1 /*-
2 * SPDX-License-Identifier: BSD-3-Clause
3 *
4 * Copyright (c) 1989, 1993
5 * The Regents of the University of California. All rights reserved.
6 * (c) UNIX System Laboratories, Inc.
7 * All or some portions of this file are derived from material licensed
8 * to the University of California by American Telephone and Telegraph
9 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
10 * the permission of UNIX System Laboratories, Inc.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 * notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 * notice, this list of conditions and the following disclaimer in the
19 * documentation and/or other materials provided with the distribution.
20 * 3. Neither the name of the University nor the names of its contributors
21 * may be used to endorse or promote products derived from this software
22 * without specific prior written permission.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
25 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
28 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 * SUCH DAMAGE.
35 */
36
37 /*
38 * External virtual filesystem routines
39 */
40
41 #include "opt_ddb.h"
42 #include "opt_watchdog.h"
43
44 #include <sys/param.h>
45 #include <sys/systm.h>
46 #include <sys/asan.h>
47 #include <sys/bio.h>
48 #include <sys/buf.h>
49 #include <sys/capsicum.h>
50 #include <sys/condvar.h>
51 #include <sys/conf.h>
52 #include <sys/counter.h>
53 #include <sys/dirent.h>
54 #include <sys/event.h>
55 #include <sys/eventhandler.h>
56 #include <sys/extattr.h>
57 #include <sys/file.h>
58 #include <sys/fcntl.h>
59 #include <sys/inotify.h>
60 #include <sys/jail.h>
61 #include <sys/kdb.h>
62 #include <sys/kernel.h>
63 #include <sys/kthread.h>
64 #include <sys/ktr.h>
65 #include <sys/limits.h>
66 #include <sys/lockf.h>
67 #include <sys/malloc.h>
68 #include <sys/mount.h>
69 #include <sys/namei.h>
70 #include <sys/pctrie.h>
71 #include <sys/priv.h>
72 #include <sys/reboot.h>
73 #include <sys/refcount.h>
74 #include <sys/rwlock.h>
75 #include <sys/sched.h>
76 #include <sys/sleepqueue.h>
77 #include <sys/smr.h>
78 #include <sys/smp.h>
79 #include <sys/stat.h>
80 #include <sys/stdarg.h>
81 #include <sys/sysctl.h>
82 #include <sys/syslog.h>
83 #include <sys/user.h>
84 #include <sys/vmmeter.h>
85 #include <sys/vnode.h>
86 #include <sys/watchdog.h>
87
88 #include <security/mac/mac_framework.h>
89
90 #include <vm/vm.h>
91 #include <vm/vm_object.h>
92 #include <vm/vm_extern.h>
93 #include <vm/pmap.h>
94 #include <vm/vm_map.h>
95 #include <vm/vm_page.h>
96 #include <vm/vm_kern.h>
97 #include <vm/vnode_pager.h>
98 #include <vm/uma.h>
99
100 #ifdef DDB
101 #include <ddb/ddb.h>
102 #endif
103
104 static void delmntque(struct vnode *vp);
105 static int flushbuflist(struct bufv *bufv, int flags, struct bufobj *bo,
106 int slpflag, int slptimeo);
107 static void syncer_shutdown(void *arg, int howto);
108 static int vtryrecycle(struct vnode *vp, bool isvnlru);
109 static void v_init_counters(struct vnode *);
110 static void vn_seqc_init(struct vnode *);
111 static void vn_seqc_write_end_free(struct vnode *vp);
112 static void vgonel(struct vnode *);
113 static bool vhold_recycle_free(struct vnode *);
114 static void vdropl_recycle(struct vnode *vp);
115 static void vdrop_recycle(struct vnode *vp);
116 static void vfs_knllock(void *arg);
117 static void vfs_knlunlock(void *arg);
118 static void vfs_knl_assert_lock(void *arg, int what);
119 static void destroy_vpollinfo(struct vpollinfo *vi);
120 static int v_inval_buf_range_locked(struct vnode *vp, struct bufobj *bo,
121 daddr_t startlbn, daddr_t endlbn);
122 static void vnlru_recalc(void);
123
124 static SYSCTL_NODE(_vfs, OID_AUTO, vnode, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
125 "vnode configuration and statistics");
126 static SYSCTL_NODE(_vfs_vnode, OID_AUTO, param, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
127 "vnode configuration");
128 static SYSCTL_NODE(_vfs_vnode, OID_AUTO, stats, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
129 "vnode statistics");
130 static SYSCTL_NODE(_vfs_vnode, OID_AUTO, vnlru, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
131 "vnode recycling");
132
133 /*
134 * Number of vnodes in existence. Increased whenever getnewvnode()
135 * allocates a new vnode, decreased in vdropl() for VIRF_DOOMED vnode.
136 */
137 static u_long __exclusive_cache_line numvnodes;
138
139 SYSCTL_ULONG(_vfs, OID_AUTO, numvnodes, CTLFLAG_RD, &numvnodes, 0,
140 "Number of vnodes in existence (legacy)");
141 SYSCTL_ULONG(_vfs_vnode_stats, OID_AUTO, count, CTLFLAG_RD, &numvnodes, 0,
142 "Number of vnodes in existence");
143
144 static counter_u64_t vnodes_created;
145 SYSCTL_COUNTER_U64(_vfs, OID_AUTO, vnodes_created, CTLFLAG_RD, &vnodes_created,
146 "Number of vnodes created by getnewvnode (legacy)");
147 SYSCTL_COUNTER_U64(_vfs_vnode_stats, OID_AUTO, created, CTLFLAG_RD, &vnodes_created,
148 "Number of vnodes created by getnewvnode");
149
150 /*
151 * Conversion tables for conversion from vnode types to inode formats
152 * and back.
153 */
154 __enum_uint8(vtype) iftovt_tab[16] = {
155 VNON, VFIFO, VCHR, VNON, VDIR, VNON, VBLK, VNON,
156 VREG, VNON, VLNK, VNON, VSOCK, VNON, VNON, VNON
157 };
158 int vttoif_tab[10] = {
159 0, S_IFREG, S_IFDIR, S_IFBLK, S_IFCHR, S_IFLNK,
160 S_IFSOCK, S_IFIFO, S_IFMT, S_IFMT
161 };
162
163 /*
164 * "Free" vnode target. Free vnodes are rarely completely free, but are
165 * just ones that are cheap to recycle. Usually they are for files which
166 * have been stat'd but not read; these usually have inode and namecache
167 * data attached to them. This target is the preferred minimum size of a
168 * sub-cache consisting mostly of such files. The system balances the size
169 * of this sub-cache with its complement to try to prevent either from
170 * thrashing while the other is relatively inactive. The targets express
171 * a preference for the best balance.
172 *
173 * "Above" this target there are 2 further targets (watermarks) related
174 * to recyling of free vnodes. In the best-operating case, the cache is
175 * exactly full, the free list has size between vlowat and vhiwat above the
176 * free target, and recycling from it and normal use maintains this state.
177 * Sometimes the free list is below vlowat or even empty, but this state
178 * is even better for immediate use provided the cache is not full.
179 * Otherwise, vnlru_proc() runs to reclaim enough vnodes (usually non-free
180 * ones) to reach one of these states. The watermarks are currently hard-
181 * coded as 4% and 9% of the available space higher. These and the default
182 * of 25% for wantfreevnodes are too large if the memory size is large.
183 * E.g., 9% of 75% of MAXVNODES is more than 566000 vnodes to reclaim
184 * whenever vnlru_proc() becomes active.
185 */
186 static long __read_mostly wantfreevnodes;
187 static long __exclusive_cache_line freevnodes;
188 static long freevnodes_old;
189
190 static u_long recycles_count;
191 SYSCTL_ULONG(_vfs, OID_AUTO, recycles, CTLFLAG_RD | CTLFLAG_STATS, &recycles_count, 0,
192 "Number of vnodes recycled to meet vnode cache targets (legacy)");
193 SYSCTL_ULONG(_vfs_vnode_vnlru, OID_AUTO, recycles, CTLFLAG_RD | CTLFLAG_STATS,
194 &recycles_count, 0,
195 "Number of vnodes recycled to meet vnode cache targets");
196
197 static u_long recycles_free_count;
198 SYSCTL_ULONG(_vfs, OID_AUTO, recycles_free, CTLFLAG_RD | CTLFLAG_STATS,
199 &recycles_free_count, 0,
200 "Number of free vnodes recycled to meet vnode cache targets (legacy)");
201 SYSCTL_ULONG(_vfs_vnode_vnlru, OID_AUTO, recycles_free, CTLFLAG_RD | CTLFLAG_STATS,
202 &recycles_free_count, 0,
203 "Number of free vnodes recycled to meet vnode cache targets");
204
205 static counter_u64_t direct_recycles_free_count;
206 SYSCTL_COUNTER_U64(_vfs_vnode_vnlru, OID_AUTO, direct_recycles_free, CTLFLAG_RD,
207 &direct_recycles_free_count,
208 "Number of free vnodes recycled by vn_alloc callers to meet vnode cache targets");
209
210 static counter_u64_t vnode_skipped_requeues;
211 SYSCTL_COUNTER_U64(_vfs_vnode_stats, OID_AUTO, skipped_requeues, CTLFLAG_RD, &vnode_skipped_requeues,
212 "Number of times LRU requeue was skipped due to lock contention");
213
214 static __read_mostly bool vnode_can_skip_requeue;
215 SYSCTL_BOOL(_vfs_vnode_param, OID_AUTO, can_skip_requeue, CTLFLAG_RW,
216 &vnode_can_skip_requeue, 0, "Is LRU requeue skippable");
217
218 static u_long deferred_inact;
219 SYSCTL_ULONG(_vfs, OID_AUTO, deferred_inact, CTLFLAG_RD,
220 &deferred_inact, 0, "Number of times inactive processing was deferred");
221
222 /* To keep more than one thread at a time from running vfs_getnewfsid */
223 static struct mtx mntid_mtx;
224
225 /*
226 * Lock for any access to the following:
227 * vnode_list
228 * numvnodes
229 * freevnodes
230 */
231 static struct mtx __exclusive_cache_line vnode_list_mtx;
232
233 static __read_mostly uma_zone_t buf_trie_zone;
234 static __read_mostly smr_t buf_trie_smr;
235
236 /* Zone for allocation of new vnodes - used exclusively by getnewvnode() */
237 static __read_mostly uma_zone_t vnode_zone;
238 __read_frequently smr_t vfs_smr;
239
240 MALLOC_DEFINE(M_VNODEPOLL, "VN POLL", "vnode poll");
241
242 /*
243 * The workitem queue.
244 *
245 * It is useful to delay writes of file data and filesystem metadata
246 * for tens of seconds so that quickly created and deleted files need
247 * not waste disk bandwidth being created and removed. To realize this,
248 * we append vnodes to a "workitem" queue. When running with a soft
249 * updates implementation, most pending metadata dependencies should
250 * not wait for more than a few seconds. Thus, mounted on block devices
251 * are delayed only about a half the time that file data is delayed.
252 * Similarly, directory updates are more critical, so are only delayed
253 * about a third the time that file data is delayed. Thus, there are
254 * SYNCER_MAXDELAY queues that are processed round-robin at a rate of
255 * one each second (driven off the filesystem syncer process). The
256 * syncer_delayno variable indicates the next queue that is to be processed.
257 * Items that need to be processed soon are placed in this queue:
258 *
259 * syncer_workitem_pending[syncer_delayno]
260 *
261 * A delay of fifteen seconds is done by placing the request fifteen
262 * entries later in the queue:
263 *
264 * syncer_workitem_pending[(syncer_delayno + 15) & syncer_mask]
265 *
266 */
267 static int syncer_delayno;
268 static long syncer_mask;
269 LIST_HEAD(synclist, bufobj);
270 static struct synclist *syncer_workitem_pending;
271 /*
272 * The sync_mtx protects:
273 * bo->bo_synclist
274 * sync_vnode_count
275 * syncer_delayno
276 * syncer_state
277 * syncer_workitem_pending
278 * syncer_worklist_len
279 * rushjob
280 */
281 static struct mtx sync_mtx;
282 static struct cv sync_wakeup;
283
284 #define SYNCER_MAXDELAY 32
285 static int syncer_maxdelay = SYNCER_MAXDELAY; /* maximum delay time */
286 static int syncdelay = 30; /* max time to delay syncing data */
287 static int filedelay = 30; /* time to delay syncing files */
288 SYSCTL_INT(_kern, OID_AUTO, filedelay, CTLFLAG_RW, &filedelay, 0,
289 "Time to delay syncing files (in seconds)");
290 static int dirdelay = 29; /* time to delay syncing directories */
291 SYSCTL_INT(_kern, OID_AUTO, dirdelay, CTLFLAG_RW, &dirdelay, 0,
292 "Time to delay syncing directories (in seconds)");
293 static int metadelay = 28; /* time to delay syncing metadata */
294 SYSCTL_INT(_kern, OID_AUTO, metadelay, CTLFLAG_RW, &metadelay, 0,
295 "Time to delay syncing metadata (in seconds)");
296 static int rushjob; /* number of slots to run ASAP */
297 static int stat_rush_requests; /* number of times I/O speeded up */
298 SYSCTL_INT(_debug, OID_AUTO, rush_requests, CTLFLAG_RW, &stat_rush_requests, 0,
299 "Number of times I/O speeded up (rush requests)");
300
301 #define VDBATCH_SIZE 8
302 struct vdbatch {
303 u_int index;
304 struct mtx lock;
305 struct vnode *tab[VDBATCH_SIZE];
306 };
307 DPCPU_DEFINE_STATIC(struct vdbatch, vd);
308
309 static void vdbatch_dequeue(struct vnode *vp);
310
311 /*
312 * The syncer will require at least SYNCER_MAXDELAY iterations to shutdown;
313 * we probably don't want to pause for the whole second each time.
314 */
315 #define SYNCER_SHUTDOWN_SPEEDUP 32
316 static int sync_vnode_count;
317 static int syncer_worklist_len;
318 static enum { SYNCER_RUNNING, SYNCER_SHUTTING_DOWN, SYNCER_FINAL_DELAY }
319 syncer_state;
320
321 /* Target for maximum number of vnodes. */
322 u_long __read_mostly desiredvnodes;
323 static u_long vlowat; /* minimal extras before expansion */
324 static bool vstir; /* nonzero to stir non-free vnodes */
325 /* pref to keep vnode if > this many resident pages */
326 static volatile int __read_mostly vsmalltrigger = 8;
327
328 /* Group globals accessed only under vnode_list_mtx together. */
329 struct {
330 /* List of allocated vnodes in the system. */
331 TAILQ_HEAD(freelst, vnode) vnode_list;
332 struct vnode *vnode_list_free_marker;
333 struct vnode *vnode_list_reclaim_marker;
334 u_long gapvnodes; /* gap between wanted and desired */
335 u_long vhiwat; /* enough extras after expansion */
336 } g_vnlru __exclusive_cache_line;
337 #define vnode_list g_vnlru.vnode_list
338 #define vnode_list_free_marker g_vnlru.vnode_list_free_marker
339 #define vnode_list_reclaim_marker g_vnlru.vnode_list_reclaim_marker
340 #define gapvnodes g_vnlru.gapvnodes
341 #define vhiwat g_vnlru.vhiwat
342
343 static u_long vnlru_read_freevnodes(void);
344
345 /*
346 * Note that no attempt is made to sanitize these parameters.
347 */
348 static int
sysctl_maxvnodes(SYSCTL_HANDLER_ARGS)349 sysctl_maxvnodes(SYSCTL_HANDLER_ARGS)
350 {
351 u_long val;
352 int error;
353
354 val = desiredvnodes;
355 error = sysctl_handle_long(oidp, &val, 0, req);
356 if (error != 0 || req->newptr == NULL)
357 return (error);
358
359 if (val == desiredvnodes)
360 return (0);
361 mtx_lock(&vnode_list_mtx);
362 desiredvnodes = val;
363 wantfreevnodes = desiredvnodes / 4;
364 vnlru_recalc();
365 mtx_unlock(&vnode_list_mtx);
366 /*
367 * XXX There is no protection against multiple threads changing
368 * desiredvnodes at the same time. Locking above only helps vnlru and
369 * getnewvnode.
370 */
371 vfs_hash_changesize(desiredvnodes);
372 cache_changesize(desiredvnodes);
373 return (0);
374 }
375
376 SYSCTL_PROC(_kern, KERN_MAXVNODES, maxvnodes,
377 CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RW, NULL, 0, sysctl_maxvnodes,
378 "LU", "Target for maximum number of vnodes (legacy)");
379 SYSCTL_PROC(_vfs_vnode_param, OID_AUTO, limit,
380 CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RW, NULL, 0, sysctl_maxvnodes,
381 "LU", "Target for maximum number of vnodes");
382
383 static int
sysctl_freevnodes(SYSCTL_HANDLER_ARGS)384 sysctl_freevnodes(SYSCTL_HANDLER_ARGS)
385 {
386 u_long rfreevnodes;
387
388 rfreevnodes = vnlru_read_freevnodes();
389 return (sysctl_handle_long(oidp, &rfreevnodes, 0, req));
390 }
391
392 SYSCTL_PROC(_vfs, OID_AUTO, freevnodes,
393 CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RD, NULL, 0, sysctl_freevnodes,
394 "LU", "Number of \"free\" vnodes (legacy)");
395 SYSCTL_PROC(_vfs_vnode_stats, OID_AUTO, free,
396 CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RD, NULL, 0, sysctl_freevnodes,
397 "LU", "Number of \"free\" vnodes");
398
399 static int
sysctl_wantfreevnodes(SYSCTL_HANDLER_ARGS)400 sysctl_wantfreevnodes(SYSCTL_HANDLER_ARGS)
401 {
402 u_long val;
403 int error;
404
405 val = wantfreevnodes;
406 error = sysctl_handle_long(oidp, &val, 0, req);
407 if (error != 0 || req->newptr == NULL)
408 return (error);
409
410 if (val == wantfreevnodes)
411 return (0);
412 mtx_lock(&vnode_list_mtx);
413 wantfreevnodes = val;
414 vnlru_recalc();
415 mtx_unlock(&vnode_list_mtx);
416 return (0);
417 }
418
419 SYSCTL_PROC(_vfs, OID_AUTO, wantfreevnodes,
420 CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RW, NULL, 0, sysctl_wantfreevnodes,
421 "LU", "Target for minimum number of \"free\" vnodes (legacy)");
422 SYSCTL_PROC(_vfs_vnode_param, OID_AUTO, wantfree,
423 CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RW, NULL, 0, sysctl_wantfreevnodes,
424 "LU", "Target for minimum number of \"free\" vnodes");
425
426 static int vnlru_nowhere;
427 SYSCTL_INT(_vfs_vnode_vnlru, OID_AUTO, failed_runs, CTLFLAG_RD | CTLFLAG_STATS,
428 &vnlru_nowhere, 0, "Number of times the vnlru process ran without success");
429
430 static int
sysctl_try_reclaim_vnode(SYSCTL_HANDLER_ARGS)431 sysctl_try_reclaim_vnode(SYSCTL_HANDLER_ARGS)
432 {
433 struct vnode *vp;
434 struct nameidata nd;
435 char *buf;
436 unsigned long ndflags;
437 int error;
438
439 if (req->newptr == NULL)
440 return (EINVAL);
441 if (req->newlen >= PATH_MAX)
442 return (E2BIG);
443
444 buf = malloc(PATH_MAX, M_TEMP, M_WAITOK);
445 error = SYSCTL_IN(req, buf, req->newlen);
446 if (error != 0)
447 goto out;
448
449 buf[req->newlen] = '\0';
450
451 ndflags = LOCKLEAF | NOFOLLOW | AUDITVNODE1;
452 NDINIT(&nd, LOOKUP, ndflags, UIO_SYSSPACE, buf);
453 if ((error = namei(&nd)) != 0)
454 goto out;
455 vp = nd.ni_vp;
456
457 if (VN_IS_DOOMED(vp)) {
458 /*
459 * This vnode is being recycled. Return != 0 to let the caller
460 * know that the sysctl had no effect. Return EAGAIN because a
461 * subsequent call will likely succeed (since namei will create
462 * a new vnode if necessary)
463 */
464 error = EAGAIN;
465 goto putvnode;
466 }
467
468 vgone(vp);
469 putvnode:
470 vput(vp);
471 NDFREE_PNBUF(&nd);
472 out:
473 free(buf, M_TEMP);
474 return (error);
475 }
476
477 static int
sysctl_ftry_reclaim_vnode(SYSCTL_HANDLER_ARGS)478 sysctl_ftry_reclaim_vnode(SYSCTL_HANDLER_ARGS)
479 {
480 struct thread *td = curthread;
481 struct vnode *vp;
482 struct file *fp;
483 int error;
484 int fd;
485
486 if (req->newptr == NULL)
487 return (EBADF);
488
489 error = sysctl_handle_int(oidp, &fd, 0, req);
490 if (error != 0)
491 return (error);
492 error = getvnode(curthread, fd, &cap_fcntl_rights, &fp);
493 if (error != 0)
494 return (error);
495 vp = fp->f_vnode;
496
497 error = vn_lock(vp, LK_EXCLUSIVE);
498 if (error != 0)
499 goto drop;
500
501 vgone(vp);
502 VOP_UNLOCK(vp);
503 drop:
504 fdrop(fp, td);
505 return (error);
506 }
507
508 SYSCTL_PROC(_debug, OID_AUTO, try_reclaim_vnode,
509 CTLTYPE_STRING | CTLFLAG_MPSAFE | CTLFLAG_WR, NULL, 0,
510 sysctl_try_reclaim_vnode, "A", "Try to reclaim a vnode by its pathname");
511 SYSCTL_PROC(_debug, OID_AUTO, ftry_reclaim_vnode,
512 CTLTYPE_INT | CTLFLAG_MPSAFE | CTLFLAG_WR, NULL, 0,
513 sysctl_ftry_reclaim_vnode, "I",
514 "Try to reclaim a vnode by its file descriptor");
515
516 /* Shift count for (uintptr_t)vp to initialize vp->v_hash. */
517 #define vnsz2log 8
518 #ifndef DEBUG_LOCKS
519 _Static_assert(sizeof(struct vnode) >= 1UL << vnsz2log &&
520 sizeof(struct vnode) < 1UL << (vnsz2log + 1),
521 "vnsz2log needs to be updated");
522 #endif
523
524 /*
525 * Support for the bufobj clean & dirty pctrie.
526 */
527 static void *
buf_trie_alloc(struct pctrie * ptree)528 buf_trie_alloc(struct pctrie *ptree)
529 {
530 return (uma_zalloc_smr(buf_trie_zone, M_NOWAIT));
531 }
532
533 static void
buf_trie_free(struct pctrie * ptree,void * node)534 buf_trie_free(struct pctrie *ptree, void *node)
535 {
536 uma_zfree_smr(buf_trie_zone, node);
537 }
538 PCTRIE_DEFINE_SMR(BUF, buf, b_lblkno, buf_trie_alloc, buf_trie_free,
539 buf_trie_smr);
540
541 /*
542 * Lookup the next element greater than or equal to lblkno, accounting for the
543 * fact that, for pctries, negative values are greater than nonnegative ones.
544 */
545 static struct buf *
buf_lookup_ge(struct bufv * bv,daddr_t lblkno)546 buf_lookup_ge(struct bufv *bv, daddr_t lblkno)
547 {
548 struct buf *bp;
549
550 bp = BUF_PCTRIE_LOOKUP_GE(&bv->bv_root, lblkno);
551 if (bp == NULL && lblkno < 0)
552 bp = BUF_PCTRIE_LOOKUP_GE(&bv->bv_root, 0);
553 if (bp != NULL && bp->b_lblkno < lblkno)
554 bp = NULL;
555 return (bp);
556 }
557
558 /*
559 * Insert bp, and find the next element smaller than bp, accounting for the fact
560 * that, for pctries, negative values are greater than nonnegative ones.
561 */
562 static int
buf_insert_lookup_le(struct bufv * bv,struct buf * bp,struct buf ** n)563 buf_insert_lookup_le(struct bufv *bv, struct buf *bp, struct buf **n)
564 {
565 int error;
566
567 error = BUF_PCTRIE_INSERT_LOOKUP_LE(&bv->bv_root, bp, n);
568 if (error != EEXIST) {
569 if (*n == NULL && bp->b_lblkno >= 0)
570 *n = BUF_PCTRIE_LOOKUP_LE(&bv->bv_root, ~0L);
571 if (*n != NULL && (*n)->b_lblkno >= bp->b_lblkno)
572 *n = NULL;
573 }
574 return (error);
575 }
576
577 /*
578 * Initialize the vnode management data structures.
579 *
580 * Reevaluate the following cap on the number of vnodes after the physical
581 * memory size exceeds 512GB. In the limit, as the physical memory size
582 * grows, the ratio of the memory size in KB to vnodes approaches 64:1.
583 */
584 #ifndef MAXVNODES_MAX
585 #define MAXVNODES_MAX (512UL * 1024 * 1024 / 64) /* 8M */
586 #endif
587
588 static MALLOC_DEFINE(M_VNODE_MARKER, "vnodemarker", "vnode marker");
589
590 static struct vnode *
vn_alloc_marker(struct mount * mp)591 vn_alloc_marker(struct mount *mp)
592 {
593 struct vnode *vp;
594
595 vp = malloc(sizeof(struct vnode), M_VNODE_MARKER, M_WAITOK | M_ZERO);
596 vp->v_type = VMARKER;
597 vp->v_mount = mp;
598
599 return (vp);
600 }
601
602 static void
vn_free_marker(struct vnode * vp)603 vn_free_marker(struct vnode *vp)
604 {
605
606 MPASS(vp->v_type == VMARKER);
607 free(vp, M_VNODE_MARKER);
608 }
609
610 #ifdef KASAN
611 static int
vnode_ctor(void * mem,int size,void * arg __unused,int flags __unused)612 vnode_ctor(void *mem, int size, void *arg __unused, int flags __unused)
613 {
614 kasan_mark(mem, size, roundup2(size, UMA_ALIGN_PTR + 1), 0);
615 return (0);
616 }
617
618 static void
vnode_dtor(void * mem,int size,void * arg __unused)619 vnode_dtor(void *mem, int size, void *arg __unused)
620 {
621 size_t end1, end2, off1, off2;
622
623 _Static_assert(offsetof(struct vnode, v_vnodelist) <
624 offsetof(struct vnode, v_dbatchcpu),
625 "KASAN marks require updating");
626
627 off1 = offsetof(struct vnode, v_vnodelist);
628 off2 = offsetof(struct vnode, v_dbatchcpu);
629 end1 = off1 + sizeof(((struct vnode *)NULL)->v_vnodelist);
630 end2 = off2 + sizeof(((struct vnode *)NULL)->v_dbatchcpu);
631
632 /*
633 * Access to the v_vnodelist and v_dbatchcpu fields are permitted even
634 * after the vnode has been freed. Try to get some KASAN coverage by
635 * marking everything except those two fields as invalid. Because
636 * KASAN's tracking is not byte-granular, any preceding fields sharing
637 * the same 8-byte aligned word must also be marked valid.
638 */
639
640 /* Handle the area from the start until v_vnodelist... */
641 off1 = rounddown2(off1, KASAN_SHADOW_SCALE);
642 kasan_mark(mem, off1, off1, KASAN_UMA_FREED);
643
644 /* ... then the area between v_vnodelist and v_dbatchcpu ... */
645 off1 = roundup2(end1, KASAN_SHADOW_SCALE);
646 off2 = rounddown2(off2, KASAN_SHADOW_SCALE);
647 if (off2 > off1)
648 kasan_mark((void *)((char *)mem + off1), off2 - off1,
649 off2 - off1, KASAN_UMA_FREED);
650
651 /* ... and finally the area from v_dbatchcpu to the end. */
652 off2 = roundup2(end2, KASAN_SHADOW_SCALE);
653 kasan_mark((void *)((char *)mem + off2), size - off2, size - off2,
654 KASAN_UMA_FREED);
655 }
656 #endif /* KASAN */
657
658 /*
659 * Initialize a vnode as it first enters the zone.
660 */
661 static int
vnode_init(void * mem,int size,int flags)662 vnode_init(void *mem, int size, int flags)
663 {
664 struct vnode *vp;
665
666 vp = mem;
667 bzero(vp, size);
668 /*
669 * Setup locks.
670 */
671 vp->v_vnlock = &vp->v_lock;
672 mtx_init(&vp->v_interlock, "vnode interlock", NULL, MTX_DEF);
673 /*
674 * By default, don't allow shared locks unless filesystems opt-in.
675 */
676 lockinit(vp->v_vnlock, PVFS, "vnode", VLKTIMEOUT,
677 LK_NOSHARE | LK_IS_VNODE);
678 /*
679 * Initialize bufobj.
680 */
681 bufobj_init(&vp->v_bufobj, vp);
682 /*
683 * Initialize namecache.
684 */
685 cache_vnode_init(vp);
686 /*
687 * Initialize rangelocks.
688 */
689 rangelock_init(&vp->v_rl);
690
691 vp->v_dbatchcpu = NOCPU;
692
693 vp->v_state = VSTATE_DEAD;
694
695 /*
696 * Check vhold_recycle_free for an explanation.
697 */
698 vp->v_holdcnt = VHOLD_NO_SMR;
699 vp->v_type = VNON;
700 mtx_lock(&vnode_list_mtx);
701 TAILQ_INSERT_BEFORE(vnode_list_free_marker, vp, v_vnodelist);
702 mtx_unlock(&vnode_list_mtx);
703 return (0);
704 }
705
706 /*
707 * Free a vnode when it is cleared from the zone.
708 */
709 static void
vnode_fini(void * mem,int size)710 vnode_fini(void *mem, int size)
711 {
712 struct vnode *vp;
713 struct bufobj *bo;
714
715 vp = mem;
716 vdbatch_dequeue(vp);
717 mtx_lock(&vnode_list_mtx);
718 TAILQ_REMOVE(&vnode_list, vp, v_vnodelist);
719 mtx_unlock(&vnode_list_mtx);
720 rangelock_destroy(&vp->v_rl);
721 lockdestroy(vp->v_vnlock);
722 mtx_destroy(&vp->v_interlock);
723 bo = &vp->v_bufobj;
724 rw_destroy(BO_LOCKPTR(bo));
725
726 kasan_mark(mem, size, size, 0);
727 }
728
729 /*
730 * Provide the size of NFS nclnode and NFS fh for calculation of the
731 * vnode memory consumption. The size is specified directly to
732 * eliminate dependency on NFS-private header.
733 *
734 * Other filesystems may use bigger or smaller (like UFS and ZFS)
735 * private inode data, but the NFS-based estimation is ample enough.
736 * Still, we care about differences in the size between 64- and 32-bit
737 * platforms.
738 *
739 * Namecache structure size is heuristically
740 * sizeof(struct namecache_ts) + CACHE_PATH_CUTOFF + 1.
741 */
742 #ifdef _LP64
743 #define NFS_NCLNODE_SZ (528 + 64)
744 #define NC_SZ 148
745 #else
746 #define NFS_NCLNODE_SZ (360 + 32)
747 #define NC_SZ 92
748 #endif
749
750 static void
vntblinit(void * dummy __unused)751 vntblinit(void *dummy __unused)
752 {
753 struct vdbatch *vd;
754 uma_ctor ctor;
755 uma_dtor dtor;
756 int cpu, physvnodes, virtvnodes;
757
758 /*
759 * 'desiredvnodes' is the minimum of a function of the physical memory
760 * size and another of the kernel heap size (UMA limit, a portion of the
761 * KVA).
762 *
763 * Currently, on 64-bit platforms, 'desiredvnodes' is set to
764 * 'virtvnodes' up to a physical memory cutoff of ~1722MB, after which
765 * 'physvnodes' applies instead. With the current automatic tuning for
766 * 'maxfiles' (32 files/MB), 'desiredvnodes' is always greater than it.
767 */
768 physvnodes = maxproc + pgtok(vm_cnt.v_page_count) / 32 +
769 min(98304 * 16, pgtok(vm_cnt.v_page_count)) / 32;
770 virtvnodes = vm_kmem_size / (10 * (sizeof(struct vm_object) +
771 sizeof(struct vnode) + NC_SZ * ncsizefactor + NFS_NCLNODE_SZ));
772 desiredvnodes = min(physvnodes, virtvnodes);
773 if (desiredvnodes > MAXVNODES_MAX) {
774 if (bootverbose)
775 printf("Reducing kern.maxvnodes %lu -> %lu\n",
776 desiredvnodes, MAXVNODES_MAX);
777 desiredvnodes = MAXVNODES_MAX;
778 }
779 wantfreevnodes = desiredvnodes / 4;
780 mtx_init(&mntid_mtx, "mntid", NULL, MTX_DEF);
781 TAILQ_INIT(&vnode_list);
782 mtx_init(&vnode_list_mtx, "vnode_list", NULL, MTX_DEF);
783 /*
784 * The lock is taken to appease WITNESS.
785 */
786 mtx_lock(&vnode_list_mtx);
787 vnlru_recalc();
788 mtx_unlock(&vnode_list_mtx);
789 vnode_list_free_marker = vn_alloc_marker(NULL);
790 TAILQ_INSERT_HEAD(&vnode_list, vnode_list_free_marker, v_vnodelist);
791 vnode_list_reclaim_marker = vn_alloc_marker(NULL);
792 TAILQ_INSERT_HEAD(&vnode_list, vnode_list_reclaim_marker, v_vnodelist);
793
794 #ifdef KASAN
795 ctor = vnode_ctor;
796 dtor = vnode_dtor;
797 #else
798 ctor = NULL;
799 dtor = NULL;
800 #endif
801 vnode_zone = uma_zcreate("VNODE", sizeof(struct vnode), ctor, dtor,
802 vnode_init, vnode_fini, UMA_ALIGN_PTR, UMA_ZONE_NOKASAN);
803 uma_zone_set_smr(vnode_zone, vfs_smr);
804
805 /*
806 * Preallocate enough nodes to support one-per buf so that
807 * we can not fail an insert. reassignbuf() callers can not
808 * tolerate the insertion failure.
809 */
810 buf_trie_zone = uma_zcreate("BUF TRIE", pctrie_node_size(),
811 NULL, NULL, pctrie_zone_init, NULL, UMA_ALIGN_PTR,
812 UMA_ZONE_NOFREE | UMA_ZONE_SMR);
813 buf_trie_smr = uma_zone_get_smr(buf_trie_zone);
814 uma_prealloc(buf_trie_zone, nbuf);
815
816 vnodes_created = counter_u64_alloc(M_WAITOK);
817 direct_recycles_free_count = counter_u64_alloc(M_WAITOK);
818 vnode_skipped_requeues = counter_u64_alloc(M_WAITOK);
819
820 /*
821 * Initialize the filesystem syncer.
822 */
823 syncer_workitem_pending = hashinit(syncer_maxdelay, M_VNODE,
824 &syncer_mask);
825 syncer_maxdelay = syncer_mask + 1;
826 mtx_init(&sync_mtx, "Syncer mtx", NULL, MTX_DEF);
827 cv_init(&sync_wakeup, "syncer");
828
829 CPU_FOREACH(cpu) {
830 vd = DPCPU_ID_PTR((cpu), vd);
831 bzero(vd, sizeof(*vd));
832 mtx_init(&vd->lock, "vdbatch", NULL, MTX_DEF);
833 }
834 }
835 SYSINIT(vfs, SI_SUB_VFS, SI_ORDER_FIRST, vntblinit, NULL);
836
837 /*
838 * Mark a mount point as busy. Used to synchronize access and to delay
839 * unmounting. Eventually, mountlist_mtx is not released on failure.
840 *
841 * vfs_busy() is a custom lock, it can block the caller.
842 * vfs_busy() only sleeps if the unmount is active on the mount point.
843 * For a mountpoint mp, vfs_busy-enforced lock is before lock of any
844 * vnode belonging to mp.
845 *
846 * Lookup uses vfs_busy() to traverse mount points.
847 * root fs var fs
848 * / vnode lock A / vnode lock (/var) D
849 * /var vnode lock B /log vnode lock(/var/log) E
850 * vfs_busy lock C vfs_busy lock F
851 *
852 * Within each file system, the lock order is C->A->B and F->D->E.
853 *
854 * When traversing across mounts, the system follows that lock order:
855 *
856 * C->A->B
857 * |
858 * +->F->D->E
859 *
860 * The lookup() process for namei("/var") illustrates the process:
861 * 1. VOP_LOOKUP() obtains B while A is held
862 * 2. vfs_busy() obtains a shared lock on F while A and B are held
863 * 3. vput() releases lock on B
864 * 4. vput() releases lock on A
865 * 5. VFS_ROOT() obtains lock on D while shared lock on F is held
866 * 6. vfs_unbusy() releases shared lock on F
867 * 7. vn_lock() obtains lock on deadfs vnode vp_crossmp instead of A.
868 * Attempt to lock A (instead of vp_crossmp) while D is held would
869 * violate the global order, causing deadlocks.
870 *
871 * dounmount() locks B while F is drained. Note that for stacked
872 * filesystems, D and B in the example above may be the same lock,
873 * which introdues potential lock order reversal deadlock between
874 * dounmount() and step 5 above. These filesystems may avoid the LOR
875 * by setting VV_CROSSLOCK on the covered vnode so that lock B will
876 * remain held until after step 5.
