lfs_segment.c revision 1.17 1 1.17 perseant /* $NetBSD: lfs_segment.c,v 1.17 1999/03/25 21:54:10 perseant Exp $ */
2 1.2 cgd
3 1.15 perseant /*-
4 1.15 perseant * Copyright (c) 1999 The NetBSD Foundation, Inc.
5 1.15 perseant * All rights reserved.
6 1.15 perseant *
7 1.15 perseant * This code is derived from software contributed to The NetBSD Foundation
8 1.15 perseant * by Konrad E. Schroder <perseant (at) hhhh.org>.
9 1.15 perseant *
10 1.15 perseant * Redistribution and use in source and binary forms, with or without
11 1.15 perseant * modification, are permitted provided that the following conditions
12 1.15 perseant * are met:
13 1.15 perseant * 1. Redistributions of source code must retain the above copyright
14 1.15 perseant * notice, this list of conditions and the following disclaimer.
15 1.15 perseant * 2. Redistributions in binary form must reproduce the above copyright
16 1.15 perseant * notice, this list of conditions and the following disclaimer in the
17 1.15 perseant * documentation and/or other materials provided with the distribution.
18 1.15 perseant * 3. All advertising materials mentioning features or use of this software
19 1.15 perseant * must display the following acknowledgement:
20 1.15 perseant * This product includes software developed by the NetBSD
21 1.15 perseant * Foundation, Inc. and its contributors.
22 1.15 perseant * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.15 perseant * contributors may be used to endorse or promote products derived
24 1.15 perseant * from this software without specific prior written permission.
25 1.15 perseant *
26 1.15 perseant * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.15 perseant * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.15 perseant * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.15 perseant * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.15 perseant * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.15 perseant * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.15 perseant * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.15 perseant * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.15 perseant * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.15 perseant * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.15 perseant * POSSIBILITY OF SUCH DAMAGE.
37 1.15 perseant */
38 1.1 mycroft /*
39 1.1 mycroft * Copyright (c) 1991, 1993
40 1.1 mycroft * The Regents of the University of California. All rights reserved.
41 1.1 mycroft *
42 1.1 mycroft * Redistribution and use in source and binary forms, with or without
43 1.1 mycroft * modification, are permitted provided that the following conditions
44 1.1 mycroft * are met:
45 1.1 mycroft * 1. Redistributions of source code must retain the above copyright
46 1.1 mycroft * notice, this list of conditions and the following disclaimer.
47 1.1 mycroft * 2. Redistributions in binary form must reproduce the above copyright
48 1.1 mycroft * notice, this list of conditions and the following disclaimer in the
49 1.1 mycroft * documentation and/or other materials provided with the distribution.
50 1.1 mycroft * 3. All advertising materials mentioning features or use of this software
51 1.1 mycroft * must display the following acknowledgement:
52 1.1 mycroft * This product includes software developed by the University of
53 1.1 mycroft * California, Berkeley and its contributors.
54 1.1 mycroft * 4. Neither the name of the University nor the names of its contributors
55 1.1 mycroft * may be used to endorse or promote products derived from this software
56 1.1 mycroft * without specific prior written permission.
57 1.1 mycroft *
58 1.1 mycroft * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
59 1.1 mycroft * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
60 1.1 mycroft * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
61 1.1 mycroft * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
62 1.1 mycroft * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
63 1.1 mycroft * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
64 1.1 mycroft * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
65 1.1 mycroft * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
66 1.1 mycroft * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
67 1.1 mycroft * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
68 1.1 mycroft * SUCH DAMAGE.
69 1.1 mycroft *
70 1.10 fvdl * @(#)lfs_segment.c 8.10 (Berkeley) 6/10/95
71 1.1 mycroft */
72 1.1 mycroft
73 1.16 perseant #define ivndebug(vp,str) printf("ino %d: %s\n",VTOI(vp)->i_number,(str))
74 1.16 perseant
75 1.1 mycroft #include <sys/param.h>
76 1.1 mycroft #include <sys/systm.h>
77 1.1 mycroft #include <sys/namei.h>
78 1.1 mycroft #include <sys/kernel.h>
79 1.1 mycroft #include <sys/resourcevar.h>
80 1.1 mycroft #include <sys/file.h>
81 1.1 mycroft #include <sys/stat.h>
82 1.1 mycroft #include <sys/buf.h>
83 1.1 mycroft #include <sys/proc.h>
84 1.1 mycroft #include <sys/conf.h>
85 1.1 mycroft #include <sys/vnode.h>
86 1.1 mycroft #include <sys/malloc.h>
87 1.1 mycroft #include <sys/mount.h>
88 1.1 mycroft
89 1.1 mycroft #include <miscfs/specfs/specdev.h>
90 1.1 mycroft #include <miscfs/fifofs/fifo.h>
91 1.1 mycroft
92 1.1 mycroft #include <ufs/ufs/quota.h>
93 1.1 mycroft #include <ufs/ufs/inode.h>
94 1.1 mycroft #include <ufs/ufs/dir.h>
95 1.1 mycroft #include <ufs/ufs/ufsmount.h>
96 1.1 mycroft #include <ufs/ufs/ufs_extern.h>
97 1.1 mycroft
98 1.1 mycroft #include <ufs/lfs/lfs.h>
99 1.1 mycroft #include <ufs/lfs/lfs_extern.h>
100 1.1 mycroft
101 1.1 mycroft extern int count_lock_queue __P((void));
102 1.10 fvdl extern struct simplelock vnode_free_list_slock; /* XXX */
103 1.10 fvdl extern TAILQ_HEAD(freelst, vnode) vnode_free_list; /* XXX */
104 1.1 mycroft
105 1.1 mycroft /*
106 1.1 mycroft * Determine if it's OK to start a partial in this segment, or if we need
107 1.1 mycroft * to go on to a new segment.
108 1.1 mycroft */
109 1.1 mycroft #define LFS_PARTIAL_FITS(fs) \
110 1.1 mycroft ((fs)->lfs_dbpseg - ((fs)->lfs_offset - (fs)->lfs_curseg) > \
111 1.1 mycroft 1 << (fs)->lfs_fsbtodb)
112 1.1 mycroft
113 1.1 mycroft void lfs_callback __P((struct buf *));
114 1.15 perseant int lfs_gather __P((struct lfs *, struct segment *,
115 1.1 mycroft struct vnode *, int (*) __P((struct lfs *, struct buf *))));
116 1.1 mycroft int lfs_gatherblock __P((struct segment *, struct buf *, int *));
117 1.10 fvdl void lfs_iset __P((struct inode *, ufs_daddr_t, time_t));
118 1.15 perseant int lfs_match_fake __P((struct lfs *, struct buf *));
119 1.1 mycroft int lfs_match_data __P((struct lfs *, struct buf *));
120 1.1 mycroft int lfs_match_dindir __P((struct lfs *, struct buf *));
121 1.1 mycroft int lfs_match_indir __P((struct lfs *, struct buf *));
122 1.1 mycroft int lfs_match_tindir __P((struct lfs *, struct buf *));
123 1.1 mycroft void lfs_newseg __P((struct lfs *));
124 1.10 fvdl void lfs_shellsort __P((struct buf **, ufs_daddr_t *, register int));
125 1.1 mycroft void lfs_supercallback __P((struct buf *));
126 1.1 mycroft void lfs_updatemeta __P((struct segment *));
127 1.1 mycroft int lfs_vref __P((struct vnode *));
128 1.1 mycroft void lfs_vunref __P((struct vnode *));
129 1.1 mycroft void lfs_writefile __P((struct lfs *, struct segment *, struct vnode *));
130 1.1 mycroft int lfs_writeinode __P((struct lfs *, struct segment *, struct inode *));
131 1.1 mycroft int lfs_writeseg __P((struct lfs *, struct segment *));
132 1.15 perseant void lfs_writesuper __P((struct lfs *, daddr_t));
133 1.15 perseant int lfs_writevnodes __P((struct lfs *fs, struct mount *mp,
134 1.1 mycroft struct segment *sp, int dirops));
135 1.1 mycroft
136 1.1 mycroft int lfs_allclean_wakeup; /* Cleaner wakeup address. */
137 1.15 perseant int lfs_writeindir = 1; /* whether to flush indir on non-ckp */
138 1.1 mycroft
139 1.1 mycroft /* Statistics Counters */
140 1.15 perseant int lfs_dostats = 1;
141 1.1 mycroft struct lfs_stats lfs_stats;
142 1.1 mycroft
143 1.1 mycroft /* op values to lfs_writevnodes */
144 1.15 perseant #define VN_REG 0
145 1.1 mycroft #define VN_DIROP 1
146 1.1 mycroft #define VN_EMPTY 2
147 1.15 perseant #define VN_CLEAN 3
148 1.15 perseant
149 1.15 perseant #define LFS_MAX_ACTIVE 10
150 1.15 perseant
151 1.15 perseant /*
152 1.15 perseant * XXX KS - Set modification time on the Ifile, so the cleaner can
153 1.15 perseant * read the fs mod time off of it. We don't set IN_UPDATE here,
154 1.15 perseant * since we don't really need this to be flushed to disk (and in any
155 1.15 perseant * case that wouldn't happen to the Ifile until we checkpoint).
156 1.15 perseant */
157 1.15 perseant void
158 1.15 perseant lfs_imtime(fs)
159 1.15 perseant struct lfs *fs;
160 1.15 perseant {
161 1.15 perseant struct timespec ts;
162 1.15 perseant struct inode *ip;
163 1.15 perseant
164 1.15 perseant TIMEVAL_TO_TIMESPEC(&time, &ts);
165 1.15 perseant ip = VTOI(fs->lfs_ivnode);
166 1.15 perseant ip->i_ffs_mtime = ts.tv_sec;
167 1.15 perseant ip->i_ffs_mtimensec = ts.tv_nsec;
168 1.15 perseant }
169 1.1 mycroft
170 1.1 mycroft /*
171 1.1 mycroft * Ifile and meta data blocks are not marked busy, so segment writes MUST be
172 1.1 mycroft * single threaded. Currently, there are two paths into lfs_segwrite, sync()
173 1.1 mycroft * and getnewbuf(). They both mark the file system busy. Lfs_vflush()
174 1.1 mycroft * explicitly marks the file system busy. So lfs_segwrite is safe. I think.
