lfs_vnops.c revision 1.197 1 1.197 hannken /* $NetBSD: lfs_vnops.c,v 1.197 2007/01/19 14:49:12 hannken Exp $ */
2 1.2 cgd
3 1.22 perseant /*-
4 1.84 perseant * Copyright (c) 1999, 2000, 2001, 2002, 2003 The NetBSD Foundation, Inc.
5 1.22 perseant * All rights reserved.
6 1.22 perseant *
7 1.22 perseant * This code is derived from software contributed to The NetBSD Foundation
8 1.22 perseant * by Konrad E. Schroder <perseant (at) hhhh.org>.
9 1.22 perseant *
10 1.22 perseant * Redistribution and use in source and binary forms, with or without
11 1.22 perseant * modification, are permitted provided that the following conditions
12 1.22 perseant * are met:
13 1.22 perseant * 1. Redistributions of source code must retain the above copyright
14 1.22 perseant * notice, this list of conditions and the following disclaimer.
15 1.22 perseant * 2. Redistributions in binary form must reproduce the above copyright
16 1.22 perseant * notice, this list of conditions and the following disclaimer in the
17 1.22 perseant * documentation and/or other materials provided with the distribution.
18 1.22 perseant * 3. All advertising materials mentioning features or use of this software
19 1.22 perseant * must display the following acknowledgement:
20 1.86 perseant * This product includes software developed by the NetBSD
21 1.86 perseant * Foundation, Inc. and its contributors.
22 1.22 perseant * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.22 perseant * contributors may be used to endorse or promote products derived
24 1.22 perseant * from this software without specific prior written permission.
25 1.22 perseant *
26 1.22 perseant * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.22 perseant * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.22 perseant * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.22 perseant * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.22 perseant * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.22 perseant * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.22 perseant * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.22 perseant * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.22 perseant * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.22 perseant * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.22 perseant * POSSIBILITY OF SUCH DAMAGE.
37 1.22 perseant */
38 1.1 mycroft /*
39 1.15 fvdl * Copyright (c) 1986, 1989, 1991, 1993, 1995
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 1.114 agc * 3. Neither the name of the University nor the names of its contributors
51 1.1 mycroft * may be used to endorse or promote products derived from this software
52 1.1 mycroft * without specific prior written permission.
53 1.1 mycroft *
54 1.1 mycroft * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
55 1.1 mycroft * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
56 1.1 mycroft * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
57 1.1 mycroft * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
58 1.1 mycroft * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
59 1.1 mycroft * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
60 1.1 mycroft * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
61 1.1 mycroft * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
62 1.1 mycroft * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
63 1.1 mycroft * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
64 1.1 mycroft * SUCH DAMAGE.
65 1.1 mycroft *
66 1.15 fvdl * @(#)lfs_vnops.c 8.13 (Berkeley) 6/10/95
67 1.1 mycroft */
68 1.58 lukem
69 1.58 lukem #include <sys/cdefs.h>
70 1.197 hannken __KERNEL_RCSID(0, "$NetBSD: lfs_vnops.c,v 1.197 2007/01/19 14:49:12 hannken Exp $");
71 1.182 martin
72 1.183 martin #ifdef _KERNEL_OPT
73 1.182 martin #include "opt_compat_netbsd.h"
74 1.183 martin #endif
75 1.17 sommerfe
76 1.1 mycroft #include <sys/param.h>
77 1.1 mycroft #include <sys/systm.h>
78 1.1 mycroft #include <sys/namei.h>
79 1.1 mycroft #include <sys/resourcevar.h>
80 1.1 mycroft #include <sys/kernel.h>
81 1.1 mycroft #include <sys/file.h>
82 1.1 mycroft #include <sys/stat.h>
83 1.1 mycroft #include <sys/buf.h>
84 1.1 mycroft #include <sys/proc.h>
85 1.1 mycroft #include <sys/mount.h>
86 1.1 mycroft #include <sys/vnode.h>
87 1.19 thorpej #include <sys/pool.h>
88 1.10 christos #include <sys/signalvar.h>
89 1.176 elad #include <sys/kauth.h>
90 1.179 perseant #include <sys/syslog.h>
91 1.197 hannken #include <sys/fstrans.h>
92 1.1 mycroft
93 1.12 mycroft #include <miscfs/fifofs/fifo.h>
94 1.12 mycroft #include <miscfs/genfs/genfs.h>
95 1.1 mycroft #include <miscfs/specfs/specdev.h>
96 1.1 mycroft
97 1.1 mycroft #include <ufs/ufs/inode.h>
98 1.1 mycroft #include <ufs/ufs/dir.h>
99 1.1 mycroft #include <ufs/ufs/ufsmount.h>
100 1.1 mycroft #include <ufs/ufs/ufs_extern.h>
101 1.1 mycroft
102 1.84 perseant #include <uvm/uvm.h>
103 1.95 perseant #include <uvm/uvm_pmap.h>
104 1.95 perseant #include <uvm/uvm_stat.h>
105 1.95 perseant #include <uvm/uvm_pager.h>
106 1.84 perseant
107 1.1 mycroft #include <ufs/lfs/lfs.h>
108 1.1 mycroft #include <ufs/lfs/lfs_extern.h>
109 1.1 mycroft
110 1.91 yamt extern pid_t lfs_writer_daemon;
111 1.84 perseant
112 1.1 mycroft /* Global vfs data structures for lfs. */
113 1.51 perseant int (**lfs_vnodeop_p)(void *);
114 1.50 jdolecek const struct vnodeopv_entry_desc lfs_vnodeop_entries[] = {
115 1.1 mycroft { &vop_default_desc, vn_default_error },
116 1.1 mycroft { &vop_lookup_desc, ufs_lookup }, /* lookup */
117 1.22 perseant { &vop_create_desc, lfs_create }, /* create */
118 1.82 yamt { &vop_whiteout_desc, ufs_whiteout }, /* whiteout */
119 1.22 perseant { &vop_mknod_desc, lfs_mknod }, /* mknod */
120 1.1 mycroft { &vop_open_desc, ufs_open }, /* open */
121 1.1 mycroft { &vop_close_desc, lfs_close }, /* close */
122 1.1 mycroft { &vop_access_desc, ufs_access }, /* access */
123 1.1 mycroft { &vop_getattr_desc, lfs_getattr }, /* getattr */
124 1.61 perseant { &vop_setattr_desc, lfs_setattr }, /* setattr */
125 1.1 mycroft { &vop_read_desc, lfs_read }, /* read */
126 1.1 mycroft { &vop_write_desc, lfs_write }, /* write */
127 1.4 mycroft { &vop_lease_desc, ufs_lease_check }, /* lease */
128 1.90 perseant { &vop_ioctl_desc, ufs_ioctl }, /* ioctl */
129 1.90 perseant { &vop_fcntl_desc, lfs_fcntl }, /* fcntl */
130 1.13 mycroft { &vop_poll_desc, ufs_poll }, /* poll */
131 1.68 jdolecek { &vop_kqfilter_desc, genfs_kqfilter }, /* kqfilter */
132 1.15 fvdl { &vop_revoke_desc, ufs_revoke }, /* revoke */
133 1.84 perseant { &vop_mmap_desc, lfs_mmap }, /* mmap */
134 1.1 mycroft { &vop_fsync_desc, lfs_fsync }, /* fsync */
135 1.1 mycroft { &vop_seek_desc, ufs_seek }, /* seek */
136 1.22 perseant { &vop_remove_desc, lfs_remove }, /* remove */
137 1.22 perseant { &vop_link_desc, lfs_link }, /* link */
138 1.22 perseant { &vop_rename_desc, lfs_rename }, /* rename */
139 1.22 perseant { &vop_mkdir_desc, lfs_mkdir }, /* mkdir */
140 1.22 perseant { &vop_rmdir_desc, lfs_rmdir }, /* rmdir */
141 1.22 perseant { &vop_symlink_desc, lfs_symlink }, /* symlink */
142 1.1 mycroft { &vop_readdir_desc, ufs_readdir }, /* readdir */
143 1.1 mycroft { &vop_readlink_desc, ufs_readlink }, /* readlink */
144 1.1 mycroft { &vop_abortop_desc, ufs_abortop }, /* abortop */
145 1.40 perseant { &vop_inactive_desc, lfs_inactive }, /* inactive */
146 1.1 mycroft { &vop_reclaim_desc, lfs_reclaim }, /* reclaim */
147 1.1 mycroft { &vop_lock_desc, ufs_lock }, /* lock */
148 1.1 mycroft { &vop_unlock_desc, ufs_unlock }, /* unlock */
149 1.1 mycroft { &vop_bmap_desc, ufs_bmap }, /* bmap */
150 1.94 perseant { &vop_strategy_desc, lfs_strategy }, /* strategy */
151 1.1 mycroft { &vop_print_desc, ufs_print }, /* print */
152 1.1 mycroft { &vop_islocked_desc, ufs_islocked }, /* islocked */
153 1.1 mycroft { &vop_pathconf_desc, ufs_pathconf }, /* pathconf */
154 1.1 mycroft { &vop_advlock_desc, ufs_advlock }, /* advlock */
155 1.1 mycroft { &vop_bwrite_desc, lfs_bwrite }, /* bwrite */
156 1.60 chs { &vop_getpages_desc, lfs_getpages }, /* getpages */
157 1.60 chs { &vop_putpages_desc, lfs_putpages }, /* putpages */
158 1.53 chs { NULL, NULL }
159 1.1 mycroft };
160 1.50 jdolecek const struct vnodeopv_desc lfs_vnodeop_opv_desc =
161 1.1 mycroft { &lfs_vnodeop_p, lfs_vnodeop_entries };
162 1.1 mycroft
163 1.51 perseant int (**lfs_specop_p)(void *);
164 1.50 jdolecek const struct vnodeopv_entry_desc lfs_specop_entries[] = {
165 1.1 mycroft { &vop_default_desc, vn_default_error },
166 1.1 mycroft { &vop_lookup_desc, spec_lookup }, /* lookup */
167 1.1 mycroft { &vop_create_desc, spec_create }, /* create */
168 1.1 mycroft { &vop_mknod_desc, spec_mknod }, /* mknod */
169 1.1 mycroft { &vop_open_desc, spec_open }, /* open */
170 1.65 perseant { &vop_close_desc, lfsspec_close }, /* close */
171 1.1 mycroft { &vop_access_desc, ufs_access }, /* access */
172 1.1 mycroft { &vop_getattr_desc, lfs_getattr }, /* getattr */
173 1.61 perseant { &vop_setattr_desc, lfs_setattr }, /* setattr */
174 1.1 mycroft { &vop_read_desc, ufsspec_read }, /* read */
175 1.1 mycroft { &vop_write_desc, ufsspec_write }, /* write */
176 1.4 mycroft { &vop_lease_desc, spec_lease_check }, /* lease */
177 1.1 mycroft { &vop_ioctl_desc, spec_ioctl }, /* ioctl */
178 1.27 wrstuden { &vop_fcntl_desc, ufs_fcntl }, /* fcntl */
179 1.13 mycroft { &vop_poll_desc, spec_poll }, /* poll */
180 1.68 jdolecek { &vop_kqfilter_desc, spec_kqfilter }, /* kqfilter */
181 1.15 fvdl { &vop_revoke_desc, spec_revoke }, /* revoke */
182 1.1 mycroft { &vop_mmap_desc, spec_mmap }, /* mmap */
183 1.1 mycroft { &vop_fsync_desc, spec_fsync }, /* fsync */
184 1.1 mycroft { &vop_seek_desc, spec_seek }, /* seek */
185 1.1 mycroft { &vop_remove_desc, spec_remove }, /* remove */
186 1.1 mycroft { &vop_link_desc, spec_link }, /* link */
187 1.1 mycroft { &vop_rename_desc, spec_rename }, /* rename */
188 1.1 mycroft { &vop_mkdir_desc, spec_mkdir }, /* mkdir */
189 1.1 mycroft { &vop_rmdir_desc, spec_rmdir }, /* rmdir */
190 1.1 mycroft { &vop_symlink_desc, spec_symlink }, /* symlink */
191 1.1 mycroft { &vop_readdir_desc, spec_readdir }, /* readdir */
192 1.1 mycroft { &vop_readlink_desc, spec_readlink }, /* readlink */
193 1.1 mycroft { &vop_abortop_desc, spec_abortop }, /* abortop */
194 1.40 perseant { &vop_inactive_desc, lfs_inactive }, /* inactive */
195 1.1 mycroft { &vop_reclaim_desc, lfs_reclaim }, /* reclaim */
196 1.1 mycroft { &vop_lock_desc, ufs_lock }, /* lock */
197 1.1 mycroft { &vop_unlock_desc, ufs_unlock }, /* unlock */
198 1.1 mycroft { &vop_bmap_desc, spec_bmap }, /* bmap */
199 1.1 mycroft { &vop_strategy_desc, spec_strategy }, /* strategy */
200 1.1 mycroft { &vop_print_desc, ufs_print }, /* print */
201 1.1 mycroft { &vop_islocked_desc, ufs_islocked }, /* islocked */
202 1.1 mycroft { &vop_pathconf_desc, spec_pathconf }, /* pathconf */
203 1.1 mycroft { &vop_advlock_desc, spec_advlock }, /* advlock */
204 1.28 perseant { &vop_bwrite_desc, vn_bwrite }, /* bwrite */
205 1.53 chs { &vop_getpages_desc, spec_getpages }, /* getpages */
206 1.53 chs { &vop_putpages_desc, spec_putpages }, /* putpages */
207 1.53 chs { NULL, NULL }
208 1.1 mycroft };
209 1.50 jdolecek const struct vnodeopv_desc lfs_specop_opv_desc =
210 1.1 mycroft { &lfs_specop_p, lfs_specop_entries };
211 1.1 mycroft
212 1.51 perseant int (**lfs_fifoop_p)(void *);
213 1.50 jdolecek const struct vnodeopv_entry_desc lfs_fifoop_entries[] = {
214 1.1 mycroft { &vop_default_desc, vn_default_error },
215 1.1 mycroft { &vop_lookup_desc, fifo_lookup }, /* lookup */
216 1.1 mycroft { &vop_create_desc, fifo_create }, /* create */
217 1.1 mycroft { &vop_mknod_desc, fifo_mknod }, /* mknod */
218 1.1 mycroft { &vop_open_desc, fifo_open }, /* open */
219 1.65 perseant { &vop_close_desc, lfsfifo_close }, /* close */
220 1.1 mycroft { &vop_access_desc, ufs_access }, /* access */
221 1.1 mycroft { &vop_getattr_desc, lfs_getattr }, /* getattr */
222 1.61 perseant { &vop_setattr_desc, lfs_setattr }, /* setattr */
223 1.1 mycroft { &vop_read_desc, ufsfifo_read }, /* read */
224 1.1 mycroft { &vop_write_desc, ufsfifo_write }, /* write */
225 1.4 mycroft { &vop_lease_desc, fifo_lease_check }, /* lease */
226 1.1 mycroft { &vop_ioctl_desc, fifo_ioctl }, /* ioctl */
227 1.27 wrstuden { &vop_fcntl_desc, ufs_fcntl }, /* fcntl */
228 1.13 mycroft { &vop_poll_desc, fifo_poll }, /* poll */
229 1.68 jdolecek { &vop_kqfilter_desc, fifo_kqfilter }, /* kqfilter */
230 1.15 fvdl { &vop_revoke_desc, fifo_revoke }, /* revoke */
231 1.1 mycroft { &vop_mmap_desc, fifo_mmap }, /* mmap */
232 1.1 mycroft { &vop_fsync_desc, fifo_fsync }, /* fsync */
233 1.1 mycroft { &vop_seek_desc, fifo_seek }, /* seek */
234 1.1 mycroft { &vop_remove_desc, fifo_remove }, /* remove */
235 1.1 mycroft { &vop_link_desc, fifo_link }, /* link */
236 1.1 mycroft { &vop_rename_desc, fifo_rename }, /* rename */
237 1.1 mycroft { &vop_mkdir_desc, fifo_mkdir }, /* mkdir */
238 1.1 mycroft { &vop_rmdir_desc, fifo_rmdir }, /* rmdir */
239 1.1 mycroft { &vop_symlink_desc, fifo_symlink }, /* symlink */
240 1.1 mycroft { &vop_readdir_desc, fifo_readdir }, /* readdir */
241 1.1 mycroft { &vop_readlink_desc, fifo_readlink }, /* readlink */
242 1.1 mycroft { &vop_abortop_desc, fifo_abortop }, /* abortop */
243 1.40 perseant { &vop_inactive_desc, lfs_inactive }, /* inactive */
244 1.1 mycroft { &vop_reclaim_desc, lfs_reclaim }, /* reclaim */
245 1.1 mycroft { &vop_lock_desc, ufs_lock }, /* lock */
246 1.1 mycroft { &vop_unlock_desc, ufs_unlock }, /* unlock */
247 1.1 mycroft { &vop_bmap_desc, fifo_bmap }, /* bmap */
248 1.1 mycroft { &vop_strategy_desc, fifo_strategy }, /* strategy */
249 1.1 mycroft { &vop_print_desc, ufs_print }, /* print */
250 1.1 mycroft { &vop_islocked_desc, ufs_islocked }, /* islocked */
251 1.1 mycroft { &vop_pathconf_desc, fifo_pathconf }, /* pathconf */
252 1.1 mycroft { &vop_advlock_desc, fifo_advlock }, /* advlock */
253 1.1 mycroft { &vop_bwrite_desc, lfs_bwrite }, /* bwrite */
254 1.86 perseant { &vop_putpages_desc, fifo_putpages }, /* putpages */
255 1.53 chs { NULL, NULL }
256 1.1 mycroft };
257 1.50 jdolecek const struct vnodeopv_desc lfs_fifoop_opv_desc =
258 1.1 mycroft { &lfs_fifoop_p, lfs_fifoop_entries };
259 1.1 mycroft
260 1.134 perseant static int check_dirty(struct lfs *, struct vnode *, off_t, off_t, off_t, int, int);
261 1.134 perseant
262 1.1 mycroft #define LFS_READWRITE
263 1.1 mycroft #include <ufs/ufs/ufs_readwrite.c>
264 1.1 mycroft #undef LFS_READWRITE
265 1.1 mycroft
266 1.1 mycroft /*
267 1.1 mycroft * Synch an open file.
