fs.h revision 1.40 1 1.40 dbj /* $NetBSD: fs.h,v 1.40 2004/01/03 19:18:17 dbj Exp $ */
2 1.2 cgd
3 1.1 mycroft /*
4 1.1 mycroft * Copyright (c) 1982, 1986, 1993
5 1.1 mycroft * The Regents of the University of California. All rights reserved.
6 1.1 mycroft *
7 1.1 mycroft * Redistribution and use in source and binary forms, with or without
8 1.1 mycroft * modification, are permitted provided that the following conditions
9 1.1 mycroft * are met:
10 1.1 mycroft * 1. Redistributions of source code must retain the above copyright
11 1.1 mycroft * notice, this list of conditions and the following disclaimer.
12 1.1 mycroft * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 mycroft * notice, this list of conditions and the following disclaimer in the
14 1.1 mycroft * documentation and/or other materials provided with the distribution.
15 1.33 agc * 3. Neither the name of the University nor the names of its contributors
16 1.1 mycroft * may be used to endorse or promote products derived from this software
17 1.1 mycroft * without specific prior written permission.
18 1.1 mycroft *
19 1.1 mycroft * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 1.1 mycroft * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.1 mycroft * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.1 mycroft * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 1.1 mycroft * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.1 mycroft * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.1 mycroft * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.1 mycroft * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.1 mycroft * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.1 mycroft * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.1 mycroft * SUCH DAMAGE.
30 1.1 mycroft *
31 1.8 fvdl * @(#)fs.h 8.13 (Berkeley) 3/21/95
32 1.1 mycroft */
33 1.1 mycroft
34 1.14 lukem #ifndef _UFS_FFS_FS_H_
35 1.14 lukem #define _UFS_FFS_FS_H_
36 1.14 lukem
37 1.1 mycroft /*
38 1.1 mycroft * Each disk drive contains some number of file systems.
39 1.1 mycroft * A file system consists of a number of cylinder groups.
40 1.1 mycroft * Each cylinder group has inodes and data.
41 1.1 mycroft *
42 1.1 mycroft * A file system is described by its super-block, which in turn
43 1.1 mycroft * describes the cylinder groups. The super-block is critical
44 1.1 mycroft * data and is replicated in each cylinder group to protect against
45 1.1 mycroft * catastrophic loss. This is done at `newfs' time and the critical
46 1.1 mycroft * super-block data does not change, so the copies need not be
47 1.1 mycroft * referenced further unless disaster strikes.
48 1.1 mycroft *
49 1.1 mycroft * For file system fs, the offsets of the various blocks of interest
50 1.1 mycroft * are given in the super block as:
51 1.1 mycroft * [fs->fs_sblkno] Super-block
52 1.1 mycroft * [fs->fs_cblkno] Cylinder group block
53 1.1 mycroft * [fs->fs_iblkno] Inode blocks
54 1.1 mycroft * [fs->fs_dblkno] Data blocks
55 1.1 mycroft * The beginning of cylinder group cg in fs, is given by
56 1.1 mycroft * the ``cgbase(fs, cg)'' macro.
57 1.1 mycroft *
58 1.29 fvdl * Depending on the architecture and the media, the superblock may
59 1.29 fvdl * reside in any one of four places. For tiny media where every block
60 1.29 fvdl * counts, it is placed at the very front of the partition. Historically,
61 1.29 fvdl * UFS1 placed it 8K from the front to leave room for the disk label and
62 1.29 fvdl * a small bootstrap. For UFS2 it got moved to 64K from the front to leave
63 1.29 fvdl * room for the disk label and a bigger bootstrap, and for really piggy
64 1.29 fvdl * systems we check at 256K from the front if the first three fail. In
65 1.29 fvdl * all cases the size of the superblock will be SBLOCKSIZE. All values are
66 1.29 fvdl * given in byte-offset form, so they do not imply a sector size. The
67 1.29 fvdl * SBLOCKSEARCH specifies the order in which the locations should be searched.
68 1.29 fvdl *
69 1.1 mycroft */
70 1.15 lukem #define BBSIZE 8192
71 1.1 mycroft #define BBOFF ((off_t)(0))
72 1.28 fvdl #define BBLOCK ((daddr_t)(0))
73 1.29 fvdl
74 1.29 fvdl #define SBLOCK_FLOPPY 0
75 1.29 fvdl #define SBLOCK_UFS1 8192
76 1.29 fvdl #define SBLOCK_UFS2 65536
77 1.29 fvdl #define SBLOCK_PIGGY 262144
78 1.29 fvdl #define SBLOCKSIZE 8192
79 1.29 fvdl #define SBLOCKSEARCH \
80 1.29 fvdl { SBLOCK_UFS2, SBLOCK_UFS1, SBLOCK_FLOPPY, SBLOCK_PIGGY, -1 }
81 1.29 fvdl
82 1.29 fvdl /*
83 1.29 fvdl * Max number of fragments per block. This value is NOT tweakable.
84 1.29 fvdl */
85 1.29 fvdl #define MAXFRAG 8
86 1.29 fvdl
87 1.29 fvdl
88 1.1 mycroft
89 1.1 mycroft /*
90 1.1 mycroft * Addresses stored in inodes are capable of addressing fragments
91 1.15 lukem * of `blocks'. File system blocks of at most size MAXBSIZE can
92 1.1 mycroft * be optionally broken into 2, 4, or 8 pieces, each of which is
93 1.15 lukem * addressable; these pieces may be DEV_BSIZE, or some multiple of
94 1.1 mycroft * a DEV_BSIZE unit.
95 1.1 mycroft *
96 1.1 mycroft * Large files consist of exclusively large data blocks. To avoid
97 1.1 mycroft * undue wasted disk space, the last data block of a small file may be
98 1.1 mycroft * allocated as only as many fragments of a large block as are
99 1.1 mycroft * necessary. The file system format retains only a single pointer
100 1.1 mycroft * to such a fragment, which is a piece of a single large block that
101 1.1 mycroft * has been divided. The size of such a fragment is determinable from
102 1.1 mycroft * information in the inode, using the ``blksize(fs, ip, lbn)'' macro.