175 1.1 mycroft */
176 1.1 mycroft
177 1.15 perseant #define SET_FLUSHING(fs,vp) (fs)->lfs_flushvp = (vp)
178 1.15 perseant #define IS_FLUSHING(fs,vp) ((fs)->lfs_flushvp == (vp))
179 1.15 perseant #define CLR_FLUSHING(fs,vp) (fs)->lfs_flushvp = NULL
180 1.15 perseant
181 1.1 mycroft int
182 1.1 mycroft lfs_vflush(vp)
183 1.1 mycroft struct vnode *vp;
184 1.1 mycroft {
185 1.1 mycroft struct inode *ip;
186 1.1 mycroft struct lfs *fs;
187 1.1 mycroft struct segment *sp;
188 1.15 perseant int error;
189 1.15 perseant struct buf *bp;
190 1.1 mycroft
191 1.15 perseant /* Protect against VXLOCK deadlock in vinvalbuf() */
192 1.1 mycroft fs = VFSTOUFS(vp->v_mount)->um_lfs;
193 1.1 mycroft lfs_seglock(fs, SEGM_SYNC);
194 1.15 perseant SET_FLUSHING(fs,vp);
195 1.15 perseant if (fs->lfs_nactive > LFS_MAX_ACTIVE) {
196 1.15 perseant error = lfs_segwrite(vp->v_mount, SEGM_SYNC|SEGM_CKP);
197 1.15 perseant CLR_FLUSHING(fs,vp);
198 1.15 perseant lfs_segunlock(fs);
199 1.15 perseant return error;
200 1.15 perseant }
201 1.1 mycroft sp = fs->lfs_sp;
202 1.1 mycroft
203 1.1 mycroft ip = VTOI(vp);
204 1.15 perseant if (vp->v_dirtyblkhd.lh_first == NULL) {
205 1.1 mycroft lfs_writevnodes(fs, vp->v_mount, sp, VN_EMPTY);
206 1.15 perseant }
207 1.15 perseant else if(lfs_dostats) {
208 1.15 perseant if(vp->v_dirtyblkhd.lh_first || (VTOI(vp)->i_flag & (IN_MODIFIED|IN_UPDATE|IN_ACCESS|IN_CHANGE|IN_CLEANING)))
209 1.15 perseant ++lfs_stats.vflush_invoked;
210 1.15 perseant #ifdef DEBUG_LFS
211 1.15 perseant printf("V");
212 1.15 perseant #endif
213 1.15 perseant }
214 1.15 perseant
215 1.15 perseant /* XXX KS - can this ever happen? I think so.... */
216 1.15 perseant if(ip->i_flag & IN_CLEANING) {
217 1.15 perseant #ifdef DEBUG_LFS
218 1.15 perseant printf("C");
219 1.15 perseant #endif
220 1.15 perseant ip->i_flag &= ~IN_CLEANING;
221 1.15 perseant /*
222 1.15 perseant * XXX Copyin all of the fake buffers *now* to avoid
223 1.15 perseant * a later panic; and take off B_INVAL.
224 1.15 perseant */
225 1.15 perseant for(bp=vp->v_dirtyblkhd.lh_first; bp; bp=bp->b_vnbufs.le_next) {
226 1.15 perseant if((bp->b_flags & (B_CALL|B_INVAL))==(B_CALL|B_INVAL)) {
227 1.15 perseant bp->b_data = malloc(bp->b_bufsize, M_SEGMENT, M_WAITOK);
228 1.15 perseant copyin(bp->b_saveaddr, bp->b_data, bp->b_bcount);
229 1.15 perseant bp->b_flags &= ~B_INVAL;
230 1.15 perseant }
231 1.15 perseant }
232 1.15 perseant
233 1.15 perseant if(ip->i_flag & IN_MODIFIED) {
234 1.15 perseant fs->lfs_uinodes--;
235 1.15 perseant #ifdef DEBUG_LFS
236 1.15 perseant if((int32_t)fs->lfs_uinodes<0) {
237 1.15 perseant printf("U4");
238 1.15 perseant fs->lfs_uinodes=0;
239 1.15 perseant }
240 1.15 perseant #endif
241 1.15 perseant } else
242 1.15 perseant ip->i_flag |= IN_MODIFIED;
243 1.15 perseant }
244 1.1 mycroft
245 1.1 mycroft do {
246 1.1 mycroft do {
247 1.1 mycroft if (vp->v_dirtyblkhd.lh_first != NULL)
248 1.1 mycroft lfs_writefile(fs, sp, vp);
249 1.1 mycroft } while (lfs_writeinode(fs, sp, ip));
250 1.1 mycroft } while (lfs_writeseg(fs, sp) && ip->i_number == LFS_IFILE_INUM);
251 1.15 perseant
252 1.15 perseant if(lfs_dostats) {
253 1.15 perseant ++lfs_stats.nwrites;
254 1.15 perseant if (sp->seg_flags & SEGM_SYNC)
255 1.15 perseant ++lfs_stats.nsync_writes;
256 1.15 perseant if (sp->seg_flags & SEGM_CKP)
257 1.15 perseant ++lfs_stats.ncheckpoints;
258 1.15 perseant }
259 1.15 perseant lfs_segunlock(fs);
260 1.1 mycroft
261 1.15 perseant CLR_FLUSHING(fs,vp);
262 1.1 mycroft return (0);
263 1.1 mycroft }
264 1.1 mycroft
265 1.16 perseant #ifdef DEBUG_LFS_VERBOSE
266 1.16 perseant # define vndebug(vp,str) if(VTOI(vp)->i_flag & IN_CLEANING) printf("not writing ino %d because %s (op %d)\n",VTOI(vp)->i_number,(str),op)
267 1.16 perseant #else
268 1.16 perseant # define vndebug(vp,str)
269 1.16 perseant #endif
270 1.15 perseant
271 1.15 perseant int
272 1.1 mycroft lfs_writevnodes(fs, mp, sp, op)
273 1.1 mycroft struct lfs *fs;
274 1.1 mycroft struct mount *mp;
275 1.1 mycroft struct segment *sp;
276 1.1 mycroft int op;
277 1.1 mycroft {
278 1.1 mycroft struct inode *ip;
279 1.1 mycroft struct vnode *vp;
280 1.15 perseant int inodes_written=0;
281 1.1 mycroft
282 1.15 perseant #ifndef LFS_NO_BACKVP_HACK
283 1.15 perseant /* BEGIN HACK */
284 1.11 kleink #define VN_OFFSET (((caddr_t)&vp->v_mntvnodes.le_next) - (caddr_t)vp)
285 1.11 kleink #define BACK_VP(VP) ((struct vnode *)(((caddr_t)VP->v_mntvnodes.le_prev) - VN_OFFSET))
286 1.11 kleink #define BEG_OF_VLIST ((struct vnode *)(((caddr_t)&mp->mnt_vnodelist.lh_first) - VN_OFFSET))
287 1.15 perseant
288 1.15 perseant /* Find last vnode. */
289 1.15 perseant loop: for (vp = mp->mnt_vnodelist.lh_first;
290 1.10 fvdl vp && vp->v_mntvnodes.le_next != NULL;
291 1.10 fvdl vp = vp->v_mntvnodes.le_next);
292 1.10 fvdl for (; vp && vp != BEG_OF_VLIST; vp = BACK_VP(vp)) {
293 1.15 perseant #else
294 1.15 perseant loop:
295 1.1 mycroft for (vp = mp->mnt_vnodelist.lh_first;
296 1.1 mycroft vp != NULL;
297 1.1 mycroft vp = vp->v_mntvnodes.le_next) {
298 1.15 perseant #endif
299 1.1 mycroft /*
300 1.1 mycroft * If the vnode that we are about to sync is no longer
301 1.1 mycroft * associated with this mount point, start over.
302 1.1 mycroft */
303 1.1 mycroft if (vp->v_mount != mp)
304 1.1 mycroft goto loop;
305 1.1 mycroft
306 1.15 perseant ip = VTOI(vp);
307 1.15 perseant if ((op == VN_DIROP && !(vp->v_flag & VDIROP)) ||
308 1.15 perseant (op != VN_DIROP && op != VN_CLEAN && (vp->v_flag & VDIROP))) {
309 1.15 perseant vndebug(vp,"dirop");
310 1.15 perseant continue;
311 1.15 perseant }
312 1.15 perseant
313 1.15 perseant if (op == VN_EMPTY && vp->v_dirtyblkhd.lh_first) {
314 1.15 perseant vndebug(vp,"empty");
315 1.1 mycroft continue;
316 1.15 perseant }
317 1.15 perseant
318 1.15 perseant if (vp->v_type == VNON) {
319 1.15 perseant continue;
320 1.15 perseant }
321 1.1 mycroft
322 1.15 perseant if(op == VN_CLEAN && ip->i_number != LFS_IFILE_INUM
323 1.15 perseant && !(ip->i_flag & IN_CLEANING)) {
324 1.15 perseant vndebug(vp,"cleaning");
325 1.1 mycroft continue;
326 1.15 perseant }
327 1.1 mycroft
328 1.15 perseant if (lfs_vref(vp)) {
329 1.15 perseant vndebug(vp,"vref");
330 1.1 mycroft continue;
331 1.15 perseant }
332 1.1 mycroft
333 1.16 perseant #if 0 /* XXX KS - if we skip the ifile, things could go badly for us. */
334 1.16 perseant if(WRITEINPROG(vp)) {
335 1.16 perseant lfs_vunref(vp);
336 1.16 perseant #ifdef DEBUG_LFS
337 1.16 perseant ivndebug(vp,"writevnodes/writeinprog");
338 1.16 perseant #endif
339 1.16 perseant continue;
340 1.15 perseant }
341 1.16 perseant #endif
342 1.1 mycroft /*
343 1.1 mycroft * Write the inode/file if dirty and it's not the
344 1.1 mycroft * the IFILE.
345 1.1 mycroft */
346 1.1 mycroft if ((ip->i_flag &
347 1.15 perseant (IN_ACCESS | IN_CHANGE | IN_MODIFIED | IN_UPDATE | IN_CLEANING) ||
348 1.15 perseant vp->v_dirtyblkhd.lh_first != NULL))
349 1.15 perseant {
350 1.15 perseant if(ip->i_number != LFS_IFILE_INUM
351 1.15 perseant && vp->v_dirtyblkhd.lh_first != NULL)
352 1.15 perseant {
353 1.1 mycroft lfs_writefile(fs, sp, vp);
354 1.15 perseant }
355 1.15 perseant if(vp->v_dirtyblkhd.lh_first != NULL) {
356 1.15 perseant if(WRITEINPROG(vp)) {
357 1.15 perseant #ifdef DEBUG_LFS
358 1.16 perseant ivndebug(vp,"writevnodes/write2");
359 1.15 perseant #endif
360 1.15 perseant } else if(!(ip->i_flag & (IN_ACCESS|IN_CHANGE|IN_MODIFIED|IN_UPDATE|IN_CLEANING))) {
361 1.15 perseant #ifdef DEBUG_LFS
362 1.15 perseant printf("<%d>",ip->i_number);
363 1.15 perseant #endif
364 1.15 perseant ip->i_flag |= IN_MODIFIED;
365 1.15 perseant ++fs->lfs_uinodes;
366 1.15 perseant }
367 1.15 perseant }
368 1.1 mycroft (void) lfs_writeinode(fs, sp, ip);
369 1.15 perseant inodes_written++;
370 1.1 mycroft }
371 1.15 perseant
372 1.15 perseant if(vp->v_flag & VDIROP) {
373 1.15 perseant --fs->lfs_dirvcount;
374 1.15 perseant vp->v_flag &= ~VDIROP;
375 1.15 perseant wakeup(&fs->lfs_dirvcount);
376 1.15 perseant lfs_vunref(vp);
377 1.15 perseant }
378 1.15 perseant
379 1.1 mycroft lfs_vunref(vp);
380 1.1 mycroft }
381 1.15 perseant return inodes_written;
382 1.1 mycroft }
383 1.1 mycroft
384 1.15 perseant /*
385 1.15 perseant * There is a distinct difference in the interpretation of SEGM_CLEAN,
386 1.15 perseant * depending on whether it is passed *directly* to lfs_segwrite (i.e., we
387 1.15 perseant * were called from lfs_markv), or whether it was just in the segment flags
388 1.15 perseant * (we were called indirectly through getnewvnode/lfs_vflush). In the former
389 1.15 perseant * case, we only want to write vnodes where cleaning is in progress; but
390 1.15 perseant * in the latter case, we might want to write all empty vnodes, or possibly
391 1.15 perseant * all vnodes.
