lfs.h revision 1.2 1 /* $NetBSD: lfs.h,v 1.2 1994/06/29 06:46:46 cgd Exp $ */
2
3 /*-
4 * Copyright (c) 1991, 1993
5 * The Regents of the University of California. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * 3. All advertising materials mentioning features or use of this software
16 * must display the following acknowledgement:
17 * This product includes software developed by the University of
18 * California, Berkeley and its contributors.
19 * 4. Neither the name of the University nor the names of its contributors
20 * may be used to endorse or promote products derived from this software
21 * without specific prior written permission.
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
24 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
27 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 * SUCH DAMAGE.
34 *
35 * @(#)lfs.h 8.3 (Berkeley) 9/23/93
36 */
37
38 #define LFS_LABELPAD 8192 /* LFS label size */
39 #define LFS_SBPAD 8192 /* LFS superblock size */
40
41 /*
42 * XXX
43 * This is a kluge and NEEDS to go away.
44 *
45 * Right now, ufs code handles most of the calls for directory operations
46 * such as create, mkdir, link, etc. As a result VOP_UPDATE is being
47 * called with waitfor set (since ffs does these things synchronously).
48 * Since LFS does not want to do these synchronously, we treat the last
49 * argument to lfs_update as a set of flags. If LFS_SYNC is set, then
50 * the update should be synchronous, if not, do it asynchronously.
51 * Unfortunately, this means that LFS won't work with NFS yet because
52 * NFS goes through paths that will make normal calls to ufs which will
53 * call lfs with a last argument of 1.
54 */
55 #define LFS_SYNC 0x02
56
57 /* On-disk and in-memory checkpoint segment usage structure. */
58 typedef struct segusage SEGUSE;
59 struct segusage {
60 u_long su_nbytes; /* number of live bytes */
61 u_long su_lastmod; /* SEGUSE last modified timestamp */
62 u_short su_nsums; /* number of summaries in segment */
63 u_short su_ninos; /* number of inode blocks in seg */
64 #define SEGUSE_ACTIVE 0x1 /* segment is currently being written */
65 #define SEGUSE_DIRTY 0x2 /* segment has data in it */
66 #define SEGUSE_SUPERBLOCK 0x4 /* segment contains a superblock */
67 u_long su_flags;
68 };
69
70 #define SEGUPB(fs) (1 << (fs)->lfs_sushift)
71 #define SEGTABSIZE_SU(fs) \
72 (((fs)->lfs_nseg + SEGUPB(fs) - 1) >> (fs)->lfs_sushift)
73
74 /* On-disk file information. One per file with data blocks in the segment. */
75 typedef struct finfo FINFO;
76 struct finfo {
77 u_long fi_nblocks; /* number of blocks */
78 u_long fi_version; /* version number */
79 u_long fi_ino; /* inode number */
80 long fi_blocks[1]; /* array of logical block numbers */
81 };
82
83 /* On-disk and in-memory super block. */
84 struct lfs {
85 #define LFS_MAGIC 0x070162
86 u_long lfs_magic; /* magic number */
87 #define LFS_VERSION 1
88 u_long lfs_version; /* version number */
89
90 u_long lfs_size; /* number of blocks in fs */
91 u_long lfs_ssize; /* number of blocks per segment */
92 u_long lfs_dsize; /* number of disk blocks in fs */
93 u_long lfs_bsize; /* file system block size */
94 u_long lfs_fsize; /* size of frag blocks in fs */
95 u_long lfs_frag; /* number of frags in a block in fs */
96
97 /* Checkpoint region. */
98 ino_t lfs_free; /* start of the free list */
99 u_long lfs_bfree; /* number of free disk blocks */
100 u_long lfs_nfiles; /* number of allocated inodes */
101 long lfs_avail; /* blocks available for writing */
102 u_long lfs_uinodes; /* inodes in cache not yet on disk */
103 daddr_t lfs_idaddr; /* inode file disk address */
104 ino_t lfs_ifile; /* inode file inode number */
105 daddr_t lfs_lastseg; /* address of last segment written */
106 daddr_t lfs_nextseg; /* address of next segment to write */
107 daddr_t lfs_curseg; /* current segment being written */
108 daddr_t lfs_offset; /* offset in curseg for next partial */