103 1.1 mycroft *
104 1.1 mycroft * The file system records space availability at the fragment level;
105 1.1 mycroft * to determine block availability, aligned fragments are examined.
106 1.1 mycroft */
107 1.1 mycroft
108 1.1 mycroft /*
109 1.4 mycroft * MINBSIZE is the smallest allowable block size.
110 1.4 mycroft * In order to insure that it is possible to create files of size
111 1.4 mycroft * 2^32 with only two levels of indirection, MINBSIZE is set to 4096.
112 1.4 mycroft * MINBSIZE must be big enough to hold a cylinder group block,
113 1.4 mycroft * thus changes to (struct cg) must keep its size within MINBSIZE.
114 1.4 mycroft * Note that super blocks are always of size SBSIZE,
115 1.1 mycroft * and that both SBSIZE and MAXBSIZE must be >= MINBSIZE.
116 1.1 mycroft */
117 1.15 lukem #define MINBSIZE 4096
118 1.1 mycroft
119 1.1 mycroft /*
120 1.4 mycroft * The path name on which the file system is mounted is maintained
121 1.4 mycroft * in fs_fsmnt. MAXMNTLEN defines the amount of space allocated in
122 1.4 mycroft * the super block for this name.
123 1.3 cgd */
124 1.29 fvdl #define MAXMNTLEN 468
125 1.29 fvdl
126 1.29 fvdl /*
127 1.29 fvdl * The volume name for this filesystem is maintained in fs_volname.
128 1.29 fvdl * MAXVOLLEN defines the length of the buffer allocated.
129 1.29 fvdl */
130 1.29 fvdl #define MAXVOLLEN 32
131 1.3 cgd
132 1.3 cgd /*
133 1.18 lukem * There is a 128-byte region in the superblock reserved for in-core
134 1.18 lukem * pointers to summary information. Originally this included an array
135 1.36 dbj * of pointers to blocks of struct csum; now there are just four
136 1.18 lukem * pointers and the remaining space is padded with fs_ocsp[].
137 1.18 lukem * NOCSPTRS determines the size of this padding. One pointer (fs_csp)
138 1.18 lukem * is taken away to point to a contiguous array of struct csum for
139 1.18 lukem * all cylinder groups; a second (fs_maxcluster) points to an array
140 1.20 lukem * of cluster sizes that is computed as cylinder groups are inspected;
141 1.36 dbj * the third (fs_contigdirs) points to an array that tracks the
142 1.36 dbj * creation of new directories; and the fourth (fs_active) is used
143 1.36 dbj * by snapshots.
144 1.1 mycroft */
145 1.29 fvdl #define NOCSPTRS ((128 / sizeof(void *)) - 4)
146 1.1 mycroft
147 1.1 mycroft /*
148 1.1 mycroft * A summary of contiguous blocks of various sizes is maintained
149 1.1 mycroft * in each cylinder group. Normally this is set by the initial
150 1.1 mycroft * value of fs_maxcontig. To conserve space, a maximum summary size
151 1.1 mycroft * is set by FS_MAXCONTIG.
152 1.1 mycroft */
153 1.15 lukem #define FS_MAXCONTIG 16
154 1.1 mycroft
155 1.1 mycroft /*
156 1.29 fvdl * Unused value currently, FreeBSD compat.
157 1.29 fvdl */
158 1.29 fvdl #define FSMAXSNAP 20
159 1.29 fvdl
160 1.29 fvdl /*
161 1.1 mycroft * MINFREE gives the minimum acceptable percentage of file system
162 1.1 mycroft * blocks which may be free. If the freelist drops below this level
163 1.1 mycroft * only the superuser may continue to allocate blocks. This may
164 1.1 mycroft * be set to 0 if no reserve of free blocks is deemed necessary,
165 1.1 mycroft * however throughput drops by fifty percent if the file system
166 1.1 mycroft * is run at between 95% and 100% full; thus the minimum default
167 1.1 mycroft * value of fs_minfree is 5%. However, to get good clustering
168 1.1 mycroft * performance, 10% is a better choice. hence we use 10% as our
169 1.1 mycroft * default value. With 10% free space, fragmentation is not a
170 1.1 mycroft * problem, so we choose to optimize for time.
171 1.1 mycroft */
172 1.15 lukem #define MINFREE 5
173 1.15 lukem #define DEFAULTOPT FS_OPTTIME
174 1.1 mycroft
175 1.1 mycroft /*
176 1.20 lukem * Grigoriy Orlov <gluk (at) ptci.ru> has done some extensive work to fine
177 1.20 lukem * tune the layout preferences for directories within a filesystem.
178 1.20 lukem * His algorithm can be tuned by adjusting the following parameters
179 1.20 lukem * which tell the system the average file size and the average number
180 1.20 lukem * of files per directory. These defaults are well selected for typical
181 1.20 lukem * filesystems, but may need to be tuned for odd cases like filesystems
182 1.27 wiz * being used for squid caches or news spools.
183 1.20 lukem */
184 1.20 lukem #define AVFILESIZ 16384 /* expected average file size */
185 1.20 lukem #define AFPDIR 64 /* expected number of files per directory */
186 1.20 lukem
187 1.20 lukem /*
188 1.1 mycroft * Per cylinder group information; summarized in blocks allocated
189 1.1 mycroft * from first cylinder group data blocks. These blocks have to be
190 1.1 mycroft * read in from fs_csaddr (size fs_cssize) in addition to the
191 1.1 mycroft * super block.