877 */
878 int
vfs_busy(struct mount * mp,int flags)879 vfs_busy(struct mount *mp, int flags)
880 {
881 struct mount_pcpu *mpcpu;
882
883 MPASS((flags & ~MBF_MASK) == 0);
884 CTR3(KTR_VFS, "%s: mp %p with flags %d", __func__, mp, flags);
885
886 if (vfs_op_thread_enter(mp, &mpcpu)) {
887 MPASS((mp->mnt_kern_flag & MNTK_DRAINING) == 0);
888 MPASS((mp->mnt_kern_flag & MNTK_UNMOUNT) == 0);
889 MPASS((mp->mnt_kern_flag & MNTK_REFEXPIRE) == 0);
890 vfs_mp_count_add_pcpu(mpcpu, ref, 1);
891 vfs_mp_count_add_pcpu(mpcpu, lockref, 1);
892 vfs_op_thread_exit(mp, mpcpu);
893 if (flags & MBF_MNTLSTLOCK)
894 mtx_unlock(&mountlist_mtx);
895 return (0);
896 }
897
898 MNT_ILOCK(mp);
899 vfs_assert_mount_counters(mp);
900 MNT_REF(mp);
901 /*
902 * If mount point is currently being unmounted, sleep until the
903 * mount point fate is decided. If thread doing the unmounting fails,
904 * it will clear MNTK_UNMOUNT flag before waking us up, indicating
905 * that this mount point has survived the unmount attempt and vfs_busy
906 * should retry. Otherwise the unmounter thread will set MNTK_REFEXPIRE
907 * flag in addition to MNTK_UNMOUNT, indicating that mount point is
908 * about to be really destroyed. vfs_busy needs to release its
909 * reference on the mount point in this case and return with ENOENT,
910 * telling the caller the mount it tried to busy is no longer valid.
911 */
912 while (mp->mnt_kern_flag & MNTK_UNMOUNT) {
913 KASSERT(TAILQ_EMPTY(&mp->mnt_uppers),
914 ("%s: non-empty upper mount list with pending unmount",
915 __func__));
916 if (flags & MBF_NOWAIT || mp->mnt_kern_flag & MNTK_REFEXPIRE) {
917 MNT_REL(mp);
918 MNT_IUNLOCK(mp);
919 CTR1(KTR_VFS, "%s: failed busying before sleeping",
920 __func__);
921 return (ENOENT);
922 }
923 if (flags & MBF_MNTLSTLOCK)
924 mtx_unlock(&mountlist_mtx);
925 mp->mnt_kern_flag |= MNTK_MWAIT;
926 msleep(mp, MNT_MTX(mp), PVFS | PDROP, "vfs_busy", 0);
927 if (flags & MBF_MNTLSTLOCK)
928 mtx_lock(&mountlist_mtx);
929 MNT_ILOCK(mp);
930 }
931 if (flags & MBF_MNTLSTLOCK)
932 mtx_unlock(&mountlist_mtx);
933 mp->mnt_lockref++;
934 MNT_IUNLOCK(mp);
935 return (0);
936 }
937
938 /*
939 * Free a busy filesystem.
940 */
941 void
vfs_unbusy(struct mount * mp)942 vfs_unbusy(struct mount *mp)
943 {
944 struct mount_pcpu *mpcpu;
945 int c;
946
947 CTR2(KTR_VFS, "%s: mp %p", __func__, mp);
948
949 if (vfs_op_thread_enter(mp, &mpcpu)) {
950 MPASS((mp->mnt_kern_flag & MNTK_DRAINING) == 0);
951 vfs_mp_count_sub_pcpu(mpcpu, lockref, 1);
952 vfs_mp_count_sub_pcpu(mpcpu, ref, 1);
953 vfs_op_thread_exit(mp, mpcpu);
954 return;
955 }
956
957 MNT_ILOCK(mp);
958 vfs_assert_mount_counters(mp);
959 MNT_REL(mp);
960 c = --mp->mnt_lockref;
961 if (mp->mnt_vfs_ops == 0) {
962 MPASS((mp->mnt_kern_flag & MNTK_DRAINING) == 0);
963 MNT_IUNLOCK(mp);
964 return;
965 }
966 if (c < 0)
967 vfs_dump_mount_counters(mp);
968 if (c == 0 && (mp->mnt_kern_flag & MNTK_DRAINING) != 0) {
969 MPASS(mp->mnt_kern_flag & MNTK_UNMOUNT);
970 CTR1(KTR_VFS, "%s: waking up waiters", __func__);
971 mp->mnt_kern_flag &= ~MNTK_DRAINING;
972 wakeup(&mp->mnt_lockref);
973 }
974 MNT_IUNLOCK(mp);
975 }
976
977 /*
978 * Lookup a mount point by filesystem identifier.
979 */
980 struct mount *
vfs_getvfs(fsid_t * fsid)981 vfs_getvfs(fsid_t *fsid)
982 {
983 struct mount *mp;
984
985 CTR2(KTR_VFS, "%s: fsid %p", __func__, fsid);
986 mtx_lock(&mountlist_mtx);
987 TAILQ_FOREACH(mp, &mountlist, mnt_list) {
988 if (fsidcmp(&mp->mnt_stat.f_fsid, fsid) == 0) {
989 vfs_ref(mp);
990 mtx_unlock(&mountlist_mtx);
991 return (mp);
992 }
993 }
994 mtx_unlock(&mountlist_mtx);
995 CTR2(KTR_VFS, "%s: lookup failed for %p id", __func__, fsid);
996 return ((struct mount *) 0);
997 }
998
999 /*
1000 * Lookup a mount point by filesystem identifier, busying it before
1001 * returning.
1002 *
1003 * To avoid congestion on mountlist_mtx, implement simple direct-mapped
1004 * cache for popular filesystem identifiers. The cache is lockess, using
1005 * the fact that struct mount's are never freed. In worst case we may
1006 * get pointer to unmounted or even different filesystem, so we have to
1007 * check what we got, and go slow way if so.
1008 */
1009 struct mount *
vfs_busyfs(fsid_t * fsid)1010 vfs_busyfs(fsid_t *fsid)
1011 {
1012 #define FSID_CACHE_SIZE 256
1013 typedef struct mount * volatile vmp_t;
1014 static vmp_t cache[FSID_CACHE_SIZE];
1015 struct mount *mp;
1016 int error;
1017 uint32_t hash;
1018
1019 CTR2(KTR_VFS, "%s: fsid %p", __func__, fsid);
1020 hash = fsid->val[0] ^ fsid->val[1];
1021 hash = (hash >> 16 ^ hash) & (FSID_CACHE_SIZE - 1);
1022 mp = cache[hash];
1023 if (mp == NULL || fsidcmp(&mp->mnt_stat.f_fsid, fsid) != 0)
1024 goto slow;
1025 if (vfs_busy(mp, 0) != 0) {
1026 cache[hash] = NULL;
1027 goto slow;
1028 }
1029 if (fsidcmp(&mp->mnt_stat.f_fsid, fsid) == 0)
1030 return (mp);
1031 else
1032 vfs_unbusy(mp);
1033
1034 slow:
1035 mtx_lock(&mountlist_mtx);
1036 TAILQ_FOREACH(mp, &mountlist, mnt_list) {
1037 if (fsidcmp(&mp->mnt_stat.f_fsid, fsid) == 0) {
1038 error = vfs_busy(mp, MBF_MNTLSTLOCK);
1039 if (error) {
1040 cache[hash] = NULL;
1041 mtx_unlock(&mountlist_mtx);
1042 return (NULL);
1043 }
1044 cache[hash] = mp;
1045 return (mp);
1046 }
1047 }
1048 CTR2(KTR_VFS, "%s: lookup failed for %p id", __func__, fsid);
1049 mtx_unlock(&mountlist_mtx);
1050 return ((struct mount *) 0);
1051 }
1052
1053 /*
1054 * Check if a user can access privileged mount options.
1055 */
1056 int
vfs_suser(struct mount * mp,struct thread * td)1057 vfs_suser(struct mount *mp, struct thread *td)
1058 {
1059 int error;
1060
1061 if (jailed(td->td_ucred)) {
1062 /*
1063 * If the jail of the calling thread lacks permission for
1064 * this type of file system, deny immediately.
1065 */
1066 if (!prison_allow(td->td_ucred, mp->mnt_vfc->vfc_prison_flag))
1067 return (EPERM);
1068
1069 /*
1070 * If the file system was mounted outside the jail of the
1071 * calling thread, deny immediately.
1072 */
1073 if (prison_check(td->td_ucred, mp->mnt_cred) != 0)
1074 return (EPERM);
1075 }
1076
1077 /*
1078 * If file system supports delegated administration, we don't check
1079 * for the PRIV_VFS_MOUNT_OWNER privilege - it will be better verified
1080 * by the file system itself.
1081 * If this is not the user that did original mount, we check for
1082 * the PRIV_VFS_MOUNT_OWNER privilege.
1083 */
1084 if (!(mp->mnt_vfc->vfc_flags & VFCF_DELEGADMIN) &&
1085 mp->mnt_cred->cr_uid != td->td_ucred->cr_uid) {
1086 if ((error = priv_check(td, PRIV_VFS_MOUNT_OWNER)) != 0)
1087 return (error);
1088 }
1089 return (0);
1090 }
1091
1092 /*
1093 * Get a new unique fsid. Try to make its val[0] unique, since this value
1094 * will be used to create fake device numbers for stat(). Also try (but
1095 * not so hard) make its val[0] unique mod 2^16, since some emulators only
1096 * support 16-bit device numbers. We end up with unique val[0]'s for the
1097 * first 2^16 calls and unique val[0]'s mod 2^16 for the first 2^8 calls.
1098 *
1099 * Keep in mind that several mounts may be running in parallel. Starting
1100 * the search one past where the previous search terminated is both a
1101 * micro-optimization and a defense against returning the same fsid to
1102 * different mounts.
1103 */
1104 void
vfs_getnewfsid(struct mount * mp)1105 vfs_getnewfsid(struct mount *mp)
1106 {
1107 static uint16_t mntid_base;
1108 struct mount *nmp;
1109 fsid_t tfsid;
1110 int mtype;
1111
1112 CTR2(KTR_VFS, "%s: mp %p", __func__, mp);
1113 mtx_lock(&mntid_mtx);
1114 mtype = mp->mnt_vfc->vfc_typenum;
1115 tfsid.val[1] = mtype;
1116 mtype = (mtype & 0xFF) << 24;
1117 for (;;) {
1118 tfsid.val[0] = makedev(255,
1119 mtype | ((mntid_base & 0xFF00) << 8) | (mntid_base & 0xFF));
1120 mntid_base++;
1121 if ((nmp = vfs_getvfs(&tfsid)) == NULL)
1122 break;
1123 vfs_rel(nmp);
1124 }
1125 mp->mnt_stat.f_fsid.val[0] = tfsid.val[0];
1126 mp->mnt_stat.f_fsid.val[1] = tfsid.val[1];
1127 mtx_unlock(&mntid_mtx);
1128 }
1129
1130 /*
1131 * Knob to control the precision of file timestamps:
1132 *
1133 * 0 = seconds only; nanoseconds zeroed.
1134 * 1 = seconds and nanoseconds, accurate within 1/HZ.
1135 * 2 = seconds and nanoseconds, truncated to microseconds.
1136 * >=3 = seconds and nanoseconds, maximum precision.
1137 */
1138 enum { TSP_SEC, TSP_HZ, TSP_USEC, TSP_NSEC };
1139
1140 static int timestamp_precision = TSP_USEC;
1141 SYSCTL_INT(_vfs, OID_AUTO, timestamp_precision, CTLFLAG_RW,
1142 ×tamp_precision, 0, "File timestamp precision (0: seconds, "
1143 "1: sec + ns accurate to 1/HZ, 2: sec + ns truncated to us, "
1144 "3+: sec + ns (max. precision))");
1145
1146 /*
1147 * Get a current timestamp.
1148 */
1149 void
vfs_timestamp(struct timespec * tsp)1150 vfs_timestamp(struct timespec *tsp)
1151 {
1152 struct timeval tv;
1153
1154 switch (timestamp_precision) {
1155 case TSP_SEC:
1156 tsp->tv_sec = time_second;
1157 tsp->tv_nsec = 0;
1158 break;
1159 case TSP_HZ:
1160 getnanotime(tsp);
1161 break;
1162 case TSP_USEC:
1163 microtime(&tv);
1164 TIMEVAL_TO_TIMESPEC(&tv, tsp);
1165 break;
1166 case TSP_NSEC:
1167 default:
1168 nanotime(tsp);
1169 break;
1170 }
1171 }
1172
1173 /*
1174 * Set vnode attributes to VNOVAL
1175 */
1176 void
vattr_null(struct vattr * vap)1177 vattr_null(struct vattr *vap)
1178 {
1179
1180 vap->va_type = VNON;
1181 vap->va_size = VNOVAL;
1182 vap->va_bytes = VNOVAL;
1183 vap->va_mode = VNOVAL;
1184 vap->va_nlink = VNOVAL;
1185 vap->va_uid = VNOVAL;
1186 vap->va_gid = VNOVAL;
1187 vap->va_fsid = VNOVAL;
1188 vap->va_fileid = VNOVAL;
1189 vap->va_blocksize = VNOVAL;
1190 vap->va_rdev = VNOVAL;
1191 vap->va_atime.tv_sec = VNOVAL;
1192 vap->va_atime.tv_nsec = VNOVAL;
1193 vap->va_mtime.tv_sec = VNOVAL;
1194 vap->va_mtime.tv_nsec = VNOVAL;
1195 vap->va_ctime.tv_sec = VNOVAL;
1196 vap->va_ctime.tv_nsec = VNOVAL;
1197 vap->va_birthtime.tv_sec = VNOVAL;
1198 vap->va_birthtime.tv_nsec = VNOVAL;
1199 vap->va_flags = VNOVAL;
1200 vap->va_gen = VNOVAL;
1201 vap->va_vaflags = 0;
1202 vap->va_filerev = VNOVAL;
1203 vap->va_bsdflags = 0;
1204 }
1205
1206 /*
1207 * Try to reduce the total number of vnodes.
1208 *
1209 * This routine (and its user) are buggy in at least the following ways:
1210 * - all parameters were picked years ago when RAM sizes were significantly
1211 * smaller
1212 * - it can pick vnodes based on pages used by the vm object, but filesystems
1213 * like ZFS don't use it making the pick broken
1214 * - since ZFS has its own aging policy it gets partially combated by this one
1215 * - a dedicated method should be provided for filesystems to let them decide
1216 * whether the vnode should be recycled
1217 *
1218 * This routine is called when we have too many vnodes. It attempts
1219 * to free <count> vnodes and will potentially free vnodes that still
1220 * have VM backing store (VM backing store is typically the cause
1221 * of a vnode blowout so we want to do this). Therefore, this operation
1222 * is not considered cheap.
1223 *
1224 * A number of conditions may prevent a vnode from being reclaimed.
1225 * the buffer cache may have references on the vnode, a directory
1226 * vnode may still have references due to the namei cache representing
1227 * underlying files, or the vnode may be in active use. It is not
1228 * desirable to reuse such vnodes. These conditions may cause the
1229 * number of vnodes to reach some minimum value regardless of what
1230 * you set kern.maxvnodes to. Do not set kern.maxvnodes too low.
1231 *
1232 * @param reclaim_nc_src Only reclaim directories with outgoing namecache
1233 * entries if this argument is strue
1234 * @param trigger Only reclaim vnodes with fewer than this many resident
1235 * pages.
1236 * @param target How many vnodes to reclaim.
1237 * @return The number of vnodes that were reclaimed.
1238 */
1239 static int
vlrureclaim(bool reclaim_nc_src,int trigger,u_long target)1240 vlrureclaim(bool reclaim_nc_src, int trigger, u_long target)
1241 {
1242 struct vnode *vp, *mvp;
1243 struct mount *mp;
1244 struct vm_object *object;
1245 u_long done;
1246 bool retried;
1247
1248 mtx_assert(&vnode_list_mtx, MA_OWNED);
1249
1250 retried = false;
1251 done = 0;
1252
1253 mvp = vnode_list_reclaim_marker;
1254 restart:
1255 vp = mvp;
1256 while (done < target) {
1257 vp = TAILQ_NEXT(vp, v_vnodelist);
1258 if (__predict_false(vp == NULL))
1259 break;
1260
1261 if (__predict_false(vp->v_type == VMARKER))
1262 continue;
1263
1264 /*
1265 * If it's been deconstructed already, it's still
1266 * referenced, or it exceeds the trigger, skip it.
1267 * Also skip free vnodes. We are trying to make space
1268 * for more free vnodes, not reduce their count.
1269 */
1270 if (vp->v_usecount > 0 || vp->v_holdcnt == 0 ||
1271 (!reclaim_nc_src && !LIST_EMPTY(&vp->v_cache_src)))
1272 goto next_iter;
1273
1274 if (vp->v_type == VBAD || vp->v_type == VNON)
1275 goto next_iter;
1276
1277 object = atomic_load_ptr(&vp->v_object);
1278 if (object == NULL || object->resident_page_count > trigger) {
1279 goto next_iter;
1280 }
1281
1282 /*
1283 * Handle races against vnode allocation. Filesystems lock the
1284 * vnode some time after it gets returned from getnewvnode,
1285 * despite type and hold count being manipulated earlier.
1286 * Resorting to checking v_mount restores guarantees present
1287 * before the global list was reworked to contain all vnodes.
1288 */
1289 if (!VI_TRYLOCK(vp))
1290 goto next_iter;
1291 if (__predict_false(vp->v_type == VBAD || vp->v_type == VNON)) {
1292 VI_UNLOCK(vp);
1293 goto next_iter;
1294 }
1295 if (vp->v_mount == NULL) {
1296 VI_UNLOCK(vp);
1297 goto next_iter;
1298 }
1299 vholdl(vp);
1300 VI_UNLOCK(vp);
1301 TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
1302 TAILQ_INSERT_AFTER(&vnode_list, vp, mvp, v_vnodelist);
1303 mtx_unlock(&vnode_list_mtx);
1304
1305 if (vn_start_write(vp, &mp, V_NOWAIT) != 0) {
1306 vdrop_recycle(vp);
1307 goto next_iter_unlocked;
1308 }
1309 if (VOP_LOCK(vp, LK_EXCLUSIVE|LK_NOWAIT) != 0) {
1310 vdrop_recycle(vp);
1311 vn_finished_write(mp);
1312 goto next_iter_unlocked;
1313 }
1314
1315 VI_LOCK(vp);
1316 if (vp->v_usecount > 0 ||
1317 (!reclaim_nc_src && !LIST_EMPTY(&vp->v_cache_src)) ||
1318 (vp->v_object != NULL && vp->v_object->handle == vp &&
1319 vp->v_object->resident_page_count > trigger)) {
1320 VOP_UNLOCK(vp);
1321 vdropl_recycle(vp);
1322 vn_finished_write(mp);
1323 goto next_iter_unlocked;
1324 }
1325 recycles_count++;
1326 vgonel(vp);
1327 VOP_UNLOCK(vp);
1328 vdropl_recycle(vp);
1329 vn_finished_write(mp);
1330 done++;
1331 next_iter_unlocked:
1332 maybe_yield();
1333 mtx_lock(&vnode_list_mtx);
1334 goto restart;
1335 next_iter:
1336 MPASS(vp->v_type != VMARKER);
1337 if (!should_yield())
1338 continue;
1339 TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
1340 TAILQ_INSERT_AFTER(&vnode_list, vp, mvp, v_vnodelist);
1341 mtx_unlock(&vnode_list_mtx);
1342 kern_yield(PRI_USER);
1343 mtx_lock(&vnode_list_mtx);
1344 goto restart;
1345 }
1346 if (done == 0 && !retried) {
1347 TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
1348 TAILQ_INSERT_HEAD(&vnode_list, mvp, v_vnodelist);
1349 retried = true;
1350 goto restart;
1351 }
1352 return (done);
1353 }
1354
1355 static int __read_mostly max_free_per_call = 10000;
1356 SYSCTL_INT(_debug, OID_AUTO, max_vnlru_free, CTLFLAG_RW, &max_free_per_call, 0,
1357 "limit on vnode free requests per call to the vnlru_free routine (legacy)");
1358 SYSCTL_INT(_vfs_vnode_vnlru, OID_AUTO, max_free_per_call, CTLFLAG_RW,
1359 &max_free_per_call, 0,
1360 "limit on vnode free requests per call to the vnlru_free routine");
1361
1362 /*
1363 * Attempt to recycle requested amount of free vnodes.
1364 */
1365 static int
vnlru_free_impl(int count,struct vfsops * mnt_op,struct vnode * mvp,bool isvnlru)1366 vnlru_free_impl(int count, struct vfsops *mnt_op, struct vnode *mvp, bool isvnlru)
1367 {
1368 struct vnode *vp;
1369 struct mount *mp;
1370 int ocount;
1371 bool retried;
1372
1373 mtx_assert(&vnode_list_mtx, MA_OWNED);
1374 if (count > max_free_per_call)
1375 count = max_free_per_call;
1376 if (count == 0) {
1377 mtx_unlock(&vnode_list_mtx);
1378 return (0);
1379 }
1380 ocount = count;
1381 retried = false;
1382 vp = mvp;
1383 for (;;) {
1384 vp = TAILQ_NEXT(vp, v_vnodelist);
1385 if (__predict_false(vp == NULL)) {
1386 /*
1387 * The free vnode marker can be past eligible vnodes:
1388 * 1. if vdbatch_process trylock failed
1389 * 2. if vtryrecycle failed
1390 *
1391 * If so, start the scan from scratch.
1392 */
1393 if (!retried && vnlru_read_freevnodes() > 0) {
1394 TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
1395 TAILQ_INSERT_HEAD(&vnode_list, mvp, v_vnodelist);
1396 vp = mvp;
1397 retried = true;
1398 continue;
1399 }
1400
1401 /*
1402 * Give up
1403 */
1404 TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
1405 TAILQ_INSERT_TAIL(&vnode_list, mvp, v_vnodelist);
1406 mtx_unlock(&vnode_list_mtx);
1407 break;
1408 }
1409 if (__predict_false(vp->v_type == VMARKER))
1410 continue;
1411 if (vp->v_holdcnt > 0)
1412 continue;
1413 /*
1414 * Don't recycle if our vnode is from different type
1415 * of mount point. Note that mp is type-safe, the
1416 * check does not reach unmapped address even if
1417 * vnode is reclaimed.
1418 */
1419 if (mnt_op != NULL && (mp = vp->v_mount) != NULL &&
1420 mp->mnt_op != mnt_op) {
1421 continue;
1422 }
1423 if (__predict_false(vp->v_type == VBAD || vp->v_type == VNON)) {
1424 continue;
1425 }
1426 if (!vhold_recycle_free(vp))
1427 continue;
1428 TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
1429 TAILQ_INSERT_AFTER(&vnode_list, vp, mvp, v_vnodelist);
1430 mtx_unlock(&vnode_list_mtx);
1431 /*
1432 * FIXME: ignores the return value, meaning it may be nothing
1433 * got recycled but it claims otherwise to the caller.
1434 *
1435 * Originally the value started being ignored in 2005 with
1436 * 114a1006a8204aa156e1f9ad6476cdff89cada7f .
1437 *
1438 * Respecting the value can run into significant stalls if most
1439 * vnodes belong to one file system and it has writes
1440 * suspended. In presence of many threads and millions of
1441 * vnodes they keep contending on the vnode_list_mtx lock only
1442 * to find vnodes they can't recycle.
1443 *
1444 * The solution would be to pre-check if the vnode is likely to
1445 * be recycle-able, but it needs to happen with the
1446 * vnode_list_mtx lock held. This runs into a problem where
1447 * VOP_GETWRITEMOUNT (currently needed to find out about if
1448 * writes are frozen) can take locks which LOR against it.
1449 *
1450 * Check nullfs for one example (null_getwritemount).
1451 */
1452 vtryrecycle(vp, isvnlru);
1453 count--;
1454 if (count == 0) {
1455 break;
1456 }
1457 mtx_lock(&vnode_list_mtx);
1458 vp = mvp;
1459 }
1460 mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
1461 return (ocount - count);
1462 }
1463
1464 /*
1465 * XXX: returns without vnode_list_mtx locked!
1466 */
1467 static int
vnlru_free_locked_direct(int count)1468 vnlru_free_locked_direct(int count)
1469 {
1470 int ret;
1471
1472 mtx_assert(&vnode_list_mtx, MA_OWNED);
1473 ret = vnlru_free_impl(count, NULL, vnode_list_free_marker, false);
1474 mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
1475 return (ret);
1476 }
1477
1478 static int
vnlru_free_locked_vnlru(int count)1479 vnlru_free_locked_vnlru(int count)
1480 {
1481 int ret;
1482
1483 mtx_assert(&vnode_list_mtx, MA_OWNED);
1484 ret = vnlru_free_impl(count, NULL, vnode_list_free_marker, true);
1485 mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
1486 return (ret);
1487 }
1488
1489 static int
vnlru_free_vnlru(int count)1490 vnlru_free_vnlru(int count)
1491 {
1492
1493 mtx_lock(&vnode_list_mtx);
1494 return (vnlru_free_locked_vnlru(count));
1495 }
1496
1497 void
vnlru_free_vfsops(int count,struct vfsops * mnt_op,struct vnode * mvp)1498 vnlru_free_vfsops(int count, struct vfsops *mnt_op, struct vnode *mvp)
1499 {
1500
1501 MPASS(mnt_op != NULL);
1502 MPASS(mvp != NULL);
1503 VNPASS(mvp->v_type == VMARKER, mvp);
1504 mtx_lock(&vnode_list_mtx);
1505 vnlru_free_impl(count, mnt_op, mvp, true);
1506 mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
1507 }
1508
1509 struct vnode *
vnlru_alloc_marker(void)1510 vnlru_alloc_marker(void)
1511 {
1512 struct vnode *mvp;
1513
1514 mvp = vn_alloc_marker(NULL);
1515 mtx_lock(&vnode_list_mtx);
1516 TAILQ_INSERT_BEFORE(vnode_list_free_marker, mvp, v_vnodelist);
1517 mtx_unlock(&vnode_list_mtx);
1518 return (mvp);
1519 }
1520
1521 void
vnlru_free_marker(struct vnode * mvp)1522 vnlru_free_marker(struct vnode *mvp)
1523 {
1524 mtx_lock(&vnode_list_mtx);
1525 TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
1526 mtx_unlock(&vnode_list_mtx);
1527 vn_free_marker(mvp);
1528 }
1529
1530 static void
vnlru_recalc(void)1531 vnlru_recalc(void)
1532 {
1533
1534 mtx_assert(&vnode_list_mtx, MA_OWNED);
1535 gapvnodes = imax(desiredvnodes - wantfreevnodes, 100);
1536 vhiwat = gapvnodes / 11; /* 9% -- just under the 10% in vlrureclaim() */
1537 vlowat = vhiwat / 2;
1538 }
1539
1540 /*
1541 * Attempt to recycle vnodes in a context that is always safe to block.
1542 * Calling vlrurecycle() from the bowels of filesystem code has some
1543 * interesting deadlock problems.
1544 */
1545 static struct proc * __read_mostly vnlruproc;
1546 static int vnlruproc_sig;
1547 static u_long vnlruproc_kicks;
1548
1549 SYSCTL_ULONG(_vfs_vnode_vnlru, OID_AUTO, kicks, CTLFLAG_RD, &vnlruproc_kicks, 0,
1550 "Number of times vnlru awakened due to vnode shortage");
1551
1552 #define VNLRU_COUNT_SLOP 100
1553
1554 /*
1555 * The main freevnodes counter is only updated when a counter local to CPU
1556 * diverges from 0 by more than VNLRU_FREEVNODES_SLOP. CPUs are conditionally
1557 * walked to compute a more accurate total.
1558 *
1559 * Note: the actual value at any given moment can still exceed slop, but it
1560 * should not be by significant margin in practice.
1561 */
1562 #define VNLRU_FREEVNODES_SLOP 126
1563
1564 static void __noinline
vfs_freevnodes_rollup(int8_t * lfreevnodes)1565 vfs_freevnodes_rollup(int8_t *lfreevnodes)
1566 {
1567
1568 atomic_add_long(&freevnodes, *lfreevnodes);
1569 *lfreevnodes = 0;
1570 critical_exit();
1571 }
1572
1573 static __inline void
vfs_freevnodes_inc(void)1574 vfs_freevnodes_inc(void)
1575 {
1576 int8_t *lfreevnodes;
1577
1578 critical_enter();
1579 lfreevnodes = PCPU_PTR(vfs_freevnodes);
1580 (*lfreevnodes)++;
1581 if (__predict_false(*lfreevnodes == VNLRU_FREEVNODES_SLOP))
1582 vfs_freevnodes_rollup(lfreevnodes);
1583 else
1584 critical_exit();
1585 }
1586
1587 static __inline void
vfs_freevnodes_dec(void)1588 vfs_freevnodes_dec(void)
1589 {
1590 int8_t *lfreevnodes;
1591
1592 critical_enter();
1593 lfreevnodes = PCPU_PTR(vfs_freevnodes);
1594 (*lfreevnodes)--;
1595 if (__predict_false(*lfreevnodes == -VNLRU_FREEVNODES_SLOP))
1596 vfs_freevnodes_rollup(lfreevnodes);
1597 else
1598 critical_exit();
1599 }
1600
1601 static u_long
vnlru_read_freevnodes(void)1602 vnlru_read_freevnodes(void)
1603 {
1604 long slop, rfreevnodes, rfreevnodes_old;
1605 int cpu;
1606
1607 rfreevnodes = atomic_load_long(&freevnodes);
1608 rfreevnodes_old = atomic_load_long(&freevnodes_old);
1609
1610 if (rfreevnodes > rfreevnodes_old)
1611 slop = rfreevnodes - rfreevnodes_old;
1612 else
1613 slop = rfreevnodes_old - rfreevnodes;
1614 if (slop < VNLRU_FREEVNODES_SLOP)
1615 return (rfreevnodes >= 0 ? rfreevnodes : 0);
1616 CPU_FOREACH(cpu) {
1617 rfreevnodes += cpuid_to_pcpu[cpu]->pc_vfs_freevnodes;
1618 }
1619 atomic_store_long(&freevnodes_old, rfreevnodes);
1620 return (freevnodes_old >= 0 ? freevnodes_old : 0);
1621 }
1622
1623 static bool
vnlru_under(u_long rnumvnodes,u_long limit)1624 vnlru_under(u_long rnumvnodes, u_long limit)
1625 {
1626 u_long rfreevnodes, space;
1627
1628 if (__predict_false(rnumvnodes > desiredvnodes))
1629 return (true);
1630
1631 space = desiredvnodes - rnumvnodes;
1632 if (space < limit) {
1633 rfreevnodes = vnlru_read_freevnodes();
1634 if (rfreevnodes > wantfreevnodes)
1635 space += rfreevnodes - wantfreevnodes;
1636 }
1637 return (space < limit);
1638 }
1639
1640 static void
vnlru_kick_locked(void)1641 vnlru_kick_locked(void)
1642 {
1643
1644 mtx_assert(&vnode_list_mtx, MA_OWNED);
1645 if (vnlruproc_sig == 0) {
1646 vnlruproc_sig = 1;
1647 vnlruproc_kicks++;
1648 wakeup(vnlruproc);
1649 }
1650 }
1651
1652 static void
vnlru_kick_cond(void)1653 vnlru_kick_cond(void)
1654 {
1655
1656 if (vnlru_read_freevnodes() > wantfreevnodes)
1657 return;
1658
1659 if (vnlruproc_sig)
1660 return;
1661 mtx_lock(&vnode_list_mtx);
1662 vnlru_kick_locked();
1663 mtx_unlock(&vnode_list_mtx);
1664 }
1665
1666 static void
vnlru_proc_sleep(void)1667 vnlru_proc_sleep(void)
1668 {
1669
1670 if (vnlruproc_sig) {
1671 vnlruproc_sig = 0;
1672 wakeup(&vnlruproc_sig);
1673 }
1674 msleep(vnlruproc, &vnode_list_mtx, PVFS|PDROP, "vlruwt", hz);
1675 }
1676
1677 /*
1678 * A lighter version of the machinery below.
1679 *
1680 * Tries to reach goals only by recycling free vnodes and does not invoke
1681 * uma_reclaim(UMA_RECLAIM_DRAIN).
1682 *
1683 * This works around pathological behavior in vnlru in presence of tons of free
1684 * vnodes, but without having to rewrite the machinery at this time. Said
1685 * behavior boils down to continuously trying to reclaim all kinds of vnodes
1686 * (cycling through all levels of "force") when the count is transiently above
1687 * limit. This happens a lot when all vnodes are used up and vn_alloc
1688 * speculatively increments the counter.
1689 *
1690 * Sample testcase: vnode limit 8388608, 20 separate directory trees each with
1691 * 1 million files in total and 20 find(1) processes stating them in parallel
1692 * (one per each tree).
1693 *
1694 * On a kernel with only stock machinery this needs anywhere between 60 and 120
1695 * seconds to execute (time varies *wildly* between runs). With the workaround
1696 * it consistently stays around 20 seconds [it got further down with later
1697 * changes].
1698 *
1699 * That is to say the entire thing needs a fundamental redesign (most notably
1700 * to accommodate faster recycling), the above only tries to get it ouf the way.
1701 *
1702 * Return values are:
1703 * -1 -- fallback to regular vnlru loop
1704 * 0 -- do nothing, go to sleep
1705 * >0 -- recycle this many vnodes
1706 */
1707 static long
vnlru_proc_light_pick(void)1708 vnlru_proc_light_pick(void)
1709 {
1710 u_long rnumvnodes, rfreevnodes;
1711
1712 if (vstir || vnlruproc_sig == 1)
1713 return (-1);
1714
1715 rnumvnodes = atomic_load_long(&numvnodes);
1716 rfreevnodes = vnlru_read_freevnodes();
1717
1718 /*
1719 * vnode limit might have changed and now we may be at a significant
1720 * excess. Bail if we can't sort it out with free vnodes.
1721 *
1722 * Due to atomic updates the count can legitimately go above
1723 * the limit for a short period, don't bother doing anything in
1724 * that case.
1725 */
1726 if (rnumvnodes > desiredvnodes + VNLRU_COUNT_SLOP + 10) {
1727 if (rnumvnodes - rfreevnodes >= desiredvnodes ||
1728 rfreevnodes <= wantfreevnodes) {
1729 return (-1);
1730 }
1731
1732 return (rnumvnodes - desiredvnodes);
1733 }
1734
1735 /*
1736 * Don't try to reach wantfreevnodes target if there are too few vnodes
1737 * to begin with.
1738 */
1739 if (rnumvnodes < wantfreevnodes) {
1740 return (0);
1741 }
1742
1743 if (rfreevnodes < wantfreevnodes) {
1744 return (-1);
1745 }
1746
1747 return (0);
1748 }
1749
1750 static bool
vnlru_proc_light(void)1751 vnlru_proc_light(void)
1752 {
1753 long freecount;
1754
1755 mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
1756
1757 freecount = vnlru_proc_light_pick();
1758 if (freecount == -1)
1759 return (false);
1760
1761 if (freecount != 0) {
1762 vnlru_free_vnlru(freecount);
1763 }
1764
1765 mtx_lock(&vnode_list_mtx);
1766 vnlru_proc_sleep();
1767 mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
1768 return (true);
1769 }
1770
1771 static u_long uma_reclaim_calls;
1772 SYSCTL_ULONG(_vfs_vnode_vnlru, OID_AUTO, uma_reclaim_calls, CTLFLAG_RD | CTLFLAG_STATS,
1773 &uma_reclaim_calls, 0, "Number of calls to uma_reclaim");
1774
1775 static void
vnlru_proc(void)1776 vnlru_proc(void)
1777 {
1778 u_long rnumvnodes, target;
1779 unsigned long onumvnodes;
1780 int done, force, trigger, usevnodes;
1781 bool reclaim_nc_src, want_reread;
1782
1783 EVENTHANDLER_REGISTER(shutdown_pre_sync, kproc_shutdown, vnlruproc,
1784 SHUTDOWN_PRI_FIRST);
1785
1786 force = 0;
1787 want_reread = false;
1788 for (;;) {
1789 kproc_suspend_check(vnlruproc);
1790
1791 if (force == 0 && vnlru_proc_light())
1792 continue;
1793
1794 mtx_lock(&vnode_list_mtx);
1795 rnumvnodes = atomic_load_long(&numvnodes);
1796
1797 if (want_reread) {
1798 force = vnlru_under(numvnodes, vhiwat) ? 1 : 0;
1799 want_reread = false;
1800 }
1801
1802 /*
1803 * If numvnodes is too large (due to desiredvnodes being
1804 * adjusted using its sysctl, or emergency growth), first
1805 * try to reduce it by discarding free vnodes.
1806 */
1807 if (rnumvnodes > desiredvnodes + 10) {
1808 vnlru_free_locked_vnlru(rnumvnodes - desiredvnodes);
1809 mtx_lock(&vnode_list_mtx);
1810 rnumvnodes = atomic_load_long(&numvnodes);
1811 }
1812 /*
1813 * Sleep if the vnode cache is in a good state. This is
1814 * when it is not over-full and has space for about a 4%
1815 * or 9% expansion (by growing its size or inexcessively
1816 * reducing free vnode count). Otherwise, try to reclaim
1817 * space for a 10% expansion.
1818 */
1819 if (vstir && force == 0) {
1820 force = 1;
1821 vstir = false;
1822 }
1823 if (force == 0 && !vnlru_under(rnumvnodes, vlowat)) {
1824 vnlru_proc_sleep();
1825 continue;
1826 }
1827
1828 onumvnodes = rnumvnodes;
1829 /*
1830 * Calculate parameters for recycling. These are the same
1831 * throughout the loop to give some semblance of fairness.
1832 * The trigger point is to avoid recycling vnodes with lots
1833 * of resident pages. We aren't trying to free memory; we
1834 * are trying to recycle or at least free vnodes.
1835 *
1836 * The trigger value is chosen to give a conservatively
1837 * large value to ensure that it alone doesn't prevent
1838 * making progress. The value can easily be so large that
1839 * it is effectively infinite in some congested and
1840 * misconfigured cases, and this is necessary. Normally
1841 * it is about 8 to 100 (pages), which is quite large.
