vfs_cache.c revision 1.118 1 1.118 riastrad /* $NetBSD: vfs_cache.c,v 1.118 2017/03/18 22:02:11 riastradh Exp $ */
2 1.73 ad
3 1.73 ad /*-
4 1.73 ad * Copyright (c) 2008 The NetBSD Foundation, Inc.
5 1.73 ad * All rights reserved.
6 1.73 ad *
7 1.73 ad * Redistribution and use in source and binary forms, with or without
8 1.73 ad * modification, are permitted provided that the following conditions
9 1.73 ad * are met:
10 1.73 ad * 1. Redistributions of source code must retain the above copyright
11 1.73 ad * notice, this list of conditions and the following disclaimer.
12 1.73 ad * 2. Redistributions in binary form must reproduce the above copyright
13 1.73 ad * notice, this list of conditions and the following disclaimer in the
14 1.73 ad * documentation and/or other materials provided with the distribution.
15 1.73 ad *
16 1.73 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
17 1.73 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
18 1.73 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
19 1.73 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
20 1.73 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
21 1.73 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
22 1.73 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
23 1.73 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
24 1.73 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
25 1.73 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
26 1.73 ad * POSSIBILITY OF SUCH DAMAGE.
27 1.73 ad */
28 1.6 cgd
29 1.1 cgd /*
30 1.5 mycroft * Copyright (c) 1989, 1993
31 1.5 mycroft * The Regents of the University of California. All rights reserved.
32 1.1 cgd *
33 1.1 cgd * Redistribution and use in source and binary forms, with or without
34 1.1 cgd * modification, are permitted provided that the following conditions
35 1.1 cgd * are met:
36 1.1 cgd * 1. Redistributions of source code must retain the above copyright
37 1.1 cgd * notice, this list of conditions and the following disclaimer.
38 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
39 1.1 cgd * notice, this list of conditions and the following disclaimer in the
40 1.1 cgd * documentation and/or other materials provided with the distribution.
41 1.51 agc * 3. Neither the name of the University nor the names of its contributors
42 1.1 cgd * may be used to endorse or promote products derived from this software
43 1.1 cgd * without specific prior written permission.
44 1.1 cgd *
45 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
46 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
47 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
48 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
49 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
50 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
51 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
52 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
53 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
54 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
55 1.1 cgd * SUCH DAMAGE.
56 1.1 cgd *
57 1.10 mycroft * @(#)vfs_cache.c 8.3 (Berkeley) 8/22/94
58 1.1 cgd */
59 1.32 lukem
60 1.32 lukem #include <sys/cdefs.h>
61 1.118 riastrad __KERNEL_RCSID(0, "$NetBSD: vfs_cache.c,v 1.118 2017/03/18 22:02:11 riastradh Exp $");
62 1.1 cgd
63 1.107 pooka #ifdef _KERNEL_OPT
64 1.28 chs #include "opt_ddb.h"
65 1.115 riastrad #include "opt_dtrace.h"
66 1.29 fvdl #include "opt_revcache.h"
67 1.107 pooka #endif
68 1.28 chs
69 1.4 mycroft #include <sys/param.h>
70 1.115 riastrad #include <sys/atomic.h>
71 1.115 riastrad #include <sys/cpu.h>
72 1.115 riastrad #include <sys/errno.h>
73 1.115 riastrad #include <sys/evcnt.h>
74 1.115 riastrad #include <sys/kernel.h>
75 1.115 riastrad #include <sys/kthread.h>
76 1.4 mycroft #include <sys/mount.h>
77 1.115 riastrad #include <sys/mutex.h>
78 1.4 mycroft #include <sys/namei.h>
79 1.18 thorpej #include <sys/pool.h>
80 1.108 christos #include <sys/sdt.h>
81 1.115 riastrad #include <sys/sysctl.h>
82 1.115 riastrad #include <sys/systm.h>
83 1.115 riastrad #include <sys/time.h>
84 1.115 riastrad #include <sys/vnode_impl.h>
85 1.1 cgd
86 1.66 christos #define NAMECACHE_ENTER_REVERSE
87 1.1 cgd /*
88 1.1 cgd * Name caching works as follows:
89 1.1 cgd *
90 1.1 cgd * Names found by directory scans are retained in a cache
91 1.1 cgd * for future reference. It is managed LRU, so frequently
92 1.1 cgd * used names will hang around. Cache is indexed by hash value
93 1.20 jdolecek * obtained from (dvp, name) where dvp refers to the directory
94 1.1 cgd * containing name.
95 1.1 cgd *
96 1.1 cgd * For simplicity (and economy of storage), names longer than
97 1.1 cgd * a maximum length of NCHNAMLEN are not cached; they occur
98 1.1 cgd * infrequently in any case, and are almost never of interest.
99 1.1 cgd *
100 1.1 cgd * Upon reaching the last segment of a path, if the reference
101 1.1 cgd * is for DELETE, or NOCACHE is set (rewrite), and the
102 1.1 cgd * name is located in the cache, it will be dropped.
103 1.1 cgd */
104 1.1 cgd
105 1.1 cgd /*
106 1.117 riastrad * Locking.
107 1.102 dennis *
108 1.117 riastrad * L namecache_lock Global lock for namecache table and queues.
109 1.117 riastrad * C struct nchcpu::cpu_lock Per-CPU lock to reduce read contention.
110 1.117 riastrad * N struct namecache::nc_lock Per-entry lock.
111 1.117 riastrad * V struct vnode::v_interlock Vnode interlock.
112 1.117 riastrad *
113 1.118 riastrad * Lock order: L -> C -> N -> V
114 1.118 riastrad *
115 1.118 riastrad * Examples:
116 1.118 riastrad * . L->C: cache_reclaim
117 1.118 riastrad * . C->N->V: cache_lookup
118 1.118 riastrad * . L->N->V: cache_purge1, cache_revlookup
119 1.117 riastrad *
120 1.117 riastrad * All use serialized by namecache_lock:
121 1.117 riastrad *
122 1.117 riastrad * nclruhead / struct namecache::nc_lru
123 1.117 riastrad * ncvhashtbl / struct namecache::nc_vhash
124 1.117 riastrad * struct vnode_impl::vi_dnclist / struct namecache::nc_dvlist
125 1.117 riastrad * struct vnode_impl::vi_nclist / struct namecache::nc_vlist
126 1.117 riastrad * nchstats
127 1.117 riastrad *
128 1.117 riastrad * - Insertion serialized by namecache_lock,
129 1.117 riastrad * - read protected by per-CPU lock,
130 1.117 riastrad * - insert/read ordering guaranteed by memory barriers, and
131 1.117 riastrad * - deletion allowed only under namecache_lock and *all* per-CPU locks
132 1.117 riastrad * in CPU_INFO_FOREACH order:
133 1.117 riastrad *
134 1.117 riastrad * nchashtbl / struct namecache::nc_hash
135 1.117 riastrad *
136 1.117 riastrad * The per-CPU locks exist only to reduce the probability of
137 1.117 riastrad * contention between readers. We do not bind to a CPU, so
138 1.117 riastrad * contention is still possible.
139 1.117 riastrad *
140 1.117 riastrad * All use serialized by struct namecache::nc_lock:
141 1.117 riastrad *
142 1.117 riastrad * struct namecache::nc_dvp
143 1.117 riastrad * struct namecache::nc_vp
144 1.117 riastrad * struct namecache::nc_gcqueue (*)
145 1.117 riastrad * struct namecache::nc_hittime (**)
146 1.117 riastrad *
147 1.117 riastrad * (*) Once on the queue, only cache_thread uses this nc_gcqueue, unlocked.
148 1.117 riastrad * (**) cache_prune reads nc_hittime unlocked, since approximate is OK.
149 1.117 riastrad *
150 1.117 riastrad * Unlocked because stable after initialization:
151 1.117 riastrad *
152 1.117 riastrad * struct namecache::nc_dvp
153 1.117 riastrad * struct namecache::nc_vp
154 1.117 riastrad * struct namecache::nc_flags
155 1.117 riastrad * struct namecache::nc_nlen
156 1.117 riastrad * struct namecache::nc_name
157 1.117 riastrad *
158 1.117 riastrad * Unlocked because approximation is OK:
159 1.117 riastrad *
160 1.117 riastrad * struct nchcpu::cpu_stats
161 1.117 riastrad * struct nchcpu::cpu_stats_last
162 1.117 riastrad *
163 1.117 riastrad * Updates under namecache_lock or any per-CPU lock are marked with
164 1.117 riastrad * COUNT, while updates outside those locks are marked with COUNT_UNL.
165 1.117 riastrad *
166 1.117 riastrad * - The theory seems to have been that you could replace COUNT_UNL by
167 1.117 riastrad * atomic operations -- except that doesn't help unless you also
168 1.117 riastrad * replace COUNT by atomic operations, because mixing atomics and
169 1.117 riastrad * nonatomics is a recipe for failure.
170 1.117 riastrad * - We use 32-bit per-CPU counters and 64-bit global counters under
171 1.117 riastrad * the theory that 32-bit counters are less likely to be hosed by
172 1.117 riastrad * nonatomic increment.