192 1.1 mycroft */
193 1.1 mycroft struct csum {
194 1.4 mycroft int32_t cs_ndir; /* number of directories */
195 1.4 mycroft int32_t cs_nbfree; /* number of free blocks */
196 1.4 mycroft int32_t cs_nifree; /* number of free inodes */
197 1.4 mycroft int32_t cs_nffree; /* number of free frags */
198 1.1 mycroft };
199 1.1 mycroft
200 1.29 fvdl struct csum_total {
201 1.29 fvdl int64_t cs_ndir; /* number of directories */
202 1.29 fvdl int64_t cs_nbfree; /* number of free blocks */
203 1.29 fvdl int64_t cs_nifree; /* number of free inodes */
204 1.29 fvdl int64_t cs_nffree; /* number of free frags */
205 1.37 dbj int64_t cs_spare[4]; /* future expansion */
206 1.29 fvdl };
207 1.29 fvdl
208 1.29 fvdl
209 1.1 mycroft /*
210 1.9 bouyer * Super block for an FFS file system in memory.
211 1.1 mycroft */
212 1.1 mycroft struct fs {
213 1.4 mycroft int32_t fs_firstfield; /* historic file system linked list, */
214 1.4 mycroft int32_t fs_unused_1; /* used for incore super blocks */
215 1.28 fvdl int32_t fs_sblkno; /* addr of super-block in filesys */
216 1.28 fvdl int32_t fs_cblkno; /* offset of cyl-block in filesys */
217 1.28 fvdl int32_t fs_iblkno; /* offset of inode-blocks in filesys */
218 1.28 fvdl int32_t fs_dblkno; /* offset of first data after cg */
219 1.29 fvdl int32_t fs_old_cgoffset; /* cylinder group offset in cylinder */
220 1.29 fvdl int32_t fs_old_cgmask; /* used to calc mod fs_ntrak */
221 1.29 fvdl int32_t fs_old_time; /* last time written */
222 1.29 fvdl int32_t fs_old_size; /* number of blocks in fs */
223 1.29 fvdl int32_t fs_old_dsize; /* number of data blocks in fs */
224 1.4 mycroft int32_t fs_ncg; /* number of cylinder groups */
225 1.4 mycroft int32_t fs_bsize; /* size of basic blocks in fs */
226 1.4 mycroft int32_t fs_fsize; /* size of frag blocks in fs */
227 1.4 mycroft int32_t fs_frag; /* number of frags in a block in fs */
228 1.1 mycroft /* these are configuration parameters */
229 1.4 mycroft int32_t fs_minfree; /* minimum percentage of free blocks */
230 1.29 fvdl int32_t fs_old_rotdelay; /* num of ms for optimal next block */
231 1.29 fvdl int32_t fs_old_rps; /* disk revolutions per second */
232 1.1 mycroft /* these fields can be computed from the others */
233 1.4 mycroft int32_t fs_bmask; /* ``blkoff'' calc of blk offsets */
234 1.4 mycroft int32_t fs_fmask; /* ``fragoff'' calc of frag offsets */
235 1.4 mycroft int32_t fs_bshift; /* ``lblkno'' calc of logical blkno */
236 1.4 mycroft int32_t fs_fshift; /* ``numfrags'' calc number of frags */
237 1.1 mycroft /* these are configuration parameters */
238 1.4 mycroft int32_t fs_maxcontig; /* max number of contiguous blks */
239 1.4 mycroft int32_t fs_maxbpg; /* max number of blks per cyl group */
240 1.1 mycroft /* these fields can be computed from the others */
241 1.4 mycroft int32_t fs_fragshift; /* block to frag shift */
242 1.4 mycroft int32_t fs_fsbtodb; /* fsbtodb and dbtofsb shift constant */
243 1.4 mycroft int32_t fs_sbsize; /* actual size of super block */
244 1.29 fvdl int32_t fs_spare1[2]; /* old fs_csmask */
245 1.29 fvdl /* old fs_csshift */
246 1.4 mycroft int32_t fs_nindir; /* value of NINDIR */
247 1.4 mycroft int32_t fs_inopb; /* value of INOPB */
248 1.29 fvdl int32_t fs_old_nspf; /* value of NSPF */
249 1.1 mycroft /* yet another configuration parameter */
250 1.4 mycroft int32_t fs_optim; /* optimization preference, see below */
251 1.1 mycroft /* these fields are derived from the hardware */
252 1.29 fvdl int32_t fs_old_npsect; /* # sectors/track including spares */
253 1.29 fvdl int32_t fs_old_interleave; /* hardware sector interleave */
254 1.29 fvdl int32_t fs_old_trackskew; /* sector 0 skew, per track */
255 1.16 lukem /* fs_id takes the space of the unused fs_headswitch and fs_trkseek fields */
256 1.16 lukem int32_t fs_id[2]; /* unique file system id */
257 1.1 mycroft /* sizes determined by number of cylinder groups and their sizes */
258 1.29 fvdl int32_t fs_old_csaddr; /* blk addr of cyl grp summary area */
259 1.4 mycroft int32_t fs_cssize; /* size of cyl grp summary area */
260 1.4 mycroft int32_t fs_cgsize; /* cylinder group size */
261 1.1 mycroft /* these fields are derived from the hardware */
262 1.29 fvdl int32_t fs_spare2; /* old fs_ntrak */
263 1.29 fvdl int32_t fs_old_nsect; /* sectors per track */
264 1.29 fvdl int32_t fs_old_spc; /* sectors per cylinder */
265 1.29 fvdl int32_t fs_old_ncyl; /* cylinders in file system */
266 1.29 fvdl int32_t fs_old_cpg; /* cylinders per group */
267 1.4 mycroft int32_t fs_ipg; /* inodes per group */
268 1.4 mycroft int32_t fs_fpg; /* blocks per group * fs_frag */
269 1.1 mycroft /* this data must be re-computed after crashes */
270 1.29 fvdl struct csum fs_old_cstotal; /* cylinder summary information */
271 1.1 mycroft /* these fields are cleared at mount time */
272 1.4 mycroft int8_t fs_fmod; /* super block modified flag */
273 1.4 mycroft int8_t fs_clean; /* file system is clean flag */
