xref: /freebsd/sys/fs/tmpfs/tmpfs_subr.c (revision ca987d4641cdcd7f27e153db17c5bf064934faf5)
1 /*	$NetBSD: tmpfs_subr.c,v 1.35 2007/07/09 21:10:50 ad Exp $	*/
2 
3 /*-
4  * Copyright (c) 2005 The NetBSD Foundation, Inc.
5  * All rights reserved.
6  *
7  * This code is derived from software contributed to The NetBSD Foundation
8  * by Julio M. Merino Vidal, developed as part of Google's Summer of Code
9  * 2005 program.
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  * Efficient memory file system supporting functions.
35  */
36 #include <sys/cdefs.h>
37 __FBSDID("$FreeBSD$");
38 
39 #include <sys/param.h>
40 #include <sys/fnv_hash.h>
41 #include <sys/lock.h>
42 #include <sys/namei.h>
43 #include <sys/priv.h>
44 #include <sys/proc.h>
45 #include <sys/random.h>
46 #include <sys/rwlock.h>
47 #include <sys/stat.h>
48 #include <sys/systm.h>
49 #include <sys/sysctl.h>
50 #include <sys/vnode.h>
51 #include <sys/vmmeter.h>
52 
53 #include <vm/vm.h>
54 #include <vm/vm_param.h>
55 #include <vm/vm_object.h>
56 #include <vm/vm_page.h>
57 #include <vm/vm_pageout.h>
58 #include <vm/vm_pager.h>
59 #include <vm/vm_extern.h>
60 
61 #include <fs/tmpfs/tmpfs.h>
62 #include <fs/tmpfs/tmpfs_fifoops.h>
63 #include <fs/tmpfs/tmpfs_vnops.h>
64 
65 SYSCTL_NODE(_vfs, OID_AUTO, tmpfs, CTLFLAG_RW, 0, "tmpfs file system");
66 
67 static long tmpfs_pages_reserved = TMPFS_PAGES_MINRESERVED;
68 
69 static int
70 sysctl_mem_reserved(SYSCTL_HANDLER_ARGS)
71 {
72 	int error;
73 	long pages, bytes;
74 
75 	pages = *(long *)arg1;
76 	bytes = pages * PAGE_SIZE;
77 
78 	error = sysctl_handle_long(oidp, &bytes, 0, req);
79 	if (error || !req->newptr)
80 		return (error);
81 
82 	pages = bytes / PAGE_SIZE;
83 	if (pages < TMPFS_PAGES_MINRESERVED)
84 		return (EINVAL);
85 
86 	*(long *)arg1 = pages;
87 	return (0);
88 }
89 
90 SYSCTL_PROC(_vfs_tmpfs, OID_AUTO, memory_reserved, CTLTYPE_LONG|CTLFLAG_RW,
91     &tmpfs_pages_reserved, 0, sysctl_mem_reserved, "L",
92     "Amount of available memory and swap below which tmpfs growth stops");
93 
94 static __inline int tmpfs_dirtree_cmp(struct tmpfs_dirent *a,
95     struct tmpfs_dirent *b);
96 RB_PROTOTYPE_STATIC(tmpfs_dir, tmpfs_dirent, uh.td_entries, tmpfs_dirtree_cmp);
97 
98 size_t
99 tmpfs_mem_avail(void)
100 {
101 	vm_ooffset_t avail;
102 
103 	avail = swap_pager_avail + vm_cnt.v_free_count - tmpfs_pages_reserved;
104 	if (__predict_false(avail < 0))
105 		avail = 0;
106 	return (avail);
107 }
108 
109 size_t
110 tmpfs_pages_used(struct tmpfs_mount *tmp)
111 {
112 	const size_t node_size = sizeof(struct tmpfs_node) +
113 	    sizeof(struct tmpfs_dirent);
114 	size_t meta_pages;
115 
116 	meta_pages = howmany((uintmax_t)tmp->tm_nodes_inuse * node_size,
117 	    PAGE_SIZE);
118 	return (meta_pages + tmp->tm_pages_used);
119 }
120 
121 static size_t
122 tmpfs_pages_check_avail(struct tmpfs_mount *tmp, size_t req_pages)
123 {
124 	if (tmpfs_mem_avail() < req_pages)
125 		return (0);
126 
127 	if (tmp->tm_pages_max != ULONG_MAX &&
128 	    tmp->tm_pages_max < req_pages + tmpfs_pages_used(tmp))
129 			return (0);
130 
131 	return (1);
132 }
133 
134 void
135 tmpfs_ref_node(struct tmpfs_node *node)
136 {
137 
138 	TMPFS_NODE_LOCK(node);
139 	tmpfs_ref_node_locked(node);
140 	TMPFS_NODE_UNLOCK(node);
141 }
142 
143 void
144 tmpfs_ref_node_locked(struct tmpfs_node *node)
145 {
146 
147 	TMPFS_NODE_ASSERT_LOCKED(node);
148 	KASSERT(node->tn_refcount > 0, ("node %p zero refcount", node));
149 	KASSERT(node->tn_refcount < UINT_MAX, ("node %p refcount %u", node,
150 	    node->tn_refcount));
151 	node->tn_refcount++;
152 }
153 
154 /*
155  * Allocates a new node of type 'type' inside the 'tmp' mount point, with
156  * its owner set to 'uid', its group to 'gid' and its mode set to 'mode',
157  * using the credentials of the process 'p'.
158  *
159  * If the node type is set to 'VDIR', then the parent parameter must point
160  * to the parent directory of the node being created.  It may only be NULL
161  * while allocating the root node.
162  *
163  * If the node type is set to 'VBLK' or 'VCHR', then the rdev parameter
164  * specifies the device the node represents.
165  *
166  * If the node type is set to 'VLNK', then the parameter target specifies
167  * the file name of the target file for the symbolic link that is being
168  * created.
169  *
170  * Note that new nodes are retrieved from the available list if it has
171  * items or, if it is empty, from the node pool as long as there is enough
172  * space to create them.
173  *
174  * Returns zero on success or an appropriate error code on failure.
175  */
176 int
177 tmpfs_alloc_node(struct mount *mp, struct tmpfs_mount *tmp, enum vtype type,
178     uid_t uid, gid_t gid, mode_t mode, struct tmpfs_node *parent,
179     char *target, dev_t rdev, struct tmpfs_node **node)
180 {
181 	struct tmpfs_node *nnode;
182 	vm_object_t obj;
183 
184 	/* If the root directory of the 'tmp' file system is not yet
185 	 * allocated, this must be the request to do it. */
186 	MPASS(IMPLIES(tmp->tm_root == NULL, parent == NULL && type == VDIR));
187 	KASSERT(tmp->tm_root == NULL || mp->mnt_writeopcount > 0,
188 	    ("creating node not under vn_start_write"));
189 
190 	MPASS(IFF(type == VLNK, target != NULL));
191 	MPASS(IFF(type == VBLK || type == VCHR, rdev != VNOVAL));
192 
193 	if (tmp->tm_nodes_inuse >= tmp->tm_nodes_max)
194 		return (ENOSPC);
195 	if (tmpfs_pages_check_avail(tmp, 1) == 0)
196 		return (ENOSPC);
197 
198 	if ((mp->mnt_kern_flag & MNTK_UNMOUNT) != 0) {
199 		/*
200 		 * When a new tmpfs node is created for fully
201 		 * constructed mount point, there must be a parent
202 		 * node, which vnode is locked exclusively.  As
203 		 * consequence, if the unmount is executing in
204 		 * parallel, vflush() cannot reclaim the parent vnode.
205 		 * Due to this, the check for MNTK_UNMOUNT flag is not
206 		 * racy: if we did not see MNTK_UNMOUNT flag, then tmp
207 		 * cannot be destroyed until node construction is
208 		 * finished and the parent vnode unlocked.
209 		 *
210 		 * Tmpfs does not need to instantiate new nodes during
211 		 * unmount.
