vfs_vnode.c revision 1.12 1 1.12 hannken /* $NetBSD: vfs_vnode.c,v 1.12 2011/10/02 13:00:06 hannken Exp $ */
2 1.1 rmind
3 1.1 rmind /*-
4 1.2 rmind * Copyright (c) 1997-2011 The NetBSD Foundation, Inc.
5 1.1 rmind * All rights reserved.
6 1.1 rmind *
7 1.1 rmind * This code is derived from software contributed to The NetBSD Foundation
8 1.1 rmind * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 1.1 rmind * NASA Ames Research Center, by Charles M. Hannum, and by Andrew Doran.
10 1.1 rmind *
11 1.1 rmind * Redistribution and use in source and binary forms, with or without
12 1.1 rmind * modification, are permitted provided that the following conditions
13 1.1 rmind * are met:
14 1.1 rmind * 1. Redistributions of source code must retain the above copyright
15 1.1 rmind * notice, this list of conditions and the following disclaimer.
16 1.1 rmind * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 rmind * notice, this list of conditions and the following disclaimer in the
18 1.1 rmind * documentation and/or other materials provided with the distribution.
19 1.1 rmind *
20 1.1 rmind * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.1 rmind * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.1 rmind * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.1 rmind * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.1 rmind * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.1 rmind * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.1 rmind * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.1 rmind * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.1 rmind * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.1 rmind * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.1 rmind * POSSIBILITY OF SUCH DAMAGE.
31 1.1 rmind */
32 1.1 rmind
33 1.1 rmind /*
34 1.1 rmind * Copyright (c) 1989, 1993
35 1.1 rmind * The Regents of the University of California. All rights reserved.
36 1.1 rmind * (c) UNIX System Laboratories, Inc.
37 1.1 rmind * All or some portions of this file are derived from material licensed
38 1.1 rmind * to the University of California by American Telephone and Telegraph
39 1.1 rmind * Co. or Unix System Laboratories, Inc. and are reproduced herein with
40 1.1 rmind * the permission of UNIX System Laboratories, Inc.
41 1.1 rmind *
42 1.1 rmind * Redistribution and use in source and binary forms, with or without
43 1.1 rmind * modification, are permitted provided that the following conditions
44 1.1 rmind * are met:
45 1.1 rmind * 1. Redistributions of source code must retain the above copyright
46 1.1 rmind * notice, this list of conditions and the following disclaimer.
47 1.1 rmind * 2. Redistributions in binary form must reproduce the above copyright
48 1.1 rmind * notice, this list of conditions and the following disclaimer in the
49 1.1 rmind * documentation and/or other materials provided with the distribution.
50 1.1 rmind * 3. Neither the name of the University nor the names of its contributors
51 1.1 rmind * may be used to endorse or promote products derived from this software
52 1.1 rmind * without specific prior written permission.
53 1.1 rmind *
54 1.1 rmind * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
55 1.1 rmind * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
56 1.1 rmind * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
57 1.1 rmind * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
58 1.1 rmind * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
59 1.1 rmind * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
60 1.1 rmind * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
61 1.1 rmind * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
62 1.1 rmind * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
63 1.1 rmind * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
64 1.1 rmind * SUCH DAMAGE.
65 1.1 rmind *
66 1.1 rmind * @(#)vfs_subr.c 8.13 (Berkeley) 4/18/94
67 1.1 rmind */
68 1.1 rmind
69 1.1 rmind /*
70 1.8 rmind * The vnode cache subsystem.
71 1.1 rmind *
72 1.8 rmind * Life-cycle
73 1.1 rmind *
74 1.8 rmind * Normally, there are two points where new vnodes are created:
75 1.8 rmind * VOP_CREATE(9) and VOP_LOOKUP(9). The life-cycle of a vnode
76 1.8 rmind * starts in one of the following ways:
77 1.8 rmind *
78 1.8 rmind * - Allocation, via getnewvnode(9) and/or vnalloc(9).
79 1.8 rmind * - Reclamation of inactive vnode, via vget(9).
80 1.8 rmind *
81 1.8 rmind * The life-cycle ends when the last reference is dropped, usually
82 1.8 rmind * in VOP_REMOVE(9). In such case, VOP_INACTIVE(9) is called to inform
83 1.8 rmind * the file system that vnode is inactive. Via this call, file system
84 1.8 rmind * indicates whether vnode should be recycled (usually, count of links
85 1.8 rmind * is checked i.e. whether file was removed).
86 1.8 rmind *
87 1.8 rmind * Depending on indication, vnode can be put into a free list (cache),
88 1.8 rmind * or cleaned via vclean(9), which calls VOP_RECLAIM(9) to disassociate
89 1.8 rmind * underlying file system from the vnode, and finally destroyed.
90 1.8 rmind *
91 1.8 rmind * Reference counting
92 1.8 rmind *
93 1.8 rmind * Vnode is considered active, if reference count (vnode_t::v_usecount)
94 1.8 rmind * is non-zero. It is maintained using: vref(9) and vrele(9), as well
95 1.8 rmind * as vput(9), routines. Common points holding references are e.g.
96 1.8 rmind * file openings, current working directory, mount points, etc.
97 1.8 rmind *
98 1.8 rmind * Note on v_usecount and its locking
99 1.8 rmind *
100 1.8 rmind * At nearly all points it is known that v_usecount could be zero,
101 1.8 rmind * the vnode_t::v_interlock will be held. To change v_usecount away
102 1.8 rmind * from zero, the interlock must be held. To change from a non-zero
103 1.8 rmind * value to zero, again the interlock must be held.
104 1.8 rmind *
105 1.8 rmind * There is a flag bit, VC_XLOCK, embedded in v_usecount. To raise
106 1.8 rmind * v_usecount, if the VC_XLOCK bit is set in it, the interlock must
107 1.8 rmind * be held. To modify the VC_XLOCK bit, the interlock must be held.
108 1.8 rmind * We always keep the usecount (v_usecount & VC_MASK) non-zero while
109 1.8 rmind * the VC_XLOCK bit is set.
110 1.8 rmind *
111 1.8 rmind * Unless the VC_XLOCK bit is set, changing the usecount from a non-zero
112 1.8 rmind * value to a non-zero value can safely be done using atomic operations,
113 1.8 rmind * without the interlock held.
114 1.8 rmind *
115 1.8 rmind * Even if the VC_XLOCK bit is set, decreasing the usecount to a non-zero
116 1.8 rmind * value can be done using atomic operations, without the interlock held.
117 1.8 rmind *
118 1.8 rmind * Note: if VI_CLEAN is set, vnode_t::v_interlock will be released while
119 1.8 rmind * mntvnode_lock is still held.