268 1.1 mycroft */
269 1.1 mycroft /* ARGSUSED */
270 1.10 christos int
271 1.51 perseant lfs_fsync(void *v)
272 1.10 christos {
273 1.1 mycroft struct vop_fsync_args /* {
274 1.1 mycroft struct vnode *a_vp;
275 1.176 elad kauth_cred_t a_cred;
276 1.22 perseant int a_flags;
277 1.49 toshii off_t offlo;
278 1.49 toshii off_t offhi;
279 1.157 christos struct lwp *a_l;
280 1.10 christos } */ *ap = v;
281 1.60 chs struct vnode *vp = ap->a_vp;
282 1.84 perseant int error, wait;
283 1.84 perseant
284 1.161 perseant /* If we're mounted read-only, don't try to sync. */
285 1.161 perseant if (VTOI(vp)->i_lfs->lfs_ronly)
286 1.161 perseant return 0;
287 1.161 perseant
288 1.86 perseant /*
289 1.84 perseant * Trickle sync checks for need to do a checkpoint after possible
290 1.84 perseant * activity from the pagedaemon.
291 1.86 perseant */
292 1.84 perseant if (ap->a_flags & FSYNC_LAZY) {
293 1.113 yamt simple_lock(&lfs_subsys_lock);
294 1.84 perseant wakeup(&lfs_writer_daemon);
295 1.113 yamt simple_unlock(&lfs_subsys_lock);
296 1.47 perseant return 0;
297 1.84 perseant }
298 1.47 perseant
299 1.175 perseant /*
300 1.188 perseant * If a vnode is bring cleaned, flush it out before we try to
301 1.188 perseant * reuse it. This prevents the cleaner from writing files twice
302 1.188 perseant * in the same partial segment, causing an accounting underflow.
303 1.188 perseant */
304 1.188 perseant if (ap->a_flags & FSYNC_RECLAIM && VTOI(vp)->i_flags & IN_CLEANING) {
305 1.188 perseant /* printf("avoiding VONWORKLIST panic\n"); */
306 1.188 perseant lfs_vflush(vp);
307 1.175 perseant }
308 1.175 perseant
309 1.84 perseant wait = (ap->a_flags & FSYNC_WAIT);
310 1.103 perseant simple_lock(&vp->v_interlock);
311 1.103 perseant error = VOP_PUTPAGES(vp, trunc_page(ap->a_offlo),
312 1.103 perseant round_page(ap->a_offhi),
313 1.103 perseant PGO_CLEANIT | (wait ? PGO_SYNCIO : 0));
314 1.103 perseant if (error)
315 1.103 perseant return error;
316 1.156 yamt error = lfs_update(vp, NULL, NULL, wait ? UPDATE_WAIT : 0);
317 1.133 wrstuden if (error == 0 && ap->a_flags & FSYNC_CACHE) {
318 1.133 wrstuden int l = 0;
319 1.133 wrstuden error = VOP_IOCTL(VTOI(vp)->i_devvp, DIOCCACHESYNC, &l, FWRITE,
320 1.185 ad ap->a_l->l_cred, ap->a_l);
321 1.133 wrstuden }
322 1.103 perseant if (wait && !VPISEMPTY(vp))
323 1.103 perseant LFS_SET_UINO(VTOI(vp), IN_MODIFIED);
324 1.84 perseant
325 1.63 perseant return error;
326 1.1 mycroft }
327 1.1 mycroft
328 1.1 mycroft /*
329 1.40 perseant * Take IN_ADIROP off, then call ufs_inactive.
330 1.40 perseant */
331 1.40 perseant int
332 1.51 perseant lfs_inactive(void *v)
333 1.40 perseant {
334 1.40 perseant struct vop_inactive_args /* {
335 1.40 perseant struct vnode *a_vp;
336 1.157 christos struct lwp *a_l;
337 1.40 perseant } */ *ap = v;
338 1.72 yamt
339 1.102 fvdl KASSERT(VTOI(ap->a_vp)->i_nlink == VTOI(ap->a_vp)->i_ffs_effnlink);
340 1.77 yamt
341 1.76 yamt lfs_unmark_vnode(ap->a_vp);
342 1.76 yamt
343 1.97 perseant /*
344 1.97 perseant * The Ifile is only ever inactivated on unmount.
345 1.97 perseant * Streamline this process by not giving it more dirty blocks.
346 1.97 perseant */
347 1.97 perseant if (VTOI(ap->a_vp)->i_number == LFS_IFILE_INUM) {
348 1.97 perseant LFS_CLR_UINO(VTOI(ap->a_vp), IN_ALLMOD);
349 1.99 perseant VOP_UNLOCK(ap->a_vp, 0);
350 1.97 perseant return 0;
351 1.97 perseant }
352 1.97 perseant
353 1.75 yamt return ufs_inactive(v);
354 1.40 perseant }
355 1.40 perseant
356 1.40 perseant /*
357 1.1 mycroft * These macros are used to bracket UFS directory ops, so that we can
358 1.1 mycroft * identify all the pages touched during directory ops which need to
359 1.1 mycroft * be ordered and flushed atomically, so that they may be recovered.
360 1.138 perseant *
361 1.138 perseant * Because we have to mark nodes VDIROP in order to prevent
362 1.22 perseant * the cache from reclaiming them while a dirop is in progress, we must
363 1.22 perseant * also manage the number of nodes so marked (otherwise we can run out).
364 1.22 perseant * We do this by setting lfs_dirvcount to the number of marked vnodes; it
365 1.22 perseant * is decremented during segment write, when VDIROP is taken off.
366 1.22 perseant */
367 1.138 perseant #define MARK_VNODE(vp) lfs_mark_vnode(vp)
368 1.138 perseant #define UNMARK_VNODE(vp) lfs_unmark_vnode(vp)
369 1.138 perseant #define SET_DIROP_CREATE(dvp, vpp) lfs_set_dirop_create((dvp), (vpp))
370 1.138 perseant #define SET_DIROP_REMOVE(dvp, vp) lfs_set_dirop((dvp), (vp))
371 1.138 perseant static int lfs_set_dirop_create(struct vnode *, struct vnode **);
372 1.71 yamt static int lfs_set_dirop(struct vnode *, struct vnode *);
373 1.24 perseant
374 1.46 perseant static int
375 1.138 perseant lfs_set_dirop(struct vnode *dvp, struct vnode *vp)
376 1.40 perseant {
377 1.24 perseant struct lfs *fs;
378 1.24 perseant int error;
379 1.24 perseant
380 1.138 perseant KASSERT(VOP_ISLOCKED(dvp));
381 1.138 perseant KASSERT(vp == NULL || VOP_ISLOCKED(vp));
382 1.71 yamt
383 1.138 perseant fs = VTOI(dvp)->i_lfs;
384 1.141 perseant
385 1.141 perseant ASSERT_NO_SEGLOCK(fs);
386 1.44 perseant /*
387 1.134 perseant * LFS_NRESERVE calculates direct and indirect blocks as well
388 1.134 perseant * as an inode block; an overestimate in most cases.
389 1.44 perseant */
390 1.138 perseant if ((error = lfs_reserve(fs, dvp, vp, LFS_NRESERVE(fs))) != 0)
391 1.44 perseant return (error);
392 1.70 yamt
393 1.141 perseant restart:
394 1.141 perseant simple_lock(&fs->lfs_interlock);
395 1.141 perseant if (fs->lfs_dirops == 0) {
396 1.141 perseant simple_unlock(&fs->lfs_interlock);
397 1.138 perseant lfs_check(dvp, LFS_UNUSED_LBN, 0);
398 1.141 perseant simple_lock(&fs->lfs_interlock);
399 1.113 yamt }
400 1.190 perseant while (fs->lfs_writer) {
401 1.190 perseant error = ltsleep(&fs->lfs_dirops, (PRIBIO + 1) | PCATCH,
402 1.190 perseant "lfs_sdirop", 0, &fs->lfs_interlock);
403 1.190 perseant if (error == EINTR) {
404 1.190 perseant simple_unlock(&fs->lfs_interlock);
405 1.190 perseant goto unreserve;
406 1.190 perseant }
407 1.190 perseant }
408 1.113 yamt simple_lock(&lfs_subsys_lock);
409 1.113 yamt if (lfs_dirvcount > LFS_MAX_DIROP && fs->lfs_dirops == 0) {
410 1.113 yamt wakeup(&lfs_writer_daemon);
411 1.113 yamt simple_unlock(&lfs_subsys_lock);
412 1.113 yamt simple_unlock(&fs->lfs_interlock);
413 1.121 fvdl preempt(1);
414 1.113 yamt goto restart;
415 1.113 yamt }
416 1.33 perseant
417 1.113 yamt if (lfs_dirvcount > LFS_MAX_DIROP) {
418 1.113 yamt simple_unlock(&fs->lfs_interlock);
419 1.136 perseant DLOG((DLOG_DIROP, "lfs_set_dirop: sleeping with dirops=%d, "
420 1.136 perseant "dirvcount=%d\n", fs->lfs_dirops, lfs_dirvcount));
421 1.113 yamt if ((error = ltsleep(&lfs_dirvcount,
422 1.113 yamt PCATCH | PUSER | PNORELOCK, "lfs_maxdirop", 0,
423 1.113 yamt &lfs_subsys_lock)) != 0) {
424 1.113 yamt goto unreserve;
425 1.113 yamt }
426 1.113 yamt goto restart;
427 1.135 perry }
428 1.113 yamt simple_unlock(&lfs_subsys_lock);
429 1.113 yamt
430 1.135 perry ++fs->lfs_dirops;
431 1.135 perry fs->lfs_doifile = 1;
432 1.113 yamt simple_unlock(&fs->lfs_interlock);
433 1.24 perseant
434 1.46 perseant /* Hold a reference so SET_ENDOP will be happy */
435 1.138 perseant vref(dvp);
436 1.138 perseant if (vp) {
437 1.138 perseant vref(vp);
438 1.138 perseant MARK_VNODE(vp);
439 1.138 perseant }
440 1.46 perseant
441 1.138 perseant MARK_VNODE(dvp);
442 1.24 perseant return 0;
443 1.70 yamt
444 1.70 yamt unreserve:
445 1.138 perseant lfs_reserve(fs, dvp, vp, -LFS_NRESERVE(fs));
446 1.70 yamt return error;
447 1.1 mycroft }
448 1.1 mycroft
449 1.138 perseant /*
450 1.138 perseant * Get a new vnode *before* adjusting the dirop count, to avoid a deadlock
451 1.138 perseant * in getnewvnode(), if we have a stacked filesystem mounted on top
452 1.138 perseant * of us.
453 1.138 perseant *
454 1.138 perseant * NB: this means we have to clear the new vnodes on error. Fortunately
455 1.138 perseant * SET_ENDOP is there to do that for us.
