ext2fs.h revision 1.5 1 1.5 bouyer /* $NetBSD: ext2fs.h,v 1.5 1998/09/29 10:24:57 bouyer Exp $ */
2 1.1 bouyer
3 1.1 bouyer /*
4 1.1 bouyer * Copyright (c) 1997 Manuel Bouyer.
5 1.1 bouyer * Copyright (c) 1982, 1986, 1993
6 1.1 bouyer * The Regents of the University of California. All rights reserved.
7 1.1 bouyer *
8 1.1 bouyer * Redistribution and use in source and binary forms, with or without
9 1.1 bouyer * modification, are permitted provided that the following conditions
10 1.1 bouyer * are met:
11 1.1 bouyer * 1. Redistributions of source code must retain the above copyright
12 1.1 bouyer * notice, this list of conditions and the following disclaimer.
13 1.1 bouyer * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 bouyer * notice, this list of conditions and the following disclaimer in the
15 1.1 bouyer * documentation and/or other materials provided with the distribution.
16 1.1 bouyer * 3. All advertising materials mentioning features or use of this software
17 1.1 bouyer * must display the following acknowledgement:
18 1.1 bouyer * This product includes software developed by the University of
19 1.1 bouyer * California, Berkeley and its contributors.
20 1.1 bouyer * 4. Neither the name of the University nor the names of its contributors
21 1.1 bouyer * may be used to endorse or promote products derived from this software
22 1.1 bouyer * without specific prior written permission.
23 1.1 bouyer *
24 1.1 bouyer * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
25 1.1 bouyer * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 1.1 bouyer * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 1.1 bouyer * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
28 1.1 bouyer * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 1.1 bouyer * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 1.1 bouyer * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 1.1 bouyer * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 1.1 bouyer * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 1.1 bouyer * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 1.1 bouyer * SUCH DAMAGE.
35 1.1 bouyer *
36 1.1 bouyer * @(#)fs.h 8.10 (Berkeley) 10/27/94
37 1.1 bouyer * Modified for ext2fs by Manuel Bouyer.
38 1.1 bouyer */
39 1.5 bouyer
40 1.5 bouyer #include <machine/bswap.h>
41 1.1 bouyer
42 1.1 bouyer /*
43 1.1 bouyer * Each disk drive contains some number of file systems.
44 1.1 bouyer * A file system consists of a number of cylinder groups.
45 1.1 bouyer * Each cylinder group has inodes and data.
46 1.1 bouyer *
47 1.1 bouyer * A file system is described by its super-block, which in turn
48 1.1 bouyer * describes the cylinder groups. The super-block is critical
49 1.1 bouyer * data and is replicated in each cylinder group to protect against
50 1.1 bouyer * catastrophic loss. This is done at `newfs' time and the critical
51 1.1 bouyer * super-block data does not change, so the copies need not be
52 1.1 bouyer * referenced further unless disaster strikes.
53 1.1 bouyer *
54 1.1 bouyer * The first boot and super blocks are given in absolute disk addresses.
55 1.1 bouyer * The byte-offset forms are preferred, as they don't imply a sector size.
56 1.1 bouyer */
57 1.1 bouyer #define BBSIZE 1024
58 1.1 bouyer #define SBSIZE 1024
59 1.1 bouyer #define BBOFF ((off_t)(0))
60 1.1 bouyer #define SBOFF ((off_t)(BBOFF + BBSIZE))
61 1.3 fvdl #define BBLOCK ((ufs_daddr_t)(0))
62 1.3 fvdl #define SBLOCK ((ufs_daddr_t)(BBLOCK + BBSIZE / DEV_BSIZE))
63 1.1 bouyer
64 1.1 bouyer /*
65 1.1 bouyer * Addresses stored in inodes are capable of addressing blocks
66 1.1 bouyer * XXX
67 1.1 bouyer */
68 1.1 bouyer
69 1.1 bouyer /*
70 1.1 bouyer * MINBSIZE is the smallest allowable block size.
71 1.1 bouyer * MINBSIZE must be big enough to hold a cylinder group block,
72 1.1 bouyer * thus changes to (struct cg) must keep its size within MINBSIZE.
73 1.1 bouyer * Note that super blocks are always of size SBSIZE,
74 1.1 bouyer * and that both SBSIZE and MAXBSIZE must be >= MINBSIZE.
