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1 /*****************************************************************************\
2 * Copyright (C) 2007-2010 Lawrence Livermore National Security, LLC.
3 * Copyright (C) 2007 The Regents of the University of California.
4 * Produced at Lawrence Livermore National Laboratory (cf, DISCLAIMER).
5 * Written by Brian Behlendorf <behlendorf1@llnl.gov>.
6 * UCRL-CODE-235197
7 *
8 * This file is part of the SPL, Solaris Porting Layer.
9 * For details, see <http://github.com/behlendorf/spl/>.
10 *
11 * The SPL is free software; you can redistribute it and/or modify it
12 * under the terms of the GNU General Public License as published by the
13 * Free Software Foundation; either version 2 of the License, or (at your
14 * option) any later version.
15 *
16 * The SPL is distributed in the hope that it will be useful, but WITHOUT
17 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
18 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
19 * for more details.
20 *
21 * You should have received a copy of the GNU General Public License along
22 * with the SPL. If not, see <http://www.gnu.org/licenses/>.
23 *****************************************************************************
24 * Solaris Porting Layer (SPL) Vnode Implementation.
25 \*****************************************************************************/
26
27 #include <sys/vnode.h>
28 #include <spl-debug.h>
29
30 #ifdef SS_DEBUG_SUBSYS
31 #undef SS_DEBUG_SUBSYS
32 #endif
33
34 #define SS_DEBUG_SUBSYS SS_VNODE
35
36 vnode_t *rootdir = (vnode_t *)0xabcd1234;
37 EXPORT_SYMBOL(rootdir);
38
39 static spl_kmem_cache_t *vn_cache;
40 static spl_kmem_cache_t *vn_file_cache;
41
42 static spinlock_t vn_file_lock = SPIN_LOCK_UNLOCKED;
43 static LIST_HEAD(vn_file_list);
44
45 static vtype_t
46 vn_get_sol_type(umode_t mode)
47 {
48 if (S_ISREG(mode))
49 return VREG;
50
51 if (S_ISDIR(mode))
52 return VDIR;
53
54 if (S_ISCHR(mode))
55 return VCHR;
56
57 if (S_ISBLK(mode))
58 return VBLK;
59
60 if (S_ISFIFO(mode))
61 return VFIFO;
62
63 if (S_ISLNK(mode))
64 return VLNK;
65
66 if (S_ISSOCK(mode))
67 return VSOCK;
68
69 if (S_ISCHR(mode))
70 return VCHR;
71
72 return VNON;
73 } /* vn_get_sol_type() */
74
75 vnode_t *
76 vn_alloc(int flag)
77 {
78 vnode_t *vp;
79 SENTRY;
80
81 vp = kmem_cache_alloc(vn_cache, flag);
82 if (vp != NULL) {
83 vp->v_file = NULL;
84 vp->v_type = 0;
85 }
86
87 SRETURN(vp);
88 } /* vn_alloc() */
89 EXPORT_SYMBOL(vn_alloc);
90
91 void
92 vn_free(vnode_t *vp)
93 {
94 SENTRY;
95 kmem_cache_free(vn_cache, vp);
96 SEXIT;
97 } /* vn_free() */
98 EXPORT_SYMBOL(vn_free);
99
100 int
101 vn_open(const char *path, uio_seg_t seg, int flags, int mode,
102 vnode_t **vpp, int x1, void *x2)