1842 */
1843 if (force < 2) {
1844 trigger = vsmalltrigger;
1845 } else {
1846 if (rnumvnodes <= desiredvnodes)
1847 usevnodes = rnumvnodes -
1848 vnlru_read_freevnodes();
1849 else
1850 usevnodes = rnumvnodes;
1851 if (usevnodes <= 0)
1852 usevnodes = 1;
1853 trigger = vm_cnt.v_page_count * 2 / usevnodes;
1854 }
1855 reclaim_nc_src = force >= 3;
1856 target = rnumvnodes * (int64_t)gapvnodes / imax(desiredvnodes, 1);
1857 target = target / 10 + 1;
1858 done = vlrureclaim(reclaim_nc_src, trigger, target);
1859 mtx_unlock(&vnode_list_mtx);
1860 /*
1861 * Total number of vnodes can transiently go slightly above the
1862 * limit (see vn_alloc_hard), no need to call uma_reclaim if
1863 * this happens.
1864 */
1865 if (onumvnodes + VNLRU_COUNT_SLOP + 1000 > desiredvnodes &&
1866 numvnodes <= desiredvnodes) {
1867 uma_reclaim_calls++;
1868 uma_reclaim(UMA_RECLAIM_DRAIN);
1869 }
1870 if (done == 0) {
1871 if (force == 0 || force == 1) {
1872 force = 2;
1873 continue;
1874 }
1875 if (force == 2) {
1876 force = 3;
1877 continue;
1878 }
1879 want_reread = true;
1880 force = 0;
1881 vnlru_nowhere++;
1882 tsleep(vnlruproc, PPAUSE, "vlrup", hz * 3);
1883 } else {
1884 want_reread = true;
1885 kern_yield(PRI_USER);
1886 }
1887 }
1888 }
1889
1890 static struct kproc_desc vnlru_kp = {
1891 "vnlru",
1892 vnlru_proc,
1893 &vnlruproc
1894 };
1895 SYSINIT(vnlru, SI_SUB_KTHREAD_UPDATE, SI_ORDER_FIRST, kproc_start,
1896 &vnlru_kp);
1897
1898 /*
1899 * Routines having to do with the management of the vnode table.
1900 */
1901
1902 /*
1903 * Try to recycle a freed vnode.
1904 */
1905 static int
vtryrecycle(struct vnode * vp,bool isvnlru)1906 vtryrecycle(struct vnode *vp, bool isvnlru)
1907 {
1908 struct mount *vnmp;
1909
1910 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
1911 VNPASS(vp->v_holdcnt > 0, vp);
1912 /*
1913 * This vnode may found and locked via some other list, if so we
1914 * can't recycle it yet.
1915 */
1916 if (VOP_LOCK(vp, LK_EXCLUSIVE | LK_NOWAIT) != 0) {
1917 CTR2(KTR_VFS,
1918 "%s: impossible to recycle, vp %p lock is already held",
1919 __func__, vp);
1920 vdrop_recycle(vp);
1921 return (EWOULDBLOCK);
1922 }
1923 /*
1924 * Don't recycle if its filesystem is being suspended.
1925 */
1926 if (vn_start_write(vp, &vnmp, V_NOWAIT) != 0) {
1927 VOP_UNLOCK(vp);
1928 CTR2(KTR_VFS,
1929 "%s: impossible to recycle, cannot start the write for %p",
1930 __func__, vp);
1931 vdrop_recycle(vp);
1932 return (EBUSY);
1933 }
1934 /*
1935 * If we got this far, we need to acquire the interlock and see if
1936 * anyone picked up this vnode from another list. If not, we will
1937 * mark it with DOOMED via vgonel() so that anyone who does find it
1938 * will skip over it.
1939 */
1940 VI_LOCK(vp);
1941 if (vp->v_usecount) {
1942 VOP_UNLOCK(vp);
1943 vdropl_recycle(vp);
1944 vn_finished_write(vnmp);
1945 CTR2(KTR_VFS,
1946 "%s: impossible to recycle, %p is already referenced",
1947 __func__, vp);
1948 return (EBUSY);
1949 }
1950 if (!VN_IS_DOOMED(vp)) {
1951 if (isvnlru)
1952 recycles_free_count++;
1953 else
1954 counter_u64_add(direct_recycles_free_count, 1);
1955 vgonel(vp);
1956 }
1957 VOP_UNLOCK(vp);
1958 vdropl_recycle(vp);
1959 vn_finished_write(vnmp);
1960 return (0);
1961 }
1962
1963 /*
1964 * Allocate a new vnode.
1965 *
1966 * The operation never returns an error. Returning an error was disabled
1967 * in r145385 (dated 2005) with the following comment:
1968 *
1969 * XXX Not all VFS_VGET/ffs_vget callers check returns.
1970 *
1971 * Given the age of this commit (almost 15 years at the time of writing this
1972 * comment) restoring the ability to fail requires a significant audit of
1973 * all codepaths.
1974 *
1975 * The routine can try to free a vnode or stall for up to 1 second waiting for
1976 * vnlru to clear things up, but ultimately always performs a M_WAITOK allocation.
1977 */
1978 static u_long vn_alloc_cyclecount;
1979 static u_long vn_alloc_sleeps;
1980
1981 SYSCTL_ULONG(_vfs_vnode_stats, OID_AUTO, alloc_sleeps, CTLFLAG_RD, &vn_alloc_sleeps, 0,
1982 "Number of times vnode allocation blocked waiting on vnlru");
1983
1984 static struct vnode * __noinline
vn_alloc_hard(struct mount * mp,u_long rnumvnodes,bool bumped)1985 vn_alloc_hard(struct mount *mp, u_long rnumvnodes, bool bumped)
1986 {
1987 u_long rfreevnodes;
1988
1989 if (bumped) {
1990 if (rnumvnodes > desiredvnodes + VNLRU_COUNT_SLOP) {
1991 atomic_subtract_long(&numvnodes, 1);
1992 bumped = false;
1993 }
1994 }
1995
1996 mtx_lock(&vnode_list_mtx);
1997
1998 /*
1999 * Reload 'numvnodes', as since we acquired the lock, it may have
2000 * changed significantly if we waited, and 'rnumvnodes' above was only
2001 * actually passed if 'bumped' is true (else it is 0).
2002 */
2003 rnumvnodes = atomic_load_long(&numvnodes);
2004 if (rnumvnodes + !bumped < desiredvnodes) {
2005 vn_alloc_cyclecount = 0;
2006 mtx_unlock(&vnode_list_mtx);
2007 goto alloc;
2008 }
2009
2010 rfreevnodes = vnlru_read_freevnodes();
2011 if (vn_alloc_cyclecount++ >= rfreevnodes) {
2012 vn_alloc_cyclecount = 0;
2013 vstir = true;
2014 }
2015
2016 /*
2017 * Grow the vnode cache if it will not be above its target max after
2018 * growing. Otherwise, if there is at least one free vnode, try to
2019 * reclaim 1 item from it before growing the cache (possibly above its
2020 * target max if the reclamation failed or is delayed).
2021 */
2022 if (vnlru_free_locked_direct(1) > 0)
2023 goto alloc;
2024 mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
2025 if (mp == NULL || (mp->mnt_kern_flag & MNTK_SUSPEND) == 0) {
2026 /*
2027 * Wait for space for a new vnode.
2028 */
2029 if (bumped) {
2030 atomic_subtract_long(&numvnodes, 1);
2031 bumped = false;
2032 }
2033 mtx_lock(&vnode_list_mtx);
2034 vnlru_kick_locked();
2035 vn_alloc_sleeps++;
2036 msleep(&vnlruproc_sig, &vnode_list_mtx, PVFS, "vlruwk", hz);
2037 if (atomic_load_long(&numvnodes) + 1 > desiredvnodes &&
2038 vnlru_read_freevnodes() > 1)
2039 vnlru_free_locked_direct(1);
2040 else
2041 mtx_unlock(&vnode_list_mtx);
2042 }
2043 alloc:
2044 mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
2045 if (!bumped)
2046 atomic_add_long(&numvnodes, 1);
2047 vnlru_kick_cond();
2048 return (uma_zalloc_smr(vnode_zone, M_WAITOK));
2049 }
2050
2051 static struct vnode *
vn_alloc(struct mount * mp)2052 vn_alloc(struct mount *mp)
2053 {
2054 u_long rnumvnodes;
2055
2056 if (__predict_false(vn_alloc_cyclecount != 0))
2057 return (vn_alloc_hard(mp, 0, false));
2058 rnumvnodes = atomic_fetchadd_long(&numvnodes, 1) + 1;
2059 if (__predict_false(vnlru_under(rnumvnodes, vlowat))) {
2060 return (vn_alloc_hard(mp, rnumvnodes, true));
2061 }
2062
2063 return (uma_zalloc_smr(vnode_zone, M_WAITOK));
2064 }
2065
2066 static void
vn_free(struct vnode * vp)2067 vn_free(struct vnode *vp)
2068 {
2069
2070 atomic_subtract_long(&numvnodes, 1);
2071 uma_zfree_smr(vnode_zone, vp);
2072 }
2073
2074 /*
2075 * Allocate a new vnode.
2076 */
2077 int
getnewvnode(const char * tag,struct mount * mp,struct vop_vector * vops,struct vnode ** vpp)2078 getnewvnode(const char *tag, struct mount *mp, struct vop_vector *vops,
2079 struct vnode **vpp)
2080 {
2081 struct vnode *vp;
2082 struct thread *td;
2083 struct lock_object *lo;
2084
2085 CTR3(KTR_VFS, "%s: mp %p with tag %s", __func__, mp, tag);
2086
2087 KASSERT(vops->registered,
2088 ("%s: not registered vector op %p\n", __func__, vops));
2089 cache_validate_vop_vector(mp, vops);
2090
2091 td = curthread;
2092 if (td->td_vp_reserved != NULL) {
2093 vp = td->td_vp_reserved;
2094 td->td_vp_reserved = NULL;
2095 } else {
2096 vp = vn_alloc(mp);
2097 }
2098 counter_u64_add(vnodes_created, 1);
2099
2100 vn_set_state(vp, VSTATE_UNINITIALIZED);
2101
2102 /*
2103 * Locks are given the generic name "vnode" when created.
2104 * Follow the historic practice of using the filesystem
2105 * name when they allocated, e.g., "zfs", "ufs", "nfs, etc.
2106 *
2107 * Locks live in a witness group keyed on their name. Thus,
2108 * when a lock is renamed, it must also move from the witness
2109 * group of its old name to the witness group of its new name.
2110 *
2111 * The change only needs to be made when the vnode moves
2112 * from one filesystem type to another. We ensure that each
2113 * filesystem use a single static name pointer for its tag so
2114 * that we can compare pointers rather than doing a strcmp().
2115 */
2116 lo = &vp->v_vnlock->lock_object;
2117 #ifdef WITNESS
2118 if (lo->lo_name != tag) {
2119 #endif
2120 lo->lo_name = tag;
2121 #ifdef WITNESS
2122 WITNESS_DESTROY(lo);
2123 WITNESS_INIT(lo, tag);
2124 }
2125 #endif
2126 /*
2127 * By default, don't allow shared locks unless filesystems opt-in.
2128 */
2129 vp->v_vnlock->lock_object.lo_flags |= LK_NOSHARE;
2130 /*
2131 * Finalize various vnode identity bits.
2132 */
2133 KASSERT(vp->v_object == NULL, ("stale v_object %p", vp));
2134 KASSERT(vp->v_lockf == NULL, ("stale v_lockf %p", vp));
2135 KASSERT(vp->v_pollinfo == NULL, ("stale v_pollinfo %p", vp));
2136 vp->v_type = VNON;
2137 vp->v_op = vops;
2138 vp->v_irflag = 0;
2139 v_init_counters(vp);
2140 vn_seqc_init(vp);
2141 vp->v_bufobj.bo_ops = &buf_ops_bio;
2142 #ifdef DIAGNOSTIC
2143 if (mp == NULL && vops != &dead_vnodeops)
2144 printf("NULL mp in getnewvnode(9), tag %s\n", tag);
2145 #endif
2146 #ifdef MAC
2147 mac_vnode_init(vp);
2148 if (mp != NULL && (mp->mnt_flag & MNT_MULTILABEL) == 0)
2149 mac_vnode_associate_singlelabel(mp, vp);
2150 #endif
2151 if (mp != NULL) {
2152 vp->v_bufobj.bo_bsize = mp->mnt_stat.f_iosize;
2153 }
2154
2155 /*
2156 * For the filesystems which do not use vfs_hash_insert(),
2157 * still initialize v_hash to have vfs_hash_index() useful.
2158 * E.g., nullfs uses vfs_hash_index() on the lower vnode for
2159 * its own hashing.
2160 */
2161 vp->v_hash = (uintptr_t)vp >> vnsz2log;
2162
2163 *vpp = vp;
2164 return (0);
2165 }
2166
2167 void
getnewvnode_reserve(void)2168 getnewvnode_reserve(void)
2169 {
2170 struct thread *td;
2171
2172 td = curthread;
2173 MPASS(td->td_vp_reserved == NULL);
2174 td->td_vp_reserved = vn_alloc(NULL);
2175 }
2176
2177 void
getnewvnode_drop_reserve(void)2178 getnewvnode_drop_reserve(void)
2179 {
2180 struct thread *td;
2181
2182 td = curthread;
2183 if (td->td_vp_reserved != NULL) {
2184 vn_free(td->td_vp_reserved);
2185 td->td_vp_reserved = NULL;
2186 }
2187 }
2188
2189 static void __noinline
freevnode(struct vnode * vp)2190 freevnode(struct vnode *vp)
2191 {
2192 struct bufobj *bo;
2193
2194 ASSERT_VOP_UNLOCKED(vp, __func__);
2195
2196 /*
2197 * The vnode has been marked for destruction, so free it.
2198 *
2199 * The vnode will be returned to the zone where it will
2200 * normally remain until it is needed for another vnode. We
2201 * need to cleanup (or verify that the cleanup has already
2202 * been done) any residual data left from its current use
2203 * so as not to contaminate the freshly allocated vnode.
2204 */
2205 CTR2(KTR_VFS, "%s: destroying the vnode %p", __func__, vp);
2206 /*
2207 * Paired with vgone.
2208 */
2209 vn_seqc_write_end_free(vp);
2210
2211 bo = &vp->v_bufobj;
2212 VNASSERT(vp->v_data == NULL, vp, ("cleaned vnode isn't"));
2213 VNPASS(vp->v_holdcnt == VHOLD_NO_SMR, vp);
2214 VNASSERT(vp->v_usecount == 0, vp, ("Non-zero use count"));
2215 VNASSERT(vp->v_writecount == 0, vp, ("Non-zero write count"));
2216 VNASSERT(bo->bo_numoutput == 0, vp, ("Clean vnode has pending I/O's"));
2217 VNASSERT(bo->bo_clean.bv_cnt == 0, vp, ("cleanbufcnt not 0"));
2218 VNASSERT(pctrie_is_empty(&bo->bo_clean.bv_root), vp,
2219 ("clean blk trie not empty"));
2220 VNASSERT(bo->bo_dirty.bv_cnt == 0, vp, ("dirtybufcnt not 0"));
2221 VNASSERT(pctrie_is_empty(&bo->bo_dirty.bv_root), vp,
2222 ("dirty blk trie not empty"));
2223 VNASSERT((vp->v_iflag & (VI_DOINGINACT | VI_OWEINACT)) == 0, vp,
2224 ("Leaked inactivation"));
2225 VI_UNLOCK(vp);
2226 cache_assert_no_entries(vp);
2227
2228 #ifdef MAC
2229 mac_vnode_destroy(vp);
2230 #endif
2231 if (vp->v_pollinfo != NULL) {
2232 int error __diagused;
2233
2234 /*
2235 * Use LK_NOWAIT to shut up witness about the lock. We may get
2236 * here while having another vnode locked when trying to
2237 * satisfy a lookup and needing to recycle.
2238 */
2239 error = VOP_LOCK(vp, LK_EXCLUSIVE | LK_NOWAIT);
2240 VNASSERT(error == 0, vp,
2241 ("freevnode: cannot lock vp %p for pollinfo destroy", vp));
2242 destroy_vpollinfo(vp->v_pollinfo);
2243 VOP_UNLOCK(vp);
2244 vp->v_pollinfo = NULL;
2245 }
2246 vp->v_mountedhere = NULL;
2247 vp->v_unpcb = NULL;
2248 vp->v_rdev = NULL;
2249 vp->v_fifoinfo = NULL;
2250 vp->v_iflag = 0;
2251 vp->v_vflag = 0;
2252 bo->bo_flag = 0;
2253 vn_free(vp);
2254 }
2255
2256 /*
2257 * Delete from old mount point vnode list, if on one.
2258 */
2259 static void
delmntque(struct vnode * vp)2260 delmntque(struct vnode *vp)
2261 {
2262 struct mount *mp;
2263
2264 VNPASS((vp->v_mflag & VMP_LAZYLIST) == 0, vp);
2265
2266 mp = vp->v_mount;
2267 MNT_ILOCK(mp);
2268 VI_LOCK(vp);
2269 vp->v_mount = NULL;
2270 VNASSERT(mp->mnt_nvnodelistsize > 0, vp,
2271 ("bad mount point vnode list size"));
2272 TAILQ_REMOVE(&mp->mnt_nvnodelist, vp, v_nmntvnodes);
2273 mp->mnt_nvnodelistsize--;
2274 MNT_REL(mp);
2275 MNT_IUNLOCK(mp);
2276 /*
2277 * The caller expects the interlock to be still held.
2278 */
2279 ASSERT_VI_LOCKED(vp, __func__);
2280 }
2281
2282 static int
insmntque1_int(struct vnode * vp,struct mount * mp,bool dtr)2283 insmntque1_int(struct vnode *vp, struct mount *mp, bool dtr)
2284 {
2285
2286 KASSERT(vp->v_mount == NULL,
2287 ("insmntque: vnode already on per mount vnode list"));
2288 VNASSERT(mp != NULL, vp, ("Don't call insmntque(foo, NULL)"));
2289 if ((mp->mnt_kern_flag & MNTK_UNLOCKED_INSMNTQUE) == 0) {
2290 ASSERT_VOP_ELOCKED(vp, "insmntque: non-locked vp");
2291 } else {
2292 KASSERT(!dtr,
2293 ("%s: can't have MNTK_UNLOCKED_INSMNTQUE and cleanup",
2294 __func__));
2295 }
2296
2297 /*
2298 * We acquire the vnode interlock early to ensure that the
2299 * vnode cannot be recycled by another process releasing a
2300 * holdcnt on it before we get it on both the vnode list
2301 * and the active vnode list. The mount mutex protects only
2302 * manipulation of the vnode list and the vnode freelist
2303 * mutex protects only manipulation of the active vnode list.
2304 * Hence the need to hold the vnode interlock throughout.
2305 */
2306 MNT_ILOCK(mp);
2307 VI_LOCK(vp);
2308 if (((mp->mnt_kern_flag & MNTK_UNMOUNT) != 0 &&
2309 ((mp->mnt_kern_flag & MNTK_UNMOUNTF) != 0 ||
2310 mp->mnt_nvnodelistsize == 0)) &&
2311 (vp->v_vflag & VV_FORCEINSMQ) == 0) {
2312 VI_UNLOCK(vp);
2313 MNT_IUNLOCK(mp);
2314 if (dtr) {
2315 vp->v_data = NULL;
2316 vp->v_op = &dead_vnodeops;
2317 vgone(vp);
2318 vput(vp);
2319 }
2320 return (EBUSY);
2321 }
2322 vp->v_mount = mp;
2323 MNT_REF(mp);
2324 TAILQ_INSERT_TAIL(&mp->mnt_nvnodelist, vp, v_nmntvnodes);
2325 VNASSERT(mp->mnt_nvnodelistsize >= 0, vp,
2326 ("neg mount point vnode list size"));
2327 mp->mnt_nvnodelistsize++;
2328 VI_UNLOCK(vp);
2329 MNT_IUNLOCK(mp);
2330 return (0);
2331 }
2332
2333 /*
2334 * Insert into list of vnodes for the new mount point, if available.
2335 * insmntque() reclaims the vnode on insertion failure, insmntque1()
2336 * leaves handling of the vnode to the caller.
2337 */
2338 int
insmntque(struct vnode * vp,struct mount * mp)2339 insmntque(struct vnode *vp, struct mount *mp)
2340 {
2341 return (insmntque1_int(vp, mp, true));
2342 }
2343
2344 int
insmntque1(struct vnode * vp,struct mount * mp)2345 insmntque1(struct vnode *vp, struct mount *mp)
2346 {
2347 return (insmntque1_int(vp, mp, false));
2348 }
2349
2350 /*
2351 * Flush out and invalidate all buffers associated with a bufobj
2352 * Called with the underlying object locked.
2353 */
2354 int
bufobj_invalbuf(struct bufobj * bo,int flags,int slpflag,int slptimeo)2355 bufobj_invalbuf(struct bufobj *bo, int flags, int slpflag, int slptimeo)
2356 {
2357 int error;
2358
2359 BO_LOCK(bo);
2360 if (flags & V_SAVE) {
2361 error = bufobj_wwait(bo, slpflag, slptimeo);
2362 if (error) {
2363 BO_UNLOCK(bo);
2364 return (error);
2365 }
2366 if (bo->bo_dirty.bv_cnt > 0) {
2367 BO_UNLOCK(bo);
2368 do {
2369 error = BO_SYNC(bo, MNT_WAIT);
2370 } while (error == ERELOOKUP);
2371 if (error != 0)
2372 return (error);
2373 BO_LOCK(bo);
2374 if (bo->bo_numoutput > 0 || bo->bo_dirty.bv_cnt > 0) {
2375 BO_UNLOCK(bo);
2376 return (EBUSY);
2377 }
2378 }
2379 }
2380 /*
2381 * If you alter this loop please notice that interlock is dropped and
2382 * reacquired in flushbuflist. Special care is needed to ensure that
2383 * no race conditions occur from this.
2384 */
2385 do {
2386 error = flushbuflist(&bo->bo_clean,
2387 flags, bo, slpflag, slptimeo);
2388 if (error == 0 && !(flags & V_CLEANONLY))
2389 error = flushbuflist(&bo->bo_dirty,
2390 flags, bo, slpflag, slptimeo);
2391 if (error != 0 && error != EAGAIN) {
2392 BO_UNLOCK(bo);
2393 return (error);
2394 }
2395 } while (error != 0);
2396
2397 /*
2398 * Wait for I/O to complete. XXX needs cleaning up. The vnode can
2399 * have write I/O in-progress but if there is a VM object then the
2400 * VM object can also have read-I/O in-progress.
2401 */
2402 do {
2403 bufobj_wwait(bo, 0, 0);
2404 if ((flags & V_VMIO) == 0 && bo->bo_object != NULL) {
2405 BO_UNLOCK(bo);
2406 vm_object_pip_wait_unlocked(bo->bo_object, "bovlbx");
2407 BO_LOCK(bo);
2408 }
2409 } while (bo->bo_numoutput > 0);
2410 BO_UNLOCK(bo);
2411
2412 /*
2413 * Destroy the copy in the VM cache, too.
2414 */
2415 if (bo->bo_object != NULL &&
2416 (flags & (V_ALT | V_NORMAL | V_CLEANONLY | V_VMIO)) == 0) {
2417 VM_OBJECT_WLOCK(bo->bo_object);
2418 vm_object_page_remove(bo->bo_object, 0, 0, (flags & V_SAVE) ?
2419 OBJPR_CLEANONLY : 0);
2420 VM_OBJECT_WUNLOCK(bo->bo_object);
2421 }
2422
2423 #ifdef INVARIANTS
2424 BO_LOCK(bo);
2425 if ((flags & (V_ALT | V_NORMAL | V_CLEANONLY | V_VMIO |
2426 V_ALLOWCLEAN)) == 0 && (bo->bo_dirty.bv_cnt > 0 ||
2427 bo->bo_clean.bv_cnt > 0))
2428 panic("vinvalbuf: flush failed");
2429 if ((flags & (V_ALT | V_NORMAL | V_CLEANONLY | V_VMIO)) == 0 &&
2430 bo->bo_dirty.bv_cnt > 0)
2431 panic("vinvalbuf: flush dirty failed");
2432 BO_UNLOCK(bo);
2433 #endif
2434 return (0);
2435 }
2436
2437 /*
2438 * Flush out and invalidate all buffers associated with a vnode.
2439 * Called with the underlying object locked.
2440 */
2441 int
vinvalbuf(struct vnode * vp,int flags,int slpflag,int slptimeo)2442 vinvalbuf(struct vnode *vp, int flags, int slpflag, int slptimeo)
2443 {
2444
2445 CTR3(KTR_VFS, "%s: vp %p with flags %d", __func__, vp, flags);
2446 ASSERT_VOP_LOCKED(vp, "vinvalbuf");
2447 if (vp->v_object != NULL && vp->v_object->handle != vp)
2448 return (0);
2449 return (bufobj_invalbuf(&vp->v_bufobj, flags, slpflag, slptimeo));
2450 }
2451
2452 /*
2453 * Flush out buffers on the specified list.
2454 *
2455 */
2456 static int
flushbuflist(struct bufv * bufv,int flags,struct bufobj * bo,int slpflag,int slptimeo)2457 flushbuflist(struct bufv *bufv, int flags, struct bufobj *bo, int slpflag,
2458 int slptimeo)
2459 {
2460 struct buf *bp, *nbp;
2461 int retval, error;
2462 daddr_t lblkno;
2463 b_xflags_t xflags;
2464
2465 ASSERT_BO_WLOCKED(bo);
2466
2467 retval = 0;
2468 TAILQ_FOREACH_SAFE(bp, &bufv->bv_hd, b_bobufs, nbp) {
2469 /*
2470 * If we are flushing both V_NORMAL and V_ALT buffers then
2471 * do not skip any buffers. If we are flushing only V_NORMAL
2472 * buffers then skip buffers marked as BX_ALTDATA. If we are
2473 * flushing only V_ALT buffers then skip buffers not marked
2474 * as BX_ALTDATA.
2475 */
2476 if (((flags & (V_NORMAL | V_ALT)) != (V_NORMAL | V_ALT)) &&
2477 (((flags & V_NORMAL) && (bp->b_xflags & BX_ALTDATA) != 0) ||
2478 ((flags & V_ALT) && (bp->b_xflags & BX_ALTDATA) == 0))) {
2479 continue;
2480 }
2481 if (nbp != NULL) {
2482 lblkno = nbp->b_lblkno;
2483 xflags = nbp->b_xflags & (BX_VNDIRTY | BX_VNCLEAN);
2484 }
2485 retval = EAGAIN;
2486 error = BUF_TIMELOCK(bp,
2487 LK_EXCLUSIVE | LK_SLEEPFAIL | LK_INTERLOCK, BO_LOCKPTR(bo),
2488 "flushbuf", slpflag, slptimeo);
2489 if (error) {
2490 BO_LOCK(bo);
2491 return (error != ENOLCK ? error : EAGAIN);
2492 }
2493 KASSERT(bp->b_bufobj == bo,
2494 ("bp %p wrong b_bufobj %p should be %p",
2495 bp, bp->b_bufobj, bo));
2496 /*
2497 * XXX Since there are no node locks for NFS, I
2498 * believe there is a slight chance that a delayed
2499 * write will occur while sleeping just above, so
2500 * check for it.
2501 */
2502 if (((bp->b_flags & (B_DELWRI | B_INVAL)) == B_DELWRI) &&
2503 (flags & V_SAVE)) {
2504 bremfree(bp);
2505 bp->b_flags |= B_ASYNC;
2506 bwrite(bp);
2507 BO_LOCK(bo);
2508 return (EAGAIN); /* XXX: why not loop ? */
2509 }
2510 bremfree(bp);
2511 bp->b_flags |= (B_INVAL | B_RELBUF);
2512 bp->b_flags &= ~B_ASYNC;
2513 brelse(bp);
2514 BO_LOCK(bo);
2515 if (nbp == NULL)
2516 break;
2517 nbp = gbincore(bo, lblkno);
2518 if (nbp == NULL || (nbp->b_xflags & (BX_VNDIRTY | BX_VNCLEAN))
2519 != xflags)
2520 break; /* nbp invalid */
2521 }
2522 return (retval);
2523 }
2524
2525 int
bnoreuselist(struct bufv * bufv,struct bufobj * bo,daddr_t startn,daddr_t endn)2526 bnoreuselist(struct bufv *bufv, struct bufobj *bo, daddr_t startn, daddr_t endn)
2527 {
2528 struct buf *bp;
2529 int error;
2530 daddr_t lblkno;
2531
2532 ASSERT_BO_LOCKED(bo);
2533
2534 for (lblkno = startn;;) {
2535 again:
2536 bp = buf_lookup_ge(bufv, lblkno);
2537 if (bp == NULL || bp->b_lblkno >= endn)
2538 break;
2539 error = BUF_TIMELOCK(bp, LK_EXCLUSIVE | LK_SLEEPFAIL |
2540 LK_INTERLOCK, BO_LOCKPTR(bo), "brlsfl", 0, 0);
2541 if (error != 0) {
2542 BO_RLOCK(bo);
2543 if (error == ENOLCK)
2544 goto again;
2545 return (error);
2546 }
2547 KASSERT(bp->b_bufobj == bo,
2548 ("bp %p wrong b_bufobj %p should be %p",
2549 bp, bp->b_bufobj, bo));
2550 lblkno = bp->b_lblkno + 1;
2551 if ((bp->b_flags & B_MANAGED) == 0)
2552 bremfree(bp);
2553 bp->b_flags |= B_RELBUF;
2554 /*
2555 * In the VMIO case, use the B_NOREUSE flag to hint that the
2556 * pages backing each buffer in the range are unlikely to be
2557 * reused. Dirty buffers will have the hint applied once
2558 * they've been written.
2559 */
2560 if ((bp->b_flags & B_VMIO) != 0)
2561 bp->b_flags |= B_NOREUSE;
2562 brelse(bp);
2563 BO_RLOCK(bo);
2564 }
2565 return (0);
2566 }
2567
2568 /*
2569 * Truncate a file's buffer and pages to a specified length. This
2570 * is in lieu of the old vinvalbuf mechanism, which performed unneeded
2571 * sync activity.
2572 */
2573 int
vtruncbuf(struct vnode * vp,off_t length,int blksize)2574 vtruncbuf(struct vnode *vp, off_t length, int blksize)
2575 {
2576 struct buf *bp, *nbp;
2577 struct bufobj *bo;
2578 daddr_t startlbn;
2579
2580 CTR4(KTR_VFS, "%s: vp %p with block %d:%ju", __func__,
2581 vp, blksize, (uintmax_t)length);
2582
2583 /*
2584 * Round up to the *next* lbn.
2585 */
2586 startlbn = howmany(length, blksize);
2587
2588 ASSERT_VOP_LOCKED(vp, "vtruncbuf");
2589
2590 bo = &vp->v_bufobj;
2591 restart_unlocked:
2592 BO_LOCK(bo);
2593
2594 while (v_inval_buf_range_locked(vp, bo, startlbn, INT64_MAX) == EAGAIN)
2595 ;
2596
2597 if (length > 0) {
2598 /*
2599 * Write out vnode metadata, e.g. indirect blocks.
2600 */
2601 restartsync:
2602 TAILQ_FOREACH_SAFE(bp, &bo->bo_dirty.bv_hd, b_bobufs, nbp) {
2603 if (bp->b_lblkno >= 0)
2604 continue;
2605 /*
2606 * Since we hold the vnode lock this should only
2607 * fail if we're racing with the buf daemon.
2608 */
2609 if (BUF_LOCK(bp,
2610 LK_EXCLUSIVE | LK_SLEEPFAIL | LK_INTERLOCK,
2611 BO_LOCKPTR(bo)) == ENOLCK)
2612 goto restart_unlocked;
2613
2614 VNASSERT((bp->b_flags & B_DELWRI), vp,
2615 ("buf(%p) on dirty queue without DELWRI", bp));
2616
2617 bremfree(bp);
2618 bawrite(bp);
2619 BO_LOCK(bo);
2620 goto restartsync;
2621 }
2622 }
2623
2624 bufobj_wwait(bo, 0, 0);
2625 BO_UNLOCK(bo);
2626 vnode_pager_setsize(vp, length);
2627
2628 return (0);
2629 }
2630
2631 /*
2632 * Invalidate the cached pages of a file's buffer within the range of block
2633 * numbers [startlbn, endlbn).
2634 */
2635 void
v_inval_buf_range(struct vnode * vp,daddr_t startlbn,daddr_t endlbn,int blksize)2636 v_inval_buf_range(struct vnode *vp, daddr_t startlbn, daddr_t endlbn,
2637 int blksize)
2638 {
2639 struct bufobj *bo;
2640 off_t start, end;
2641
2642 ASSERT_VOP_LOCKED(vp, "v_inval_buf_range");
2643
2644 start = blksize * startlbn;
2645 end = blksize * endlbn;
2646
2647 bo = &vp->v_bufobj;
2648 BO_LOCK(bo);
2649 MPASS(blksize == bo->bo_bsize);
2650
2651 while (v_inval_buf_range_locked(vp, bo, startlbn, endlbn) == EAGAIN)
2652 ;
2653
2654 BO_UNLOCK(bo);
2655 vn_pages_remove(vp, OFF_TO_IDX(start), OFF_TO_IDX(end + PAGE_SIZE - 1));
2656 }
2657
2658 static int
v_inval_buf_range_locked(struct vnode * vp,struct bufobj * bo,daddr_t startlbn,daddr_t endlbn)2659 v_inval_buf_range_locked(struct vnode *vp, struct bufobj *bo,
2660 daddr_t startlbn, daddr_t endlbn)
2661 {
2662 struct bufv *bv;
2663 struct buf *bp, *nbp;
2664 uint8_t anyfreed;
2665 bool clean;
2666
2667 ASSERT_VOP_LOCKED(vp, "v_inval_buf_range_locked");
2668 ASSERT_BO_LOCKED(bo);
2669
2670 anyfreed = 1;
2671 clean = true;
2672 do {
2673 bv = clean ? &bo->bo_clean : &bo->bo_dirty;
2674 bp = buf_lookup_ge(bv, startlbn);
2675 if (bp == NULL)
2676 continue;
2677 TAILQ_FOREACH_FROM_SAFE(bp, &bv->bv_hd, b_bobufs, nbp) {
2678 if (bp->b_lblkno >= endlbn)
2679 break;
2680 if (BUF_LOCK(bp,
2681 LK_EXCLUSIVE | LK_SLEEPFAIL | LK_INTERLOCK,
2682 BO_LOCKPTR(bo)) == ENOLCK) {
2683 BO_LOCK(bo);
2684 return (EAGAIN);
2685 }
2686
2687 bremfree(bp);
2688 bp->b_flags |= B_INVAL | B_RELBUF;
2689 bp->b_flags &= ~B_ASYNC;
2690 brelse(bp);
2691 anyfreed = 2;
2692
2693 BO_LOCK(bo);
2694 if (nbp != NULL &&
2695 (((nbp->b_xflags &
2696 (clean ? BX_VNCLEAN : BX_VNDIRTY)) == 0) ||
2697 nbp->b_vp != vp ||
2698 (nbp->b_flags & B_DELWRI) == (clean? B_DELWRI: 0)))
2699 return (EAGAIN);
2700 }
2701 } while (clean = !clean, anyfreed-- > 0);
2702 return (0);
2703 }
2704
2705 static void
buf_vlist_remove(struct buf * bp)2706 buf_vlist_remove(struct buf *bp)
2707 {
2708 struct bufv *bv;
2709 b_xflags_t flags;
2710
2711 flags = bp->b_xflags;
2712
2713 KASSERT(bp->b_bufobj != NULL, ("No b_bufobj %p", bp));
2714 ASSERT_BO_WLOCKED(bp->b_bufobj);
2715 KASSERT((flags & (BX_VNDIRTY | BX_VNCLEAN)) != 0 &&
2716 (flags & (BX_VNDIRTY | BX_VNCLEAN)) != (BX_VNDIRTY | BX_VNCLEAN),
2717 ("%s: buffer %p has invalid queue state", __func__, bp));
2718
2719 if ((flags & BX_VNDIRTY) != 0)
2720 bv = &bp->b_bufobj->bo_dirty;
2721 else
2722 bv = &bp->b_bufobj->bo_clean;
2723 BUF_PCTRIE_REMOVE(&bv->bv_root, bp->b_lblkno);
2724 TAILQ_REMOVE(&bv->bv_hd, bp, b_bobufs);
2725 bv->bv_cnt--;
2726 bp->b_xflags &= ~(BX_VNDIRTY | BX_VNCLEAN);
2727 }
2728
2729 /*
2730 * Add the buffer to the sorted clean or dirty block list. Return zero on
2731 * success, EEXIST if a buffer with this identity already exists, or another
2732 * error on allocation failure.