173 1.117 riastrad */
174 1.117 riastrad
175 1.117 riastrad /*
176 1.117 riastrad * The comment below is preserved for posterity in case it is
177 1.117 riastrad * important, but it is clear that everywhere the namecache_count_*()
178 1.117 riastrad * functions are called, other cache_*() functions that take the same
179 1.117 riastrad * locks are also called, so I can't imagine how this could be a
180 1.117 riastrad * problem:
181 1.103 dennis *
182 1.103 dennis * N.B.: Attempting to protect COUNT_UNL() increments by taking
183 1.103 dennis * a per-cpu lock in the namecache_count_*() functions causes
184 1.103 dennis * a deadlock. Don't do that, use atomic increments instead if
185 1.103 dennis * the imperfections here bug you.
186 1.117 riastrad */
187 1.117 riastrad
188 1.117 riastrad /*
189 1.117 riastrad * struct nchstats_percpu:
190 1.103 dennis *
191 1.117 riastrad * Per-CPU counters.
192 1.77 ad */
193 1.103 dennis struct nchstats_percpu _NAMEI_CACHE_STATS(uint32_t);
194 1.103 dennis
195 1.117 riastrad /*
196 1.117 riastrad * struct nchcpu:
197 1.117 riastrad *
198 1.117 riastrad * Per-CPU namecache state: lock and per-CPU counters.
199 1.117 riastrad */
200 1.77 ad struct nchcpu {
201 1.103 dennis kmutex_t cpu_lock;
202 1.103 dennis struct nchstats_percpu cpu_stats;
203 1.103 dennis /* XXX maybe __cacheline_aligned would improve this? */
204 1.103 dennis struct nchstats_percpu cpu_stats_last; /* from last sample */
205 1.77 ad };
206 1.77 ad
207 1.77 ad /*
208 1.90 dholland * The type for the hash code. While the hash function generates a
209 1.90 dholland * u32, the hash code has historically been passed around as a u_long,
210 1.90 dholland * and the value is modified by xor'ing a uintptr_t, so it's not
211 1.90 dholland * entirely clear what the best type is. For now I'll leave it
212 1.90 dholland * unchanged as u_long.
213 1.90 dholland */
214 1.90 dholland
215 1.90 dholland typedef u_long nchash_t;
216 1.90 dholland
217 1.90 dholland /*
218 1.1 cgd * Structures associated with name cacheing.
219 1.1 cgd */
220 1.89 rmind
221 1.89 rmind static kmutex_t *namecache_lock __read_mostly;
222 1.89 rmind static pool_cache_t namecache_cache __read_mostly;
223 1.89 rmind static TAILQ_HEAD(, namecache) nclruhead __cacheline_aligned;
224 1.89 rmind
225 1.89 rmind static LIST_HEAD(nchashhead, namecache) *nchashtbl __read_mostly;
226 1.89 rmind static u_long nchash __read_mostly;
227 1.89 rmind
228 1.90 dholland #define NCHASH2(hash, dvp) \
229 1.90 dholland (((hash) ^ ((uintptr_t)(dvp) >> 3)) & nchash)
230 1.19 sommerfe
231 1.89 rmind static LIST_HEAD(ncvhashhead, namecache) *ncvhashtbl __read_mostly;
232 1.89 rmind static u_long ncvhash __read_mostly;
233 1.89 rmind
234 1.48 yamt #define NCVHASH(vp) (((uintptr_t)(vp) >> 3) & ncvhash)
235 1.19 sommerfe
236 1.89 rmind /* Number of cache entries allocated. */
237 1.89 rmind static long numcache __cacheline_aligned;
238 1.73 ad
239 1.89 rmind /* Garbage collection queue and number of entries pending in it. */
240 1.89 rmind static void *cache_gcqueue;
241 1.89 rmind static u_int cache_gcpend;
242 1.89 rmind
243 1.103 dennis /* Cache effectiveness statistics. This holds total from per-cpu stats */
244 1.89 rmind struct nchstats nchstats __cacheline_aligned;
245 1.103 dennis
246 1.103 dennis /*
247 1.103 dennis * Macros to count an event, update the central stats with per-cpu
248 1.103 dennis * values and add current per-cpu increments to the subsystem total
249 1.103 dennis * last collected by cache_reclaim().
250 1.103 dennis */
251 1.103 dennis #define CACHE_STATS_CURRENT /* nothing */
252 1.103 dennis
253 1.103 dennis #define COUNT(cpup, f) ((cpup)->cpu_stats.f++)
254 1.103 dennis
255 1.103 dennis #define UPDATE(cpup, f) do { \
256 1.103 dennis struct nchcpu *Xcpup = (cpup); \
257 1.103 dennis uint32_t Xcnt = (volatile uint32_t) Xcpup->cpu_stats.f; \
258 1.103 dennis nchstats.f += Xcnt - Xcpup->cpu_stats_last.f; \
259 1.103 dennis Xcpup->cpu_stats_last.f = Xcnt; \
260 1.103 dennis } while (/* CONSTCOND */ 0)
261 1.103 dennis
262 1.103 dennis #define ADD(stats, cpup, f) do { \
263 1.103 dennis struct nchcpu *Xcpup = (cpup); \
264 1.103 dennis stats.f += Xcpup->cpu_stats.f - Xcpup->cpu_stats_last.f; \
265 1.103 dennis } while (/* CONSTCOND */ 0)
266 1.103 dennis
267 1.103 dennis /* Do unlocked stats the same way. Use a different name to allow mind changes */
268 1.103 dennis #define COUNT_UNL(cpup, f) COUNT((cpup), f)
269 1.38 thorpej
270 1.89 rmind static const int cache_lowat = 95;
271 1.89 rmind static const int cache_hiwat = 98;
272 1.89 rmind static const int cache_hottime = 5; /* number of seconds */
273 1.89 rmind static int doingcache = 1; /* 1 => enable the cache */
274 1.1 cgd
275 1.73 ad static struct evcnt cache_ev_scan;
276 1.73 ad static struct evcnt cache_ev_gc;
277 1.73 ad static struct evcnt cache_ev_over;
278 1.73 ad static struct evcnt cache_ev_under;
279 1.73 ad static struct evcnt cache_ev_forced;
280 1.73 ad
281 1.73 ad static void cache_invalidate(struct namecache *);
282 1.89 rmind static struct namecache *cache_lookup_entry(
283 1.91 dholland const struct vnode *, const char *, size_t);
284 1.73 ad static void cache_thread(void *);
285 1.73 ad static void cache_invalidate(struct namecache *);
286 1.73 ad static void cache_disassociate(struct namecache *);
287 1.73 ad static void cache_reclaim(void);
288 1.73 ad static int cache_ctor(void *, void *, int);
289 1.73 ad static void cache_dtor(void *, void *);
290 1.46 yamt
291 1.104 pooka static struct sysctllog *sysctllog;
292 1.104 pooka static void sysctl_cache_stat_setup(void);
293 1.104 pooka
294 1.108 christos SDT_PROVIDER_DEFINE(vfs);
295 1.108 christos
296 1.108 christos SDT_PROBE_DEFINE1(vfs, namecache, invalidate, done, "struct vnode *");
297 1.108 christos SDT_PROBE_DEFINE1(vfs, namecache, purge, parents, "struct vnode *");
298 1.108 christos SDT_PROBE_DEFINE1(vfs, namecache, purge, children, "struct vnode *");
299 1.108 christos SDT_PROBE_DEFINE2(vfs, namecache, purge, name, "char *", "size_t");
300 1.108 christos SDT_PROBE_DEFINE1(vfs, namecache, purge, vfs, "struct mount *");
301 1.108 christos SDT_PROBE_DEFINE3(vfs, namecache, lookup, hit, "struct vnode *",
302 1.108 christos "char *", "size_t");
303 1.108 christos SDT_PROBE_DEFINE3(vfs, namecache, lookup, miss, "struct vnode *",
304 1.108 christos "char *", "size_t");
305 1.108 christos SDT_PROBE_DEFINE3(vfs, namecache, lookup, toolong, "struct vnode *",
306 1.108 christos "char *", "size_t");
307 1.108 christos SDT_PROBE_DEFINE2(vfs, namecache, revlookup, success, "struct vnode *",
308 1.108 christos "struct vnode *");
309 1.108 christos SDT_PROBE_DEFINE2(vfs, namecache, revlookup, fail, "struct vnode *",
310 1.108 christos "int");
311 1.108 christos SDT_PROBE_DEFINE2(vfs, namecache, prune, done, "int", "int");
312 1.108 christos SDT_PROBE_DEFINE3(vfs, namecache, enter, toolong, "struct vnode *",
313 1.108 christos "char *", "size_t");
314 1.108 christos SDT_PROBE_DEFINE3(vfs, namecache, enter, done, "struct vnode *",
315 1.108 christos "char *", "size_t");
316 1.108 christos
317 1.73 ad /*
318 1.90 dholland * Compute the hash for an entry.
319 1.90 dholland *
320 1.90 dholland * (This is for now a wrapper around namei_hash, whose interface is
321 1.90 dholland * for the time being slightly inconvenient.)