120 1.1 rmind */
121 1.1 rmind
122 1.1 rmind #include <sys/cdefs.h>
123 1.12 hannken __KERNEL_RCSID(0, "$NetBSD: vfs_vnode.c,v 1.12 2011/10/02 13:00:06 hannken Exp $");
124 1.1 rmind
125 1.1 rmind #include <sys/param.h>
126 1.1 rmind #include <sys/kernel.h>
127 1.1 rmind
128 1.1 rmind #include <sys/atomic.h>
129 1.1 rmind #include <sys/buf.h>
130 1.1 rmind #include <sys/conf.h>
131 1.1 rmind #include <sys/device.h>
132 1.1 rmind #include <sys/kauth.h>
133 1.1 rmind #include <sys/kmem.h>
134 1.1 rmind #include <sys/kthread.h>
135 1.1 rmind #include <sys/module.h>
136 1.1 rmind #include <sys/mount.h>
137 1.1 rmind #include <sys/namei.h>
138 1.1 rmind #include <sys/syscallargs.h>
139 1.1 rmind #include <sys/sysctl.h>
140 1.1 rmind #include <sys/systm.h>
141 1.1 rmind #include <sys/vnode.h>
142 1.1 rmind #include <sys/wapbl.h>
143 1.1 rmind
144 1.1 rmind #include <uvm/uvm.h>
145 1.1 rmind #include <uvm/uvm_readahead.h>
146 1.1 rmind
147 1.6 rmind u_int numvnodes __cacheline_aligned;
148 1.1 rmind
149 1.6 rmind static pool_cache_t vnode_cache __read_mostly;
150 1.6 rmind static kmutex_t vnode_free_list_lock __cacheline_aligned;
151 1.1 rmind
152 1.6 rmind static vnodelst_t vnode_free_list __cacheline_aligned;
153 1.6 rmind static vnodelst_t vnode_hold_list __cacheline_aligned;
154 1.6 rmind static vnodelst_t vrele_list __cacheline_aligned;
155 1.6 rmind
156 1.6 rmind static kmutex_t vrele_lock __cacheline_aligned;
157 1.6 rmind static kcondvar_t vrele_cv __cacheline_aligned;
158 1.6 rmind static lwp_t * vrele_lwp __cacheline_aligned;
159 1.6 rmind static int vrele_pending __cacheline_aligned;
160 1.6 rmind static int vrele_gen __cacheline_aligned;
161 1.12 hannken static kcondvar_t vdrain_cv __cacheline_aligned;
162 1.1 rmind
163 1.12 hannken static int cleanvnode(void);
164 1.12 hannken static void vdrain_thread(void *);
165 1.1 rmind static void vrele_thread(void *);
166 1.11 christos static void vnpanic(vnode_t *, const char *, ...)
167 1.11 christos __attribute__((__format__(__printf__, 2, 3)));
168 1.1 rmind
169 1.1 rmind /* Routines having to do with the management of the vnode table. */
170 1.1 rmind extern int (**dead_vnodeop_p)(void *);
171 1.1 rmind
172 1.1 rmind void
173 1.1 rmind vfs_vnode_sysinit(void)
174 1.1 rmind {
175 1.1 rmind int error;
176 1.1 rmind
177 1.1 rmind vnode_cache = pool_cache_init(sizeof(vnode_t), 0, 0, 0, "vnodepl",
178 1.1 rmind NULL, IPL_NONE, NULL, NULL, NULL);
179 1.1 rmind KASSERT(vnode_cache != NULL);
180 1.1 rmind
181 1.1 rmind mutex_init(&vnode_free_list_lock, MUTEX_DEFAULT, IPL_NONE);
182 1.1 rmind TAILQ_INIT(&vnode_free_list);
183 1.1 rmind TAILQ_INIT(&vnode_hold_list);
184 1.1 rmind TAILQ_INIT(&vrele_list);
185 1.1 rmind
186 1.1 rmind mutex_init(&vrele_lock, MUTEX_DEFAULT, IPL_NONE);
187 1.12 hannken cv_init(&vdrain_cv, "vdrain");
188 1.1 rmind cv_init(&vrele_cv, "vrele");
189 1.12 hannken error = kthread_create(PRI_VM, KTHREAD_MPSAFE, NULL, vdrain_thread,
190 1.12 hannken NULL, NULL, "vdrain");
191 1.12 hannken KASSERT(error == 0);
192 1.1 rmind error = kthread_create(PRI_VM, KTHREAD_MPSAFE, NULL, vrele_thread,
193 1.1 rmind NULL, &vrele_lwp, "vrele");
194 1.1 rmind KASSERT(error == 0);
195 1.1 rmind }
196 1.1 rmind
197 1.1 rmind /*
198 1.1 rmind * Allocate a new, uninitialized vnode. If 'mp' is non-NULL, this is a
199 1.1 rmind * marker vnode and we are prepared to wait for the allocation.
200 1.1 rmind */
201 1.1 rmind vnode_t *
202 1.1 rmind vnalloc(struct mount *mp)
203 1.1 rmind {
204 1.1 rmind vnode_t *vp;
205 1.1 rmind
206 1.1 rmind vp = pool_cache_get(vnode_cache, (mp != NULL ? PR_WAITOK : PR_NOWAIT));
207 1.1 rmind if (vp == NULL) {
208 1.1 rmind return NULL;
209 1.1 rmind }
210 1.1 rmind
211 1.1 rmind memset(vp, 0, sizeof(*vp));
212 1.9 rmind uvm_obj_init(&vp->v_uobj, &uvm_vnodeops, true, 0);
213 1.1 rmind cv_init(&vp->v_cv, "vnode");
214 1.1 rmind /*
215 1.1 rmind * Done by memset() above.
216 1.1 rmind * LIST_INIT(&vp->v_nclist);
217 1.1 rmind * LIST_INIT(&vp->v_dnclist);
218 1.1 rmind */
219 1.1 rmind
220 1.1 rmind if (mp != NULL) {
221 1.1 rmind vp->v_mount = mp;
222 1.1 rmind vp->v_type = VBAD;
223 1.1 rmind vp->v_iflag = VI_MARKER;
224 1.1 rmind } else {
225 1.1 rmind rw_init(&vp->v_lock);
226 1.1 rmind }
227 1.1 rmind
228 1.1 rmind return vp;
229 1.1 rmind }
230 1.1 rmind
231 1.1 rmind /*
232 1.1 rmind * Free an unused, unreferenced vnode.
233 1.1 rmind */
234 1.1 rmind void
235 1.1 rmind vnfree(vnode_t *vp)
236 1.1 rmind {
237 1.1 rmind
238 1.1 rmind KASSERT(vp->v_usecount == 0);
239 1.1 rmind
240 1.1 rmind if ((vp->v_iflag & VI_MARKER) == 0) {
241 1.1 rmind rw_destroy(&vp->v_lock);
242 1.1 rmind mutex_enter(&vnode_free_list_lock);
243 1.1 rmind numvnodes--;
244 1.1 rmind mutex_exit(&vnode_free_list_lock);
245 1.1 rmind }
246 1.1 rmind
247 1.9 rmind /*
248 1.9 rmind * Note: the vnode interlock will either be freed, of reference
249 1.9 rmind * dropped (if VI_LOCKSHARE was in use).
250 1.9 rmind */
251 1.9 rmind uvm_obj_destroy(&vp->v_uobj, true);
252 1.1 rmind cv_destroy(&vp->v_cv);
253 1.1 rmind pool_cache_put(vnode_cache, vp);
254 1.1 rmind }
255 1.1 rmind
256 1.1 rmind /*
257 1.12 hannken * cleanvnode: grab a vnode from freelist, clean and free it.
258 1.5 rmind *
259 1.5 rmind * => Releases vnode_free_list_lock.
260 1.1 rmind */
261 1.12 hannken static int
262 1.12 hannken cleanvnode(void)
263 1.1 rmind {
264 1.1 rmind vnode_t *vp;
265 1.1 rmind vnodelst_t *listhd;
266 1.1 rmind
267 1.1 rmind KASSERT(mutex_owned(&vnode_free_list_lock));
268 1.1 rmind retry:
269 1.1 rmind listhd = &vnode_free_list;
270 1.1 rmind try_nextlist:
271 1.1 rmind TAILQ_FOREACH(vp, listhd, v_freelist) {
272 1.1 rmind /*
273 1.1 rmind * It's safe to test v_usecount and v_iflag
274 1.1 rmind * without holding the interlock here, since
275 1.1 rmind * these vnodes should never appear on the
276 1.1 rmind * lists.
