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vfs_vnode.c revision 1.144
      1 /*	$NetBSD: vfs_vnode.c,v 1.144 2022/07/18 04:30:30 thorpej Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 1997-2011, 2019, 2020 The NetBSD Foundation, Inc.
      5  * All rights reserved.
      6  *
      7  * This code is derived from software contributed to The NetBSD Foundation
      8  * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
      9  * NASA Ames Research Center, by Charles M. Hannum, and by Andrew Doran.
     10  *
     11  * Redistribution and use in source and binary forms, with or without
     12  * modification, are permitted provided that the following conditions
     13  * are met:
     14  * 1. Redistributions of source code must retain the above copyright
     15  *    notice, this list of conditions and the following disclaimer.
     16  * 2. Redistributions in binary form must reproduce the above copyright
     17  *    notice, this list of conditions and the following disclaimer in the
     18  *    documentation and/or other materials provided with the distribution.
     19  *
     20  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     21  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     22  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     23  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     24  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     25  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     26  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     27  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     28  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     29  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     30  * POSSIBILITY OF SUCH DAMAGE.
     31  */
     32 
     33 /*
     34  * Copyright (c) 1989, 1993
     35  *	The Regents of the University of California.  All rights reserved.
     36  * (c) UNIX System Laboratories, Inc.
     37  * All or some portions of this file are derived from material licensed
     38  * to the University of California by American Telephone and Telegraph
     39  * Co. or Unix System Laboratories, Inc. and are reproduced herein with
     40  * the permission of UNIX System Laboratories, Inc.
     41  *
     42  * Redistribution and use in source and binary forms, with or without
     43  * modification, are permitted provided that the following conditions
     44  * are met:
     45  * 1. Redistributions of source code must retain the above copyright
     46  *    notice, this list of conditions and the following disclaimer.
     47  * 2. Redistributions in binary form must reproduce the above copyright
     48  *    notice, this list of conditions and the following disclaimer in the
     49  *    documentation and/or other materials provided with the distribution.
     50  * 3. Neither the name of the University nor the names of its contributors
     51  *    may be used to endorse or promote products derived from this software
     52  *    without specific prior written permission.
     53  *
     54  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     55  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     56  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     57  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     58  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     59  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     60  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     61  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     62  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     63  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     64  * SUCH DAMAGE.
     65  *
     66  *	@(#)vfs_subr.c	8.13 (Berkeley) 4/18/94
     67  */
     68 
     69 /*
     70  * The vnode cache subsystem.
     71  *
     72  * Life-cycle
     73  *
     74  *	Normally, there are two points where new vnodes are created:
     75  *	VOP_CREATE(9) and VOP_LOOKUP(9).  The life-cycle of a vnode
     76  *	starts in one of the following ways:
     77  *
     78  *	- Allocation, via vcache_get(9) or vcache_new(9).
     79  *	- Reclamation of inactive vnode, via vcache_vget(9).
     80  *
     81  *	Recycle from a free list, via getnewvnode(9) -> getcleanvnode(9)
     82  *	was another, traditional way.  Currently, only the draining thread
     83  *	recycles the vnodes.  This behaviour might be revisited.
     84  *
     85  *	The life-cycle ends when the last reference is dropped, usually
     86  *	in VOP_REMOVE(9).  In such case, VOP_INACTIVE(9) is called to inform
     87  *	the file system that vnode is inactive.  Via this call, file system
     88  *	indicates whether vnode can be recycled (usually, it checks its own
     89  *	references, e.g. count of links, whether the file was removed).
     90  *
     91  *	Depending on indication, vnode can be put into a free list (cache),
     92  *	or cleaned via vcache_reclaim, which calls VOP_RECLAIM(9) to
     93  *	disassociate underlying file system from the vnode, and finally
     94  *	destroyed.
     95  *
     96  * Vnode state
     97  *
     98  *	Vnode is always in one of six states:
     99  *	- MARKER	This is a marker vnode to help list traversal.  It
    100  *			will never change its state.
    101  *	- LOADING	Vnode is associating underlying file system and not
    102  *			yet ready to use.
    103  *	- LOADED	Vnode has associated underlying file system and is
    104  *			ready to use.
    105  *	- BLOCKED	Vnode is active but cannot get new references.
    106  *	- RECLAIMING	Vnode is disassociating from the underlying file
    107  *			system.
    108  *	- RECLAIMED	Vnode has disassociated from underlying file system
    109  *			and is dead.
    110  *
    111  *	Valid state changes are:
    112  *	LOADING -> LOADED
    113  *			Vnode has been initialised in vcache_get() or
    114  *			vcache_new() and is ready to use.
    115  *	BLOCKED -> RECLAIMING
    116  *			Vnode starts disassociation from underlying file
    117  *			system in vcache_reclaim().
    118  *	RECLAIMING -> RECLAIMED
    119  *			Vnode finished disassociation from underlying file
    120  *			system in vcache_reclaim().
    121  *	LOADED -> BLOCKED
    122  *			Either vcache_rekey*() is changing the vnode key or
    123  *			vrelel() is about to call VOP_INACTIVE().
    124  *	BLOCKED -> LOADED
    125  *			The block condition is over.
    126  *	LOADING -> RECLAIMED
    127  *			Either vcache_get() or vcache_new() failed to
    128  *			associate the underlying file system or vcache_rekey*()
    129  *			drops a vnode used as placeholder.
    130  *
    131  *	Of these states LOADING, BLOCKED and RECLAIMING are intermediate
    132  *	and it is possible to wait for state change.
    133  *
    134  *	State is protected with v_interlock with one exception:
    135  *	to change from LOADING both v_interlock and vcache_lock must be held
    136  *	so it is possible to check "state == LOADING" without holding
    137  *	v_interlock.  See vcache_get() for details.
    138  *
    139  * Reference counting
    140  *
    141  *	Vnode is considered active, if reference count (vnode_t::v_usecount)
    142  *	is non-zero.  It is maintained using: vref(9) and vrele(9), as well
    143  *	as vput(9), routines.  Common points holding references are e.g.
    144  *	file openings, current working directory, mount points, etc.
    145  *
    146  *	v_usecount is adjusted with atomic operations, however to change
    147  *	from a non-zero value to zero the interlock must also be held.
    148  */
    149 
    150 #include <sys/cdefs.h>
    151 __KERNEL_RCSID(0, "$NetBSD: vfs_vnode.c,v 1.144 2022/07/18 04:30:30 thorpej Exp $");
    152 
    153 #ifdef _KERNEL_OPT
    154 #include "opt_pax.h"
    155 #endif
    156 
    157 #include <sys/param.h>
    158 #include <sys/kernel.h>
    159 
    160 #include <sys/atomic.h>
    161 #include <sys/buf.h>
    162 #include <sys/conf.h>
    163 #include <sys/device.h>
    164 #include <sys/hash.h>
    165 #include <sys/kauth.h>
    166 #include <sys/kmem.h>
    167 #include <sys/kthread.h>
    168 #include <sys/module.h>
    169 #include <sys/mount.h>
    170 #include <sys/namei.h>
    171 #include <sys/pax.h>
    172 #include <sys/syscallargs.h>
    173 #include <sys/sysctl.h>
    174 #include <sys/systm.h>
    175 #include <sys/vnode_impl.h>
    176 #include <sys/wapbl.h>
    177 #include <sys/fstrans.h>
    178 
    179 #include <uvm/uvm.h>
    180 #include <uvm/uvm_readahead.h>
    181 #include <uvm/uvm_stat.h>
    182 
    183 /* Flags to vrelel. */
    184 #define	VRELEL_ASYNC	0x0001	/* Always defer to vrele thread. */
    185 
    186 #define	LRU_VRELE	0
    187 #define	LRU_FREE	1
    188 #define	LRU_HOLD	2
    189 #define	LRU_COUNT	3
    190 
    191 /*
    192  * There are three lru lists: one holds vnodes waiting for async release,
    193  * one is for vnodes which have no buffer/page references and one for those
    194  * which do (i.e.  v_holdcnt is non-zero).  We put the lists into a single,
    195  * private cache line as vnodes migrate between them while under the same
    196  * lock (vdrain_lock).
    197  */
    198 u_int			numvnodes		__cacheline_aligned;
    199 static vnodelst_t	lru_list[LRU_COUNT]	__cacheline_aligned;
    200 static kmutex_t		vdrain_lock		__cacheline_aligned;
    201 static kcondvar_t	vdrain_cv;
    202 static int		vdrain_gen;
    203 static kcondvar_t	vdrain_gen_cv;
    204 static bool		vdrain_retry;
    205 static lwp_t *		vdrain_lwp;
    206 SLIST_HEAD(hashhead, vnode_impl);
    207 static kmutex_t		vcache_lock		__cacheline_aligned;
    208 static kcondvar_t	vcache_cv;
    209 static u_int		vcache_hashsize;
    210 static u_long		vcache_hashmask;
    211 static struct hashhead	*vcache_hashtab;
    212 static pool_cache_t	vcache_pool;
    213 static void		lru_requeue(vnode_t *, vnodelst_t *);
    214 static vnodelst_t *	lru_which(vnode_t *);
    215 static vnode_impl_t *	vcache_alloc(void);
    216 static void		vcache_dealloc(vnode_impl_t *);
    217 static void		vcache_free(vnode_impl_t *);
    218 static void		vcache_init(void);
    219 static void		vcache_reinit(void);
    220 static void		vcache_reclaim(vnode_t *);
    221 static void		vrelel(vnode_t *, int, int);
    222 static void		vdrain_thread(void *);
    223 static void		vnpanic(vnode_t *, const char *, ...)
    224     __printflike(2, 3);
    225 
    226 /* Routines having to do with the management of the vnode table. */
    227 extern struct mount	*dead_rootmount;
    228 extern int		(**dead_vnodeop_p)(void *);
    229 extern int		(**spec_vnodeop_p)(void *);
    230 extern struct vfsops	dead_vfsops;
    231 
    232 /*
    233  * The high bit of v_usecount is a gate for vcache_tryvget().  It's set
    234  * only when the vnode state is LOADED.
    235  * The next bit of v_usecount is a flag for vrelel().  It's set
    236  * from vcache_vget() and vcache_tryvget() whenever the operation succeeds.
    237  */
    238 #define	VUSECOUNT_MASK	0x3fffffff
    239 #define	VUSECOUNT_GATE	0x80000000
    240 #define	VUSECOUNT_VGET	0x40000000
    241 
    242 /*
    243  * Return the current usecount of a vnode.
    244  */
    245 inline int
    246 vrefcnt(struct vnode *vp)
    247 {
    248 
    249 	return atomic_load_relaxed(&vp->v_usecount) & VUSECOUNT_MASK;
    250 }
    251 
    252 /* Vnode state operations and diagnostics. */
    253 
    254 #if defined(DIAGNOSTIC)
    255 
    256 #define VSTATE_VALID(state) \
    257 	((state) != VS_ACTIVE && (state) != VS_MARKER)
    258 #define VSTATE_GET(vp) \
    259 	vstate_assert_get((vp), __func__, __LINE__)
    260 #define VSTATE_CHANGE(vp, from, to) \
    261 	vstate_assert_change((vp), (from), (to), __func__, __LINE__)
    262 #define VSTATE_WAIT_STABLE(vp) \
    263 	vstate_assert_wait_stable((vp), __func__, __LINE__)
    264 
    265 void
    266 _vstate_assert(vnode_t *vp, enum vnode_state state, const char *func, int line,
    267     bool has_lock)
    268 {
    269 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
    270 	int refcnt = vrefcnt(vp);
    271 
    272 	if (!has_lock) {
    273 		/*
    274 		 * Prevent predictive loads from the CPU, but check the state
    275 		 * without loooking first.