212 		 */
213 		return (EBUSY);
214 	}
215 
216 	nnode = (struct tmpfs_node *)uma_zalloc_arg(tmp->tm_node_pool, tmp,
217 	    M_WAITOK);
218 
219 	/* Generic initialization. */
220 	nnode->tn_type = type;
221 	vfs_timestamp(&nnode->tn_atime);
222 	nnode->tn_birthtime = nnode->tn_ctime = nnode->tn_mtime =
223 	    nnode->tn_atime;
224 	nnode->tn_uid = uid;
225 	nnode->tn_gid = gid;
226 	nnode->tn_mode = mode;
227 	nnode->tn_id = alloc_unr(tmp->tm_ino_unr);
228 	nnode->tn_refcount = 1;
229 
230 	/* Type-specific initialization. */
231 	switch (nnode->tn_type) {
232 	case VBLK:
233 	case VCHR:
234 		nnode->tn_rdev = rdev;
235 		break;
236 
237 	case VDIR:
238 		RB_INIT(&nnode->tn_dir.tn_dirhead);
239 		LIST_INIT(&nnode->tn_dir.tn_dupindex);
240 		MPASS(parent != nnode);
241 		MPASS(IMPLIES(parent == NULL, tmp->tm_root == NULL));
242 		nnode->tn_dir.tn_parent = (parent == NULL) ? nnode : parent;
243 		nnode->tn_dir.tn_readdir_lastn = 0;
244 		nnode->tn_dir.tn_readdir_lastp = NULL;
245 		nnode->tn_links++;
246 		TMPFS_NODE_LOCK(nnode->tn_dir.tn_parent);
247 		nnode->tn_dir.tn_parent->tn_links++;
248 		TMPFS_NODE_UNLOCK(nnode->tn_dir.tn_parent);
249 		break;
250 
251 	case VFIFO:
252 		/* FALLTHROUGH */
253 	case VSOCK:
254 		break;
255 
256 	case VLNK:
257 		MPASS(strlen(target) < MAXPATHLEN);
258 		nnode->tn_size = strlen(target);
259 		nnode->tn_link = malloc(nnode->tn_size, M_TMPFSNAME,
260 		    M_WAITOK);
261 		memcpy(nnode->tn_link, target, nnode->tn_size);
262 		break;
263 
264 	case VREG:
265 		obj = nnode->tn_reg.tn_aobj =
266 		    vm_pager_allocate(OBJT_SWAP, NULL, 0, VM_PROT_DEFAULT, 0,
267 			NULL /* XXXKIB - tmpfs needs swap reservation */);
268 		VM_OBJECT_WLOCK(obj);
269 		/* OBJ_TMPFS is set together with the setting of vp->v_object */
270 		vm_object_set_flag(obj, OBJ_NOSPLIT | OBJ_TMPFS_NODE);
271 		vm_object_clear_flag(obj, OBJ_ONEMAPPING);
272 		VM_OBJECT_WUNLOCK(obj);
273 		break;
274 
275 	default:
276 		panic("tmpfs_alloc_node: type %p %d", nnode,
277 		    (int)nnode->tn_type);
278 	}
279 
280 	TMPFS_LOCK(tmp);
281 	LIST_INSERT_HEAD(&tmp->tm_nodes_used, nnode, tn_entries);
282 	nnode->tn_attached = true;
283 	tmp->tm_nodes_inuse++;
284 	tmp->tm_refcount++;
285 	TMPFS_UNLOCK(tmp);
286 
287 	*node = nnode;
288 	return (0);
289 }
290 
291 /*
292  * Destroys the node pointed to by node from the file system 'tmp'.
293  * If the node references a directory, no entries are allowed.
294  */
295 void
296 tmpfs_free_node(struct tmpfs_mount *tmp, struct tmpfs_node *node)
297 {
298 
299 	TMPFS_LOCK(tmp);
300 	TMPFS_NODE_LOCK(node);
301 	if (!tmpfs_free_node_locked(tmp, node, false)) {
302 		TMPFS_NODE_UNLOCK(node);
303 		TMPFS_UNLOCK(tmp);
304 	}
305 }
306 
307 bool
308 tmpfs_free_node_locked(struct tmpfs_mount *tmp, struct tmpfs_node *node,
309     bool detach)
310 {
311 	vm_object_t uobj;
312 
313 	TMPFS_MP_ASSERT_LOCKED(tmp);
314 	TMPFS_NODE_ASSERT_LOCKED(node);
315 	KASSERT(node->tn_refcount > 0, ("node %p refcount zero", node));
316 
317 	node->tn_refcount--;
318 	if (node->tn_attached && (detach || node->tn_refcount == 0)) {
319 		MPASS(tmp->tm_nodes_inuse > 0);
320 		tmp->tm_nodes_inuse--;
321 		LIST_REMOVE(node, tn_entries);
322 		node->tn_attached = false;
323 	}
324 	if (node->tn_refcount > 0)
325 		return (false);
326 
327 #ifdef INVARIANTS
328 	MPASS(node->tn_vnode == NULL);
329 	MPASS((node->tn_vpstate & TMPFS_VNODE_ALLOCATING) == 0);
330 #endif
331 	TMPFS_NODE_UNLOCK(node);
332 	TMPFS_UNLOCK(tmp);
333 
334 	switch (node->tn_type) {
335 	case VBLK:
336 		/* FALLTHROUGH */
337 	case VCHR:
338 		/* FALLTHROUGH */
339 	case VDIR:
340 		/* FALLTHROUGH */
341 	case VFIFO:
342 		/* FALLTHROUGH */
343 	case VSOCK:
344 		break;
345 
346 	case VLNK:
347 		free(node->tn_link, M_TMPFSNAME);
348 		break;
349 
350 	case VREG:
351 		uobj = node->tn_reg.tn_aobj;
352 		if (uobj != NULL) {
353 			if (uobj->size != 0)
354 				atomic_subtract_long(&tmp->tm_pages_used, uobj->size);
355 			KASSERT((uobj->flags & OBJ_TMPFS) == 0,
356 			    ("leaked OBJ_TMPFS node %p vm_obj %p", node, uobj));
357 			vm_object_deallocate(uobj);
358 		}
359 		break;
360 
361 	default:
362 		panic("tmpfs_free_node: type %p %d", node, (int)node->tn_type);
363 	}
364 
365 	/*
366 	 * If we are unmounting there is no need for going through the overhead
367 	 * of freeing the inodes from the unr individually, so free them all in
368 	 * one go later.
369 	 */
370 	if (!detach)
371 		free_unr(tmp->tm_ino_unr, node->tn_id);
372 	uma_zfree(tmp->tm_node_pool, node);
373 	TMPFS_LOCK(tmp);
374 	tmpfs_free_tmp(tmp);
375 	return (true);
376 }
377 
378 static __inline uint32_t
379 tmpfs_dirent_hash(const char *name, u_int len)
380 {
381 	uint32_t hash;
382 
383 	hash = fnv_32_buf(name, len, FNV1_32_INIT + len) & TMPFS_DIRCOOKIE_MASK;
384 #ifdef TMPFS_DEBUG_DIRCOOKIE_DUP
385 	hash &= 0xf;
386 #endif
387 	if (hash < TMPFS_DIRCOOKIE_MIN)
388 		hash += TMPFS_DIRCOOKIE_MIN;
389 
390 	return (hash);
391 }
392 
393 static __inline off_t
394 tmpfs_dirent_cookie(struct tmpfs_dirent *de)
395 {
396 	if (de == NULL)
397 		return (TMPFS_DIRCOOKIE_EOF);
398 
399 	MPASS(de->td_cookie >= TMPFS_DIRCOOKIE_MIN);
400 
401 	return (de->td_cookie);
402 }
403 
404 static __inline boolean_t
405 tmpfs_dirent_dup(struct tmpfs_dirent *de)
406 {
407 	return ((de->td_cookie & TMPFS_DIRCOOKIE_DUP) != 0);
408 }
409 
410 static __inline boolean_t
411 tmpfs_dirent_duphead(struct tmpfs_dirent *de)
412 {
413 	return ((de->td_cookie & TMPFS_DIRCOOKIE_DUPHEAD) != 0);
414 }
415 
416 void
417 tmpfs_dirent_init(struct tmpfs_dirent *de, const char *name, u_int namelen)
418 {
419 	de->td_hash = de->td_cookie = tmpfs_dirent_hash(name, namelen);
420 	memcpy(de->ud.td_name, name, namelen);
421 	de->td_namelen = namelen;
422 }
423 
424 /*
425  * Allocates a new directory entry for the node node with a name of name.
426  * The new directory entry is returned in *de.
427  *
428  * The link count of node is increased by one to reflect the new object
429  * referencing it.
430  *
431  * Returns zero on success or an appropriate error code on failure.
432  */
433 int
434 tmpfs_alloc_dirent(struct tmpfs_mount *tmp, struct tmpfs_node *node,
435     const char *name, u_int len, struct tmpfs_dirent **de)
436 {
437 	struct tmpfs_dirent *nde;
438 
439 	nde = uma_zalloc(tmp->tm_dirent_pool, M_WAITOK);
440 	nde->td_node = node;
441 	if (name != NULL) {
442 		nde->ud.td_name = malloc(len, M_TMPFSNAME, M_WAITOK);
443 		tmpfs_dirent_init(nde, name, len);
444 	} else
445 		nde->td_namelen = 0;
446 	if (node != NULL)
447 		node->tn_links++;
448 
449 	*de = nde;
450 
451 	return 0;
452 }
453 
454 /*
455  * Frees a directory entry.  It is the caller's responsibility to destroy
456  * the node referenced by it if needed.
457  *
458  * The link count of node is decreased by one to reflect the removal of an
459  * object that referenced it.  This only happens if 'node_exists' is true;
460  * otherwise the function will not access the node referred to by the
461  * directory entry, as it may already have been released from the outside.
462  */
463 void
464 tmpfs_free_dirent(struct tmpfs_mount *tmp, struct tmpfs_dirent *de)
465 {
466 	struct tmpfs_node *node;
467 
468 	node = de->td_node;
469 	if (node != NULL) {
470 		MPASS(node->tn_links > 0);
471 		node->tn_links--;
472 	}
473 	if (!tmpfs_dirent_duphead(de) && de->ud.td_name != NULL)
474 		free(de->ud.td_name, M_TMPFSNAME);
475 	uma_zfree(tmp->tm_dirent_pool, de);
476 }
477 
478 void
479 tmpfs_destroy_vobject(struct vnode *vp, vm_object_t obj)
480 {
481 
482 	ASSERT_VOP_ELOCKED(vp, "tmpfs_destroy_vobject");
483 	if (vp->v_type != VREG || obj == NULL)
484 		return;
485 
486 	VM_OBJECT_WLOCK(obj);
487 	VI_LOCK(vp);
488 	vm_object_clear_flag(obj, OBJ_TMPFS);
489 	obj->un_pager.swp.swp_tmpfs = NULL;
490 	VI_UNLOCK(vp);
491 	VM_OBJECT_WUNLOCK(obj);
492 }
493 
494 /*
495  * Need to clear v_object for insmntque failure.
