reiserfs: remove /proc/fs/reiserfs/version
[firewire-audio.git] / fs / namei.c
blob87f97ba90ad17d271baf15b2b2e65381a583c163
1 /*
2 * linux/fs/namei.c
4 * Copyright (C) 1991, 1992 Linus Torvalds
5 */
7 /*
8 * Some corrections by tytso.
9 */
11 /* [Feb 1997 T. Schoebel-Theuer] Complete rewrite of the pathname
12 * lookup logic.
14 /* [Feb-Apr 2000, AV] Rewrite to the new namespace architecture.
17 #include <linux/init.h>
18 #include <linux/module.h>
19 #include <linux/slab.h>
20 #include <linux/fs.h>
21 #include <linux/namei.h>
22 #include <linux/quotaops.h>
23 #include <linux/pagemap.h>
24 #include <linux/fsnotify.h>
25 #include <linux/personality.h>
26 #include <linux/security.h>
27 #include <linux/ima.h>
28 #include <linux/syscalls.h>
29 #include <linux/mount.h>
30 #include <linux/audit.h>
31 #include <linux/capability.h>
32 #include <linux/file.h>
33 #include <linux/fcntl.h>
34 #include <linux/device_cgroup.h>
35 #include <linux/fs_struct.h>
36 #include <asm/uaccess.h>
38 #define ACC_MODE(x) ("\000\004\002\006"[(x)&O_ACCMODE])
40 /* [Feb-1997 T. Schoebel-Theuer]
41 * Fundamental changes in the pathname lookup mechanisms (namei)
42 * were necessary because of omirr. The reason is that omirr needs
43 * to know the _real_ pathname, not the user-supplied one, in case
44 * of symlinks (and also when transname replacements occur).
46 * The new code replaces the old recursive symlink resolution with
47 * an iterative one (in case of non-nested symlink chains). It does
48 * this with calls to <fs>_follow_link().
49 * As a side effect, dir_namei(), _namei() and follow_link() are now
50 * replaced with a single function lookup_dentry() that can handle all
51 * the special cases of the former code.
53 * With the new dcache, the pathname is stored at each inode, at least as
54 * long as the refcount of the inode is positive. As a side effect, the
55 * size of the dcache depends on the inode cache and thus is dynamic.
57 * [29-Apr-1998 C. Scott Ananian] Updated above description of symlink
58 * resolution to correspond with current state of the code.
60 * Note that the symlink resolution is not *completely* iterative.
61 * There is still a significant amount of tail- and mid- recursion in
62 * the algorithm. Also, note that <fs>_readlink() is not used in
63 * lookup_dentry(): lookup_dentry() on the result of <fs>_readlink()
64 * may return different results than <fs>_follow_link(). Many virtual
65 * filesystems (including /proc) exhibit this behavior.
68 /* [24-Feb-97 T. Schoebel-Theuer] Side effects caused by new implementation:
69 * New symlink semantics: when open() is called with flags O_CREAT | O_EXCL
70 * and the name already exists in form of a symlink, try to create the new
71 * name indicated by the symlink. The old code always complained that the
72 * name already exists, due to not following the symlink even if its target
73 * is nonexistent. The new semantics affects also mknod() and link() when
74 * the name is a symlink pointing to a non-existant name.
76 * I don't know which semantics is the right one, since I have no access
77 * to standards. But I found by trial that HP-UX 9.0 has the full "new"
78 * semantics implemented, while SunOS 4.1.1 and Solaris (SunOS 5.4) have the
79 * "old" one. Personally, I think the new semantics is much more logical.
80 * Note that "ln old new" where "new" is a symlink pointing to a non-existing
81 * file does succeed in both HP-UX and SunOs, but not in Solaris
82 * and in the old Linux semantics.
85 /* [16-Dec-97 Kevin Buhr] For security reasons, we change some symlink
86 * semantics. See the comments in "open_namei" and "do_link" below.
88 * [10-Sep-98 Alan Modra] Another symlink change.
91 /* [Feb-Apr 2000 AV] Complete rewrite. Rules for symlinks:
92 * inside the path - always follow.
93 * in the last component in creation/removal/renaming - never follow.
94 * if LOOKUP_FOLLOW passed - follow.
95 * if the pathname has trailing slashes - follow.
96 * otherwise - don't follow.
97 * (applied in that order).
99 * [Jun 2000 AV] Inconsistent behaviour of open() in case if flags==O_CREAT
100 * restored for 2.4. This is the last surviving part of old 4.2BSD bug.
101 * During the 2.4 we need to fix the userland stuff depending on it -
102 * hopefully we will be able to get rid of that wart in 2.5. So far only
103 * XEmacs seems to be relying on it...
106 * [Sep 2001 AV] Single-semaphore locking scheme (kudos to David Holland)
107 * implemented. Let's see if raised priority of ->s_vfs_rename_mutex gives
108 * any extra contention...
111 static int __link_path_walk(const char *name, struct nameidata *nd);
113 /* In order to reduce some races, while at the same time doing additional
114 * checking and hopefully speeding things up, we copy filenames to the
115 * kernel data space before using them..
117 * POSIX.1 2.4: an empty pathname is invalid (ENOENT).
118 * PATH_MAX includes the nul terminator --RR.
120 static int do_getname(const char __user *filename, char *page)
122 int retval;
123 unsigned long len = PATH_MAX;
125 if (!segment_eq(get_fs(), KERNEL_DS)) {
126 if ((unsigned long) filename >= TASK_SIZE)
127 return -EFAULT;
128 if (TASK_SIZE - (unsigned long) filename < PATH_MAX)
129 len = TASK_SIZE - (unsigned long) filename;
132 retval = strncpy_from_user(page, filename, len);
133 if (retval > 0) {
134 if (retval < len)
135 return 0;
136 return -ENAMETOOLONG;
137 } else if (!retval)
138 retval = -ENOENT;
139 return retval;
142 char * getname(const char __user * filename)
144 char *tmp, *result;
146 result = ERR_PTR(-ENOMEM);
147 tmp = __getname();
148 if (tmp) {
149 int retval = do_getname(filename, tmp);
151 result = tmp;
152 if (retval < 0) {
153 __putname(tmp);
154 result = ERR_PTR(retval);
157 audit_getname(result);
158 return result;
161 #ifdef CONFIG_AUDITSYSCALL
162 void putname(const char *name)
164 if (unlikely(!audit_dummy_context()))
165 audit_putname(name);
166 else
167 __putname(name);
169 EXPORT_SYMBOL(putname);
170 #endif
173 * This does basic POSIX ACL permission checking
175 static int acl_permission_check(struct inode *inode, int mask,
176 int (*check_acl)(struct inode *inode, int mask))
178 umode_t mode = inode->i_mode;
180 mask &= MAY_READ | MAY_WRITE | MAY_EXEC;
182 if (current_fsuid() == inode->i_uid)
183 mode >>= 6;
184 else {
185 if (IS_POSIXACL(inode) && (mode & S_IRWXG) && check_acl) {
186 int error = check_acl(inode, mask);
187 if (error != -EAGAIN)
188 return error;
191 if (in_group_p(inode->i_gid))
192 mode >>= 3;
196 * If the DACs are ok we don't need any capability check.
198 if ((mask & ~mode) == 0)
199 return 0;
200 return -EACCES;
204 * generic_permission - check for access rights on a Posix-like filesystem
205 * @inode: inode to check access rights for
206 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
207 * @check_acl: optional callback to check for Posix ACLs
209 * Used to check for read/write/execute permissions on a file.
210 * We use "fsuid" for this, letting us set arbitrary permissions
211 * for filesystem access without changing the "normal" uids which
212 * are used for other things..
214 int generic_permission(struct inode *inode, int mask,
215 int (*check_acl)(struct inode *inode, int mask))
217 int ret;
220 * Do the basic POSIX ACL permission checks.
222 ret = acl_permission_check(inode, mask, check_acl);
223 if (ret != -EACCES)
224 return ret;
227 * Read/write DACs are always overridable.
228 * Executable DACs are overridable if at least one exec bit is set.
230 if (!(mask & MAY_EXEC) || execute_ok(inode))
231 if (capable(CAP_DAC_OVERRIDE))
232 return 0;
235 * Searching includes executable on directories, else just read.
237 if (mask == MAY_READ || (S_ISDIR(inode->i_mode) && !(mask & MAY_WRITE)))
238 if (capable(CAP_DAC_READ_SEARCH))
239 return 0;
241 return -EACCES;
245 * inode_permission - check for access rights to a given inode
246 * @inode: inode to check permission on
247 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
249 * Used to check for read/write/execute permissions on an inode.
250 * We use "fsuid" for this, letting us set arbitrary permissions
251 * for filesystem access without changing the "normal" uids which
252 * are used for other things.
254 int inode_permission(struct inode *inode, int mask)
256 int retval;
258 if (mask & MAY_WRITE) {
259 umode_t mode = inode->i_mode;
262 * Nobody gets write access to a read-only fs.
264 if (IS_RDONLY(inode) &&
265 (S_ISREG(mode) || S_ISDIR(mode) || S_ISLNK(mode)))
266 return -EROFS;
269 * Nobody gets write access to an immutable file.
271 if (IS_IMMUTABLE(inode))
272 return -EACCES;
275 if (inode->i_op->permission)
276 retval = inode->i_op->permission(inode, mask);
277 else
278 retval = generic_permission(inode, mask, inode->i_op->check_acl);
280 if (retval)
281 return retval;
283 retval = devcgroup_inode_permission(inode, mask);
284 if (retval)
285 return retval;
287 return security_inode_permission(inode,
288 mask & (MAY_READ|MAY_WRITE|MAY_EXEC|MAY_APPEND));
292 * file_permission - check for additional access rights to a given file
293 * @file: file to check access rights for
294 * @mask: right to check for (%MAY_READ, %MAY_WRITE, %MAY_EXEC)
296 * Used to check for read/write/execute permissions on an already opened
297 * file.
299 * Note:
300 * Do not use this function in new code. All access checks should
301 * be done using inode_permission().
303 int file_permission(struct file *file, int mask)
305 return inode_permission(file->f_path.dentry->d_inode, mask);
309 * get_write_access() gets write permission for a file.
310 * put_write_access() releases this write permission.
311 * This is used for regular files.
312 * We cannot support write (and maybe mmap read-write shared) accesses and
313 * MAP_DENYWRITE mmappings simultaneously. The i_writecount field of an inode
314 * can have the following values:
315 * 0: no writers, no VM_DENYWRITE mappings
316 * < 0: (-i_writecount) vm_area_structs with VM_DENYWRITE set exist
317 * > 0: (i_writecount) users are writing to the file.
319 * Normally we operate on that counter with atomic_{inc,dec} and it's safe
320 * except for the cases where we don't hold i_writecount yet. Then we need to
321 * use {get,deny}_write_access() - these functions check the sign and refuse
322 * to do the change if sign is wrong. Exclusion between them is provided by
323 * the inode->i_lock spinlock.
326 int get_write_access(struct inode * inode)
328 spin_lock(&inode->i_lock);
329 if (atomic_read(&inode->i_writecount) < 0) {
330 spin_unlock(&inode->i_lock);
331 return -ETXTBSY;
333 atomic_inc(&inode->i_writecount);
334 spin_unlock(&inode->i_lock);
336 return 0;
339 int deny_write_access(struct file * file)
341 struct inode *inode = file->f_path.dentry->d_inode;
343 spin_lock(&inode->i_lock);
344 if (atomic_read(&inode->i_writecount) > 0) {
345 spin_unlock(&inode->i_lock);
346 return -ETXTBSY;
348 atomic_dec(&inode->i_writecount);
349 spin_unlock(&inode->i_lock);
351 return 0;
355 * path_get - get a reference to a path
356 * @path: path to get the reference to
358 * Given a path increment the reference count to the dentry and the vfsmount.