274 1.4 mycroft int8_t fs_ronly; /* mounted read-only flag */
275 1.35 dbj uint8_t fs_old_flags; /* see FS_ flags below */
276 1.4 mycroft u_char fs_fsmnt[MAXMNTLEN]; /* name mounted on */
277 1.29 fvdl u_char fs_volname[MAXVOLLEN]; /* volume name */
278 1.29 fvdl uint64_t fs_swuid; /* system-wide uid */
279 1.29 fvdl int32_t fs_pad;
280 1.1 mycroft /* these fields retain the current block allocation info */
281 1.21 lukem int32_t fs_cgrotor; /* last cg searched (UNUSED) */
282 1.18 lukem void *fs_ocsp[NOCSPTRS]; /* padding; was list of fs_cs buffers */
283 1.29 fvdl u_int8_t *fs_contigdirs; /* # of contiguously allocated dirs */
284 1.18 lukem struct csum *fs_csp; /* cg summary info buffer for fs_cs */
285 1.20 lukem int32_t *fs_maxcluster; /* max cluster in each cyl group */
286 1.29 fvdl u_int *fs_active; /* used by snapshots to track fs */
287 1.29 fvdl int32_t fs_old_cpc; /* cyl per cycle in postbl */
288 1.29 fvdl int32_t fs_maxbsize; /* maximum blocking factor permitted */
289 1.29 fvdl int64_t fs_sparecon64[17]; /* old rotation block list head */
290 1.29 fvdl int64_t fs_sblockloc; /* byte offset of standard superblock */
291 1.29 fvdl struct csum_total fs_cstotal; /* cylinder summary information */
292 1.34 dsl int64_t fs_time; /* last time written */
293 1.29 fvdl int64_t fs_size; /* number of blocks in fs */
294 1.29 fvdl int64_t fs_dsize; /* number of data blocks in fs */
295 1.29 fvdl int64_t fs_csaddr; /* blk addr of cyl grp summary area */
296 1.29 fvdl int64_t fs_pendingblocks; /* blocks in process of being freed */
297 1.29 fvdl int32_t fs_pendinginodes; /* inodes in process of being freed */
298 1.29 fvdl int32_t fs_snapinum[FSMAXSNAP];/* list of snapshot inode numbers */
299 1.20 lukem int32_t fs_avgfilesize; /* expected average file size */
300 1.20 lukem int32_t fs_avgfpdir; /* expected # of files per directory */
301 1.29 fvdl int32_t fs_save_cgsize; /* save real cg size to use fs_bsize */
302 1.29 fvdl int32_t fs_sparecon32[26]; /* reserved for future constants */
303 1.35 dbj uint32_t fs_flags; /* see FS_ flags below */
304 1.29 fvdl int32_t fs_contigsumsize; /* size of cluster summary array */
305 1.4 mycroft int32_t fs_maxsymlinklen; /* max length of an internal symlink */
306 1.29 fvdl int32_t fs_old_inodefmt; /* format of on-disk inodes */
307 1.3 cgd u_int64_t fs_maxfilesize; /* maximum representable file size */
308 1.18 lukem int64_t fs_qbmask; /* ~fs_bmask for use with 64-bit size */
309 1.18 lukem int64_t fs_qfmask; /* ~fs_fmask for use with 64-bit size */
310 1.14 lukem int32_t fs_state; /* validate fs_clean field (UNUSED) */
311 1.29 fvdl int32_t fs_old_postblformat; /* format of positional layout tables */
312 1.29 fvdl int32_t fs_old_nrpos; /* number of rotational positions */
313 1.29 fvdl int32_t fs_spare5[2]; /* old fs_postbloff */
314 1.29 fvdl /* old fs_rotbloff */
315 1.4 mycroft int32_t fs_magic; /* magic number */
316 1.1 mycroft };
317 1.3 cgd
318 1.29 fvdl #define fs_old_postbloff fs_spare5[0]
319 1.29 fvdl #define fs_old_rotbloff fs_spare5[1]
320 1.32 fvdl #define fs_old_postbl_start fs_maxbsize
321 1.40 dbj #define fs_old_headswitch fs_id[0]
322 1.40 dbj #define fs_old_trkseek fs_id[1]
323 1.40 dbj #define fs_old_csmask fs_spare1[0]
324 1.40 dbj #define fs_old_csshift fs_spare1[1]
325 1.29 fvdl
326 1.29 fvdl #define FS_42POSTBLFMT -1 /* 4.2BSD rotational table format */
327 1.29 fvdl #define FS_DYNAMICPOSTBLFMT 1 /* dynamic rotational table format */
328 1.29 fvdl
329 1.40 dbj #define old_fs_postbl(fs_, cylno, opostblsave) \
330 1.40 dbj ((((fs_)->fs_old_postblformat == FS_42POSTBLFMT) || \
331 1.40 dbj ((fs_)->fs_old_postbloff == offsetof(struct fs, fs_old_postbl_start))) \
332 1.40 dbj ? ((int16_t *)(opostblsave) + (cylno) * (fs_)->fs_old_nrpos) \
333 1.40 dbj : ((int16_t *)((uint8_t *)(fs_) + \
334 1.40 dbj (fs_)->fs_old_postbloff) + (cylno) * (fs_)->fs_old_nrpos))
335 1.40 dbj #define old_fs_rotbl(fs) \
336 1.40 dbj (((fs)->fs_old_postblformat == FS_42POSTBLFMT) \
337 1.40 dbj ? ((uint8_t *)(&(fs)->fs_magic+1)) \
338 1.40 dbj : ((uint8_t *)((uint8_t *)(fs) + (fs)->fs_old_rotbloff)))
339 1.40 dbj
340 1.1 mycroft /*
341 1.15 lukem * File system identification
342 1.1 mycroft */
343 1.29 fvdl #define FS_UFS1_MAGIC 0x011954 /* UFS1 fast file system magic number */
344 1.32 fvdl #define FS_UFS2_MAGIC 0x19540119 /* UFS2 fast file system magic number */
345 1.31 he #define FS_UFS1_MAGIC_SWAPPED 0x54190100
346 1.31 he #define FS_UFS2_MAGIC_SWAPPED 0x19015419
347 1.1 mycroft #define FS_OKAY 0x7c269d38 /* superblock checksum */
348 1.15 lukem #define FS_42INODEFMT -1 /* 4.2BSD inode format */
349 1.15 lukem #define FS_44INODEFMT 2 /* 4.4BSD inode format */
350 1.6 mycroft
351 1.6 mycroft /*
352 1.15 lukem * File system clean flags
353 1.6 mycroft */
354 1.6 mycroft #define FS_ISCLEAN 0x01
355 1.6 mycroft #define FS_WASCLEAN 0x02
356 1.6 mycroft
357 1.1 mycroft /*
358 1.1 mycroft * Preference for optimization.