2733 */
2734 static inline int
buf_vlist_find_or_add(struct buf * bp,struct bufobj * bo,b_xflags_t xflags)2735 buf_vlist_find_or_add(struct buf *bp, struct bufobj *bo, b_xflags_t xflags)
2736 {
2737 struct bufv *bv;
2738 struct buf *n;
2739 int error;
2740
2741 ASSERT_BO_WLOCKED(bo);
2742 KASSERT((bo->bo_flag & BO_NOBUFS) == 0,
2743 ("buf_vlist_add: bo %p does not allow bufs", bo));
2744 KASSERT((xflags & BX_VNDIRTY) == 0 || (bo->bo_flag & BO_DEAD) == 0,
2745 ("dead bo %p", bo));
2746 KASSERT((bp->b_xflags & (BX_VNDIRTY | BX_VNCLEAN)) == xflags,
2747 ("buf_vlist_add: b_xflags %#x not set on bp %p", xflags, bp));
2748
2749 if (xflags & BX_VNDIRTY)
2750 bv = &bo->bo_dirty;
2751 else
2752 bv = &bo->bo_clean;
2753
2754 error = buf_insert_lookup_le(bv, bp, &n);
2755 if (n == NULL) {
2756 KASSERT(error != EEXIST,
2757 ("buf_vlist_add: EEXIST but no existing buf found: bp %p",
2758 bp));
2759 } else {
2760 KASSERT(n->b_lblkno <= bp->b_lblkno,
2761 ("buf_vlist_add: out of order insert/lookup: bp %p n %p",
2762 bp, n));
2763 KASSERT((n->b_lblkno == bp->b_lblkno) == (error == EEXIST),
2764 ("buf_vlist_add: inconsistent result for existing buf: "
2765 "error %d bp %p n %p", error, bp, n));
2766 }
2767 if (error != 0)
2768 return (error);
2769
2770 /* Keep the list ordered. */
2771 if (n == NULL) {
2772 KASSERT(TAILQ_EMPTY(&bv->bv_hd) ||
2773 bp->b_lblkno < TAILQ_FIRST(&bv->bv_hd)->b_lblkno,
2774 ("buf_vlist_add: queue order: "
2775 "%p should be before first %p",
2776 bp, TAILQ_FIRST(&bv->bv_hd)));
2777 TAILQ_INSERT_HEAD(&bv->bv_hd, bp, b_bobufs);
2778 } else {
2779 KASSERT(TAILQ_NEXT(n, b_bobufs) == NULL ||
2780 bp->b_lblkno < TAILQ_NEXT(n, b_bobufs)->b_lblkno,
2781 ("buf_vlist_add: queue order: "
2782 "%p should be before next %p",
2783 bp, TAILQ_NEXT(n, b_bobufs)));
2784 TAILQ_INSERT_AFTER(&bv->bv_hd, n, bp, b_bobufs);
2785 }
2786
2787 bv->bv_cnt++;
2788 return (0);
2789 }
2790
2791 /*
2792 * Add the buffer to the sorted clean or dirty block list.
2793 *
2794 * NOTE: xflags is passed as a constant, optimizing this inline function!
2795 */
2796 static void
buf_vlist_add(struct buf * bp,struct bufobj * bo,b_xflags_t xflags)2797 buf_vlist_add(struct buf *bp, struct bufobj *bo, b_xflags_t xflags)
2798 {
2799 int error;
2800
2801 KASSERT((bp->b_xflags & (BX_VNDIRTY | BX_VNCLEAN)) == 0,
2802 ("buf_vlist_add: Buf %p has existing xflags %d", bp, bp->b_xflags));
2803 bp->b_xflags |= xflags;
2804 error = buf_vlist_find_or_add(bp, bo, xflags);
2805 if (error)
2806 panic("buf_vlist_add: error=%d", error);
2807 }
2808
2809 /*
2810 * Look up a buffer using the buffer tries.
2811 */
2812 struct buf *
gbincore(struct bufobj * bo,daddr_t lblkno)2813 gbincore(struct bufobj *bo, daddr_t lblkno)
2814 {
2815 struct buf *bp;
2816
2817 ASSERT_BO_LOCKED(bo);
2818 bp = BUF_PCTRIE_LOOKUP(&bo->bo_clean.bv_root, lblkno);
2819 if (bp != NULL)
2820 return (bp);
2821 return (BUF_PCTRIE_LOOKUP(&bo->bo_dirty.bv_root, lblkno));
2822 }
2823
2824 /*
2825 * Look up a buf using the buffer tries, without the bufobj lock. This relies
2826 * on SMR for safe lookup, and bufs being in a no-free zone to provide type
2827 * stability of the result. Like other lockless lookups, the found buf may
2828 * already be invalid by the time this function returns.
2829 */
2830 struct buf *
gbincore_unlocked(struct bufobj * bo,daddr_t lblkno)2831 gbincore_unlocked(struct bufobj *bo, daddr_t lblkno)
2832 {
2833 struct buf *bp;
2834
2835 ASSERT_BO_UNLOCKED(bo);
2836 bp = BUF_PCTRIE_LOOKUP_UNLOCKED(&bo->bo_clean.bv_root, lblkno);
2837 if (bp != NULL)
2838 return (bp);
2839 return (BUF_PCTRIE_LOOKUP_UNLOCKED(&bo->bo_dirty.bv_root, lblkno));
2840 }
2841
2842 /*
2843 * Associate a buffer with a vnode.
2844 */
2845 int
bgetvp(struct vnode * vp,struct buf * bp)2846 bgetvp(struct vnode *vp, struct buf *bp)
2847 {
2848 struct bufobj *bo;
2849 int error;
2850
2851 bo = &vp->v_bufobj;
2852 ASSERT_BO_UNLOCKED(bo);
2853 VNASSERT(bp->b_vp == NULL, bp->b_vp, ("bgetvp: not free"));
2854
2855 CTR3(KTR_BUF, "bgetvp(%p) vp %p flags %X", bp, vp, bp->b_flags);
2856 VNASSERT((bp->b_xflags & (BX_VNDIRTY|BX_VNCLEAN)) == 0, vp,
2857 ("bgetvp: bp already attached! %p", bp));
2858
2859 /*
2860 * Add the buf to the vnode's clean list unless we lost a race and find
2861 * an existing buf in either dirty or clean.
2862 */
2863 bp->b_vp = vp;
2864 bp->b_bufobj = bo;
2865 bp->b_xflags |= BX_VNCLEAN;
2866 error = EEXIST;
2867 BO_LOCK(bo);
2868 if (BUF_PCTRIE_LOOKUP(&bo->bo_dirty.bv_root, bp->b_lblkno) == NULL)
2869 error = buf_vlist_find_or_add(bp, bo, BX_VNCLEAN);
2870 BO_UNLOCK(bo);
2871 if (__predict_true(error == 0)) {
2872 vhold(vp);
2873 return (0);
2874 }
2875 if (error != EEXIST)
2876 panic("bgetvp: buf_vlist_add error: %d", error);
2877 bp->b_vp = NULL;
2878 bp->b_bufobj = NULL;
2879 bp->b_xflags &= ~BX_VNCLEAN;
2880 return (error);
2881 }
2882
2883 /*
2884 * Disassociate a buffer from a vnode.
2885 */
2886 void
brelvp(struct buf * bp)2887 brelvp(struct buf *bp)
2888 {
2889 struct bufobj *bo;
2890 struct vnode *vp;
2891
2892 CTR3(KTR_BUF, "brelvp(%p) vp %p flags %X", bp, bp->b_vp, bp->b_flags);
2893 KASSERT(bp->b_vp != NULL, ("brelvp: NULL"));
2894
2895 /*
2896 * Delete from old vnode list, if on one.
2897 */
2898 vp = bp->b_vp; /* XXX */
2899 bo = bp->b_bufobj;
2900 BO_LOCK(bo);
2901 buf_vlist_remove(bp);
2902 if ((bo->bo_flag & BO_ONWORKLST) && bo->bo_dirty.bv_cnt == 0) {
2903 bo->bo_flag &= ~BO_ONWORKLST;
2904 mtx_lock(&sync_mtx);
2905 LIST_REMOVE(bo, bo_synclist);
2906 syncer_worklist_len--;
2907 mtx_unlock(&sync_mtx);
2908 }
2909 bp->b_vp = NULL;
2910 bp->b_bufobj = NULL;
2911 BO_UNLOCK(bo);
2912 vdrop(vp);
2913 }
2914
2915 /*
2916 * Add an item to the syncer work queue.
2917 */
2918 static void
vn_syncer_add_to_worklist(struct bufobj * bo,int delay)2919 vn_syncer_add_to_worklist(struct bufobj *bo, int delay)
2920 {
2921 int slot;
2922
2923 ASSERT_BO_WLOCKED(bo);
2924
2925 mtx_lock(&sync_mtx);
2926 if (bo->bo_flag & BO_ONWORKLST)
2927 LIST_REMOVE(bo, bo_synclist);
2928 else {
2929 bo->bo_flag |= BO_ONWORKLST;
2930 syncer_worklist_len++;
2931 }
2932
2933 if (delay > syncer_maxdelay - 2)
2934 delay = syncer_maxdelay - 2;
2935 slot = (syncer_delayno + delay) & syncer_mask;
2936
2937 LIST_INSERT_HEAD(&syncer_workitem_pending[slot], bo, bo_synclist);
2938 mtx_unlock(&sync_mtx);
2939 }
2940
2941 static int
sysctl_vfs_worklist_len(SYSCTL_HANDLER_ARGS)2942 sysctl_vfs_worklist_len(SYSCTL_HANDLER_ARGS)
2943 {
2944 int error, len;
2945
2946 mtx_lock(&sync_mtx);
2947 len = syncer_worklist_len - sync_vnode_count;
2948 mtx_unlock(&sync_mtx);
2949 error = SYSCTL_OUT(req, &len, sizeof(len));
2950 return (error);
2951 }
2952
2953 SYSCTL_PROC(_vfs, OID_AUTO, worklist_len,
2954 CTLTYPE_INT | CTLFLAG_MPSAFE| CTLFLAG_RD, NULL, 0,
2955 sysctl_vfs_worklist_len, "I", "Syncer thread worklist length");
2956
2957 static struct proc *updateproc;
2958 static void sched_sync(void);
2959 static struct kproc_desc up_kp = {
2960 "syncer",
2961 sched_sync,
2962 &updateproc
2963 };
2964 SYSINIT(syncer, SI_SUB_KTHREAD_UPDATE, SI_ORDER_FIRST, kproc_start, &up_kp);
2965
2966 static int
sync_vnode(struct synclist * slp,struct bufobj ** bo,struct thread * td)2967 sync_vnode(struct synclist *slp, struct bufobj **bo, struct thread *td)
2968 {
2969 struct vnode *vp;
2970 struct mount *mp;
2971
2972 *bo = LIST_FIRST(slp);
2973 if (*bo == NULL)
2974 return (0);
2975 vp = bo2vnode(*bo);
2976 if (VOP_ISLOCKED(vp) != 0 || VI_TRYLOCK(vp) == 0)
2977 return (1);
2978 /*
2979 * We use vhold in case the vnode does not
2980 * successfully sync. vhold prevents the vnode from
2981 * going away when we unlock the sync_mtx so that
2982 * we can acquire the vnode interlock.
2983 */
2984 vholdl(vp);
2985 mtx_unlock(&sync_mtx);
2986 VI_UNLOCK(vp);
2987 if (vn_start_write(vp, &mp, V_NOWAIT) != 0) {
2988 vdrop(vp);
2989 mtx_lock(&sync_mtx);
2990 return (*bo == LIST_FIRST(slp));
2991 }
2992 MPASSERT(mp == NULL || (curthread->td_pflags & TDP_IGNSUSP) != 0 ||
2993 (mp->mnt_kern_flag & MNTK_SUSPENDED) == 0, mp,
2994 ("suspended mp syncing vp %p", vp));
2995 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
2996 (void) VOP_FSYNC(vp, MNT_LAZY, td);
2997 VOP_UNLOCK(vp);
2998 vn_finished_write(mp);
2999 BO_LOCK(*bo);
3000 if (((*bo)->bo_flag & BO_ONWORKLST) != 0) {
3001 /*
3002 * Put us back on the worklist. The worklist
3003 * routine will remove us from our current
3004 * position and then add us back in at a later
3005 * position.
3006 */
3007 vn_syncer_add_to_worklist(*bo, syncdelay);
3008 }
3009 BO_UNLOCK(*bo);
3010 vdrop(vp);
3011 mtx_lock(&sync_mtx);
3012 return (0);
3013 }
3014
3015 static int first_printf = 1;
3016
3017 /*
3018 * System filesystem synchronizer daemon.
3019 */
3020 static void
sched_sync(void)3021 sched_sync(void)
3022 {
3023 struct synclist *next, *slp;
3024 struct bufobj *bo;
3025 long starttime;
3026 struct thread *td = curthread;
3027 int last_work_seen;
3028 int net_worklist_len;
3029 int syncer_final_iter;
3030 int error;
3031
3032 last_work_seen = 0;
3033 syncer_final_iter = 0;
3034 syncer_state = SYNCER_RUNNING;
3035 starttime = time_uptime;
3036 td->td_pflags |= TDP_NORUNNINGBUF;
3037
3038 EVENTHANDLER_REGISTER(shutdown_pre_sync, syncer_shutdown, td->td_proc,
3039 SHUTDOWN_PRI_LAST);
3040
3041 mtx_lock(&sync_mtx);
3042 for (;;) {
3043 if (syncer_state == SYNCER_FINAL_DELAY &&
3044 syncer_final_iter == 0) {
3045 mtx_unlock(&sync_mtx);
3046 kproc_suspend_check(td->td_proc);
3047 mtx_lock(&sync_mtx);
3048 }
3049 net_worklist_len = syncer_worklist_len - sync_vnode_count;
3050 if (syncer_state != SYNCER_RUNNING &&
3051 starttime != time_uptime) {
3052 if (first_printf) {
3053 printf("\nSyncing disks, vnodes remaining... ");
3054 first_printf = 0;
3055 }
3056 printf("%d ", net_worklist_len);
3057 }
3058 starttime = time_uptime;
3059
3060 /*
3061 * Push files whose dirty time has expired. Be careful
3062 * of interrupt race on slp queue.
3063 *
3064 * Skip over empty worklist slots when shutting down.
3065 */
3066 do {
3067 slp = &syncer_workitem_pending[syncer_delayno];
3068 syncer_delayno += 1;
3069 if (syncer_delayno == syncer_maxdelay)
3070 syncer_delayno = 0;
3071 next = &syncer_workitem_pending[syncer_delayno];
3072 /*
3073 * If the worklist has wrapped since the
3074 * it was emptied of all but syncer vnodes,
3075 * switch to the FINAL_DELAY state and run
3076 * for one more second.
3077 */
3078 if (syncer_state == SYNCER_SHUTTING_DOWN &&
3079 net_worklist_len == 0 &&
3080 last_work_seen == syncer_delayno) {
3081 syncer_state = SYNCER_FINAL_DELAY;
3082 syncer_final_iter = SYNCER_SHUTDOWN_SPEEDUP;
3083 }
3084 } while (syncer_state != SYNCER_RUNNING && LIST_EMPTY(slp) &&
3085 syncer_worklist_len > 0);
3086
3087 /*
3088 * Keep track of the last time there was anything
3089 * on the worklist other than syncer vnodes.
3090 * Return to the SHUTTING_DOWN state if any
3091 * new work appears.
3092 */
3093 if (net_worklist_len > 0 || syncer_state == SYNCER_RUNNING)
3094 last_work_seen = syncer_delayno;
3095 if (net_worklist_len > 0 && syncer_state == SYNCER_FINAL_DELAY)
3096 syncer_state = SYNCER_SHUTTING_DOWN;
3097 while (!LIST_EMPTY(slp)) {
3098 error = sync_vnode(slp, &bo, td);
3099 if (error == 1) {
3100 LIST_REMOVE(bo, bo_synclist);
3101 LIST_INSERT_HEAD(next, bo, bo_synclist);
3102 continue;
3103 }
3104
3105 if (first_printf == 0) {
3106 /*
3107 * Drop the sync mutex, because some watchdog
3108 * drivers need to sleep while patting
3109 */
3110 mtx_unlock(&sync_mtx);
3111 wdog_kern_pat(WD_LASTVAL);
3112 mtx_lock(&sync_mtx);
3113 }
3114 }
3115 if (syncer_state == SYNCER_FINAL_DELAY && syncer_final_iter > 0)
3116 syncer_final_iter--;
3117 /*
3118 * The variable rushjob allows the kernel to speed up the
3119 * processing of the filesystem syncer process. A rushjob
3120 * value of N tells the filesystem syncer to process the next
3121 * N seconds worth of work on its queue ASAP. Currently rushjob
3122 * is used by the soft update code to speed up the filesystem
3123 * syncer process when the incore state is getting so far
3124 * ahead of the disk that the kernel memory pool is being
3125 * threatened with exhaustion.
3126 */
3127 if (rushjob > 0) {
3128 rushjob -= 1;
3129 continue;
3130 }
3131 /*
3132 * Just sleep for a short period of time between
3133 * iterations when shutting down to allow some I/O
3134 * to happen.
3135 *
3136 * If it has taken us less than a second to process the
3137 * current work, then wait. Otherwise start right over
3138 * again. We can still lose time if any single round
3139 * takes more than two seconds, but it does not really
3140 * matter as we are just trying to generally pace the
3141 * filesystem activity.
3142 */
3143 if (syncer_state != SYNCER_RUNNING ||
3144 time_uptime == starttime) {
3145 thread_lock(td);
3146 sched_prio(td, PPAUSE);
3147 thread_unlock(td);
3148 }
3149 if (syncer_state != SYNCER_RUNNING)
3150 cv_timedwait(&sync_wakeup, &sync_mtx,
3151 hz / SYNCER_SHUTDOWN_SPEEDUP);
3152 else if (time_uptime == starttime)
3153 cv_timedwait(&sync_wakeup, &sync_mtx, hz);
3154 }
3155 }
3156
3157 /*
3158 * Request the syncer daemon to speed up its work.
3159 * We never push it to speed up more than half of its
3160 * normal turn time, otherwise it could take over the cpu.
3161 */
3162 int
speedup_syncer(void)3163 speedup_syncer(void)
3164 {
3165 int ret = 0;
3166
3167 mtx_lock(&sync_mtx);
3168 if (rushjob < syncdelay / 2) {
3169 rushjob += 1;
3170 stat_rush_requests += 1;
3171 ret = 1;
3172 }
3173 mtx_unlock(&sync_mtx);
3174 cv_broadcast(&sync_wakeup);
3175 return (ret);
3176 }
3177
3178 /*
3179 * Tell the syncer to speed up its work and run though its work
3180 * list several times, then tell it to shut down.
3181 */
3182 static void
syncer_shutdown(void * arg,int howto)3183 syncer_shutdown(void *arg, int howto)
3184 {
3185
3186 if (howto & RB_NOSYNC)
3187 return;
3188 mtx_lock(&sync_mtx);
3189 syncer_state = SYNCER_SHUTTING_DOWN;
3190 rushjob = 0;
3191 mtx_unlock(&sync_mtx);
3192 cv_broadcast(&sync_wakeup);
3193 kproc_shutdown(arg, howto);
3194 }
3195
3196 void
syncer_suspend(void)3197 syncer_suspend(void)
3198 {
3199
3200 syncer_shutdown(updateproc, 0);
3201 }
3202
3203 void
syncer_resume(void)3204 syncer_resume(void)
3205 {
3206
3207 mtx_lock(&sync_mtx);
3208 first_printf = 1;
3209 syncer_state = SYNCER_RUNNING;
3210 mtx_unlock(&sync_mtx);
3211 cv_broadcast(&sync_wakeup);
3212 kproc_resume(updateproc);
3213 }
3214
3215 /*
3216 * Move the buffer between the clean and dirty lists of its vnode.
3217 */
3218 void
reassignbuf(struct buf * bp)3219 reassignbuf(struct buf *bp)
3220 {
3221 struct vnode *vp;
3222 struct bufobj *bo;
3223 int delay;
3224 #ifdef INVARIANTS
3225 struct bufv *bv;
3226 #endif
3227
3228 vp = bp->b_vp;
3229 bo = bp->b_bufobj;
3230
3231 KASSERT((bp->b_flags & B_PAGING) == 0,
3232 ("%s: cannot reassign paging buffer %p", __func__, bp));
3233
3234 CTR3(KTR_BUF, "reassignbuf(%p) vp %p flags %X",
3235 bp, bp->b_vp, bp->b_flags);
3236
3237 BO_LOCK(bo);
3238 if ((bo->bo_flag & BO_NONSTERILE) == 0) {
3239 /*
3240 * Coordinate with getblk's unlocked lookup. Make
3241 * BO_NONSTERILE visible before the first reassignbuf produces
3242 * any side effect. This could be outside the bo lock if we
3243 * used a separate atomic flag field.
3244 */
3245 bo->bo_flag |= BO_NONSTERILE;
3246 atomic_thread_fence_rel();
3247 }
3248 buf_vlist_remove(bp);
3249
3250 /*
3251 * If dirty, put on list of dirty buffers; otherwise insert onto list
3252 * of clean buffers.
3253 */
3254 if (bp->b_flags & B_DELWRI) {
3255 if ((bo->bo_flag & BO_ONWORKLST) == 0) {
3256 switch (vp->v_type) {
3257 case VDIR:
3258 delay = dirdelay;
3259 break;
3260 case VCHR:
3261 delay = metadelay;
3262 break;
3263 default:
3264 delay = filedelay;
3265 }
3266 vn_syncer_add_to_worklist(bo, delay);
3267 }
3268 buf_vlist_add(bp, bo, BX_VNDIRTY);
3269 } else {
3270 buf_vlist_add(bp, bo, BX_VNCLEAN);
3271
3272 if ((bo->bo_flag & BO_ONWORKLST) && bo->bo_dirty.bv_cnt == 0) {
3273 mtx_lock(&sync_mtx);
3274 LIST_REMOVE(bo, bo_synclist);
3275 syncer_worklist_len--;
3276 mtx_unlock(&sync_mtx);
3277 bo->bo_flag &= ~BO_ONWORKLST;
3278 }
3279 }
3280 #ifdef INVARIANTS
3281 bv = &bo->bo_clean;
3282 bp = TAILQ_FIRST(&bv->bv_hd);
3283 KASSERT(bp == NULL || bp->b_bufobj == bo,
3284 ("bp %p wrong b_bufobj %p should be %p", bp, bp->b_bufobj, bo));
3285 bp = TAILQ_LAST(&bv->bv_hd, buflists);
3286 KASSERT(bp == NULL || bp->b_bufobj == bo,
3287 ("bp %p wrong b_bufobj %p should be %p", bp, bp->b_bufobj, bo));
3288 bv = &bo->bo_dirty;
3289 bp = TAILQ_FIRST(&bv->bv_hd);
3290 KASSERT(bp == NULL || bp->b_bufobj == bo,
3291 ("bp %p wrong b_bufobj %p should be %p", bp, bp->b_bufobj, bo));
3292 bp = TAILQ_LAST(&bv->bv_hd, buflists);
3293 KASSERT(bp == NULL || bp->b_bufobj == bo,
3294 ("bp %p wrong b_bufobj %p should be %p", bp, bp->b_bufobj, bo));
3295 #endif
3296 BO_UNLOCK(bo);
3297 }
3298
3299 static void
v_init_counters(struct vnode * vp)3300 v_init_counters(struct vnode *vp)
3301 {
3302
3303 VNASSERT(vp->v_type == VNON && vp->v_data == NULL && vp->v_iflag == 0,
3304 vp, ("%s called for an initialized vnode", __FUNCTION__));
3305 ASSERT_VI_UNLOCKED(vp, __FUNCTION__);
3306
3307 refcount_init(&vp->v_holdcnt, 1);
3308 refcount_init(&vp->v_usecount, 1);
3309 }
3310
3311 /*
3312 * Get a usecount on a vnode.
3313 *
3314 * vget and vget_finish may fail to lock the vnode if they lose a race against
3315 * it being doomed. LK_RETRY can be passed in flags to lock it anyway.
3316 *
3317 * Consumers which don't guarantee liveness of the vnode can use SMR to
3318 * try to get a reference. Note this operation can fail since the vnode
3319 * may be awaiting getting freed by the time they get to it.
3320 */
3321 enum vgetstate
vget_prep_smr(struct vnode * vp)3322 vget_prep_smr(struct vnode *vp)
3323 {
3324 enum vgetstate vs;
3325
3326 VFS_SMR_ASSERT_ENTERED();
3327
3328 if (refcount_acquire_if_not_zero(&vp->v_usecount)) {
3329 vs = VGET_USECOUNT;
3330 } else {
3331 if (vhold_smr(vp))
3332 vs = VGET_HOLDCNT;
3333 else
3334 vs = VGET_NONE;
3335 }
3336 return (vs);
3337 }
3338
3339 enum vgetstate
vget_prep(struct vnode * vp)3340 vget_prep(struct vnode *vp)
3341 {
3342 enum vgetstate vs;
3343
3344 if (refcount_acquire_if_not_zero(&vp->v_usecount)) {
3345 vs = VGET_USECOUNT;
3346 } else {
3347 vhold(vp);
3348 vs = VGET_HOLDCNT;
3349 }
3350 return (vs);
3351 }
3352
3353 void
vget_abort(struct vnode * vp,enum vgetstate vs)3354 vget_abort(struct vnode *vp, enum vgetstate vs)
3355 {
3356
3357 switch (vs) {
3358 case VGET_USECOUNT:
3359 vrele(vp);
3360 goto out_ok;
3361 case VGET_HOLDCNT:
3362 vdrop(vp);
3363 goto out_ok;
3364 case VGET_NONE:
3365 break;
3366 }
3367
3368 __assert_unreachable();
3369
3370 /*
3371 * This is a goto label should the cases above have more in common than
3372 * just the 'return' statement.
3373 */
3374 out_ok:
3375 return;
3376 }
3377
3378 int
vget(struct vnode * vp,int flags)3379 vget(struct vnode *vp, int flags)
3380 {
3381 enum vgetstate vs;
3382
3383 vs = vget_prep(vp);
3384 return (vget_finish(vp, flags, vs));
3385 }
3386
3387 int
vget_finish(struct vnode * vp,int flags,enum vgetstate vs)3388 vget_finish(struct vnode *vp, int flags, enum vgetstate vs)
3389 {
3390 int error;
3391
3392 if ((flags & LK_INTERLOCK) != 0)
3393 ASSERT_VI_LOCKED(vp, __func__);
3394 else
3395 ASSERT_VI_UNLOCKED(vp, __func__);
3396 VNPASS(vs == VGET_HOLDCNT || vs == VGET_USECOUNT, vp);
3397 VNPASS(vp->v_holdcnt > 0, vp);
3398 VNPASS(vs == VGET_HOLDCNT || vp->v_usecount > 0, vp);
3399
3400 error = vn_lock(vp, flags);
3401 if (__predict_false(error != 0)) {
3402 vget_abort(vp, vs);
3403 CTR2(KTR_VFS, "%s: impossible to lock vnode %p", __func__,
3404 vp);
3405 return (error);
3406 }
3407
3408 vget_finish_ref(vp, vs);
3409 return (0);
3410 }
3411
3412 void
vget_finish_ref(struct vnode * vp,enum vgetstate vs)3413 vget_finish_ref(struct vnode *vp, enum vgetstate vs)
3414 {
3415 int old;
3416
3417 VNPASS(vs == VGET_HOLDCNT || vs == VGET_USECOUNT, vp);
3418 VNPASS(vp->v_holdcnt > 0, vp);
3419 VNPASS(vs == VGET_HOLDCNT || vp->v_usecount > 0, vp);
3420
3421 if (vs == VGET_USECOUNT)
3422 return;
3423
3424 /*
3425 * We hold the vnode. If the usecount is 0 it will be utilized to keep
3426 * the vnode around. Otherwise someone else lended their hold count and
3427 * we have to drop ours.
3428 */
3429 old = atomic_fetchadd_int(&vp->v_usecount, 1);
3430 VNASSERT(old >= 0, vp, ("%s: wrong use count %d", __func__, old));
3431 if (old != 0) {
3432 #ifdef INVARIANTS
3433 old = atomic_fetchadd_int(&vp->v_holdcnt, -1);
3434 VNASSERT(old > 1, vp, ("%s: wrong hold count %d", __func__, old));
3435 #else
3436 refcount_release(&vp->v_holdcnt);
3437 #endif
3438 }
3439 }
3440
3441 void
vref(struct vnode * vp)3442 vref(struct vnode *vp)
3443 {
3444 enum vgetstate vs;
3445
3446 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
3447 vs = vget_prep(vp);
3448 vget_finish_ref(vp, vs);
3449 }
3450
3451 void
vrefact(struct vnode * vp)3452 vrefact(struct vnode *vp)
3453 {
3454 int old __diagused;
3455
3456 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
3457 old = refcount_acquire(&vp->v_usecount);
3458 VNASSERT(old > 0, vp, ("%s: wrong use count %d", __func__, old));
3459 }
3460
3461 void
vlazy(struct vnode * vp)3462 vlazy(struct vnode *vp)
3463 {
3464 struct mount *mp;
3465
3466 VNASSERT(vp->v_holdcnt > 0, vp, ("%s: vnode not held", __func__));
3467
3468 if ((vp->v_mflag & VMP_LAZYLIST) != 0)
3469 return;
3470 /*
3471 * We may get here for inactive routines after the vnode got doomed.
3472 */
3473 if (VN_IS_DOOMED(vp))
3474 return;
3475 mp = vp->v_mount;
3476 mtx_lock(&mp->mnt_listmtx);
3477 if ((vp->v_mflag & VMP_LAZYLIST) == 0) {
3478 vp->v_mflag |= VMP_LAZYLIST;
3479 TAILQ_INSERT_TAIL(&mp->mnt_lazyvnodelist, vp, v_lazylist);
3480 mp->mnt_lazyvnodelistsize++;
3481 }
3482 mtx_unlock(&mp->mnt_listmtx);
3483 }
3484
3485 static void
vunlazy(struct vnode * vp)3486 vunlazy(struct vnode *vp)
3487 {
3488 struct mount *mp;
3489
3490 ASSERT_VI_LOCKED(vp, __func__);
3491 VNPASS(!VN_IS_DOOMED(vp), vp);
3492
3493 mp = vp->v_mount;
3494 mtx_lock(&mp->mnt_listmtx);
3495 VNPASS(vp->v_mflag & VMP_LAZYLIST, vp);
3496 /*
3497 * Don't remove the vnode from the lazy list if another thread
3498 * has increased the hold count. It may have re-enqueued the
3499 * vnode to the lazy list and is now responsible for its
3500 * removal.
3501 */
3502 if (vp->v_holdcnt == 0) {
3503 vp->v_mflag &= ~VMP_LAZYLIST;
3504 TAILQ_REMOVE(&mp->mnt_lazyvnodelist, vp, v_lazylist);
3505 mp->mnt_lazyvnodelistsize--;
3506 }
3507 mtx_unlock(&mp->mnt_listmtx);
3508 }
3509
3510 /*
3511 * This routine is only meant to be called from vgonel prior to dooming
3512 * the vnode.
3513 */
3514 static void
vunlazy_gone(struct vnode * vp)3515 vunlazy_gone(struct vnode *vp)
3516 {
3517 struct mount *mp;
3518
3519 ASSERT_VOP_ELOCKED(vp, __func__);
3520 ASSERT_VI_LOCKED(vp, __func__);
3521 VNPASS(!VN_IS_DOOMED(vp), vp);
3522
3523 if (vp->v_mflag & VMP_LAZYLIST) {
3524 mp = vp->v_mount;
3525 mtx_lock(&mp->mnt_listmtx);
3526 VNPASS(vp->v_mflag & VMP_LAZYLIST, vp);
3527 vp->v_mflag &= ~VMP_LAZYLIST;
3528 TAILQ_REMOVE(&mp->mnt_lazyvnodelist, vp, v_lazylist);
3529 mp->mnt_lazyvnodelistsize--;
3530 mtx_unlock(&mp->mnt_listmtx);
3531 }
3532 }
3533
3534 static void
vdefer_inactive(struct vnode * vp)3535 vdefer_inactive(struct vnode *vp)
3536 {
3537
3538 ASSERT_VI_LOCKED(vp, __func__);
3539 VNPASS(vp->v_holdcnt > 0, vp);
3540 if (VN_IS_DOOMED(vp)) {
3541 vdropl(vp);
3542 return;
3543 }
3544 if (vp->v_iflag & VI_DEFINACT) {
3545 VNPASS(vp->v_holdcnt > 1, vp);
3546 vdropl(vp);
3547 return;
3548 }
3549 if (vp->v_usecount > 0) {
3550 vp->v_iflag &= ~VI_OWEINACT;
3551 vdropl(vp);
3552 return;
3553 }
3554 vlazy(vp);
3555 vp->v_iflag |= VI_DEFINACT;
3556 VI_UNLOCK(vp);
3557 atomic_add_long(&deferred_inact, 1);
3558 }
3559
3560 static void
vdefer_inactive_unlocked(struct vnode * vp)3561 vdefer_inactive_unlocked(struct vnode *vp)
3562 {
3563
3564 VI_LOCK(vp);
3565 if ((vp->v_iflag & VI_OWEINACT) == 0) {
3566 vdropl(vp);
3567 return;
3568 }
3569 vdefer_inactive(vp);
3570 }
3571
3572 enum vput_op { VRELE, VPUT, VUNREF };
3573
3574 /*
3575 * Handle ->v_usecount transitioning to 0.
3576 *
3577 * By releasing the last usecount we take ownership of the hold count which
3578 * provides liveness of the vnode, meaning we have to vdrop.
3579 *
3580 * For all vnodes we may need to perform inactive processing. It requires an
3581 * exclusive lock on the vnode, while it is legal to call here with only a
3582 * shared lock (or no locks). If locking the vnode in an expected manner fails,
3583 * inactive processing gets deferred to the syncer.
3584 */
3585 static void
vput_final(struct vnode * vp,enum vput_op func)3586 vput_final(struct vnode *vp, enum vput_op func)
3587 {
3588 int error;
3589 bool want_unlock;
3590
3591 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
3592 VNPASS(vp->v_holdcnt > 0, vp);
3593
3594 VI_LOCK(vp);
3595
3596 /*
3597 * By the time we got here someone else might have transitioned
3598 * the count back to > 0.
3599 */
3600 if (vp->v_usecount > 0)
3601 goto out;
3602
3603 /*
3604 * If the vnode is doomed vgone already performed inactive processing
3605 * (if needed).
3606 */
3607 if (VN_IS_DOOMED(vp))
3608 goto out;
3609
3610 if (__predict_true(VOP_NEED_INACTIVE(vp) == 0))
3611 goto out;
3612
3613 if (vp->v_iflag & VI_DOINGINACT)
3614 goto out;
3615
3616 /*
3617 * Locking operations here will drop the interlock and possibly the
3618 * vnode lock, opening a window where the vnode can get doomed all the
3619 * while ->v_usecount is 0. Set VI_OWEINACT to let vgone know to
3620 * perform inactive.
3621 */
3622 vp->v_iflag |= VI_OWEINACT;
3623 want_unlock = false;
3624 error = 0;
3625 switch (func) {
3626 case VRELE:
3627 switch (VOP_ISLOCKED(vp)) {
3628 case LK_EXCLUSIVE:
3629 break;
3630 case LK_EXCLOTHER:
3631 case 0:
3632 want_unlock = true;
3633 error = vn_lock(vp, LK_EXCLUSIVE | LK_INTERLOCK);
3634 VI_LOCK(vp);
3635 break;
3636 default:
3637 /*
3638 * The lock has at least one sharer, but we have no way
3639 * to conclude whether this is us. Play it safe and
3640 * defer processing.
3641 */
3642 error = EAGAIN;
3643 break;
3644 }
3645 break;
3646 case VPUT:
3647 want_unlock = true;
3648 if (VOP_ISLOCKED(vp) != LK_EXCLUSIVE) {
3649 error = VOP_LOCK(vp, LK_UPGRADE | LK_INTERLOCK |
3650 LK_NOWAIT);
3651 VI_LOCK(vp);
3652 }
3653 break;
3654 case VUNREF:
3655 if (VOP_ISLOCKED(vp) != LK_EXCLUSIVE) {
3656 error = VOP_LOCK(vp, LK_TRYUPGRADE | LK_INTERLOCK);
3657 VI_LOCK(vp);
3658 }
3659 break;
3660 }
3661 if (error != 0) {
3662 vdefer_inactive(vp);
3663 return;
3664 }
3665 if (func == VUNREF) {
3666 VNASSERT((vp->v_vflag & VV_UNREF) == 0, vp,
3667 ("recursive vunref"));
3668 vp->v_vflag |= VV_UNREF;
3669 }
3670 for (;;) {
3671 error = vinactive(vp);
3672 if (want_unlock)
3673 VOP_UNLOCK(vp);
3674 if (error != ERELOOKUP || !want_unlock)
3675 break;
3676 VOP_LOCK(vp, LK_EXCLUSIVE);
3677 }
3678 if (func == VUNREF)
3679 vp->v_vflag &= ~VV_UNREF;
3680 vdropl(vp);
3681 return;
3682 out:
3683 if (func == VPUT)
3684 VOP_UNLOCK(vp);
3685 vdropl(vp);
3686 }
3687
3688 /*
3689 * Decrement ->v_usecount for a vnode.
3690 *
3691 * Releasing the last use count requires additional processing, see vput_final
3692 * above for details.
3693 *
3694 * Comment above each variant denotes lock state on entry and exit.
3695 */
3696
3697 /*
3698 * in: any
3699 * out: same as passed in
3700 */
3701 void
vrele(struct vnode * vp)3702 vrele(struct vnode *vp)
3703 {
3704
3705 ASSERT_VI_UNLOCKED(vp, __func__);
3706 if (!refcount_release(&vp->v_usecount))
3707 return;
3708 vput_final(vp, VRELE);
3709 }
3710
3711 /*
3712 * in: locked
3713 * out: unlocked
3714 */
3715 void
vput(struct vnode * vp)3716 vput(struct vnode *vp)
3717 {
3718
3719 ASSERT_VOP_LOCKED(vp, __func__);
3720 ASSERT_VI_UNLOCKED(vp, __func__);
3721 if (!refcount_release(&vp->v_usecount)) {
3722 VOP_UNLOCK(vp);
3723 return;
3724 }
3725 vput_final(vp, VPUT);
3726 }
3727
3728 /*
3729 * in: locked
3730 * out: locked
3731 */
3732 void
vunref(struct vnode * vp)3733 vunref(struct vnode *vp)
3734 {
3735
3736 ASSERT_VOP_LOCKED(vp, __func__);
3737 ASSERT_VI_UNLOCKED(vp, __func__);
3738 if (!refcount_release(&vp->v_usecount))
3739 return;
3740 vput_final(vp, VUNREF);
3741 }
3742
3743 void
vhold(struct vnode * vp)3744 vhold(struct vnode *vp)
3745 {
3746 int old;
3747
3748 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
3749 old = atomic_fetchadd_int(&vp->v_holdcnt, 1);
3750 VNASSERT(old >= 0 && (old & VHOLD_ALL_FLAGS) == 0, vp,
3751 ("%s: wrong hold count %d", __func__, old));
3752 if (old == 0)
3753 vfs_freevnodes_dec();
3754 }
3755
3756 void
vholdnz(struct vnode * vp)3757 vholdnz(struct vnode *vp)
3758 {
3759
3760 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
3761 #ifdef INVARIANTS
3762 int old = atomic_fetchadd_int(&vp->v_holdcnt, 1);
3763 VNASSERT(old > 0 && (old & VHOLD_ALL_FLAGS) == 0, vp,
3764 ("%s: wrong hold count %d", __func__, old));
3765 #else
3766 atomic_add_int(&vp->v_holdcnt, 1);
3767 #endif
3768 }
3769
3770 /*
3771 * Grab a hold count unless the vnode is freed.
