lfs_syscalls.c revision 1.158 1 1.158 hannken /* $NetBSD: lfs_syscalls.c,v 1.158 2015/05/31 15:44:31 hannken Exp $ */
2 1.3 cgd
3 1.1 mycroft /*-
4 1.129 ad * Copyright (c) 1999, 2000, 2001, 2002, 2003, 2007, 2007, 2008
5 1.128 ad * The NetBSD Foundation, Inc.
6 1.22 perseant * All rights reserved.
7 1.22 perseant *
8 1.22 perseant * This code is derived from software contributed to The NetBSD Foundation
9 1.22 perseant * by Konrad E. Schroder <perseant (at) hhhh.org>.
10 1.22 perseant *
11 1.22 perseant * Redistribution and use in source and binary forms, with or without
12 1.22 perseant * modification, are permitted provided that the following conditions
13 1.22 perseant * are met:
14 1.22 perseant * 1. Redistributions of source code must retain the above copyright
15 1.22 perseant * notice, this list of conditions and the following disclaimer.
16 1.22 perseant * 2. Redistributions in binary form must reproduce the above copyright
17 1.22 perseant * notice, this list of conditions and the following disclaimer in the
18 1.22 perseant * documentation and/or other materials provided with the distribution.
19 1.22 perseant *
20 1.22 perseant * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.22 perseant * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.22 perseant * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.22 perseant * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.22 perseant * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.22 perseant * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.22 perseant * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.22 perseant * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.22 perseant * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.22 perseant * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.22 perseant * POSSIBILITY OF SUCH DAMAGE.
31 1.22 perseant */
32 1.22 perseant /*-
33 1.1 mycroft * Copyright (c) 1991, 1993, 1994
34 1.1 mycroft * The Regents of the University of California. All rights reserved.
35 1.1 mycroft *
36 1.1 mycroft * Redistribution and use in source and binary forms, with or without
37 1.1 mycroft * modification, are permitted provided that the following conditions
38 1.1 mycroft * are met:
39 1.1 mycroft * 1. Redistributions of source code must retain the above copyright
40 1.1 mycroft * notice, this list of conditions and the following disclaimer.
41 1.1 mycroft * 2. Redistributions in binary form must reproduce the above copyright
42 1.1 mycroft * notice, this list of conditions and the following disclaimer in the
43 1.1 mycroft * documentation and/or other materials provided with the distribution.
44 1.97 agc * 3. Neither the name of the University nor the names of its contributors
45 1.1 mycroft * may be used to endorse or promote products derived from this software
46 1.1 mycroft * without specific prior written permission.
47 1.1 mycroft *
48 1.1 mycroft * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
49 1.1 mycroft * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
50 1.1 mycroft * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
51 1.1 mycroft * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
52 1.1 mycroft * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
53 1.1 mycroft * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
54 1.1 mycroft * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
55 1.1 mycroft * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
56 1.1 mycroft * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
57 1.1 mycroft * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
58 1.1 mycroft * SUCH DAMAGE.
59 1.1 mycroft *
60 1.16 fvdl * @(#)lfs_syscalls.c 8.10 (Berkeley) 5/14/95
61 1.1 mycroft */
62 1.61 lukem
63 1.61 lukem #include <sys/cdefs.h>
64 1.158 hannken __KERNEL_RCSID(0, "$NetBSD: lfs_syscalls.c,v 1.158 2015/05/31 15:44:31 hannken Exp $");
65 1.15 thorpej
66 1.86 perseant #ifndef LFS
67 1.86 perseant # define LFS /* for prototypes in syscallargs.h */
68 1.86 perseant #endif
69 1.1 mycroft
70 1.1 mycroft #include <sys/param.h>
71 1.5 cgd #include <sys/systm.h>
72 1.1 mycroft #include <sys/proc.h>
73 1.1 mycroft #include <sys/buf.h>
74 1.1 mycroft #include <sys/mount.h>
75 1.1 mycroft #include <sys/vnode.h>
76 1.1 mycroft #include <sys/kernel.h>
77 1.113 elad #include <sys/kauth.h>
78 1.5 cgd #include <sys/syscallargs.h>
79 1.5 cgd
80 1.145 dholland #include <ufs/lfs/ulfs_inode.h>
81 1.145 dholland #include <ufs/lfs/ulfsmount.h>
82 1.145 dholland #include <ufs/lfs/ulfs_extern.h>
83 1.1 mycroft
84 1.1 mycroft #include <ufs/lfs/lfs.h>
85 1.148 dholland #include <ufs/lfs/lfs_kernel.h>
86 1.1 mycroft #include <ufs/lfs/lfs_extern.h>
87 1.10 christos
88 1.122 christos struct buf *lfs_fakebuf(struct lfs *, struct vnode *, int, size_t, void *);
89 1.74 yamt int lfs_fasthashget(dev_t, ino_t, struct vnode **);
90 1.1 mycroft
91 1.22 perseant pid_t lfs_cleaner_pid = 0;
92 1.80 perseant
93 1.1 mycroft /*
94 1.31 christos * sys_lfs_markv:
95 1.1 mycroft *
96 1.1 mycroft * This will mark inodes and blocks dirty, so they are written into the log.
97 1.1 mycroft * It will block until all the blocks have been written. The segment create
98 1.1 mycroft * time passed in the block_info and inode_info structures is used to decide
99 1.1 mycroft * if the data is valid for each block (in case some process dirtied a block
100 1.1 mycroft * or inode that is being cleaned between the determination that a block is
101 1.1 mycroft * live and the lfs_markv call).
102 1.1 mycroft *
103 1.1 mycroft * 0 on success
104 1.1 mycroft * -1/errno is return on error.
105 1.1 mycroft */
106 1.57 perseant #ifdef USE_64BIT_SYSCALLS
107 1.1 mycroft int
108 1.125 dsl sys_lfs_markv(struct lwp *l, const struct sys_lfs_markv_args *uap, register_t *retval)
109 1.9 thorpej {
110 1.125 dsl /* {
111 1.5 cgd syscallarg(fsid_t *) fsidp;
112 1.5 cgd syscallarg(struct block_info *) blkiov;
113 1.5 cgd syscallarg(int) blkcnt;
114 1.125 dsl } */
115 1.57 perseant BLOCK_INFO *blkiov;
116 1.57 perseant int blkcnt, error;
117 1.57 perseant fsid_t fsid;
118 1.105 perseant struct lfs *fs;
119 1.105 perseant struct mount *mntp;
120 1.57 perseant
121 1.142 elad error = kauth_authorize_system(l->l_cred, KAUTH_SYSTEM_LFS,
122 1.142 elad KAUTH_REQ_SYSTEM_LFS_MARKV, NULL, NULL, NULL);
123 1.142 elad if (error)
124 1.57 perseant return (error);
125 1.102 perry
126 1.57 perseant if ((error = copyin(SCARG(uap, fsidp), &fsid, sizeof(fsid_t))) != 0)
127 1.57 perseant return (error);
128 1.57 perseant
129 1.105 perseant if ((mntp = vfs_getvfs(fsidp)) == NULL)
130 1.105 perseant return (ENOENT);
131 1.146 dholland fs = VFSTOULFS(mntp)->um_lfs;
132 1.105 perseant
133 1.57 perseant blkcnt = SCARG(uap, blkcnt);
134 1.84 perseant if ((u_int) blkcnt > LFS_MARKV_MAXBLKCNT)