392 1.15 perseant */
393 1.1 mycroft int
394 1.1 mycroft lfs_segwrite(mp, flags)
395 1.1 mycroft struct mount *mp;
396 1.1 mycroft int flags; /* Do a checkpoint. */
397 1.1 mycroft {
398 1.1 mycroft struct buf *bp;
399 1.1 mycroft struct inode *ip;
400 1.1 mycroft struct lfs *fs;
401 1.1 mycroft struct segment *sp;
402 1.1 mycroft struct vnode *vp;
403 1.1 mycroft SEGUSE *segusep;
404 1.10 fvdl ufs_daddr_t ibno;
405 1.15 perseant int do_ckp, error, i;
406 1.15 perseant int writer_set = 0;
407 1.15 perseant int need_unlock = 0;
408 1.15 perseant
409 1.1 mycroft fs = VFSTOUFS(mp)->um_lfs;
410 1.1 mycroft
411 1.15 perseant lfs_imtime(fs);
412 1.15 perseant
413 1.15 perseant /*
414 1.15 perseant * If we are not the cleaner, and we have fewer than MIN_FREE_SEGS
415 1.15 perseant * clean segments, wait until cleaner writes.
416 1.15 perseant */
417 1.15 perseant if(!(flags & SEGM_CLEAN)
418 1.15 perseant && (!fs->lfs_seglock || !(fs->lfs_sp->seg_flags & SEGM_CLEAN)))
419 1.15 perseant {
420 1.15 perseant do {
421 1.15 perseant if (fs->lfs_nclean <= MIN_FREE_SEGS
422 1.15 perseant || fs->lfs_avail <= 0)
423 1.15 perseant {
424 1.15 perseant wakeup(&lfs_allclean_wakeup);
425 1.15 perseant wakeup(&fs->lfs_nextseg);
426 1.15 perseant error = tsleep(&fs->lfs_avail, PRIBIO + 1,
427 1.15 perseant "lfs_avail", 0);
428 1.15 perseant if (error) {
429 1.15 perseant return (error);
430 1.15 perseant }
431 1.15 perseant }
432 1.15 perseant } while (fs->lfs_nclean <= MIN_FREE_SEGS || fs->lfs_avail <= 0);
433 1.15 perseant }
434 1.1 mycroft
435 1.1 mycroft /*
436 1.1 mycroft * Allocate a segment structure and enough space to hold pointers to
437 1.1 mycroft * the maximum possible number of buffers which can be described in a
438 1.1 mycroft * single summary block.
439 1.1 mycroft */
440 1.15 perseant do_ckp = (flags & SEGM_CKP) || fs->lfs_nactive > LFS_MAX_ACTIVE;
441 1.1 mycroft lfs_seglock(fs, flags | (do_ckp ? SEGM_CKP : 0));
442 1.1 mycroft sp = fs->lfs_sp;
443 1.1 mycroft
444 1.15 perseant /*
445 1.16 perseant * If lfs_flushvp is non-NULL, we are called from lfs_vflush,
446 1.16 perseant * in which case we have to flush *all* buffers off of this vnode.
447 1.15 perseant */
448 1.15 perseant if((sp->seg_flags & SEGM_CLEAN) && !(fs->lfs_flushvp))
449 1.15 perseant lfs_writevnodes(fs, mp, sp, VN_CLEAN);
450 1.15 perseant else {
451 1.15 perseant lfs_writevnodes(fs, mp, sp, VN_REG);
452 1.15 perseant /*
453 1.15 perseant * XXX KS - If we're cleaning, we can't wait for dirops,
454 1.15 perseant * because they might be waiting on us. The downside of this
455 1.15 perseant * is that, if we write anything besides cleaning blocks
456 1.15 perseant * while cleaning, the checkpoint is not completely
457 1.15 perseant * consistent.
458 1.15 perseant */
459 1.15 perseant if(!(sp->seg_flags & SEGM_CLEAN)) {
460 1.15 perseant while(fs->lfs_dirops)
461 1.15 perseant if((error = tsleep(&fs->lfs_writer, PRIBIO + 1,
462 1.15 perseant "lfs writer", 0)))
463 1.15 perseant {
464 1.15 perseant free(sp->bpp, M_SEGMENT);
465 1.15 perseant free(sp, M_SEGMENT);
466 1.15 perseant return (error);
467 1.15 perseant }
468 1.15 perseant fs->lfs_writer++;
469 1.15 perseant writer_set=1;
470 1.15 perseant lfs_writevnodes(fs, mp, sp, VN_DIROP);
471 1.15 perseant ((SEGSUM *)(sp->segsum))->ss_flags &= ~(SS_CONT);
472 1.15 perseant }
473 1.15 perseant }
474 1.1 mycroft
475 1.1 mycroft /*
476 1.1 mycroft * If we are doing a checkpoint, mark everything since the
477 1.1 mycroft * last checkpoint as no longer ACTIVE.
478 1.1 mycroft */
479 1.15 perseant if (do_ckp) {
480 1.1 mycroft for (ibno = fs->lfs_cleansz + fs->lfs_segtabsz;
481 1.1 mycroft --ibno >= fs->lfs_cleansz; ) {
482 1.15 perseant if (bread(fs->lfs_ivnode, ibno, fs->lfs_bsize, NOCRED, &bp))
483 1.1 mycroft
484 1.15 perseant panic("lfs_segwrite: ifile read");
485 1.1 mycroft segusep = (SEGUSE *)bp->b_data;
486 1.1 mycroft for (i = fs->lfs_sepb; i--; segusep++)
487 1.1 mycroft segusep->su_flags &= ~SEGUSE_ACTIVE;
488 1.1 mycroft
489 1.15 perseant /* But the current segment is still ACTIVE */
490 1.15 perseant if (fs->lfs_curseg/fs->lfs_sepb==(ibno-fs->lfs_cleansz))
491 1.15 perseant ((SEGUSE *)(bp->b_data))[fs->lfs_curseg%fs->lfs_sepb].su_flags |= SEGUSE_ACTIVE;
492 1.1 mycroft error = VOP_BWRITE(bp);
493 1.1 mycroft }
494 1.15 perseant }
495 1.15 perseant
496 1.1 mycroft if (do_ckp || fs->lfs_doifile) {
497 1.15 perseant redo:
498 1.1 mycroft vp = fs->lfs_ivnode;
499 1.15 perseant /*
500 1.15 perseant * Depending on the circumstances of our calling, the ifile
501 1.15 perseant * inode might be locked. If it is, and if it is locked by
502 1.15 perseant * us, we should VREF instead of vget here.
503 1.15 perseant */
504 1.15 perseant need_unlock = 0;
505 1.15 perseant if(VOP_ISLOCKED(vp)
506 1.15 perseant && VTOI(vp)->i_lock.lk_lockholder == curproc->p_pid) {
507 1.15 perseant VREF(vp);
508 1.15 perseant } else {
509 1.15 perseant while (vget(vp, LK_EXCLUSIVE))
510 1.15 perseant continue;
511 1.15 perseant need_unlock = 1;
512 1.15 perseant }
513 1.1 mycroft ip = VTOI(vp);
514 1.1 mycroft if (vp->v_dirtyblkhd.lh_first != NULL)
515 1.1 mycroft lfs_writefile(fs, sp, vp);
516 1.1 mycroft (void)lfs_writeinode(fs, sp, ip);
517 1.15 perseant
518 1.15 perseant /* Only vput if we used vget() above. */
519 1.15 perseant if(need_unlock)
520 1.15 perseant vput(vp);
521 1.15 perseant else
522 1.15 perseant vrele(vp);
523 1.15 perseant
524 1.1 mycroft if (lfs_writeseg(fs, sp) && do_ckp)
525 1.1 mycroft goto redo;
526 1.15 perseant } else {
527 1.1 mycroft (void) lfs_writeseg(fs, sp);
528 1.15 perseant }
529 1.15 perseant
530 1.1 mycroft /*
531 1.15 perseant * If the I/O count is non-zero, sleep until it reaches zero.
532 1.15 perseant * At the moment, the user's process hangs around so we can
533 1.15 perseant * sleep.
534 1.1 mycroft */
535 1.1 mycroft fs->lfs_doifile = 0;
536 1.15 perseant if(writer_set && --fs->lfs_writer==0)
537 1.15 perseant wakeup(&fs->lfs_dirops);
538 1.15 perseant
539 1.15 perseant if(lfs_dostats) {
540 1.15 perseant ++lfs_stats.nwrites;
541 1.15 perseant if (sp->seg_flags & SEGM_SYNC)
542 1.15 perseant ++lfs_stats.nsync_writes;
543 1.15 perseant if (sp->seg_flags & SEGM_CKP)
544 1.15 perseant ++lfs_stats.ncheckpoints;
545 1.15 perseant }
546 1.1 mycroft lfs_segunlock(fs);
547 1.1 mycroft return (0);
548 1.1 mycroft }
549 1.1 mycroft
550 1.1 mycroft /*
551 1.1 mycroft * Write the dirty blocks associated with a vnode.
552 1.1 mycroft */
553 1.1 mycroft void
554 1.1 mycroft lfs_writefile(fs, sp, vp)
555 1.1 mycroft struct lfs *fs;
556 1.1 mycroft struct segment *sp;
557 1.1 mycroft struct vnode *vp;
558 1.1 mycroft {
559 1.1 mycroft struct buf *bp;
560 1.1 mycroft struct finfo *fip;
561 1.1 mycroft IFILE *ifp;
562 1.15 perseant
563 1.15 perseant
564 1.1 mycroft if (sp->seg_bytes_left < fs->lfs_bsize ||
565 1.1 mycroft sp->sum_bytes_left < sizeof(struct finfo))
566 1.1 mycroft (void) lfs_writeseg(fs, sp);
567 1.15 perseant
568 1.10 fvdl sp->sum_bytes_left -= sizeof(struct finfo) - sizeof(ufs_daddr_t);
569 1.1 mycroft ++((SEGSUM *)(sp->segsum))->ss_nfinfo;
570 1.1 mycroft
571 1.15 perseant if(vp->v_flag & VDIROP)
572 1.15 perseant ((SEGSUM *)(sp->segsum))->ss_flags |= (SS_DIROP|SS_CONT);
573 1.15 perseant
574 1.1 mycroft fip = sp->fip;
575 1.1 mycroft fip->fi_nblocks = 0;
576 1.1 mycroft fip->fi_ino = VTOI(vp)->i_number;
577 1.1 mycroft LFS_IENTRY(ifp, fs, fip->fi_ino, bp);
578 1.1 mycroft fip->fi_version = ifp->if_version;
579 1.1 mycroft brelse(bp);
580 1.15 perseant
581 1.1 mycroft /*
582 1.1 mycroft * It may not be necessary to write the meta-data blocks at this point,
583 1.1 mycroft * as the roll-forward recovery code should be able to reconstruct the
584 1.1 mycroft * list.
585 1.15 perseant *
586 1.15 perseant * We have to write them anyway, though, under two conditions: (1) the
587 1.15 perseant * vnode is being flushed (for reuse by vinvalbuf); or (2) we are
588 1.15 perseant * checkpointing.
