof(struct direct), DT_DIR, 1, "." },
893 1.9 mycroft { ROOTINO, sizeof(struct direct), DT_DIR, 2, ".." },
894 1.9 mycroft { 0, DIRBLKSIZ, 0, 0, 0 },
895 1.9 mycroft };
896 1.9 mycroft struct odirect olost_found_dir[] = {
897 1.1 cgd { LOSTFOUNDINO, sizeof(struct direct), 1, "." },
898 1.1 cgd { ROOTINO, sizeof(struct direct), 2, ".." },
899 1.1 cgd { 0, DIRBLKSIZ, 0, 0 },
900 1.1 cgd };
901 1.1 cgd #endif
902 1.1 cgd char buf[MAXBSIZE];
903 1.39 simonb static void copy_dir(struct direct *, struct direct *);
904 1.1 cgd
905 1.60 simonb int
906 1.70 atatat fsinit(const struct timeval *tv, mode_t mfsmode, uid_t mfsuid, gid_t mfsgid)
907 1.1 cgd {
908 1.75 dsl union dinode node;
909 1.26 christos #ifdef LOSTDIR
910 1.1 cgd int i;
911 1.65 dbj int dirblksiz = DIRBLKSIZ;
912 1.65 dbj if (isappleufs)
913 1.65 dbj dirblksiz = APPLEUFS_DIRBLKSIZ;
914 1.26 christos #endif
915 1.1 cgd
916 1.1 cgd /*
917 1.1 cgd * initialize the node
918 1.1 cgd */
919 1.30 bouyer
920 1.1 cgd #ifdef LOSTDIR
921 1.1 cgd /*
922 1.1 cgd * create the lost+found directory
923 1.1 cgd */
924 1.75 dsl memset(&node, 0, sizeof(node));
925 1.68 fvdl if (Oflag == 0) {
926 1.9 mycroft (void)makedir((struct direct *)olost_found_dir, 2);
927 1.65 dbj for (i = dirblksiz; i < sblock.fs_bsize; i += dirblksiz)
928 1.30 bouyer copy_dir((struct direct*)&olost_found_dir[2],
929 1.30 bouyer (struct direct*)&buf[i]);
930 1.9 mycroft } else {
931 1.9 mycroft (void)makedir(lost_found_dir, 2);
932 1.65 dbj for (i = dirblksiz; i < sblock.fs_bsize; i += dirblksiz)
933 1.30 bouyer copy_dir(&lost_found_dir[2], (struct direct*)&buf[i]);
934 1.9 mycroft }
935 1.68 fvdl if (sblock.fs_magic == FS_UFS1_MAGIC) {
936 1.70 atatat node.dp1.di_atime = tv->tv_sec;
937 1.70 atatat node.dp1.di_atimensec = tv->tv_usec * 1000;
938 1.70 atatat node.dp1.di_mtime = tv->tv_sec;
939 1.70 atatat node.dp1.di_mtimensec = tv->tv_usec * 1000;
940 1.70 atatat node.dp1.di_ctime = tv->tv_sec;
941 1.70 atatat node.dp1.di_ctimensec = tv->tv_usec * 1000;
942 1.68 fvdl node.dp1.di_mode = IFDIR | UMASK;
943 1.68 fvdl node.dp1.di_nlink = 2;
944 1.68 fvdl node.dp1.di_size = sblock.fs_bsize;
945 1.68 fvdl node.dp1.di_db[0] = alloc(node.dp1.di_size, node.dp1.di_mode);
946 1.69 christos if (node.dp1.di_db[0] == 0)
947 1.69 christos return (0);
948 1.68 fvdl node.dp1.di_blocks = btodb(fragroundup(&sblock,
949 1.68 fvdl node.dp1.di_size));
950 1.68 fvdl node.dp1.di_uid = geteuid();
951 1.68 fvdl node.dp1.di_gid = getegid();
952 1.68 fvdl wtfs(fsbtodb(&sblock, node.dp1.di_db[0]), node.dp1.di_size,
953 1.68 fvdl buf);
954 1.68 fvdl } else {
955 1.70 atatat node.dp2.di_atime = tv->tv_sec;