277 1.1 rmind */
278 1.5 rmind KASSERT(vp->v_usecount == 0);
279 1.5 rmind KASSERT((vp->v_iflag & VI_CLEAN) == 0);
280 1.5 rmind KASSERT(vp->v_freelisthd == listhd);
281 1.5 rmind
282 1.9 rmind if (!mutex_tryenter(vp->v_interlock))
283 1.1 rmind continue;
284 1.1 rmind if ((vp->v_iflag & VI_XLOCK) == 0)
285 1.1 rmind break;
286 1.9 rmind mutex_exit(vp->v_interlock);
287 1.1 rmind }
288 1.1 rmind
289 1.1 rmind if (vp == NULL) {
290 1.1 rmind if (listhd == &vnode_free_list) {
291 1.1 rmind listhd = &vnode_hold_list;
292 1.1 rmind goto try_nextlist;
293 1.1 rmind }
294 1.1 rmind mutex_exit(&vnode_free_list_lock);
295 1.12 hannken return EBUSY;
296 1.1 rmind }
297 1.1 rmind
298 1.1 rmind /* Remove it from the freelist. */
299 1.1 rmind TAILQ_REMOVE(listhd, vp, v_freelist);
300 1.1 rmind vp->v_freelisthd = NULL;
301 1.1 rmind mutex_exit(&vnode_free_list_lock);
302 1.1 rmind
303 1.1 rmind KASSERT(vp->v_usecount == 0);
304 1.1 rmind
305 1.1 rmind /*
306 1.1 rmind * The vnode is still associated with a file system, so we must
307 1.12 hannken * clean it out before freeing it. We need to add a reference
308 1.1 rmind * before doing this. If the vnode gains another reference while
309 1.1 rmind * being cleaned out then we lose - retry.
310 1.1 rmind */
311 1.1 rmind atomic_add_int(&vp->v_usecount, 1 + VC_XLOCK);
312 1.1 rmind vclean(vp, DOCLOSE);
313 1.1 rmind KASSERT(vp->v_usecount >= 1 + VC_XLOCK);
314 1.1 rmind atomic_add_int(&vp->v_usecount, -VC_XLOCK);
315 1.12 hannken if (vp->v_usecount > 1) {
316 1.1 rmind /*
317 1.1 rmind * Don't return to freelist - the holder of the last
318 1.1 rmind * reference will destroy it.
319 1.1 rmind */
320 1.1 rmind vrelel(vp, 0); /* releases vp->v_interlock */
321 1.1 rmind mutex_enter(&vnode_free_list_lock);
322 1.1 rmind goto retry;
323 1.1 rmind }
324 1.1 rmind
325 1.12 hannken KASSERT((vp->v_iflag & VI_CLEAN) == VI_CLEAN);
326 1.12 hannken mutex_exit(vp->v_interlock);
327 1.12 hannken if (vp->v_type == VBLK || vp->v_type == VCHR) {
328 1.12 hannken spec_node_destroy(vp);
329 1.12 hannken }
330 1.12 hannken vp->v_type = VNON;
331 1.12 hannken
332 1.5 rmind KASSERT(vp->v_data == NULL);
333 1.5 rmind KASSERT(vp->v_uobj.uo_npages == 0);
334 1.5 rmind KASSERT(TAILQ_EMPTY(&vp->v_uobj.memq));
335 1.5 rmind KASSERT(vp->v_numoutput == 0);
336 1.5 rmind KASSERT((vp->v_iflag & VI_ONWORKLST) == 0);
337 1.1 rmind
338 1.12 hannken vrele(vp);
339 1.12 hannken
340 1.12 hannken return 0;
341 1.1 rmind }
342 1.1 rmind
343 1.1 rmind /*
344 1.12 hannken * getnewvnode: return a fresh vnode.
345 1.5 rmind *
346 1.5 rmind * => Returns referenced vnode, moved into the mount queue.
347 1.9 rmind * => Shares the interlock specified by 'slock', if it is not NULL.
348 1.1 rmind */
349 1.1 rmind int
350 1.1 rmind getnewvnode(enum vtagtype tag, struct mount *mp, int (**vops)(void *),
351 1.9 rmind kmutex_t *slock, vnode_t **vpp)
352 1.1 rmind {
353 1.1 rmind struct uvm_object *uobj;
354 1.1 rmind vnode_t *vp;
355 1.12 hannken int error = 0;
356 1.1 rmind
357 1.1 rmind try_again:
358 1.1 rmind if (mp != NULL) {
359 1.1 rmind /*
360 1.4 rmind * Mark filesystem busy while we are creating a vnode.
361 1.4 rmind * If unmount is in progress, this will fail.
362 1.1 rmind */
363 1.1 rmind error = vfs_busy(mp, NULL);
364 1.1 rmind if (error)
365 1.1 rmind return error;
366 1.1 rmind }
367 1.1 rmind
368 1.1 rmind vp = NULL;
369 1.1 rmind
370 1.12 hannken /* Allocate a new vnode. */
371 1.1 rmind mutex_enter(&vnode_free_list_lock);
372 1.12 hannken numvnodes++;
373 1.12 hannken if (numvnodes > desiredvnodes + desiredvnodes / 10)
374 1.12 hannken cv_signal(&vdrain_cv);
375 1.12 hannken mutex_exit(&vnode_free_list_lock);
376 1.12 hannken if ((vp = vnalloc(NULL)) == NULL) {
377 1.12 hannken mutex_enter(&vnode_free_list_lock);
378 1.12 hannken numvnodes--;
379 1.1 rmind mutex_exit(&vnode_free_list_lock);
380 1.12 hannken if (mp != NULL) {
381 1.12 hannken vfs_unbusy(mp, false, NULL);
382 1.12 hannken }
383 1.12 hannken printf("WARNING: unable to allocate new vnode, retrying...\n");
384 1.12 hannken kpause("newvn", false, hz, NULL);
385 1.12 hannken goto try_again;
386 1.1 rmind }
387 1.1 rmind
388 1.12 hannken vp->v_usecount = 1;
389 1.1 rmind
390 1.1 rmind KASSERT(vp->v_freelisthd == NULL);
391 1.1 rmind KASSERT(LIST_EMPTY(&vp->v_nclist));
392 1.1 rmind KASSERT(LIST_EMPTY(&vp->v_dnclist));
393 1.1 rmind
394 1.5 rmind /* Initialize vnode. */
395 1.1 rmind vp->v_type = VNON;
396 1.1 rmind vp->v_tag = tag;
397 1.1 rmind vp->v_op = vops;
398 1.1 rmind vp->v_data = NULL;
399 1.1 rmind
400 1.1 rmind uobj = &vp->v_uobj;
401 1.1 rmind KASSERT(uobj->pgops == &uvm_vnodeops);
402 1.1 rmind KASSERT(uobj->uo_npages == 0);
403 1.1 rmind KASSERT(TAILQ_FIRST(&uobj->memq) == NULL);
404 1.1 rmind vp->v_size = vp->v_writesize = VSIZENOTSET;
405 1.1 rmind
406 1.9 rmind /* Share the vnode_t::v_interlock, if requested. */
407 1.9 rmind if (slock) {
408 1.9 rmind /* Set the interlock and mark that it is shared. */
409 1.9 rmind KASSERT(vp->v_mount == NULL);
410 1.9 rmind mutex_obj_hold(slock);
411 1.9 rmind uvm_obj_setlock(&vp->v_uobj, slock);
412 1.9 rmind KASSERT(vp->v_interlock == slock);
413 1.9 rmind vp->v_iflag |= VI_LOCKSHARE;
414 1.9 rmind }
415 1.9 rmind
416 1.5 rmind /* Finally, move vnode into the mount queue. */
417 1.5 rmind vfs_insmntque(vp, mp);
418 1.5 rmind
419 1.1 rmind if (mp != NULL) {
420 1.1 rmind if ((mp->mnt_iflag & IMNT_MPSAFE) != 0)
421 1.1 rmind vp->v_vflag |= VV_MPSAFE;
422 1.1 rmind vfs_unbusy(mp, true, NULL);
423 1.1 rmind }
424 1.1 rmind
425 1.5 rmind *vpp = vp;
426 1.4 rmind return 0;
427 1.1 rmind }
428 1.1 rmind
429 1.1 rmind /*
430 1.1 rmind * This is really just the reverse of getnewvnode(). Needed for
431 1.1 rmind * VFS_VGET functions who may need to push back a vnode in case
432 1.1 rmind * of a locking race.