456 1.138 perseant */
457 1.138 perseant static int
458 1.138 perseant lfs_set_dirop_create(struct vnode *dvp, struct vnode **vpp)
459 1.138 perseant {
460 1.138 perseant int error;
461 1.138 perseant struct lfs *fs;
462 1.138 perseant
463 1.138 perseant fs = VFSTOUFS(dvp->v_mount)->um_lfs;
464 1.141 perseant ASSERT_NO_SEGLOCK(fs);
465 1.138 perseant if (fs->lfs_ronly)
466 1.138 perseant return EROFS;
467 1.138 perseant if (vpp && (error = getnewvnode(VT_LFS, dvp->v_mount, lfs_vnodeop_p, vpp))) {
468 1.138 perseant DLOG((DLOG_ALLOC, "lfs_set_dirop_create: dvp %p error %d\n",
469 1.138 perseant dvp, error));
470 1.138 perseant return error;
471 1.138 perseant }
472 1.138 perseant if ((error = lfs_set_dirop(dvp, NULL)) != 0) {
473 1.138 perseant if (vpp) {
474 1.138 perseant ungetnewvnode(*vpp);
475 1.138 perseant *vpp = NULL;
476 1.138 perseant }
477 1.138 perseant return error;
478 1.138 perseant }
479 1.138 perseant return 0;
480 1.1 mycroft }
481 1.1 mycroft
482 1.138 perseant #define SET_ENDOP_BASE(fs, dvp, str) \
483 1.138 perseant do { \
484 1.138 perseant simple_lock(&(fs)->lfs_interlock); \
485 1.138 perseant --(fs)->lfs_dirops; \
486 1.138 perseant if (!(fs)->lfs_dirops) { \
487 1.138 perseant if ((fs)->lfs_nadirop) { \
488 1.138 perseant panic("SET_ENDOP: %s: no dirops but " \
489 1.138 perseant " nadirop=%d", (str), \
490 1.138 perseant (fs)->lfs_nadirop); \
491 1.138 perseant } \
492 1.138 perseant wakeup(&(fs)->lfs_writer); \
493 1.138 perseant simple_unlock(&(fs)->lfs_interlock); \
494 1.138 perseant lfs_check((dvp), LFS_UNUSED_LBN, 0); \
495 1.138 perseant } else \
496 1.138 perseant simple_unlock(&(fs)->lfs_interlock); \
497 1.138 perseant } while(0)
498 1.138 perseant #define SET_ENDOP_CREATE(fs, dvp, nvpp, str) \
499 1.138 perseant do { \
500 1.138 perseant UNMARK_VNODE(dvp); \
501 1.138 perseant if (nvpp && *nvpp) \
502 1.138 perseant UNMARK_VNODE(*nvpp); \
503 1.138 perseant /* Check for error return to stem vnode leakage */ \
504 1.138 perseant if (nvpp && *nvpp && !((*nvpp)->v_flag & VDIROP)) \
505 1.138 perseant ungetnewvnode(*(nvpp)); \
506 1.138 perseant SET_ENDOP_BASE((fs), (dvp), (str)); \
507 1.138 perseant lfs_reserve((fs), (dvp), NULL, -LFS_NRESERVE(fs)); \
508 1.138 perseant vrele(dvp); \
509 1.138 perseant } while(0)
510 1.138 perseant #define SET_ENDOP_CREATE_AP(ap, str) \
511 1.138 perseant SET_ENDOP_CREATE(VTOI((ap)->a_dvp)->i_lfs, (ap)->a_dvp, \
512 1.138 perseant (ap)->a_vpp, (str))
513 1.138 perseant #define SET_ENDOP_REMOVE(fs, dvp, ovp, str) \
514 1.138 perseant do { \
515 1.138 perseant UNMARK_VNODE(dvp); \
516 1.138 perseant if (ovp) \
517 1.138 perseant UNMARK_VNODE(ovp); \
518 1.138 perseant SET_ENDOP_BASE((fs), (dvp), (str)); \
519 1.138 perseant lfs_reserve((fs), (dvp), (ovp), -LFS_NRESERVE(fs)); \
520 1.138 perseant vrele(dvp); \
521 1.138 perseant if (ovp) \
522 1.138 perseant vrele(ovp); \
523 1.138 perseant } while(0)
524 1.117 yamt
525 1.117 yamt void
526 1.117 yamt lfs_mark_vnode(struct vnode *vp)
527 1.117 yamt {
528 1.117 yamt struct inode *ip = VTOI(vp);
529 1.117 yamt struct lfs *fs = ip->i_lfs;
530 1.37 perseant
531 1.141 perseant simple_lock(&fs->lfs_interlock);
532 1.117 yamt if (!(ip->i_flag & IN_ADIROP)) {
533 1.117 yamt if (!(vp->v_flag & VDIROP)) {
534 1.117 yamt (void)lfs_vref(vp);
535 1.141 perseant simple_lock(&lfs_subsys_lock);
536 1.117 yamt ++lfs_dirvcount;
537 1.173 perseant ++fs->lfs_dirvcount;
538 1.141 perseant simple_unlock(&lfs_subsys_lock);
539 1.117 yamt TAILQ_INSERT_TAIL(&fs->lfs_dchainhd, ip, i_lfs_dchain);
540 1.117 yamt vp->v_flag |= VDIROP;
541 1.117 yamt }
542 1.117 yamt ++fs->lfs_nadirop;
543 1.117 yamt ip->i_flag |= IN_ADIROP;
544 1.117 yamt } else
545 1.117 yamt KASSERT(vp->v_flag & VDIROP);
546 1.141 perseant simple_unlock(&fs->lfs_interlock);
547 1.117 yamt }
548 1.40 perseant
549 1.117 yamt void
550 1.117 yamt lfs_unmark_vnode(struct vnode *vp)
551 1.40 perseant {
552 1.117 yamt struct inode *ip = VTOI(vp);
553 1.40 perseant
554 1.146 perseant if (ip && (ip->i_flag & IN_ADIROP)) {
555 1.117 yamt KASSERT(vp->v_flag & VDIROP);
556 1.141 perseant simple_lock(&ip->i_lfs->lfs_interlock);
557 1.40 perseant --ip->i_lfs->lfs_nadirop;
558 1.141 perseant simple_unlock(&ip->i_lfs->lfs_interlock);
559 1.117 yamt ip->i_flag &= ~IN_ADIROP;
560 1.117 yamt }
561 1.40 perseant }
562 1.15 fvdl
563 1.1 mycroft int
564 1.51 perseant lfs_symlink(void *v)
565 1.10 christos {
566 1.1 mycroft struct vop_symlink_args /* {
567 1.1 mycroft struct vnode *a_dvp;
568 1.1 mycroft struct vnode **a_vpp;
569 1.1 mycroft struct componentname *a_cnp;
570 1.1 mycroft struct vattr *a_vap;
571 1.1 mycroft char *a_target;
572 1.10 christos } */ *ap = v;
573 1.37 perseant int error;
574 1.1 mycroft
575 1.138 perseant if ((error = SET_DIROP_CREATE(ap->a_dvp, ap->a_vpp)) != 0) {
576 1.34 perseant vput(ap->a_dvp);
577 1.37 perseant return error;
578 1.34 perseant }
579 1.37 perseant error = ufs_symlink(ap);
580 1.138 perseant SET_ENDOP_CREATE_AP(ap, "symlink");
581 1.37 perseant return (error);
582 1.1 mycroft }
583 1.1 mycroft
584 1.1 mycroft int
585 1.51 perseant lfs_mknod(void *v)
586 1.10 christos {
587 1.22 perseant struct vop_mknod_args /* {
588 1.1 mycroft struct vnode *a_dvp;
589 1.1 mycroft struct vnode **a_vpp;
590 1.1 mycroft struct componentname *a_cnp;
591 1.1 mycroft struct vattr *a_vap;
592 1.22 perseant } */ *ap = v;
593 1.86 perseant struct vattr *vap = ap->a_vap;
594 1.86 perseant struct vnode **vpp = ap->a_vpp;
595 1.86 perseant struct inode *ip;
596 1.86 perseant int error;
597 1.135 perry struct mount *mp;
598 1.52 assar ino_t ino;
599 1.1 mycroft
600 1.138 perseant if ((error = SET_DIROP_CREATE(ap->a_dvp, ap->a_vpp)) != 0) {
601 1.34 perseant vput(ap->a_dvp);
602 1.28 perseant return error;
603 1.34 perseant }
604 1.28 perseant error = ufs_makeinode(MAKEIMODE(vap->va_type, vap->va_mode),
605 1.109 fvdl ap->a_dvp, vpp, ap->a_cnp);
606 1.28 perseant
607 1.28 perseant /* Either way we're done with the dirop at this point */
608 1.138 perseant SET_ENDOP_CREATE_AP(ap, "mknod");
609 1.28 perseant
610 1.86 perseant if (error)
611 1.28 perseant return (error);
612 1.28 perseant
613 1.86 perseant ip = VTOI(*vpp);
614 1.52 assar mp = (*vpp)->v_mount;
615 1.52 assar ino = ip->i_number;
616 1.86 perseant ip->i_flag |= IN_ACCESS | IN_CHANGE | IN_UPDATE;
617 1.86 perseant if (vap->va_rdev != VNOVAL) {
618 1.86 perseant /*
619 1.86 perseant * Want to be able to use this to make badblock
620 1.86 perseant * inodes, so don't truncate the dev number.
621 1.86 perseant */
622 1.28 perseant #if 0
623 1.102 fvdl ip->i_ffs1_rdev = ufs_rw32(vap->va_rdev,
624 1.86 perseant UFS_MPNEEDSWAP((*vpp)->v_mount));
625 1.28 perseant #else
626 1.102 fvdl ip->i_ffs1_rdev = vap->va_rdev;
627 1.28 perseant #endif
628 1.86 perseant }
629 1.134 perseant
630 1.28 perseant /*
631 1.28 perseant * Call fsync to write the vnode so that we don't have to deal with
632 1.28 perseant * flushing it when it's marked VDIROP|VXLOCK.
633 1.28 perseant *
634 1.28 perseant * XXX KS - If we can't flush we also can't call vgone(), so must
635 1.28 perseant * return. But, that leaves this vnode in limbo, also not good.
636 1.28 perseant * Can this ever happen (barring hardware failure)?
637 1.28 perseant */
638 1.135 perry if ((error = VOP_FSYNC(*vpp, NOCRED, FSYNC_WAIT, 0, 0,
639 1.157 christos curlwp)) != 0) {
640 1.153 christos panic("lfs_mknod: couldn't fsync (ino %llu)",
641 1.153 christos (unsigned long long)ino);
642 1.136 perseant /* return (error); */
643 1.40 perseant }
644 1.86 perseant /*
645 1.86 perseant * Remove vnode so that it will be reloaded by VFS_VGET and
646 1.86 perseant * checked to see if it is an alias of an existing entry in
647 1.86 perseant * the inode cache.
648 1.86 perseant */
649 1.28 perseant /* Used to be vput, but that causes us to call VOP_INACTIVE twice. */
650 1.134 perseant
651 1.40 perseant VOP_UNLOCK(*vpp, 0);
652 1.28 perseant lfs_vunref(*vpp);
653 1.86 perseant (*vpp)->v_type = VNON;
654 1.86 perseant vgone(*vpp);
655 1.108 thorpej error = VFS_VGET(mp, ino, vpp);
656 1.134 perseant
657 1.52 assar if (error != 0) {
658 1.52 assar *vpp = NULL;
659 1.52 assar return (error);
660 1.52 assar }
661 1.86 perseant return (0);
662 1.1 mycroft }
663 1.1 mycroft
664 1.1 mycroft int
665 1.51 perseant lfs_create(void *v)
666 1.10 christos {
667 1.22 perseant struct vop_create_args /* {
668 1.1 mycroft struct vnode *a_dvp;
669 1.1 mycroft struct vnode **a_vpp;
670 1.1 mycroft struct componentname *a_cnp;
671 1.1 mycroft struct vattr *a_vap;
672 1.10 christos } */ *ap = v;
673 1.37 perseant int error;
674 1.1 mycroft
675 1.138 perseant if ((error = SET_DIROP_CREATE(ap->a_dvp, ap->a_vpp)) != 0) {
676 1.34 perseant vput(ap->a_dvp);
677 1.37 perseant return error;
678 1.34 perseant }
679 1.37 perseant error = ufs_create(ap);
680 1.138 perseant SET_ENDOP_CREATE_AP(ap, "create");
681 1.37 perseant return (error);
682 1.22 perseant }
683 1.22 perseant
684 1.22 perseant int
685 1.51 perseant lfs_mkdir(void *v)
686 1.10 christos {
687 1.22 perseant struct vop_mkdir_args /* {
688 1.1 mycroft struct vnode *a_dvp;
689 1.1 mycroft struct vnode **a_vpp;
690 1.1 mycroft struct componentname *a_cnp;
691 1.1 mycroft struct vattr *a_vap;
692 1.10 christos } */ *ap = v;
693 1.37 perseant int error;
694 1.1 mycroft
695 1.138 perseant if ((error = SET_DIROP_CREATE(ap->a_dvp, ap->a_vpp)) != 0) {
696 1.34 perseant vput(ap->a_dvp);
697 1.37 perseant return error;
698 1.34 perseant }
699 1.37 perseant error = ufs_mkdir(ap);
700 1.138 perseant SET_ENDOP_CREATE_AP(ap, "mkdir");
701 1.37 perseant return (error);
702 1.1 mycroft }
703 1.1 mycroft
704 1.1 mycroft int
705 1.51 perseant lfs_remove(void *v)
706 1.10 christos {
707 1.22 perseant struct vop_remove_args /* {
708 1.1 mycroft struct vnode *a_dvp;
709 1.1 mycroft struct vnode *a_vp;
710 1.1 mycroft struct componentname *a_cnp;
711 1.10 christos } */ *ap = v;
712 1.34 perseant struct vnode *dvp, *vp;
713 1.188 perseant struct inode *ip;
714 1.37 perseant int error;
715 1.34 perseant
716 1.34 perseant dvp = ap->a_dvp;
717 1.34 perseant vp = ap->a_vp;
718 1.188 perseant ip = VTOI(vp);
719 1.138 perseant if ((error = SET_DIROP_REMOVE(dvp, vp)) != 0) {
720 1.34 perseant if (dvp == vp)
721 1.34 perseant vrele(vp);
722 1.34 perseant else
723 1.34 perseant vput(vp);
724 1.34 perseant vput(dvp);
725 1.37 perseant return error;
726 1.34 perseant }
727 1.37 perseant error = ufs_remove(ap);
728 1.188 perseant if (ip->i_nlink == 0)
729 1.188 perseant lfs_orphan(ip->i_lfs, ip->i_number);
730 1.188 perseant SET_ENDOP_REMOVE(ip->i_lfs, dvp, ap->a_vp, "remove");
731 1.37 perseant return (error);
732 1.1 mycroft }
733 1.1 mycroft
734 1.1 mycroft int
735 1.51 perseant lfs_rmdir(void *v)
736 1.10 christos {
737 1.22 perseant struct vop_rmdir_args /* {
738 1.1 mycroft struct vnodeop_desc *a_desc;
739 1.1 mycroft struct vnode *a_dvp;
740 1.1 mycroft struct vnode *a_vp;
741 1.1 mycroft struct componentname *a_cnp;
742 1.10 christos } */ *ap = v;
743 1.84 perseant struct vnode *vp;
744 1.188 perseant struct inode *ip;
745 1.37 perseant int error;
746 1.1 mycroft
747 1.84 perseant vp = ap->a_vp;
748 1.188 perseant ip = VTOI(vp);
749 1.138 perseant if ((error = SET_DIROP_REMOVE(ap->a_dvp, ap->a_vp)) != 0) {
750 1.194 chs if (ap->a_dvp == vp)
751 1.194 chs vrele(ap->a_dvp);
752 1.194 chs else
753 1.194 chs vput(ap->a_dvp);
754 1.84 perseant vput(vp);
755 1.37 perseant return error;
756 1.34 perseant }
757 1.37 perseant error = ufs_rmdir(ap);
758 1.188 perseant if (ip->i_nlink == 0)
759 1.188 perseant lfs_orphan(ip->i_lfs, ip->i_number);
760 1.188 perseant SET_ENDOP_REMOVE(ip->i_lfs, ap->a_dvp, ap->a_vp, "rmdir");
761 1.37 perseant return (error);
762 1.1 mycroft }
763 1.1 mycroft
764 1.1 mycroft int
765 1.51 perseant lfs_link(void *v)
766 1.10 christos {
767 1.22 perseant struct vop_link_args /* {
768 1.9 mycroft struct vnode *a_dvp;
769 1.1 mycroft struct vnode *a_vp;
770 1.1 mycroft struct componentname *a_cnp;
771 1.10 christos } */ *ap = v;
772 1.37 perseant int error;
773 1.138 perseant struct vnode **vpp = NULL;
774 1.1 mycroft
775 1.138 perseant if ((error = SET_DIROP_CREATE(ap->a_dvp, vpp)) != 0) {
776 1.34 perseant vput(ap->a_dvp);
777 1.37 perseant return error;
778 1.34 perseant }
779 1.37 perseant error = ufs_link(ap);
780 1.138 perseant SET_ENDOP_CREATE(VTOI(ap->a_dvp)->i_lfs, ap->a_dvp, vpp, "link");
781 1.37 perseant return (error);
782 1.1 mycroft }
783 1.22 perseant
784 1.1 mycroft int
785 1.51 perseant lfs_rename(void *v)
786 1.10 christos {
787 1.22 perseant struct vop_rename_args /* {
788 1.1 mycroft struct vnode *a_fdvp;
789 1.1 mycroft struct vnode *a_fvp;
790 1.1 mycroft struct componentname *a_fcnp;
791 1.1 mycroft struct vnode *a_tdvp;
792 1.1 mycroft struct vnode *a_tvp;
793 1.1 mycroft struct componentname *a_tcnp;
794 1.10 christos } */ *ap = v;
795 1.30 perseant struct vnode *tvp, *fvp, *tdvp, *fdvp;
796 1.83 perseant struct componentname *tcnp, *fcnp;
797 1.30 perseant int error;
798 1.29 perseant struct lfs *fs;
799 1.29 perseant
800 1.29 perseant fs = VTOI(ap->a_fdvp)->i_lfs;
801 1.30 perseant tvp = ap->a_tvp;
802 1.30 perseant tdvp = ap->a_tdvp;
803 1.83 perseant tcnp = ap->a_tcnp;
804 1.30 perseant fvp = ap->a_fvp;
805 1.30 perseant fdvp = ap->a_fdvp;
806 1.83 perseant fcnp = ap->a_fcnp;
807 1.30 perseant
808 1.30 perseant /*
809 1.30 perseant * Check for cross-device rename.
810 1.30 perseant * If it is, we don't want to set dirops, just error out.
811 1.30 perseant * (In particular note that MARK_VNODE(tdvp) will DTWT on
812 1.30 perseant * a cross-device rename.)
813 1.30 perseant *
814 1.30 perseant * Copied from ufs_rename.
815 1.30 perseant */
816 1.30 perseant if ((fvp->v_mount != tdvp->v_mount) ||
817 1.30 perseant (tvp && (fvp->v_mount != tvp->v_mount))) {
818 1.30 perseant error = EXDEV;
819 1.34 perseant goto errout;
820 1.30 perseant }
821 1.83 perseant
822 1.83 perseant /*
823 1.83 perseant * Check to make sure we're not renaming a vnode onto itself
824 1.83 perseant * (deleting a hard link by renaming one name onto another);
825 1.83 perseant * if we are we can't recursively call VOP_REMOVE since that
826 1.83 perseant * would leave us with an unaccounted-for number of live dirops.
827 1.83 perseant *
828 1.83 perseant * Inline the relevant section of ufs_rename here, *before*
829 1.138 perseant * calling SET_DIROP_REMOVE.