103 {
104 struct file *fp;
105 struct kstat stat;
106 int rc, saved_umask = 0;
107 gfp_t saved_gfp;
108 vnode_t *vp;
109 SENTRY;
110
111 ASSERT(flags & (FWRITE | FREAD));
112 ASSERT(seg == UIO_SYSSPACE);
113 ASSERT(vpp);
114 *vpp = NULL;
115
116 if (!(flags & FCREAT) && (flags & FWRITE))
117 flags |= FEXCL;
118
119 /* Note for filp_open() the two low bits must be remapped to mean:
120 * 01 - read-only -> 00 read-only
121 * 10 - write-only -> 01 write-only
122 * 11 - read-write -> 10 read-write
123 */
124 flags--;
125
126 if (flags & FCREAT)
127 saved_umask = xchg(&current->fs->umask, 0);
128
129 fp = filp_open(path, flags, mode);
130
131 if (flags & FCREAT)
132 (void)xchg(&current->fs->umask, saved_umask);
133
134 if (IS_ERR(fp))
135 SRETURN(-PTR_ERR(fp));
136
137 rc = vfs_getattr(fp->f_vfsmnt, fp->f_dentry, &stat);
138 if (rc) {
139 filp_close(fp, 0);
140 SRETURN(-rc);
141 }
142
143 vp = vn_alloc(KM_SLEEP);
144 if (!vp) {
145 filp_close(fp, 0);
146 SRETURN(ENOMEM);
147 }
148
149 saved_gfp = mapping_gfp_mask(fp->f_mapping);
150 mapping_set_gfp_mask(fp->f_mapping, saved_gfp & ~(__GFP_IO|__GFP_FS));
151
152 mutex_enter(&vp->v_lock);
153 vp->v_type = vn_get_sol_type(stat.mode);
154 vp->v_file = fp;
155 vp->v_gfp_mask = saved_gfp;
156 *vpp = vp;
157 mutex_exit(&vp->v_lock);
158
159 SRETURN(0);
160 } /* vn_open() */
161 EXPORT_SYMBOL(vn_open);
162
163 int
164 vn_openat(const char *path, uio_seg_t seg, int flags, int mode,
165 vnode_t **vpp, int x1, void *x2, vnode_t *vp, int fd)
166 {
167 char *realpath;
168 int len, rc;
169 SENTRY;
170
171 ASSERT(vp == rootdir);
172
173 len = strlen(path) + 2;
174 realpath = kmalloc(len, GFP_KERNEL);
175 if (!realpath)
176 SRETURN(ENOMEM);
177
178 (void)snprintf(realpath, len, "/%s", path);
179 rc = vn_open(realpath, seg, flags, mode, vpp, x1, x2);
180 kfree(realpath);
181
182 SRETURN(rc);
183 } /* vn_openat() */
184 EXPORT_SYMBOL(vn_openat);
185
186 int
187 vn_rdwr(uio_rw_t uio, vnode_t *vp, void *addr, ssize_t len, offset_t off,
188 uio_seg_t seg, int ioflag, rlim64_t x2, void *x3, ssize_t *residp)
189 {
190 loff_t offset;
191 mm_segment_t saved_fs;
192 struct file *fp;
193 int rc;
194 SENTRY;
195
196 ASSERT(uio == UIO_WRITE || uio == UIO_READ);
197 ASSERT(vp);
198 ASSERT(vp->v_file);
199 ASSERT(seg == UIO_SYSSPACE);
200 ASSERT((ioflag & ~FAPPEND) == 0);
201 ASSERT(x2 == RLIM64_INFINITY);
202
203 fp = vp->v_file;
204
205 offset = off;
206 if (ioflag & FAPPEND)
207 offset = fp->f_pos;
208
209 /* Writable user data segment must be briefly increased for this
210 * process so we can use the user space read call paths to write
211 * in to memory allocated by the kernel. */
212 saved_fs = get_fs();
213 set_fs(get_ds());
214
215 if (uio & UIO_WRITE)