135 1.58 jdolecek return (EINVAL);
136 1.58 jdolecek
137 1.129 ad KERNEL_LOCK(1, NULL);
138 1.105 perseant blkiov = lfs_malloc(fs, blkcnt * sizeof(BLOCK_INFO), LFS_NB_BLKIOV);
139 1.57 perseant if ((error = copyin(SCARG(uap, blkiov), blkiov,
140 1.57 perseant blkcnt * sizeof(BLOCK_INFO))) != 0)
141 1.57 perseant goto out;
142 1.57 perseant
143 1.57 perseant if ((error = lfs_markv(p, &fsid, blkiov, blkcnt)) == 0)
144 1.57 perseant copyout(blkiov, SCARG(uap, blkiov),
145 1.57 perseant blkcnt * sizeof(BLOCK_INFO));
146 1.57 perseant out:
147 1.105 perseant lfs_free(fs, blkiov, LFS_NB_BLKIOV);
148 1.129 ad KERNEL_UNLOCK_ONE(NULL);
149 1.57 perseant return error;
150 1.57 perseant }
151 1.57 perseant #else
152 1.57 perseant int
153 1.125 dsl sys_lfs_markv(struct lwp *l, const struct sys_lfs_markv_args *uap, register_t *retval)
154 1.57 perseant {
155 1.125 dsl /* {
156 1.57 perseant syscallarg(fsid_t *) fsidp;
157 1.57 perseant syscallarg(struct block_info *) blkiov;
158 1.57 perseant syscallarg(int) blkcnt;
159 1.125 dsl } */
160 1.57 perseant BLOCK_INFO *blkiov;
161 1.57 perseant BLOCK_INFO_15 *blkiov15;
162 1.57 perseant int i, blkcnt, error;
163 1.57 perseant fsid_t fsid;
164 1.105 perseant struct lfs *fs;
165 1.105 perseant struct mount *mntp;
166 1.57 perseant
167 1.142 elad error = kauth_authorize_system(l->l_cred, KAUTH_SYSTEM_LFS,
168 1.142 elad KAUTH_REQ_SYSTEM_LFS_MARKV, NULL, NULL, NULL);
169 1.142 elad if (error)
170 1.57 perseant return (error);
171 1.102 perry
172 1.57 perseant if ((error = copyin(SCARG(uap, fsidp), &fsid, sizeof(fsid_t))) != 0)
173 1.57 perseant return (error);
174 1.57 perseant
175 1.105 perseant if ((mntp = vfs_getvfs(&fsid)) == NULL)
176 1.105 perseant return (ENOENT);
177 1.146 dholland fs = VFSTOULFS(mntp)->um_lfs;
178 1.105 perseant
179 1.57 perseant blkcnt = SCARG(uap, blkcnt);
180 1.84 perseant if ((u_int) blkcnt > LFS_MARKV_MAXBLKCNT)
181 1.58 jdolecek return (EINVAL);
182 1.58 jdolecek
183 1.129 ad KERNEL_LOCK(1, NULL);
184 1.105 perseant blkiov = lfs_malloc(fs, blkcnt * sizeof(BLOCK_INFO), LFS_NB_BLKIOV);
185 1.105 perseant blkiov15 = lfs_malloc(fs, blkcnt * sizeof(BLOCK_INFO_15), LFS_NB_BLKIOV);
186 1.57 perseant if ((error = copyin(SCARG(uap, blkiov), blkiov15,
187 1.57 perseant blkcnt * sizeof(BLOCK_INFO_15))) != 0)
188 1.57 perseant goto out;
189 1.57 perseant
190 1.57 perseant for (i = 0; i < blkcnt; i++) {
191 1.57 perseant blkiov[i].bi_inode = blkiov15[i].bi_inode;
192 1.57 perseant blkiov[i].bi_lbn = blkiov15[i].bi_lbn;
193 1.57 perseant blkiov[i].bi_daddr = blkiov15[i].bi_daddr;
194 1.57 perseant blkiov[i].bi_segcreate = blkiov15[i].bi_segcreate;
195 1.57 perseant blkiov[i].bi_version = blkiov15[i].bi_version;
196 1.82 perseant blkiov[i].bi_bp = blkiov15[i].bi_bp;
197 1.57 perseant blkiov[i].bi_size = blkiov15[i].bi_size;
198 1.57 perseant }
199 1.57 perseant
200 1.115 ad if ((error = lfs_markv(l->l_proc, &fsid, blkiov, blkcnt)) == 0) {
201 1.57 perseant for (i = 0; i < blkcnt; i++) {
202 1.82 perseant blkiov15[i].bi_inode = blkiov[i].bi_inode;
203 1.82 perseant blkiov15[i].bi_lbn = blkiov[i].bi_lbn;
204 1.82 perseant blkiov15[i].bi_daddr = blkiov[i].bi_daddr;
205 1.57 perseant blkiov15[i].bi_segcreate = blkiov[i].bi_segcreate;
206 1.82 perseant blkiov15[i].bi_version = blkiov[i].bi_version;
207 1.82 perseant blkiov15[i].bi_bp = blkiov[i].bi_bp;
208 1.82 perseant blkiov15[i].bi_size = blkiov[i].bi_size;
209 1.57 perseant }
210 1.57 perseant copyout(blkiov15, SCARG(uap, blkiov),
211 1.57 perseant blkcnt * sizeof(BLOCK_INFO_15));
212 1.57 perseant }
213 1.57 perseant out:
214 1.105 perseant lfs_free(fs, blkiov, LFS_NB_BLKIOV);
215 1.105 perseant lfs_free(fs, blkiov15, LFS_NB_BLKIOV);
216 1.129 ad KERNEL_UNLOCK_ONE(NULL);
217 1.57 perseant return error;
218 1.57 perseant }
219 1.57 perseant #endif
220 1.57 perseant
221 1.77 yamt #define LFS_MARKV_MAX_BLOCKS (LFS_MAX_BUFS)
222 1.77 yamt
223 1.84 perseant int
224 1.118 christos lfs_markv(struct proc *p, fsid_t *fsidp, BLOCK_INFO *blkiov,
225 1.117 christos int blkcnt)
226 1.57 perseant {
227 1.1 mycroft BLOCK_INFO *blkp;
228 1.1 mycroft IFILE *ifp;
229 1.96 yamt struct buf *bp;
230 1.10 christos struct inode *ip = NULL;
231 1.1 mycroft struct lfs *fs;
232 1.1 mycroft struct mount *mntp;
233 1.110 rtr struct vnode *vp = NULL;
234 1.1 mycroft ino_t lastino;
235 1.79 fvdl daddr_t b_daddr, v_daddr;
236 1.74 yamt int cnt, error;
237 1.62 chs int do_again = 0;
238 1.74 yamt int numrefed = 0;
239 1.49 perseant ino_t maxino;
240 1.69 perseant size_t obsize;
241 1.1 mycroft
242 1.77 yamt /* number of blocks/inodes that we have already bwrite'ed */
243 1.77 yamt int nblkwritten, ninowritten;
244 1.77 yamt
245 1.57 perseant if ((mntp = vfs_getvfs(fsidp)) == NULL)
246 1.53 perseant return (ENOENT);
247 1.1 mycroft
248 1.146 dholland fs = VFSTOULFS(mntp)->um_lfs;
249 1.96 yamt
250 1.96 yamt if (fs->lfs_ronly)
251 1.96 yamt return EROFS;
252 1.96 yamt
253 1.147 christos maxino = (lfs_fragstoblks(fs, VTOI(fs->lfs_ivnode)->i_ffs1_blocks) -
254 1.49 perseant fs->lfs_cleansz - fs->lfs_segtabsz) * fs->lfs_ifpb;
255 1.49 perseant
256 1.57 perseant cnt = blkcnt;
257 1.102 perry
258 1.132 ad if ((error = vfs_busy(mntp, NULL)) != 0)
259 1.53 perseant return (error);
260 1.53 perseant
261 1.22 perseant /*
262 1.22 perseant * This seglock is just to prevent the fact that we might have to sleep
263 1.22 perseant * from allowing the possibility that our blocks might become
264 1.22 perseant * invalid.
265 1.22 perseant *
266 1.22 perseant * It is also important to note here that unless we specify SEGM_CKP,
267 1.22 perseant * any Ifile blocks that we might be asked to clean will never get
268 1.22 perseant * to the disk.
269 1.22 perseant */
270 1.67 perseant lfs_seglock(fs, SEGM_CLEAN | SEGM_CKP | SEGM_SYNC);
271 1.102 perry
272 1.1 mycroft /* Mark blocks/inodes dirty. */
273 1.1 mycroft error = 0;
274 1.1 mycroft
275 1.22 perseant /* these were inside the initialization for the for loop */
276 1.22 perseant v_daddr = LFS_UNUSED_DADDR;
277 1.22 perseant lastino = LFS_UNUSED_INUM;
278 1.77 yamt nblkwritten = ninowritten = 0;
279 1.57 perseant for (blkp = blkiov; cnt--; ++blkp)
280 1.22 perseant {
281 1.49 perseant /* Bounds-check incoming data, avoid panic for failed VGET */
282 1.49 perseant if (blkp->bi_inode <= 0 || blkp->bi_inode >= maxino) {
283 1.49 perseant error = EINVAL;
284 1.96 yamt goto err3;
285 1.49 perseant }
286 1.1 mycroft /*
287 1.1 mycroft * Get the IFILE entry (only once) and see if the file still
288 1.1 mycroft * exists.
289 1.1 mycroft */
290 1.1 mycroft if (lastino != blkp->bi_inode) {
291 1.22 perseant /*
292 1.22 perseant * Finish the old file, if there was one. The presence
293 1.22 perseant * of a usable vnode in vp is signaled by a valid v_daddr.