322 1.90 dholland */
323 1.90 dholland static nchash_t
324 1.91 dholland cache_hash(const char *name, size_t namelen)
325 1.90 dholland {
326 1.90 dholland const char *endptr;
327 1.90 dholland
328 1.91 dholland endptr = name + namelen;
329 1.91 dholland return namei_hash(name, &endptr);
330 1.90 dholland }
331 1.90 dholland
332 1.90 dholland /*
333 1.73 ad * Invalidate a cache entry and enqueue it for garbage collection.
334 1.103 dennis * The caller needs to hold namecache_lock or a per-cpu lock to hold
335 1.103 dennis * off cache_reclaim().
336 1.73 ad */
337 1.46 yamt static void
338 1.73 ad cache_invalidate(struct namecache *ncp)
339 1.46 yamt {
340 1.73 ad void *head;
341 1.46 yamt
342 1.73 ad KASSERT(mutex_owned(&ncp->nc_lock));
343 1.46 yamt
344 1.73 ad if (ncp->nc_dvp != NULL) {
345 1.108 christos SDT_PROBE(vfs, namecache, invalidate, done, ncp->nc_dvp,
346 1.108 christos 0, 0, 0, 0);
347 1.108 christos
348 1.73 ad ncp->nc_vp = NULL;
349 1.73 ad ncp->nc_dvp = NULL;
350 1.73 ad do {
351 1.73 ad head = cache_gcqueue;
352 1.73 ad ncp->nc_gcqueue = head;
353 1.73 ad } while (atomic_cas_ptr(&cache_gcqueue, head, ncp) != head);
354 1.73 ad atomic_inc_uint(&cache_gcpend);
355 1.73 ad }
356 1.73 ad }
357 1.46 yamt
358 1.73 ad /*
359 1.73 ad * Disassociate a namecache entry from any vnodes it is attached to,
360 1.73 ad * and remove from the global LRU list.
361 1.73 ad */
362 1.73 ad static void
363 1.73 ad cache_disassociate(struct namecache *ncp)
364 1.73 ad {
365 1.73 ad
366 1.73 ad KASSERT(mutex_owned(namecache_lock));
367 1.73 ad KASSERT(ncp->nc_dvp == NULL);
368 1.73 ad
369 1.73 ad if (ncp->nc_lru.tqe_prev != NULL) {
370 1.73 ad TAILQ_REMOVE(&nclruhead, ncp, nc_lru);
371 1.73 ad ncp->nc_lru.tqe_prev = NULL;
372 1.46 yamt }
373 1.46 yamt if (ncp->nc_vhash.le_prev != NULL) {
374 1.46 yamt LIST_REMOVE(ncp, nc_vhash);
375 1.46 yamt ncp->nc_vhash.le_prev = NULL;
376 1.46 yamt }
377 1.46 yamt if (ncp->nc_vlist.le_prev != NULL) {
378 1.46 yamt LIST_REMOVE(ncp, nc_vlist);
379 1.46 yamt ncp->nc_vlist.le_prev = NULL;
380 1.46 yamt }
381 1.46 yamt if (ncp->nc_dvlist.le_prev != NULL) {
382 1.46 yamt LIST_REMOVE(ncp, nc_dvlist);
383 1.46 yamt ncp->nc_dvlist.le_prev = NULL;
384 1.46 yamt }
385 1.46 yamt }
386 1.46 yamt
387 1.73 ad /*
388 1.73 ad * Lock all CPUs to prevent any cache lookup activity. Conceptually,
389 1.73 ad * this locks out all "readers".
390 1.73 ad */
391 1.46 yamt static void
392 1.73 ad cache_lock_cpus(void)
393 1.46 yamt {
394 1.73 ad CPU_INFO_ITERATOR cii;
395 1.73 ad struct cpu_info *ci;
396 1.77 ad struct nchcpu *cpup;
397 1.46 yamt
398 1.103 dennis /*
399 1.103 dennis * Lock out all CPUs first, then harvest per-cpu stats. This
400 1.103 dennis * is probably not quite as cache-efficient as doing the lock
401 1.103 dennis * and harvest at the same time, but allows cache_stat_sysctl()
402 1.103 dennis * to make do with a per-cpu lock.
403 1.103 dennis */
404 1.73 ad for (CPU_INFO_FOREACH(cii, ci)) {
405 1.77 ad cpup = ci->ci_data.cpu_nch;
406 1.77 ad mutex_enter(&cpup->cpu_lock);
407 1.103 dennis }
408 1.103 dennis for (CPU_INFO_FOREACH(cii, ci)) {
409 1.103 dennis cpup = ci->ci_data.cpu_nch;
410 1.103 dennis UPDATE(cpup, ncs_goodhits);
411 1.103 dennis UPDATE(cpup, ncs_neghits);
412 1.103 dennis UPDATE(cpup, ncs_badhits);
413 1.103 dennis UPDATE(cpup, ncs_falsehits);
414 1.103 dennis UPDATE(cpup, ncs_miss);
415 1.103 dennis UPDATE(cpup, ncs_long);
416 1.103 dennis UPDATE(cpup, ncs_pass2);
417 1.103 dennis UPDATE(cpup, ncs_2passes);
418 1.103 dennis UPDATE(cpup, ncs_revhits);
419 1.103 dennis UPDATE(cpup, ncs_revmiss);
420 1.73 ad }
421 1.46 yamt }
422 1.46 yamt
423 1.73 ad /*
424 1.73 ad * Release all CPU locks.
425 1.73 ad */
426 1.73 ad static void
427 1.73 ad cache_unlock_cpus(void)
428 1.73 ad {
429 1.73 ad CPU_INFO_ITERATOR cii;
430 1.73 ad struct cpu_info *ci;
431 1.77 ad struct nchcpu *cpup;
432 1.73 ad
433 1.73 ad for (CPU_INFO_FOREACH(cii, ci)) {
434 1.77 ad cpup = ci->ci_data.cpu_nch;
435 1.77 ad mutex_exit(&cpup->cpu_lock);
436 1.73 ad }
437 1.73 ad }
438 1.73 ad
439 1.73 ad /*
440 1.103 dennis * Find a single cache entry and return it locked.
441 1.103 dennis * The caller needs to hold namecache_lock or a per-cpu lock to hold
442 1.103 dennis * off cache_reclaim().
443 1.73 ad */
444 1.73 ad static struct namecache *
445 1.91 dholland cache_lookup_entry(const struct vnode *dvp, const char *name, size_t namelen)
446 1.55 yamt {
447 1.55 yamt struct nchashhead *ncpp;
448 1.55 yamt struct namecache *ncp;
449 1.90 dholland nchash_t hash;
450 1.55 yamt
451 1.84 yamt KASSERT(dvp != NULL);
452 1.91 dholland hash = cache_hash(name, namelen);
453 1.90 dholland ncpp = &nchashtbl[NCHASH2(hash, dvp)];
454 1.55 yamt
455 1.55 yamt LIST_FOREACH(ncp, ncpp, nc_hash) {
456 1.105 dennis membar_datadep_consumer(); /* for Alpha... */
457 1.73 ad if (ncp->nc_dvp != dvp ||
458 1.91 dholland ncp->nc_nlen != namelen ||
459 1.91 dholland memcmp(ncp->nc_name, name, (u_int)ncp->nc_nlen))
460 1.73 ad continue;
461 1.73 ad mutex_enter(&ncp->nc_lock);
462 1.77 ad if (__predict_true(ncp->nc_dvp == dvp)) {
463 1.73 ad ncp->nc_hittime = hardclock_ticks;
464 1.108 christos SDT_PROBE(vfs, namecache, lookup, hit, dvp,
465 1.108 christos name, namelen, 0, 0);
466 1.73 ad return ncp;
467 1.73 ad }
468 1.73 ad /* Raced: entry has been nullified. */
469 1.73 ad mutex_exit(&ncp->nc_lock);
470 1.55 yamt }
471 1.55 yamt
472 1.108 christos SDT_PROBE(vfs, namecache, lookup, miss, dvp,
473 1.108 christos name, namelen, 0, 0);
474 1.73 ad return NULL;
475 1.55 yamt }
476 1.55 yamt
477 1.1 cgd /*
478 1.1 cgd * Look for a the name in the cache. We don't do this
479 1.1 cgd * if the segment name is long, simply so the cache can avoid
480 1.1 cgd * holding long names (which would either waste space, or
481 1.1 cgd * add greatly to the complexity).
482 1.1 cgd *
483 1.90 dholland * Lookup is called with DVP pointing to the directory to search,
484 1.90 dholland * and CNP providing the name of the entry being sought: cn_nameptr
485 1.90 dholland * is the name, cn_namelen is its length, and cn_flags is the flags
486 1.90 dholland * word from the namei operation.
487 1.90 dholland *
488 1.90 dholland * DVP must be locked.
489 1.90 dholland *
490 1.90 dholland * There are three possible non-error return states:
491 1.90 dholland * 1. Nothing was found in the cache. Nothing is known about
492 1.90 dholland * the requested name.
493 1.90 dholland * 2. A negative entry was found in the cache, meaning that the
494 1.90 dholland * requested name definitely does not exist.
495 1.90 dholland * 3. A positive entry was found in the cache, meaning that the
496 1.90 dholland * requested name does exist and that we are providing the
497 1.90 dholland * vnode.
498 1.90 dholland * In these cases the results are:
499 1.90 dholland * 1. 0 returned; VN is set to NULL.
500 1.90 dholland * 2. 1 returned; VN is set to NULL.