216 rc = vfs_write(fp, addr, len, &offset);
217 else
218 rc = vfs_read(fp, addr, len, &offset);
219
220 set_fs(saved_fs);
221
222 if (rc < 0)
223 SRETURN(-rc);
224
225 if (residp) {
226 *residp = len - rc;
227 } else {
228 if (rc != len)
229 SRETURN(EIO);
230 }
231
232 SRETURN(0);
233 } /* vn_rdwr() */
234 EXPORT_SYMBOL(vn_rdwr);
235
236 int
237 vn_close(vnode_t *vp, int flags, int x1, int x2, void *x3, void *x4)
238 {
239 int rc;
240 SENTRY;
241
242 ASSERT(vp);
243 ASSERT(vp->v_file);
244
245 mapping_set_gfp_mask(vp->v_file->f_mapping, vp->v_gfp_mask);
246 rc = filp_close(vp->v_file, 0);
247 vn_free(vp);
248
249 SRETURN(-rc);
250 } /* vn_close() */
251 EXPORT_SYMBOL(vn_close);
252
253 /* vn_seek() does not actually seek it only performs bounds checking on the
254 * proposed seek. We perform minimal checking and allow vn_rdwr() to catch
255 * anything more serious. */
256 int
257 vn_seek(vnode_t *vp, offset_t ooff, offset_t *noffp, caller_context_t *ct)
258 {
259 return ((*noffp < 0 || *noffp > MAXOFFSET_T) ? EINVAL : 0);
260 }
261 EXPORT_SYMBOL(vn_seek);
262
263 static struct dentry *
264 vn_lookup_hash(struct nameidata *nd)
265 {
266 return lookup_one_len((const char *)nd->last.name,
267 nd->nd_dentry, nd->last.len);
268 } /* lookup_hash() */
269
270 static void
271 vn_path_release(struct nameidata *nd)
272 {
273 dput(nd->nd_dentry);
274 mntput(nd->nd_mnt);
275 }
276
277 /* Modified do_unlinkat() from linux/fs/namei.c, only uses exported symbols */
278 int
279 vn_remove(const char *path, uio_seg_t seg, int flags)
280 {
281 struct dentry *dentry;
282 struct nameidata nd;
283 struct inode *inode = NULL;
284 int rc = 0;
285 SENTRY;
286
287 ASSERT(seg == UIO_SYSSPACE);
288 ASSERT(flags == RMFILE);
289
290 rc = path_lookup(path, LOOKUP_PARENT, &nd);
291 if (rc)
292 SGOTO(exit, rc);
293
294 rc = -EISDIR;
295 if (nd.last_type != LAST_NORM)
296 SGOTO(exit1, rc);
297
298 #ifdef HAVE_INODE_I_MUTEX
299 mutex_lock_nested(&nd.nd_dentry->d_inode->i_mutex, I_MUTEX_PARENT);
300 #else
301 down(&nd.nd_dentry->d_inode->i_sem);
302 #endif /* HAVE_INODE_I_MUTEX */
303 dentry = vn_lookup_hash(&nd);
304 rc = PTR_ERR(dentry);
305 if (!IS_ERR(dentry)) {
306 /* Why not before? Because we want correct rc value */
307 if (nd.last.name[nd.last.len])
308 SGOTO(slashes, rc);
309
310 inode = dentry->d_inode;
311 if (inode)
312 atomic_inc(&inode->i_count);
313 #ifdef HAVE_2ARGS_VFS_UNLINK
314 rc = vfs_unlink(nd.nd_dentry->d_inode, dentry);
315 #else
316 rc = vfs_unlink(nd.nd_dentry->d_inode, dentry, nd.nd_mnt);
317 #endif /* HAVE_2ARGS_VFS_UNLINK */
318 exit2:
319 dput(dentry);
320 }
321 #ifdef HAVE_INODE_I_MUTEX
322 mutex_unlock(&nd.nd_dentry->d_inode->i_mutex);
323 #else
324 up(&nd.nd_dentry->d_inode->i_sem);