496  */
497 static void
498 tmpfs_insmntque_dtr(struct vnode *vp, void *dtr_arg)
499 {
500 
501 	tmpfs_destroy_vobject(vp, vp->v_object);
502 	vp->v_object = NULL;
503 	vp->v_data = NULL;
504 	vp->v_op = &dead_vnodeops;
505 	vgone(vp);
506 	vput(vp);
507 }
508 
509 /*
510  * Allocates a new vnode for the node node or returns a new reference to
511  * an existing one if the node had already a vnode referencing it.  The
512  * resulting locked vnode is returned in *vpp.
513  *
514  * Returns zero on success or an appropriate error code on failure.
515  */
516 int
517 tmpfs_alloc_vp(struct mount *mp, struct tmpfs_node *node, int lkflag,
518     struct vnode **vpp)
519 {
520 	struct vnode *vp;
521 	struct tmpfs_mount *tm;
522 	vm_object_t object;
523 	int error;
524 
525 	error = 0;
526 	tm = VFS_TO_TMPFS(mp);
527 	TMPFS_NODE_LOCK(node);
528 	tmpfs_ref_node_locked(node);
529 loop:
530 	TMPFS_NODE_ASSERT_LOCKED(node);
531 	if ((vp = node->tn_vnode) != NULL) {
532 		MPASS((node->tn_vpstate & TMPFS_VNODE_DOOMED) == 0);
533 		VI_LOCK(vp);
534 		if ((node->tn_type == VDIR && node->tn_dir.tn_parent == NULL) ||
535 		    ((vp->v_iflag & VI_DOOMED) != 0 &&
536 		    (lkflag & LK_NOWAIT) != 0)) {
537 			VI_UNLOCK(vp);
538 			TMPFS_NODE_UNLOCK(node);
539 			error = ENOENT;
540 			vp = NULL;
541 			goto out;
542 		}
543 		if ((vp->v_iflag & VI_DOOMED) != 0) {
544 			VI_UNLOCK(vp);
545 			node->tn_vpstate |= TMPFS_VNODE_WRECLAIM;
546 			while ((node->tn_vpstate & TMPFS_VNODE_WRECLAIM) != 0) {
547 				msleep(&node->tn_vnode, TMPFS_NODE_MTX(node),
548 				    0, "tmpfsE", 0);
549 			}
550 			goto loop;
551 		}
552 		TMPFS_NODE_UNLOCK(node);
553 		error = vget(vp, lkflag | LK_INTERLOCK, curthread);
554 		if (error == ENOENT) {
555 			TMPFS_NODE_LOCK(node);
556 			goto loop;
557 		}
558 		if (error != 0) {
559 			vp = NULL;
560 			goto out;
561 		}
562 
563 		/*
564 		 * Make sure the vnode is still there after
565 		 * getting the interlock to avoid racing a free.
566 		 */
567 		if (node->tn_vnode == NULL || node->tn_vnode != vp) {
568 			vput(vp);
569 			TMPFS_NODE_LOCK(node);
570 			goto loop;
571 		}
572 
573 		goto out;
574 	}
575 
576 	if ((node->tn_vpstate & TMPFS_VNODE_DOOMED) ||
577 	    (node->tn_type == VDIR && node->tn_dir.tn_parent == NULL)) {
578 		TMPFS_NODE_UNLOCK(node);
579 		error = ENOENT;
580 		vp = NULL;
581 		goto out;
582 	}
583 
584 	/*
585 	 * otherwise lock the vp list while we call getnewvnode
586 	 * since that can block.
587 	 */
588 	if (node->tn_vpstate & TMPFS_VNODE_ALLOCATING) {
589 		node->tn_vpstate |= TMPFS_VNODE_WANT;
590 		error = msleep((caddr_t) &node->tn_vpstate,
591 		    TMPFS_NODE_MTX(node), 0, "tmpfs_alloc_vp", 0);
592 		if (error != 0)
593 			goto out;
594 		goto loop;
595 	} else
596 		node->tn_vpstate |= TMPFS_VNODE_ALLOCATING;
597 
598 	TMPFS_NODE_UNLOCK(node);
599 
600 	/* Get a new vnode and associate it with our node. */
601 	error = getnewvnode("tmpfs", mp, VFS_TO_TMPFS(mp)->tm_nonc ?
602 	    &tmpfs_vnodeop_nonc_entries : &tmpfs_vnodeop_entries, &vp);
603 	if (error != 0)
604 		goto unlock;
605 	MPASS(vp != NULL);
606 
607 	/* lkflag is ignored, the lock is exclusive */
608 	(void) vn_lock(vp, lkflag | LK_RETRY);
609 
610 	vp->v_data = node;
611 	vp->v_type = node->tn_type;
612 
613 	/* Type-specific initialization. */
614 	switch (node->tn_type) {
615 	case VBLK:
616 		/* FALLTHROUGH */
617 	case VCHR:
618 		/* FALLTHROUGH */
619 	case VLNK:
620 		/* FALLTHROUGH */
621 	case VSOCK:
622 		break;
623 	case VFIFO:
624 		vp->v_op = &tmpfs_fifoop_entries;
625 		break;
626 	case VREG:
627 		object = node->tn_reg.tn_aobj;
628 		VM_OBJECT_WLOCK(object);
629 		VI_LOCK(vp);
630 		KASSERT(vp->v_object == NULL, ("Not NULL v_object in tmpfs"));
631 		vp->v_object = object;
632 		object->un_pager.swp.swp_tmpfs = vp;
633 		vm_object_set_flag(object, OBJ_TMPFS);
634 		VI_UNLOCK(vp);
635 		VM_OBJECT_WUNLOCK(object);
636 		break;
637 	case VDIR:
638 		MPASS(node->tn_dir.tn_parent != NULL);
639 		if (node->tn_dir.tn_parent == node)
640 			vp->v_vflag |= VV_ROOT;
641 		break;
642 
643 	default:
644 		panic("tmpfs_alloc_vp: type %p %d", node, (int)node->tn_type);
645 	}
646 	if (vp->v_type != VFIFO)
647 		VN_LOCK_ASHARE(vp);
648 
649 	error = insmntque1(vp, mp, tmpfs_insmntque_dtr, NULL);
650 	if (error != 0)
651 		vp = NULL;
652 
653 unlock:
654 	TMPFS_NODE_LOCK(node);
655 
656 	MPASS(node->tn_vpstate & TMPFS_VNODE_ALLOCATING);
657 	node->tn_vpstate &= ~TMPFS_VNODE_ALLOCATING;
658 	node->tn_vnode = vp;
659 
660 	if (node->tn_vpstate & TMPFS_VNODE_WANT) {
661 		node->tn_vpstate &= ~TMPFS_VNODE_WANT;
662 		TMPFS_NODE_UNLOCK(node);
663 		wakeup((caddr_t) &node->tn_vpstate);
664 	} else
665 		TMPFS_NODE_UNLOCK(node);
666 
667 out:
668 	if (error == 0) {
669 		*vpp = vp;
670 
671 #ifdef INVARIANTS
672 		MPASS(*vpp != NULL && VOP_ISLOCKED(*vpp));
673 		TMPFS_NODE_LOCK(node);
674 		MPASS(*vpp == node->tn_vnode);
675 		TMPFS_NODE_UNLOCK(node);
676 #endif
677 	}
678 	tmpfs_free_node(tm, node);
679 
680 	return (error);
681 }
682 
683 /*
684  * Destroys the association between the vnode vp and the node it
685  * references.
686  */
687 void
688 tmpfs_free_vp(struct vnode *vp)
689 {
690 	struct tmpfs_node *node;
691 
692 	node = VP_TO_TMPFS_NODE(vp);
693 
694 	TMPFS_NODE_ASSERT_LOCKED(node);
695 	node->tn_vnode = NULL;
696 	if ((node->tn_vpstate & TMPFS_VNODE_WRECLAIM) != 0)
697 		wakeup(&node->tn_vnode);
698 	node->tn_vpstate &= ~TMPFS_VNODE_WRECLAIM;
699 	vp->v_data = NULL;
700 }
701 
702 /*
703  * Allocates a new file of type 'type' and adds it to the parent directory
704  * 'dvp'; this addition is done using the component name given in 'cnp'.
705  * The ownership of the new file is automatically assigned based on the
706  * credentials of the caller (through 'cnp'), the group is set based on
707  * the parent directory and the mode is determined from the 'vap' argument.
708  * If successful, *vpp holds a vnode to the newly created file and zero
709  * is returned.  Otherwise *vpp is NULL and the function returns an
710  * appropriate error code.