360 void path_get(struct path *path)
362 mntget(path->mnt);
363 dget(path->dentry);
365 EXPORT_SYMBOL(path_get);
368 * path_put - put a reference to a path
369 * @path: path to put the reference to
371 * Given a path decrement the reference count to the dentry and the vfsmount.
373 void path_put(struct path *path)
375 dput(path->dentry);
376 mntput(path->mnt);
378 EXPORT_SYMBOL(path_put);
381 * release_open_intent - free up open intent resources
382 * @nd: pointer to nameidata
384 void release_open_intent(struct nameidata *nd)
386 if (nd->intent.open.file->f_path.dentry == NULL)
387 put_filp(nd->intent.open.file);
388 else
389 fput(nd->intent.open.file);
392 static inline struct dentry *
393 do_revalidate(struct dentry *dentry, struct nameidata *nd)
395 int status = dentry->d_op->d_revalidate(dentry, nd);
396 if (unlikely(status <= 0)) {
398 * The dentry failed validation.
399 * If d_revalidate returned 0 attempt to invalidate
400 * the dentry otherwise d_revalidate is asking us
401 * to return a fail status.
403 if (!status) {
404 if (!d_invalidate(dentry)) {
405 dput(dentry);
406 dentry = NULL;
408 } else {
409 dput(dentry);
410 dentry = ERR_PTR(status);
413 return dentry;
417 * Internal lookup() using the new generic dcache.
418 * SMP-safe
420 static struct dentry * cached_lookup(struct dentry * parent, struct qstr * name, struct nameidata *nd)
422 struct dentry * dentry = __d_lookup(parent, name);
424 /* lockess __d_lookup may fail due to concurrent d_move()
425 * in some unrelated directory, so try with d_lookup
427 if (!dentry)
428 dentry = d_lookup(parent, name);
430 if (dentry && dentry->d_op && dentry->d_op->d_revalidate)
431 dentry = do_revalidate(dentry, nd);
433 return dentry;
437 * Short-cut version of permission(), for calling by
438 * path_walk(), when dcache lock is held. Combines parts
439 * of permission() and generic_permission(), and tests ONLY for
440 * MAY_EXEC permission.
442 * If appropriate, check DAC only. If not appropriate, or
443 * short-cut DAC fails, then call permission() to do more
444 * complete permission check.
446 static int exec_permission_lite(struct inode *inode)
448 int ret;
450 if (inode->i_op->permission) {
451 ret = inode->i_op->permission(inode, MAY_EXEC);
452 if (!ret)
453 goto ok;
454 return ret;
456 ret = acl_permission_check(inode, MAY_EXEC, inode->i_op->check_acl);
457 if (!ret)
458 goto ok;
460 if (capable(CAP_DAC_OVERRIDE) || capable(CAP_DAC_READ_SEARCH))
461 goto ok;
463 return ret;
465 return security_inode_permission(inode, MAY_EXEC);
469 * This is called when everything else fails, and we actually have
470 * to go to the low-level filesystem to find out what we should do..
472 * We get the directory semaphore, and after getting that we also
473 * make sure that nobody added the entry to the dcache in the meantime..
474 * SMP-safe
476 static struct dentry * real_lookup(struct dentry * parent, struct qstr * name, struct nameidata *nd)
478 struct dentry * result;
479 struct inode *dir = parent->d_inode;
481 mutex_lock(&dir->i_mutex);
483 * First re-do the cached lookup just in case it was created
484 * while we waited for the directory semaphore..
486 * FIXME! This could use version numbering or similar to
487 * avoid unnecessary cache lookups.
489 * The "dcache_lock" is purely to protect the RCU list walker
490 * from concurrent renames at this point (we mustn't get false
491 * negatives from the RCU list walk here, unlike the optimistic
492 * fast walk).
494 * so doing d_lookup() (with seqlock), instead of lockfree __d_lookup
496 result = d_lookup(parent, name);
497 if (!result) {
498 struct dentry *dentry;
500 /* Don't create child dentry for a dead directory. */
501 result = ERR_PTR(-ENOENT);
502 if (IS_DEADDIR(dir))
503 goto out_unlock;
505 dentry = d_alloc(parent, name);
506 result = ERR_PTR(-ENOMEM);
507 if (dentry) {
508 result = dir->i_op->lookup(dir, dentry, nd);
509 if (result)
510 dput(dentry);
511 else
512 result = dentry;
514 out_unlock:
515 mutex_unlock(&dir->i_mutex);
516 return result;
520 * Uhhuh! Nasty case: the cache was re-populated while
521 * we waited on the semaphore. Need to revalidate.
523 mutex_unlock(&dir->i_mutex);
524 if (result->d_op && result->d_op->d_revalidate) {
525 result = do_revalidate(result, nd);
526 if (!result)
527 result = ERR_PTR(-ENOENT);
529 return result;
533 * Wrapper to retry pathname resolution whenever the underlying
534 * file system returns an ESTALE.
536 * Retry the whole path once, forcing real lookup requests
537 * instead of relying on the dcache.
539 static __always_inline int link_path_walk(const char *name, struct nameidata *nd)
541 struct path save = nd->path;
542 int result;
544 /* make sure the stuff we saved doesn't go away */
545 path_get(&save);
547 result = __link_path_walk(name, nd);
548 if (result == -ESTALE) {
549 /* nd->path had been dropped */
550 nd->path = save;
551 path_get(&nd->path);
552 nd->flags |= LOOKUP_REVAL;
553 result = __link_path_walk(name, nd);
556 path_put(&save);
558 return result;
561 static __always_inline void set_root(struct nameidata *nd)
563 if (!nd->root.mnt) {
564 struct fs_struct *fs = current->fs;
565 read_lock(&fs->lock);
566 nd->root = fs->root;
567 path_get(&nd->root);
568 read_unlock(&fs->lock);
572 static __always_inline int __vfs_follow_link(struct nameidata *nd, const char *link)
574 int res = 0;
575 char *name;
576 if (IS_ERR(link))
577 goto fail;
579 if (*link == '/') {
580 set_root(nd);
581 path_put(&nd->path);
582 nd->path = nd->root;
583 path_get(&nd->root);
586 res = link_path_walk(link, nd);
587 if (nd->depth || res || nd->last_type!=LAST_NORM)
588 return res;
590 * If it is an iterative symlinks resolution in open_namei() we
591 * have to copy the last component. And all that crap because of
592 * bloody create() on broken symlinks. Furrfu...
594 name = __getname();
595 if (unlikely(!name)) {
596 path_put(&nd->path);
597 return -ENOMEM;
599 strcpy(name, nd->last.name);
600 nd->last.name = name;
601 return 0;
602 fail:
603 path_put(&nd->path);
604 return PTR_ERR(link);
607 static void path_put_conditional(struct path *path, struct nameidata *nd)
609 dput(path->dentry);
610 if (path->mnt != nd->path.mnt)
611 mntput(path->mnt);
614 static inline void path_to_nameidata(struct path *path, struct nameidata *nd)
616 dput(nd->path.dentry);
617 if (nd->path.mnt != path->mnt)
618 mntput(nd->path.mnt);
619 nd->path.mnt = path->mnt;
620 nd->path.dentry = path->dentry;
623 static __always_inline int __do_follow_link(struct path *path, struct nameidata *nd)
625 int error;
626 void *cookie;
627 struct dentry *dentry = path->dentry;
629 touch_atime(path->mnt, dentry);
630 nd_set_link(nd, NULL);
632 if (path->mnt != nd->path.mnt) {
633 path_to_nameidata(path, nd);
634 dget(dentry);
636 mntget(path->mnt);
637 cookie = dentry->d_inode->i_op->follow_link(dentry, nd);
638 error = PTR_ERR(cookie);
639 if (!IS_ERR(cookie)) {
640 char *s = nd_get_link(nd);
641 error = 0;
642 if (s)
643 error = __vfs_follow_link(nd, s);
644 if (dentry->d_inode->i_op->put_link)
645 dentry->d_inode->i_op->put_link(dentry, nd, cookie);
647 path_put(path);
649 return error;
653 * This limits recursive symlink follows to 8, while
654 * limiting consecutive symlinks to 40.
656 * Without that kind of total limit, nasty chains of consecutive
657 * symlinks can cause almost arbitrarily long lookups.
659 static inline int do_follow_link(struct path *path, struct nameidata *nd)
661 int err = -ELOOP;
662 if (current->link_count >= MAX_NESTED_LINKS)
663 goto loop;
664 if (current->total_link_count >= 40)
665 goto loop;
666 BUG_ON(nd->depth >= MAX_NESTED_LINKS);
667 cond_resched();
668 err = security_inode_follow_link(path->dentry, nd);
669 if (err)
670 goto loop;
671 current->link_count++;
672 current->total_link_count++;
673 nd->depth++;
674 err = __do_follow_link(path, nd);
675 current->link_count--;
676 nd->depth--;
677 return err;
678 loop:
679 path_put_conditional(path, nd);
680 path_put(&nd->path);
681 return err;
684 int follow_up(struct path *path)
686 struct vfsmount *parent;
687 struct dentry *mountpoint;
688 spin_lock(&vfsmount_lock);
689 parent = path->mnt->mnt_parent;
690 if (parent == path->mnt) {
691 spin_unlock(&vfsmount_lock);
692 return 0;
694 mntget(parent);
695 mountpoint = dget(path->mnt->mnt_mountpoint);
696 spin_unlock(&vfsmount_lock);
697 dput(path->dentry);
698 path->dentry = mountpoint;
699 mntput(path->mnt);
700 path->mnt = parent;
701 return 1;
704 /* no need for dcache_lock, as serialization is taken care in
705 * namespace.c
707 static int __follow_mount(struct path *path)
709 int res = 0;
710 while (d_mountpoint(path->dentry)) {
711 struct vfsmount *mounted = lookup_mnt(path);
712 if (!mounted)
713 break;
714 dput(path->dentry);
715 if (res)
716 mntput(path->mnt);
717 path->mnt = mounted;
718 path->dentry = dget(mounted->mnt_root);
719 res = 1;
721 return res;
724 static void follow_mount(struct path *path)
726 while (d_mountpoint(path->dentry)) {
727 struct vfsmount *mounted = lookup_mnt(path);
728 if (!mounted)
729 break;
730 dput(path->dentry);
731 mntput(path->mnt);
732 path->mnt = mounted;
733 path->dentry = dget(mounted->mnt_root);
737 /* no need for dcache_lock, as serialization is taken care in
738 * namespace.c
740 int follow_down(struct path *path)
742 struct vfsmount *mounted;
744 mounted = lookup_mnt(path);
745 if (mounted) {
746 dput(path->dentry);
747 mntput(path->mnt);
748 path->mnt = mounted;
749 path->dentry = dget(mounted->mnt_root);
750 return 1;
752 return 0;
755 static __always_inline void follow_dotdot(struct nameidata *nd)
757 set_root(nd);
759 while(1) {
760 struct vfsmount *parent;
761 struct dentry *old = nd->path.dentry;
763 if (nd->path.dentry == nd->root.dentry &&
764 nd->path.mnt == nd->root.mnt) {
765 break;
767 spin_lock(&dcache_lock);
768 if (nd->path.dentry != nd->path.mnt->mnt_root) {
769 nd->path.dentry = dget(nd->path.dentry->d_parent);
770 spin_unlock(&dcache_lock);
771 dput(old);
772 break;
774 spin_unlock(&dcache_lock);
775 spin_lock(&vfsmount_lock);
776 parent = nd->path.mnt->mnt_parent;
777 if (parent == nd->path.mnt) {
778 spin_unlock(&vfsmount_lock);
779 break;
781 mntget(parent);
782 nd->path.dentry = dget(nd->path.mnt->mnt_mountpoint);
783 spin_unlock(&vfsmount_lock);
784 dput(old);
785 mntput(nd->path.mnt);
786 nd->path.mnt = parent;
788 follow_mount(&nd->path);
792 * It's more convoluted than I'd like it to be, but... it's still fairly
793 * small and for now I'd prefer to have fast path as straight as possible.