956 1.70 atatat node.dp2.di_atimensec = tv->tv_usec * 1000;
957 1.70 atatat node.dp2.di_mtime = tv->tv_sec;
958 1.70 atatat node.dp2.di_mtimensec = tv->tv_usec * 1000;
959 1.70 atatat node.dp2.di_ctime = tv->tv_sec;
960 1.70 atatat node.dp2.di_ctimensec = tv->tv_usec * 1000;
961 1.70 atatat node.dp2.di_birthtime = tv->tv_sec;
962 1.70 atatat node.dp2.di_birthnsec = tv->tv_usec * 1000;
963 1.68 fvdl node.dp2.di_mode = IFDIR | UMASK;
964 1.68 fvdl node.dp2.di_nlink = 2;
965 1.68 fvdl node.dp2.di_size = sblock.fs_bsize;
966 1.68 fvdl node.dp2.di_db[0] = alloc(node.dp2.di_size, node.dp2.di_mode);
967 1.69 christos if (node.dp2.di_db[0] == 0)
968 1.69 christos return (0);
969 1.68 fvdl node.dp2.di_blocks = btodb(fragroundup(&sblock,
970 1.68 fvdl node.dp2.di_size));
971 1.68 fvdl node.dp2.di_uid = geteuid();
972 1.68 fvdl node.dp2.di_gid = getegid();
973 1.68 fvdl wtfs(fsbtodb(&sblock, node.dp2.di_db[0]), node.dp2.di_size,
974 1.68 fvdl buf);
975 1.68 fvdl }
976 1.1 cgd iput(&node, LOSTFOUNDINO);
977 1.1 cgd #endif
978 1.1 cgd /*
979 1.1 cgd * create the root directory
980 1.1 cgd */
981 1.75 dsl memset(&node, 0, sizeof(node));
982 1.68 fvdl if (Oflag <= 1) {
983 1.68 fvdl if (mfs) {
984 1.68 fvdl node.dp1.di_mode = IFDIR | mfsmode;
985 1.68 fvdl node.dp1.di_uid = mfsuid;
986 1.68 fvdl node.dp1.di_gid = mfsgid;
987 1.68 fvdl } else {
988 1.68 fvdl node.dp1.di_mode = IFDIR | UMASK;
989 1.68 fvdl node.dp1.di_uid = geteuid();
990 1.68 fvdl node.dp1.di_gid = getegid();
991 1.68 fvdl }
992 1.68 fvdl node.dp1.di_nlink = PREDEFDIR;
993 1.68 fvdl if (Oflag == 0)
994 1.68 fvdl node.dp1.di_size = makedir((struct direct *)oroot_dir,
995 1.68 fvdl PREDEFDIR);
996 1.68 fvdl else
997 1.68 fvdl node.dp1.di_size = makedir(root_dir, PREDEFDIR);
998 1.68 fvdl node.dp1.di_db[0] = alloc(sblock.fs_fsize, node.dp1.di_mode);
999 1.68 fvdl if (node.dp1.di_db[0] == 0)
1000 1.68 fvdl return (0);
1001 1.68 fvdl node.dp1.di_blocks = btodb(fragroundup(&sblock,
1002 1.68 fvdl node.dp1.di_size));
1003 1.68 fvdl wtfs(fsbtodb(&sblock, node.dp1.di_db[0]), sblock.fs_fsize, buf);
1004 1.60 simonb } else {
1005 1.68 fvdl if (mfs) {
1006 1.68 fvdl node.dp2.di_mode = IFDIR | mfsmode;
1007 1.68 fvdl node.dp2.di_uid = mfsuid;
1008 1.68 fvdl node.dp2.di_gid = mfsgid;
1009 1.68 fvdl } else {
1010 1.68 fvdl node.dp2.di_mode = IFDIR | UMASK;
1011 1.68 fvdl node.dp2.di_uid = geteuid();
1012 1.68 fvdl node.dp2.di_gid = getegid();
1013 1.68 fvdl }
1014 1.70 atatat node.dp2.di_atime = tv->tv_sec;
1015 1.70 atatat node.dp2.di_atimensec = tv->tv_usec * 1000;
1016 1.70 atatat node.dp2.di_mtime = tv->tv_sec;
1017 1.70 atatat node.dp2.di_mtimensec = tv->tv_usec * 1000;
1018 1.70 atatat node.dp2.di_ctime = tv->tv_sec;