711  */
712 int
713 tmpfs_alloc_file(struct vnode *dvp, struct vnode **vpp, struct vattr *vap,
714     struct componentname *cnp, char *target)
715 {
716 	int error;
717 	struct tmpfs_dirent *de;
718 	struct tmpfs_mount *tmp;
719 	struct tmpfs_node *dnode;
720 	struct tmpfs_node *node;
721 	struct tmpfs_node *parent;
722 
723 	ASSERT_VOP_ELOCKED(dvp, "tmpfs_alloc_file");
724 	MPASS(cnp->cn_flags & HASBUF);
725 
726 	tmp = VFS_TO_TMPFS(dvp->v_mount);
727 	dnode = VP_TO_TMPFS_DIR(dvp);
728 	*vpp = NULL;
729 
730 	/* If the entry we are creating is a directory, we cannot overflow
731 	 * the number of links of its parent, because it will get a new
732 	 * link. */
733 	if (vap->va_type == VDIR) {
734 		/* Ensure that we do not overflow the maximum number of links
735 		 * imposed by the system. */
736 		MPASS(dnode->tn_links <= LINK_MAX);
737 		if (dnode->tn_links == LINK_MAX) {
738 			return (EMLINK);
739 		}
740 
741 		parent = dnode;
742 		MPASS(parent != NULL);
743 	} else
744 		parent = NULL;
745 
746 	/* Allocate a node that represents the new file. */
747 	error = tmpfs_alloc_node(dvp->v_mount, tmp, vap->va_type,
748 	    cnp->cn_cred->cr_uid, dnode->tn_gid, vap->va_mode, parent,
749 	    target, vap->va_rdev, &node);
750 	if (error != 0)
751 		return (error);
752 
753 	/* Allocate a directory entry that points to the new file. */
754 	error = tmpfs_alloc_dirent(tmp, node, cnp->cn_nameptr, cnp->cn_namelen,
755 	    &de);
756 	if (error != 0) {
757 		tmpfs_free_node(tmp, node);
758 		return (error);
759 	}
760 
761 	/* Allocate a vnode for the new file. */
762 	error = tmpfs_alloc_vp(dvp->v_mount, node, LK_EXCLUSIVE, vpp);
763 	if (error != 0) {
764 		tmpfs_free_dirent(tmp, de);
765 		tmpfs_free_node(tmp, node);
766 		return (error);
767 	}
768 
769 	/* Now that all required items are allocated, we can proceed to
770 	 * insert the new node into the directory, an operation that
771 	 * cannot fail. */
772 	if (cnp->cn_flags & ISWHITEOUT)
773 		tmpfs_dir_whiteout_remove(dvp, cnp);
774 	tmpfs_dir_attach(dvp, de);
775 	return (0);
776 }
777 
778 struct tmpfs_dirent *
779 tmpfs_dir_first(struct tmpfs_node *dnode, struct tmpfs_dir_cursor *dc)
780 {
781 	struct tmpfs_dirent *de;
782 
783 	de = RB_MIN(tmpfs_dir, &dnode->tn_dir.tn_dirhead);
784 	dc->tdc_tree = de;
785 	if (de != NULL && tmpfs_dirent_duphead(de))
786 		de = LIST_FIRST(&de->ud.td_duphead);
787 	dc->tdc_current = de;
788 
789 	return (dc->tdc_current);
790 }
791 
792 struct tmpfs_dirent *
793 tmpfs_dir_next(struct tmpfs_node *dnode, struct tmpfs_dir_cursor *dc)
794 {
795 	struct tmpfs_dirent *de;
796 
797 	MPASS(dc->tdc_tree != NULL);
798 	if (tmpfs_dirent_dup(dc->tdc_current)) {
799 		dc->tdc_current = LIST_NEXT(dc->tdc_current, uh.td_dup.entries);
800 		if (dc->tdc_current != NULL)
801 			return (dc->tdc_current);
802 	}
803 	dc->tdc_tree = dc->tdc_current = RB_NEXT(tmpfs_dir,
804 	    &dnode->tn_dir.tn_dirhead, dc->tdc_tree);
805 	if ((de = dc->tdc_current) != NULL && tmpfs_dirent_duphead(de)) {
806 		dc->tdc_current = LIST_FIRST(&de->ud.td_duphead);
807 		MPASS(dc->tdc_current != NULL);
808 	}
809 
810 	return (dc->tdc_current);
811 }
812 
813 /* Lookup directory entry in RB-Tree. Function may return duphead entry. */
814 static struct tmpfs_dirent *
815 tmpfs_dir_xlookup_hash(struct tmpfs_node *dnode, uint32_t hash)
816 {
817 	struct tmpfs_dirent *de, dekey;
818 
819 	dekey.td_hash = hash;
820 	de = RB_FIND(tmpfs_dir, &dnode->tn_dir.tn_dirhead, &dekey);
821 	return (de);
822 }
823 
824 /* Lookup directory entry by cookie, initialize directory cursor accordingly. */
825 static struct tmpfs_dirent *
826 tmpfs_dir_lookup_cookie(struct tmpfs_node *node, off_t cookie,
827     struct tmpfs_dir_cursor *dc)
828 {
829 	struct tmpfs_dir *dirhead = &node->tn_dir.tn_dirhead;
830 	struct tmpfs_dirent *de, dekey;
831 
832 	MPASS(cookie >= TMPFS_DIRCOOKIE_MIN);
833 
834 	if (cookie == node->tn_dir.tn_readdir_lastn &&
835 	    (de = node->tn_dir.tn_readdir_lastp) != NULL) {
836 		/* Protect against possible race, tn_readdir_last[pn]
837 		 * may be updated with only shared vnode lock held. */
838 		if (cookie == tmpfs_dirent_cookie(de))
839 			goto out;
840 	}
841 
842 	if ((cookie & TMPFS_DIRCOOKIE_DUP) != 0) {
843 		LIST_FOREACH(de, &node->tn_dir.tn_dupindex,
844 		    uh.td_dup.index_entries) {
845 			MPASS(tmpfs_dirent_dup(de));
846 			if (de->td_cookie == cookie)
847 				goto out;
848 			/* dupindex list is sorted. */
849 			if (de->td_cookie < cookie) {
850 				de = NULL;
851 				goto out;
852 			}
853 		}
854 		MPASS(de == NULL);
855 		goto out;
856 	}
857 
858 	if ((cookie & TMPFS_DIRCOOKIE_MASK) != cookie) {
859 		de = NULL;
860 	} else {
861 		dekey.td_hash = cookie;
862 		/* Recover if direntry for cookie was removed */
863 		de = RB_NFIND(tmpfs_dir, dirhead, &dekey);
864 	}
865 	dc->tdc_tree = de;
866 	dc->tdc_current = de;
867 	if (de != NULL && tmpfs_dirent_duphead(de)) {
868 		dc->tdc_current = LIST_FIRST(&de->ud.td_duphead);
869 		MPASS(dc->tdc_current != NULL);
870 	}
871 	return (dc->tdc_current);
872 
873 out:
874 	dc->tdc_tree = de;
875 	dc->tdc_current = de;
876 	if (de != NULL && tmpfs_dirent_dup(de))
877 		dc->tdc_tree = tmpfs_dir_xlookup_hash(node,
878 		    de->td_hash);
879 	return (dc->tdc_current);
880 }
881 
882 /*
883  * Looks for a directory entry in the directory represented by node.
884  * 'cnp' describes the name of the entry to look for.  Note that the .
885  * and .. components are not allowed as they do not physically exist
886  * within directories.
887  *
888  * Returns a pointer to the entry when found, otherwise NULL.
889  */
890 struct tmpfs_dirent *
891 tmpfs_dir_lookup(struct tmpfs_node *node, struct tmpfs_node *f,
892     struct componentname *cnp)
893 {
894 	struct tmpfs_dir_duphead *duphead;
895 	struct tmpfs_dirent *de;
896 	uint32_t hash;
897 
898 	MPASS(IMPLIES(cnp->cn_namelen == 1, cnp->cn_nameptr[0] != '.'));
899 	MPASS(IMPLIES(cnp->cn_namelen == 2, !(cnp->cn_nameptr[0] == '.' &&
900 	    cnp->cn_nameptr[1] == '.')));
901 	TMPFS_VALIDATE_DIR(node);
902 
903 	hash = tmpfs_dirent_hash(cnp->cn_nameptr, cnp->cn_namelen);
904 	de = tmpfs_dir_xlookup_hash(node, hash);
905 	if (de != NULL && tmpfs_dirent_duphead(de)) {
906 		duphead = &de->ud.td_duphead;
907 		LIST_FOREACH(de, duphead, uh.td_dup.entries) {
908 			if (TMPFS_DIRENT_MATCHES(de, cnp->cn_nameptr,
909 			    cnp->cn_namelen))
910 				break;
911 		}
912 	} else if (de != NULL) {
913 		if (!TMPFS_DIRENT_MATCHES(de, cnp->cn_nameptr,
914 		    cnp->cn_namelen))
915 			de = NULL;
916 	}
917 	if (de != NULL && f != NULL && de->td_node != f)
918 		de = NULL;
919 
920 	return (de);
921 }
922 
923 /*
924  * Attach duplicate-cookie directory entry nde to dnode and insert to dupindex
925  * list, allocate new cookie value.
926  */
927 static void
928 tmpfs_dir_attach_dup(struct tmpfs_node *dnode,
929     struct tmpfs_dir_duphead *duphead, struct tmpfs_dirent *nde)
930 {
931 	struct tmpfs_dir_duphead *dupindex;
932 	struct tmpfs_dirent *de, *pde;
933 
934 	dupindex = &dnode->tn_dir.tn_dupindex;
935 	de = LIST_FIRST(dupindex);
936 	if (de == NULL || de->td_cookie < TMPFS_DIRCOOKIE_DUP_MAX) {
937 		if (de == NULL)
938 			nde->td_cookie = TMPFS_DIRCOOKIE_DUP_MIN;
939 		else
940 			nde->td_cookie = de->td_cookie + 1;
941 		MPASS(tmpfs_dirent_dup(nde));
942 		LIST_INSERT_HEAD(dupindex, nde, uh.td_dup.index_entries);
943 		LIST_INSERT_HEAD(duphead, nde, uh.td_dup.entries);
944 		return;
945 	}
946 
947 	/*
948 	 * Cookie numbers are near exhaustion. Scan dupindex list for unused
949 	 * numbers. dupindex list is sorted in descending order. Keep it so
950 	 * after inserting nde.
951 	 */
952 	while (1) {
953 		pde = de;
954 		de = LIST_NEXT(de, uh.td_dup.index_entries);
955 		if (de == NULL && pde->td_cookie != TMPFS_DIRCOOKIE_DUP_MIN) {
956 			/*
957 			 * Last element of the index doesn't have minimal cookie
958 			 * value, use it.