830 1.83 perseant */
831 1.102 fvdl if (tvp && ((VTOI(tvp)->i_flags & (IMMUTABLE | APPEND)) ||
832 1.102 fvdl (VTOI(tdvp)->i_flags & APPEND))) {
833 1.83 perseant error = EPERM;
834 1.83 perseant goto errout;
835 1.83 perseant }
836 1.86 perseant if (fvp == tvp) {
837 1.86 perseant if (fvp->v_type == VDIR) {
838 1.86 perseant error = EINVAL;
839 1.86 perseant goto errout;
840 1.86 perseant }
841 1.86 perseant
842 1.86 perseant /* Release destination completely. */
843 1.86 perseant VOP_ABORTOP(tdvp, tcnp);
844 1.86 perseant vput(tdvp);
845 1.86 perseant vput(tvp);
846 1.86 perseant
847 1.86 perseant /* Delete source. */
848 1.86 perseant vrele(fvp);
849 1.86 perseant fcnp->cn_flags &= ~(MODMASK | SAVESTART);
850 1.86 perseant fcnp->cn_flags |= LOCKPARENT | LOCKLEAF;
851 1.86 perseant fcnp->cn_nameiop = DELETE;
852 1.194 chs vn_lock(fdvp, LK_EXCLUSIVE | LK_RETRY);
853 1.194 chs if ((error = relookup(fdvp, &fvp, fcnp))) {
854 1.194 chs vput(fdvp);
855 1.86 perseant return (error);
856 1.86 perseant }
857 1.86 perseant return (VOP_REMOVE(fdvp, fvp, fcnp));
858 1.86 perseant }
859 1.83 perseant
860 1.138 perseant if ((error = SET_DIROP_REMOVE(tdvp, tvp)) != 0)
861 1.34 perseant goto errout;
862 1.30 perseant MARK_VNODE(fdvp);
863 1.71 yamt MARK_VNODE(fvp);
864 1.135 perry
865 1.30 perseant error = ufs_rename(ap);
866 1.37 perseant UNMARK_VNODE(fdvp);
867 1.71 yamt UNMARK_VNODE(fvp);
868 1.138 perseant SET_ENDOP_REMOVE(fs, tdvp, tvp, "rename");
869 1.34 perseant return (error);
870 1.34 perseant
871 1.34 perseant errout:
872 1.34 perseant VOP_ABORTOP(tdvp, ap->a_tcnp); /* XXX, why not in NFS? */
873 1.34 perseant if (tdvp == tvp)
874 1.34 perseant vrele(tdvp);
875 1.34 perseant else
876 1.34 perseant vput(tdvp);
877 1.34 perseant if (tvp)
878 1.34 perseant vput(tvp);
879 1.34 perseant VOP_ABORTOP(fdvp, ap->a_fcnp); /* XXX, why not in NFS? */
880 1.34 perseant vrele(fdvp);
881 1.34 perseant vrele(fvp);
882 1.30 perseant return (error);
883 1.1 mycroft }
884 1.22 perseant
885 1.1 mycroft /* XXX hack to avoid calling ITIMES in getattr */
886 1.1 mycroft int
887 1.51 perseant lfs_getattr(void *v)
888 1.10 christos {
889 1.1 mycroft struct vop_getattr_args /* {
890 1.1 mycroft struct vnode *a_vp;
891 1.1 mycroft struct vattr *a_vap;
892 1.176 elad kauth_cred_t a_cred;
893 1.157 christos struct lwp *a_l;
894 1.10 christos } */ *ap = v;
895 1.35 augustss struct vnode *vp = ap->a_vp;
896 1.35 augustss struct inode *ip = VTOI(vp);
897 1.35 augustss struct vattr *vap = ap->a_vap;
898 1.51 perseant struct lfs *fs = ip->i_lfs;
899 1.1 mycroft /*
900 1.1 mycroft * Copy from inode table
901 1.1 mycroft */
902 1.1 mycroft vap->va_fsid = ip->i_dev;
903 1.1 mycroft vap->va_fileid = ip->i_number;
904 1.102 fvdl vap->va_mode = ip->i_mode & ~IFMT;
905 1.102 fvdl vap->va_nlink = ip->i_nlink;
906 1.102 fvdl vap->va_uid = ip->i_uid;
907 1.102 fvdl vap->va_gid = ip->i_gid;
908 1.102 fvdl vap->va_rdev = (dev_t)ip->i_ffs1_rdev;
909 1.55 chs vap->va_size = vp->v_size;
910 1.102 fvdl vap->va_atime.tv_sec = ip->i_ffs1_atime;
911 1.102 fvdl vap->va_atime.tv_nsec = ip->i_ffs1_atimensec;
912 1.102 fvdl vap->va_mtime.tv_sec = ip->i_ffs1_mtime;
913 1.102 fvdl vap->va_mtime.tv_nsec = ip->i_ffs1_mtimensec;
914 1.102 fvdl vap->va_ctime.tv_sec = ip->i_ffs1_ctime;
915 1.102 fvdl vap->va_ctime.tv_nsec = ip->i_ffs1_ctimensec;
916 1.102 fvdl vap->va_flags = ip->i_flags;
917 1.102 fvdl vap->va_gen = ip->i_gen;
918 1.1 mycroft /* this doesn't belong here */
919 1.1 mycroft if (vp->v_type == VBLK)
920 1.1 mycroft vap->va_blocksize = BLKDEV_IOSIZE;
921 1.1 mycroft else if (vp->v_type == VCHR)
922 1.1 mycroft vap->va_blocksize = MAXBSIZE;
923 1.1 mycroft else
924 1.1 mycroft vap->va_blocksize = vp->v_mount->mnt_stat.f_iosize;
925 1.84 perseant vap->va_bytes = fsbtob(fs, (u_quad_t)ip->i_lfs_effnblks);
926 1.1 mycroft vap->va_type = vp->v_type;
927 1.1 mycroft vap->va_filerev = ip->i_modrev;
928 1.1 mycroft return (0);
929 1.61 perseant }
930 1.61 perseant
931 1.61 perseant /*
932 1.61 perseant * Check to make sure the inode blocks won't choke the buffer
933 1.61 perseant * cache, then call ufs_setattr as usual.
934 1.61 perseant */
935 1.61 perseant int
936 1.61 perseant lfs_setattr(void *v)
937 1.61 perseant {
938 1.149 skrll struct vop_setattr_args /* {
939 1.61 perseant struct vnode *a_vp;
940 1.61 perseant struct vattr *a_vap;
941 1.176 elad kauth_cred_t a_cred;
942 1.157 christos struct lwp *a_l;
943 1.61 perseant } */ *ap = v;
944 1.61 perseant struct vnode *vp = ap->a_vp;
945 1.61 perseant
946 1.61 perseant lfs_check(vp, LFS_UNUSED_LBN, 0);
947 1.61 perseant return ufs_setattr(v);
948 1.1 mycroft }
949 1.22 perseant
950 1.1 mycroft /*
951 1.179 perseant * Release the block we hold on lfs_newseg wrapping. Called on file close,
952 1.188 perseant * or explicitly from LFCNWRAPGO. Called with the interlock held.
953 1.179 perseant */
954 1.179 perseant static int
955 1.193 christos lfs_wrapgo(struct lfs *fs, struct inode *ip, int waitfor)
956 1.179 perseant {
957 1.190 perseant if (lockstatus(&fs->lfs_stoplock) != LK_EXCLUSIVE)
958 1.179 perseant return EBUSY;
959 1.179 perseant
960 1.190 perseant lockmgr(&fs->lfs_stoplock, LK_RELEASE, &fs->lfs_interlock);
961 1.179 perseant
962 1.179 perseant KASSERT(fs->lfs_nowrap > 0);
963 1.179 perseant if (fs->lfs_nowrap <= 0) {
964 1.179 perseant return 0;
965 1.179 perseant }
966 1.179 perseant
967 1.179 perseant if (--fs->lfs_nowrap == 0) {
968 1.179 perseant log(LOG_NOTICE, "%s: re-enabled log wrap\n", fs->lfs_fsmnt);
969 1.188 perseant wakeup(&fs->lfs_wrappass);
970 1.180 perseant lfs_wakeup_cleaner(fs);
971 1.179 perseant }
972 1.179 perseant if (waitfor) {
973 1.179 perseant ltsleep(&fs->lfs_nextseg, PCATCH | PUSER,
974 1.179 perseant "segment", 0, &fs->lfs_interlock);
975 1.179 perseant }
976 1.179 perseant
977 1.179 perseant return 0;
978 1.179 perseant }
979 1.179 perseant
980 1.179 perseant /*
981 1.1 mycroft * Close called
982 1.1 mycroft */
983 1.1 mycroft /* ARGSUSED */
984 1.1 mycroft int
985 1.51 perseant lfs_close(void *v)
986 1.10 christos {
987 1.1 mycroft struct vop_close_args /* {
988 1.1 mycroft struct vnode *a_vp;
989 1.1 mycroft int a_fflag;
990 1.176 elad kauth_cred_t a_cred;
991 1.157 christos struct lwp *a_l;
992 1.10 christos } */ *ap = v;
993 1.35 augustss struct vnode *vp = ap->a_vp;
994 1.35 augustss struct inode *ip = VTOI(vp);
995 1.180 perseant struct lfs *fs = ip->i_lfs;
996 1.1 mycroft
997 1.190 perseant if ((ip->i_number == ROOTINO || ip->i_number == LFS_IFILE_INUM) &&
998 1.190 perseant lockstatus(&fs->lfs_stoplock) == LK_EXCLUSIVE) {
999 1.180 perseant simple_lock(&fs->lfs_interlock);
1000 1.188 perseant log(LOG_NOTICE, "lfs_close: releasing log wrap control\n");
1001 1.180 perseant lfs_wrapgo(fs, ip, 0);
1002 1.180 perseant simple_unlock(&fs->lfs_interlock);
1003 1.179 perseant }
1004 1.179 perseant
1005 1.97 perseant if (vp == ip->i_lfs->lfs_ivnode &&
1006 1.119 dbj vp->v_mount->mnt_iflag & IMNT_UNMOUNT)
1007 1.97 perseant return 0;
1008 1.97 perseant
1009 1.97 perseant if (vp->v_usecount > 1 && vp != ip->i_lfs->lfs_ivnode) {
1010 1.154 christos LFS_ITIMES(ip, NULL, NULL, NULL);
1011 1.1 mycroft }
1012 1.1 mycroft return (0);
1013 1.65 perseant }
1014 1.65 perseant
1015 1.65 perseant /*
1016 1.65 perseant * Close wrapper for special devices.
1017 1.65 perseant *
1018 1.65 perseant * Update the times on the inode then do device close.
1019 1.65 perseant */
1020 1.65 perseant int
1021 1.65 perseant lfsspec_close(void *v)
1022 1.65 perseant {
1023 1.65 perseant struct vop_close_args /* {
1024 1.65 perseant struct vnode *a_vp;
1025 1.65 perseant int a_fflag;
1026 1.176 elad kauth_cred_t a_cred;
1027 1.157 christos struct lwp *a_l;
1028 1.65 perseant } */ *ap = v;
1029 1.65 perseant struct vnode *vp;
1030 1.65 perseant struct inode *ip;
1031 1.65 perseant
1032 1.65 perseant vp = ap->a_vp;
1033 1.65 perseant ip = VTOI(vp);
1034 1.65 perseant if (vp->v_usecount > 1) {
1035 1.154 christos LFS_ITIMES(ip, NULL, NULL, NULL);
1036 1.65 perseant }
1037 1.65 perseant return (VOCALL (spec_vnodeop_p, VOFFSET(vop_close), ap));
1038 1.65 perseant }
1039 1.65 perseant
1040 1.65 perseant /*
1041 1.65 perseant * Close wrapper for fifo's.
1042 1.65 perseant *
1043 1.65 perseant * Update the times on the inode then do device close.
1044 1.65 perseant */
1045 1.65 perseant int
1046 1.65 perseant lfsfifo_close(void *v)
1047 1.65 perseant {
1048 1.65 perseant struct vop_close_args /* {
1049 1.65 perseant struct vnode *a_vp;
1050 1.65 perseant int a_fflag;
1051 1.176 elad kauth_cred_ a_cred;
1052 1.157 christos struct lwp *a_l;
1053 1.65 perseant } */ *ap = v;
1054 1.65 perseant struct vnode *vp;
1055 1.65 perseant struct inode *ip;
1056 1.65 perseant
1057 1.65 perseant vp = ap->a_vp;
1058 1.65 perseant ip = VTOI(vp);
1059 1.65 perseant if (ap->a_vp->v_usecount > 1) {
1060 1.154 christos LFS_ITIMES(ip, NULL, NULL, NULL);
1061 1.65 perseant }
1062 1.65 perseant return (VOCALL (fifo_vnodeop_p, VOFFSET(vop_close), ap));
1063 1.1 mycroft }
1064 1.1 mycroft
1065 1.1 mycroft /*
1066 1.15 fvdl * Reclaim an inode so that it can be used for other purposes.
1067 1.1 mycroft */
1068 1.1 mycroft
1069 1.1 mycroft int
1070 1.51 perseant lfs_reclaim(void *v)
1071 1.10 christos {
1072 1.1 mycroft struct vop_reclaim_args /* {
1073 1.1 mycroft struct vnode *a_vp;
1074 1.157 christos struct lwp *a_l;
1075 1.10 christos } */ *ap = v;
1076 1.15 fvdl struct vnode *vp = ap->a_vp;
1077 1.84 perseant struct inode *ip = VTOI(vp);
1078 1.1 mycroft int error;
1079 1.77 yamt
1080 1.102 fvdl KASSERT(ip->i_nlink == ip->i_ffs_effnlink);
1081 1.1 mycroft
1082 1.84 perseant LFS_CLR_UINO(ip, IN_ALLMOD);
1083 1.157 christos if ((error = ufs_reclaim(vp, ap->a_l)))
1084 1.1 mycroft return (error);
1085 1.142 perseant pool_put(&lfs_dinode_pool, ip->i_din.ffs1_din);
1086 1.145 perseant lfs_deregister_all(vp);
1087 1.84 perseant pool_put(&lfs_inoext_pool, ip->inode_ext.lfs);
1088 1.84 perseant ip->inode_ext.lfs = NULL;
1089 1.19 thorpej pool_put(&lfs_inode_pool, vp->v_data);
1090 1.1 mycroft vp->v_data = NULL;
1091 1.94 perseant return (0);
1092 1.94 perseant }
1093 1.94 perseant
1094 1.94 perseant /*
1095 1.101 yamt * Read a block from a storage device.
1096 1.94 perseant * In order to avoid reading blocks that are in the process of being
1097 1.94 perseant * written by the cleaner---and hence are not mutexed by the normal
1098 1.94 perseant * buffer cache / page cache mechanisms---check for collisions before
1099 1.94 perseant * reading.
1100 1.94 perseant *
1101 1.94 perseant * We inline ufs_strategy to make sure that the VOP_BMAP occurs *before*
1102 1.94 perseant * the active cleaner test.
1103 1.94 perseant *
1104 1.94 perseant * XXX This code assumes that lfs_markv makes synchronous checkpoints.
1105 1.94 perseant */
1106 1.94 perseant int
1107 1.94 perseant lfs_strategy(void *v)
1108 1.94 perseant {
1109 1.94 perseant struct vop_strategy_args /* {
1110 1.128 hannken struct vnode *a_vp;
1111 1.94 perseant struct buf *a_bp;
1112 1.94 perseant } */ *ap = v;
1113 1.94 perseant struct buf *bp;
1114 1.94 perseant struct lfs *fs;
1115 1.94 perseant struct vnode *vp;
1116 1.94 perseant struct inode *ip;
1117 1.94 perseant daddr_t tbn;
1118 1.94 perseant int i, sn, error, slept;
1119 1.94 perseant
1120 1.94 perseant bp = ap->a_bp;
1121 1.128 hannken vp = ap->a_vp;
1122 1.94 perseant ip = VTOI(vp);
1123 1.94 perseant fs = ip->i_lfs;
1124 1.94 perseant
1125 1.101 yamt /* lfs uses its strategy routine only for read */
1126 1.101 yamt KASSERT(bp->b_flags & B_READ);
1127 1.101 yamt
1128 1.94 perseant if (vp->v_type == VBLK || vp->v_type == VCHR)
1129 1.94 perseant panic("lfs_strategy: spec");
1130 1.94 perseant KASSERT(bp->b_bcount != 0);
1131 1.94 perseant if (bp->b_blkno == bp->b_lblkno) {
1132 1.94 perseant error = VOP_BMAP(vp, bp->b_lblkno, NULL, &bp->b_blkno,
1133 1.94 perseant NULL);
1134 1.94 perseant if (error) {
1135 1.94 perseant bp->b_error = error;
1136 1.94 perseant bp->b_flags |= B_ERROR;
1137 1.94 perseant biodone(bp);
1138 1.94 perseant return (error);
1139 1.94 perseant }
1140 1.94 perseant if ((long)bp->b_blkno == -1) /* no valid data */
1141 1.94 perseant clrbuf(bp);
1142 1.94 perseant }
1143 1.94 perseant if ((long)bp->b_blkno < 0) { /* block is not on disk */
1144 1.94 perseant biodone(bp);
1145 1.94 perseant return (0);
1146 1.94 perseant }
1147 1.94 perseant
1148 1.94 perseant slept = 1;
1149 1.96 perseant simple_lock(&fs->lfs_interlock);
1150 1.101 yamt while (slept && fs->lfs_seglock) {
1151 1.96 perseant simple_unlock(&fs->lfs_interlock);
1152 1.94 perseant /*
1153 1.94 perseant * Look through list of intervals.
1154 1.94 perseant * There will only be intervals to look through
1155 1.94 perseant * if the cleaner holds the seglock.
1156 1.94 perseant * Since the cleaner is synchronous, we can trust
1157 1.94 perseant * the list of intervals to be current.