1019 1.70 atatat node.dp2.di_ctimensec = tv->tv_usec * 1000;
1020 1.70 atatat node.dp2.di_birthtime = tv->tv_sec;
1021 1.70 atatat node.dp2.di_birthnsec = tv->tv_usec * 1000;
1022 1.68 fvdl node.dp2.di_nlink = PREDEFDIR;
1023 1.68 fvdl node.dp2.di_size = makedir(root_dir, PREDEFDIR);
1024 1.68 fvdl node.dp2.di_db[0] = alloc(sblock.fs_fsize, node.dp2.di_mode);
1025 1.68 fvdl if (node.dp2.di_db[0] == 0)
1026 1.68 fvdl return (0);
1027 1.68 fvdl node.dp2.di_blocks = btodb(fragroundup(&sblock,
1028 1.68 fvdl node.dp2.di_size));
1029 1.68 fvdl wtfs(fsbtodb(&sblock, node.dp2.di_db[0]), sblock.fs_fsize, buf);
1030 1.68 fvdl }
1031 1.1 cgd iput(&node, ROOTINO);
1032 1.60 simonb return (1);
1033 1.1 cgd }
1034 1.1 cgd
1035 1.1 cgd /*
1036 1.1 cgd * construct a set of directory entries in "buf".
1037 1.1 cgd * return size of directory.
1038 1.1 cgd */
1039 1.26 christos int
1040 1.39 simonb makedir(struct direct *protodir, int entries)
1041 1.1 cgd {
1042 1.1 cgd char *cp;
1043 1.1 cgd int i, spcleft;
1044 1.65 dbj int dirblksiz = DIRBLKSIZ;
1045 1.65 dbj if (isappleufs)
1046 1.65 dbj dirblksiz = APPLEUFS_DIRBLKSIZ;
1047 1.1 cgd
1048 1.68 fvdl memset(buf, 0, DIRBLKSIZ);
1049 1.65 dbj spcleft = dirblksiz;
1050 1.1 cgd for (cp = buf, i = 0; i < entries - 1; i++) {
1051 1.68 fvdl protodir[i].d_reclen = DIRSIZ(Oflag == 0, &protodir[i], 0);
1052 1.30 bouyer copy_dir(&protodir[i], (struct direct*)cp);
1053 1.1 cgd cp += protodir[i].d_reclen;
1054 1.1 cgd spcleft -= protodir[i].d_reclen;
1055 1.1 cgd }
1056 1.1 cgd protodir[i].d_reclen = spcleft;
1057 1.30 bouyer copy_dir(&protodir[i], (struct direct*)cp);
1058 1.65 dbj return (dirblksiz);
1059 1.1 cgd }
1060 1.1 cgd
1061 1.1 cgd /*
1062 1.1 cgd * allocate a block or frag
1063 1.1 cgd */
1064 1.1 cgd daddr_t
1065 1.39 simonb alloc(int size, int mode)
1066 1.1 cgd {
1067 1.1 cgd int i, frag;
1068 1.9 mycroft daddr_t d, blkno;
1069 1.1 cgd
1070 1.26 christos rdfs(fsbtodb(&sblock, cgtod(&sblock, 0)), sblock.fs_cgsize, &acg);
1071 1.30 bouyer /* fs -> host byte order */
1072 1.30 bouyer if (needswap)
1073 1.68 fvdl ffs_cg_swap(&acg, &acg, &sblock);
1074 1.1 cgd if (acg.cg_magic != CG_MAGIC) {
1075 1.1 cgd printf("cg 0: bad magic number\n");
1076 1.1 cgd return (0);
1077 1.1 cgd }
1078 1.1 cgd if (acg.cg_cs.cs_nbfree == 0) {
1079 1.1 cgd printf("first cylinder group ran out of space\n");
1080 1.1 cgd return (0);
1081 1.1 cgd }
1082 1.1 cgd for (d = 0; d < acg.cg_ndblk; d += sblock.fs_frag)
1083 1.62 mycroft if (isblock(&sblock, cg_blksfree(&acg, 0),
1084 1.62 mycroft d >> sblock.fs_fragshift))
1085 1.1 cgd goto goth;
1086 1.1 cgd printf("internal error: can't find block in cyl 0\n");