794 * It _is_ time-critical.
796 static int do_lookup(struct nameidata *nd, struct qstr *name,
797 struct path *path)
799 struct vfsmount *mnt = nd->path.mnt;
800 struct dentry *dentry = __d_lookup(nd->path.dentry, name);
802 if (!dentry)
803 goto need_lookup;
804 if (dentry->d_op && dentry->d_op->d_revalidate)
805 goto need_revalidate;
806 done:
807 path->mnt = mnt;
808 path->dentry = dentry;
809 __follow_mount(path);
810 return 0;
812 need_lookup:
813 dentry = real_lookup(nd->path.dentry, name, nd);
814 if (IS_ERR(dentry))
815 goto fail;
816 goto done;
818 need_revalidate:
819 dentry = do_revalidate(dentry, nd);
820 if (!dentry)
821 goto need_lookup;
822 if (IS_ERR(dentry))
823 goto fail;
824 goto done;
826 fail:
827 return PTR_ERR(dentry);
831 * Name resolution.
832 * This is the basic name resolution function, turning a pathname into
833 * the final dentry. We expect 'base' to be positive and a directory.
835 * Returns 0 and nd will have valid dentry and mnt on success.
836 * Returns error and drops reference to input namei data on failure.
838 static int __link_path_walk(const char *name, struct nameidata *nd)
840 struct path next;
841 struct inode *inode;
842 int err;
843 unsigned int lookup_flags = nd->flags;
845 while (*name=='/')
846 name++;
847 if (!*name)
848 goto return_reval;
850 inode = nd->path.dentry->d_inode;
851 if (nd->depth)
852 lookup_flags = LOOKUP_FOLLOW | (nd->flags & LOOKUP_CONTINUE);
854 /* At this point we know we have a real path component. */
855 for(;;) {
856 unsigned long hash;
857 struct qstr this;
858 unsigned int c;
860 nd->flags |= LOOKUP_CONTINUE;
861 err = exec_permission_lite(inode);
862 if (err)
863 break;
865 this.name = name;
866 c = *(const unsigned char *)name;
868 hash = init_name_hash();
869 do {
870 name++;
871 hash = partial_name_hash(c, hash);
872 c = *(const unsigned char *)name;
873 } while (c && (c != '/'));
874 this.len = name - (const char *) this.name;
875 this.hash = end_name_hash(hash);
877 /* remove trailing slashes? */
878 if (!c)
879 goto last_component;
880 while (*++name == '/');
881 if (!*name)
882 goto last_with_slashes;
885 * "." and ".." are special - ".." especially so because it has
886 * to be able to know about the current root directory and
887 * parent relationships.
889 if (this.name[0] == '.') switch (this.len) {
890 default:
891 break;
892 case 2:
893 if (this.name[1] != '.')
894 break;
895 follow_dotdot(nd);
896 inode = nd->path.dentry->d_inode;
897 /* fallthrough */
898 case 1:
899 continue;
902 * See if the low-level filesystem might want
903 * to use its own hash..
905 if (nd->path.dentry->d_op && nd->path.dentry->d_op->d_hash) {
906 err = nd->path.dentry->d_op->d_hash(nd->path.dentry,
907 &this);
908 if (err < 0)
909 break;
911 /* This does the actual lookups.. */
912 err = do_lookup(nd, &this, &next);
913 if (err)
914 break;
916 err = -ENOENT;
917 inode = next.dentry->d_inode;
918 if (!inode)
919 goto out_dput;
921 if (inode->i_op->follow_link) {
922 err = do_follow_link(&next, nd);
923 if (err)
924 goto return_err;
925 err = -ENOENT;
926 inode = nd->path.dentry->d_inode;
927 if (!inode)
928 break;
929 } else
930 path_to_nameidata(&next, nd);
931 err = -ENOTDIR;
932 if (!inode->i_op->lookup)
933 break;
934 continue;
935 /* here ends the main loop */
937 last_with_slashes:
938 lookup_flags |= LOOKUP_FOLLOW | LOOKUP_DIRECTORY;
939 last_component:
940 /* Clear LOOKUP_CONTINUE iff it was previously unset */
941 nd->flags &= lookup_flags | ~LOOKUP_CONTINUE;
942 if (lookup_flags & LOOKUP_PARENT)
943 goto lookup_parent;
944 if (this.name[0] == '.') switch (this.len) {
945 default:
946 break;
947 case 2:
948 if (this.name[1] != '.')
949 break;
950 follow_dotdot(nd);
951 inode = nd->path.dentry->d_inode;
952 /* fallthrough */
953 case 1:
954 goto return_reval;
956 if (nd->path.dentry->d_op && nd->path.dentry->d_op->d_hash) {
957 err = nd->path.dentry->d_op->d_hash(nd->path.dentry,
958 &this);
959 if (err < 0)
960 break;
962 err = do_lookup(nd, &this, &next);
963 if (err)
964 break;
965 inode = next.dentry->d_inode;
966 if ((lookup_flags & LOOKUP_FOLLOW)
967 && inode && inode->i_op->follow_link) {
968 err = do_follow_link(&next, nd);
969 if (err)
970 goto return_err;
971 inode = nd->path.dentry->d_inode;
972 } else
973 path_to_nameidata(&next, nd);
974 err = -ENOENT;
975 if (!inode)
976 break;
977 if (lookup_flags & LOOKUP_DIRECTORY) {
978 err = -ENOTDIR;
979 if (!inode->i_op->lookup)
980 break;
982 goto return_base;
983 lookup_parent:
984 nd->last = this;
985 nd->last_type = LAST_NORM;
986 if (this.name[0] != '.')
987 goto return_base;
988 if (this.len == 1)
989 nd->last_type = LAST_DOT;
990 else if (this.len == 2 && this.name[1] == '.')
991 nd->last_type = LAST_DOTDOT;
992 else
993 goto return_base;
994 return_reval:
996 * We bypassed the ordinary revalidation routines.
997 * We may need to check the cached dentry for staleness.
999 if (nd->path.dentry && nd->path.dentry->d_sb &&
1000 (nd->path.dentry->d_sb->s_type->fs_flags & FS_REVAL_DOT)) {
1001 err = -ESTALE;
1002 /* Note: we do not d_invalidate() */
1003 if (!nd->path.dentry->d_op->d_revalidate(
1004 nd->path.dentry, nd))
1005 break;
1007 return_base:
1008 return 0;
1009 out_dput:
1010 path_put_conditional(&next, nd);
1011 break;
1013 path_put(&nd->path);
1014 return_err:
1015 return err;
1018 static int path_walk(const char *name, struct nameidata *nd)
1020 current->total_link_count = 0;
1021 return link_path_walk(name, nd);
1024 static int path_init(int dfd, const char *name, unsigned int flags, struct nameidata *nd)
1026 int retval = 0;
1027 int fput_needed;
1028 struct file *file;
1030 nd->last_type = LAST_ROOT; /* if there are only slashes... */
1031 nd->flags = flags;
1032 nd->depth = 0;
1033 nd->root.mnt = NULL;
1035 if (*name=='/') {
1036 set_root(nd);
1037 nd->path = nd->root;
1038 path_get(&nd->root);
1039 } else if (dfd == AT_FDCWD) {
1040 struct fs_struct *fs = current->fs;
1041 read_lock(&fs->lock);
1042 nd->path = fs->pwd;
1043 path_get(&fs->pwd);
1044 read_unlock(&fs->lock);
1045 } else {
1046 struct dentry *dentry;
1048 file = fget_light(dfd, &fput_needed);
1049 retval = -EBADF;
1050 if (!file)
1051 goto out_fail;
1053 dentry = file->f_path.dentry;
1055 retval = -ENOTDIR;
1056 if (!S_ISDIR(dentry->d_inode->i_mode))
1057 goto fput_fail;
1059 retval = file_permission(file, MAY_EXEC);
1060 if (retval)
1061 goto fput_fail;
1063 nd->path = file->f_path;
1064 path_get(&file->f_path);
1066 fput_light(file, fput_needed);
1068 return 0;
1070 fput_fail:
1071 fput_light(file, fput_needed);
1072 out_fail:
1073 return retval;
1076 /* Returns 0 and nd will be valid on success; Retuns error, otherwise. */
1077 static int do_path_lookup(int dfd, const char *name,
1078 unsigned int flags, struct nameidata *nd)
1080 int retval = path_init(dfd, name, flags, nd);
1081 if (!retval)
1082 retval = path_walk(name, nd);
1083 if (unlikely(!retval && !audit_dummy_context() && nd->path.dentry &&
1084 nd->path.dentry->d_inode))
1085 audit_inode(name, nd->path.dentry);
1086 if (nd->root.mnt) {
1087 path_put(&nd->root);
1088 nd->root.mnt = NULL;
1090 return retval;
1093 int path_lookup(const char *name, unsigned int flags,
1094 struct nameidata *nd)
1096 return do_path_lookup(AT_FDCWD, name, flags, nd);
1099 int kern_path(const char *name, unsigned int flags, struct path *path)
1101 struct nameidata nd;
1102 int res = do_path_lookup(AT_FDCWD, name, flags, &nd);
1103 if (!res)
1104 *path = nd.path;
1105 return res;
1109 * vfs_path_lookup - lookup a file path relative to a dentry-vfsmount pair
1110 * @dentry: pointer to dentry of the base directory
1111 * @mnt: pointer to vfs mount of the base directory
1112 * @name: pointer to file name
1113 * @flags: lookup flags
1114 * @nd: pointer to nameidata
1116 int vfs_path_lookup(struct dentry *dentry, struct vfsmount *mnt,
1117 const char *name, unsigned int flags,
1118 struct nameidata *nd)
1120 int retval;
1122 /* same as do_path_lookup */
1123 nd->last_type = LAST_ROOT;
1124 nd->flags = flags;
1125 nd->depth = 0;
1127 nd->path.dentry = dentry;
1128 nd->path.mnt = mnt;
1129 path_get(&nd->path);
1130 nd->root = nd->path;
1131 path_get(&nd->root);
1133 retval = path_walk(name, nd);
1134 if (unlikely(!retval && !audit_dummy_context() && nd->path.dentry &&
1135 nd->path.dentry->d_inode))
1136 audit_inode(name, nd->path.dentry);
1138 path_put(&nd->root);
1139 nd->root.mnt = NULL;
1141 return retval;
1145 * path_lookup_open - lookup a file path with open intent
1146 * @dfd: the directory to use as base, or AT_FDCWD
1147 * @name: pointer to file name
1148 * @lookup_flags: lookup intent flags
1149 * @nd: pointer to nameidata
1150 * @open_flags: open intent flags
1152 static int path_lookup_open(int dfd, const char *name,
1153 unsigned int lookup_flags, struct nameidata *nd, int open_flags)
1155 struct file *filp = get_empty_filp();
1156 int err;
1158 if (filp == NULL)
1159 return -ENFILE;
1160 nd->intent.open.file = filp;
1161 nd->intent.open.flags = open_flags;
1162 nd->intent.open.create_mode = 0;
1163 err = do_path_lookup(dfd, name, lookup_flags|LOOKUP_OPEN, nd);
1164 if (IS_ERR(nd->intent.open.file)) {
1165 if (err == 0) {
1166 err = PTR_ERR(nd->intent.open.file);
1167 path_put(&nd->path);
1169 } else if (err != 0)
1170 release_open_intent(nd);
1171 return err;
1174 static struct dentry *__lookup_hash(struct qstr *name,
1175 struct dentry *base, struct nameidata *nd)
1177 struct dentry *dentry;
1178 struct inode *inode;
1179 int err;
1181 inode = base->d_inode;
1184 * See if the low-level filesystem might want
1185 * to use its own hash..