1158 1.94 perseant */
1159 1.94 perseant tbn = dbtofsb(fs, bp->b_blkno);
1160 1.94 perseant sn = dtosn(fs, tbn);
1161 1.94 perseant slept = 0;
1162 1.94 perseant for (i = 0; i < fs->lfs_cleanind; i++) {
1163 1.94 perseant if (sn == dtosn(fs, fs->lfs_cleanint[i]) &&
1164 1.94 perseant tbn >= fs->lfs_cleanint[i]) {
1165 1.136 perseant DLOG((DLOG_CLEAN,
1166 1.136 perseant "lfs_strategy: ino %d lbn %" PRId64
1167 1.94 perseant " ind %d sn %d fsb %" PRIx32
1168 1.94 perseant " given sn %d fsb %" PRIx64 "\n",
1169 1.94 perseant ip->i_number, bp->b_lblkno, i,
1170 1.94 perseant dtosn(fs, fs->lfs_cleanint[i]),
1171 1.136 perseant fs->lfs_cleanint[i], sn, tbn));
1172 1.136 perseant DLOG((DLOG_CLEAN,
1173 1.136 perseant "lfs_strategy: sleeping on ino %d lbn %"
1174 1.136 perseant PRId64 "\n", ip->i_number, bp->b_lblkno));
1175 1.141 perseant simple_lock(&fs->lfs_interlock);
1176 1.170 perseant if (LFS_SEGLOCK_HELD(fs) && fs->lfs_iocount) {
1177 1.170 perseant /* Cleaner can't wait for itself */
1178 1.170 perseant ltsleep(&fs->lfs_iocount,
1179 1.170 perseant (PRIBIO + 1) | PNORELOCK,
1180 1.170 perseant "clean2", 0,
1181 1.170 perseant &fs->lfs_interlock);
1182 1.170 perseant slept = 1;
1183 1.170 perseant break;
1184 1.170 perseant } else if (fs->lfs_seglock) {
1185 1.141 perseant ltsleep(&fs->lfs_seglock,
1186 1.141 perseant (PRIBIO + 1) | PNORELOCK,
1187 1.170 perseant "clean1", 0,
1188 1.141 perseant &fs->lfs_interlock);
1189 1.167 perseant slept = 1;
1190 1.167 perseant break;
1191 1.167 perseant }
1192 1.167 perseant simple_unlock(&fs->lfs_interlock);
1193 1.94 perseant }
1194 1.94 perseant }
1195 1.96 perseant simple_lock(&fs->lfs_interlock);
1196 1.94 perseant }
1197 1.96 perseant simple_unlock(&fs->lfs_interlock);
1198 1.94 perseant
1199 1.94 perseant vp = ip->i_devvp;
1200 1.127 hannken VOP_STRATEGY(vp, bp);
1201 1.1 mycroft return (0);
1202 1.89 perseant }
1203 1.89 perseant
1204 1.171 perseant void
1205 1.92 perseant lfs_flush_dirops(struct lfs *fs)
1206 1.92 perseant {
1207 1.92 perseant struct inode *ip, *nip;
1208 1.92 perseant struct vnode *vp;
1209 1.92 perseant extern int lfs_dostats;
1210 1.92 perseant struct segment *sp;
1211 1.172 perseant int waslocked;
1212 1.92 perseant
1213 1.163 perseant ASSERT_MAYBE_SEGLOCK(fs);
1214 1.171 perseant KASSERT(fs->lfs_nadirop == 0);
1215 1.141 perseant
1216 1.92 perseant if (fs->lfs_ronly)
1217 1.92 perseant return;
1218 1.92 perseant
1219 1.141 perseant simple_lock(&fs->lfs_interlock);
1220 1.141 perseant if (TAILQ_FIRST(&fs->lfs_dchainhd) == NULL) {
1221 1.141 perseant simple_unlock(&fs->lfs_interlock);
1222 1.92 perseant return;
1223 1.141 perseant } else
1224 1.141 perseant simple_unlock(&fs->lfs_interlock);
1225 1.92 perseant
1226 1.92 perseant if (lfs_dostats)
1227 1.92 perseant ++lfs_stats.flush_invoked;
1228 1.92 perseant
1229 1.92 perseant /*
1230 1.92 perseant * Inline lfs_segwrite/lfs_writevnodes, but just for dirops.
1231 1.92 perseant * Technically this is a checkpoint (the on-disk state is valid)
1232 1.92 perseant * even though we are leaving out all the file data.
1233 1.92 perseant */
1234 1.92 perseant lfs_imtime(fs);
1235 1.92 perseant lfs_seglock(fs, SEGM_CKP);
1236 1.92 perseant sp = fs->lfs_sp;
1237 1.92 perseant
1238 1.92 perseant /*
1239 1.92 perseant * lfs_writevnodes, optimized to get dirops out of the way.
1240 1.92 perseant * Only write dirops, and don't flush files' pages, only
1241 1.92 perseant * blocks from the directories.
1242 1.92 perseant *
1243 1.92 perseant * We don't need to vref these files because they are
1244 1.92 perseant * dirops and so hold an extra reference until the
1245 1.92 perseant * segunlock clears them of that status.
1246 1.92 perseant *
1247 1.92 perseant * We don't need to check for IN_ADIROP because we know that
1248 1.92 perseant * no dirops are active.
1249 1.92 perseant *
1250 1.92 perseant */
1251 1.141 perseant simple_lock(&fs->lfs_interlock);
1252 1.92 perseant for (ip = TAILQ_FIRST(&fs->lfs_dchainhd); ip != NULL; ip = nip) {
1253 1.92 perseant nip = TAILQ_NEXT(ip, i_lfs_dchain);
1254 1.141 perseant simple_unlock(&fs->lfs_interlock);
1255 1.92 perseant vp = ITOV(ip);
1256 1.92 perseant
1257 1.171 perseant KASSERT((ip->i_flag & IN_ADIROP) == 0);
1258 1.171 perseant
1259 1.92 perseant /*
1260 1.92 perseant * All writes to directories come from dirops; all
1261 1.92 perseant * writes to files' direct blocks go through the page
1262 1.92 perseant * cache, which we're not touching. Reads to files
1263 1.92 perseant * and/or directories will not be affected by writing
1264 1.92 perseant * directory blocks inodes and file inodes. So we don't
1265 1.92 perseant * really need to lock. If we don't lock, though,
1266 1.92 perseant * make sure that we don't clear IN_MODIFIED
1267 1.92 perseant * unnecessarily.
1268 1.92 perseant */
1269 1.167 perseant if (vp->v_flag & (VXLOCK | VFREEING)) {
1270 1.167 perseant simple_lock(&fs->lfs_interlock);
1271 1.92 perseant continue;
1272 1.167 perseant }
1273 1.172 perseant waslocked = VOP_ISLOCKED(vp);
1274 1.92 perseant if (vp->v_type != VREG &&
1275 1.92 perseant ((ip->i_flag & IN_ALLMOD) || !VPISEMPTY(vp))) {
1276 1.92 perseant lfs_writefile(fs, sp, vp);
1277 1.92 perseant if (!VPISEMPTY(vp) && !WRITEINPROG(vp) &&
1278 1.92 perseant !(ip->i_flag & IN_ALLMOD)) {
1279 1.92 perseant LFS_SET_UINO(ip, IN_MODIFIED);
1280 1.92 perseant }
1281 1.92 perseant }
1282 1.188 perseant KDASSERT(ip->i_number != LFS_IFILE_INUM);
1283 1.92 perseant (void) lfs_writeinode(fs, sp, ip);
1284 1.189 perseant if (waslocked == LK_EXCLOTHER)
1285 1.92 perseant LFS_SET_UINO(ip, IN_MODIFIED);
1286 1.141 perseant simple_lock(&fs->lfs_interlock);
1287 1.92 perseant }
1288 1.141 perseant simple_unlock(&fs->lfs_interlock);
1289 1.92 perseant /* We've written all the dirops there are */
1290 1.92 perseant ((SEGSUM *)(sp->segsum))->ss_flags &= ~(SS_CONT);
1291 1.170 perseant lfs_finalize_fs_seguse(fs);
1292 1.92 perseant (void) lfs_writeseg(fs, sp);
1293 1.92 perseant lfs_segunlock(fs);
1294 1.92 perseant }
1295 1.92 perseant
1296 1.89 perseant /*
1297 1.164 perseant * Flush all vnodes for which the pagedaemon has requested pageouts.
1298 1.164 perseant * Skip over any files that are marked VDIROP (since lfs_flush_dirop()
1299 1.164 perseant * has just run, this would be an error). If we have to skip a vnode
1300 1.164 perseant * for any reason, just skip it; if we have to wait for the cleaner,
1301 1.164 perseant * abort. The writer daemon will call us again later.
1302 1.164 perseant */
1303 1.164 perseant void
1304 1.164 perseant lfs_flush_pchain(struct lfs *fs)
1305 1.164 perseant {
1306 1.164 perseant struct inode *ip, *nip;
1307 1.164 perseant struct vnode *vp;
1308 1.164 perseant extern int lfs_dostats;
1309 1.164 perseant struct segment *sp;
1310 1.164 perseant int error;
1311 1.164 perseant
1312 1.164 perseant ASSERT_NO_SEGLOCK(fs);
1313 1.164 perseant
1314 1.164 perseant if (fs->lfs_ronly)
1315 1.164 perseant return;
1316 1.164 perseant
1317 1.164 perseant simple_lock(&fs->lfs_interlock);
1318 1.164 perseant if (TAILQ_FIRST(&fs->lfs_pchainhd) == NULL) {
1319 1.164 perseant simple_unlock(&fs->lfs_interlock);
1320 1.164 perseant return;
1321 1.164 perseant } else
1322 1.164 perseant simple_unlock(&fs->lfs_interlock);
1323 1.164 perseant
1324 1.164 perseant /* Get dirops out of the way */
1325 1.164 perseant lfs_flush_dirops(fs);
1326 1.164 perseant
1327 1.164 perseant if (lfs_dostats)
1328 1.164 perseant ++lfs_stats.flush_invoked;
1329 1.164 perseant
1330 1.164 perseant /*
1331 1.164 perseant * Inline lfs_segwrite/lfs_writevnodes, but just for pageouts.
1332 1.164 perseant */
1333 1.164 perseant lfs_imtime(fs);
1334 1.164 perseant lfs_seglock(fs, 0);
1335 1.164 perseant sp = fs->lfs_sp;
1336 1.164 perseant
1337 1.164 perseant /*
1338 1.164 perseant * lfs_writevnodes, optimized to clear pageout requests.
1339 1.164 perseant * Only write non-dirop files that are in the pageout queue.
1340 1.164 perseant * We're very conservative about what we write; we want to be
1341 1.164 perseant * fast and async.
1342 1.164 perseant */
1343 1.169 perseant simple_lock(&fs->lfs_interlock);
1344 1.165 perseant top:
1345 1.164 perseant for (ip = TAILQ_FIRST(&fs->lfs_pchainhd); ip != NULL; ip = nip) {
1346 1.164 perseant nip = TAILQ_NEXT(ip, i_lfs_pchain);
1347 1.164 perseant vp = ITOV(ip);
1348 1.164 perseant
1349 1.164 perseant if (!(ip->i_flags & IN_PAGING))
1350 1.164 perseant goto top;
1351 1.164 perseant
1352 1.164 perseant if (vp->v_flag & (VXLOCK|VDIROP))
1353 1.164 perseant continue;
1354 1.164 perseant if (vp->v_type != VREG)
1355 1.164 perseant continue;
1356 1.164 perseant if (lfs_vref(vp))
1357 1.164 perseant continue;
1358 1.169 perseant simple_unlock(&fs->lfs_interlock);
1359 1.169 perseant
1360 1.172 perseant if (VOP_ISLOCKED(vp)) {
1361 1.165 perseant lfs_vunref(vp);
1362 1.169 perseant simple_lock(&fs->lfs_interlock);
1363 1.164 perseant continue;
1364 1.165 perseant }
1365 1.164 perseant
1366 1.164 perseant error = lfs_writefile(fs, sp, vp);
1367 1.164 perseant if (!VPISEMPTY(vp) && !WRITEINPROG(vp) &&
1368 1.164 perseant !(ip->i_flag & IN_ALLMOD)) {
1369 1.164 perseant LFS_SET_UINO(ip, IN_MODIFIED);
1370 1.164 perseant }
1371 1.188 perseant KDASSERT(ip->i_number != LFS_IFILE_INUM);
1372 1.164 perseant (void) lfs_writeinode(fs, sp, ip);
1373 1.164 perseant
1374 1.164 perseant lfs_vunref(vp);
1375 1.164 perseant
1376 1.164 perseant if (error == EAGAIN) {
1377 1.164 perseant lfs_writeseg(fs, sp);
1378 1.170 perseant simple_lock(&fs->lfs_interlock);
1379 1.164 perseant break;
1380 1.164 perseant }
1381 1.170 perseant simple_lock(&fs->lfs_interlock);
1382 1.164 perseant }
1383 1.164 perseant simple_unlock(&fs->lfs_interlock);
1384 1.164 perseant (void) lfs_writeseg(fs, sp);
1385 1.164 perseant lfs_segunlock(fs);
1386 1.164 perseant }
1387 1.164 perseant
1388 1.164 perseant /*
1389 1.90 perseant * Provide a fcntl interface to sys_lfs_{segwait,bmapv,markv}.
1390 1.89 perseant */
1391 1.89 perseant int
1392 1.90 perseant lfs_fcntl(void *v)
1393 1.89 perseant {
1394 1.137 simonb struct vop_fcntl_args /* {
1395 1.137 simonb struct vnode *a_vp;
1396 1.137 simonb u_long a_command;
1397 1.137 simonb caddr_t a_data;
1398 1.137 simonb int a_fflag;
1399 1.176 elad kauth_cred_t a_cred;
1400 1.157 christos struct lwp *a_l;
1401 1.137 simonb } */ *ap = v;
1402 1.89 perseant struct timeval *tvp;
1403 1.89 perseant BLOCK_INFO *blkiov;
1404 1.92 perseant CLEANERINFO *cip;
1405 1.148 perseant SEGUSE *sup;
1406 1.92 perseant int blkcnt, error, oclean;
1407 1.181 martin size_t fh_size;
1408 1.90 perseant struct lfs_fcntl_markv blkvp;
1409 1.185 ad struct lwp *l;
1410 1.89 perseant fsid_t *fsidp;
1411 1.92 perseant struct lfs *fs;
1412 1.92 perseant struct buf *bp;
1413 1.134 perseant fhandle_t *fhp;
1414 1.92 perseant daddr_t off;
1415 1.89 perseant
1416 1.90 perseant /* Only respect LFS fcntls on fs root or Ifile */
1417 1.89 perseant if (VTOI(ap->a_vp)->i_number != ROOTINO &&
1418 1.89 perseant VTOI(ap->a_vp)->i_number != LFS_IFILE_INUM) {
1419 1.90 perseant return ufs_fcntl(v);
1420 1.89 perseant }
1421 1.89 perseant
1422 1.100 perseant /* Avoid locking a draining lock */
1423 1.119 dbj if (ap->a_vp->v_mount->mnt_iflag & IMNT_UNMOUNT) {
1424 1.100 perseant return ESHUTDOWN;
1425 1.100 perseant }
1426 1.100 perseant
1427 1.184 perseant /* LFS control and monitoring fcntls are available only to root */
1428 1.185 ad l = ap->a_l;
1429 1.184 perseant if (((ap->a_command & 0xff00) >> 8) == 'L' &&
1430 1.185 ad (error = kauth_authorize_generic(l->l_cred, KAUTH_GENERIC_ISSUSER,
1431 1.196 elad NULL)) != 0)
1432 1.184 perseant return (error);
1433 1.184 perseant
1434 1.100 perseant fs = VTOI(ap->a_vp)->i_lfs;
1435 1.131 christos fsidp = &ap->a_vp->v_mount->mnt_stat.f_fsidx;
1436 1.89 perseant
1437 1.188 perseant error = 0;
1438 1.98 perseant switch (ap->a_command) {
1439 1.90 perseant case LFCNSEGWAITALL:
1440 1.134 perseant case LFCNSEGWAITALL_COMPAT:
1441 1.89 perseant fsidp = NULL;
1442 1.89 perseant /* FALLSTHROUGH */
1443 1.90 perseant case LFCNSEGWAIT:
1444 1.134 perseant case LFCNSEGWAIT_COMPAT:
1445 1.89 perseant tvp = (struct timeval *)ap->a_data;
1446 1.100 perseant simple_lock(&fs->lfs_interlock);
1447 1.100 perseant ++fs->lfs_sleepers;
1448 1.100 perseant simple_unlock(&fs->lfs_interlock);
1449 1.100 perseant
1450 1.90 perseant error = lfs_segwait(fsidp, tvp);
1451 1.100 perseant
1452 1.100 perseant simple_lock(&fs->lfs_interlock);
1453 1.100 perseant if (--fs->lfs_sleepers == 0)
1454 1.100 perseant wakeup(&fs->lfs_sleepers);
1455 1.100 perseant simple_unlock(&fs->lfs_interlock);
1456 1.90 perseant return error;
1457 1.89 perseant
1458 1.90 perseant case LFCNBMAPV:
1459 1.90 perseant case LFCNMARKV:
1460 1.90 perseant blkvp = *(struct lfs_fcntl_markv *)ap->a_data;
1461 1.89 perseant
1462 1.89 perseant blkcnt = blkvp.blkcnt;
1463 1.89 perseant if ((u_int) blkcnt > LFS_MARKV_MAXBLKCNT)
1464 1.89 perseant return (EINVAL);
1465 1.144 perseant blkiov = lfs_malloc(fs, blkcnt * sizeof(BLOCK_INFO), LFS_NB_BLKIOV);
1466 1.89 perseant if ((error = copyin(blkvp.blkiov, blkiov,
1467 1.89 perseant blkcnt * sizeof(BLOCK_INFO))) != 0) {
1468 1.144 perseant lfs_free(fs, blkiov, LFS_NB_BLKIOV);
1469 1.89 perseant return error;
1470 1.89 perseant }
1471 1.89 perseant
1472 1.100 perseant simple_lock(&fs->lfs_interlock);
1473 1.100 perseant ++fs->lfs_sleepers;
1474 1.100 perseant simple_unlock(&fs->lfs_interlock);
1475 1.90 perseant if (ap->a_command == LFCNBMAPV)
1476 1.185 ad error = lfs_bmapv(l->l_proc, fsidp, blkiov, blkcnt);
1477 1.90 perseant else /* LFCNMARKV */
1478 1.185 ad error = lfs_markv(l->l_proc, fsidp, blkiov, blkcnt);
1479 1.89 perseant if (error == 0)
1480 1.89 perseant error = copyout(blkiov, blkvp.blkiov,
1481 1.89 perseant blkcnt * sizeof(BLOCK_INFO));
1482 1.100 perseant simple_lock(&fs->lfs_interlock);
1483 1.100 perseant if (--fs->lfs_sleepers == 0)
1484 1.100 perseant wakeup(&fs->lfs_sleepers);
1485 1.100 perseant simple_unlock(&fs->lfs_interlock);
1486 1.144 perseant lfs_free(fs, blkiov, LFS_NB_BLKIOV);
1487 1.89 perseant return error;
1488 1.92 perseant
1489 1.92 perseant case LFCNRECLAIM:
1490 1.92 perseant /*
1491 1.92 perseant * Flush dirops and write Ifile, allowing empty segments
1492 1.92 perseant * to be immediately reclaimed.