1087 1.1 cgd return (0);
1088 1.1 cgd goth:
1089 1.9 mycroft blkno = fragstoblks(&sblock, d);
1090 1.30 bouyer clrblock(&sblock, cg_blksfree(&acg, 0), blkno);
1091 1.10 cgd if (sblock.fs_contigsumsize > 0)
1092 1.30 bouyer clrbit(cg_clustersfree(&acg, 0), blkno);
1093 1.1 cgd acg.cg_cs.cs_nbfree--;
1094 1.1 cgd sblock.fs_cstotal.cs_nbfree--;
1095 1.73 dsl fscs_0->cs_nbfree--;
1096 1.1 cgd if (mode & IFDIR) {
1097 1.1 cgd acg.cg_cs.cs_ndir++;
1098 1.1 cgd sblock.fs_cstotal.cs_ndir++;
1099 1.73 dsl fscs_0->cs_ndir++;
1100 1.1 cgd }
1101 1.1 cgd if (size != sblock.fs_bsize) {
1102 1.1 cgd frag = howmany(size, sblock.fs_fsize);
1103 1.73 dsl fscs_0->cs_nffree += sblock.fs_frag - frag;
1104 1.1 cgd sblock.fs_cstotal.cs_nffree += sblock.fs_frag - frag;
1105 1.1 cgd acg.cg_cs.cs_nffree += sblock.fs_frag - frag;
1106 1.1 cgd acg.cg_frsum[sblock.fs_frag - frag]++;
1107 1.1 cgd for (i = frag; i < sblock.fs_frag; i++)
1108 1.30 bouyer setbit(cg_blksfree(&acg, 0), d + i);
1109 1.1 cgd }
1110 1.30 bouyer /* host -> fs byte order */
1111 1.30 bouyer if (needswap)
1112 1.68 fvdl ffs_cg_swap(&acg, &acg, &sblock);
1113 1.72 dsl wtfs(fsbtodb(&sblock, cgtod(&sblock, 0)), sblock.fs_cgsize, &acg);
1114 1.1 cgd return (d);
1115 1.1 cgd }
1116 1.1 cgd
1117 1.1 cgd /*
1118 1.1 cgd * Allocate an inode on the disk
1119 1.1 cgd */
1120 1.26 christos static void
1121 1.68 fvdl iput(union dinode *ip, ino_t ino)
1122 1.1 cgd {
1123 1.1 cgd daddr_t d;
1124 1.30 bouyer int c, i;
1125 1.68 fvdl struct ufs1_dinode *dp1;
1126 1.68 fvdl struct ufs2_dinode *dp2;
1127 1.1 cgd
1128 1.9 mycroft c = ino_to_cg(&sblock, ino);
1129 1.26 christos rdfs(fsbtodb(&sblock, cgtod(&sblock, 0)), sblock.fs_cgsize, &acg);
1130 1.30 bouyer /* fs -> host byte order */
1131 1.30 bouyer if (needswap)
1132 1.68 fvdl ffs_cg_swap(&acg, &acg, &sblock);
1133 1.1 cgd if (acg.cg_magic != CG_MAGIC) {
1134 1.1 cgd printf("cg 0: bad magic number\n");
1135 1.1 cgd exit(31);
1136 1.1 cgd }
1137 1.1 cgd acg.cg_cs.cs_nifree--;
1138 1.30 bouyer setbit(cg_inosused(&acg, 0), ino);
1139 1.30 bouyer /* host -> fs byte order */
1140 1.30 bouyer if (needswap)
1141 1.68 fvdl ffs_cg_swap(&acg, &acg, &sblock);
1142 1.72 dsl wtfs(fsbtodb(&sblock, cgtod(&sblock, 0)), sblock.fs_cgsize, &acg);
1143 1.1 cgd sblock.fs_cstotal.cs_nifree--;
1144 1.73 dsl fscs_0->cs_nifree--;
1145 1.1 cgd if (ino >= sblock.fs_ipg * sblock.fs_ncg) {
1146 1.1 cgd printf("fsinit: inode value out of range (%d).\n", ino);
1147 1.1 cgd exit(32);
1148 1.1 cgd }
1149 1.9 mycroft d = fsbtodb(&sblock, ino_to_fsba(&sblock, ino));
1150 1.68 fvdl rdfs(d, sblock.fs_bsize, (char *)iobuf);
1151 1.68 fvdl if (sblock.fs_magic == FS_UFS1_MAGIC) {