1187 if (base->d_op && base->d_op->d_hash) {
1188 err = base->d_op->d_hash(base, name);
1189 dentry = ERR_PTR(err);
1190 if (err < 0)
1191 goto out;
1194 dentry = cached_lookup(base, name, nd);
1195 if (!dentry) {
1196 struct dentry *new;
1198 /* Don't create child dentry for a dead directory. */
1199 dentry = ERR_PTR(-ENOENT);
1200 if (IS_DEADDIR(inode))
1201 goto out;
1203 new = d_alloc(base, name);
1204 dentry = ERR_PTR(-ENOMEM);
1205 if (!new)
1206 goto out;
1207 dentry = inode->i_op->lookup(inode, new, nd);
1208 if (!dentry)
1209 dentry = new;
1210 else
1211 dput(new);
1213 out:
1214 return dentry;
1218 * Restricted form of lookup. Doesn't follow links, single-component only,
1219 * needs parent already locked. Doesn't follow mounts.
1220 * SMP-safe.
1222 static struct dentry *lookup_hash(struct nameidata *nd)
1224 int err;
1226 err = inode_permission(nd->path.dentry->d_inode, MAY_EXEC);
1227 if (err)
1228 return ERR_PTR(err);
1229 return __lookup_hash(&nd->last, nd->path.dentry, nd);
1232 static int __lookup_one_len(const char *name, struct qstr *this,
1233 struct dentry *base, int len)
1235 unsigned long hash;
1236 unsigned int c;
1238 this->name = name;
1239 this->len = len;
1240 if (!len)
1241 return -EACCES;
1243 hash = init_name_hash();
1244 while (len--) {
1245 c = *(const unsigned char *)name++;
1246 if (c == '/' || c == '\0')
1247 return -EACCES;
1248 hash = partial_name_hash(c, hash);
1250 this->hash = end_name_hash(hash);
1251 return 0;
1255 * lookup_one_len - filesystem helper to lookup single pathname component
1256 * @name: pathname component to lookup
1257 * @base: base directory to lookup from
1258 * @len: maximum length @len should be interpreted to
1260 * Note that this routine is purely a helper for filesystem usage and should
1261 * not be called by generic code. Also note that by using this function the
1262 * nameidata argument is passed to the filesystem methods and a filesystem
1263 * using this helper needs to be prepared for that.
1265 struct dentry *lookup_one_len(const char *name, struct dentry *base, int len)
1267 int err;
1268 struct qstr this;
1270 WARN_ON_ONCE(!mutex_is_locked(&base->d_inode->i_mutex));
1272 err = __lookup_one_len(name, &this, base, len);
1273 if (err)
1274 return ERR_PTR(err);
1276 err = inode_permission(base->d_inode, MAY_EXEC);
1277 if (err)
1278 return ERR_PTR(err);
1279 return __lookup_hash(&this, base, NULL);
1282 int user_path_at(int dfd, const char __user *name, unsigned flags,
1283 struct path *path)
1285 struct nameidata nd;
1286 char *tmp = getname(name);
1287 int err = PTR_ERR(tmp);
1288 if (!IS_ERR(tmp)) {
1290 BUG_ON(flags & LOOKUP_PARENT);
1292 err = do_path_lookup(dfd, tmp, flags, &nd);
1293 putname(tmp);
1294 if (!err)
1295 *path = nd.path;
1297 return err;
1300 static int user_path_parent(int dfd, const char __user *path,
1301 struct nameidata *nd, char **name)
1303 char *s = getname(path);
1304 int error;
1306 if (IS_ERR(s))
1307 return PTR_ERR(s);
1309 error = do_path_lookup(dfd, s, LOOKUP_PARENT, nd);
1310 if (error)
1311 putname(s);
1312 else
1313 *name = s;
1315 return error;
1319 * It's inline, so penalty for filesystems that don't use sticky bit is
1320 * minimal.
1322 static inline int check_sticky(struct inode *dir, struct inode *inode)
1324 uid_t fsuid = current_fsuid();
1326 if (!(dir->i_mode & S_ISVTX))
1327 return 0;
1328 if (inode->i_uid == fsuid)
1329 return 0;
1330 if (dir->i_uid == fsuid)
1331 return 0;
1332 return !capable(CAP_FOWNER);
1336 * Check whether we can remove a link victim from directory dir, check
1337 * whether the type of victim is right.
1338 * 1. We can't do it if dir is read-only (done in permission())
1339 * 2. We should have write and exec permissions on dir
1340 * 3. We can't remove anything from append-only dir
1341 * 4. We can't do anything with immutable dir (done in permission())
1342 * 5. If the sticky bit on dir is set we should either
1343 * a. be owner of dir, or
1344 * b. be owner of victim, or
1345 * c. have CAP_FOWNER capability
1346 * 6. If the victim is append-only or immutable we can't do antyhing with
1347 * links pointing to it.
1348 * 7. If we were asked to remove a directory and victim isn't one - ENOTDIR.
1349 * 8. If we were asked to remove a non-directory and victim isn't one - EISDIR.
1350 * 9. We can't remove a root or mountpoint.
1351 * 10. We don't allow removal of NFS sillyrenamed files; it's handled by
1352 * nfs_async_unlink().
1354 static int may_delete(struct inode *dir,struct dentry *victim,int isdir)
1356 int error;
1358 if (!victim->d_inode)
1359 return -ENOENT;
1361 BUG_ON(victim->d_parent->d_inode != dir);
1362 audit_inode_child(victim->d_name.name, victim, dir);
1364 error = inode_permission(dir, MAY_WRITE | MAY_EXEC);
1365 if (error)
1366 return error;
1367 if (IS_APPEND(dir))
1368 return -EPERM;
1369 if (check_sticky(dir, victim->d_inode)||IS_APPEND(victim->d_inode)||
1370 IS_IMMUTABLE(victim->d_inode) || IS_SWAPFILE(victim->d_inode))
1371 return -EPERM;
1372 if (isdir) {
1373 if (!S_ISDIR(victim->d_inode->i_mode))
1374 return -ENOTDIR;
1375 if (IS_ROOT(victim))
1376 return -EBUSY;
1377 } else if (S_ISDIR(victim->d_inode->i_mode))
1378 return -EISDIR;
1379 if (IS_DEADDIR(dir))
1380 return -ENOENT;
1381 if (victim->d_flags & DCACHE_NFSFS_RENAMED)
1382 return -EBUSY;
1383 return 0;
1386 /* Check whether we can create an object with dentry child in directory
1387 * dir.
1388 * 1. We can't do it if child already exists (open has special treatment for
1389 * this case, but since we are inlined it's OK)
1390 * 2. We can't do it if dir is read-only (done in permission())
1391 * 3. We should have write and exec permissions on dir
1392 * 4. We can't do it if dir is immutable (done in permission())
1394 static inline int may_create(struct inode *dir, struct dentry *child)
1396 if (child->d_inode)
1397 return -EEXIST;
1398 if (IS_DEADDIR(dir))
1399 return -ENOENT;
1400 return inode_permission(dir, MAY_WRITE | MAY_EXEC);
1404 * O_DIRECTORY translates into forcing a directory lookup.
1406 static inline int lookup_flags(unsigned int f)
1408 unsigned long retval = LOOKUP_FOLLOW;
1410 if (f & O_NOFOLLOW)
1411 retval &= ~LOOKUP_FOLLOW;
1413 if (f & O_DIRECTORY)
1414 retval |= LOOKUP_DIRECTORY;
1416 return retval;
1420 * p1 and p2 should be directories on the same fs.
1422 struct dentry *lock_rename(struct dentry *p1, struct dentry *p2)
1424 struct dentry *p;
1426 if (p1 == p2) {
1427 mutex_lock_nested(&p1->d_inode->i_mutex, I_MUTEX_PARENT);
1428 return NULL;
1431 mutex_lock(&p1->d_inode->i_sb->s_vfs_rename_mutex);
1433 p = d_ancestor(p2, p1);
1434 if (p) {
1435 mutex_lock_nested(&p2->d_inode->i_mutex, I_MUTEX_PARENT);
1436 mutex_lock_nested(&p1->d_inode->i_mutex, I_MUTEX_CHILD);
1437 return p;
1440 p = d_ancestor(p1, p2);
1441 if (p) {
1442 mutex_lock_nested(&p1->d_inode->i_mutex, I_MUTEX_PARENT);
1443 mutex_lock_nested(&p2->d_inode->i_mutex, I_MUTEX_CHILD);
1444 return p;
1447 mutex_lock_nested(&p1->d_inode->i_mutex, I_MUTEX_PARENT);
1448 mutex_lock_nested(&p2->d_inode->i_mutex, I_MUTEX_CHILD);
1449 return NULL;
1452 void unlock_rename(struct dentry *p1, struct dentry *p2)
1454 mutex_unlock(&p1->d_inode->i_mutex);
1455 if (p1 != p2) {
1456 mutex_unlock(&p2->d_inode->i_mutex);
1457 mutex_unlock(&p1->d_inode->i_sb->s_vfs_rename_mutex);
1461 int vfs_create(struct inode *dir, struct dentry *dentry, int mode,
1462 struct nameidata *nd)
1464 int error = may_create(dir, dentry);
1466 if (error)
1467 return error;
1469 if (!dir->i_op->create)
1470 return -EACCES; /* shouldn't it be ENOSYS? */
1471 mode &= S_IALLUGO;
1472 mode |= S_IFREG;
1473 error = security_inode_create(dir, dentry, mode);
1474 if (error)
1475 return error;
1476 vfs_dq_init(dir);
1477 error = dir->i_op->create(dir, dentry, mode, nd);
1478 if (!error)
1479 fsnotify_create(dir, dentry);
1480 return error;
1483 int may_open(struct path *path, int acc_mode, int flag)
1485 struct dentry *dentry = path->dentry;
1486 struct inode *inode = dentry->d_inode;
1487 int error;
1489 if (!inode)
1490 return -ENOENT;
1492 switch (inode->i_mode & S_IFMT) {
1493 case S_IFLNK:
1494 return -ELOOP;
1495 case S_IFDIR:
1496 if (acc_mode & MAY_WRITE)
1497 return -EISDIR;
1498 break;
1499 case S_IFBLK:
1500 case S_IFCHR:
1501 if (path->mnt->mnt_flags & MNT_NODEV)
1502 return -EACCES;
1503 /*FALLTHRU*/
1504 case S_IFIFO:
1505 case S_IFSOCK:
1506 flag &= ~O_TRUNC;
1507 break;
1510 error = inode_permission(inode, acc_mode);
1511 if (error)
1512 return error;
1514 error = ima_path_check(path, acc_mode ?
1515 acc_mode & (MAY_READ | MAY_WRITE | MAY_EXEC) :
1516 ACC_MODE(flag) & (MAY_READ | MAY_WRITE),
1517 IMA_COUNT_UPDATE);
1519 if (error)
1520 return error;
1522 * An append-only file must be opened in append mode for writing.
1524 if (IS_APPEND(inode)) {
1525 error = -EPERM;
1526 if ((flag & FMODE_WRITE) && !(flag & O_APPEND))
1527 goto err_out;
1528 if (flag & O_TRUNC)
1529 goto err_out;
1532 /* O_NOATIME can only be set by the owner or superuser */
1533 if (flag & O_NOATIME)
1534 if (!is_owner_or_cap(inode)) {
1535 error = -EPERM;
1536 goto err_out;
1540 * Ensure there are no outstanding leases on the file.