1493 1.92 perseant */
1494 1.111 yamt lfs_writer_enter(fs, "pndirop");
1495 1.92 perseant off = fs->lfs_offset;
1496 1.92 perseant lfs_seglock(fs, SEGM_FORCE_CKP | SEGM_CKP);
1497 1.92 perseant lfs_flush_dirops(fs);
1498 1.92 perseant LFS_CLEANERINFO(cip, fs, bp);
1499 1.92 perseant oclean = cip->clean;
1500 1.92 perseant LFS_SYNC_CLEANERINFO(cip, fs, bp, 1);
1501 1.92 perseant lfs_segwrite(ap->a_vp->v_mount, SEGM_FORCE_CKP);
1502 1.158 perseant fs->lfs_sp->seg_flags |= SEGM_PROT;
1503 1.92 perseant lfs_segunlock(fs);
1504 1.111 yamt lfs_writer_leave(fs);
1505 1.92 perseant
1506 1.136 perseant #ifdef DEBUG
1507 1.92 perseant LFS_CLEANERINFO(cip, fs, bp);
1508 1.136 perseant DLOG((DLOG_CLEAN, "lfs_fcntl: reclaim wrote %" PRId64
1509 1.136 perseant " blocks, cleaned %" PRId32 " segments (activesb %d)\n",
1510 1.136 perseant fs->lfs_offset - off, cip->clean - oclean,
1511 1.136 perseant fs->lfs_activesb));
1512 1.92 perseant LFS_SYNC_CLEANERINFO(cip, fs, bp, 0);
1513 1.92 perseant #endif
1514 1.92 perseant
1515 1.92 perseant return 0;
1516 1.89 perseant
1517 1.182 martin #ifdef COMPAT_30
1518 1.182 martin case LFCNIFILEFH_COMPAT:
1519 1.182 martin /* Return the filehandle of the Ifile */
1520 1.185 ad if ((error = kauth_authorize_generic(l->l_cred,
1521 1.196 elad KAUTH_GENERIC_ISSUSER, NULL)) != 0)
1522 1.182 martin return (error);
1523 1.182 martin fhp = (struct fhandle *)ap->a_data;
1524 1.182 martin fhp->fh_fsid = *fsidp;
1525 1.182 martin fh_size = 16; /* former VFS_MAXFIDSIZ */
1526 1.182 martin return lfs_vptofh(fs->lfs_ivnode, &(fhp->fh_fid), &fh_size);
1527 1.182 martin #endif
1528 1.182 martin
1529 1.187 martin case LFCNIFILEFH_COMPAT2:
1530 1.134 perseant case LFCNIFILEFH:
1531 1.134 perseant /* Return the filehandle of the Ifile */
1532 1.134 perseant fhp = (struct fhandle *)ap->a_data;
1533 1.134 perseant fhp->fh_fsid = *fsidp;
1534 1.186 martin fh_size = sizeof(struct lfs_fhandle) -
1535 1.181 martin offsetof(fhandle_t, fh_fid);
1536 1.181 martin return lfs_vptofh(fs->lfs_ivnode, &(fhp->fh_fid), &fh_size);
1537 1.134 perseant
1538 1.148 perseant case LFCNREWIND:
1539 1.148 perseant /* Move lfs_offset to the lowest-numbered segment */
1540 1.148 perseant return lfs_rewind(fs, *(int *)ap->a_data);
1541 1.148 perseant
1542 1.148 perseant case LFCNINVAL:
1543 1.148 perseant /* Mark a segment SEGUSE_INVAL */
1544 1.148 perseant LFS_SEGENTRY(sup, fs, *(int *)ap->a_data, bp);
1545 1.148 perseant if (sup->su_nbytes > 0) {
1546 1.148 perseant brelse(bp);
1547 1.148 perseant lfs_unset_inval_all(fs);
1548 1.148 perseant return EBUSY;
1549 1.148 perseant }
1550 1.148 perseant sup->su_flags |= SEGUSE_INVAL;
1551 1.148 perseant VOP_BWRITE(bp);
1552 1.148 perseant return 0;
1553 1.148 perseant
1554 1.148 perseant case LFCNRESIZE:
1555 1.148 perseant /* Resize the filesystem */
1556 1.148 perseant return lfs_resize_fs(fs, *(int *)ap->a_data);
1557 1.148 perseant
1558 1.168 perseant case LFCNWRAPSTOP:
1559 1.179 perseant case LFCNWRAPSTOP_COMPAT:
1560 1.168 perseant /*
1561 1.179 perseant * Hold lfs_newseg at segment 0; if requested, sleep until
1562 1.179 perseant * the filesystem wraps around. To support external agents
1563 1.179 perseant * (dump, fsck-based regression test) that need to look at
1564 1.179 perseant * a snapshot of the filesystem, without necessarily
1565 1.179 perseant * requiring that all fs activity stops.
1566 1.168 perseant */
1567 1.190 perseant if (lockstatus(&fs->lfs_stoplock))
1568 1.179 perseant return EALREADY;
1569 1.179 perseant
1570 1.168 perseant simple_lock(&fs->lfs_interlock);
1571 1.190 perseant lockmgr(&fs->lfs_stoplock, LK_EXCLUSIVE, &fs->lfs_interlock);
1572 1.179 perseant if (fs->lfs_nowrap == 0)
1573 1.179 perseant log(LOG_NOTICE, "%s: disabled log wrap\n", fs->lfs_fsmnt);
1574 1.179 perseant ++fs->lfs_nowrap;
1575 1.180 perseant if (*(int *)ap->a_data == 1 ||
1576 1.180 perseant ap->a_command == LFCNWRAPSTOP_COMPAT) {
1577 1.188 perseant log(LOG_NOTICE, "LFCNSTOPWRAP waiting for log wrap\n");
1578 1.179 perseant error = ltsleep(&fs->lfs_nowrap, PCATCH | PUSER,
1579 1.179 perseant "segwrap", 0, &fs->lfs_interlock);
1580 1.188 perseant log(LOG_NOTICE, "LFCNSTOPWRAP done waiting\n");
1581 1.179 perseant if (error) {
1582 1.180 perseant lfs_wrapgo(fs, VTOI(ap->a_vp), 0);
1583 1.179 perseant }
1584 1.168 perseant }
1585 1.179 perseant simple_unlock(&fs->lfs_interlock);
1586 1.168 perseant return 0;
1587 1.168 perseant
1588 1.168 perseant case LFCNWRAPGO:
1589 1.179 perseant case LFCNWRAPGO_COMPAT:
1590 1.168 perseant /*
1591 1.168 perseant * Having done its work, the agent wakes up the writer.
1592 1.179 perseant * If the argument is 1, it sleeps until a new segment
1593 1.179 perseant * is selected.
1594 1.168 perseant */
1595 1.180 perseant simple_lock(&fs->lfs_interlock);
1596 1.180 perseant error = lfs_wrapgo(fs, VTOI(ap->a_vp),
1597 1.180 perseant (ap->a_command == LFCNWRAPGO_COMPAT ? 1 :
1598 1.180 perseant *((int *)ap->a_data)));
1599 1.180 perseant simple_unlock(&fs->lfs_interlock);
1600 1.180 perseant return error;
1601 1.168 perseant
1602 1.188 perseant case LFCNWRAPPASS:
1603 1.190 perseant if (lockstatus(&fs->lfs_stoplock) != LK_EXCLUSIVE)
1604 1.188 perseant return EALREADY;
1605 1.188 perseant if ((VTOI(ap->a_vp)->i_lfs_iflags & LFSI_WRAPWAIT))
1606 1.188 perseant return EALREADY;
1607 1.188 perseant simple_lock(&fs->lfs_interlock);
1608 1.188 perseant if (fs->lfs_nowrap == 0) {
1609 1.188 perseant simple_unlock(&fs->lfs_interlock);
1610 1.188 perseant return EBUSY;
1611 1.188 perseant }
1612 1.188 perseant fs->lfs_wrappass = 1;
1613 1.188 perseant wakeup(&fs->lfs_wrappass);
1614 1.188 perseant /* Wait for the log to wrap, if asked */
1615 1.188 perseant if (*(int *)ap->a_data) {
1616 1.188 perseant lfs_vref(ap->a_vp);
1617 1.188 perseant VTOI(ap->a_vp)->i_lfs_iflags |= LFSI_WRAPWAIT;
1618 1.188 perseant log(LOG_NOTICE, "LFCNPASS waiting for log wrap\n");
1619 1.188 perseant error = ltsleep(&fs->lfs_nowrap, PCATCH | PUSER,
1620 1.188 perseant "segwrap", 0, &fs->lfs_interlock);
1621 1.188 perseant log(LOG_NOTICE, "LFCNPASS done waiting\n");
1622 1.188 perseant VTOI(ap->a_vp)->i_lfs_iflags &= ~LFSI_WRAPWAIT;
1623 1.188 perseant lfs_vunref(ap->a_vp);
1624 1.188 perseant }
1625 1.188 perseant simple_unlock(&fs->lfs_interlock);
1626 1.188 perseant return error;
1627 1.188 perseant
1628 1.188 perseant case LFCNWRAPSTATUS:
1629 1.188 perseant simple_lock(&fs->lfs_interlock);
1630 1.188 perseant *(int *)ap->a_data = fs->lfs_wrapstatus;
1631 1.188 perseant simple_unlock(&fs->lfs_interlock);
1632 1.188 perseant return 0;
1633 1.188 perseant
1634 1.89 perseant default:
1635 1.90 perseant return ufs_fcntl(v);
1636 1.89 perseant }
1637 1.89 perseant return 0;
1638 1.60 chs }
1639 1.60 chs
1640 1.60 chs int
1641 1.60 chs lfs_getpages(void *v)
1642 1.60 chs {
1643 1.60 chs struct vop_getpages_args /* {
1644 1.60 chs struct vnode *a_vp;
1645 1.60 chs voff_t a_offset;
1646 1.60 chs struct vm_page **a_m;
1647 1.60 chs int *a_count;
1648 1.60 chs int a_centeridx;
1649 1.60 chs vm_prot_t a_access_type;
1650 1.60 chs int a_advice;
1651 1.60 chs int a_flags;
1652 1.60 chs } */ *ap = v;
1653 1.60 chs
1654 1.97 perseant if (VTOI(ap->a_vp)->i_number == LFS_IFILE_INUM &&
1655 1.97 perseant (ap->a_access_type & VM_PROT_WRITE) != 0) {
1656 1.97 perseant return EPERM;
1657 1.97 perseant }
1658 1.60 chs if ((ap->a_access_type & VM_PROT_WRITE) != 0) {
1659 1.60 chs LFS_SET_UINO(VTOI(ap->a_vp), IN_MODIFIED);
1660 1.60 chs }
1661 1.115 yamt
1662 1.115 yamt /*
1663 1.115 yamt * we're relying on the fact that genfs_getpages() always read in
1664 1.115 yamt * entire filesystem blocks.
1665 1.115 yamt */
1666 1.95 perseant return genfs_getpages(v);
1667 1.1 mycroft }
1668 1.84 perseant
1669 1.84 perseant /*
1670 1.84 perseant * Make sure that for all pages in every block in the given range,
1671 1.84 perseant * either all are dirty or all are clean. If any of the pages
1672 1.84 perseant * we've seen so far are dirty, put the vnode on the paging chain,
1673 1.84 perseant * and mark it IN_PAGING.
1674 1.105 perseant *
1675 1.105 perseant * If checkfirst != 0, don't check all the pages but return at the
1676 1.105 perseant * first dirty page.
1677 1.84 perseant */
1678 1.84 perseant static int
1679 1.84 perseant check_dirty(struct lfs *fs, struct vnode *vp,
1680 1.84 perseant off_t startoffset, off_t endoffset, off_t blkeof,
1681 1.103 perseant int flags, int checkfirst)
1682 1.84 perseant {
1683 1.86 perseant int by_list;
1684 1.122 christos struct vm_page *curpg = NULL; /* XXX: gcc */
1685 1.122 christos struct vm_page *pgs[MAXBSIZE / PAGE_SIZE], *pg;
1686 1.122 christos off_t soff = 0; /* XXX: gcc */
1687 1.84 perseant voff_t off;
1688 1.115 yamt int i;
1689 1.115 yamt int nonexistent;
1690 1.115 yamt int any_dirty; /* number of dirty pages */
1691 1.115 yamt int dirty; /* number of dirty pages in a block */
1692 1.115 yamt int tdirty;
1693 1.84 perseant int pages_per_block = fs->lfs_bsize >> PAGE_SHIFT;
1694 1.159 perseant int pagedaemon = (curproc == uvm.pagedaemon_proc);
1695 1.84 perseant
1696 1.141 perseant ASSERT_MAYBE_SEGLOCK(fs);
1697 1.84 perseant top:
1698 1.84 perseant by_list = (vp->v_uobj.uo_npages <=
1699 1.84 perseant ((endoffset - startoffset) >> PAGE_SHIFT) *
1700 1.84 perseant UVM_PAGE_HASH_PENALTY);
1701 1.84 perseant any_dirty = 0;
1702 1.84 perseant
1703 1.84 perseant if (by_list) {
1704 1.84 perseant curpg = TAILQ_FIRST(&vp->v_uobj.memq);
1705 1.84 perseant } else {
1706 1.84 perseant soff = startoffset;
1707 1.84 perseant }
1708 1.84 perseant while (by_list || soff < MIN(blkeof, endoffset)) {
1709 1.84 perseant if (by_list) {
1710 1.115 yamt /*
1711 1.138 perseant * Find the first page in a block. Skip
1712 1.138 perseant * blocks outside our area of interest or beyond
1713 1.138 perseant * the end of file.
1714 1.115 yamt */
1715 1.84 perseant if (pages_per_block > 1) {
1716 1.138 perseant while (curpg &&
1717 1.138 perseant ((curpg->offset & fs->lfs_bmask) ||
1718 1.143 perseant curpg->offset >= vp->v_size ||
1719 1.143 perseant curpg->offset >= endoffset))
1720 1.84 perseant curpg = TAILQ_NEXT(curpg, listq);
1721 1.84 perseant }
1722 1.84 perseant if (curpg == NULL)
1723 1.84 perseant break;
1724 1.84 perseant soff = curpg->offset;
1725 1.84 perseant }
1726 1.84 perseant
1727 1.84 perseant /*
1728 1.84 perseant * Mark all pages in extended range busy; find out if any
1729 1.84 perseant * of them are dirty.