1152 1.68 fvdl dp1 = (struct ufs1_dinode *)iobuf;
1153 1.75 dsl dp1 += ino_to_fsbo(&sblock, ino);
1154 1.68 fvdl if (needswap) {
1155 1.75 dsl ffs_dinode1_swap(&ip->dp1, dp1);
1156 1.68 fvdl /* ffs_dinode1_swap() doesn't swap blocks addrs */
1157 1.68 fvdl for (i=0; i<NDADDR + NIADDR; i++)
1158 1.75 dsl dp1->di_db[i] = bswap32(ip->dp1.di_db[i]);
1159 1.68 fvdl } else
1160 1.75 dsl *dp1 = ip->dp1;
1161 1.79 itojun dp1->di_gen = arc4random() & INT32_MAX;
1162 1.68 fvdl } else {
1163 1.68 fvdl dp2 = (struct ufs2_dinode *)iobuf;
1164 1.75 dsl dp2 += ino_to_fsbo(&sblock, ino);
1165 1.68 fvdl if (needswap) {
1166 1.75 dsl ffs_dinode2_swap(&ip->dp2, dp2);
1167 1.68 fvdl for (i=0; i<NDADDR + NIADDR; i++)
1168 1.75 dsl dp2->di_db[i] = bswap32(ip->dp2.di_db[i]);
1169 1.68 fvdl } else
1170 1.75 dsl *dp2 = ip->dp2;
1171 1.79 itojun dp2->di_gen = arc4random() & INT32_MAX;
1172 1.68 fvdl }
1173 1.68 fvdl wtfs(d, sblock.fs_bsize, iobuf);
1174 1.1 cgd }
1175 1.1 cgd
1176 1.1 cgd /*
1177 1.1 cgd * read a block from the file system
1178 1.1 cgd */
1179 1.26 christos void
1180 1.39 simonb rdfs(daddr_t bno, int size, void *bf)
1181 1.1 cgd {
1182 1.1 cgd int n;
1183 1.18 cgd off_t offset;
1184 1.1 cgd
1185 1.61 lukem #ifdef MFS
1186 1.1 cgd if (mfs) {
1187 1.27 lukem memmove(bf, membase + bno * sectorsize, size);
1188 1.1 cgd return;
1189 1.1 cgd }
1190 1.61 lukem #endif
1191 1.18 cgd offset = bno;
1192 1.72 dsl n = pread(fsi, bf, size, offset * sectorsize);
1193 1.9 mycroft if (n != size) {
1194 1.66 fvdl printf("rdfs: read error for sector %lld: %s\n",
1195 1.66 fvdl (long long)bno, strerror(errno));
1196 1.1 cgd exit(34);
1197 1.1 cgd }
1198 1.1 cgd }
1199 1.1 cgd
1200 1.1 cgd /*
1201 1.1 cgd * write a block to the file system
1202 1.1 cgd */
1203 1.26 christos void
1204 1.39 simonb wtfs(daddr_t bno, int size, void *bf)
1205 1.1 cgd {
1206 1.1 cgd int n;
1207 1.18 cgd off_t offset;
1208 1.1 cgd
1209 1.61 lukem #ifdef MFS
1210 1.1 cgd if (mfs) {
1211 1.27 lukem memmove(membase + bno * sectorsize, bf, size);
1212 1.1 cgd return;
1213 1.1 cgd }
1214 1.61 lukem #endif
1215 1.1 cgd if (Nflag)
1216 1.1 cgd return;
1217 1.18 cgd offset = bno;
1218 1.72 dsl n = pwrite(fso, bf, size, offset * sectorsize);
1219 1.9 mycroft if (n != size) {
1220 1.66 fvdl printf("wtfs: write error for sector %lld: %s\n",
1221 1.66 fvdl (long long)bno, strerror(errno));
1222 1.1 cgd exit(36);
1223 1.1 cgd }
1224 1.1 cgd }
1225 1.1 cgd
1226 1.1 cgd /*
1227 1.1 cgd * check if a block is available
1228 1.1 cgd */
1229 1.26 christos int
1230 1.39 simonb isblock(struct fs *fs, unsigned char *cp, int h)
1231 1.1 cgd {
1232 1.1 cgd unsigned char mask;