501 1.90 dholland * 3. 1 returned; VN is set to the vnode found.
502 1.90 dholland *
503 1.90 dholland * The additional result argument ISWHT is set to zero, unless a
504 1.90 dholland * negative entry is found that was entered as a whiteout, in which
505 1.90 dholland * case ISWHT is set to one.
506 1.90 dholland *
507 1.90 dholland * The ISWHT_RET argument pointer may be null. In this case an
508 1.90 dholland * assertion is made that the whiteout flag is not set. File systems
509 1.90 dholland * that do not support whiteouts can/should do this.
510 1.90 dholland *
511 1.90 dholland * Filesystems that do support whiteouts should add ISWHITEOUT to
512 1.90 dholland * cnp->cn_flags if ISWHT comes back nonzero.
513 1.90 dholland *
514 1.90 dholland * When a vnode is returned, it is locked, as per the vnode lookup
515 1.90 dholland * locking protocol.
516 1.90 dholland *
517 1.90 dholland * There is no way for this function to fail, in the sense of
518 1.90 dholland * generating an error that requires aborting the namei operation.
519 1.90 dholland *
520 1.90 dholland * (Prior to October 2012, this function returned an integer status,
521 1.90 dholland * and a vnode, and mucked with the flags word in CNP for whiteouts.
522 1.90 dholland * The integer status was -1 for "nothing found", ENOENT for "a
523 1.90 dholland * negative entry found", 0 for "a positive entry found", and possibly
524 1.90 dholland * other errors, and the value of VN might or might not have been set
525 1.90 dholland * depending on what error occurred.)
526 1.1 cgd */
527 1.113 riastrad bool
528 1.91 dholland cache_lookup(struct vnode *dvp, const char *name, size_t namelen,
529 1.91 dholland uint32_t nameiop, uint32_t cnflags,
530 1.90 dholland int *iswht_ret, struct vnode **vn_ret)
531 1.1 cgd {
532 1.23 augustss struct namecache *ncp;
533 1.20 jdolecek struct vnode *vp;
534 1.77 ad struct nchcpu *cpup;
535 1.113 riastrad int error;
536 1.113 riastrad bool hit;
537 1.103 dennis
538 1.1 cgd
539 1.90 dholland /* Establish default result values */
540 1.90 dholland if (iswht_ret != NULL) {
541 1.90 dholland *iswht_ret = 0;
542 1.90 dholland }
543 1.90 dholland *vn_ret = NULL;
544 1.90 dholland
545 1.77 ad if (__predict_false(!doingcache)) {
546 1.113 riastrad return false;
547 1.8 cgd }
548 1.39 pk
549 1.77 ad cpup = curcpu()->ci_data.cpu_nch;
550 1.102 dennis mutex_enter(&cpup->cpu_lock);
551 1.91 dholland if (__predict_false(namelen > NCHNAMLEN)) {
552 1.108 christos SDT_PROBE(vfs, namecache, lookup, toolong, dvp,
553 1.108 christos name, namelen, 0, 0);
554 1.103 dennis COUNT(cpup, ncs_long);
555 1.77 ad mutex_exit(&cpup->cpu_lock);
556 1.90 dholland /* found nothing */
557 1.113 riastrad return false;
558 1.1 cgd }
559 1.103 dennis
560 1.91 dholland ncp = cache_lookup_entry(dvp, name, namelen);
561 1.77 ad if (__predict_false(ncp == NULL)) {
562 1.103 dennis COUNT(cpup, ncs_miss);
563 1.77 ad mutex_exit(&cpup->cpu_lock);
564 1.90 dholland /* found nothing */
565 1.113 riastrad return false;
566 1.1 cgd }
567 1.91 dholland if ((cnflags & MAKEENTRY) == 0) {
568 1.103 dennis COUNT(cpup, ncs_badhits);
569 1.77 ad /*
570 1.77 ad * Last component and we are renaming or deleting,
571 1.77 ad * the cache entry is invalid, or otherwise don't
572 1.77 ad * want cache entry to exist.
573 1.77 ad */
574 1.77 ad cache_invalidate(ncp);
575 1.77 ad mutex_exit(&ncp->nc_lock);
576 1.102 dennis mutex_exit(&cpup->cpu_lock);
577 1.90 dholland /* found nothing */
578 1.113 riastrad return false;
579 1.90 dholland }
580 1.90 dholland if (ncp->nc_vp == NULL) {
581 1.90 dholland if (iswht_ret != NULL) {
582 1.90 dholland /*
583 1.90 dholland * Restore the ISWHITEOUT flag saved earlier.
584 1.90 dholland */
585 1.90 dholland KASSERT((ncp->nc_flags & ~ISWHITEOUT) == 0);
586 1.90 dholland *iswht_ret = (ncp->nc_flags & ISWHITEOUT) != 0;
587 1.90 dholland } else {
588 1.90 dholland KASSERT(ncp->nc_flags == 0);
589 1.90 dholland }
590 1.90 dholland
591 1.91 dholland if (__predict_true(nameiop != CREATE ||
592 1.91 dholland (cnflags & ISLASTCN) == 0)) {
593 1.103 dennis COUNT(cpup, ncs_neghits);
594 1.90 dholland /* found neg entry; vn is already null from above */
595 1.113 riastrad hit = true;
596 1.20 jdolecek } else {
597 1.103 dennis COUNT(cpup, ncs_badhits);
598 1.77 ad /*
599 1.109 dholland * Last component and we are preparing to create
600 1.109 dholland * the named object, so flush the negative cache
601 1.109 dholland * entry.
602 1.77 ad */
603 1.77 ad cache_invalidate(ncp);
604 1.90 dholland /* found nothing */
605 1.113 riastrad hit = false;
606 1.20 jdolecek }
607 1.103 dennis mutex_exit(&ncp->nc_lock);
608 1.103 dennis mutex_exit(&cpup->cpu_lock);
609 1.113 riastrad return hit;
610 1.20 jdolecek }
611 1.20 jdolecek
612 1.20 jdolecek vp = ncp->nc_vp;
613 1.92 hannken mutex_enter(vp->v_interlock);
614 1.92 hannken mutex_exit(&ncp->nc_lock);
615 1.102 dennis mutex_exit(&cpup->cpu_lock);
616 1.103 dennis
617 1.103 dennis /*
618 1.111 hannken * Unlocked except for the vnode interlock. Call vcache_tryvget().
619 1.103 dennis */
620 1.111 hannken error = vcache_tryvget(vp);
621 1.92 hannken if (error) {
622 1.92 hannken KASSERT(error == EBUSY);
623 1.92 hannken /*
624 1.92 hannken * This vnode is being cleaned out.
625 1.92 hannken * XXX badhits?
626 1.92 hannken */
627 1.103 dennis COUNT_UNL(cpup, ncs_falsehits);
628 1.92 hannken /* found nothing */
629 1.113 riastrad return false;
630 1.77 ad }
631 1.101 christos
632 1.103 dennis COUNT_UNL(cpup, ncs_goodhits);
633 1.101 christos /* found it */
634 1.101 christos *vn_ret = vp;
635 1.113 riastrad return true;
636 1.1 cgd }
637 1.1 cgd
638 1.103 dennis
639 1.103 dennis /*
640 1.103 dennis * Cut-'n-pasted version of the above without the nameiop argument.
641 1.103 dennis */
642 1.113 riastrad bool
643 1.91 dholland cache_lookup_raw(struct vnode *dvp, const char *name, size_t namelen,
644 1.91 dholland uint32_t cnflags,
645 1.90 dholland int *iswht_ret, struct vnode **vn_ret)
646 1.61 yamt {
647 1.61 yamt struct namecache *ncp;
648 1.61 yamt struct vnode *vp;
649 1.77 ad struct nchcpu *cpup;
650 1.101 christos int error;
651 1.61 yamt
652 1.90 dholland /* Establish default results. */
653 1.90 dholland if (iswht_ret != NULL) {
654 1.90 dholland *iswht_ret = 0;
655 1.90 dholland }
656 1.90 dholland *vn_ret = NULL;
657 1.90 dholland
658 1.77 ad if (__predict_false(!doingcache)) {
659 1.90 dholland /* found nothing */
660 1.113 riastrad return false;
661 1.61 yamt }
662 1.61 yamt
663 1.77 ad cpup = curcpu()->ci_data.cpu_nch;
664 1.102 dennis mutex_enter(&cpup->cpu_lock);
665 1.91 dholland if (__predict_false(namelen > NCHNAMLEN)) {
666 1.103 dennis COUNT(cpup, ncs_long);
667 1.77 ad mutex_exit(&cpup->cpu_lock);
668 1.90 dholland /* found nothing */
669 1.113 riastrad return false;
670 1.61 yamt }
671 1.91 dholland ncp = cache_lookup_entry(dvp, name, namelen);
672 1.77 ad if (__predict_false(ncp == NULL)) {
673 1.103 dennis COUNT(cpup, ncs_miss);
674 1.77 ad mutex_exit(&cpup->cpu_lock);
675 1.90 dholland /* found nothing */
676 1.113 riastrad return false;
677 1.61 yamt }
678 1.61 yamt vp = ncp->nc_vp;
679 1.61 yamt if (vp == NULL) {
680 1.61 yamt /*
681 1.61 yamt * Restore the ISWHITEOUT flag saved earlier.