75 1.1 bouyer */
76 1.1 bouyer #define LOG_MINBSIZE 10
77 1.1 bouyer #define MINBSIZE (1 << LOG_MINBSIZE)
78 1.1 bouyer
79 1.1 bouyer /*
80 1.1 bouyer * The path name on which the file system is mounted is maintained
81 1.1 bouyer * in fs_fsmnt. MAXMNTLEN defines the amount of space allocated in
82 1.1 bouyer * the super block for this name.
83 1.1 bouyer */
84 1.1 bouyer #define MAXMNTLEN 512
85 1.1 bouyer
86 1.1 bouyer /*
87 1.1 bouyer * MINFREE gives the minimum acceptable percentage of file system
88 1.1 bouyer * blocks which may be free. If the freelist drops below this level
89 1.1 bouyer * only the superuser may continue to allocate blocks. This may
90 1.1 bouyer * be set to 0 if no reserve of free blocks is deemed necessary,
91 1.1 bouyer * however throughput drops by fifty percent if the file system
92 1.1 bouyer * is run at between 95% and 100% full; thus the minimum default
93 1.1 bouyer * value of fs_minfree is 5%. However, to get good clustering
94 1.1 bouyer * performance, 10% is a better choice. hence we use 10% as our
95 1.1 bouyer * default value. With 10% free space, fragmentation is not a
96 1.1 bouyer * problem, so we choose to optimize for time.
97 1.1 bouyer */
98 1.1 bouyer #define MINFREE 5
99 1.1 bouyer
100 1.1 bouyer /*
101 1.1 bouyer * Super block for an ext2fs file system.
102 1.1 bouyer */
103 1.1 bouyer struct ext2fs {
104 1.1 bouyer u_int32_t e2fs_icount; /* Inode count */
105 1.1 bouyer u_int32_t e2fs_bcount; /* blocks count */
106 1.1 bouyer u_int32_t e2fs_rbcount; /* reserved blocks count */
107 1.1 bouyer u_int32_t e2fs_fbcount; /* free blocks count */
108 1.1 bouyer u_int32_t e2fs_ficount; /* free inodes count */
109 1.1 bouyer u_int32_t e2fs_first_dblock; /* first data block */
110 1.1 bouyer u_int32_t e2fs_log_bsize; /* block size = 1024*(2^e2fs_log_bsize) */
111 1.1 bouyer u_int32_t e2fs_fsize; /* fragment size */
112 1.1 bouyer u_int32_t e2fs_bpg; /* blocks per group */
113 1.1 bouyer u_int32_t e2fs_fpg; /* frags per group */
114 1.1 bouyer u_int32_t e2fs_ipg; /* inodes per group */
115 1.1 bouyer u_int32_t e2fs_mtime; /* mount time */
116 1.1 bouyer u_int32_t e2fs_wtime; /* write time */
117 1.1 bouyer u_int16_t e2fs_mnt_count; /* mount count */
118 1.1 bouyer u_int16_t e2fs_max_mnt_count; /* max mount count */
119 1.1 bouyer u_int16_t e2fs_magic; /* magic number */
120 1.1 bouyer u_int16_t e2fs_state; /* file system state */
121 1.1 bouyer u_int16_t e2fs_beh; /* behavior on errors */
122 1.1 bouyer u_int16_t reserved;
123 1.1 bouyer u_int32_t e2fs_lastfsck; /* time of last fsck */
124 1.1 bouyer u_int32_t e2fs_fsckintv; /* max time between fscks */
125 1.1 bouyer u_int32_t e2fs_creator; /* creator OS */
126 1.1 bouyer u_int32_t e2fs_rev; /* revision level */
127 1.1 bouyer u_int16_t e2fs_ruid; /* default uid for reserved blocks */
128 1.1 bouyer u_int16_t e2fs_rgid; /* default gid for reserved blocks */
129 1.1 bouyer u_int32_t reserved2[235];
130 1.1 bouyer };
131 1.1 bouyer
132 1.1 bouyer
133 1.1 bouyer /* in-memory data for ext2fs */
134 1.1 bouyer struct m_ext2fs {
135 1.1 bouyer struct ext2fs e2fs;
136 1.1 bouyer u_char e2fs_fsmnt[MAXMNTLEN]; /* name mounted on */
137 1.1 bouyer int8_t e2fs_ronly; /* mounted read-only flag */
138 1.1 bouyer int8_t e2fs_fmod; /* super block modified flag */
139 1.1 bouyer int32_t e2fs_bsize; /* block size */
140 1.1 bouyer int32_t e2fs_bshift; /* ``lblkno'' calc of logical blkno */