294 1.22 perseant */
295 1.62 chs if (v_daddr != LFS_UNUSED_DADDR) {
296 1.1 mycroft lfs_vunref(vp);
297 1.22 perseant numrefed--;
298 1.1 mycroft }
299 1.1 mycroft
300 1.22 perseant /*
301 1.22 perseant * Start a new file
302 1.22 perseant */
303 1.1 mycroft lastino = blkp->bi_inode;
304 1.1 mycroft if (blkp->bi_inode == LFS_IFILE_INUM)
305 1.1 mycroft v_daddr = fs->lfs_idaddr;
306 1.1 mycroft else {
307 1.1 mycroft LFS_IENTRY(ifp, fs, blkp->bi_inode, bp);
308 1.22 perseant /* XXX fix for force write */
309 1.1 mycroft v_daddr = ifp->if_daddr;
310 1.123 ad brelse(bp, 0);
311 1.1 mycroft }
312 1.112 perseant if (v_daddr == LFS_UNUSED_DADDR)
313 1.1 mycroft continue;
314 1.1 mycroft
315 1.1 mycroft /* Get the vnode/inode. */
316 1.102 perry error = lfs_fastvget(mntp, blkp->bi_inode, v_daddr,
317 1.22 perseant &vp,
318 1.62 chs (blkp->bi_lbn == LFS_UNUSED_LBN
319 1.22 perseant ? blkp->bi_bp
320 1.74 yamt : NULL));
321 1.22 perseant
322 1.62 chs if (!error) {
323 1.22 perseant numrefed++;
324 1.22 perseant }
325 1.62 chs if (error) {
326 1.103 perseant DLOG((DLOG_CLEAN, "lfs_markv: lfs_fastvget"
327 1.103 perseant " failed with %d (ino %d, segment %d)\n",
328 1.103 perseant error, blkp->bi_inode,
329 1.147 christos lfs_dtosn(fs, blkp->bi_daddr)));
330 1.22 perseant /*
331 1.22 perseant * If we got EAGAIN, that means that the
332 1.22 perseant * Inode was locked. This is
333 1.22 perseant * recoverable: just clean the rest of
334 1.22 perseant * this segment, and let the cleaner try
335 1.82 perseant * again with another. (When the
336 1.22 perseant * cleaner runs again, this segment will
337 1.22 perseant * sort high on the list, since it is
338 1.22 perseant * now almost entirely empty.) But, we
339 1.22 perseant * still set v_daddr = LFS_UNUSED_ADDR
340 1.22 perseant * so as not to test this over and over
341 1.22 perseant * again.
342 1.22 perseant */
343 1.62 chs if (error == EAGAIN) {
344 1.22 perseant error = 0;
345 1.22 perseant do_again++;
346 1.22 perseant }
347 1.22 perseant #ifdef DIAGNOSTIC
348 1.62 chs else if (error != ENOENT)
349 1.22 perseant panic("lfs_markv VFS_VGET FAILED");
350 1.1 mycroft #endif
351 1.22 perseant /* lastino = LFS_UNUSED_INUM; */
352 1.1 mycroft v_daddr = LFS_UNUSED_DADDR;
353 1.22 perseant vp = NULL;
354 1.22 perseant ip = NULL;
355 1.1 mycroft continue;
356 1.19 pk }
357 1.1 mycroft ip = VTOI(vp);
358 1.77 yamt ninowritten++;
359 1.22 perseant } else if (v_daddr == LFS_UNUSED_DADDR) {
360 1.22 perseant /*
361 1.22 perseant * This can only happen if the vnode is dead (or
362 1.22 perseant * in any case we can't get it...e.g., it is
363 1.22 perseant * inlocked). Keep going.
364 1.22 perseant */
365 1.1 mycroft continue;
366 1.22 perseant }
367 1.22 perseant
368 1.22 perseant /* Past this point we are guaranteed that vp, ip are valid. */
369 1.1 mycroft
370 1.124 ad /* Can't clean VU_DIROP directories in case of truncation */
371 1.116 perseant /* XXX - maybe we should mark removed dirs specially? */
372 1.124 ad if (vp->v_type == VDIR && (vp->v_uflag & VU_DIROP)) {
373 1.116 perseant do_again++;
374 1.116 perseant continue;
375 1.116 perseant }
376 1.116 perseant
377 1.1 mycroft /* If this BLOCK_INFO didn't contain a block, keep going. */
378 1.22 perseant if (blkp->bi_lbn == LFS_UNUSED_LBN) {
379 1.22 perseant /* XXX need to make sure that the inode gets written in this case */
380 1.22 perseant /* XXX but only write the inode if it's the right one */
381 1.53 perseant if (blkp->bi_inode != LFS_IFILE_INUM) {
382 1.53 perseant LFS_IENTRY(ifp, fs, blkp->bi_inode, bp);
383 1.126 ad if (ifp->if_daddr == blkp->bi_daddr) {
384 1.126 ad mutex_enter(&lfs_lock);
385 1.47 perseant LFS_SET_UINO(ip, IN_CLEANING);
386 1.126 ad mutex_exit(&lfs_lock);
387 1.126 ad }
388 1.123 ad brelse(bp, 0);
389 1.53 perseant }
390 1.1 mycroft continue;
391 1.22 perseant }
392 1.22 perseant
393 1.22 perseant b_daddr = 0;
394 1.112 perseant if (VOP_BMAP(vp, blkp->bi_lbn, NULL, &b_daddr, NULL) ||
395 1.147 christos LFS_DBTOFSB(fs, b_daddr) != blkp->bi_daddr)
396 1.112 perseant {
397 1.147 christos if (lfs_dtosn(fs, LFS_DBTOFSB(fs, b_daddr)) ==
398 1.147 christos lfs_dtosn(fs, blkp->bi_daddr))
399 1.22 perseant {
400 1.112 perseant DLOG((DLOG_CLEAN, "lfs_markv: wrong da same seg: %llx vs %llx\n",
401 1.147 christos (long long)blkp->bi_daddr, (long long)LFS_DBTOFSB(fs, b_daddr)));
402 1.22 perseant }
403 1.112 perseant do_again++;
404 1.112 perseant continue;
405 1.22 perseant }
406 1.69 perseant
407 1.69 perseant /*
408 1.69 perseant * Check block sizes. The blocks being cleaned come from
409 1.69 perseant * disk, so they should have the same size as their on-disk
410 1.69 perseant * counterparts.
411 1.69 perseant */
412 1.72 yamt if (blkp->bi_lbn >= 0)
413 1.147 christos obsize = lfs_blksize(fs, ip, blkp->bi_lbn);
414 1.72 yamt else
415 1.72 yamt obsize = fs->lfs_bsize;
416 1.69 perseant /* Check for fragment size change */
417 1.146 dholland if (blkp->bi_lbn >= 0 && blkp->bi_lbn < ULFS_NDADDR) {
418 1.69 perseant obsize = ip->i_lfs_fragsize[blkp->bi_lbn];
419 1.69 perseant }
420 1.69 perseant if (obsize != blkp->bi_size) {
421 1.103 perseant DLOG((DLOG_CLEAN, "lfs_markv: ino %d lbn %lld wrong"
422 1.103 perseant " size (%ld != %d), try again\n",
423 1.103 perseant blkp->bi_inode, (long long)blkp->bi_lbn,
424 1.103 perseant (long) obsize, blkp->bi_size));
425 1.69 perseant do_again++;
426 1.69 perseant continue;
427 1.69 perseant }
428 1.69 perseant
429 1.22 perseant /*
430 1.69 perseant * If we get to here, then we are keeping the block. If
431 1.22 perseant * it is an indirect block, we want to actually put it
432 1.22 perseant * in the buffer cache so that it can be updated in the
433 1.82 perseant * finish_meta section. If it's not, we need to
434 1.22 perseant * allocate a fake buffer so that writeseg can perform
435 1.22 perseant * the copyin and write the buffer.
436 1.22 perseant */
437 1.38 perseant if (ip->i_number != LFS_IFILE_INUM && blkp->bi_lbn >= 0) {
438 1.38 perseant /* Data Block */
439 1.65 perseant bp = lfs_fakebuf(fs, vp, blkp->bi_lbn,
440 1.23 perseant blkp->bi_size, blkp->bi_bp);
441 1.23 perseant /* Pretend we used bread() to get it */
442 1.147 christos bp->b_blkno = LFS_FSBTODB(fs, blkp->bi_daddr);
443 1.38 perseant } else {
444 1.75 yamt /* Indirect block or ifile */
445 1.75 yamt if (blkp->bi_size != fs->lfs_bsize &&
446 1.75 yamt ip->i_number != LFS_IFILE_INUM)
447 1.72 yamt panic("lfs_markv: partial indirect block?"
448 1.72 yamt " size=%d\n", blkp->bi_size);
449 1.22 perseant bp = getblk(vp, blkp->bi_lbn, blkp->bi_size, 0, 0);
450 1.126 ad if (!(bp->b_oflags & (BO_DONE|BO_DELWRI))) {
451 1.22 perseant /*
452 1.22 perseant * The block in question was not found
453 1.22 perseant * in the cache; i.e., the block that
454 1.82 perseant * getblk() returned is empty. So, we
455 1.22 perseant * can (and should) copy in the
456 1.22 perseant * contents, because we've already
457 1.22 perseant * determined that this was the right
458 1.22 perseant * version of this block on disk.
459 1.22 perseant *
460 1.22 perseant * And, it can't have changed underneath
461 1.22 perseant * us, because we have the segment lock.