    276 		 *
    277 		 * XXX what does this pair with?
    278 		 */
    279 		membar_enter();
    280 		if (state == VS_ACTIVE && refcnt > 0 &&
    281 		    (vip->vi_state == VS_LOADED || vip->vi_state == VS_BLOCKED))
    282 			return;
    283 		if (vip->vi_state == state)
    284 			return;
    285 		mutex_enter((vp)->v_interlock);
    286 	}
    287 
    288 	KASSERTMSG(mutex_owned(vp->v_interlock), "at %s:%d", func, line);
    289 
    290 	if ((state == VS_ACTIVE && refcnt > 0 &&
    291 	    (vip->vi_state == VS_LOADED || vip->vi_state == VS_BLOCKED)) ||
    292 	    vip->vi_state == state) {
    293 		if (!has_lock)
    294 			mutex_exit((vp)->v_interlock);
    295 		return;
    296 	}
    297 	vnpanic(vp, "state is %s, usecount %d, expected %s at %s:%d",
    298 	    vstate_name(vip->vi_state), refcnt,
    299 	    vstate_name(state), func, line);
    300 }
    301 
    302 static enum vnode_state
    303 vstate_assert_get(vnode_t *vp, const char *func, int line)
    304 {
    305 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
    306 
    307 	KASSERTMSG(mutex_owned(vp->v_interlock), "at %s:%d", func, line);
    308 	if (! VSTATE_VALID(vip->vi_state))
    309 		vnpanic(vp, "state is %s at %s:%d",
    310 		    vstate_name(vip->vi_state), func, line);
    311 
    312 	return vip->vi_state;
    313 }
    314 
    315 static void
    316 vstate_assert_wait_stable(vnode_t *vp, const char *func, int line)
    317 {
    318 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
    319 
    320 	KASSERTMSG(mutex_owned(vp->v_interlock), "at %s:%d", func, line);
    321 	if (! VSTATE_VALID(vip->vi_state))
    322 		vnpanic(vp, "state is %s at %s:%d",
    323 		    vstate_name(vip->vi_state), func, line);
    324 
    325 	while (vip->vi_state != VS_LOADED && vip->vi_state != VS_RECLAIMED)
    326 		cv_wait(&vp->v_cv, vp->v_interlock);
    327 
    328 	if (! VSTATE_VALID(vip->vi_state))
    329 		vnpanic(vp, "state is %s at %s:%d",
    330 		    vstate_name(vip->vi_state), func, line);
    331 }
    332 
    333 static void
    334 vstate_assert_change(vnode_t *vp, enum vnode_state from, enum vnode_state to,
    335     const char *func, int line)
    336 {
    337 	bool gated = (atomic_load_relaxed(&vp->v_usecount) & VUSECOUNT_GATE);
    338 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
    339 
    340 	KASSERTMSG(mutex_owned(vp->v_interlock), "at %s:%d", func, line);
    341 	if (from == VS_LOADING)
    342 		KASSERTMSG(mutex_owned(&vcache_lock), "at %s:%d", func, line);
    343 
    344 	if (! VSTATE_VALID(from))
    345 		vnpanic(vp, "from is %s at %s:%d",
    346 		    vstate_name(from), func, line);
    347 	if (! VSTATE_VALID(to))
    348 		vnpanic(vp, "to is %s at %s:%d",
    349 		    vstate_name(to), func, line);
    350 	if (vip->vi_state != from)
    351 		vnpanic(vp, "from is %s, expected %s at %s:%d\n",
    352 		    vstate_name(vip->vi_state), vstate_name(from), func, line);
    353 	if ((from == VS_LOADED) != gated)
    354 		vnpanic(vp, "state is %s, gate %d does not match at %s:%d\n",
    355 		    vstate_name(vip->vi_state), gated, func, line);
    356 
    357 	/* Open/close the gate for vcache_tryvget(). */
    358 	if (to == VS_LOADED) {
    359 #ifndef __HAVE_ATOMIC_AS_MEMBAR
    360 		membar_release();
    361 #endif
    362 		atomic_or_uint(&vp->v_usecount, VUSECOUNT_GATE);
    363 	} else {
    364 		atomic_and_uint(&vp->v_usecount, ~VUSECOUNT_GATE);
    365 	}
    366 
    367 	vip->vi_state = to;
    368 	if (from == VS_LOADING)
    369 		cv_broadcast(&vcache_cv);
    370 	if (to == VS_LOADED || to == VS_RECLAIMED)
    371 		cv_broadcast(&vp->v_cv);
    372 }
    373 
    374 #else /* defined(DIAGNOSTIC) */
    375 
    376 #define VSTATE_GET(vp) \
    377 	(VNODE_TO_VIMPL((vp))->vi_state)
    378 #define VSTATE_CHANGE(vp, from, to) \
    379 	vstate_change((vp), (from), (to))
    380 #define VSTATE_WAIT_STABLE(vp) \
    381 	vstate_wait_stable((vp))
    382 void
    383 _vstate_assert(vnode_t *vp, enum vnode_state state, const char *func, int line,
    384     bool has_lock)
    385 {
    386 
    387 }
    388 
    389 static void
    390 vstate_wait_stable(vnode_t *vp)
    391 {
    392 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
    393 
    394 	while (vip->vi_state != VS_LOADED && vip->vi_state != VS_RECLAIMED)
    395 		cv_wait(&vp->v_cv, vp->v_interlock);
    396 }
    397 
    398 static void
    399 vstate_change(vnode_t *vp, enum vnode_state from, enum vnode_state to)
    400 {
    401 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
    402 
    403 	/* Open/close the gate for vcache_tryvget(). */
    404 	if (to == VS_LOADED) {
    405 #ifndef __HAVE_ATOMIC_AS_MEMBAR
    406 		membar_release();
    407 #endif
    408 		atomic_or_uint(&vp->v_usecount, VUSECOUNT_GATE);
    409 	} else {
    410 		atomic_and_uint(&vp->v_usecount, ~VUSECOUNT_GATE);
    411 	}
    412 
    413 	vip->vi_state = to;
    414 	if (from == VS_LOADING)
    415 		cv_broadcast(&vcache_cv);
    416 	if (to == VS_LOADED || to == VS_RECLAIMED)
    417 		cv_broadcast(&vp->v_cv);
    418 }
    419 
    420 #endif /* defined(DIAGNOSTIC) */
    421 
    422 void
    423 vfs_vnode_sysinit(void)
    424 {
    425 	int error __diagused, i;
    426 
    427 	dead_rootmount = vfs_mountalloc(&dead_vfsops, NULL);
    428 	KASSERT(dead_rootmount != NULL);
    429 	dead_rootmount->mnt_iflag |= IMNT_MPSAFE;
    430 
    431 	mutex_init(&vdrain_lock, MUTEX_DEFAULT, IPL_NONE);
    432 	for (i = 0; i < LRU_COUNT; i++) {
    433 		TAILQ_INIT(&lru_list[i]);
    434 	}
    435 	vcache_init();
    436 
    437 	cv_init(&vdrain_cv, "vdrain");
    438 	cv_init(&vdrain_gen_cv, "vdrainwt");
    439 	error = kthread_create(PRI_VM, KTHREAD_MPSAFE, NULL, vdrain_thread,
    440 	    NULL, &vdrain_lwp, "vdrain");
    441 	KASSERTMSG((error == 0), "kthread_create(vdrain) failed: %d", error);
    442 }
    443 
    444 /*
    445  * Allocate a new marker vnode.
    446  */
    447 vnode_t *
    448 vnalloc_marker(struct mount *mp)
    449 {
    450 	vnode_impl_t *vip;
    451 	vnode_t *vp;
    452 
    453 	vip = pool_cache_get(vcache_pool, PR_WAITOK);
    454 	memset(vip, 0, sizeof(*vip));
    455 	vp = VIMPL_TO_VNODE(vip);
    456 	uvm_obj_init(&vp->v_uobj, &uvm_vnodeops, true, 1);
    457 	vp->v_mount = mp;
    458 	vp->v_type = VBAD;
    459 	vp->v_interlock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
    460 	klist_init(&vip->vi_klist.vk_klist);
    461 	vp->v_klist = &vip->vi_klist;
    462 	vip->vi_state = VS_MARKER;
    463 
    464 	return vp;
    465 }
    466 
    467 /*
    468  * Free a marker vnode.
    469  */
    470 void
    471 vnfree_marker(vnode_t *vp)
    472 {
    473 	vnode_impl_t *vip;
    474 
    475 	vip = VNODE_TO_VIMPL(vp);
    476 	KASSERT(vip->vi_state == VS_MARKER);
    477 	mutex_obj_free(vp->v_interlock);
    478 	uvm_obj_destroy(&vp->v_uobj, true);
    479 	klist_fini(&vip->vi_klist.vk_klist);
    480 	pool_cache_put(vcache_pool, vip);
    481 }
    482 
    483 /*
    484  * Test a vnode for being a marker vnode.
    485  */
    486 bool
    487 vnis_marker(vnode_t *vp)
    488 {
    489 
    490 	return (VNODE_TO_VIMPL(vp)->vi_state == VS_MARKER);
    491 }
    492 
    493 /*
    494  * Return the lru list this node should be on.
    495  */
    496 static vnodelst_t *
    497 lru_which(vnode_t *vp)
    498 {
    499 
    500 	KASSERT(mutex_owned(vp->v_interlock));
    501 
    502 	if (vp->v_holdcnt > 0)
    503 		return &lru_list[LRU_HOLD];
    504 	else
    505 		return &lru_list[LRU_FREE];
    506 }
    507 
    508 /*
    509  * Put vnode to end of given list.
    510  * Both the current and the new list may be NULL, used on vnode alloc/free.
    511  * Adjust numvnodes and signal vdrain thread if there is work.
    512  */
    513 static void
    514 lru_requeue(vnode_t *vp, vnodelst_t *listhd)
    515 {
    516 	vnode_impl_t *vip;
    517 	int d;
    518 
    519 	/*
    520 	 * If the vnode is on the correct list, and was put there recently,
    521 	 * then leave it be, thus avoiding huge cache and lock contention.
    522 	 */
    523 	vip = VNODE_TO_VIMPL(vp);
    524 	if (listhd == vip->vi_lrulisthd &&
    525 	    (getticks() - vip->vi_lrulisttm) < hz) {
    526 	    	return;
    527 	}
    528 
    529 	mutex_enter(&vdrain_lock);
    530 	d = 0;
    531 	if (vip->vi_lrulisthd != NULL)
    532 		TAILQ_REMOVE(vip->vi_lrulisthd, vip, vi_lrulist);
    533 	else
    534 		d++;
    535 	vip->vi_lrulisthd = listhd;
    536 	vip->vi_lrulisttm = getticks();
    537 	if (vip->vi_lrulisthd != NULL)
    538 		TAILQ_INSERT_TAIL(vip->vi_lrulisthd, vip, vi_lrulist);
    539 	else
    540 		d--;
    541 	if (d != 0) {
    542 		/*
    543 		 * Looks strange?  This is not a bug.  Don't store
    544 		 * numvnodes unless there is a change - avoid false
    545 		 * sharing on MP.