3772 *
3773 * Only use this routine if vfs smr is the only protection you have against
3774 * freeing the vnode.
3775 *
3776 * The code loops trying to add a hold count as long as the VHOLD_NO_SMR flag
3777 * is not set. After the flag is set the vnode becomes immutable to anyone but
3778 * the thread which managed to set the flag.
3779 *
3780 * It may be tempting to replace the loop with:
3781 * count = atomic_fetchadd_int(&vp->v_holdcnt, 1);
3782 * if (count & VHOLD_NO_SMR) {
3783 * backpedal and error out;
3784 * }
3785 *
3786 * However, while this is more performant, it hinders debugging by eliminating
3787 * the previously mentioned invariant.
3788 */
3789 bool
vhold_smr(struct vnode * vp)3790 vhold_smr(struct vnode *vp)
3791 {
3792 int count;
3793
3794 VFS_SMR_ASSERT_ENTERED();
3795
3796 count = atomic_load_int(&vp->v_holdcnt);
3797 for (;;) {
3798 if (count & VHOLD_NO_SMR) {
3799 VNASSERT((count & ~VHOLD_NO_SMR) == 0, vp,
3800 ("non-zero hold count with flags %d\n", count));
3801 return (false);
3802 }
3803 VNASSERT(count >= 0, vp, ("invalid hold count %d\n", count));
3804 if (atomic_fcmpset_int(&vp->v_holdcnt, &count, count + 1)) {
3805 if (count == 0)
3806 vfs_freevnodes_dec();
3807 return (true);
3808 }
3809 }
3810 }
3811
3812 /*
3813 * Hold a free vnode for recycling.
3814 *
3815 * Note: vnode_init references this comment.
3816 *
3817 * Attempts to recycle only need the global vnode list lock and have no use for
3818 * SMR.
3819 *
3820 * However, vnodes get inserted into the global list before they get fully
3821 * initialized and stay there until UMA decides to free the memory. This in
3822 * particular means the target can be found before it becomes usable and after
3823 * it becomes recycled. Picking up such vnodes is guarded with v_holdcnt set to
3824 * VHOLD_NO_SMR.
3825 *
3826 * Note: the vnode may gain more references after we transition the count 0->1.
3827 */
3828 static bool
vhold_recycle_free(struct vnode * vp)3829 vhold_recycle_free(struct vnode *vp)
3830 {
3831 int count;
3832
3833 mtx_assert(&vnode_list_mtx, MA_OWNED);
3834
3835 count = atomic_load_int(&vp->v_holdcnt);
3836 for (;;) {
3837 if (count & VHOLD_NO_SMR) {
3838 VNASSERT((count & ~VHOLD_NO_SMR) == 0, vp,
3839 ("non-zero hold count with flags %d\n", count));
3840 return (false);
3841 }
3842 VNASSERT(count >= 0, vp, ("invalid hold count %d\n", count));
3843 if (count > 0) {
3844 return (false);
3845 }
3846 if (atomic_fcmpset_int(&vp->v_holdcnt, &count, count + 1)) {
3847 vfs_freevnodes_dec();
3848 return (true);
3849 }
3850 }
3851 }
3852
3853 static void __noinline
vdbatch_process(struct vdbatch * vd)3854 vdbatch_process(struct vdbatch *vd)
3855 {
3856 struct vnode *vp;
3857 int i;
3858
3859 mtx_assert(&vd->lock, MA_OWNED);
3860 MPASS(curthread->td_pinned > 0);
3861 MPASS(vd->index == VDBATCH_SIZE);
3862
3863 /*
3864 * Attempt to requeue the passed batch, but give up easily.
3865 *
3866 * Despite batching the mechanism is prone to transient *significant*
3867 * lock contention, where vnode_list_mtx becomes the primary bottleneck
3868 * if multiple CPUs get here (one real-world example is highly parallel
3869 * do-nothing make , which will stat *tons* of vnodes). Since it is
3870 * quasi-LRU (read: not that great even if fully honoured) provide an
3871 * option to just dodge the problem. Parties which don't like it are
3872 * welcome to implement something better.
3873 */
3874 if (vnode_can_skip_requeue) {
3875 if (!mtx_trylock(&vnode_list_mtx)) {
3876 counter_u64_add(vnode_skipped_requeues, 1);
3877 critical_enter();
3878 for (i = 0; i < VDBATCH_SIZE; i++) {
3879 vp = vd->tab[i];
3880 vd->tab[i] = NULL;
3881 MPASS(vp->v_dbatchcpu != NOCPU);
3882 vp->v_dbatchcpu = NOCPU;
3883 }
3884 vd->index = 0;
3885 critical_exit();
3886 return;
3887
3888 }
3889 /* fallthrough to locked processing */
3890 } else {
3891 mtx_lock(&vnode_list_mtx);
3892 }
3893
3894 mtx_assert(&vnode_list_mtx, MA_OWNED);
3895 critical_enter();
3896 for (i = 0; i < VDBATCH_SIZE; i++) {
3897 vp = vd->tab[i];
3898 vd->tab[i] = NULL;
3899 TAILQ_REMOVE(&vnode_list, vp, v_vnodelist);
3900 TAILQ_INSERT_TAIL(&vnode_list, vp, v_vnodelist);
3901 MPASS(vp->v_dbatchcpu != NOCPU);
3902 vp->v_dbatchcpu = NOCPU;
3903 }
3904 mtx_unlock(&vnode_list_mtx);
3905 vd->index = 0;
3906 critical_exit();
3907 }
3908
3909 static void
vdbatch_enqueue(struct vnode * vp)3910 vdbatch_enqueue(struct vnode *vp)
3911 {
3912 struct vdbatch *vd;
3913
3914 ASSERT_VI_LOCKED(vp, __func__);
3915 VNPASS(!VN_IS_DOOMED(vp), vp);
3916
3917 if (vp->v_dbatchcpu != NOCPU) {
3918 VI_UNLOCK(vp);
3919 return;
3920 }
3921
3922 sched_pin();
3923 vd = DPCPU_PTR(vd);
3924 mtx_lock(&vd->lock);
3925 MPASS(vd->index < VDBATCH_SIZE);
3926 MPASS(vd->tab[vd->index] == NULL);
3927 /*
3928 * A hack: we depend on being pinned so that we know what to put in
3929 * ->v_dbatchcpu.
3930 */
3931 vp->v_dbatchcpu = curcpu;
3932 vd->tab[vd->index] = vp;
3933 vd->index++;
3934 VI_UNLOCK(vp);
3935 if (vd->index == VDBATCH_SIZE)
3936 vdbatch_process(vd);
3937 mtx_unlock(&vd->lock);
3938 sched_unpin();
3939 }
3940
3941 /*
3942 * This routine must only be called for vnodes which are about to be
3943 * deallocated. Supporting dequeue for arbitrary vndoes would require
3944 * validating that the locked batch matches.
3945 */
3946 static void
vdbatch_dequeue(struct vnode * vp)3947 vdbatch_dequeue(struct vnode *vp)
3948 {
3949 struct vdbatch *vd;
3950 int i;
3951 short cpu;
3952
3953 VNPASS(vp->v_type == VBAD || vp->v_type == VNON, vp);
3954
3955 cpu = vp->v_dbatchcpu;
3956 if (cpu == NOCPU)
3957 return;
3958
3959 vd = DPCPU_ID_PTR(cpu, vd);
3960 mtx_lock(&vd->lock);
3961 for (i = 0; i < vd->index; i++) {
3962 if (vd->tab[i] != vp)
3963 continue;
3964 vp->v_dbatchcpu = NOCPU;
3965 vd->index--;
3966 vd->tab[i] = vd->tab[vd->index];
3967 vd->tab[vd->index] = NULL;
3968 break;
3969 }
3970 mtx_unlock(&vd->lock);
3971 /*
3972 * Either we dequeued the vnode above or the target CPU beat us to it.
3973 */
3974 MPASS(vp->v_dbatchcpu == NOCPU);
3975 }
3976
3977 /*
3978 * Drop the hold count of the vnode.
3979 *
3980 * It will only get freed if this is the last hold *and* it has been vgone'd.
3981 *
3982 * Because the vnode vm object keeps a hold reference on the vnode if
3983 * there is at least one resident non-cached page, the vnode cannot
3984 * leave the active list without the page cleanup done.
3985 */
3986 static void __noinline
vdropl_final(struct vnode * vp)3987 vdropl_final(struct vnode *vp)
3988 {
3989
3990 ASSERT_VI_LOCKED(vp, __func__);
3991 VNPASS(VN_IS_DOOMED(vp), vp);
3992 /*
3993 * Set the VHOLD_NO_SMR flag.
3994 *
3995 * We may be racing against vhold_smr. If they win we can just pretend
3996 * we never got this far, they will vdrop later.
3997 */
3998 if (__predict_false(!atomic_cmpset_int(&vp->v_holdcnt, 0, VHOLD_NO_SMR))) {
3999 vfs_freevnodes_inc();
4000 VI_UNLOCK(vp);
4001 /*
4002 * We lost the aforementioned race. Any subsequent access is
4003 * invalid as they might have managed to vdropl on their own.
4004 */
4005 return;
4006 }
4007 /*
4008 * Don't bump freevnodes as this one is going away.
4009 */
4010 freevnode(vp);
4011 }
4012
4013 void
vdrop(struct vnode * vp)4014 vdrop(struct vnode *vp)
4015 {
4016
4017 ASSERT_VI_UNLOCKED(vp, __func__);
4018 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
4019 if (refcount_release_if_not_last(&vp->v_holdcnt))
4020 return;
4021 VI_LOCK(vp);
4022 vdropl(vp);
4023 }
4024
4025 static __always_inline void
vdropl_impl(struct vnode * vp,bool enqueue)4026 vdropl_impl(struct vnode *vp, bool enqueue)
4027 {
4028
4029 ASSERT_VI_LOCKED(vp, __func__);
4030 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
4031 if (!refcount_release(&vp->v_holdcnt)) {
4032 VI_UNLOCK(vp);
4033 return;
4034 }
4035 VNPASS((vp->v_iflag & VI_OWEINACT) == 0, vp);
4036 VNPASS((vp->v_iflag & VI_DEFINACT) == 0, vp);
4037 if (VN_IS_DOOMED(vp)) {
4038 vdropl_final(vp);
4039 return;
4040 }
4041
4042 vfs_freevnodes_inc();
4043 if (vp->v_mflag & VMP_LAZYLIST) {
4044 vunlazy(vp);
4045 }
4046
4047 if (!enqueue) {
4048 VI_UNLOCK(vp);
4049 return;
4050 }
4051
4052 /*
4053 * Also unlocks the interlock. We can't assert on it as we
4054 * released our hold and by now the vnode might have been
4055 * freed.
4056 */
4057 vdbatch_enqueue(vp);
4058 }
4059
4060 void
vdropl(struct vnode * vp)4061 vdropl(struct vnode *vp)
4062 {
4063
4064 vdropl_impl(vp, true);
4065 }
4066
4067 /*
4068 * vdrop a vnode when recycling
4069 *
4070 * This is a special case routine only to be used when recycling, differs from
4071 * regular vdrop by not requeieing the vnode on LRU.
4072 *
4073 * Consider a case where vtryrecycle continuously fails with all vnodes (due to
4074 * e.g., frozen writes on the filesystem), filling the batch and causing it to
4075 * be requeued. Then vnlru will end up revisiting the same vnodes. This is a
4076 * loop which can last for as long as writes are frozen.
4077 */
4078 static void
vdropl_recycle(struct vnode * vp)4079 vdropl_recycle(struct vnode *vp)
4080 {
4081
4082 vdropl_impl(vp, false);
4083 }
4084
4085 static void
vdrop_recycle(struct vnode * vp)4086 vdrop_recycle(struct vnode *vp)
4087 {
4088
4089 VI_LOCK(vp);
4090 vdropl_recycle(vp);
4091 }
4092
4093 /*
4094 * Call VOP_INACTIVE on the vnode and manage the DOINGINACT and OWEINACT
4095 * flags. DOINGINACT prevents us from recursing in calls to vinactive.
4096 */
4097 static int
vinactivef(struct vnode * vp)4098 vinactivef(struct vnode *vp)
4099 {
4100 int error;
4101
4102 ASSERT_VOP_ELOCKED(vp, "vinactive");
4103 ASSERT_VI_LOCKED(vp, "vinactive");
4104 VNPASS((vp->v_iflag & VI_DOINGINACT) == 0, vp);
4105 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
4106 vp->v_iflag |= VI_DOINGINACT;
4107 vp->v_iflag &= ~VI_OWEINACT;
4108 VI_UNLOCK(vp);
4109
4110 /*
4111 * Before moving off the active list, we must be sure that any
4112 * modified pages are converted into the vnode's dirty
4113 * buffers, since these will no longer be checked once the
4114 * vnode is on the inactive list.
4115 *
4116 * The write-out of the dirty pages is asynchronous. At the
4117 * point that VOP_INACTIVE() is called, there could still be
4118 * pending I/O and dirty pages in the object.
4119 */
4120 if ((vp->v_vflag & VV_NOSYNC) == 0)
4121 vnode_pager_clean_async(vp);
4122
4123 error = VOP_INACTIVE(vp);
4124 VI_LOCK(vp);
4125 VNPASS(vp->v_iflag & VI_DOINGINACT, vp);
4126 vp->v_iflag &= ~VI_DOINGINACT;
4127 return (error);
4128 }
4129
4130 int
vinactive(struct vnode * vp)4131 vinactive(struct vnode *vp)
4132 {
4133
4134 ASSERT_VOP_ELOCKED(vp, "vinactive");
4135 ASSERT_VI_LOCKED(vp, "vinactive");
4136 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
4137
4138 if ((vp->v_iflag & VI_OWEINACT) == 0)
4139 return (0);
4140 if (vp->v_iflag & VI_DOINGINACT)
4141 return (0);
4142 if (vp->v_usecount > 0) {
4143 vp->v_iflag &= ~VI_OWEINACT;
4144 return (0);
4145 }
4146 return (vinactivef(vp));
4147 }
4148
4149 /*
4150 * Remove any vnodes in the vnode table belonging to mount point mp.
4151 *
4152 * If FORCECLOSE is not specified, there should not be any active ones,
4153 * return error if any are found (nb: this is a user error, not a
4154 * system error). If FORCECLOSE is specified, detach any active vnodes
4155 * that are found.
4156 *
4157 * If WRITECLOSE is set, only flush out regular file vnodes open for
4158 * writing.
4159 *
4160 * SKIPSYSTEM causes any vnodes marked VV_SYSTEM to be skipped.
4161 *
4162 * `rootrefs' specifies the base reference count for the root vnode
4163 * of this filesystem. The root vnode is considered busy if its
4164 * v_usecount exceeds this value. On a successful return, vflush(, td)
4165 * will call vrele() on the root vnode exactly rootrefs times.
4166 * If the SKIPSYSTEM or WRITECLOSE flags are specified, rootrefs must
4167 * be zero.
4168 */
4169 #ifdef DIAGNOSTIC
4170 static int busyprt = 0; /* print out busy vnodes */
4171 SYSCTL_INT(_debug, OID_AUTO, busyprt, CTLFLAG_RW, &busyprt, 0, "Print out busy vnodes");
4172 #endif
4173
4174 int
vflush(struct mount * mp,int rootrefs,int flags,struct thread * td)4175 vflush(struct mount *mp, int rootrefs, int flags, struct thread *td)
4176 {
4177 struct vnode *vp, *mvp, *rootvp = NULL;
4178 struct vattr vattr;
4179 int busy = 0, error;
4180
4181 CTR4(KTR_VFS, "%s: mp %p with rootrefs %d and flags %d", __func__, mp,
4182 rootrefs, flags);
4183 if (rootrefs > 0) {
4184 KASSERT((flags & (SKIPSYSTEM | WRITECLOSE)) == 0,
4185 ("vflush: bad args"));
4186 /*
4187 * Get the filesystem root vnode. We can vput() it
4188 * immediately, since with rootrefs > 0, it won't go away.
4189 */
4190 if ((error = VFS_ROOT(mp, LK_EXCLUSIVE, &rootvp)) != 0) {
4191 CTR2(KTR_VFS, "%s: vfs_root lookup failed with %d",
4192 __func__, error);
4193 return (error);
4194 }
4195 vput(rootvp);
4196 }
4197 loop:
4198 MNT_VNODE_FOREACH_ALL(vp, mp, mvp) {
4199 vholdl(vp);
4200 error = vn_lock(vp, LK_INTERLOCK | LK_EXCLUSIVE);
4201 if (error) {
4202 vdrop(vp);
4203 MNT_VNODE_FOREACH_ALL_ABORT(mp, mvp);
4204 goto loop;
4205 }
4206 /*
4207 * Skip over a vnodes marked VV_SYSTEM.
4208 */
4209 if ((flags & SKIPSYSTEM) && (vp->v_vflag & VV_SYSTEM)) {
4210 VOP_UNLOCK(vp);
4211 vdrop(vp);
4212 continue;
4213 }
4214 /*
4215 * If WRITECLOSE is set, flush out unlinked but still open
4216 * files (even if open only for reading) and regular file
4217 * vnodes open for writing.
4218 */
4219 if (flags & WRITECLOSE) {
4220 vnode_pager_clean_async(vp);
4221 do {
4222 error = VOP_FSYNC(vp, MNT_WAIT, td);
4223 } while (error == ERELOOKUP);
4224 if (error != 0) {
4225 VOP_UNLOCK(vp);
4226 vdrop(vp);
4227 MNT_VNODE_FOREACH_ALL_ABORT(mp, mvp);
4228 return (error);
4229 }
4230 error = VOP_GETATTR(vp, &vattr, td->td_ucred);
4231 VI_LOCK(vp);
4232
4233 if ((vp->v_type == VNON ||
4234 (error == 0 && vattr.va_nlink > 0)) &&
4235 (vp->v_writecount <= 0 || vp->v_type != VREG)) {
4236 VOP_UNLOCK(vp);
4237 vdropl(vp);
4238 continue;
4239 }
4240 } else
4241 VI_LOCK(vp);
4242 /*
4243 * With v_usecount == 0, all we need to do is clear out the
4244 * vnode data structures and we are done.
4245 *
4246 * If FORCECLOSE is set, forcibly close the vnode.
4247 */
4248 if (vp->v_usecount == 0 || (flags & FORCECLOSE)) {
4249 vgonel(vp);
4250 } else {
4251 busy++;
4252 #ifdef DIAGNOSTIC
4253 if (busyprt)
4254 vn_printf(vp, "vflush: busy vnode ");
4255 #endif
4256 }
4257 VOP_UNLOCK(vp);
4258 vdropl(vp);
4259 }
4260 if (rootrefs > 0 && (flags & FORCECLOSE) == 0) {
4261 /*
4262 * If just the root vnode is busy, and if its refcount
4263 * is equal to `rootrefs', then go ahead and kill it.
4264 */
4265 VI_LOCK(rootvp);
4266 KASSERT(busy > 0, ("vflush: not busy"));
4267 VNASSERT(rootvp->v_usecount >= rootrefs, rootvp,
4268 ("vflush: usecount %d < rootrefs %d",
4269 rootvp->v_usecount, rootrefs));
4270 if (busy == 1 && rootvp->v_usecount == rootrefs) {
4271 VOP_LOCK(rootvp, LK_EXCLUSIVE|LK_INTERLOCK);
4272 vgone(rootvp);
4273 VOP_UNLOCK(rootvp);
4274 busy = 0;
4275 } else
4276 VI_UNLOCK(rootvp);
4277 }
4278 if (busy) {
4279 CTR2(KTR_VFS, "%s: failing as %d vnodes are busy", __func__,
4280 busy);
4281 return (EBUSY);
4282 }
4283 for (; rootrefs > 0; rootrefs--)
4284 vrele(rootvp);
4285 return (0);
4286 }
4287
4288 /*
4289 * Recycle an unused vnode.
4290 */
4291 int
vrecycle(struct vnode * vp)4292 vrecycle(struct vnode *vp)
4293 {
4294 int recycled;
4295
4296 VI_LOCK(vp);
4297 recycled = vrecyclel(vp);
4298 VI_UNLOCK(vp);
4299 return (recycled);
4300 }
4301
4302 /*
4303 * vrecycle, with the vp interlock held.
4304 */
4305 int
vrecyclel(struct vnode * vp)4306 vrecyclel(struct vnode *vp)
4307 {
4308 int recycled;
4309
4310 ASSERT_VOP_ELOCKED(vp, __func__);
4311 ASSERT_VI_LOCKED(vp, __func__);
4312 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
4313 recycled = 0;
4314 if (vp->v_usecount == 0) {
4315 recycled = 1;
4316 vgonel(vp);
4317 }
4318 return (recycled);
4319 }
4320
4321 /*
4322 * Eliminate all activity associated with a vnode
4323 * in preparation for reuse.
4324 */
4325 void
vgone(struct vnode * vp)4326 vgone(struct vnode *vp)
4327 {
4328 VI_LOCK(vp);
4329 vgonel(vp);
4330 VI_UNLOCK(vp);
4331 }
4332
4333 /*
4334 * Notify upper mounts about reclaimed or unlinked vnode.
4335 */
4336 void
vfs_notify_upper(struct vnode * vp,enum vfs_notify_upper_type event)4337 vfs_notify_upper(struct vnode *vp, enum vfs_notify_upper_type event)
4338 {
4339 struct mount *mp;
4340 struct mount_upper_node *ump;
4341
4342 mp = atomic_load_ptr(&vp->v_mount);
4343 if (mp == NULL)
4344 return;
4345 if (TAILQ_EMPTY(&mp->mnt_notify))
4346 return;
4347
4348 MNT_ILOCK(mp);
4349 mp->mnt_upper_pending++;
4350 KASSERT(mp->mnt_upper_pending > 0,
4351 ("%s: mnt_upper_pending %d", __func__, mp->mnt_upper_pending));
4352 TAILQ_FOREACH(ump, &mp->mnt_notify, mnt_upper_link) {
4353 MNT_IUNLOCK(mp);
4354 switch (event) {
4355 case VFS_NOTIFY_UPPER_RECLAIM:
4356 VFS_RECLAIM_LOWERVP(ump->mp, vp);
4357 break;
4358 case VFS_NOTIFY_UPPER_UNLINK:
4359 VFS_UNLINK_LOWERVP(ump->mp, vp);
4360 break;
4361 }
4362 MNT_ILOCK(mp);
4363 }
4364 mp->mnt_upper_pending--;
4365 if ((mp->mnt_kern_flag & MNTK_UPPER_WAITER) != 0 &&
4366 mp->mnt_upper_pending == 0) {
4367 mp->mnt_kern_flag &= ~MNTK_UPPER_WAITER;
4368 wakeup(&mp->mnt_uppers);
4369 }
4370 MNT_IUNLOCK(mp);
4371 }
4372
4373 /*
4374 * vgone, with the vp interlock held.
4375 */
4376 static void
vgonel(struct vnode * vp)4377 vgonel(struct vnode *vp)
4378 {
4379 struct thread *td;
4380 struct mount *mp;
4381 vm_object_t object;
4382 bool active, doinginact, oweinact;
4383
4384 ASSERT_VOP_ELOCKED(vp, "vgonel");
4385 ASSERT_VI_LOCKED(vp, "vgonel");
4386 VNASSERT(vp->v_holdcnt, vp,
4387 ("vgonel: vp %p has no reference.", vp));
4388 CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
4389 td = curthread;
4390
4391 /*
4392 * Don't vgonel if we're already doomed.
4393 */
4394 if (VN_IS_DOOMED(vp)) {
4395 VNPASS(vn_get_state(vp) == VSTATE_DESTROYING || \
4396 vn_get_state(vp) == VSTATE_DEAD, vp);
4397 return;
4398 }
4399 /*
4400 * Paired with freevnode.
4401 */
4402 vn_seqc_write_begin_locked(vp);
4403 vunlazy_gone(vp);
4404 vn_irflag_set_locked(vp, VIRF_DOOMED);
4405 vn_set_state(vp, VSTATE_DESTROYING);
4406
4407 /*
4408 * Check to see if the vnode is in use. If so, we have to
4409 * call VOP_CLOSE() and VOP_INACTIVE().
4410 *
4411 * It could be that VOP_INACTIVE() requested reclamation, in
4412 * which case we should avoid recursion, so check
4413 * VI_DOINGINACT. This is not precise but good enough.
4414 */
4415 active = vp->v_usecount > 0;
4416 oweinact = (vp->v_iflag & VI_OWEINACT) != 0;
4417 doinginact = (vp->v_iflag & VI_DOINGINACT) != 0;
4418
4419 /*
4420 * If we need to do inactive VI_OWEINACT will be set.
4421 */
4422 if (vp->v_iflag & VI_DEFINACT) {
4423 VNASSERT(vp->v_holdcnt > 1, vp, ("lost hold count"));
4424 vp->v_iflag &= ~VI_DEFINACT;
4425 vdropl(vp);
4426 } else {
4427 VNASSERT(vp->v_holdcnt > 0, vp, ("vnode without hold count"));
4428 VI_UNLOCK(vp);
4429 }
4430 cache_purge_vgone(vp);
4431 vfs_notify_upper(vp, VFS_NOTIFY_UPPER_RECLAIM);
4432
4433 /*
4434 * If purging an active vnode, it must be closed and
4435 * deactivated before being reclaimed.
4436 */
4437 if (active)
4438 VOP_CLOSE(vp, FNONBLOCK, NOCRED, td);
4439 if (!doinginact) {
4440 do {
4441 if (oweinact || active) {
4442 VI_LOCK(vp);
4443 vinactivef(vp);
4444 oweinact = (vp->v_iflag & VI_OWEINACT) != 0;
4445 VI_UNLOCK(vp);
4446 }
4447 } while (oweinact);
4448 }
4449 if (vp->v_type == VSOCK)
4450 vfs_unp_reclaim(vp);
4451
4452 /*
4453 * Clean out any buffers associated with the vnode.
4454 * If the flush fails, just toss the buffers.
4455 */
4456 mp = NULL;
4457 if (!TAILQ_EMPTY(&vp->v_bufobj.bo_dirty.bv_hd))
4458 (void) vn_start_secondary_write(vp, &mp, V_WAIT);
4459 if (vinvalbuf(vp, V_SAVE, 0, 0) != 0) {
4460 while (vinvalbuf(vp, 0, 0, 0) != 0)
4461 ;
4462 }
4463
4464 BO_LOCK(&vp->v_bufobj);
4465 KASSERT(TAILQ_EMPTY(&vp->v_bufobj.bo_dirty.bv_hd) &&
4466 vp->v_bufobj.bo_dirty.bv_cnt == 0 &&
4467 TAILQ_EMPTY(&vp->v_bufobj.bo_clean.bv_hd) &&
4468 vp->v_bufobj.bo_clean.bv_cnt == 0,
4469 ("vp %p bufobj not invalidated", vp));
4470
4471 /*
4472 * For VMIO bufobj, BO_DEAD is set later, or in
4473 * vm_object_terminate() after the object's page queue is
4474 * flushed.
4475 */
4476 object = vp->v_bufobj.bo_object;
4477 if (object == NULL)
4478 vp->v_bufobj.bo_flag |= BO_DEAD;
4479 BO_UNLOCK(&vp->v_bufobj);
4480
4481 /*
4482 * Handle the VM part. Tmpfs handles v_object on its own (the
4483 * OBJT_VNODE check). Nullfs or other bypassing filesystems
4484 * should not touch the object borrowed from the lower vnode
4485 * (the handle check).
4486 */
4487 if (object != NULL && object->type == OBJT_VNODE &&
4488 object->handle == vp)
4489 vnode_destroy_vobject(vp);
4490
4491 /*
4492 * Reclaim the vnode.
4493 */
4494 if (VOP_RECLAIM(vp))
4495 panic("vgone: cannot reclaim");
4496 if (mp != NULL)
4497 vn_finished_secondary_write(mp);
4498 VNASSERT(vp->v_object == NULL, vp,
4499 ("vop_reclaim left v_object vp=%p", vp));
4500 /*
4501 * Clear the advisory locks and wake up waiting threads.
4502 */
4503 if (vp->v_lockf != NULL) {
4504 (void)VOP_ADVLOCKPURGE(vp);
4505 vp->v_lockf = NULL;
4506 }
4507 /*
4508 * Delete from old mount point vnode list.
4509 */
4510 if (vp->v_mount == NULL) {
4511 VI_LOCK(vp);
4512 } else {
4513 delmntque(vp);
4514 ASSERT_VI_LOCKED(vp, "vgonel 2");
4515 }
4516 /*
4517 * Done with purge, reset to the standard lock and invalidate
4518 * the vnode.
4519 *
4520 * FIXME: this is buggy for vnode ops with custom locking primitives.
4521 *
4522 * vget used to be gated with a special flag serializing it against vgone,
4523 * which got lost in the process of SMP-ifying the VFS layer.
4524 *
4525 * Suppose a custom locking routine references ->v_data.
4526 *
4527 * Since now it is possible to start executing it as vgone is
4528 * progressing, this very well may crash as ->v_data gets invalidated
4529 * and memory used to back it is freed.
4530 */
4531 vp->v_vnlock = &vp->v_lock;
4532 vp->v_op = &dead_vnodeops;
4533 vp->v_type = VBAD;
4534 vn_set_state(vp, VSTATE_DEAD);
4535 }
4536
4537 /*
4538 * Print out a description of a vnode.
4539 */
4540 static const char *const vtypename[] = {
4541 [VNON] = "VNON",
4542 [VREG] = "VREG",
4543 [VDIR] = "VDIR",
4544 [VBLK] = "VBLK",
4545 [VCHR] = "VCHR",
4546 [VLNK] = "VLNK",
4547 [VSOCK] = "VSOCK",
4548 [VFIFO] = "VFIFO",
4549 [VBAD] = "VBAD",
4550 [VMARKER] = "VMARKER",
4551 };
4552 _Static_assert(nitems(vtypename) == VLASTTYPE + 1,
4553 "vnode type name not added to vtypename");
4554
4555 static const char *const vstatename[] = {
4556 [VSTATE_UNINITIALIZED] = "VSTATE_UNINITIALIZED",
4557 [VSTATE_CONSTRUCTED] = "VSTATE_CONSTRUCTED",
4558 [VSTATE_DESTROYING] = "VSTATE_DESTROYING",
4559 [VSTATE_DEAD] = "VSTATE_DEAD",
4560 };
4561 _Static_assert(nitems(vstatename) == VLASTSTATE + 1,
4562 "vnode state name not added to vstatename");
4563
4564 _Static_assert((VHOLD_ALL_FLAGS & ~VHOLD_NO_SMR) == 0,
4565 "new hold count flag not added to vn_printf");
4566
4567 void
vn_printf(struct vnode * vp,const char * fmt,...)4568 vn_printf(struct vnode *vp, const char *fmt, ...)
4569 {
4570 va_list ap;
4571 char buf[256], buf2[16];
4572 u_long flags;
4573 u_int holdcnt;
4574 short irflag;
4575
4576 va_start(ap, fmt);
4577 vprintf(fmt, ap);
4578 va_end(ap);
4579 printf("%p: ", (void *)vp);
4580 printf("type %s state %s op %p\n", vtypename[vp->v_type],
4581 vstatename[vp->v_state], vp->v_op);
4582 holdcnt = atomic_load_int(&vp->v_holdcnt);
4583 printf(" usecount %d, writecount %d, refcount %d seqc users %d",
4584 vp->v_usecount, vp->v_writecount, holdcnt & ~VHOLD_ALL_FLAGS,
4585 vp->v_seqc_users);
4586 switch (vp->v_type) {
4587 case VDIR:
4588 printf(" mountedhere %p\n", vp->v_mountedhere);
4589 break;
4590 case VCHR:
4591 printf(" rdev %p\n", vp->v_rdev);
4592 break;
4593 case VSOCK:
4594 printf(" socket %p\n", vp->v_unpcb);
4595 break;
4596 case VFIFO:
4597 printf(" fifoinfo %p\n", vp->v_fifoinfo);
4598 break;
4599 default:
4600 printf("\n");
4601 break;
4602 }
4603 buf[0] = '\0';
4604 buf[1] = '\0';
4605 if (holdcnt & VHOLD_NO_SMR)
4606 strlcat(buf, "|VHOLD_NO_SMR", sizeof(buf));
4607 printf(" hold count flags (%s)\n", buf + 1);
4608
4609 buf[0] = '\0';
4610 buf[1] = '\0';
4611 irflag = vn_irflag_read(vp);
4612 if (irflag & VIRF_DOOMED)
4613 strlcat(buf, "|VIRF_DOOMED", sizeof(buf));
4614 if (irflag & VIRF_PGREAD)
4615 strlcat(buf, "|VIRF_PGREAD", sizeof(buf));
4616 if (irflag & VIRF_MOUNTPOINT)
4617 strlcat(buf, "|VIRF_MOUNTPOINT", sizeof(buf));
4618 if (irflag & VIRF_TEXT_REF)
4619 strlcat(buf, "|VIRF_TEXT_REF", sizeof(buf));
4620 flags = irflag & ~(VIRF_DOOMED | VIRF_PGREAD | VIRF_MOUNTPOINT | VIRF_TEXT_REF);
4621 if (flags != 0) {
4622 snprintf(buf2, sizeof(buf2), "|VIRF(0x%lx)", flags);
4623 strlcat(buf, buf2, sizeof(buf));
4624 }
4625 if (vp->v_vflag & VV_ROOT)
4626 strlcat(buf, "|VV_ROOT", sizeof(buf));
4627 if (vp->v_vflag & VV_ISTTY)
4628 strlcat(buf, "|VV_ISTTY", sizeof(buf));
4629 if (vp->v_vflag & VV_NOSYNC)
4630 strlcat(buf, "|VV_NOSYNC", sizeof(buf));
4631 if (vp->v_vflag & VV_ETERNALDEV)
4632 strlcat(buf, "|VV_ETERNALDEV", sizeof(buf));
4633 if (vp->v_vflag & VV_CACHEDLABEL)
4634 strlcat(buf, "|VV_CACHEDLABEL", sizeof(buf));
4635 if (vp->v_vflag & VV_VMSIZEVNLOCK)
4636 strlcat(buf, "|VV_VMSIZEVNLOCK", sizeof(buf));
4637 if (vp->v_vflag & VV_COPYONWRITE)
4638 strlcat(buf, "|VV_COPYONWRITE", sizeof(buf));
4639 if (vp->v_vflag & VV_SYSTEM)
4640 strlcat(buf, "|VV_SYSTEM", sizeof(buf));
4641 if (vp->v_vflag & VV_PROCDEP)
4642 strlcat(buf, "|VV_PROCDEP", sizeof(buf));
4643 if (vp->v_vflag & VV_DELETED)
4644 strlcat(buf, "|VV_DELETED", sizeof(buf));
4645 if (vp->v_vflag & VV_MD)
4646 strlcat(buf, "|VV_MD", sizeof(buf));
4647 if (vp->v_vflag & VV_FORCEINSMQ)
4648 strlcat(buf, "|VV_FORCEINSMQ", sizeof(buf));
4649 if (vp->v_vflag & VV_READLINK)
4650 strlcat(buf, "|VV_READLINK", sizeof(buf));
4651 flags = vp->v_vflag & ~(VV_ROOT | VV_ISTTY | VV_NOSYNC | VV_ETERNALDEV |
4652 VV_CACHEDLABEL | VV_VMSIZEVNLOCK | VV_COPYONWRITE | VV_SYSTEM |
4653 VV_PROCDEP | VV_DELETED | VV_MD | VV_FORCEINSMQ | VV_READLINK);
4654 if (flags != 0) {
4655 snprintf(buf2, sizeof(buf2), "|VV(0x%lx)", flags);
4656 strlcat(buf, buf2, sizeof(buf));
4657 }
4658 if (vp->v_iflag & VI_MOUNT)
4659 strlcat(buf, "|VI_MOUNT", sizeof(buf));
4660 if (vp->v_iflag & VI_DOINGINACT)
4661 strlcat(buf, "|VI_DOINGINACT", sizeof(buf));
4662 if (vp->v_iflag & VI_OWEINACT)
4663 strlcat(buf, "|VI_OWEINACT", sizeof(buf));
4664 if (vp->v_iflag & VI_DEFINACT)
4665 strlcat(buf, "|VI_DEFINACT", sizeof(buf));
4666 if (vp->v_iflag & VI_FOPENING)
4667 strlcat(buf, "|VI_FOPENING", sizeof(buf));
4668 flags = vp->v_iflag & ~(VI_MOUNT | VI_DOINGINACT |
4669 VI_OWEINACT | VI_DEFINACT | VI_FOPENING);
4670 if (flags != 0) {
4671 snprintf(buf2, sizeof(buf2), "|VI(0x%lx)", flags);
4672 strlcat(buf, buf2, sizeof(buf));
4673 }
4674 if (vp->v_mflag & VMP_LAZYLIST)
4675 strlcat(buf, "|VMP_LAZYLIST", sizeof(buf));
4676 flags = vp->v_mflag & ~(VMP_LAZYLIST);
4677 if (flags != 0) {
4678 snprintf(buf2, sizeof(buf2), "|VMP(0x%lx)", flags);
4679 strlcat(buf, buf2, sizeof(buf));
4680 }
4681 printf(" flags (%s)", buf + 1);
4682 if (mtx_owned(VI_MTX(vp)))
4683 printf(" VI_LOCKed");
4684 printf("\n");
4685 if (vp->v_object != NULL)
4686 printf(" v_object %p ref %d pages %d "
4687 "cleanbuf %d dirtybuf %d\n",
4688 vp->v_object, vp->v_object->ref_count,
4689 vp->v_object->resident_page_count,
4690 vp->v_bufobj.bo_clean.bv_cnt,
4691 vp->v_bufobj.bo_dirty.bv_cnt);
4692 printf(" ");
4693 lockmgr_printinfo(vp->v_vnlock);
4694 if (vp->v_data != NULL)
4695 VOP_PRINT(vp);
4696 }
4697
4698 #ifdef DDB
4699 /*
4700 * List all of the locked vnodes in the system.