433 1.1 rmind */
434 1.1 rmind void
435 1.1 rmind ungetnewvnode(vnode_t *vp)
436 1.1 rmind {
437 1.1 rmind
438 1.1 rmind KASSERT(vp->v_usecount == 1);
439 1.1 rmind KASSERT(vp->v_data == NULL);
440 1.1 rmind KASSERT(vp->v_freelisthd == NULL);
441 1.1 rmind
442 1.9 rmind mutex_enter(vp->v_interlock);
443 1.1 rmind vp->v_iflag |= VI_CLEAN;
444 1.1 rmind vrelel(vp, 0);
445 1.1 rmind }
446 1.1 rmind
447 1.1 rmind /*
448 1.12 hannken * Helper thread to keep the number of vnodes below desiredvnodes.
449 1.12 hannken */
450 1.12 hannken static void
451 1.12 hannken vdrain_thread(void *cookie)
452 1.12 hannken {
453 1.12 hannken int error;
454 1.12 hannken
455 1.12 hannken mutex_enter(&vnode_free_list_lock);
456 1.12 hannken
457 1.12 hannken for (;;) {
458 1.12 hannken cv_timedwait(&vdrain_cv, &vnode_free_list_lock, hz);
459 1.12 hannken while (numvnodes > desiredvnodes) {
460 1.12 hannken error = cleanvnode();
461 1.12 hannken if (error)
462 1.12 hannken kpause("vndsbusy", false, hz, NULL);
463 1.12 hannken mutex_enter(&vnode_free_list_lock);
464 1.12 hannken if (error)
465 1.12 hannken break;
466 1.12 hannken }
467 1.12 hannken }
468 1.12 hannken }
469 1.12 hannken
470 1.12 hannken /*
471 1.1 rmind * Remove a vnode from its freelist.
472 1.1 rmind */
473 1.1 rmind void
474 1.1 rmind vremfree(vnode_t *vp)
475 1.1 rmind {
476 1.1 rmind
477 1.9 rmind KASSERT(mutex_owned(vp->v_interlock));
478 1.1 rmind KASSERT(vp->v_usecount == 0);
479 1.1 rmind
480 1.1 rmind /*
481 1.1 rmind * Note that the reference count must not change until
482 1.1 rmind * the vnode is removed.
483 1.1 rmind */
484 1.1 rmind mutex_enter(&vnode_free_list_lock);
485 1.1 rmind if (vp->v_holdcnt > 0) {
486 1.1 rmind KASSERT(vp->v_freelisthd == &vnode_hold_list);
487 1.1 rmind } else {
488 1.1 rmind KASSERT(vp->v_freelisthd == &vnode_free_list);
489 1.1 rmind }
490 1.1 rmind TAILQ_REMOVE(vp->v_freelisthd, vp, v_freelist);
491 1.1 rmind vp->v_freelisthd = NULL;
492 1.1 rmind mutex_exit(&vnode_free_list_lock);
493 1.1 rmind }
494 1.1 rmind
495 1.1 rmind /*
496 1.1 rmind * Try to gain a reference to a vnode, without acquiring its interlock.
497 1.1 rmind * The caller must hold a lock that will prevent the vnode from being
498 1.1 rmind * recycled or freed.
499 1.1 rmind */
500 1.1 rmind bool
501 1.1 rmind vtryget(vnode_t *vp)
502 1.1 rmind {
503 1.1 rmind u_int use, next;
504 1.1 rmind
505 1.1 rmind /*
506 1.1 rmind * If the vnode is being freed, don't make life any harder
507 1.1 rmind * for vclean() by adding another reference without waiting.
508 1.1 rmind * This is not strictly necessary, but we'll do it anyway.
509 1.1 rmind */
510 1.1 rmind if (__predict_false((vp->v_iflag & VI_XLOCK) != 0)) {
511 1.1 rmind return false;
512 1.1 rmind }
513 1.1 rmind for (use = vp->v_usecount;; use = next) {
514 1.1 rmind if (use == 0 || __predict_false((use & VC_XLOCK) != 0)) {
515 1.1 rmind /* Need interlock held if first reference. */
516 1.1 rmind return false;
517 1.1 rmind }
518 1.1 rmind next = atomic_cas_uint(&vp->v_usecount, use, use + 1);
519 1.1 rmind if (__predict_true(next == use)) {
520 1.1 rmind return true;
521 1.1 rmind }
522 1.1 rmind }
523 1.1 rmind }
524 1.1 rmind
525 1.1 rmind /*
526 1.4 rmind * vget: get a particular vnode from the free list, increment its reference
527 1.4 rmind * count and lock it.
528 1.4 rmind *
529 1.4 rmind * => Should be called with v_interlock held.
530 1.4 rmind *
531 1.4 rmind * If VI_XLOCK is set, the vnode is being eliminated in vgone()/vclean().
532 1.4 rmind * In that case, we cannot grab the vnode, so the process is awakened when
533 1.4 rmind * the transition is completed, and an error returned to indicate that the
534 1.4 rmind * vnode is no longer usable (e.g. changed to a new file system type).
535 1.1 rmind */
536 1.1 rmind int
537 1.1 rmind vget(vnode_t *vp, int flags)
538 1.1 rmind {
539 1.1 rmind int error = 0;
540 1.1 rmind
541 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
542 1.9 rmind KASSERT(mutex_owned(vp->v_interlock));
543 1.1 rmind KASSERT((flags & ~(LK_SHARED|LK_EXCLUSIVE|LK_NOWAIT)) == 0);
544 1.1 rmind
545 1.1 rmind /*
546 1.1 rmind * Before adding a reference, we must remove the vnode
547 1.1 rmind * from its freelist.
548 1.1 rmind */
549 1.1 rmind if (vp->v_usecount == 0) {
550 1.1 rmind vremfree(vp);
551 1.1 rmind vp->v_usecount = 1;
552 1.1 rmind } else {
553 1.1 rmind atomic_inc_uint(&vp->v_usecount);
554 1.1 rmind }
555 1.1 rmind
556 1.1 rmind /*
557 1.1 rmind * If the vnode is in the process of being cleaned out for
558 1.1 rmind * another use, we wait for the cleaning to finish and then
559 1.1 rmind * return failure. Cleaning is determined by checking if
560 1.1 rmind * the VI_XLOCK flag is set.
561 1.1 rmind */
562 1.1 rmind if ((vp->v_iflag & VI_XLOCK) != 0) {
563 1.1 rmind if ((flags & LK_NOWAIT) != 0) {
564 1.1 rmind vrelel(vp, 0);
565 1.1 rmind return EBUSY;
566 1.1 rmind }
567 1.1 rmind vwait(vp, VI_XLOCK);
568 1.1 rmind vrelel(vp, 0);
569 1.1 rmind return ENOENT;
570 1.1 rmind }
571 1.1 rmind
572 1.1 rmind /*
573 1.1 rmind * Ok, we got it in good shape. Just locking left.
574 1.1 rmind */
575 1.1 rmind KASSERT((vp->v_iflag & VI_CLEAN) == 0);
576 1.9 rmind mutex_exit(vp->v_interlock);
577 1.1 rmind if (flags & (LK_EXCLUSIVE | LK_SHARED)) {
578 1.1 rmind error = vn_lock(vp, flags);
579 1.1 rmind if (error != 0) {
580 1.1 rmind vrele(vp);
581 1.1 rmind }
582 1.1 rmind }
583 1.1 rmind return error;
584 1.1 rmind }
585 1.1 rmind
586 1.1 rmind /*
587 1.4 rmind * vput: unlock and release the reference.
588 1.1 rmind */
589 1.1 rmind void
590 1.1 rmind vput(vnode_t *vp)
591 1.1 rmind {
592 1.1 rmind
593 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
594 1.1 rmind
595 1.1 rmind VOP_UNLOCK(vp);
596 1.1 rmind vrele(vp);
597 1.1 rmind }
598 1.1 rmind
599 1.1 rmind /*
600 1.1 rmind * Try to drop reference on a vnode. Abort if we are releasing the
601 1.1 rmind * last reference. Note: this _must_ succeed if not the last reference.