682 1.61 yamt */
683 1.90 dholland if (iswht_ret != NULL) {
684 1.90 dholland KASSERT((ncp->nc_flags & ~ISWHITEOUT) == 0);
685 1.90 dholland /*cnp->cn_flags |= ncp->nc_flags;*/
686 1.90 dholland *iswht_ret = (ncp->nc_flags & ISWHITEOUT) != 0;
687 1.90 dholland }
688 1.103 dennis COUNT(cpup, ncs_neghits);
689 1.102 dennis mutex_exit(&ncp->nc_lock);
690 1.101 christos mutex_exit(&cpup->cpu_lock);
691 1.90 dholland /* found negative entry; vn is already null from above */
692 1.113 riastrad return true;
693 1.61 yamt }
694 1.92 hannken mutex_enter(vp->v_interlock);
695 1.92 hannken mutex_exit(&ncp->nc_lock);
696 1.102 dennis mutex_exit(&cpup->cpu_lock);
697 1.103 dennis
698 1.103 dennis /*
699 1.111 hannken * Unlocked except for the vnode interlock. Call vcache_tryvget().
700 1.103 dennis */
701 1.111 hannken error = vcache_tryvget(vp);
702 1.92 hannken if (error) {
703 1.92 hannken KASSERT(error == EBUSY);
704 1.92 hannken /*
705 1.92 hannken * This vnode is being cleaned out.
706 1.92 hannken * XXX badhits?
707 1.92 hannken */
708 1.103 dennis COUNT_UNL(cpup, ncs_falsehits);
709 1.92 hannken /* found nothing */
710 1.113 riastrad return false;
711 1.61 yamt }
712 1.101 christos
713 1.103 dennis COUNT_UNL(cpup, ncs_goodhits); /* XXX can be "badhits" */
714 1.101 christos /* found it */
715 1.101 christos *vn_ret = vp;
716 1.113 riastrad return true;
717 1.61 yamt }
718 1.61 yamt
719 1.1 cgd /*
720 1.19 sommerfe * Scan cache looking for name of directory entry pointing at vp.
721 1.19 sommerfe *
722 1.86 hannken * If the lookup succeeds the vnode is referenced and stored in dvpp.
723 1.19 sommerfe *
724 1.19 sommerfe * If bufp is non-NULL, also place the name in the buffer which starts
725 1.19 sommerfe * at bufp, immediately before *bpp, and move bpp backwards to point
726 1.19 sommerfe * at the start of it. (Yes, this is a little baroque, but it's done
727 1.19 sommerfe * this way to cater to the whims of getcwd).
728 1.19 sommerfe *
729 1.19 sommerfe * Returns 0 on success, -1 on cache miss, positive errno on failure.
730 1.19 sommerfe */
731 1.19 sommerfe int
732 1.34 enami cache_revlookup(struct vnode *vp, struct vnode **dvpp, char **bpp, char *bufp)
733 1.19 sommerfe {
734 1.19 sommerfe struct namecache *ncp;
735 1.19 sommerfe struct vnode *dvp;
736 1.103 dennis struct ncvhashhead *nvcpp;
737 1.95 joerg struct nchcpu *cpup;
738 1.34 enami char *bp;
739 1.86 hannken int error, nlen;
740 1.34 enami
741 1.19 sommerfe if (!doingcache)
742 1.19 sommerfe goto out;
743 1.19 sommerfe
744 1.30 chs nvcpp = &ncvhashtbl[NCVHASH(vp)];
745 1.103 dennis
746 1.103 dennis /*
747 1.103 dennis * We increment counters in the local CPU's per-cpu stats.
748 1.103 dennis * We don't take the per-cpu lock, however, since this function
749 1.103 dennis * is the only place these counters are incremented so no one
750 1.103 dennis * will be racing with us to increment them.
751 1.103 dennis */
752 1.95 joerg cpup = curcpu()->ci_data.cpu_nch;
753 1.73 ad mutex_enter(namecache_lock);
754 1.27 chs LIST_FOREACH(ncp, nvcpp, nc_vhash) {
755 1.73 ad mutex_enter(&ncp->nc_lock);
756 1.34 enami if (ncp->nc_vp == vp &&
757 1.34 enami (dvp = ncp->nc_dvp) != NULL &&
758 1.47 yamt dvp != vp) { /* avoid pesky . entries.. */
759 1.34 enami
760 1.19 sommerfe #ifdef DIAGNOSTIC
761 1.34 enami if (ncp->nc_nlen == 1 &&
762 1.34 enami ncp->nc_name[0] == '.')
763 1.19 sommerfe panic("cache_revlookup: found entry for .");
764 1.19 sommerfe
765 1.34 enami if (ncp->nc_nlen == 2 &&
766 1.34 enami ncp->nc_name[0] == '.' &&
767 1.34 enami ncp->nc_name[1] == '.')
768 1.19 sommerfe panic("cache_revlookup: found entry for ..");
769 1.19 sommerfe #endif
770 1.103 dennis COUNT(cpup, ncs_revhits);
771 1.86 hannken nlen = ncp->nc_nlen;
772 1.19 sommerfe
773 1.19 sommerfe if (bufp) {
774 1.19 sommerfe bp = *bpp;
775 1.86 hannken bp -= nlen;
776 1.19 sommerfe if (bp <= bufp) {
777 1.34 enami *dvpp = NULL;
778 1.73 ad mutex_exit(&ncp->nc_lock);
779 1.73 ad mutex_exit(namecache_lock);
780 1.108 christos SDT_PROBE(vfs, namecache, revlookup,
781 1.108 christos fail, vp, ERANGE, 0, 0, 0);
782 1.34 enami return (ERANGE);
783 1.19 sommerfe }
784 1.86 hannken memcpy(bp, ncp->nc_name, nlen);
785 1.19 sommerfe *bpp = bp;
786 1.19 sommerfe }
787 1.34 enami
788 1.92 hannken mutex_enter(dvp->v_interlock);
789 1.110 msaitoh mutex_exit(&ncp->nc_lock);
790 1.92 hannken mutex_exit(namecache_lock);
791 1.111 hannken error = vcache_tryvget(dvp);
792 1.92 hannken if (error) {
793 1.92 hannken KASSERT(error == EBUSY);
794 1.92 hannken if (bufp)
795 1.92 hannken (*bpp) += nlen;
796 1.92 hannken *dvpp = NULL;
797 1.108 christos SDT_PROBE(vfs, namecache, revlookup, fail, vp,
798 1.108 christos error, 0, 0, 0);
799 1.92 hannken return -1;
800 1.86 hannken }
801 1.19 sommerfe *dvpp = dvp;
802 1.108 christos SDT_PROBE(vfs, namecache, revlookup, success, vp, dvp,
803 1.108 christos 0, 0, 0);
804 1.34 enami return (0);
805 1.19 sommerfe }
806 1.73 ad mutex_exit(&ncp->nc_lock);
807 1.19 sommerfe }
808 1.103 dennis COUNT(cpup, ncs_revmiss);
809 1.73 ad mutex_exit(namecache_lock);
810 1.19 sommerfe out:
811 1.34 enami *dvpp = NULL;
812 1.34 enami return (-1);
813 1.19 sommerfe }
814 1.19 sommerfe
815 1.19 sommerfe /*
816 1.1 cgd * Add an entry to the cache
817 1.1 cgd */
818 1.13 christos void
819 1.91 dholland cache_enter(struct vnode *dvp, struct vnode *vp,
820 1.91 dholland const char *name, size_t namelen, uint32_t cnflags)
821 1.1 cgd {
822 1.23 augustss struct namecache *ncp;
823 1.59 yamt struct namecache *oncp;
824 1.23 augustss struct nchashhead *ncpp;
825 1.23 augustss struct ncvhashhead *nvcpp;
826 1.90 dholland nchash_t hash;
827 1.1 cgd
828 1.89 rmind /* First, check whether we can/should add a cache entry. */
829 1.91 dholland if ((cnflags & MAKEENTRY) == 0 ||
830 1.91 dholland __predict_false(namelen > NCHNAMLEN || !doingcache)) {
831 1.108 christos SDT_PROBE(vfs, namecache, enter, toolong, vp, name, namelen,
832 1.108 christos 0, 0);
833 1.1 cgd return;
834 1.89 rmind }
835 1.58 yamt
836 1.108 christos SDT_PROBE(vfs, namecache, enter, done, vp, name, namelen, 0, 0);
837 1.73 ad if (numcache > desiredvnodes) {
838 1.73 ad mutex_enter(namecache_lock);
839 1.73 ad cache_ev_forced.ev_count++;
840 1.73 ad cache_reclaim();
841 1.73 ad mutex_exit(namecache_lock);
842 1.39 pk }
843 1.57 pk
844 1.73 ad ncp = pool_cache_get(namecache_cache, PR_WAITOK);
845 1.73 ad mutex_enter(namecache_lock);
846 1.73 ad numcache++;
847 1.73 ad
848 1.59 yamt /*
849 1.59 yamt * Concurrent lookups in the same directory may race for a
850 1.59 yamt * cache entry. if there's a duplicated entry, free it.