4701 * Called when debugging the kernel.
4702 */
DB_SHOW_COMMAND_FLAGS(lockedvnods,lockedvnodes,DB_CMD_MEMSAFE)4703 DB_SHOW_COMMAND_FLAGS(lockedvnods, lockedvnodes, DB_CMD_MEMSAFE)
4704 {
4705 struct mount *mp;
4706 struct vnode *vp;
4707
4708 /*
4709 * Note: because this is DDB, we can't obey the locking semantics
4710 * for these structures, which means we could catch an inconsistent
4711 * state and dereference a nasty pointer. Not much to be done
4712 * about that.
4713 */
4714 db_printf("Locked vnodes\n");
4715 TAILQ_FOREACH(mp, &mountlist, mnt_list) {
4716 TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes) {
4717 if (vp->v_type != VMARKER && VOP_ISLOCKED(vp))
4718 vn_printf(vp, "vnode ");
4719 }
4720 }
4721 }
4722
4723 /*
4724 * Show details about the given vnode.
4725 */
DB_SHOW_COMMAND(vnode,db_show_vnode)4726 DB_SHOW_COMMAND(vnode, db_show_vnode)
4727 {
4728 struct vnode *vp;
4729
4730 if (!have_addr)
4731 return;
4732 vp = (struct vnode *)addr;
4733 vn_printf(vp, "vnode ");
4734 }
4735
4736 /*
4737 * Show details about the given mount point.
4738 */
DB_SHOW_COMMAND(mount,db_show_mount)4739 DB_SHOW_COMMAND(mount, db_show_mount)
4740 {
4741 struct mount *mp;
4742 struct vfsopt *opt;
4743 struct statfs *sp;
4744 struct vnode *vp;
4745 char buf[512];
4746 uint64_t mflags;
4747 u_int flags;
4748
4749 if (!have_addr) {
4750 /* No address given, print short info about all mount points. */
4751 TAILQ_FOREACH(mp, &mountlist, mnt_list) {
4752 db_printf("%p %s on %s (%s)\n", mp,
4753 mp->mnt_stat.f_mntfromname,
4754 mp->mnt_stat.f_mntonname,
4755 mp->mnt_stat.f_fstypename);
4756 if (db_pager_quit)
4757 break;
4758 }
4759 db_printf("\nMore info: show mount <addr>\n");
4760 return;
4761 }
4762
4763 mp = (struct mount *)addr;
4764 db_printf("%p %s on %s (%s)\n", mp, mp->mnt_stat.f_mntfromname,
4765 mp->mnt_stat.f_mntonname, mp->mnt_stat.f_fstypename);
4766
4767 buf[0] = '\0';
4768 mflags = mp->mnt_flag;
4769 #define MNT_FLAG(flag) do { \
4770 if (mflags & (flag)) { \
4771 if (buf[0] != '\0') \
4772 strlcat(buf, ", ", sizeof(buf)); \
4773 strlcat(buf, (#flag) + 4, sizeof(buf)); \
4774 mflags &= ~(flag); \
4775 } \
4776 } while (0)
4777 MNT_FLAG(MNT_RDONLY);
4778 MNT_FLAG(MNT_SYNCHRONOUS);
4779 MNT_FLAG(MNT_NOEXEC);
4780 MNT_FLAG(MNT_NOSUID);
4781 MNT_FLAG(MNT_NFS4ACLS);
4782 MNT_FLAG(MNT_UNION);
4783 MNT_FLAG(MNT_ASYNC);
4784 MNT_FLAG(MNT_SUIDDIR);
4785 MNT_FLAG(MNT_SOFTDEP);
4786 MNT_FLAG(MNT_NOSYMFOLLOW);
4787 MNT_FLAG(MNT_GJOURNAL);
4788 MNT_FLAG(MNT_MULTILABEL);
4789 MNT_FLAG(MNT_ACLS);
4790 MNT_FLAG(MNT_NOATIME);
4791 MNT_FLAG(MNT_NOCLUSTERR);
4792 MNT_FLAG(MNT_NOCLUSTERW);
4793 MNT_FLAG(MNT_SUJ);
4794 MNT_FLAG(MNT_EXRDONLY);
4795 MNT_FLAG(MNT_EXPORTED);
4796 MNT_FLAG(MNT_DEFEXPORTED);
4797 MNT_FLAG(MNT_EXPORTANON);
4798 MNT_FLAG(MNT_EXKERB);
4799 MNT_FLAG(MNT_EXPUBLIC);
4800 MNT_FLAG(MNT_LOCAL);
4801 MNT_FLAG(MNT_QUOTA);
4802 MNT_FLAG(MNT_ROOTFS);
4803 MNT_FLAG(MNT_USER);
4804 MNT_FLAG(MNT_IGNORE);
4805 MNT_FLAG(MNT_UPDATE);
4806 MNT_FLAG(MNT_DELEXPORT);
4807 MNT_FLAG(MNT_RELOAD);
4808 MNT_FLAG(MNT_FORCE);
4809 MNT_FLAG(MNT_SNAPSHOT);
4810 MNT_FLAG(MNT_BYFSID);
4811 MNT_FLAG(MNT_NAMEDATTR);
4812 #undef MNT_FLAG
4813 if (mflags != 0) {
4814 if (buf[0] != '\0')
4815 strlcat(buf, ", ", sizeof(buf));
4816 snprintf(buf + strlen(buf), sizeof(buf) - strlen(buf),
4817 "0x%016jx", mflags);
4818 }
4819 db_printf(" mnt_flag = %s\n", buf);
4820
4821 buf[0] = '\0';
4822 flags = mp->mnt_kern_flag;
4823 #define MNT_KERN_FLAG(flag) do { \
4824 if (flags & (flag)) { \
4825 if (buf[0] != '\0') \
4826 strlcat(buf, ", ", sizeof(buf)); \
4827 strlcat(buf, (#flag) + 5, sizeof(buf)); \
4828 flags &= ~(flag); \
4829 } \
4830 } while (0)
4831 MNT_KERN_FLAG(MNTK_UNMOUNTF);
4832 MNT_KERN_FLAG(MNTK_ASYNC);
4833 MNT_KERN_FLAG(MNTK_SOFTDEP);
4834 MNT_KERN_FLAG(MNTK_NOMSYNC);
4835 MNT_KERN_FLAG(MNTK_DRAINING);
4836 MNT_KERN_FLAG(MNTK_REFEXPIRE);
4837 MNT_KERN_FLAG(MNTK_EXTENDED_SHARED);
4838 MNT_KERN_FLAG(MNTK_SHARED_WRITES);
4839 MNT_KERN_FLAG(MNTK_NO_IOPF);
4840 MNT_KERN_FLAG(MNTK_RECURSE);
4841 MNT_KERN_FLAG(MNTK_UPPER_WAITER);
4842 MNT_KERN_FLAG(MNTK_UNLOCKED_INSMNTQUE);
4843 MNT_KERN_FLAG(MNTK_USES_BCACHE);
4844 MNT_KERN_FLAG(MNTK_VMSETSIZE_BUG);
4845 MNT_KERN_FLAG(MNTK_FPLOOKUP);
4846 MNT_KERN_FLAG(MNTK_TASKQUEUE_WAITER);
4847 MNT_KERN_FLAG(MNTK_NOASYNC);
4848 MNT_KERN_FLAG(MNTK_UNMOUNT);
4849 MNT_KERN_FLAG(MNTK_MWAIT);
4850 MNT_KERN_FLAG(MNTK_SUSPEND);
4851 MNT_KERN_FLAG(MNTK_SUSPEND2);
4852 MNT_KERN_FLAG(MNTK_SUSPENDED);
4853 MNT_KERN_FLAG(MNTK_NULL_NOCACHE);
4854 MNT_KERN_FLAG(MNTK_LOOKUP_SHARED);
4855 #undef MNT_KERN_FLAG
4856 if (flags != 0) {
4857 if (buf[0] != '\0')
4858 strlcat(buf, ", ", sizeof(buf));
4859 snprintf(buf + strlen(buf), sizeof(buf) - strlen(buf),
4860 "0x%08x", flags);
4861 }
4862 db_printf(" mnt_kern_flag = %s\n", buf);
4863
4864 db_printf(" mnt_opt = ");
4865 opt = TAILQ_FIRST(mp->mnt_opt);
4866 if (opt != NULL) {
4867 db_printf("%s", opt->name);
4868 opt = TAILQ_NEXT(opt, link);
4869 while (opt != NULL) {
4870 db_printf(", %s", opt->name);
4871 opt = TAILQ_NEXT(opt, link);
4872 }
4873 }
4874 db_printf("\n");
4875
4876 sp = &mp->mnt_stat;
4877 db_printf(" mnt_stat = { version=%u type=%u flags=0x%016jx "
4878 "bsize=%ju iosize=%ju blocks=%ju bfree=%ju bavail=%jd files=%ju "
4879 "ffree=%jd syncwrites=%ju asyncwrites=%ju syncreads=%ju "
4880 "asyncreads=%ju namemax=%u owner=%u fsid=[%d, %d] }\n",
4881 (u_int)sp->f_version, (u_int)sp->f_type, (uintmax_t)sp->f_flags,
4882 (uintmax_t)sp->f_bsize, (uintmax_t)sp->f_iosize,
4883 (uintmax_t)sp->f_blocks, (uintmax_t)sp->f_bfree,
4884 (intmax_t)sp->f_bavail, (uintmax_t)sp->f_files,
4885 (intmax_t)sp->f_ffree, (uintmax_t)sp->f_syncwrites,
4886 (uintmax_t)sp->f_asyncwrites, (uintmax_t)sp->f_syncreads,
4887 (uintmax_t)sp->f_asyncreads, (u_int)sp->f_namemax,
4888 (u_int)sp->f_owner, (int)sp->f_fsid.val[0], (int)sp->f_fsid.val[1]);
4889
4890 db_printf(" mnt_cred = { uid=%u ruid=%u",
4891 (u_int)mp->mnt_cred->cr_uid, (u_int)mp->mnt_cred->cr_ruid);
4892 if (jailed(mp->mnt_cred))
4893 db_printf(", jail=%d", mp->mnt_cred->cr_prison->pr_id);
4894 db_printf(" }\n");
4895 db_printf(" mnt_ref = %d (with %d in the struct)\n",
4896 vfs_mount_fetch_counter(mp, MNT_COUNT_REF), mp->mnt_ref);
4897 db_printf(" mnt_gen = %d\n", mp->mnt_gen);
4898 db_printf(" mnt_nvnodelistsize = %d\n", mp->mnt_nvnodelistsize);
4899 db_printf(" mnt_lazyvnodelistsize = %d\n",
4900 mp->mnt_lazyvnodelistsize);
4901 db_printf(" mnt_writeopcount = %d (with %d in the struct)\n",
4902 vfs_mount_fetch_counter(mp, MNT_COUNT_WRITEOPCOUNT), mp->mnt_writeopcount);
4903 db_printf(" mnt_iosize_max = %d\n", mp->mnt_iosize_max);
4904 db_printf(" mnt_hashseed = %u\n", mp->mnt_hashseed);
4905 db_printf(" mnt_lockref = %d (with %d in the struct)\n",
4906 vfs_mount_fetch_counter(mp, MNT_COUNT_LOCKREF), mp->mnt_lockref);
4907 db_printf(" mnt_secondary_writes = %d\n", mp->mnt_secondary_writes);
4908 db_printf(" mnt_secondary_accwrites = %d\n",
4909 mp->mnt_secondary_accwrites);
4910 db_printf(" mnt_gjprovider = %s\n",
4911 mp->mnt_gjprovider != NULL ? mp->mnt_gjprovider : "NULL");
4912 db_printf(" mnt_vfs_ops = %d\n", mp->mnt_vfs_ops);
4913
4914 db_printf("\n\nList of active vnodes\n");
4915 TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes) {
4916 if (vp->v_type != VMARKER && vp->v_holdcnt > 0) {
4917 vn_printf(vp, "vnode ");
4918 if (db_pager_quit)
4919 break;
4920 }
4921 }
4922 db_printf("\n\nList of inactive vnodes\n");
4923 TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes) {
4924 if (vp->v_type != VMARKER && vp->v_holdcnt == 0) {
4925 vn_printf(vp, "vnode ");
4926 if (db_pager_quit)
4927 break;
4928 }
4929 }
4930 }
4931 #endif /* DDB */
4932
4933 /*
4934 * Fill in a struct xvfsconf based on a struct vfsconf.
4935 */
4936 static int
vfsconf2x(struct sysctl_req * req,struct vfsconf * vfsp)4937 vfsconf2x(struct sysctl_req *req, struct vfsconf *vfsp)
4938 {
4939 struct xvfsconf xvfsp;
4940
4941 bzero(&xvfsp, sizeof(xvfsp));
4942 strcpy(xvfsp.vfc_name, vfsp->vfc_name);
4943 xvfsp.vfc_typenum = vfsp->vfc_typenum;
4944 xvfsp.vfc_refcount = vfsp->vfc_refcount;
4945 xvfsp.vfc_flags = vfsp->vfc_flags;
4946 /*
4947 * These are unused in userland, we keep them
4948 * to not break binary compatibility.
4949 */
4950 xvfsp.vfc_vfsops = NULL;
4951 xvfsp.vfc_next = NULL;
4952 return (SYSCTL_OUT(req, &xvfsp, sizeof(xvfsp)));
4953 }
4954
4955 #ifdef COMPAT_FREEBSD32
4956 struct xvfsconf32 {
4957 uint32_t vfc_vfsops;
4958 char vfc_name[MFSNAMELEN];
4959 int32_t vfc_typenum;
4960 int32_t vfc_refcount;
4961 int32_t vfc_flags;
4962 uint32_t vfc_next;
4963 };
4964
4965 static int
vfsconf2x32(struct sysctl_req * req,struct vfsconf * vfsp)4966 vfsconf2x32(struct sysctl_req *req, struct vfsconf *vfsp)
4967 {
4968 struct xvfsconf32 xvfsp;
4969
4970 bzero(&xvfsp, sizeof(xvfsp));
4971 strcpy(xvfsp.vfc_name, vfsp->vfc_name);
4972 xvfsp.vfc_typenum = vfsp->vfc_typenum;
4973 xvfsp.vfc_refcount = vfsp->vfc_refcount;
4974 xvfsp.vfc_flags = vfsp->vfc_flags;
4975 return (SYSCTL_OUT(req, &xvfsp, sizeof(xvfsp)));
4976 }
4977 #endif
4978
4979 /*
4980 * Top level filesystem related information gathering.
4981 */
4982 static int
sysctl_vfs_conflist(SYSCTL_HANDLER_ARGS)4983 sysctl_vfs_conflist(SYSCTL_HANDLER_ARGS)
4984 {
4985 struct vfsconf *vfsp;
4986 int error;
4987
4988 error = 0;
4989 vfsconf_slock();
4990 TAILQ_FOREACH(vfsp, &vfsconf, vfc_list) {
4991 #ifdef COMPAT_FREEBSD32
4992 if (req->flags & SCTL_MASK32)
4993 error = vfsconf2x32(req, vfsp);
4994 else
4995 #endif
4996 error = vfsconf2x(req, vfsp);
4997 if (error)
4998 break;
4999 }
5000 vfsconf_sunlock();
5001 return (error);
5002 }
5003
5004 SYSCTL_PROC(_vfs, OID_AUTO, conflist, CTLTYPE_OPAQUE | CTLFLAG_RD |
5005 CTLFLAG_MPSAFE, NULL, 0, sysctl_vfs_conflist,
5006 "S,xvfsconf", "List of all configured filesystems");
5007
5008 #ifndef BURN_BRIDGES
5009 static int sysctl_ovfs_conf(SYSCTL_HANDLER_ARGS);
5010
5011 static int
vfs_sysctl(SYSCTL_HANDLER_ARGS)5012 vfs_sysctl(SYSCTL_HANDLER_ARGS)
5013 {
5014 int *name = (int *)arg1 - 1; /* XXX */
5015 u_int namelen = arg2 + 1; /* XXX */
5016 struct vfsconf *vfsp;
5017
5018 log(LOG_WARNING, "userland calling deprecated sysctl, "
5019 "please rebuild world\n");
5020
5021 #if 1 || defined(COMPAT_PRELITE2)
5022 /* Resolve ambiguity between VFS_VFSCONF and VFS_GENERIC. */
5023 if (namelen == 1)
5024 return (sysctl_ovfs_conf(oidp, arg1, arg2, req));
5025 #endif
5026
5027 switch (name[1]) {
5028 case VFS_MAXTYPENUM:
5029 if (namelen != 2)
5030 return (ENOTDIR);
5031 return (SYSCTL_OUT(req, &maxvfsconf, sizeof(int)));
5032 case VFS_CONF:
5033 if (namelen != 3)
5034 return (ENOTDIR); /* overloaded */
5035 vfsconf_slock();
5036 TAILQ_FOREACH(vfsp, &vfsconf, vfc_list) {
5037 if (vfsp->vfc_typenum == name[2])
5038 break;
5039 }
5040 vfsconf_sunlock();
5041 if (vfsp == NULL)
5042 return (EOPNOTSUPP);
5043 #ifdef COMPAT_FREEBSD32
5044 if (req->flags & SCTL_MASK32)
5045 return (vfsconf2x32(req, vfsp));
5046 else
5047 #endif
5048 return (vfsconf2x(req, vfsp));
5049 }
5050 return (EOPNOTSUPP);
5051 }
5052
5053 static SYSCTL_NODE(_vfs, VFS_GENERIC, generic, CTLFLAG_RD | CTLFLAG_SKIP |
5054 CTLFLAG_MPSAFE, vfs_sysctl,
5055 "Generic filesystem");
5056
5057 #if 1 || defined(COMPAT_PRELITE2)
5058
5059 static int
sysctl_ovfs_conf(SYSCTL_HANDLER_ARGS)5060 sysctl_ovfs_conf(SYSCTL_HANDLER_ARGS)
5061 {
5062 int error;
5063 struct vfsconf *vfsp;
5064 struct ovfsconf ovfs;
5065
5066 vfsconf_slock();
5067 TAILQ_FOREACH(vfsp, &vfsconf, vfc_list) {
5068 bzero(&ovfs, sizeof(ovfs));
5069 ovfs.vfc_vfsops = vfsp->vfc_vfsops; /* XXX used as flag */
5070 strcpy(ovfs.vfc_name, vfsp->vfc_name);
5071 ovfs.vfc_index = vfsp->vfc_typenum;
5072 ovfs.vfc_refcount = vfsp->vfc_refcount;
5073 ovfs.vfc_flags = vfsp->vfc_flags;
5074 error = SYSCTL_OUT(req, &ovfs, sizeof ovfs);
5075 if (error != 0) {
5076 vfsconf_sunlock();
5077 return (error);
5078 }
5079 }
5080 vfsconf_sunlock();
5081 return (0);
5082 }
5083
5084 #endif /* 1 || COMPAT_PRELITE2 */
5085 #endif /* !BURN_BRIDGES */
5086
5087 static void
unmount_or_warn(struct mount * mp)5088 unmount_or_warn(struct mount *mp)
5089 {
5090 int error;
5091
5092 error = dounmount(mp, MNT_FORCE, curthread);
5093 if (error != 0) {
5094 printf("unmount of %s failed (", mp->mnt_stat.f_mntonname);
5095 if (error == EBUSY)
5096 printf("BUSY)\n");
5097 else
5098 printf("%d)\n", error);
5099 }
5100 }
5101
5102 /*
5103 * Unmount all filesystems. The list is traversed in reverse order
5104 * of mounting to avoid dependencies.
5105 */
5106 void
vfs_unmountall(void)5107 vfs_unmountall(void)
5108 {
5109 struct mount *mp, *tmp;
5110
5111 CTR1(KTR_VFS, "%s: unmounting all filesystems", __func__);
5112
5113 /*
5114 * Since this only runs when rebooting, it is not interlocked.
5115 */
5116 TAILQ_FOREACH_REVERSE_SAFE(mp, &mountlist, mntlist, mnt_list, tmp) {
5117 vfs_ref(mp);
5118
5119 /*
5120 * Forcibly unmounting "/dev" before "/" would prevent clean
5121 * unmount of the latter.
5122 */
5123 if (mp == rootdevmp)
5124 continue;
5125
5126 unmount_or_warn(mp);
5127 }
5128
5129 if (rootdevmp != NULL)
5130 unmount_or_warn(rootdevmp);
5131 }
5132
5133 static void
vfs_deferred_inactive(struct vnode * vp,int lkflags)5134 vfs_deferred_inactive(struct vnode *vp, int lkflags)
5135 {
5136
5137 ASSERT_VI_LOCKED(vp, __func__);
5138 VNPASS((vp->v_iflag & VI_DEFINACT) == 0, vp);
5139 if ((vp->v_iflag & VI_OWEINACT) == 0) {
5140 vdropl(vp);
5141 return;
5142 }
5143 if (vn_lock(vp, lkflags) == 0) {
5144 VI_LOCK(vp);
5145 vinactive(vp);
5146 VOP_UNLOCK(vp);
5147 vdropl(vp);
5148 return;
5149 }
5150 vdefer_inactive_unlocked(vp);
5151 }
5152
5153 static int
vfs_periodic_inactive_filter(struct vnode * vp,void * arg)5154 vfs_periodic_inactive_filter(struct vnode *vp, void *arg)
5155 {
5156
5157 return (vp->v_iflag & VI_DEFINACT);
5158 }
5159
5160 static void __noinline
vfs_periodic_inactive(struct mount * mp,int flags)5161 vfs_periodic_inactive(struct mount *mp, int flags)
5162 {
5163 struct vnode *vp, *mvp;
5164 int lkflags;
5165
5166 lkflags = LK_EXCLUSIVE | LK_INTERLOCK;
5167 if (flags != MNT_WAIT)
5168 lkflags |= LK_NOWAIT;
5169
5170 MNT_VNODE_FOREACH_LAZY(vp, mp, mvp, vfs_periodic_inactive_filter, NULL) {
5171 if ((vp->v_iflag & VI_DEFINACT) == 0) {
5172 VI_UNLOCK(vp);
5173 continue;
5174 }
5175 vp->v_iflag &= ~VI_DEFINACT;
5176 vfs_deferred_inactive(vp, lkflags);
5177 }
5178 }
5179
5180 static inline bool
vfs_want_msync(struct vnode * vp)5181 vfs_want_msync(struct vnode *vp)
5182 {
5183 struct vm_object *obj;
5184
5185 /*
5186 * This test may be performed without any locks held.
5187 * We rely on vm_object's type stability.
5188 */
5189 if (vp->v_vflag & VV_NOSYNC)
5190 return (false);
5191 obj = vp->v_object;
5192 return (obj != NULL && vm_object_mightbedirty(obj));
5193 }
5194
5195 static int
vfs_periodic_msync_inactive_filter(struct vnode * vp,void * arg __unused)5196 vfs_periodic_msync_inactive_filter(struct vnode *vp, void *arg __unused)
5197 {
5198
5199 if (vp->v_vflag & VV_NOSYNC)
5200 return (false);
5201 if (vp->v_iflag & VI_DEFINACT)
5202 return (true);
5203 return (vfs_want_msync(vp));
5204 }
5205
5206 static void __noinline
vfs_periodic_msync_inactive(struct mount * mp,int flags)5207 vfs_periodic_msync_inactive(struct mount *mp, int flags)
5208 {
5209 struct vnode *vp, *mvp;
5210 int lkflags;
5211 bool seen_defer;
5212
5213 lkflags = LK_EXCLUSIVE | LK_INTERLOCK;
5214 if (flags != MNT_WAIT)
5215 lkflags |= LK_NOWAIT;
5216
5217 MNT_VNODE_FOREACH_LAZY(vp, mp, mvp, vfs_periodic_msync_inactive_filter, NULL) {
5218 seen_defer = false;
5219 if (vp->v_iflag & VI_DEFINACT) {
5220 vp->v_iflag &= ~VI_DEFINACT;
5221 seen_defer = true;
5222 }
5223 if (!vfs_want_msync(vp)) {
5224 if (seen_defer)
5225 vfs_deferred_inactive(vp, lkflags);
5226 else
5227 VI_UNLOCK(vp);
5228 continue;
5229 }
5230 if (vget(vp, lkflags) == 0) {
5231 if ((vp->v_vflag & VV_NOSYNC) == 0) {
5232 if (flags == MNT_WAIT)
5233 vnode_pager_clean_sync(vp);
5234 else
5235 vnode_pager_clean_async(vp);
5236 }
5237 vput(vp);
5238 if (seen_defer)
5239 vdrop(vp);
5240 } else {
5241 if (seen_defer)
5242 vdefer_inactive_unlocked(vp);
5243 }
5244 }
5245 }
5246
5247 void
vfs_periodic(struct mount * mp,int flags)5248 vfs_periodic(struct mount *mp, int flags)
5249 {
5250
5251 CTR2(KTR_VFS, "%s: mp %p", __func__, mp);
5252
5253 if ((mp->mnt_kern_flag & MNTK_NOMSYNC) != 0)
5254 vfs_periodic_inactive(mp, flags);
5255 else
5256 vfs_periodic_msync_inactive(mp, flags);
5257 }
5258
5259 static void
destroy_vpollinfo_free(struct vpollinfo * vi)5260 destroy_vpollinfo_free(struct vpollinfo *vi)
5261 {
5262
5263 knlist_destroy(&vi->vpi_selinfo.si_note);
5264 mtx_destroy(&vi->vpi_lock);
5265 free(vi, M_VNODEPOLL);
5266 }
5267
5268 static void
destroy_vpollinfo(struct vpollinfo * vi)5269 destroy_vpollinfo(struct vpollinfo *vi)
5270 {
5271 KASSERT(TAILQ_EMPTY(&vi->vpi_inotify),
5272 ("%s: pollinfo %p has lingering watches", __func__, vi));
5273 knlist_clear(&vi->vpi_selinfo.si_note, 1);
5274 seldrain(&vi->vpi_selinfo);
5275 destroy_vpollinfo_free(vi);
5276 }
5277
5278 /*
5279 * Initialize per-vnode helper structure to hold poll-related state.
5280 */
5281 void
v_addpollinfo(struct vnode * vp)5282 v_addpollinfo(struct vnode *vp)
5283 {
5284 struct vpollinfo *vi;
5285
5286 if (atomic_load_ptr(&vp->v_pollinfo) != NULL)
5287 return;
5288 vi = malloc(sizeof(*vi), M_VNODEPOLL, M_WAITOK | M_ZERO);
5289 mtx_init(&vi->vpi_lock, "vnode pollinfo", NULL, MTX_DEF);
5290 knlist_init(&vi->vpi_selinfo.si_note, vp, vfs_knllock,
5291 vfs_knlunlock, vfs_knl_assert_lock);
5292 TAILQ_INIT(&vi->vpi_inotify);
5293 VI_LOCK(vp);
5294 if (vp->v_pollinfo != NULL) {
5295 VI_UNLOCK(vp);
5296 destroy_vpollinfo_free(vi);
5297 return;
5298 }
5299 vp->v_pollinfo = vi;
5300 VI_UNLOCK(vp);
5301 }
5302
5303 /*
5304 * Record a process's interest in events which might happen to
5305 * a vnode. Because poll uses the historic select-style interface
5306 * internally, this routine serves as both the ``check for any
5307 * pending events'' and the ``record my interest in future events''
5308 * functions. (These are done together, while the lock is held,
5309 * to avoid race conditions.)
5310 */
5311 int
vn_pollrecord(struct vnode * vp,struct thread * td,int events)5312 vn_pollrecord(struct vnode *vp, struct thread *td, int events)
5313 {
5314
5315 v_addpollinfo(vp);
5316 mtx_lock(&vp->v_pollinfo->vpi_lock);
5317 if (vp->v_pollinfo->vpi_revents & events) {
5318 /*
5319 * This leaves events we are not interested
5320 * in available for the other process which
5321 * which presumably had requested them
5322 * (otherwise they would never have been
5323 * recorded).
5324 */
5325 events &= vp->v_pollinfo->vpi_revents;
5326 vp->v_pollinfo->vpi_revents &= ~events;
5327
5328 mtx_unlock(&vp->v_pollinfo->vpi_lock);
5329 return (events);
5330 }
5331 vp->v_pollinfo->vpi_events |= events;
5332 selrecord(td, &vp->v_pollinfo->vpi_selinfo);
5333 mtx_unlock(&vp->v_pollinfo->vpi_lock);
5334 return (0);
5335 }
5336
5337 /*
5338 * Routine to create and manage a filesystem syncer vnode.
5339 */
5340 #define sync_close ((int (*)(struct vop_close_args *))nullop)
5341 static int sync_fsync(struct vop_fsync_args *);
5342 static int sync_inactive(struct vop_inactive_args *);
5343 static int sync_reclaim(struct vop_reclaim_args *);
5344
5345 static struct vop_vector sync_vnodeops = {
5346 .vop_bypass = VOP_EOPNOTSUPP,
5347 .vop_close = sync_close,
5348 .vop_fsync = sync_fsync,
5349 .vop_getwritemount = vop_stdgetwritemount,
5350 .vop_inactive = sync_inactive,
5351 .vop_need_inactive = vop_stdneed_inactive,
5352 .vop_reclaim = sync_reclaim,
5353 .vop_lock1 = vop_stdlock,
5354 .vop_unlock = vop_stdunlock,
5355 .vop_islocked = vop_stdislocked,
5356 .vop_fplookup_vexec = VOP_EAGAIN,
5357 .vop_fplookup_symlink = VOP_EAGAIN,
5358 };
5359 VFS_VOP_VECTOR_REGISTER(sync_vnodeops);
5360
5361 /*
5362 * Create a new filesystem syncer vnode for the specified mount point.
5363 */
5364 void
vfs_allocate_syncvnode(struct mount * mp)5365 vfs_allocate_syncvnode(struct mount *mp)
5366 {
5367 struct vnode *vp;
5368 struct bufobj *bo;
5369 static long start, incr, next;
5370 int error;
5371
5372 /* Allocate a new vnode */
5373 error = getnewvnode("syncer", mp, &sync_vnodeops, &vp);
5374 if (error != 0)
5375 panic("vfs_allocate_syncvnode: getnewvnode() failed");
5376 vp->v_type = VNON;
5377 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
5378 vp->v_vflag |= VV_FORCEINSMQ;
5379 error = insmntque1(vp, mp);
5380 if (error != 0)
5381 panic("vfs_allocate_syncvnode: insmntque() failed");
5382 vp->v_vflag &= ~VV_FORCEINSMQ;
5383 vn_set_state(vp, VSTATE_CONSTRUCTED);
5384 VOP_UNLOCK(vp);
5385 /*
5386 * Place the vnode onto the syncer worklist. We attempt to
5387 * scatter them about on the list so that they will go off
5388 * at evenly distributed times even if all the filesystems
5389 * are mounted at once.
5390 */
5391 next += incr;
5392 if (next == 0 || next > syncer_maxdelay) {
5393 start /= 2;
5394 incr /= 2;
5395 if (start == 0) {
5396 start = syncer_maxdelay / 2;
5397 incr = syncer_maxdelay;
5398 }
5399 next = start;
5400 }
5401 bo = &vp->v_bufobj;
5402 BO_LOCK(bo);
5403 vn_syncer_add_to_worklist(bo, syncdelay > 0 ? next % syncdelay : 0);
5404 /* XXX - vn_syncer_add_to_worklist() also grabs and drops sync_mtx. */
5405 mtx_lock(&sync_mtx);
5406 sync_vnode_count++;
5407 if (mp->mnt_syncer == NULL) {
5408 mp->mnt_syncer = vp;
5409 vp = NULL;
5410 }
5411 mtx_unlock(&sync_mtx);
5412 BO_UNLOCK(bo);
5413 if (vp != NULL) {
5414 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
5415 vgone(vp);
5416 vput(vp);
5417 }
5418 }
5419
5420 void
vfs_deallocate_syncvnode(struct mount * mp)5421 vfs_deallocate_syncvnode(struct mount *mp)
5422 {
5423 struct vnode *vp;
5424
5425 mtx_lock(&sync_mtx);
5426 vp = mp->mnt_syncer;
5427 if (vp != NULL)
5428 mp->mnt_syncer = NULL;
5429 mtx_unlock(&sync_mtx);
5430 if (vp != NULL)
5431 vrele(vp);
5432 }
5433
5434 /*
5435 * Do a lazy sync of the filesystem.
5436 */
5437 static int
sync_fsync(struct vop_fsync_args * ap)5438 sync_fsync(struct vop_fsync_args *ap)
5439 {
5440 struct vnode *syncvp = ap->a_vp;
5441 struct mount *mp = syncvp->v_mount;
5442 int error, save;
5443 struct bufobj *bo;
5444
5445 /*
5446 * We only need to do something if this is a lazy evaluation.
5447 */
5448 if (ap->a_waitfor != MNT_LAZY)
5449 return (0);
5450
5451 /*
5452 * Move ourselves to the back of the sync list.
5453 */
5454 bo = &syncvp->v_bufobj;
5455 BO_LOCK(bo);
5456 vn_syncer_add_to_worklist(bo, syncdelay);
5457 BO_UNLOCK(bo);
5458
5459 /*
5460 * Walk the list of vnodes pushing all that are dirty and
5461 * not already on the sync list.
5462 */
5463 if (vfs_busy(mp, MBF_NOWAIT) != 0)
5464 return (0);
5465 VOP_UNLOCK(syncvp);
5466 save = curthread_pflags_set(TDP_SYNCIO);
5467 /*
5468 * The filesystem at hand may be idle with free vnodes stored in the
5469 * batch. Return them instead of letting them stay there indefinitely.
5470 */
5471 vfs_periodic(mp, MNT_NOWAIT);
5472 error = VFS_SYNC(mp, MNT_LAZY);
5473 curthread_pflags_restore(save);
5474 vn_lock(syncvp, LK_EXCLUSIVE | LK_RETRY);
5475 vfs_unbusy(mp);
5476 return (error);
5477 }
5478
5479 /*
5480 * The syncer vnode is no referenced.
5481 */
5482 static int
sync_inactive(struct vop_inactive_args * ap)5483 sync_inactive(struct vop_inactive_args *ap)
5484 {
5485
5486 vgone(ap->a_vp);
5487 return (0);
5488 }
5489
5490 /*
5491 * The syncer vnode is no longer needed and is being decommissioned.
5492 *
5493 * Modifications to the worklist must be protected by sync_mtx.
5494 */
5495 static int
sync_reclaim(struct vop_reclaim_args * ap)5496 sync_reclaim(struct vop_reclaim_args *ap)
5497 {
5498 struct vnode *vp = ap->a_vp;
5499 struct bufobj *bo;
5500
5501 bo = &vp->v_bufobj;
5502 BO_LOCK(bo);
5503 mtx_lock(&sync_mtx);
5504 if (vp->v_mount->mnt_syncer == vp)
5505 vp->v_mount->mnt_syncer = NULL;
5506 if (bo->bo_flag & BO_ONWORKLST) {
5507 LIST_REMOVE(bo, bo_synclist);
5508 syncer_worklist_len--;
5509 sync_vnode_count--;
5510 bo->bo_flag &= ~BO_ONWORKLST;
5511 }
5512 mtx_unlock(&sync_mtx);
5513 BO_UNLOCK(bo);
5514
5515 return (0);
5516 }
5517
5518 int
vn_need_pageq_flush(struct vnode * vp)5519 vn_need_pageq_flush(struct vnode *vp)
5520 {
5521 struct vm_object *obj;
5522
5523 obj = vp->v_object;
5524 return (obj != NULL && (vp->v_vflag & VV_NOSYNC) == 0 &&
5525 vm_object_mightbedirty(obj));
5526 }
5527
5528 /*
5529 * Check if vnode represents a disk device
5530 */
5531 bool
vn_isdisk_error(struct vnode * vp,int * errp)5532 vn_isdisk_error(struct vnode *vp, int *errp)
5533 {
5534 int error;
5535
5536 if (vp->v_type != VCHR) {
5537 error = ENOTBLK;
5538 goto out;
5539 }
5540 error = 0;
5541 dev_lock();
5542 if (vp->v_rdev == NULL)
5543 error = ENXIO;
5544 else if (vp->v_rdev->si_devsw == NULL)
5545 error = ENXIO;
5546 else if (!(vp->v_rdev->si_devsw->d_flags & D_DISK))
5547 error = ENOTBLK;
5548 dev_unlock();
5549 out:
5550 *errp = error;
5551 return (error == 0);
5552 }
5553
5554 bool
vn_isdisk(struct vnode * vp)5555 vn_isdisk(struct vnode *vp)
5556 {
5557 int error;
5558
5559 return (vn_isdisk_error(vp, &error));
5560 }
5561
5562 /*
5563 * VOP_FPLOOKUP_VEXEC routines are subject to special circumstances, see
5564 * the comment above cache_fplookup for details.