589 1.1 mycroft */
590 1.15 perseant if((sp->seg_flags & SEGM_CLEAN)
591 1.15 perseant && VTOI(vp)->i_number != LFS_IFILE_INUM
592 1.15 perseant && !IS_FLUSHING(fs,vp))
593 1.15 perseant {
594 1.15 perseant lfs_gather(fs, sp, vp, lfs_match_fake);
595 1.15 perseant } else
596 1.15 perseant lfs_gather(fs, sp, vp, lfs_match_data);
597 1.16 perseant
598 1.15 perseant if(lfs_writeindir
599 1.15 perseant || IS_FLUSHING(fs,vp)
600 1.15 perseant || (sp->seg_flags & SEGM_CKP))
601 1.15 perseant {
602 1.15 perseant lfs_gather(fs, sp, vp, lfs_match_indir);
603 1.15 perseant lfs_gather(fs, sp, vp, lfs_match_dindir);
604 1.15 perseant /* XXX KS - when is TRIPLE not true? */ /* #ifdef TRIPLE */
605 1.15 perseant lfs_gather(fs, sp, vp, lfs_match_tindir);
606 1.15 perseant /* #endif */
607 1.15 perseant }
608 1.1 mycroft fip = sp->fip;
609 1.1 mycroft if (fip->fi_nblocks != 0) {
610 1.15 perseant sp->fip = (FINFO*)((caddr_t)fip + sizeof(struct finfo) +
611 1.15 perseant sizeof(ufs_daddr_t) * (fip->fi_nblocks-1));
612 1.1 mycroft sp->start_lbp = &sp->fip->fi_blocks[0];
613 1.1 mycroft } else {
614 1.15 perseant sp->sum_bytes_left += sizeof(FINFO) - sizeof(ufs_daddr_t);
615 1.1 mycroft --((SEGSUM *)(sp->segsum))->ss_nfinfo;
616 1.1 mycroft }
617 1.1 mycroft }
618 1.1 mycroft
619 1.1 mycroft int
620 1.1 mycroft lfs_writeinode(fs, sp, ip)
621 1.1 mycroft struct lfs *fs;
622 1.1 mycroft struct segment *sp;
623 1.1 mycroft struct inode *ip;
624 1.1 mycroft {
625 1.1 mycroft struct buf *bp, *ibp;
626 1.1 mycroft IFILE *ifp;
627 1.1 mycroft SEGUSE *sup;
628 1.10 fvdl ufs_daddr_t daddr;
629 1.1 mycroft ino_t ino;
630 1.1 mycroft int error, i, ndx;
631 1.1 mycroft int redo_ifile = 0;
632 1.5 mycroft struct timespec ts;
633 1.15 perseant
634 1.15 perseant if (!(ip->i_flag & (IN_ACCESS | IN_CHANGE | IN_MODIFIED | IN_UPDATE | IN_CLEANING)))
635 1.1 mycroft return(0);
636 1.15 perseant
637 1.1 mycroft /* Allocate a new inode block if necessary. */
638 1.1 mycroft if (sp->ibp == NULL) {
639 1.1 mycroft /* Allocate a new segment if necessary. */
640 1.1 mycroft if (sp->seg_bytes_left < fs->lfs_bsize ||
641 1.10 fvdl sp->sum_bytes_left < sizeof(ufs_daddr_t))
642 1.1 mycroft (void) lfs_writeseg(fs, sp);
643 1.1 mycroft
644 1.1 mycroft /* Get next inode block. */
645 1.1 mycroft daddr = fs->lfs_offset;
646 1.1 mycroft fs->lfs_offset += fsbtodb(fs, 1);
647 1.1 mycroft sp->ibp = *sp->cbpp++ =
648 1.15 perseant lfs_newbuf(VTOI(fs->lfs_ivnode)->i_devvp, daddr,
649 1.15 perseant fs->lfs_bsize);
650 1.1 mycroft /* Zero out inode numbers */
651 1.1 mycroft for (i = 0; i < INOPB(fs); ++i)
652 1.1 mycroft ((struct dinode *)sp->ibp->b_data)[i].di_inumber = 0;
653 1.15 perseant
654 1.1 mycroft ++sp->start_bpp;
655 1.1 mycroft fs->lfs_avail -= fsbtodb(fs, 1);
656 1.1 mycroft /* Set remaining space counters. */
657 1.1 mycroft sp->seg_bytes_left -= fs->lfs_bsize;
658 1.10 fvdl sp->sum_bytes_left -= sizeof(ufs_daddr_t);
659 1.10 fvdl ndx = LFS_SUMMARY_SIZE / sizeof(ufs_daddr_t) -
660 1.15 perseant sp->ninodes / INOPB(fs) - 1;
661 1.10 fvdl ((ufs_daddr_t *)(sp->segsum))[ndx] = daddr;
662 1.1 mycroft }
663 1.15 perseant
664 1.1 mycroft /* Update the inode times and copy the inode onto the inode page. */
665 1.15 perseant if (ip->i_flag & (IN_CLEANING|IN_MODIFIED))
666 1.1 mycroft --fs->lfs_uinodes;
667 1.9 pk TIMEVAL_TO_TIMESPEC(&time, &ts);
668 1.15 perseant LFS_ITIMES(ip, &ts, &ts, &ts);
669 1.16 perseant
670 1.15 perseant if(ip->i_flag & IN_CLEANING)
671 1.15 perseant ip->i_flag &= ~IN_CLEANING;
672 1.15 perseant else
673 1.15 perseant ip->i_flag &= ~(IN_ACCESS|IN_CHANGE|IN_MODIFIED|IN_UPDATE);
674 1.15 perseant
675 1.1 mycroft bp = sp->ibp;
676 1.15 perseant ((struct dinode *)bp->b_data)[sp->ninodes % INOPB(fs)] =
677 1.15 perseant ip->i_din.ffs_din;
678 1.15 perseant
679 1.1 mycroft /* Increment inode count in segment summary block. */
680 1.1 mycroft ++((SEGSUM *)(sp->segsum))->ss_ninos;
681 1.15 perseant
682 1.1 mycroft /* If this page is full, set flag to allocate a new page. */
683 1.1 mycroft if (++sp->ninodes % INOPB(fs) == 0)
684 1.1 mycroft sp->ibp = NULL;
685 1.15 perseant
686 1.1 mycroft /*
687 1.1 mycroft * If updating the ifile, update the super-block. Update the disk
688 1.1 mycroft * address and access times for this inode in the ifile.
689 1.1 mycroft */
690 1.1 mycroft ino = ip->i_number;
691 1.1 mycroft if (ino == LFS_IFILE_INUM) {
692 1.1 mycroft daddr = fs->lfs_idaddr;
693 1.1 mycroft fs->lfs_idaddr = bp->b_blkno;
694 1.1 mycroft } else {
695 1.1 mycroft LFS_IENTRY(ifp, fs, ino, ibp);
696 1.1 mycroft daddr = ifp->if_daddr;
697 1.1 mycroft ifp->if_daddr = bp->b_blkno;
698 1.1 mycroft error = VOP_BWRITE(ibp);
699 1.1 mycroft }
700 1.15 perseant
701 1.1 mycroft /*
702 1.1 mycroft * No need to update segment usage if there was no former inode address
703 1.1 mycroft * or if the last inode address is in the current partial segment.
704 1.1 mycroft */
705 1.1 mycroft if (daddr != LFS_UNUSED_DADDR &&
706 1.1 mycroft !(daddr >= fs->lfs_lastpseg && daddr <= bp->b_blkno)) {
707 1.1 mycroft LFS_SEGENTRY(sup, fs, datosn(fs, daddr), bp);
708 1.1 mycroft #ifdef DIAGNOSTIC
709 1.13 thorpej if (sup->su_nbytes < DINODE_SIZE) {
710 1.1 mycroft /* XXX -- Change to a panic. */
711 1.15 perseant printf("lfs_writeinode: negative bytes (segment %d)\n",
712 1.15 perseant datosn(fs, daddr));
713 1.1 mycroft panic("negative bytes");
714 1.1 mycroft }
715 1.1 mycroft #endif
716 1.13 thorpej sup->su_nbytes -= DINODE_SIZE;
717 1.1 mycroft redo_ifile =
718 1.15 perseant (ino == LFS_IFILE_INUM && !(bp->b_flags & B_GATHERED));
719 1.1 mycroft error = VOP_BWRITE(bp);
720 1.1 mycroft }
721 1.1 mycroft return (redo_ifile);
722 1.1 mycroft }
723 1.1 mycroft
724 1.1 mycroft int
725 1.1 mycroft lfs_gatherblock(sp, bp, sptr)
726 1.1 mycroft struct segment *sp;
727 1.1 mycroft struct buf *bp;
728 1.1 mycroft int *sptr;
729 1.1 mycroft {
730 1.1 mycroft struct lfs *fs;
731 1.1 mycroft int version;
732 1.15 perseant
733 1.1 mycroft /*
734 1.1 mycroft * If full, finish this segment. We may be doing I/O, so
735 1.1 mycroft * release and reacquire the splbio().
736 1.1 mycroft */
737 1.1 mycroft #ifdef DIAGNOSTIC
738 1.1 mycroft if (sp->vp == NULL)
739 1.1 mycroft panic ("lfs_gatherblock: Null vp in segment");
740 1.1 mycroft #endif
741 1.1 mycroft fs = sp->fs;
742 1.10 fvdl if (sp->sum_bytes_left < sizeof(ufs_daddr_t) ||
743 1.10 fvdl sp->seg_bytes_left < bp->b_bcount) {
744 1.1 mycroft if (sptr)
745 1.1 mycroft splx(*sptr);
746 1.1 mycroft lfs_updatemeta(sp);
747 1.15 perseant
748 1.1 mycroft version = sp->fip->fi_version;
749 1.1 mycroft (void) lfs_writeseg(fs, sp);
750 1.15 perseant
751 1.1 mycroft sp->fip->fi_version = version;
752 1.1 mycroft sp->fip->fi_ino = VTOI(sp->vp)->i_number;
753 1.1 mycroft /* Add the current file to the segment summary. */
754 1.1 mycroft ++((SEGSUM *)(sp->segsum))->ss_nfinfo;
755 1.1 mycroft sp->sum_bytes_left -=
756 1.15 perseant sizeof(struct finfo) - sizeof(ufs_daddr_t);
757 1.15 perseant
758 1.1 mycroft if (sptr)
759 1.1 mycroft *sptr = splbio();
760 1.1 mycroft return(1);
761 1.1 mycroft }
762 1.15 perseant
763 1.15 perseant #ifdef DEBUG
764 1.15 perseant if(bp->b_flags & B_GATHERED) {
765 1.15 perseant printf("lfs_gatherblock: already gathered! Ino %d, lbn %d\n",
766 1.15 perseant sp->fip->fi_ino, bp->b_lblkno);
767 1.15 perseant return(0);
768 1.15 perseant }
769 1.15 perseant #endif
770 1.1 mycroft /* Insert into the buffer list, update the FINFO block. */
771 1.1 mycroft bp->b_flags |= B_GATHERED;
772 1.1 mycroft *sp->cbpp++ = bp;
773 1.1 mycroft sp->fip->fi_blocks[sp->fip->fi_nblocks++] = bp->b_lblkno;
774 1.15 perseant
775 1.10 fvdl sp->sum_bytes_left -= sizeof(ufs_daddr_t);
776 1.10 fvdl sp->seg_bytes_left -= bp->b_bcount;
777 1.1 mycroft return(0);
778 1.1 mycroft }
779 1.1 mycroft
780 1.15 perseant int
781 1.1 mycroft lfs_gather(fs, sp, vp, match)
782 1.1 mycroft struct lfs *fs;
783 1.1 mycroft struct segment *sp;
784 1.1 mycroft struct vnode *vp;
785 1.1 mycroft int (*match) __P((struct lfs *, struct buf *));
786 1.1 mycroft {
787 1.1 mycroft struct buf *bp;
788 1.15 perseant int s, count=0;
789 1.15 perseant
790 1.1 mycroft sp->vp = vp;
791 1.1 mycroft s = splbio();
792 1.15 perseant
793 1.15 perseant #ifndef LFS_NO_BACKBUF_HACK
794 1.15 perseant loop: for (bp = vp->v_dirtyblkhd.lh_first; bp; bp = bp->b_vnbufs.le_next) {
795 1.15 perseant #else /* LFS_NO_BACKBUF_HACK */
796 1.10 fvdl /* This is a hack to see if ordering the blocks in LFS makes a difference. */
797 1.15 perseant # define BUF_OFFSET (((void *)&bp->b_vnbufs.le_next) - (void *)bp)
798 1.15 perseant # define BACK_BUF(BP) ((struct buf *)(((void *)BP->b_vnbufs.le_prev) - BUF_OFFSET))
799 1.15 perseant # define BEG_OF_LIST ((struct buf *)(((void *)&vp->v_dirtyblkhd.lh_first) - BUF_OFFSET))
800 1.10 fvdl /* Find last buffer. */
801 1.15 perseant loop: for (bp = vp->v_dirtyblkhd.lh_first; bp && bp->b_vnbufs.le_next != NULL;
802 1.10 fvdl bp = bp->b_vnbufs.le_next);
803 1.10 fvdl for (; bp && bp != BEG_OF_LIST; bp = BACK_BUF(bp)) {
804 1.15 perseant #endif /* LFS_NO_BACKBUF_HACK */
805 1.15 perseant if ((bp->b_flags & (B_BUSY|B_GATHERED)) || !match(fs, bp))
806 1.1 mycroft continue;
807 1.1 mycroft #ifdef DIAGNOSTIC
808 1.1 mycroft if (!(bp->b_flags & B_DELWRI))
809 1.1 mycroft panic("lfs_gather: bp not B_DELWRI");
810 1.1 mycroft if (!(bp->b_flags & B_LOCKED))
811 1.1 mycroft panic("lfs_gather: bp not B_LOCKED");
812 1.1 mycroft #endif
813 1.15 perseant count++;
814 1.15 perseant if (lfs_gatherblock(sp, bp, &s)) {
815 1.1 mycroft goto loop;
816 1.15 perseant }
817 1.1 mycroft }
818 1.1 mycroft splx(s);
819 1.1 mycroft lfs_updatemeta(sp);
820 1.1 mycroft sp->vp = NULL;
821 1.15 perseant return count;
822 1.1 mycroft }
823 1.1 mycroft
824 1.1 mycroft /*
825 1.1 mycroft * Update the metadata that points to the blocks listed in the FINFO
826 1.1 mycroft * array.