109 daddr_t lfs_lastpseg; /* address of last partial written */
110 u_long lfs_tstamp; /* time stamp */
111
112 /* These are configuration parameters. */
113 u_long lfs_minfree; /* minimum percentage of free blocks */
114
115 /* These fields can be computed from the others. */
116 u_quad_t lfs_maxfilesize; /* maximum representable file size */
117 u_long lfs_dbpseg; /* disk blocks per segment */
118 u_long lfs_inopb; /* inodes per block */
119 u_long lfs_ifpb; /* IFILE entries per block */
120 u_long lfs_sepb; /* SEGUSE entries per block */
121 u_long lfs_nindir; /* indirect pointers per block */
122 u_long lfs_nseg; /* number of segments */
123 u_long lfs_nspf; /* number of sectors per fragment */
124 u_long lfs_cleansz; /* cleaner info size in blocks */
125 u_long lfs_segtabsz; /* segment table size in blocks */
126
127 u_long lfs_segmask; /* calculate offset within a segment */
128 u_long lfs_segshift; /* fast mult/div for segments */
129 u_long lfs_bmask; /* calc block offset from file offset */
130 u_long lfs_bshift; /* calc block number from file offset */
131 u_long lfs_ffmask; /* calc frag offset from file offset */
132 u_long lfs_ffshift; /* fast mult/div for frag from file */
133 u_long lfs_fbmask; /* calc frag offset from block offset */
134 u_long lfs_fbshift; /* fast mult/div for frag from block */
135 u_long lfs_fsbtodb; /* fsbtodb and dbtofsb shift constant */
136 u_long lfs_sushift; /* fast mult/div for segusage table */
137
138 #define LFS_MIN_SBINTERVAL 5 /* minimum superblock segment spacing */
139 #define LFS_MAXNUMSB 10 /* superblock disk offsets */
140 daddr_t lfs_sboffs[LFS_MAXNUMSB];
141
142 /* These fields are set at mount time and are meaningless on disk. */
143 struct segment *lfs_sp; /* current segment being written */
144 struct vnode *lfs_ivnode; /* vnode for the ifile */
145 u_long lfs_seglock; /* single-thread the segment writer */
146 pid_t lfs_lockpid; /* pid of lock holder */
147 u_long lfs_iocount; /* number of ios pending */
148 u_long lfs_writer; /* don't allow any dirops to start */
149 u_long lfs_dirops; /* count of active directory ops */
150 u_long lfs_doifile; /* Write ifile blocks on next write */
151 u_long lfs_nactive; /* Number of segments since last ckp */
152 u_char lfs_fmod; /* super block modified flag */
153 u_char lfs_clean; /* file system is clean flag */
154 u_char lfs_ronly; /* mounted read-only flag */
155 u_char lfs_flags; /* currently unused flag */
156 u_char lfs_fsmnt[MNAMELEN]; /* name mounted on */
157 u_char pad[3]; /* long-align */
158
159 /* Checksum; valid on disk. */
160 u_long lfs_cksum; /* checksum for superblock checking */
161
162 long lfs_maxsymlinklen; /* max length of an internal symlink */
163 };
164
165 /*
166 * Inode 0 is the out-of-band inode number, inode 1 is the inode number for
167 * the IFILE, the root inode is 2 and the lost+found inode is 3.
168 */
169
170 /* Fixed inode numbers. */
171 #define LFS_UNUSED_INUM 0 /* out of band inode number */
172 #define LFS_IFILE_INUM 1 /* IFILE inode number */
173 #define LOSTFOUNDINO 3 /* lost+found inode number */
174 #define LFS_FIRST_INUM 4 /* first free inode number */
175
176 /* Address calculations for metadata located in the inode */
177 #define S_INDIR(fs) -NDADDR
178 #define D_INDIR(fs) (S_INDIR(fs) - NINDIR(fs) - 1)
179 #define T_INDIR(fs) (D_INDIR(fs) - NINDIR(fs) * NINDIR(fs) - 1)
180
181 /* Unassigned disk address. */
182 #define UNASSIGNED -1
183
184 /* Unused logical block number */
185 #define LFS_UNUSED_LBN -1
186
187 typedef struct ifile IFILE;
188 struct ifile {
189 u_long if_version; /* inode version number */
190 #define LFS_UNUSED_DADDR 0 /* out-of-band daddr */
191 daddr_t if_daddr; /* inode disk address */
192 ino_t if_nextfree; /* next-unallocated inode */
193 };
194
195 /*
196 * Cleaner information structure. This resides in the ifile and is used
197 * to pass information between the cleaner and the kernel.