959 			 */
960 			nde->td_cookie = TMPFS_DIRCOOKIE_DUP_MIN;
961 			LIST_INSERT_AFTER(pde, nde, uh.td_dup.index_entries);
962 			LIST_INSERT_HEAD(duphead, nde, uh.td_dup.entries);
963 			return;
964 		} else if (de == NULL) {
965 			/*
966 			 * We are so lucky have 2^30 hash duplicates in single
967 			 * directory :) Return largest possible cookie value.
968 			 * It should be fine except possible issues with
969 			 * VOP_READDIR restart.
970 			 */
971 			nde->td_cookie = TMPFS_DIRCOOKIE_DUP_MAX;
972 			LIST_INSERT_HEAD(dupindex, nde,
973 			    uh.td_dup.index_entries);
974 			LIST_INSERT_HEAD(duphead, nde, uh.td_dup.entries);
975 			return;
976 		}
977 		if (de->td_cookie + 1 == pde->td_cookie ||
978 		    de->td_cookie >= TMPFS_DIRCOOKIE_DUP_MAX)
979 			continue;	/* No hole or invalid cookie. */
980 		nde->td_cookie = de->td_cookie + 1;
981 		MPASS(tmpfs_dirent_dup(nde));
982 		MPASS(pde->td_cookie > nde->td_cookie);
983 		MPASS(nde->td_cookie > de->td_cookie);
984 		LIST_INSERT_BEFORE(de, nde, uh.td_dup.index_entries);
985 		LIST_INSERT_HEAD(duphead, nde, uh.td_dup.entries);
986 		return;
987 	}
988 }
989 
990 /*
991  * Attaches the directory entry de to the directory represented by vp.
992  * Note that this does not change the link count of the node pointed by
993  * the directory entry, as this is done by tmpfs_alloc_dirent.
994  */
995 void
996 tmpfs_dir_attach(struct vnode *vp, struct tmpfs_dirent *de)
997 {
998 	struct tmpfs_node *dnode;
999 	struct tmpfs_dirent *xde, *nde;
1000 
1001 	ASSERT_VOP_ELOCKED(vp, __func__);
1002 	MPASS(de->td_namelen > 0);
1003 	MPASS(de->td_hash >= TMPFS_DIRCOOKIE_MIN);
1004 	MPASS(de->td_cookie == de->td_hash);
1005 
1006 	dnode = VP_TO_TMPFS_DIR(vp);
1007 	dnode->tn_dir.tn_readdir_lastn = 0;
1008 	dnode->tn_dir.tn_readdir_lastp = NULL;
1009 
1010 	MPASS(!tmpfs_dirent_dup(de));
1011 	xde = RB_INSERT(tmpfs_dir, &dnode->tn_dir.tn_dirhead, de);
1012 	if (xde != NULL && tmpfs_dirent_duphead(xde))
1013 		tmpfs_dir_attach_dup(dnode, &xde->ud.td_duphead, de);
1014 	else if (xde != NULL) {
1015 		/*
1016 		 * Allocate new duphead. Swap xde with duphead to avoid
1017 		 * adding/removing elements with the same hash.
1018 		 */
1019 		MPASS(!tmpfs_dirent_dup(xde));
1020 		tmpfs_alloc_dirent(VFS_TO_TMPFS(vp->v_mount), NULL, NULL, 0,
1021 		    &nde);
1022 		/* *nde = *xde; XXX gcc 4.2.1 may generate invalid code. */
1023 		memcpy(nde, xde, sizeof(*xde));
1024 		xde->td_cookie |= TMPFS_DIRCOOKIE_DUPHEAD;
1025 		LIST_INIT(&xde->ud.td_duphead);
1026 		xde->td_namelen = 0;
1027 		xde->td_node = NULL;
1028 		tmpfs_dir_attach_dup(dnode, &xde->ud.td_duphead, nde);
1029 		tmpfs_dir_attach_dup(dnode, &xde->ud.td_duphead, de);
1030 	}
1031 	dnode->tn_size += sizeof(struct tmpfs_dirent);
1032 	dnode->tn_status |= TMPFS_NODE_ACCESSED | TMPFS_NODE_CHANGED | \
1033 	    TMPFS_NODE_MODIFIED;
1034 	tmpfs_update(vp);
1035 }
1036 
1037 /*
1038  * Detaches the directory entry de from the directory represented by vp.
1039  * Note that this does not change the link count of the node pointed by
1040  * the directory entry, as this is done by tmpfs_free_dirent.
1041  */
1042 void
1043 tmpfs_dir_detach(struct vnode *vp, struct tmpfs_dirent *de)
1044 {
1045 	struct tmpfs_mount *tmp;
1046 	struct tmpfs_dir *head;
1047 	struct tmpfs_node *dnode;
1048 	struct tmpfs_dirent *xde;
1049 
1050 	ASSERT_VOP_ELOCKED(vp, __func__);
1051 
1052 	dnode = VP_TO_TMPFS_DIR(vp);
1053 	head = &dnode->tn_dir.tn_dirhead;
1054 	dnode->tn_dir.tn_readdir_lastn = 0;
1055 	dnode->tn_dir.tn_readdir_lastp = NULL;
1056 
1057 	if (tmpfs_dirent_dup(de)) {
1058 		/* Remove duphead if de was last entry. */
1059 		if (LIST_NEXT(de, uh.td_dup.entries) == NULL) {
1060 			xde = tmpfs_dir_xlookup_hash(dnode, de->td_hash);
1061 			MPASS(tmpfs_dirent_duphead(xde));
1062 		} else
1063 			xde = NULL;
1064 		LIST_REMOVE(de, uh.td_dup.entries);
1065 		LIST_REMOVE(de, uh.td_dup.index_entries);
1066 		if (xde != NULL) {
1067 			if (LIST_EMPTY(&xde->ud.td_duphead)) {
1068 				RB_REMOVE(tmpfs_dir, head, xde);
1069 				tmp = VFS_TO_TMPFS(vp->v_mount);
1070 				MPASS(xde->td_node == NULL);
1071 				tmpfs_free_dirent(tmp, xde);
1072 			}
1073 		}
1074 		de->td_cookie = de->td_hash;
1075 	} else
1076 		RB_REMOVE(tmpfs_dir, head, de);
1077 
1078 	dnode->tn_size -= sizeof(struct tmpfs_dirent);
1079 	dnode->tn_status |= TMPFS_NODE_ACCESSED | TMPFS_NODE_CHANGED | \
1080 	    TMPFS_NODE_MODIFIED;
1081 	tmpfs_update(vp);
1082 }
1083 
1084 void
1085 tmpfs_dir_destroy(struct tmpfs_mount *tmp, struct tmpfs_node *dnode)
1086 {
1087 	struct tmpfs_dirent *de, *dde, *nde;
1088 
1089 	RB_FOREACH_SAFE(de, tmpfs_dir, &dnode->tn_dir.tn_dirhead, nde) {
1090 		RB_REMOVE(tmpfs_dir, &dnode->tn_dir.tn_dirhead, de);
1091 		/* Node may already be destroyed. */
1092 		de->td_node = NULL;
1093 		if (tmpfs_dirent_duphead(de)) {
1094 			while ((dde = LIST_FIRST(&de->ud.td_duphead)) != NULL) {
1095 				LIST_REMOVE(dde, uh.td_dup.entries);
1096 				dde->td_node = NULL;
1097 				tmpfs_free_dirent(tmp, dde);
1098 			}
1099 		}
1100 		tmpfs_free_dirent(tmp, de);
1101 	}
1102 }
1103 
1104 /*
1105  * Helper function for tmpfs_readdir.  Creates a '.' entry for the given
1106  * directory and returns it in the uio space.  The function returns 0
1107  * on success, -1 if there was not enough space in the uio structure to
1108  * hold the directory entry or an appropriate error code if another
1109  * error happens.
1110  */
1111 static int
1112 tmpfs_dir_getdotdent(struct tmpfs_node *node, struct uio *uio)
1113 {
1114 	int error;
1115 	struct dirent dent;
1116 
1117 	TMPFS_VALIDATE_DIR(node);
1118 	MPASS(uio->uio_offset == TMPFS_DIRCOOKIE_DOT);
1119 
1120 	dent.d_fileno = node->tn_id;
1121 	dent.d_type = DT_DIR;
1122 	dent.d_namlen = 1;
1123 	dent.d_name[0] = '.';
1124 	dent.d_name[1] = '\0';
1125 	dent.d_reclen = GENERIC_DIRSIZ(&dent);
1126 
1127 	if (dent.d_reclen > uio->uio_resid)
1128 		error = EJUSTRETURN;
1129 	else
1130 		error = uiomove(&dent, dent.d_reclen, uio);
1131 
1132 	tmpfs_set_status(node, TMPFS_NODE_ACCESSED);
1133 
1134 	return (error);
1135 }
1136 
1137 /*
1138  * Helper function for tmpfs_readdir.  Creates a '..' entry for the given
1139  * directory and returns it in the uio space.  The function returns 0
1140  * on success, -1 if there was not enough space in the uio structure to
1141  * hold the directory entry or an appropriate error code if another
1142  * error happens.
1143  */
1144 static int
1145 tmpfs_dir_getdotdotdent(struct tmpfs_node *node, struct uio *uio)
1146 {
1147 	int error;
1148 	struct dirent dent;
1149 
1150 	TMPFS_VALIDATE_DIR(node);
1151 	MPASS(uio->uio_offset == TMPFS_DIRCOOKIE_DOTDOT);
1152 
1153 	/*
1154 	 * Return ENOENT if the current node is already removed.