827 1.1 mycroft */
828 1.1 mycroft void
829 1.1 mycroft lfs_updatemeta(sp)
830 1.1 mycroft struct segment *sp;
831 1.1 mycroft {
832 1.1 mycroft SEGUSE *sup;
833 1.1 mycroft struct buf *bp;
834 1.1 mycroft struct lfs *fs;
835 1.1 mycroft struct vnode *vp;
836 1.1 mycroft struct indir a[NIADDR + 2], *ap;
837 1.1 mycroft struct inode *ip;
838 1.10 fvdl ufs_daddr_t daddr, lbn, off;
839 1.10 fvdl int error, i, nblocks, num;
840 1.15 perseant
841 1.1 mycroft vp = sp->vp;
842 1.1 mycroft nblocks = &sp->fip->fi_blocks[sp->fip->fi_nblocks] - sp->start_lbp;
843 1.10 fvdl if (nblocks < 0)
844 1.10 fvdl panic("This is a bad thing\n");
845 1.1 mycroft if (vp == NULL || nblocks == 0)
846 1.1 mycroft return;
847 1.15 perseant
848 1.1 mycroft /* Sort the blocks. */
849 1.15 perseant /*
850 1.15 perseant * XXX KS - We have to sort even if the blocks come from the
851 1.15 perseant * cleaner, because there might be other pending blocks on the
852 1.15 perseant * same inode...and if we don't sort, and there are fragments
853 1.15 perseant * present, blocks may be written in the wrong place.
854 1.15 perseant */
855 1.15 perseant /* if (!(sp->seg_flags & SEGM_CLEAN)) */
856 1.15 perseant lfs_shellsort(sp->start_bpp, sp->start_lbp, nblocks);
857 1.15 perseant
858 1.1 mycroft /*
859 1.10 fvdl * Record the length of the last block in case it's a fragment.
860 1.10 fvdl * If there are indirect blocks present, they sort last. An
861 1.10 fvdl * indirect block will be lfs_bsize and its presence indicates
862 1.10 fvdl * that you cannot have fragments.
863 1.10 fvdl */
864 1.10 fvdl sp->fip->fi_lastlength = sp->start_bpp[nblocks - 1]->b_bcount;
865 1.15 perseant
866 1.10 fvdl /*
867 1.1 mycroft * Assign disk addresses, and update references to the logical
868 1.1 mycroft * block and the segment usage information.
869 1.1 mycroft */
870 1.1 mycroft fs = sp->fs;
871 1.1 mycroft for (i = nblocks; i--; ++sp->start_bpp) {
872 1.1 mycroft lbn = *sp->start_lbp++;
873 1.15 perseant
874 1.1 mycroft (*sp->start_bpp)->b_blkno = off = fs->lfs_offset;
875 1.17 perseant if((*sp->start_bpp)->b_blkno == (*sp->start_bpp)->b_lblkno) {
876 1.17 perseant printf("lfs_updatemeta: ino %d blk %d has same lbn and daddr\n", VTOI(vp)->i_number, off);
877 1.17 perseant }
878 1.10 fvdl fs->lfs_offset +=
879 1.15 perseant fragstodb(fs, numfrags(fs, (*sp->start_bpp)->b_bcount));
880 1.1 mycroft
881 1.4 christos error = ufs_bmaparray(vp, lbn, &daddr, a, &num, NULL);
882 1.4 christos if (error)
883 1.1 mycroft panic("lfs_updatemeta: ufs_bmaparray %d", error);
884 1.1 mycroft ip = VTOI(vp);
885 1.1 mycroft switch (num) {
886 1.1 mycroft case 0:
887 1.8 bouyer ip->i_ffs_db[lbn] = off;
888 1.1 mycroft break;
889 1.1 mycroft case 1:
890 1.8 bouyer ip->i_ffs_ib[a[0].in_off] = off;
891 1.1 mycroft break;
892 1.1 mycroft default:
893 1.1 mycroft ap = &a[num - 1];
894 1.1 mycroft if (bread(vp, ap->in_lbn, fs->lfs_bsize, NOCRED, &bp))
895 1.1 mycroft panic("lfs_updatemeta: bread bno %d",
896 1.15 perseant ap->in_lbn);
897 1.1 mycroft /*
898 1.15 perseant * Bread may create a new (indirect) block which needs
899 1.1 mycroft * to get counted for the inode.
900 1.1 mycroft */
901 1.15 perseant if (/* bp->b_blkno == -1 && */
902 1.15 perseant !(bp->b_flags & (B_DELWRI|B_DONE))) {
903 1.10 fvdl ip->i_ffs_blocks += fsbtodb(fs, 1);
904 1.10 fvdl fs->lfs_bfree -= fragstodb(fs, fs->lfs_frag);
905 1.1 mycroft }
906 1.10 fvdl ((ufs_daddr_t *)bp->b_data)[ap->in_off] = off;
907 1.1 mycroft VOP_BWRITE(bp);
908 1.1 mycroft }
909 1.1 mycroft /* Update segment usage information. */
910 1.1 mycroft if (daddr != UNASSIGNED &&
911 1.1 mycroft !(daddr >= fs->lfs_lastpseg && daddr <= off)) {
912 1.1 mycroft LFS_SEGENTRY(sup, fs, datosn(fs, daddr), bp);
913 1.1 mycroft #ifdef DIAGNOSTIC
914 1.10 fvdl if (sup->su_nbytes < (*sp->start_bpp)->b_bcount) {
915 1.1 mycroft /* XXX -- Change to a panic. */
916 1.15 perseant printf("lfs_updatemeta: negative bytes (segment %d)\n",
917 1.15 perseant datosn(fs, daddr));
918 1.15 perseant printf("lfs_updatemeta: bp = 0x%p, addr = 0x%p\n",
919 1.15 perseant bp, bp->b_un.b_addr);
920 1.15 perseant /* panic ("Negative Bytes"); */
921 1.1 mycroft }
922 1.1 mycroft #endif
923 1.10 fvdl sup->su_nbytes -= (*sp->start_bpp)->b_bcount;
924 1.1 mycroft error = VOP_BWRITE(bp);
925 1.1 mycroft }
926 1.1 mycroft }
927 1.1 mycroft }
928 1.1 mycroft
929 1.1 mycroft /*
930 1.1 mycroft * Start a new segment.
931 1.1 mycroft */
932 1.1 mycroft int
933 1.1 mycroft lfs_initseg(fs)
934 1.1 mycroft struct lfs *fs;
935 1.1 mycroft {
936 1.1 mycroft struct segment *sp;
937 1.1 mycroft SEGUSE *sup;
938 1.1 mycroft SEGSUM *ssp;
939 1.1 mycroft struct buf *bp;
940 1.1 mycroft int repeat;
941 1.15 perseant
942 1.1 mycroft sp = fs->lfs_sp;
943 1.15 perseant
944 1.1 mycroft repeat = 0;
945 1.1 mycroft /* Advance to the next segment. */
946 1.1 mycroft if (!LFS_PARTIAL_FITS(fs)) {
947 1.1 mycroft /* Wake up any cleaning procs waiting on this file system. */
948 1.1 mycroft wakeup(&lfs_allclean_wakeup);
949 1.10 fvdl wakeup(&fs->lfs_nextseg);
950 1.1 mycroft lfs_newseg(fs);
951 1.1 mycroft repeat = 1;
952 1.1 mycroft fs->lfs_offset = fs->lfs_curseg;
953 1.1 mycroft sp->seg_number = datosn(fs, fs->lfs_curseg);
954 1.1 mycroft sp->seg_bytes_left = fs->lfs_dbpseg * DEV_BSIZE;
955 1.1 mycroft /*
956 1.1 mycroft * If the segment contains a superblock, update the offset
957 1.1 mycroft * and summary address to skip over it.