198 */
199 typedef struct _cleanerinfo {
200 u_long clean; /* K: number of clean segments */
201 u_long dirty; /* K: number of dirty segments */
202 } CLEANERINFO;
203
204 #define CLEANSIZE_SU(fs) \
205 ((sizeof(CLEANERINFO) + (fs)->lfs_bsize - 1) >> (fs)->lfs_bshift)
206
207 /*
208 * All summary blocks are the same size, so we can always read a summary
209 * block easily from a segment.
210 */
211 #define LFS_SUMMARY_SIZE 512
212
213 /* On-disk segment summary information */
214 typedef struct segsum SEGSUM;
215 struct segsum {
216 u_long ss_sumsum; /* check sum of summary block */
217 u_long ss_datasum; /* check sum of data */
218 daddr_t ss_next; /* next segment */
219 u_long ss_create; /* creation time stamp */
220 u_short ss_nfinfo; /* number of file info structures */
221 u_short ss_ninos; /* number of inodes in summary */
222 #define SS_DIROP 0x01 /* segment begins a dirop */
223 #define SS_CONT 0x02 /* more partials to finish this write*/
224 u_short ss_flags; /* used for directory operations */
225 u_short ss_pad; /* extra space */
226 /* FINFO's and inode daddr's... */
227 };
228
229 /* NINDIR is the number of indirects in a file system block. */
230 #define NINDIR(fs) ((fs)->lfs_nindir)
231
232 /* INOPB is the number of inodes in a secondary storage block. */
233 #define INOPB(fs) ((fs)->lfs_inopb)
234
235 #define blksize(fs) ((fs)->lfs_bsize)
236 #define blkoff(fs, loc) ((loc) & (fs)->lfs_bmask)
237 #define fsbtodb(fs, b) ((b) << (fs)->lfs_fsbtodb)
238 #define dbtofsb(fs, b) ((b) >> (fs)->lfs_fsbtodb)
239 #define lblkno(fs, loc) ((loc) >> (fs)->lfs_bshift)
240 #define lblktosize(fs, blk) ((blk) << (fs)->lfs_bshift)
241 #define numfrags(fs, loc) /* calculates (loc / fs->fs_fsize) */ \
242 ((loc) >> (fs)->lfs_bshift)
243
244 #define datosn(fs, daddr) /* disk address to segment number */ \
245 (((daddr) - (fs)->lfs_sboffs[0]) / fsbtodb((fs), (fs)->lfs_ssize))
246 #define sntoda(fs, sn) /* segment number to disk address */ \
247 ((daddr_t)((sn) * ((fs)->lfs_ssize << (fs)->lfs_fsbtodb) + \
248 (fs)->lfs_sboffs[0]))
249
250 /* Read in the block with the cleaner info from the ifile. */
251 #define LFS_CLEANERINFO(CP, F, BP) { \
252 VTOI((F)->lfs_ivnode)->i_flag |= IN_ACCESS; \
253 if (bread((F)->lfs_ivnode, \
254 (daddr_t)0, (F)->lfs_bsize, NOCRED, &(BP))) \
255 panic("lfs: ifile read"); \
256 (CP) = (CLEANERINFO *)(BP)->b_data; \
257 }
258
259 /* Read in the block with a specific inode from the ifile. */
260 #define LFS_IENTRY(IP, F, IN, BP) { \
261 int _e; \
262 VTOI((F)->lfs_ivnode)->i_flag |= IN_ACCESS; \
263 if (_e = bread((F)->lfs_ivnode, \
264 (IN) / (F)->lfs_ifpb + (F)->lfs_cleansz + (F)->lfs_segtabsz,\
265 (F)->lfs_bsize, NOCRED, &(BP))) \
266 panic("lfs: ifile read %d", _e); \
267 (IP) = (IFILE *)(BP)->b_data + (IN) % (F)->lfs_ifpb; \
268 }
269
270 /* Read in the block with a specific segment usage entry from the ifile. */
271 #define LFS_SEGENTRY(SP, F, IN, BP) { \
272 int _e; \
273 VTOI((F)->lfs_ivnode)->i_flag |= IN_ACCESS; \
274 if (_e = bread((F)->lfs_ivnode, \
275 ((IN) >> (F)->lfs_sushift) + (F)->lfs_cleansz, \
276 (F)->lfs_bsize, NOCRED, &(BP))) \
277 panic("lfs: ifile read: %d", _e); \
278 (SP) = (SEGUSE *)(BP)->b_data + ((IN) & (F)->lfs_sepb - 1); \
279 }
280
281 /*
282 * Determine if there is enough room currently available to write db
283 * disk blocks. We need enough blocks for the new blocks, the current,
284 * inode blocks, a summary block, plus potentially the ifile inode and
285 * the segment usage table, plus an ifile page.