462 1.22 perseant */
463 1.22 perseant error = copyin(blkp->bi_bp, bp->b_data, blkp->bi_size);
464 1.62 chs if (error)
465 1.22 perseant goto err2;
466 1.22 perseant }
467 1.22 perseant }
468 1.96 yamt if ((error = lfs_bwrite_ext(bp, BW_CLEAN)) != 0)
469 1.22 perseant goto err2;
470 1.77 yamt
471 1.77 yamt nblkwritten++;
472 1.77 yamt /*
473 1.77 yamt * XXX should account indirect blocks and ifile pages as well
474 1.77 yamt */
475 1.147 christos if (nblkwritten + lfs_lblkno(fs, ninowritten * sizeof (struct ulfs1_dinode))
476 1.77 yamt > LFS_MARKV_MAX_BLOCKS) {
477 1.103 perseant DLOG((DLOG_CLEAN, "lfs_markv: writing %d blks %d inos\n",
478 1.103 perseant nblkwritten, ninowritten));
479 1.77 yamt lfs_segwrite(mntp, SEGM_CLEAN);
480 1.77 yamt nblkwritten = ninowritten = 0;
481 1.77 yamt }
482 1.22 perseant }
483 1.102 perry
484 1.22 perseant /*
485 1.22 perseant * Finish the old file, if there was one
486 1.22 perseant */
487 1.62 chs if (v_daddr != LFS_UNUSED_DADDR) {
488 1.22 perseant lfs_vunref(vp);
489 1.22 perseant numrefed--;
490 1.22 perseant }
491 1.102 perry
492 1.103 perseant #ifdef DIAGNOSTIC
493 1.103 perseant if (numrefed != 0)
494 1.74 yamt panic("lfs_markv: numrefed=%d", numrefed);
495 1.74 yamt #endif
496 1.103 perseant DLOG((DLOG_CLEAN, "lfs_markv: writing %d blks %d inos (check point)\n",
497 1.103 perseant nblkwritten, ninowritten));
498 1.102 perry
499 1.22 perseant /*
500 1.22 perseant * The last write has to be SEGM_SYNC, because of calling semantics.
501 1.22 perseant * It also has to be SEGM_CKP, because otherwise we could write
502 1.22 perseant * over the newly cleaned data contained in a checkpoint, and then
503 1.22 perseant * we'd be unhappy at recovery time.
504 1.22 perseant */
505 1.67 perseant lfs_segwrite(mntp, SEGM_CLEAN | SEGM_CKP | SEGM_SYNC);
506 1.102 perry
507 1.1 mycroft lfs_segunlock(fs);
508 1.1 mycroft
509 1.131 ad vfs_unbusy(mntp, false, NULL);
510 1.62 chs if (error)
511 1.22 perseant return (error);
512 1.62 chs else if (do_again)
513 1.22 perseant return EAGAIN;
514 1.1 mycroft
515 1.22 perseant return 0;
516 1.102 perry
517 1.96 yamt err2:
518 1.103 perseant DLOG((DLOG_CLEAN, "lfs_markv err2\n"));
519 1.53 perseant
520 1.96 yamt /*
521 1.96 yamt * XXX we're here because copyin() failed.
522 1.96 yamt * XXX it means that we can't trust the cleanerd. too bad.
523 1.96 yamt * XXX how can we recover from this?
524 1.96 yamt */
525 1.96 yamt
526 1.96 yamt err3:
527 1.96 yamt /*
528 1.96 yamt * XXX should do segwrite here anyway?
529 1.96 yamt */
530 1.96 yamt
531 1.96 yamt if (v_daddr != LFS_UNUSED_DADDR) {
532 1.96 yamt lfs_vunref(vp);
533 1.96 yamt --numrefed;
534 1.22 perseant }
535 1.96 yamt
536 1.1 mycroft lfs_segunlock(fs);
537 1.131 ad vfs_unbusy(mntp, false, NULL);
538 1.103 perseant #ifdef DIAGNOSTIC
539 1.103 perseant if (numrefed != 0)
540 1.74 yamt panic("lfs_markv: numrefed=%d", numrefed);
541 1.53 perseant #endif
542 1.53 perseant
543 1.22 perseant return (error);
544 1.1 mycroft }
545 1.1 mycroft
546 1.1 mycroft /*
547 1.31 christos * sys_lfs_bmapv:
548 1.1 mycroft *
549 1.1 mycroft * This will fill in the current disk address for arrays of blocks.
550 1.1 mycroft *
551 1.1 mycroft * 0 on success
552 1.1 mycroft * -1/errno is return on error.
553 1.1 mycroft */
554 1.57 perseant #ifdef USE_64BIT_SYSCALLS
555 1.57 perseant int
556 1.125 dsl sys_lfs_bmapv(struct lwp *l, const struct sys_lfs_bmapv_args *uap, register_t *retval)
557 1.57 perseant {
558 1.125 dsl /* {
559 1.57 perseant syscallarg(fsid_t *) fsidp;
560 1.57 perseant syscallarg(struct block_info *) blkiov;
561 1.57 perseant syscallarg(int) blkcnt;
562 1.125 dsl } */
563 1.57 perseant BLOCK_INFO *blkiov;
564 1.57 perseant int blkcnt, error;
565 1.57 perseant fsid_t fsid;
566 1.105 perseant struct lfs *fs;
567 1.105 perseant struct mount *mntp;
568 1.22 perseant
569 1.142 elad error = kauth_authorize_system(l->l_cred, KAUTH_SYSTEM_LFS,
570 1.142 elad KAUTH_REQ_SYSTEM_LFS_BMAPV, NULL, NULL, NULL);
571 1.142 elad if (error)
572 1.57 perseant return (error);
573 1.102 perry
574 1.57 perseant if ((error = copyin(SCARG(uap, fsidp), &fsid, sizeof(fsid_t))) != 0)
575 1.57 perseant return (error);
576 1.57 perseant
577 1.105 perseant if ((mntp = vfs_getvfs(&fsid)) == NULL)
578 1.105 perseant return (ENOENT);
579 1.146 dholland fs = VFSTOULFS(mntp)->um_lfs;
580 1.105 perseant
581 1.57 perseant blkcnt = SCARG(uap, blkcnt);
582 1.71 itojun if ((u_int) blkcnt > SIZE_T_MAX / sizeof(BLOCK_INFO))
583 1.71 itojun return (EINVAL);
584 1.129 ad KERNEL_LOCK(1, NULL);
585 1.105 perseant blkiov = lfs_malloc(fs, blkcnt * sizeof(BLOCK_INFO), LFS_NB_BLKIOV);
586 1.57 perseant if ((error = copyin(SCARG(uap, blkiov), blkiov,
587 1.57 perseant blkcnt * sizeof(BLOCK_INFO))) != 0)
588 1.57 perseant goto out;
589 1.57 perseant
590 1.57 perseant if ((error = lfs_bmapv(p, &fsid, blkiov, blkcnt)) == 0)
591 1.57 perseant copyout(blkiov, SCARG(uap, blkiov),
592 1.57 perseant blkcnt * sizeof(BLOCK_INFO));
593 1.57 perseant out:
594 1.105 perseant lfs_free(fs, blkiov, LFS_NB_BLKIOV);
595 1.129 ad KERNEL_UNLOCK_ONE(NULL);
596 1.57 perseant return error;
597 1.57 perseant }
598 1.57 perseant #else
599 1.1 mycroft int
600 1.125 dsl sys_lfs_bmapv(struct lwp *l, const struct sys_lfs_bmapv_args *uap, register_t *retval)
601 1.9 thorpej {
602 1.125 dsl /* {
603 1.32 drochner syscallarg(fsid_t *) fsidp;
604 1.32 drochner syscallarg(struct block_info *) blkiov;
605 1.32 drochner syscallarg(int) blkcnt;
606 1.125 dsl } */
607 1.57 perseant BLOCK_INFO *blkiov;
608 1.57 perseant BLOCK_INFO_15 *blkiov15;
609 1.57 perseant int i, blkcnt, error;
610 1.57 perseant fsid_t fsid;
611 1.105 perseant struct lfs *fs;
612 1.105 perseant struct mount *mntp;
613 1.57 perseant
614 1.142 elad error = kauth_authorize_system(l->l_cred, KAUTH_SYSTEM_LFS,
615 1.142 elad KAUTH_REQ_SYSTEM_LFS_BMAPV, NULL, NULL, NULL);
616 1.142 elad if (error)
617 1.57 perseant return (error);
618 1.102 perry
619 1.57 perseant if ((error = copyin(SCARG(uap, fsidp), &fsid, sizeof(fsid_t))) != 0)
620 1.57 perseant return (error);
621 1.57 perseant
622 1.105 perseant if ((mntp = vfs_getvfs(&fsid)) == NULL)
623 1.105 perseant return (ENOENT);
624 1.146 dholland fs = VFSTOULFS(mntp)->um_lfs;
625 1.105 perseant
626 1.57 perseant blkcnt = SCARG(uap, blkcnt);
627 1.90 nakayama if ((size_t) blkcnt > SIZE_T_MAX / sizeof(BLOCK_INFO))
628 1.71 itojun return (EINVAL);