1155 	 */
1156 	TMPFS_ASSERT_LOCKED(node);
1157 	if (node->tn_dir.tn_parent == NULL)
1158 		return (ENOENT);
1159 
1160 	TMPFS_NODE_LOCK(node->tn_dir.tn_parent);
1161 	dent.d_fileno = node->tn_dir.tn_parent->tn_id;
1162 	TMPFS_NODE_UNLOCK(node->tn_dir.tn_parent);
1163 
1164 	dent.d_type = DT_DIR;
1165 	dent.d_namlen = 2;
1166 	dent.d_name[0] = '.';
1167 	dent.d_name[1] = '.';
1168 	dent.d_name[2] = '\0';
1169 	dent.d_reclen = GENERIC_DIRSIZ(&dent);
1170 
1171 	if (dent.d_reclen > uio->uio_resid)
1172 		error = EJUSTRETURN;
1173 	else
1174 		error = uiomove(&dent, dent.d_reclen, uio);
1175 
1176 	tmpfs_set_status(node, TMPFS_NODE_ACCESSED);
1177 
1178 	return (error);
1179 }
1180 
1181 /*
1182  * Helper function for tmpfs_readdir.  Returns as much directory entries
1183  * as can fit in the uio space.  The read starts at uio->uio_offset.
1184  * The function returns 0 on success, -1 if there was not enough space
1185  * in the uio structure to hold the directory entry or an appropriate
1186  * error code if another error happens.
1187  */
1188 int
1189 tmpfs_dir_getdents(struct tmpfs_node *node, struct uio *uio, int maxcookies,
1190     u_long *cookies, int *ncookies)
1191 {
1192 	struct tmpfs_dir_cursor dc;
1193 	struct tmpfs_dirent *de;
1194 	off_t off;
1195 	int error;
1196 
1197 	TMPFS_VALIDATE_DIR(node);
1198 
1199 	off = 0;
1200 
1201 	/*
1202 	 * Lookup the node from the current offset.  The starting offset of
1203 	 * 0 will lookup both '.' and '..', and then the first real entry,
1204 	 * or EOF if there are none.  Then find all entries for the dir that
1205 	 * fit into the buffer.  Once no more entries are found (de == NULL),
1206 	 * the offset is set to TMPFS_DIRCOOKIE_EOF, which will cause the next
1207 	 * call to return 0.
1208 	 */
1209 	switch (uio->uio_offset) {
1210 	case TMPFS_DIRCOOKIE_DOT:
1211 		error = tmpfs_dir_getdotdent(node, uio);
1212 		if (error != 0)
1213 			return (error);
1214 		uio->uio_offset = TMPFS_DIRCOOKIE_DOTDOT;
1215 		if (cookies != NULL)
1216 			cookies[(*ncookies)++] = off = uio->uio_offset;
1217 		/* FALLTHROUGH */
1218 	case TMPFS_DIRCOOKIE_DOTDOT:
1219 		error = tmpfs_dir_getdotdotdent(node, uio);
1220 		if (error != 0)
1221 			return (error);
1222 		de = tmpfs_dir_first(node, &dc);
1223 		uio->uio_offset = tmpfs_dirent_cookie(de);
1224 		if (cookies != NULL)
1225 			cookies[(*ncookies)++] = off = uio->uio_offset;
1226 		/* EOF. */
1227 		if (de == NULL)
1228 			return (0);
1229 		break;
1230 	case TMPFS_DIRCOOKIE_EOF:
1231 		return (0);
1232 	default:
1233 		de = tmpfs_dir_lookup_cookie(node, uio->uio_offset, &dc);
1234 		if (de == NULL)
1235 			return (EINVAL);
1236 		if (cookies != NULL)
1237 			off = tmpfs_dirent_cookie(de);
1238 	}
1239 
1240 	/* Read as much entries as possible; i.e., until we reach the end of
1241 	 * the directory or we exhaust uio space. */
1242 	do {
1243 		struct dirent d;
1244 
1245 		/* Create a dirent structure representing the current
1246 		 * tmpfs_node and fill it. */
1247 		if (de->td_node == NULL) {
1248 			d.d_fileno = 1;
1249 			d.d_type = DT_WHT;
1250 		} else {
1251 			d.d_fileno = de->td_node->tn_id;
1252 			switch (de->td_node->tn_type) {
1253 			case VBLK:
1254 				d.d_type = DT_BLK;
1255 				break;
1256 
1257 			case VCHR:
1258 				d.d_type = DT_CHR;
1259 				break;
1260 
1261 			case VDIR:
1262 				d.d_type = DT_DIR;
1263 				break;
1264 
1265 			case VFIFO:
1266 				d.d_type = DT_FIFO;
1267 				break;
1268 
1269 			case VLNK:
1270 				d.d_type = DT_LNK;
1271 				break;
1272 
1273 			case VREG:
1274 				d.d_type = DT_REG;
1275 				break;
1276 
1277 			case VSOCK:
1278 				d.d_type = DT_SOCK;
1279 				break;
1280 
1281 			default:
1282 				panic("tmpfs_dir_getdents: type %p %d",
1283 				    de->td_node, (int)de->td_node->tn_type);
1284 			}
1285 		}
1286 		d.d_namlen = de->td_namelen;
1287 		MPASS(de->td_namelen < sizeof(d.d_name));
1288 		(void)memcpy(d.d_name, de->ud.td_name, de->td_namelen);
1289 		d.d_name[de->td_namelen] = '\0';
1290 		d.d_reclen = GENERIC_DIRSIZ(&d);
1291 
1292 		/* Stop reading if the directory entry we are treating is
1293 		 * bigger than the amount of data that can be returned. */
1294 		if (d.d_reclen > uio->uio_resid) {
1295 			error = EJUSTRETURN;
1296 			break;
1297 		}
1298 
1299 		/* Copy the new dirent structure into the output buffer and
1300 		 * advance pointers. */
1301 		error = uiomove(&d, d.d_reclen, uio);
1302 		if (error == 0) {
1303 			de = tmpfs_dir_next(node, &dc);
1304 			if (cookies != NULL) {
1305 				off = tmpfs_dirent_cookie(de);
1306 				MPASS(*ncookies < maxcookies);
1307 				cookies[(*ncookies)++] = off;
1308 			}
1309 		}
1310 	} while (error == 0 && uio->uio_resid > 0 && de != NULL);
1311 
1312 	/* Skip setting off when using cookies as it is already done above. */
1313 	if (cookies == NULL)
1314 		off = tmpfs_dirent_cookie(de);
1315 
1316 	/* Update the offset and cache. */
1317 	uio->uio_offset = off;
1318 	node->tn_dir.tn_readdir_lastn = off;
1319 	node->tn_dir.tn_readdir_lastp = de;
1320 
1321 	tmpfs_set_status(node, TMPFS_NODE_ACCESSED);
1322 	return error;
1323 }
1324 
1325 int
1326 tmpfs_dir_whiteout_add(struct vnode *dvp, struct componentname *cnp)
1327 {
1328 	struct tmpfs_dirent *de;
1329 	int error;
1330 
1331 	error = tmpfs_alloc_dirent(VFS_TO_TMPFS(dvp->v_mount), NULL,
1332 	    cnp->cn_nameptr, cnp->cn_namelen, &de);
1333 	if (error != 0)
1334 		return (error);
1335 	tmpfs_dir_attach(dvp, de);
1336 	return (0);
1337 }
1338 
1339 void
1340 tmpfs_dir_whiteout_remove(struct vnode *dvp, struct componentname *cnp)
1341 {
1342 	struct tmpfs_dirent *de;
1343 
1344 	de = tmpfs_dir_lookup(VP_TO_TMPFS_DIR(dvp), NULL, cnp);
1345 	MPASS(de != NULL && de->td_node == NULL);
1346 	tmpfs_dir_detach(dvp, de);
1347 	tmpfs_free_dirent(VFS_TO_TMPFS(dvp->v_mount), de);
1348 }
1349 
1350 /*
1351  * Resizes the aobj associated with the regular file pointed to by 'vp' to the
1352  * size 'newsize'.  'vp' must point to a vnode that represents a regular file.
1353  * 'newsize' must be positive.
1354  *
1355  * Returns zero on success or an appropriate error code on failure.
1356  */
1357 int
1358 tmpfs_reg_resize(struct vnode *vp, off_t newsize, boolean_t ignerr)
1359 {
1360 	struct tmpfs_mount *tmp;
1361 	struct tmpfs_node *node;
1362 	vm_object_t uobj;
1363 	vm_page_t m;
1364 	vm_pindex_t idx, newpages, oldpages;
1365 	off_t oldsize;
1366 	int base, rv;
1367 
1368 	MPASS(vp->v_type == VREG);
1369 	MPASS(newsize >= 0);
1370 
1371 	node = VP_TO_TMPFS_NODE(vp);
1372 	uobj = node->tn_reg.tn_aobj;
1373 	tmp = VFS_TO_TMPFS(vp->v_mount);
1374 
1375 	/*
1376 	 * Convert the old and new sizes to the number of pages needed to
1377 	 * store them.  It may happen that we do not need to do anything
1378 	 * because the last allocated page can accommodate the change on
1379 	 * its own.
1380 	 */
1381 	oldsize = node->tn_size;
1382 	oldpages = OFF_TO_IDX(oldsize + PAGE_MASK);
1383 	MPASS(oldpages == uobj->size);
1384 	newpages = OFF_TO_IDX(newsize + PAGE_MASK);
1385 
1386 	if (__predict_true(newpages == oldpages && newsize >= oldsize)) {
1387 		node->tn_size = newsize;
1388 		return (0);
1389 	}
1390 
1391 	if (newpages > oldpages &&
1392 	    tmpfs_pages_check_avail(tmp, newpages - oldpages) == 0)
1393 		return (ENOSPC);
1394 
1395 	VM_OBJECT_WLOCK(uobj);
1396 	if (newsize < oldsize) {
1397 		/*
1398 		 * Zero the truncated part of the last page.