286 */
287 #define LFS_FITS(fs, db) \
288 ((long)((db + ((fs)->lfs_uinodes + INOPB((fs))) / INOPB((fs)) + \
289 fsbtodb(fs, 1) + LFS_SUMMARY_SIZE / DEV_BSIZE + \
290 (fs)->lfs_segtabsz)) < (fs)->lfs_avail)
291
292 /* Determine if a buffer belongs to the ifile */
293 #define IS_IFILE(bp) (VTOI(bp->b_vp)->i_number == LFS_IFILE_INUM)
294
295 /*
296 * Structures used by lfs_bmapv and lfs_markv to communicate information
297 * about inodes and data blocks.
298 */
299 typedef struct block_info {
300 ino_t bi_inode; /* inode # */
301 daddr_t bi_lbn; /* logical block w/in file */
302 daddr_t bi_daddr; /* disk address of block */
303 time_t bi_segcreate; /* origin segment create time */
304 int bi_version; /* file version number */
305 void *bi_bp; /* data buffer */
306 } BLOCK_INFO;
307
308 /* In-memory description of a segment about to be written. */
309 struct segment {
310 struct lfs *fs; /* file system pointer */
311 struct buf **bpp; /* pointer to buffer array */
312 struct buf **cbpp; /* pointer to next available bp */
313 struct buf **start_bpp; /* pointer to first bp in this set */
314 struct buf *ibp; /* buffer pointer to inode page */
315 struct finfo *fip; /* current fileinfo pointer */
316 struct vnode *vp; /* vnode being gathered */
317 void *segsum; /* segment summary info */
318 u_long ninodes; /* number of inodes in this segment */
319 u_long seg_bytes_left; /* bytes left in segment */
320 u_long sum_bytes_left; /* bytes left in summary block */
321 u_long seg_number; /* number of this segment */
322 daddr_t *start_lbp; /* beginning lbn for this set */
323 #define SEGM_CKP 0x01 /* doing a checkpoint */
324 #define SEGM_CLEAN 0x02 /* cleaner call; don't sort */
325 #define SEGM_SYNC 0x04 /* wait for segment */
326 u_long seg_flags; /* run-time flags for this segment */
327 };
328
329 #define ISSPACE(F, BB, C) \
330 (((C)->cr_uid == 0 && (F)->lfs_bfree >= (BB)) || \
331 ((C)->cr_uid != 0 && IS_FREESPACE(F, BB)))
332
333 #define IS_FREESPACE(F, BB) \
334 ((F)->lfs_bfree > ((F)->lfs_dsize * (F)->lfs_minfree / 100 + (BB)))
335
336 #define ISSPACE_XXX(F, BB) \
337 ((F)->lfs_bfree >= (BB))
338
339 #define DOSTATS
340 #ifdef DOSTATS
341 /* Statistics Counters */
342 struct lfs_stats {
343 int segsused;
344 int psegwrites;
345 int psyncwrites;
346 int pcleanwrites;
347 int blocktot;
348 int cleanblocks;
349 int ncheckpoints;
350 int nwrites;
351 int nsync_writes;
352 int wait_exceeded;
353 int write_exceeded;
354 int flush_invoked;
355 };
356 extern struct lfs_stats lfs_stats;
357 #endif
358