629 1.129 ad KERNEL_LOCK(1, NULL);
630 1.105 perseant blkiov = lfs_malloc(fs, blkcnt * sizeof(BLOCK_INFO), LFS_NB_BLKIOV);
631 1.105 perseant blkiov15 = lfs_malloc(fs, blkcnt * sizeof(BLOCK_INFO_15), LFS_NB_BLKIOV);
632 1.57 perseant if ((error = copyin(SCARG(uap, blkiov), blkiov15,
633 1.57 perseant blkcnt * sizeof(BLOCK_INFO_15))) != 0)
634 1.57 perseant goto out;
635 1.57 perseant
636 1.57 perseant for (i = 0; i < blkcnt; i++) {
637 1.57 perseant blkiov[i].bi_inode = blkiov15[i].bi_inode;
638 1.57 perseant blkiov[i].bi_lbn = blkiov15[i].bi_lbn;
639 1.57 perseant blkiov[i].bi_daddr = blkiov15[i].bi_daddr;
640 1.57 perseant blkiov[i].bi_segcreate = blkiov15[i].bi_segcreate;
641 1.57 perseant blkiov[i].bi_version = blkiov15[i].bi_version;
642 1.82 perseant blkiov[i].bi_bp = blkiov15[i].bi_bp;
643 1.57 perseant blkiov[i].bi_size = blkiov15[i].bi_size;
644 1.57 perseant }
645 1.57 perseant
646 1.115 ad if ((error = lfs_bmapv(l->l_proc, &fsid, blkiov, blkcnt)) == 0) {
647 1.57 perseant for (i = 0; i < blkcnt; i++) {
648 1.82 perseant blkiov15[i].bi_inode = blkiov[i].bi_inode;
649 1.82 perseant blkiov15[i].bi_lbn = blkiov[i].bi_lbn;
650 1.82 perseant blkiov15[i].bi_daddr = blkiov[i].bi_daddr;
651 1.57 perseant blkiov15[i].bi_segcreate = blkiov[i].bi_segcreate;
652 1.82 perseant blkiov15[i].bi_version = blkiov[i].bi_version;
653 1.82 perseant blkiov15[i].bi_bp = blkiov[i].bi_bp;
654 1.82 perseant blkiov15[i].bi_size = blkiov[i].bi_size;
655 1.57 perseant }
656 1.57 perseant copyout(blkiov15, SCARG(uap, blkiov),
657 1.57 perseant blkcnt * sizeof(BLOCK_INFO_15));
658 1.57 perseant }
659 1.57 perseant out:
660 1.105 perseant lfs_free(fs, blkiov, LFS_NB_BLKIOV);
661 1.105 perseant lfs_free(fs, blkiov15, LFS_NB_BLKIOV);
662 1.129 ad KERNEL_UNLOCK_ONE(NULL);
663 1.57 perseant return error;
664 1.57 perseant }
665 1.57 perseant #endif
666 1.57 perseant
667 1.84 perseant int
668 1.93 fvdl lfs_bmapv(struct proc *p, fsid_t *fsidp, BLOCK_INFO *blkiov, int blkcnt)
669 1.57 perseant {
670 1.1 mycroft BLOCK_INFO *blkp;
671 1.22 perseant IFILE *ifp;
672 1.22 perseant struct buf *bp;
673 1.22 perseant struct inode *ip = NULL;
674 1.22 perseant struct lfs *fs;
675 1.1 mycroft struct mount *mntp;
676 1.146 dholland struct ulfsmount *ump;
677 1.1 mycroft struct vnode *vp;
678 1.22 perseant ino_t lastino;
679 1.79 fvdl daddr_t v_daddr;
680 1.74 yamt int cnt, error;
681 1.74 yamt int numrefed = 0;
682 1.1 mycroft
683 1.93 fvdl lfs_cleaner_pid = p->p_pid;
684 1.102 perry
685 1.57 perseant if ((mntp = vfs_getvfs(fsidp)) == NULL)
686 1.53 perseant return (ENOENT);
687 1.102 perry
688 1.146 dholland ump = VFSTOULFS(mntp);
689 1.132 ad if ((error = vfs_busy(mntp, NULL)) != 0)
690 1.53 perseant return (error);
691 1.102 perry
692 1.57 perseant cnt = blkcnt;
693 1.102 perry
694 1.146 dholland fs = VFSTOULFS(mntp)->um_lfs;
695 1.102 perry
696 1.22 perseant error = 0;
697 1.102 perry
698 1.22 perseant /* these were inside the initialization for the for loop */
699 1.22 perseant v_daddr = LFS_UNUSED_DADDR;
700 1.22 perseant lastino = LFS_UNUSED_INUM;
701 1.57 perseant for (blkp = blkiov; cnt--; ++blkp)
702 1.22 perseant {
703 1.16 fvdl /*
704 1.22 perseant * Get the IFILE entry (only once) and see if the file still
705 1.22 perseant * exists.
706 1.16 fvdl */
707 1.22 perseant if (lastino != blkp->bi_inode) {
708 1.22 perseant /*
709 1.22 perseant * Finish the old file, if there was one. The presence
710 1.22 perseant * of a usable vnode in vp is signaled by a valid
711 1.22 perseant * v_daddr.
712 1.22 perseant */
713 1.62 chs if (v_daddr != LFS_UNUSED_DADDR) {
714 1.22 perseant lfs_vunref(vp);
715 1.151 hannken if (VTOI(vp)->i_lfs_iflags & LFSI_BMAP) {
716 1.151 hannken mutex_enter(vp->v_interlock);
717 1.157 riastrad if (vget(vp, LK_NOWAIT,
718 1.157 riastrad false /* !wait */) == 0) {
719 1.151 hannken if (! vrecycle(vp))
720 1.151 hannken vrele(vp);
721 1.151 hannken }
722 1.151 hannken }
723 1.22 perseant numrefed--;
724 1.22 perseant }
725 1.22 perseant
726 1.22 perseant /*
727 1.22 perseant * Start a new file
728 1.22 perseant */
729 1.22 perseant lastino = blkp->bi_inode;
730 1.22 perseant if (blkp->bi_inode == LFS_IFILE_INUM)
731 1.22 perseant v_daddr = fs->lfs_idaddr;
732 1.22 perseant else {
733 1.22 perseant LFS_IENTRY(ifp, fs, blkp->bi_inode, bp);
734 1.22 perseant v_daddr = ifp->if_daddr;
735 1.123 ad brelse(bp, 0);
736 1.22 perseant }
737 1.22 perseant if (v_daddr == LFS_UNUSED_DADDR) {
738 1.22 perseant blkp->bi_daddr = LFS_UNUSED_DADDR;
739 1.22 perseant continue;
740 1.22 perseant }
741 1.22 perseant /*
742 1.22 perseant * A regular call to VFS_VGET could deadlock
743 1.22 perseant * here. Instead, we try an unlocked access.
744 1.22 perseant */
745 1.146 dholland mutex_enter(&ulfs_ihash_lock);
746 1.146 dholland vp = ulfs_ihashlookup(ump->um_dev, blkp->bi_inode);
747 1.153 riastrad if (vp != NULL)
748 1.153 riastrad mutex_enter(vp->v_interlock);
749 1.152 hannken if (vp != NULL && vdead_check(vp, VDEAD_NOWAIT) == 0) {
750 1.22 perseant ip = VTOI(vp);
751 1.146 dholland mutex_exit(&ulfs_ihash_lock);
752 1.42 perseant if (lfs_vref(vp)) {
753 1.42 perseant v_daddr = LFS_UNUSED_DADDR;
754 1.42 perseant continue;
755 1.42 perseant }
756 1.43 perseant numrefed++;
757 1.22 perseant } else {
758 1.155 pgoyette if (vp != NULL)
759 1.154 christos mutex_exit(vp->v_interlock);
760 1.146 dholland mutex_exit(&ulfs_ihash_lock);
761 1.101 perseant /*
762 1.101 perseant * Don't VFS_VGET if we're being unmounted,
763 1.101 perseant * since we hold vfs_busy().
764 1.101 perseant */
765 1.101 perseant if (mntp->mnt_iflag & IMNT_UNMOUNT) {
766 1.101 perseant v_daddr = LFS_UNUSED_DADDR;
767 1.101 perseant continue;
768 1.101 perseant }
769 1.92 thorpej error = VFS_VGET(mntp, blkp->bi_inode, &vp);
770 1.62 chs if (error) {
771 1.103 perseant DLOG((DLOG_CLEAN, "lfs_bmapv: vget ino"
772 1.103 perseant "%d failed with %d",
773 1.103 perseant blkp->bi_inode,error));
774 1.43 perseant v_daddr = LFS_UNUSED_DADDR;
775 1.22 perseant continue;
776 1.22 perseant } else {
777 1.74 yamt KASSERT(VOP_ISLOCKED(vp));
778 1.140 perseant VTOI(vp)->i_lfs_iflags |= LFSI_BMAP;
779 1.137 hannken VOP_UNLOCK(vp);
780 1.22 perseant numrefed++;
781 1.22 perseant }
782 1.22 perseant }
783 1.22 perseant ip = VTOI(vp);
784 1.22 perseant } else if (v_daddr == LFS_UNUSED_DADDR) {
785 1.22 perseant /*
786 1.22 perseant * This can only happen if the vnode is dead.