    546 		 */
    547 		numvnodes += d;
    548 	}
    549 	if ((d > 0 && numvnodes > desiredvnodes) ||
    550 	    listhd == &lru_list[LRU_VRELE])
    551 		cv_signal(&vdrain_cv);
    552 	mutex_exit(&vdrain_lock);
    553 }
    554 
    555 /*
    556  * Release deferred vrele vnodes for this mount.
    557  * Called with file system suspended.
    558  */
    559 void
    560 vrele_flush(struct mount *mp)
    561 {
    562 	vnode_impl_t *vip, *marker;
    563 	vnode_t *vp;
    564 	int when = 0;
    565 
    566 	KASSERT(fstrans_is_owner(mp));
    567 
    568 	marker = VNODE_TO_VIMPL(vnalloc_marker(NULL));
    569 
    570 	mutex_enter(&vdrain_lock);
    571 	TAILQ_INSERT_HEAD(&lru_list[LRU_VRELE], marker, vi_lrulist);
    572 
    573 	while ((vip = TAILQ_NEXT(marker, vi_lrulist))) {
    574 		TAILQ_REMOVE(&lru_list[LRU_VRELE], marker, vi_lrulist);
    575 		TAILQ_INSERT_AFTER(&lru_list[LRU_VRELE], vip, marker,
    576 		    vi_lrulist);
    577 		vp = VIMPL_TO_VNODE(vip);
    578 		if (vnis_marker(vp))
    579 			continue;
    580 
    581 		KASSERT(vip->vi_lrulisthd == &lru_list[LRU_VRELE]);
    582 		TAILQ_REMOVE(vip->vi_lrulisthd, vip, vi_lrulist);
    583 		vip->vi_lrulisthd = &lru_list[LRU_HOLD];
    584 		vip->vi_lrulisttm = getticks();
    585 		TAILQ_INSERT_TAIL(vip->vi_lrulisthd, vip, vi_lrulist);
    586 		mutex_exit(&vdrain_lock);
    587 
    588 		vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
    589 		mutex_enter(vp->v_interlock);
    590 		vrelel(vp, 0, LK_EXCLUSIVE);
    591 
    592 		if (getticks() > when) {
    593 			yield();
    594 			when = getticks() + hz / 10;
    595 		}
    596 
    597 		mutex_enter(&vdrain_lock);
    598 	}
    599 
    600 	TAILQ_REMOVE(&lru_list[LRU_VRELE], marker, vi_lrulist);
    601 	mutex_exit(&vdrain_lock);
    602 
    603 	vnfree_marker(VIMPL_TO_VNODE(marker));
    604 }
    605 
    606 /*
    607  * Reclaim a cached vnode.  Used from vdrain_thread only.
    608  */
    609 static __inline void
    610 vdrain_remove(vnode_t *vp)
    611 {
    612 	struct mount *mp;
    613 
    614 	KASSERT(mutex_owned(&vdrain_lock));
    615 
    616 	/* Probe usecount (unlocked). */
    617 	if (vrefcnt(vp) > 0)
    618 		return;
    619 	/* Try v_interlock -- we lock the wrong direction! */
    620 	if (!mutex_tryenter(vp->v_interlock))
    621 		return;
    622 	/* Probe usecount and state. */
    623 	if (vrefcnt(vp) > 0 || VSTATE_GET(vp) != VS_LOADED) {
    624 		mutex_exit(vp->v_interlock);
    625 		return;
    626 	}
    627 	mp = vp->v_mount;
    628 	if (fstrans_start_nowait(mp) != 0) {
    629 		mutex_exit(vp->v_interlock);
    630 		return;
    631 	}
    632 	vdrain_retry = true;
    633 	mutex_exit(&vdrain_lock);
    634 
    635 	if (vcache_vget(vp) == 0) {
    636 		if (!vrecycle(vp)) {
    637 			vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
    638 			mutex_enter(vp->v_interlock);
    639 			vrelel(vp, 0, LK_EXCLUSIVE);
    640 		}
    641 	}
    642 	fstrans_done(mp);
    643 
    644 	mutex_enter(&vdrain_lock);
    645 }
    646 
    647 /*
    648  * Release a cached vnode.  Used from vdrain_thread only.
    649  */
    650 static __inline void
    651 vdrain_vrele(vnode_t *vp)
    652 {
    653 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
    654 	struct mount *mp;
    655 
    656 	KASSERT(mutex_owned(&vdrain_lock));
    657 
    658 	mp = vp->v_mount;
    659 	if (fstrans_start_nowait(mp) != 0)
    660 		return;
    661 
    662 	/*
    663 	 * First remove the vnode from the vrele list.
    664 	 * Put it on the last lru list, the last vrele()
    665 	 * will put it back onto the right list before
    666 	 * its usecount reaches zero.
    667 	 */
    668 	KASSERT(vip->vi_lrulisthd == &lru_list[LRU_VRELE]);
    669 	TAILQ_REMOVE(vip->vi_lrulisthd, vip, vi_lrulist);
    670 	vip->vi_lrulisthd = &lru_list[LRU_HOLD];
    671 	vip->vi_lrulisttm = getticks();
    672 	TAILQ_INSERT_TAIL(vip->vi_lrulisthd, vip, vi_lrulist);
    673 
    674 	vdrain_retry = true;
    675 	mutex_exit(&vdrain_lock);
    676 
    677 	vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
    678 	mutex_enter(vp->v_interlock);
    679 	vrelel(vp, 0, LK_EXCLUSIVE);
    680 	fstrans_done(mp);
    681 
    682 	mutex_enter(&vdrain_lock);
    683 }
    684 
    685 /*
    686  * Helper thread to keep the number of vnodes below desiredvnodes
    687  * and release vnodes from asynchronous vrele.
    688  */
    689 static void
    690 vdrain_thread(void *cookie)
    691 {
    692 	int i;
    693 	u_int target;
    694 	vnode_impl_t *vip, *marker;
    695 
    696 	marker = VNODE_TO_VIMPL(vnalloc_marker(NULL));
    697 
    698 	mutex_enter(&vdrain_lock);
    699 
    700 	for (;;) {
    701 		vdrain_retry = false;
    702 		target = desiredvnodes - desiredvnodes/10;
    703 
    704 		for (i = 0; i < LRU_COUNT; i++) {
    705 			TAILQ_INSERT_HEAD(&lru_list[i], marker, vi_lrulist);
    706 			while ((vip = TAILQ_NEXT(marker, vi_lrulist))) {
    707 				TAILQ_REMOVE(&lru_list[i], marker, vi_lrulist);
    708 				TAILQ_INSERT_AFTER(&lru_list[i], vip, marker,
    709 				    vi_lrulist);
    710 				if (vnis_marker(VIMPL_TO_VNODE(vip)))
    711 					continue;
    712 				if (i == LRU_VRELE)
    713 					vdrain_vrele(VIMPL_TO_VNODE(vip));
    714 				else if (numvnodes < target)
    715 					break;
    716 				else
    717 					vdrain_remove(VIMPL_TO_VNODE(vip));
    718 			}
    719 			TAILQ_REMOVE(&lru_list[i], marker, vi_lrulist);
    720 		}
    721 
    722 		if (vdrain_retry) {
    723 			kpause("vdrainrt", false, 1, &vdrain_lock);
    724 		} else {
    725 			vdrain_gen++;
    726 			cv_broadcast(&vdrain_gen_cv);
    727 			cv_wait(&vdrain_cv, &vdrain_lock);
    728 		}
    729 	}
    730 }
    731 
    732 /*
    733  * Try to drop reference on a vnode.  Abort if we are releasing the
    734  * last reference.  Note: this _must_ succeed if not the last reference.
    735  */
    736 static bool
    737 vtryrele(vnode_t *vp)
    738 {
    739 	u_int use, next;
    740 
    741 #ifndef __HAVE_ATOMIC_AS_MEMBAR
    742 	membar_release();
    743 #endif
    744 	for (use = atomic_load_relaxed(&vp->v_usecount);; use = next) {
    745 		if (__predict_false((use & VUSECOUNT_MASK) == 1)) {
    746 			return false;
    747 		}
    748 		KASSERT((use & VUSECOUNT_MASK) > 1);
    749 		next = atomic_cas_uint(&vp->v_usecount, use, use - 1);
    750 		if (__predict_true(next == use)) {
    751 			return true;
    752 		}
    753 	}
    754 }
    755 
    756 /*
    757  * vput: unlock and release the reference.
    758  */
    759 void
    760 vput(vnode_t *vp)
    761 {
    762 	int lktype;
    763 
    764 	/*
    765 	 * Do an unlocked check of the usecount.  If it looks like we're not
    766 	 * about to drop the last reference, then unlock the vnode and try
    767 	 * to drop the reference.  If it ends up being the last reference
    768 	 * after all, vrelel() can fix it all up.  Most of the time this
    769 	 * will all go to plan.
    770 	 */
    771 	if (vrefcnt(vp) > 1) {
    772 		VOP_UNLOCK(vp);
    773 		if (vtryrele(vp)) {
    774 			return;
    775 		}
    776 		lktype = LK_NONE;
    777 	} else {
    778 		lktype = VOP_ISLOCKED(vp);
    779 		KASSERT(lktype != LK_NONE);
    780 	}
    781 	mutex_enter(vp->v_interlock);
    782 	vrelel(vp, 0, lktype);
    783 }
    784 
    785 /*
    786  * Vnode release.  If reference count drops to zero, call inactive
    787  * routine and either return to freelist or free to the pool.
    788  */
    789 static void
    790 vrelel(vnode_t *vp, int flags, int lktype)
    791 {
    792 	const bool async = ((flags & VRELEL_ASYNC) != 0);
    793 	bool recycle, defer, objlock_held;
    794 	u_int use, next;
    795 	int error;
    796 
    797 	objlock_held = false;
    798 
    799 retry:
    800 	KASSERT(mutex_owned(vp->v_interlock));
    801 
    802 	if (__predict_false(vp->v_op == dead_vnodeop_p &&
    803 	    VSTATE_GET(vp) != VS_RECLAIMED)) {
    804 		vnpanic(vp, "dead but not clean");
    805 	}
    806 
    807 	/*
    808 	 * If not the last reference, just unlock and drop the reference count.
    809 	 *
    810 	 * Otherwise make sure we pass a point in time where we hold the
    811 	 * last reference with VGET flag unset.