1233 1.1 cgd
1234 1.62 mycroft switch (fs->fs_fragshift) {
1235 1.62 mycroft case 3:
1236 1.1 cgd return (cp[h] == 0xff);
1237 1.62 mycroft case 2:
1238 1.1 cgd mask = 0x0f << ((h & 0x1) << 2);
1239 1.1 cgd return ((cp[h >> 1] & mask) == mask);
1240 1.62 mycroft case 1:
1241 1.1 cgd mask = 0x03 << ((h & 0x3) << 1);
1242 1.1 cgd return ((cp[h >> 2] & mask) == mask);
1243 1.62 mycroft case 0:
1244 1.1 cgd mask = 0x01 << (h & 0x7);
1245 1.1 cgd return ((cp[h >> 3] & mask) == mask);
1246 1.1 cgd default:
1247 1.1 cgd #ifdef STANDALONE
1248 1.62 mycroft printf("isblock bad fs_fragshift %d\n", fs->fs_fragshift);
1249 1.1 cgd #else
1250 1.62 mycroft fprintf(stderr, "isblock bad fs_fragshift %d\n",
1251 1.62 mycroft fs->fs_fragshift);
1252 1.1 cgd #endif
1253 1.1 cgd return (0);
1254 1.1 cgd }
1255 1.1 cgd }
1256 1.1 cgd
1257 1.1 cgd /*
1258 1.1 cgd * take a block out of the map
1259 1.1 cgd */
1260 1.26 christos void
1261 1.39 simonb clrblock(struct fs *fs, unsigned char *cp, int h)
1262 1.1 cgd {
1263 1.62 mycroft switch ((fs)->fs_fragshift) {
1264 1.62 mycroft case 3:
1265 1.1 cgd cp[h] = 0;
1266 1.1 cgd return;
1267 1.62 mycroft case 2:
1268 1.1 cgd cp[h >> 1] &= ~(0x0f << ((h & 0x1) << 2));
1269 1.1 cgd return;
1270 1.62 mycroft case 1:
1271 1.1 cgd cp[h >> 2] &= ~(0x03 << ((h & 0x3) << 1));
1272 1.1 cgd return;
1273 1.62 mycroft case 0:
1274 1.1 cgd cp[h >> 3] &= ~(0x01 << (h & 0x7));
1275 1.1 cgd return;
1276 1.1 cgd default:
1277 1.1 cgd #ifdef STANDALONE
1278 1.62 mycroft printf("clrblock bad fs_fragshift %d\n", fs->fs_fragshift);
1279 1.1 cgd #else
1280 1.62 mycroft fprintf(stderr, "clrblock bad fs_fragshift %d\n",
1281 1.62 mycroft fs->fs_fragshift);
1282 1.1 cgd #endif
1283 1.1 cgd return;
1284 1.1 cgd }
1285 1.1 cgd }
1286 1.1 cgd
1287 1.1 cgd /*
1288 1.1 cgd * put a block into the map
1289 1.1 cgd */
1290 1.26 christos void
1291 1.39 simonb setblock(struct fs *fs, unsigned char *cp, int h)
1292 1.1 cgd {
1293 1.62 mycroft switch (fs->fs_fragshift) {
1294 1.62 mycroft case 3:
1295 1.1 cgd cp[h] = 0xff;
1296 1.1 cgd return;
1297 1.62 mycroft case 2:
1298 1.1 cgd cp[h >> 1] |= (0x0f << ((h & 0x1) << 2));
1299 1.1 cgd return;
1300 1.62 mycroft case 1:
1301 1.1 cgd cp[h >> 2] |= (0x03 << ((h & 0x3) << 1));
1302 1.1 cgd return;
1303 1.62 mycroft case 0:
1304 1.1 cgd cp[h >> 3] |= (0x01 << (h & 0x7));
1305 1.1 cgd return;
1306 1.1 cgd default:
1307 1.1 cgd #ifdef STANDALONE
1308 1.62 mycroft printf("setblock bad fs_frag %d\n", fs->fs_fragshift);
1309 1.1 cgd #else
1310 1.62 mycroft fprintf(stderr, "setblock bad fs_fragshift %d\n",
1311 1.62 mycroft fs->fs_fragshift);
1312 1.1 cgd #endif
1313 1.1 cgd return;
1314 1.30 bouyer }