1542 error = break_lease(inode, flag);
1543 if (error)
1544 goto err_out;
1546 if (flag & O_TRUNC) {
1547 error = get_write_access(inode);
1548 if (error)
1549 goto err_out;
1552 * Refuse to truncate files with mandatory locks held on them.
1554 error = locks_verify_locked(inode);
1555 if (!error)
1556 error = security_path_truncate(path, 0,
1557 ATTR_MTIME|ATTR_CTIME|ATTR_OPEN);
1558 if (!error) {
1559 vfs_dq_init(inode);
1561 error = do_truncate(dentry, 0,
1562 ATTR_MTIME|ATTR_CTIME|ATTR_OPEN,
1563 NULL);
1565 put_write_access(inode);
1566 if (error)
1567 goto err_out;
1568 } else
1569 if (flag & FMODE_WRITE)
1570 vfs_dq_init(inode);
1572 return 0;
1573 err_out:
1574 ima_counts_put(path, acc_mode ?
1575 acc_mode & (MAY_READ | MAY_WRITE | MAY_EXEC) :
1576 ACC_MODE(flag) & (MAY_READ | MAY_WRITE));
1577 return error;
1581 * Be careful about ever adding any more callers of this
1582 * function. Its flags must be in the namei format, not
1583 * what get passed to sys_open().
1585 static int __open_namei_create(struct nameidata *nd, struct path *path,
1586 int flag, int mode)
1588 int error;
1589 struct dentry *dir = nd->path.dentry;
1591 if (!IS_POSIXACL(dir->d_inode))
1592 mode &= ~current_umask();
1593 error = security_path_mknod(&nd->path, path->dentry, mode, 0);
1594 if (error)
1595 goto out_unlock;
1596 error = vfs_create(dir->d_inode, path->dentry, mode, nd);
1597 out_unlock:
1598 mutex_unlock(&dir->d_inode->i_mutex);
1599 dput(nd->path.dentry);
1600 nd->path.dentry = path->dentry;
1601 if (error)
1602 return error;
1603 /* Don't check for write permission, don't truncate */
1604 return may_open(&nd->path, 0, flag & ~O_TRUNC);
1608 * Note that while the flag value (low two bits) for sys_open means:
1609 * 00 - read-only
1610 * 01 - write-only
1611 * 10 - read-write
1612 * 11 - special
1613 * it is changed into
1614 * 00 - no permissions needed
1615 * 01 - read-permission
1616 * 10 - write-permission
1617 * 11 - read-write
1618 * for the internal routines (ie open_namei()/follow_link() etc)
1619 * This is more logical, and also allows the 00 "no perm needed"
1620 * to be used for symlinks (where the permissions are checked
1621 * later).
1624 static inline int open_to_namei_flags(int flag)
1626 if ((flag+1) & O_ACCMODE)
1627 flag++;
1628 return flag;
1631 static int open_will_write_to_fs(int flag, struct inode *inode)
1634 * We'll never write to the fs underlying
1635 * a device file.
1637 if (special_file(inode->i_mode))
1638 return 0;
1639 return (flag & O_TRUNC);
1643 * Note that the low bits of the passed in "open_flag"
1644 * are not the same as in the local variable "flag". See
1645 * open_to_namei_flags() for more details.
1647 struct file *do_filp_open(int dfd, const char *pathname,
1648 int open_flag, int mode, int acc_mode)
1650 struct file *filp;
1651 struct nameidata nd;
1652 int error;
1653 struct path path;
1654 struct dentry *dir;
1655 int count = 0;
1656 int will_write;
1657 int flag = open_to_namei_flags(open_flag);
1660 * O_SYNC is implemented as __O_SYNC|O_DSYNC. As many places only
1661 * check for O_DSYNC if the need any syncing at all we enforce it's
1662 * always set instead of having to deal with possibly weird behaviour
1663 * for malicious applications setting only __O_SYNC.
1665 if (open_flag & __O_SYNC)
1666 open_flag |= O_DSYNC;
1668 if (!acc_mode)
1669 acc_mode = MAY_OPEN | ACC_MODE(flag);
1671 /* O_TRUNC implies we need access checks for write permissions */
1672 if (flag & O_TRUNC)
1673 acc_mode |= MAY_WRITE;
1675 /* Allow the LSM permission hook to distinguish append
1676 access from general write access. */
1677 if (flag & O_APPEND)
1678 acc_mode |= MAY_APPEND;
1681 * The simplest case - just a plain lookup.
1683 if (!(flag & O_CREAT)) {
1684 error = path_lookup_open(dfd, pathname, lookup_flags(flag),
1685 &nd, flag);
1686 if (error)
1687 return ERR_PTR(error);
1688 goto ok;
1692 * Create - we need to know the parent.
1694 error = path_init(dfd, pathname, LOOKUP_PARENT, &nd);
1695 if (error)
1696 return ERR_PTR(error);
1697 error = path_walk(pathname, &nd);
1698 if (error) {
1699 if (nd.root.mnt)
1700 path_put(&nd.root);
1701 return ERR_PTR(error);
1703 if (unlikely(!audit_dummy_context()))
1704 audit_inode(pathname, nd.path.dentry);
1707 * We have the parent and last component. First of all, check
1708 * that we are not asked to creat(2) an obvious directory - that
1709 * will not do.
1711 error = -EISDIR;
1712 if (nd.last_type != LAST_NORM || nd.last.name[nd.last.len])
1713 goto exit_parent;
1715 error = -ENFILE;
1716 filp = get_empty_filp();
1717 if (filp == NULL)
1718 goto exit_parent;
1719 nd.intent.open.file = filp;
1720 nd.intent.open.flags = flag;
1721 nd.intent.open.create_mode = mode;
1722 dir = nd.path.dentry;
1723 nd.flags &= ~LOOKUP_PARENT;
1724 nd.flags |= LOOKUP_CREATE | LOOKUP_OPEN;
1725 if (flag & O_EXCL)
1726 nd.flags |= LOOKUP_EXCL;
1727 mutex_lock(&dir->d_inode->i_mutex);
1728 path.dentry = lookup_hash(&nd);
1729 path.mnt = nd.path.mnt;
1731 do_last:
1732 error = PTR_ERR(path.dentry);
1733 if (IS_ERR(path.dentry)) {
1734 mutex_unlock(&dir->d_inode->i_mutex);
1735 goto exit;
1738 if (IS_ERR(nd.intent.open.file)) {
1739 error = PTR_ERR(nd.intent.open.file);
1740 goto exit_mutex_unlock;
1743 /* Negative dentry, just create the file */
1744 if (!path.dentry->d_inode) {
1746 * This write is needed to ensure that a
1747 * ro->rw transition does not occur between
1748 * the time when the file is created and when
1749 * a permanent write count is taken through
1750 * the 'struct file' in nameidata_to_filp().
1752 error = mnt_want_write(nd.path.mnt);
1753 if (error)
1754 goto exit_mutex_unlock;
1755 error = __open_namei_create(&nd, &path, flag, mode);
1756 if (error) {
1757 mnt_drop_write(nd.path.mnt);
1758 goto exit;
1760 filp = nameidata_to_filp(&nd, open_flag);
1761 if (IS_ERR(filp))
1762 ima_counts_put(&nd.path,
1763 acc_mode & (MAY_READ | MAY_WRITE |
1764 MAY_EXEC));
1765 mnt_drop_write(nd.path.mnt);
1766 if (nd.root.mnt)
1767 path_put(&nd.root);
1768 return filp;
1772 * It already exists.
1774 mutex_unlock(&dir->d_inode->i_mutex);
1775 audit_inode(pathname, path.dentry);
1777 error = -EEXIST;
1778 if (flag & O_EXCL)
1779 goto exit_dput;
1781 if (__follow_mount(&path)) {
1782 error = -ELOOP;
1783 if (flag & O_NOFOLLOW)
1784 goto exit_dput;
1787 error = -ENOENT;
1788 if (!path.dentry->d_inode)
1789 goto exit_dput;
1790 if (path.dentry->d_inode->i_op->follow_link)
1791 goto do_link;
1793 path_to_nameidata(&path, &nd);
1794 error = -EISDIR;
1795 if (path.dentry->d_inode && S_ISDIR(path.dentry->d_inode->i_mode))
1796 goto exit;
1799 * Consider:
1800 * 1. may_open() truncates a file
1801 * 2. a rw->ro mount transition occurs
1802 * 3. nameidata_to_filp() fails due to
1803 * the ro mount.
1804 * That would be inconsistent, and should
1805 * be avoided. Taking this mnt write here
1806 * ensures that (2) can not occur.
1808 will_write = open_will_write_to_fs(flag, nd.path.dentry->d_inode);
1809 if (will_write) {
1810 error = mnt_want_write(nd.path.mnt);
1811 if (error)
1812 goto exit;
1814 error = may_open(&nd.path, acc_mode, flag);
1815 if (error) {
1816 if (will_write)
1817 mnt_drop_write(nd.path.mnt);
1818 goto exit;
1820 filp = nameidata_to_filp(&nd, open_flag);
1821 if (IS_ERR(filp))
1822 ima_counts_put(&nd.path,
1823 acc_mode & (MAY_READ | MAY_WRITE | MAY_EXEC));
1825 * It is now safe to drop the mnt write
1826 * because the filp has had a write taken
1827 * on its behalf.
1829 if (will_write)
1830 mnt_drop_write(nd.path.mnt);
1831 if (nd.root.mnt)
1832 path_put(&nd.root);
1833 return filp;
1835 exit_mutex_unlock:
1836 mutex_unlock(&dir->d_inode->i_mutex);
1837 exit_dput:
1838 path_put_conditional(&path, &nd);
1839 exit:
1840 if (!IS_ERR(nd.intent.open.file))
1841 release_open_intent(&nd);
1842 exit_parent:
1843 if (nd.root.mnt)
1844 path_put(&nd.root);
1845 path_put(&nd.path);
1846 return ERR_PTR(error);
1848 do_link:
1849 error = -ELOOP;
1850 if (flag & O_NOFOLLOW)
1851 goto exit_dput;
1853 * This is subtle. Instead of calling do_follow_link() we do the
1854 * thing by hands. The reason is that this way we have zero link_count
1855 * and path_walk() (called from ->follow_link) honoring LOOKUP_PARENT.
1856 * After that we have the parent and last component, i.e.
1857 * we are in the same situation as after the first path_walk().
1858 * Well, almost - if the last component is normal we get its copy
1859 * stored in nd->last.name and we will have to putname() it when we
1860 * are done. Procfs-like symlinks just set LAST_BIND.
1862 nd.flags |= LOOKUP_PARENT;
1863 error = security_inode_follow_link(path.dentry, &nd);
1864 if (error)
1865 goto exit_dput;
1866 error = __do_follow_link(&path, &nd);
1867 if (error) {
1868 /* Does someone understand code flow here? Or it is only
1869 * me so stupid? Anathema to whoever designed this non-sense
1870 * with "intent.open".
1872 release_open_intent(&nd);
1873 if (nd.root.mnt)
1874 path_put(&nd.root);
1875 return ERR_PTR(error);
1877 nd.flags &= ~LOOKUP_PARENT;
1878 if (nd.last_type == LAST_BIND)
1879 goto ok;
1880 error = -EISDIR;
1881 if (nd.last_type != LAST_NORM)
1882 goto exit;
1883 if (nd.last.name[nd.last.len]) {
1884 __putname(nd.last.name);
1885 goto exit;
1887 error = -ELOOP;
1888 if (count++==32) {
1889 __putname(nd.last.name);
1890 goto exit;
1892 dir = nd.path.dentry;
1893 mutex_lock(&dir->d_inode->i_mutex);
1894 path.dentry = lookup_hash(&nd);
1895 path.mnt = nd.path.mnt;
1896 __putname(nd.last.name);
1897 goto do_last;
1901 * filp_open - open file and return file pointer
1903 * @filename: path to open
1904 * @flags: open flags as per the open(2) second argument
1905 * @mode: mode for the new file if O_CREAT is set, else ignored
1907 * This is the helper to open a file from kernelspace if you really
1908 * have to. But in generally you should not do this, so please move
1909 * along, nothing to see here..