602 1.1 rmind */
603 1.1 rmind static inline bool
604 1.1 rmind vtryrele(vnode_t *vp)
605 1.1 rmind {
606 1.1 rmind u_int use, next;
607 1.1 rmind
608 1.1 rmind for (use = vp->v_usecount;; use = next) {
609 1.1 rmind if (use == 1) {
610 1.1 rmind return false;
611 1.1 rmind }
612 1.1 rmind KASSERT((use & VC_MASK) > 1);
613 1.1 rmind next = atomic_cas_uint(&vp->v_usecount, use, use - 1);
614 1.1 rmind if (__predict_true(next == use)) {
615 1.1 rmind return true;
616 1.1 rmind }
617 1.1 rmind }
618 1.1 rmind }
619 1.1 rmind
620 1.1 rmind /*
621 1.1 rmind * Vnode release. If reference count drops to zero, call inactive
622 1.1 rmind * routine and either return to freelist or free to the pool.
623 1.1 rmind */
624 1.1 rmind void
625 1.1 rmind vrelel(vnode_t *vp, int flags)
626 1.1 rmind {
627 1.1 rmind bool recycle, defer;
628 1.1 rmind int error;
629 1.1 rmind
630 1.9 rmind KASSERT(mutex_owned(vp->v_interlock));
631 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
632 1.1 rmind KASSERT(vp->v_freelisthd == NULL);
633 1.1 rmind
634 1.1 rmind if (__predict_false(vp->v_op == dead_vnodeop_p &&
635 1.1 rmind (vp->v_iflag & (VI_CLEAN|VI_XLOCK)) == 0)) {
636 1.11 christos vnpanic(vp, "dead but not clean");
637 1.1 rmind }
638 1.1 rmind
639 1.1 rmind /*
640 1.1 rmind * If not the last reference, just drop the reference count
641 1.1 rmind * and unlock.
642 1.1 rmind */
643 1.1 rmind if (vtryrele(vp)) {
644 1.1 rmind vp->v_iflag |= VI_INACTREDO;
645 1.9 rmind mutex_exit(vp->v_interlock);
646 1.1 rmind return;
647 1.1 rmind }
648 1.1 rmind if (vp->v_usecount <= 0 || vp->v_writecount != 0) {
649 1.11 christos vnpanic(vp, "%s: bad ref count", __func__);
650 1.1 rmind }
651 1.1 rmind
652 1.1 rmind KASSERT((vp->v_iflag & VI_XLOCK) == 0);
653 1.1 rmind
654 1.1 rmind /*
655 1.1 rmind * If not clean, deactivate the vnode, but preserve
656 1.1 rmind * our reference across the call to VOP_INACTIVE().
657 1.1 rmind */
658 1.1 rmind retry:
659 1.1 rmind if ((vp->v_iflag & VI_CLEAN) == 0) {
660 1.1 rmind recycle = false;
661 1.1 rmind vp->v_iflag |= VI_INACTNOW;
662 1.1 rmind
663 1.1 rmind /*
664 1.1 rmind * XXX This ugly block can be largely eliminated if
665 1.1 rmind * locking is pushed down into the file systems.
666 1.1 rmind *
667 1.1 rmind * Defer vnode release to vrele_thread if caller
668 1.1 rmind * requests it explicitly.
669 1.1 rmind */
670 1.1 rmind if ((curlwp == uvm.pagedaemon_lwp) ||
671 1.1 rmind (flags & VRELEL_ASYNC_RELE) != 0) {
672 1.1 rmind /* The pagedaemon can't wait around; defer. */
673 1.1 rmind defer = true;
674 1.1 rmind } else if (curlwp == vrele_lwp) {
675 1.1 rmind /* We have to try harder. */
676 1.1 rmind vp->v_iflag &= ~VI_INACTREDO;
677 1.9 rmind mutex_exit(vp->v_interlock);
678 1.1 rmind error = vn_lock(vp, LK_EXCLUSIVE);
679 1.1 rmind if (error != 0) {
680 1.1 rmind /* XXX */
681 1.11 christos vnpanic(vp, "%s: unable to lock %p",
682 1.11 christos __func__, vp);
683 1.1 rmind }
684 1.1 rmind defer = false;
685 1.1 rmind } else if ((vp->v_iflag & VI_LAYER) != 0) {
686 1.1 rmind /*
687 1.1 rmind * Acquiring the stack's lock in vclean() even
688 1.1 rmind * for an honest vput/vrele is dangerous because
689 1.1 rmind * our caller may hold other vnode locks; defer.
690 1.1 rmind */
691 1.1 rmind defer = true;
692 1.4 rmind } else {
693 1.1 rmind /* If we can't acquire the lock, then defer. */
694 1.1 rmind vp->v_iflag &= ~VI_INACTREDO;
695 1.9 rmind mutex_exit(vp->v_interlock);
696 1.1 rmind error = vn_lock(vp, LK_EXCLUSIVE | LK_NOWAIT);
697 1.1 rmind if (error != 0) {
698 1.1 rmind defer = true;
699 1.9 rmind mutex_enter(vp->v_interlock);
700 1.1 rmind } else {
701 1.1 rmind defer = false;
702 1.1 rmind }
703 1.1 rmind }
704 1.1 rmind
705 1.1 rmind if (defer) {
706 1.1 rmind /*
707 1.1 rmind * Defer reclaim to the kthread; it's not safe to
708 1.1 rmind * clean it here. We donate it our last reference.
709 1.1 rmind */
710 1.9 rmind KASSERT(mutex_owned(vp->v_interlock));
711 1.1 rmind KASSERT((vp->v_iflag & VI_INACTPEND) == 0);
712 1.1 rmind vp->v_iflag &= ~VI_INACTNOW;
713 1.1 rmind vp->v_iflag |= VI_INACTPEND;
714 1.1 rmind mutex_enter(&vrele_lock);
715 1.1 rmind TAILQ_INSERT_TAIL(&vrele_list, vp, v_freelist);
716 1.1 rmind if (++vrele_pending > (desiredvnodes >> 8))
717 1.1 rmind cv_signal(&vrele_cv);
718 1.1 rmind mutex_exit(&vrele_lock);
719 1.9 rmind mutex_exit(vp->v_interlock);
720 1.1 rmind return;
721 1.1 rmind }
722 1.1 rmind
723 1.1 rmind #ifdef DIAGNOSTIC
724 1.1 rmind if ((vp->v_type == VBLK || vp->v_type == VCHR) &&
725 1.1 rmind vp->v_specnode != NULL && vp->v_specnode->sn_opencnt != 0) {
726 1.1 rmind vprint("vrelel: missing VOP_CLOSE()", vp);
727 1.1 rmind }
728 1.1 rmind #endif
729 1.1 rmind
730 1.1 rmind /*
731 1.1 rmind * The vnode can gain another reference while being
732 1.1 rmind * deactivated. If VOP_INACTIVE() indicates that
733 1.1 rmind * the described file has been deleted, then recycle
734 1.1 rmind * the vnode irrespective of additional references.
735 1.1 rmind * Another thread may be waiting to re-use the on-disk
736 1.1 rmind * inode.
737 1.1 rmind *
738 1.1 rmind * Note that VOP_INACTIVE() will drop the vnode lock.
739 1.1 rmind */
740 1.1 rmind VOP_INACTIVE(vp, &recycle);
741 1.9 rmind mutex_enter(vp->v_interlock);
742 1.1 rmind vp->v_iflag &= ~VI_INACTNOW;
743 1.1 rmind if (!recycle) {
744 1.1 rmind if (vtryrele(vp)) {
745 1.9 rmind mutex_exit(vp->v_interlock);
746 1.1 rmind return;
747 1.1 rmind }
748 1.1 rmind
749 1.1 rmind /*
750 1.1 rmind * If we grew another reference while
751 1.1 rmind * VOP_INACTIVE() was underway, retry.