1315 1.30 bouyer }
1316 1.30 bouyer
1317 1.30 bouyer /* copy a direntry to a buffer, in fs byte order */
1318 1.30 bouyer static void
1319 1.39 simonb copy_dir(struct direct *dir, struct direct *dbuf)
1320 1.30 bouyer {
1321 1.68 fvdl memcpy(dbuf, dir, DIRSIZ(Oflag == 0, dir, 0));
1322 1.30 bouyer if (needswap) {
1323 1.30 bouyer dbuf->d_ino = bswap32(dir->d_ino);
1324 1.30 bouyer dbuf->d_reclen = bswap16(dir->d_reclen);
1325 1.68 fvdl if (Oflag == 0)
1326 1.30 bouyer ((struct odirect*)dbuf)->d_namlen =
1327 1.30 bouyer bswap16(((struct odirect*)dir)->d_namlen);
1328 1.1 cgd }
1329 1.36 wrstuden }
1330 1.36 wrstuden
1331 1.36 wrstuden /* Determine how many digits are needed to print a given integer */
1332 1.36 wrstuden static int
1333 1.72 dsl count_digits(uint64_t num)
1334 1.36 wrstuden {
1335 1.36 wrstuden int ndig;
1336 1.36 wrstuden
1337 1.72 dsl for (ndig = 1; num > 9; num /= 10, ndig++);
1338 1.36 wrstuden
1339 1.36 wrstuden return (ndig);
1340 1.60 simonb }
1341 1.68 fvdl
1342 1.68 fvdl static int
1343 1.68 fvdl ilog2(int val)
1344 1.68 fvdl {
1345 1.68 fvdl u_int n;
1346 1.68 fvdl
1347 1.68 fvdl for (n = 0; n < sizeof(n) * CHAR_BIT; n++)
1348 1.68 fvdl if (1 << n == val)
1349 1.68 fvdl return (n);
1350 1.68 fvdl errx(1, "ilog2: %d is not a power of 2\n", val);
1351 1.80 dsl }
1352 1.80 dsl
1353 1.80 dsl static void
1354 1.80 dsl zap_old_sblock(int sblkoff)
1355 1.80 dsl {
1356 1.80 dsl static int cg0_data;
1357 1.80 dsl uint32_t oldfs[SBLOCKSIZE / 4];
1358 1.80 dsl static const struct fsm {
1359 1.80 dsl uint32_t offset;
1360 1.80 dsl uint32_t magic;
1361 1.80 dsl uint32_t mask;
1362 1.80 dsl } fs_magics[] = {
1363 1.80 dsl {offsetof(struct fs, fs_magic)/4, FS_UFS1_MAGIC, ~0u},
1364 1.80 dsl {offsetof(struct fs, fs_magic)/4, FS_UFS2_MAGIC, ~0u},
1365 1.80 dsl {0, 0x70162, ~0u}, /* LFS_MAGIC */
1366 1.80 dsl {14, 0xef53, 0xffff}, /* EXT2FS (little) */
1367 1.80 dsl {14, 0xef530000, 0xffff0000}, /* EXT2FS (big) */
1368 1.80 dsl {~0u},
1369 1.80 dsl };
1370 1.80 dsl const struct fsm *fsm;
1371 1.80 dsl
1372 1.80 dsl if (cg0_data == 0)
1373 1.80 dsl /* For FFSv1 this could include all the inodes. */
1374 1.80 dsl cg0_data = cgsblock(&sblock, 0) * sblock.fs_fsize + iobufsize;
1375 1.80 dsl
1376 1.80 dsl /* Ignore anything that is beyond our filesystem */
1377 1.80 dsl if ((sblkoff + SBLOCKSIZE)/sectorsize >= fssize)
1378 1.80 dsl return;
1379 1.80 dsl /* Zero anything inside our filesystem... */
1380 1.80 dsl if (sblkoff >= sblock.fs_sblockloc) {
1381 1.80 dsl /* ...unless we will write that area anyway */
1382 1.80 dsl if (sblkoff >= cg0_data)
1383 1.80 dsl wtfs(sblkoff/sectorsize, sizeof sblock, iobuf);