    812 	 */
    813 	for (use = atomic_load_relaxed(&vp->v_usecount);; use = next) {
    814 		if (__predict_false((use & VUSECOUNT_MASK) > 1)) {
    815 			if (objlock_held) {
    816 				objlock_held = false;
    817 				rw_exit(vp->v_uobj.vmobjlock);
    818 			}
    819 			if (lktype != LK_NONE) {
    820 				mutex_exit(vp->v_interlock);
    821 				lktype = LK_NONE;
    822 				VOP_UNLOCK(vp);
    823 				mutex_enter(vp->v_interlock);
    824 			}
    825 			if (vtryrele(vp)) {
    826 				mutex_exit(vp->v_interlock);
    827 				return;
    828 			}
    829 			next = atomic_load_relaxed(&vp->v_usecount);
    830 			continue;
    831 		}
    832 		KASSERT((use & VUSECOUNT_MASK) == 1);
    833 		next = use & ~VUSECOUNT_VGET;
    834 		if (next != use) {
    835 			next = atomic_cas_uint(&vp->v_usecount, use, next);
    836 		}
    837 		if (__predict_true(next == use)) {
    838 			break;
    839 		}
    840 	}
    841 #ifndef __HAVE_ATOMIC_AS_MEMBAR
    842 	membar_acquire();
    843 #endif
    844 	if (vrefcnt(vp) <= 0 || vp->v_writecount != 0) {
    845 		vnpanic(vp, "%s: bad ref count", __func__);
    846 	}
    847 
    848 #ifdef DIAGNOSTIC
    849 	if ((vp->v_type == VBLK || vp->v_type == VCHR) &&
    850 	    vp->v_specnode != NULL && vp->v_specnode->sn_opencnt != 0) {
    851 		vprint("vrelel: missing VOP_CLOSE()", vp);
    852 	}
    853 #endif
    854 
    855 	/*
    856 	 * If already clean there is no need to lock, defer or
    857 	 * deactivate this node.
    858 	 */
    859 	if (VSTATE_GET(vp) == VS_RECLAIMED) {
    860 		if (objlock_held) {
    861 			objlock_held = false;
    862 			rw_exit(vp->v_uobj.vmobjlock);
    863 		}
    864 		if (lktype != LK_NONE) {
    865 			mutex_exit(vp->v_interlock);
    866 			lktype = LK_NONE;
    867 			VOP_UNLOCK(vp);
    868 			mutex_enter(vp->v_interlock);
    869 		}
    870 		goto out;
    871 	}
    872 
    873 	/*
    874 	 * First try to get the vnode locked for VOP_INACTIVE().
    875 	 * Defer vnode release to vdrain_thread if caller requests
    876 	 * it explicitly, is the pagedaemon or the lock failed.
    877 	 */
    878 	defer = false;
    879 	if ((curlwp == uvm.pagedaemon_lwp) || async) {
    880 		defer = true;
    881 	} else if (lktype == LK_SHARED) {
    882 		/* Excellent chance of getting, if the last ref. */
    883 		error = vn_lock(vp, LK_UPGRADE | LK_RETRY | LK_NOWAIT);
    884 		if (error != 0) {
    885 			defer = true;
    886 		} else {
    887 			lktype = LK_EXCLUSIVE;
    888 		}
    889 	} else if (lktype == LK_NONE) {
    890 		/* Excellent chance of getting, if the last ref. */
    891 		error = vn_lock(vp, LK_EXCLUSIVE | LK_RETRY | LK_NOWAIT);
    892 		if (error != 0) {
    893 			defer = true;
    894 		} else {
    895 			lktype = LK_EXCLUSIVE;
    896 		}
    897 	}
    898 	KASSERT(mutex_owned(vp->v_interlock));
    899 	if (defer) {
    900 		/*
    901 		 * Defer reclaim to the kthread; it's not safe to
    902 		 * clean it here.  We donate it our last reference.
    903 		 */
    904 		if (lktype != LK_NONE) {
    905 			mutex_exit(vp->v_interlock);
    906 			VOP_UNLOCK(vp);
    907 			mutex_enter(vp->v_interlock);
    908 		}
    909 		lru_requeue(vp, &lru_list[LRU_VRELE]);
    910 		mutex_exit(vp->v_interlock);
    911 		return;
    912 	}
    913 	KASSERT(lktype == LK_EXCLUSIVE);
    914 
    915 	/* If the node gained another reference, retry. */
    916 	use = atomic_load_relaxed(&vp->v_usecount);
    917 	if ((use & VUSECOUNT_VGET) != 0) {
    918 		goto retry;
    919 	}
    920 	KASSERT((use & VUSECOUNT_MASK) == 1);
    921 
    922 	if ((vp->v_iflag & (VI_TEXT|VI_EXECMAP|VI_WRMAP)) != 0 ||
    923 	    (vp->v_vflag & VV_MAPPED) != 0) {
    924 		/* Take care of space accounting. */
    925 		if (!objlock_held) {
    926 			objlock_held = true;
    927 			if (!rw_tryenter(vp->v_uobj.vmobjlock, RW_WRITER)) {
    928 				mutex_exit(vp->v_interlock);
    929 				rw_enter(vp->v_uobj.vmobjlock, RW_WRITER);
    930 				mutex_enter(vp->v_interlock);
    931 				goto retry;
    932 			}
    933 		}
    934 		if ((vp->v_iflag & VI_EXECMAP) != 0) {
    935 			cpu_count(CPU_COUNT_EXECPAGES, -vp->v_uobj.uo_npages);
    936 		}
    937 		vp->v_iflag &= ~(VI_TEXT|VI_EXECMAP|VI_WRMAP);
    938 		vp->v_vflag &= ~VV_MAPPED;
    939 	}
    940 	if (objlock_held) {
    941 		objlock_held = false;
    942 		rw_exit(vp->v_uobj.vmobjlock);
    943 	}
    944 
    945 	/*
    946 	 * Deactivate the vnode, but preserve our reference across
    947 	 * the call to VOP_INACTIVE().
    948 	 *
    949 	 * If VOP_INACTIVE() indicates that the file has been
    950 	 * deleted, then recycle the vnode.
    951 	 *
    952 	 * Note that VOP_INACTIVE() will not drop the vnode lock.
    953 	 */
    954 	mutex_exit(vp->v_interlock);
    955 	recycle = false;
    956 	VOP_INACTIVE(vp, &recycle);
    957 	if (!recycle) {
    958 		lktype = LK_NONE;
    959 		VOP_UNLOCK(vp);
    960 	}
    961 	mutex_enter(vp->v_interlock);
    962 
    963 	/*
    964 	 * Block new references then check again to see if a
    965 	 * new reference was acquired in the meantime.  If
    966 	 * it was, restore the vnode state and try again.
    967 	 */
    968 	if (recycle) {
    969 		VSTATE_CHANGE(vp, VS_LOADED, VS_BLOCKED);
    970 		use = atomic_load_relaxed(&vp->v_usecount);
    971 		if ((use & VUSECOUNT_VGET) != 0) {
    972 			VSTATE_CHANGE(vp, VS_BLOCKED, VS_LOADED);
    973 			goto retry;
    974 		}
    975 		KASSERT((use & VUSECOUNT_MASK) == 1);
    976 	}
    977 
    978 	/*
    979 	 * Recycle the vnode if the file is now unused (unlinked).
    980 	 */
    981 	if (recycle) {
    982 		VSTATE_ASSERT(vp, VS_BLOCKED);
    983 		KASSERT(lktype == LK_EXCLUSIVE);
    984 		/* vcache_reclaim drops the lock. */
    985 		lktype = LK_NONE;
    986 		vcache_reclaim(vp);
    987 	}
    988 	KASSERT(vrefcnt(vp) > 0);
    989 	KASSERT(lktype == LK_NONE);
    990 
    991 out:
    992 	for (use = atomic_load_relaxed(&vp->v_usecount);; use = next) {
    993 		if (__predict_false((use & VUSECOUNT_VGET) != 0 &&
    994 		    (use & VUSECOUNT_MASK) == 1)) {
    995 			/* Gained and released another reference, retry. */
    996 			goto retry;
    997 		}
    998 		next = atomic_cas_uint(&vp->v_usecount, use, use - 1);
    999 		if (__predict_true(next == use)) {
   1000 			if (__predict_false((use & VUSECOUNT_MASK) != 1)) {
   1001 				/* Gained another reference. */
   1002 				mutex_exit(vp->v_interlock);
   1003 				return;
   1004 			}
   1005 			break;
   1006 		}
   1007 	}
   1008 #ifndef __HAVE_ATOMIC_AS_MEMBAR
   1009 	membar_acquire();
   1010 #endif
   1011 
   1012 	if (VSTATE_GET(vp) == VS_RECLAIMED && vp->v_holdcnt == 0) {
   1013 		/*
   1014 		 * It's clean so destroy it.  It isn't referenced
   1015 		 * anywhere since it has been reclaimed.
   1016 		 */
   1017 		vcache_free(VNODE_TO_VIMPL(vp));
   1018 	} else {
   1019 		/*
   1020 		 * Otherwise, put it back onto the freelist.  It
   1021 		 * can't be destroyed while still associated with
   1022 		 * a file system.
   1023 		 */
   1024 		lru_requeue(vp, lru_which(vp));
   1025 		mutex_exit(vp->v_interlock);
   1026 	}
   1027 }
   1028 
   1029 void
   1030 vrele(vnode_t *vp)
   1031 {
   1032 
   1033 	if (vtryrele(vp)) {
   1034 		return;
   1035 	}
   1036 	mutex_enter(vp->v_interlock);
   1037 	vrelel(vp, 0, LK_NONE);
   1038 }
   1039 
   1040 /*
   1041  * Asynchronous vnode release, vnode is released in different context.
   1042  */
   1043 void
   1044 vrele_async(vnode_t *vp)
   1045 {
   1046 
   1047 	if (vtryrele(vp)) {
   1048 		return;
   1049 	}
   1050 	mutex_enter(vp->v_interlock);
   1051 	vrelel(vp, VRELEL_ASYNC, LK_NONE);
   1052 }
   1053 
   1054 /*
   1055  * Vnode reference, where a reference is already held by some other
   1056  * object (for example, a file structure).
   1057  *
   1058  * NB: lockless code sequences may rely on this not blocking.
   1059  */
   1060 void
   1061 vref(vnode_t *vp)
   1062 {
   1063 
   1064 	KASSERT(vrefcnt(vp) > 0);
   1065 
   1066 	atomic_inc_uint(&vp->v_usecount);
   1067 }
   1068 
   1069 /*
   1070  * Page or buffer structure gets a reference.
   1071  * Called with v_interlock held.
   1072  */
   1073 void
   1074 vholdl(vnode_t *vp)
   1075 {
   1076 
   1077 	KASSERT(mutex_owned(vp->v_interlock));
   1078 
   1079 	if (vp->v_holdcnt++ == 0 && vrefcnt(vp) == 0)
   1080 		lru_requeue(vp, lru_which(vp));
   1081 }
   1082 
   1083 /*
   1084  * Page or buffer structure gets a reference.
   1085  */
   1086 void
   1087 vhold(vnode_t *vp)
   1088 {
   1089 
   1090 	mutex_enter(vp->v_interlock);
   1091 	vholdl(vp);
   1092 	mutex_exit(vp->v_interlock);
   1093 }
   1094 
   1095 /*
   1096  * Page or buffer structure frees a reference.
   1097  * Called with v_interlock held.