1399 		 */
1400 		base = newsize & PAGE_MASK;
1401 		if (base != 0) {
1402 			idx = OFF_TO_IDX(newsize);
1403 retry:
1404 			m = vm_page_lookup(uobj, idx);
1405 			if (m != NULL) {
1406 				if (vm_page_sleep_if_busy(m, "tmfssz"))
1407 					goto retry;
1408 				MPASS(m->valid == VM_PAGE_BITS_ALL);
1409 			} else if (vm_pager_has_page(uobj, idx, NULL, NULL)) {
1410 				m = vm_page_alloc(uobj, idx, VM_ALLOC_NORMAL |
1411 				    VM_ALLOC_WAITFAIL);
1412 				if (m == NULL)
1413 					goto retry;
1414 				rv = vm_pager_get_pages(uobj, &m, 1, NULL,
1415 				    NULL);
1416 				vm_page_lock(m);
1417 				if (rv == VM_PAGER_OK) {
1418 					/*
1419 					 * Since the page was not resident,
1420 					 * and therefore not recently
1421 					 * accessed, immediately enqueue it
1422 					 * for asynchronous laundering.  The
1423 					 * current operation is not regarded
1424 					 * as an access.
1425 					 */
1426 					vm_page_launder(m);
1427 					vm_page_unlock(m);
1428 					vm_page_xunbusy(m);
1429 				} else {
1430 					vm_page_free(m);
1431 					vm_page_unlock(m);
1432 					if (ignerr)
1433 						m = NULL;
1434 					else {
1435 						VM_OBJECT_WUNLOCK(uobj);
1436 						return (EIO);
1437 					}
1438 				}
1439 			}
1440 			if (m != NULL) {
1441 				pmap_zero_page_area(m, base, PAGE_SIZE - base);
1442 				vm_page_dirty(m);
1443 				vm_pager_page_unswapped(m);
1444 			}
1445 		}
1446 
1447 		/*
1448 		 * Release any swap space and free any whole pages.
1449 		 */
1450 		if (newpages < oldpages) {
1451 			swap_pager_freespace(uobj, newpages, oldpages -
1452 			    newpages);
1453 			vm_object_page_remove(uobj, newpages, 0, 0);
1454 		}
1455 	}
1456 	uobj->size = newpages;
1457 	VM_OBJECT_WUNLOCK(uobj);
1458 
1459 	atomic_add_long(&tmp->tm_pages_used, newpages - oldpages);
1460 
1461 	node->tn_size = newsize;
1462 	return (0);
1463 }
1464 
1465 void
1466 tmpfs_check_mtime(struct vnode *vp)
1467 {
1468 	struct tmpfs_node *node;
1469 	struct vm_object *obj;
1470 
1471 	ASSERT_VOP_ELOCKED(vp, "check_mtime");
1472 	if (vp->v_type != VREG)
1473 		return;
1474 	obj = vp->v_object;
1475 	KASSERT((obj->flags & (OBJ_TMPFS_NODE | OBJ_TMPFS)) ==
1476 	    (OBJ_TMPFS_NODE | OBJ_TMPFS), ("non-tmpfs obj"));
1477 	/* unlocked read */
1478 	if ((obj->flags & OBJ_TMPFS_DIRTY) != 0) {
1479 		VM_OBJECT_WLOCK(obj);
1480 		if ((obj->flags & OBJ_TMPFS_DIRTY) != 0) {
1481 			obj->flags &= ~OBJ_TMPFS_DIRTY;
1482 			node = VP_TO_TMPFS_NODE(vp);
1483 			node->tn_status |= TMPFS_NODE_MODIFIED |
1484 			    TMPFS_NODE_CHANGED;
1485 		}
1486 		VM_OBJECT_WUNLOCK(obj);
1487 	}
1488 }
1489 
1490 /*
1491  * Change flags of the given vnode.
1492  * Caller should execute tmpfs_update on vp after a successful execution.
1493  * The vnode must be locked on entry and remain locked on exit.
1494  */
1495 int
1496 tmpfs_chflags(struct vnode *vp, u_long flags, struct ucred *cred,
1497     struct thread *p)
1498 {
1499 	int error;
1500 	struct tmpfs_node *node;
1501 
1502 	ASSERT_VOP_ELOCKED(vp, "chflags");
1503 
1504 	node = VP_TO_TMPFS_NODE(vp);
1505 
1506 	if ((flags & ~(SF_APPEND | SF_ARCHIVED | SF_IMMUTABLE | SF_NOUNLINK |
1507 	    UF_APPEND | UF_ARCHIVE | UF_HIDDEN | UF_IMMUTABLE | UF_NODUMP |
1508 	    UF_NOUNLINK | UF_OFFLINE | UF_OPAQUE | UF_READONLY | UF_REPARSE |
1509 	    UF_SPARSE | UF_SYSTEM)) != 0)
1510 		return (EOPNOTSUPP);
1511 
1512 	/* Disallow this operation if the file system is mounted read-only. */
1513 	if (vp->v_mount->mnt_flag & MNT_RDONLY)
1514 		return EROFS;
1515 
1516 	/*
1517 	 * Callers may only modify the file flags on objects they
1518 	 * have VADMIN rights for.
1519 	 */
1520 	if ((error = VOP_ACCESS(vp, VADMIN, cred, p)))
1521 		return (error);
1522 	/*
1523 	 * Unprivileged processes are not permitted to unset system
1524 	 * flags, or modify flags if any system flags are set.
1525 	 */
1526 	if (!priv_check_cred(cred, PRIV_VFS_SYSFLAGS, 0)) {
1527 		if (node->tn_flags &
1528 		    (SF_NOUNLINK | SF_IMMUTABLE | SF_APPEND)) {
1529 			error = securelevel_gt(cred, 0);
1530 			if (error)
1531 				return (error);
1532 		}
1533 	} else {
1534 		if (node->tn_flags &
1535 		    (SF_NOUNLINK | SF_IMMUTABLE | SF_APPEND) ||
1536 		    ((flags ^ node->tn_flags) & SF_SETTABLE))
1537 			return (EPERM);
1538 	}
1539 	node->tn_flags = flags;
1540 	node->tn_status |= TMPFS_NODE_CHANGED;
1541 
1542 	ASSERT_VOP_ELOCKED(vp, "chflags2");
1543 
1544 	return (0);
1545 }
1546 
1547 /*
1548  * Change access mode on the given vnode.
1549  * Caller should execute tmpfs_update on vp after a successful execution.
1550  * The vnode must be locked on entry and remain locked on exit.
1551  */
1552 int
1553 tmpfs_chmod(struct vnode *vp, mode_t mode, struct ucred *cred, struct thread *p)
1554 {
1555 	int error;
1556 	struct tmpfs_node *node;
1557 
1558 	ASSERT_VOP_ELOCKED(vp, "chmod");
1559 
1560 	node = VP_TO_TMPFS_NODE(vp);
1561 
1562 	/* Disallow this operation if the file system is mounted read-only. */
1563 	if (vp->v_mount->mnt_flag & MNT_RDONLY)
1564 		return EROFS;
1565 
1566 	/* Immutable or append-only files cannot be modified, either. */
1567 	if (node->tn_flags & (IMMUTABLE | APPEND))
1568 		return EPERM;
1569 
1570 	/*
1571 	 * To modify the permissions on a file, must possess VADMIN
1572 	 * for that file.
1573 	 */
1574 	if ((error = VOP_ACCESS(vp, VADMIN, cred, p)))
1575 		return (error);
1576 
1577 	/*
1578 	 * Privileged processes may set the sticky bit on non-directories,
1579 	 * as well as set the setgid bit on a file with a group that the
1580 	 * process is not a member of.
1581 	 */
1582 	if (vp->v_type != VDIR && (mode & S_ISTXT)) {
1583 		if (priv_check_cred(cred, PRIV_VFS_STICKYFILE, 0))
1584 			return (EFTYPE);
1585 	}
1586 	if (!groupmember(node->tn_gid, cred) && (mode & S_ISGID)) {
1587 		error = priv_check_cred(cred, PRIV_VFS_SETGID, 0);
1588 		if (error)
1589 			return (error);
1590 	}
1591 
1592 
1593 	node->tn_mode &= ~ALLPERMS;
1594 	node->tn_mode |= mode & ALLPERMS;
1595 
1596 	node->tn_status |= TMPFS_NODE_CHANGED;
1597 
1598 	ASSERT_VOP_ELOCKED(vp, "chmod2");
1599 
1600 	return (0);
1601 }
1602 
1603 /*
1604  * Change ownership of the given vnode.  At least one of uid or gid must
1605  * be different than VNOVAL.  If one is set to that value, the attribute
1606  * is unchanged.
1607  * Caller should execute tmpfs_update on vp after a successful execution.
1608  * The vnode must be locked on entry and remain locked on exit.