1730 1.84 perseant */
1731 1.84 perseant nonexistent = dirty = 0;
1732 1.84 perseant for (i = 0; i == 0 || i < pages_per_block; i++) {
1733 1.84 perseant if (by_list && pages_per_block <= 1) {
1734 1.84 perseant pgs[i] = pg = curpg;
1735 1.84 perseant } else {
1736 1.84 perseant off = soff + (i << PAGE_SHIFT);
1737 1.84 perseant pgs[i] = pg = uvm_pagelookup(&vp->v_uobj, off);
1738 1.84 perseant if (pg == NULL) {
1739 1.84 perseant ++nonexistent;
1740 1.84 perseant continue;
1741 1.84 perseant }
1742 1.84 perseant }
1743 1.84 perseant KASSERT(pg != NULL);
1744 1.158 perseant
1745 1.158 perseant /*
1746 1.177 perseant * If we're holding the segment lock, we can deadlock
1747 1.158 perseant * against a process that has our page and is waiting
1748 1.158 perseant * for the cleaner, while the cleaner waits for the
1749 1.158 perseant * segment lock. Just bail in that case.
1750 1.158 perseant */
1751 1.159 perseant if ((pg->flags & PG_BUSY) &&
1752 1.159 perseant (pagedaemon || LFS_SEGLOCK_HELD(fs))) {
1753 1.159 perseant if (by_list && i > 0)
1754 1.159 perseant uvm_page_unbusy(pgs, i);
1755 1.159 perseant DLOG((DLOG_PAGE, "lfs_putpages: avoiding 3-way or pagedaemon deadlock\n"));
1756 1.159 perseant return -1;
1757 1.158 perseant }
1758 1.158 perseant
1759 1.84 perseant while (pg->flags & PG_BUSY) {
1760 1.84 perseant pg->flags |= PG_WANTED;
1761 1.84 perseant UVM_UNLOCK_AND_WAIT(pg, &vp->v_interlock, 0,
1762 1.84 perseant "lfsput", 0);
1763 1.84 perseant simple_lock(&vp->v_interlock);
1764 1.96 perseant if (by_list) {
1765 1.96 perseant if (i > 0)
1766 1.96 perseant uvm_page_unbusy(pgs, i);
1767 1.84 perseant goto top;
1768 1.96 perseant }
1769 1.84 perseant }
1770 1.84 perseant pg->flags |= PG_BUSY;
1771 1.84 perseant UVM_PAGE_OWN(pg, "lfs_putpages");
1772 1.84 perseant
1773 1.84 perseant pmap_page_protect(pg, VM_PROT_NONE);
1774 1.84 perseant tdirty = (pmap_clear_modify(pg) ||
1775 1.84 perseant (pg->flags & PG_CLEAN) == 0);
1776 1.84 perseant dirty += tdirty;
1777 1.84 perseant }
1778 1.84 perseant if (pages_per_block > 0 && nonexistent >= pages_per_block) {
1779 1.84 perseant if (by_list) {
1780 1.84 perseant curpg = TAILQ_NEXT(curpg, listq);
1781 1.84 perseant } else {
1782 1.84 perseant soff += fs->lfs_bsize;
1783 1.84 perseant }
1784 1.84 perseant continue;
1785 1.84 perseant }
1786 1.84 perseant
1787 1.84 perseant any_dirty += dirty;
1788 1.84 perseant KASSERT(nonexistent == 0);
1789 1.84 perseant
1790 1.84 perseant /*
1791 1.84 perseant * If any are dirty make all dirty; unbusy them,
1792 1.88 perseant * but if we were asked to clean, wire them so that
1793 1.88 perseant * the pagedaemon doesn't bother us about them while
1794 1.88 perseant * they're on their way to disk.
1795 1.84 perseant */
1796 1.84 perseant for (i = 0; i == 0 || i < pages_per_block; i++) {
1797 1.84 perseant pg = pgs[i];
1798 1.84 perseant KASSERT(!((pg->flags & PG_CLEAN) && (pg->flags & PG_DELWRI)));
1799 1.84 perseant if (dirty) {
1800 1.84 perseant pg->flags &= ~PG_CLEAN;
1801 1.84 perseant if (flags & PGO_FREE) {
1802 1.85 yamt /*
1803 1.96 perseant * Wire the page so that
1804 1.96 perseant * pdaemon doesn't see it again.
1805 1.85 yamt */
1806 1.84 perseant uvm_lock_pageq();
1807 1.85 yamt uvm_pagewire(pg);
1808 1.85 yamt uvm_unlock_pageq();
1809 1.88 perseant
1810 1.84 perseant /* Suspended write flag */
1811 1.84 perseant pg->flags |= PG_DELWRI;
1812 1.84 perseant }
1813 1.84 perseant }
1814 1.84 perseant if (pg->flags & PG_WANTED)
1815 1.84 perseant wakeup(pg);
1816 1.84 perseant pg->flags &= ~(PG_WANTED|PG_BUSY);
1817 1.85 yamt UVM_PAGE_OWN(pg, NULL);
1818 1.84 perseant }
1819 1.84 perseant
1820 1.103 perseant if (checkfirst && any_dirty)
1821 1.130 yamt break;
1822 1.103 perseant
1823 1.84 perseant if (by_list) {
1824 1.84 perseant curpg = TAILQ_NEXT(curpg, listq);
1825 1.84 perseant } else {
1826 1.84 perseant soff += MAX(PAGE_SIZE, fs->lfs_bsize);
1827 1.84 perseant }
1828 1.84 perseant }
1829 1.84 perseant
1830 1.84 perseant return any_dirty;
1831 1.84 perseant }
1832 1.84 perseant
1833 1.84 perseant /*
1834 1.84 perseant * lfs_putpages functions like genfs_putpages except that
1835 1.135 perry *
1836 1.84 perseant * (1) It needs to bounds-check the incoming requests to ensure that
1837 1.84 perseant * they are block-aligned; if they are not, expand the range and
1838 1.84 perseant * do the right thing in case, e.g., the requested range is clean
1839 1.84 perseant * but the expanded range is dirty.
1840 1.178 perseant *
1841 1.84 perseant * (2) It needs to explicitly send blocks to be written when it is done.
1842 1.84 perseant * VOP_PUTPAGES is not ever called with the seglock held, so
1843 1.84 perseant * we simply take the seglock and let lfs_segunlock wait for us.
1844 1.84 perseant * XXX Actually we can be called with the seglock held, if we have
1845 1.84 perseant * XXX to flush a vnode while lfs_markv is in operation. As of this
1846 1.84 perseant * XXX writing we panic in this case.
1847 1.84 perseant *
1848 1.84 perseant * Assumptions:
1849 1.84 perseant *
1850 1.84 perseant * (1) The caller does not hold any pages in this vnode busy. If it does,
1851 1.84 perseant * there is a danger that when we expand the page range and busy the
1852 1.84 perseant * pages we will deadlock.
1853 1.178 perseant *
1854 1.84 perseant * (2) We are called with vp->v_interlock held; we must return with it
1855 1.84 perseant * released.
1856 1.178 perseant *
1857 1.84 perseant * (3) We don't absolutely have to free pages right away, provided that
1858 1.84 perseant * the request does not have PGO_SYNCIO. When the pagedaemon gives
1859 1.84 perseant * us a request with PGO_FREE, we take the pages out of the paging
1860 1.84 perseant * queue and wake up the writer, which will handle freeing them for us.
1861 1.84 perseant *
1862 1.84 perseant * We ensure that for any filesystem block, all pages for that
1863 1.84 perseant * block are either resident or not, even if those pages are higher
1864 1.84 perseant * than EOF; that means that we will be getting requests to free
1865 1.84 perseant * "unused" pages above EOF all the time, and should ignore them.
1866 1.115 yamt *
1867 1.178 perseant * (4) If we are called with PGO_LOCKED, the finfo array we are to write
1868 1.178 perseant * into has been set up for us by lfs_writefile. If not, we will
1869 1.178 perseant * have to handle allocating and/or freeing an finfo entry.
1870 1.178 perseant *
1871 1.115 yamt * XXX note that we're (ab)using PGO_LOCKED as "seglock held".
1872 1.84 perseant */
1873 1.84 perseant
1874 1.84 perseant int
1875 1.84 perseant lfs_putpages(void *v)
1876 1.84 perseant {
1877 1.84 perseant int error;
1878 1.84 perseant struct vop_putpages_args /* {
1879 1.84 perseant struct vnode *a_vp;
1880 1.84 perseant voff_t a_offlo;
1881 1.84 perseant voff_t a_offhi;
1882 1.84 perseant int a_flags;
1883 1.84 perseant } */ *ap = v;
1884 1.84 perseant struct vnode *vp;
1885 1.84 perseant struct inode *ip;
1886 1.84 perseant struct lfs *fs;
1887 1.84 perseant struct segment *sp;
1888 1.84 perseant off_t origoffset, startoffset, endoffset, origendoffset, blkeof;
1889 1.95 perseant off_t off, max_endoffset;
1890 1.126 yamt int s;
1891 1.126 yamt boolean_t seglocked, sync, pagedaemon;
1892 1.95 perseant struct vm_page *pg;
1893 1.84 perseant UVMHIST_FUNC("lfs_putpages"); UVMHIST_CALLED(ubchist);
1894 1.84 perseant
1895 1.84 perseant vp = ap->a_vp;
1896 1.84 perseant ip = VTOI(vp);
1897 1.84 perseant fs = ip->i_lfs;
1898 1.126 yamt sync = (ap->a_flags & PGO_SYNCIO) != 0;
1899 1.84 perseant pagedaemon = (curproc == uvm.pagedaemon_proc);
1900 1.84 perseant
1901 1.84 perseant /* Putpages does nothing for metadata. */
1902 1.84 perseant if (vp == fs->lfs_ivnode || vp->v_type != VREG) {
1903 1.84 perseant simple_unlock(&vp->v_interlock);
1904 1.84 perseant return 0;
1905 1.84 perseant }
1906 1.84 perseant
1907 1.84 perseant /*
1908 1.84 perseant * If there are no pages, don't do anything.
1909 1.84 perseant */
1910 1.84 perseant if (vp->v_uobj.uo_npages == 0) {
1911 1.84 perseant s = splbio();
1912 1.195 perseant if (TAILQ_EMPTY(&vp->v_uobj.memq) &&
1913 1.195 perseant (vp->v_flag & VONWORKLST) &&
1914 1.195 perseant LIST_FIRST(&vp->v_dirtyblkhd) == NULL) {
1915 1.195 perseant vp->v_flag &= ~VWRITEMAPDIRTY;
1916 1.192 reinoud vn_syncer_remove_from_worklist(vp);
1917 1.195 perseant }
1918 1.84 perseant splx(s);
1919 1.84 perseant simple_unlock(&vp->v_interlock);
1920 1.164 perseant
1921 1.164 perseant /* Remove us from paging queue, if we were on it */
1922 1.164 perseant simple_lock(&fs->lfs_interlock);
1923 1.164 perseant if (ip->i_flags & IN_PAGING) {
1924 1.164 perseant ip->i_flags &= ~IN_PAGING;
1925 1.164 perseant TAILQ_REMOVE(&fs->lfs_pchainhd, ip, i_lfs_pchain);
1926 1.164 perseant }
1927 1.164 perseant simple_unlock(&fs->lfs_interlock);
1928 1.84 perseant return 0;
1929 1.84 perseant }
1930 1.84 perseant
1931 1.102 fvdl blkeof = blkroundup(fs, ip->i_size);
1932 1.84 perseant
1933 1.84 perseant /*
1934 1.84 perseant * Ignore requests to free pages past EOF but in the same block
1935 1.158 perseant * as EOF, unless the request is synchronous. (If the request is
1936 1.158 perseant * sync, it comes from lfs_truncate.)
1937 1.84 perseant * XXXUBC Make these pages look "active" so the pagedaemon won't
1938 1.84 perseant * XXXUBC bother us with them again.
1939 1.84 perseant */
1940 1.102 fvdl if (!sync && ap->a_offlo >= ip->i_size && ap->a_offlo < blkeof) {
1941 1.84 perseant origoffset = ap->a_offlo;
1942 1.95 perseant for (off = origoffset; off < blkeof; off += fs->lfs_bsize) {
1943 1.95 perseant pg = uvm_pagelookup(&vp->v_uobj, off);
1944 1.95 perseant KASSERT(pg != NULL);
1945 1.95 perseant while (pg->flags & PG_BUSY) {
1946 1.95 perseant pg->flags |= PG_WANTED;
1947 1.95 perseant UVM_UNLOCK_AND_WAIT(pg, &vp->v_interlock, 0,
1948 1.95 perseant "lfsput2", 0);
1949 1.95 perseant simple_lock(&vp->v_interlock);
1950 1.95 perseant }
1951 1.95 perseant uvm_lock_pageq();
1952 1.95 perseant uvm_pageactivate(pg);
1953 1.95 perseant uvm_unlock_pageq();
1954 1.95 perseant }
1955 1.84 perseant ap->a_offlo = blkeof;
1956 1.84 perseant if (ap->a_offhi > 0 && ap->a_offhi <= ap->a_offlo) {
1957 1.84 perseant simple_unlock(&vp->v_interlock);
1958 1.84 perseant return 0;
1959 1.84 perseant }
1960 1.84 perseant }
1961 1.84 perseant
1962 1.84 perseant /*
1963 1.84 perseant * Extend page range to start and end at block boundaries.
1964 1.84 perseant * (For the purposes of VOP_PUTPAGES, fragments don't exist.)
1965 1.84 perseant */
1966 1.86 perseant origoffset = ap->a_offlo;
1967 1.84 perseant origendoffset = ap->a_offhi;
1968 1.86 perseant startoffset = origoffset & ~(fs->lfs_bmask);
1969 1.84 perseant max_endoffset = (trunc_page(LLONG_MAX) >> fs->lfs_bshift)
1970 1.84 perseant << fs->lfs_bshift;
1971 1.84 perseant
1972 1.84 perseant if (origendoffset == 0 || ap->a_flags & PGO_ALLPAGES) {
1973 1.86 perseant endoffset = max_endoffset;
1974 1.84 perseant origendoffset = endoffset;
1975 1.86 perseant } else {
1976 1.84 perseant origendoffset = round_page(ap->a_offhi);
1977 1.84 perseant endoffset = round_page(blkroundup(fs, origendoffset));
1978 1.84 perseant }
1979 1.84 perseant
1980 1.84 perseant KASSERT(startoffset > 0 || endoffset >= startoffset);
1981 1.84 perseant if (startoffset == endoffset) {
1982 1.84 perseant /* Nothing to do, why were we called? */
1983 1.84 perseant simple_unlock(&vp->v_interlock);
1984 1.136 perseant DLOG((DLOG_PAGE, "lfs_putpages: startoffset = endoffset = %"
1985 1.136 perseant PRId64 "\n", startoffset));
1986 1.84 perseant return 0;
1987 1.84 perseant }
1988 1.84 perseant
1989 1.84 perseant ap->a_offlo = startoffset;
1990 1.84 perseant ap->a_offhi = endoffset;
1991 1.84 perseant
1992 1.84 perseant if (!(ap->a_flags & PGO_CLEANIT))
1993 1.84 perseant return genfs_putpages(v);
1994 1.84 perseant
1995 1.84 perseant /*
1996 1.103 perseant * If there are more than one page per block, we don't want
1997 1.103 perseant * to get caught locking them backwards; so set PGO_BUSYFAIL
1998 1.103 perseant * to avoid deadlocks.
1999 1.84 perseant */
2000 1.103 perseant ap->a_flags |= PGO_BUSYFAIL;
2001 1.103 perseant
2002 1.103 perseant do {
2003 1.103 perseant int r;
2004 1.103 perseant
2005 1.104 yamt /* If no pages are dirty, we can just use genfs_putpages. */
2006 1.158 perseant r = check_dirty(fs, vp, startoffset, endoffset, blkeof,
2007 1.158 perseant ap->a_flags, 1);
2008 1.158 perseant if (r < 0) {
2009 1.158 perseant simple_unlock(&vp->v_interlock);
2010 1.158 perseant return EDEADLK;
2011 1.158 perseant }
2012 1.158 perseant if (r > 0)
2013 1.103 perseant break;
2014 1.103 perseant
2015 1.134 perseant /*
2016 1.134 perseant * Sometimes pages are dirtied between the time that
2017 1.134 perseant * we check and the time we try to clean them.