325 #endif /* HAVE_INODE_I_MUTEX */
326 if (inode)
327 iput(inode); /* truncate the inode here */
328 exit1:
329 vn_path_release(&nd);
330 exit:
331 SRETURN(-rc);
332
333 slashes:
334 rc = !dentry->d_inode ? -ENOENT :
335 S_ISDIR(dentry->d_inode->i_mode) ? -EISDIR : -ENOTDIR;
336 SGOTO(exit2, rc);
337 } /* vn_remove() */
338 EXPORT_SYMBOL(vn_remove);
339
340 /* Modified do_rename() from linux/fs/namei.c, only uses exported symbols */
341 int
342 vn_rename(const char *oldname, const char *newname, int x1)
343 {
344 struct dentry *old_dir, *new_dir;
345 struct dentry *old_dentry, *new_dentry;
346 struct dentry *trap;
347 struct nameidata oldnd, newnd;
348 int rc = 0;
349 SENTRY;
350
351 rc = path_lookup(oldname, LOOKUP_PARENT, &oldnd);
352 if (rc)
353 SGOTO(exit, rc);
354
355 rc = path_lookup(newname, LOOKUP_PARENT, &newnd);
356 if (rc)
357 SGOTO(exit1, rc);
358
359 rc = -EXDEV;
360 if (oldnd.nd_mnt != newnd.nd_mnt)
361 SGOTO(exit2, rc);
362
363 old_dir = oldnd.nd_dentry;
364 rc = -EBUSY;
365 if (oldnd.last_type != LAST_NORM)
366 SGOTO(exit2, rc);
367
368 new_dir = newnd.nd_dentry;
369 if (newnd.last_type != LAST_NORM)
370 SGOTO(exit2, rc);
371
372 trap = lock_rename(new_dir, old_dir);
373
374 old_dentry = vn_lookup_hash(&oldnd);
375
376 rc = PTR_ERR(old_dentry);
377 if (IS_ERR(old_dentry))
378 SGOTO(exit3, rc);
379
380 /* source must exist */
381 rc = -ENOENT;
382 if (!old_dentry->d_inode)
383 SGOTO(exit4, rc);
384
385 /* unless the source is a directory trailing slashes give -ENOTDIR */
386 if (!S_ISDIR(old_dentry->d_inode->i_mode)) {
387 rc = -ENOTDIR;
388 if (oldnd.last.name[oldnd.last.len])
389 SGOTO(exit4, rc);
390 if (newnd.last.name[newnd.last.len])
391 SGOTO(exit4, rc);
392 }
393
394 /* source should not be ancestor of target */
395 rc = -EINVAL;
396 if (old_dentry == trap)
397 SGOTO(exit4, rc);
398
399 new_dentry = vn_lookup_hash(&newnd);
400 rc = PTR_ERR(new_dentry);
401 if (IS_ERR(new_dentry))
402 SGOTO(exit4, rc);
403
404 /* target should not be an ancestor of source */
405 rc = -ENOTEMPTY;
406 if (new_dentry == trap)
407 SGOTO(exit5, rc);
408
409 #ifdef HAVE_4ARGS_VFS_RENAME
410 rc = vfs_rename(old_dir->d_inode, old_dentry,
411 new_dir->d_inode, new_dentry);
412 #else
413 rc = vfs_rename(old_dir->d_inode, old_dentry, oldnd.nd_mnt,
414 new_dir->d_inode, new_dentry, newnd.nd_mnt);
415 #endif /* HAVE_4ARGS_VFS_RENAME */
416 exit5:
417 dput(new_dentry);
418 exit4:
419 dput(old_dentry);
420 exit3:
421 unlock_rename(new_dir, old_dir);
422 exit2:
423 vn_path_release(&newnd);
424 exit1:
425 vn_path_release(&oldnd);
426 exit:
427 SRETURN(-rc);
428 }
429 EXPORT_SYMBOL(vn_rename);
430
431 int
432 vn_getattr(vnode_t *vp, vattr_t *vap, int flags, void *x3, void *x4)
433 {
434 struct file *fp;