851 1.59 yamt */
852 1.91 dholland oncp = cache_lookup_entry(dvp, name, namelen);
853 1.59 yamt if (oncp) {
854 1.73 ad cache_invalidate(oncp);
855 1.73 ad mutex_exit(&oncp->nc_lock);
856 1.59 yamt }
857 1.59 yamt
858 1.34 enami /* Grab the vnode we just found. */
859 1.73 ad mutex_enter(&ncp->nc_lock);
860 1.5 mycroft ncp->nc_vp = vp;
861 1.73 ad ncp->nc_flags = 0;
862 1.73 ad ncp->nc_hittime = 0;
863 1.73 ad ncp->nc_gcqueue = NULL;
864 1.47 yamt if (vp == NULL) {
865 1.11 mycroft /*
866 1.11 mycroft * For negative hits, save the ISWHITEOUT flag so we can
867 1.11 mycroft * restore it later when the cache entry is used again.
868 1.11 mycroft */
869 1.91 dholland ncp->nc_flags = cnflags & ISWHITEOUT;
870 1.11 mycroft }
871 1.89 rmind
872 1.34 enami /* Fill in cache info. */
873 1.5 mycroft ncp->nc_dvp = dvp;
874 1.112 hannken LIST_INSERT_HEAD(&VNODE_TO_VIMPL(dvp)->vi_dnclist, ncp, nc_dvlist);
875 1.46 yamt if (vp)
876 1.112 hannken LIST_INSERT_HEAD(&VNODE_TO_VIMPL(vp)->vi_nclist, ncp, nc_vlist);
877 1.73 ad else {
878 1.73 ad ncp->nc_vlist.le_prev = NULL;
879 1.73 ad ncp->nc_vlist.le_next = NULL;
880 1.73 ad }
881 1.91 dholland KASSERT(namelen <= NCHNAMLEN);
882 1.91 dholland ncp->nc_nlen = namelen;
883 1.91 dholland memcpy(ncp->nc_name, name, (unsigned)ncp->nc_nlen);
884 1.73 ad TAILQ_INSERT_TAIL(&nclruhead, ncp, nc_lru);
885 1.91 dholland hash = cache_hash(name, namelen);
886 1.90 dholland ncpp = &nchashtbl[NCHASH2(hash, dvp)];
887 1.73 ad
888 1.73 ad /*
889 1.73 ad * Flush updates before making visible in table. No need for a
890 1.73 ad * memory barrier on the other side: to see modifications the
891 1.73 ad * list must be followed, meaning a dependent pointer load.
892 1.74 ad * The below is LIST_INSERT_HEAD() inlined, with the memory
893 1.74 ad * barrier included in the correct place.
894 1.73 ad */
895 1.74 ad if ((ncp->nc_hash.le_next = ncpp->lh_first) != NULL)
896 1.74 ad ncpp->lh_first->nc_hash.le_prev = &ncp->nc_hash.le_next;
897 1.74 ad ncp->nc_hash.le_prev = &ncpp->lh_first;
898 1.73 ad membar_producer();
899 1.74 ad ncpp->lh_first = ncp;
900 1.19 sommerfe
901 1.34 enami ncp->nc_vhash.le_prev = NULL;
902 1.34 enami ncp->nc_vhash.le_next = NULL;
903 1.34 enami
904 1.19 sommerfe /*
905 1.19 sommerfe * Create reverse-cache entries (used in getcwd) for directories.
906 1.66 christos * (and in linux procfs exe node)
907 1.19 sommerfe */
908 1.33 enami if (vp != NULL &&
909 1.33 enami vp != dvp &&
910 1.29 fvdl #ifndef NAMECACHE_ENTER_REVERSE
911 1.33 enami vp->v_type == VDIR &&
912 1.29 fvdl #endif
913 1.33 enami (ncp->nc_nlen > 2 ||
914 1.33 enami (ncp->nc_nlen > 1 && ncp->nc_name[1] != '.') ||
915 1.33 enami (/* ncp->nc_nlen > 0 && */ ncp->nc_name[0] != '.'))) {
916 1.30 chs nvcpp = &ncvhashtbl[NCVHASH(vp)];
917 1.19 sommerfe LIST_INSERT_HEAD(nvcpp, ncp, nc_vhash);
918 1.19 sommerfe }
919 1.73 ad mutex_exit(&ncp->nc_lock);
920 1.73 ad mutex_exit(namecache_lock);
921 1.1 cgd }
922 1.1 cgd
923 1.1 cgd /*
924 1.1 cgd * Name cache initialization, from vfs_init() when we are booting
925 1.1 cgd */
926 1.13 christos void
927 1.34 enami nchinit(void)
928 1.1 cgd {
929 1.73 ad int error;
930 1.1 cgd
931 1.89 rmind TAILQ_INIT(&nclruhead);
932 1.116 riastrad namecache_cache = pool_cache_init(sizeof(struct namecache),
933 1.73 ad coherency_unit, 0, 0, "ncache", NULL, IPL_NONE, cache_ctor,
934 1.73 ad cache_dtor, NULL);
935 1.71 ad KASSERT(namecache_cache != NULL);
936 1.71 ad
937 1.73 ad namecache_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
938 1.73 ad
939 1.76 ad nchashtbl = hashinit(desiredvnodes, HASH_LIST, true, &nchash);
940 1.26 ad ncvhashtbl =
941 1.29 fvdl #ifdef NAMECACHE_ENTER_REVERSE
942 1.76 ad hashinit(desiredvnodes, HASH_LIST, true, &ncvhash);
943 1.29 fvdl #else
944 1.76 ad hashinit(desiredvnodes/8, HASH_LIST, true, &ncvhash);
945 1.29 fvdl #endif
946 1.73 ad
947 1.73 ad error = kthread_create(PRI_VM, KTHREAD_MPSAFE, NULL, cache_thread,
948 1.73 ad NULL, NULL, "cachegc");
949 1.73 ad if (error != 0)
950 1.73 ad panic("nchinit %d", error);
951 1.73 ad
952 1.73 ad evcnt_attach_dynamic(&cache_ev_scan, EVCNT_TYPE_MISC, NULL,
953 1.73 ad "namecache", "entries scanned");
954 1.73 ad evcnt_attach_dynamic(&cache_ev_gc, EVCNT_TYPE_MISC, NULL,
955 1.73 ad "namecache", "entries collected");
956 1.73 ad evcnt_attach_dynamic(&cache_ev_over, EVCNT_TYPE_MISC, NULL,
957 1.73 ad "namecache", "over scan target");
958 1.73 ad evcnt_attach_dynamic(&cache_ev_under, EVCNT_TYPE_MISC, NULL,
959 1.73 ad "namecache", "under scan target");
960 1.73 ad evcnt_attach_dynamic(&cache_ev_forced, EVCNT_TYPE_MISC, NULL,
961 1.73 ad "namecache", "forced reclaims");
962 1.104 pooka
963 1.104 pooka sysctl_cache_stat_setup();
964 1.73 ad }
965 1.73 ad
966 1.73 ad static int
967 1.73 ad cache_ctor(void *arg, void *obj, int flag)
968 1.73 ad {
969 1.73 ad struct namecache *ncp;
970 1.73 ad
971 1.73 ad ncp = obj;
972 1.73 ad mutex_init(&ncp->nc_lock, MUTEX_DEFAULT, IPL_NONE);
973 1.73 ad
974 1.73 ad return 0;
975 1.73 ad }
976 1.73 ad
977 1.73 ad static void
978 1.73 ad cache_dtor(void *arg, void *obj)
979 1.73 ad {
980 1.73 ad struct namecache *ncp;
981 1.73 ad
982 1.73 ad ncp = obj;
983 1.73 ad mutex_destroy(&ncp->nc_lock);
984 1.73 ad }
985 1.73 ad
986 1.73 ad /*
987 1.73 ad * Called once for each CPU in the system as attached.
988 1.73 ad */
989 1.73 ad void
990 1.73 ad cache_cpu_init(struct cpu_info *ci)
991 1.73 ad {
992 1.77 ad struct nchcpu *cpup;
993 1.77 ad size_t sz;
994 1.73 ad
995 1.77 ad sz = roundup2(sizeof(*cpup), coherency_unit) + coherency_unit;
996 1.77 ad cpup = kmem_zalloc(sz, KM_SLEEP);
997 1.77 ad cpup = (void *)roundup2((uintptr_t)cpup, coherency_unit);
998 1.77 ad mutex_init(&cpup->cpu_lock, MUTEX_DEFAULT, IPL_NONE);
999 1.77 ad ci->ci_data.cpu_nch = cpup;
1000 1.30 chs }
1001 1.30 chs
1002 1.30 chs /*
1003 1.30 chs * Name cache reinitialization, for when the maximum number of vnodes increases.