141 1.1 bouyer int32_t e2fs_bmask; /* ``blkoff'' calc of blk offsets */
142 1.1 bouyer int64_t e2fs_qbmask; /* ~fs_bmask - for use with quad size */
143 1.1 bouyer int32_t e2fs_fsbtodb; /* fsbtodb and dbtofsb shift constant */
144 1.1 bouyer int32_t e2fs_ncg; /* number of cylinder groups */
145 1.1 bouyer int32_t e2fs_ngdb; /* number of group descriptor block */
146 1.1 bouyer int32_t e2fs_ipb; /* number of inodes per block */
147 1.1 bouyer int32_t e2fs_itpg; /* number of inode table per group */
148 1.1 bouyer struct ext2_gd *e2fs_gd; /* group descripors */
149 1.1 bouyer };
150 1.1 bouyer
151 1.1 bouyer
152 1.1 bouyer
153 1.1 bouyer /*
154 1.1 bouyer * Filesystem identification
155 1.1 bouyer */
156 1.1 bouyer #define E2FS_MAGIC 0xef53 /* the ext2fs magic number */
157 1.1 bouyer #define E2FS_REV 0 /* revision level */
158 1.1 bouyer
159 1.1 bouyer /*
160 1.1 bouyer * OS identification
161 1.1 bouyer */
162 1.1 bouyer #define E2FS_OS_LINUX 0
163 1.1 bouyer #define E2FS_OS_HURD 1
164 1.1 bouyer #define E2FS_OS_MASIX 2
165 1.1 bouyer
166 1.1 bouyer /*
167 1.1 bouyer * Filesystem clean flags
168 1.1 bouyer */
169 1.1 bouyer #define E2FS_ISCLEAN 0x01
170 1.1 bouyer #define E2FS_ERRORS 0x02
171 1.1 bouyer
172 1.1 bouyer /* ext2 file system block group descriptor */
173 1.1 bouyer
174 1.1 bouyer struct ext2_gd {
175 1.1 bouyer u_int32_t ext2bgd_b_bitmap; /* blocks bitmap block */
176 1.1 bouyer u_int32_t ext2bgd_i_bitmap; /* inodes bitmap block */
177 1.1 bouyer u_int32_t ext2bgd_i_tables; /* inodes table block */
178 1.1 bouyer u_int16_t ext2bgd_nbfree; /* number of free blocks */
179 1.1 bouyer u_int16_t ext2bgd_nifree; /* number of free inodes */
180 1.1 bouyer u_int16_t ext2bgd_ndirs; /* number of directories */
181 1.1 bouyer u_int16_t reserved;
182 1.1 bouyer u_int32_t reserved2[3];
183 1.1 bouyer
184 1.1 bouyer };
185 1.2 bouyer
186 1.2 bouyer /* EXT2FS metadatas are stored in little-endian byte order. These macros
187 1.2 bouyer * helps reading theses metadatas
188 1.2 bouyer */
189 1.2 bouyer
190 1.2 bouyer #if BYTE_ORDER == LITTLE_ENDIAN
191 1.2 bouyer # define h2fs16(x) (x)
192 1.2 bouyer # define h2fs32(x) (x)
193 1.2 bouyer # define fs2h16(x) (x)
194 1.2 bouyer # define fs2h32(x) (x)
195 1.4 perry # define e2fs_sbload(old, new) memcpy((new), (old), SBSIZE);
196 1.4 perry # define e2fs_cgload(old, new, size) memcpy((new), (old), (size));
197 1.4 perry # define e2fs_sbsave(old, new) memcpy((new), (old), SBSIZE);
198 1.4 perry # define e2fs_cgsave(old, new, size) memcpy((new), (old), (size));
199 1.2 bouyer #else
200 1.2 bouyer void e2fs_sb_bswap __P((struct ext2fs *, struct ext2fs *));
201 1.2 bouyer void e2fs_cg_bswap __P((struct ext2_gd *, struct ext2_gd *, int));
202 1.2 bouyer # define h2fs16(x) bswap16(x)
203 1.2 bouyer # define h2fs32(x) bswap32(x)
204 1.2 bouyer # define fs2h16(x) bswap16(x)
205 1.2 bouyer # define fs2h32(x) bswap32(x)
206 1.2 bouyer # define e2fs_sbload(old, new) e2fs_sb_bswap((old), (new))
207 1.2 bouyer # define e2fs_cgload(old, new, size) e2fs_cg_bswap((old), (new), (size));
208 1.2 bouyer # define e2fs_sbsave(old, new) e2fs_sb_bswap((old), (new))
209 1.2 bouyer # define e2fs_cgsave(old, new, size) e2fs_cg_bswap((old), (new), (size));
210 1.2 bouyer #endif
211 1.1 bouyer
212 1.1 bouyer /*
213 1.1 bouyer * Turn file system block numbers into disk block addresses.