5565 */
5566 int
vaccess_vexec_smr(mode_t file_mode,uid_t file_uid,gid_t file_gid,struct ucred * cred)5567 vaccess_vexec_smr(mode_t file_mode, uid_t file_uid, gid_t file_gid, struct ucred *cred)
5568 {
5569 int error;
5570
5571 VFS_SMR_ASSERT_ENTERED();
5572
5573 /* Check the owner. */
5574 if (cred->cr_uid == file_uid) {
5575 if (file_mode & S_IXUSR)
5576 return (0);
5577 goto out_error;
5578 }
5579
5580 /* Otherwise, check the groups (first match) */
5581 if (groupmember(file_gid, cred)) {
5582 if (file_mode & S_IXGRP)
5583 return (0);
5584 goto out_error;
5585 }
5586
5587 /* Otherwise, check everyone else. */
5588 if (file_mode & S_IXOTH)
5589 return (0);
5590 out_error:
5591 /*
5592 * Permission check failed, but it is possible denial will get overwritten
5593 * (e.g., when root is traversing through a 700 directory owned by someone
5594 * else).
5595 *
5596 * vaccess() calls priv_check_cred which in turn can descent into MAC
5597 * modules overriding this result. It's quite unclear what semantics
5598 * are allowed for them to operate, thus for safety we don't call them
5599 * from within the SMR section. This also means if any such modules
5600 * are present, we have to let the regular lookup decide.
5601 */
5602 error = priv_check_cred_vfs_lookup_nomac(cred);
5603 switch (error) {
5604 case 0:
5605 return (0);
5606 case EAGAIN:
5607 /*
5608 * MAC modules present.
5609 */
5610 return (EAGAIN);
5611 case EPERM:
5612 return (EACCES);
5613 default:
5614 return (error);
5615 }
5616 }
5617
5618 /*
5619 * Common filesystem object access control check routine. Accepts a
5620 * vnode's type, "mode", uid and gid, requested access mode, and credentials.
5621 * Returns 0 on success, or an errno on failure.
5622 */
5623 int
vaccess(__enum_uint8 (vtype)type,mode_t file_mode,uid_t file_uid,gid_t file_gid,accmode_t accmode,struct ucred * cred)5624 vaccess(__enum_uint8(vtype) type, mode_t file_mode, uid_t file_uid, gid_t file_gid,
5625 accmode_t accmode, struct ucred *cred)
5626 {
5627 accmode_t dac_granted;
5628 accmode_t priv_granted;
5629
5630 KASSERT((accmode & ~(VEXEC | VWRITE | VREAD | VADMIN | VAPPEND)) == 0,
5631 ("invalid bit in accmode"));
5632 KASSERT((accmode & VAPPEND) == 0 || (accmode & VWRITE),
5633 ("VAPPEND without VWRITE"));
5634
5635 /*
5636 * Look for a normal, non-privileged way to access the file/directory
5637 * as requested. If it exists, go with that.
5638 */
5639
5640 dac_granted = 0;
5641
5642 /* Check the owner. */
5643 if (cred->cr_uid == file_uid) {
5644 dac_granted |= VADMIN;
5645 if (file_mode & S_IXUSR)
5646 dac_granted |= VEXEC;
5647 if (file_mode & S_IRUSR)
5648 dac_granted |= VREAD;
5649 if (file_mode & S_IWUSR)
5650 dac_granted |= (VWRITE | VAPPEND);
5651
5652 if ((accmode & dac_granted) == accmode)
5653 return (0);
5654
5655 goto privcheck;
5656 }
5657
5658 /* Otherwise, check the groups (first match) */
5659 if (groupmember(file_gid, cred)) {
5660 if (file_mode & S_IXGRP)
5661 dac_granted |= VEXEC;
5662 if (file_mode & S_IRGRP)
5663 dac_granted |= VREAD;
5664 if (file_mode & S_IWGRP)
5665 dac_granted |= (VWRITE | VAPPEND);
5666
5667 if ((accmode & dac_granted) == accmode)
5668 return (0);
5669
5670 goto privcheck;
5671 }
5672
5673 /* Otherwise, check everyone else. */
5674 if (file_mode & S_IXOTH)
5675 dac_granted |= VEXEC;
5676 if (file_mode & S_IROTH)
5677 dac_granted |= VREAD;
5678 if (file_mode & S_IWOTH)
5679 dac_granted |= (VWRITE | VAPPEND);
5680 if ((accmode & dac_granted) == accmode)
5681 return (0);
5682
5683 privcheck:
5684 /*
5685 * Build a privilege mask to determine if the set of privileges
5686 * satisfies the requirements when combined with the granted mask
5687 * from above. For each privilege, if the privilege is required,
5688 * bitwise or the request type onto the priv_granted mask.
5689 */
5690 priv_granted = 0;
5691
5692 if (type == VDIR) {
5693 /*
5694 * For directories, use PRIV_VFS_LOOKUP to satisfy VEXEC
5695 * requests, instead of PRIV_VFS_EXEC.
5696 */
5697 if ((accmode & VEXEC) && ((dac_granted & VEXEC) == 0) &&
5698 !priv_check_cred(cred, PRIV_VFS_LOOKUP))
5699 priv_granted |= VEXEC;
5700 } else {
5701 /*
5702 * Ensure that at least one execute bit is on. Otherwise,
5703 * a privileged user will always succeed, and we don't want
5704 * this to happen unless the file really is executable.
5705 */
5706 if ((accmode & VEXEC) && ((dac_granted & VEXEC) == 0) &&
5707 (file_mode & (S_IXUSR | S_IXGRP | S_IXOTH)) != 0 &&
5708 !priv_check_cred(cred, PRIV_VFS_EXEC))
5709 priv_granted |= VEXEC;
5710 }
5711
5712 if ((accmode & VREAD) && ((dac_granted & VREAD) == 0) &&
5713 !priv_check_cred(cred, PRIV_VFS_READ))
5714 priv_granted |= VREAD;
5715
5716 if ((accmode & VWRITE) && ((dac_granted & VWRITE) == 0) &&
5717 !priv_check_cred(cred, PRIV_VFS_WRITE))
5718 priv_granted |= (VWRITE | VAPPEND);
5719
5720 if ((accmode & VADMIN) && ((dac_granted & VADMIN) == 0) &&
5721 !priv_check_cred(cred, PRIV_VFS_ADMIN))
5722 priv_granted |= VADMIN;
5723
5724 if ((accmode & (priv_granted | dac_granted)) == accmode) {
5725 return (0);
5726 }
5727
5728 return ((accmode & VADMIN) ? EPERM : EACCES);
5729 }
5730
5731 /*
5732 * Credential check based on process requesting service, and per-attribute
5733 * permissions.
5734 */
5735 int
extattr_check_cred(struct vnode * vp,int attrnamespace,struct ucred * cred,struct thread * td,accmode_t accmode)5736 extattr_check_cred(struct vnode *vp, int attrnamespace, struct ucred *cred,
5737 struct thread *td, accmode_t accmode)
5738 {
5739
5740 /*
5741 * Kernel-invoked always succeeds.
5742 */
5743 if (cred == NOCRED)
5744 return (0);
5745
5746 /*
5747 * Do not allow privileged processes in jail to directly manipulate
5748 * system attributes.
5749 */
5750 switch (attrnamespace) {
5751 case EXTATTR_NAMESPACE_SYSTEM:
5752 /* Potentially should be: return (EPERM); */
5753 return (priv_check_cred(cred, PRIV_VFS_EXTATTR_SYSTEM));
5754 case EXTATTR_NAMESPACE_USER:
5755 return (VOP_ACCESS(vp, accmode, cred, td));
5756 default:
5757 return (EPERM);
5758 }
5759 }
5760
5761 #ifdef INVARIANTS
5762 void
assert_vi_locked(struct vnode * vp,const char * str)5763 assert_vi_locked(struct vnode *vp, const char *str)
5764 {
5765 VNASSERT(mtx_owned(VI_MTX(vp)), vp,
5766 ("%s: vnode interlock is not locked but should be", str));
5767 }
5768
5769 void
assert_vi_unlocked(struct vnode * vp,const char * str)5770 assert_vi_unlocked(struct vnode *vp, const char *str)
5771 {
5772 VNASSERT(!mtx_owned(VI_MTX(vp)), vp,
5773 ("%s: vnode interlock is locked but should not be", str));
5774 }
5775
5776 void
assert_vop_locked(struct vnode * vp,const char * str)5777 assert_vop_locked(struct vnode *vp, const char *str)
5778 {
5779 bool locked;
5780
5781 if (KERNEL_PANICKED() || vp == NULL)
5782 return;
5783
5784 #ifdef WITNESS
5785 locked = !((vp->v_irflag & VIRF_CROSSMP) == 0 &&
5786 witness_is_owned(&vp->v_vnlock->lock_object) == -1);
5787 #else
5788 int state = VOP_ISLOCKED(vp);
5789 locked = state != 0 && state != LK_EXCLOTHER;
5790 #endif
5791 VNASSERT(locked, vp, ("%s: vnode is not locked but should be", str));
5792 }
5793
5794 void
assert_vop_unlocked(struct vnode * vp,const char * str)5795 assert_vop_unlocked(struct vnode *vp, const char *str)
5796 {
5797 bool locked;
5798
5799 if (KERNEL_PANICKED() || vp == NULL)
5800 return;
5801
5802 #ifdef WITNESS
5803 locked = (vp->v_irflag & VIRF_CROSSMP) == 0 &&
5804 witness_is_owned(&vp->v_vnlock->lock_object) == 1;
5805 #else
5806 locked = VOP_ISLOCKED(vp) == LK_EXCLUSIVE;
5807 #endif
5808 VNASSERT(!locked, vp, ("%s: vnode is locked but should not be", str));
5809 }
5810
5811 void
assert_vop_elocked(struct vnode * vp,const char * str)5812 assert_vop_elocked(struct vnode *vp, const char *str)
5813 {
5814 bool locked;
5815
5816 if (KERNEL_PANICKED() || vp == NULL)
5817 return;
5818
5819 locked = VOP_ISLOCKED(vp) == LK_EXCLUSIVE;
5820 VNASSERT(locked, vp,
5821 ("%s: vnode is not exclusive locked but should be", str));
5822 }
5823 #endif /* INVARIANTS */
5824
5825 void
vop_rename_fail(struct vop_rename_args * ap)5826 vop_rename_fail(struct vop_rename_args *ap)
5827 {
5828
5829 if (ap->a_tvp != NULL)
5830 vput(ap->a_tvp);
5831 if (ap->a_tdvp == ap->a_tvp)
5832 vrele(ap->a_tdvp);
5833 else
5834 vput(ap->a_tdvp);
5835 vrele(ap->a_fdvp);
5836 vrele(ap->a_fvp);
5837 }
5838
5839 void
vop_rename_pre(void * ap)5840 vop_rename_pre(void *ap)
5841 {
5842 struct vop_rename_args *a = ap;
5843
5844 #ifdef INVARIANTS
5845 struct mount *tmp;
5846
5847 if (a->a_tvp)
5848 ASSERT_VI_UNLOCKED(a->a_tvp, "VOP_RENAME");
5849 ASSERT_VI_UNLOCKED(a->a_tdvp, "VOP_RENAME");
5850 ASSERT_VI_UNLOCKED(a->a_fvp, "VOP_RENAME");
5851 ASSERT_VI_UNLOCKED(a->a_fdvp, "VOP_RENAME");
5852
5853 /* Check the source (from). */
5854 if (a->a_tdvp->v_vnlock != a->a_fdvp->v_vnlock &&
5855 (a->a_tvp == NULL || a->a_tvp->v_vnlock != a->a_fdvp->v_vnlock))
5856 ASSERT_VOP_UNLOCKED(a->a_fdvp, "vop_rename: fdvp locked");
5857 if (a->a_tvp == NULL || a->a_tvp->v_vnlock != a->a_fvp->v_vnlock)
5858 ASSERT_VOP_UNLOCKED(a->a_fvp, "vop_rename: fvp locked");
5859
5860 /* Check the target. */
5861 if (a->a_tvp)
5862 ASSERT_VOP_LOCKED(a->a_tvp, "vop_rename: tvp not locked");
5863 ASSERT_VOP_LOCKED(a->a_tdvp, "vop_rename: tdvp not locked");
5864
5865 tmp = NULL;
5866 VOP_GETWRITEMOUNT(a->a_tdvp, &tmp);
5867 lockmgr_assert(&tmp->mnt_renamelock, KA_XLOCKED);
5868 vfs_rel(tmp);
5869 #endif
5870 /*
5871 * It may be tempting to add vn_seqc_write_begin/end calls here and
5872 * in vop_rename_post but that's not going to work out since some
5873 * filesystems relookup vnodes mid-rename. This is probably a bug.
5874 *
5875 * For now filesystems are expected to do the relevant calls after they
5876 * decide what vnodes to operate on.
5877 */
5878 if (a->a_tdvp != a->a_fdvp)
5879 vhold(a->a_fdvp);
5880 if (a->a_tvp != a->a_fvp)
5881 vhold(a->a_fvp);
5882 vhold(a->a_tdvp);
5883 if (a->a_tvp)
5884 vhold(a->a_tvp);
5885 }
5886
5887 #ifdef INVARIANTS
5888 void
vop_fplookup_vexec_debugpre(void * ap __unused)5889 vop_fplookup_vexec_debugpre(void *ap __unused)
5890 {
5891
5892 VFS_SMR_ASSERT_ENTERED();
5893 }
5894
5895 void
vop_fplookup_vexec_debugpost(void * ap,int rc)5896 vop_fplookup_vexec_debugpost(void *ap, int rc)
5897 {
5898 struct vop_fplookup_vexec_args *a;
5899 struct vnode *vp;
5900
5901 a = ap;
5902 vp = a->a_vp;
5903
5904 VFS_SMR_ASSERT_ENTERED();
5905 if (rc == EOPNOTSUPP)
5906 VNPASS(VN_IS_DOOMED(vp), vp);
5907 }
5908
5909 void
vop_fplookup_symlink_debugpre(void * ap __unused)5910 vop_fplookup_symlink_debugpre(void *ap __unused)
5911 {
5912
5913 VFS_SMR_ASSERT_ENTERED();
5914 }
5915
5916 void
vop_fplookup_symlink_debugpost(void * ap __unused,int rc __unused)5917 vop_fplookup_symlink_debugpost(void *ap __unused, int rc __unused)
5918 {
5919
5920 VFS_SMR_ASSERT_ENTERED();
5921 }
5922
5923 static void
vop_fsync_debugprepost(struct vnode * vp,const char * name)5924 vop_fsync_debugprepost(struct vnode *vp, const char *name)
5925 {
5926 struct mount *mp;
5927
5928 if (vp->v_type == VCHR)
5929 ;
5930 /*
5931 * The shared vs. exclusive locking policy for fsync()
5932 * is actually determined by vp's write mount as indicated
5933 * by VOP_GETWRITEMOUNT(), which for stacked filesystems
5934 * may not be the same as vp->v_mount. However, if the
5935 * underlying filesystem which really handles the fsync()
5936 * supports shared locking, the stacked filesystem must also
5937 * be prepared for its VOP_FSYNC() operation to be called
5938 * with only a shared lock. On the other hand, if the
5939 * stacked filesystem claims support for shared write
5940 * locking but the underlying filesystem does not, and the
5941 * caller incorrectly uses a shared lock, this condition
5942 * should still be caught when the stacked filesystem
5943 * invokes VOP_FSYNC() on the underlying filesystem.
5944 */
5945 else {
5946 mp = NULL;
5947 VOP_GETWRITEMOUNT(vp, &mp);
5948 if (vn_lktype_write(mp, vp) == LK_SHARED)
5949 ASSERT_VOP_LOCKED(vp, name);
5950 else
5951 ASSERT_VOP_ELOCKED(vp, name);
5952 if (mp != NULL)
5953 vfs_rel(mp);
5954 }
5955 }
5956
5957 void
vop_fsync_debugpre(void * a)5958 vop_fsync_debugpre(void *a)
5959 {
5960 struct vop_fsync_args *ap;
5961
5962 ap = a;
5963 vop_fsync_debugprepost(ap->a_vp, "fsync");
5964 }
5965
5966 void
vop_fsync_debugpost(void * a,int rc __unused)5967 vop_fsync_debugpost(void *a, int rc __unused)
5968 {
5969 struct vop_fsync_args *ap;
5970
5971 ap = a;
5972 vop_fsync_debugprepost(ap->a_vp, "fsync");
5973 }
5974
5975 void
vop_fdatasync_debugpre(void * a)5976 vop_fdatasync_debugpre(void *a)
5977 {
5978 struct vop_fdatasync_args *ap;
5979
5980 ap = a;
5981 vop_fsync_debugprepost(ap->a_vp, "fsync");
5982 }
5983
5984 void
vop_fdatasync_debugpost(void * a,int rc __unused)5985 vop_fdatasync_debugpost(void *a, int rc __unused)
5986 {
5987 struct vop_fdatasync_args *ap;
5988
5989 ap = a;
5990 vop_fsync_debugprepost(ap->a_vp, "fsync");
5991 }
5992
5993 void
vop_strategy_debugpre(void * ap)5994 vop_strategy_debugpre(void *ap)
5995 {
5996 struct vop_strategy_args *a;
5997 struct buf *bp;
5998
5999 a = ap;
6000 bp = a->a_bp;
6001
6002 /*
6003 * Cluster ops lock their component buffers but not the IO container.
6004 */
6005 if ((bp->b_flags & B_CLUSTER) != 0)
6006 return;
6007
6008 BUF_ASSERT_LOCKED(bp);
6009 }
6010
6011 void
vop_lock_debugpre(void * ap)6012 vop_lock_debugpre(void *ap)
6013 {
6014 struct vop_lock1_args *a = ap;
6015
6016 if ((a->a_flags & LK_INTERLOCK) == 0)
6017 ASSERT_VI_UNLOCKED(a->a_vp, "VOP_LOCK");
6018 else
6019 ASSERT_VI_LOCKED(a->a_vp, "VOP_LOCK");
6020 }
6021
6022 void
vop_lock_debugpost(void * ap,int rc)6023 vop_lock_debugpost(void *ap, int rc)
6024 {
6025 struct vop_lock1_args *a = ap;
6026
6027 ASSERT_VI_UNLOCKED(a->a_vp, "VOP_LOCK");
6028 if (rc == 0 && (a->a_flags & LK_EXCLOTHER) == 0)
6029 ASSERT_VOP_LOCKED(a->a_vp, "VOP_LOCK");
6030 }
6031
6032 void
vop_unlock_debugpre(void * ap)6033 vop_unlock_debugpre(void *ap)
6034 {
6035 struct vop_unlock_args *a = ap;
6036 struct vnode *vp = a->a_vp;
6037
6038 VNPASS(vn_get_state(vp) != VSTATE_UNINITIALIZED, vp);
6039 ASSERT_VOP_LOCKED(vp, "VOP_UNLOCK");
6040 }
6041
6042 void
vop_need_inactive_debugpre(void * ap)6043 vop_need_inactive_debugpre(void *ap)
6044 {
6045 struct vop_need_inactive_args *a = ap;
6046
6047 ASSERT_VI_LOCKED(a->a_vp, "VOP_NEED_INACTIVE");
6048 }
6049
6050 void
vop_need_inactive_debugpost(void * ap,int rc)6051 vop_need_inactive_debugpost(void *ap, int rc)
6052 {
6053 struct vop_need_inactive_args *a = ap;
6054
6055 ASSERT_VI_LOCKED(a->a_vp, "VOP_NEED_INACTIVE");
6056 }
6057 #endif /* INVARIANTS */
6058
6059 void
vop_allocate_post(void * ap,int rc)6060 vop_allocate_post(void *ap, int rc)
6061 {
6062 struct vop_allocate_args *a;
6063
6064 a = ap;
6065 if (rc == 0)
6066 INOTIFY(a->a_vp, IN_MODIFY);
6067 }
6068
6069 void
vop_copy_file_range_post(void * ap,int rc)6070 vop_copy_file_range_post(void *ap, int rc)
6071 {
6072 struct vop_copy_file_range_args *a;
6073
6074 a = ap;
6075 if (rc == 0) {
6076 INOTIFY(a->a_invp, IN_ACCESS);
6077 INOTIFY(a->a_outvp, IN_MODIFY);
6078 }
6079 }
6080
6081 void
vop_create_pre(void * ap)6082 vop_create_pre(void *ap)
6083 {
6084 struct vop_create_args *a;
6085 struct vnode *dvp;
6086
6087 a = ap;
6088 dvp = a->a_dvp;
6089 vn_seqc_write_begin(dvp);
6090 }
6091
6092 void
vop_create_post(void * ap,int rc)6093 vop_create_post(void *ap, int rc)
6094 {
6095 struct vop_create_args *a;
6096 struct vnode *dvp;
6097
6098 a = ap;
6099 dvp = a->a_dvp;
6100 vn_seqc_write_end(dvp);
6101 if (rc == 0) {
6102 VFS_KNOTE_LOCKED(dvp, NOTE_WRITE);
6103 INOTIFY_NAME(*a->a_vpp, dvp, a->a_cnp, IN_CREATE);
6104 }
6105 }
6106
6107 void
vop_deallocate_post(void * ap,int rc)6108 vop_deallocate_post(void *ap, int rc)
6109 {
6110 struct vop_deallocate_args *a;
6111
6112 a = ap;
6113 if (rc == 0)
6114 INOTIFY(a->a_vp, IN_MODIFY);
6115 }
6116
6117 void
vop_whiteout_pre(void * ap)6118 vop_whiteout_pre(void *ap)
6119 {
6120 struct vop_whiteout_args *a;
6121 struct vnode *dvp;
6122
6123 a = ap;
6124 dvp = a->a_dvp;
6125 vn_seqc_write_begin(dvp);
6126 }
6127
6128 void
vop_whiteout_post(void * ap,int rc)6129 vop_whiteout_post(void *ap, int rc)
6130 {
6131 struct vop_whiteout_args *a;
6132 struct vnode *dvp;
6133
6134 a = ap;
6135 dvp = a->a_dvp;
6136 vn_seqc_write_end(dvp);
6137 }
6138
6139 void
vop_deleteextattr_pre(void * ap)6140 vop_deleteextattr_pre(void *ap)
6141 {
6142 struct vop_deleteextattr_args *a;
6143 struct vnode *vp;
6144
6145 a = ap;
6146 vp = a->a_vp;
6147 vn_seqc_write_begin(vp);
6148 }
6149
6150 void
vop_deleteextattr_post(void * ap,int rc)6151 vop_deleteextattr_post(void *ap, int rc)
6152 {
6153 struct vop_deleteextattr_args *a;
6154 struct vnode *vp;
6155
6156 a = ap;
6157 vp = a->a_vp;
6158 vn_seqc_write_end(vp);
6159 if (!rc) {
6160 VFS_KNOTE_LOCKED(a->a_vp, NOTE_ATTRIB);
6161 INOTIFY(vp, IN_ATTRIB);
6162 }
6163 }
6164
6165 void
vop_link_pre(void * ap)6166 vop_link_pre(void *ap)
6167 {
6168 struct vop_link_args *a;
6169 struct vnode *vp, *tdvp;
6170
6171 a = ap;
6172 vp = a->a_vp;
6173 tdvp = a->a_tdvp;
6174 vn_seqc_write_begin(vp);
6175 vn_seqc_write_begin(tdvp);
6176 }
6177
6178 void
vop_link_post(void * ap,int rc)6179 vop_link_post(void *ap, int rc)
6180 {
6181 struct vop_link_args *a;
6182 struct vnode *vp, *tdvp;
6183
6184 a = ap;
6185 vp = a->a_vp;
6186 tdvp = a->a_tdvp;
6187 vn_seqc_write_end(vp);
6188 vn_seqc_write_end(tdvp);
6189 if (!rc) {
6190 VFS_KNOTE_LOCKED(vp, NOTE_LINK);
6191 VFS_KNOTE_LOCKED(tdvp, NOTE_WRITE);
6192 INOTIFY_NAME(vp, tdvp, a->a_cnp, _IN_ATTRIB_LINKCOUNT);
6193 INOTIFY_NAME(vp, tdvp, a->a_cnp, IN_CREATE);
6194 }
6195 }
6196
6197 void
vop_mkdir_pre(void * ap)6198 vop_mkdir_pre(void *ap)
6199 {
6200 struct vop_mkdir_args *a;
6201 struct vnode *dvp;
6202
6203 a = ap;
6204 dvp = a->a_dvp;
6205 vn_seqc_write_begin(dvp);
6206 }
6207
6208 void
vop_mkdir_post(void * ap,int rc)6209 vop_mkdir_post(void *ap, int rc)
6210 {
6211 struct vop_mkdir_args *a;
6212 struct vnode *dvp;
6213
6214 a = ap;
6215 dvp = a->a_dvp;
6216 vn_seqc_write_end(dvp);
6217 if (!rc) {
6218 VFS_KNOTE_LOCKED(dvp, NOTE_WRITE | NOTE_LINK);
6219 INOTIFY_NAME(*a->a_vpp, dvp, a->a_cnp, IN_CREATE);
6220 }
6221 }
6222
6223 #ifdef INVARIANTS
6224 void
vop_mkdir_debugpost(void * ap,int rc)6225 vop_mkdir_debugpost(void *ap, int rc)
6226 {
6227 struct vop_mkdir_args *a;
6228
6229 a = ap;
6230 if (!rc)
6231 cache_validate(a->a_dvp, *a->a_vpp, a->a_cnp);
6232 }
6233 #endif
6234
6235 void
vop_mknod_pre(void * ap)6236 vop_mknod_pre(void *ap)
6237 {
6238 struct vop_mknod_args *a;
6239 struct vnode *dvp;
6240
6241 a = ap;
6242 dvp = a->a_dvp;
6243 vn_seqc_write_begin(dvp);
6244 }
6245
6246 void
vop_mknod_post(void * ap,int rc)6247 vop_mknod_post(void *ap, int rc)
6248 {
6249 struct vop_mknod_args *a;
6250 struct vnode *dvp;
6251
6252 a = ap;
6253 dvp = a->a_dvp;
6254 vn_seqc_write_end(dvp);
6255 if (rc == 0) {
6256 VFS_KNOTE_LOCKED(dvp, NOTE_WRITE);
6257 INOTIFY_NAME(*a->a_vpp, dvp, a->a_cnp, IN_CREATE);
6258 }
6259 }
6260
6261 void
vop_reclaim_post(void * ap,int rc)6262 vop_reclaim_post(void *ap, int rc)
6263 {
6264 struct vop_reclaim_args *a;
6265 struct vnode *vp;
6266
6267 a = ap;
6268 vp = a->a_vp;
6269 ASSERT_VOP_IN_SEQC(vp);
6270 if (!rc) {
6271 VFS_KNOTE_LOCKED(vp, NOTE_REVOKE);
6272 INOTIFY_REVOKE(vp);
6273 }
6274 }
6275
6276 void
vop_remove_pre(void * ap)6277 vop_remove_pre(void *ap)
6278 {
6279 struct vop_remove_args *a;
6280 struct vnode *dvp, *vp;
6281
6282 a = ap;
6283 dvp = a->a_dvp;
6284 vp = a->a_vp;
6285 vfs_notify_upper(vp, VFS_NOTIFY_UPPER_UNLINK);
6286 vn_seqc_write_begin(dvp);
6287 vn_seqc_write_begin(vp);
6288 }
6289
6290 void
vop_remove_post(void * ap,int rc)6291 vop_remove_post(void *ap, int rc)
6292 {
6293 struct vop_remove_args *a;
6294 struct vnode *dvp, *vp;
6295
6296 a = ap;
6297 dvp = a->a_dvp;
6298 vp = a->a_vp;
6299 vn_seqc_write_end(dvp);
6300 vn_seqc_write_end(vp);
6301 if (!rc) {
6302 VFS_KNOTE_LOCKED(dvp, NOTE_WRITE);
6303 VFS_KNOTE_LOCKED(vp, NOTE_DELETE);
6304 INOTIFY_NAME(vp, dvp, a->a_cnp, _IN_ATTRIB_LINKCOUNT);
6305 INOTIFY_NAME(vp, dvp, a->a_cnp, IN_DELETE);
6306 }
6307 }
6308
6309 void
vop_rename_post(void * ap,int rc)6310 vop_rename_post(void *ap, int rc)
6311 {
6312 struct vop_rename_args *a = ap;
6313 long hint;
6314
6315 if (!rc) {
6316 hint = NOTE_WRITE;
6317 if (a->a_fdvp == a->a_tdvp) {
6318 if (a->a_tvp != NULL && a->a_tvp->v_type == VDIR)
6319 hint |= NOTE_LINK;
6320 VFS_KNOTE_UNLOCKED(a->a_fdvp, hint);
6321 VFS_KNOTE_UNLOCKED(a->a_tdvp, hint);
6322 } else {
6323 hint |= NOTE_EXTEND;
6324 if (a->a_fvp->v_type == VDIR)
6325 hint |= NOTE_LINK;
6326 VFS_KNOTE_UNLOCKED(a->a_fdvp, hint);
6327
6328 if (a->a_fvp->v_type == VDIR && a->a_tvp != NULL &&
6329 a->a_tvp->v_type == VDIR)
6330 hint &= ~NOTE_LINK;
6331 VFS_KNOTE_UNLOCKED(a->a_tdvp, hint);
6332 }
6333
6334 VFS_KNOTE_UNLOCKED(a->a_fvp, NOTE_RENAME);
6335 if (a->a_tvp)
6336 VFS_KNOTE_UNLOCKED(a->a_tvp, NOTE_DELETE);
6337 INOTIFY_MOVE(a->a_fvp, a->a_fdvp, a->a_fcnp, a->a_tvp,
6338 a->a_tdvp, a->a_tcnp);
6339 }
6340 if (a->a_tdvp != a->a_fdvp)
6341 vdrop(a->a_fdvp);
6342 if (a->a_tvp != a->a_fvp)
6343 vdrop(a->a_fvp);
6344 vdrop(a->a_tdvp);
6345 if (a->a_tvp)
6346 vdrop(a->a_tvp);
6347 }
6348
6349 void
vop_rmdir_pre(void * ap)6350 vop_rmdir_pre(void *ap)
6351 {
6352 struct vop_rmdir_args *a;
6353 struct vnode *dvp, *vp;
6354
6355 a = ap;
6356 dvp = a->a_dvp;
6357 vp = a->a_vp;
6358 vfs_notify_upper(vp, VFS_NOTIFY_UPPER_UNLINK);
6359 vn_seqc_write_begin(dvp);
6360 vn_seqc_write_begin(vp);
6361 }
6362
6363 void
vop_rmdir_post(void * ap,int rc)6364 vop_rmdir_post(void *ap, int rc)
6365 {
6366 struct vop_rmdir_args *a;
6367 struct vnode *dvp, *vp;
6368
6369 a = ap;
6370 dvp = a->a_dvp;
6371 vp = a->a_vp;
6372 vn_seqc_write_end(dvp);
6373 vn_seqc_write_end(vp);
6374 if (!rc) {
6375 vp->v_vflag |= VV_UNLINKED;
6376 VFS_KNOTE_LOCKED(dvp, NOTE_WRITE | NOTE_LINK);
6377 VFS_KNOTE_LOCKED(vp, NOTE_DELETE);
6378 INOTIFY_NAME(vp, dvp, a->a_cnp, IN_DELETE);
6379 }
6380 }
6381
6382 void
vop_setattr_pre(void * ap)6383 vop_setattr_pre(void *ap)
6384 {
6385 struct vop_setattr_args *a;
6386 struct vnode *vp;
6387
6388 a = ap;
6389 vp = a->a_vp;
6390 vn_seqc_write_begin(vp);
6391 }
6392
6393 void
vop_setattr_post(void * ap,int rc)6394 vop_setattr_post(void *ap, int rc)
6395 {
6396 struct vop_setattr_args *a;
6397 struct vnode *vp;
6398
6399 a = ap;
6400 vp = a->a_vp;
6401 vn_seqc_write_end(vp);
6402 if (!rc) {
6403 VFS_KNOTE_LOCKED(vp, NOTE_ATTRIB);
6404 INOTIFY(vp, IN_ATTRIB);
6405 }
6406 }
6407
6408 void
vop_setacl_pre(void * ap)6409 vop_setacl_pre(void *ap)
6410 {
6411 struct vop_setacl_args *a;
6412 struct vnode *vp;
6413
6414 a = ap;
6415 vp = a->a_vp;
6416 vn_seqc_write_begin(vp);
6417 }
6418
6419 void
vop_setacl_post(void * ap,int rc __unused)6420 vop_setacl_post(void *ap, int rc __unused)
6421 {
6422 struct vop_setacl_args *a;
6423 struct vnode *vp;
6424
6425 a = ap;
6426 vp = a->a_vp;
6427 vn_seqc_write_end(vp);
6428 }
6429
6430 void
vop_setextattr_pre(void * ap)6431 vop_setextattr_pre(void *ap)
6432 {
6433 struct vop_setextattr_args *a;
6434 struct vnode *vp;
6435
6436 a = ap;
6437 vp = a->a_vp;
6438 vn_seqc_write_begin(vp);
6439 }
6440
6441 void
vop_setextattr_post(void * ap,int rc)6442 vop_setextattr_post(void *ap, int rc)
6443 {
6444 struct vop_setextattr_args *a;
6445 struct vnode *vp;
6446
6447 a = ap;
6448 vp = a->a_vp;
6449 vn_seqc_write_end(vp);
6450 if (!rc) {
6451 VFS_KNOTE_LOCKED(vp, NOTE_ATTRIB);
6452 INOTIFY(vp, IN_ATTRIB);
6453 }
6454 }
6455
6456 void
vop_symlink_pre(void * ap)6457 vop_symlink_pre(void *ap)
6458 {
6459 struct vop_symlink_args *a;
6460 struct vnode *dvp;
6461
6462 a = ap;
6463 dvp = a->a_dvp;
6464 vn_seqc_write_begin(dvp);
6465 }
6466
6467 void
vop_symlink_post(void * ap,int rc)6468 vop_symlink_post(void *ap, int rc)
6469 {
6470 struct vop_symlink_args *a;
6471 struct vnode *dvp;
6472
6473 a = ap;
6474 dvp = a->a_dvp;
6475 vn_seqc_write_end(dvp);
6476 if (!rc) {
6477 VFS_KNOTE_LOCKED(dvp, NOTE_WRITE);
6478 INOTIFY_NAME(*a->a_vpp, dvp, a->a_cnp, IN_CREATE);
6479 }
6480 }
6481
6482 void
vop_open_post(void * ap,int rc)6483 vop_open_post(void *ap, int rc)
6484 {
6485 struct vop_open_args *a = ap;
6486
6487 if (!rc) {
6488 VFS_KNOTE_LOCKED(a->a_vp, NOTE_OPEN);
6489 INOTIFY(a->a_vp, IN_OPEN);
6490 }
6491 }
6492
6493 void
vop_close_post(void * ap,int rc)6494 vop_close_post(void *ap, int rc)
6495 {
6496 struct vop_close_args *a = ap;
6497
6498 if (!rc && (a->a_cred != NOCRED || /* filter out revokes */
6499 !VN_IS_DOOMED(a->a_vp))) {
6500 VFS_KNOTE_LOCKED(a->a_vp, (a->a_fflag & FWRITE) != 0 ?
6501 NOTE_CLOSE_WRITE : NOTE_CLOSE);
6502 INOTIFY(a->a_vp, (a->a_fflag & FWRITE) != 0 ?
6503 IN_CLOSE_WRITE : IN_CLOSE_NOWRITE);
6504 }
6505 }
6506
6507 void
vop_read_post(void * ap,int rc)6508 vop_read_post(void *ap, int rc)
6509 {
6510 struct vop_read_args *a = ap;
6511
6512 if (!rc) {
6513 VFS_KNOTE_LOCKED(a->a_vp, NOTE_READ);
6514 INOTIFY(a->a_vp, IN_ACCESS);
6515 }
6516 }
6517
6518 void
vop_read_pgcache_post(void * ap,int rc)6519 vop_read_pgcache_post(void *ap, int rc)
6520 {
6521 struct vop_read_pgcache_args *a = ap;
6522
6523 if (rc == 0) {
6524 VFS_KNOTE_LOCKED(a->a_vp, NOTE_READ);
6525 INOTIFY(a->a_vp, IN_ACCESS);
6526 }
6527 }
6528
6529 static struct knlist fs_knlist;
6530
6531 static void
vfs_event_init(void * arg)6532 vfs_event_init(void *arg)
6533 {
6534 knlist_init_mtx(&fs_knlist, NULL);
6535 }
6536 /* XXX - correct order? */
6537 SYSINIT(vfs_knlist, SI_SUB_VFS, SI_ORDER_ANY, vfs_event_init, NULL);
6538
6539 void
vfs_event_signal(fsid_t * fsid,uint32_t event,intptr_t data __unused)6540 vfs_event_signal(fsid_t *fsid, uint32_t event, intptr_t data __unused)
6541 {
6542
6543 KNOTE_UNLOCKED(&fs_knlist, event);
6544 }
6545
6546 static int filt_fsattach(struct knote *kn);
6547 static void filt_fsdetach(struct knote *kn);
6548 static int filt_fsevent(struct knote *kn, long hint);
6549
6550 const struct filterops fs_filtops = {
6551 .f_isfd = 0,
6552 .f_attach = filt_fsattach,
6553 .f_detach = filt_fsdetach,
6554 .f_event = filt_fsevent,
6555 .f_copy = knote_triv_copy,
6556 };
6557
6558 static int
filt_fsattach(struct knote * kn)6559 filt_fsattach(struct knote *kn)
6560 {
6561
6562 kn->kn_flags |= EV_CLEAR;
6563 knlist_add(&fs_knlist, kn, 0);
6564 return (0);
6565 }
6566
6567 static void
filt_fsdetach(struct knote * kn)6568 filt_fsdetach(struct knote *kn)
6569 {
6570
6571 knlist_remove(&fs_knlist, kn, 0);
6572 }
6573
6574 static int
filt_fsevent(struct knote * kn,long hint)6575 filt_fsevent(struct knote *kn, long hint)
6576 {
6577
6578 kn->kn_fflags |= kn->kn_sfflags & hint;
6579
6580 return (kn->kn_fflags != 0);
6581 }
6582
6583 static int
sysctl_vfs_ctl(SYSCTL_HANDLER_ARGS)6584 sysctl_vfs_ctl(SYSCTL_HANDLER_ARGS)
6585 {
6586 struct vfsidctl vc;
6587 int error;
6588 struct mount *mp;
6589
6590 if (req->newptr == NULL)
6591 return (EINVAL);
6592 error = SYSCTL_IN(req, &vc, sizeof(vc));
6593 if (error)
6594 return (error);
6595 if (vc.vc_vers != VFS_CTL_VERS1)
6596 return (EINVAL);
6597 mp = vfs_getvfs(&vc.vc_fsid);
6598 if (mp == NULL)
6599 return (ENOENT);
6600 /* ensure that a specific sysctl goes to the right filesystem. */
6601 if (strcmp(vc.vc_fstypename, "*") != 0 &&
6602 strcmp(vc.vc_fstypename, mp->mnt_vfc->vfc_name) != 0) {
6603 vfs_rel(mp);
6604 return (EINVAL);
6605 }
6606 VCTLTOREQ(&vc, req);
6607 error = VFS_SYSCTL(mp, vc.vc_op, req);
6608 vfs_rel(mp);
6609 return (error);
6610 }
6611
6612 SYSCTL_PROC(_vfs, OID_AUTO, ctl, CTLTYPE_OPAQUE | CTLFLAG_MPSAFE | CTLFLAG_WR,
6613 NULL, 0, sysctl_vfs_ctl, "",
6614 "Sysctl by fsid");
6615
6616 /*
6617 * Function to initialize a va_filerev field sensibly.
