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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