   1098  */
   1099 void
   1100 holdrelel(vnode_t *vp)
   1101 {
   1102 
   1103 	KASSERT(mutex_owned(vp->v_interlock));
   1104 
   1105 	if (vp->v_holdcnt <= 0) {
   1106 		vnpanic(vp, "%s: holdcnt vp %p", __func__, vp);
   1107 	}
   1108 
   1109 	vp->v_holdcnt--;
   1110 	if (vp->v_holdcnt == 0 && vrefcnt(vp) == 0)
   1111 		lru_requeue(vp, lru_which(vp));
   1112 }
   1113 
   1114 /*
   1115  * Page or buffer structure frees a reference.
   1116  */
   1117 void
   1118 holdrele(vnode_t *vp)
   1119 {
   1120 
   1121 	mutex_enter(vp->v_interlock);
   1122 	holdrelel(vp);
   1123 	mutex_exit(vp->v_interlock);
   1124 }
   1125 
   1126 /*
   1127  * Recycle an unused vnode if caller holds the last reference.
   1128  */
   1129 bool
   1130 vrecycle(vnode_t *vp)
   1131 {
   1132 	int error __diagused;
   1133 
   1134 	mutex_enter(vp->v_interlock);
   1135 
   1136 	/* If the vnode is already clean we're done. */
   1137 	VSTATE_WAIT_STABLE(vp);
   1138 	if (VSTATE_GET(vp) != VS_LOADED) {
   1139 		VSTATE_ASSERT(vp, VS_RECLAIMED);
   1140 		vrelel(vp, 0, LK_NONE);
   1141 		return true;
   1142 	}
   1143 
   1144 	/* Prevent further references until the vnode is locked. */
   1145 	VSTATE_CHANGE(vp, VS_LOADED, VS_BLOCKED);
   1146 
   1147 	/* Make sure we hold the last reference. */
   1148 	if (vrefcnt(vp) != 1) {
   1149 		VSTATE_CHANGE(vp, VS_BLOCKED, VS_LOADED);
   1150 		mutex_exit(vp->v_interlock);
   1151 		return false;
   1152 	}
   1153 
   1154 	mutex_exit(vp->v_interlock);
   1155 
   1156 	/*
   1157 	 * On a leaf file system this lock will always succeed as we hold
   1158 	 * the last reference and prevent further references.
   1159 	 * On layered file systems waiting for the lock would open a can of
   1160 	 * deadlocks as the lower vnodes may have other active references.
   1161 	 */
   1162 	error = vn_lock(vp, LK_EXCLUSIVE | LK_RETRY | LK_NOWAIT);
   1163 
   1164 	mutex_enter(vp->v_interlock);
   1165 	if (error) {
   1166 		VSTATE_CHANGE(vp, VS_BLOCKED, VS_LOADED);
   1167 		mutex_exit(vp->v_interlock);
   1168 		return false;
   1169 	}
   1170 
   1171 	KASSERT(vrefcnt(vp) == 1);
   1172 	vcache_reclaim(vp);
   1173 	vrelel(vp, 0, LK_NONE);
   1174 
   1175 	return true;
   1176 }
   1177 
   1178 /*
   1179  * Helper for vrevoke() to propagate suspension from lastmp
   1180  * to thismp.  Both args may be NULL.
   1181  * Returns the currently suspended file system or NULL.
   1182  */
   1183 static struct mount *
   1184 vrevoke_suspend_next(struct mount *lastmp, struct mount *thismp)
   1185 {
   1186 	int error;
   1187 
   1188 	if (lastmp == thismp)
   1189 		return thismp;
   1190 
   1191 	if (lastmp != NULL)
   1192 		vfs_resume(lastmp);
   1193 
   1194 	if (thismp == NULL)
   1195 		return NULL;
   1196 
   1197 	do {
   1198 		error = vfs_suspend(thismp, 0);
   1199 	} while (error == EINTR || error == ERESTART);
   1200 
   1201 	if (error == 0)
   1202 		return thismp;
   1203 
   1204 	KASSERT(error == EOPNOTSUPP || error == ENOENT);
   1205 	return NULL;
   1206 }
   1207 
   1208 /*
   1209  * Eliminate all activity associated with the requested vnode
   1210  * and with all vnodes aliased to the requested vnode.
   1211  */
   1212 void
   1213 vrevoke(vnode_t *vp)
   1214 {
   1215 	struct mount *mp;
   1216 	vnode_t *vq;
   1217 	enum vtype type;
   1218 	dev_t dev;
   1219 
   1220 	KASSERT(vrefcnt(vp) > 0);
   1221 
   1222 	mp = vrevoke_suspend_next(NULL, vp->v_mount);
   1223 
   1224 	mutex_enter(vp->v_interlock);
   1225 	VSTATE_WAIT_STABLE(vp);
   1226 	if (VSTATE_GET(vp) == VS_RECLAIMED) {
   1227 		mutex_exit(vp->v_interlock);
   1228 	} else if (vp->v_type != VBLK && vp->v_type != VCHR) {
   1229 		atomic_inc_uint(&vp->v_usecount);
   1230 		mutex_exit(vp->v_interlock);
   1231 		vgone(vp);
   1232 	} else {
   1233 		dev = vp->v_rdev;
   1234 		type = vp->v_type;
   1235 		mutex_exit(vp->v_interlock);
   1236 
   1237 		while (spec_node_lookup_by_dev(type, dev, VDEAD_NOWAIT, &vq)
   1238 		    == 0) {
   1239 			mp = vrevoke_suspend_next(mp, vq->v_mount);
   1240 			vgone(vq);
   1241 		}
   1242 	}
   1243 	vrevoke_suspend_next(mp, NULL);
   1244 }
   1245 
   1246 /*
   1247  * Eliminate all activity associated with a vnode in preparation for
   1248  * reuse.  Drops a reference from the vnode.
   1249  */
   1250 void
   1251 vgone(vnode_t *vp)
   1252 {
   1253 	int lktype;
   1254 
   1255 	KASSERT(vp->v_mount == dead_rootmount || fstrans_is_owner(vp->v_mount));
   1256 
   1257 	vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
   1258 	lktype = LK_EXCLUSIVE;
   1259 	mutex_enter(vp->v_interlock);
   1260 	VSTATE_WAIT_STABLE(vp);
   1261 	if (VSTATE_GET(vp) == VS_LOADED) {
   1262 		VSTATE_CHANGE(vp, VS_LOADED, VS_BLOCKED);
   1263 		vcache_reclaim(vp);
   1264 		lktype = LK_NONE;
   1265 	}
   1266 	VSTATE_ASSERT(vp, VS_RECLAIMED);
   1267 	vrelel(vp, 0, lktype);
   1268 }
   1269 
   1270 static inline uint32_t
   1271 vcache_hash(const struct vcache_key *key)
   1272 {
   1273 	uint32_t hash = HASH32_BUF_INIT;
   1274 
   1275 	KASSERT(key->vk_key_len > 0);
   1276 
   1277 	hash = hash32_buf(&key->vk_mount, sizeof(struct mount *), hash);
   1278 	hash = hash32_buf(key->vk_key, key->vk_key_len, hash);
   1279 	return hash;
   1280 }
   1281 
   1282 static int
   1283 vcache_stats(struct hashstat_sysctl *hs, bool fill)
   1284 {
   1285 	vnode_impl_t *vip;
   1286 	uint64_t chain;
   1287 
   1288 	strlcpy(hs->hash_name, "vcache", sizeof(hs->hash_name));
   1289 	strlcpy(hs->hash_desc, "vnode cache hash", sizeof(hs->hash_desc));
   1290 	if (!fill)
   1291 		return 0;
   1292 
   1293 	hs->hash_size = vcache_hashmask + 1;
   1294 
   1295 	for (size_t i = 0; i < hs->hash_size; i++) {
   1296 		chain = 0;
   1297 		mutex_enter(&vcache_lock);
   1298 		SLIST_FOREACH(vip, &vcache_hashtab[i], vi_hash) {
   1299 			chain++;
   1300 		}
   1301 		mutex_exit(&vcache_lock);
   1302 		if (chain > 0) {
   1303 			hs->hash_used++;
   1304 			hs->hash_items += chain;
   1305 			if (chain > hs->hash_maxchain)
   1306 				hs->hash_maxchain = chain;
   1307 		}
   1308 		preempt_point();
   1309 	}
   1310 
   1311 	return 0;
   1312 }
   1313 
   1314 static void
   1315 vcache_init(void)
   1316 {
   1317 
   1318 	vcache_pool = pool_cache_init(sizeof(vnode_impl_t), coherency_unit,
   1319 	    0, 0, "vcachepl", NULL, IPL_NONE, NULL, NULL, NULL);
   1320 	KASSERT(vcache_pool != NULL);
   1321 	mutex_init(&vcache_lock, MUTEX_DEFAULT, IPL_NONE);
   1322 	cv_init(&vcache_cv, "vcache");
   1323 	vcache_hashsize = desiredvnodes;
   1324 	vcache_hashtab = hashinit(desiredvnodes, HASH_SLIST, true,
   1325 	    &vcache_hashmask);
   1326 	hashstat_register("vcache", vcache_stats);
   1327 }
   1328 
   1329 static void
   1330 vcache_reinit(void)
   1331 {
   1332 	int i;
   1333 	uint32_t hash;
   1334 	u_long oldmask, newmask;
   1335 	struct hashhead *oldtab, *newtab;
   1336 	vnode_impl_t *vip;
   1337 
   1338 	newtab = hashinit(desiredvnodes, HASH_SLIST, true, &newmask);
   1339 	mutex_enter(&vcache_lock);
   1340 	oldtab = vcache_hashtab;
   1341 	oldmask = vcache_hashmask;
   1342 	vcache_hashsize = desiredvnodes;
   1343 	vcache_hashtab = newtab;
   1344 	vcache_hashmask = newmask;
   1345 	for (i = 0; i <= oldmask; i++) {
   1346 		while ((vip = SLIST_FIRST(&oldtab[i])) != NULL) {
   1347 			SLIST_REMOVE(&oldtab[i], vip, vnode_impl, vi_hash);
   1348 			hash = vcache_hash(&vip->vi_key);
   1349 			SLIST_INSERT_HEAD(&newtab[hash & vcache_hashmask],
   1350 			    vip, vi_hash);
   1351 		}
   1352 	}
   1353 	mutex_exit(&vcache_lock);
   1354 	hashdone(oldtab, HASH_SLIST, oldmask);
   1355 }
   1356 
   1357 static inline vnode_impl_t *
   1358 vcache_hash_lookup(const struct vcache_key *key, uint32_t hash)
   1359 {
   1360 	struct hashhead *hashp;
   1361 	vnode_impl_t *vip;
   1362 
   1363 	KASSERT(mutex_owned(&vcache_lock));
   1364 
   1365 	hashp = &vcache_hashtab[hash & vcache_hashmask];
   1366 	SLIST_FOREACH(vip, hashp, vi_hash) {
   1367 		if (key->vk_mount != vip->vi_key.vk_mount)
   1368 			continue;
   1369 		if (key->vk_key_len != vip->vi_key.vk_key_len)
   1370 			continue;
   1371 		if (memcmp(key->vk_key, vip->vi_key.vk_key, key->vk_key_len))
   1372 			continue;
   1373 		return vip;
   1374 	}
   1375 	return NULL;
   1376 }
   1377 
   1378 /*
   1379  * Allocate a new, uninitialized vcache node.