752 1.1 rmind */
753 1.1 rmind if ((vp->v_iflag & VI_INACTREDO) != 0) {
754 1.1 rmind goto retry;
755 1.1 rmind }
756 1.1 rmind }
757 1.1 rmind
758 1.1 rmind /* Take care of space accounting. */
759 1.1 rmind if (vp->v_iflag & VI_EXECMAP) {
760 1.1 rmind atomic_add_int(&uvmexp.execpages,
761 1.1 rmind -vp->v_uobj.uo_npages);
762 1.1 rmind atomic_add_int(&uvmexp.filepages,
763 1.1 rmind vp->v_uobj.uo_npages);
764 1.1 rmind }
765 1.1 rmind vp->v_iflag &= ~(VI_TEXT|VI_EXECMAP|VI_WRMAP);
766 1.1 rmind vp->v_vflag &= ~VV_MAPPED;
767 1.1 rmind
768 1.1 rmind /*
769 1.1 rmind * Recycle the vnode if the file is now unused (unlinked),
770 1.1 rmind * otherwise just free it.
771 1.1 rmind */
772 1.1 rmind if (recycle) {
773 1.1 rmind vclean(vp, DOCLOSE);
774 1.1 rmind }
775 1.1 rmind KASSERT(vp->v_usecount > 0);
776 1.1 rmind }
777 1.1 rmind
778 1.1 rmind if (atomic_dec_uint_nv(&vp->v_usecount) != 0) {
779 1.1 rmind /* Gained another reference while being reclaimed. */
780 1.9 rmind mutex_exit(vp->v_interlock);
781 1.1 rmind return;
782 1.1 rmind }
783 1.1 rmind
784 1.1 rmind if ((vp->v_iflag & VI_CLEAN) != 0) {
785 1.1 rmind /*
786 1.1 rmind * It's clean so destroy it. It isn't referenced
787 1.1 rmind * anywhere since it has been reclaimed.
788 1.1 rmind */
789 1.1 rmind KASSERT(vp->v_holdcnt == 0);
790 1.1 rmind KASSERT(vp->v_writecount == 0);
791 1.9 rmind mutex_exit(vp->v_interlock);
792 1.1 rmind vfs_insmntque(vp, NULL);
793 1.1 rmind if (vp->v_type == VBLK || vp->v_type == VCHR) {
794 1.1 rmind spec_node_destroy(vp);
795 1.1 rmind }
796 1.1 rmind vnfree(vp);
797 1.1 rmind } else {
798 1.1 rmind /*
799 1.1 rmind * Otherwise, put it back onto the freelist. It
800 1.1 rmind * can't be destroyed while still associated with
801 1.1 rmind * a file system.
802 1.1 rmind */
803 1.1 rmind mutex_enter(&vnode_free_list_lock);
804 1.1 rmind if (vp->v_holdcnt > 0) {
805 1.1 rmind vp->v_freelisthd = &vnode_hold_list;
806 1.1 rmind } else {
807 1.1 rmind vp->v_freelisthd = &vnode_free_list;
808 1.1 rmind }
809 1.1 rmind TAILQ_INSERT_TAIL(vp->v_freelisthd, vp, v_freelist);
810 1.1 rmind mutex_exit(&vnode_free_list_lock);
811 1.9 rmind mutex_exit(vp->v_interlock);
812 1.1 rmind }
813 1.1 rmind }
814 1.1 rmind
815 1.1 rmind void
816 1.1 rmind vrele(vnode_t *vp)
817 1.1 rmind {
818 1.1 rmind
819 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
820 1.1 rmind
821 1.1 rmind if ((vp->v_iflag & VI_INACTNOW) == 0 && vtryrele(vp)) {
822 1.1 rmind return;
823 1.1 rmind }
824 1.9 rmind mutex_enter(vp->v_interlock);
825 1.1 rmind vrelel(vp, 0);
826 1.1 rmind }
827 1.1 rmind
828 1.1 rmind /*
829 1.1 rmind * Asynchronous vnode release, vnode is released in different context.
830 1.1 rmind */
831 1.1 rmind void
832 1.1 rmind vrele_async(vnode_t *vp)
833 1.1 rmind {
834 1.1 rmind
835 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
836 1.1 rmind
837 1.1 rmind if ((vp->v_iflag & VI_INACTNOW) == 0 && vtryrele(vp)) {
838 1.1 rmind return;
839 1.1 rmind }
840 1.9 rmind mutex_enter(vp->v_interlock);
841 1.1 rmind vrelel(vp, VRELEL_ASYNC_RELE);
842 1.1 rmind }
843 1.1 rmind
844 1.1 rmind static void
845 1.1 rmind vrele_thread(void *cookie)
846 1.1 rmind {
847 1.1 rmind vnode_t *vp;
848 1.1 rmind
849 1.1 rmind for (;;) {
850 1.1 rmind mutex_enter(&vrele_lock);
851 1.1 rmind while (TAILQ_EMPTY(&vrele_list)) {
852 1.1 rmind vrele_gen++;
853 1.1 rmind cv_broadcast(&vrele_cv);
854 1.1 rmind cv_timedwait(&vrele_cv, &vrele_lock, hz);
855 1.1 rmind }
856 1.1 rmind vp = TAILQ_FIRST(&vrele_list);
857 1.1 rmind TAILQ_REMOVE(&vrele_list, vp, v_freelist);
858 1.1 rmind vrele_pending--;
859 1.1 rmind mutex_exit(&vrele_lock);
860 1.1 rmind
861 1.1 rmind /*
862 1.1 rmind * If not the last reference, then ignore the vnode
863 1.1 rmind * and look for more work.
864 1.1 rmind */
865 1.9 rmind mutex_enter(vp->v_interlock);
866 1.1 rmind KASSERT((vp->v_iflag & VI_INACTPEND) != 0);
867 1.1 rmind vp->v_iflag &= ~VI_INACTPEND;
868 1.1 rmind vrelel(vp, 0);
869 1.1 rmind }
870 1.1 rmind }
871 1.1 rmind
872 1.2 rmind void
873 1.2 rmind vrele_flush(void)
874 1.2 rmind {
875 1.2 rmind int gen;
876 1.2 rmind
877 1.2 rmind mutex_enter(&vrele_lock);
878 1.2 rmind gen = vrele_gen;
879 1.2 rmind while (vrele_pending && gen == vrele_gen) {
880 1.2 rmind cv_broadcast(&vrele_cv);
881 1.2 rmind cv_wait(&vrele_cv, &vrele_lock);
882 1.2 rmind }
883 1.2 rmind mutex_exit(&vrele_lock);
884 1.2 rmind }
885 1.2 rmind
886 1.1 rmind /*
887 1.1 rmind * Vnode reference, where a reference is already held by some other
888 1.1 rmind * object (for example, a file structure).
889 1.1 rmind */
890 1.1 rmind void
891 1.1 rmind vref(vnode_t *vp)
892 1.1 rmind {
893 1.1 rmind
894 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
895 1.1 rmind KASSERT(vp->v_usecount != 0);
896 1.1 rmind
897 1.1 rmind atomic_inc_uint(&vp->v_usecount);
898 1.1 rmind }
899 1.1 rmind
900 1.1 rmind /*
901 1.1 rmind * Page or buffer structure gets a reference.
902 1.1 rmind * Called with v_interlock held.