958 1.1 mycroft */
959 1.1 mycroft LFS_SEGENTRY(sup, fs, sp->seg_number, bp);
960 1.1 mycroft if (sup->su_flags & SEGUSE_SUPERBLOCK) {
961 1.1 mycroft fs->lfs_offset += LFS_SBPAD / DEV_BSIZE;
962 1.1 mycroft sp->seg_bytes_left -= LFS_SBPAD;
963 1.1 mycroft }
964 1.1 mycroft brelse(bp);
965 1.1 mycroft } else {
966 1.1 mycroft sp->seg_number = datosn(fs, fs->lfs_curseg);
967 1.1 mycroft sp->seg_bytes_left = (fs->lfs_dbpseg -
968 1.15 perseant (fs->lfs_offset - fs->lfs_curseg)) * DEV_BSIZE;
969 1.1 mycroft }
970 1.1 mycroft fs->lfs_lastpseg = fs->lfs_offset;
971 1.15 perseant
972 1.1 mycroft sp->fs = fs;
973 1.1 mycroft sp->ibp = NULL;
974 1.1 mycroft sp->ninodes = 0;
975 1.15 perseant
976 1.1 mycroft /* Get a new buffer for SEGSUM and enter it into the buffer list. */
977 1.1 mycroft sp->cbpp = sp->bpp;
978 1.15 perseant *sp->cbpp = lfs_newbuf(VTOI(fs->lfs_ivnode)->i_devvp,
979 1.15 perseant fs->lfs_offset, LFS_SUMMARY_SIZE);
980 1.1 mycroft sp->segsum = (*sp->cbpp)->b_data;
981 1.1 mycroft bzero(sp->segsum, LFS_SUMMARY_SIZE);
982 1.1 mycroft sp->start_bpp = ++sp->cbpp;
983 1.1 mycroft fs->lfs_offset += LFS_SUMMARY_SIZE / DEV_BSIZE;
984 1.15 perseant
985 1.1 mycroft /* Set point to SEGSUM, initialize it. */
986 1.1 mycroft ssp = sp->segsum;
987 1.1 mycroft ssp->ss_next = fs->lfs_nextseg;
988 1.1 mycroft ssp->ss_nfinfo = ssp->ss_ninos = 0;
989 1.10 fvdl ssp->ss_magic = SS_MAGIC;
990 1.1 mycroft
991 1.1 mycroft /* Set pointer to first FINFO, initialize it. */
992 1.3 cgd sp->fip = (struct finfo *)((caddr_t)sp->segsum + sizeof(SEGSUM));
993 1.1 mycroft sp->fip->fi_nblocks = 0;
994 1.1 mycroft sp->start_lbp = &sp->fip->fi_blocks[0];
995 1.10 fvdl sp->fip->fi_lastlength = 0;
996 1.15 perseant
997 1.1 mycroft sp->seg_bytes_left -= LFS_SUMMARY_SIZE;
998 1.1 mycroft sp->sum_bytes_left = LFS_SUMMARY_SIZE - sizeof(SEGSUM);
999 1.15 perseant
1000 1.1 mycroft return(repeat);
1001 1.1 mycroft }
1002 1.1 mycroft
1003 1.1 mycroft /*
1004 1.1 mycroft * Return the next segment to write.
1005 1.1 mycroft */
1006 1.1 mycroft void
1007 1.1 mycroft lfs_newseg(fs)
1008 1.1 mycroft struct lfs *fs;
1009 1.1 mycroft {
1010 1.1 mycroft CLEANERINFO *cip;
1011 1.1 mycroft SEGUSE *sup;
1012 1.1 mycroft struct buf *bp;
1013 1.1 mycroft int curseg, isdirty, sn;
1014 1.15 perseant
1015 1.15 perseant LFS_SEGENTRY(sup, fs, datosn(fs, fs->lfs_nextseg), bp);
1016 1.15 perseant sup->su_flags |= SEGUSE_DIRTY | SEGUSE_ACTIVE;
1017 1.1 mycroft sup->su_nbytes = 0;
1018 1.1 mycroft sup->su_nsums = 0;
1019 1.1 mycroft sup->su_ninos = 0;
1020 1.15 perseant (void) VOP_BWRITE(bp);
1021 1.1 mycroft
1022 1.1 mycroft LFS_CLEANERINFO(cip, fs, bp);
1023 1.1 mycroft --cip->clean;
1024 1.1 mycroft ++cip->dirty;
1025 1.15 perseant fs->lfs_nclean = cip->clean;
1026 1.1 mycroft (void) VOP_BWRITE(bp);
1027 1.15 perseant
1028 1.1 mycroft fs->lfs_lastseg = fs->lfs_curseg;
1029 1.1 mycroft fs->lfs_curseg = fs->lfs_nextseg;
1030 1.1 mycroft for (sn = curseg = datosn(fs, fs->lfs_curseg);;) {
1031 1.1 mycroft sn = (sn + 1) % fs->lfs_nseg;
1032 1.1 mycroft if (sn == curseg)
1033 1.1 mycroft panic("lfs_nextseg: no clean segments");
1034 1.1 mycroft LFS_SEGENTRY(sup, fs, sn, bp);
1035 1.1 mycroft isdirty = sup->su_flags & SEGUSE_DIRTY;
1036 1.1 mycroft brelse(bp);
1037 1.1 mycroft if (!isdirty)
1038 1.1 mycroft break;
1039 1.1 mycroft }
1040 1.15 perseant
1041 1.1 mycroft ++fs->lfs_nactive;
1042 1.1 mycroft fs->lfs_nextseg = sntoda(fs, sn);
1043 1.15 perseant if(lfs_dostats) {
1044 1.15 perseant ++lfs_stats.segsused;
1045 1.15 perseant }
1046 1.1 mycroft }
1047 1.1 mycroft
1048 1.1 mycroft int
1049 1.1 mycroft lfs_writeseg(fs, sp)
1050 1.1 mycroft struct lfs *fs;
1051 1.1 mycroft struct segment *sp;
1052 1.1 mycroft {
1053 1.1 mycroft extern int locked_queue_count;
1054 1.15 perseant extern long locked_queue_bytes;
1055 1.1 mycroft struct buf **bpp, *bp, *cbp;
1056 1.1 mycroft SEGUSE *sup;
1057 1.1 mycroft SEGSUM *ssp;
1058 1.1 mycroft dev_t i_dev;
1059 1.1 mycroft u_long *datap, *dp;
1060 1.10 fvdl int do_again, i, nblocks, s;
1061 1.15 perseant #ifdef LFS_TRACK_IOS
1062 1.15 perseant int j;
1063 1.15 perseant #endif
1064 1.4 christos int (*strategy)__P((void *));
1065 1.1 mycroft struct vop_strategy_args vop_strategy_a;
1066 1.1 mycroft u_short ninos;
1067 1.15 perseant struct vnode *devvp;
1068 1.1 mycroft char *p;
1069 1.15 perseant struct vnode *vn;
1070 1.15 perseant #if defined(DEBUG) && defined(LFS_PROPELLER)
1071 1.15 perseant static int propeller;
1072 1.15 perseant char propstring[4] = "-\\|/";
1073 1.15 perseant
1074 1.15 perseant printf("%c\b",propstring[propeller++]);
1075 1.15 perseant if(propeller==4)
1076 1.15 perseant propeller = 0;
1077 1.15 perseant #endif
1078 1.15 perseant
1079 1.1 mycroft /*
1080 1.1 mycroft * If there are no buffers other than the segment summary to write
1081 1.1 mycroft * and it is not a checkpoint, don't do anything. On a checkpoint,
1082 1.1 mycroft * even if there aren't any buffers, you need to write the superblock.
1083 1.1 mycroft */
1084 1.1 mycroft if ((nblocks = sp->cbpp - sp->bpp) == 1)
1085 1.1 mycroft return (0);
1086 1.15 perseant
1087 1.15 perseant #ifdef DEBUG_LFS
1088 1.15 perseant lfs_check_bpp(fs,sp,__FILE__,__LINE__);
1089 1.15 perseant #endif
1090 1.15 perseant
1091 1.10 fvdl /* Update the segment usage information. */
1092 1.10 fvdl LFS_SEGENTRY(sup, fs, sp->seg_number, bp);
1093 1.15 perseant
1094 1.10 fvdl /* Loop through all blocks, except the segment summary. */
1095 1.10 fvdl for (bpp = sp->bpp; ++bpp < sp->cbpp; )
1096 1.10 fvdl sup->su_nbytes += (*bpp)->b_bcount;
1097 1.15 perseant
1098 1.1 mycroft ssp = (SEGSUM *)sp->segsum;
1099 1.15 perseant
1100 1.1 mycroft ninos = (ssp->ss_ninos + INOPB(fs) - 1) / INOPB(fs);
1101 1.15 perseant /* sup->su_nbytes += ssp->ss_ninos * DINODE_SIZE; */
1102 1.1 mycroft sup->su_nbytes += LFS_SUMMARY_SIZE;
1103 1.1 mycroft sup->su_lastmod = time.tv_sec;
1104 1.1 mycroft sup->su_ninos += ninos;
1105 1.1 mycroft ++sup->su_nsums;
1106 1.15 perseant
1107 1.1 mycroft do_again = !(bp->b_flags & B_GATHERED);
1108 1.1 mycroft (void)VOP_BWRITE(bp);
1109 1.1 mycroft /*
1110 1.1 mycroft * Compute checksum across data and then across summary; the first
1111 1.1 mycroft * block (the summary block) is skipped. Set the create time here
1112 1.1 mycroft * so that it's guaranteed to be later than the inode mod times.
1113 1.1 mycroft *
1114 1.1 mycroft * XXX
1115 1.1 mycroft * Fix this to do it inline, instead of malloc/copy.
1116 1.1 mycroft */
1117 1.1 mycroft datap = dp = malloc(nblocks * sizeof(u_long), M_SEGMENT, M_WAITOK);
1118 1.1 mycroft for (bpp = sp->bpp, i = nblocks - 1; i--;) {
1119 1.15 perseant if (((*++bpp)->b_flags & (B_CALL|B_INVAL)) == (B_CALL|B_INVAL)) {
1120 1.1 mycroft if (copyin((*bpp)->b_saveaddr, dp++, sizeof(u_long)))
1121 1.15 perseant panic("lfs_writeseg: copyin failed [1]: ino %d blk %d", VTOI((*bpp)->b_vp)->i_number, (*bpp)->b_lblkno);
1122 1.1 mycroft } else
1123 1.1 mycroft *dp++ = ((u_long *)(*bpp)->b_data)[0];
1124 1.1 mycroft }
1125 1.1 mycroft ssp->ss_create = time.tv_sec;
1126 1.1 mycroft ssp->ss_datasum = cksum(datap, (nblocks - 1) * sizeof(u_long));
1127 1.1 mycroft ssp->ss_sumsum =
1128 1.1 mycroft cksum(&ssp->ss_datasum, LFS_SUMMARY_SIZE - sizeof(ssp->ss_sumsum));
1129 1.1 mycroft free(datap, M_SEGMENT);
1130 1.1 mycroft #ifdef DIAGNOSTIC
1131 1.1 mycroft if (fs->lfs_bfree < fsbtodb(fs, ninos) + LFS_SUMMARY_SIZE / DEV_BSIZE)
1132 1.1 mycroft panic("lfs_writeseg: No diskspace for summary");
1133 1.1 mycroft #endif
1134 1.1 mycroft fs->lfs_bfree -= (fsbtodb(fs, ninos) + LFS_SUMMARY_SIZE / DEV_BSIZE);
1135 1.1 mycroft
1136 1.1 mycroft i_dev = VTOI(fs->lfs_ivnode)->i_dev;
1137 1.15 perseant devvp = VTOI(fs->lfs_ivnode)->i_devvp;
1138 1.15 perseant strategy = devvp->v_op[VOFFSET(vop_strategy)];
1139 1.1 mycroft
1140 1.1 mycroft /*
1141 1.1 mycroft * When we simply write the blocks we lose a rotation for every block
1142 1.1 mycroft * written. To avoid this problem, we allocate memory in chunks, copy
1143 1.15 perseant * the buffers into the chunk and write the chunk. CHUNKSIZE is the
1144 1.1 mycroft * largest size I/O devices can handle.
1145 1.1 mycroft * When the data is copied to the chunk, turn off the the B_LOCKED bit
1146 1.1 mycroft * and brelse the buffer (which will move them to the LRU list). Add
1147 1.1 mycroft * the B_CALL flag to the buffer header so we can count I/O's for the
1148 1.1 mycroft * checkpoints and so we can release the allocated memory.
1149 1.1 mycroft *
1150 1.1 mycroft * XXX
1151 1.1 mycroft * This should be removed if the new virtual memory system allows us to
1152 1.1 mycroft * easily make the buffers contiguous in kernel memory and if that's
1153 1.1 mycroft * fast enough.