359 1.1 mycroft */
360 1.15 lukem #define FS_OPTTIME 0 /* minimize allocation time */
361 1.15 lukem #define FS_OPTSPACE 1 /* minimize disk fragmentation */
362 1.1 mycroft
363 1.1 mycroft /*
364 1.15 lukem * File system flags
365 1.12 fvdl */
366 1.15 lukem #define FS_UNCLEAN 0x01 /* file system not clean at mount (unused) */
367 1.15 lukem #define FS_DOSOFTDEP 0x02 /* file system using soft dependencies */
368 1.29 fvdl #define FS_NEEDSFSCK 0x04 /* needs sync fsck (FreeBSD compat, unused) */
369 1.29 fvdl #define FS_INDEXDIRS 0x08 /* kernel supports indexed directories */
370 1.29 fvdl #define FS_ACLS 0x10 /* file system has ACLs enabled */
371 1.29 fvdl #define FS_MULTILABEL 0x20 /* file system is MAC multi-label */
372 1.29 fvdl #define FS_FLAGS_UPDATED 0x80 /* flags have been moved to new location */
373 1.12 fvdl
374 1.12 fvdl /*
375 1.15 lukem * File system internal flags, also in fs_flags.
376 1.15 lukem * (Pick highest number to avoid conflicts with others)
377 1.12 fvdl */
378 1.29 fvdl #define FS_SWAPPED 0x80000000 /* file system is endian swapped */
379 1.29 fvdl #define FS_INTERNAL 0x80000000 /* mask for internal flags */
380 1.1 mycroft
381 1.1 mycroft /*
382 1.1 mycroft * The size of a cylinder group is calculated by CGSIZE. The maximum size
383 1.4 mycroft * is limited by the fact that cylinder groups are at most one block.
384 1.4 mycroft * Its size is derived from the size of the maps maintained in the
385 1.4 mycroft * cylinder group and the (struct cg) size.
386 1.1 mycroft */
387 1.34 dsl #define CGSIZE_IF(fs, ipg, fpg) \
388 1.3 cgd /* base cg */ (sizeof(struct cg) + sizeof(int32_t) + \
389 1.29 fvdl /* old btotoff */ (fs)->fs_old_cpg * sizeof(int32_t) + \
390 1.29 fvdl /* old boff */ (fs)->fs_old_cpg * sizeof(u_int16_t) + \
391 1.34 dsl /* inode map */ howmany((ipg), NBBY) + \
392 1.34 dsl /* block map */ howmany((fpg), NBBY) +\
393 1.1 mycroft /* if present */ ((fs)->fs_contigsumsize <= 0 ? 0 : \
394 1.3 cgd /* cluster sum */ (fs)->fs_contigsumsize * sizeof(int32_t) + \
395 1.34 dsl /* cluster map */ howmany(fragstoblks(fs, (fpg)), NBBY)))
396 1.34 dsl
397 1.34 dsl #define CGSIZE(fs) CGSIZE_IF((fs), (fs)->fs_ipg, (fs)->fs_fpg)
398 1.29 fvdl
399 1.29 fvdl /*
400 1.29 fvdl * The minimal number of cylinder groups that should be created.
401 1.29 fvdl */
402 1.29 fvdl #define MINCYLGRPS 4
403 1.29 fvdl
404 1.1 mycroft
405 1.1 mycroft /*
406 1.1 mycroft * Convert cylinder group to base address of its global summary info.
407 1.1 mycroft */
408 1.18 lukem #define fs_cs(fs, indx) fs_csp[indx]
409 1.1 mycroft
410 1.1 mycroft /*
411 1.1 mycroft * Cylinder group block for a file system.
412 1.1 mycroft */
413 1.1 mycroft #define CG_MAGIC 0x090255
414 1.4 mycroft struct cg {
415 1.4 mycroft int32_t cg_firstfield; /* historic cyl groups linked list */
416 1.4 mycroft int32_t cg_magic; /* magic number */
417 1.29 fvdl int32_t cg_old_time; /* time last written */
418 1.4 mycroft int32_t cg_cgx; /* we are the cgx'th cylinder group */
419 1.29 fvdl int16_t cg_old_ncyl; /* number of cyl's this cg */
420 1.29 fvdl int16_t cg_old_niblk; /* number of inode blocks this cg */
421 1.4 mycroft int32_t cg_ndblk; /* number of data blocks this cg */
422 1.5 mycroft struct csum cg_cs; /* cylinder summary information */
423 1.4 mycroft int32_t cg_rotor; /* position of last used block */
424 1.4 mycroft int32_t cg_frotor; /* position of last used frag */
425 1.4 mycroft int32_t cg_irotor; /* position of last used inode */
426 1.4 mycroft int32_t cg_frsum[MAXFRAG]; /* counts of available frags */
427 1.29 fvdl int32_t cg_old_btotoff; /* (int32) block totals per cylinder */
428 1.29 fvdl int32_t cg_old_boff; /* (u_int16) free block positions */
429 1.4 mycroft int32_t cg_iusedoff; /* (u_int8) used inode map */
430 1.4 mycroft int32_t cg_freeoff; /* (u_int8) free block map */
431 1.4 mycroft int32_t cg_nextfreeoff; /* (u_int8) next available space */
432 1.4 mycroft int32_t cg_clustersumoff; /* (u_int32) counts of avail clusters */
433 1.4 mycroft int32_t cg_clusteroff; /* (u_int8) free cluster map */
434 1.4 mycroft int32_t cg_nclusterblks; /* number of clusters this cg */
435 1.29 fvdl int32_t cg_niblk; /* number of inode blocks this cg */
436 1.29 fvdl int32_t cg_initediblk; /* last initialized inode */
437 1.29 fvdl int32_t cg_sparecon32[3]; /* reserved for future use */
438 1.29 fvdl int64_t cg_time; /* time last written */
439 1.29 fvdl int64_t cg_sparecon64[3]; /* reserved for future use */
440 1.3 cgd u_int8_t cg_space[1]; /* space for cylinder group maps */
441 1.1 mycroft /* actually longer */
442 1.1 mycroft };
443 1.3 cgd
444 1.1 mycroft /*
445 1.29 fvdl * The following structure is defined
446 1.29 fvdl * for compatibility with old file systems.