   1380  */
   1381 static vnode_impl_t *
   1382 vcache_alloc(void)
   1383 {
   1384 	vnode_impl_t *vip;
   1385 	vnode_t *vp;
   1386 
   1387 	vip = pool_cache_get(vcache_pool, PR_WAITOK);
   1388 	vp = VIMPL_TO_VNODE(vip);
   1389 	memset(vip, 0, sizeof(*vip));
   1390 
   1391 	rw_init(&vip->vi_lock);
   1392 	vp->v_interlock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
   1393 
   1394 	uvm_obj_init(&vp->v_uobj, &uvm_vnodeops, true, 1);
   1395 	klist_init(&vip->vi_klist.vk_klist);
   1396 	vp->v_klist = &vip->vi_klist;
   1397 	cv_init(&vp->v_cv, "vnode");
   1398 	cache_vnode_init(vp);
   1399 
   1400 	vp->v_usecount = 1;
   1401 	vp->v_type = VNON;
   1402 	vp->v_size = vp->v_writesize = VSIZENOTSET;
   1403 
   1404 	vip->vi_state = VS_LOADING;
   1405 
   1406 	lru_requeue(vp, &lru_list[LRU_FREE]);
   1407 
   1408 	return vip;
   1409 }
   1410 
   1411 /*
   1412  * Deallocate a vcache node in state VS_LOADING.
   1413  *
   1414  * vcache_lock held on entry and released on return.
   1415  */
   1416 static void
   1417 vcache_dealloc(vnode_impl_t *vip)
   1418 {
   1419 	vnode_t *vp;
   1420 
   1421 	KASSERT(mutex_owned(&vcache_lock));
   1422 
   1423 	vp = VIMPL_TO_VNODE(vip);
   1424 	vfs_ref(dead_rootmount);
   1425 	vfs_insmntque(vp, dead_rootmount);
   1426 	mutex_enter(vp->v_interlock);
   1427 	vp->v_op = dead_vnodeop_p;
   1428 	VSTATE_CHANGE(vp, VS_LOADING, VS_RECLAIMED);
   1429 	mutex_exit(&vcache_lock);
   1430 	vrelel(vp, 0, LK_NONE);
   1431 }
   1432 
   1433 /*
   1434  * Free an unused, unreferenced vcache node.
   1435  * v_interlock locked on entry.
   1436  */
   1437 static void
   1438 vcache_free(vnode_impl_t *vip)
   1439 {
   1440 	vnode_t *vp;
   1441 
   1442 	vp = VIMPL_TO_VNODE(vip);
   1443 	KASSERT(mutex_owned(vp->v_interlock));
   1444 
   1445 	KASSERT(vrefcnt(vp) == 0);
   1446 	KASSERT(vp->v_holdcnt == 0);
   1447 	KASSERT(vp->v_writecount == 0);
   1448 	lru_requeue(vp, NULL);
   1449 	mutex_exit(vp->v_interlock);
   1450 
   1451 	vfs_insmntque(vp, NULL);
   1452 	if (vp->v_type == VBLK || vp->v_type == VCHR)
   1453 		spec_node_destroy(vp);
   1454 
   1455 	mutex_obj_free(vp->v_interlock);
   1456 	rw_destroy(&vip->vi_lock);
   1457 	uvm_obj_destroy(&vp->v_uobj, true);
   1458 	KASSERT(vp->v_klist == &vip->vi_klist ||
   1459 		SLIST_EMPTY(&vip->vi_klist.vk_klist));
   1460 	klist_fini(&vip->vi_klist.vk_klist);
   1461 	cv_destroy(&vp->v_cv);
   1462 	cache_vnode_fini(vp);
   1463 	pool_cache_put(vcache_pool, vip);
   1464 }
   1465 
   1466 /*
   1467  * Try to get an initial reference on this cached vnode.
   1468  * Returns zero on success or EBUSY if the vnode state is not LOADED.
   1469  *
   1470  * NB: lockless code sequences may rely on this not blocking.
   1471  */
   1472 int
   1473 vcache_tryvget(vnode_t *vp)
   1474 {
   1475 	u_int use, next;
   1476 
   1477 	for (use = atomic_load_relaxed(&vp->v_usecount);; use = next) {
   1478 		if (__predict_false((use & VUSECOUNT_GATE) == 0)) {
   1479 			return EBUSY;
   1480 		}
   1481 		next = atomic_cas_uint(&vp->v_usecount,
   1482 		    use, (use + 1) | VUSECOUNT_VGET);
   1483 		if (__predict_true(next == use)) {
   1484 #ifndef __HAVE_ATOMIC_AS_MEMBAR
   1485 			membar_acquire();
   1486 #endif
   1487 			return 0;
   1488 		}
   1489 	}
   1490 }
   1491 
   1492 /*
   1493  * Try to get an initial reference on this cached vnode.
   1494  * Returns zero on success and  ENOENT if the vnode has been reclaimed.
   1495  * Will wait for the vnode state to be stable.
   1496  *
   1497  * v_interlock locked on entry and unlocked on exit.
   1498  */
   1499 int
   1500 vcache_vget(vnode_t *vp)
   1501 {
   1502 	int error;
   1503 
   1504 	KASSERT(mutex_owned(vp->v_interlock));
   1505 
   1506 	/* Increment hold count to prevent vnode from disappearing. */
   1507 	vp->v_holdcnt++;
   1508 	VSTATE_WAIT_STABLE(vp);
   1509 	vp->v_holdcnt--;
   1510 
   1511 	/* If this was the last reference to a reclaimed vnode free it now. */
   1512 	if (__predict_false(VSTATE_GET(vp) == VS_RECLAIMED)) {
   1513 		if (vp->v_holdcnt == 0 && vrefcnt(vp) == 0)
   1514 			vcache_free(VNODE_TO_VIMPL(vp));
   1515 		else
   1516 			mutex_exit(vp->v_interlock);
   1517 		return ENOENT;
   1518 	}
   1519 	VSTATE_ASSERT(vp, VS_LOADED);
   1520 	error = vcache_tryvget(vp);
   1521 	KASSERT(error == 0);
   1522 	mutex_exit(vp->v_interlock);
   1523 
   1524 	return 0;
   1525 }
   1526 
   1527 /*
   1528  * Get a vnode / fs node pair by key and return it referenced through vpp.
   1529  */
   1530 int
   1531 vcache_get(struct mount *mp, const void *key, size_t key_len,
   1532     struct vnode **vpp)
   1533 {
   1534 	int error;
   1535 	uint32_t hash;
   1536 	const void *new_key;
   1537 	struct vnode *vp;
   1538 	struct vcache_key vcache_key;
   1539 	vnode_impl_t *vip, *new_vip;
   1540 
   1541 	new_key = NULL;
   1542 	*vpp = NULL;
   1543 
   1544 	vcache_key.vk_mount = mp;
   1545 	vcache_key.vk_key = key;
   1546 	vcache_key.vk_key_len = key_len;
   1547 	hash = vcache_hash(&vcache_key);
   1548 
   1549 again:
   1550 	mutex_enter(&vcache_lock);
   1551 	vip = vcache_hash_lookup(&vcache_key, hash);
   1552 
   1553 	/* If found, take a reference or retry. */
   1554 	if (__predict_true(vip != NULL)) {
   1555 		/*
   1556 		 * If the vnode is loading we cannot take the v_interlock
   1557 		 * here as it might change during load (see uvm_obj_setlock()).
   1558 		 * As changing state from VS_LOADING requires both vcache_lock
   1559 		 * and v_interlock it is safe to test with vcache_lock held.
   1560 		 *
   1561 		 * Wait for vnodes changing state from VS_LOADING and retry.
   1562 		 */
   1563 		if (__predict_false(vip->vi_state == VS_LOADING)) {
   1564 			cv_wait(&vcache_cv, &vcache_lock);
   1565 			mutex_exit(&vcache_lock);
   1566 			goto again;
   1567 		}
   1568 		vp = VIMPL_TO_VNODE(vip);
   1569 		mutex_enter(vp->v_interlock);
   1570 		mutex_exit(&vcache_lock);
   1571 		error = vcache_vget(vp);
   1572 		if (error == ENOENT)
   1573 			goto again;
   1574 		if (error == 0)
   1575 			*vpp = vp;
   1576 		KASSERT((error != 0) == (*vpp == NULL));
   1577 		return error;
   1578 	}
   1579 	mutex_exit(&vcache_lock);
   1580 
   1581 	/* Allocate and initialize a new vcache / vnode pair. */
   1582 	error = vfs_busy(mp);
   1583 	if (error)
   1584 		return error;
   1585 	new_vip = vcache_alloc();
   1586 	new_vip->vi_key = vcache_key;
   1587 	vp = VIMPL_TO_VNODE(new_vip);
   1588 	mutex_enter(&vcache_lock);
   1589 	vip = vcache_hash_lookup(&vcache_key, hash);
   1590 	if (vip == NULL) {
   1591 		SLIST_INSERT_HEAD(&vcache_hashtab[hash & vcache_hashmask],
   1592 		    new_vip, vi_hash);
   1593 		vip = new_vip;
   1594 	}
   1595 
   1596 	/* If another thread beat us inserting this node, retry. */
   1597 	if (vip != new_vip) {
   1598 		vcache_dealloc(new_vip);
   1599 		vfs_unbusy(mp);
   1600 		goto again;
   1601 	}
   1602 	mutex_exit(&vcache_lock);
   1603 
   1604 	/* Load the fs node.  Exclusive as new_node is VS_LOADING. */
   1605 	error = VFS_LOADVNODE(mp, vp, key, key_len, &new_key);
   1606 	if (error) {
   1607 		mutex_enter(&vcache_lock);
   1608 		SLIST_REMOVE(&vcache_hashtab[hash & vcache_hashmask],
   1609 		    new_vip, vnode_impl, vi_hash);
   1610 		vcache_dealloc(new_vip);
   1611 		vfs_unbusy(mp);
   1612 		KASSERT(*vpp == NULL);
   1613 		return error;
   1614 	}
   1615 	KASSERT(new_key != NULL);
   1616 	KASSERT(memcmp(key, new_key, key_len) == 0);
   1617 	KASSERT(vp->v_op != NULL);
   1618 	vfs_insmntque(vp, mp);
   1619 	if ((mp->mnt_iflag & IMNT_MPSAFE) != 0)
   1620 		vp->v_vflag |= VV_MPSAFE;
   1621 	vfs_ref(mp);
   1622 	vfs_unbusy(mp);
   1623 
   1624 	/* Finished loading, finalize node. */
   1625 	mutex_enter(&vcache_lock);
   1626 	new_vip->vi_key.vk_key = new_key;
   1627 	mutex_enter(vp->v_interlock);
   1628 	VSTATE_CHANGE(vp, VS_LOADING, VS_LOADED);
   1629 	mutex_exit(vp->v_interlock);
   1630 	mutex_exit(&vcache_lock);
   1631 	*vpp = vp;
   1632 	return 0;
   1633 }
   1634 
   1635 /*
   1636  * Create a new vnode / fs node pair and return it referenced through vpp.