2018 1.134 perseant * Instruct lfs_gop_write to return EDEADLK in this case
2019 1.134 perseant * so we can write them properly.
2020 1.134 perseant */
2021 1.134 perseant ip->i_lfs_iflags |= LFSI_NO_GOP_WRITE;
2022 1.134 perseant r = genfs_putpages(v);
2023 1.134 perseant ip->i_lfs_iflags &= ~LFSI_NO_GOP_WRITE;
2024 1.134 perseant if (r != EDEADLK)
2025 1.103 perseant return r;
2026 1.103 perseant
2027 1.103 perseant /* Start over. */
2028 1.121 fvdl preempt(1);
2029 1.103 perseant simple_lock(&vp->v_interlock);
2030 1.103 perseant } while(1);
2031 1.135 perry
2032 1.84 perseant /*
2033 1.84 perseant * Dirty and asked to clean.
2034 1.84 perseant *
2035 1.84 perseant * Pagedaemon can't actually write LFS pages; wake up
2036 1.84 perseant * the writer to take care of that. The writer will
2037 1.84 perseant * notice the pager inode queue and act on that.
2038 1.84 perseant */
2039 1.84 perseant if (pagedaemon) {
2040 1.141 perseant simple_lock(&fs->lfs_interlock);
2041 1.164 perseant if (!(ip->i_flags & IN_PAGING)) {
2042 1.164 perseant ip->i_flags |= IN_PAGING;
2043 1.164 perseant TAILQ_INSERT_TAIL(&fs->lfs_pchainhd, ip, i_lfs_pchain);
2044 1.164 perseant }
2045 1.164 perseant simple_lock(&lfs_subsys_lock);
2046 1.164 perseant wakeup(&lfs_writer_daemon);
2047 1.164 perseant simple_unlock(&lfs_subsys_lock);
2048 1.141 perseant simple_unlock(&fs->lfs_interlock);
2049 1.87 yamt simple_unlock(&vp->v_interlock);
2050 1.164 perseant preempt(1);
2051 1.84 perseant return EWOULDBLOCK;
2052 1.84 perseant }
2053 1.84 perseant
2054 1.84 perseant /*
2055 1.84 perseant * If this is a file created in a recent dirop, we can't flush its
2056 1.84 perseant * inode until the dirop is complete. Drain dirops, then flush the
2057 1.84 perseant * filesystem (taking care of any other pending dirops while we're
2058 1.84 perseant * at it).
2059 1.84 perseant */
2060 1.84 perseant if ((ap->a_flags & (PGO_CLEANIT|PGO_LOCKED)) == PGO_CLEANIT &&
2061 1.84 perseant (vp->v_flag & VDIROP)) {
2062 1.84 perseant int locked;
2063 1.84 perseant
2064 1.136 perseant DLOG((DLOG_PAGE, "lfs_putpages: flushing VDIROP\n"));
2065 1.189 perseant locked = (VOP_ISLOCKED(vp) == LK_EXCLUSIVE);
2066 1.140 perseant simple_unlock(&vp->v_interlock);
2067 1.140 perseant lfs_writer_enter(fs, "ppdirop");
2068 1.84 perseant if (locked)
2069 1.84 perseant VOP_UNLOCK(vp, 0);
2070 1.135 perry
2071 1.141 perseant simple_lock(&fs->lfs_interlock);
2072 1.84 perseant lfs_flush_fs(fs, sync ? SEGM_SYNC : 0);
2073 1.141 perseant simple_unlock(&fs->lfs_interlock);
2074 1.135 perry
2075 1.84 perseant simple_lock(&vp->v_interlock);
2076 1.151 perseant if (locked) {
2077 1.150 perseant VOP_LOCK(vp, LK_EXCLUSIVE | LK_INTERLOCK);
2078 1.151 perseant simple_lock(&vp->v_interlock);
2079 1.151 perseant }
2080 1.111 yamt lfs_writer_leave(fs);
2081 1.84 perseant
2082 1.84 perseant /* XXX the flush should have taken care of this one too! */
2083 1.84 perseant }
2084 1.84 perseant
2085 1.84 perseant /*
2086 1.86 perseant * This is it. We are going to write some pages. From here on
2087 1.84 perseant * down it's all just mechanics.
2088 1.84 perseant *
2089 1.103 perseant * Don't let genfs_putpages wait; lfs_segunlock will wait for us.
2090 1.84 perseant */
2091 1.84 perseant ap->a_flags &= ~PGO_SYNCIO;
2092 1.84 perseant
2093 1.84 perseant /*
2094 1.84 perseant * If we've already got the seglock, flush the node and return.
2095 1.84 perseant * The FIP has already been set up for us by lfs_writefile,
2096 1.84 perseant * and FIP cleanup and lfs_updatemeta will also be done there,
2097 1.84 perseant * unless genfs_putpages returns EDEADLK; then we must flush
2098 1.84 perseant * what we have, and correct FIP and segment header accounting.
2099 1.84 perseant */
2100 1.177 perseant get_seglock:
2101 1.126 yamt seglocked = (ap->a_flags & PGO_LOCKED) != 0;
2102 1.126 yamt if (!seglocked) {
2103 1.126 yamt simple_unlock(&vp->v_interlock);
2104 1.103 perseant /*
2105 1.126 yamt * Take the seglock, because we are going to be writing pages.
2106 1.103 perseant */
2107 1.126 yamt error = lfs_seglock(fs, SEGM_PROT | (sync ? SEGM_SYNC : 0));
2108 1.126 yamt if (error != 0)
2109 1.126 yamt return error;
2110 1.126 yamt simple_lock(&vp->v_interlock);
2111 1.84 perseant }
2112 1.84 perseant
2113 1.84 perseant /*
2114 1.84 perseant * VOP_PUTPAGES should not be called while holding the seglock.
2115 1.93 perseant * XXXUBC fix lfs_markv, or do this properly.
2116 1.84 perseant */
2117 1.141 perseant #ifdef notyet
2118 1.141 perseant KASSERT(fs->lfs_seglock == 1);
2119 1.141 perseant #endif /* notyet */
2120 1.84 perseant
2121 1.84 perseant /*
2122 1.84 perseant * We assume we're being called with sp->fip pointing at blank space.
2123 1.84 perseant * Account for a new FIP in the segment header, and set sp->vp.
2124 1.84 perseant * (This should duplicate the setup at the top of lfs_writefile().)
2125 1.84 perseant */
2126 1.84 perseant sp = fs->lfs_sp;
2127 1.178 perseant if (!seglocked)
2128 1.178 perseant lfs_acquire_finfo(fs, ip->i_number, ip->i_gen);
2129 1.120 yamt KASSERT(sp->vp == NULL);
2130 1.84 perseant sp->vp = vp;
2131 1.135 perry
2132 1.126 yamt if (!seglocked) {
2133 1.126 yamt if (vp->v_flag & VDIROP)
2134 1.126 yamt ((SEGSUM *)(sp->segsum))->ss_flags |= (SS_DIROP|SS_CONT);
2135 1.126 yamt }
2136 1.135 perry
2137 1.84 perseant /*
2138 1.84 perseant * Loop through genfs_putpages until all pages are gathered.
2139 1.88 perseant * genfs_putpages() drops the interlock, so reacquire it if necessary.
2140 1.103 perseant * Whenever we lose the interlock we have to rerun check_dirty, as
2141 1.103 perseant * well.
2142 1.84 perseant */
2143 1.126 yamt again:
2144 1.158 perseant if (check_dirty(fs, vp, startoffset, endoffset, blkeof,
2145 1.158 perseant ap->a_flags, 0) < 0) {
2146 1.158 perseant simple_unlock(&vp->v_interlock);
2147 1.158 perseant sp->vp = NULL;
2148 1.178 perseant if (!seglocked) {
2149 1.178 perseant lfs_release_finfo(fs);
2150 1.162 perseant lfs_segunlock(fs);
2151 1.178 perseant }
2152 1.177 perseant if (pagedaemon)
2153 1.177 perseant return EDEADLK;
2154 1.177 perseant /* else seglocked == 0 */
2155 1.177 perseant preempt(1);
2156 1.177 perseant simple_lock(&vp->v_interlock);
2157 1.177 perseant goto get_seglock;
2158 1.158 perseant }
2159 1.103 perseant
2160 1.158 perseant error = genfs_putpages(v);
2161 1.158 perseant if (error == EDEADLK || error == EAGAIN) {
2162 1.136 perseant DLOG((DLOG_PAGE, "lfs_putpages: genfs_putpages returned"
2163 1.136 perseant " EDEADLK [2] ino %d off %x (seg %d)\n",
2164 1.136 perseant ip->i_number, fs->lfs_offset,
2165 1.136 perseant dtosn(fs, fs->lfs_offset)));
2166 1.88 perseant /* If nothing to write, short-circuit */
2167 1.129 yamt if (sp->cbpp - sp->bpp > 1) {
2168 1.129 yamt /* Write gathered pages */
2169 1.129 yamt lfs_updatemeta(sp);
2170 1.180 perseant lfs_release_finfo(fs);
2171 1.129 yamt (void) lfs_writeseg(fs, sp);
2172 1.135 perry
2173 1.129 yamt /*
2174 1.129 yamt * Reinitialize brand new FIP and add us to it.
2175 1.129 yamt */
2176 1.129 yamt KASSERT(sp->vp == vp);
2177 1.178 perseant lfs_acquire_finfo(fs, ip->i_number, ip->i_gen);
2178 1.88 perseant }
2179 1.84 perseant
2180 1.84 perseant /* Give the write a chance to complete */
2181 1.121 fvdl preempt(1);
2182 1.103 perseant
2183 1.103 perseant /* We've lost the interlock. Start over. */
2184 1.167 perseant if (error == EDEADLK) {
2185 1.167 perseant simple_lock(&vp->v_interlock);
2186 1.158 perseant goto again;
2187 1.167 perseant }
2188 1.84 perseant }
2189 1.103 perseant
2190 1.120 yamt KASSERT(sp->vp == vp);
2191 1.126 yamt if (!seglocked) {
2192 1.178 perseant sp->vp = NULL;
2193 1.126 yamt
2194 1.126 yamt /* Write indirect blocks as well */
2195 1.126 yamt lfs_gather(fs, fs->lfs_sp, vp, lfs_match_indir);
2196 1.126 yamt lfs_gather(fs, fs->lfs_sp, vp, lfs_match_dindir);
2197 1.126 yamt lfs_gather(fs, fs->lfs_sp, vp, lfs_match_tindir);
2198 1.120 yamt
2199 1.126 yamt KASSERT(sp->vp == NULL);
2200 1.126 yamt sp->vp = vp;
2201 1.126 yamt }
2202 1.84 perseant
2203 1.84 perseant /*
2204 1.84 perseant * Blocks are now gathered into a segment waiting to be written.
2205 1.84 perseant * All that's left to do is update metadata, and write them.
2206 1.84 perseant */
2207 1.120 yamt lfs_updatemeta(sp);
2208 1.120 yamt KASSERT(sp->vp == vp);
2209 1.120 yamt sp->vp = NULL;
2210 1.126 yamt
2211 1.126 yamt if (seglocked) {
2212 1.126 yamt /* we're called by lfs_writefile. */
2213 1.126 yamt return error;
2214 1.126 yamt }
2215 1.120 yamt
2216 1.178 perseant /* Clean up FIP and send it to disk. */
2217 1.178 perseant lfs_release_finfo(fs);
2218 1.88 perseant lfs_writeseg(fs, fs->lfs_sp);
2219 1.88 perseant
2220 1.84 perseant /*
2221 1.164 perseant * Remove us from paging queue, since we've now written all our
2222 1.164 perseant * pages.
2223 1.164 perseant */
2224 1.164 perseant simple_lock(&fs->lfs_interlock);
2225 1.164 perseant if (ip->i_flags & IN_PAGING) {
2226 1.164 perseant ip->i_flags &= ~IN_PAGING;
2227 1.164 perseant TAILQ_REMOVE(&fs->lfs_pchainhd, ip, i_lfs_pchain);
2228 1.164 perseant }
2229 1.164 perseant simple_unlock(&fs->lfs_interlock);
2230 1.164 perseant
2231 1.164 perseant /*
2232 1.84 perseant * XXX - with the malloc/copy writeseg, the pages are freed by now
2233 1.84 perseant * even if we don't wait (e.g. if we hold a nested lock). This
2234 1.84 perseant * will not be true if we stop using malloc/copy.
2235 1.84 perseant */
2236 1.84 perseant KASSERT(fs->lfs_sp->seg_flags & SEGM_PROT);
2237 1.84 perseant lfs_segunlock(fs);
2238 1.84 perseant
2239 1.84 perseant /*
2240 1.84 perseant * Wait for v_numoutput to drop to zero. The seglock should
2241 1.84 perseant * take care of this, but there is a slight possibility that
2242 1.84 perseant * aiodoned might not have got around to our buffers yet.
2243 1.84 perseant */
2244 1.84 perseant if (sync) {
2245 1.84 perseant s = splbio();
2246 1.84 perseant simple_lock(&global_v_numoutput_slock);
2247 1.98 perseant while (vp->v_numoutput > 0) {
2248 1.136 perseant DLOG((DLOG_PAGE, "lfs_putpages: ino %d sleeping on"
2249 1.136 perseant " num %d\n", ip->i_number, vp->v_numoutput));
2250 1.84 perseant vp->v_flag |= VBWAIT;
2251 1.87 yamt ltsleep(&vp->v_numoutput, PRIBIO + 1, "lfs_vn", 0,
2252 1.87 yamt &global_v_numoutput_slock);
2253 1.84 perseant }
2254 1.84 perseant simple_unlock(&global_v_numoutput_slock);
2255 1.84 perseant splx(s);
2256 1.84 perseant }
2257 1.84 perseant return error;
2258 1.84 perseant }
2259 1.84 perseant
2260 1.84 perseant /*
2261 1.84 perseant * Return the last logical file offset that should be written for this file
2262 1.86 perseant * if we're doing a write that ends at "size". If writing, we need to know
2263 1.84 perseant * about sizes on disk, i.e. fragments if there are any; if reading, we need
2264 1.84 perseant * to know about entire blocks.
2265 1.84 perseant */
2266 1.84 perseant void
2267 1.84 perseant lfs_gop_size(struct vnode *vp, off_t size, off_t *eobp, int flags)
2268 1.84 perseant {
2269 1.84 perseant struct inode *ip = VTOI(vp);
2270 1.135 perry struct lfs *fs = ip->i_lfs;
2271 1.84 perseant daddr_t olbn, nlbn;
2272 1.84 perseant
2273 1.102 fvdl olbn = lblkno(fs, ip->i_size);
2274 1.84 perseant nlbn = lblkno(fs, size);
2275 1.118 yamt if (!(flags & GOP_SIZE_MEM) && nlbn < NDADDR && olbn <= nlbn) {
2276 1.86 perseant *eobp = fragroundup(fs, size);
2277 1.86 perseant } else {
2278 1.86 perseant *eobp = blkroundup(fs, size);
2279 1.86 perseant }
2280 1.84 perseant }
2281 1.84 perseant
2282 1.84 perseant #ifdef DEBUG
2283 1.84 perseant void lfs_dump_vop(void *);
2284 1.84 perseant
2285 1.84 perseant void
2286 1.84 perseant lfs_dump_vop(void *v)
2287 1.84 perseant {
2288 1.86 perseant struct vop_putpages_args /* {
2289 1.86 perseant struct vnode *a_vp;
2290 1.86 perseant voff_t a_offlo;
2291 1.86 perseant voff_t a_offhi;
2292 1.86 perseant int a_flags;
2293 1.86 perseant } */ *ap = v;
2294 1.84 perseant
2295 1.106 ragge #ifdef DDB
2296 1.84 perseant vfs_vnode_print(ap->a_vp, 0, printf);
2297 1.106 ragge #endif
2298 1.102 fvdl lfs_dump_dinode(VTOI(ap->a_vp)->i_din.ffs1_din);
2299 1.84 perseant }
2300 1.84 perseant #endif
2301 1.84 perseant
2302 1.84 perseant int
2303 1.84 perseant lfs_mmap(void *v)
2304 1.84 perseant {
2305 1.84 perseant struct vop_mmap_args /* {
2306 1.86 perseant const struct vnodeop_desc *a_desc;
2307 1.86 perseant struct vnode *a_vp;
2308 1.86 perseant int a_fflags;
2309 1.176 elad kauth_cred_t a_cred;
2310 1.157 christos struct lwp *a_l;
2311 1.84 perseant } */ *ap = v;
2312 1.84 perseant
2313 1.84 perseant if (VTOI(ap->a_vp)->i_number == LFS_IFILE_INUM)
2314 1.84 perseant return EOPNOTSUPP;
2315 1.84 perseant return ufs_mmap(v);
2316 1.84 perseant }
2317