1911 struct file *filp_open(const char *filename, int flags, int mode)
1913 return do_filp_open(AT_FDCWD, filename, flags, mode, 0);
1915 EXPORT_SYMBOL(filp_open);
1918 * lookup_create - lookup a dentry, creating it if it doesn't exist
1919 * @nd: nameidata info
1920 * @is_dir: directory flag
1922 * Simple function to lookup and return a dentry and create it
1923 * if it doesn't exist. Is SMP-safe.
1925 * Returns with nd->path.dentry->d_inode->i_mutex locked.
1927 struct dentry *lookup_create(struct nameidata *nd, int is_dir)
1929 struct dentry *dentry = ERR_PTR(-EEXIST);
1931 mutex_lock_nested(&nd->path.dentry->d_inode->i_mutex, I_MUTEX_PARENT);
1933 * Yucky last component or no last component at all?
1934 * (foo/., foo/.., /////)
1936 if (nd->last_type != LAST_NORM)
1937 goto fail;
1938 nd->flags &= ~LOOKUP_PARENT;
1939 nd->flags |= LOOKUP_CREATE | LOOKUP_EXCL;
1940 nd->intent.open.flags = O_EXCL;
1943 * Do the final lookup.
1945 dentry = lookup_hash(nd);
1946 if (IS_ERR(dentry))
1947 goto fail;
1949 if (dentry->d_inode)
1950 goto eexist;
1952 * Special case - lookup gave negative, but... we had foo/bar/
1953 * From the vfs_mknod() POV we just have a negative dentry -
1954 * all is fine. Let's be bastards - you had / on the end, you've
1955 * been asking for (non-existent) directory. -ENOENT for you.
1957 if (unlikely(!is_dir && nd->last.name[nd->last.len])) {
1958 dput(dentry);
1959 dentry = ERR_PTR(-ENOENT);
1961 return dentry;
1962 eexist:
1963 dput(dentry);
1964 dentry = ERR_PTR(-EEXIST);
1965 fail:
1966 return dentry;
1968 EXPORT_SYMBOL_GPL(lookup_create);
1970 int vfs_mknod(struct inode *dir, struct dentry *dentry, int mode, dev_t dev)
1972 int error = may_create(dir, dentry);
1974 if (error)
1975 return error;
1977 if ((S_ISCHR(mode) || S_ISBLK(mode)) && !capable(CAP_MKNOD))
1978 return -EPERM;
1980 if (!dir->i_op->mknod)
1981 return -EPERM;
1983 error = devcgroup_inode_mknod(mode, dev);
1984 if (error)
1985 return error;
1987 error = security_inode_mknod(dir, dentry, mode, dev);
1988 if (error)
1989 return error;
1991 vfs_dq_init(dir);
1992 error = dir->i_op->mknod(dir, dentry, mode, dev);
1993 if (!error)
1994 fsnotify_create(dir, dentry);
1995 return error;
1998 static int may_mknod(mode_t mode)
2000 switch (mode & S_IFMT) {
2001 case S_IFREG:
2002 case S_IFCHR:
2003 case S_IFBLK:
2004 case S_IFIFO:
2005 case S_IFSOCK:
2006 case 0: /* zero mode translates to S_IFREG */
2007 return 0;
2008 case S_IFDIR:
2009 return -EPERM;
2010 default:
2011 return -EINVAL;
2015 SYSCALL_DEFINE4(mknodat, int, dfd, const char __user *, filename, int, mode,
2016 unsigned, dev)
2018 int error;
2019 char *tmp;
2020 struct dentry *dentry;
2021 struct nameidata nd;
2023 if (S_ISDIR(mode))
2024 return -EPERM;
2026 error = user_path_parent(dfd, filename, &nd, &tmp);
2027 if (error)
2028 return error;
2030 dentry = lookup_create(&nd, 0);
2031 if (IS_ERR(dentry)) {
2032 error = PTR_ERR(dentry);
2033 goto out_unlock;
2035 if (!IS_POSIXACL(nd.path.dentry->d_inode))
2036 mode &= ~current_umask();
2037 error = may_mknod(mode);
2038 if (error)
2039 goto out_dput;
2040 error = mnt_want_write(nd.path.mnt);
2041 if (error)
2042 goto out_dput;
2043 error = security_path_mknod(&nd.path, dentry, mode, dev);
2044 if (error)
2045 goto out_drop_write;
2046 switch (mode & S_IFMT) {
2047 case 0: case S_IFREG:
2048 error = vfs_create(nd.path.dentry->d_inode,dentry,mode,&nd);
2049 break;
2050 case S_IFCHR: case S_IFBLK:
2051 error = vfs_mknod(nd.path.dentry->d_inode,dentry,mode,
2052 new_decode_dev(dev));
2053 break;
2054 case S_IFIFO: case S_IFSOCK:
2055 error = vfs_mknod(nd.path.dentry->d_inode,dentry,mode,0);
2056 break;
2058 out_drop_write:
2059 mnt_drop_write(nd.path.mnt);
2060 out_dput:
2061 dput(dentry);
2062 out_unlock:
2063 mutex_unlock(&nd.path.dentry->d_inode->i_mutex);
2064 path_put(&nd.path);
2065 putname(tmp);
2067 return error;
2070 SYSCALL_DEFINE3(mknod, const char __user *, filename, int, mode, unsigned, dev)
2072 return sys_mknodat(AT_FDCWD, filename, mode, dev);
2075 int vfs_mkdir(struct inode *dir, struct dentry *dentry, int mode)
2077 int error = may_create(dir, dentry);
2079 if (error)
2080 return error;
2082 if (!dir->i_op->mkdir)
2083 return -EPERM;
2085 mode &= (S_IRWXUGO|S_ISVTX);
2086 error = security_inode_mkdir(dir, dentry, mode);
2087 if (error)
2088 return error;
2090 vfs_dq_init(dir);
2091 error = dir->i_op->mkdir(dir, dentry, mode);
2092 if (!error)
2093 fsnotify_mkdir(dir, dentry);
2094 return error;
2097 SYSCALL_DEFINE3(mkdirat, int, dfd, const char __user *, pathname, int, mode)
2099 int error = 0;
2100 char * tmp;
2101 struct dentry *dentry;
2102 struct nameidata nd;
2104 error = user_path_parent(dfd, pathname, &nd, &tmp);
2105 if (error)
2106 goto out_err;
2108 dentry = lookup_create(&nd, 1);
2109 error = PTR_ERR(dentry);
2110 if (IS_ERR(dentry))
2111 goto out_unlock;
2113 if (!IS_POSIXACL(nd.path.dentry->d_inode))
2114 mode &= ~current_umask();
2115 error = mnt_want_write(nd.path.mnt);
2116 if (error)
2117 goto out_dput;
2118 error = security_path_mkdir(&nd.path, dentry, mode);
2119 if (error)
2120 goto out_drop_write;
2121 error = vfs_mkdir(nd.path.dentry->d_inode, dentry, mode);
2122 out_drop_write:
2123 mnt_drop_write(nd.path.mnt);
2124 out_dput:
2125 dput(dentry);
2126 out_unlock:
2127 mutex_unlock(&nd.path.dentry->d_inode->i_mutex);
2128 path_put(&nd.path);
2129 putname(tmp);
2130 out_err:
2131 return error;
2134 SYSCALL_DEFINE2(mkdir, const char __user *, pathname, int, mode)
2136 return sys_mkdirat(AT_FDCWD, pathname, mode);
2140 * We try to drop the dentry early: we should have
2141 * a usage count of 2 if we're the only user of this
2142 * dentry, and if that is true (possibly after pruning
2143 * the dcache), then we drop the dentry now.
2145 * A low-level filesystem can, if it choses, legally
2146 * do a
2148 * if (!d_unhashed(dentry))
2149 * return -EBUSY;
2151 * if it cannot handle the case of removing a directory
2152 * that is still in use by something else..
2154 void dentry_unhash(struct dentry *dentry)
2156 dget(dentry);
2157 shrink_dcache_parent(dentry);
2158 spin_lock(&dcache_lock);
2159 spin_lock(&dentry->d_lock);
2160 if (atomic_read(&dentry->d_count) == 2)
2161 __d_drop(dentry);
2162 spin_unlock(&dentry->d_lock);
2163 spin_unlock(&dcache_lock);
2166 int vfs_rmdir(struct inode *dir, struct dentry *dentry)
2168 int error = may_delete(dir, dentry, 1);
2170 if (error)
2171 return error;
2173 if (!dir->i_op->rmdir)
2174 return -EPERM;
2176 vfs_dq_init(dir);
2178 mutex_lock(&dentry->d_inode->i_mutex);
2179 dentry_unhash(dentry);
2180 if (d_mountpoint(dentry))
2181 error = -EBUSY;
2182 else {
2183 error = security_inode_rmdir(dir, dentry);
2184 if (!error) {
2185 error = dir->i_op->rmdir(dir, dentry);
2186 if (!error)
2187 dentry->d_inode->i_flags |= S_DEAD;
2190 mutex_unlock(&dentry->d_inode->i_mutex);
2191 if (!error) {
2192 d_delete(dentry);
2194 dput(dentry);
2196 return error;
2199 static long do_rmdir(int dfd, const char __user *pathname)
2201 int error = 0;
2202 char * name;
2203 struct dentry *dentry;
2204 struct nameidata nd;
2206 error = user_path_parent(dfd, pathname, &nd, &name);
2207 if (error)
2208 return error;
2210 switch(nd.last_type) {
2211 case LAST_DOTDOT:
2212 error = -ENOTEMPTY;
2213 goto exit1;
2214 case LAST_DOT:
2215 error = -EINVAL;
2216 goto exit1;
2217 case LAST_ROOT:
2218 error = -EBUSY;
2219 goto exit1;
2222 nd.flags &= ~LOOKUP_PARENT;
2224 mutex_lock_nested(&nd.path.dentry->d_inode->i_mutex, I_MUTEX_PARENT);
2225 dentry = lookup_hash(&nd);
2226 error = PTR_ERR(dentry);
2227 if (IS_ERR(dentry))
2228 goto exit2;
2229 error = mnt_want_write(nd.path.mnt);
2230 if (error)
2231 goto exit3;
2232 error = security_path_rmdir(&nd.path, dentry);
2233 if (error)
2234 goto exit4;
2235 error = vfs_rmdir(nd.path.dentry->d_inode, dentry);
2236 exit4:
2237 mnt_drop_write(nd.path.mnt);
2238 exit3:
2239 dput(dentry);
2240 exit2:
2241 mutex_unlock(&nd.path.dentry->d_inode->i_mutex);
2242 exit1:
2243 path_put(&nd.path);
2244 putname(name);
2245 return error;
2248 SYSCALL_DEFINE1(rmdir, const char __user *, pathname)
2250 return do_rmdir(AT_FDCWD, pathname);
2253 int vfs_unlink(struct inode *dir, struct dentry *dentry)
2255 int error = may_delete(dir, dentry, 0);
2257 if (error)
2258 return error;
2260 if (!dir->i_op->unlink)
2261 return -EPERM;
2263 vfs_dq_init(dir);
2265 mutex_lock(&dentry->d_inode->i_mutex);
2266 if (d_mountpoint(dentry))
2267 error = -EBUSY;
2268 else {
2269 error = security_inode_unlink(dir, dentry);
2270 if (!error)
2271 error = dir->i_op->unlink(dir, dentry);
2273 mutex_unlock(&dentry->d_inode->i_mutex);
2275 /* We don't d_delete() NFS sillyrenamed files--they still exist. */
2276 if (!error && !(dentry->d_flags & DCACHE_NFSFS_RENAMED)) {
2277 fsnotify_link_count(dentry->d_inode);
2278 d_delete(dentry);
2281 return error;
2285 * Make sure that the actual truncation of the file will occur outside its
2286 * directory's i_mutex. Truncate can take a long time if there is a lot of
2287 * writeout happening, and we don't want to prevent access to the directory
2288 * while waiting on the I/O.