447 1.29 fvdl */
448 1.29 fvdl struct ocg {
449 1.29 fvdl int32_t cg_firstfield; /* historic linked list of cyl groups */
450 1.29 fvdl int32_t cg_unused_1; /* used for incore cyl groups */
451 1.29 fvdl int32_t cg_time; /* time last written */
452 1.29 fvdl int32_t cg_cgx; /* we are the cgx'th cylinder group */
453 1.29 fvdl int16_t cg_ncyl; /* number of cyl's this cg */
454 1.29 fvdl int16_t cg_niblk; /* number of inode blocks this cg */
455 1.29 fvdl int32_t cg_ndblk; /* number of data blocks this cg */
456 1.29 fvdl struct csum cg_cs; /* cylinder summary information */
457 1.29 fvdl int32_t cg_rotor; /* position of last used block */
458 1.29 fvdl int32_t cg_frotor; /* position of last used frag */
459 1.29 fvdl int32_t cg_irotor; /* position of last used inode */
460 1.29 fvdl int32_t cg_frsum[8]; /* counts of available frags */
461 1.29 fvdl int32_t cg_btot[32]; /* block totals per cylinder */
462 1.29 fvdl int16_t cg_b[32][8]; /* positions of free blocks */
463 1.29 fvdl u_int8_t cg_iused[256]; /* used inode map */
464 1.29 fvdl int32_t cg_magic; /* magic number */
465 1.29 fvdl u_int8_t cg_free[1]; /* free block map */
466 1.29 fvdl /* actually longer */
467 1.29 fvdl };
468 1.29 fvdl
469 1.29 fvdl
470 1.29 fvdl /*
471 1.32 fvdl * Macros for access to cylinder group array structures.
472 1.1 mycroft */
473 1.40 dbj #define old_cg_blktot_old(cgp, ns) \
474 1.40 dbj (((struct ocg *)(cgp))->cg_btot)
475 1.40 dbj #define old_cg_blks_old(fs, cgp, cylno, ns) \
476 1.40 dbj (((struct ocg *)(cgp))->cg_b[cylno])
477 1.40 dbj
478 1.40 dbj #define old_cg_blktot_new(cgp, ns) \
479 1.40 dbj ((int32_t *)((u_int8_t *)(cgp) + \
480 1.40 dbj ufs_rw32((cgp)->cg_old_btotoff, (ns))))
481 1.40 dbj #define old_cg_blks_new(fs, cgp, cylno, ns) \
482 1.40 dbj ((int16_t *)((u_int8_t *)(cgp) + \
483 1.40 dbj ufs_rw32((cgp)->cg_old_boff, (ns))) + (cylno) * (fs)->fs_old_nrpos)
484 1.40 dbj
485 1.40 dbj #define old_cg_blktot(cgp, ns) \
486 1.40 dbj ((ufs_rw32((cgp)->cg_magic, (ns)) != CG_MAGIC) ? \
487 1.40 dbj old_cg_blktot_old(cgp, ns) : old_cg_blktot_new(cgp, ns))
488 1.40 dbj #define old_cg_blks(fs, cgp, cylno, ns) \
489 1.40 dbj ((ufs_rw32((cgp)->cg_magic, (ns)) != CG_MAGIC) ? \
490 1.40 dbj old_cg_blks_old(fs, cgp, cylno, ns) : old_cg_blks_new(fs, cgp, cylno, ns))
491 1.40 dbj
492 1.32 fvdl #define cg_inosused_new(cgp, ns) \
493 1.29 fvdl ((u_int8_t *)((u_int8_t *)(cgp) + \
494 1.29 fvdl ufs_rw32((cgp)->cg_iusedoff, (ns))))
495 1.32 fvdl #define cg_blksfree_new(cgp, ns) \
496 1.29 fvdl ((u_int8_t *)((u_int8_t *)(cgp) + \
497 1.29 fvdl ufs_rw32((cgp)->cg_freeoff, (ns))))
498 1.32 fvdl #define cg_chkmagic_new(cgp, ns) \
499 1.29 fvdl (ufs_rw32((cgp)->cg_magic, (ns)) == CG_MAGIC)
500 1.32 fvdl
501 1.32 fvdl #define cg_inosused_old(cgp, ns) \
502 1.32 fvdl (((struct ocg *)(cgp))->cg_iused)
503 1.32 fvdl #define cg_blksfree_old(cgp, ns) \
504 1.32 fvdl (((struct ocg *)(cgp))->cg_free)
505 1.32 fvdl #define cg_chkmagic_old(cgp, ns) \
506 1.32 fvdl (ufs_rw32(((struct ocg *)(cgp))->cg_magic, (ns)) == CG_MAGIC)
507 1.32 fvdl
508 1.32 fvdl #define cg_inosused(cgp, ns) \
509 1.32 fvdl ((ufs_rw32((cgp)->cg_magic, (ns)) != CG_MAGIC) ? \
510 1.32 fvdl cg_inosused_old(cgp, ns) : cg_inosused_new(cgp, ns))
511 1.32 fvdl #define cg_blksfree(cgp, ns) \
512 1.32 fvdl ((ufs_rw32((cgp)->cg_magic, (ns)) != CG_MAGIC) ? \
513 1.32 fvdl cg_blksfree_old(cgp, ns) : cg_blksfree_new(cgp, ns))
514 1.32 fvdl #define cg_chkmagic(cgp, ns) \
515 1.32 fvdl (cg_chkmagic_new(cgp, ns) || cg_chkmagic_old(cgp, ns))
516 1.32 fvdl
517 1.15 lukem #define cg_clustersfree(cgp, ns) \
518 1.9 bouyer ((u_int8_t *)((u_int8_t *)(cgp) + \
519 1.9 bouyer ufs_rw32((cgp)->cg_clusteroff, (ns))))
520 1.15 lukem #define cg_clustersum(cgp, ns) \
521 1.9 bouyer ((int32_t *)((u_int8_t *)(cgp) + \
522 1.9 bouyer ufs_rw32((cgp)->cg_clustersumoff, (ns))))
523 1.32 fvdl
524 1.1 mycroft
525 1.1 mycroft /*
526 1.1 mycroft * Turn file system block numbers into disk block addresses.