903 1.1 rmind */
904 1.1 rmind void
905 1.1 rmind vholdl(vnode_t *vp)
906 1.1 rmind {
907 1.1 rmind
908 1.9 rmind KASSERT(mutex_owned(vp->v_interlock));
909 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
910 1.1 rmind
911 1.1 rmind if (vp->v_holdcnt++ == 0 && vp->v_usecount == 0) {
912 1.1 rmind mutex_enter(&vnode_free_list_lock);
913 1.1 rmind KASSERT(vp->v_freelisthd == &vnode_free_list);
914 1.1 rmind TAILQ_REMOVE(vp->v_freelisthd, vp, v_freelist);
915 1.1 rmind vp->v_freelisthd = &vnode_hold_list;
916 1.1 rmind TAILQ_INSERT_TAIL(vp->v_freelisthd, vp, v_freelist);
917 1.1 rmind mutex_exit(&vnode_free_list_lock);
918 1.1 rmind }
919 1.1 rmind }
920 1.1 rmind
921 1.1 rmind /*
922 1.1 rmind * Page or buffer structure frees a reference.
923 1.1 rmind * Called with v_interlock held.
924 1.1 rmind */
925 1.1 rmind void
926 1.1 rmind holdrelel(vnode_t *vp)
927 1.1 rmind {
928 1.1 rmind
929 1.9 rmind KASSERT(mutex_owned(vp->v_interlock));
930 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
931 1.1 rmind
932 1.1 rmind if (vp->v_holdcnt <= 0) {
933 1.11 christos vnpanic(vp, "%s: holdcnt vp %p", __func__, vp);
934 1.1 rmind }
935 1.1 rmind
936 1.1 rmind vp->v_holdcnt--;
937 1.1 rmind if (vp->v_holdcnt == 0 && vp->v_usecount == 0) {
938 1.1 rmind mutex_enter(&vnode_free_list_lock);
939 1.1 rmind KASSERT(vp->v_freelisthd == &vnode_hold_list);
940 1.1 rmind TAILQ_REMOVE(vp->v_freelisthd, vp, v_freelist);
941 1.1 rmind vp->v_freelisthd = &vnode_free_list;
942 1.1 rmind TAILQ_INSERT_TAIL(vp->v_freelisthd, vp, v_freelist);
943 1.1 rmind mutex_exit(&vnode_free_list_lock);
944 1.1 rmind }
945 1.1 rmind }
946 1.1 rmind
947 1.1 rmind /*
948 1.1 rmind * Disassociate the underlying file system from a vnode.
949 1.1 rmind *
950 1.1 rmind * Must be called with the interlock held, and will return with it held.
951 1.1 rmind */
952 1.1 rmind void
953 1.1 rmind vclean(vnode_t *vp, int flags)
954 1.1 rmind {
955 1.1 rmind lwp_t *l = curlwp;
956 1.1 rmind bool recycle, active;
957 1.1 rmind int error;
958 1.1 rmind
959 1.9 rmind KASSERT(mutex_owned(vp->v_interlock));
960 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
961 1.1 rmind KASSERT(vp->v_usecount != 0);
962 1.1 rmind
963 1.1 rmind /* If cleaning is already in progress wait until done and return. */
964 1.1 rmind if (vp->v_iflag & VI_XLOCK) {
965 1.1 rmind vwait(vp, VI_XLOCK);
966 1.1 rmind return;
967 1.1 rmind }
968 1.1 rmind
969 1.1 rmind /* If already clean, nothing to do. */
970 1.1 rmind if ((vp->v_iflag & VI_CLEAN) != 0) {
971 1.1 rmind return;
972 1.1 rmind }
973 1.1 rmind
974 1.1 rmind /*
975 1.1 rmind * Prevent the vnode from being recycled or brought into use
976 1.1 rmind * while we clean it out.
977 1.1 rmind */
978 1.1 rmind vp->v_iflag |= VI_XLOCK;
979 1.1 rmind if (vp->v_iflag & VI_EXECMAP) {
980 1.1 rmind atomic_add_int(&uvmexp.execpages, -vp->v_uobj.uo_npages);
981 1.1 rmind atomic_add_int(&uvmexp.filepages, vp->v_uobj.uo_npages);
982 1.1 rmind }
983 1.1 rmind vp->v_iflag &= ~(VI_TEXT|VI_EXECMAP);
984 1.1 rmind active = (vp->v_usecount & VC_MASK) > 1;
985 1.1 rmind
986 1.1 rmind /* XXXAD should not lock vnode under layer */
987 1.9 rmind mutex_exit(vp->v_interlock);
988 1.1 rmind VOP_LOCK(vp, LK_EXCLUSIVE);
989 1.1 rmind
990 1.1 rmind /*
991 1.1 rmind * Clean out any cached data associated with the vnode.
992 1.1 rmind * If purging an active vnode, it must be closed and
993 1.1 rmind * deactivated before being reclaimed. Note that the
994 1.1 rmind * VOP_INACTIVE will unlock the vnode.
995 1.1 rmind */
996 1.1 rmind if (flags & DOCLOSE) {
997 1.1 rmind error = vinvalbuf(vp, V_SAVE, NOCRED, l, 0, 0);
998 1.1 rmind if (error != 0) {
999 1.1 rmind /* XXX, fix vn_start_write's grab of mp and use that. */
1000 1.1 rmind
1001 1.1 rmind if (wapbl_vphaswapbl(vp))
1002 1.1 rmind WAPBL_DISCARD(wapbl_vptomp(vp));
1003 1.1 rmind error = vinvalbuf(vp, 0, NOCRED, l, 0, 0);
1004 1.1 rmind }
1005 1.1 rmind KASSERT(error == 0);
1006 1.1 rmind KASSERT((vp->v_iflag & VI_ONWORKLST) == 0);
1007 1.1 rmind if (active && (vp->v_type == VBLK || vp->v_type == VCHR)) {
1008 1.1 rmind spec_node_revoke(vp);
1009 1.1 rmind }
1010 1.1 rmind }
1011 1.1 rmind if (active) {
1012 1.1 rmind VOP_INACTIVE(vp, &recycle);
1013 1.1 rmind } else {
1014 1.1 rmind /*
1015 1.1 rmind * Any other processes trying to obtain this lock must first
1016 1.1 rmind * wait for VI_XLOCK to clear, then call the new lock operation.
1017 1.1 rmind */
1018 1.1 rmind VOP_UNLOCK(vp);
1019 1.1 rmind }
1020 1.1 rmind
1021 1.1 rmind /* Disassociate the underlying file system from the vnode. */
1022 1.1 rmind if (VOP_RECLAIM(vp)) {
1023 1.11 christos vnpanic(vp, "%s: cannot reclaim", __func__);
1024 1.1 rmind }
1025 1.1 rmind
1026 1.7 rmind KASSERT(vp->v_data == NULL);
1027 1.1 rmind KASSERT(vp->v_uobj.uo_npages == 0);
1028 1.7 rmind
1029 1.1 rmind if (vp->v_type == VREG && vp->v_ractx != NULL) {
1030 1.1 rmind uvm_ra_freectx(vp->v_ractx);
1031 1.1 rmind vp->v_ractx = NULL;
1032 1.1 rmind }
1033 1.7 rmind
1034 1.7 rmind /* Purge name cache. */
1035 1.1 rmind cache_purge(vp);
1036 1.1 rmind
1037 1.1 rmind /* Done with purge, notify sleepers of the grim news. */
1038 1.9 rmind mutex_enter(vp->v_interlock);
1039 1.1 rmind vp->v_op = dead_vnodeop_p;
1040 1.1 rmind vp->v_tag = VT_NON;
1041 1.1 rmind KNOTE(&vp->v_klist, NOTE_REVOKE);
1042 1.1 rmind vp->v_iflag &= ~VI_XLOCK;
1043 1.1 rmind vp->v_vflag &= ~VV_LOCKSWORK;
1044 1.1 rmind if ((flags & DOCLOSE) != 0) {
1045 1.1 rmind vp->v_iflag |= VI_CLEAN;
1046 1.1 rmind }
1047 1.1 rmind cv_broadcast(&vp->v_cv);
1048 1.1 rmind
1049 1.1 rmind KASSERT((vp->v_iflag & VI_ONWORKLST) == 0);
1050 1.1 rmind }
1051 1.1 rmind
1052 1.1 rmind /*
1053 1.1 rmind * Recycle an unused vnode to the front of the free list.