214 1.1 bouyer * This maps file system blocks to device size blocks.
215 1.1 bouyer */
216 1.1 bouyer #define fsbtodb(fs, b) ((b) << (fs)->e2fs_fsbtodb)
217 1.1 bouyer #define dbtofsb(fs, b) ((b) >> (fs)->e2fs_fsbtodb)
218 1.1 bouyer
219 1.1 bouyer /*
220 1.1 bouyer * Macros for handling inode numbers:
221 1.1 bouyer * inode number to file system block offset.
222 1.1 bouyer * inode number to cylinder group number.
223 1.1 bouyer * inode number to file system block address.
224 1.1 bouyer */
225 1.1 bouyer #define ino_to_cg(fs, x) (((x) - 1) / (fs)->e2fs.e2fs_ipg)
226 1.1 bouyer #define ino_to_fsba(fs, x) \
227 1.1 bouyer ((fs)->e2fs_gd[ino_to_cg(fs, x)].ext2bgd_i_tables + \
228 1.1 bouyer (((x)-1) % (fs)->e2fs.e2fs_ipg)/(fs)->e2fs_ipb)
229 1.1 bouyer #define ino_to_fsbo(fs, x) (((x)-1) % (fs)->e2fs_ipb)
230 1.1 bouyer
231 1.1 bouyer /*
232 1.1 bouyer * Give cylinder group number for a file system block.
233 1.1 bouyer * Give cylinder group block number for a file system block.
234 1.1 bouyer */
235 1.1 bouyer #define dtog(fs, d) (((d) - (fs)->e2fs.e2fs_first_dblock) / (fs)->e2fs.e2fs_fpg)
236 1.1 bouyer #define dtogd(fs, d) \
237 1.1 bouyer (((d) - (fs)->e2fs.e2fs_first_dblock) % (fs)->e2fs.e2fs_fpg)
238 1.1 bouyer
239 1.1 bouyer /*
240 1.1 bouyer * The following macros optimize certain frequently calculated
241 1.1 bouyer * quantities by using shifts and masks in place of divisions
242 1.1 bouyer * modulos and multiplications.
243 1.1 bouyer */
244 1.1 bouyer #define blkoff(fs, loc) /* calculates (loc % fs->e2fs_bsize) */ \
245 1.1 bouyer ((loc) & (fs)->e2fs_qbmask)
246 1.1 bouyer #define lblktosize(fs, blk) /* calculates (blk * fs->e2fs_bsize) */ \
247 1.1 bouyer ((blk) << (fs)->e2fs_bshift)
248 1.1 bouyer #define lblkno(fs, loc) /* calculates (loc / fs->e2fs_bsize) */ \
249 1.1 bouyer ((loc) >> (fs)->e2fs_bshift)
250 1.1 bouyer #define blkroundup(fs, size) /* calculates roundup(size, fs->e2fs_bsize) */ \
251 1.1 bouyer (((size) + (fs)->e2fs_qbmask) & (fs)->e2fs_bmask)
252 1.1 bouyer #define fragroundup(fs, size) /* calculates roundup(size, fs->e2fs_bsize) */ \
253 1.1 bouyer (((size) + (fs)->e2fs_qbmask) & (fs)->e2fs_bmask)
254 1.1 bouyer /*
255 1.1 bouyer * Determine the number of available frags given a
256 1.1 bouyer * percentage to hold in reserve.
257 1.1 bouyer */
258 1.1 bouyer #define freespace(fs) \
259 1.1 bouyer ((fs)->e2fs.e2fs_fbcount - (fs)->e2fs.e2fs_rbcount)
260 1.1 bouyer
261 1.1 bouyer /*
262 1.1 bouyer * Number of indirects in a file system block.
263 1.1 bouyer */
264 1.1 bouyer #define NINDIR(fs) ((fs)->e2fs_bsize / sizeof(u_int32_t))
265