527 1.1 mycroft * This maps file system blocks to device size blocks.
528 1.1 mycroft */
529 1.15 lukem #define fsbtodb(fs, b) ((b) << (fs)->fs_fsbtodb)
530 1.1 mycroft #define dbtofsb(fs, b) ((b) >> (fs)->fs_fsbtodb)
531 1.1 mycroft
532 1.1 mycroft /*
533 1.1 mycroft * Cylinder group macros to locate things in cylinder groups.
534 1.1 mycroft * They calc file system addresses of cylinder group data structures.
535 1.1 mycroft */
536 1.30 fvdl #define cgbase(fs, c) (((daddr_t)(fs)->fs_fpg) * (c))
537 1.34 dsl #define cgstart_ufs1(fs, c) \
538 1.34 dsl (cgbase(fs, c) + (fs)->fs_old_cgoffset * ((c) & ~((fs)->fs_old_cgmask)))
539 1.34 dsl #define cgstart_ufs2(fs, c) cgbase((fs), (c))
540 1.34 dsl #define cgstart(fs, c) ((fs)->fs_magic == FS_UFS2_MAGIC \
541 1.34 dsl ? cgstart_ufs2((fs), (c)) : cgstart_ufs1((fs), (c)))
542 1.1 mycroft #define cgdmin(fs, c) (cgstart(fs, c) + (fs)->fs_dblkno) /* 1st data */
543 1.1 mycroft #define cgimin(fs, c) (cgstart(fs, c) + (fs)->fs_iblkno) /* inode blk */
544 1.1 mycroft #define cgsblock(fs, c) (cgstart(fs, c) + (fs)->fs_sblkno) /* super blk */
545 1.1 mycroft #define cgtod(fs, c) (cgstart(fs, c) + (fs)->fs_cblkno) /* cg block */
546 1.1 mycroft
547 1.1 mycroft /*
548 1.1 mycroft * Macros for handling inode numbers:
549 1.1 mycroft * inode number to file system block offset.
550 1.1 mycroft * inode number to cylinder group number.
551 1.1 mycroft * inode number to file system block address.
552 1.1 mycroft */
553 1.1 mycroft #define ino_to_cg(fs, x) ((x) / (fs)->fs_ipg)
554 1.1 mycroft #define ino_to_fsba(fs, x) \
555 1.28 fvdl ((daddr_t)(cgimin(fs, ino_to_cg(fs, x)) + \
556 1.1 mycroft (blkstofrags((fs), (((x) % (fs)->fs_ipg) / INOPB(fs))))))
557 1.1 mycroft #define ino_to_fsbo(fs, x) ((x) % INOPB(fs))
558 1.1 mycroft
559 1.1 mycroft /*
560 1.1 mycroft * Give cylinder group number for a file system block.
561 1.1 mycroft * Give cylinder group block number for a file system block.
562 1.1 mycroft */
563 1.1 mycroft #define dtog(fs, d) ((d) / (fs)->fs_fpg)
564 1.1 mycroft #define dtogd(fs, d) ((d) % (fs)->fs_fpg)
565 1.1 mycroft
566 1.1 mycroft /*
567 1.1 mycroft * Extract the bits for a block from a map.
568 1.1 mycroft * Compute the cylinder and rotational position of a cyl block addr.
569 1.1 mycroft */
570 1.15 lukem #define blkmap(fs, map, loc) \
571 1.1 mycroft (((map)[(loc) / NBBY] >> ((loc) % NBBY)) & (0xff >> (NBBY - (fs)->fs_frag)))
572 1.40 dbj #define old_cbtocylno(fs, bno) \
573 1.40 dbj (fsbtodb(fs, bno) / (fs)->fs_old_spc)
574 1.40 dbj #define old_cbtorpos(fs, bno) \
575 1.40 dbj ((fs)->fs_old_nrpos <= 1 ? 0 : \
576 1.40 dbj (fsbtodb(fs, bno) % (fs)->fs_old_spc / (fs)->fs_old_nsect * (fs)->fs_old_trackskew + \
577 1.40 dbj fsbtodb(fs, bno) % (fs)->fs_old_spc % (fs)->fs_old_nsect * (fs)->fs_old_interleave) % \
578 1.40 dbj (fs)->fs_old_nsect * (fs)->fs_old_nrpos / (fs)->fs_old_npsect)
579 1.1 mycroft
580 1.1 mycroft /*
581 1.1 mycroft * The following macros optimize certain frequently calculated
582 1.1 mycroft * quantities by using shifts and masks in place of divisions
583 1.1 mycroft * modulos and multiplications.