435 struct kstat stat;
436 int rc;
437 SENTRY;
438
439 ASSERT(vp);
440 ASSERT(vp->v_file);
441 ASSERT(vap);
442
443 fp = vp->v_file;
444
445 rc = vfs_getattr(fp->f_vfsmnt, fp->f_dentry, &stat);
446 if (rc)
447 SRETURN(-rc);
448
449 vap->va_type = vn_get_sol_type(stat.mode);
450 vap->va_mode = stat.mode;
451 vap->va_uid = stat.uid;
452 vap->va_gid = stat.gid;
453 vap->va_fsid = 0;
454 vap->va_nodeid = stat.ino;
455 vap->va_nlink = stat.nlink;
456 vap->va_size = stat.size;
457 vap->va_blocksize = stat.blksize;
458 vap->va_atime.tv_sec = stat.atime.tv_sec;
459 vap->va_atime.tv_usec = stat.atime.tv_nsec / NSEC_PER_USEC;
460 vap->va_mtime.tv_sec = stat.mtime.tv_sec;
461 vap->va_mtime.tv_usec = stat.mtime.tv_nsec / NSEC_PER_USEC;
462 vap->va_ctime.tv_sec = stat.ctime.tv_sec;
463 vap->va_ctime.tv_usec = stat.ctime.tv_nsec / NSEC_PER_USEC;
464 vap->va_rdev = stat.rdev;
465 vap->va_blocks = stat.blocks;
466
467 SRETURN(0);
468 }
469 EXPORT_SYMBOL(vn_getattr);
470
471 int vn_fsync(vnode_t *vp, int flags, void *x3, void *x4)
472 {
473 int datasync = 0;
474 SENTRY;
475
476 ASSERT(vp);
477 ASSERT(vp->v_file);
478
479 if (flags & FDSYNC)
480 datasync = 1;
481
482 SRETURN(-spl_filp_fsync(vp->v_file, datasync));
483 } /* vn_fsync() */
484 EXPORT_SYMBOL(vn_fsync);
485
486 /* Function must be called while holding the vn_file_lock */
487 static file_t *
488 file_find(int fd)
489 {
490 file_t *fp;
491
492 ASSERT(spin_is_locked(&vn_file_lock));
493
494 list_for_each_entry(fp, &vn_file_list, f_list) {
495 if (fd == fp->f_fd) {
496 ASSERT(atomic_read(&fp->f_ref) != 0);
497 return fp;
498 }
499 }
500
501 return NULL;
502 } /* file_find() */
503
504 file_t *
505 vn_getf(int fd)
506 {
507 struct kstat stat;
508 struct file *lfp;
509 file_t *fp;
510 vnode_t *vp;
511 int rc = 0;
512 SENTRY;
513
514 /* Already open just take an extra reference */
515 spin_lock(&vn_file_lock);
516
517 fp = file_find(fd);
518 if (fp) {
519 atomic_inc(&fp->f_ref);
520 spin_unlock(&vn_file_lock);
521 SRETURN(fp);
522 }
523
524 spin_unlock(&vn_file_lock);
525
526 /* File was not yet opened create the object and setup */
527 fp = kmem_cache_alloc(vn_file_cache, KM_SLEEP);
528 if (fp == NULL)
529 SGOTO(out, rc);
530
531 mutex_enter(&fp->f_lock);
532
533 fp->f_fd = fd;
534 fp->f_offset = 0;
535 atomic_inc(&fp->f_ref);
536
537 lfp = fget(fd);
538 if (lfp == NULL)
539 SGOTO(out_mutex, rc);
540
541 vp = vn_alloc(KM_SLEEP);
542 if (vp == NULL)
543 SGOTO(out_fget, rc);
544
545 if (vfs_getattr(lfp->f_vfsmnt, lfp->f_dentry, &stat))
546 SGOTO(out_vnode, rc);
547
548 mutex_enter(&vp->v_lock);
549 vp->v_type = vn_get_sol_type(stat.mode);
550 vp->v_file = lfp;
551 mutex_exit(&vp->v_lock);
552
553 fp->f_vnode = vp;
554 fp->f_file = lfp;
555