   1637  */
   1638 int
   1639 vcache_new(struct mount *mp, struct vnode *dvp, struct vattr *vap,
   1640     kauth_cred_t cred, void *extra, struct vnode **vpp)
   1641 {
   1642 	int error;
   1643 	uint32_t hash;
   1644 	struct vnode *vp, *ovp;
   1645 	vnode_impl_t *vip, *ovip;
   1646 
   1647 	*vpp = NULL;
   1648 
   1649 	/* Allocate and initialize a new vcache / vnode pair. */
   1650 	error = vfs_busy(mp);
   1651 	if (error)
   1652 		return error;
   1653 	vip = vcache_alloc();
   1654 	vip->vi_key.vk_mount = mp;
   1655 	vp = VIMPL_TO_VNODE(vip);
   1656 
   1657 	/* Create and load the fs node. */
   1658 	error = VFS_NEWVNODE(mp, dvp, vp, vap, cred, extra,
   1659 	    &vip->vi_key.vk_key_len, &vip->vi_key.vk_key);
   1660 	if (error) {
   1661 		mutex_enter(&vcache_lock);
   1662 		vcache_dealloc(vip);
   1663 		vfs_unbusy(mp);
   1664 		KASSERT(*vpp == NULL);
   1665 		return error;
   1666 	}
   1667 	KASSERT(vp->v_op != NULL);
   1668 	KASSERT((vip->vi_key.vk_key_len == 0) == (mp == dead_rootmount));
   1669 	if (vip->vi_key.vk_key_len > 0) {
   1670 		KASSERT(vip->vi_key.vk_key != NULL);
   1671 		hash = vcache_hash(&vip->vi_key);
   1672 
   1673 		/*
   1674 		 * Wait for previous instance to be reclaimed,
   1675 		 * then insert new node.
   1676 		 */
   1677 		mutex_enter(&vcache_lock);
   1678 		while ((ovip = vcache_hash_lookup(&vip->vi_key, hash))) {
   1679 			ovp = VIMPL_TO_VNODE(ovip);
   1680 			mutex_enter(ovp->v_interlock);
   1681 			mutex_exit(&vcache_lock);
   1682 			error = vcache_vget(ovp);
   1683 			KASSERT(error == ENOENT);
   1684 			mutex_enter(&vcache_lock);
   1685 		}
   1686 		SLIST_INSERT_HEAD(&vcache_hashtab[hash & vcache_hashmask],
   1687 		    vip, vi_hash);
   1688 		mutex_exit(&vcache_lock);
   1689 	}
   1690 	vfs_insmntque(vp, mp);
   1691 	if ((mp->mnt_iflag & IMNT_MPSAFE) != 0)
   1692 		vp->v_vflag |= VV_MPSAFE;
   1693 	vfs_ref(mp);
   1694 	vfs_unbusy(mp);
   1695 
   1696 	/* Finished loading, finalize node. */
   1697 	mutex_enter(&vcache_lock);
   1698 	mutex_enter(vp->v_interlock);
   1699 	VSTATE_CHANGE(vp, VS_LOADING, VS_LOADED);
   1700 	mutex_exit(&vcache_lock);
   1701 	mutex_exit(vp->v_interlock);
   1702 	*vpp = vp;
   1703 	return 0;
   1704 }
   1705 
   1706 /*
   1707  * Prepare key change: update old cache nodes key and lock new cache node.
   1708  * Return an error if the new node already exists.
   1709  */
   1710 int
   1711 vcache_rekey_enter(struct mount *mp, struct vnode *vp,
   1712     const void *old_key, size_t old_key_len,
   1713     const void *new_key, size_t new_key_len)
   1714 {
   1715 	uint32_t old_hash, new_hash;
   1716 	struct vcache_key old_vcache_key, new_vcache_key;
   1717 	vnode_impl_t *vip, *new_vip;
   1718 
   1719 	old_vcache_key.vk_mount = mp;
   1720 	old_vcache_key.vk_key = old_key;
   1721 	old_vcache_key.vk_key_len = old_key_len;
   1722 	old_hash = vcache_hash(&old_vcache_key);
   1723 
   1724 	new_vcache_key.vk_mount = mp;
   1725 	new_vcache_key.vk_key = new_key;
   1726 	new_vcache_key.vk_key_len = new_key_len;
   1727 	new_hash = vcache_hash(&new_vcache_key);
   1728 
   1729 	new_vip = vcache_alloc();
   1730 	new_vip->vi_key = new_vcache_key;
   1731 
   1732 	/* Insert locked new node used as placeholder. */
   1733 	mutex_enter(&vcache_lock);
   1734 	vip = vcache_hash_lookup(&new_vcache_key, new_hash);
   1735 	if (vip != NULL) {
   1736 		vcache_dealloc(new_vip);
   1737 		return EEXIST;
   1738 	}
   1739 	SLIST_INSERT_HEAD(&vcache_hashtab[new_hash & vcache_hashmask],
   1740 	    new_vip, vi_hash);
   1741 
   1742 	/* Replace old nodes key with the temporary copy. */
   1743 	vip = vcache_hash_lookup(&old_vcache_key, old_hash);
   1744 	KASSERT(vip != NULL);
   1745 	KASSERT(VIMPL_TO_VNODE(vip) == vp);
   1746 	KASSERT(vip->vi_key.vk_key != old_vcache_key.vk_key);
   1747 	vip->vi_key = old_vcache_key;
   1748 	mutex_exit(&vcache_lock);
   1749 	return 0;
   1750 }
   1751 
   1752 /*
   1753  * Key change complete: update old node and remove placeholder.
   1754  */
   1755 void
   1756 vcache_rekey_exit(struct mount *mp, struct vnode *vp,
   1757     const void *old_key, size_t old_key_len,
   1758     const void *new_key, size_t new_key_len)
   1759 {
   1760 	uint32_t old_hash, new_hash;
   1761 	struct vcache_key old_vcache_key, new_vcache_key;
   1762 	vnode_impl_t *vip, *new_vip;
   1763 	struct vnode *new_vp;
   1764 
   1765 	old_vcache_key.vk_mount = mp;
   1766 	old_vcache_key.vk_key = old_key;
   1767 	old_vcache_key.vk_key_len = old_key_len;
   1768 	old_hash = vcache_hash(&old_vcache_key);
   1769 
   1770 	new_vcache_key.vk_mount = mp;
   1771 	new_vcache_key.vk_key = new_key;
   1772 	new_vcache_key.vk_key_len = new_key_len;
   1773 	new_hash = vcache_hash(&new_vcache_key);
   1774 
   1775 	mutex_enter(&vcache_lock);
   1776 
   1777 	/* Lookup old and new node. */
   1778 	vip = vcache_hash_lookup(&old_vcache_key, old_hash);
   1779 	KASSERT(vip != NULL);
   1780 	KASSERT(VIMPL_TO_VNODE(vip) == vp);
   1781 
   1782 	new_vip = vcache_hash_lookup(&new_vcache_key, new_hash);
   1783 	KASSERT(new_vip != NULL);
   1784 	KASSERT(new_vip->vi_key.vk_key_len == new_key_len);
   1785 	new_vp = VIMPL_TO_VNODE(new_vip);
   1786 	mutex_enter(new_vp->v_interlock);
   1787 	VSTATE_ASSERT(VIMPL_TO_VNODE(new_vip), VS_LOADING);
   1788 	mutex_exit(new_vp->v_interlock);
   1789 
   1790 	/* Rekey old node and put it onto its new hashlist. */
   1791 	vip->vi_key = new_vcache_key;
   1792 	if (old_hash != new_hash) {
   1793 		SLIST_REMOVE(&vcache_hashtab[old_hash & vcache_hashmask],
   1794 		    vip, vnode_impl, vi_hash);
   1795 		SLIST_INSERT_HEAD(&vcache_hashtab[new_hash & vcache_hashmask],
   1796 		    vip, vi_hash);
   1797 	}
   1798 
   1799 	/* Remove new node used as placeholder. */
   1800 	SLIST_REMOVE(&vcache_hashtab[new_hash & vcache_hashmask],
   1801 	    new_vip, vnode_impl, vi_hash);
   1802 	vcache_dealloc(new_vip);
   1803 }
   1804 
   1805 /*
   1806  * Disassociate the underlying file system from a vnode.
   1807  *
   1808  * Must be called with vnode locked and will return unlocked.
   1809  * Must be called with the interlock held, and will return with it held.
   1810  */
   1811 static void
   1812 vcache_reclaim(vnode_t *vp)
   1813 {
   1814 	lwp_t *l = curlwp;
   1815 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
   1816 	struct mount *mp = vp->v_mount;
   1817 	uint32_t hash;
   1818 	uint8_t temp_buf[64], *temp_key;
   1819 	size_t temp_key_len;
   1820 	bool recycle;
   1821 	int error;
   1822 
   1823 	KASSERT(VOP_ISLOCKED(vp) == LK_EXCLUSIVE);
   1824 	KASSERT(mutex_owned(vp->v_interlock));
   1825 	KASSERT(vrefcnt(vp) != 0);
   1826 
   1827 	temp_key_len = vip->vi_key.vk_key_len;
   1828 	/*
   1829 	 * Prevent the vnode from being recycled or brought into use
   1830 	 * while we clean it out.
   1831 	 */
   1832 	VSTATE_CHANGE(vp, VS_BLOCKED, VS_RECLAIMING);
   1833 	mutex_exit(vp->v_interlock);
   1834 
   1835 	rw_enter(vp->v_uobj.vmobjlock, RW_WRITER);
   1836 	mutex_enter(vp->v_interlock);
   1837 	if ((vp->v_iflag & VI_EXECMAP) != 0) {
   1838 		cpu_count(CPU_COUNT_EXECPAGES, -vp->v_uobj.uo_npages);
   1839 	}
   1840 	vp->v_iflag &= ~(VI_TEXT|VI_EXECMAP);
   1841 	vp->v_iflag |= VI_DEADCHECK; /* for genfs_getpages() */
   1842 	mutex_exit(vp->v_interlock);
   1843 	rw_exit(vp->v_uobj.vmobjlock);
   1844 
   1845 	/*
   1846 	 * With vnode state set to reclaiming, purge name cache immediately
   1847 	 * to prevent new handles on vnode, and wait for existing threads
   1848 	 * trying to get a handle to notice VS_RECLAIMED status and abort.
   1849 	 */
   1850 	cache_purge(vp);
   1851 
   1852 	/* Replace the vnode key with a temporary copy. */
   1853 	if (vip->vi_key.vk_key_len > sizeof(temp_buf)) {
   1854 		temp_key = kmem_alloc(temp_key_len, KM_SLEEP);
   1855 	} else {
   1856 		temp_key = temp_buf;
   1857 	}
   1858 	if (vip->vi_key.vk_key_len > 0) {
   1859 		mutex_enter(&vcache_lock);
   1860 		memcpy(temp_key, vip->vi_key.vk_key, temp_key_len);
   1861 		vip->vi_key.vk_key = temp_key;
   1862 		mutex_exit(&vcache_lock);
   1863 	}
   1864 
   1865 	fstrans_start(mp);
   1866 
   1867 	/*
   1868 	 * Clean out any cached data associated with the vnode.