1004 1.30 chs */
1005 1.30 chs void
1006 1.34 enami nchreinit(void)
1007 1.30 chs {
1008 1.30 chs struct namecache *ncp;
1009 1.30 chs struct nchashhead *oldhash1, *hash1;
1010 1.30 chs struct ncvhashhead *oldhash2, *hash2;
1011 1.36 thorpej u_long i, oldmask1, oldmask2, mask1, mask2;
1012 1.30 chs
1013 1.76 ad hash1 = hashinit(desiredvnodes, HASH_LIST, true, &mask1);
1014 1.30 chs hash2 =
1015 1.30 chs #ifdef NAMECACHE_ENTER_REVERSE
1016 1.76 ad hashinit(desiredvnodes, HASH_LIST, true, &mask2);
1017 1.30 chs #else
1018 1.76 ad hashinit(desiredvnodes/8, HASH_LIST, true, &mask2);
1019 1.30 chs #endif
1020 1.73 ad mutex_enter(namecache_lock);
1021 1.73 ad cache_lock_cpus();
1022 1.30 chs oldhash1 = nchashtbl;
1023 1.30 chs oldmask1 = nchash;
1024 1.30 chs nchashtbl = hash1;
1025 1.30 chs nchash = mask1;
1026 1.30 chs oldhash2 = ncvhashtbl;
1027 1.30 chs oldmask2 = ncvhash;
1028 1.30 chs ncvhashtbl = hash2;
1029 1.30 chs ncvhash = mask2;
1030 1.30 chs for (i = 0; i <= oldmask1; i++) {
1031 1.30 chs while ((ncp = LIST_FIRST(&oldhash1[i])) != NULL) {
1032 1.30 chs LIST_REMOVE(ncp, nc_hash);
1033 1.30 chs ncp->nc_hash.le_prev = NULL;
1034 1.30 chs }
1035 1.30 chs }
1036 1.30 chs for (i = 0; i <= oldmask2; i++) {
1037 1.30 chs while ((ncp = LIST_FIRST(&oldhash2[i])) != NULL) {
1038 1.30 chs LIST_REMOVE(ncp, nc_vhash);
1039 1.30 chs ncp->nc_vhash.le_prev = NULL;
1040 1.30 chs }
1041 1.30 chs }
1042 1.73 ad cache_unlock_cpus();
1043 1.73 ad mutex_exit(namecache_lock);
1044 1.76 ad hashdone(oldhash1, HASH_LIST, oldmask1);
1045 1.76 ad hashdone(oldhash2, HASH_LIST, oldmask2);
1046 1.1 cgd }
1047 1.1 cgd
1048 1.1 cgd /*
1049 1.1 cgd * Cache flush, a particular vnode; called when a vnode is renamed to
1050 1.1 cgd * hide entries that would now be invalid
1051 1.1 cgd */
1052 1.13 christos void
1053 1.91 dholland cache_purge1(struct vnode *vp, const char *name, size_t namelen, int flags)
1054 1.1 cgd {
1055 1.46 yamt struct namecache *ncp, *ncnext;
1056 1.1 cgd
1057 1.73 ad mutex_enter(namecache_lock);
1058 1.55 yamt if (flags & PURGE_PARENTS) {
1059 1.108 christos SDT_PROBE(vfs, namecache, purge, parents, vp, 0, 0, 0, 0);
1060 1.108 christos
1061 1.112 hannken for (ncp = LIST_FIRST(&VNODE_TO_VIMPL(vp)->vi_nclist);
1062 1.112 hannken ncp != NULL; ncp = ncnext) {
1063 1.55 yamt ncnext = LIST_NEXT(ncp, nc_vlist);
1064 1.73 ad mutex_enter(&ncp->nc_lock);
1065 1.73 ad cache_invalidate(ncp);
1066 1.73 ad mutex_exit(&ncp->nc_lock);
1067 1.73 ad cache_disassociate(ncp);
1068 1.55 yamt }
1069 1.55 yamt }
1070 1.55 yamt if (flags & PURGE_CHILDREN) {
1071 1.108 christos SDT_PROBE(vfs, namecache, purge, children, vp, 0, 0, 0, 0);
1072 1.112 hannken for (ncp = LIST_FIRST(&VNODE_TO_VIMPL(vp)->vi_dnclist);
1073 1.112 hannken ncp != NULL; ncp = ncnext) {
1074 1.55 yamt ncnext = LIST_NEXT(ncp, nc_dvlist);
1075 1.73 ad mutex_enter(&ncp->nc_lock);
1076 1.73 ad cache_invalidate(ncp);
1077 1.73 ad mutex_exit(&ncp->nc_lock);
1078 1.73 ad cache_disassociate(ncp);
1079 1.55 yamt }
1080 1.46 yamt }
1081 1.91 dholland if (name != NULL) {
1082 1.108 christos SDT_PROBE(vfs, namecache, purge, name, name, namelen, 0, 0, 0);
1083 1.91 dholland ncp = cache_lookup_entry(vp, name, namelen);
1084 1.55 yamt if (ncp) {
1085 1.73 ad cache_invalidate(ncp);
1086 1.83 yamt mutex_exit(&ncp->nc_lock);
1087 1.73 ad cache_disassociate(ncp);
1088 1.55 yamt }
1089 1.46 yamt }
1090 1.73 ad mutex_exit(namecache_lock);
1091 1.1 cgd }
1092 1.1 cgd
1093 1.1 cgd /*
1094 1.1 cgd * Cache flush, a whole filesystem; called when filesys is umounted to
1095 1.27 chs * remove entries that would now be invalid.
1096 1.1 cgd */
1097 1.13 christos void
1098 1.34 enami cache_purgevfs(struct mount *mp)
1099 1.1 cgd {
1100 1.23 augustss struct namecache *ncp, *nxtcp;
1101 1.1 cgd
1102 1.108 christos SDT_PROBE(vfs, namecache, purge, vfs, mp, 0, 0, 0, 0);
1103 1.73 ad mutex_enter(namecache_lock);
1104 1.73 ad for (ncp = TAILQ_FIRST(&nclruhead); ncp != NULL; ncp = nxtcp) {
1105 1.73 ad nxtcp = TAILQ_NEXT(ncp, nc_lru);
1106 1.73 ad mutex_enter(&ncp->nc_lock);
1107 1.73 ad if (ncp->nc_dvp != NULL && ncp->nc_dvp->v_mount == mp) {
1108 1.73 ad /* Free the resources we had. */
1109 1.73 ad cache_invalidate(ncp);
1110 1.73 ad cache_disassociate(ncp);
1111 1.73 ad }
1112 1.73 ad mutex_exit(&ncp->nc_lock);
1113 1.73 ad }
1114 1.73 ad cache_reclaim();
1115 1.73 ad mutex_exit(namecache_lock);
1116 1.73 ad }
1117 1.73 ad
1118 1.73 ad /*
1119 1.116 riastrad * Scan global list invalidating entries until we meet a preset target.
1120 1.73 ad * Prefer to invalidate entries that have not scored a hit within
1121 1.73 ad * cache_hottime seconds. We sort the LRU list only for this routine's
1122 1.73 ad * benefit.
1123 1.73 ad */
1124 1.73 ad static void
1125 1.73 ad cache_prune(int incache, int target)
1126 1.73 ad {
1127 1.73 ad struct namecache *ncp, *nxtcp, *sentinel;
1128 1.73 ad int items, recent, tryharder;
1129 1.73 ad
1130 1.73 ad KASSERT(mutex_owned(namecache_lock));
1131 1.73 ad
1132 1.108 christos SDT_PROBE(vfs, namecache, prune, done, incache, target, 0, 0, 0);
1133 1.73 ad items = 0;
1134 1.73 ad tryharder = 0;
1135 1.73 ad recent = hardclock_ticks - hz * cache_hottime;
1136 1.73 ad sentinel = NULL;
1137 1.27 chs for (ncp = TAILQ_FIRST(&nclruhead); ncp != NULL; ncp = nxtcp) {
1138 1.73 ad if (incache <= target)
1139 1.73 ad break;
1140 1.73 ad items++;
1141 1.27 chs nxtcp = TAILQ_NEXT(ncp, nc_lru);
1142 1.73 ad if (ncp == sentinel) {
1143 1.73 ad /*
1144 1.73 ad * If we looped back on ourself, then ignore
1145 1.73 ad * recent entries and purge whatever we find.
1146 1.73 ad */
1147 1.73 ad tryharder = 1;
1148 1.5 mycroft }
1149 1.93 hannken if (ncp->nc_dvp == NULL)
1150 1.93 hannken continue;
1151 1.81 yamt if (!tryharder && (ncp->nc_hittime - recent) > 0) {
1152 1.73 ad if (sentinel == NULL)
1153 1.73 ad sentinel = ncp;
1154 1.73 ad TAILQ_REMOVE(&nclruhead, ncp, nc_lru);
1155 1.73 ad TAILQ_INSERT_TAIL(&nclruhead, ncp, nc_lru);
1156 1.73 ad continue;
1157 1.73 ad }
1158 1.73 ad mutex_enter(&ncp->nc_lock);
1159 1.73 ad if (ncp->nc_dvp != NULL) {
1160 1.73 ad cache_invalidate(ncp);
1161 1.73 ad cache_disassociate(ncp);
1162 1.73 ad incache--;
1163 1.73 ad }
1164 1.73 ad mutex_exit(&ncp->nc_lock);
1165 1.73 ad }
1166 1.73 ad cache_ev_scan.ev_count += items;
1167 1.73 ad }
1168 1.73 ad
1169 1.73 ad /*
1170 1.73 ad * Collect dead cache entries from all CPUs and garbage collect.