6618 * XXX: Wouldn't a random number make a lot more sense ??
6619 */
6620 u_quad_t
init_va_filerev(void)6621 init_va_filerev(void)
6622 {
6623 struct bintime bt;
6624
6625 getbinuptime(&bt);
6626 return (((u_quad_t)bt.sec << 32LL) | (bt.frac >> 32LL));
6627 }
6628
6629 static int filt_vfsread(struct knote *kn, long hint);
6630 static int filt_vfswrite(struct knote *kn, long hint);
6631 static int filt_vfsvnode(struct knote *kn, long hint);
6632 static void filt_vfsdetach(struct knote *kn);
6633 static int filt_vfsdump(struct proc *p, struct knote *kn,
6634 struct kinfo_knote *kin);
6635 static int filt_vfscopy(struct knote *kn, struct proc *p1);
6636
6637 static const struct filterops vfsread_filtops = {
6638 .f_isfd = 1,
6639 .f_detach = filt_vfsdetach,
6640 .f_event = filt_vfsread,
6641 .f_userdump = filt_vfsdump,
6642 .f_copy = filt_vfscopy,
6643 };
6644 static const struct filterops vfswrite_filtops = {
6645 .f_isfd = 1,
6646 .f_detach = filt_vfsdetach,
6647 .f_event = filt_vfswrite,
6648 .f_userdump = filt_vfsdump,
6649 .f_copy = filt_vfscopy,
6650 };
6651 static const struct filterops vfsvnode_filtops = {
6652 .f_isfd = 1,
6653 .f_detach = filt_vfsdetach,
6654 .f_event = filt_vfsvnode,
6655 .f_userdump = filt_vfsdump,
6656 .f_copy = filt_vfscopy,
6657 };
6658
6659 static void
vfs_knllock(void * arg)6660 vfs_knllock(void *arg)
6661 {
6662 struct vnode *vp = arg;
6663
6664 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
6665 }
6666
6667 static void
vfs_knlunlock(void * arg)6668 vfs_knlunlock(void *arg)
6669 {
6670 struct vnode *vp = arg;
6671
6672 if (KNLIST_EMPTY(&vp->v_pollinfo->vpi_selinfo.si_note))
6673 vn_irflag_unset(vp, VIRF_KNOTE);
6674 VOP_UNLOCK(vp);
6675 }
6676
6677 static void
vfs_knl_assert_lock(void * arg,int what)6678 vfs_knl_assert_lock(void *arg, int what)
6679 {
6680 #ifdef INVARIANTS
6681 struct vnode *vp = arg;
6682
6683 if (what == LA_LOCKED)
6684 ASSERT_VOP_LOCKED(vp, "vfs_knl_assert_locked");
6685 else
6686 ASSERT_VOP_UNLOCKED(vp, "vfs_knl_assert_unlocked");
6687 #endif
6688 }
6689
6690 int
vfs_kqfilter(struct vop_kqfilter_args * ap)6691 vfs_kqfilter(struct vop_kqfilter_args *ap)
6692 {
6693 struct vnode *vp = ap->a_vp;
6694 struct knote *kn = ap->a_kn;
6695 struct knlist *knl;
6696
6697 KASSERT(vp->v_type != VFIFO || (kn->kn_filter != EVFILT_READ &&
6698 kn->kn_filter != EVFILT_WRITE),
6699 ("READ/WRITE filter on a FIFO leaked through"));
6700 switch (kn->kn_filter) {
6701 case EVFILT_READ:
6702 kn->kn_fop = &vfsread_filtops;
6703 break;
6704 case EVFILT_WRITE:
6705 kn->kn_fop = &vfswrite_filtops;
6706 break;
6707 case EVFILT_VNODE:
6708 kn->kn_fop = &vfsvnode_filtops;
6709 break;
6710 default:
6711 return (EINVAL);
6712 }
6713
6714 kn->kn_hook = (caddr_t)vp;
6715
6716 v_addpollinfo(vp);
6717 if (vp->v_pollinfo == NULL)
6718 return (ENOMEM);
6719 knl = &vp->v_pollinfo->vpi_selinfo.si_note;
6720 vhold(vp);
6721 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
6722 knlist_add(knl, kn, 1);
6723 if ((vn_irflag_read(vp) & VIRF_KNOTE) == 0)
6724 vn_irflag_set(vp, VIRF_KNOTE);
6725 VOP_UNLOCK(vp);
6726
6727 return (0);
6728 }
6729
6730 /*
6731 * Detach knote from vnode
6732 */
6733 static void
filt_vfsdetach(struct knote * kn)6734 filt_vfsdetach(struct knote *kn)
6735 {
6736 struct vnode *vp = (struct vnode *)kn->kn_hook;
6737
6738 KASSERT(vp->v_pollinfo != NULL, ("Missing v_pollinfo"));
6739 knlist_remove(&vp->v_pollinfo->vpi_selinfo.si_note, kn, 0);
6740 vdrop(vp);
6741 }
6742
6743 /*ARGSUSED*/
6744 static int
filt_vfsread(struct knote * kn,long hint)6745 filt_vfsread(struct knote *kn, long hint)
6746 {
6747 struct vnode *vp = (struct vnode *)kn->kn_hook;
6748 off_t size;
6749 int res;
6750
6751 /*
6752 * filesystem is gone, so set the EOF flag and schedule
6753 * the knote for deletion.
6754 */
6755 if (hint == NOTE_REVOKE || (hint == 0 && vp->v_type == VBAD)) {
6756 VI_LOCK(vp);
6757 kn->kn_flags |= (EV_EOF | EV_ONESHOT);
6758 VI_UNLOCK(vp);
6759 return (1);
6760 }
6761
6762 if (vn_getsize_locked(vp, &size, curthread->td_ucred) != 0)
6763 return (0);
6764
6765 VI_LOCK(vp);
6766 kn->kn_data = size - kn->kn_fp->f_offset;
6767 res = (kn->kn_sfflags & NOTE_FILE_POLL) != 0 || kn->kn_data != 0;
6768 VI_UNLOCK(vp);
6769 return (res);
6770 }
6771
6772 /*ARGSUSED*/
6773 static int
filt_vfswrite(struct knote * kn,long hint)6774 filt_vfswrite(struct knote *kn, long hint)
6775 {
6776 struct vnode *vp = (struct vnode *)kn->kn_hook;
6777
6778 VI_LOCK(vp);
6779
6780 /*
6781 * filesystem is gone, so set the EOF flag and schedule
6782 * the knote for deletion.
6783 */
6784 if (hint == NOTE_REVOKE || (hint == 0 && vp->v_type == VBAD))
6785 kn->kn_flags |= (EV_EOF | EV_ONESHOT);
6786
6787 kn->kn_data = 0;
6788 VI_UNLOCK(vp);
6789 return (1);
6790 }
6791
6792 static int
filt_vfsvnode(struct knote * kn,long hint)6793 filt_vfsvnode(struct knote *kn, long hint)
6794 {
6795 struct vnode *vp = (struct vnode *)kn->kn_hook;
6796 int res;
6797
6798 VI_LOCK(vp);
6799 if (kn->kn_sfflags & hint)
6800 kn->kn_fflags |= hint;
6801 if (hint == NOTE_REVOKE || (hint == 0 && vp->v_type == VBAD)) {
6802 kn->kn_flags |= EV_EOF;
6803 VI_UNLOCK(vp);
6804 return (1);
6805 }
6806 res = (kn->kn_fflags != 0);
6807 VI_UNLOCK(vp);
6808 return (res);
6809 }
6810
6811 static int
filt_vfsdump(struct proc * p,struct knote * kn,struct kinfo_knote * kin)6812 filt_vfsdump(struct proc *p, struct knote *kn, struct kinfo_knote *kin)
6813 {
6814 struct vattr va;
6815 struct vnode *vp;
6816 char *fullpath, *freepath;
6817 int error;
6818
6819 kin->knt_extdata = KNOTE_EXTDATA_VNODE;
6820
6821 vp = kn->kn_fp->f_vnode;
6822 kin->knt_vnode.knt_vnode_type = vntype_to_kinfo(vp->v_type);
6823
6824 va.va_fsid = VNOVAL;
6825 vn_lock(vp, LK_SHARED | LK_RETRY);
6826 error = VOP_GETATTR(vp, &va, curthread->td_ucred);
6827 VOP_UNLOCK(vp);
6828 if (error != 0)
6829 return (error);
6830 kin->knt_vnode.knt_vnode_fsid = va.va_fsid;
6831 kin->knt_vnode.knt_vnode_fileid = va.va_fileid;
6832
6833 freepath = NULL;
6834 fullpath = "-";
6835 error = vn_fullpath(vp, &fullpath, &freepath);
6836 if (error == 0) {
6837 strlcpy(kin->knt_vnode.knt_vnode_fullpath, fullpath,
6838 sizeof(kin->knt_vnode.knt_vnode_fullpath));
6839 }
6840 if (freepath != NULL)
6841 free(freepath, M_TEMP);
6842
6843 return (0);
6844 }
6845
6846 static int
filt_vfscopy(struct knote * kn,struct proc * p1)6847 filt_vfscopy(struct knote *kn, struct proc *p1)
6848 {
6849 struct vnode *vp;
6850
6851 vp = (struct vnode *)kn->kn_hook;
6852 vhold(vp);
6853 return (0);
6854 }
6855
6856 int
vfs_read_dirent(struct vop_readdir_args * ap,struct dirent * dp,off_t off)6857 vfs_read_dirent(struct vop_readdir_args *ap, struct dirent *dp, off_t off)
6858 {
6859 int error;
6860
6861 if (dp->d_reclen > ap->a_uio->uio_resid)
6862 return (ENAMETOOLONG);
6863 error = uiomove(dp, dp->d_reclen, ap->a_uio);
6864 if (error) {
6865 if (ap->a_ncookies != NULL) {
6866 if (ap->a_cookies != NULL)
6867 free(ap->a_cookies, M_TEMP);
6868 ap->a_cookies = NULL;
6869 *ap->a_ncookies = 0;
6870 }
6871 return (error);
6872 }
6873 if (ap->a_ncookies == NULL)
6874 return (0);
6875
6876 KASSERT(ap->a_cookies,
6877 ("NULL ap->a_cookies value with non-NULL ap->a_ncookies!"));
6878
6879 *ap->a_cookies = realloc(*ap->a_cookies,
6880 (*ap->a_ncookies + 1) * sizeof(uint64_t), M_TEMP, M_WAITOK | M_ZERO);
6881 (*ap->a_cookies)[*ap->a_ncookies] = off;
6882 *ap->a_ncookies += 1;
6883 return (0);
6884 }
6885
6886 /*
6887 * The purpose of this routine is to remove granularity from accmode_t,
6888 * reducing it into standard unix access bits - VEXEC, VREAD, VWRITE,
6889 * VADMIN and VAPPEND.
6890 *
6891 * If it returns 0, the caller is supposed to continue with the usual
6892 * access checks using 'accmode' as modified by this routine. If it
6893 * returns nonzero value, the caller is supposed to return that value
6894 * as errno.
6895 *
6896 * Note that after this routine runs, accmode may be zero.
6897 */
6898 int
vfs_unixify_accmode(accmode_t * accmode)6899 vfs_unixify_accmode(accmode_t *accmode)
6900 {
6901 /*
6902 * There is no way to specify explicit "deny" rule using
6903 * file mode or POSIX.1e ACLs.
6904 */
6905 if (*accmode & VEXPLICIT_DENY) {
6906 *accmode = 0;
6907 return (0);
6908 }
6909
6910 /*
6911 * None of these can be translated into usual access bits.
6912 * Also, the common case for NFSv4 ACLs is to not contain
6913 * either of these bits. Caller should check for VWRITE
6914 * on the containing directory instead.
6915 */
6916 if (*accmode & (VDELETE_CHILD | VDELETE))
6917 return (EPERM);
6918
6919 if (*accmode & VADMIN_PERMS) {
6920 *accmode &= ~VADMIN_PERMS;
6921 *accmode |= VADMIN;
6922 }
6923
6924 /*
6925 * There is no way to deny VREAD_ATTRIBUTES, VREAD_ACL
6926 * or VSYNCHRONIZE using file mode or POSIX.1e ACL.
6927 */
6928 *accmode &= ~(VSTAT_PERMS | VSYNCHRONIZE);
6929
6930 return (0);
6931 }
6932
6933 /*
6934 * Clear out a doomed vnode (if any) and replace it with a new one as long
6935 * as the fs is not being unmounted. Return the root vnode to the caller.
6936 */
6937 static int __noinline
vfs_cache_root_fallback(struct mount * mp,int flags,struct vnode ** vpp)6938 vfs_cache_root_fallback(struct mount *mp, int flags, struct vnode **vpp)
6939 {
6940 struct vnode *vp;
6941 int error;
6942
6943 restart:
6944 if (mp->mnt_rootvnode != NULL) {
6945 MNT_ILOCK(mp);
6946 vp = mp->mnt_rootvnode;
6947 if (vp != NULL) {
6948 if (!VN_IS_DOOMED(vp)) {
6949 vrefact(vp);
6950 MNT_IUNLOCK(mp);
6951 error = vn_lock(vp, flags);
6952 if (error == 0) {
6953 *vpp = vp;
6954 return (0);
6955 }
6956 vrele(vp);
6957 goto restart;
6958 }
6959 /*
6960 * Clear the old one.
6961 */
6962 mp->mnt_rootvnode = NULL;
6963 }
6964 MNT_IUNLOCK(mp);
6965 if (vp != NULL) {
6966 vfs_op_barrier_wait(mp);
6967 vrele(vp);
6968 }
6969 }
6970 error = VFS_CACHEDROOT(mp, flags, vpp);
6971 if (error != 0)
6972 return (error);
6973 if (mp->mnt_vfs_ops == 0) {
6974 MNT_ILOCK(mp);
6975 if (mp->mnt_vfs_ops != 0) {
6976 MNT_IUNLOCK(mp);
6977 return (0);
6978 }
6979 if (mp->mnt_rootvnode == NULL) {
6980 vrefact(*vpp);
6981 mp->mnt_rootvnode = *vpp;
6982 } else {
6983 if (mp->mnt_rootvnode != *vpp) {
6984 if (!VN_IS_DOOMED(mp->mnt_rootvnode)) {
6985 panic("%s: mismatch between vnode returned "
6986 " by VFS_CACHEDROOT and the one cached "
6987 " (%p != %p)",
6988 __func__, *vpp, mp->mnt_rootvnode);
6989 }
6990 }
6991 }
6992 MNT_IUNLOCK(mp);
6993 }
6994 return (0);
6995 }
6996
6997 int
vfs_cache_root(struct mount * mp,int flags,struct vnode ** vpp)6998 vfs_cache_root(struct mount *mp, int flags, struct vnode **vpp)
6999 {
7000 struct mount_pcpu *mpcpu;
7001 struct vnode *vp;
7002 int error;
7003
7004 if (!vfs_op_thread_enter(mp, &mpcpu))
7005 return (vfs_cache_root_fallback(mp, flags, vpp));
7006 vp = atomic_load_ptr(&mp->mnt_rootvnode);
7007 if (vp == NULL || VN_IS_DOOMED(vp)) {
7008 vfs_op_thread_exit(mp, mpcpu);
7009 return (vfs_cache_root_fallback(mp, flags, vpp));
7010 }
7011 vrefact(vp);
7012 vfs_op_thread_exit(mp, mpcpu);
7013 error = vn_lock(vp, flags);
7014 if (error != 0) {
7015 vrele(vp);
7016 return (vfs_cache_root_fallback(mp, flags, vpp));
7017 }
7018 *vpp = vp;
7019 return (0);
7020 }
7021
7022 struct vnode *
vfs_cache_root_clear(struct mount * mp)7023 vfs_cache_root_clear(struct mount *mp)
7024 {
7025 struct vnode *vp;
7026
7027 /*
7028 * ops > 0 guarantees there is nobody who can see this vnode
7029 */
7030 MPASS(mp->mnt_vfs_ops > 0);
7031 vp = mp->mnt_rootvnode;
7032 if (vp != NULL)
7033 vn_seqc_write_begin(vp);
7034 mp->mnt_rootvnode = NULL;
7035 return (vp);
7036 }
7037
7038 void
vfs_cache_root_set(struct mount * mp,struct vnode * vp)7039 vfs_cache_root_set(struct mount *mp, struct vnode *vp)
7040 {
7041
7042 MPASS(mp->mnt_vfs_ops > 0);
7043 vrefact(vp);
7044 mp->mnt_rootvnode = vp;
7045 }
7046
7047 /*
7048 * These are helper functions for filesystems to traverse all
7049 * their vnodes. See MNT_VNODE_FOREACH_ALL() in sys/mount.h.
7050 *
7051 * This interface replaces MNT_VNODE_FOREACH.
7052 */
7053
7054 struct vnode *
__mnt_vnode_next_all(struct vnode ** mvp,struct mount * mp)7055 __mnt_vnode_next_all(struct vnode **mvp, struct mount *mp)
7056 {
7057 struct vnode *vp;
7058
7059 maybe_yield();
7060 MNT_ILOCK(mp);
7061 KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
7062 for (vp = TAILQ_NEXT(*mvp, v_nmntvnodes); vp != NULL;
7063 vp = TAILQ_NEXT(vp, v_nmntvnodes)) {
7064 /* Allow a racy peek at VIRF_DOOMED to save a lock acquisition. */
7065 if (vp->v_type == VMARKER || VN_IS_DOOMED(vp))
7066 continue;
7067 VI_LOCK(vp);
7068 if (VN_IS_DOOMED(vp)) {
7069 VI_UNLOCK(vp);
7070 continue;
7071 }
7072 break;
7073 }
7074 if (vp == NULL) {
7075 __mnt_vnode_markerfree_all(mvp, mp);
7076 /* MNT_IUNLOCK(mp); -- done in above function */
7077 mtx_assert(MNT_MTX(mp), MA_NOTOWNED);
7078 return (NULL);
7079 }
7080 TAILQ_REMOVE(&mp->mnt_nvnodelist, *mvp, v_nmntvnodes);
7081 TAILQ_INSERT_AFTER(&mp->mnt_nvnodelist, vp, *mvp, v_nmntvnodes);
7082 MNT_IUNLOCK(mp);
7083 return (vp);
7084 }
7085
7086 struct vnode *
__mnt_vnode_first_all(struct vnode ** mvp,struct mount * mp)7087 __mnt_vnode_first_all(struct vnode **mvp, struct mount *mp)
7088 {
7089 struct vnode *vp;
7090
7091 *mvp = vn_alloc_marker(mp);
7092 MNT_ILOCK(mp);
7093 MNT_REF(mp);
7094
7095 TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes) {
7096 /* Allow a racy peek at VIRF_DOOMED to save a lock acquisition. */
7097 if (vp->v_type == VMARKER || VN_IS_DOOMED(vp))
7098 continue;
7099 VI_LOCK(vp);
7100 if (VN_IS_DOOMED(vp)) {
7101 VI_UNLOCK(vp);
7102 continue;
7103 }
7104 break;
7105 }
7106 if (vp == NULL) {
7107 MNT_REL(mp);
7108 MNT_IUNLOCK(mp);
7109 vn_free_marker(*mvp);
7110 *mvp = NULL;
7111 return (NULL);
7112 }
7113 TAILQ_INSERT_AFTER(&mp->mnt_nvnodelist, vp, *mvp, v_nmntvnodes);
7114 MNT_IUNLOCK(mp);
7115 return (vp);
7116 }
7117
7118 void
__mnt_vnode_markerfree_all(struct vnode ** mvp,struct mount * mp)7119 __mnt_vnode_markerfree_all(struct vnode **mvp, struct mount *mp)
7120 {
7121
7122 if (*mvp == NULL) {
7123 MNT_IUNLOCK(mp);
7124 return;
7125 }
7126
7127 mtx_assert(MNT_MTX(mp), MA_OWNED);
7128
7129 KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
7130 TAILQ_REMOVE(&mp->mnt_nvnodelist, *mvp, v_nmntvnodes);
7131 MNT_REL(mp);
7132 MNT_IUNLOCK(mp);
7133 vn_free_marker(*mvp);
7134 *mvp = NULL;
7135 }
7136
7137 /*
7138 * These are helper functions for filesystems to traverse their
7139 * lazy vnodes. See MNT_VNODE_FOREACH_LAZY() in sys/mount.h
7140 */
7141 static void
mnt_vnode_markerfree_lazy(struct vnode ** mvp,struct mount * mp)7142 mnt_vnode_markerfree_lazy(struct vnode **mvp, struct mount *mp)
7143 {
7144
7145 KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
7146
7147 MNT_ILOCK(mp);
7148 MNT_REL(mp);
7149 MNT_IUNLOCK(mp);
7150 vn_free_marker(*mvp);
7151 *mvp = NULL;
7152 }
7153
7154 /*
7155 * Relock the mp mount vnode list lock with the vp vnode interlock in the
7156 * conventional lock order during mnt_vnode_next_lazy iteration.
7157 *
7158 * On entry, the mount vnode list lock is held and the vnode interlock is not.
7159 * The list lock is dropped and reacquired. On success, both locks are held.
7160 * On failure, the mount vnode list lock is held but the vnode interlock is
7161 * not, and the procedure may have yielded.
7162 */
7163 static bool
mnt_vnode_next_lazy_relock(struct vnode * mvp,struct mount * mp,struct vnode * vp)7164 mnt_vnode_next_lazy_relock(struct vnode *mvp, struct mount *mp,
7165 struct vnode *vp)
7166 {
7167
7168 VNASSERT(mvp->v_mount == mp && mvp->v_type == VMARKER &&
7169 TAILQ_NEXT(mvp, v_lazylist) != NULL, mvp,
7170 ("%s: bad marker", __func__));
7171 VNASSERT(vp->v_mount == mp && vp->v_type != VMARKER, vp,
7172 ("%s: inappropriate vnode", __func__));
7173 ASSERT_VI_UNLOCKED(vp, __func__);
7174 mtx_assert(&mp->mnt_listmtx, MA_OWNED);
7175
7176 TAILQ_REMOVE(&mp->mnt_lazyvnodelist, mvp, v_lazylist);
7177 TAILQ_INSERT_BEFORE(vp, mvp, v_lazylist);
7178
7179 /*
7180 * Note we may be racing against vdrop which transitioned the hold
7181 * count to 0 and now waits for the ->mnt_listmtx lock. This is fine,
7182 * if we are the only user after we get the interlock we will just
7183 * vdrop.
7184 */
7185 vhold(vp);
7186 mtx_unlock(&mp->mnt_listmtx);
7187 VI_LOCK(vp);
7188 if (VN_IS_DOOMED(vp)) {
7189 VNPASS((vp->v_mflag & VMP_LAZYLIST) == 0, vp);
7190 goto out_lost;
7191 }
7192 VNPASS(vp->v_mflag & VMP_LAZYLIST, vp);
7193 /*
7194 * There is nothing to do if we are the last user.
7195 */
7196 if (!refcount_release_if_not_last(&vp->v_holdcnt))
7197 goto out_lost;
7198 mtx_lock(&mp->mnt_listmtx);
7199 return (true);
7200 out_lost:
7201 vdropl(vp);
7202 maybe_yield();
7203 mtx_lock(&mp->mnt_listmtx);
7204 return (false);
7205 }
7206
7207 static struct vnode *
mnt_vnode_next_lazy(struct vnode ** mvp,struct mount * mp,mnt_lazy_cb_t * cb,void * cbarg)7208 mnt_vnode_next_lazy(struct vnode **mvp, struct mount *mp, mnt_lazy_cb_t *cb,
7209 void *cbarg)
7210 {
7211 struct vnode *vp;
7212
7213 mtx_assert(&mp->mnt_listmtx, MA_OWNED);
7214 KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
7215 restart:
7216 vp = TAILQ_NEXT(*mvp, v_lazylist);
7217 while (vp != NULL) {
7218 if (vp->v_type == VMARKER) {
7219 vp = TAILQ_NEXT(vp, v_lazylist);
7220 continue;
7221 }
7222 /*
7223 * See if we want to process the vnode. Note we may encounter a
7224 * long string of vnodes we don't care about and hog the list
7225 * as a result. Check for it and requeue the marker.
7226 */
7227 VNPASS(!VN_IS_DOOMED(vp), vp);
7228 if (!cb(vp, cbarg)) {
7229 if (!should_yield()) {
7230 vp = TAILQ_NEXT(vp, v_lazylist);
7231 continue;
7232 }
7233 TAILQ_REMOVE(&mp->mnt_lazyvnodelist, *mvp,
7234 v_lazylist);
7235 TAILQ_INSERT_AFTER(&mp->mnt_lazyvnodelist, vp, *mvp,
7236 v_lazylist);
7237 mtx_unlock(&mp->mnt_listmtx);
7238 kern_yield(PRI_USER);
7239 mtx_lock(&mp->mnt_listmtx);
7240 goto restart;
7241 }
7242 /*
7243 * Try-lock because this is the wrong lock order.
7244 */
7245 if (!VI_TRYLOCK(vp) &&
7246 !mnt_vnode_next_lazy_relock(*mvp, mp, vp))
7247 goto restart;
7248 KASSERT(vp->v_type != VMARKER, ("locked marker %p", vp));
7249 KASSERT(vp->v_mount == mp || vp->v_mount == NULL,
7250 ("alien vnode on the lazy list %p %p", vp, mp));
7251 VNPASS(vp->v_mount == mp, vp);
7252 VNPASS(!VN_IS_DOOMED(vp), vp);
7253 break;
7254 }
7255 TAILQ_REMOVE(&mp->mnt_lazyvnodelist, *mvp, v_lazylist);
7256
7257 /* Check if we are done */
7258 if (vp == NULL) {
7259 mtx_unlock(&mp->mnt_listmtx);
7260 mnt_vnode_markerfree_lazy(mvp, mp);
7261 return (NULL);
7262 }
7263 TAILQ_INSERT_AFTER(&mp->mnt_lazyvnodelist, vp, *mvp, v_lazylist);
7264 mtx_unlock(&mp->mnt_listmtx);
7265 ASSERT_VI_LOCKED(vp, "lazy iter");
7266 return (vp);
7267 }
7268
7269 struct vnode *
__mnt_vnode_next_lazy(struct vnode ** mvp,struct mount * mp,mnt_lazy_cb_t * cb,void * cbarg)7270 __mnt_vnode_next_lazy(struct vnode **mvp, struct mount *mp, mnt_lazy_cb_t *cb,
7271 void *cbarg)
7272 {
7273
7274 maybe_yield();
7275 mtx_lock(&mp->mnt_listmtx);
7276 return (mnt_vnode_next_lazy(mvp, mp, cb, cbarg));
7277 }
7278
7279 struct vnode *
__mnt_vnode_first_lazy(struct vnode ** mvp,struct mount * mp,mnt_lazy_cb_t * cb,void * cbarg)7280 __mnt_vnode_first_lazy(struct vnode **mvp, struct mount *mp, mnt_lazy_cb_t *cb,
7281 void *cbarg)
7282 {
7283 struct vnode *vp;
7284
7285 if (TAILQ_EMPTY(&mp->mnt_lazyvnodelist))
7286 return (NULL);
7287
7288 *mvp = vn_alloc_marker(mp);
7289 MNT_ILOCK(mp);
7290 MNT_REF(mp);
7291 MNT_IUNLOCK(mp);
7292
7293 mtx_lock(&mp->mnt_listmtx);
7294 vp = TAILQ_FIRST(&mp->mnt_lazyvnodelist);
7295 if (vp == NULL) {
7296 mtx_unlock(&mp->mnt_listmtx);
7297 mnt_vnode_markerfree_lazy(mvp, mp);
7298 return (NULL);
7299 }
7300 TAILQ_INSERT_BEFORE(vp, *mvp, v_lazylist);
7301 return (mnt_vnode_next_lazy(mvp, mp, cb, cbarg));
7302 }
7303
7304 void
__mnt_vnode_markerfree_lazy(struct vnode ** mvp,struct mount * mp)7305 __mnt_vnode_markerfree_lazy(struct vnode **mvp, struct mount *mp)
7306 {
7307
7308 if (*mvp == NULL)
7309 return;
7310
7311 mtx_lock(&mp->mnt_listmtx);
7312 TAILQ_REMOVE(&mp->mnt_lazyvnodelist, *mvp, v_lazylist);
7313 mtx_unlock(&mp->mnt_listmtx);
7314 mnt_vnode_markerfree_lazy(mvp, mp);
7315 }
7316
7317 int
vn_dir_check_exec(struct vnode * vp,struct componentname * cnp)7318 vn_dir_check_exec(struct vnode *vp, struct componentname *cnp)
7319 {
7320
7321 if ((cnp->cn_flags & NOEXECCHECK) != 0) {
7322 cnp->cn_flags &= ~NOEXECCHECK;
7323 return (0);
7324 }
7325
7326 return (VOP_ACCESS(vp, VEXEC, cnp->cn_cred, curthread));
7327 }
7328
7329 /*
7330 * Do not use this variant unless you have means other than the hold count
7331 * to prevent the vnode from getting freed.
7332 */
7333 void
vn_seqc_write_begin_locked(struct vnode * vp)7334 vn_seqc_write_begin_locked(struct vnode *vp)
7335 {
7336
7337 ASSERT_VI_LOCKED(vp, __func__);
7338 VNPASS(vp->v_holdcnt > 0, vp);
7339 VNPASS(vp->v_seqc_users >= 0, vp);
7340 vp->v_seqc_users++;
7341 if (vp->v_seqc_users == 1)
7342 seqc_sleepable_write_begin(&vp->v_seqc);
7343 }
7344
7345 void
vn_seqc_write_begin(struct vnode * vp)7346 vn_seqc_write_begin(struct vnode *vp)
7347 {
7348
7349 VI_LOCK(vp);
7350 vn_seqc_write_begin_locked(vp);
7351 VI_UNLOCK(vp);
7352 }
7353
7354 void
vn_seqc_write_end_locked(struct vnode * vp)7355 vn_seqc_write_end_locked(struct vnode *vp)
7356 {
7357
7358 ASSERT_VI_LOCKED(vp, __func__);
7359 VNPASS(vp->v_seqc_users > 0, vp);
7360 vp->v_seqc_users--;
7361 if (vp->v_seqc_users == 0)
7362 seqc_sleepable_write_end(&vp->v_seqc);
7363 }
7364
7365 void
vn_seqc_write_end(struct vnode * vp)7366 vn_seqc_write_end(struct vnode *vp)
7367 {
7368
7369 VI_LOCK(vp);
7370 vn_seqc_write_end_locked(vp);
7371 VI_UNLOCK(vp);
7372 }
7373
7374 /*
7375 * Special case handling for allocating and freeing vnodes.
7376 *
7377 * The counter remains unchanged on free so that a doomed vnode will
7378 * keep testing as in modify as long as it is accessible with SMR.
7379 */
7380 static void
vn_seqc_init(struct vnode * vp)7381 vn_seqc_init(struct vnode *vp)
7382 {
7383
7384 vp->v_seqc = 0;
7385 vp->v_seqc_users = 0;
7386 }
7387
7388 static void
vn_seqc_write_end_free(struct vnode * vp)7389 vn_seqc_write_end_free(struct vnode *vp)
7390 {
7391
7392 VNPASS(seqc_in_modify(vp->v_seqc), vp);
7393 VNPASS(vp->v_seqc_users == 1, vp);
7394 }
7395
7396 void
vn_irflag_set_locked(struct vnode * vp,short toset)7397 vn_irflag_set_locked(struct vnode *vp, short toset)
7398 {
7399 short flags;
7400
7401 ASSERT_VI_LOCKED(vp, __func__);
7402 flags = vn_irflag_read(vp);
7403 VNASSERT((flags & toset) == 0, vp,
7404 ("%s: some of the passed flags already set (have %d, passed %d)\n",
7405 __func__, flags, toset));
7406 atomic_store_short(&vp->v_irflag, flags | toset);
7407 }
7408
7409 void
vn_irflag_set(struct vnode * vp,short toset)7410 vn_irflag_set(struct vnode *vp, short toset)
7411 {
7412
7413 VI_LOCK(vp);
7414 vn_irflag_set_locked(vp, toset);
7415 VI_UNLOCK(vp);
7416 }
7417
7418 void
vn_irflag_set_cond_locked(struct vnode * vp,short toset)7419 vn_irflag_set_cond_locked(struct vnode *vp, short toset)
7420 {
7421 short flags;
7422
7423 ASSERT_VI_LOCKED(vp, __func__);
7424 flags = vn_irflag_read(vp);
7425 atomic_store_short(&vp->v_irflag, flags | toset);
7426 }
7427
7428 void
vn_irflag_set_cond(struct vnode * vp,short toset)7429 vn_irflag_set_cond(struct vnode *vp, short toset)
7430 {
7431
7432 VI_LOCK(vp);
7433 vn_irflag_set_cond_locked(vp, toset);
7434 VI_UNLOCK(vp);
7435 }
7436
7437 void
vn_irflag_unset_locked(struct vnode * vp,short tounset)7438 vn_irflag_unset_locked(struct vnode *vp, short tounset)
7439 {
7440 short flags;
7441
7442 ASSERT_VI_LOCKED(vp, __func__);
7443 flags = vn_irflag_read(vp);
7444 VNASSERT((flags & tounset) == tounset, vp,
7445 ("%s: some of the passed flags not set (have %d, passed %d)\n",
7446 __func__, flags, tounset));
7447 atomic_store_short(&vp->v_irflag, flags & ~tounset);
7448 }
7449
7450 void
vn_irflag_unset(struct vnode * vp,short tounset)7451 vn_irflag_unset(struct vnode *vp, short tounset)
7452 {
7453
7454 VI_LOCK(vp);
7455 vn_irflag_unset_locked(vp, tounset);
7456 VI_UNLOCK(vp);
7457 }
7458
7459 int
vn_getsize_locked(struct vnode * vp,off_t * size,struct ucred * cred)7460 vn_getsize_locked(struct vnode *vp, off_t *size, struct ucred *cred)
7461 {
7462 struct vattr vattr;
7463 int error;
7464
7465 ASSERT_VOP_LOCKED(vp, __func__);
7466 error = VOP_GETATTR(vp, &vattr, cred);
7467 if (__predict_true(error == 0)) {
7468 if (vattr.va_size <= OFF_MAX)
7469 *size = vattr.va_size;
7470 else
7471 error = EFBIG;
7472 }
7473 return (error);
7474 }
7475
7476 int
vn_getsize(struct vnode * vp,off_t * size,struct ucred * cred)7477 vn_getsize(struct vnode *vp, off_t *size, struct ucred *cred)
7478 {
7479 int error;
7480
7481 VOP_LOCK(vp, LK_SHARED);
7482 error = vn_getsize_locked(vp, size, cred);
7483 VOP_UNLOCK(vp);
7484 return (error);
7485 }
7486
7487 #ifdef INVARIANTS
7488 void
vn_set_state_validate(struct vnode * vp,__enum_uint8 (vstate)state)7489 vn_set_state_validate(struct vnode *vp, __enum_uint8(vstate) state)
7490 {
7491
7492 switch (vp->v_state) {
7493 case VSTATE_UNINITIALIZED:
7494 switch (state) {
7495 case VSTATE_CONSTRUCTED:
7496 case VSTATE_DESTROYING:
7497 return;
7498 default:
7499 break;
7500 }
7501 break;
7502 case VSTATE_CONSTRUCTED:
7503 ASSERT_VOP_ELOCKED(vp, __func__);
7504 switch (state) {
7505 case VSTATE_DESTROYING:
7506 return;
7507 default:
7508 break;
7509 }
7510 break;
7511 case VSTATE_DESTROYING:
7512 ASSERT_VOP_ELOCKED(vp, __func__);
7513 switch (state) {
7514 case VSTATE_DEAD:
7515 return;
7516 default:
7517 break;
7518 }
7519 break;
7520 case VSTATE_DEAD:
7521 switch (state) {
7522 case VSTATE_UNINITIALIZED:
7523 return;
7524 default:
7525 break;
7526 }
7527 break;
7528 }
7529
7530 vn_printf(vp, "invalid state transition %d -> %d\n", vp->v_state, state);
7531 panic("invalid state transition %d -> %d\n", vp->v_state, state);
7532 }
7533 #endif
7534