   1869 	 */
   1870 	error = vinvalbuf(vp, V_SAVE, NOCRED, l, 0, 0);
   1871 	if (error != 0) {
   1872 		if (wapbl_vphaswapbl(vp))
   1873 			WAPBL_DISCARD(wapbl_vptomp(vp));
   1874 		error = vinvalbuf(vp, 0, NOCRED, l, 0, 0);
   1875 	}
   1876 	KASSERTMSG((error == 0), "vinvalbuf failed: %d", error);
   1877 	KASSERT((vp->v_iflag & VI_ONWORKLST) == 0);
   1878 	if (vp->v_type == VBLK || vp->v_type == VCHR) {
   1879 		 spec_node_revoke(vp);
   1880 	}
   1881 
   1882 	/*
   1883 	 * Disassociate the underlying file system from the vnode.
   1884 	 * VOP_INACTIVE leaves the vnode locked; VOP_RECLAIM unlocks
   1885 	 * the vnode, and may destroy the vnode so that VOP_UNLOCK
   1886 	 * would no longer function.
   1887 	 */
   1888 	VOP_INACTIVE(vp, &recycle);
   1889 	KASSERT(VOP_ISLOCKED(vp) == LK_EXCLUSIVE);
   1890 	if (VOP_RECLAIM(vp)) {
   1891 		vnpanic(vp, "%s: cannot reclaim", __func__);
   1892 	}
   1893 
   1894 	KASSERT(vp->v_data == NULL);
   1895 	KASSERT((vp->v_iflag & VI_PAGES) == 0);
   1896 
   1897 	if (vp->v_type == VREG && vp->v_ractx != NULL) {
   1898 		uvm_ra_freectx(vp->v_ractx);
   1899 		vp->v_ractx = NULL;
   1900 	}
   1901 
   1902 	if (vip->vi_key.vk_key_len > 0) {
   1903 	/* Remove from vnode cache. */
   1904 		hash = vcache_hash(&vip->vi_key);
   1905 		mutex_enter(&vcache_lock);
   1906 		KASSERT(vip == vcache_hash_lookup(&vip->vi_key, hash));
   1907 		SLIST_REMOVE(&vcache_hashtab[hash & vcache_hashmask],
   1908 		    vip, vnode_impl, vi_hash);
   1909 		mutex_exit(&vcache_lock);
   1910 	}
   1911 	if (temp_key != temp_buf)
   1912 		kmem_free(temp_key, temp_key_len);
   1913 
   1914 	/* Done with purge, notify sleepers of the grim news. */
   1915 	mutex_enter(vp->v_interlock);
   1916 	vp->v_op = dead_vnodeop_p;
   1917 	VSTATE_CHANGE(vp, VS_RECLAIMING, VS_RECLAIMED);
   1918 	vp->v_tag = VT_NON;
   1919 	/*
   1920 	 * Don't check for interest in NOTE_REVOKE; it's always posted
   1921 	 * because it sets EV_EOF.
   1922 	 */
   1923 	KNOTE(&vp->v_klist->vk_klist, NOTE_REVOKE);
   1924 	mutex_exit(vp->v_interlock);
   1925 
   1926 	/*
   1927 	 * Move to dead mount.  Must be after changing the operations
   1928 	 * vector as vnode operations enter the mount before using the
   1929 	 * operations vector.  See sys/kern/vnode_if.c.
   1930 	 */
   1931 	vp->v_vflag &= ~VV_ROOT;
   1932 	vfs_ref(dead_rootmount);
   1933 	vfs_insmntque(vp, dead_rootmount);
   1934 
   1935 #ifdef PAX_SEGVGUARD
   1936 	pax_segvguard_cleanup(vp);
   1937 #endif /* PAX_SEGVGUARD */
   1938 
   1939 	mutex_enter(vp->v_interlock);
   1940 	fstrans_done(mp);
   1941 	KASSERT((vp->v_iflag & VI_ONWORKLST) == 0);
   1942 }
   1943 
   1944 /*
   1945  * Disassociate the underlying file system from an open device vnode
   1946  * and make it anonymous.
   1947  *
   1948  * Vnode unlocked on entry, drops a reference to the vnode.
   1949  */
   1950 void
   1951 vcache_make_anon(vnode_t *vp)
   1952 {
   1953 	vnode_impl_t *vip = VNODE_TO_VIMPL(vp);
   1954 	uint32_t hash;
   1955 	bool recycle;
   1956 
   1957 	KASSERT(vp->v_type == VBLK || vp->v_type == VCHR);
   1958 	KASSERT(vp->v_mount == dead_rootmount || fstrans_is_owner(vp->v_mount));
   1959 	VSTATE_ASSERT_UNLOCKED(vp, VS_ACTIVE);
   1960 
   1961 	/* Remove from vnode cache. */
   1962 	hash = vcache_hash(&vip->vi_key);
   1963 	mutex_enter(&vcache_lock);
   1964 	KASSERT(vip == vcache_hash_lookup(&vip->vi_key, hash));
   1965 	SLIST_REMOVE(&vcache_hashtab[hash & vcache_hashmask],
   1966 	    vip, vnode_impl, vi_hash);
   1967 	vip->vi_key.vk_mount = dead_rootmount;
   1968 	vip->vi_key.vk_key_len = 0;
   1969 	vip->vi_key.vk_key = NULL;
   1970 	mutex_exit(&vcache_lock);
   1971 
   1972 	/*
   1973 	 * Disassociate the underlying file system from the vnode.
   1974 	 * VOP_INACTIVE leaves the vnode locked; VOP_RECLAIM unlocks
   1975 	 * the vnode, and may destroy the vnode so that VOP_UNLOCK
   1976 	 * would no longer function.
   1977 	 */
   1978 	if (vn_lock(vp, LK_EXCLUSIVE)) {
   1979 		vnpanic(vp, "%s: cannot lock", __func__);
   1980 	}
   1981 	VOP_INACTIVE(vp, &recycle);
   1982 	KASSERT(VOP_ISLOCKED(vp) == LK_EXCLUSIVE);
   1983 	if (VOP_RECLAIM(vp)) {
   1984 		vnpanic(vp, "%s: cannot reclaim", __func__);
   1985 	}
   1986 
   1987 	/* Purge name cache. */
   1988 	cache_purge(vp);
   1989 
   1990 	/* Done with purge, change operations vector. */
   1991 	mutex_enter(vp->v_interlock);
   1992 	vp->v_op = spec_vnodeop_p;
   1993 	vp->v_vflag |= VV_MPSAFE;
   1994 	mutex_exit(vp->v_interlock);
   1995 
   1996 	/*
   1997 	 * Move to dead mount.  Must be after changing the operations
   1998 	 * vector as vnode operations enter the mount before using the
   1999 	 * operations vector.  See sys/kern/vnode_if.c.
   2000 	 */
   2001 	vfs_ref(dead_rootmount);
   2002 	vfs_insmntque(vp, dead_rootmount);
   2003 
   2004 	vrele(vp);
   2005 }
   2006 
   2007 /*
   2008  * Update outstanding I/O count and do wakeup if requested.
   2009  */
   2010 void
   2011 vwakeup(struct buf *bp)
   2012 {
   2013 	vnode_t *vp;
   2014 
   2015 	if ((vp = bp->b_vp) == NULL)
   2016 		return;
   2017 
   2018 	KASSERT(bp->b_objlock == vp->v_interlock);
   2019 	KASSERT(mutex_owned(bp->b_objlock));
   2020 
   2021 	if (--vp->v_numoutput < 0)
   2022 		vnpanic(vp, "%s: neg numoutput, vp %p", __func__, vp);
   2023 	if (vp->v_numoutput == 0)
   2024 		cv_broadcast(&vp->v_cv);
   2025 }
   2026 
   2027 /*
   2028  * Test a vnode for being or becoming dead.  Returns one of:
   2029  * EBUSY:  vnode is becoming dead, with "flags == VDEAD_NOWAIT" only.
   2030  * ENOENT: vnode is dead.
   2031  * 0:      otherwise.
   2032  *
   2033  * Whenever this function returns a non-zero value all future
   2034  * calls will also return a non-zero value.
   2035  */
   2036 int
   2037 vdead_check(struct vnode *vp, int flags)
   2038 {
   2039 
   2040 	KASSERT(mutex_owned(vp->v_interlock));
   2041 
   2042 	if (! ISSET(flags, VDEAD_NOWAIT))
   2043 		VSTATE_WAIT_STABLE(vp);
   2044 
   2045 	if (VSTATE_GET(vp) == VS_RECLAIMING) {
   2046 		KASSERT(ISSET(flags, VDEAD_NOWAIT));
   2047 		return EBUSY;
   2048 	} else if (VSTATE_GET(vp) == VS_RECLAIMED) {
   2049 		return ENOENT;
   2050 	}
   2051 
   2052 	return 0;
   2053 }
   2054 
   2055 int
   2056 vfs_drainvnodes(void)
   2057 {
   2058 	int i, gen;
   2059 
   2060 	mutex_enter(&vdrain_lock);
   2061 	for (i = 0; i < 2; i++) {
   2062 		gen = vdrain_gen;
   2063 		while (gen == vdrain_gen) {
   2064 			cv_broadcast(&vdrain_cv);
   2065 			cv_wait(&vdrain_gen_cv, &vdrain_lock);
   2066 		}
   2067 	}
   2068 	mutex_exit(&vdrain_lock);
   2069 
   2070 	if (numvnodes >= desiredvnodes)
   2071 		return EBUSY;
   2072 
   2073 	if (vcache_hashsize != desiredvnodes)
   2074 		vcache_reinit();
   2075 
   2076 	return 0;
   2077 }
   2078 
   2079 void
   2080 vnpanic(vnode_t *vp, const char *fmt, ...)
   2081 {
   2082 	va_list ap;
   2083 
   2084 #ifdef DIAGNOSTIC
   2085 	vprint(NULL, vp);
   2086 #endif
   2087 	va_start(ap, fmt);
   2088 	vpanic(fmt, ap);
   2089 	va_end(ap);
   2090 }
   2091 
   2092 void
   2093 vshareilock(vnode_t *tvp, vnode_t *fvp)
   2094 {
   2095 	kmutex_t *oldlock;
   2096 
   2097 	oldlock = tvp->v_interlock;
   2098 	mutex_obj_hold(fvp->v_interlock);
   2099 	tvp->v_interlock = fvp->v_interlock;
   2100 	mutex_obj_free(oldlock);
   2101 }
   2102 
   2103 void
   2104 vshareklist(vnode_t *tvp, vnode_t *fvp)
   2105 {
   2106 	/*
   2107 	 * If two vnodes share klist state, they must also share
   2108 	 * an interlock.
   2109 	 */
   2110 	KASSERT(tvp->v_interlock == fvp->v_interlock);
   2111 
   2112 	/*
   2113 	 * We make the following assumptions:
   2114 	 *
   2115 	 * ==> Some other synchronization is happening outside of
   2116 	 *     our view to make this safe.
   2117 	 *
   2118 	 * ==> That the "to" vnode will have the necessary references
   2119 	 *     on the "from" vnode so that the storage for the klist
   2120 	 *     won't be yanked out from beneath us (the vnode_impl).
   2121 	 *
   2122 	 * ==> If "from" is also sharing, we then assume that "from"
   2123 	 *     has the necessary references, and so on.
   2124 	 */
   2125 	tvp->v_klist = fvp->v_klist;
   2126 }
   2127