1171 1.73 ad */
1172 1.73 ad static void
1173 1.73 ad cache_reclaim(void)
1174 1.73 ad {
1175 1.73 ad struct namecache *ncp, *next;
1176 1.73 ad int items;
1177 1.73 ad
1178 1.73 ad KASSERT(mutex_owned(namecache_lock));
1179 1.73 ad
1180 1.73 ad /*
1181 1.73 ad * If the number of extant entries not awaiting garbage collection
1182 1.73 ad * exceeds the high water mark, then reclaim stale entries until we
1183 1.73 ad * reach our low water mark.
1184 1.73 ad */
1185 1.73 ad items = numcache - cache_gcpend;
1186 1.73 ad if (items > (uint64_t)desiredvnodes * cache_hiwat / 100) {
1187 1.73 ad cache_prune(items, (int)((uint64_t)desiredvnodes *
1188 1.73 ad cache_lowat / 100));
1189 1.73 ad cache_ev_over.ev_count++;
1190 1.73 ad } else
1191 1.73 ad cache_ev_under.ev_count++;
1192 1.73 ad
1193 1.73 ad /*
1194 1.73 ad * Stop forward lookup activity on all CPUs and garbage collect dead
1195 1.73 ad * entries.
1196 1.73 ad */
1197 1.73 ad cache_lock_cpus();
1198 1.73 ad ncp = cache_gcqueue;
1199 1.73 ad cache_gcqueue = NULL;
1200 1.73 ad items = cache_gcpend;
1201 1.73 ad cache_gcpend = 0;
1202 1.73 ad while (ncp != NULL) {
1203 1.73 ad next = ncp->nc_gcqueue;
1204 1.73 ad cache_disassociate(ncp);
1205 1.73 ad KASSERT(ncp->nc_dvp == NULL);
1206 1.73 ad if (ncp->nc_hash.le_prev != NULL) {
1207 1.73 ad LIST_REMOVE(ncp, nc_hash);
1208 1.73 ad ncp->nc_hash.le_prev = NULL;
1209 1.73 ad }
1210 1.73 ad pool_cache_put(namecache_cache, ncp);
1211 1.73 ad ncp = next;
1212 1.73 ad }
1213 1.73 ad cache_unlock_cpus();
1214 1.73 ad numcache -= items;
1215 1.73 ad cache_ev_gc.ev_count += items;
1216 1.73 ad }
1217 1.73 ad
1218 1.73 ad /*
1219 1.73 ad * Cache maintainence thread, awakening once per second to:
1220 1.73 ad *
1221 1.73 ad * => keep number of entries below the high water mark
1222 1.73 ad * => sort pseudo-LRU list
1223 1.73 ad * => garbage collect dead entries
1224 1.73 ad */
1225 1.73 ad static void
1226 1.73 ad cache_thread(void *arg)
1227 1.73 ad {
1228 1.73 ad
1229 1.73 ad mutex_enter(namecache_lock);
1230 1.73 ad for (;;) {
1231 1.73 ad cache_reclaim();
1232 1.73 ad kpause("cachegc", false, hz, namecache_lock);
1233 1.1 cgd }
1234 1.1 cgd }
1235 1.19 sommerfe
1236 1.28 chs #ifdef DDB
1237 1.28 chs void
1238 1.28 chs namecache_print(struct vnode *vp, void (*pr)(const char *, ...))
1239 1.28 chs {
1240 1.28 chs struct vnode *dvp = NULL;
1241 1.28 chs struct namecache *ncp;
1242 1.28 chs
1243 1.28 chs TAILQ_FOREACH(ncp, &nclruhead, nc_lru) {
1244 1.73 ad if (ncp->nc_vp == vp && ncp->nc_dvp != NULL) {
1245 1.28 chs (*pr)("name %.*s\n", ncp->nc_nlen, ncp->nc_name);
1246 1.28 chs dvp = ncp->nc_dvp;
1247 1.28 chs }
1248 1.28 chs }
1249 1.28 chs if (dvp == NULL) {
1250 1.28 chs (*pr)("name not found\n");
1251 1.28 chs return;
1252 1.28 chs }
1253 1.28 chs vp = dvp;
1254 1.28 chs TAILQ_FOREACH(ncp, &nclruhead, nc_lru) {
1255 1.47 yamt if (ncp->nc_vp == vp) {
1256 1.28 chs (*pr)("parent %.*s\n", ncp->nc_nlen, ncp->nc_name);
1257 1.28 chs }
1258 1.28 chs }
1259 1.28 chs }
1260 1.28 chs #endif
1261 1.95 joerg
1262 1.95 joerg void
1263 1.95 joerg namecache_count_pass2(void)
1264 1.95 joerg {
1265 1.95 joerg struct nchcpu *cpup = curcpu()->ci_data.cpu_nch;
1266 1.95 joerg
1267 1.103 dennis COUNT_UNL(cpup, ncs_pass2);
1268 1.95 joerg }
1269 1.95 joerg
1270 1.95 joerg void
1271 1.95 joerg namecache_count_2passes(void)
1272 1.95 joerg {
1273 1.95 joerg struct nchcpu *cpup = curcpu()->ci_data.cpu_nch;
1274 1.95 joerg
1275 1.103 dennis COUNT_UNL(cpup, ncs_2passes);
1276 1.95 joerg }
1277 1.97 joerg
1278 1.103 dennis /*
1279 1.103 dennis * Fetch the current values of the stats. We return the most
1280 1.103 dennis * recent values harvested into nchstats by cache_reclaim(), which
1281 1.103 dennis * will be less than a second old.
1282 1.103 dennis */
1283 1.97 joerg static int
1284 1.97 joerg cache_stat_sysctl(SYSCTLFN_ARGS)
1285 1.97 joerg {
1286 1.103 dennis struct nchstats stats;
1287 1.103 dennis struct nchcpu *my_cpup;
1288 1.103 dennis #ifdef CACHE_STATS_CURRENT
1289 1.103 dennis CPU_INFO_ITERATOR cii;
1290 1.103 dennis struct cpu_info *ci;
1291 1.103 dennis #endif /* CACHE_STATS_CURRENT */
1292 1.97 joerg
1293 1.97 joerg if (oldp == NULL) {
1294 1.97 joerg *oldlenp = sizeof(stats);
1295 1.97 joerg return 0;
1296 1.97 joerg }
1297 1.97 joerg
1298 1.97 joerg if (*oldlenp < sizeof(stats)) {
1299 1.97 joerg *oldlenp = 0;
1300 1.97 joerg return 0;
1301 1.97 joerg }
1302 1.97 joerg
1303 1.103 dennis /*
1304 1.103 dennis * Take this CPU's per-cpu lock to hold off cache_reclaim()
1305 1.103 dennis * from doing a stats update while doing minimal damage to
1306 1.103 dennis * concurrent operations.
1307 1.103 dennis */
1308 1.103 dennis sysctl_unlock();
1309 1.103 dennis my_cpup = curcpu()->ci_data.cpu_nch;
1310 1.103 dennis mutex_enter(&my_cpup->cpu_lock);
1311 1.103 dennis stats = nchstats;
1312 1.103 dennis #ifdef CACHE_STATS_CURRENT
1313 1.103 dennis for (CPU_INFO_FOREACH(cii, ci)) {
1314 1.103 dennis struct nchcpu *cpup = ci->ci_data.cpu_nch;
1315 1.97 joerg
1316 1.103 dennis ADD(stats, cpup, ncs_goodhits);
1317 1.103 dennis ADD(stats, cpup, ncs_neghits);
1318 1.103 dennis ADD(stats, cpup, ncs_badhits);
1319 1.103 dennis ADD(stats, cpup, ncs_falsehits);
1320 1.103 dennis ADD(stats, cpup, ncs_miss);
1321 1.103 dennis ADD(stats, cpup, ncs_long);
1322 1.103 dennis ADD(stats, cpup, ncs_pass2);
1323 1.103 dennis ADD(stats, cpup, ncs_2passes);
1324 1.103 dennis ADD(stats, cpup, ncs_revhits);
1325 1.103 dennis ADD(stats, cpup, ncs_revmiss);
1326 1.103 dennis }
1327 1.103 dennis #endif /* CACHE_STATS_CURRENT */
1328 1.103 dennis mutex_exit(&my_cpup->cpu_lock);
1329 1.97 joerg sysctl_relock();
1330 1.97 joerg
1331 1.97 joerg *oldlenp = sizeof(stats);
1332 1.97 joerg return sysctl_copyout(l, &stats, oldp, sizeof(stats));
1333 1.97 joerg }
1334 1.97 joerg
1335 1.104 pooka static void
1336 1.104 pooka sysctl_cache_stat_setup(void)
1337 1.97 joerg {
1338 1.104 pooka
1339 1.104 pooka KASSERT(sysctllog == NULL);
1340 1.104 pooka sysctl_createv(&sysctllog, 0, NULL, NULL,
1341 1.97 joerg CTLFLAG_PERMANENT,
1342 1.97 joerg CTLTYPE_STRUCT, "namecache_stats",
1343 1.97 joerg SYSCTL_DESCR("namecache statistics"),
1344 1.97 joerg cache_stat_sysctl, 0, NULL, 0,
1345 1.97 joerg CTL_VFS, CTL_CREATE, CTL_EOL);
1346 1.97 joerg }
1347