787 1.82 perseant * Keep going. Note that we DO NOT set the
788 1.22 perseant * bi_addr to anything -- if we failed to get
789 1.22 perseant * the vnode, for example, we want to assume
790 1.22 perseant * conservatively that all of its blocks *are*
791 1.22 perseant * located in the segment in question.
792 1.22 perseant * lfs_markv will throw them out if we are
793 1.22 perseant * wrong.
794 1.22 perseant */
795 1.22 perseant /* blkp->bi_daddr = LFS_UNUSED_DADDR; */
796 1.22 perseant continue;
797 1.22 perseant }
798 1.22 perseant
799 1.22 perseant /* Past this point we are guaranteed that vp, ip are valid. */
800 1.22 perseant
801 1.62 chs if (blkp->bi_lbn == LFS_UNUSED_LBN) {
802 1.22 perseant /*
803 1.22 perseant * We just want the inode address, which is
804 1.22 perseant * conveniently in v_daddr.
805 1.22 perseant */
806 1.22 perseant blkp->bi_daddr = v_daddr;
807 1.22 perseant } else {
808 1.79 fvdl daddr_t bi_daddr;
809 1.79 fvdl
810 1.79 fvdl /* XXX ondisk32 */
811 1.22 perseant error = VOP_BMAP(vp, blkp->bi_lbn, NULL,
812 1.79 fvdl &bi_daddr, NULL);
813 1.62 chs if (error)
814 1.22 perseant {
815 1.22 perseant blkp->bi_daddr = LFS_UNUSED_DADDR;
816 1.22 perseant continue;
817 1.22 perseant }
818 1.147 christos blkp->bi_daddr = LFS_DBTOFSB(fs, bi_daddr);
819 1.66 perseant /* Fill in the block size, too */
820 1.72 yamt if (blkp->bi_lbn >= 0)
821 1.147 christos blkp->bi_size = lfs_blksize(fs, ip, blkp->bi_lbn);
822 1.72 yamt else
823 1.72 yamt blkp->bi_size = fs->lfs_bsize;
824 1.22 perseant }
825 1.22 perseant }
826 1.102 perry
827 1.22 perseant /*
828 1.22 perseant * Finish the old file, if there was one. The presence
829 1.22 perseant * of a usable vnode in vp is signaled by a valid v_daddr.
830 1.22 perseant */
831 1.62 chs if (v_daddr != LFS_UNUSED_DADDR) {
832 1.22 perseant lfs_vunref(vp);
833 1.140 perseant /* Recycle as above. */
834 1.151 hannken if (ip->i_lfs_iflags & LFSI_BMAP) {
835 1.151 hannken mutex_enter(vp->v_interlock);
836 1.157 riastrad if (vget(vp, LK_NOWAIT, false /* !wait */) == 0) {
837 1.151 hannken if (! vrecycle(vp))
838 1.151 hannken vrele(vp);
839 1.151 hannken }
840 1.151 hannken }
841 1.22 perseant numrefed--;
842 1.22 perseant }
843 1.102 perry
844 1.103 perseant #ifdef DIAGNOSTIC
845 1.103 perseant if (numrefed != 0)
846 1.74 yamt panic("lfs_bmapv: numrefed=%d", numrefed);
847 1.74 yamt #endif
848 1.102 perry
849 1.131 ad vfs_unbusy(mntp, false, NULL);
850 1.102 perry
851 1.22 perseant return 0;
852 1.1 mycroft }
853 1.1 mycroft
854 1.1 mycroft /*
855 1.31 christos * sys_lfs_segclean:
856 1.1 mycroft *
857 1.1 mycroft * Mark the segment clean.
858 1.1 mycroft *
859 1.1 mycroft * 0 on success
860 1.1 mycroft * -1/errno is return on error.
861 1.1 mycroft */
862 1.1 mycroft int
863 1.125 dsl sys_lfs_segclean(struct lwp *l, const struct sys_lfs_segclean_args *uap, register_t *retval)
864 1.9 thorpej {
865 1.125 dsl /* {
866 1.32 drochner syscallarg(fsid_t *) fsidp;
867 1.32 drochner syscallarg(u_long) segment;
868 1.125 dsl } */
869 1.80 perseant struct lfs *fs;
870 1.1 mycroft struct mount *mntp;
871 1.1 mycroft fsid_t fsid;
872 1.1 mycroft int error;
873 1.67 perseant unsigned long segnum;
874 1.102 perry
875 1.142 elad error = kauth_authorize_system(l->l_cred, KAUTH_SYSTEM_LFS,
876 1.142 elad KAUTH_REQ_SYSTEM_LFS_SEGCLEAN, NULL, NULL, NULL);
877 1.142 elad if (error)
878 1.1 mycroft return (error);
879 1.102 perry
880 1.10 christos if ((error = copyin(SCARG(uap, fsidp), &fsid, sizeof(fsid_t))) != 0)
881 1.1 mycroft return (error);
882 1.16 fvdl if ((mntp = vfs_getvfs(&fsid)) == NULL)
883 1.53 perseant return (ENOENT);
884 1.102 perry
885 1.146 dholland fs = VFSTOULFS(mntp)->um_lfs;
886 1.67 perseant segnum = SCARG(uap, segment);
887 1.102 perry
888 1.132 ad if ((error = vfs_busy(mntp, NULL)) != 0)
889 1.53 perseant return (error);
890 1.80 perseant
891 1.129 ad KERNEL_LOCK(1, NULL);
892 1.65 perseant lfs_seglock(fs, SEGM_PROT);
893 1.80 perseant error = lfs_do_segclean(fs, segnum);
894 1.80 perseant lfs_segunlock(fs);
895 1.129 ad KERNEL_UNLOCK_ONE(NULL);
896 1.131 ad vfs_unbusy(mntp, false, NULL);
897 1.80 perseant return error;
898 1.80 perseant }
899 1.80 perseant
900 1.80 perseant /*
901 1.80 perseant * Actually mark the segment clean.
902 1.80 perseant * Must be called with the segment lock held.
903 1.80 perseant */
904 1.80 perseant int
905 1.80 perseant lfs_do_segclean(struct lfs *fs, unsigned long segnum)
906 1.80 perseant {
907 1.107 perseant extern int lfs_dostats;
908 1.80 perseant struct buf *bp;
909 1.80 perseant CLEANERINFO *cip;
910 1.80 perseant SEGUSE *sup;
911 1.102 perry
912 1.147 christos if (lfs_dtosn(fs, fs->lfs_curseg) == segnum) {
913 1.80 perseant return (EBUSY);
914 1.80 perseant }
915 1.102 perry
916 1.67 perseant LFS_SEGENTRY(sup, fs, segnum, bp);
917 1.67 perseant if (sup->su_nbytes) {
918 1.103 perseant DLOG((DLOG_CLEAN, "lfs_segclean: not cleaning segment %lu:"
919 1.103 perseant " %d live bytes\n", segnum, sup->su_nbytes));
920 1.123 ad brelse(bp, 0);
921 1.67 perseant return (EBUSY);
922 1.67 perseant }
923 1.1 mycroft if (sup->su_flags & SEGUSE_ACTIVE) {
924 1.106 perseant DLOG((DLOG_CLEAN, "lfs_segclean: not cleaning segment %lu:"
925 1.106 perseant " segment is active\n", segnum));
926 1.123 ad brelse(bp, 0);
927 1.1 mycroft return (EBUSY);
928 1.50 perseant }
929 1.50 perseant if (!(sup->su_flags & SEGUSE_DIRTY)) {
930 1.106 perseant DLOG((DLOG_CLEAN, "lfs_segclean: not cleaning segment %lu:"
931 1.106 perseant " segment is already clean\n", segnum));
932 1.123 ad brelse(bp, 0);
933 1.50 perseant return (EALREADY);
934 1.1 mycroft }
935 1.102 perry
936 1.147 christos fs->lfs_avail += lfs_segtod(fs, 1);
937 1.46 perseant if (sup->su_flags & SEGUSE_SUPERBLOCK)
938 1.147 christos fs->lfs_avail -= lfs_btofsb(fs, LFS_SBPAD);
939 1.67 perseant if (fs->lfs_version > 1 && segnum == 0 &&
940 1.158 hannken fs->lfs_s0addr < lfs_btofsb(fs, LFS_LABELPAD))
941 1.158 hannken fs->lfs_avail -= lfs_btofsb(fs, LFS_LABELPAD) - fs->lfs_s0addr;
942 1.126 ad mutex_enter(&lfs_lock);
943 1.147 christos fs->lfs_bfree += sup->su_nsums * lfs_btofsb(fs, fs->lfs_sumsize) +
944 1.147 christos lfs_btofsb(fs, sup->su_ninos * fs->lfs_ibsize);
945 1.147 christos fs->lfs_dmeta -= sup->su_nsums * lfs_btofsb(fs, fs->lfs_sumsize) +
946 1.147 christos lfs_btofsb(fs, sup->su_ninos * fs->lfs_ibsize);
947 1.43 perseant if (fs->lfs_dmeta < 0)
948 1.43 perseant fs->lfs_dmeta = 0;
949 1.126 ad mutex_exit(&lfs_lock);
950 1.1 mycroft sup->su_flags &= ~SEGUSE_DIRTY;
951 1.80 perseant LFS_WRITESEGENTRY(sup, fs, segnum, bp);
952 1.102 perry
953 1.1 mycroft LFS_CLEANERINFO(cip, fs, bp);
954 1.1 mycroft ++cip->clean;
955 1.1 mycroft --cip->dirty;
956 1.22 perseant fs->lfs_nclean = cip->clean;
957 1.49 perseant cip->bfree = fs->lfs_bfree;
958 1.126 ad mutex_enter(&lfs_lock);
959 1.101 perseant cip->avail = fs->lfs_avail - fs->lfs_ravail - fs->lfs_favail;
960 1.111 perseant wakeup(&fs->lfs_avail);
961 1.126 ad mutex_exit(&lfs_lock);
962 1.65 perseant (void) LFS_BWRITE_LOG(bp);
963 1.22 perseant
964 1.107 perseant if (lfs_dostats)
965 1.107 perseant ++lfs_stats.segs_reclaimed;
966 1.106 perseant
967 1.1 mycroft return (0);
968 1.1 mycroft }
969 1.1 mycroft
970 1.1 mycroft /*
971 1.1 mycroft * This will block until a segment in file system fsid is written. A timeout
972 1.1 mycroft * in milliseconds may be specified which will awake the cleaner automatically.