556 /* Put it on the tracking list */
557 spin_lock(&vn_file_lock);
558 list_add(&fp->f_list, &vn_file_list);
559 spin_unlock(&vn_file_lock);
560
561 mutex_exit(&fp->f_lock);
562 SRETURN(fp);
563
564 out_vnode:
565 vn_free(vp);
566 out_fget:
567 fput(lfp);
568 out_mutex:
569 mutex_exit(&fp->f_lock);
570 kmem_cache_free(vn_file_cache, fp);
571 out:
572 SRETURN(NULL);
573 } /* getf() */
574 EXPORT_SYMBOL(getf);
575
576 static void releasef_locked(file_t *fp)
577 {
578 ASSERT(fp->f_file);
579 ASSERT(fp->f_vnode);
580
581 /* Unlinked from list, no refs, safe to free outside mutex */
582 fput(fp->f_file);
583 vn_free(fp->f_vnode);
584
585 kmem_cache_free(vn_file_cache, fp);
586 }
587
588 void
589 vn_releasef(int fd)
590 {
591 file_t *fp;
592 SENTRY;
593
594 spin_lock(&vn_file_lock);
595 fp = file_find(fd);
596 if (fp) {
597 atomic_dec(&fp->f_ref);
598 if (atomic_read(&fp->f_ref) > 0) {
599 spin_unlock(&vn_file_lock);
600 SEXIT;
601 return;
602 }
603
604 list_del(&fp->f_list);
605 releasef_locked(fp);
606 }
607 spin_unlock(&vn_file_lock);
608
609 SEXIT;
610 return;
611 } /* releasef() */
612 EXPORT_SYMBOL(releasef);
613
614 #ifndef HAVE_SET_FS_PWD
615 # ifdef HAVE_2ARGS_SET_FS_PWD
616 /* Used from 2.6.25 - 2.6.31+ */
617 void
618 set_fs_pwd(struct fs_struct *fs, struct path *path)
619 {
620 struct path old_pwd;
621
622 # ifdef HAVE_FS_STRUCT_SPINLOCK
623 spin_lock(&fs->lock);
624 old_pwd = fs->pwd;
625 fs->pwd = *path;
626 path_get(path);
627 spin_unlock(&fs->lock);
628 # else
629 write_lock(&fs->lock);
630 old_pwd = fs->pwd;
631 fs->pwd = *path;
632 path_get(path);
633 write_unlock(&fs->lock);
634 # endif /* HAVE_FS_STRUCT_SPINLOCK */
635
636 if (old_pwd.dentry)
637 path_put(&old_pwd);
638 }
639 # else
640 /* Used from 2.6.11 - 2.6.24 */
641 void
642 set_fs_pwd(struct fs_struct *fs, struct vfsmount *mnt, struct dentry *dentry)
643 {
644 struct dentry *old_pwd;
645 struct vfsmount *old_pwdmnt;
646
647 write_lock(&fs->lock);
648 old_pwd = fs->pwd;
649 old_pwdmnt = fs->pwdmnt;
650 fs->pwdmnt = mntget(mnt);
651 fs->pwd = dget(dentry);
652 write_unlock(&fs->lock);
653
654 if (old_pwd) {
655 dput(old_pwd);
656 mntput(old_pwdmnt);
657 }
658 }
659 # endif /* HAVE_2ARGS_SET_FS_PWD */
660 #endif /* HAVE_SET_FS_PWD */
661
662 int
663 vn_set_pwd(const char *filename)
664 {
665 #if defined(HAVE_2ARGS_SET_FS_PWD) && defined(HAVE_USER_PATH_DIR)
666 struct path path;
667 #else
668 struct nameidata nd;
669 #endif /* HAVE_2ARGS_SET_FS_PWD */
670 mm_segment_t saved_fs;
671 int rc;
672 SENTRY;
673
674 /*
675 * user_path_dir() and __user_walk() both expect 'filename' to be
676 * a user space address so we must briefly increase the data segment
677 * size to ensure strncpy_from_user() does not fail with -EFAULT.