1154 1.1 mycroft */
1155 1.15 perseant
1156 1.15 perseant #define CHUNKSIZE MAXPHYS
1157 1.15 perseant
1158 1.15 perseant if(devvp==NULL)
1159 1.15 perseant panic("devvp is NULL");
1160 1.15 perseant for (bpp = sp->bpp,i = nblocks; i;) {
1161 1.15 perseant cbp = lfs_newbuf(devvp, (*bpp)->b_blkno, CHUNKSIZE);
1162 1.1 mycroft cbp->b_dev = i_dev;
1163 1.1 mycroft cbp->b_flags |= B_ASYNC | B_BUSY;
1164 1.10 fvdl cbp->b_bcount = 0;
1165 1.1 mycroft
1166 1.17 perseant #ifdef DIAGNOSTIC
1167 1.17 perseant if(datosn(fs,(*bpp)->b_blkno + ((*bpp)->b_bcount - 1)/DEV_BSIZE) != datosn(fs,cbp->b_blkno)) {
1168 1.17 perseant panic("lfs_writeseg: Segment overwrite");
1169 1.17 perseant }
1170 1.17 perseant #endif
1171 1.17 perseant
1172 1.15 perseant if(fs->lfs_iocount >= LFS_THROTTLE) {
1173 1.15 perseant tsleep(&fs->lfs_iocount, PRIBIO+1, "lfs throttle", 0);
1174 1.15 perseant }
1175 1.1 mycroft s = splbio();
1176 1.1 mycroft ++fs->lfs_iocount;
1177 1.15 perseant #ifdef LFS_TRACK_IOS
1178 1.15 perseant for(j=0;j<LFS_THROTTLE;j++) {
1179 1.15 perseant if(fs->lfs_pending[j]==LFS_UNUSED_DADDR) {
1180 1.15 perseant fs->lfs_pending[j] = cbp->b_blkno;
1181 1.15 perseant break;
1182 1.15 perseant }
1183 1.15 perseant }
1184 1.15 perseant #endif /* LFS_TRACK_IOS */
1185 1.15 perseant for (p = cbp->b_data; i && cbp->b_bcount < CHUNKSIZE; i--) {
1186 1.10 fvdl bp = *bpp;
1187 1.15 perseant
1188 1.15 perseant if (bp->b_bcount > (CHUNKSIZE - cbp->b_bcount))
1189 1.10 fvdl break;
1190 1.10 fvdl
1191 1.1 mycroft /*
1192 1.1 mycroft * Fake buffers from the cleaner are marked as B_INVAL.
1193 1.1 mycroft * We need to copy the data from user space rather than
1194 1.1 mycroft * from the buffer indicated.
1195 1.1 mycroft * XXX == what do I do on an error?
1196 1.1 mycroft */
1197 1.15 perseant if ((bp->b_flags & (B_CALL|B_INVAL)) == (B_CALL|B_INVAL)) {
1198 1.1 mycroft if (copyin(bp->b_saveaddr, p, bp->b_bcount))
1199 1.15 perseant panic("lfs_writeseg: copyin failed [2]");
1200 1.1 mycroft } else
1201 1.1 mycroft bcopy(bp->b_data, p, bp->b_bcount);
1202 1.1 mycroft p += bp->b_bcount;
1203 1.10 fvdl cbp->b_bcount += bp->b_bcount;
1204 1.15 perseant if (bp->b_flags & B_LOCKED) {
1205 1.1 mycroft --locked_queue_count;
1206 1.15 perseant locked_queue_bytes -= bp->b_bufsize;
1207 1.15 perseant }
1208 1.1 mycroft bp->b_flags &= ~(B_ERROR | B_READ | B_DELWRI |
1209 1.15 perseant B_LOCKED | B_GATHERED);
1210 1.15 perseant vn = bp->b_vp;
1211 1.1 mycroft if (bp->b_flags & B_CALL) {
1212 1.1 mycroft /* if B_CALL, it was created with newbuf */
1213 1.15 perseant lfs_freebuf(bp);
1214 1.1 mycroft } else {
1215 1.1 mycroft bremfree(bp);
1216 1.1 mycroft bp->b_flags |= B_DONE;
1217 1.15 perseant if(vn)
1218 1.15 perseant reassignbuf(bp, vn);
1219 1.1 mycroft brelse(bp);
1220 1.1 mycroft }
1221 1.15 perseant if(bp->b_flags & B_NEEDCOMMIT) { /* XXX */
1222 1.15 perseant bp->b_flags &= ~B_NEEDCOMMIT;
1223 1.15 perseant wakeup(bp);
1224 1.15 perseant }
1225 1.15 perseant bpp++;
1226 1.1 mycroft }
1227 1.1 mycroft ++cbp->b_vp->v_numoutput;
1228 1.1 mycroft splx(s);
1229 1.1 mycroft /*
1230 1.1 mycroft * XXXX This is a gross and disgusting hack. Since these
1231 1.1 mycroft * buffers are physically addressed, they hang off the
1232 1.1 mycroft * device vnode (devvp). As a result, they have no way
1233 1.1 mycroft * of getting to the LFS superblock or lfs structure to
1234 1.1 mycroft * keep track of the number of I/O's pending. So, I am
1235 1.1 mycroft * going to stuff the fs into the saveaddr field of
1236 1.1 mycroft * the buffer (yuk).
1237 1.1 mycroft */
1238 1.1 mycroft cbp->b_saveaddr = (caddr_t)fs;
1239 1.1 mycroft vop_strategy_a.a_desc = VDESC(vop_strategy);
1240 1.1 mycroft vop_strategy_a.a_bp = cbp;
1241 1.1 mycroft (strategy)(&vop_strategy_a);
1242 1.1 mycroft }
1243 1.1 mycroft /*
1244 1.1 mycroft * XXX
1245 1.1 mycroft * Vinvalbuf can move locked buffers off the locked queue
1246 1.1 mycroft * and we have no way of knowing about this. So, after
1247 1.15 perseant * doing a big write, we recalculate how many buffers are
1248 1.1 mycroft * really still left on the locked queue.
1249 1.1 mycroft */
1250 1.15 perseant lfs_countlocked(&locked_queue_count,&locked_queue_bytes);
1251 1.1 mycroft wakeup(&locked_queue_count);
1252 1.15 perseant if(lfs_dostats) {
1253 1.15 perseant ++lfs_stats.psegwrites;
1254 1.15 perseant lfs_stats.blocktot += nblocks - 1;
1255 1.15 perseant if (fs->lfs_sp->seg_flags & SEGM_SYNC)
1256 1.15 perseant ++lfs_stats.psyncwrites;
1257 1.15 perseant if (fs->lfs_sp->seg_flags & SEGM_CLEAN) {
1258 1.15 perseant ++lfs_stats.pcleanwrites;
1259 1.15 perseant lfs_stats.cleanblocks += nblocks - 1;
1260 1.15 perseant }
1261 1.1 mycroft }
1262 1.1 mycroft return (lfs_initseg(fs) || do_again);
1263 1.1 mycroft }
1264 1.1 mycroft
1265 1.1 mycroft void
1266 1.15 perseant lfs_writesuper(fs, daddr)
1267 1.1 mycroft struct lfs *fs;
1268 1.15 perseant daddr_t daddr;
1269 1.1 mycroft {
1270 1.1 mycroft struct buf *bp;
1271 1.1 mycroft dev_t i_dev;
1272 1.4 christos int (*strategy) __P((void *));
1273 1.1 mycroft int s;
1274 1.1 mycroft struct vop_strategy_args vop_strategy_a;
1275 1.1 mycroft
1276 1.15 perseant #ifdef LFS_CANNOT_ROLLFW
1277 1.15 perseant /*
1278 1.15 perseant * If we can write one superblock while another is in
1279 1.15 perseant * progress, we risk not having a complete checkpoint if we crash.
1280 1.15 perseant * So, block here if a superblock write is in progress.
1281 1.15 perseant *
1282 1.15 perseant * XXX - should be a proper lock, not this hack
1283 1.15 perseant */
1284 1.15 perseant while(fs->lfs_sbactive) {
1285 1.15 perseant tsleep(&fs->lfs_sbactive, PRIBIO+1, "lfs sb", 0);
1286 1.15 perseant }
1287 1.15 perseant fs->lfs_sbactive = daddr;
1288 1.15 perseant #endif
1289 1.1 mycroft i_dev = VTOI(fs->lfs_ivnode)->i_dev;
1290 1.1 mycroft strategy = VTOI(fs->lfs_ivnode)->i_devvp->v_op[VOFFSET(vop_strategy)];
1291 1.1 mycroft
1292 1.15 perseant /* Set timestamp of this version of the superblock */
1293 1.15 perseant fs->lfs_tstamp = time.tv_sec;
1294 1.15 perseant
1295 1.1 mycroft /* Checksum the superblock and copy it into a buffer. */
1296 1.12 pk fs->lfs_cksum = lfs_sb_cksum(&(fs->lfs_dlfs));
1297 1.15 perseant bp = lfs_newbuf(VTOI(fs->lfs_ivnode)->i_devvp, daddr, LFS_SBPAD);
1298 1.12 pk *(struct dlfs *)bp->b_data = fs->lfs_dlfs;
1299 1.15 perseant
1300 1.1 mycroft bp->b_dev = i_dev;
1301 1.1 mycroft bp->b_flags |= B_BUSY | B_CALL | B_ASYNC;
1302 1.1 mycroft bp->b_flags &= ~(B_DONE | B_ERROR | B_READ | B_DELWRI);
1303 1.1 mycroft bp->b_iodone = lfs_supercallback;
1304 1.15 perseant /* XXX KS - same nasty hack as above */
1305 1.15 perseant bp->b_saveaddr = (caddr_t)fs;
1306 1.15 perseant
1307 1.1 mycroft vop_strategy_a.a_desc = VDESC(vop_strategy);
1308 1.1 mycroft vop_strategy_a.a_bp = bp;
1309 1.1 mycroft s = splbio();
1310 1.1 mycroft ++bp->b_vp->v_numoutput;
1311 1.1 mycroft splx(s);
1312 1.1 mycroft (strategy)(&vop_strategy_a);
1313 1.1 mycroft }
1314 1.1 mycroft
1315 1.1 mycroft /*
1316 1.1 mycroft * Logical block number match routines used when traversing the dirty block
1317 1.1 mycroft * chain.