2290 static long do_unlinkat(int dfd, const char __user *pathname)
2292 int error;
2293 char *name;
2294 struct dentry *dentry;
2295 struct nameidata nd;
2296 struct inode *inode = NULL;
2298 error = user_path_parent(dfd, pathname, &nd, &name);
2299 if (error)
2300 return error;
2302 error = -EISDIR;
2303 if (nd.last_type != LAST_NORM)
2304 goto exit1;
2306 nd.flags &= ~LOOKUP_PARENT;
2308 mutex_lock_nested(&nd.path.dentry->d_inode->i_mutex, I_MUTEX_PARENT);
2309 dentry = lookup_hash(&nd);
2310 error = PTR_ERR(dentry);
2311 if (!IS_ERR(dentry)) {
2312 /* Why not before? Because we want correct error value */
2313 if (nd.last.name[nd.last.len])
2314 goto slashes;
2315 inode = dentry->d_inode;
2316 if (inode)
2317 atomic_inc(&inode->i_count);
2318 error = mnt_want_write(nd.path.mnt);
2319 if (error)
2320 goto exit2;
2321 error = security_path_unlink(&nd.path, dentry);
2322 if (error)
2323 goto exit3;
2324 error = vfs_unlink(nd.path.dentry->d_inode, dentry);
2325 exit3:
2326 mnt_drop_write(nd.path.mnt);
2327 exit2:
2328 dput(dentry);
2330 mutex_unlock(&nd.path.dentry->d_inode->i_mutex);
2331 if (inode)
2332 iput(inode); /* truncate the inode here */
2333 exit1:
2334 path_put(&nd.path);
2335 putname(name);
2336 return error;
2338 slashes:
2339 error = !dentry->d_inode ? -ENOENT :
2340 S_ISDIR(dentry->d_inode->i_mode) ? -EISDIR : -ENOTDIR;
2341 goto exit2;
2344 SYSCALL_DEFINE3(unlinkat, int, dfd, const char __user *, pathname, int, flag)
2346 if ((flag & ~AT_REMOVEDIR) != 0)
2347 return -EINVAL;
2349 if (flag & AT_REMOVEDIR)
2350 return do_rmdir(dfd, pathname);
2352 return do_unlinkat(dfd, pathname);
2355 SYSCALL_DEFINE1(unlink, const char __user *, pathname)
2357 return do_unlinkat(AT_FDCWD, pathname);
2360 int vfs_symlink(struct inode *dir, struct dentry *dentry, const char *oldname)
2362 int error = may_create(dir, dentry);
2364 if (error)
2365 return error;
2367 if (!dir->i_op->symlink)
2368 return -EPERM;
2370 error = security_inode_symlink(dir, dentry, oldname);
2371 if (error)
2372 return error;
2374 vfs_dq_init(dir);
2375 error = dir->i_op->symlink(dir, dentry, oldname);
2376 if (!error)
2377 fsnotify_create(dir, dentry);
2378 return error;
2381 SYSCALL_DEFINE3(symlinkat, const char __user *, oldname,
2382 int, newdfd, const char __user *, newname)
2384 int error;
2385 char *from;
2386 char *to;
2387 struct dentry *dentry;
2388 struct nameidata nd;
2390 from = getname(oldname);
2391 if (IS_ERR(from))
2392 return PTR_ERR(from);
2394 error = user_path_parent(newdfd, newname, &nd, &to);
2395 if (error)
2396 goto out_putname;
2398 dentry = lookup_create(&nd, 0);
2399 error = PTR_ERR(dentry);
2400 if (IS_ERR(dentry))
2401 goto out_unlock;
2403 error = mnt_want_write(nd.path.mnt);
2404 if (error)
2405 goto out_dput;
2406 error = security_path_symlink(&nd.path, dentry, from);
2407 if (error)
2408 goto out_drop_write;
2409 error = vfs_symlink(nd.path.dentry->d_inode, dentry, from);
2410 out_drop_write:
2411 mnt_drop_write(nd.path.mnt);
2412 out_dput:
2413 dput(dentry);
2414 out_unlock:
2415 mutex_unlock(&nd.path.dentry->d_inode->i_mutex);
2416 path_put(&nd.path);
2417 putname(to);
2418 out_putname:
2419 putname(from);
2420 return error;
2423 SYSCALL_DEFINE2(symlink, const char __user *, oldname, const char __user *, newname)
2425 return sys_symlinkat(oldname, AT_FDCWD, newname);
2428 int vfs_link(struct dentry *old_dentry, struct inode *dir, struct dentry *new_dentry)
2430 struct inode *inode = old_dentry->d_inode;
2431 int error;
2433 if (!inode)
2434 return -ENOENT;
2436 error = may_create(dir, new_dentry);
2437 if (error)
2438 return error;
2440 if (dir->i_sb != inode->i_sb)
2441 return -EXDEV;
2444 * A link to an append-only or immutable file cannot be created.
2446 if (IS_APPEND(inode) || IS_IMMUTABLE(inode))
2447 return -EPERM;
2448 if (!dir->i_op->link)
2449 return -EPERM;
2450 if (S_ISDIR(inode->i_mode))
2451 return -EPERM;
2453 error = security_inode_link(old_dentry, dir, new_dentry);
2454 if (error)
2455 return error;
2457 mutex_lock(&inode->i_mutex);
2458 vfs_dq_init(dir);
2459 error = dir->i_op->link(old_dentry, dir, new_dentry);
2460 mutex_unlock(&inode->i_mutex);
2461 if (!error)
2462 fsnotify_link(dir, inode, new_dentry);
2463 return error;
2467 * Hardlinks are often used in delicate situations. We avoid
2468 * security-related surprises by not following symlinks on the
2469 * newname. --KAB
2471 * We don't follow them on the oldname either to be compatible
2472 * with linux 2.0, and to avoid hard-linking to directories
2473 * and other special files. --ADM
2475 SYSCALL_DEFINE5(linkat, int, olddfd, const char __user *, oldname,
2476 int, newdfd, const char __user *, newname, int, flags)
2478 struct dentry *new_dentry;
2479 struct nameidata nd;
2480 struct path old_path;
2481 int error;
2482 char *to;
2484 if ((flags & ~AT_SYMLINK_FOLLOW) != 0)
2485 return -EINVAL;
2487 error = user_path_at(olddfd, oldname,
2488 flags & AT_SYMLINK_FOLLOW ? LOOKUP_FOLLOW : 0,
2489 &old_path);
2490 if (error)
2491 return error;
2493 error = user_path_parent(newdfd, newname, &nd, &to);
2494 if (error)
2495 goto out;
2496 error = -EXDEV;
2497 if (old_path.mnt != nd.path.mnt)
2498 goto out_release;
2499 new_dentry = lookup_create(&nd, 0);
2500 error = PTR_ERR(new_dentry);
2501 if (IS_ERR(new_dentry))
2502 goto out_unlock;
2503 error = mnt_want_write(nd.path.mnt);
2504 if (error)
2505 goto out_dput;
2506 error = security_path_link(old_path.dentry, &nd.path, new_dentry);
2507 if (error)
2508 goto out_drop_write;
2509 error = vfs_link(old_path.dentry, nd.path.dentry->d_inode, new_dentry);
2510 out_drop_write:
2511 mnt_drop_write(nd.path.mnt);
2512 out_dput:
2513 dput(new_dentry);
2514 out_unlock:
2515 mutex_unlock(&nd.path.dentry->d_inode->i_mutex);
2516 out_release:
2517 path_put(&nd.path);
2518 putname(to);
2519 out:
2520 path_put(&old_path);
2522 return error;
2525 SYSCALL_DEFINE2(link, const char __user *, oldname, const char __user *, newname)
2527 return sys_linkat(AT_FDCWD, oldname, AT_FDCWD, newname, 0);
2531 * The worst of all namespace operations - renaming directory. "Perverted"
2532 * doesn't even start to describe it. Somebody in UCB had a heck of a trip...
2533 * Problems:
2534 * a) we can get into loop creation. Check is done in is_subdir().
2535 * b) race potential - two innocent renames can create a loop together.
2536 * That's where 4.4 screws up. Current fix: serialization on
2537 * sb->s_vfs_rename_mutex. We might be more accurate, but that's another
2538 * story.
2539 * c) we have to lock _three_ objects - parents and victim (if it exists).
2540 * And that - after we got ->i_mutex on parents (until then we don't know
2541 * whether the target exists). Solution: try to be smart with locking
2542 * order for inodes. We rely on the fact that tree topology may change
2543 * only under ->s_vfs_rename_mutex _and_ that parent of the object we
2544 * move will be locked. Thus we can rank directories by the tree
2545 * (ancestors first) and rank all non-directories after them.
2546 * That works since everybody except rename does "lock parent, lookup,
2547 * lock child" and rename is under ->s_vfs_rename_mutex.
2548 * HOWEVER, it relies on the assumption that any object with ->lookup()
2549 * has no more than 1 dentry. If "hybrid" objects will ever appear,
2550 * we'd better make sure that there's no link(2) for them.
2551 * d) some filesystems don't support opened-but-unlinked directories,
2552 * either because of layout or because they are not ready to deal with
2553 * all cases correctly. The latter will be fixed (taking this sort of
2554 * stuff into VFS), but the former is not going away. Solution: the same
2555 * trick as in rmdir().
2556 * e) conversion from fhandle to dentry may come in the wrong moment - when
2557 * we are removing the target. Solution: we will have to grab ->i_mutex
2558 * in the fhandle_to_dentry code. [FIXME - current nfsfh.c relies on
2559 * ->i_mutex on parents, which works but leads to some truely excessive
2560 * locking].
2562 static int vfs_rename_dir(struct inode *old_dir, struct dentry *old_dentry,
2563 struct inode *new_dir, struct dentry *new_dentry)
2565 int error = 0;
2566 struct inode *target;
2569 * If we are going to change the parent - check write permissions,
2570 * we'll need to flip '..'.