1384 1.80 dsl return;
1385 1.80 dsl }
1386 1.80 dsl
1387 1.80 dsl /* The sector might contain boot code, so we must validate it */
1388 1.80 dsl rdfs(sblkoff/sectorsize, sizeof oldfs, &oldfs);
1389 1.80 dsl for (fsm = fs_magics; ; fsm++) {
1390 1.80 dsl uint32_t v;
1391 1.80 dsl if (fsm->mask == 0)
1392 1.80 dsl return;
1393 1.80 dsl v = oldfs[fsm->offset];
1394 1.80 dsl if ((v & fsm->mask) == fsm->magic ||
1395 1.80 dsl (bswap32(v) & fsm->mask) == fsm->magic)
1396 1.80 dsl break;
1397 1.80 dsl }
1398 1.80 dsl
1399 1.80 dsl /* Just zap the magic number */
1400 1.80 dsl oldfs[fsm->offset] = 0;
1401 1.80 dsl wtfs(sblkoff/sectorsize, sizeof oldfs, &oldfs);
1402 1.68 fvdl }
1403 1.68 fvdl
1404 1.60 simonb
1405 1.61 lukem #ifdef MFS
1406 1.60 simonb /*
1407 1.60 simonb * XXX!
1408 1.60 simonb * Attempt to guess how much more space is available for process data. The
1409 1.60 simonb * heuristic we use is
1410 1.60 simonb *
1411 1.60 simonb * max_data_limit - (sbrk(0) - etext) - 128kB
1412 1.60 simonb *
1413 1.60 simonb * etext approximates that start address of the data segment, and the 128kB
1414 1.60 simonb * allows some slop for both segment gap between text and data, and for other
1415 1.60 simonb * (libc) malloc usage.
1416 1.60 simonb */
1417 1.60 simonb static void
1418 1.60 simonb calc_memfree(void)
1419 1.60 simonb {
1420 1.60 simonb extern char etext;
1421 1.60 simonb struct rlimit rlp;
1422 1.60 simonb u_long base;
1423 1.60 simonb
1424 1.60 simonb base = (u_long)sbrk(0) - (u_long)&etext;
1425 1.60 simonb if (getrlimit(RLIMIT_DATA, &rlp) < 0)
1426 1.60 simonb perror("getrlimit");
1427 1.60 simonb rlp.rlim_cur = rlp.rlim_max;
1428 1.60 simonb if (setrlimit(RLIMIT_DATA, &rlp) < 0)
1429 1.60 simonb perror("setrlimit");
1430 1.60 simonb memleft = rlp.rlim_max - base - (128 * 1024);
1431 1.60 simonb }
1432 1.60 simonb
1433 1.60 simonb /*
1434 1.60 simonb * Internal version of malloc that trims the requested size if not enough
1435 1.60 simonb * memory is available.
1436 1.60 simonb */
1437 1.60 simonb static void *
1438 1.60 simonb mkfs_malloc(size_t size)
1439 1.60 simonb {
1440 1.60 simonb u_long pgsz;
1441 1.60 simonb
1442 1.60 simonb if (size == 0)
1443 1.60 simonb return (NULL);
1444 1.60 simonb if (memleft == 0)
1445 1.60 simonb calc_memfree();
1446 1.60 simonb
1447 1.60 simonb pgsz = getpagesize() - 1;
1448 1.60 simonb size = (size + pgsz) &~ pgsz;
1449 1.60 simonb if (size > memleft)
1450 1.60 simonb size = memleft;
1451 1.60 simonb memleft -= size;
1452 1.60 simonb return (mmap(0, size, PROT_READ|PROT_WRITE, MAP_ANON|MAP_PRIVATE,
1453 1.60 simonb -1, 0));
1454 1.1 cgd }
1455 1.61 lukem #endif /* MFS */
1456