1609  */
1610 int
1611 tmpfs_chown(struct vnode *vp, uid_t uid, gid_t gid, struct ucred *cred,
1612     struct thread *p)
1613 {
1614 	int error;
1615 	struct tmpfs_node *node;
1616 	uid_t ouid;
1617 	gid_t ogid;
1618 
1619 	ASSERT_VOP_ELOCKED(vp, "chown");
1620 
1621 	node = VP_TO_TMPFS_NODE(vp);
1622 
1623 	/* Assign default values if they are unknown. */
1624 	MPASS(uid != VNOVAL || gid != VNOVAL);
1625 	if (uid == VNOVAL)
1626 		uid = node->tn_uid;
1627 	if (gid == VNOVAL)
1628 		gid = node->tn_gid;
1629 	MPASS(uid != VNOVAL && gid != VNOVAL);
1630 
1631 	/* Disallow this operation if the file system is mounted read-only. */
1632 	if (vp->v_mount->mnt_flag & MNT_RDONLY)
1633 		return EROFS;
1634 
1635 	/* Immutable or append-only files cannot be modified, either. */
1636 	if (node->tn_flags & (IMMUTABLE | APPEND))
1637 		return EPERM;
1638 
1639 	/*
1640 	 * To modify the ownership of a file, must possess VADMIN for that
1641 	 * file.
1642 	 */
1643 	if ((error = VOP_ACCESS(vp, VADMIN, cred, p)))
1644 		return (error);
1645 
1646 	/*
1647 	 * To change the owner of a file, or change the group of a file to a
1648 	 * group of which we are not a member, the caller must have
1649 	 * privilege.
1650 	 */
1651 	if ((uid != node->tn_uid ||
1652 	    (gid != node->tn_gid && !groupmember(gid, cred))) &&
1653 	    (error = priv_check_cred(cred, PRIV_VFS_CHOWN, 0)))
1654 		return (error);
1655 
1656 	ogid = node->tn_gid;
1657 	ouid = node->tn_uid;
1658 
1659 	node->tn_uid = uid;
1660 	node->tn_gid = gid;
1661 
1662 	node->tn_status |= TMPFS_NODE_CHANGED;
1663 
1664 	if ((node->tn_mode & (S_ISUID | S_ISGID)) && (ouid != uid || ogid != gid)) {
1665 		if (priv_check_cred(cred, PRIV_VFS_RETAINSUGID, 0))
1666 			node->tn_mode &= ~(S_ISUID | S_ISGID);
1667 	}
1668 
1669 	ASSERT_VOP_ELOCKED(vp, "chown2");
1670 
1671 	return (0);
1672 }
1673 
1674 /*
1675  * Change size of the given vnode.
1676  * Caller should execute tmpfs_update on vp after a successful execution.
1677  * The vnode must be locked on entry and remain locked on exit.
1678  */
1679 int
1680 tmpfs_chsize(struct vnode *vp, u_quad_t size, struct ucred *cred,
1681     struct thread *p)
1682 {
1683 	int error;
1684 	struct tmpfs_node *node;
1685 
1686 	ASSERT_VOP_ELOCKED(vp, "chsize");
1687 
1688 	node = VP_TO_TMPFS_NODE(vp);
1689 
1690 	/* Decide whether this is a valid operation based on the file type. */
1691 	error = 0;
1692 	switch (vp->v_type) {
1693 	case VDIR:
1694 		return EISDIR;
1695 
1696 	case VREG:
1697 		if (vp->v_mount->mnt_flag & MNT_RDONLY)
1698 			return EROFS;
1699 		break;
1700 
1701 	case VBLK:
1702 		/* FALLTHROUGH */
1703 	case VCHR:
1704 		/* FALLTHROUGH */
1705 	case VFIFO:
1706 		/* Allow modifications of special files even if in the file
1707 		 * system is mounted read-only (we are not modifying the
1708 		 * files themselves, but the objects they represent). */
1709 		return 0;
1710 
1711 	default:
1712 		/* Anything else is unsupported. */
1713 		return EOPNOTSUPP;
1714 	}
1715 
1716 	/* Immutable or append-only files cannot be modified, either. */
1717 	if (node->tn_flags & (IMMUTABLE | APPEND))
1718 		return EPERM;
1719 
1720 	error = tmpfs_truncate(vp, size);
1721 	/* tmpfs_truncate will raise the NOTE_EXTEND and NOTE_ATTRIB kevents
1722 	 * for us, as will update tn_status; no need to do that here. */
1723 
1724 	ASSERT_VOP_ELOCKED(vp, "chsize2");
1725 
1726 	return (error);
1727 }
1728 
1729 /*
1730  * Change access and modification times of the given vnode.
1731  * Caller should execute tmpfs_update on vp after a successful execution.
1732  * The vnode must be locked on entry and remain locked on exit.
1733  */
1734 int
1735 tmpfs_chtimes(struct vnode *vp, struct vattr *vap,
1736     struct ucred *cred, struct thread *l)
1737 {
1738 	int error;
1739 	struct tmpfs_node *node;
1740 
1741 	ASSERT_VOP_ELOCKED(vp, "chtimes");
1742 
1743 	node = VP_TO_TMPFS_NODE(vp);
1744 
1745 	/* Disallow this operation if the file system is mounted read-only. */
1746 	if (vp->v_mount->mnt_flag & MNT_RDONLY)
1747 		return EROFS;
1748 
1749 	/* Immutable or append-only files cannot be modified, either. */
1750 	if (node->tn_flags & (IMMUTABLE | APPEND))
1751 		return EPERM;
1752 
1753 	error = vn_utimes_perm(vp, vap, cred, l);
1754 	if (error != 0)
1755 		return (error);
1756 
1757 	if (vap->va_atime.tv_sec != VNOVAL)
1758 		node->tn_status |= TMPFS_NODE_ACCESSED;
1759 
1760 	if (vap->va_mtime.tv_sec != VNOVAL)
1761 		node->tn_status |= TMPFS_NODE_MODIFIED;
1762 
1763 	if (vap->va_birthtime.tv_sec != VNOVAL)
1764 		node->tn_status |= TMPFS_NODE_MODIFIED;
1765 
1766 	tmpfs_itimes(vp, &vap->va_atime, &vap->va_mtime);
1767 
1768 	if (vap->va_birthtime.tv_sec != VNOVAL)
1769 		node->tn_birthtime = vap->va_birthtime;
1770 	ASSERT_VOP_ELOCKED(vp, "chtimes2");
1771 
1772 	return (0);
1773 }
1774 
1775 void
1776 tmpfs_set_status(struct tmpfs_node *node, int status)
1777 {
1778 
1779 	if ((node->tn_status & status) == status)
1780 		return;
1781 	TMPFS_NODE_LOCK(node);
1782 	node->tn_status |= status;
1783 	TMPFS_NODE_UNLOCK(node);
1784 }
1785 
1786 /* Sync timestamps */
1787 void
1788 tmpfs_itimes(struct vnode *vp, const struct timespec *acc,
1789     const struct timespec *mod)
1790 {
1791 	struct tmpfs_node *node;
1792 	struct timespec now;
1793 
1794 	ASSERT_VOP_LOCKED(vp, "tmpfs_itimes");
1795 	node = VP_TO_TMPFS_NODE(vp);
1796 
1797 	if ((node->tn_status & (TMPFS_NODE_ACCESSED | TMPFS_NODE_MODIFIED |
1798 	    TMPFS_NODE_CHANGED)) == 0)
1799 		return;
1800 
1801 	vfs_timestamp(&now);
1802 	TMPFS_NODE_LOCK(node);
1803 	if (node->tn_status & TMPFS_NODE_ACCESSED) {
1804 		if (acc == NULL)
1805 			 acc = &now;
1806 		node->tn_atime = *acc;
1807 	}
1808 	if (node->tn_status & TMPFS_NODE_MODIFIED) {
1809 		if (mod == NULL)
1810 			mod = &now;
1811 		node->tn_mtime = *mod;
1812 	}
1813 	if (node->tn_status & TMPFS_NODE_CHANGED)
1814 		node->tn_ctime = now;
1815 	node->tn_status &= ~(TMPFS_NODE_ACCESSED | TMPFS_NODE_MODIFIED |
1816 	    TMPFS_NODE_CHANGED);
1817 	TMPFS_NODE_UNLOCK(node);
1818 
1819 	/* XXX: FIX? The entropy here is desirable, but the harvesting may be expensive */
1820 	random_harvest_queue(node, sizeof(*node), 1, RANDOM_FS_ATIME);
1821 }
1822 
1823 void
1824 tmpfs_update(struct vnode *vp)
1825 {
1826 
1827 	tmpfs_itimes(vp, NULL, NULL);
1828 }
1829 
1830 int
1831 tmpfs_truncate(struct vnode *vp, off_t length)
1832 {
1833 	int error;
1834 	struct tmpfs_node *node;
1835 
1836 	node = VP_TO_TMPFS_NODE(vp);
1837 
1838 	if (length < 0) {
1839 		error = EINVAL;
1840 		goto out;
1841 	}
1842 
1843 	if (node->tn_size == length) {
1844 		error = 0;
1845 		goto out;
1846 	}
1847 
1848 	if (length > VFS_TO_TMPFS(vp->v_mount)->tm_maxfilesize)
1849 		return (EFBIG);
1850 
1851 	error = tmpfs_reg_resize(vp, length, FALSE);
1852 	if (error == 0)
1853 		node->tn_status |= TMPFS_NODE_CHANGED | TMPFS_NODE_MODIFIED;
1854 
1855 out:
1856 	tmpfs_update(vp);
1857 
1858 	return (error);
1859 }
1860 
1861 static __inline int
1862 tmpfs_dirtree_cmp(struct tmpfs_dirent *a, struct tmpfs_dirent *b)
1863 {
1864 	if (a->td_hash > b->td_hash)
1865 		return (1);
1866 	else if (a->td_hash < b->td_hash)
1867 		return (-1);
1868 	return (0);
1869 }
1870 
1871 RB_GENERATE_STATIC(tmpfs_dir, tmpfs_dirent, uh.td_entries, tmpfs_dirtree_cmp);
1872