2572 if (new_dir != old_dir) {
2573 error = inode_permission(old_dentry->d_inode, MAY_WRITE);
2574 if (error)
2575 return error;
2578 error = security_inode_rename(old_dir, old_dentry, new_dir, new_dentry);
2579 if (error)
2580 return error;
2582 target = new_dentry->d_inode;
2583 if (target) {
2584 mutex_lock(&target->i_mutex);
2585 dentry_unhash(new_dentry);
2587 if (d_mountpoint(old_dentry)||d_mountpoint(new_dentry))
2588 error = -EBUSY;
2589 else
2590 error = old_dir->i_op->rename(old_dir, old_dentry, new_dir, new_dentry);
2591 if (target) {
2592 if (!error)
2593 target->i_flags |= S_DEAD;
2594 mutex_unlock(&target->i_mutex);
2595 if (d_unhashed(new_dentry))
2596 d_rehash(new_dentry);
2597 dput(new_dentry);
2599 if (!error)
2600 if (!(old_dir->i_sb->s_type->fs_flags & FS_RENAME_DOES_D_MOVE))
2601 d_move(old_dentry,new_dentry);
2602 return error;
2605 static int vfs_rename_other(struct inode *old_dir, struct dentry *old_dentry,
2606 struct inode *new_dir, struct dentry *new_dentry)
2608 struct inode *target;
2609 int error;
2611 error = security_inode_rename(old_dir, old_dentry, new_dir, new_dentry);
2612 if (error)
2613 return error;
2615 dget(new_dentry);
2616 target = new_dentry->d_inode;
2617 if (target)
2618 mutex_lock(&target->i_mutex);
2619 if (d_mountpoint(old_dentry)||d_mountpoint(new_dentry))
2620 error = -EBUSY;
2621 else
2622 error = old_dir->i_op->rename(old_dir, old_dentry, new_dir, new_dentry);
2623 if (!error) {
2624 if (!(old_dir->i_sb->s_type->fs_flags & FS_RENAME_DOES_D_MOVE))
2625 d_move(old_dentry, new_dentry);
2627 if (target)
2628 mutex_unlock(&target->i_mutex);
2629 dput(new_dentry);
2630 return error;
2633 int vfs_rename(struct inode *old_dir, struct dentry *old_dentry,
2634 struct inode *new_dir, struct dentry *new_dentry)
2636 int error;
2637 int is_dir = S_ISDIR(old_dentry->d_inode->i_mode);
2638 const char *old_name;
2640 if (old_dentry->d_inode == new_dentry->d_inode)
2641 return 0;
2643 error = may_delete(old_dir, old_dentry, is_dir);
2644 if (error)
2645 return error;
2647 if (!new_dentry->d_inode)
2648 error = may_create(new_dir, new_dentry);
2649 else
2650 error = may_delete(new_dir, new_dentry, is_dir);
2651 if (error)
2652 return error;
2654 if (!old_dir->i_op->rename)
2655 return -EPERM;
2657 vfs_dq_init(old_dir);
2658 vfs_dq_init(new_dir);
2660 old_name = fsnotify_oldname_init(old_dentry->d_name.name);
2662 if (is_dir)
2663 error = vfs_rename_dir(old_dir,old_dentry,new_dir,new_dentry);
2664 else
2665 error = vfs_rename_other(old_dir,old_dentry,new_dir,new_dentry);
2666 if (!error) {
2667 const char *new_name = old_dentry->d_name.name;
2668 fsnotify_move(old_dir, new_dir, old_name, new_name, is_dir,
2669 new_dentry->d_inode, old_dentry);
2671 fsnotify_oldname_free(old_name);
2673 return error;
2676 SYSCALL_DEFINE4(renameat, int, olddfd, const char __user *, oldname,
2677 int, newdfd, const char __user *, newname)
2679 struct dentry *old_dir, *new_dir;
2680 struct dentry *old_dentry, *new_dentry;
2681 struct dentry *trap;
2682 struct nameidata oldnd, newnd;
2683 char *from;
2684 char *to;
2685 int error;
2687 error = user_path_parent(olddfd, oldname, &oldnd, &from);
2688 if (error)
2689 goto exit;
2691 error = user_path_parent(newdfd, newname, &newnd, &to);
2692 if (error)
2693 goto exit1;
2695 error = -EXDEV;
2696 if (oldnd.path.mnt != newnd.path.mnt)
2697 goto exit2;
2699 old_dir = oldnd.path.dentry;
2700 error = -EBUSY;
2701 if (oldnd.last_type != LAST_NORM)
2702 goto exit2;
2704 new_dir = newnd.path.dentry;
2705 if (newnd.last_type != LAST_NORM)
2706 goto exit2;
2708 oldnd.flags &= ~LOOKUP_PARENT;
2709 newnd.flags &= ~LOOKUP_PARENT;
2710 newnd.flags |= LOOKUP_RENAME_TARGET;
2712 trap = lock_rename(new_dir, old_dir);
2714 old_dentry = lookup_hash(&oldnd);
2715 error = PTR_ERR(old_dentry);
2716 if (IS_ERR(old_dentry))
2717 goto exit3;
2718 /* source must exist */
2719 error = -ENOENT;
2720 if (!old_dentry->d_inode)
2721 goto exit4;
2722 /* unless the source is a directory trailing slashes give -ENOTDIR */
2723 if (!S_ISDIR(old_dentry->d_inode->i_mode)) {
2724 error = -ENOTDIR;
2725 if (oldnd.last.name[oldnd.last.len])
2726 goto exit4;
2727 if (newnd.last.name[newnd.last.len])
2728 goto exit4;
2730 /* source should not be ancestor of target */
2731 error = -EINVAL;
2732 if (old_dentry == trap)
2733 goto exit4;
2734 new_dentry = lookup_hash(&newnd);
2735 error = PTR_ERR(new_dentry);
2736 if (IS_ERR(new_dentry))
2737 goto exit4;
2738 /* target should not be an ancestor of source */
2739 error = -ENOTEMPTY;
2740 if (new_dentry == trap)
2741 goto exit5;
2743 error = mnt_want_write(oldnd.path.mnt);
2744 if (error)
2745 goto exit5;
2746 error = security_path_rename(&oldnd.path, old_dentry,
2747 &newnd.path, new_dentry);
2748 if (error)
2749 goto exit6;
2750 error = vfs_rename(old_dir->d_inode, old_dentry,
2751 new_dir->d_inode, new_dentry);
2752 exit6:
2753 mnt_drop_write(oldnd.path.mnt);
2754 exit5:
2755 dput(new_dentry);
2756 exit4:
2757 dput(old_dentry);
2758 exit3:
2759 unlock_rename(new_dir, old_dir);
2760 exit2:
2761 path_put(&newnd.path);
2762 putname(to);
2763 exit1:
2764 path_put(&oldnd.path);
2765 putname(from);
2766 exit:
2767 return error;
2770 SYSCALL_DEFINE2(rename, const char __user *, oldname, const char __user *, newname)
2772 return sys_renameat(AT_FDCWD, oldname, AT_FDCWD, newname);
2775 int vfs_readlink(struct dentry *dentry, char __user *buffer, int buflen, const char *link)
2777 int len;
2779 len = PTR_ERR(link);
2780 if (IS_ERR(link))
2781 goto out;
2783 len = strlen(link);
2784 if (len > (unsigned) buflen)
2785 len = buflen;
2786 if (copy_to_user(buffer, link, len))
2787 len = -EFAULT;
2788 out:
2789 return len;
2793 * A helper for ->readlink(). This should be used *ONLY* for symlinks that
2794 * have ->follow_link() touching nd only in nd_set_link(). Using (or not
2795 * using) it for any given inode is up to filesystem.
2797 int generic_readlink(struct dentry *dentry, char __user *buffer, int buflen)
2799 struct nameidata nd;
2800 void *cookie;
2801 int res;
2803 nd.depth = 0;
2804 cookie = dentry->d_inode->i_op->follow_link(dentry, &nd);
2805 if (IS_ERR(cookie))
2806 return PTR_ERR(cookie);
2808 res = vfs_readlink(dentry, buffer, buflen, nd_get_link(&nd));
2809 if (dentry->d_inode->i_op->put_link)
2810 dentry->d_inode->i_op->put_link(dentry, &nd, cookie);
2811 return res;
2814 int vfs_follow_link(struct nameidata *nd, const char *link)
2816 return __vfs_follow_link(nd, link);
2819 /* get the link contents into pagecache */
2820 static char *page_getlink(struct dentry * dentry, struct page **ppage)
2822 char *kaddr;
2823 struct page *page;
2824 struct address_space *mapping = dentry->d_inode->i_mapping;
2825 page = read_mapping_page(mapping, 0, NULL);
2826 if (IS_ERR(page))
2827 return (char*)page;
2828 *ppage = page;
2829 kaddr = kmap(page);
2830 nd_terminate_link(kaddr, dentry->d_inode->i_size, PAGE_SIZE - 1);
2831 return kaddr;
2834 int page_readlink(struct dentry *dentry, char __user *buffer, int buflen)
2836 struct page *page = NULL;
2837 char *s = page_getlink(dentry, &page);
2838 int res = vfs_readlink(dentry,buffer,buflen,s);
2839 if (page) {
2840 kunmap(page);
2841 page_cache_release(page);
2843 return res;
2846 void *page_follow_link_light(struct dentry *dentry, struct nameidata *nd)
2848 struct page *page = NULL;
2849 nd_set_link(nd, page_getlink(dentry, &page));
2850 return page;
2853 void page_put_link(struct dentry *dentry, struct nameidata *nd, void *cookie)
2855 struct page *page = cookie;
2857 if (page) {
2858 kunmap(page);
2859 page_cache_release(page);
2864 * The nofs argument instructs pagecache_write_begin to pass AOP_FLAG_NOFS
2866 int __page_symlink(struct inode *inode, const char *symname, int len, int nofs)
2868 struct address_space *mapping = inode->i_mapping;
2869 struct page *page;
2870 void *fsdata;
2871 int err;
2872 char *kaddr;
2873 unsigned int flags = AOP_FLAG_UNINTERRUPTIBLE;
2874 if (nofs)
2875 flags |= AOP_FLAG_NOFS;
2877 retry:
2878 err = pagecache_write_begin(NULL, mapping, 0, len-1,
2879 flags, &page, &fsdata);
2880 if (err)
2881 goto fail;
2883 kaddr = kmap_atomic(page, KM_USER0);
2884 memcpy(kaddr, symname, len-1);
2885 kunmap_atomic(kaddr, KM_USER0);
2887 err = pagecache_write_end(NULL, mapping, 0, len-1, len-1,
2888 page, fsdata);
2889 if (err < 0)
2890 goto fail;
2891 if (err < len-1)
2892 goto retry;
2894 mark_inode_dirty(inode);
2895 return 0;
2896 fail:
2897 return err;
2900 int page_symlink(struct inode *inode, const char *symname, int len)
2902 return __page_symlink(inode, symname, len,
2903 !(mapping_gfp_mask(inode->i_mapping) & __GFP_FS));
2906 const struct inode_operations page_symlink_inode_operations = {
2907 .readlink = generic_readlink,
2908 .follow_link = page_follow_link_light,
2909 .put_link = page_put_link,
2912 EXPORT_SYMBOL(user_path_at);
2913 EXPORT_SYMBOL(follow_down);
2914 EXPORT_SYMBOL(follow_up);
2915 EXPORT_SYMBOL(get_write_access); /* binfmt_aout */
2916 EXPORT_SYMBOL(getname);
2917 EXPORT_SYMBOL(lock_rename);
2918 EXPORT_SYMBOL(lookup_one_len);
2919 EXPORT_SYMBOL(page_follow_link_light);
2920 EXPORT_SYMBOL(page_put_link);
2921 EXPORT_SYMBOL(page_readlink);
2922 EXPORT_SYMBOL(__page_symlink);
2923 EXPORT_SYMBOL(page_symlink);
2924 EXPORT_SYMBOL(page_symlink_inode_operations);
2925 EXPORT_SYMBOL(path_lookup);
2926 EXPORT_SYMBOL(kern_path);
2927 EXPORT_SYMBOL(vfs_path_lookup);
2928 EXPORT_SYMBOL(inode_permission);
2929 EXPORT_SYMBOL(file_permission);
2930 EXPORT_SYMBOL(unlock_rename);
2931 EXPORT_SYMBOL(vfs_create);
2932 EXPORT_SYMBOL(vfs_follow_link);
2933 EXPORT_SYMBOL(vfs_link);
2934 EXPORT_SYMBOL(vfs_mkdir);
2935 EXPORT_SYMBOL(vfs_mknod);
2936 EXPORT_SYMBOL(generic_permission);
2937 EXPORT_SYMBOL(vfs_readlink);
2938 EXPORT_SYMBOL(vfs_rename);
2939 EXPORT_SYMBOL(vfs_rmdir);
2940 EXPORT_SYMBOL(vfs_symlink);
2941 EXPORT_SYMBOL(vfs_unlink);
2942 EXPORT_SYMBOL(dentry_unhash);
2943 EXPORT_SYMBOL(generic_readlink);