1054 1.1 rmind * Release the passed interlock if the vnode will be recycled.
1055 1.1 rmind */
1056 1.1 rmind int
1057 1.1 rmind vrecycle(vnode_t *vp, kmutex_t *inter_lkp, struct lwp *l)
1058 1.1 rmind {
1059 1.1 rmind
1060 1.1 rmind KASSERT((vp->v_iflag & VI_MARKER) == 0);
1061 1.1 rmind
1062 1.9 rmind mutex_enter(vp->v_interlock);
1063 1.1 rmind if (vp->v_usecount != 0) {
1064 1.9 rmind mutex_exit(vp->v_interlock);
1065 1.4 rmind return 0;
1066 1.1 rmind }
1067 1.1 rmind if (inter_lkp) {
1068 1.1 rmind mutex_exit(inter_lkp);
1069 1.1 rmind }
1070 1.1 rmind vremfree(vp);
1071 1.1 rmind vp->v_usecount = 1;
1072 1.1 rmind vclean(vp, DOCLOSE);
1073 1.1 rmind vrelel(vp, 0);
1074 1.4 rmind return 1;
1075 1.1 rmind }
1076 1.1 rmind
1077 1.1 rmind /*
1078 1.1 rmind * Eliminate all activity associated with the requested vnode
1079 1.1 rmind * and with all vnodes aliased to the requested vnode.
1080 1.1 rmind */
1081 1.1 rmind void
1082 1.1 rmind vrevoke(vnode_t *vp)
1083 1.1 rmind {
1084 1.1 rmind vnode_t *vq, **vpp;
1085 1.1 rmind enum vtype type;
1086 1.1 rmind dev_t dev;
1087 1.1 rmind
1088 1.1 rmind KASSERT(vp->v_usecount > 0);
1089 1.1 rmind
1090 1.9 rmind mutex_enter(vp->v_interlock);
1091 1.1 rmind if ((vp->v_iflag & VI_CLEAN) != 0) {
1092 1.9 rmind mutex_exit(vp->v_interlock);
1093 1.1 rmind return;
1094 1.1 rmind } else if (vp->v_type != VBLK && vp->v_type != VCHR) {
1095 1.1 rmind atomic_inc_uint(&vp->v_usecount);
1096 1.1 rmind vclean(vp, DOCLOSE);
1097 1.1 rmind vrelel(vp, 0);
1098 1.1 rmind return;
1099 1.1 rmind } else {
1100 1.1 rmind dev = vp->v_rdev;
1101 1.1 rmind type = vp->v_type;
1102 1.9 rmind mutex_exit(vp->v_interlock);
1103 1.1 rmind }
1104 1.1 rmind
1105 1.1 rmind vpp = &specfs_hash[SPECHASH(dev)];
1106 1.1 rmind mutex_enter(&device_lock);
1107 1.1 rmind for (vq = *vpp; vq != NULL;) {
1108 1.1 rmind /* If clean or being cleaned, then ignore it. */
1109 1.9 rmind mutex_enter(vq->v_interlock);
1110 1.1 rmind if ((vq->v_iflag & (VI_CLEAN | VI_XLOCK)) != 0 ||
1111 1.10 christos vq->v_type != type || vq->v_rdev != dev) {
1112 1.9 rmind mutex_exit(vq->v_interlock);
1113 1.1 rmind vq = vq->v_specnext;
1114 1.1 rmind continue;
1115 1.1 rmind }
1116 1.1 rmind mutex_exit(&device_lock);
1117 1.1 rmind if (vq->v_usecount == 0) {
1118 1.1 rmind vremfree(vq);
1119 1.1 rmind vq->v_usecount = 1;
1120 1.1 rmind } else {
1121 1.1 rmind atomic_inc_uint(&vq->v_usecount);
1122 1.1 rmind }
1123 1.1 rmind vclean(vq, DOCLOSE);
1124 1.1 rmind vrelel(vq, 0);
1125 1.1 rmind mutex_enter(&device_lock);
1126 1.1 rmind vq = *vpp;
1127 1.1 rmind }
1128 1.1 rmind mutex_exit(&device_lock);
1129 1.1 rmind }
1130 1.1 rmind
1131 1.1 rmind /*
1132 1.1 rmind * Eliminate all activity associated with a vnode in preparation for
1133 1.1 rmind * reuse. Drops a reference from the vnode.
1134 1.1 rmind */
1135 1.1 rmind void
1136 1.1 rmind vgone(vnode_t *vp)
1137 1.1 rmind {
1138 1.1 rmind
1139 1.9 rmind mutex_enter(vp->v_interlock);
1140 1.1 rmind vclean(vp, DOCLOSE);
1141 1.1 rmind vrelel(vp, 0);
1142 1.1 rmind }
1143 1.1 rmind
1144 1.1 rmind /*
1145 1.1 rmind * Update outstanding I/O count and do wakeup if requested.
1146 1.1 rmind */
1147 1.1 rmind void
1148 1.1 rmind vwakeup(struct buf *bp)
1149 1.1 rmind {
1150 1.1 rmind vnode_t *vp;
1151 1.1 rmind
1152 1.1 rmind if ((vp = bp->b_vp) == NULL)
1153 1.1 rmind return;
1154 1.1 rmind
1155 1.9 rmind KASSERT(bp->b_objlock == vp->v_interlock);
1156 1.1 rmind KASSERT(mutex_owned(bp->b_objlock));
1157 1.1 rmind
1158 1.1 rmind if (--vp->v_numoutput < 0)
1159 1.11 christos vnpanic(vp, "%s: neg numoutput, vp %p", __func__, vp);
1160 1.1 rmind if (vp->v_numoutput == 0)
1161 1.1 rmind cv_broadcast(&vp->v_cv);
1162 1.1 rmind }
1163 1.1 rmind
1164 1.1 rmind /*
1165 1.1 rmind * Wait for a vnode (typically with VI_XLOCK set) to be cleaned or
1166 1.1 rmind * recycled.
1167 1.1 rmind */
1168 1.1 rmind void
1169 1.1 rmind vwait(vnode_t *vp, int flags)
1170 1.1 rmind {
1171 1.1 rmind
1172 1.9 rmind KASSERT(mutex_owned(vp->v_interlock));
1173 1.1 rmind KASSERT(vp->v_usecount != 0);
1174 1.1 rmind
1175 1.1 rmind while ((vp->v_iflag & flags) != 0)
1176 1.9 rmind cv_wait(&vp->v_cv, vp->v_interlock);
1177 1.1 rmind }
1178 1.1 rmind
1179 1.1 rmind int
1180 1.3 rmind vfs_drainvnodes(long target)
1181 1.1 rmind {
1182 1.12 hannken int error;
1183 1.12 hannken
1184 1.12 hannken mutex_enter(&vnode_free_list_lock);
1185 1.1 rmind
1186 1.1 rmind while (numvnodes > target) {
1187 1.12 hannken error = cleanvnode();
1188 1.12 hannken if (error != 0)
1189 1.12 hannken return error;
1190 1.1 rmind mutex_enter(&vnode_free_list_lock);
1191 1.1 rmind }
1192 1.12 hannken
1193 1.12 hannken mutex_exit(&vnode_free_list_lock);
1194 1.12 hannken
1195 1.1 rmind return 0;
1196 1.1 rmind }
1197 1.1 rmind
1198 1.1 rmind void
1199 1.11 christos vnpanic(vnode_t *vp, const char *fmt, ...)
1200 1.1 rmind {
1201 1.11 christos va_list ap;
1202 1.11 christos
1203 1.1 rmind #ifdef DIAGNOSTIC
1204 1.1 rmind vprint(NULL, vp);
1205 1.1 rmind #endif
1206 1.11 christos va_start(ap, fmt);
1207 1.11 christos vpanic(fmt, ap);
1208 1.11 christos va_end(ap);
1209 1.1 rmind }
1210