973 1.1 mycroft * An fsid of -1 means any file system, and a timeout of 0 means forever.
974 1.84 perseant */
975 1.84 perseant int
976 1.84 perseant lfs_segwait(fsid_t *fsidp, struct timeval *tv)
977 1.84 perseant {
978 1.84 perseant struct mount *mntp;
979 1.84 perseant void *addr;
980 1.84 perseant u_long timeout;
981 1.114 kardel int error;
982 1.84 perseant
983 1.129 ad KERNEL_LOCK(1, NULL);
984 1.106 perseant if (fsidp == NULL || (mntp = vfs_getvfs(fsidp)) == NULL)
985 1.84 perseant addr = &lfs_allclean_wakeup;
986 1.84 perseant else
987 1.146 dholland addr = &VFSTOULFS(mntp)->um_lfs->lfs_nextseg;
988 1.84 perseant /*
989 1.84 perseant * XXX THIS COULD SLEEP FOREVER IF TIMEOUT IS {0,0}!
990 1.84 perseant * XXX IS THAT WHAT IS INTENDED?
991 1.84 perseant */
992 1.114 kardel timeout = tvtohz(tv);
993 1.111 perseant error = tsleep(addr, PCATCH | PVFS, "segment", timeout);
994 1.129 ad KERNEL_UNLOCK_ONE(NULL);
995 1.84 perseant return (error == ERESTART ? EINTR : 0);
996 1.84 perseant }
997 1.84 perseant
998 1.84 perseant /*
999 1.84 perseant * sys_lfs_segwait:
1000 1.84 perseant *
1001 1.84 perseant * System call wrapper around lfs_segwait().
1002 1.1 mycroft *
1003 1.1 mycroft * 0 on success
1004 1.1 mycroft * 1 on timeout
1005 1.1 mycroft * -1/errno is return on error.
1006 1.1 mycroft */
1007 1.1 mycroft int
1008 1.134 christos sys___lfs_segwait50(struct lwp *l, const struct sys___lfs_segwait50_args *uap,
1009 1.134 christos register_t *retval)
1010 1.9 thorpej {
1011 1.125 dsl /* {
1012 1.32 drochner syscallarg(fsid_t *) fsidp;
1013 1.32 drochner syscallarg(struct timeval *) tv;
1014 1.125 dsl } */
1015 1.1 mycroft struct timeval atv;
1016 1.1 mycroft fsid_t fsid;
1017 1.84 perseant int error;
1018 1.102 perry
1019 1.84 perseant /* XXX need we be su to segwait? */
1020 1.142 elad error = kauth_authorize_system(l->l_cred, KAUTH_SYSTEM_LFS,
1021 1.142 elad KAUTH_REQ_SYSTEM_LFS_SEGWAIT, NULL, NULL, NULL);
1022 1.142 elad if (error)
1023 1.1 mycroft return (error);
1024 1.10 christos if ((error = copyin(SCARG(uap, fsidp), &fsid, sizeof(fsid_t))) != 0)
1025 1.1 mycroft return (error);
1026 1.102 perry
1027 1.5 cgd if (SCARG(uap, tv)) {
1028 1.10 christos error = copyin(SCARG(uap, tv), &atv, sizeof(struct timeval));
1029 1.10 christos if (error)
1030 1.1 mycroft return (error);
1031 1.1 mycroft if (itimerfix(&atv))
1032 1.1 mycroft return (EINVAL);
1033 1.84 perseant } else /* NULL or invalid */
1034 1.84 perseant atv.tv_sec = atv.tv_usec = 0;
1035 1.84 perseant return lfs_segwait(&fsid, &atv);
1036 1.1 mycroft }
1037 1.1 mycroft
1038 1.1 mycroft /*
1039 1.1 mycroft * VFS_VGET call specialized for the cleaner. The cleaner already knows the
1040 1.1 mycroft * daddr from the ifile, so don't look it up again. If the cleaner is
1041 1.1 mycroft * processing IINFO structures, it may have the ondisk inode already, so
1042 1.1 mycroft * don't go retrieving it again.
1043 1.22 perseant *
1044 1.74 yamt * we lfs_vref, and it is the caller's responsibility to lfs_vunref
1045 1.74 yamt * when finished.
1046 1.1 mycroft */
1047 1.22 perseant
1048 1.1 mycroft int
1049 1.74 yamt lfs_fasthashget(dev_t dev, ino_t ino, struct vnode **vpp)
1050 1.44 fvdl {
1051 1.126 ad struct vnode *vp;
1052 1.126 ad
1053 1.146 dholland mutex_enter(&ulfs_ihash_lock);
1054 1.146 dholland if ((vp = ulfs_ihashlookup(dev, ino)) != NULL) {
1055 1.139 rmind mutex_enter(vp->v_interlock);
1056 1.146 dholland mutex_exit(&ulfs_ihash_lock);
1057 1.152 hannken if (vdead_check(vp, VDEAD_NOWAIT) != 0) {
1058 1.152 hannken DLOG((DLOG_CLEAN, "lfs_fastvget: ino %d dead\n",
1059 1.103 perseant ino));
1060 1.103 perseant lfs_stats.clean_vnlocked++;
1061 1.139 rmind mutex_exit(vp->v_interlock);
1062 1.44 fvdl return EAGAIN;
1063 1.44 fvdl }
1064 1.126 ad if (lfs_vref(vp)) {
1065 1.103 perseant DLOG((DLOG_CLEAN, "lfs_fastvget: lfs_vref failed"
1066 1.103 perseant " for ino %d\n", ino));
1067 1.103 perseant lfs_stats.clean_inlocked++;
1068 1.44 fvdl return EAGAIN;
1069 1.44 fvdl }
1070 1.126 ad } else {
1071 1.146 dholland mutex_exit(&ulfs_ihash_lock);
1072 1.126 ad }
1073 1.126 ad *vpp = vp;
1074 1.44 fvdl
1075 1.44 fvdl return (0);
1076 1.44 fvdl }
1077 1.44 fvdl
1078 1.44 fvdl int
1079 1.121 ad lfs_fastvget(struct mount *mp, ino_t ino, daddr_t daddr, struct vnode **vpp,
1080 1.146 dholland struct ulfs1_dinode *dinp)
1081 1.1 mycroft {
1082 1.41 augustss struct inode *ip;
1083 1.146 dholland struct ulfs1_dinode *dip;
1084 1.1 mycroft struct vnode *vp;
1085 1.146 dholland struct ulfsmount *ump;
1086 1.1 mycroft dev_t dev;
1087 1.88 yamt int error, retries;
1088 1.22 perseant struct buf *bp;
1089 1.57 perseant struct lfs *fs;
1090 1.102 perry
1091 1.146 dholland ump = VFSTOULFS(mp);
1092 1.1 mycroft dev = ump->um_dev;
1093 1.57 perseant fs = ump->um_lfs;
1094 1.54 perseant
1095 1.54 perseant /*
1096 1.54 perseant * Wait until the filesystem is fully mounted before allowing vget
1097 1.82 perseant * to complete. This prevents possible problems with roll-forward.