678 */
679 saved_fs = get_fs();
680 set_fs(get_ds());
681
682 #ifdef HAVE_2ARGS_SET_FS_PWD
683 # ifdef HAVE_USER_PATH_DIR
684 rc = user_path_dir(filename, &path);
685 if (rc)
686 SGOTO(out, rc);
687
688 rc = inode_permission(path.dentry->d_inode, MAY_EXEC | MAY_ACCESS);
689 if (rc)
690 SGOTO(dput_and_out, rc);
691
692 set_fs_pwd(current->fs, &path);
693
694 dput_and_out:
695 path_put(&path);
696 # else
697 rc = __user_walk(filename,
698 LOOKUP_FOLLOW|LOOKUP_DIRECTORY|LOOKUP_CHDIR, &nd);
699 if (rc)
700 SGOTO(out, rc);
701
702 rc = vfs_permission(&nd, MAY_EXEC);
703 if (rc)
704 SGOTO(dput_and_out, rc);
705
706 set_fs_pwd(current->fs, &nd.path);
707
708 dput_and_out:
709 path_put(&nd.path);
710 # endif /* HAVE_USER_PATH_DIR */
711 #else
712 rc = __user_walk(filename,
713 LOOKUP_FOLLOW|LOOKUP_DIRECTORY|LOOKUP_CHDIR, &nd);
714 if (rc)
715 SGOTO(out, rc);
716
717 rc = vfs_permission(&nd, MAY_EXEC);
718 if (rc)
719 SGOTO(dput_and_out, rc);
720
721 set_fs_pwd(current->fs, nd.nd_mnt, nd.nd_dentry);
722
723 dput_and_out:
724 vn_path_release(&nd);
725 #endif /* HAVE_2ARGS_SET_FS_PWD */
726 out:
727 set_fs(saved_fs);
728
729 SRETURN(-rc);
730 } /* vn_set_pwd() */
731 EXPORT_SYMBOL(vn_set_pwd);
732
733 static int
734 vn_cache_constructor(void *buf, void *cdrarg, int kmflags)
735 {
736 struct vnode *vp = buf;
737
738 mutex_init(&vp->v_lock, NULL, MUTEX_DEFAULT, NULL);
739
740 return (0);
741 } /* vn_cache_constructor() */
742
743 static void
744 vn_cache_destructor(void *buf, void *cdrarg)
745 {
746 struct vnode *vp = buf;
747
748 mutex_destroy(&vp->v_lock);
749 } /* vn_cache_destructor() */
750
751 static int
752 vn_file_cache_constructor(void *buf, void *cdrarg, int kmflags)
753 {
754 file_t *fp = buf;
755
756 atomic_set(&fp->f_ref, 0);
757 mutex_init(&fp->f_lock, NULL, MUTEX_DEFAULT, NULL);
758 INIT_LIST_HEAD(&fp->f_list);
759
760 return (0);
761 } /* file_cache_constructor() */
762
763 static void
764 vn_file_cache_destructor(void *buf, void *cdrarg)
765 {
766 file_t *fp = buf;
767
768 mutex_destroy(&fp->f_lock);
769 } /* vn_file_cache_destructor() */
770
771 int
772 vn_init(void)
773 {
774 SENTRY;
775 vn_cache = kmem_cache_create("spl_vn_cache",
776 sizeof(struct vnode), 64,
777 vn_cache_constructor,
778 vn_cache_destructor,
779 NULL, NULL, NULL, 0);
780
781 vn_file_cache = kmem_cache_create("spl_vn_file_cache",
782 sizeof(file_t), 64,
783 vn_file_cache_constructor,
784 vn_file_cache_destructor,
785 NULL, NULL, NULL, 0);
786 SRETURN(0);
787 } /* vn_init() */
788
789 void
790 vn_fini(void)
791 {
792 file_t *fp, *next_fp;
793 int leaked = 0;
794 SENTRY;
795
796 spin_lock(&vn_file_lock);
797
798 list_for_each_entry_safe(fp, next_fp, &vn_file_list, f_list) {
799 list_del(&fp->f_list);
800 releasef_locked(fp);
801 leaked++;
802 }
803
804 kmem_cache_destroy(vn_file_cache);
805 vn_file_cache = NULL;
806 spin_unlock(&vn_file_lock);
807
808 if (leaked > 0)
809 SWARN("Warning %d files leaked\n", leaked);
810
811 kmem_cache_destroy(vn_cache);
812
813 SEXIT;
814 return;
815 } /* vn_fini() */