1318 1.1 mycroft */
1319 1.1 mycroft int
1320 1.15 perseant lfs_match_fake(fs, bp)
1321 1.15 perseant struct lfs *fs;
1322 1.15 perseant struct buf *bp;
1323 1.15 perseant {
1324 1.15 perseant return (bp->b_flags & (B_CALL|B_INVAL))==(B_CALL|B_INVAL);
1325 1.15 perseant }
1326 1.15 perseant
1327 1.15 perseant int
1328 1.1 mycroft lfs_match_data(fs, bp)
1329 1.1 mycroft struct lfs *fs;
1330 1.1 mycroft struct buf *bp;
1331 1.1 mycroft {
1332 1.1 mycroft return (bp->b_lblkno >= 0);
1333 1.1 mycroft }
1334 1.1 mycroft
1335 1.1 mycroft int
1336 1.1 mycroft lfs_match_indir(fs, bp)
1337 1.1 mycroft struct lfs *fs;
1338 1.1 mycroft struct buf *bp;
1339 1.1 mycroft {
1340 1.1 mycroft int lbn;
1341 1.1 mycroft
1342 1.1 mycroft lbn = bp->b_lblkno;
1343 1.1 mycroft return (lbn < 0 && (-lbn - NDADDR) % NINDIR(fs) == 0);
1344 1.1 mycroft }
1345 1.1 mycroft
1346 1.1 mycroft int
1347 1.1 mycroft lfs_match_dindir(fs, bp)
1348 1.1 mycroft struct lfs *fs;
1349 1.1 mycroft struct buf *bp;
1350 1.1 mycroft {
1351 1.1 mycroft int lbn;
1352 1.1 mycroft
1353 1.1 mycroft lbn = bp->b_lblkno;
1354 1.1 mycroft return (lbn < 0 && (-lbn - NDADDR) % NINDIR(fs) == 1);
1355 1.1 mycroft }
1356 1.1 mycroft
1357 1.1 mycroft int
1358 1.1 mycroft lfs_match_tindir(fs, bp)
1359 1.1 mycroft struct lfs *fs;
1360 1.1 mycroft struct buf *bp;
1361 1.1 mycroft {
1362 1.1 mycroft int lbn;
1363 1.1 mycroft
1364 1.1 mycroft lbn = bp->b_lblkno;
1365 1.1 mycroft return (lbn < 0 && (-lbn - NDADDR) % NINDIR(fs) == 2);
1366 1.1 mycroft }
1367 1.1 mycroft
1368 1.1 mycroft /*
1369 1.15 perseant * XXX - The only buffers that are going to hit these functions are the
1370 1.15 perseant * segment write blocks, or the segment summaries, or the superblocks.
1371 1.15 perseant *
1372 1.15 perseant * All of the above are created by lfs_newbuf, and so do not need to be
1373 1.15 perseant * released via brelse.
1374 1.1 mycroft */
1375 1.1 mycroft void
1376 1.1 mycroft lfs_callback(bp)
1377 1.1 mycroft struct buf *bp;
1378 1.1 mycroft {
1379 1.1 mycroft struct lfs *fs;
1380 1.15 perseant #ifdef LFS_TRACK_IOS
1381 1.15 perseant int j;
1382 1.15 perseant #endif
1383 1.1 mycroft
1384 1.1 mycroft fs = (struct lfs *)bp->b_saveaddr;
1385 1.1 mycroft #ifdef DIAGNOSTIC
1386 1.1 mycroft if (fs->lfs_iocount == 0)
1387 1.1 mycroft panic("lfs_callback: zero iocount\n");
1388 1.1 mycroft #endif
1389 1.15 perseant if (--fs->lfs_iocount < LFS_THROTTLE)
1390 1.1 mycroft wakeup(&fs->lfs_iocount);
1391 1.15 perseant #ifdef LFS_TRACK_IOS
1392 1.15 perseant for(j=0;j<LFS_THROTTLE;j++) {
1393 1.15 perseant if(fs->lfs_pending[j]==bp->b_blkno) {
1394 1.15 perseant fs->lfs_pending[j] = LFS_UNUSED_DADDR;
1395 1.15 perseant wakeup(&(fs->lfs_pending[j]));
1396 1.15 perseant break;
1397 1.15 perseant }
1398 1.15 perseant }
1399 1.15 perseant #endif /* LFS_TRACK_IOS */
1400 1.1 mycroft
1401 1.15 perseant lfs_freebuf(bp);
1402 1.1 mycroft }
1403 1.1 mycroft
1404 1.1 mycroft void
1405 1.1 mycroft lfs_supercallback(bp)
1406 1.1 mycroft struct buf *bp;
1407 1.1 mycroft {
1408 1.15 perseant #ifdef LFS_CANNOT_ROLLFW
1409 1.15 perseant struct lfs *fs;
1410 1.15 perseant
1411 1.15 perseant fs = (struct lfs *)bp->b_saveaddr;
1412 1.15 perseant fs->lfs_sbactive=NULL;
1413 1.15 perseant wakeup(&fs->lfs_sbactive);
1414 1.15 perseant #endif
1415 1.15 perseant lfs_freebuf(bp);
1416 1.1 mycroft }
1417 1.1 mycroft
1418 1.1 mycroft /*
1419 1.1 mycroft * Shellsort (diminishing increment sort) from Data Structures and
1420 1.1 mycroft * Algorithms, Aho, Hopcraft and Ullman, 1983 Edition, page 290;
1421 1.1 mycroft * see also Knuth Vol. 3, page 84. The increments are selected from
1422 1.1 mycroft * formula (8), page 95. Roughly O(N^3/2).
1423 1.1 mycroft */
1424 1.1 mycroft /*
1425 1.1 mycroft * This is our own private copy of shellsort because we want to sort
1426 1.1 mycroft * two parallel arrays (the array of buffer pointers and the array of
1427 1.1 mycroft * logical block numbers) simultaneously. Note that we cast the array
1428 1.1 mycroft * of logical block numbers to a unsigned in this routine so that the
1429 1.1 mycroft * negative block numbers (meta data blocks) sort AFTER the data blocks.
1430 1.1 mycroft */
1431 1.15 perseant
1432 1.1 mycroft void
1433 1.1 mycroft lfs_shellsort(bp_array, lb_array, nmemb)
1434 1.1 mycroft struct buf **bp_array;
1435 1.10 fvdl ufs_daddr_t *lb_array;
1436 1.1 mycroft register int nmemb;
1437 1.1 mycroft {
1438 1.1 mycroft static int __rsshell_increments[] = { 4, 1, 0 };
1439 1.1 mycroft register int incr, *incrp, t1, t2;
1440 1.1 mycroft struct buf *bp_temp;
1441 1.1 mycroft u_long lb_temp;
1442 1.1 mycroft
1443 1.4 christos for (incrp = __rsshell_increments; (incr = *incrp++) != 0;)
1444 1.1 mycroft for (t1 = incr; t1 < nmemb; ++t1)
1445 1.1 mycroft for (t2 = t1 - incr; t2 >= 0;)
1446 1.1 mycroft if (lb_array[t2] > lb_array[t2 + incr]) {
1447 1.1 mycroft lb_temp = lb_array[t2];
1448 1.1 mycroft lb_array[t2] = lb_array[t2 + incr];
1449 1.1 mycroft lb_array[t2 + incr] = lb_temp;
1450 1.1 mycroft bp_temp = bp_array[t2];
1451 1.1 mycroft bp_array[t2] = bp_array[t2 + incr];
1452 1.1 mycroft bp_array[t2 + incr] = bp_temp;
1453 1.1 mycroft t2 -= incr;
1454 1.1 mycroft } else
1455 1.1 mycroft break;
1456 1.1 mycroft }
1457 1.1 mycroft
1458 1.1 mycroft /*
1459 1.1 mycroft * Check VXLOCK. Return 1 if the vnode is locked. Otherwise, vget it.
1460 1.1 mycroft */
1461 1.4 christos int
1462 1.1 mycroft lfs_vref(vp)
1463 1.1 mycroft register struct vnode *vp;
1464 1.1 mycroft {
1465 1.15 perseant /*
1466 1.15 perseant * If we return 1 here during a flush, we risk vinvalbuf() not
1467 1.15 perseant * being able to flush all of the pages from this vnode, which
1468 1.15 perseant * will cause it to panic. So, return 0 if a flush is in progress.
1469 1.15 perseant */
1470 1.15 perseant if (vp->v_flag & VXLOCK) {
1471 1.15 perseant if(IS_FLUSHING(VTOI(vp)->i_lfs,vp)) {
1472 1.15 perseant return 0;
1473 1.15 perseant }
1474 1.1 mycroft return(1);
1475 1.15 perseant }
1476 1.1 mycroft return (vget(vp, 0));
1477 1.1 mycroft }
1478 1.1 mycroft
1479 1.10 fvdl /*
1480 1.10 fvdl * This is vrele except that we do not want to VOP_INACTIVE this vnode. We
1481 1.10 fvdl * inline vrele here to avoid the vn_lock and VOP_INACTIVE call at the end.
1482 1.10 fvdl */
1483 1.1 mycroft void
1484 1.1 mycroft lfs_vunref(vp)
1485 1.1 mycroft register struct vnode *vp;
1486 1.1 mycroft {
1487 1.17 perseant /*
1488 1.17 perseant * Analogous to lfs_vref, if the node is flushing, fake it.
1489 1.17 perseant */
1490 1.17 perseant if((vp->v_flag & VXLOCK) && IS_FLUSHING(VTOI(vp)->i_lfs,vp)) {
1491 1.17 perseant return;
1492 1.17 perseant }
1493 1.17 perseant
1494 1.10 fvdl simple_lock(&vp->v_interlock);
1495 1.15 perseant #ifdef DIAGNOSTIC
1496 1.17 perseant if(vp->v_usecount<=0) {
1497 1.17 perseant printf("lfs_vunref: flags are 0x%lx\n", vp->v_flag);
1498 1.17 perseant printf("lfs_vunref: usecount = %d\n", vp->v_usecount);
1499 1.15 perseant panic("lfs_vunref: v_usecount<0");
1500 1.15 perseant }
1501 1.15 perseant #endif
1502 1.10 fvdl vp->v_usecount--;
1503 1.10 fvdl if (vp->v_usecount > 0) {
1504 1.15 perseant simple_unlock(&vp->v_interlock);
1505 1.15 perseant return;
1506 1.15 perseant }
1507 1.15 perseant
1508 1.15 perseant /*
1509 1.10 fvdl * insert at tail of LRU list
1510 1.1 mycroft */
1511 1.10 fvdl simple_lock(&vnode_free_list_slock);
1512 1.10 fvdl TAILQ_INSERT_TAIL(&vnode_free_list, vp, v_freelist);
1513 1.10 fvdl simple_unlock(&vnode_free_list_slock);
1514 1.10 fvdl simple_unlock(&vp->v_interlock);
1515 1.1 mycroft }
1516 1.15 perseant
1517 1.15 perseant /*
1518 1.15 perseant * We use this when we have vnodes that were loaded in solely for cleaning.
1519 1.15 perseant * There is no reason to believe that these vnodes will be referenced again
1520 1.15 perseant * soon, since the cleaning process is unrelated to normal filesystem
1521 1.15 perseant * activity. Putting cleaned vnodes at the tail of the list has the effect
1522 1.15 perseant * of flushing the vnode LRU. So, put vnodes that were loaded only for
1523 1.15 perseant * cleaning at the head of the list, instead.
1524 1.15 perseant */
1525 1.15 perseant void
1526 1.15 perseant lfs_vunref_head(vp)
1527 1.15 perseant register struct vnode *vp;
1528 1.15 perseant {
1529 1.15 perseant simple_lock(&vp->v_interlock);
1530 1.15 perseant #ifdef DIAGNOSTIC
1531 1.15 perseant if(vp->v_usecount==0) {
1532 1.15 perseant panic("lfs_vunref: v_usecount<0");
1533 1.15 perseant }
1534 1.15 perseant #endif
1535 1.15 perseant vp->v_usecount--;
1536 1.15 perseant if (vp->v_usecount > 0) {
1537 1.15 perseant simple_unlock(&vp->v_interlock);
1538 1.15 perseant return;
1539 1.15 perseant }
1540 1.15 perseant /*
1541 1.15 perseant * insert at head of LRU list
1542 1.15 perseant */
1543 1.15 perseant simple_lock(&vnode_free_list_slock);
1544 1.15 perseant TAILQ_INSERT_HEAD(&vnode_free_list, vp, v_freelist);
1545 1.15 perseant simple_unlock(&vnode_free_list_slock);
1546 1.15 perseant simple_unlock(&vp->v_interlock);
1547 1.15 perseant }
1548 1.15 perseant
1549