584 1.1 mycroft */
585 1.15 lukem #define blkoff(fs, loc) /* calculates (loc % fs->fs_bsize) */ \
586 1.1 mycroft ((loc) & (fs)->fs_qbmask)
587 1.15 lukem #define fragoff(fs, loc) /* calculates (loc % fs->fs_fsize) */ \
588 1.1 mycroft ((loc) & (fs)->fs_qfmask)
589 1.29 fvdl #define lfragtosize(fs, frag) /* calculates ((off_t)frag * fs->fs_fsize) */ \
590 1.30 fvdl (((off_t)(frag)) << (fs)->fs_fshift)
591 1.17 lukem #define lblktosize(fs, blk) /* calculates ((off_t)blk * fs->fs_bsize) */ \
592 1.30 fvdl (((off_t)(blk)) << (fs)->fs_bshift)
593 1.15 lukem #define lblkno(fs, loc) /* calculates (loc / fs->fs_bsize) */ \
594 1.1 mycroft ((loc) >> (fs)->fs_bshift)
595 1.15 lukem #define numfrags(fs, loc) /* calculates (loc / fs->fs_fsize) */ \
596 1.1 mycroft ((loc) >> (fs)->fs_fshift)
597 1.15 lukem #define blkroundup(fs, size) /* calculates roundup(size, fs->fs_bsize) */ \
598 1.1 mycroft (((size) + (fs)->fs_qbmask) & (fs)->fs_bmask)
599 1.15 lukem #define fragroundup(fs, size) /* calculates roundup(size, fs->fs_fsize) */ \
600 1.1 mycroft (((size) + (fs)->fs_qfmask) & (fs)->fs_fmask)
601 1.15 lukem #define fragstoblks(fs, frags) /* calculates (frags / fs->fs_frag) */ \
602 1.1 mycroft ((frags) >> (fs)->fs_fragshift)
603 1.15 lukem #define blkstofrags(fs, blks) /* calculates (blks * fs->fs_frag) */ \
604 1.1 mycroft ((blks) << (fs)->fs_fragshift)
605 1.15 lukem #define fragnum(fs, fsb) /* calculates (fsb % fs->fs_frag) */ \
606 1.1 mycroft ((fsb) & ((fs)->fs_frag - 1))
607 1.15 lukem #define blknum(fs, fsb) /* calculates rounddown(fsb, fs->fs_frag) */ \
608 1.1 mycroft ((fsb) &~ ((fs)->fs_frag - 1))
609 1.1 mycroft
610 1.1 mycroft /*
611 1.1 mycroft * Determine the number of available frags given a
612 1.3 cgd * percentage to hold in reserve.
613 1.1 mycroft */
614 1.15 lukem #define freespace(fs, percentreserved) \
615 1.1 mycroft (blkstofrags((fs), (fs)->fs_cstotal.cs_nbfree) + \
616 1.17 lukem (fs)->fs_cstotal.cs_nffree - \
617 1.30 fvdl (((off_t)((fs)->fs_dsize)) * (percentreserved) / 100))
618 1.1 mycroft
619 1.4 mycroft /*
620 1.4 mycroft * Determining the size of a file block in the file system.
621 1.4 mycroft */
622 1.15 lukem #define blksize(fs, ip, lbn) \
623 1.29 fvdl (((lbn) >= NDADDR || (ip)->i_size >= lblktosize(fs, (lbn) + 1)) \
624 1.1 mycroft ? (fs)->fs_bsize \
625 1.29 fvdl : (fragroundup(fs, blkoff(fs, (ip)->i_size))))
626 1.29 fvdl
627 1.29 fvdl #define sblksize(fs, size, lbn) \
628 1.29 fvdl (((lbn) >= NDADDR || (size) >= ((lbn) + 1) << (fs)->fs_bshift) \
629 1.29 fvdl ? (fs)->fs_bsize \
630 1.29 fvdl : (fragroundup(fs, blkoff(fs, (size)))))
631 1.1 mycroft
632 1.1 mycroft
633 1.4 mycroft /*
634 1.4 mycroft * Number of inodes in a secondary storage block/fragment.
635 1.4 mycroft */
636 1.1 mycroft #define INOPB(fs) ((fs)->fs_inopb)
637 1.1 mycroft #define INOPF(fs) ((fs)->fs_inopb >> (fs)->fs_fragshift)
638 1.1 mycroft
639 1.4 mycroft /*
640 1.4 mycroft * Number of indirects in a file system block.
641 1.4 mycroft */
642 1.1 mycroft #define NINDIR(fs) ((fs)->fs_nindir)
643 1.26 dbj
644 1.26 dbj /*
645 1.26 dbj * Apple UFS Label:
646 1.26 dbj * We check for this to decide to use APPLEUFS_DIRBLKSIZ
647 1.26 dbj */
648 1.26 dbj #define APPLEUFS_LABEL_MAGIC 0x4c41424c /* LABL */
649 1.26 dbj #define APPLEUFS_LABEL_SIZE 1024
650 1.26 dbj #define APPLEUFS_LABEL_OFFSET (BBSIZE - APPLEUFS_LABEL_SIZE) /* located at 7k */
651 1.26 dbj #define APPLEUFS_LABEL_VERSION 1
652 1.26 dbj #define APPLEUFS_MAX_LABEL_NAME 512
653 1.26 dbj
654 1.26 dbj struct appleufslabel {
655 1.26 dbj u_int32_t ul_magic;
656 1.26 dbj u_int16_t ul_checksum;
657 1.39 dbj u_int16_t ul_unused0;
658 1.26 dbj u_int32_t ul_version;
659 1.26 dbj u_int32_t ul_time;
660 1.26 dbj u_int16_t ul_namelen;
661 1.38 dbj u_char ul_name[APPLEUFS_MAX_LABEL_NAME]; /* Warning: may not be null terminated */
662 1.39 dbj u_int16_t ul_unused1;
663 1.39 dbj u_int64_t ul_uuid; /* Note this is only 4 byte aligned */
664 1.38 dbj u_char ul_reserved[24];
665 1.26 dbj u_char ul_unused[460];
666 1.39 dbj } __attribute__((__packed__));
667 1.26 dbj
668 1.14 lukem
669 1.14 lukem #endif /* !_UFS_FFS_FS_H_ */
670