1098 1.54 perseant */
1099 1.126 ad mutex_enter(&lfs_lock);
1100 1.62 chs while (fs->lfs_flags & LFS_NOTYET) {
1101 1.126 ad mtsleep(&fs->lfs_flags, PRIBIO+1, "lfs_fnotyet", 0,
1102 1.126 ad &lfs_lock);
1103 1.54 perseant }
1104 1.126 ad mutex_exit(&lfs_lock);
1105 1.104 perseant
1106 1.54 perseant /*
1107 1.54 perseant * This is playing fast and loose. Someone may have the inode
1108 1.54 perseant * locked, in which case they are going to be distinctly unhappy
1109 1.54 perseant * if we trash something.
1110 1.54 perseant */
1111 1.44 fvdl
1112 1.74 yamt error = lfs_fasthashget(dev, ino, vpp);
1113 1.44 fvdl if (error != 0 || *vpp != NULL)
1114 1.44 fvdl return (error);
1115 1.44 fvdl
1116 1.102 perry /*
1117 1.101 perseant * getnewvnode(9) will call vfs_busy, which will block if the
1118 1.101 perseant * filesystem is being unmounted; but umount(9) is waiting for
1119 1.101 perseant * us because we're already holding the fs busy.
1120 1.101 perseant * XXXMP
1121 1.101 perseant */
1122 1.101 perseant if (mp->mnt_iflag & IMNT_UNMOUNT) {
1123 1.101 perseant *vpp = NULL;
1124 1.101 perseant return EDEADLK;
1125 1.101 perseant }
1126 1.139 rmind error = getnewvnode(VT_LFS, mp, lfs_vnodeop_p, NULL, &vp);
1127 1.139 rmind if (error) {
1128 1.44 fvdl *vpp = NULL;
1129 1.44 fvdl return (error);
1130 1.44 fvdl }
1131 1.44 fvdl
1132 1.146 dholland mutex_enter(&ulfs_hashlock);
1133 1.121 ad error = lfs_fasthashget(dev, ino, vpp);
1134 1.121 ad if (error != 0 || *vpp != NULL) {
1135 1.146 dholland mutex_exit(&ulfs_hashlock);
1136 1.121 ad ungetnewvnode(vp);
1137 1.121 ad return (error);
1138 1.121 ad }
1139 1.1 mycroft
1140 1.1 mycroft /* Allocate new vnode/inode. */
1141 1.44 fvdl lfs_vcreate(mp, ino, vp);
1142 1.44 fvdl
1143 1.1 mycroft /*
1144 1.1 mycroft * Put it onto its hash chain and lock it so that other requests for
1145 1.1 mycroft * this inode will block if they arrive while we are sleeping waiting
1146 1.1 mycroft * for old data structures to be purged or for the contents of the
1147 1.1 mycroft * disk portion of this inode to be read.
1148 1.1 mycroft */
1149 1.1 mycroft ip = VTOI(vp);
1150 1.146 dholland ulfs_ihashins(ip);
1151 1.146 dholland mutex_exit(&ulfs_hashlock);
1152 1.102 perry
1153 1.141 perseant #ifdef notyet
1154 1.141 perseant /* Not found in the cache => this vnode was loaded only for cleaning. */
1155 1.141 perseant ip->i_lfs_iflags |= LFSI_BMAP;
1156 1.141 perseant #endif
1157 1.141 perseant
1158 1.1 mycroft /*
1159 1.1 mycroft * XXX
1160 1.1 mycroft * This may not need to be here, logically it should go down with
1161 1.1 mycroft * the i_devvp initialization.
1162 1.1 mycroft * Ask Kirk.
1163 1.1 mycroft */
1164 1.57 perseant ip->i_lfs = fs;
1165 1.1 mycroft
1166 1.1 mycroft /* Read in the disk contents for the inode, copy into the inode. */
1167 1.10 christos if (dinp) {
1168 1.146 dholland error = copyin(dinp, ip->i_din.ffs1_din, sizeof (struct ulfs1_dinode));
1169 1.22 perseant if (error) {
1170 1.103 perseant DLOG((DLOG_CLEAN, "lfs_fastvget: dinode copyin failed"
1171 1.103 perseant " for ino %d\n", ino));
1172 1.146 dholland ulfs_ihashrem(ip);
1173 1.22 perseant
1174 1.22 perseant /* Unlock and discard unneeded inode. */
1175 1.138 hannken VOP_UNLOCK(vp);
1176 1.22 perseant lfs_vunref(vp);
1177 1.22 perseant *vpp = NULL;
1178 1.1 mycroft return (error);
1179 1.22 perseant }
1180 1.62 chs if (ip->i_number != ino)
1181 1.22 perseant panic("lfs_fastvget: I was fed the wrong inode!");
1182 1.22 perseant } else {
1183 1.65 perseant retries = 0;
1184 1.65 perseant again:
1185 1.147 christos error = bread(ump->um_devvp, LFS_FSBTODB(fs, daddr), fs->lfs_ibsize,
1186 1.156 maxv 0, &bp);
1187 1.10 christos if (error) {
1188 1.103 perseant DLOG((DLOG_CLEAN, "lfs_fastvget: bread failed (%d)\n",
1189 1.103 perseant error));
1190 1.1 mycroft /*
1191 1.1 mycroft * The inode does not contain anything useful, so it
1192 1.1 mycroft * would be misleading to leave it on its hash chain.
1193 1.1 mycroft * Iput() will return it to the free list.
1194 1.1 mycroft */
1195 1.146 dholland ulfs_ihashrem(ip);
1196 1.102 perry
1197 1.1 mycroft /* Unlock and discard unneeded inode. */
1198 1.138 hannken VOP_UNLOCK(vp);
1199 1.1 mycroft lfs_vunref(vp);
1200 1.1 mycroft *vpp = NULL;
1201 1.1 mycroft return (error);
1202 1.1 mycroft }
1203 1.65 perseant dip = lfs_ifind(ump->um_lfs, ino, bp);
1204 1.65 perseant if (dip == NULL) {
1205 1.65 perseant /* Assume write has not completed yet; try again */
1206 1.123 ad brelse(bp, BC_INVAL);
1207 1.65 perseant ++retries;
1208 1.65 perseant if (retries > LFS_IFIND_RETRIES)
1209 1.65 perseant panic("lfs_fastvget: dinode not found");
1210 1.103 perseant DLOG((DLOG_CLEAN, "lfs_fastvget: dinode not found,"
1211 1.103 perseant " retrying...\n"));
1212 1.65 perseant goto again;
1213 1.65 perseant }
1214 1.89 fvdl *ip->i_din.ffs1_din = *dip;
1215 1.123 ad brelse(bp, 0);
1216 1.1 mycroft }
1217 1.99 yamt lfs_vinit(mp, &vp);
1218 1.63 chs
1219 1.1 mycroft *vpp = vp;
1220 1.88 yamt
1221 1.74 yamt KASSERT(VOP_ISLOCKED(vp));
1222 1.137 hannken VOP_UNLOCK(vp);
1223 1.22 perseant
1224 1.1 mycroft return (0);
1225 1.1 mycroft }
1226 1.22 perseant
1227 1.85 perseant /*
1228 1.85 perseant * Make up a "fake" cleaner buffer, copy the data from userland into it.
1229 1.85 perseant */
1230 1.1 mycroft struct buf *
1231 1.122 christos lfs_fakebuf(struct lfs *fs, struct vnode *vp, int lbn, size_t size, void *uaddr)
1232 1.1 mycroft {
1233 1.1 mycroft struct buf *bp;
1234 1.25 perseant int error;
1235 1.75 yamt
1236 1.75 yamt KASSERT(VTOI(vp)->i_number != LFS_IFILE_INUM);
1237 1.73 yamt
1238 1.80 perseant bp = lfs_newbuf(VTOI(vp)->i_lfs, vp, lbn, size, LFS_NB_CLEAN);
1239 1.25 perseant error = copyin(uaddr, bp->b_data, size);
1240 1.62 chs if (error) {
1241 1.80 perseant lfs_freebuf(fs, bp);
1242 1.25 perseant return NULL;
1243 1.22 perseant }
1244 1.73 yamt KDASSERT(bp->b_iodone == lfs_callback);
1245 1.73 yamt
1246 1.65 perseant #if 0
1247 1.126 ad mutex_enter(&lfs_lock);
1248 1.65 perseant ++fs->lfs_iocount;
1249 1.126 ad mutex_exit(&lfs_lock);
1250 1.65 perseant #endif
1251 1.1 mycroft bp->b_bufsize = size;
1252 1.1 mycroft bp->b_bcount = size;
1253 1.1 mycroft return (bp);
1254 1.1 mycroft }
1255